output_buffer: only realloc once, and memset just what we need
[fio.git] / stat.c
1 #include <stdio.h>
2 #include <string.h>
3 #include <sys/time.h>
4 #include <sys/types.h>
5 #include <sys/stat.h>
6 #include <dirent.h>
7 #include <libgen.h>
8 #include <math.h>
9
10 #include "fio.h"
11 #include "diskutil.h"
12 #include "lib/ieee754.h"
13 #include "json.h"
14 #include "lib/getrusage.h"
15 #include "idletime.h"
16 #include "lib/pow2.h"
17 #include "lib/output_buffer.h"
18
19 struct fio_mutex *stat_mutex;
20
21 void update_rusage_stat(struct thread_data *td)
22 {
23         struct thread_stat *ts = &td->ts;
24
25         fio_getrusage(&td->ru_end);
26         ts->usr_time += mtime_since(&td->ru_start.ru_utime,
27                                         &td->ru_end.ru_utime);
28         ts->sys_time += mtime_since(&td->ru_start.ru_stime,
29                                         &td->ru_end.ru_stime);
30         ts->ctx += td->ru_end.ru_nvcsw + td->ru_end.ru_nivcsw
31                         - (td->ru_start.ru_nvcsw + td->ru_start.ru_nivcsw);
32         ts->minf += td->ru_end.ru_minflt - td->ru_start.ru_minflt;
33         ts->majf += td->ru_end.ru_majflt - td->ru_start.ru_majflt;
34
35         memcpy(&td->ru_start, &td->ru_end, sizeof(td->ru_end));
36 }
37
38 /*
39  * Given a latency, return the index of the corresponding bucket in
40  * the structure tracking percentiles.
41  *
42  * (1) find the group (and error bits) that the value (latency)
43  * belongs to by looking at its MSB. (2) find the bucket number in the
44  * group by looking at the index bits.
45  *
46  */
47 static unsigned int plat_val_to_idx(unsigned int val)
48 {
49         unsigned int msb, error_bits, base, offset, idx;
50
51         /* Find MSB starting from bit 0 */
52         if (val == 0)
53                 msb = 0;
54         else
55                 msb = (sizeof(val)*8) - __builtin_clz(val) - 1;
56
57         /*
58          * MSB <= (FIO_IO_U_PLAT_BITS-1), cannot be rounded off. Use
59          * all bits of the sample as index
60          */
61         if (msb <= FIO_IO_U_PLAT_BITS)
62                 return val;
63
64         /* Compute the number of error bits to discard*/
65         error_bits = msb - FIO_IO_U_PLAT_BITS;
66
67         /* Compute the number of buckets before the group */
68         base = (error_bits + 1) << FIO_IO_U_PLAT_BITS;
69
70         /*
71          * Discard the error bits and apply the mask to find the
72          * index for the buckets in the group
73          */
74         offset = (FIO_IO_U_PLAT_VAL - 1) & (val >> error_bits);
75
76         /* Make sure the index does not exceed (array size - 1) */
77         idx = (base + offset) < (FIO_IO_U_PLAT_NR - 1) ?
78                 (base + offset) : (FIO_IO_U_PLAT_NR - 1);
79
80         return idx;
81 }
82
83 /*
84  * Convert the given index of the bucket array to the value
85  * represented by the bucket
86  */
87 static unsigned int plat_idx_to_val(unsigned int idx)
88 {
89         unsigned int error_bits, k, base;
90
91         assert(idx < FIO_IO_U_PLAT_NR);
92
93         /* MSB <= (FIO_IO_U_PLAT_BITS-1), cannot be rounded off. Use
94          * all bits of the sample as index */
95         if (idx < (FIO_IO_U_PLAT_VAL << 1))
96                 return idx;
97
98         /* Find the group and compute the minimum value of that group */
99         error_bits = (idx >> FIO_IO_U_PLAT_BITS) - 1;
100         base = 1 << (error_bits + FIO_IO_U_PLAT_BITS);
101
102         /* Find its bucket number of the group */
103         k = idx % FIO_IO_U_PLAT_VAL;
104
105         /* Return the mean of the range of the bucket */
106         return base + ((k + 0.5) * (1 << error_bits));
107 }
108
109 static int double_cmp(const void *a, const void *b)
110 {
111         const fio_fp64_t fa = *(const fio_fp64_t *) a;
112         const fio_fp64_t fb = *(const fio_fp64_t *) b;
113         int cmp = 0;
114
115         if (fa.u.f > fb.u.f)
116                 cmp = 1;
117         else if (fa.u.f < fb.u.f)
118                 cmp = -1;
119
120         return cmp;
121 }
122
123 unsigned int calc_clat_percentiles(unsigned int *io_u_plat, unsigned long nr,
124                                    fio_fp64_t *plist, unsigned int **output,
125                                    unsigned int *maxv, unsigned int *minv)
126 {
127         unsigned long sum = 0;
128         unsigned int len, i, j = 0;
129         unsigned int oval_len = 0;
130         unsigned int *ovals = NULL;
131         int is_last;
132
133         *minv = -1U;
134         *maxv = 0;
135
136         len = 0;
137         while (len < FIO_IO_U_LIST_MAX_LEN && plist[len].u.f != 0.0)
138                 len++;
139
140         if (!len)
141                 return 0;
142
143         /*
144          * Sort the percentile list. Note that it may already be sorted if
145          * we are using the default values, but since it's a short list this
146          * isn't a worry. Also note that this does not work for NaN values.
147          */
148         if (len > 1)
149                 qsort((void *)plist, len, sizeof(plist[0]), double_cmp);
150
151         /*
152          * Calculate bucket values, note down max and min values
153          */
154         is_last = 0;
155         for (i = 0; i < FIO_IO_U_PLAT_NR && !is_last; i++) {
156                 sum += io_u_plat[i];
157                 while (sum >= (plist[j].u.f / 100.0 * nr)) {
158                         assert(plist[j].u.f <= 100.0);
159
160                         if (j == oval_len) {
161                                 oval_len += 100;
162                                 ovals = realloc(ovals, oval_len * sizeof(unsigned int));
163                         }
164
165                         ovals[j] = plat_idx_to_val(i);
166                         if (ovals[j] < *minv)
167                                 *minv = ovals[j];
168                         if (ovals[j] > *maxv)
169                                 *maxv = ovals[j];
170
171                         is_last = (j == len - 1);
172                         if (is_last)
173                                 break;
174
175                         j++;
176                 }
177         }
178
179         *output = ovals;
180         return len;
181 }
182
183 /*
184  * Find and display the p-th percentile of clat
185  */
186 static void show_clat_percentiles(unsigned int *io_u_plat, unsigned long nr,
187                                   fio_fp64_t *plist, unsigned int precision,
188                                   struct buf_output *out)
189 {
190         unsigned int len, j = 0, minv, maxv;
191         unsigned int *ovals;
192         int is_last, per_line, scale_down;
193         char fmt[32];
194
195         len = calc_clat_percentiles(io_u_plat, nr, plist, &ovals, &maxv, &minv);
196         if (!len)
197                 goto out;
198
199         /*
200          * We default to usecs, but if the value range is such that we
201          * should scale down to msecs, do that.
202          */
203         if (minv > 2000 && maxv > 99999) {
204                 scale_down = 1;
205                 log_buf(out, "    clat percentiles (msec):\n     |");
206         } else {
207                 scale_down = 0;
208                 log_buf(out, "    clat percentiles (usec):\n     |");
209         }
210
211         snprintf(fmt, sizeof(fmt), "%%1.%uf", precision);
212         per_line = (80 - 7) / (precision + 14);
213
214         for (j = 0; j < len; j++) {
215                 char fbuf[16], *ptr = fbuf;
216
217                 /* for formatting */
218                 if (j != 0 && (j % per_line) == 0)
219                         log_buf(out, "     |");
220
221                 /* end of the list */
222                 is_last = (j == len - 1);
223
224                 if (plist[j].u.f < 10.0)
225                         ptr += sprintf(fbuf, " ");
226
227                 snprintf(ptr, sizeof(fbuf), fmt, plist[j].u.f);
228
229                 if (scale_down)
230                         ovals[j] = (ovals[j] + 999) / 1000;
231
232                 log_buf(out, " %sth=[%5u]%c", fbuf, ovals[j], is_last ? '\n' : ',');
233
234                 if (is_last)
235                         break;
236
237                 if ((j % per_line) == per_line - 1)     /* for formatting */
238                         log_buf(out, "\n");
239         }
240
241 out:
242         if (ovals)
243                 free(ovals);
244 }
245
246 int calc_lat(struct io_stat *is, unsigned long *min, unsigned long *max,
247              double *mean, double *dev)
248 {
249         double n = (double) is->samples;
250
251         if (n == 0)
252                 return 0;
253
254         *min = is->min_val;
255         *max = is->max_val;
256         *mean = is->mean.u.f;
257
258         if (n > 1.0)
259                 *dev = sqrt(is->S.u.f / (n - 1.0));
260         else
261                 *dev = 0;
262
263         return 1;
264 }
265
266 void show_group_stats(struct group_run_stats *rs, struct buf_output *out)
267 {
268         char *p1, *p2, *p3, *p4;
269         const char *str[] = { "   READ", "  WRITE" , "   TRIM"};
270         int i;
271
272         log_buf(out, "\nRun status group %d (all jobs):\n", rs->groupid);
273
274         for (i = 0; i < DDIR_RWDIR_CNT; i++) {
275                 const int i2p = is_power_of_2(rs->kb_base);
276
277                 if (!rs->max_run[i])
278                         continue;
279
280                 p1 = num2str(rs->io_kb[i], 6, rs->kb_base, i2p, 8);
281                 p2 = num2str(rs->agg[i], 6, rs->kb_base, i2p, rs->unit_base);
282                 p3 = num2str(rs->min_bw[i], 6, rs->kb_base, i2p, rs->unit_base);
283                 p4 = num2str(rs->max_bw[i], 6, rs->kb_base, i2p, rs->unit_base);
284
285                 log_buf(out, "%s: io=%s, aggrb=%s/s, minb=%s/s, maxb=%s/s,"
286                          " mint=%llumsec, maxt=%llumsec\n",
287                                 rs->unified_rw_rep ? "  MIXED" : str[i],
288                                 p1, p2, p3, p4,
289                                 (unsigned long long) rs->min_run[i],
290                                 (unsigned long long) rs->max_run[i]);
291
292                 free(p1);
293                 free(p2);
294                 free(p3);
295                 free(p4);
296         }
297 }
298
299 void stat_calc_dist(unsigned int *map, unsigned long total, double *io_u_dist)
300 {
301         int i;
302
303         /*
304          * Do depth distribution calculations
305          */
306         for (i = 0; i < FIO_IO_U_MAP_NR; i++) {
307                 if (total) {
308                         io_u_dist[i] = (double) map[i] / (double) total;
309                         io_u_dist[i] *= 100.0;
310                         if (io_u_dist[i] < 0.1 && map[i])
311                                 io_u_dist[i] = 0.1;
312                 } else
313                         io_u_dist[i] = 0.0;
314         }
315 }
316
317 static void stat_calc_lat(struct thread_stat *ts, double *dst,
318                           unsigned int *src, int nr)
319 {
320         unsigned long total = ddir_rw_sum(ts->total_io_u);
321         int i;
322
323         /*
324          * Do latency distribution calculations
325          */
326         for (i = 0; i < nr; i++) {
327                 if (total) {
328                         dst[i] = (double) src[i] / (double) total;
329                         dst[i] *= 100.0;
330                         if (dst[i] < 0.01 && src[i])
331                                 dst[i] = 0.01;
332                 } else
333                         dst[i] = 0.0;
334         }
335 }
336
337 void stat_calc_lat_u(struct thread_stat *ts, double *io_u_lat)
338 {
339         stat_calc_lat(ts, io_u_lat, ts->io_u_lat_u, FIO_IO_U_LAT_U_NR);
340 }
341
342 void stat_calc_lat_m(struct thread_stat *ts, double *io_u_lat)
343 {
344         stat_calc_lat(ts, io_u_lat, ts->io_u_lat_m, FIO_IO_U_LAT_M_NR);
345 }
346
347 static void display_lat(const char *name, unsigned long min, unsigned long max,
348                         double mean, double dev, struct buf_output *out)
349 {
350         const char *base = "(usec)";
351         char *minp, *maxp;
352
353         if (!usec_to_msec(&min, &max, &mean, &dev))
354                 base = "(msec)";
355
356         minp = num2str(min, 6, 1, 0, 0);
357         maxp = num2str(max, 6, 1, 0, 0);
358
359         log_buf(out, "    %s %s: min=%s, max=%s, avg=%5.02f,"
360                  " stdev=%5.02f\n", name, base, minp, maxp, mean, dev);
361
362         free(minp);
363         free(maxp);
364 }
365
366 static void show_ddir_status(struct group_run_stats *rs, struct thread_stat *ts,
367                              int ddir, struct buf_output *out)
368 {
369         const char *str[] = { "read ", "write", "trim" };
370         unsigned long min, max, runt;
371         unsigned long long bw, iops;
372         double mean, dev;
373         char *io_p, *bw_p, *iops_p;
374         int i2p;
375
376         assert(ddir_rw(ddir));
377
378         if (!ts->runtime[ddir])
379                 return;
380
381         i2p = is_power_of_2(rs->kb_base);
382         runt = ts->runtime[ddir];
383
384         bw = (1000 * ts->io_bytes[ddir]) / runt;
385         io_p = num2str(ts->io_bytes[ddir], 6, 1, i2p, 8);
386         bw_p = num2str(bw, 6, 1, i2p, ts->unit_base);
387
388         iops = (1000 * (uint64_t)ts->total_io_u[ddir]) / runt;
389         iops_p = num2str(iops, 6, 1, 0, 0);
390
391         log_buf(out, "  %s: io=%s, bw=%s/s, iops=%s, runt=%6llumsec\n",
392                                 rs->unified_rw_rep ? "mixed" : str[ddir],
393                                 io_p, bw_p, iops_p,
394                                 (unsigned long long) ts->runtime[ddir]);
395
396         free(io_p);
397         free(bw_p);
398         free(iops_p);
399
400         if (calc_lat(&ts->slat_stat[ddir], &min, &max, &mean, &dev))
401                 display_lat("slat", min, max, mean, dev, out);
402         if (calc_lat(&ts->clat_stat[ddir], &min, &max, &mean, &dev))
403                 display_lat("clat", min, max, mean, dev, out);
404         if (calc_lat(&ts->lat_stat[ddir], &min, &max, &mean, &dev))
405                 display_lat(" lat", min, max, mean, dev, out);
406
407         if (ts->clat_percentiles) {
408                 show_clat_percentiles(ts->io_u_plat[ddir],
409                                         ts->clat_stat[ddir].samples,
410                                         ts->percentile_list,
411                                         ts->percentile_precision, out);
412         }
413         if (calc_lat(&ts->bw_stat[ddir], &min, &max, &mean, &dev)) {
414                 double p_of_agg = 100.0, fkb_base = (double)rs->kb_base;
415                 const char *bw_str = (rs->unit_base == 1 ? "Kbit" : "KB");
416
417                 if (rs->unit_base == 1) {
418                         min *= 8.0;
419                         max *= 8.0;
420                         mean *= 8.0;
421                         dev *= 8.0;
422                 }
423
424                 if (rs->agg[ddir]) {
425                         p_of_agg = mean * 100 / (double) rs->agg[ddir];
426                         if (p_of_agg > 100.0)
427                                 p_of_agg = 100.0;
428                 }
429
430                 if (mean > fkb_base * fkb_base) {
431                         min /= fkb_base;
432                         max /= fkb_base;
433                         mean /= fkb_base;
434                         dev /= fkb_base;
435                         bw_str = (rs->unit_base == 1 ? "Mbit" : "MB");
436                 }
437
438                 log_buf(out, "    bw (%-4s/s): min=%5lu, max=%5lu, per=%3.2f%%,"
439                          " avg=%5.02f, stdev=%5.02f\n", bw_str, min, max,
440                                                         p_of_agg, mean, dev);
441         }
442 }
443
444 static int show_lat(double *io_u_lat, int nr, const char **ranges,
445                     const char *msg, struct buf_output *out)
446 {
447         int new_line = 1, i, line = 0, shown = 0;
448
449         for (i = 0; i < nr; i++) {
450                 if (io_u_lat[i] <= 0.0)
451                         continue;
452                 shown = 1;
453                 if (new_line) {
454                         if (line)
455                                 log_buf(out, "\n");
456                         log_buf(out, "    lat (%s) : ", msg);
457                         new_line = 0;
458                         line = 0;
459                 }
460                 if (line)
461                         log_buf(out, ", ");
462                 log_buf(out, "%s%3.2f%%", ranges[i], io_u_lat[i]);
463                 line++;
464                 if (line == 5)
465                         new_line = 1;
466         }
467
468         if (shown)
469                 log_buf(out, "\n");
470
471         return shown;
472 }
473
474 static void show_lat_u(double *io_u_lat_u, struct buf_output *out)
475 {
476         const char *ranges[] = { "2=", "4=", "10=", "20=", "50=", "100=",
477                                  "250=", "500=", "750=", "1000=", };
478
479         show_lat(io_u_lat_u, FIO_IO_U_LAT_U_NR, ranges, "usec", out);
480 }
481
482 static void show_lat_m(double *io_u_lat_m, struct buf_output *out)
483 {
484         const char *ranges[] = { "2=", "4=", "10=", "20=", "50=", "100=",
485                                  "250=", "500=", "750=", "1000=", "2000=",
486                                  ">=2000=", };
487
488         show_lat(io_u_lat_m, FIO_IO_U_LAT_M_NR, ranges, "msec", out);
489 }
490
491 static void show_latencies(struct thread_stat *ts, struct buf_output *out)
492 {
493         double io_u_lat_u[FIO_IO_U_LAT_U_NR];
494         double io_u_lat_m[FIO_IO_U_LAT_M_NR];
495
496         stat_calc_lat_u(ts, io_u_lat_u);
497         stat_calc_lat_m(ts, io_u_lat_m);
498
499         show_lat_u(io_u_lat_u, out);
500         show_lat_m(io_u_lat_m, out);
501 }
502
503 static int block_state_category(int block_state)
504 {
505         switch (block_state) {
506         case BLOCK_STATE_UNINIT:
507                 return 0;
508         case BLOCK_STATE_TRIMMED:
509         case BLOCK_STATE_WRITTEN:
510                 return 1;
511         case BLOCK_STATE_WRITE_FAILURE:
512         case BLOCK_STATE_TRIM_FAILURE:
513                 return 2;
514         default:
515                 /* Silence compile warning on some BSDs and have a return */
516                 assert(0);
517                 return -1;
518         }
519 }
520
521 static int compare_block_infos(const void *bs1, const void *bs2)
522 {
523         uint32_t block1 = *(uint32_t *)bs1;
524         uint32_t block2 = *(uint32_t *)bs2;
525         int state1 = BLOCK_INFO_STATE(block1);
526         int state2 = BLOCK_INFO_STATE(block2);
527         int bscat1 = block_state_category(state1);
528         int bscat2 = block_state_category(state2);
529         int cycles1 = BLOCK_INFO_TRIMS(block1);
530         int cycles2 = BLOCK_INFO_TRIMS(block2);
531
532         if (bscat1 < bscat2)
533                 return -1;
534         if (bscat1 > bscat2)
535                 return 1;
536
537         if (cycles1 < cycles2)
538                 return -1;
539         if (cycles1 > cycles2)
540                 return 1;
541
542         if (state1 < state2)
543                 return -1;
544         if (state1 > state2)
545                 return 1;
546
547         assert(block1 == block2);
548         return 0;
549 }
550
551 static int calc_block_percentiles(int nr_block_infos, uint32_t *block_infos,
552                                   fio_fp64_t *plist, unsigned int **percentiles,
553                                   unsigned int *types)
554 {
555         int len = 0;
556         int i, nr_uninit;
557
558         qsort(block_infos, nr_block_infos, sizeof(uint32_t), compare_block_infos);
559
560         while (len < FIO_IO_U_LIST_MAX_LEN && plist[len].u.f != 0.0)
561                 len++;
562
563         if (!len)
564                 return 0;
565
566         /*
567          * Sort the percentile list. Note that it may already be sorted if
568          * we are using the default values, but since it's a short list this
569          * isn't a worry. Also note that this does not work for NaN values.
570          */
571         if (len > 1)
572                 qsort((void *)plist, len, sizeof(plist[0]), double_cmp);
573
574         nr_uninit = 0;
575         /* Start only after the uninit entries end */
576         for (nr_uninit = 0;
577              nr_uninit < nr_block_infos
578                 && BLOCK_INFO_STATE(block_infos[nr_uninit]) == BLOCK_STATE_UNINIT;
579              nr_uninit ++)
580                 ;
581
582         if (nr_uninit == nr_block_infos)
583                 return 0;
584
585         *percentiles = calloc(len, sizeof(**percentiles));
586
587         for (i = 0; i < len; i++) {
588                 int idx = (plist[i].u.f * (nr_block_infos - nr_uninit) / 100)
589                                 + nr_uninit;
590                 (*percentiles)[i] = BLOCK_INFO_TRIMS(block_infos[idx]);
591         }
592
593         memset(types, 0, sizeof(*types) * BLOCK_STATE_COUNT);
594         for (i = 0; i < nr_block_infos; i++)
595                 types[BLOCK_INFO_STATE(block_infos[i])]++;
596
597         return len;
598 }
599
600 static const char *block_state_names[] = {
601         [BLOCK_STATE_UNINIT] = "unwritten",
602         [BLOCK_STATE_TRIMMED] = "trimmed",
603         [BLOCK_STATE_WRITTEN] = "written",
604         [BLOCK_STATE_TRIM_FAILURE] = "trim failure",
605         [BLOCK_STATE_WRITE_FAILURE] = "write failure",
606 };
607
608 static void show_block_infos(int nr_block_infos, uint32_t *block_infos,
609                              fio_fp64_t *plist, struct buf_output *out)
610 {
611         int len, pos, i;
612         unsigned int *percentiles = NULL;
613         unsigned int block_state_counts[BLOCK_STATE_COUNT];
614
615         len = calc_block_percentiles(nr_block_infos, block_infos, plist,
616                                      &percentiles, block_state_counts);
617
618         log_buf(out, "  block lifetime percentiles :\n   |");
619         pos = 0;
620         for (i = 0; i < len; i++) {
621                 uint32_t block_info = percentiles[i];
622 #define LINE_LENGTH     75
623                 char str[LINE_LENGTH];
624                 int strln = snprintf(str, LINE_LENGTH, " %3.2fth=%u%c",
625                                      plist[i].u.f, block_info,
626                                      i == len - 1 ? '\n' : ',');
627                 assert(strln < LINE_LENGTH);
628                 if (pos + strln > LINE_LENGTH) {
629                         pos = 0;
630                         log_buf(out, "\n   |");
631                 }
632                 log_buf(out, "%s", str);
633                 pos += strln;
634 #undef LINE_LENGTH
635         }
636         if (percentiles)
637                 free(percentiles);
638
639         log_buf(out, "        states               :");
640         for (i = 0; i < BLOCK_STATE_COUNT; i++)
641                 log_buf(out, " %s=%u%c",
642                          block_state_names[i], block_state_counts[i],
643                          i == BLOCK_STATE_COUNT - 1 ? '\n' : ',');
644 }
645
646 static void show_thread_status_normal(struct thread_stat *ts,
647                                       struct group_run_stats *rs,
648                                       struct buf_output *out)
649 {
650         double usr_cpu, sys_cpu;
651         unsigned long runtime;
652         double io_u_dist[FIO_IO_U_MAP_NR];
653         time_t time_p;
654         char time_buf[32];
655
656         if (!ddir_rw_sum(ts->io_bytes) && !ddir_rw_sum(ts->total_io_u))
657                 return;
658
659         time(&time_p);
660         os_ctime_r((const time_t *) &time_p, time_buf, sizeof(time_buf));
661
662         if (!ts->error) {
663                 log_buf(out, "%s: (groupid=%d, jobs=%d): err=%2d: pid=%d: %s",
664                                         ts->name, ts->groupid, ts->members,
665                                         ts->error, (int) ts->pid, time_buf);
666         } else {
667                 log_buf(out, "%s: (groupid=%d, jobs=%d): err=%2d (%s): pid=%d: %s",
668                                         ts->name, ts->groupid, ts->members,
669                                         ts->error, ts->verror, (int) ts->pid,
670                                         time_buf);
671         }
672
673         if (strlen(ts->description))
674                 log_buf(out, "  Description  : [%s]\n", ts->description);
675
676         if (ts->io_bytes[DDIR_READ])
677                 show_ddir_status(rs, ts, DDIR_READ, out);
678         if (ts->io_bytes[DDIR_WRITE])
679                 show_ddir_status(rs, ts, DDIR_WRITE, out);
680         if (ts->io_bytes[DDIR_TRIM])
681                 show_ddir_status(rs, ts, DDIR_TRIM, out);
682
683         show_latencies(ts, out);
684
685         runtime = ts->total_run_time;
686         if (runtime) {
687                 double runt = (double) runtime;
688
689                 usr_cpu = (double) ts->usr_time * 100 / runt;
690                 sys_cpu = (double) ts->sys_time * 100 / runt;
691         } else {
692                 usr_cpu = 0;
693                 sys_cpu = 0;
694         }
695
696         log_buf(out, "  cpu          : usr=%3.2f%%, sys=%3.2f%%, ctx=%llu,"
697                  " majf=%llu, minf=%llu\n", usr_cpu, sys_cpu,
698                         (unsigned long long) ts->ctx,
699                         (unsigned long long) ts->majf,
700                         (unsigned long long) ts->minf);
701
702         stat_calc_dist(ts->io_u_map, ddir_rw_sum(ts->total_io_u), io_u_dist);
703         log_buf(out, "  IO depths    : 1=%3.1f%%, 2=%3.1f%%, 4=%3.1f%%, 8=%3.1f%%,"
704                  " 16=%3.1f%%, 32=%3.1f%%, >=64=%3.1f%%\n", io_u_dist[0],
705                                         io_u_dist[1], io_u_dist[2],
706                                         io_u_dist[3], io_u_dist[4],
707                                         io_u_dist[5], io_u_dist[6]);
708
709         stat_calc_dist(ts->io_u_submit, ts->total_submit, io_u_dist);
710         log_buf(out, "     submit    : 0=%3.1f%%, 4=%3.1f%%, 8=%3.1f%%, 16=%3.1f%%,"
711                  " 32=%3.1f%%, 64=%3.1f%%, >=64=%3.1f%%\n", io_u_dist[0],
712                                         io_u_dist[1], io_u_dist[2],
713                                         io_u_dist[3], io_u_dist[4],
714                                         io_u_dist[5], io_u_dist[6]);
715         stat_calc_dist(ts->io_u_complete, ts->total_complete, io_u_dist);
716         log_buf(out, "     complete  : 0=%3.1f%%, 4=%3.1f%%, 8=%3.1f%%, 16=%3.1f%%,"
717                  " 32=%3.1f%%, 64=%3.1f%%, >=64=%3.1f%%\n", io_u_dist[0],
718                                         io_u_dist[1], io_u_dist[2],
719                                         io_u_dist[3], io_u_dist[4],
720                                         io_u_dist[5], io_u_dist[6]);
721         log_buf(out, "     issued    : total=r=%llu/w=%llu/d=%llu,"
722                                  " short=r=%llu/w=%llu/d=%llu,"
723                                  " drop=r=%llu/w=%llu/d=%llu\n",
724                                         (unsigned long long) ts->total_io_u[0],
725                                         (unsigned long long) ts->total_io_u[1],
726                                         (unsigned long long) ts->total_io_u[2],
727                                         (unsigned long long) ts->short_io_u[0],
728                                         (unsigned long long) ts->short_io_u[1],
729                                         (unsigned long long) ts->short_io_u[2],
730                                         (unsigned long long) ts->drop_io_u[0],
731                                         (unsigned long long) ts->drop_io_u[1],
732                                         (unsigned long long) ts->drop_io_u[2]);
733         if (ts->continue_on_error) {
734                 log_buf(out, "     errors    : total=%llu, first_error=%d/<%s>\n",
735                                         (unsigned long long)ts->total_err_count,
736                                         ts->first_error,
737                                         strerror(ts->first_error));
738         }
739         if (ts->latency_depth) {
740                 log_buf(out, "     latency   : target=%llu, window=%llu, percentile=%.2f%%, depth=%u\n",
741                                         (unsigned long long)ts->latency_target,
742                                         (unsigned long long)ts->latency_window,
743                                         ts->latency_percentile.u.f,
744                                         ts->latency_depth);
745         }
746
747         if (ts->nr_block_infos)
748                 show_block_infos(ts->nr_block_infos, ts->block_infos,
749                                   ts->percentile_list, out);
750 }
751
752 static void show_ddir_status_terse(struct thread_stat *ts,
753                                    struct group_run_stats *rs, int ddir,
754                                    struct buf_output *out)
755 {
756         unsigned long min, max;
757         unsigned long long bw, iops;
758         unsigned int *ovals = NULL;
759         double mean, dev;
760         unsigned int len, minv, maxv;
761         int i;
762
763         assert(ddir_rw(ddir));
764
765         iops = bw = 0;
766         if (ts->runtime[ddir]) {
767                 uint64_t runt = ts->runtime[ddir];
768
769                 bw = ((1000 * ts->io_bytes[ddir]) / runt) / 1024;
770                 iops = (1000 * (uint64_t) ts->total_io_u[ddir]) / runt;
771         }
772
773         log_buf(out, ";%llu;%llu;%llu;%llu",
774                 (unsigned long long) ts->io_bytes[ddir] >> 10, bw, iops,
775                                         (unsigned long long) ts->runtime[ddir]);
776
777         if (calc_lat(&ts->slat_stat[ddir], &min, &max, &mean, &dev))
778                 log_buf(out, ";%lu;%lu;%f;%f", min, max, mean, dev);
779         else
780                 log_buf(out, ";%lu;%lu;%f;%f", 0UL, 0UL, 0.0, 0.0);
781
782         if (calc_lat(&ts->clat_stat[ddir], &min, &max, &mean, &dev))
783                 log_buf(out, ";%lu;%lu;%f;%f", min, max, mean, dev);
784         else
785                 log_buf(out, ";%lu;%lu;%f;%f", 0UL, 0UL, 0.0, 0.0);
786
787         if (ts->clat_percentiles) {
788                 len = calc_clat_percentiles(ts->io_u_plat[ddir],
789                                         ts->clat_stat[ddir].samples,
790                                         ts->percentile_list, &ovals, &maxv,
791                                         &minv);
792         } else
793                 len = 0;
794
795         for (i = 0; i < FIO_IO_U_LIST_MAX_LEN; i++) {
796                 if (i >= len) {
797                         log_buf(out, ";0%%=0");
798                         continue;
799                 }
800                 log_buf(out, ";%f%%=%u", ts->percentile_list[i].u.f, ovals[i]);
801         }
802
803         if (calc_lat(&ts->lat_stat[ddir], &min, &max, &mean, &dev))
804                 log_buf(out, ";%lu;%lu;%f;%f", min, max, mean, dev);
805         else
806                 log_buf(out, ";%lu;%lu;%f;%f", 0UL, 0UL, 0.0, 0.0);
807
808         if (ovals)
809                 free(ovals);
810
811         if (calc_lat(&ts->bw_stat[ddir], &min, &max, &mean, &dev)) {
812                 double p_of_agg = 100.0;
813
814                 if (rs->agg[ddir]) {
815                         p_of_agg = mean * 100 / (double) rs->agg[ddir];
816                         if (p_of_agg > 100.0)
817                                 p_of_agg = 100.0;
818                 }
819
820                 log_buf(out, ";%lu;%lu;%f%%;%f;%f", min, max, p_of_agg, mean, dev);
821         } else
822                 log_buf(out, ";%lu;%lu;%f%%;%f;%f", 0UL, 0UL, 0.0, 0.0, 0.0);
823 }
824
825 static void add_ddir_status_json(struct thread_stat *ts,
826                 struct group_run_stats *rs, int ddir, struct json_object *parent)
827 {
828         unsigned long min, max;
829         unsigned long long bw;
830         unsigned int *ovals = NULL;
831         double mean, dev, iops;
832         unsigned int len, minv, maxv;
833         int i;
834         const char *ddirname[] = {"read", "write", "trim"};
835         struct json_object *dir_object, *tmp_object, *percentile_object;
836         char buf[120];
837         double p_of_agg = 100.0;
838
839         assert(ddir_rw(ddir));
840
841         if (ts->unified_rw_rep && ddir != DDIR_READ)
842                 return;
843
844         dir_object = json_create_object();
845         json_object_add_value_object(parent,
846                 ts->unified_rw_rep ? "mixed" : ddirname[ddir], dir_object);
847
848         bw = 0;
849         iops = 0.0;
850         if (ts->runtime[ddir]) {
851                 uint64_t runt = ts->runtime[ddir];
852
853                 bw = ((1000 * ts->io_bytes[ddir]) / runt) / 1024;
854                 iops = (1000.0 * (uint64_t) ts->total_io_u[ddir]) / runt;
855         }
856
857         json_object_add_value_int(dir_object, "io_bytes", ts->io_bytes[ddir] >> 10);
858         json_object_add_value_int(dir_object, "bw", bw);
859         json_object_add_value_float(dir_object, "iops", iops);
860         json_object_add_value_int(dir_object, "runtime", ts->runtime[ddir]);
861         json_object_add_value_int(dir_object, "total_ios", ts->total_io_u[ddir]);
862         json_object_add_value_int(dir_object, "short_ios", ts->short_io_u[ddir]);
863         json_object_add_value_int(dir_object, "drop_ios", ts->drop_io_u[ddir]);
864
865         if (!calc_lat(&ts->slat_stat[ddir], &min, &max, &mean, &dev)) {
866                 min = max = 0;
867                 mean = dev = 0.0;
868         }
869         tmp_object = json_create_object();
870         json_object_add_value_object(dir_object, "slat", tmp_object);
871         json_object_add_value_int(tmp_object, "min", min);
872         json_object_add_value_int(tmp_object, "max", max);
873         json_object_add_value_float(tmp_object, "mean", mean);
874         json_object_add_value_float(tmp_object, "stddev", dev);
875
876         if (!calc_lat(&ts->clat_stat[ddir], &min, &max, &mean, &dev)) {
877                 min = max = 0;
878                 mean = dev = 0.0;
879         }
880         tmp_object = json_create_object();
881         json_object_add_value_object(dir_object, "clat", tmp_object);
882         json_object_add_value_int(tmp_object, "min", min);
883         json_object_add_value_int(tmp_object, "max", max);
884         json_object_add_value_float(tmp_object, "mean", mean);
885         json_object_add_value_float(tmp_object, "stddev", dev);
886
887         if (ts->clat_percentiles) {
888                 len = calc_clat_percentiles(ts->io_u_plat[ddir],
889                                         ts->clat_stat[ddir].samples,
890                                         ts->percentile_list, &ovals, &maxv,
891                                         &minv);
892         } else
893                 len = 0;
894
895         percentile_object = json_create_object();
896         json_object_add_value_object(tmp_object, "percentile", percentile_object);
897         for (i = 0; i < FIO_IO_U_LIST_MAX_LEN; i++) {
898                 if (i >= len) {
899                         json_object_add_value_int(percentile_object, "0.00", 0);
900                         continue;
901                 }
902                 snprintf(buf, sizeof(buf), "%f", ts->percentile_list[i].u.f);
903                 json_object_add_value_int(percentile_object, (const char *)buf, ovals[i]);
904         }
905
906         if (!calc_lat(&ts->lat_stat[ddir], &min, &max, &mean, &dev)) {
907                 min = max = 0;
908                 mean = dev = 0.0;
909         }
910         tmp_object = json_create_object();
911         json_object_add_value_object(dir_object, "lat", tmp_object);
912         json_object_add_value_int(tmp_object, "min", min);
913         json_object_add_value_int(tmp_object, "max", max);
914         json_object_add_value_float(tmp_object, "mean", mean);
915         json_object_add_value_float(tmp_object, "stddev", dev);
916         if (ovals)
917                 free(ovals);
918
919         if (calc_lat(&ts->bw_stat[ddir], &min, &max, &mean, &dev)) {
920                 if (rs->agg[ddir]) {
921                         p_of_agg = mean * 100 / (double) rs->agg[ddir];
922                         if (p_of_agg > 100.0)
923                                 p_of_agg = 100.0;
924                 }
925         } else {
926                 min = max = 0;
927                 p_of_agg = mean = dev = 0.0;
928         }
929         json_object_add_value_int(dir_object, "bw_min", min);
930         json_object_add_value_int(dir_object, "bw_max", max);
931         json_object_add_value_float(dir_object, "bw_agg", p_of_agg);
932         json_object_add_value_float(dir_object, "bw_mean", mean);
933         json_object_add_value_float(dir_object, "bw_dev", dev);
934 }
935
936 static void show_thread_status_terse_v2(struct thread_stat *ts,
937                                         struct group_run_stats *rs,
938                                         struct buf_output *out)
939 {
940         double io_u_dist[FIO_IO_U_MAP_NR];
941         double io_u_lat_u[FIO_IO_U_LAT_U_NR];
942         double io_u_lat_m[FIO_IO_U_LAT_M_NR];
943         double usr_cpu, sys_cpu;
944         int i;
945
946         /* General Info */
947         log_buf(out, "2;%s;%d;%d", ts->name, ts->groupid, ts->error);
948         /* Log Read Status */
949         show_ddir_status_terse(ts, rs, DDIR_READ, out);
950         /* Log Write Status */
951         show_ddir_status_terse(ts, rs, DDIR_WRITE, out);
952         /* Log Trim Status */
953         show_ddir_status_terse(ts, rs, DDIR_TRIM, out);
954
955         /* CPU Usage */
956         if (ts->total_run_time) {
957                 double runt = (double) ts->total_run_time;
958
959                 usr_cpu = (double) ts->usr_time * 100 / runt;
960                 sys_cpu = (double) ts->sys_time * 100 / runt;
961         } else {
962                 usr_cpu = 0;
963                 sys_cpu = 0;
964         }
965
966         log_buf(out, ";%f%%;%f%%;%llu;%llu;%llu", usr_cpu, sys_cpu,
967                                                 (unsigned long long) ts->ctx,
968                                                 (unsigned long long) ts->majf,
969                                                 (unsigned long long) ts->minf);
970
971         /* Calc % distribution of IO depths, usecond, msecond latency */
972         stat_calc_dist(ts->io_u_map, ddir_rw_sum(ts->total_io_u), io_u_dist);
973         stat_calc_lat_u(ts, io_u_lat_u);
974         stat_calc_lat_m(ts, io_u_lat_m);
975
976         /* Only show fixed 7 I/O depth levels*/
977         log_buf(out, ";%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%",
978                         io_u_dist[0], io_u_dist[1], io_u_dist[2], io_u_dist[3],
979                         io_u_dist[4], io_u_dist[5], io_u_dist[6]);
980
981         /* Microsecond latency */
982         for (i = 0; i < FIO_IO_U_LAT_U_NR; i++)
983                 log_buf(out, ";%3.2f%%", io_u_lat_u[i]);
984         /* Millisecond latency */
985         for (i = 0; i < FIO_IO_U_LAT_M_NR; i++)
986                 log_buf(out, ";%3.2f%%", io_u_lat_m[i]);
987         /* Additional output if continue_on_error set - default off*/
988         if (ts->continue_on_error)
989                 log_buf(out, ";%llu;%d", (unsigned long long) ts->total_err_count, ts->first_error);
990         log_buf(out, "\n");
991
992         /* Additional output if description is set */
993         if (strlen(ts->description))
994                 log_buf(out, ";%s", ts->description);
995
996         log_buf(out, "\n");
997 }
998
999 static void show_thread_status_terse_v3_v4(struct thread_stat *ts,
1000                                            struct group_run_stats *rs, int ver,
1001                                            struct buf_output *out)
1002 {
1003         double io_u_dist[FIO_IO_U_MAP_NR];
1004         double io_u_lat_u[FIO_IO_U_LAT_U_NR];
1005         double io_u_lat_m[FIO_IO_U_LAT_M_NR];
1006         double usr_cpu, sys_cpu;
1007         int i;
1008
1009         /* General Info */
1010         log_buf(out, "%d;%s;%s;%d;%d", ver, fio_version_string,
1011                                         ts->name, ts->groupid, ts->error);
1012         /* Log Read Status */
1013         show_ddir_status_terse(ts, rs, DDIR_READ, out);
1014         /* Log Write Status */
1015         show_ddir_status_terse(ts, rs, DDIR_WRITE, out);
1016         /* Log Trim Status */
1017         if (ver == 4)
1018                 show_ddir_status_terse(ts, rs, DDIR_TRIM, out);
1019
1020         /* CPU Usage */
1021         if (ts->total_run_time) {
1022                 double runt = (double) ts->total_run_time;
1023
1024                 usr_cpu = (double) ts->usr_time * 100 / runt;
1025                 sys_cpu = (double) ts->sys_time * 100 / runt;
1026         } else {
1027                 usr_cpu = 0;
1028                 sys_cpu = 0;
1029         }
1030
1031         log_buf(out, ";%f%%;%f%%;%llu;%llu;%llu", usr_cpu, sys_cpu,
1032                                                 (unsigned long long) ts->ctx,
1033                                                 (unsigned long long) ts->majf,
1034                                                 (unsigned long long) ts->minf);
1035
1036         /* Calc % distribution of IO depths, usecond, msecond latency */
1037         stat_calc_dist(ts->io_u_map, ddir_rw_sum(ts->total_io_u), io_u_dist);
1038         stat_calc_lat_u(ts, io_u_lat_u);
1039         stat_calc_lat_m(ts, io_u_lat_m);
1040
1041         /* Only show fixed 7 I/O depth levels*/
1042         log_buf(out, ";%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%;%3.1f%%",
1043                         io_u_dist[0], io_u_dist[1], io_u_dist[2], io_u_dist[3],
1044                         io_u_dist[4], io_u_dist[5], io_u_dist[6]);
1045
1046         /* Microsecond latency */
1047         for (i = 0; i < FIO_IO_U_LAT_U_NR; i++)
1048                 log_buf(out, ";%3.2f%%", io_u_lat_u[i]);
1049         /* Millisecond latency */
1050         for (i = 0; i < FIO_IO_U_LAT_M_NR; i++)
1051                 log_buf(out, ";%3.2f%%", io_u_lat_m[i]);
1052
1053         /* disk util stats, if any */
1054         show_disk_util(1, NULL, out);
1055
1056         /* Additional output if continue_on_error set - default off*/
1057         if (ts->continue_on_error)
1058                 log_buf(out, ";%llu;%d", (unsigned long long) ts->total_err_count, ts->first_error);
1059
1060         /* Additional output if description is set */
1061         if (strlen(ts->description))
1062                 log_buf(out, ";%s", ts->description);
1063
1064         log_buf(out, "\n");
1065 }
1066
1067 static struct json_object *show_thread_status_json(struct thread_stat *ts,
1068                                     struct group_run_stats *rs)
1069 {
1070         struct json_object *root, *tmp;
1071         struct jobs_eta *je;
1072         double io_u_dist[FIO_IO_U_MAP_NR];
1073         double io_u_lat_u[FIO_IO_U_LAT_U_NR];
1074         double io_u_lat_m[FIO_IO_U_LAT_M_NR];
1075         double usr_cpu, sys_cpu;
1076         int i;
1077         size_t size;
1078
1079         root = json_create_object();
1080         json_object_add_value_string(root, "jobname", ts->name);
1081         json_object_add_value_int(root, "groupid", ts->groupid);
1082         json_object_add_value_int(root, "error", ts->error);
1083
1084         /* ETA Info */
1085         je = get_jobs_eta(1, &size);
1086         if (je) {
1087                 json_object_add_value_int(root, "eta", je->eta_sec);
1088                 json_object_add_value_int(root, "elapsed", je->elapsed_sec);
1089         }
1090
1091         add_ddir_status_json(ts, rs, DDIR_READ, root);
1092         add_ddir_status_json(ts, rs, DDIR_WRITE, root);
1093         add_ddir_status_json(ts, rs, DDIR_TRIM, root);
1094
1095         /* CPU Usage */
1096         if (ts->total_run_time) {
1097                 double runt = (double) ts->total_run_time;
1098
1099                 usr_cpu = (double) ts->usr_time * 100 / runt;
1100                 sys_cpu = (double) ts->sys_time * 100 / runt;
1101         } else {
1102                 usr_cpu = 0;
1103                 sys_cpu = 0;
1104         }
1105         json_object_add_value_float(root, "usr_cpu", usr_cpu);
1106         json_object_add_value_float(root, "sys_cpu", sys_cpu);
1107         json_object_add_value_int(root, "ctx", ts->ctx);
1108         json_object_add_value_int(root, "majf", ts->majf);
1109         json_object_add_value_int(root, "minf", ts->minf);
1110
1111
1112         /* Calc % distribution of IO depths, usecond, msecond latency */
1113         stat_calc_dist(ts->io_u_map, ddir_rw_sum(ts->total_io_u), io_u_dist);
1114         stat_calc_lat_u(ts, io_u_lat_u);
1115         stat_calc_lat_m(ts, io_u_lat_m);
1116
1117         tmp = json_create_object();
1118         json_object_add_value_object(root, "iodepth_level", tmp);
1119         /* Only show fixed 7 I/O depth levels*/
1120         for (i = 0; i < 7; i++) {
1121                 char name[20];
1122                 if (i < 6)
1123                         snprintf(name, 20, "%d", 1 << i);
1124                 else
1125                         snprintf(name, 20, ">=%d", 1 << i);
1126                 json_object_add_value_float(tmp, (const char *)name, io_u_dist[i]);
1127         }
1128
1129         tmp = json_create_object();
1130         json_object_add_value_object(root, "latency_us", tmp);
1131         /* Microsecond latency */
1132         for (i = 0; i < FIO_IO_U_LAT_U_NR; i++) {
1133                 const char *ranges[] = { "2", "4", "10", "20", "50", "100",
1134                                  "250", "500", "750", "1000", };
1135                 json_object_add_value_float(tmp, ranges[i], io_u_lat_u[i]);
1136         }
1137         /* Millisecond latency */
1138         tmp = json_create_object();
1139         json_object_add_value_object(root, "latency_ms", tmp);
1140         for (i = 0; i < FIO_IO_U_LAT_M_NR; i++) {
1141                 const char *ranges[] = { "2", "4", "10", "20", "50", "100",
1142                                  "250", "500", "750", "1000", "2000",
1143                                  ">=2000", };
1144                 json_object_add_value_float(tmp, ranges[i], io_u_lat_m[i]);
1145         }
1146
1147         /* Additional output if continue_on_error set - default off*/
1148         if (ts->continue_on_error) {
1149                 json_object_add_value_int(root, "total_err", ts->total_err_count);
1150                 json_object_add_value_int(root, "first_error", ts->first_error);
1151         }
1152
1153         if (ts->latency_depth) {
1154                 json_object_add_value_int(root, "latency_depth", ts->latency_depth);
1155                 json_object_add_value_int(root, "latency_target", ts->latency_target);
1156                 json_object_add_value_float(root, "latency_percentile", ts->latency_percentile.u.f);
1157                 json_object_add_value_int(root, "latency_window", ts->latency_window);
1158         }
1159
1160         /* Additional output if description is set */
1161         if (strlen(ts->description))
1162                 json_object_add_value_string(root, "desc", ts->description);
1163
1164         if (ts->nr_block_infos) {
1165                 /* Block error histogram and types */
1166                 int len;
1167                 unsigned int *percentiles = NULL;
1168                 unsigned int block_state_counts[BLOCK_STATE_COUNT];
1169
1170                 len = calc_block_percentiles(ts->nr_block_infos, ts->block_infos,
1171                                              ts->percentile_list,
1172                                              &percentiles, block_state_counts);
1173
1174                 if (len) {
1175                         struct json_object *block, *percentile_object, *states;
1176                         int state;
1177                         block = json_create_object();
1178                         json_object_add_value_object(root, "block", block);
1179
1180                         percentile_object = json_create_object();
1181                         json_object_add_value_object(block, "percentiles",
1182                                                      percentile_object);
1183                         for (i = 0; i < len; i++) {
1184                                 char buf[20];
1185                                 snprintf(buf, sizeof(buf), "%f",
1186                                          ts->percentile_list[i].u.f);
1187                                 json_object_add_value_int(percentile_object,
1188                                                           (const char *)buf,
1189                                                           percentiles[i]);
1190                         }
1191
1192                         states = json_create_object();
1193                         json_object_add_value_object(block, "states", states);
1194                         for (state = 0; state < BLOCK_STATE_COUNT; state++) {
1195                                 json_object_add_value_int(states,
1196                                         block_state_names[state],
1197                                         block_state_counts[state]);
1198                         }
1199                         free(percentiles);
1200                 }
1201         }
1202
1203         return root;
1204 }
1205
1206 static void show_thread_status_terse(struct thread_stat *ts,
1207                                      struct group_run_stats *rs,
1208                                      struct buf_output *out)
1209 {
1210         if (terse_version == 2)
1211                 show_thread_status_terse_v2(ts, rs, out);
1212         else if (terse_version == 3 || terse_version == 4)
1213                 show_thread_status_terse_v3_v4(ts, rs, terse_version, out);
1214         else
1215                 log_err("fio: bad terse version!? %d\n", terse_version);
1216 }
1217
1218 struct json_object *show_thread_status(struct thread_stat *ts,
1219                                        struct group_run_stats *rs,
1220                                        struct buf_output *out)
1221 {
1222         struct json_object *ret = NULL;
1223
1224         if (output_format & FIO_OUTPUT_TERSE)
1225                 show_thread_status_terse(ts, rs,  out);
1226         if (output_format & FIO_OUTPUT_JSON)
1227                 ret = show_thread_status_json(ts, rs);
1228         if (output_format & FIO_OUTPUT_NORMAL)
1229                 show_thread_status_normal(ts, rs,  out);
1230
1231         return ret;
1232 }
1233
1234 static void sum_stat(struct io_stat *dst, struct io_stat *src, int nr)
1235 {
1236         double mean, S;
1237
1238         if (src->samples == 0)
1239                 return;
1240
1241         dst->min_val = min(dst->min_val, src->min_val);
1242         dst->max_val = max(dst->max_val, src->max_val);
1243
1244         /*
1245          * Compute new mean and S after the merge
1246          * <http://en.wikipedia.org/wiki/Algorithms_for_calculating_variance
1247          *  #Parallel_algorithm>
1248          */
1249         if (nr == 1) {
1250                 mean = src->mean.u.f;
1251                 S = src->S.u.f;
1252         } else {
1253                 double delta = src->mean.u.f - dst->mean.u.f;
1254
1255                 mean = ((src->mean.u.f * src->samples) +
1256                         (dst->mean.u.f * dst->samples)) /
1257                         (dst->samples + src->samples);
1258
1259                 S =  src->S.u.f + dst->S.u.f + pow(delta, 2.0) *
1260                         (dst->samples * src->samples) /
1261                         (dst->samples + src->samples);
1262         }
1263
1264         dst->samples += src->samples;
1265         dst->mean.u.f = mean;
1266         dst->S.u.f = S;
1267 }
1268
1269 void sum_group_stats(struct group_run_stats *dst, struct group_run_stats *src)
1270 {
1271         int i;
1272
1273         for (i = 0; i < DDIR_RWDIR_CNT; i++) {
1274                 if (dst->max_run[i] < src->max_run[i])
1275                         dst->max_run[i] = src->max_run[i];
1276                 if (dst->min_run[i] && dst->min_run[i] > src->min_run[i])
1277                         dst->min_run[i] = src->min_run[i];
1278                 if (dst->max_bw[i] < src->max_bw[i])
1279                         dst->max_bw[i] = src->max_bw[i];
1280                 if (dst->min_bw[i] && dst->min_bw[i] > src->min_bw[i])
1281                         dst->min_bw[i] = src->min_bw[i];
1282
1283                 dst->io_kb[i] += src->io_kb[i];
1284                 dst->agg[i] += src->agg[i];
1285         }
1286
1287         if (!dst->kb_base)
1288                 dst->kb_base = src->kb_base;
1289         if (!dst->unit_base)
1290                 dst->unit_base = src->unit_base;
1291 }
1292
1293 void sum_thread_stats(struct thread_stat *dst, struct thread_stat *src, int nr)
1294 {
1295         int l, k;
1296
1297         for (l = 0; l < DDIR_RWDIR_CNT; l++) {
1298                 if (!dst->unified_rw_rep) {
1299                         sum_stat(&dst->clat_stat[l], &src->clat_stat[l], nr);
1300                         sum_stat(&dst->slat_stat[l], &src->slat_stat[l], nr);
1301                         sum_stat(&dst->lat_stat[l], &src->lat_stat[l], nr);
1302                         sum_stat(&dst->bw_stat[l], &src->bw_stat[l], nr);
1303
1304                         dst->io_bytes[l] += src->io_bytes[l];
1305
1306                         if (dst->runtime[l] < src->runtime[l])
1307                                 dst->runtime[l] = src->runtime[l];
1308                 } else {
1309                         sum_stat(&dst->clat_stat[0], &src->clat_stat[l], nr);
1310                         sum_stat(&dst->slat_stat[0], &src->slat_stat[l], nr);
1311                         sum_stat(&dst->lat_stat[0], &src->lat_stat[l], nr);
1312                         sum_stat(&dst->bw_stat[0], &src->bw_stat[l], nr);
1313
1314                         dst->io_bytes[0] += src->io_bytes[l];
1315
1316                         if (dst->runtime[0] < src->runtime[l])
1317                                 dst->runtime[0] = src->runtime[l];
1318                 }
1319         }
1320
1321         dst->usr_time += src->usr_time;
1322         dst->sys_time += src->sys_time;
1323         dst->ctx += src->ctx;
1324         dst->majf += src->majf;
1325         dst->minf += src->minf;
1326
1327         for (k = 0; k < FIO_IO_U_MAP_NR; k++)
1328                 dst->io_u_map[k] += src->io_u_map[k];
1329         for (k = 0; k < FIO_IO_U_MAP_NR; k++)
1330                 dst->io_u_submit[k] += src->io_u_submit[k];
1331         for (k = 0; k < FIO_IO_U_MAP_NR; k++)
1332                 dst->io_u_complete[k] += src->io_u_complete[k];
1333         for (k = 0; k < FIO_IO_U_LAT_U_NR; k++)
1334                 dst->io_u_lat_u[k] += src->io_u_lat_u[k];
1335         for (k = 0; k < FIO_IO_U_LAT_M_NR; k++)
1336                 dst->io_u_lat_m[k] += src->io_u_lat_m[k];
1337
1338         for (k = 0; k < DDIR_RWDIR_CNT; k++) {
1339                 if (!dst->unified_rw_rep) {
1340                         dst->total_io_u[k] += src->total_io_u[k];
1341                         dst->short_io_u[k] += src->short_io_u[k];
1342                         dst->drop_io_u[k] += src->drop_io_u[k];
1343                 } else {
1344                         dst->total_io_u[0] += src->total_io_u[k];
1345                         dst->short_io_u[0] += src->short_io_u[k];
1346                         dst->drop_io_u[0] += src->drop_io_u[k];
1347                 }
1348         }
1349
1350         for (k = 0; k < DDIR_RWDIR_CNT; k++) {
1351                 int m;
1352
1353                 for (m = 0; m < FIO_IO_U_PLAT_NR; m++) {
1354                         if (!dst->unified_rw_rep)
1355                                 dst->io_u_plat[k][m] += src->io_u_plat[k][m];
1356                         else
1357                                 dst->io_u_plat[0][m] += src->io_u_plat[k][m];
1358                 }
1359         }
1360
1361         dst->total_run_time += src->total_run_time;
1362         dst->total_submit += src->total_submit;
1363         dst->total_complete += src->total_complete;
1364 }
1365
1366 void init_group_run_stat(struct group_run_stats *gs)
1367 {
1368         int i;
1369         memset(gs, 0, sizeof(*gs));
1370
1371         for (i = 0; i < DDIR_RWDIR_CNT; i++)
1372                 gs->min_bw[i] = gs->min_run[i] = ~0UL;
1373 }
1374
1375 void init_thread_stat(struct thread_stat *ts)
1376 {
1377         int j;
1378
1379         memset(ts, 0, sizeof(*ts));
1380
1381         for (j = 0; j < DDIR_RWDIR_CNT; j++) {
1382                 ts->lat_stat[j].min_val = -1UL;
1383                 ts->clat_stat[j].min_val = -1UL;
1384                 ts->slat_stat[j].min_val = -1UL;
1385                 ts->bw_stat[j].min_val = -1UL;
1386         }
1387         ts->groupid = -1;
1388 }
1389
1390 void __show_run_stats(void)
1391 {
1392         struct group_run_stats *runstats, *rs;
1393         struct thread_data *td;
1394         struct thread_stat *threadstats, *ts;
1395         int i, j, k, nr_ts, last_ts, idx;
1396         int kb_base_warned = 0;
1397         int unit_base_warned = 0;
1398         struct json_object *root = NULL;
1399         struct json_array *array = NULL;
1400         struct buf_output output[FIO_OUTPUT_NR];
1401
1402         runstats = malloc(sizeof(struct group_run_stats) * (groupid + 1));
1403
1404         for (i = 0; i < groupid + 1; i++)
1405                 init_group_run_stat(&runstats[i]);
1406
1407         /*
1408          * find out how many threads stats we need. if group reporting isn't
1409          * enabled, it's one-per-td.
1410          */
1411         nr_ts = 0;
1412         last_ts = -1;
1413         for_each_td(td, i) {
1414                 if (!td->o.group_reporting) {
1415                         nr_ts++;
1416                         continue;
1417                 }
1418                 if (last_ts == td->groupid)
1419                         continue;
1420
1421                 last_ts = td->groupid;
1422                 nr_ts++;
1423         }
1424
1425         threadstats = malloc(nr_ts * sizeof(struct thread_stat));
1426
1427         for (i = 0; i < nr_ts; i++)
1428                 init_thread_stat(&threadstats[i]);
1429
1430         j = 0;
1431         last_ts = -1;
1432         idx = 0;
1433         for_each_td(td, i) {
1434                 if (idx && (!td->o.group_reporting ||
1435                     (td->o.group_reporting && last_ts != td->groupid))) {
1436                         idx = 0;
1437                         j++;
1438                 }
1439
1440                 last_ts = td->groupid;
1441
1442                 ts = &threadstats[j];
1443
1444                 ts->clat_percentiles = td->o.clat_percentiles;
1445                 ts->percentile_precision = td->o.percentile_precision;
1446                 memcpy(ts->percentile_list, td->o.percentile_list, sizeof(td->o.percentile_list));
1447
1448                 idx++;
1449                 ts->members++;
1450
1451                 if (ts->groupid == -1) {
1452                         /*
1453                          * These are per-group shared already
1454                          */
1455                         strncpy(ts->name, td->o.name, FIO_JOBNAME_SIZE - 1);
1456                         if (td->o.description)
1457                                 strncpy(ts->description, td->o.description,
1458                                                 FIO_JOBDESC_SIZE - 1);
1459                         else
1460                                 memset(ts->description, 0, FIO_JOBDESC_SIZE);
1461
1462                         /*
1463                          * If multiple entries in this group, this is
1464                          * the first member.
1465                          */
1466                         ts->thread_number = td->thread_number;
1467                         ts->groupid = td->groupid;
1468
1469                         /*
1470                          * first pid in group, not very useful...
1471                          */
1472                         ts->pid = td->pid;
1473
1474                         ts->kb_base = td->o.kb_base;
1475                         ts->unit_base = td->o.unit_base;
1476                         ts->unified_rw_rep = td->o.unified_rw_rep;
1477                 } else if (ts->kb_base != td->o.kb_base && !kb_base_warned) {
1478                         log_info("fio: kb_base differs for jobs in group, using"
1479                                  " %u as the base\n", ts->kb_base);
1480                         kb_base_warned = 1;
1481                 } else if (ts->unit_base != td->o.unit_base && !unit_base_warned) {
1482                         log_info("fio: unit_base differs for jobs in group, using"
1483                                  " %u as the base\n", ts->unit_base);
1484                         unit_base_warned = 1;
1485                 }
1486
1487                 ts->continue_on_error = td->o.continue_on_error;
1488                 ts->total_err_count += td->total_err_count;
1489                 ts->first_error = td->first_error;
1490                 if (!ts->error) {
1491                         if (!td->error && td->o.continue_on_error &&
1492                             td->first_error) {
1493                                 ts->error = td->first_error;
1494                                 ts->verror[sizeof(ts->verror) - 1] = '\0';
1495                                 strncpy(ts->verror, td->verror, sizeof(ts->verror) - 1);
1496                         } else  if (td->error) {
1497                                 ts->error = td->error;
1498                                 ts->verror[sizeof(ts->verror) - 1] = '\0';
1499                                 strncpy(ts->verror, td->verror, sizeof(ts->verror) - 1);
1500                         }
1501                 }
1502
1503                 ts->latency_depth = td->latency_qd;
1504                 ts->latency_target = td->o.latency_target;
1505                 ts->latency_percentile = td->o.latency_percentile;
1506                 ts->latency_window = td->o.latency_window;
1507
1508                 ts->nr_block_infos = td->ts.nr_block_infos;
1509                 for (k = 0; k < ts->nr_block_infos; k++)
1510                         ts->block_infos[k] = td->ts.block_infos[k];
1511
1512                 sum_thread_stats(ts, &td->ts, idx);
1513         }
1514
1515         for (i = 0; i < nr_ts; i++) {
1516                 unsigned long long bw;
1517
1518                 ts = &threadstats[i];
1519                 rs = &runstats[ts->groupid];
1520                 rs->kb_base = ts->kb_base;
1521                 rs->unit_base = ts->unit_base;
1522                 rs->unified_rw_rep += ts->unified_rw_rep;
1523
1524                 for (j = 0; j < DDIR_RWDIR_CNT; j++) {
1525                         if (!ts->runtime[j])
1526                                 continue;
1527                         if (ts->runtime[j] < rs->min_run[j] || !rs->min_run[j])
1528                                 rs->min_run[j] = ts->runtime[j];
1529                         if (ts->runtime[j] > rs->max_run[j])
1530                                 rs->max_run[j] = ts->runtime[j];
1531
1532                         bw = 0;
1533                         if (ts->runtime[j]) {
1534                                 unsigned long runt = ts->runtime[j];
1535                                 unsigned long long kb;
1536
1537                                 kb = ts->io_bytes[j] / rs->kb_base;
1538                                 bw = kb * 1000 / runt;
1539                         }
1540                         if (bw < rs->min_bw[j])
1541                                 rs->min_bw[j] = bw;
1542                         if (bw > rs->max_bw[j])
1543                                 rs->max_bw[j] = bw;
1544
1545                         rs->io_kb[j] += ts->io_bytes[j] / rs->kb_base;
1546                 }
1547         }
1548
1549         for (i = 0; i < groupid + 1; i++) {
1550                 int ddir;
1551
1552                 rs = &runstats[i];
1553
1554                 for (ddir = 0; ddir < DDIR_RWDIR_CNT; ddir++) {
1555                         if (rs->max_run[ddir])
1556                                 rs->agg[ddir] = (rs->io_kb[ddir] * 1000) /
1557                                                 rs->max_run[ddir];
1558                 }
1559         }
1560
1561         for (i = 0; i < FIO_OUTPUT_NR; i++)
1562                 buf_output_init(&output[i]);
1563
1564         /*
1565          * don't overwrite last signal output
1566          */
1567         if (output_format & FIO_OUTPUT_NORMAL)
1568                 log_buf(&output[__FIO_OUTPUT_NORMAL], "\n");
1569         if (output_format & FIO_OUTPUT_JSON) {
1570                 char time_buf[32];
1571                 time_t time_p;
1572
1573                 time(&time_p);
1574                 os_ctime_r((const time_t *) &time_p, time_buf,
1575                                 sizeof(time_buf));
1576                 time_buf[strlen(time_buf) - 1] = '\0';
1577
1578                 root = json_create_object();
1579                 json_object_add_value_string(root, "fio version", fio_version_string);
1580                 json_object_add_value_int(root, "timestamp", time_p);
1581                 json_object_add_value_string(root, "time", time_buf);
1582                 array = json_create_array();
1583                 json_object_add_value_array(root, "jobs", array);
1584         }
1585
1586         for (i = 0; i < nr_ts; i++) {
1587                 ts = &threadstats[i];
1588                 rs = &runstats[ts->groupid];
1589
1590                 if (is_backend)
1591                         fio_server_send_ts(ts, rs);
1592                 else {
1593                         if (output_format & FIO_OUTPUT_TERSE)
1594                                 show_thread_status_terse(ts, rs, &output[__FIO_OUTPUT_TERSE]);
1595                         if (output_format & FIO_OUTPUT_JSON) {
1596                                 struct json_object *tmp = show_thread_status_json(ts, rs);
1597                                 json_array_add_value_object(array, tmp);
1598                         }
1599                         if (output_format & FIO_OUTPUT_NORMAL)
1600                                 show_thread_status_normal(ts, rs, &output[__FIO_OUTPUT_NORMAL]);
1601                 }
1602         }
1603         if (output_format & FIO_OUTPUT_JSON) {
1604                 /* disk util stats, if any */
1605                 show_disk_util(1, root, &output[__FIO_OUTPUT_JSON]);
1606
1607                 show_idle_prof_stats(FIO_OUTPUT_JSON, root, &output[__FIO_OUTPUT_JSON]);
1608
1609                 json_print_object(root, &output[__FIO_OUTPUT_JSON]);
1610                 log_buf(&output[__FIO_OUTPUT_JSON], "\n");
1611                 json_free_object(root);
1612         }
1613
1614         for (i = 0; i < groupid + 1; i++) {
1615                 rs = &runstats[i];
1616
1617                 rs->groupid = i;
1618                 if (is_backend)
1619                         fio_server_send_gs(rs);
1620                 else if (output_format & FIO_OUTPUT_NORMAL)
1621                         show_group_stats(rs, &output[__FIO_OUTPUT_NORMAL]);
1622         }
1623
1624         if (is_backend)
1625                 fio_server_send_du();
1626         else if (output_format & FIO_OUTPUT_NORMAL) {
1627                 show_disk_util(0, NULL, &output[__FIO_OUTPUT_NORMAL]);
1628                 show_idle_prof_stats(FIO_OUTPUT_NORMAL, NULL, &output[__FIO_OUTPUT_NORMAL]);
1629         }
1630
1631         for (i = 0; i < FIO_OUTPUT_NR; i++) {
1632                 buf_output_flush(&output[i]);
1633                 buf_output_free(&output[i]);
1634         }
1635
1636         log_info_flush();
1637         free(runstats);
1638         free(threadstats);
1639 }
1640
1641 void show_run_stats(void)
1642 {
1643         fio_mutex_down(stat_mutex);
1644         __show_run_stats();
1645         fio_mutex_up(stat_mutex);
1646 }
1647
1648 void __show_running_run_stats(void)
1649 {
1650         struct thread_data *td;
1651         unsigned long long *rt;
1652         struct timeval tv;
1653         int i;
1654
1655         fio_mutex_down(stat_mutex);
1656
1657         rt = malloc(thread_number * sizeof(unsigned long long));
1658         fio_gettime(&tv, NULL);
1659
1660         for_each_td(td, i) {
1661                 rt[i] = mtime_since(&td->start, &tv);
1662                 if (td_read(td) && td->io_bytes[DDIR_READ])
1663                         td->ts.runtime[DDIR_READ] += rt[i];
1664                 if (td_write(td) && td->io_bytes[DDIR_WRITE])
1665                         td->ts.runtime[DDIR_WRITE] += rt[i];
1666                 if (td_trim(td) && td->io_bytes[DDIR_TRIM])
1667                         td->ts.runtime[DDIR_TRIM] += rt[i];
1668
1669                 td->update_rusage = 1;
1670                 td->ts.io_bytes[DDIR_READ] = td->io_bytes[DDIR_READ];
1671                 td->ts.io_bytes[DDIR_WRITE] = td->io_bytes[DDIR_WRITE];
1672                 td->ts.io_bytes[DDIR_TRIM] = td->io_bytes[DDIR_TRIM];
1673                 td->ts.total_run_time = mtime_since(&td->epoch, &tv);
1674         }
1675
1676         for_each_td(td, i) {
1677                 if (td->runstate >= TD_EXITED)
1678                         continue;
1679                 if (td->rusage_sem) {
1680                         td->update_rusage = 1;
1681                         fio_mutex_down(td->rusage_sem);
1682                 }
1683                 td->update_rusage = 0;
1684         }
1685
1686         __show_run_stats();
1687
1688         for_each_td(td, i) {
1689                 if (td_read(td) && td->io_bytes[DDIR_READ])
1690                         td->ts.runtime[DDIR_READ] -= rt[i];
1691                 if (td_write(td) && td->io_bytes[DDIR_WRITE])
1692                         td->ts.runtime[DDIR_WRITE] -= rt[i];
1693                 if (td_trim(td) && td->io_bytes[DDIR_TRIM])
1694                         td->ts.runtime[DDIR_TRIM] -= rt[i];
1695         }
1696
1697         free(rt);
1698         fio_mutex_up(stat_mutex);
1699 }
1700
1701 static int status_interval_init;
1702 static struct timeval status_time;
1703 static int status_file_disabled;
1704
1705 #define FIO_STATUS_FILE         "fio-dump-status"
1706
1707 static int check_status_file(void)
1708 {
1709         struct stat sb;
1710         const char *temp_dir;
1711         char fio_status_file_path[PATH_MAX];
1712
1713         if (status_file_disabled)
1714                 return 0;
1715
1716         temp_dir = getenv("TMPDIR");
1717         if (temp_dir == NULL) {
1718                 temp_dir = getenv("TEMP");
1719                 if (temp_dir && strlen(temp_dir) >= PATH_MAX)
1720                         temp_dir = NULL;
1721         }
1722         if (temp_dir == NULL)
1723                 temp_dir = "/tmp";
1724
1725         snprintf(fio_status_file_path, sizeof(fio_status_file_path), "%s/%s", temp_dir, FIO_STATUS_FILE);
1726
1727         if (stat(fio_status_file_path, &sb))
1728                 return 0;
1729
1730         if (unlink(fio_status_file_path) < 0) {
1731                 log_err("fio: failed to unlink %s: %s\n", fio_status_file_path,
1732                                                         strerror(errno));
1733                 log_err("fio: disabling status file updates\n");
1734                 status_file_disabled = 1;
1735         }
1736
1737         return 1;
1738 }
1739
1740 void check_for_running_stats(void)
1741 {
1742         if (status_interval) {
1743                 if (!status_interval_init) {
1744                         fio_gettime(&status_time, NULL);
1745                         status_interval_init = 1;
1746                 } else if (mtime_since_now(&status_time) >= status_interval) {
1747                         show_running_run_stats();
1748                         fio_gettime(&status_time, NULL);
1749                         return;
1750                 }
1751         }
1752         if (check_status_file()) {
1753                 show_running_run_stats();
1754                 return;
1755         }
1756 }
1757
1758 static inline void add_stat_sample(struct io_stat *is, unsigned long data)
1759 {
1760         double val = data;
1761         double delta;
1762
1763         if (data > is->max_val)
1764                 is->max_val = data;
1765         if (data < is->min_val)
1766                 is->min_val = data;
1767
1768         delta = val - is->mean.u.f;
1769         if (delta) {
1770                 is->mean.u.f += delta / (is->samples + 1.0);
1771                 is->S.u.f += delta * (val - is->mean.u.f);
1772         }
1773
1774         is->samples++;
1775 }
1776
1777 static void __add_log_sample(struct io_log *iolog, unsigned long val,
1778                              enum fio_ddir ddir, unsigned int bs,
1779                              unsigned long t, uint64_t offset)
1780 {
1781         uint64_t nr_samples = iolog->nr_samples;
1782         struct io_sample *s;
1783
1784         if (iolog->disabled)
1785                 return;
1786
1787         if (!iolog->nr_samples)
1788                 iolog->avg_last = t;
1789
1790         if (iolog->nr_samples == iolog->max_samples) {
1791                 size_t new_size;
1792                 void *new_log;
1793
1794                 new_size = 2 * iolog->max_samples * log_entry_sz(iolog);
1795
1796                 if (iolog->log_gz && (new_size > iolog->log_gz)) {
1797                         if (iolog_flush(iolog, 0)) {
1798                                 log_err("fio: failed flushing iolog! Will stop logging.\n");
1799                                 iolog->disabled = 1;
1800                                 return;
1801                         }
1802                         nr_samples = iolog->nr_samples;
1803                 } else {
1804                         new_log = realloc(iolog->log, new_size);
1805                         if (!new_log) {
1806                                 log_err("fio: failed extending iolog! Will stop logging.\n");
1807                                 iolog->disabled = 1;
1808                                 return;
1809                         }
1810                         iolog->log = new_log;
1811                         iolog->max_samples <<= 1;
1812                 }
1813         }
1814
1815         s = get_sample(iolog, nr_samples);
1816
1817         s->val = val;
1818         s->time = t;
1819         io_sample_set_ddir(iolog, s, ddir);
1820         s->bs = bs;
1821
1822         if (iolog->log_offset) {
1823                 struct io_sample_offset *so = (void *) s;
1824
1825                 so->offset = offset;
1826         }
1827
1828         iolog->nr_samples++;
1829 }
1830
1831 static inline void reset_io_stat(struct io_stat *ios)
1832 {
1833         ios->max_val = ios->min_val = ios->samples = 0;
1834         ios->mean.u.f = ios->S.u.f = 0;
1835 }
1836
1837 void reset_io_stats(struct thread_data *td)
1838 {
1839         struct thread_stat *ts = &td->ts;
1840         int i, j;
1841
1842         for (i = 0; i < DDIR_RWDIR_CNT; i++) {
1843                 reset_io_stat(&ts->clat_stat[i]);
1844                 reset_io_stat(&ts->slat_stat[i]);
1845                 reset_io_stat(&ts->lat_stat[i]);
1846                 reset_io_stat(&ts->bw_stat[i]);
1847                 reset_io_stat(&ts->iops_stat[i]);
1848
1849                 ts->io_bytes[i] = 0;
1850                 ts->runtime[i] = 0;
1851
1852                 for (j = 0; j < FIO_IO_U_PLAT_NR; j++)
1853                         ts->io_u_plat[i][j] = 0;
1854         }
1855
1856         for (i = 0; i < FIO_IO_U_MAP_NR; i++) {
1857                 ts->io_u_map[i] = 0;
1858                 ts->io_u_submit[i] = 0;
1859                 ts->io_u_complete[i] = 0;
1860                 ts->io_u_lat_u[i] = 0;
1861                 ts->io_u_lat_m[i] = 0;
1862                 ts->total_submit = 0;
1863                 ts->total_complete = 0;
1864         }
1865
1866         for (i = 0; i < 3; i++) {
1867                 ts->total_io_u[i] = 0;
1868                 ts->short_io_u[i] = 0;
1869                 ts->drop_io_u[i] = 0;
1870         }
1871 }
1872
1873 static void _add_stat_to_log(struct io_log *iolog, unsigned long elapsed)
1874 {
1875         /*
1876          * Note an entry in the log. Use the mean from the logged samples,
1877          * making sure to properly round up. Only write a log entry if we
1878          * had actual samples done.
1879          */
1880         if (iolog->avg_window[DDIR_READ].samples) {
1881                 unsigned long mr;
1882
1883                 mr = iolog->avg_window[DDIR_READ].mean.u.f + 0.50;
1884                 __add_log_sample(iolog, mr, DDIR_READ, 0, elapsed, 0);
1885         }
1886         if (iolog->avg_window[DDIR_WRITE].samples) {
1887                 unsigned long mw;
1888
1889                 mw = iolog->avg_window[DDIR_WRITE].mean.u.f + 0.50;
1890                 __add_log_sample(iolog, mw, DDIR_WRITE, 0, elapsed, 0);
1891         }
1892         if (iolog->avg_window[DDIR_TRIM].samples) {
1893                 unsigned long mw;
1894
1895                 mw = iolog->avg_window[DDIR_TRIM].mean.u.f + 0.50;
1896                 __add_log_sample(iolog, mw, DDIR_TRIM, 0, elapsed, 0);
1897         }
1898
1899         reset_io_stat(&iolog->avg_window[DDIR_READ]);
1900         reset_io_stat(&iolog->avg_window[DDIR_WRITE]);
1901         reset_io_stat(&iolog->avg_window[DDIR_TRIM]);
1902 }
1903
1904 static void add_log_sample(struct thread_data *td, struct io_log *iolog,
1905                            unsigned long val, enum fio_ddir ddir,
1906                            unsigned int bs, uint64_t offset)
1907 {
1908         unsigned long elapsed, this_window;
1909
1910         if (!ddir_rw(ddir))
1911                 return;
1912
1913         elapsed = mtime_since_now(&td->epoch);
1914
1915         /*
1916          * If no time averaging, just add the log sample.
1917          */
1918         if (!iolog->avg_msec) {
1919                 __add_log_sample(iolog, val, ddir, bs, elapsed, offset);
1920                 return;
1921         }
1922
1923         /*
1924          * Add the sample. If the time period has passed, then
1925          * add that entry to the log and clear.
1926          */
1927         add_stat_sample(&iolog->avg_window[ddir], val);
1928
1929         /*
1930          * If period hasn't passed, adding the above sample is all we
1931          * need to do.
1932          */
1933         this_window = elapsed - iolog->avg_last;
1934         if (this_window < iolog->avg_msec)
1935                 return;
1936
1937         _add_stat_to_log(iolog, elapsed);
1938
1939         iolog->avg_last = elapsed;
1940 }
1941
1942 void finalize_logs(struct thread_data *td)
1943 {
1944         unsigned long elapsed;
1945
1946         elapsed = mtime_since_now(&td->epoch);
1947
1948         if (td->clat_log)
1949                 _add_stat_to_log(td->clat_log, elapsed);
1950         if (td->slat_log)
1951                 _add_stat_to_log(td->slat_log, elapsed);
1952         if (td->lat_log)
1953                 _add_stat_to_log(td->lat_log, elapsed);
1954         if (td->bw_log)
1955                 _add_stat_to_log(td->bw_log, elapsed);
1956         if (td->iops_log)
1957                 _add_stat_to_log(td->iops_log, elapsed);
1958 }
1959
1960 void add_agg_sample(unsigned long val, enum fio_ddir ddir, unsigned int bs)
1961 {
1962         struct io_log *iolog;
1963
1964         if (!ddir_rw(ddir))
1965                 return;
1966
1967         iolog = agg_io_log[ddir];
1968         __add_log_sample(iolog, val, ddir, bs, mtime_since_genesis(), 0);
1969 }
1970
1971 static void add_clat_percentile_sample(struct thread_stat *ts,
1972                                 unsigned long usec, enum fio_ddir ddir)
1973 {
1974         unsigned int idx = plat_val_to_idx(usec);
1975         assert(idx < FIO_IO_U_PLAT_NR);
1976
1977         ts->io_u_plat[ddir][idx]++;
1978 }
1979
1980 void add_clat_sample(struct thread_data *td, enum fio_ddir ddir,
1981                      unsigned long usec, unsigned int bs, uint64_t offset)
1982 {
1983         struct thread_stat *ts = &td->ts;
1984
1985         if (!ddir_rw(ddir))
1986                 return;
1987
1988         td_io_u_lock(td);
1989
1990         add_stat_sample(&ts->clat_stat[ddir], usec);
1991
1992         if (td->clat_log)
1993                 add_log_sample(td, td->clat_log, usec, ddir, bs, offset);
1994
1995         if (ts->clat_percentiles)
1996                 add_clat_percentile_sample(ts, usec, ddir);
1997
1998         td_io_u_unlock(td);
1999 }
2000
2001 void add_slat_sample(struct thread_data *td, enum fio_ddir ddir,
2002                      unsigned long usec, unsigned int bs, uint64_t offset)
2003 {
2004         struct thread_stat *ts = &td->ts;
2005
2006         if (!ddir_rw(ddir))
2007                 return;
2008
2009         td_io_u_lock(td);
2010
2011         add_stat_sample(&ts->slat_stat[ddir], usec);
2012
2013         if (td->slat_log)
2014                 add_log_sample(td, td->slat_log, usec, ddir, bs, offset);
2015
2016         td_io_u_unlock(td);
2017 }
2018
2019 void add_lat_sample(struct thread_data *td, enum fio_ddir ddir,
2020                     unsigned long usec, unsigned int bs, uint64_t offset)
2021 {
2022         struct thread_stat *ts = &td->ts;
2023
2024         if (!ddir_rw(ddir))
2025                 return;
2026
2027         td_io_u_lock(td);
2028
2029         add_stat_sample(&ts->lat_stat[ddir], usec);
2030
2031         if (td->lat_log)
2032                 add_log_sample(td, td->lat_log, usec, ddir, bs, offset);
2033
2034         td_io_u_unlock(td);
2035 }
2036
2037 void add_bw_sample(struct thread_data *td, enum fio_ddir ddir, unsigned int bs,
2038                    struct timeval *t)
2039 {
2040         struct thread_stat *ts = &td->ts;
2041         unsigned long spent, rate;
2042
2043         if (!ddir_rw(ddir))
2044                 return;
2045
2046         spent = mtime_since(&td->bw_sample_time, t);
2047         if (spent < td->o.bw_avg_time)
2048                 return;
2049
2050         td_io_u_lock(td);
2051
2052         /*
2053          * Compute both read and write rates for the interval.
2054          */
2055         for (ddir = DDIR_READ; ddir < DDIR_RWDIR_CNT; ddir++) {
2056                 uint64_t delta;
2057
2058                 delta = td->this_io_bytes[ddir] - td->stat_io_bytes[ddir];
2059                 if (!delta)
2060                         continue; /* No entries for interval */
2061
2062                 if (spent)
2063                         rate = delta * 1000 / spent / 1024;
2064                 else
2065                         rate = 0;
2066
2067                 add_stat_sample(&ts->bw_stat[ddir], rate);
2068
2069                 if (td->bw_log)
2070                         add_log_sample(td, td->bw_log, rate, ddir, bs, 0);
2071
2072                 td->stat_io_bytes[ddir] = td->this_io_bytes[ddir];
2073         }
2074
2075         fio_gettime(&td->bw_sample_time, NULL);
2076         td_io_u_unlock(td);
2077 }
2078
2079 void add_iops_sample(struct thread_data *td, enum fio_ddir ddir, unsigned int bs,
2080                      struct timeval *t)
2081 {
2082         struct thread_stat *ts = &td->ts;
2083         unsigned long spent, iops;
2084
2085         if (!ddir_rw(ddir))
2086                 return;
2087
2088         spent = mtime_since(&td->iops_sample_time, t);
2089         if (spent < td->o.iops_avg_time)
2090                 return;
2091
2092         td_io_u_lock(td);
2093
2094         /*
2095          * Compute both read and write rates for the interval.
2096          */
2097         for (ddir = DDIR_READ; ddir < DDIR_RWDIR_CNT; ddir++) {
2098                 uint64_t delta;
2099
2100                 delta = td->this_io_blocks[ddir] - td->stat_io_blocks[ddir];
2101                 if (!delta)
2102                         continue; /* No entries for interval */
2103
2104                 if (spent)
2105                         iops = (delta * 1000) / spent;
2106                 else
2107                         iops = 0;
2108
2109                 add_stat_sample(&ts->iops_stat[ddir], iops);
2110
2111                 if (td->iops_log)
2112                         add_log_sample(td, td->iops_log, iops, ddir, bs, 0);
2113
2114                 td->stat_io_blocks[ddir] = td->this_io_blocks[ddir];
2115         }
2116
2117         fio_gettime(&td->iops_sample_time, NULL);
2118         td_io_u_unlock(td);
2119 }
2120
2121 void stat_init(void)
2122 {
2123         stat_mutex = fio_mutex_init(FIO_MUTEX_UNLOCKED);
2124 }
2125
2126 void stat_exit(void)
2127 {
2128         /*
2129          * When we have the mutex, we know out-of-band access to it
2130          * have ended.
2131          */
2132         fio_mutex_down(stat_mutex);
2133         fio_mutex_remove(stat_mutex);
2134 }
2135
2136 /*
2137  * Called from signal handler. Wake up status thread.
2138  */
2139 void show_running_run_stats(void)
2140 {
2141         helper_do_stat = 1;
2142         pthread_cond_signal(&helper_cond);
2143 }
2144
2145 uint32_t *io_u_block_info(struct thread_data *td, struct io_u *io_u)
2146 {
2147         /* Ignore io_u's which span multiple blocks--they will just get
2148          * inaccurate counts. */
2149         int idx = (io_u->offset - io_u->file->file_offset)
2150                         / td->o.bs[DDIR_TRIM];
2151         uint32_t *info = &td->ts.block_infos[idx];
2152         assert(idx < td->ts.nr_block_infos);
2153         return info;
2154 }