vmstat.c revision 1.248 1 /* $NetBSD: vmstat.c,v 1.248 2021/11/27 22:16:42 rillig Exp $ */
2
3 /*-
4 * Copyright (c) 1998, 2000, 2001, 2007, 2019, 2020
5 * The NetBSD Foundation, Inc.
6 * All rights reserved.
7 *
8 * This code is derived from software contributed to The NetBSD Foundation by:
9 * - Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
10 * NASA Ames Research Center.
11 * - Simon Burge and Luke Mewburn of Wasabi Systems, Inc.
12 *
13 * Redistribution and use in source and binary forms, with or without
14 * modification, are permitted provided that the following conditions
15 * are met:
16 * 1. Redistributions of source code must retain the above copyright
17 * notice, this list of conditions and the following disclaimer.
18 * 2. Redistributions in binary form must reproduce the above copyright
19 * notice, this list of conditions and the following disclaimer in the
20 * documentation and/or other materials provided with the distribution.
21 *
22 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
23 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
24 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
25 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
26 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
27 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
28 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
29 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
30 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
31 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
32 * POSSIBILITY OF SUCH DAMAGE.
33 */
34
35 /*
36 * Copyright (c) 1980, 1986, 1991, 1993
37 * The Regents of the University of California. All rights reserved.
38 *
39 * Redistribution and use in source and binary forms, with or without
40 * modification, are permitted provided that the following conditions
41 * are met:
42 * 1. Redistributions of source code must retain the above copyright
43 * notice, this list of conditions and the following disclaimer.
44 * 2. Redistributions in binary form must reproduce the above copyright
45 * notice, this list of conditions and the following disclaimer in the
46 * documentation and/or other materials provided with the distribution.
47 * 3. Neither the name of the University nor the names of its contributors
48 * may be used to endorse or promote products derived from this software
49 * without specific prior written permission.
50 *
51 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
52 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
53 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
54 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
55 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
56 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
57 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
58 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
59 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
60 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
61 * SUCH DAMAGE.
62 */
63
64 #include <sys/cdefs.h>
65 #ifndef lint
66 __COPYRIGHT("@(#) Copyright (c) 1980, 1986, 1991, 1993\
67 The Regents of the University of California. All rights reserved.");
68 #endif /* not lint */
69
70 #ifndef lint
71 #if 0
72 static char sccsid[] = "@(#)vmstat.c 8.2 (Berkeley) 3/1/95";
73 #else
74 __RCSID("$NetBSD: vmstat.c,v 1.248 2021/11/27 22:16:42 rillig Exp $");
75 #endif
76 #endif /* not lint */
77
78 #define __POOL_EXPOSE
79 #define __NAMECACHE_PRIVATE
80
81 #include <sys/param.h>
82 #include <sys/types.h>
83 #include <sys/mount.h>
84 #include <sys/uio.h>
85
86 #include <sys/buf.h>
87 #include <sys/evcnt.h>
88 #include <sys/ioctl.h>
89 #include <sys/malloc.h>
90 #include <sys/mallocvar.h>
91 #include <sys/namei.h>
92 #include <sys/pool.h>
93 #include <sys/proc.h>
94 #include <sys/sched.h>
95 #include <sys/socket.h>
96 #include <sys/sysctl.h>
97 #include <sys/time.h>
98 #include <sys/queue.h>
99 #include <sys/kernhist.h>
100 #include <sys/vnode.h>
101 #include <sys/vnode_impl.h>
102
103 #include <uvm/uvm_extern.h>
104 #include <uvm/uvm_stat.h>
105
106 #include <net/if.h>
107 #include <netinet/in.h>
108 #include <netinet/in_var.h>
109
110 #include <ufs/ufs/inode.h>
111
112 #include <nfs/rpcv2.h>
113 #include <nfs/nfsproto.h>
114 #include <nfs/nfsnode.h>
115
116 #include <assert.h>
117 #include <ctype.h>
118 #include <err.h>
119 #include <errno.h>
120 #include <fcntl.h>
121 #include <kvm.h>
122 #include <limits.h>
123 #include <nlist.h>
124 #undef n_hash
125 #include <paths.h>
126 #include <signal.h>
127 #include <stdio.h>
128 #include <stddef.h>
129 #include <stdlib.h>
130 #include <string.h>
131 #include <time.h>
132 #include <unistd.h>
133 #include <util.h>
134
135 #include "drvstats.h"
136
137 /*
138 * All this mess will go away once everything is converted.
139 */
140 #ifdef __HAVE_CPU_DATA_FIRST
141
142 # include <sys/cpu_data.h>
143 struct cpu_info {
144 struct cpu_data ci_data;
145 };
146 #else
147 # include <sys/cpu.h>
148 #endif
149
150 /*
151 * General namelist
152 */
153 struct nlist namelist[] =
154 {
155 #define X_HZ 0
156 { .n_name = "_hz" },
157 #define X_STATHZ 1
158 { .n_name = "_stathz" },
159 #define X_NCHSTATS 2
160 { .n_name = "_nchstats" },
161 #define X_ALLEVENTS 3
162 { .n_name = "_allevents" },
163 #define X_POOLHEAD 4
164 { .n_name = "_pool_head" },
165 #define X_UVMEXP 5
166 { .n_name = "_uvmexp" },
167 #define X_CPU_INFOS 6
168 { .n_name = "_cpu_infos" },
169 #define X_NL_SIZE 7
170 { .n_name = NULL },
171 };
172
173 /*
174 * Namelist for time data.
175 */
176 struct nlist timenl[] =
177 {
178 #define X_TIMEBASEBIN 0
179 { .n_name = "_timebasebin" },
180 #define X_TIME_SECOND 1
181 { .n_name = "_time_second" },
182 #define X_TIME 2
183 { .n_name = "_time" },
184 #define X_TIMENL_SIZE 3
185 { .n_name = NULL },
186 };
187
188 /*
189 * Namelist for pre-evcnt interrupt counters.
190 */
191 struct nlist intrnl[] =
192 {
193 #define X_INTRNAMES 0
194 { .n_name = "_intrnames" },
195 #define X_EINTRNAMES 1
196 { .n_name = "_eintrnames" },
197 #define X_INTRCNT 2
198 { .n_name = "_intrcnt" },
199 #define X_EINTRCNT 3
200 { .n_name = "_eintrcnt" },
201 #define X_INTRNL_SIZE 4
202 { .n_name = NULL },
203 };
204
205
206 /*
207 * Namelist for hash statistics
208 */
209 struct nlist hashnl[] =
210 {
211 #define X_BUFHASH 0
212 { .n_name = "_bufhash" },
213 #define X_BUFHASHTBL 1
214 { .n_name = "_bufhashtbl" },
215 #define X_UIHASH 2
216 { .n_name = "_uihash" },
217 #define X_UIHASHTBL 3
218 { .n_name = "_uihashtbl" },
219 #define X_IFADDRHASH 4
220 { .n_name = "_in_ifaddrhash" },
221 #define X_IFADDRHASHTBL 5
222 { .n_name = "_in_ifaddrhashtbl" },
223 #define X_VCACHEHASH 6
224 { .n_name = "_vcache_hashmask" },
225 #define X_VCACHETBL 7
226 { .n_name = "_vcache_hashtab" },
227 #define X_HASHNL_SIZE 8 /* must be last */
228 { .n_name = NULL },
229 };
230
231 /*
232 * Namelist for kernel histories
233 */
234 struct nlist histnl[] =
235 {
236 { .n_name = "_kern_histories" },
237 #define X_KERN_HISTORIES 0
238 { .n_name = NULL },
239 };
240
241
242 #define KILO 1024
243
244 struct cpu_counter {
245 uint64_t nintr;
246 uint64_t nsyscall;
247 uint64_t nswtch;
248 uint64_t nfault;
249 uint64_t ntrap;
250 uint64_t nsoft;
251 } cpucounter, ocpucounter;
252
253 struct uvmexp_sysctl uvmexp, ouvmexp;
254 int ndrives;
255
256 int winlines = 20;
257
258 kvm_t *kd;
259
260
261 #define FORKSTAT 0x001
262 #define INTRSTAT 0x002
263 #define MEMSTAT 0x004
264 #define SUMSTAT 0x008
265 #define EVCNTSTAT 0x010
266 #define VMSTAT 0x020
267 #define HISTLIST 0x040
268 #define HISTDUMP 0x080
269 #define HASHSTAT 0x100
270 #define HASHLIST 0x200
271 #define VMTOTAL 0x400
272 #define POOLCACHESTAT 0x800
273
274 /*
275 * Print single word. `ovflow' is number of characters didn't fit
276 * on the last word. `fmt' is a format string to print this word.
277 * It must contain asterisk for field width. `width' is a width
278 * occupied by this word. `fixed' is a number of constant chars in
279 * `fmt'. `val' is a value to be printed using format string `fmt'.
280 */
281 #define PRWORD(ovflw, fmt, width, fixed, val) do { \
282 (ovflw) += printf((fmt), \
283 (width) - (fixed) - (ovflw) > 0 ? \
284 (width) - (fixed) - (ovflw) : 0, \
285 (val)) - (width); \
286 if ((ovflw) < 0) \
287 (ovflw) = 0; \
288 } while (0)
289
290 void cpustats(int *);
291 void cpucounters(struct cpu_counter *);
292 void deref_kptr(const void *, void *, size_t, const char *);
293 void drvstats(int *);
294 void doevcnt(int verbose, int type);
295 void dohashstat(int, int, const char *);
296 void dohashstat_sysctl(int, int, const char *);
297 void dointr(int verbose);
298 void dopool(int, int);
299 void dopoolcache(int);
300 void dosum(void);
301 void dovmstat(struct timespec *, int);
302 void print_total_hdr(void);
303 void dovmtotal(struct timespec *, int);
304 void kread(struct nlist *, int, void *, size_t);
305 int kreadc(struct nlist *, int, void *, size_t);
306 void needhdr(int);
307 void getnlist(int);
308 long getuptime(void);
309 void printhdr(void);
310 long pct(u_long, u_long);
311 __dead static void usage(void);
312 void doforkst(void);
313
314 void hist_traverse(int, const char *);
315 void hist_dodump(struct kern_history *);
316 void hist_traverse_sysctl(int, const char *);
317 void hist_dodump_sysctl(int[], unsigned int);
318
319 char **choosedrives(char **);
320
321 /* Namelist and memory file names. */
322 char *nlistf, *memf;
323
324 /* allow old usage [vmstat 1] */
325 #define BACKWARD_COMPATIBILITY
326
327 static const int clockrate_mib[] = { CTL_KERN, KERN_CLOCKRATE };
328 static const int vmmeter_mib[] = { CTL_VM, VM_METER };
329 static const int uvmexp2_mib[] = { CTL_VM, VM_UVMEXP2 };
330 static const int boottime_mib[] = { CTL_KERN, KERN_BOOTTIME };
331
332 int
333 main(int argc, char *argv[])
334 {
335 int c, todo, verbose, wide;
336 struct timespec interval;
337 int reps;
338 const char *histname, *hashname;
339 char errbuf[_POSIX2_LINE_MAX];
340
341 histname = hashname = NULL;
342 memf = nlistf = NULL;
343 reps = todo = verbose = wide = 0;
344 interval.tv_sec = 0;
345 interval.tv_nsec = 0;
346 while ((c = getopt(argc, argv, "Cc:efh:HilLM:mN:stu:UvWw:")) != -1) {
347 switch (c) {
348 case 'c':
349 reps = atoi(optarg);
350 break;
351 case 'C':
352 todo |= POOLCACHESTAT;
353 break;
354 case 'e':
355 todo |= EVCNTSTAT;
356 break;
357 case 'f':
358 todo |= FORKSTAT;
359 break;
360 case 'h':
361 hashname = optarg;
362 /* FALLTHROUGH */
363 case 'H':
364 todo |= HASHSTAT;
365 break;
366 case 'i':
367 todo |= INTRSTAT;
368 break;
369 case 'l':
370 todo |= HISTLIST;
371 break;
372 case 'L':
373 todo |= HASHLIST;
374 break;
375 case 'M':
376 memf = optarg;
377 break;
378 case 'm':
379 todo |= MEMSTAT;
380 break;
381 case 'N':
382 nlistf = optarg;
383 break;
384 case 's':
385 todo |= SUMSTAT;
386 break;
387 case 't':
388 todo |= VMTOTAL;
389 break;
390 case 'u':
391 histname = optarg;
392 /* FALLTHROUGH */
393 case 'U':
394 todo |= HISTDUMP;
395 break;
396 case 'v':
397 verbose++;
398 break;
399 case 'W':
400 wide++;
401 break;
402 case 'w':
403 interval.tv_sec = atol(optarg);
404 break;
405 case '?':
406 default:
407 usage();
408 }
409 }
410 argc -= optind;
411 argv += optind;
412
413 if (todo == 0)
414 todo = VMSTAT;
415
416 if (memf == NULL) {
417 kd = kvm_openfiles(NULL, NULL, NULL, KVM_NO_FILES, errbuf);
418 } else {
419 kd = kvm_openfiles(nlistf, memf, NULL, O_RDONLY, errbuf);
420 getnlist(todo);
421 }
422
423 if (kd == NULL)
424 errx(EXIT_FAILURE, "%s", errbuf);
425
426 if (todo & VMSTAT) {
427 struct winsize winsize;
428
429 (void)drvinit(0);/* Initialize disk stats, no disks selected. */
430
431 argv = choosedrives(argv); /* Select disks. */
432 winsize.ws_row = 0;
433 (void)ioctl(STDOUT_FILENO, TIOCGWINSZ, &winsize);
434 if (winsize.ws_row > 0)
435 winlines = winsize.ws_row;
436
437 }
438
439 #ifdef BACKWARD_COMPATIBILITY
440 if (*argv) {
441 interval.tv_sec = atol(*argv);
442 if (*++argv)
443 reps = atoi(*argv);
444 }
445 #endif
446
447 if (interval.tv_sec) {
448 if (!reps)
449 reps = -1;
450 } else if (reps)
451 interval.tv_sec = 1;
452
453 /*
454 * Statistics dumping is incompatible with the default
455 * VMSTAT/dovmstat() output. So perform the interval/reps handling
456 * for it here.
457 */
458 if ((todo & (VMSTAT|VMTOTAL)) == 0) {
459 for (;;) {
460 if (todo & (HISTLIST|HISTDUMP)) {
461 if ((todo & (HISTLIST|HISTDUMP)) ==
462 (HISTLIST|HISTDUMP))
463 errx(1, "you may list or dump,"
464 " but not both!");
465 if (memf != NULL)
466 hist_traverse(todo, histname);
467 else
468 hist_traverse_sysctl(todo, histname);
469 (void)putchar('\n');
470 }
471 if (todo & FORKSTAT) {
472 doforkst();
473 (void)putchar('\n');
474 }
475 if (todo & MEMSTAT) {
476 dopool(verbose, wide);
477 (void)putchar('\n');
478 }
479 if (todo & POOLCACHESTAT) {
480 dopoolcache(verbose);
481 (void)putchar('\n');
482 }
483 if (todo & SUMSTAT) {
484 dosum();
485 (void)putchar('\n');
486 }
487 if (todo & INTRSTAT) {
488 dointr(verbose);
489 (void)putchar('\n');
490 }
491 if (todo & EVCNTSTAT) {
492 doevcnt(verbose, EVCNT_TYPE_ANY);
493 (void)putchar('\n');
494 }
495 if (todo & (HASHLIST|HASHSTAT)) {
496 if ((todo & (HASHLIST|HASHSTAT)) ==
497 (HASHLIST|HASHSTAT))
498 errx(1, "you may list or display,"
499 " but not both!");
500 dohashstat(verbose, todo, hashname);
501 (void)putchar('\n');
502 }
503
504 fflush(stdout);
505 if (reps >= 0 && --reps <=0)
506 break;
507 (void)nanosleep(&interval, NULL);
508 }
509 } else {
510 if ((todo & (VMSTAT|VMTOTAL)) == (VMSTAT|VMTOTAL)) {
511 errx(1, "you may not both do vmstat and vmtotal");
512 }
513 if (todo & VMSTAT)
514 dovmstat(&interval, reps);
515 if (todo & VMTOTAL)
516 dovmtotal(&interval, reps);
517 }
518 return 0;
519 }
520
521 void
522 getnlist(int todo)
523 {
524 static int done = 0;
525 int c;
526 size_t i;
527
528 if ((c = kvm_nlist(kd, namelist)) != 0) {
529 int doexit = 0;
530 if (c == -1)
531 errx(1, "kvm_nlist: %s %s",
532 "namelist", kvm_geterr(kd));
533 for (i = 0; i < __arraycount(namelist)-1; i++)
534 if (namelist[i].n_type == 0) {
535 if (doexit++ == 0)
536 (void)fprintf(stderr,
537 "%s: undefined symbols:",
538 getprogname());
539 (void)fprintf(stderr, " %s",
540 namelist[i].n_name);
541 }
542 if (doexit) {
543 (void)fputc('\n', stderr);
544 exit(1);
545 }
546 }
547
548 if ((todo & (VMSTAT|INTRSTAT)) && !(done & (VMSTAT))) {
549 done |= VMSTAT;
550 if ((c = kvm_nlist(kd, timenl)) == -1 || c == X_TIMENL_SIZE)
551 errx(1, "kvm_nlist: %s %s", "timenl", kvm_geterr(kd));
552 }
553 if ((todo & (SUMSTAT|INTRSTAT)) && !(done & (SUMSTAT|INTRSTAT))) {
554 done |= SUMSTAT|INTRSTAT;
555 (void) kvm_nlist(kd, intrnl);
556 }
557 if ((todo & (HASHLIST|HASHSTAT)) && !(done & (HASHLIST|HASHSTAT))) {
558 done |= HASHLIST|HASHSTAT;
559 if ((c = kvm_nlist(kd, hashnl)) == -1 || c == X_HASHNL_SIZE)
560 errx(1, "kvm_nlist: %s %s", "hashnl", kvm_geterr(kd));
561 }
562 if ((todo & (HISTLIST|HISTDUMP)) && !(done & (HISTLIST|HISTDUMP))) {
563 done |= HISTLIST|HISTDUMP;
564 if (kvm_nlist(kd, histnl) == -1)
565 errx(1, "kvm_nlist: %s %s", "histnl", kvm_geterr(kd));
566 }
567 }
568
569 char **
570 choosedrives(char **argv)
571 {
572 size_t i;
573
574 /*
575 * Choose drives to be displayed. Priority goes to (in order) drives
576 * supplied as arguments, default drives. If everything isn't filled
577 * in and there are drives not taken care of, display the first few
578 * that fit.
579 */
580 #define BACKWARD_COMPATIBILITY
581 for (ndrives = 0; *argv; ++argv) {
582 #ifdef BACKWARD_COMPATIBILITY
583 if (isdigit((unsigned char)**argv))
584 break;
585 #endif
586 for (i = 0; i < ndrive; i++) {
587 if (strcmp(dr_name[i], *argv))
588 continue;
589 drv_select[i] = 1;
590 ++ndrives;
591 break;
592 }
593 }
594 for (i = 0; i < ndrive && ndrives < 2; i++) {
595 if (drv_select[i])
596 continue;
597 drv_select[i] = 1;
598 ++ndrives;
599 }
600
601 return (argv);
602 }
603
604 long
605 getuptime(void)
606 {
607 static struct timespec boottime;
608 struct timespec now;
609 time_t uptime, nowsec;
610
611 if (memf == NULL) {
612 if (boottime.tv_sec == 0) {
613 size_t buflen = sizeof(boottime);
614 if (sysctl(boottime_mib, __arraycount(boottime_mib),
615 &boottime, &buflen, NULL, 0) == -1)
616 warn("Can't get boottime");
617 }
618 clock_gettime(CLOCK_REALTIME, &now);
619 } else {
620 if (boottime.tv_sec == 0) {
621 struct bintime bt;
622
623 kread(timenl, X_TIMEBASEBIN, &bt, sizeof(bt));
624 bintime2timespec(&bt, &boottime);
625 }
626 if (kreadc(timenl, X_TIME_SECOND, &nowsec, sizeof(nowsec))) {
627 /*
628 * XXX this assignment dance can be removed once
629 * timeval tv_sec is SUS mandated time_t
630 */
631 now.tv_sec = nowsec;
632 now.tv_nsec = 0;
633 } else {
634 kread(timenl, X_TIME, &now, sizeof(now));
635 }
636 }
637 uptime = now.tv_sec - boottime.tv_sec;
638 if (uptime <= 0 || uptime > 60*60*24*365*10)
639 errx(1, "time makes no sense; namelist must be wrong.");
640 return (uptime);
641 }
642
643 int hz, hdrcnt;
644
645 void
646 print_total_hdr(void)
647 {
648
649 (void)printf("procs memory\n");
650 (void)printf("ru dw pw sl");
651 (void)printf(" total-v active-v active-r");
652 (void)printf(" vm-sh avm-sh rm-sh arm-sh free\n");
653 hdrcnt = winlines - 2;
654 }
655
656 void
657 dovmtotal(struct timespec *interval, int reps)
658 {
659 struct vmtotal total;
660 size_t size;
661
662 (void)signal(SIGCONT, needhdr);
663
664 for (hdrcnt = 1;;) {
665 if (!--hdrcnt)
666 print_total_hdr();
667 if (memf != NULL) {
668 warnx("Unable to get vmtotals from crash dump.");
669 (void)memset(&total, 0, sizeof(total));
670 } else {
671 size = sizeof(total);
672 if (sysctl(vmmeter_mib, __arraycount(vmmeter_mib),
673 &total, &size, NULL, 0) == -1) {
674 warn("Can't get vmtotals");
675 (void)memset(&total, 0, sizeof(total));
676 }
677 }
678 (void)printf("%2d ", total.t_rq);
679 (void)printf("%2d ", total.t_dw);
680 (void)printf("%2d ", total.t_pw);
681 (void)printf("%2d ", total.t_sl);
682
683 (void)printf("%9d ", total.t_vm);
684 (void)printf("%9d ", total.t_avm);
685 (void)printf("%9d ", total.t_arm);
686 (void)printf("%5d ", total.t_vmshr);
687 (void)printf("%6d ", total.t_avmshr);
688 (void)printf("%5d ", total.t_rmshr);
689 (void)printf("%6d ", total.t_armshr);
690 (void)printf("%5d", total.t_free);
691
692 (void)putchar('\n');
693
694 (void)fflush(stdout);
695 if (reps >= 0 && --reps <= 0)
696 break;
697
698 (void)nanosleep(interval, NULL);
699 }
700 }
701
702 void
703 dovmstat(struct timespec *interval, int reps)
704 {
705 struct vmtotal total;
706 time_t uptime, halfuptime;
707 size_t size;
708 int pagesize = getpagesize();
709 int ovflw;
710
711 uptime = getuptime();
712 halfuptime = uptime / 2;
713 (void)signal(SIGCONT, needhdr);
714
715 if (memf != NULL) {
716 if (namelist[X_STATHZ].n_type != 0 && namelist[X_STATHZ].n_value != 0)
717 kread(namelist, X_STATHZ, &hz, sizeof(hz));
718 if (!hz)
719 kread(namelist, X_HZ, &hz, sizeof(hz));
720 } else {
721 struct clockinfo clockinfo;
722 size = sizeof(clockinfo);
723 if (sysctl(clockrate_mib, 2, &clockinfo, &size, NULL, 0) == -1)
724 err(1, "sysctl kern.clockrate failed");
725 hz = clockinfo.stathz;
726 if (!hz)
727 hz = clockinfo.hz;
728 }
729
730 for (hdrcnt = 1;;) {
731 if (!--hdrcnt)
732 printhdr();
733 /* Read new disk statistics */
734 cpureadstats();
735 drvreadstats();
736 tkreadstats();
737 if (memf != NULL) {
738 struct uvmexp uvmexp_kernel;
739 /*
740 * XXX Can't do this if we're reading a crash
741 * XXX dump because they're lazily-calculated.
742 */
743 warnx("Unable to get vmtotals from crash dump.");
744 (void)memset(&total, 0, sizeof(total));
745 kread(namelist, X_UVMEXP, &uvmexp_kernel, sizeof(uvmexp_kernel));
746 #define COPY(field) uvmexp.field = uvmexp_kernel.field
747 COPY(pdreact);
748 COPY(pageins);
749 COPY(pgswapout);
750 COPY(pdfreed);
751 COPY(pdscans);
752 #undef COPY
753 } else {
754 size = sizeof(total);
755 if (sysctl(vmmeter_mib, __arraycount(vmmeter_mib),
756 &total, &size, NULL, 0) == -1) {
757 warn("Can't get vmtotals");
758 (void)memset(&total, 0, sizeof(total));
759 }
760 size = sizeof(uvmexp);
761 if (sysctl(uvmexp2_mib, __arraycount(uvmexp2_mib), &uvmexp,
762 &size, NULL, 0) == -1)
763 warn("sysctl vm.uvmexp2 failed");
764 }
765 cpucounters(&cpucounter);
766 ovflw = 0;
767 PRWORD(ovflw, " %*d", 2, 1, total.t_rq - 1);
768 PRWORD(ovflw, " %*d", 2, 1, total.t_dw + total.t_pw);
769 #define pgtok(a) (long)((a) * ((uint32_t)pagesize >> 10))
770 #define rate(x) (u_long)(((x) + halfuptime) / uptime) /* round */
771 PRWORD(ovflw, " %*ld", 9, 1, pgtok(total.t_avm));
772 PRWORD(ovflw, " %*ld", 7, 1, pgtok(total.t_free));
773 PRWORD(ovflw, " %*ld", 5, 1,
774 rate(cpucounter.nfault - ocpucounter.nfault));
775 PRWORD(ovflw, " %*ld", 4, 1,
776 rate(uvmexp.pdreact - ouvmexp.pdreact));
777 PRWORD(ovflw, " %*ld", 4, 1,
778 rate(uvmexp.pageins - ouvmexp.pageins));
779 PRWORD(ovflw, " %*ld", 5, 1,
780 rate(uvmexp.pgswapout - ouvmexp.pgswapout));
781 PRWORD(ovflw, " %*ld", 5, 1,
782 rate(uvmexp.pdfreed - ouvmexp.pdfreed));
783 PRWORD(ovflw, " %*ld", 6, 2,
784 rate(uvmexp.pdscans - ouvmexp.pdscans));
785 drvstats(&ovflw);
786 PRWORD(ovflw, " %*ld", 5, 1,
787 rate(cpucounter.nintr - ocpucounter.nintr));
788 PRWORD(ovflw, " %*ld", 5, 1,
789 rate(cpucounter.nsyscall - ocpucounter.nsyscall));
790 PRWORD(ovflw, " %*ld", 4, 1,
791 rate(cpucounter.nswtch - ocpucounter.nswtch));
792 cpustats(&ovflw);
793 (void)putchar('\n');
794 (void)fflush(stdout);
795 if (reps >= 0 && --reps <= 0)
796 break;
797 ouvmexp = uvmexp;
798 ocpucounter = cpucounter;
799 uptime = interval->tv_sec;
800 /*
801 * We round upward to avoid losing low-frequency events
802 * (i.e., >= 1 per interval but < 1 per second).
803 */
804 halfuptime = uptime == 1 ? 0 : (uptime + 1) / 2;
805 (void)nanosleep(interval, NULL);
806 }
807 }
808
809 void
810 printhdr(void)
811 {
812 size_t i;
813
814 (void)printf(" procs memory page%*s", 23, "");
815 if (ndrives > 0)
816 (void)printf("%s %*sfaults cpu\n",
817 ((ndrives > 1) ? "disks" : "disk"),
818 ((ndrives > 1) ? ndrives * 3 - 4 : 0), "");
819 else
820 (void)printf("%*s faults cpu\n",
821 ndrives * 3, "");
822
823 (void)printf(" r b avm fre flt re pi po fr sr ");
824 for (i = 0; i < ndrive; i++)
825 if (drv_select[i])
826 (void)printf("%c%c ", dr_name[i][0],
827 dr_name[i][strlen(dr_name[i]) - 1]);
828 (void)printf(" in sy cs us sy id\n");
829 hdrcnt = winlines - 2;
830 }
831
832 /*
833 * Force a header to be prepended to the next output.
834 */
835 void
836 /*ARGSUSED*/
837 needhdr(int dummy)
838 {
839
840 hdrcnt = 1;
841 }
842
843 long
844 pct(u_long top, u_long bot)
845 {
846 long ans;
847
848 if (bot == 0)
849 return (0);
850 ans = (long)((quad_t)top * 100 / bot);
851 return (ans);
852 }
853
854 #define PCT(top, bot) (int)pct((u_long)(top), (u_long)(bot))
855
856 void
857 dosum(void)
858 {
859 struct nchstats nch_stats;
860 uint64_t nchtotal;
861 size_t ssize;
862 int active_kernel;
863 struct cpu_counter cc;
864
865 /*
866 * The "active" and "inactive" variables
867 * are now estimated by the kernel and sadly
868 * can not easily be dug out of a crash dump.
869 */
870 ssize = sizeof(uvmexp);
871 memset(&uvmexp, 0, ssize);
872 active_kernel = (memf == NULL);
873 if (active_kernel) {
874 /* only on active kernel */
875 if (sysctl(uvmexp2_mib, __arraycount(uvmexp2_mib), &uvmexp,
876 &ssize, NULL, 0) == -1)
877 warn("sysctl vm.uvmexp2 failed");
878 } else {
879 struct uvmexp uvmexp_kernel;
880 struct pool pool, *pp = &pool;
881 struct pool_allocator pa;
882 TAILQ_HEAD(,pool) pool_head;
883 void *addr;
884 uint64_t bytes;
885
886 kread(namelist, X_UVMEXP, &uvmexp_kernel, sizeof(uvmexp_kernel));
887 #define COPY(field) uvmexp.field = uvmexp_kernel.field
888 COPY(pagesize);
889 COPY(ncolors);
890 COPY(npages);
891 COPY(free);
892 COPY(paging);
893 COPY(wired);
894 COPY(reserve_pagedaemon);
895 COPY(reserve_kernel);
896 COPY(anonpages);
897 COPY(filepages);
898 COPY(execpages);
899 COPY(freemin);
900 COPY(freetarg);
901 COPY(wiredmax);
902 COPY(nswapdev);
903 COPY(swpages);
904 COPY(swpginuse);
905 COPY(nswget);
906 COPY(pageins);
907 COPY(pdpageouts);
908 COPY(pgswapin);
909 COPY(pgswapout);
910 COPY(forks);
911 COPY(forks_ppwait);
912 COPY(forks_sharevm);
913 COPY(colorhit);
914 COPY(colormiss);
915 COPY(cpuhit);
916 COPY(cpumiss);
917 COPY(fltnoram);
918 COPY(fltnoanon);
919 COPY(fltpgwait);
920 COPY(fltpgrele);
921 COPY(fltrelck);
922 COPY(fltrelckok);
923 COPY(fltanget);
924 COPY(fltanretry);
925 COPY(fltamcopy);
926 COPY(fltamcopy);
927 COPY(fltnomap);
928 COPY(fltlget);
929 COPY(fltget);
930 COPY(flt_anon);
931 COPY(flt_acow);
932 COPY(flt_obj);
933 COPY(flt_prcopy);
934 COPY(flt_przero);
935 COPY(pdwoke);
936 COPY(pdrevs);
937 COPY(pdfreed);
938 COPY(pdscans);
939 COPY(pdanscan);
940 COPY(pdobscan);
941 COPY(pdreact);
942 COPY(pdbusy);
943 COPY(pdpending);
944 COPY(pddeact);
945 COPY(bootpages);
946 #undef COPY
947 kread(namelist, X_POOLHEAD, &pool_head, sizeof(pool_head));
948 addr = TAILQ_FIRST(&pool_head);
949 uvmexp.poolpages = 0;
950 for (; addr != NULL; addr = TAILQ_NEXT(pp, pr_poollist)) {
951 deref_kptr(addr, pp, sizeof(*pp), "pool chain trashed");
952 deref_kptr(pp->pr_alloc, &pa, sizeof(pa),
953 "pool allocator trashed");
954 bytes = pp->pr_npages * pa.pa_pagesz;
955 if ((pp->pr_roflags & PR_RECURSIVE) != 0)
956 bytes -= (pp->pr_nout * pp->pr_size);
957 uvmexp.poolpages += bytes / uvmexp.pagesize;
958 }
959 }
960
961
962 (void)printf("%9" PRIu64 " bytes per page\n", uvmexp.pagesize);
963
964 (void)printf("%9" PRIu64 " page color%s\n",
965 uvmexp.ncolors, uvmexp.ncolors == 1 ? "" : "s");
966
967 (void)printf("%9" PRIu64 " pages managed\n", uvmexp.npages);
968 (void)printf("%9" PRIu64 " pages free\n", uvmexp.free);
969 if (active_kernel) {
970 (void)printf("%9" PRIu64 " pages active\n", uvmexp.active);
971 (void)printf("%9" PRIu64 " pages inactive\n", uvmexp.inactive);
972 }
973 (void)printf("%9" PRIu64 " pages paging\n", uvmexp.paging);
974 (void)printf("%9" PRIu64 " pages wired\n", uvmexp.wired);
975 (void)printf("%9" PRIu64 " reserve pagedaemon pages\n",
976 uvmexp.reserve_pagedaemon);
977 (void)printf("%9" PRIu64 " reserve kernel pages\n", uvmexp.reserve_kernel);
978 (void)printf("%9" PRIu64 " boot kernel pages\n", uvmexp.bootpages);
979 (void)printf("%9" PRIu64 " kernel pool pages\n", uvmexp.poolpages);
980 (void)printf("%9" PRIu64 " anonymous pages\n", uvmexp.anonpages);
981 (void)printf("%9" PRIu64 " cached file pages\n", uvmexp.filepages);
982 (void)printf("%9" PRIu64 " cached executable pages\n", uvmexp.execpages);
983
984 (void)printf("%9" PRIu64 " minimum free pages\n", uvmexp.freemin);
985 (void)printf("%9" PRIu64 " target free pages\n", uvmexp.freetarg);
986 (void)printf("%9" PRIu64 " maximum wired pages\n", uvmexp.wiredmax);
987
988 (void)printf("%9" PRIu64 " swap devices\n", uvmexp.nswapdev);
989 (void)printf("%9" PRIu64 " swap pages\n", uvmexp.swpages);
990 (void)printf("%9" PRIu64 " swap pages in use\n", uvmexp.swpginuse);
991 (void)printf("%9" PRIu64 " swap allocations\n", uvmexp.nswget);
992
993 cpucounters(&cc);
994
995 (void)printf("%9" PRIu64 " total faults taken\n", cc.nfault);
996 (void)printf("%9" PRIu64 " traps\n", cc.ntrap);
997 (void)printf("%9" PRIu64 " device interrupts\n", cc.nintr);
998 (void)printf("%9" PRIu64 " CPU context switches\n", cc.nswtch);
999 (void)printf("%9" PRIu64 " software interrupts\n", cc.nsoft);
1000 (void)printf("%9" PRIu64 " system calls\n", cc.nsyscall);
1001 (void)printf("%9" PRIu64 " pagein requests\n", uvmexp.pageins);
1002 (void)printf("%9" PRIu64 " pageout requests\n", uvmexp.pdpageouts);
1003 (void)printf("%9" PRIu64 " pages swapped in\n", uvmexp.pgswapin);
1004 (void)printf("%9" PRIu64 " pages swapped out\n", uvmexp.pgswapout);
1005 (void)printf("%9" PRIu64 " forks total\n", uvmexp.forks);
1006 (void)printf("%9" PRIu64 " forks blocked parent\n", uvmexp.forks_ppwait);
1007 (void)printf("%9" PRIu64 " forks shared address space with parent\n",
1008 uvmexp.forks_sharevm);
1009 (void)printf("%9" PRIu64 " pagealloc desired color avail\n",
1010 uvmexp.colorhit);
1011 (void)printf("%9" PRIu64 " pagealloc desired color not avail\n",
1012 uvmexp.colormiss);
1013 (void)printf("%9" PRIu64 " pagealloc local cpu avail\n",
1014 uvmexp.cpuhit);
1015 (void)printf("%9" PRIu64 " pagealloc local cpu not avail\n",
1016 uvmexp.cpumiss);
1017
1018 (void)printf("%9" PRIu64 " faults with no memory\n", uvmexp.fltnoram);
1019 (void)printf("%9" PRIu64 " faults with no anons\n", uvmexp.fltnoanon);
1020 (void)printf("%9" PRIu64 " faults had to wait on pages\n", uvmexp.fltpgwait);
1021 (void)printf("%9" PRIu64 " faults found released page\n", uvmexp.fltpgrele);
1022 (void)printf("%9" PRIu64 " faults relock (%" PRIu64 " ok)\n", uvmexp.fltrelck,
1023 uvmexp.fltrelckok);
1024 (void)printf("%9" PRIu64 " anon page faults\n", uvmexp.fltanget);
1025 (void)printf("%9" PRIu64 " anon retry faults\n", uvmexp.fltanretry);
1026 (void)printf("%9" PRIu64 " amap copy faults\n", uvmexp.fltamcopy);
1027 (void)printf("%9" PRIu64 " neighbour anon page faults\n", uvmexp.fltnamap);
1028 (void)printf("%9" PRIu64 " neighbour object page faults\n", uvmexp.fltnomap);
1029 (void)printf("%9" PRIu64 " locked pager get faults\n", uvmexp.fltlget);
1030 (void)printf("%9" PRIu64 " unlocked pager get faults\n", uvmexp.fltget);
1031 (void)printf("%9" PRIu64 " anon faults\n", uvmexp.flt_anon);
1032 (void)printf("%9" PRIu64 " anon copy on write faults\n", uvmexp.flt_acow);
1033 (void)printf("%9" PRIu64 " object faults\n", uvmexp.flt_obj);
1034 (void)printf("%9" PRIu64 " promote copy faults\n", uvmexp.flt_prcopy);
1035 (void)printf("%9" PRIu64 " promote zero fill faults\n", uvmexp.flt_przero);
1036 (void)printf("%9" PRIu64 " faults upgraded lock\n",
1037 uvmexp.fltup);
1038 (void)printf("%9" PRIu64 " faults couldn't upgrade lock\n",
1039 uvmexp.fltnoup);
1040
1041 (void)printf("%9" PRIu64 " times daemon wokeup\n",uvmexp.pdwoke);
1042 (void)printf("%9" PRIu64 " revolutions of the clock hand\n", uvmexp.pdrevs);
1043 (void)printf("%9" PRIu64 " pages freed by daemon\n", uvmexp.pdfreed);
1044 (void)printf("%9" PRIu64 " pages scanned by daemon\n", uvmexp.pdscans);
1045 (void)printf("%9" PRIu64 " anonymous pages scanned by daemon\n",
1046 uvmexp.pdanscan);
1047 (void)printf("%9" PRIu64 " object pages scanned by daemon\n", uvmexp.pdobscan);
1048 (void)printf("%9" PRIu64 " pages reactivated\n", uvmexp.pdreact);
1049 (void)printf("%9" PRIu64 " pages found busy by daemon\n", uvmexp.pdbusy);
1050 (void)printf("%9" PRIu64 " total pending pageouts\n", uvmexp.pdpending);
1051 (void)printf("%9" PRIu64 " pages deactivated\n", uvmexp.pddeact);
1052 (void)printf("%9" PRIu64 " per-cpu stats synced\n", uvmexp.countsyncall);
1053 (void)printf("%9" PRIu64 " anon pages possibly dirty\n", uvmexp.anonunknown);
1054 (void)printf("%9" PRIu64 " anon pages dirty\n", uvmexp.anondirty);
1055 (void)printf("%9" PRIu64 " anon pages clean\n", uvmexp.anonclean);
1056 (void)printf("%9" PRIu64 " file pages possibly dirty\n", uvmexp.fileunknown);
1057 (void)printf("%9" PRIu64 " file pages dirty\n", uvmexp.filedirty);
1058 (void)printf("%9" PRIu64 " file pages clean\n", uvmexp.fileclean);
1059
1060 if (active_kernel) {
1061 ssize = sizeof(nch_stats);
1062 if (sysctlbyname("vfs.namecache_stats", &nch_stats, &ssize,
1063 NULL, 0)) {
1064 warn("vfs.namecache_stats failed");
1065 memset(&nch_stats, 0, sizeof(nch_stats));
1066 }
1067 } else {
1068 kread(namelist, X_NCHSTATS, &nch_stats, sizeof(nch_stats));
1069 }
1070
1071 nchtotal = nch_stats.ncs_goodhits + nch_stats.ncs_neghits +
1072 nch_stats.ncs_badhits + nch_stats.ncs_falsehits +
1073 nch_stats.ncs_miss + nch_stats.ncs_long;
1074 (void)printf("%9" PRIu64 " total name lookups\n", nchtotal);
1075 (void)printf("%9" PRIu64 " good hits\n", nch_stats.ncs_goodhits);
1076 (void)printf("%9" PRIu64 " negative hits\n", nch_stats.ncs_neghits);
1077 (void)printf("%9" PRIu64 " bad hits\n", nch_stats.ncs_badhits);
1078 (void)printf("%9" PRIu64 " false hits\n", nch_stats.ncs_falsehits);
1079 (void)printf("%9" PRIu64 " miss\n", nch_stats.ncs_miss);
1080 (void)printf("%9" PRIu64 " too long\n", nch_stats.ncs_long);
1081 (void)printf("%9" PRIu64 " pass2 hits\n", nch_stats.ncs_pass2);
1082 (void)printf("%9" PRIu64 " 2passes\n", nch_stats.ncs_2passes);
1083 (void)printf("%9" PRIu64 " reverse hits\n", nch_stats.ncs_revhits);
1084 (void)printf("%9" PRIu64 " reverse miss\n", nch_stats.ncs_revmiss);
1085 (void)printf("%9" PRIu64 " access denied\n", nch_stats.ncs_denied);
1086 (void)printf(
1087 "%9s cache hits (%d%% pos + %d%% neg) system %d%% per-process\n",
1088 "", PCT(nch_stats.ncs_goodhits, nchtotal),
1089 PCT(nch_stats.ncs_neghits, nchtotal),
1090 PCT(nch_stats.ncs_pass2, nchtotal));
1091 (void)printf("%9s deletions %d%%, falsehits %d%%, toolong %d%%\n", "",
1092 PCT(nch_stats.ncs_badhits, nchtotal),
1093 PCT(nch_stats.ncs_falsehits, nchtotal),
1094 PCT(nch_stats.ncs_long, nchtotal));
1095 }
1096
1097 void
1098 doforkst(void)
1099 {
1100 if (memf != NULL) {
1101 struct uvmexp uvmexp_kernel;
1102 kread(namelist, X_UVMEXP, &uvmexp_kernel, sizeof(uvmexp_kernel));
1103 #define COPY(field) uvmexp.field = uvmexp_kernel.field
1104 COPY(forks);
1105 COPY(forks_ppwait);
1106 COPY(forks_sharevm);
1107 #undef COPY
1108 } else {
1109 size_t size = sizeof(uvmexp);
1110 if (sysctl(uvmexp2_mib, __arraycount(uvmexp2_mib), &uvmexp,
1111 &size, NULL, 0) == -1)
1112 warn("sysctl vm.uvmexp2 failed");
1113 }
1114
1115 (void)printf("%" PRIu64 " forks total\n", uvmexp.forks);
1116 (void)printf("%" PRIu64 " forks blocked parent\n", uvmexp.forks_ppwait);
1117 (void)printf("%" PRIu64 " forks shared address space with parent\n",
1118 uvmexp.forks_sharevm);
1119 }
1120
1121 void
1122 drvstats(int *ovflwp)
1123 {
1124 size_t dn;
1125 double dtime;
1126 int ovflw = *ovflwp;
1127
1128 /* Calculate disk stat deltas. */
1129 cpuswap();
1130 drvswap();
1131 tkswap();
1132
1133 for (dn = 0; dn < ndrive; ++dn) {
1134 /* elapsed time for disk stats */
1135 dtime = cur.cp_etime;
1136 if (cur.timestamp[dn].tv_sec || cur.timestamp[dn].tv_usec) {
1137 dtime = (double)cur.timestamp[dn].tv_sec +
1138 ((double)cur.timestamp[dn].tv_usec / (double)1000000);
1139 }
1140
1141 if (!drv_select[dn])
1142 continue;
1143 PRWORD(ovflw, " %*.0f", 3, 1,
1144 (cur.rxfer[dn] + cur.wxfer[dn]) / dtime);
1145 }
1146 *ovflwp = ovflw;
1147 }
1148
1149 void
1150 cpucounters(struct cpu_counter *cc)
1151 {
1152 static struct cpu_info **cpu_infos;
1153 static int initialised;
1154 struct cpu_info **slot;
1155
1156 if (memf == NULL) {
1157 cc->nintr = uvmexp.intrs;
1158 cc->nsyscall = uvmexp.syscalls;
1159 cc->nswtch = uvmexp.swtch;
1160 cc->nfault = uvmexp.faults;
1161 cc->ntrap = uvmexp.traps;
1162 cc->nsoft = uvmexp.softs;
1163 return;
1164 }
1165
1166 if (!initialised) {
1167 kread(namelist, X_CPU_INFOS, &cpu_infos, sizeof(cpu_infos));
1168 initialised = 1;
1169 }
1170
1171 slot = cpu_infos;
1172
1173 memset(cc, 0, sizeof(*cc));
1174
1175 for (;;) {
1176 struct cpu_info tci, *ci = NULL;
1177
1178 deref_kptr(slot++, &ci, sizeof(ci), "CPU array trashed");
1179 if (!ci) {
1180 break;
1181 }
1182
1183 if ((size_t)kvm_read(kd, (u_long)ci, &tci, sizeof(tci))
1184 != sizeof(tci)) {
1185 warnx("Can't read cpu info from %p (%s)",
1186 ci, kvm_geterr(kd));
1187 memset(cc, 0, sizeof(*cc));
1188 return;
1189 }
1190 cc->nintr += tci.ci_data.cpu_nintr;
1191 cc->nsyscall += tci.ci_data.cpu_nsyscall;
1192 cc->nswtch = tci.ci_data.cpu_nswtch;
1193 cc->nfault = tci.ci_data.cpu_nfault;
1194 cc->ntrap = tci.ci_data.cpu_ntrap;
1195 cc->nsoft = tci.ci_data.cpu_nsoft;
1196 }
1197 }
1198
1199 void
1200 cpustats(int *ovflwp)
1201 {
1202 int state;
1203 double pcnt, total;
1204 double stat_us, stat_sy, stat_id;
1205 int ovflw = *ovflwp;
1206
1207 total = 0;
1208 for (state = 0; state < CPUSTATES; ++state)
1209 total += cur.cp_time[state];
1210 if (total)
1211 pcnt = 100 / total;
1212 else
1213 pcnt = 0;
1214 stat_us = (cur.cp_time[CP_USER] + cur.cp_time[CP_NICE]) * pcnt;
1215 stat_sy = (cur.cp_time[CP_SYS] + cur.cp_time[CP_INTR]) * pcnt;
1216 stat_id = cur.cp_time[CP_IDLE] * pcnt;
1217 PRWORD(ovflw, " %*.0f", ((stat_sy >= 100) ? 2 : 3), 1, stat_us);
1218 PRWORD(ovflw, " %*.0f", ((stat_us >= 100 || stat_id >= 100) ? 2 : 3), 1,
1219 stat_sy);
1220 PRWORD(ovflw, " %*.0f", 3, 1, stat_id);
1221 *ovflwp = ovflw;
1222 }
1223
1224 void
1225 dointr(int verbose)
1226 {
1227 unsigned long *intrcnt, *ointrcnt;
1228 unsigned long long inttotal, uptime;
1229 int nintr, inamlen;
1230 char *intrname, *ointrname;
1231
1232 if (memf == NULL) {
1233 doevcnt(verbose, EVCNT_TYPE_INTR);
1234 return;
1235 }
1236
1237 inttotal = 0;
1238 uptime = getuptime();
1239 nintr = intrnl[X_EINTRCNT].n_value - intrnl[X_INTRCNT].n_value;
1240 inamlen = intrnl[X_EINTRNAMES].n_value - intrnl[X_INTRNAMES].n_value;
1241 if (nintr != 0 && inamlen != 0) {
1242 (void)printf("%-34s %16s %8s\n", "interrupt", "total", "rate");
1243
1244 ointrcnt = intrcnt = malloc((size_t)nintr);
1245 ointrname = intrname = malloc((size_t)inamlen);
1246 if (intrcnt == NULL || intrname == NULL)
1247 errx(1, "%s", "");
1248 kread(intrnl, X_INTRCNT, intrcnt, (size_t)nintr);
1249 kread(intrnl, X_INTRNAMES, intrname, (size_t)inamlen);
1250 nintr /= sizeof(long);
1251 while (--nintr >= 0) {
1252 if (*intrcnt || verbose)
1253 (void)printf("%-34s %16llu %8llu\n", intrname,
1254 (unsigned long long)*intrcnt,
1255 (unsigned long long)
1256 (*intrcnt / uptime));
1257 intrname += strlen(intrname) + 1;
1258 inttotal += *intrcnt++;
1259 }
1260 free(ointrcnt);
1261 free(ointrname);
1262 }
1263
1264 doevcnt(verbose, EVCNT_TYPE_INTR);
1265 }
1266
1267 void
1268 doevcnt(int verbose, int type)
1269 {
1270 static const char * const evtypes [] = { "misc", "intr", "trap" };
1271 uint64_t counttotal, uptime;
1272 struct evcntlist allevents;
1273 struct evcnt evcnt, *evptr;
1274 size_t evlen_max, total_max, rate_max;
1275 char evgroup[EVCNT_STRING_MAX], evname[EVCNT_STRING_MAX];
1276
1277 counttotal = 0;
1278 uptime = getuptime();
1279
1280 if (memf == NULL) do {
1281 const int mib[4] = { CTL_KERN, KERN_EVCNT, type,
1282 verbose ? KERN_EVCNT_COUNT_ANY : KERN_EVCNT_COUNT_NONZERO };
1283 size_t buflen0, buflen = 0;
1284 void *buf0, *buf = NULL;
1285 const struct evcnt_sysctl *evs, *last_evs;
1286 for (;;) {
1287 size_t newlen;
1288 int error;
1289 if (buflen)
1290 buf = malloc(buflen);
1291 error = sysctl(mib, __arraycount(mib),
1292 buf, &newlen, NULL, 0);
1293 if (error) {
1294 err(1, "kern.evcnt");
1295 if (buf)
1296 free(buf);
1297 return;
1298 }
1299 if (newlen <= buflen) {
1300 buflen = newlen;
1301 break;
1302 }
1303 if (buf)
1304 free(buf);
1305 buflen = newlen;
1306 }
1307 buflen0 = buflen;
1308 evs = buf0 = buf;
1309 last_evs = (void *)((char *)buf + buflen);
1310 buflen /= sizeof(uint64_t);
1311 /* calc columns */
1312 evlen_max = 0;
1313 total_max = sizeof("total") - 1;
1314 rate_max = sizeof("rate") - 1;
1315 while (evs < last_evs
1316 && buflen >= sizeof(*evs)/sizeof(uint64_t)
1317 && buflen >= evs->ev_len) {
1318 char cbuf[64];
1319 size_t len;
1320 len = strlen(evs->ev_strings + evs->ev_grouplen + 1);
1321 len += evs->ev_grouplen + 1;
1322 if (evlen_max < len)
1323 evlen_max= len;
1324 len = snprintf(cbuf, sizeof(cbuf), "%"PRIu64,
1325 evs->ev_count);
1326 if (total_max < len)
1327 total_max = len;
1328 len = snprintf(cbuf, sizeof(cbuf), "%"PRIu64,
1329 evs->ev_count / uptime);
1330 if (rate_max < len)
1331 rate_max = len;
1332 buflen -= evs->ev_len;
1333 evs = (const void *)
1334 ((const uint64_t *)evs + evs->ev_len);
1335 }
1336
1337 (void)printf(type == EVCNT_TYPE_ANY ?
1338 "%-*s %*s %*s %s\n" :
1339 "%-*s %*s %*s\n",
1340 (int)evlen_max, "interrupt",
1341 (int)total_max, "total",
1342 (int)rate_max, "rate",
1343 "type");
1344
1345 buflen = buflen0;
1346 evs = buf0;
1347 last_evs = (void *)((char *)buf + buflen);
1348 buflen /= sizeof(uint64_t);
1349 while (evs < last_evs
1350 && buflen >= sizeof(*evs)/sizeof(uint64_t)
1351 && buflen >= evs->ev_len) {
1352 (void)printf(type == EVCNT_TYPE_ANY ?
1353 "%s %s%*s %*"PRIu64" %*"PRIu64" %s\n" :
1354 "%s %s%*s %*"PRIu64" %*"PRIu64"\n",
1355 evs->ev_strings,
1356 evs->ev_strings + evs->ev_grouplen + 1,
1357 (int)evlen_max - (evs->ev_grouplen + 1
1358 + evs->ev_namelen), "",
1359 (int)total_max, evs->ev_count,
1360 (int)rate_max, evs->ev_count / uptime,
1361 (evs->ev_type < __arraycount(evtypes) ?
1362 evtypes[evs->ev_type] : "?"));
1363 buflen -= evs->ev_len;
1364 counttotal += evs->ev_count;
1365 evs = (const void *)
1366 ((const uint64_t *)evs + evs->ev_len);
1367 }
1368 free(buf);
1369 if (type != EVCNT_TYPE_ANY)
1370 (void)printf("%-*s %*"PRIu64" %*"PRIu64"\n",
1371 (int)evlen_max, "Total",
1372 (int)total_max, counttotal,
1373 (int)rate_max, counttotal / uptime);
1374 return;
1375 } while (0);
1376
1377 if (type == EVCNT_TYPE_ANY)
1378 (void)printf("%-34s %16s %8s %s\n", "event", "total", "rate",
1379 "type");
1380
1381 kread(namelist, X_ALLEVENTS, &allevents, sizeof allevents);
1382 evptr = TAILQ_FIRST(&allevents);
1383 while (evptr) {
1384 deref_kptr(evptr, &evcnt, sizeof(evcnt), "event chain trashed");
1385
1386 evptr = TAILQ_NEXT(&evcnt, ev_list);
1387 if (evcnt.ev_count == 0 && !verbose)
1388 continue;
1389 if (type != EVCNT_TYPE_ANY && evcnt.ev_type != type)
1390 continue;
1391
1392 deref_kptr(evcnt.ev_group, evgroup,
1393 (size_t)evcnt.ev_grouplen + 1, "event chain trashed");
1394 deref_kptr(evcnt.ev_name, evname,
1395 (size_t)evcnt.ev_namelen + 1, "event chain trashed");
1396
1397 (void)printf(type == EVCNT_TYPE_ANY ?
1398 "%s %s%*s %16"PRIu64" %8"PRIu64" %s\n" :
1399 "%s %s%*s %16"PRIu64" %8"PRIu64"\n",
1400 evgroup, evname,
1401 34 - (evcnt.ev_grouplen + 1 + evcnt.ev_namelen), "",
1402 evcnt.ev_count,
1403 (evcnt.ev_count / uptime),
1404 (evcnt.ev_type < __arraycount(evtypes) ?
1405 evtypes[evcnt.ev_type] : "?"));
1406
1407 counttotal += evcnt.ev_count;
1408 }
1409 if (type != EVCNT_TYPE_ANY)
1410 (void)printf("%-34s %16"PRIu64" %8"PRIu64"\n",
1411 "Total", counttotal, counttotal / uptime);
1412 }
1413
1414 static void
1415 dopool_sysctl(int verbose, int wide)
1416 {
1417 uint64_t total, inuse, this_total, this_inuse;
1418 struct {
1419 uint64_t pt_nget;
1420 uint64_t pt_nfail;
1421 uint64_t pt_nput;
1422 uint64_t pt_nout;
1423 uint64_t pt_nitems;
1424 uint64_t pt_npagealloc;
1425 uint64_t pt_npagefree;
1426 uint64_t pt_npages;
1427 } pool_totals;
1428 size_t i, len;
1429 int name_len, ovflw;
1430 struct pool_sysctl *pp, *data;
1431 char maxp[32];
1432
1433 data = asysctlbyname("kern.pool", &len);
1434 if (data == NULL)
1435 err(1, "failed to read kern.pool");
1436
1437 memset(&pool_totals, 0, sizeof pool_totals);
1438 total = inuse = 0;
1439 len /= sizeof(*data);
1440
1441 (void)printf("Memory resource pool statistics\n");
1442 (void)printf(
1443 "%-*s%*s%*s%*s%*s%s%s%*s%*s%*s%s%*s%6s%*s%5s%s%s\n",
1444 wide ? 16 : 11, "Name",
1445 wide ? 7 : 5, "Size",
1446 wide ? 12 : 9, "Requests",
1447 wide ? 8 : 5, "Fail",
1448 wide ? 12 : 9, "Releases",
1449 wide ? " InUse" : "",
1450 wide ? " Avail" : "",
1451 wide ? 11 : 6, "Pgreq",
1452 wide ? 11 : 6, "Pgrel",
1453 wide ? 8 : 6, "Npage",
1454 wide ? " PageSz" : "",
1455 wide ? 7 : 6, "Hiwat",
1456 "Minpg",
1457 wide ? 7 : 6, "Maxpg",
1458 "Idle",
1459 wide ? " Flags" : "",
1460 wide ? " Util" : "");
1461
1462 name_len = MIN((int)sizeof(pp->pr_wchan), wide ? 16 : 11);
1463 for (i = 0; i < len; ++i) {
1464 pp = &data[i];
1465 if (pp->pr_nget == 0 && !verbose)
1466 continue;
1467 if (pp->pr_maxpages == UINT_MAX)
1468 (void)snprintf(maxp, sizeof(maxp), "inf");
1469 else
1470 (void)snprintf(maxp, sizeof(maxp), "%" PRIu64,
1471 pp->pr_maxpages);
1472 ovflw = 0;
1473 PRWORD(ovflw, "%-*s", name_len, 0, pp->pr_wchan);
1474 PRWORD(ovflw, " %*" PRIu64, wide ? 7 : 5, 1, pp->pr_size);
1475 PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pp->pr_nget);
1476 pool_totals.pt_nget += pp->pr_nget;
1477 PRWORD(ovflw, " %*" PRIu64, wide ? 8 : 5, 1, pp->pr_nfail);
1478 pool_totals.pt_nfail += pp->pr_nfail;
1479 PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pp->pr_nput);
1480 pool_totals.pt_nput += pp->pr_nput;
1481 if (wide) {
1482 PRWORD(ovflw, " %*" PRIu64, 9, 1, pp->pr_nout);
1483 pool_totals.pt_nout += pp->pr_nout;
1484 PRWORD(ovflw, " %*" PRIu64, 9, 1, pp->pr_nitems);
1485 pool_totals.pt_nitems += pp->pr_nitems;
1486 }
1487 PRWORD(ovflw, " %*" PRIu64, wide ? 11 : 6, 1, pp->pr_npagealloc);
1488 pool_totals.pt_npagealloc += pp->pr_npagealloc;
1489 PRWORD(ovflw, " %*" PRIu64, wide ? 11 : 6, 1, pp->pr_npagefree);
1490 pool_totals.pt_npagefree += pp->pr_npagefree;
1491 PRWORD(ovflw, " %*" PRIu64, wide ? 8 : 6, 1, pp->pr_npages);
1492 pool_totals.pt_npages += pp->pr_npages;
1493 if (wide)
1494 PRWORD(ovflw, " %*" PRIu64, 7, 1, pp->pr_pagesize);
1495 PRWORD(ovflw, " %*" PRIu64, wide ? 7 : 6, 1, pp->pr_hiwat);
1496 PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_minpages);
1497 PRWORD(ovflw, " %*s", wide ? 7 : 6, 1, maxp);
1498 PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_nidle);
1499 if (wide)
1500 PRWORD(ovflw, " 0x%0*" PRIx64, 6, 1,
1501 pp->pr_flags);
1502
1503 this_inuse = pp->pr_nout * pp->pr_size;
1504 this_total = pp->pr_npages * pp->pr_pagesize;
1505 if (pp->pr_flags & PR_RECURSIVE) {
1506 /*
1507 * Don't count in-use memory, since it's part
1508 * of another pool and will be accounted for
1509 * there.
1510 */
1511 total += (this_total - this_inuse);
1512 } else {
1513 inuse += this_inuse;
1514 total += this_total;
1515 }
1516 if (wide) {
1517 if (this_total == 0)
1518 (void)printf(" ---");
1519 else
1520 (void)printf(" %5.1f%%",
1521 (100.0 * this_inuse) / this_total);
1522 }
1523 (void)printf("\n");
1524 }
1525 ovflw = 0;
1526 PRWORD(ovflw, "%-*s", name_len, 0, "Totals");
1527 PRWORD(ovflw, " %*s", wide ? 7 : 5, 1, "");
1528 PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pool_totals.pt_nget);
1529 PRWORD(ovflw, " %*" PRIu64, wide ? 8 : 5, 1, pool_totals.pt_nfail);
1530 PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pool_totals.pt_nput);
1531 if (wide) {
1532 PRWORD(ovflw, " %*" PRIu64, 9, 1, pool_totals.pt_nout);
1533 PRWORD(ovflw, " %*" PRIu64, 9, 1, pool_totals.pt_nitems);
1534 }
1535 PRWORD(ovflw, " %*" PRIu64, wide ? 11 : 6, 1, pool_totals.pt_npagealloc);
1536 PRWORD(ovflw, " %*" PRIu64, wide ? 11 : 6, 1, pool_totals.pt_npagefree);
1537 PRWORD(ovflw, " %*" PRIu64, wide ? 8 : 6, 1, pool_totals.pt_npages);
1538 (void)printf("\n");
1539
1540 inuse /= KILO;
1541 total /= KILO;
1542 (void)printf(
1543 "\nIn use %" PRIu64 "K, "
1544 "total allocated %" PRIu64 "K; utilization %.1f%%\n",
1545 inuse, total, (100.0 * inuse) / total);
1546
1547 free(data);
1548 }
1549
1550 void
1551 dopool(int verbose, int wide)
1552 {
1553 int first, ovflw;
1554 void *addr;
1555 long total, inuse, this_total, this_inuse;
1556 struct {
1557 uint64_t pt_nget;
1558 uint64_t pt_nfail;
1559 uint64_t pt_nput;
1560 uint64_t pt_nout;
1561 uint64_t pt_nitems;
1562 uint64_t pt_npagealloc;
1563 uint64_t pt_npagefree;
1564 uint64_t pt_npages;
1565 } pool_totals;
1566 TAILQ_HEAD(,pool) pool_head;
1567 struct pool pool, *pp = &pool;
1568 struct pool_allocator pa;
1569 char maxp[32], name[32];
1570
1571 if (memf == NULL) {
1572 dopool_sysctl(verbose, wide);
1573 return;
1574 }
1575
1576 memset(&pool_totals, 0, sizeof pool_totals);
1577 kread(namelist, X_POOLHEAD, &pool_head, sizeof(pool_head));
1578 addr = TAILQ_FIRST(&pool_head);
1579
1580 total = inuse = 0;
1581
1582 for (first = 1; addr != NULL; addr = TAILQ_NEXT(pp, pr_poollist) ) {
1583 deref_kptr(addr, pp, sizeof(*pp), "pool chain trashed");
1584 deref_kptr(pp->pr_alloc, &pa, sizeof(pa),
1585 "pool allocator trashed");
1586 deref_kptr(pp->pr_wchan, name, sizeof(name),
1587 "pool wait channel trashed");
1588 name[sizeof(name)-1] = '\0';
1589
1590 if (first) {
1591 (void)printf("Memory resource pool statistics\n");
1592 (void)printf(
1593 "%-*s%*s%*s%*s%*s%s%s%*s%*s%*s%s%*s%6s%*s%5s%s%s\n",
1594 wide ? 16 : 11, "Name",
1595 wide ? 7 : 5, "Size",
1596 wide ? 12 : 9, "Requests",
1597 wide ? 8 : 5, "Fail",
1598 wide ? 12 : 9, "Releases",
1599 wide ? " InUse" : "",
1600 wide ? " Avail" : "",
1601 wide ? 11 : 6, "Pgreq",
1602 wide ? 11 : 6, "Pgrel",
1603 wide ? 8 : 6, "Npage",
1604 wide ? " PageSz" : "",
1605 wide ? 7 : 6, "Hiwat",
1606 "Minpg",
1607 wide ? 7 : 6, "Maxpg",
1608 "Idle",
1609 wide ? " Flags" : "",
1610 wide ? " Util" : "");
1611 first = 0;
1612 }
1613 if (pp->pr_nget == 0 && !verbose)
1614 continue;
1615 if (pp->pr_maxpages == UINT_MAX)
1616 (void)snprintf(maxp, sizeof(maxp), "inf");
1617 else
1618 (void)snprintf(maxp, sizeof(maxp), "%u",
1619 pp->pr_maxpages);
1620 ovflw = 0;
1621 PRWORD(ovflw, "%-*s", wide ? 16 : 11, 0, name);
1622 PRWORD(ovflw, " %*u", wide ? 7 : 5, 1, pp->pr_size);
1623 PRWORD(ovflw, " %*lu", wide ? 12 : 9, 1, pp->pr_nget);
1624 pool_totals.pt_nget += pp->pr_nget;
1625 PRWORD(ovflw, " %*lu", wide ? 8 : 5, 1, pp->pr_nfail);
1626 pool_totals.pt_nfail += pp->pr_nfail;
1627 PRWORD(ovflw, " %*lu", wide ? 12 : 9, 1, pp->pr_nput);
1628 pool_totals.pt_nput += pp->pr_nput;
1629 if (wide) {
1630 PRWORD(ovflw, " %*u", 9, 1, pp->pr_nout);
1631 pool_totals.pt_nout += pp->pr_nout;
1632 PRWORD(ovflw, " %*u", 9, 1, pp->pr_nitems);
1633 pool_totals.pt_nitems += pp->pr_nitems;
1634 }
1635 PRWORD(ovflw, " %*lu", wide ? 11 : 6, 1, pp->pr_npagealloc);
1636 pool_totals.pt_npagealloc += pp->pr_npagealloc;
1637 PRWORD(ovflw, " %*lu", wide ? 11 : 6, 1, pp->pr_npagefree);
1638 pool_totals.pt_npagefree += pp->pr_npagefree;
1639 PRWORD(ovflw, " %*u", wide ? 8 : 6, 1, pp->pr_npages);
1640 pool_totals.pt_npages += pp->pr_npages;
1641 if (wide)
1642 PRWORD(ovflw, " %*u", 7, 1, pa.pa_pagesz);
1643 PRWORD(ovflw, " %*u", wide ? 7 : 6, 1, pp->pr_hiwat);
1644 PRWORD(ovflw, " %*u", 6, 1, pp->pr_minpages);
1645 PRWORD(ovflw, " %*s", wide ? 7 : 6, 1, maxp);
1646 PRWORD(ovflw, " %*lu", 5, 1, pp->pr_nidle);
1647 if (wide)
1648 PRWORD(ovflw, " 0x%0*x", 6, 1,
1649 pp->pr_flags | pp->pr_roflags);
1650
1651 this_inuse = pp->pr_nout * pp->pr_size;
1652 this_total = pp->pr_npages * pa.pa_pagesz;
1653 if (pp->pr_roflags & PR_RECURSIVE) {
1654 /*
1655 * Don't count in-use memory, since it's part
1656 * of another pool and will be accounted for
1657 * there.
1658 */
1659 total += (this_total - this_inuse);
1660 } else {
1661 inuse += this_inuse;
1662 total += this_total;
1663 }
1664 if (wide) {
1665 if (this_total == 0)
1666 (void)printf(" ---");
1667 else
1668 (void)printf(" %5.1f%%",
1669 (100.0 * this_inuse) / this_total);
1670 }
1671 (void)printf("\n");
1672 }
1673 ovflw = 0;
1674 PRWORD(ovflw, "%-*s", wide ? 16 : 11, 0, "Totals");
1675 PRWORD(ovflw, " %*s", wide ? 7 : 5, 1, "");
1676 PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pool_totals.pt_nget);
1677 PRWORD(ovflw, " %*" PRIu64, wide ? 8 : 5, 1, pool_totals.pt_nfail);
1678 PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pool_totals.pt_nput);
1679 if (wide) {
1680 PRWORD(ovflw, " %*" PRIu64, 9, 1, pool_totals.pt_nout);
1681 PRWORD(ovflw, " %*" PRIu64, 9, 1, pool_totals.pt_nitems);
1682 }
1683 PRWORD(ovflw, " %*" PRIu64, wide ? 11 : 6, 1, pool_totals.pt_npagealloc);
1684 PRWORD(ovflw, " %*" PRIu64, wide ? 11 : 6, 1, pool_totals.pt_npagefree);
1685 PRWORD(ovflw, " %*" PRIu64, wide ? 8 : 6, 1, pool_totals.pt_npages);
1686 (void)printf("\n");
1687
1688 inuse /= KILO;
1689 total /= KILO;
1690 (void)printf(
1691 "\nIn use %ldK, total allocated %ldK; utilization %.1f%%\n",
1692 inuse, total, (100.0 * inuse) / total);
1693 }
1694
1695 static void
1696 dopoolcache_sysctl(int verbose)
1697 {
1698 struct pool_sysctl *data, *pp;
1699 size_t i, len;
1700 bool first = true;
1701 int ovflw;
1702 uint64_t tot;
1703 double p;
1704
1705 data = asysctlbyname("kern.pool", &len);
1706 if (data == NULL)
1707 err(1, "failed to read kern.pool");
1708 len /= sizeof(*data);
1709
1710 for (i = 0; i < len; ++i) {
1711 pp = &data[i];
1712 if (pp->pr_cache_meta_size == 0)
1713 continue;
1714
1715 if (pp->pr_cache_nmiss_global == 0 && !verbose)
1716 continue;
1717
1718 if (first) {
1719 (void)printf("Pool cache statistics.\n");
1720 (void)printf("%-*s%*s%*s%*s%*s%*s%*s%*s%*s%*s\n",
1721 12, "Name",
1722 6, "Spin",
1723 6, "GrpSz",
1724 5, "Full",
1725 5, "Emty",
1726 10, "PoolLayer",
1727 11, "CacheLayer",
1728 6, "Hit%",
1729 12, "CpuLayer",
1730 6, "Hit%"
1731 );
1732 first = false;
1733 }
1734
1735 ovflw = 0;
1736 PRWORD(ovflw, "%-*s", MIN((int)sizeof(pp->pr_wchan), 13), 1,
1737 pp->pr_wchan);
1738 PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_cache_ncontended);
1739 PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_cache_meta_size);
1740 PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_cache_nfull);
1741 PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_cache_nempty);
1742 PRWORD(ovflw, " %*" PRIu64, 10, 1, pp->pr_cache_nmiss_global);
1743
1744 tot = pp->pr_cache_nhit_global + pp->pr_cache_nmiss_global;
1745 p = pp->pr_cache_nhit_global * 100.0 / tot;
1746 PRWORD(ovflw, " %*" PRIu64, 11, 1, tot);
1747 PRWORD(ovflw, " %*.1f", 6, 1, p);
1748
1749 tot = pp->pr_cache_nhit_pcpu + pp->pr_cache_nmiss_pcpu;
1750 p = pp->pr_cache_nhit_pcpu * 100.0 / tot;
1751 PRWORD(ovflw, " %*" PRIu64, 12, 1, tot);
1752 PRWORD(ovflw, " %*.1f", 6, 1, p);
1753 printf("\n");
1754 }
1755 }
1756
1757 void
1758 dopoolcache(int verbose)
1759 {
1760 struct pool_cache pool_cache, *pc = &pool_cache;
1761 pool_cache_cpu_t cache_cpu, *cc = &cache_cpu;
1762 TAILQ_HEAD(,pool) pool_head;
1763 struct pool pool, *pp = &pool;
1764 char name[32];
1765 uint64_t cpuhit, cpumiss, pchit, pcmiss, contended, tot;
1766 uint32_t nfull;
1767 void *addr;
1768 int first, ovflw;
1769 size_t i;
1770 double p;
1771
1772 if (memf == NULL) {
1773 dopoolcache_sysctl(verbose);
1774 return;
1775 }
1776
1777 kread(namelist, X_POOLHEAD, &pool_head, sizeof(pool_head));
1778 addr = TAILQ_FIRST(&pool_head);
1779
1780 for (first = 1; addr != NULL; addr = TAILQ_NEXT(pp, pr_poollist) ) {
1781 deref_kptr(addr, pp, sizeof(*pp), "pool chain trashed");
1782 if (pp->pr_cache == NULL)
1783 continue;
1784 deref_kptr(pp->pr_wchan, name, sizeof(name),
1785 "pool wait channel trashed");
1786 deref_kptr(pp->pr_cache, pc, sizeof(*pc), "pool cache trashed");
1787 name[sizeof(name)-1] = '\0';
1788
1789 cpuhit = 0;
1790 cpumiss = 0;
1791 pcmiss = 0;
1792 contended = 0;
1793 nfull = 0;
1794 for (i = 0; i < __arraycount(pc->pc_cpus); i++) {
1795 if ((addr = pc->pc_cpus[i]) == NULL)
1796 continue;
1797 deref_kptr(addr, cc, sizeof(*cc),
1798 "pool cache cpu trashed");
1799 cpuhit += cc->cc_hits;
1800 cpumiss += cc->cc_misses;
1801 pcmiss += cc->cc_pcmisses;
1802 nfull += cc->cc_nfull;
1803 contended += cc->cc_contended;
1804 }
1805 pchit = cpumiss - pcmiss;
1806
1807 if (pcmiss == 0 && !verbose)
1808 continue;
1809
1810 if (first) {
1811 (void)printf("Pool cache statistics.\n");
1812 (void)printf("%-*s%*s%*s%*s%*s%*s%*s%*s%*s%*s\n",
1813 12, "Name",
1814 6, "Spin",
1815 6, "GrpSz",
1816 5, "Full",
1817 5, "Emty",
1818 10, "PoolLayer",
1819 11, "CacheLayer",
1820 6, "Hit%",
1821 12, "CpuLayer",
1822 6, "Hit%"
1823 );
1824 first = 0;
1825 }
1826
1827 ovflw = 0;
1828 PRWORD(ovflw, "%-*s", 13, 1, name);
1829 PRWORD(ovflw, " %*llu", 6, 1, (long long)contended);
1830 PRWORD(ovflw, " %*u", 6, 1, pc->pc_pcgsize);
1831 PRWORD(ovflw, " %*u", 5, 1, nfull);
1832 PRWORD(ovflw, " %*u", 5, 1, 0);
1833 PRWORD(ovflw, " %*llu", 10, 1, (long long)pcmiss);
1834
1835 tot = pchit + pcmiss;
1836 p = pchit * 100.0 / (tot);
1837 PRWORD(ovflw, " %*llu", 11, 1, (long long)tot);
1838 PRWORD(ovflw, " %*.1f", 6, 1, p);
1839
1840 tot = cpuhit + cpumiss;
1841 p = cpuhit * 100.0 / (tot);
1842 PRWORD(ovflw, " %*llu", 12, 1, (long long)tot);
1843 PRWORD(ovflw, " %*.1f", 6, 1, p);
1844 printf("\n");
1845 }
1846 }
1847
1848 enum hashtype { /* from <sys/systm.h> */
1849 HASH_LIST,
1850 HASH_SLIST,
1851 HASH_TAILQ,
1852 HASH_PSLIST
1853 };
1854
1855 struct uidinfo { /* XXX: no kernel header file */
1856 LIST_ENTRY(uidinfo) ui_hash;
1857 uid_t ui_uid;
1858 long ui_proccnt;
1859 };
1860
1861 struct kernel_hash {
1862 const char * description; /* description */
1863 int hashsize; /* nlist index for hash size */
1864 int hashtbl; /* nlist index for hash table */
1865 enum hashtype type; /* type of hash table */
1866 size_t offset; /* offset of {LIST,TAILQ}_NEXT */
1867 } khashes[] =
1868 {
1869 {
1870 "buffer hash",
1871 X_BUFHASH, X_BUFHASHTBL,
1872 HASH_LIST, offsetof(struct buf, b_hash)
1873 }, {
1874 "ipv4 address -> interface hash",
1875 X_IFADDRHASH, X_IFADDRHASHTBL,
1876 HASH_LIST, offsetof(struct in_ifaddr, ia_hash),
1877 }, {
1878 "user info (uid -> used processes) hash",
1879 X_UIHASH, X_UIHASHTBL,
1880 HASH_LIST, offsetof(struct uidinfo, ui_hash),
1881 }, {
1882 "vnode cache hash",
1883 X_VCACHEHASH, X_VCACHETBL,
1884 HASH_SLIST, offsetof(struct vnode_impl, vi_hash),
1885 }, {
1886 NULL, -1, -1, 0, 0,
1887 }
1888 };
1889
1890 void
1891 dohashstat(int verbose, int todo, const char *hashname)
1892 {
1893 LIST_HEAD(, generic) *hashtbl_list;
1894 SLIST_HEAD(, generic) *hashtbl_slist;
1895 TAILQ_HEAD(, generic) *hashtbl_tailq;
1896 struct kernel_hash *curhash;
1897 void *hashaddr, *hashbuf, *nhashbuf, *nextaddr;
1898 size_t elemsize, hashbufsize, thissize;
1899 u_long hashsize, i;
1900 int used, items, chain, maxchain;
1901
1902 if (memf == NULL) {
1903 dohashstat_sysctl(verbose, todo, hashname);
1904 return;
1905 }
1906
1907 hashbuf = NULL;
1908 hashbufsize = 0;
1909
1910 if (todo & HASHLIST) {
1911 (void)printf("Supported hashes:\n");
1912 for (curhash = khashes; curhash->description; curhash++) {
1913 if (hashnl[curhash->hashsize].n_value == 0 ||
1914 hashnl[curhash->hashtbl].n_value == 0)
1915 continue;
1916 (void)printf("\t%-16s%s\n",
1917 hashnl[curhash->hashsize].n_name + 1,
1918 curhash->description);
1919 }
1920 return;
1921 }
1922
1923 if (hashname != NULL) {
1924 for (curhash = khashes; curhash->description; curhash++) {
1925 if (strcmp(hashnl[curhash->hashsize].n_name + 1,
1926 hashname) == 0 &&
1927 hashnl[curhash->hashsize].n_value != 0 &&
1928 hashnl[curhash->hashtbl].n_value != 0)
1929 break;
1930 }
1931 if (curhash->description == NULL) {
1932 warnx("%s: no such hash", hashname);
1933 return;
1934 }
1935 }
1936
1937 (void)printf(
1938 "%-16s %8s %8s %8s %8s %8s %8s\n"
1939 "%-16s %8s %8s %8s %8s %8s %8s\n",
1940 "", "total", "used", "util", "num", "average", "maximum",
1941 "hash table", "buckets", "buckets", "%", "items", "chain",
1942 "chain");
1943
1944 for (curhash = khashes; curhash->description; curhash++) {
1945 if (hashnl[curhash->hashsize].n_value == 0 ||
1946 hashnl[curhash->hashtbl].n_value == 0)
1947 continue;
1948 if (hashname != NULL &&
1949 strcmp(hashnl[curhash->hashsize].n_name + 1, hashname))
1950 continue;
1951 switch (curhash->type) {
1952 case HASH_LIST:
1953 elemsize = sizeof(*hashtbl_list);
1954 break;
1955 case HASH_SLIST:
1956 elemsize = sizeof(*hashtbl_slist);
1957 break;
1958 case HASH_TAILQ:
1959 elemsize = sizeof(*hashtbl_tailq);
1960 break;
1961 default:
1962 /* shouldn't get here */
1963 continue;
1964 }
1965 deref_kptr((void *)hashnl[curhash->hashsize].n_value,
1966 &hashsize, sizeof(hashsize),
1967 hashnl[curhash->hashsize].n_name);
1968 hashsize++;
1969 deref_kptr((void *)hashnl[curhash->hashtbl].n_value,
1970 &hashaddr, sizeof(hashaddr),
1971 hashnl[curhash->hashtbl].n_name);
1972 if (verbose)
1973 (void)printf(
1974 "%s %lu, %s %p, offset %ld, elemsize %llu\n",
1975 hashnl[curhash->hashsize].n_name + 1, hashsize,
1976 hashnl[curhash->hashtbl].n_name + 1, hashaddr,
1977 (long)curhash->offset,
1978 (unsigned long long)elemsize);
1979 thissize = hashsize * elemsize;
1980 if (hashbuf == NULL || thissize > hashbufsize) {
1981 if ((nhashbuf = realloc(hashbuf, thissize)) == NULL)
1982 errx(1, "malloc hashbuf %llu",
1983 (unsigned long long)hashbufsize);
1984 hashbuf = nhashbuf;
1985 hashbufsize = thissize;
1986 }
1987 deref_kptr(hashaddr, hashbuf, thissize,
1988 hashnl[curhash->hashtbl].n_name);
1989 used = 0;
1990 items = maxchain = 0;
1991 if (curhash->type == HASH_LIST) {
1992 hashtbl_list = hashbuf;
1993 hashtbl_slist = NULL;
1994 hashtbl_tailq = NULL;
1995 } else if (curhash->type == HASH_SLIST) {
1996 hashtbl_list = NULL;
1997 hashtbl_slist = hashbuf;
1998 hashtbl_tailq = NULL;
1999 } else {
2000 hashtbl_list = NULL;
2001 hashtbl_slist = NULL;
2002 hashtbl_tailq = hashbuf;
2003 }
2004 for (i = 0; i < hashsize; i++) {
2005 if (curhash->type == HASH_LIST)
2006 nextaddr = LIST_FIRST(&hashtbl_list[i]);
2007 else if (curhash->type == HASH_SLIST)
2008 nextaddr = SLIST_FIRST(&hashtbl_slist[i]);
2009 else
2010 nextaddr = TAILQ_FIRST(&hashtbl_tailq[i]);
2011 if (nextaddr == NULL)
2012 continue;
2013 if (verbose)
2014 (void)printf("%5lu: %p\n", i, nextaddr);
2015 used++;
2016 chain = 0;
2017 do {
2018 chain++;
2019 deref_kptr((char *)nextaddr + curhash->offset,
2020 &nextaddr, sizeof(void *),
2021 "hash chain corrupted");
2022 if (verbose > 1)
2023 (void)printf("got nextaddr as %p\n",
2024 nextaddr);
2025 } while (nextaddr != NULL);
2026 items += chain;
2027 if (verbose && chain > 1)
2028 (void)printf("\tchain = %d\n", chain);
2029 if (chain > maxchain)
2030 maxchain = chain;
2031 }
2032 (void)printf("%-16s %8ld %8d %8.2f %8d %8.2f %8d\n",
2033 hashnl[curhash->hashsize].n_name + 1,
2034 hashsize, used, used * 100.0 / hashsize,
2035 items, used ? (double)items / used : 0.0, maxchain);
2036 }
2037 }
2038
2039 void
2040 dohashstat_sysctl(int verbose, int todo, const char *hashname)
2041 {
2042 struct hashstat_sysctl hash, *data, *hs;
2043 int mib[3];
2044 int error;
2045 size_t i, len, miblen;
2046
2047
2048 miblen = __arraycount(mib);
2049 error = sysctlnametomib("kern.hashstat", mib, &miblen);
2050 if (error)
2051 err(EXIT_FAILURE, "nametomib kern.hashstat failed");
2052 assert(miblen < 3);
2053
2054 if (todo & HASHLIST) {
2055 mib[miblen] = CTL_DESCRIBE;
2056 miblen++;
2057 };
2058
2059 if (hashname) {
2060 mib[miblen] = CTL_QUERY;
2061 miblen++;
2062 memset(&hash, 0, sizeof(hash));
2063 strlcpy(hash.hash_name, hashname, sizeof(hash.hash_name));
2064 len = sizeof(hash);
2065 error = sysctl(mib, miblen, &hash, &len, &hash, len);
2066 if (error == ENOENT) {
2067 err(1, "hash '%s' not found", hashname);
2068 return;
2069 } else if (error) {
2070 err(1, "sysctl kern.hashstat query failed");
2071 return;
2072 }
2073
2074 data = &hash;
2075 len = 1;
2076 } else {
2077 data = asysctl(mib, miblen, &len);
2078 if (data == NULL)
2079 err(1, "failed to read kern.hashstat");
2080 len /= sizeof(*data);
2081 }
2082
2083 if (todo & HASHLIST) {
2084 printf("Supported hashes:\n");
2085 for (i = 0, hs = data; i < len; i++, hs++) {
2086 printf("\t%-16s%s\n", hs->hash_name, hs->hash_desc);
2087 }
2088 } else {
2089 printf("%-16s %8s %8s %8s %8s %8s %8s\n"
2090 "%-16s %8s %8s %8s %8s %8s %8s\n",
2091 "", "total", "used", "util", "num", "average", "maximum",
2092 "hash table", "buckets", "buckets", "%", "items", "chain",
2093 "chain");
2094 for (i = 0, hs = data; i < len; i++, hs++) {
2095 printf("%-16s %8"PRId64" %8"PRId64" %8.2f %8"PRId64
2096 " %8.2f %8"PRId64"\n",
2097 hs->hash_name, hs->hash_size, hs->hash_used,
2098 hs->hash_used * 100.0 / hs->hash_size, hs->hash_items,
2099 hs->hash_used ? (double)hs->hash_items / hs->hash_used : 0.0,
2100 hs->hash_maxchain);
2101 }
2102 }
2103
2104 if (!hashname && (data != NULL))
2105 free(data);
2106 }
2107
2108 /*
2109 * kreadc like kread but returns 1 if successful, 0 otherwise
2110 */
2111 int
2112 kreadc(struct nlist *nl, int nlx, void *addr, size_t size)
2113 {
2114 const char *sym;
2115
2116 sym = nl[nlx].n_name;
2117 if (*sym == '_')
2118 ++sym;
2119 if (nl[nlx].n_type == 0 || nl[nlx].n_value == 0)
2120 return 0;
2121 deref_kptr((void *)nl[nlx].n_value, addr, size, sym);
2122 return 1;
2123 }
2124
2125 /*
2126 * kread reads something from the kernel, given its nlist index in namelist[].
2127 */
2128 void
2129 kread(struct nlist *nl, int nlx, void *addr, size_t size)
2130 {
2131 const char *sym;
2132
2133 sym = nl[nlx].n_name;
2134 if (*sym == '_')
2135 ++sym;
2136 if (nl[nlx].n_type == 0 || nl[nlx].n_value == 0)
2137 errx(1, "symbol %s not defined", sym);
2138 deref_kptr((void *)nl[nlx].n_value, addr, size, sym);
2139 }
2140
2141 /*
2142 * Dereference the kernel pointer `kptr' and fill in the local copy
2143 * pointed to by `ptr'. The storage space must be pre-allocated,
2144 * and the size of the copy passed in `len'.
2145 */
2146 void
2147 deref_kptr(const void *kptr, void *ptr, size_t len, const char *msg)
2148 {
2149
2150 if (*msg == '_')
2151 msg++;
2152 if ((size_t)kvm_read(kd, (u_long)kptr, (char *)ptr, len) != len)
2153 errx(1, "kptr %lx: %s: %s", (u_long)kptr, msg, kvm_geterr(kd));
2154 }
2155
2156 /*
2157 * Traverse the kernel history buffers, performing the requested action.
2158 *
2159 * Note, we assume that if we're not listing, we're dumping.
2160 */
2161 void
2162 hist_traverse(int todo, const char *histname)
2163 {
2164 struct kern_history_head histhead;
2165 struct kern_history hist, *histkva;
2166 char *name = NULL;
2167 size_t namelen = 0;
2168
2169 if (histnl[0].n_value == 0) {
2170 warnx("kernel history is not compiled into the kernel.");
2171 return;
2172 }
2173
2174 deref_kptr((void *)histnl[X_KERN_HISTORIES].n_value, &histhead,
2175 sizeof(histhead), histnl[X_KERN_HISTORIES].n_name);
2176
2177 if (histhead.lh_first == NULL) {
2178 warnx("No active kernel history logs.");
2179 return;
2180 }
2181
2182 if (todo & HISTLIST)
2183 (void)printf("Active kernel histories:");
2184
2185 for (histkva = LIST_FIRST(&histhead); histkva != NULL;
2186 histkva = LIST_NEXT(&hist, list)) {
2187 deref_kptr(histkva, &hist, sizeof(hist), "histkva");
2188 if (name == NULL || hist.namelen > namelen) {
2189 if (name != NULL)
2190 free(name);
2191 namelen = hist.namelen;
2192 if ((name = malloc(namelen + 1)) == NULL)
2193 err(1, "malloc history name");
2194 }
2195
2196 deref_kptr(hist.name, name, namelen, "history name");
2197 name[namelen] = '\0';
2198 if (todo & HISTLIST)
2199 (void)printf(" %s", name);
2200 else {
2201 /*
2202 * If we're dumping all histories, do it, else
2203 * check to see if this is the one we want.
2204 */
2205 if (histname == NULL || strcmp(histname, name) == 0) {
2206 if (histname == NULL)
2207 (void)printf(
2208 "\nkernel history `%s':\n", name);
2209 hist_dodump(&hist);
2210 }
2211 }
2212 }
2213
2214 if (todo & HISTLIST)
2215 (void)putchar('\n');
2216
2217 if (name != NULL)
2218 free(name);
2219 }
2220
2221 /*
2222 * Actually dump the history buffer at the specified KVA.
2223 */
2224 void
2225 hist_dodump(struct kern_history *histp)
2226 {
2227 struct kern_history_ent *histents, *e;
2228 struct timeval tv;
2229 size_t histsize;
2230 char *fmt = NULL, *fn = NULL;
2231 size_t fmtlen = 0, fnlen = 0;
2232 unsigned i;
2233
2234 histsize = sizeof(struct kern_history_ent) * histp->n;
2235
2236 if ((histents = malloc(histsize)) == NULL)
2237 err(1, "malloc history entries");
2238
2239 (void)memset(histents, 0, histsize);
2240
2241 (void)printf("%"PRIu32" entries, next is %"PRIu32"\n",
2242 histp->n, histp->f);
2243
2244 deref_kptr(histp->e, histents, histsize, "history entries");
2245 i = histp->f;
2246 do {
2247 e = &histents[i];
2248 if (e->fmt != NULL) {
2249 if (fmt == NULL || e->fmtlen > fmtlen) {
2250 free(fmt);
2251 fmtlen = e->fmtlen;
2252 if ((fmt = malloc(fmtlen + 1)) == NULL)
2253 err(1, "malloc printf format");
2254 }
2255 if (fn == NULL || e->fnlen > fnlen) {
2256 free(fn);
2257 fnlen = e->fnlen;
2258 if ((fn = malloc(fnlen + 1)) == NULL)
2259 err(1, "malloc function name");
2260 }
2261
2262 deref_kptr(e->fmt, fmt, fmtlen, "printf format");
2263 fmt[fmtlen] = '\0';
2264 for (unsigned z = 0; z < fmtlen - 1; z++) {
2265 if (fmt[z] == '%' && fmt[z+1] == 's')
2266 fmt[z+1] = 'p';
2267 }
2268
2269 deref_kptr(e->fn, fn, fnlen, "function name");
2270 fn[fnlen] = '\0';
2271
2272 bintime2timeval(&e->bt, &tv);
2273 (void)printf("%06ld.%06ld ", (long int)tv.tv_sec,
2274 (long int)tv.tv_usec);
2275 (void)printf("%s#%" PRId32 "@%" PRId32 "d: ",
2276 fn, e->call, e->cpunum);
2277 (void)printf(fmt, e->v[0], e->v[1], e->v[2], e->v[3]);
2278 (void)putchar('\n');
2279 }
2280 i = (i + 1) % histp->n;
2281 } while (i != histp->f);
2282
2283 free(histents);
2284 free(fmt);
2285 free(fn);
2286 }
2287
2288 void
2289 hist_traverse_sysctl(int todo, const char *histname)
2290 {
2291 int error;
2292 int mib[4];
2293 unsigned int i;
2294 size_t len, miblen;
2295 struct sysctlnode query, histnode[32];
2296
2297 /* retrieve names of available histories */
2298 miblen = __arraycount(mib);
2299 error = sysctlnametomib("kern.hist", mib, &miblen);
2300 if (error != 0) {
2301 if (errno == ENOENT) {
2302 warnx("kernel history is not compiled into the kernel.");
2303 return;
2304 } else
2305 err(EXIT_FAILURE, "nametomib kern.hist failed");
2306 }
2307
2308 /* get the list of nodenames below kern.hist */
2309 mib[2] = CTL_QUERY;
2310 memset(&query, 0, sizeof(query));
2311 query.sysctl_flags = SYSCTL_VERSION;
2312 len = sizeof(histnode);
2313 error = sysctl(mib, 3, &histnode[0], &len, &query, sizeof(query));
2314 if (error != 0) {
2315 err(1, "query failed");
2316 return;
2317 }
2318 if (len == 0) {
2319 warnx("No active kernel history logs.");
2320 return;
2321 }
2322
2323 len = len / sizeof(histnode[0]); /* get # of entries returned */
2324
2325 if (todo & HISTLIST)
2326 (void)printf("Active kernel histories:");
2327
2328 for (i = 0; i < len; i++) {
2329 if (todo & HISTLIST)
2330 (void)printf(" %s", histnode[i].sysctl_name);
2331 else {
2332 /*
2333 * If we're dumping all histories, do it, else
2334 * check to see if this is the one we want.
2335 */
2336 if (histname == NULL ||
2337 strcmp(histname, histnode[i].sysctl_name) == 0) {
2338 if (histname == NULL)
2339 (void)printf(
2340 "\nkernel history `%s':\n",
2341 histnode[i].sysctl_name);
2342 mib[2] = histnode[i].sysctl_num;
2343 mib[3] = CTL_EOL;
2344 hist_dodump_sysctl(mib, 4);
2345 }
2346 }
2347 }
2348
2349 if (todo & HISTLIST)
2350 (void)putchar('\n');
2351 else if (mib[2] == CTL_QUERY)
2352 warnx("history %s not found", histname);
2353 }
2354
2355 /*
2356 * Actually dump the history buffer at the specified KVA.
2357 */
2358 void
2359 hist_dodump_sysctl(int mib[], unsigned int miblen)
2360 {
2361 struct sysctl_history *hist;
2362 struct timeval tv;
2363 struct sysctl_history_event *e;
2364 size_t histsize;
2365 char *strp;
2366 unsigned i;
2367 char *fmt = NULL, *fn = NULL;
2368
2369 hist = NULL;
2370 histsize = 0;
2371 do {
2372 errno = 0;
2373 if (sysctl(mib, miblen, hist, &histsize, NULL, 0) == 0)
2374 break;
2375 if (errno != ENOMEM)
2376 break;
2377 if ((hist = realloc(hist, histsize)) == NULL)
2378 errx(1, "realloc history buffer");
2379 } while (errno == ENOMEM);
2380 if (errno != 0)
2381 err(1, "sysctl failed");
2382
2383 strp = (char *)(&hist->sh_events[hist->sh_numentries]);
2384
2385 (void)printf("%"PRIu32" entries, next is %"PRIu32"\n",
2386 hist->sh_numentries,
2387 hist->sh_nextfree);
2388
2389 i = hist->sh_nextfree;
2390
2391 do {
2392 e = &hist->sh_events[i];
2393 if (e->she_fmtoffset != 0) {
2394 fmt = &strp[e->she_fmtoffset];
2395 size_t fmtlen = strlen(fmt);
2396 for (unsigned z = 0; z < fmtlen - 1; z++) {
2397 if (fmt[z] == '%' && fmt[z+1] == 's')
2398 fmt[z+1] = 'p';
2399 }
2400 fn = &strp[e->she_funcoffset];
2401 bintime2timeval(&e->she_bintime, &tv);
2402 (void)printf("%06ld.%06ld %s#%"PRIu32"@%"PRIu32": ",
2403 (long int)tv.tv_sec, (long int)tv.tv_usec,
2404 fn, e->she_callnumber, e->she_cpunum);
2405 (void)printf(fmt, e->she_values[0], e->she_values[1],
2406 e->she_values[2], e->she_values[3]);
2407 (void)putchar('\n');
2408 }
2409 i = (i + 1) % hist->sh_numentries;
2410 } while (i != hist->sh_nextfree);
2411
2412 free(hist);
2413 }
2414
2415 static void
2416 usage(void)
2417 {
2418
2419 (void)fprintf(stderr,
2420 "usage: %s [-CefHiLlmstUvW] [-c count] [-h hashname] [-M core] [-N system]\n"
2421 "\t\t[-u histname] [-w wait] [disks]\n", getprogname());
2422 exit(1);
2423 }
2424