vmstat.c revision 1.221 1 1.221 mrg /* $NetBSD: vmstat.c,v 1.221 2017/12/02 08:15:43 mrg Exp $ */
2 1.45 thorpej
3 1.45 thorpej /*-
4 1.154 ad * Copyright (c) 1998, 2000, 2001, 2007 The NetBSD Foundation, Inc.
5 1.45 thorpej * All rights reserved.
6 1.45 thorpej *
7 1.87 lukem * This code is derived from software contributed to The NetBSD Foundation by:
8 1.87 lukem * - Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.87 lukem * NASA Ames Research Center.
10 1.87 lukem * - Simon Burge and Luke Mewburn of Wasabi Systems, Inc.
11 1.45 thorpej *
12 1.45 thorpej * Redistribution and use in source and binary forms, with or without
13 1.45 thorpej * modification, are permitted provided that the following conditions
14 1.45 thorpej * are met:
15 1.45 thorpej * 1. Redistributions of source code must retain the above copyright
16 1.45 thorpej * notice, this list of conditions and the following disclaimer.
17 1.45 thorpej * 2. Redistributions in binary form must reproduce the above copyright
18 1.45 thorpej * notice, this list of conditions and the following disclaimer in the
19 1.45 thorpej * documentation and/or other materials provided with the distribution.
20 1.45 thorpej *
21 1.45 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
22 1.45 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
23 1.45 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
24 1.45 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
25 1.45 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
26 1.45 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
27 1.45 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
28 1.45 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
29 1.45 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 1.45 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
31 1.45 thorpej * POSSIBILITY OF SUCH DAMAGE.
32 1.45 thorpej */
33 1.21 cgd
34 1.1 cgd /*
35 1.13 cgd * Copyright (c) 1980, 1986, 1991, 1993
36 1.13 cgd * The Regents of the University of California. All rights reserved.
37 1.1 cgd *
38 1.1 cgd * Redistribution and use in source and binary forms, with or without
39 1.1 cgd * modification, are permitted provided that the following conditions
40 1.1 cgd * are met:
41 1.1 cgd * 1. Redistributions of source code must retain the above copyright
42 1.1 cgd * notice, this list of conditions and the following disclaimer.
43 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
44 1.1 cgd * notice, this list of conditions and the following disclaimer in the
45 1.1 cgd * documentation and/or other materials provided with the distribution.
46 1.117 agc * 3. Neither the name of the University nor the names of its contributors
47 1.1 cgd * may be used to endorse or promote products derived from this software
48 1.1 cgd * without specific prior written permission.
49 1.1 cgd *
50 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
51 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
52 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
53 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
54 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
55 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
56 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
57 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
58 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
59 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
60 1.1 cgd * SUCH DAMAGE.
61 1.1 cgd */
62 1.1 cgd
63 1.38 mrg #include <sys/cdefs.h>
64 1.1 cgd #ifndef lint
65 1.161 lukem __COPYRIGHT("@(#) Copyright (c) 1980, 1986, 1991, 1993\
66 1.161 lukem The Regents of the University of California. All rights reserved.");
67 1.1 cgd #endif /* not lint */
68 1.1 cgd
69 1.1 cgd #ifndef lint
70 1.21 cgd #if 0
71 1.37 mrg static char sccsid[] = "@(#)vmstat.c 8.2 (Berkeley) 3/1/95";
72 1.21 cgd #else
73 1.221 mrg __RCSID("$NetBSD: vmstat.c,v 1.221 2017/12/02 08:15:43 mrg Exp $");
74 1.21 cgd #endif
75 1.1 cgd #endif /* not lint */
76 1.57 thorpej
77 1.57 thorpej #define __POOL_EXPOSE
78 1.1 cgd
79 1.1 cgd #include <sys/param.h>
80 1.174 christos #include <sys/types.h>
81 1.87 lukem #include <sys/mount.h>
82 1.87 lukem #include <sys/uio.h>
83 1.87 lukem
84 1.87 lukem #include <sys/buf.h>
85 1.146 yamt #include <sys/evcnt.h>
86 1.87 lukem #include <sys/ioctl.h>
87 1.87 lukem #include <sys/malloc.h>
88 1.109 thorpej #include <sys/mallocvar.h>
89 1.1 cgd #include <sys/namei.h>
90 1.87 lukem #include <sys/pool.h>
91 1.87 lukem #include <sys/proc.h>
92 1.64 perry #include <sys/sched.h>
93 1.87 lukem #include <sys/socket.h>
94 1.13 cgd #include <sys/sysctl.h>
95 1.87 lukem #include <sys/time.h>
96 1.171 christos #include <sys/queue.h>
97 1.181 mrg #include <sys/kernhist.h>
98 1.67 mrg
99 1.67 mrg #include <uvm/uvm_extern.h>
100 1.67 mrg #include <uvm/uvm_stat.h>
101 1.67 mrg
102 1.87 lukem #include <net/if.h>
103 1.87 lukem #include <netinet/in.h>
104 1.87 lukem #include <netinet/in_var.h>
105 1.87 lukem
106 1.87 lukem #include <ufs/ufs/inode.h>
107 1.87 lukem
108 1.87 lukem #include <nfs/rpcv2.h>
109 1.87 lukem #include <nfs/nfsproto.h>
110 1.87 lukem #include <nfs/nfsnode.h>
111 1.87 lukem
112 1.87 lukem #include <ctype.h>
113 1.45 thorpej #include <err.h>
114 1.87 lukem #include <errno.h>
115 1.55 kleink #include <fcntl.h>
116 1.87 lukem #include <kvm.h>
117 1.87 lukem #include <limits.h>
118 1.1 cgd #include <nlist.h>
119 1.87 lukem #undef n_hash
120 1.87 lukem #include <paths.h>
121 1.22 jtc #include <signal.h>
122 1.1 cgd #include <stdio.h>
123 1.87 lukem #include <stddef.h>
124 1.1 cgd #include <stdlib.h>
125 1.1 cgd #include <string.h>
126 1.87 lukem #include <time.h>
127 1.87 lukem #include <unistd.h>
128 1.104 mrg #include <util.h>
129 1.87 lukem
130 1.140 blymn #include "drvstats.h"
131 1.45 thorpej
132 1.90 lukem /*
133 1.174 christos * All this mess will go away once everything is converted.
134 1.174 christos */
135 1.174 christos #ifdef __HAVE_CPU_DATA_FIRST
136 1.175 christos
137 1.175 christos # include <sys/cpu_data.h>
138 1.175 christos struct cpu_info {
139 1.174 christos struct cpu_data ci_data;
140 1.174 christos };
141 1.174 christos #else
142 1.190 rmind # include <sys/cpu.h>
143 1.190 rmind #endif
144 1.175 christos
145 1.174 christos /*
146 1.90 lukem * General namelist
147 1.90 lukem */
148 1.87 lukem struct nlist namelist[] =
149 1.87 lukem {
150 1.65 itojun #define X_BOOTTIME 0
151 1.153 christos { .n_name = "_boottime" },
152 1.75 enami #define X_HZ 1
153 1.153 christos { .n_name = "_hz" },
154 1.75 enami #define X_STATHZ 2
155 1.153 christos { .n_name = "_stathz" },
156 1.75 enami #define X_NCHSTATS 3
157 1.153 christos { .n_name = "_nchstats" },
158 1.188 para #define X_ALLEVENTS 4
159 1.153 christos { .n_name = "_allevents" },
160 1.188 para #define X_POOLHEAD 5
161 1.153 christos { .n_name = "_pool_head" },
162 1.188 para #define X_UVMEXP 6
163 1.153 christos { .n_name = "_uvmexp" },
164 1.188 para #define X_TIME_SECOND 7
165 1.153 christos { .n_name = "_time_second" },
166 1.188 para #define X_TIME 8
167 1.153 christos { .n_name = "_time" },
168 1.190 rmind #define X_CPU_INFOS 9
169 1.190 rmind { .n_name = "_cpu_infos" },
170 1.188 para #define X_NL_SIZE 10
171 1.153 christos { .n_name = NULL },
172 1.90 lukem };
173 1.90 lukem
174 1.90 lukem /*
175 1.133 chs * Namelist for pre-evcnt interrupt counters.
176 1.133 chs */
177 1.133 chs struct nlist intrnl[] =
178 1.133 chs {
179 1.133 chs #define X_INTRNAMES 0
180 1.153 christos { .n_name = "_intrnames" },
181 1.133 chs #define X_EINTRNAMES 1
182 1.153 christos { .n_name = "_eintrnames" },
183 1.133 chs #define X_INTRCNT 2
184 1.153 christos { .n_name = "_intrcnt" },
185 1.133 chs #define X_EINTRCNT 3
186 1.153 christos { .n_name = "_eintrcnt" },
187 1.133 chs #define X_INTRNL_SIZE 4
188 1.153 christos { .n_name = NULL },
189 1.133 chs };
190 1.133 chs
191 1.133 chs
192 1.133 chs /*
193 1.90 lukem * Namelist for hash statistics
194 1.90 lukem */
195 1.90 lukem struct nlist hashnl[] =
196 1.90 lukem {
197 1.90 lukem #define X_NFSNODE 0
198 1.153 christos { .n_name = "_nfsnodehash" },
199 1.90 lukem #define X_NFSNODETBL 1
200 1.153 christos { .n_name = "_nfsnodehashtbl" },
201 1.90 lukem #define X_IHASH 2
202 1.153 christos { .n_name = "_ihash" },
203 1.90 lukem #define X_IHASHTBL 3
204 1.153 christos { .n_name = "_ihashtbl" },
205 1.90 lukem #define X_BUFHASH 4
206 1.153 christos { .n_name = "_bufhash" },
207 1.90 lukem #define X_BUFHASHTBL 5
208 1.153 christos { .n_name = "_bufhashtbl" },
209 1.122 junyoung #define X_UIHASH 6
210 1.153 christos { .n_name = "_uihash" },
211 1.122 junyoung #define X_UIHASHTBL 7
212 1.153 christos { .n_name = "_uihashtbl" },
213 1.122 junyoung #define X_IFADDRHASH 8
214 1.153 christos { .n_name = "_in_ifaddrhash" },
215 1.122 junyoung #define X_IFADDRHASHTBL 9
216 1.153 christos { .n_name = "_in_ifaddrhashtbl" },
217 1.122 junyoung #define X_NCHASH 10
218 1.153 christos { .n_name = "_nchash" },
219 1.122 junyoung #define X_NCHASHTBL 11
220 1.153 christos { .n_name = "_nchashtbl" },
221 1.122 junyoung #define X_NCVHASH 12
222 1.153 christos { .n_name = "_ncvhash" },
223 1.122 junyoung #define X_NCVHASHTBL 13
224 1.153 christos { .n_name = "_ncvhashtbl" },
225 1.122 junyoung #define X_HASHNL_SIZE 14 /* must be last */
226 1.153 christos { .n_name = NULL },
227 1.90 lukem };
228 1.87 lukem
229 1.90 lukem /*
230 1.181 mrg * Namelist for kernel histories
231 1.90 lukem */
232 1.90 lukem struct nlist histnl[] =
233 1.90 lukem {
234 1.181 mrg { .n_name = "_kern_histories" },
235 1.181 mrg #define X_KERN_HISTORIES 0
236 1.153 christos { .n_name = NULL },
237 1.1 cgd };
238 1.1 cgd
239 1.87 lukem
240 1.205 skrll #define KILO 1024
241 1.90 lukem
242 1.171 christos struct cpu_counter {
243 1.171 christos uint64_t nintr;
244 1.171 christos uint64_t nsyscall;
245 1.171 christos uint64_t nswtch;
246 1.171 christos uint64_t nfault;
247 1.171 christos uint64_t ntrap;
248 1.171 christos uint64_t nsoft;
249 1.171 christos } cpucounter, ocpucounter;
250 1.171 christos
251 1.196 joerg struct uvmexp_sysctl uvmexp, ouvmexp;
252 1.73 simonb int ndrives;
253 1.1 cgd
254 1.1 cgd int winlines = 20;
255 1.1 cgd
256 1.13 cgd kvm_t *kd;
257 1.13 cgd
258 1.174 christos
259 1.185 christos #define FORKSTAT 0x001
260 1.185 christos #define INTRSTAT 0x002
261 1.185 christos #define MEMSTAT 0x004
262 1.185 christos #define SUMSTAT 0x008
263 1.185 christos #define EVCNTSTAT 0x010
264 1.185 christos #define VMSTAT 0x020
265 1.185 christos #define HISTLIST 0x040
266 1.185 christos #define HISTDUMP 0x080
267 1.185 christos #define HASHSTAT 0x100
268 1.185 christos #define HASHLIST 0x200
269 1.185 christos #define VMTOTAL 0x400
270 1.185 christos #define POOLCACHESTAT 0x800
271 1.1 cgd
272 1.151 yamt /*
273 1.151 yamt * Print single word. `ovflow' is number of characters didn't fit
274 1.151 yamt * on the last word. `fmt' is a format string to print this word.
275 1.151 yamt * It must contain asterisk for field width. `width' is a width
276 1.151 yamt * occupied by this word. `fixed' is a number of constant chars in
277 1.151 yamt * `fmt'. `val' is a value to be printed using format string `fmt'.
278 1.151 yamt */
279 1.151 yamt #define PRWORD(ovflw, fmt, width, fixed, val) do { \
280 1.151 yamt (ovflw) += printf((fmt), \
281 1.151 yamt (width) - (fixed) - (ovflw) > 0 ? \
282 1.151 yamt (width) - (fixed) - (ovflw) : 0, \
283 1.151 yamt (val)) - (width); \
284 1.151 yamt if ((ovflw) < 0) \
285 1.151 yamt (ovflw) = 0; \
286 1.151 yamt } while (/* CONSTCOND */0)
287 1.151 yamt
288 1.151 yamt void cpustats(int *);
289 1.171 christos void cpucounters(struct cpu_counter *);
290 1.87 lukem void deref_kptr(const void *, void *, size_t, const char *);
291 1.151 yamt void drvstats(int *);
292 1.176 matt void doevcnt(int verbose, int type);
293 1.88 lukem void dohashstat(int, int, const char *);
294 1.73 simonb void dointr(int verbose);
295 1.126 simonb void dopool(int, int);
296 1.182 yamt void dopoolcache(int);
297 1.73 simonb void dosum(void);
298 1.103 mycroft void dovmstat(struct timespec *, int);
299 1.130 he void print_total_hdr(void);
300 1.130 he void dovmtotal(struct timespec *, int);
301 1.133 chs void kread(struct nlist *, int, void *, size_t);
302 1.147 kardel int kreadc(struct nlist *, int, void *, size_t);
303 1.73 simonb void needhdr(int);
304 1.176 matt void getnlist(int);
305 1.73 simonb long getuptime(void);
306 1.73 simonb void printhdr(void);
307 1.203 nakayama long pct(u_long, u_long);
308 1.183 joerg __dead static void usage(void);
309 1.73 simonb void doforkst(void);
310 1.73 simonb
311 1.73 simonb void hist_traverse(int, const char *);
312 1.210 pgoyette void hist_dodump(struct kern_history *);
313 1.210 pgoyette void hist_traverse_sysctl(int, const char *);
314 1.210 pgoyette void hist_dodump_sysctl(int[], unsigned int);
315 1.73 simonb
316 1.73 simonb char **choosedrives(char **);
317 1.38 mrg
318 1.29 thorpej /* Namelist and memory file names. */
319 1.29 thorpej char *nlistf, *memf;
320 1.29 thorpej
321 1.47 mrg /* allow old usage [vmstat 1] */
322 1.47 mrg #define BACKWARD_COMPATIBILITY
323 1.47 mrg
324 1.197 joerg static const int clockrate_mib[] = { CTL_KERN, KERN_CLOCKRATE };
325 1.170 christos static const int vmmeter_mib[] = { CTL_VM, VM_METER };
326 1.170 christos static const int uvmexp2_mib[] = { CTL_VM, VM_UVMEXP2 };
327 1.176 matt static const int boottime_mib[] = { CTL_KERN, KERN_BOOTTIME };
328 1.176 matt static char kvm_errbuf[_POSIX2_LINE_MAX];
329 1.170 christos
330 1.38 mrg int
331 1.75 enami main(int argc, char *argv[])
332 1.1 cgd {
333 1.126 simonb int c, todo, verbose, wide;
334 1.103 mycroft struct timespec interval;
335 1.1 cgd int reps;
336 1.75 enami gid_t egid = getegid();
337 1.88 lukem const char *histname, *hashname;
338 1.1 cgd
339 1.88 lukem histname = hashname = NULL;
340 1.48 mrg (void)setegid(getgid());
341 1.13 cgd memf = nlistf = NULL;
342 1.126 simonb reps = todo = verbose = wide = 0;
343 1.103 mycroft interval.tv_sec = 0;
344 1.103 mycroft interval.tv_nsec = 0;
345 1.154 ad while ((c = getopt(argc, argv, "Cc:efh:HilLM:mN:stu:UvWw:")) != -1) {
346 1.1 cgd switch (c) {
347 1.1 cgd case 'c':
348 1.1 cgd reps = atoi(optarg);
349 1.1 cgd break;
350 1.154 ad case 'C':
351 1.154 ad todo |= POOLCACHESTAT;
352 1.154 ad break;
353 1.66 cgd case 'e':
354 1.66 cgd todo |= EVCNTSTAT;
355 1.66 cgd break;
356 1.1 cgd case 'f':
357 1.1 cgd todo |= FORKSTAT;
358 1.1 cgd break;
359 1.45 thorpej case 'h':
360 1.88 lukem hashname = optarg;
361 1.88 lukem /* FALLTHROUGH */
362 1.88 lukem case 'H':
363 1.87 lukem todo |= HASHSTAT;
364 1.45 thorpej break;
365 1.1 cgd case 'i':
366 1.1 cgd todo |= INTRSTAT;
367 1.1 cgd break;
368 1.45 thorpej case 'l':
369 1.45 thorpej todo |= HISTLIST;
370 1.45 thorpej break;
371 1.88 lukem case 'L':
372 1.88 lukem todo |= HASHLIST;
373 1.88 lukem break;
374 1.1 cgd case 'M':
375 1.13 cgd memf = optarg;
376 1.1 cgd break;
377 1.1 cgd case 'm':
378 1.1 cgd todo |= MEMSTAT;
379 1.1 cgd break;
380 1.1 cgd case 'N':
381 1.13 cgd nlistf = optarg;
382 1.1 cgd break;
383 1.1 cgd case 's':
384 1.1 cgd todo |= SUMSTAT;
385 1.1 cgd break;
386 1.130 he case 't':
387 1.130 he todo |= VMTOTAL;
388 1.130 he break;
389 1.87 lukem case 'u':
390 1.87 lukem histname = optarg;
391 1.87 lukem /* FALLTHROUGH */
392 1.87 lukem case 'U':
393 1.87 lukem todo |= HISTDUMP;
394 1.87 lukem break;
395 1.66 cgd case 'v':
396 1.87 lukem verbose++;
397 1.66 cgd break;
398 1.126 simonb case 'W':
399 1.126 simonb wide++;
400 1.126 simonb break;
401 1.1 cgd case 'w':
402 1.103 mycroft interval.tv_sec = atol(optarg);
403 1.1 cgd break;
404 1.1 cgd case '?':
405 1.1 cgd default:
406 1.1 cgd usage();
407 1.1 cgd }
408 1.1 cgd }
409 1.1 cgd argc -= optind;
410 1.1 cgd argv += optind;
411 1.1 cgd
412 1.1 cgd if (todo == 0)
413 1.1 cgd todo = VMSTAT;
414 1.1 cgd
415 1.13 cgd /*
416 1.48 mrg * Discard setgid privileges. If not the running kernel, we toss
417 1.48 mrg * them away totally so that bad guys can't print interesting stuff
418 1.48 mrg * from kernel memory, otherwise switch back to kmem for the
419 1.48 mrg * duration of the kvm_openfiles() call.
420 1.13 cgd */
421 1.13 cgd if (nlistf != NULL || memf != NULL)
422 1.48 mrg (void)setgid(getgid());
423 1.48 mrg else
424 1.48 mrg (void)setegid(egid);
425 1.13 cgd
426 1.176 matt kd = kvm_openfiles(nlistf, memf, NULL, O_RDONLY, kvm_errbuf);
427 1.176 matt if (kd == NULL) {
428 1.176 matt if (nlistf != NULL || memf != NULL) {
429 1.176 matt errx(1, "kvm_openfiles: %s", kvm_errbuf);
430 1.176 matt }
431 1.176 matt }
432 1.48 mrg
433 1.95 simonb if (nlistf == NULL && memf == NULL)
434 1.95 simonb (void)setgid(getgid());
435 1.1 cgd
436 1.1 cgd
437 1.1 cgd if (todo & VMSTAT) {
438 1.1 cgd struct winsize winsize;
439 1.1 cgd
440 1.153 christos (void)drvinit(0);/* Initialize disk stats, no disks selected. */
441 1.49 drochner
442 1.49 drochner (void)setgid(getgid()); /* don't need privs anymore */
443 1.49 drochner
444 1.29 thorpej argv = choosedrives(argv); /* Select disks. */
445 1.1 cgd winsize.ws_row = 0;
446 1.115 simonb (void)ioctl(STDOUT_FILENO, TIOCGWINSZ, &winsize);
447 1.1 cgd if (winsize.ws_row > 0)
448 1.1 cgd winlines = winsize.ws_row;
449 1.1 cgd
450 1.1 cgd }
451 1.1 cgd
452 1.1 cgd #ifdef BACKWARD_COMPATIBILITY
453 1.1 cgd if (*argv) {
454 1.103 mycroft interval.tv_sec = atol(*argv);
455 1.1 cgd if (*++argv)
456 1.1 cgd reps = atoi(*argv);
457 1.1 cgd }
458 1.1 cgd #endif
459 1.1 cgd
460 1.103 mycroft if (interval.tv_sec) {
461 1.1 cgd if (!reps)
462 1.1 cgd reps = -1;
463 1.1 cgd } else if (reps)
464 1.103 mycroft interval.tv_sec = 1;
465 1.1 cgd
466 1.78 jhawk
467 1.185 christos getnlist(todo);
468 1.78 jhawk /*
469 1.78 jhawk * Statistics dumping is incompatible with the default
470 1.78 jhawk * VMSTAT/dovmstat() output. So perform the interval/reps handling
471 1.78 jhawk * for it here.
472 1.78 jhawk */
473 1.130 he if ((todo & (VMSTAT|VMTOTAL)) == 0) {
474 1.99 enami for (;;) {
475 1.99 enami if (todo & (HISTLIST|HISTDUMP)) {
476 1.99 enami if ((todo & (HISTLIST|HISTDUMP)) ==
477 1.99 enami (HISTLIST|HISTDUMP))
478 1.99 enami errx(1, "you may list or dump,"
479 1.99 enami " but not both!");
480 1.210 pgoyette if (memf != NULL)
481 1.210 pgoyette hist_traverse(todo, histname);
482 1.210 pgoyette else
483 1.210 pgoyette hist_traverse_sysctl(todo, histname);
484 1.153 christos (void)putchar('\n');
485 1.99 enami }
486 1.99 enami if (todo & FORKSTAT) {
487 1.99 enami doforkst();
488 1.153 christos (void)putchar('\n');
489 1.99 enami }
490 1.99 enami if (todo & MEMSTAT) {
491 1.126 simonb dopool(verbose, wide);
492 1.153 christos (void)putchar('\n');
493 1.99 enami }
494 1.154 ad if (todo & POOLCACHESTAT) {
495 1.182 yamt dopoolcache(verbose);
496 1.154 ad (void)putchar('\n');
497 1.154 ad }
498 1.99 enami if (todo & SUMSTAT) {
499 1.99 enami dosum();
500 1.153 christos (void)putchar('\n');
501 1.99 enami }
502 1.99 enami if (todo & INTRSTAT) {
503 1.99 enami dointr(verbose);
504 1.153 christos (void)putchar('\n');
505 1.99 enami }
506 1.99 enami if (todo & EVCNTSTAT) {
507 1.176 matt doevcnt(verbose, EVCNT_TYPE_ANY);
508 1.153 christos (void)putchar('\n');
509 1.99 enami }
510 1.99 enami if (todo & (HASHLIST|HASHSTAT)) {
511 1.99 enami if ((todo & (HASHLIST|HASHSTAT)) ==
512 1.99 enami (HASHLIST|HASHSTAT))
513 1.99 enami errx(1, "you may list or display,"
514 1.99 enami " but not both!");
515 1.99 enami dohashstat(verbose, todo, hashname);
516 1.153 christos (void)putchar('\n');
517 1.99 enami }
518 1.101 sommerfe
519 1.164 dholland fflush(stdout);
520 1.101 sommerfe if (reps >= 0 && --reps <=0)
521 1.99 enami break;
522 1.153 christos (void)nanosleep(&interval, NULL);
523 1.87 lukem }
524 1.130 he } else {
525 1.130 he if ((todo & (VMSTAT|VMTOTAL)) == (VMSTAT|VMTOTAL)) {
526 1.130 he errx(1, "you may not both do vmstat and vmtotal");
527 1.130 he }
528 1.130 he if (todo & VMSTAT)
529 1.130 he dovmstat(&interval, reps);
530 1.130 he if (todo & VMTOTAL)
531 1.130 he dovmtotal(&interval, reps);
532 1.130 he }
533 1.153 christos return 0;
534 1.1 cgd }
535 1.1 cgd
536 1.176 matt void
537 1.176 matt getnlist(int todo)
538 1.176 matt {
539 1.176 matt static int namelist_done = 0;
540 1.185 christos static int done = 0;
541 1.176 matt int c;
542 1.176 matt size_t i;
543 1.176 matt
544 1.176 matt if (kd == NULL)
545 1.176 matt errx(1, "kvm_openfiles: %s", kvm_errbuf);
546 1.176 matt
547 1.176 matt if (!namelist_done) {
548 1.176 matt namelist_done = 1;
549 1.176 matt if ((c = kvm_nlist(kd, namelist)) != 0) {
550 1.176 matt int doexit = 0;
551 1.176 matt if (c == -1)
552 1.176 matt errx(1, "kvm_nlist: %s %s",
553 1.176 matt "namelist", kvm_geterr(kd));
554 1.176 matt for (i = 0; i < __arraycount(namelist)-1; i++)
555 1.176 matt if (namelist[i].n_type == 0 &&
556 1.176 matt i != X_TIME_SECOND &&
557 1.176 matt i != X_TIME) {
558 1.176 matt if (doexit++ == 0)
559 1.176 matt (void)fprintf(stderr,
560 1.176 matt "%s: undefined symbols:",
561 1.176 matt getprogname());
562 1.176 matt (void)fprintf(stderr, " %s",
563 1.176 matt namelist[i].n_name);
564 1.176 matt }
565 1.176 matt if (doexit) {
566 1.176 matt (void)fputc('\n', stderr);
567 1.176 matt exit(1);
568 1.176 matt }
569 1.176 matt }
570 1.176 matt }
571 1.185 christos if ((todo & (SUMSTAT|INTRSTAT)) && !(done & (SUMSTAT|INTRSTAT))) {
572 1.185 christos done |= SUMSTAT|INTRSTAT;
573 1.176 matt (void) kvm_nlist(kd, intrnl);
574 1.176 matt }
575 1.185 christos if ((todo & (HASHLIST|HASHSTAT)) && !(done & (HASHLIST|HASHSTAT))) {
576 1.185 christos done |= HASHLIST|HASHSTAT;
577 1.176 matt if ((c = kvm_nlist(kd, hashnl)) == -1 || c == X_HASHNL_SIZE)
578 1.176 matt errx(1, "kvm_nlist: %s %s", "hashnl", kvm_geterr(kd));
579 1.176 matt }
580 1.185 christos if ((todo & (HISTLIST|HISTDUMP)) && !(done & (HISTLIST|HISTDUMP))) {
581 1.185 christos done |= HISTLIST|HISTDUMP;
582 1.176 matt if (kvm_nlist(kd, histnl) == -1)
583 1.176 matt errx(1, "kvm_nlist: %s %s", "histnl", kvm_geterr(kd));
584 1.176 matt }
585 1.176 matt }
586 1.176 matt
587 1.1 cgd char **
588 1.73 simonb choosedrives(char **argv)
589 1.1 cgd {
590 1.165 lukem size_t i;
591 1.1 cgd
592 1.1 cgd /*
593 1.1 cgd * Choose drives to be displayed. Priority goes to (in order) drives
594 1.1 cgd * supplied as arguments, default drives. If everything isn't filled
595 1.1 cgd * in and there are drives not taken care of, display the first few
596 1.1 cgd * that fit.
597 1.1 cgd */
598 1.75 enami #define BACKWARD_COMPATIBILITY
599 1.1 cgd for (ndrives = 0; *argv; ++argv) {
600 1.1 cgd #ifdef BACKWARD_COMPATIBILITY
601 1.124 dsl if (isdigit((unsigned char)**argv))
602 1.1 cgd break;
603 1.1 cgd #endif
604 1.140 blymn for (i = 0; i < ndrive; i++) {
605 1.1 cgd if (strcmp(dr_name[i], *argv))
606 1.1 cgd continue;
607 1.140 blymn drv_select[i] = 1;
608 1.136 blymn ++ndrives;
609 1.136 blymn break;
610 1.136 blymn }
611 1.1 cgd }
612 1.151 yamt for (i = 0; i < ndrive && ndrives < 2; i++) {
613 1.140 blymn if (drv_select[i])
614 1.1 cgd continue;
615 1.140 blymn drv_select[i] = 1;
616 1.1 cgd ++ndrives;
617 1.1 cgd }
618 1.140 blymn
619 1.75 enami return (argv);
620 1.1 cgd }
621 1.1 cgd
622 1.1 cgd long
623 1.73 simonb getuptime(void)
624 1.1 cgd {
625 1.176 matt static struct timespec boottime;
626 1.176 matt struct timespec now;
627 1.149 kardel time_t uptime, nowsec;
628 1.1 cgd
629 1.176 matt if (memf == NULL) {
630 1.176 matt if (boottime.tv_sec == 0) {
631 1.176 matt size_t buflen = sizeof(boottime);
632 1.176 matt if (sysctl(boottime_mib, __arraycount(boottime_mib),
633 1.176 matt &boottime, &buflen, NULL, 0) == -1)
634 1.176 matt warn("Can't get boottime");
635 1.176 matt }
636 1.176 matt clock_gettime(CLOCK_REALTIME, &now);
637 1.147 kardel } else {
638 1.176 matt if (boottime.tv_sec == 0)
639 1.176 matt kread(namelist, X_BOOTTIME, &boottime,
640 1.176 matt sizeof(boottime));
641 1.176 matt if (kreadc(namelist, X_TIME_SECOND, &nowsec, sizeof(nowsec))) {
642 1.176 matt /*
643 1.176 matt * XXX this assignment dance can be removed once
644 1.176 matt * timeval tv_sec is SUS mandated time_t
645 1.176 matt */
646 1.176 matt now.tv_sec = nowsec;
647 1.176 matt now.tv_nsec = 0;
648 1.176 matt } else {
649 1.176 matt kread(namelist, X_TIME, &now, sizeof(now));
650 1.176 matt }
651 1.147 kardel }
652 1.145 kardel uptime = now.tv_sec - boottime.tv_sec;
653 1.87 lukem if (uptime <= 0 || uptime > 60*60*24*365*10)
654 1.87 lukem errx(1, "time makes no sense; namelist must be wrong.");
655 1.75 enami return (uptime);
656 1.1 cgd }
657 1.1 cgd
658 1.1 cgd int hz, hdrcnt;
659 1.1 cgd
660 1.1 cgd void
661 1.187 matt print_total_hdr(void)
662 1.130 he {
663 1.130 he
664 1.166 rmind (void)printf("procs memory\n");
665 1.166 rmind (void)printf("ru dw pw sl");
666 1.130 he (void)printf(" total-v active-v active-r");
667 1.130 he (void)printf(" vm-sh avm-sh rm-sh arm-sh free\n");
668 1.130 he hdrcnt = winlines - 2;
669 1.130 he }
670 1.130 he
671 1.130 he void
672 1.130 he dovmtotal(struct timespec *interval, int reps)
673 1.130 he {
674 1.130 he struct vmtotal total;
675 1.130 he size_t size;
676 1.130 he
677 1.130 he (void)signal(SIGCONT, needhdr);
678 1.130 he
679 1.130 he for (hdrcnt = 1;;) {
680 1.130 he if (!--hdrcnt)
681 1.130 he print_total_hdr();
682 1.130 he if (memf != NULL) {
683 1.170 christos warnx("Unable to get vmtotals from crash dump.");
684 1.153 christos (void)memset(&total, 0, sizeof(total));
685 1.130 he } else {
686 1.130 he size = sizeof(total);
687 1.170 christos if (sysctl(vmmeter_mib, __arraycount(vmmeter_mib),
688 1.170 christos &total, &size, NULL, 0) == -1) {
689 1.170 christos warn("Can't get vmtotals");
690 1.153 christos (void)memset(&total, 0, sizeof(total));
691 1.130 he }
692 1.130 he }
693 1.153 christos (void)printf("%2d ", total.t_rq);
694 1.153 christos (void)printf("%2d ", total.t_dw);
695 1.153 christos (void)printf("%2d ", total.t_pw);
696 1.153 christos (void)printf("%2d ", total.t_sl);
697 1.153 christos
698 1.153 christos (void)printf("%9d ", total.t_vm);
699 1.153 christos (void)printf("%9d ", total.t_avm);
700 1.153 christos (void)printf("%9d ", total.t_arm);
701 1.153 christos (void)printf("%5d ", total.t_vmshr);
702 1.153 christos (void)printf("%6d ", total.t_avmshr);
703 1.153 christos (void)printf("%5d ", total.t_rmshr);
704 1.153 christos (void)printf("%6d ", total.t_armshr);
705 1.153 christos (void)printf("%5d", total.t_free);
706 1.130 he
707 1.153 christos (void)putchar('\n');
708 1.130 he
709 1.130 he (void)fflush(stdout);
710 1.130 he if (reps >= 0 && --reps <= 0)
711 1.130 he break;
712 1.130 he
713 1.153 christos (void)nanosleep(interval, NULL);
714 1.130 he }
715 1.130 he }
716 1.130 he
717 1.130 he void
718 1.103 mycroft dovmstat(struct timespec *interval, int reps)
719 1.1 cgd {
720 1.1 cgd struct vmtotal total;
721 1.1 cgd time_t uptime, halfuptime;
722 1.17 cgd size_t size;
723 1.41 mrg int pagesize = getpagesize();
724 1.151 yamt int ovflw;
725 1.1 cgd
726 1.1 cgd uptime = getuptime();
727 1.1 cgd halfuptime = uptime / 2;
728 1.1 cgd (void)signal(SIGCONT, needhdr);
729 1.1 cgd
730 1.197 joerg if (memf != NULL) {
731 1.197 joerg if (namelist[X_STATHZ].n_type != 0 && namelist[X_STATHZ].n_value != 0)
732 1.197 joerg kread(namelist, X_STATHZ, &hz, sizeof(hz));
733 1.197 joerg if (!hz)
734 1.197 joerg kread(namelist, X_HZ, &hz, sizeof(hz));
735 1.197 joerg } else {
736 1.197 joerg struct clockinfo clockinfo;
737 1.197 joerg size = sizeof(clockinfo);
738 1.197 joerg if (sysctl(clockrate_mib, 2, &clockinfo, &size, NULL, 0) == -1)
739 1.197 joerg err(1, "sysctl kern.clockrate failed");
740 1.197 joerg hz = clockinfo.stathz;
741 1.197 joerg if (!hz)
742 1.197 joerg hz = clockinfo.hz;
743 1.197 joerg }
744 1.1 cgd
745 1.1 cgd for (hdrcnt = 1;;) {
746 1.1 cgd if (!--hdrcnt)
747 1.1 cgd printhdr();
748 1.29 thorpej /* Read new disk statistics */
749 1.139 dsl cpureadstats();
750 1.140 blymn drvreadstats();
751 1.139 dsl tkreadstats();
752 1.58 thorpej if (memf != NULL) {
753 1.196 joerg struct uvmexp uvmexp_kernel;
754 1.58 thorpej /*
755 1.58 thorpej * XXX Can't do this if we're reading a crash
756 1.58 thorpej * XXX dump because they're lazily-calculated.
757 1.58 thorpej */
758 1.170 christos warnx("Unable to get vmtotals from crash dump.");
759 1.153 christos (void)memset(&total, 0, sizeof(total));
760 1.196 joerg kread(namelist, X_UVMEXP, &uvmexp_kernel, sizeof(uvmexp_kernel));
761 1.196 joerg #define COPY(field) uvmexp.field = uvmexp_kernel.field
762 1.196 joerg COPY(pdreact);
763 1.196 joerg COPY(pageins);
764 1.196 joerg COPY(pgswapout);
765 1.196 joerg COPY(pdfreed);
766 1.196 joerg COPY(pdscans);
767 1.196 joerg #undef COPY
768 1.58 thorpej } else {
769 1.58 thorpej size = sizeof(total);
770 1.170 christos if (sysctl(vmmeter_mib, __arraycount(vmmeter_mib),
771 1.170 christos &total, &size, NULL, 0) == -1) {
772 1.170 christos warn("Can't get vmtotals");
773 1.153 christos (void)memset(&total, 0, sizeof(total));
774 1.58 thorpej }
775 1.196 joerg size = sizeof(uvmexp);
776 1.196 joerg if (sysctl(uvmexp2_mib, __arraycount(uvmexp2_mib), &uvmexp,
777 1.196 joerg &size, NULL, 0) == -1)
778 1.196 joerg warn("sysctl vm.uvmexp2 failed");
779 1.13 cgd }
780 1.171 christos cpucounters(&cpucounter);
781 1.151 yamt ovflw = 0;
782 1.151 yamt PRWORD(ovflw, " %*d", 2, 1, total.t_rq - 1);
783 1.151 yamt PRWORD(ovflw, " %*d", 2, 1, total.t_dw + total.t_pw);
784 1.153 christos #define pgtok(a) (long)((a) * ((uint32_t)pagesize >> 10))
785 1.38 mrg #define rate(x) (u_long)(((x) + halfuptime) / uptime) /* round */
786 1.166 rmind PRWORD(ovflw, " %*ld", 9, 1, pgtok(total.t_avm));
787 1.151 yamt PRWORD(ovflw, " %*ld", 7, 1, pgtok(total.t_free));
788 1.151 yamt PRWORD(ovflw, " %*ld", 5, 1,
789 1.171 christos rate(cpucounter.nfault - ocpucounter.nfault));
790 1.151 yamt PRWORD(ovflw, " %*ld", 4, 1,
791 1.151 yamt rate(uvmexp.pdreact - ouvmexp.pdreact));
792 1.151 yamt PRWORD(ovflw, " %*ld", 4, 1,
793 1.151 yamt rate(uvmexp.pageins - ouvmexp.pageins));
794 1.151 yamt PRWORD(ovflw, " %*ld", 5, 1,
795 1.44 mrg rate(uvmexp.pgswapout - ouvmexp.pgswapout));
796 1.151 yamt PRWORD(ovflw, " %*ld", 5, 1,
797 1.151 yamt rate(uvmexp.pdfreed - ouvmexp.pdfreed));
798 1.151 yamt PRWORD(ovflw, " %*ld", 6, 2,
799 1.151 yamt rate(uvmexp.pdscans - ouvmexp.pdscans));
800 1.151 yamt drvstats(&ovflw);
801 1.151 yamt PRWORD(ovflw, " %*ld", 5, 1,
802 1.171 christos rate(cpucounter.nintr - ocpucounter.nintr));
803 1.151 yamt PRWORD(ovflw, " %*ld", 5, 1,
804 1.171 christos rate(cpucounter.nsyscall - ocpucounter.nsyscall));
805 1.151 yamt PRWORD(ovflw, " %*ld", 4, 1,
806 1.171 christos rate(cpucounter.nswtch - ocpucounter.nswtch));
807 1.151 yamt cpustats(&ovflw);
808 1.153 christos (void)putchar('\n');
809 1.42 mrg (void)fflush(stdout);
810 1.42 mrg if (reps >= 0 && --reps <= 0)
811 1.42 mrg break;
812 1.172 enami ouvmexp = uvmexp;
813 1.171 christos ocpucounter = cpucounter;
814 1.103 mycroft uptime = interval->tv_sec;
815 1.1 cgd /*
816 1.1 cgd * We round upward to avoid losing low-frequency events
817 1.1 cgd * (i.e., >= 1 per interval but < 1 per second).
818 1.1 cgd */
819 1.33 thorpej halfuptime = uptime == 1 ? 0 : (uptime + 1) / 2;
820 1.153 christos (void)nanosleep(interval, NULL);
821 1.1 cgd }
822 1.1 cgd }
823 1.1 cgd
824 1.38 mrg void
825 1.73 simonb printhdr(void)
826 1.1 cgd {
827 1.165 lukem size_t i;
828 1.1 cgd
829 1.104 mrg (void)printf(" procs memory page%*s", 23, "");
830 1.29 thorpej if (ndrives > 0)
831 1.70 sommerfe (void)printf("%s %*sfaults cpu\n",
832 1.75 enami ((ndrives > 1) ? "disks" : "disk"),
833 1.75 enami ((ndrives > 1) ? ndrives * 3 - 4 : 0), "");
834 1.1 cgd else
835 1.29 thorpej (void)printf("%*s faults cpu\n",
836 1.75 enami ndrives * 3, "");
837 1.29 thorpej
838 1.166 rmind (void)printf(" r b avm fre flt re pi po fr sr ");
839 1.140 blymn for (i = 0; i < ndrive; i++)
840 1.140 blymn if (drv_select[i])
841 1.1 cgd (void)printf("%c%c ", dr_name[i][0],
842 1.1 cgd dr_name[i][strlen(dr_name[i]) - 1]);
843 1.1 cgd (void)printf(" in sy cs us sy id\n");
844 1.1 cgd hdrcnt = winlines - 2;
845 1.1 cgd }
846 1.1 cgd
847 1.1 cgd /*
848 1.1 cgd * Force a header to be prepended to the next output.
849 1.1 cgd */
850 1.1 cgd void
851 1.153 christos /*ARGSUSED*/
852 1.73 simonb needhdr(int dummy)
853 1.1 cgd {
854 1.1 cgd
855 1.1 cgd hdrcnt = 1;
856 1.1 cgd }
857 1.1 cgd
858 1.38 mrg long
859 1.203 nakayama pct(u_long top, u_long bot)
860 1.1 cgd {
861 1.13 cgd long ans;
862 1.13 cgd
863 1.1 cgd if (bot == 0)
864 1.75 enami return (0);
865 1.153 christos ans = (long)((quad_t)top * 100 / bot);
866 1.13 cgd return (ans);
867 1.1 cgd }
868 1.1 cgd
869 1.203 nakayama #define PCT(top, bot) (int)pct((u_long)(top), (u_long)(bot))
870 1.1 cgd
871 1.1 cgd void
872 1.73 simonb dosum(void)
873 1.1 cgd {
874 1.206 dennis struct nchstats nch_stats;
875 1.194 joerg uint64_t nchtotal;
876 1.162 he size_t ssize;
877 1.162 he int active_kernel;
878 1.171 christos struct cpu_counter cc;
879 1.162 he
880 1.162 he /*
881 1.162 he * The "active" and "inactive" variables
882 1.162 he * are now estimated by the kernel and sadly
883 1.162 he * can not easily be dug out of a crash dump.
884 1.162 he */
885 1.195 joerg ssize = sizeof(uvmexp);
886 1.195 joerg memset(&uvmexp, 0, ssize);
887 1.162 he active_kernel = (memf == NULL);
888 1.162 he if (active_kernel) {
889 1.162 he /* only on active kernel */
890 1.195 joerg if (sysctl(uvmexp2_mib, __arraycount(uvmexp2_mib), &uvmexp,
891 1.170 christos &ssize, NULL, 0) == -1)
892 1.170 christos warn("sysctl vm.uvmexp2 failed");
893 1.195 joerg } else {
894 1.195 joerg struct uvmexp uvmexp_kernel;
895 1.221 mrg struct pool pool, *pp = &pool;
896 1.221 mrg TAILQ_HEAD(,pool) pool_head;
897 1.221 mrg void *addr;
898 1.221 mrg
899 1.195 joerg kread(namelist, X_UVMEXP, &uvmexp_kernel, sizeof(uvmexp_kernel));
900 1.195 joerg #define COPY(field) uvmexp.field = uvmexp_kernel.field
901 1.195 joerg COPY(pagesize);
902 1.195 joerg COPY(ncolors);
903 1.195 joerg COPY(npages);
904 1.195 joerg COPY(free);
905 1.195 joerg COPY(paging);
906 1.195 joerg COPY(wired);
907 1.195 joerg COPY(zeropages);
908 1.195 joerg COPY(reserve_pagedaemon);
909 1.195 joerg COPY(reserve_kernel);
910 1.195 joerg COPY(anonpages);
911 1.195 joerg COPY(filepages);
912 1.195 joerg COPY(execpages);
913 1.195 joerg COPY(freemin);
914 1.195 joerg COPY(freetarg);
915 1.195 joerg COPY(wiredmax);
916 1.195 joerg COPY(nswapdev);
917 1.195 joerg COPY(swpages);
918 1.195 joerg COPY(swpginuse);
919 1.195 joerg COPY(nswget);
920 1.195 joerg COPY(pageins);
921 1.195 joerg COPY(pdpageouts);
922 1.195 joerg COPY(pgswapin);
923 1.195 joerg COPY(pgswapout);
924 1.195 joerg COPY(forks);
925 1.195 joerg COPY(forks_ppwait);
926 1.195 joerg COPY(forks_sharevm);
927 1.195 joerg COPY(pga_zerohit);
928 1.195 joerg COPY(pga_zeromiss);
929 1.195 joerg COPY(zeroaborts);
930 1.195 joerg COPY(colorhit);
931 1.195 joerg COPY(colormiss);
932 1.195 joerg COPY(cpuhit);
933 1.195 joerg COPY(cpumiss);
934 1.195 joerg COPY(fltnoram);
935 1.195 joerg COPY(fltnoanon);
936 1.195 joerg COPY(fltpgwait);
937 1.195 joerg COPY(fltpgrele);
938 1.195 joerg COPY(fltrelck);
939 1.195 joerg COPY(fltrelckok);
940 1.195 joerg COPY(fltanget);
941 1.195 joerg COPY(fltanretry);
942 1.195 joerg COPY(fltamcopy);
943 1.195 joerg COPY(fltamcopy);
944 1.195 joerg COPY(fltnomap);
945 1.195 joerg COPY(fltlget);
946 1.195 joerg COPY(fltget);
947 1.195 joerg COPY(flt_anon);
948 1.195 joerg COPY(flt_acow);
949 1.195 joerg COPY(flt_obj);
950 1.195 joerg COPY(flt_prcopy);
951 1.195 joerg COPY(flt_przero);
952 1.195 joerg COPY(pdwoke);
953 1.195 joerg COPY(pdrevs);
954 1.195 joerg COPY(pdfreed);
955 1.195 joerg COPY(pdscans);
956 1.195 joerg COPY(pdanscan);
957 1.195 joerg COPY(pdobscan);
958 1.195 joerg COPY(pdreact);
959 1.195 joerg COPY(pdbusy);
960 1.195 joerg COPY(pdpending);
961 1.195 joerg COPY(pddeact);
962 1.221 mrg COPY(bootpages);
963 1.195 joerg #undef COPY
964 1.221 mrg kread(namelist, X_POOLHEAD, &pool_head, sizeof(pool_head));
965 1.221 mrg addr = TAILQ_FIRST(&pool_head);
966 1.221 mrg for (; addr != NULL; addr = TAILQ_NEXT(pp, pr_poollist)) {
967 1.221 mrg deref_kptr(addr, pp, sizeof(*pp), "pool chain trashed");
968 1.221 mrg /*
969 1.221 mrg * XXXMRG
970 1.221 mrg if ((pp->pr_roflags & PR_RECURSIVE) == 0)
971 1.221 mrg */
972 1.221 mrg uvmexp.poolpages += pp->pr_npages;
973 1.221 mrg }
974 1.162 he }
975 1.1 cgd
976 1.41 mrg
977 1.195 joerg (void)printf("%9" PRIu64 " bytes per page\n", uvmexp.pagesize);
978 1.44 mrg
979 1.195 joerg (void)printf("%9" PRIu64 " page color%s\n",
980 1.81 thorpej uvmexp.ncolors, uvmexp.ncolors == 1 ? "" : "s");
981 1.81 thorpej
982 1.195 joerg (void)printf("%9" PRIu64 " pages managed\n", uvmexp.npages);
983 1.195 joerg (void)printf("%9" PRIu64 " pages free\n", uvmexp.free);
984 1.162 he if (active_kernel) {
985 1.195 joerg (void)printf("%9" PRIu64 " pages active\n", uvmexp.active);
986 1.195 joerg (void)printf("%9" PRIu64 " pages inactive\n", uvmexp.inactive);
987 1.162 he }
988 1.195 joerg (void)printf("%9" PRIu64 " pages paging\n", uvmexp.paging);
989 1.195 joerg (void)printf("%9" PRIu64 " pages wired\n", uvmexp.wired);
990 1.195 joerg (void)printf("%9" PRIu64 " zero pages\n", uvmexp.zeropages);
991 1.195 joerg (void)printf("%9" PRIu64 " reserve pagedaemon pages\n",
992 1.44 mrg uvmexp.reserve_pagedaemon);
993 1.195 joerg (void)printf("%9" PRIu64 " reserve kernel pages\n", uvmexp.reserve_kernel);
994 1.221 mrg (void)printf("%9" PRIu64 " boot kernel pages\n", uvmexp.bootpages);
995 1.221 mrg (void)printf("%9" PRIu64 " kernel pool pages\n", uvmexp.poolpages);
996 1.195 joerg (void)printf("%9" PRIu64 " anonymous pages\n", uvmexp.anonpages);
997 1.195 joerg (void)printf("%9" PRIu64 " cached file pages\n", uvmexp.filepages);
998 1.195 joerg (void)printf("%9" PRIu64 " cached executable pages\n", uvmexp.execpages);
999 1.195 joerg
1000 1.195 joerg (void)printf("%9" PRIu64 " minimum free pages\n", uvmexp.freemin);
1001 1.195 joerg (void)printf("%9" PRIu64 " target free pages\n", uvmexp.freetarg);
1002 1.195 joerg (void)printf("%9" PRIu64 " maximum wired pages\n", uvmexp.wiredmax);
1003 1.195 joerg
1004 1.195 joerg (void)printf("%9" PRIu64 " swap devices\n", uvmexp.nswapdev);
1005 1.195 joerg (void)printf("%9" PRIu64 " swap pages\n", uvmexp.swpages);
1006 1.195 joerg (void)printf("%9" PRIu64 " swap pages in use\n", uvmexp.swpginuse);
1007 1.195 joerg (void)printf("%9" PRIu64 " swap allocations\n", uvmexp.nswget);
1008 1.44 mrg
1009 1.171 christos cpucounters(&cc);
1010 1.190 rmind
1011 1.171 christos (void)printf("%9" PRIu64 " total faults taken\n", cc.nfault);
1012 1.171 christos (void)printf("%9" PRIu64 " traps\n", cc.ntrap);
1013 1.171 christos (void)printf("%9" PRIu64 " device interrupts\n", cc.nintr);
1014 1.171 christos (void)printf("%9" PRIu64 " CPU context switches\n", cc.nswtch);
1015 1.171 christos (void)printf("%9" PRIu64 " software interrupts\n", cc.nsoft);
1016 1.171 christos (void)printf("%9" PRIu64 " system calls\n", cc.nsyscall);
1017 1.195 joerg (void)printf("%9" PRIu64 " pagein requests\n", uvmexp.pageins);
1018 1.195 joerg (void)printf("%9" PRIu64 " pageout requests\n", uvmexp.pdpageouts);
1019 1.195 joerg (void)printf("%9" PRIu64 " pages swapped in\n", uvmexp.pgswapin);
1020 1.195 joerg (void)printf("%9" PRIu64 " pages swapped out\n", uvmexp.pgswapout);
1021 1.195 joerg (void)printf("%9" PRIu64 " forks total\n", uvmexp.forks);
1022 1.195 joerg (void)printf("%9" PRIu64 " forks blocked parent\n", uvmexp.forks_ppwait);
1023 1.195 joerg (void)printf("%9" PRIu64 " forks shared address space with parent\n",
1024 1.43 mrg uvmexp.forks_sharevm);
1025 1.195 joerg (void)printf("%9" PRIu64 " pagealloc zero wanted and avail\n",
1026 1.63 thorpej uvmexp.pga_zerohit);
1027 1.195 joerg (void)printf("%9" PRIu64 " pagealloc zero wanted and not avail\n",
1028 1.63 thorpej uvmexp.pga_zeromiss);
1029 1.195 joerg (void)printf("%9" PRIu64 " aborts of idle page zeroing\n",
1030 1.68 thorpej uvmexp.zeroaborts);
1031 1.195 joerg (void)printf("%9" PRIu64 " pagealloc desired color avail\n",
1032 1.79 thorpej uvmexp.colorhit);
1033 1.195 joerg (void)printf("%9" PRIu64 " pagealloc desired color not avail\n",
1034 1.79 thorpej uvmexp.colormiss);
1035 1.195 joerg (void)printf("%9" PRIu64 " pagealloc local cpu avail\n",
1036 1.159 ad uvmexp.cpuhit);
1037 1.195 joerg (void)printf("%9" PRIu64 " pagealloc local cpu not avail\n",
1038 1.159 ad uvmexp.cpumiss);
1039 1.44 mrg
1040 1.195 joerg (void)printf("%9" PRIu64 " faults with no memory\n", uvmexp.fltnoram);
1041 1.195 joerg (void)printf("%9" PRIu64 " faults with no anons\n", uvmexp.fltnoanon);
1042 1.195 joerg (void)printf("%9" PRIu64 " faults had to wait on pages\n", uvmexp.fltpgwait);
1043 1.195 joerg (void)printf("%9" PRIu64 " faults found released page\n", uvmexp.fltpgrele);
1044 1.195 joerg (void)printf("%9" PRIu64 " faults relock (%" PRIu64 " ok)\n", uvmexp.fltrelck,
1045 1.43 mrg uvmexp.fltrelckok);
1046 1.195 joerg (void)printf("%9" PRIu64 " anon page faults\n", uvmexp.fltanget);
1047 1.195 joerg (void)printf("%9" PRIu64 " anon retry faults\n", uvmexp.fltanretry);
1048 1.195 joerg (void)printf("%9" PRIu64 " amap copy faults\n", uvmexp.fltamcopy);
1049 1.195 joerg (void)printf("%9" PRIu64 " neighbour anon page faults\n", uvmexp.fltnamap);
1050 1.195 joerg (void)printf("%9" PRIu64 " neighbour object page faults\n", uvmexp.fltnomap);
1051 1.195 joerg (void)printf("%9" PRIu64 " locked pager get faults\n", uvmexp.fltlget);
1052 1.195 joerg (void)printf("%9" PRIu64 " unlocked pager get faults\n", uvmexp.fltget);
1053 1.195 joerg (void)printf("%9" PRIu64 " anon faults\n", uvmexp.flt_anon);
1054 1.195 joerg (void)printf("%9" PRIu64 " anon copy on write faults\n", uvmexp.flt_acow);
1055 1.195 joerg (void)printf("%9" PRIu64 " object faults\n", uvmexp.flt_obj);
1056 1.195 joerg (void)printf("%9" PRIu64 " promote copy faults\n", uvmexp.flt_prcopy);
1057 1.195 joerg (void)printf("%9" PRIu64 " promote zero fill faults\n", uvmexp.flt_przero);
1058 1.195 joerg
1059 1.195 joerg (void)printf("%9" PRIu64 " times daemon wokeup\n",uvmexp.pdwoke);
1060 1.195 joerg (void)printf("%9" PRIu64 " revolutions of the clock hand\n", uvmexp.pdrevs);
1061 1.195 joerg (void)printf("%9" PRIu64 " pages freed by daemon\n", uvmexp.pdfreed);
1062 1.195 joerg (void)printf("%9" PRIu64 " pages scanned by daemon\n", uvmexp.pdscans);
1063 1.195 joerg (void)printf("%9" PRIu64 " anonymous pages scanned by daemon\n",
1064 1.75 enami uvmexp.pdanscan);
1065 1.195 joerg (void)printf("%9" PRIu64 " object pages scanned by daemon\n", uvmexp.pdobscan);
1066 1.195 joerg (void)printf("%9" PRIu64 " pages reactivated\n", uvmexp.pdreact);
1067 1.195 joerg (void)printf("%9" PRIu64 " pages found busy by daemon\n", uvmexp.pdbusy);
1068 1.195 joerg (void)printf("%9" PRIu64 " total pending pageouts\n", uvmexp.pdpending);
1069 1.195 joerg (void)printf("%9" PRIu64 " pages deactivated\n", uvmexp.pddeact);
1070 1.123 enami
1071 1.194 joerg if (active_kernel) {
1072 1.194 joerg ssize = sizeof(nch_stats);
1073 1.194 joerg if (sysctlbyname("vfs.namecache_stats", &nch_stats, &ssize,
1074 1.194 joerg NULL, 0)) {
1075 1.194 joerg warn("vfs.namecache_stats failed");
1076 1.194 joerg memset(&nch_stats, 0, sizeof(nch_stats));
1077 1.194 joerg }
1078 1.194 joerg } else {
1079 1.206 dennis kread(namelist, X_NCHSTATS, &nch_stats, sizeof(nch_stats));
1080 1.194 joerg }
1081 1.194 joerg
1082 1.194 joerg nchtotal = nch_stats.ncs_goodhits + nch_stats.ncs_neghits +
1083 1.194 joerg nch_stats.ncs_badhits + nch_stats.ncs_falsehits +
1084 1.194 joerg nch_stats.ncs_miss + nch_stats.ncs_long;
1085 1.194 joerg (void)printf("%9" PRIu64 " total name lookups\n", nchtotal);
1086 1.194 joerg (void)printf("%9" PRIu64 " good hits\n", nch_stats.ncs_goodhits);
1087 1.194 joerg (void)printf("%9" PRIu64 " negative hits\n", nch_stats.ncs_neghits);
1088 1.194 joerg (void)printf("%9" PRIu64 " bad hits\n", nch_stats.ncs_badhits);
1089 1.194 joerg (void)printf("%9" PRIu64 " false hits\n", nch_stats.ncs_falsehits);
1090 1.194 joerg (void)printf("%9" PRIu64 " miss\n", nch_stats.ncs_miss);
1091 1.194 joerg (void)printf("%9" PRIu64 " too long\n", nch_stats.ncs_long);
1092 1.194 joerg (void)printf("%9" PRIu64 " pass2 hits\n", nch_stats.ncs_pass2);
1093 1.194 joerg (void)printf("%9" PRIu64 " 2passes\n", nch_stats.ncs_2passes);
1094 1.1 cgd (void)printf(
1095 1.1 cgd "%9s cache hits (%d%% pos + %d%% neg) system %d%% per-process\n",
1096 1.194 joerg "", PCT(nch_stats.ncs_goodhits, nchtotal),
1097 1.194 joerg PCT(nch_stats.ncs_neghits, nchtotal),
1098 1.194 joerg PCT(nch_stats.ncs_pass2, nchtotal));
1099 1.1 cgd (void)printf("%9s deletions %d%%, falsehits %d%%, toolong %d%%\n", "",
1100 1.194 joerg PCT(nch_stats.ncs_badhits, nchtotal),
1101 1.194 joerg PCT(nch_stats.ncs_falsehits, nchtotal),
1102 1.194 joerg PCT(nch_stats.ncs_long, nchtotal));
1103 1.1 cgd }
1104 1.1 cgd
1105 1.1 cgd void
1106 1.73 simonb doforkst(void)
1107 1.1 cgd {
1108 1.196 joerg if (memf != NULL) {
1109 1.196 joerg struct uvmexp uvmexp_kernel;
1110 1.196 joerg kread(namelist, X_UVMEXP, &uvmexp_kernel, sizeof(uvmexp_kernel));
1111 1.196 joerg #define COPY(field) uvmexp.field = uvmexp_kernel.field
1112 1.196 joerg COPY(forks);
1113 1.196 joerg COPY(forks_ppwait);
1114 1.196 joerg COPY(forks_sharevm);
1115 1.196 joerg #undef COPY
1116 1.196 joerg } else {
1117 1.196 joerg size_t size = sizeof(uvmexp);
1118 1.196 joerg if (sysctl(uvmexp2_mib, __arraycount(uvmexp2_mib), &uvmexp,
1119 1.196 joerg &size, NULL, 0) == -1)
1120 1.196 joerg warn("sysctl vm.uvmexp2 failed");
1121 1.196 joerg }
1122 1.58 thorpej
1123 1.196 joerg (void)printf("%" PRIu64 " forks total\n", uvmexp.forks);
1124 1.196 joerg (void)printf("%" PRIu64 " forks blocked parent\n", uvmexp.forks_ppwait);
1125 1.196 joerg (void)printf("%" PRIu64 " forks shared address space with parent\n",
1126 1.41 mrg uvmexp.forks_sharevm);
1127 1.1 cgd }
1128 1.1 cgd
1129 1.1 cgd void
1130 1.151 yamt drvstats(int *ovflwp)
1131 1.1 cgd {
1132 1.165 lukem size_t dn;
1133 1.217 mlelstv double dtime;
1134 1.151 yamt int ovflw = *ovflwp;
1135 1.1 cgd
1136 1.29 thorpej /* Calculate disk stat deltas. */
1137 1.139 dsl cpuswap();
1138 1.140 blymn drvswap();
1139 1.139 dsl tkswap();
1140 1.101 sommerfe
1141 1.140 blymn for (dn = 0; dn < ndrive; ++dn) {
1142 1.217 mlelstv /* elapsed time for disk stats */
1143 1.218 mlelstv dtime = cur.cp_etime;
1144 1.218 mlelstv if (cur.timestamp[dn].tv_sec || cur.timestamp[dn].tv_usec) {
1145 1.218 mlelstv dtime = (double)cur.timestamp[dn].tv_sec +
1146 1.218 mlelstv ((double)cur.timestamp[dn].tv_usec / (double)1000000);
1147 1.218 mlelstv }
1148 1.217 mlelstv
1149 1.140 blymn if (!drv_select[dn])
1150 1.151 yamt continue;
1151 1.151 yamt PRWORD(ovflw, " %*.0f", 3, 1,
1152 1.217 mlelstv (cur.rxfer[dn] + cur.wxfer[dn]) / dtime);
1153 1.136 blymn }
1154 1.151 yamt *ovflwp = ovflw;
1155 1.136 blymn }
1156 1.136 blymn
1157 1.136 blymn void
1158 1.171 christos cpucounters(struct cpu_counter *cc)
1159 1.171 christos {
1160 1.198 joerg static struct cpu_info **cpu_infos;
1161 1.198 joerg static int initialised;
1162 1.198 joerg struct cpu_info **slot;
1163 1.198 joerg
1164 1.198 joerg if (memf == NULL) {
1165 1.198 joerg cc->nintr = uvmexp.intrs;
1166 1.198 joerg cc->nsyscall = uvmexp.syscalls;
1167 1.198 joerg cc->nswtch = uvmexp.swtch;
1168 1.198 joerg cc->nfault = uvmexp.faults;
1169 1.198 joerg cc->ntrap = uvmexp.traps;
1170 1.198 joerg cc->nsoft = uvmexp.softs;
1171 1.198 joerg return;
1172 1.198 joerg }
1173 1.198 joerg
1174 1.198 joerg if (!initialised) {
1175 1.198 joerg kread(namelist, X_CPU_INFOS, &cpu_infos, sizeof(cpu_infos));
1176 1.198 joerg initialised = 1;
1177 1.198 joerg }
1178 1.198 joerg
1179 1.198 joerg slot = cpu_infos;
1180 1.190 rmind
1181 1.190 rmind memset(cc, 0, sizeof(*cc));
1182 1.190 rmind
1183 1.190 rmind for (;;) {
1184 1.190 rmind struct cpu_info tci, *ci = NULL;
1185 1.190 rmind
1186 1.190 rmind deref_kptr(slot++, &ci, sizeof(ci), "CPU array trashed");
1187 1.190 rmind if (!ci) {
1188 1.190 rmind break;
1189 1.190 rmind }
1190 1.190 rmind
1191 1.171 christos if ((size_t)kvm_read(kd, (u_long)ci, &tci, sizeof(tci))
1192 1.171 christos != sizeof(tci)) {
1193 1.190 rmind warnx("Can't read cpu info from %p (%s)",
1194 1.190 rmind ci, kvm_geterr(kd));
1195 1.190 rmind memset(cc, 0, sizeof(*cc));
1196 1.190 rmind return;
1197 1.171 christos }
1198 1.171 christos cc->nintr += tci.ci_data.cpu_nintr;
1199 1.171 christos cc->nsyscall += tci.ci_data.cpu_nsyscall;
1200 1.171 christos cc->nswtch = tci.ci_data.cpu_nswtch;
1201 1.171 christos cc->nfault = tci.ci_data.cpu_nfault;
1202 1.171 christos cc->ntrap = tci.ci_data.cpu_ntrap;
1203 1.171 christos cc->nsoft = tci.ci_data.cpu_nsoft;
1204 1.171 christos }
1205 1.171 christos }
1206 1.171 christos
1207 1.171 christos void
1208 1.151 yamt cpustats(int *ovflwp)
1209 1.1 cgd {
1210 1.38 mrg int state;
1211 1.129 dsl double pcnt, total;
1212 1.120 dbj double stat_us, stat_sy, stat_id;
1213 1.151 yamt int ovflw = *ovflwp;
1214 1.1 cgd
1215 1.1 cgd total = 0;
1216 1.1 cgd for (state = 0; state < CPUSTATES; ++state)
1217 1.29 thorpej total += cur.cp_time[state];
1218 1.1 cgd if (total)
1219 1.129 dsl pcnt = 100 / total;
1220 1.1 cgd else
1221 1.129 dsl pcnt = 0;
1222 1.129 dsl stat_us = (cur.cp_time[CP_USER] + cur.cp_time[CP_NICE]) * pcnt;
1223 1.129 dsl stat_sy = (cur.cp_time[CP_SYS] + cur.cp_time[CP_INTR]) * pcnt;
1224 1.129 dsl stat_id = cur.cp_time[CP_IDLE] * pcnt;
1225 1.151 yamt PRWORD(ovflw, " %*.0f", ((stat_sy >= 100) ? 2 : 3), 1, stat_us);
1226 1.151 yamt PRWORD(ovflw, " %*.0f", ((stat_us >= 100 || stat_id >= 100) ? 2 : 3), 1,
1227 1.151 yamt stat_sy);
1228 1.151 yamt PRWORD(ovflw, " %*.0f", 3, 1, stat_id);
1229 1.151 yamt *ovflwp = ovflw;
1230 1.1 cgd }
1231 1.1 cgd
1232 1.1 cgd void
1233 1.66 cgd dointr(int verbose)
1234 1.1 cgd {
1235 1.138 nonaka unsigned long *intrcnt, *ointrcnt;
1236 1.85 enami unsigned long long inttotal, uptime;
1237 1.38 mrg int nintr, inamlen;
1238 1.138 nonaka char *intrname, *ointrname;
1239 1.1 cgd
1240 1.133 chs inttotal = 0;
1241 1.1 cgd uptime = getuptime();
1242 1.133 chs nintr = intrnl[X_EINTRCNT].n_value - intrnl[X_INTRCNT].n_value;
1243 1.133 chs inamlen = intrnl[X_EINTRNAMES].n_value - intrnl[X_INTRNAMES].n_value;
1244 1.133 chs if (nintr != 0 && inamlen != 0) {
1245 1.216 ryo (void)printf("%-34s %16s %8s\n", "interrupt", "total", "rate");
1246 1.216 ryo
1247 1.138 nonaka ointrcnt = intrcnt = malloc((size_t)nintr);
1248 1.138 nonaka ointrname = intrname = malloc((size_t)inamlen);
1249 1.133 chs if (intrcnt == NULL || intrname == NULL)
1250 1.133 chs errx(1, "%s", "");
1251 1.133 chs kread(intrnl, X_INTRCNT, intrcnt, (size_t)nintr);
1252 1.133 chs kread(intrnl, X_INTRNAMES, intrname, (size_t)inamlen);
1253 1.133 chs nintr /= sizeof(long);
1254 1.133 chs while (--nintr >= 0) {
1255 1.133 chs if (*intrcnt || verbose)
1256 1.133 chs (void)printf("%-34s %16llu %8llu\n", intrname,
1257 1.133 chs (unsigned long long)*intrcnt,
1258 1.133 chs (unsigned long long)
1259 1.133 chs (*intrcnt / uptime));
1260 1.133 chs intrname += strlen(intrname) + 1;
1261 1.133 chs inttotal += *intrcnt++;
1262 1.133 chs }
1263 1.138 nonaka free(ointrcnt);
1264 1.138 nonaka free(ointrname);
1265 1.1 cgd }
1266 1.133 chs
1267 1.176 matt doevcnt(verbose, EVCNT_TYPE_INTR);
1268 1.66 cgd }
1269 1.66 cgd
1270 1.66 cgd void
1271 1.176 matt doevcnt(int verbose, int type)
1272 1.66 cgd {
1273 1.176 matt static const char * const evtypes [] = { "misc", "intr", "trap" };
1274 1.176 matt uint64_t counttotal, uptime;
1275 1.66 cgd struct evcntlist allevents;
1276 1.66 cgd struct evcnt evcnt, *evptr;
1277 1.216 ryo size_t evlen_max, total_max, rate_max;
1278 1.66 cgd char evgroup[EVCNT_STRING_MAX], evname[EVCNT_STRING_MAX];
1279 1.66 cgd
1280 1.176 matt counttotal = 0;
1281 1.66 cgd uptime = getuptime();
1282 1.176 matt
1283 1.176 matt if (memf == NULL) do {
1284 1.176 matt const int mib[4] = { CTL_KERN, KERN_EVCNT, type,
1285 1.176 matt verbose ? KERN_EVCNT_COUNT_ANY : KERN_EVCNT_COUNT_NONZERO };
1286 1.216 ryo size_t buflen0, buflen = 0;
1287 1.216 ryo void *buf0, *buf = NULL;
1288 1.176 matt const struct evcnt_sysctl *evs, *last_evs;
1289 1.176 matt for (;;) {
1290 1.176 matt size_t newlen;
1291 1.176 matt int error;
1292 1.176 matt if (buflen)
1293 1.176 matt buf = malloc(buflen);
1294 1.176 matt error = sysctl(mib, __arraycount(mib),
1295 1.176 matt buf, &newlen, NULL, 0);
1296 1.176 matt if (error) {
1297 1.193 joerg err(1, "kern.evcnt");
1298 1.176 matt if (buf)
1299 1.176 matt free(buf);
1300 1.176 matt return;
1301 1.176 matt }
1302 1.176 matt if (newlen <= buflen) {
1303 1.176 matt buflen = newlen;
1304 1.176 matt break;
1305 1.176 matt }
1306 1.176 matt if (buf)
1307 1.176 matt free(buf);
1308 1.176 matt buflen = newlen;
1309 1.176 matt }
1310 1.216 ryo buflen0 = buflen;
1311 1.216 ryo evs = buf0 = buf;
1312 1.216 ryo last_evs = (void *)((char *)buf + buflen);
1313 1.216 ryo buflen /= sizeof(uint64_t);
1314 1.216 ryo /* calc columns */
1315 1.216 ryo evlen_max = 0;
1316 1.216 ryo total_max = sizeof("total") - 1;
1317 1.216 ryo rate_max = sizeof("rate") - 1;
1318 1.216 ryo while (evs < last_evs
1319 1.216 ryo && buflen >= sizeof(*evs)/sizeof(uint64_t)
1320 1.216 ryo && buflen >= evs->ev_len) {
1321 1.216 ryo char cbuf[64];
1322 1.216 ryo size_t len;
1323 1.216 ryo len = strlen(evs->ev_strings + evs->ev_grouplen + 1);
1324 1.216 ryo len += evs->ev_grouplen + 1;
1325 1.216 ryo if (evlen_max < len)
1326 1.216 ryo evlen_max= len;
1327 1.216 ryo len = snprintf(cbuf, sizeof(cbuf), "%"PRIu64,
1328 1.216 ryo evs->ev_count);
1329 1.216 ryo if (total_max < len)
1330 1.216 ryo total_max = len;
1331 1.216 ryo len = snprintf(cbuf, sizeof(cbuf), "%"PRIu64,
1332 1.216 ryo evs->ev_count / uptime);
1333 1.216 ryo if (rate_max < len)
1334 1.216 ryo rate_max = len;
1335 1.216 ryo buflen -= evs->ev_len;
1336 1.216 ryo evs = (const void *)
1337 1.216 ryo ((const uint64_t *)evs + evs->ev_len);
1338 1.216 ryo }
1339 1.216 ryo
1340 1.216 ryo (void)printf(type == EVCNT_TYPE_ANY ?
1341 1.216 ryo "%-*s %*s %*s %s\n" :
1342 1.216 ryo "%-*s %*s %*s\n",
1343 1.216 ryo (int)evlen_max, "interrupt",
1344 1.216 ryo (int)total_max, "total",
1345 1.216 ryo (int)rate_max, "rate",
1346 1.216 ryo "type");
1347 1.216 ryo
1348 1.216 ryo buflen = buflen0;
1349 1.216 ryo evs = buf0;
1350 1.176 matt last_evs = (void *)((char *)buf + buflen);
1351 1.176 matt buflen /= sizeof(uint64_t);
1352 1.176 matt while (evs < last_evs
1353 1.176 matt && buflen >= sizeof(*evs)/sizeof(uint64_t)
1354 1.176 matt && buflen >= evs->ev_len) {
1355 1.180 nakayama (void)printf(type == EVCNT_TYPE_ANY ?
1356 1.216 ryo "%s %s%*s %*"PRIu64" %*"PRIu64" %s\n" :
1357 1.216 ryo "%s %s%*s %*"PRIu64" %*"PRIu64"\n",
1358 1.176 matt evs->ev_strings,
1359 1.176 matt evs->ev_strings + evs->ev_grouplen + 1,
1360 1.216 ryo (int)evlen_max - (evs->ev_grouplen + 1
1361 1.216 ryo + evs->ev_namelen), "",
1362 1.216 ryo (int)total_max, evs->ev_count,
1363 1.216 ryo (int)rate_max, evs->ev_count / uptime,
1364 1.176 matt (evs->ev_type < __arraycount(evtypes) ?
1365 1.216 ryo evtypes[evs->ev_type] : "?"));
1366 1.176 matt buflen -= evs->ev_len;
1367 1.180 nakayama counttotal += evs->ev_count;
1368 1.216 ryo evs = (const void *)
1369 1.216 ryo ((const uint64_t *)evs + evs->ev_len);
1370 1.176 matt }
1371 1.176 matt free(buf);
1372 1.176 matt if (type != EVCNT_TYPE_ANY)
1373 1.216 ryo (void)printf("%-*s %*"PRIu64" %*"PRIu64"\n",
1374 1.216 ryo (int)evlen_max, "Total",
1375 1.216 ryo (int)total_max, counttotal,
1376 1.216 ryo (int)rate_max, counttotal / uptime);
1377 1.176 matt return;
1378 1.176 matt } while (/*CONSTCOND*/ 0);
1379 1.176 matt
1380 1.216 ryo if (type == EVCNT_TYPE_ANY)
1381 1.216 ryo (void)printf("%-34s %16s %8s %s\n", "event", "total", "rate",
1382 1.216 ryo "type");
1383 1.216 ryo
1384 1.133 chs kread(namelist, X_ALLEVENTS, &allevents, sizeof allevents);
1385 1.133 chs evptr = TAILQ_FIRST(&allevents);
1386 1.66 cgd while (evptr) {
1387 1.87 lukem deref_kptr(evptr, &evcnt, sizeof(evcnt), "event chain trashed");
1388 1.32 cgd
1389 1.133 chs evptr = TAILQ_NEXT(&evcnt, ev_list);
1390 1.66 cgd if (evcnt.ev_count == 0 && !verbose)
1391 1.66 cgd continue;
1392 1.176 matt if (type != EVCNT_TYPE_ANY && evcnt.ev_type != type)
1393 1.176 matt continue;
1394 1.66 cgd
1395 1.153 christos deref_kptr(evcnt.ev_group, evgroup,
1396 1.153 christos (size_t)evcnt.ev_grouplen + 1, "event chain trashed");
1397 1.153 christos deref_kptr(evcnt.ev_name, evname,
1398 1.153 christos (size_t)evcnt.ev_namelen + 1, "event chain trashed");
1399 1.66 cgd
1400 1.180 nakayama (void)printf(type == EVCNT_TYPE_ANY ?
1401 1.180 nakayama "%s %s%*s %16"PRIu64" %8"PRIu64" %s\n" :
1402 1.180 nakayama "%s %s%*s %16"PRIu64" %8"PRIu64"\n",
1403 1.176 matt evgroup, evname,
1404 1.83 matt 34 - (evcnt.ev_grouplen + 1 + evcnt.ev_namelen), "",
1405 1.176 matt evcnt.ev_count,
1406 1.176 matt (evcnt.ev_count / uptime),
1407 1.176 matt (evcnt.ev_type < __arraycount(evtypes) ?
1408 1.86 enami evtypes[evcnt.ev_type] : "?"));
1409 1.176 matt
1410 1.180 nakayama counttotal += evcnt.ev_count;
1411 1.18 pk }
1412 1.176 matt if (type != EVCNT_TYPE_ANY)
1413 1.176 matt (void)printf("%-34s %16"PRIu64" %8"PRIu64"\n",
1414 1.176 matt "Total", counttotal, counttotal / uptime);
1415 1.1 cgd }
1416 1.1 cgd
1417 1.200 joerg static void
1418 1.200 joerg dopool_sysctl(int verbose, int wide)
1419 1.200 joerg {
1420 1.200 joerg uint64_t total, inuse, this_total, this_inuse;
1421 1.200 joerg struct {
1422 1.200 joerg uint64_t pt_nget;
1423 1.200 joerg uint64_t pt_nfail;
1424 1.200 joerg uint64_t pt_nput;
1425 1.200 joerg uint64_t pt_nout;
1426 1.200 joerg uint64_t pt_nitems;
1427 1.200 joerg uint64_t pt_npagealloc;
1428 1.200 joerg uint64_t pt_npagefree;
1429 1.200 joerg uint64_t pt_npages;
1430 1.200 joerg } pool_totals;
1431 1.200 joerg size_t i, len;
1432 1.200 joerg int name_len, ovflw;
1433 1.200 joerg struct pool_sysctl *pp, *data;
1434 1.200 joerg char in_use[8], avail[8], maxp[32];
1435 1.200 joerg
1436 1.200 joerg data = asysctlbyname("kern.pool", &len);
1437 1.200 joerg if (data == NULL)
1438 1.200 joerg err(1, "failed to reead kern.pool");
1439 1.200 joerg
1440 1.202 joerg memset(&pool_totals, 0, sizeof pool_totals);
1441 1.200 joerg total = inuse = 0;
1442 1.200 joerg len /= sizeof(*data);
1443 1.200 joerg
1444 1.200 joerg (void)printf("Memory resource pool statistics\n");
1445 1.200 joerg (void)printf(
1446 1.200 joerg "%-*s%*s%*s%5s%*s%s%s%*s%*s%6s%s%6s%6s%6s%5s%s%s\n",
1447 1.200 joerg wide ? 16 : 11, "Name",
1448 1.200 joerg wide ? 6 : 5, "Size",
1449 1.200 joerg wide ? 12 : 9, "Requests",
1450 1.200 joerg "Fail",
1451 1.200 joerg wide ? 12 : 9, "Releases",
1452 1.200 joerg wide ? " InUse" : "",
1453 1.200 joerg wide ? " Avail" : "",
1454 1.200 joerg wide ? 7 : 6, "Pgreq",
1455 1.200 joerg wide ? 7 : 6, "Pgrel",
1456 1.200 joerg "Npage",
1457 1.200 joerg wide ? " PageSz" : "",
1458 1.200 joerg "Hiwat",
1459 1.200 joerg "Minpg",
1460 1.200 joerg "Maxpg",
1461 1.200 joerg "Idle",
1462 1.200 joerg wide ? " Flags" : "",
1463 1.200 joerg wide ? " Util" : "");
1464 1.200 joerg
1465 1.200 joerg name_len = MIN((int)sizeof(pp->pr_wchan), wide ? 16 : 11);
1466 1.200 joerg for (i = 0; i < len; ++i) {
1467 1.200 joerg pp = &data[i];
1468 1.200 joerg if (pp->pr_nget == 0 && !verbose)
1469 1.200 joerg continue;
1470 1.200 joerg if (pp->pr_maxpages == UINT_MAX)
1471 1.200 joerg (void)snprintf(maxp, sizeof(maxp), "inf");
1472 1.200 joerg else
1473 1.200 joerg (void)snprintf(maxp, sizeof(maxp), "%" PRIu64,
1474 1.200 joerg pp->pr_maxpages);
1475 1.200 joerg ovflw = 0;
1476 1.200 joerg PRWORD(ovflw, "%-*s", name_len, 0, pp->pr_wchan);
1477 1.200 joerg PRWORD(ovflw, " %*" PRIu64, wide ? 6 : 5, 1, pp->pr_size);
1478 1.200 joerg PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pp->pr_nget);
1479 1.200 joerg pool_totals.pt_nget += pp->pr_nget;
1480 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_nfail);
1481 1.200 joerg pool_totals.pt_nfail += pp->pr_nfail;
1482 1.200 joerg PRWORD(ovflw, " %*" PRIu64, wide ? 12 : 9, 1, pp->pr_nput);
1483 1.200 joerg pool_totals.pt_nput += pp->pr_nput;
1484 1.200 joerg if (wide) {
1485 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 7, 1, pp->pr_nout);
1486 1.200 joerg pool_totals.pt_nout += pp->pr_nout;
1487 1.200 joerg }
1488 1.200 joerg if (wide) {
1489 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_nitems);
1490 1.200 joerg pool_totals.pt_nitems += pp->pr_nitems;
1491 1.200 joerg }
1492 1.200 joerg PRWORD(ovflw, " %*" PRIu64, wide ? 7 : 6, 1, pp->pr_npagealloc);
1493 1.200 joerg pool_totals.pt_npagealloc += pp->pr_npagealloc;
1494 1.200 joerg PRWORD(ovflw, " %*" PRIu64, wide ? 7 : 6, 1, pp->pr_npagefree);
1495 1.200 joerg pool_totals.pt_npagefree += pp->pr_npagefree;
1496 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_npages);
1497 1.200 joerg pool_totals.pt_npages += pp->pr_npages;
1498 1.200 joerg if (wide)
1499 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 7, 1, pp->pr_pagesize);
1500 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_hiwat);
1501 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_minpages);
1502 1.200 joerg PRWORD(ovflw, " %*s", 6, 1, maxp);
1503 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_nidle);
1504 1.200 joerg if (wide)
1505 1.200 joerg PRWORD(ovflw, " 0x%0*" PRIx64, 4, 1,
1506 1.200 joerg pp->pr_flags);
1507 1.200 joerg
1508 1.200 joerg this_inuse = pp->pr_nout * pp->pr_size;
1509 1.200 joerg this_total = pp->pr_npages * pp->pr_pagesize;
1510 1.200 joerg if (pp->pr_flags & PR_RECURSIVE) {
1511 1.200 joerg /*
1512 1.200 joerg * Don't count in-use memory, since it's part
1513 1.200 joerg * of another pool and will be accounted for
1514 1.200 joerg * there.
1515 1.200 joerg */
1516 1.200 joerg total += (this_total - this_inuse);
1517 1.200 joerg } else {
1518 1.200 joerg inuse += this_inuse;
1519 1.200 joerg total += this_total;
1520 1.200 joerg }
1521 1.200 joerg if (wide) {
1522 1.200 joerg if (this_total == 0)
1523 1.200 joerg (void)printf(" ---");
1524 1.200 joerg else
1525 1.200 joerg (void)printf(" %5.1f%%",
1526 1.200 joerg (100.0 * this_inuse) / this_total);
1527 1.200 joerg }
1528 1.200 joerg (void)printf("\n");
1529 1.200 joerg }
1530 1.200 joerg if (wide) {
1531 1.200 joerg snprintf(in_use, sizeof in_use, "%7"PRId64, pool_totals.pt_nout);
1532 1.200 joerg snprintf(avail, sizeof avail, "%6"PRId64, pool_totals.pt_nitems);
1533 1.200 joerg } else {
1534 1.200 joerg in_use[0] = '\0';
1535 1.200 joerg avail[0] = '\0';
1536 1.200 joerg }
1537 1.200 joerg (void)printf(
1538 1.200 joerg "%-*s%*s%*"PRId64"%5"PRId64"%*"PRId64"%s%s%*"PRId64"%*"PRId64"%6"PRId64"\n",
1539 1.200 joerg wide ? 16 : 11, "Totals",
1540 1.200 joerg wide ? 6 : 5, "",
1541 1.200 joerg wide ? 12 : 9, pool_totals.pt_nget,
1542 1.200 joerg pool_totals.pt_nfail,
1543 1.200 joerg wide ? 12 : 9, pool_totals.pt_nput,
1544 1.200 joerg in_use,
1545 1.200 joerg avail,
1546 1.200 joerg wide ? 7 : 6, pool_totals.pt_npagealloc,
1547 1.200 joerg wide ? 7 : 6, pool_totals.pt_npagefree,
1548 1.200 joerg pool_totals.pt_npages);
1549 1.200 joerg
1550 1.200 joerg inuse /= KILO;
1551 1.200 joerg total /= KILO;
1552 1.200 joerg (void)printf(
1553 1.201 joerg "\nIn use %" PRIu64 "K, "
1554 1.201 joerg "total allocated %" PRIu64 "K; utilization %.1f%%\n",
1555 1.200 joerg inuse, total, (100.0 * inuse) / total);
1556 1.200 joerg
1557 1.200 joerg free(data);
1558 1.200 joerg }
1559 1.200 joerg
1560 1.51 pk void
1561 1.126 simonb dopool(int verbose, int wide)
1562 1.51 pk {
1563 1.69 enami int first, ovflw;
1564 1.87 lukem void *addr;
1565 1.126 simonb long total, inuse, this_total, this_inuse;
1566 1.189 mrg struct {
1567 1.189 mrg uint64_t pt_nget;
1568 1.189 mrg uint64_t pt_nfail;
1569 1.189 mrg uint64_t pt_nput;
1570 1.189 mrg uint64_t pt_nout;
1571 1.189 mrg uint64_t pt_nitems;
1572 1.189 mrg uint64_t pt_npagealloc;
1573 1.189 mrg uint64_t pt_npagefree;
1574 1.189 mrg uint64_t pt_npages;
1575 1.189 mrg } pool_totals;
1576 1.189 mrg char in_use[8];
1577 1.189 mrg char avail[8];
1578 1.157 ad TAILQ_HEAD(,pool) pool_head;
1579 1.51 pk struct pool pool, *pp = &pool;
1580 1.98 christos struct pool_allocator pa;
1581 1.87 lukem char name[32], maxp[32];
1582 1.51 pk
1583 1.200 joerg if (memf == NULL)
1584 1.200 joerg return dopool_sysctl(verbose, wide);
1585 1.200 joerg
1586 1.189 mrg memset(&pool_totals, 0, sizeof pool_totals);
1587 1.133 chs kread(namelist, X_POOLHEAD, &pool_head, sizeof(pool_head));
1588 1.157 ad addr = TAILQ_FIRST(&pool_head);
1589 1.51 pk
1590 1.126 simonb total = inuse = 0;
1591 1.126 simonb
1592 1.157 ad for (first = 1; addr != NULL; addr = TAILQ_NEXT(pp, pr_poollist) ) {
1593 1.87 lukem deref_kptr(addr, pp, sizeof(*pp), "pool chain trashed");
1594 1.98 christos deref_kptr(pp->pr_alloc, &pa, sizeof(pa),
1595 1.125 dsainty "pool allocator trashed");
1596 1.87 lukem deref_kptr(pp->pr_wchan, name, sizeof(name),
1597 1.98 christos "pool wait channel trashed");
1598 1.87 lukem name[sizeof(name)-1] = '\0';
1599 1.51 pk
1600 1.51 pk if (first) {
1601 1.51 pk (void)printf("Memory resource pool statistics\n");
1602 1.51 pk (void)printf(
1603 1.126 simonb "%-*s%*s%*s%5s%*s%s%s%*s%*s%6s%s%6s%6s%6s%5s%s%s\n",
1604 1.126 simonb wide ? 16 : 11, "Name",
1605 1.126 simonb wide ? 6 : 5, "Size",
1606 1.126 simonb wide ? 12 : 9, "Requests",
1607 1.75 enami "Fail",
1608 1.126 simonb wide ? 12 : 9, "Releases",
1609 1.148 simonb wide ? " InUse" : "",
1610 1.126 simonb wide ? " Avail" : "",
1611 1.126 simonb wide ? 7 : 6, "Pgreq",
1612 1.126 simonb wide ? 7 : 6, "Pgrel",
1613 1.75 enami "Npage",
1614 1.126 simonb wide ? " PageSz" : "",
1615 1.75 enami "Hiwat",
1616 1.75 enami "Minpg",
1617 1.75 enami "Maxpg",
1618 1.126 simonb "Idle",
1619 1.126 simonb wide ? " Flags" : "",
1620 1.126 simonb wide ? " Util" : "");
1621 1.51 pk first = 0;
1622 1.51 pk }
1623 1.113 dsl if (pp->pr_nget == 0 && !verbose)
1624 1.113 dsl continue;
1625 1.51 pk if (pp->pr_maxpages == UINT_MAX)
1626 1.153 christos (void)snprintf(maxp, sizeof(maxp), "inf");
1627 1.51 pk else
1628 1.153 christos (void)snprintf(maxp, sizeof(maxp), "%u",
1629 1.153 christos pp->pr_maxpages);
1630 1.69 enami ovflw = 0;
1631 1.126 simonb PRWORD(ovflw, "%-*s", wide ? 16 : 11, 0, name);
1632 1.126 simonb PRWORD(ovflw, " %*u", wide ? 6 : 5, 1, pp->pr_size);
1633 1.126 simonb PRWORD(ovflw, " %*lu", wide ? 12 : 9, 1, pp->pr_nget);
1634 1.189 mrg pool_totals.pt_nget += pp->pr_nget;
1635 1.69 enami PRWORD(ovflw, " %*lu", 5, 1, pp->pr_nfail);
1636 1.189 mrg pool_totals.pt_nfail += pp->pr_nfail;
1637 1.126 simonb PRWORD(ovflw, " %*lu", wide ? 12 : 9, 1, pp->pr_nput);
1638 1.189 mrg pool_totals.pt_nput += pp->pr_nput;
1639 1.189 mrg if (wide) {
1640 1.148 simonb PRWORD(ovflw, " %*u", 7, 1, pp->pr_nout);
1641 1.189 mrg pool_totals.pt_nout += pp->pr_nout;
1642 1.189 mrg }
1643 1.189 mrg if (wide) {
1644 1.126 simonb PRWORD(ovflw, " %*u", 6, 1, pp->pr_nitems);
1645 1.189 mrg pool_totals.pt_nitems += pp->pr_nitems;
1646 1.189 mrg }
1647 1.126 simonb PRWORD(ovflw, " %*lu", wide ? 7 : 6, 1, pp->pr_npagealloc);
1648 1.189 mrg pool_totals.pt_npagealloc += pp->pr_npagealloc;
1649 1.126 simonb PRWORD(ovflw, " %*lu", wide ? 7 : 6, 1, pp->pr_npagefree);
1650 1.189 mrg pool_totals.pt_npagefree += pp->pr_npagefree;
1651 1.126 simonb PRWORD(ovflw, " %*u", 6, 1, pp->pr_npages);
1652 1.189 mrg pool_totals.pt_npages += pp->pr_npages;
1653 1.126 simonb if (wide)
1654 1.126 simonb PRWORD(ovflw, " %*u", 7, 1, pa.pa_pagesz);
1655 1.126 simonb PRWORD(ovflw, " %*u", 6, 1, pp->pr_hiwat);
1656 1.126 simonb PRWORD(ovflw, " %*u", 6, 1, pp->pr_minpages);
1657 1.69 enami PRWORD(ovflw, " %*s", 6, 1, maxp);
1658 1.126 simonb PRWORD(ovflw, " %*lu", 5, 1, pp->pr_nidle);
1659 1.126 simonb if (wide)
1660 1.126 simonb PRWORD(ovflw, " 0x%0*x", 4, 1,
1661 1.126 simonb pp->pr_flags | pp->pr_roflags);
1662 1.51 pk
1663 1.126 simonb this_inuse = pp->pr_nout * pp->pr_size;
1664 1.126 simonb this_total = pp->pr_npages * pa.pa_pagesz;
1665 1.84 bjh21 if (pp->pr_roflags & PR_RECURSIVE) {
1666 1.84 bjh21 /*
1667 1.84 bjh21 * Don't count in-use memory, since it's part
1668 1.84 bjh21 * of another pool and will be accounted for
1669 1.84 bjh21 * there.
1670 1.84 bjh21 */
1671 1.126 simonb total += (this_total - this_inuse);
1672 1.84 bjh21 } else {
1673 1.126 simonb inuse += this_inuse;
1674 1.126 simonb total += this_total;
1675 1.84 bjh21 }
1676 1.126 simonb if (wide) {
1677 1.126 simonb if (this_total == 0)
1678 1.153 christos (void)printf(" ---");
1679 1.126 simonb else
1680 1.153 christos (void)printf(" %5.1f%%",
1681 1.126 simonb (100.0 * this_inuse) / this_total);
1682 1.126 simonb }
1683 1.153 christos (void)printf("\n");
1684 1.51 pk }
1685 1.189 mrg if (wide) {
1686 1.189 mrg snprintf(in_use, sizeof in_use, "%7"PRId64, pool_totals.pt_nout);
1687 1.189 mrg snprintf(avail, sizeof avail, "%6"PRId64, pool_totals.pt_nitems);
1688 1.189 mrg } else {
1689 1.189 mrg in_use[0] = '\0';
1690 1.189 mrg avail[0] = '\0';
1691 1.189 mrg }
1692 1.189 mrg (void)printf(
1693 1.189 mrg "%-*s%*s%*"PRId64"%5"PRId64"%*"PRId64"%s%s%*"PRId64"%*"PRId64"%6"PRId64"\n",
1694 1.189 mrg wide ? 16 : 11, "Totals",
1695 1.189 mrg wide ? 6 : 5, "",
1696 1.189 mrg wide ? 12 : 9, pool_totals.pt_nget,
1697 1.189 mrg pool_totals.pt_nfail,
1698 1.189 mrg wide ? 12 : 9, pool_totals.pt_nput,
1699 1.189 mrg in_use,
1700 1.189 mrg avail,
1701 1.189 mrg wide ? 7 : 6, pool_totals.pt_npagealloc,
1702 1.189 mrg wide ? 7 : 6, pool_totals.pt_npagefree,
1703 1.189 mrg pool_totals.pt_npages);
1704 1.51 pk
1705 1.152 christos inuse /= KILO;
1706 1.152 christos total /= KILO;
1707 1.153 christos (void)printf(
1708 1.153 christos "\nIn use %ldK, total allocated %ldK; utilization %.1f%%\n",
1709 1.126 simonb inuse, total, (100.0 * inuse) / total);
1710 1.1 cgd }
1711 1.96 enami
1712 1.200 joerg static void
1713 1.200 joerg dopoolcache_sysctl(int verbose)
1714 1.200 joerg {
1715 1.200 joerg struct pool_sysctl *data, *pp;
1716 1.200 joerg size_t i, len;
1717 1.200 joerg bool first = true;
1718 1.200 joerg int ovflw;
1719 1.200 joerg uint64_t tot;
1720 1.208 christos double p;
1721 1.200 joerg
1722 1.200 joerg data = asysctlbyname("kern.pool", &len);
1723 1.200 joerg if (data == NULL)
1724 1.200 joerg err(1, "failed to reead kern.pool");
1725 1.200 joerg len /= sizeof(*data);
1726 1.200 joerg
1727 1.200 joerg for (i = 0; i < len; ++i) {
1728 1.200 joerg pp = &data[i];
1729 1.200 joerg if (pp->pr_cache_meta_size == 0)
1730 1.200 joerg continue;
1731 1.200 joerg
1732 1.200 joerg if (pp->pr_cache_nmiss_global == 0 && !verbose)
1733 1.200 joerg continue;
1734 1.200 joerg
1735 1.200 joerg if (first) {
1736 1.200 joerg (void)printf("Pool cache statistics.\n");
1737 1.200 joerg (void)printf("%-*s%*s%*s%*s%*s%*s%*s%*s%*s%*s\n",
1738 1.200 joerg 12, "Name",
1739 1.200 joerg 6, "Spin",
1740 1.200 joerg 6, "GrpSz",
1741 1.200 joerg 5, "Full",
1742 1.200 joerg 5, "Emty",
1743 1.200 joerg 10, "PoolLayer",
1744 1.200 joerg 11, "CacheLayer",
1745 1.200 joerg 6, "Hit%",
1746 1.200 joerg 12, "CpuLayer",
1747 1.200 joerg 6, "Hit%"
1748 1.200 joerg );
1749 1.200 joerg first = false;
1750 1.200 joerg }
1751 1.200 joerg
1752 1.200 joerg ovflw = 0;
1753 1.200 joerg PRWORD(ovflw, "%-*s", MIN((int)sizeof(pp->pr_wchan), 13), 1,
1754 1.200 joerg pp->pr_wchan);
1755 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_cache_ncontended);
1756 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 6, 1, pp->pr_cache_meta_size);
1757 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_cache_nfull);
1758 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 5, 1, pp->pr_cache_nempty);
1759 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 10, 1, pp->pr_cache_nmiss_global);
1760 1.200 joerg
1761 1.200 joerg tot = pp->pr_cache_nhit_global + pp->pr_cache_nmiss_global;
1762 1.200 joerg p = pp->pr_cache_nhit_global * 100.0 / tot;
1763 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 11, 1, tot);
1764 1.200 joerg PRWORD(ovflw, " %*.1f", 6, 1, p);
1765 1.200 joerg
1766 1.200 joerg tot = pp->pr_cache_nhit_pcpu + pp->pr_cache_nmiss_pcpu;
1767 1.200 joerg p = pp->pr_cache_nhit_pcpu * 100.0 / tot;
1768 1.200 joerg PRWORD(ovflw, " %*" PRIu64, 12, 1, tot);
1769 1.200 joerg PRWORD(ovflw, " %*.1f", 6, 1, p);
1770 1.200 joerg printf("\n");
1771 1.200 joerg }
1772 1.200 joerg }
1773 1.200 joerg
1774 1.96 enami void
1775 1.182 yamt dopoolcache(int verbose)
1776 1.96 enami {
1777 1.96 enami struct pool_cache pool_cache, *pc = &pool_cache;
1778 1.154 ad pool_cache_cpu_t cache_cpu, *cc = &cache_cpu;
1779 1.157 ad TAILQ_HEAD(,pool) pool_head;
1780 1.154 ad struct pool pool, *pp = &pool;
1781 1.154 ad char name[32];
1782 1.154 ad uint64_t cpuhit, cpumiss, tot;
1783 1.154 ad void *addr;
1784 1.165 lukem int first, ovflw;
1785 1.165 lukem size_t i;
1786 1.154 ad double p;
1787 1.96 enami
1788 1.200 joerg if (memf == NULL)
1789 1.200 joerg return dopoolcache_sysctl(verbose);
1790 1.200 joerg
1791 1.154 ad kread(namelist, X_POOLHEAD, &pool_head, sizeof(pool_head));
1792 1.157 ad addr = TAILQ_FIRST(&pool_head);
1793 1.96 enami
1794 1.157 ad for (first = 1; addr != NULL; addr = TAILQ_NEXT(pp, pr_poollist) ) {
1795 1.154 ad deref_kptr(addr, pp, sizeof(*pp), "pool chain trashed");
1796 1.154 ad if (pp->pr_cache == NULL)
1797 1.96 enami continue;
1798 1.154 ad deref_kptr(pp->pr_wchan, name, sizeof(name),
1799 1.154 ad "pool wait channel trashed");
1800 1.154 ad deref_kptr(pp->pr_cache, pc, sizeof(*pc), "pool cache trashed");
1801 1.182 yamt if (pc->pc_misses == 0 && !verbose)
1802 1.182 yamt continue;
1803 1.154 ad name[sizeof(name)-1] = '\0';
1804 1.154 ad
1805 1.154 ad cpuhit = 0;
1806 1.154 ad cpumiss = 0;
1807 1.184 jym for (i = 0; i < __arraycount(pc->pc_cpus); i++) {
1808 1.154 ad if ((addr = pc->pc_cpus[i]) == NULL)
1809 1.154 ad continue;
1810 1.154 ad deref_kptr(addr, cc, sizeof(*cc),
1811 1.154 ad "pool cache cpu trashed");
1812 1.154 ad cpuhit += cc->cc_hits;
1813 1.154 ad cpumiss += cc->cc_misses;
1814 1.137 chs }
1815 1.154 ad
1816 1.154 ad if (first) {
1817 1.154 ad (void)printf("Pool cache statistics.\n");
1818 1.156 ad (void)printf("%-*s%*s%*s%*s%*s%*s%*s%*s%*s%*s\n",
1819 1.154 ad 12, "Name",
1820 1.154 ad 6, "Spin",
1821 1.156 ad 6, "GrpSz",
1822 1.156 ad 5, "Full",
1823 1.156 ad 5, "Emty",
1824 1.156 ad 10, "PoolLayer",
1825 1.156 ad 11, "CacheLayer",
1826 1.154 ad 6, "Hit%",
1827 1.154 ad 12, "CpuLayer",
1828 1.154 ad 6, "Hit%"
1829 1.154 ad );
1830 1.154 ad first = 0;
1831 1.96 enami }
1832 1.154 ad
1833 1.154 ad ovflw = 0;
1834 1.154 ad PRWORD(ovflw, "%-*s", 13, 1, name);
1835 1.154 ad PRWORD(ovflw, " %*llu", 6, 1, (long long)pc->pc_contended);
1836 1.156 ad PRWORD(ovflw, " %*u", 6, 1, pc->pc_pcgsize);
1837 1.156 ad PRWORD(ovflw, " %*u", 5, 1, pc->pc_nfull);
1838 1.156 ad PRWORD(ovflw, " %*u", 5, 1, pc->pc_nempty);
1839 1.156 ad PRWORD(ovflw, " %*llu", 10, 1, (long long)pc->pc_misses);
1840 1.154 ad
1841 1.154 ad tot = pc->pc_hits + pc->pc_misses;
1842 1.154 ad p = pc->pc_hits * 100.0 / (tot);
1843 1.156 ad PRWORD(ovflw, " %*llu", 11, 1, (long long)tot);
1844 1.154 ad PRWORD(ovflw, " %*.1f", 6, 1, p);
1845 1.154 ad
1846 1.154 ad tot = cpuhit + cpumiss;
1847 1.154 ad p = cpuhit * 100.0 / (tot);
1848 1.154 ad PRWORD(ovflw, " %*llu", 12, 1, (long long)tot);
1849 1.154 ad PRWORD(ovflw, " %*.1f", 6, 1, p);
1850 1.154 ad printf("\n");
1851 1.96 enami }
1852 1.96 enami }
1853 1.90 lukem
1854 1.87 lukem enum hashtype { /* from <sys/systm.h> */
1855 1.87 lukem HASH_LIST,
1856 1.87 lukem HASH_TAILQ
1857 1.87 lukem };
1858 1.87 lukem
1859 1.87 lukem struct uidinfo { /* XXX: no kernel header file */
1860 1.87 lukem LIST_ENTRY(uidinfo) ui_hash;
1861 1.87 lukem uid_t ui_uid;
1862 1.87 lukem long ui_proccnt;
1863 1.87 lukem };
1864 1.87 lukem
1865 1.87 lukem struct kernel_hash {
1866 1.90 lukem const char * description; /* description */
1867 1.90 lukem int hashsize; /* nlist index for hash size */
1868 1.90 lukem int hashtbl; /* nlist index for hash table */
1869 1.90 lukem enum hashtype type; /* type of hash table */
1870 1.101 sommerfe size_t offset; /* offset of {LIST,TAILQ}_NEXT */
1871 1.87 lukem } khashes[] =
1872 1.87 lukem {
1873 1.87 lukem {
1874 1.90 lukem "buffer hash",
1875 1.90 lukem X_BUFHASH, X_BUFHASHTBL,
1876 1.90 lukem HASH_LIST, offsetof(struct buf, b_hash)
1877 1.90 lukem }, {
1878 1.90 lukem "ipv4 address -> interface hash",
1879 1.87 lukem X_IFADDRHASH, X_IFADDRHASHTBL,
1880 1.87 lukem HASH_LIST, offsetof(struct in_ifaddr, ia_hash),
1881 1.90 lukem }, {
1882 1.90 lukem "name cache hash",
1883 1.89 lukem X_NCHASH, X_NCHASHTBL,
1884 1.89 lukem HASH_LIST, offsetof(struct namecache, nc_hash),
1885 1.90 lukem }, {
1886 1.90 lukem "name cache directory hash",
1887 1.89 lukem X_NCVHASH, X_NCVHASHTBL,
1888 1.89 lukem HASH_LIST, offsetof(struct namecache, nc_vhash),
1889 1.90 lukem }, {
1890 1.90 lukem "user info (uid -> used processes) hash",
1891 1.90 lukem X_UIHASH, X_UIHASHTBL,
1892 1.90 lukem HASH_LIST, offsetof(struct uidinfo, ui_hash),
1893 1.90 lukem }, {
1894 1.90 lukem NULL, -1, -1, 0, 0,
1895 1.87 lukem }
1896 1.87 lukem };
1897 1.87 lukem
1898 1.87 lukem void
1899 1.88 lukem dohashstat(int verbose, int todo, const char *hashname)
1900 1.101 sommerfe {
1901 1.87 lukem LIST_HEAD(, generic) *hashtbl_list;
1902 1.87 lukem TAILQ_HEAD(, generic) *hashtbl_tailq;
1903 1.87 lukem struct kernel_hash *curhash;
1904 1.118 itojun void *hashaddr, *hashbuf, *nhashbuf, *nextaddr;
1905 1.87 lukem size_t elemsize, hashbufsize, thissize;
1906 1.165 lukem u_long hashsize, i;
1907 1.165 lukem int used, items, chain, maxchain;
1908 1.87 lukem
1909 1.87 lukem hashbuf = NULL;
1910 1.87 lukem hashbufsize = 0;
1911 1.88 lukem
1912 1.88 lukem if (todo & HASHLIST) {
1913 1.153 christos (void)printf("Supported hashes:\n");
1914 1.90 lukem for (curhash = khashes; curhash->description; curhash++) {
1915 1.101 sommerfe if (hashnl[curhash->hashsize].n_value == 0 ||
1916 1.90 lukem hashnl[curhash->hashtbl].n_value == 0)
1917 1.90 lukem continue;
1918 1.153 christos (void)printf("\t%-16s%s\n",
1919 1.90 lukem hashnl[curhash->hashsize].n_name + 1,
1920 1.90 lukem curhash->description);
1921 1.88 lukem }
1922 1.88 lukem return;
1923 1.88 lukem }
1924 1.88 lukem
1925 1.88 lukem if (hashname != NULL) {
1926 1.90 lukem for (curhash = khashes; curhash->description; curhash++) {
1927 1.90 lukem if (strcmp(hashnl[curhash->hashsize].n_name + 1,
1928 1.90 lukem hashname) == 0 &&
1929 1.101 sommerfe hashnl[curhash->hashsize].n_value != 0 &&
1930 1.90 lukem hashnl[curhash->hashtbl].n_value != 0)
1931 1.88 lukem break;
1932 1.88 lukem }
1933 1.90 lukem if (curhash->description == NULL) {
1934 1.90 lukem warnx("%s: no such hash", hashname);
1935 1.90 lukem return;
1936 1.90 lukem }
1937 1.88 lukem }
1938 1.88 lukem
1939 1.153 christos (void)printf(
1940 1.88 lukem "%-16s %8s %8s %8s %8s %8s %8s\n"
1941 1.88 lukem "%-16s %8s %8s %8s %8s %8s %8s\n",
1942 1.88 lukem "", "total", "used", "util", "num", "average", "maximum",
1943 1.88 lukem "hash table", "buckets", "buckets", "%", "items", "chain",
1944 1.88 lukem "chain");
1945 1.87 lukem
1946 1.90 lukem for (curhash = khashes; curhash->description; curhash++) {
1947 1.101 sommerfe if (hashnl[curhash->hashsize].n_value == 0 ||
1948 1.90 lukem hashnl[curhash->hashtbl].n_value == 0)
1949 1.90 lukem continue;
1950 1.88 lukem if (hashname != NULL &&
1951 1.90 lukem strcmp(hashnl[curhash->hashsize].n_name + 1, hashname))
1952 1.88 lukem continue;
1953 1.87 lukem elemsize = curhash->type == HASH_LIST ?
1954 1.87 lukem sizeof(*hashtbl_list) : sizeof(*hashtbl_tailq);
1955 1.90 lukem deref_kptr((void *)hashnl[curhash->hashsize].n_value,
1956 1.90 lukem &hashsize, sizeof(hashsize),
1957 1.90 lukem hashnl[curhash->hashsize].n_name);
1958 1.87 lukem hashsize++;
1959 1.90 lukem deref_kptr((void *)hashnl[curhash->hashtbl].n_value,
1960 1.90 lukem &hashaddr, sizeof(hashaddr),
1961 1.90 lukem hashnl[curhash->hashtbl].n_name);
1962 1.87 lukem if (verbose)
1963 1.153 christos (void)printf(
1964 1.153 christos "%s %lu, %s %p, offset %ld, elemsize %llu\n",
1965 1.90 lukem hashnl[curhash->hashsize].n_name + 1, hashsize,
1966 1.90 lukem hashnl[curhash->hashtbl].n_name + 1, hashaddr,
1967 1.101 sommerfe (long)curhash->offset,
1968 1.91 jmc (unsigned long long)elemsize);
1969 1.87 lukem thissize = hashsize * elemsize;
1970 1.144 christos if (hashbuf == NULL || thissize > hashbufsize) {
1971 1.118 itojun if ((nhashbuf = realloc(hashbuf, thissize)) == NULL)
1972 1.101 sommerfe errx(1, "malloc hashbuf %llu",
1973 1.91 jmc (unsigned long long)hashbufsize);
1974 1.118 itojun hashbuf = nhashbuf;
1975 1.118 itojun hashbufsize = thissize;
1976 1.87 lukem }
1977 1.87 lukem deref_kptr(hashaddr, hashbuf, thissize,
1978 1.90 lukem hashnl[curhash->hashtbl].n_name);
1979 1.87 lukem used = 0;
1980 1.87 lukem items = maxchain = 0;
1981 1.135 lukem if (curhash->type == HASH_LIST) {
1982 1.87 lukem hashtbl_list = hashbuf;
1983 1.135 lukem hashtbl_tailq = NULL;
1984 1.135 lukem } else {
1985 1.135 lukem hashtbl_list = NULL;
1986 1.87 lukem hashtbl_tailq = hashbuf;
1987 1.135 lukem }
1988 1.87 lukem for (i = 0; i < hashsize; i++) {
1989 1.87 lukem if (curhash->type == HASH_LIST)
1990 1.87 lukem nextaddr = LIST_FIRST(&hashtbl_list[i]);
1991 1.87 lukem else
1992 1.87 lukem nextaddr = TAILQ_FIRST(&hashtbl_tailq[i]);
1993 1.87 lukem if (nextaddr == NULL)
1994 1.87 lukem continue;
1995 1.87 lukem if (verbose)
1996 1.165 lukem (void)printf("%5lu: %p\n", i, nextaddr);
1997 1.87 lukem used++;
1998 1.87 lukem chain = 0;
1999 1.87 lukem do {
2000 1.87 lukem chain++;
2001 1.87 lukem deref_kptr((char *)nextaddr + curhash->offset,
2002 1.87 lukem &nextaddr, sizeof(void *),
2003 1.87 lukem "hash chain corrupted");
2004 1.87 lukem if (verbose > 1)
2005 1.153 christos (void)printf("got nextaddr as %p\n",
2006 1.87 lukem nextaddr);
2007 1.87 lukem } while (nextaddr != NULL);
2008 1.87 lukem items += chain;
2009 1.87 lukem if (verbose && chain > 1)
2010 1.153 christos (void)printf("\tchain = %d\n", chain);
2011 1.87 lukem if (chain > maxchain)
2012 1.87 lukem maxchain = chain;
2013 1.87 lukem }
2014 1.153 christos (void)printf("%-16s %8ld %8d %8.2f %8d %8.2f %8d\n",
2015 1.90 lukem hashnl[curhash->hashsize].n_name + 1,
2016 1.87 lukem hashsize, used, used * 100.0 / hashsize,
2017 1.93 lukem items, used ? (double)items / used : 0.0, maxchain);
2018 1.87 lukem }
2019 1.87 lukem }
2020 1.87 lukem
2021 1.1 cgd /*
2022 1.147 kardel * kreadc like kread but returns 1 if sucessful, 0 otherwise
2023 1.147 kardel */
2024 1.147 kardel int
2025 1.147 kardel kreadc(struct nlist *nl, int nlx, void *addr, size_t size)
2026 1.147 kardel {
2027 1.147 kardel const char *sym;
2028 1.147 kardel
2029 1.147 kardel sym = nl[nlx].n_name;
2030 1.147 kardel if (*sym == '_')
2031 1.147 kardel ++sym;
2032 1.147 kardel if (nl[nlx].n_type == 0 || nl[nlx].n_value == 0)
2033 1.147 kardel return 0;
2034 1.147 kardel deref_kptr((void *)nl[nlx].n_value, addr, size, sym);
2035 1.147 kardel return 1;
2036 1.147 kardel }
2037 1.147 kardel
2038 1.147 kardel /*
2039 1.90 lukem * kread reads something from the kernel, given its nlist index in namelist[].
2040 1.1 cgd */
2041 1.1 cgd void
2042 1.133 chs kread(struct nlist *nl, int nlx, void *addr, size_t size)
2043 1.1 cgd {
2044 1.50 mycroft const char *sym;
2045 1.1 cgd
2046 1.133 chs sym = nl[nlx].n_name;
2047 1.87 lukem if (*sym == '_')
2048 1.87 lukem ++sym;
2049 1.133 chs if (nl[nlx].n_type == 0 || nl[nlx].n_value == 0)
2050 1.87 lukem errx(1, "symbol %s not defined", sym);
2051 1.133 chs deref_kptr((void *)nl[nlx].n_value, addr, size, sym);
2052 1.87 lukem }
2053 1.87 lukem
2054 1.87 lukem /*
2055 1.101 sommerfe * Dereference the kernel pointer `kptr' and fill in the local copy
2056 1.87 lukem * pointed to by `ptr'. The storage space must be pre-allocated,
2057 1.87 lukem * and the size of the copy passed in `len'.
2058 1.87 lukem */
2059 1.87 lukem void
2060 1.87 lukem deref_kptr(const void *kptr, void *ptr, size_t len, const char *msg)
2061 1.87 lukem {
2062 1.87 lukem
2063 1.87 lukem if (*msg == '_')
2064 1.87 lukem msg++;
2065 1.165 lukem if ((size_t)kvm_read(kd, (u_long)kptr, (char *)ptr, len) != len)
2066 1.87 lukem errx(1, "kptr %lx: %s: %s", (u_long)kptr, msg, kvm_geterr(kd));
2067 1.1 cgd }
2068 1.1 cgd
2069 1.45 thorpej /*
2070 1.181 mrg * Traverse the kernel history buffers, performing the requested action.
2071 1.45 thorpej *
2072 1.45 thorpej * Note, we assume that if we're not listing, we're dumping.
2073 1.45 thorpej */
2074 1.45 thorpej void
2075 1.73 simonb hist_traverse(int todo, const char *histname)
2076 1.45 thorpej {
2077 1.210 pgoyette struct kern_history_head histhead;
2078 1.210 pgoyette struct kern_history hist, *histkva;
2079 1.210 pgoyette char *name = NULL;
2080 1.210 pgoyette size_t namelen = 0;
2081 1.210 pgoyette
2082 1.210 pgoyette if (histnl[0].n_value == 0) {
2083 1.210 pgoyette warnx("kernel history is not compiled into the kernel.");
2084 1.210 pgoyette return;
2085 1.210 pgoyette }
2086 1.210 pgoyette
2087 1.210 pgoyette deref_kptr((void *)histnl[X_KERN_HISTORIES].n_value, &histhead,
2088 1.210 pgoyette sizeof(histhead), histnl[X_KERN_HISTORIES].n_name);
2089 1.210 pgoyette
2090 1.210 pgoyette if (histhead.lh_first == NULL) {
2091 1.210 pgoyette warnx("No active kernel history logs.");
2092 1.210 pgoyette return;
2093 1.210 pgoyette }
2094 1.210 pgoyette
2095 1.210 pgoyette if (todo & HISTLIST)
2096 1.210 pgoyette (void)printf("Active kernel histories:");
2097 1.210 pgoyette
2098 1.210 pgoyette for (histkva = LIST_FIRST(&histhead); histkva != NULL;
2099 1.210 pgoyette histkva = LIST_NEXT(&hist, list)) {
2100 1.210 pgoyette deref_kptr(histkva, &hist, sizeof(hist), "histkva");
2101 1.210 pgoyette if (name == NULL || hist.namelen > namelen) {
2102 1.210 pgoyette if (name != NULL)
2103 1.210 pgoyette free(name);
2104 1.210 pgoyette namelen = hist.namelen;
2105 1.210 pgoyette if ((name = malloc(namelen + 1)) == NULL)
2106 1.210 pgoyette err(1, "malloc history name");
2107 1.210 pgoyette }
2108 1.210 pgoyette
2109 1.210 pgoyette deref_kptr(hist.name, name, namelen, "history name");
2110 1.210 pgoyette name[namelen] = '\0';
2111 1.210 pgoyette if (todo & HISTLIST)
2112 1.210 pgoyette (void)printf(" %s", name);
2113 1.210 pgoyette else {
2114 1.210 pgoyette /*
2115 1.210 pgoyette * If we're dumping all histories, do it, else
2116 1.210 pgoyette * check to see if this is the one we want.
2117 1.210 pgoyette */
2118 1.210 pgoyette if (histname == NULL || strcmp(histname, name) == 0) {
2119 1.210 pgoyette if (histname == NULL)
2120 1.210 pgoyette (void)printf(
2121 1.210 pgoyette "\nkernel history `%s':\n", name);
2122 1.210 pgoyette hist_dodump(&hist);
2123 1.210 pgoyette }
2124 1.210 pgoyette }
2125 1.210 pgoyette }
2126 1.210 pgoyette
2127 1.210 pgoyette if (todo & HISTLIST)
2128 1.210 pgoyette (void)putchar('\n');
2129 1.210 pgoyette
2130 1.210 pgoyette if (name != NULL)
2131 1.210 pgoyette free(name);
2132 1.210 pgoyette }
2133 1.210 pgoyette
2134 1.210 pgoyette /*
2135 1.210 pgoyette * Actually dump the history buffer at the specified KVA.
2136 1.210 pgoyette */
2137 1.210 pgoyette void
2138 1.210 pgoyette hist_dodump(struct kern_history *histp)
2139 1.210 pgoyette {
2140 1.210 pgoyette struct kern_history_ent *histents, *e;
2141 1.215 pgoyette struct timeval tv;
2142 1.210 pgoyette size_t histsize;
2143 1.210 pgoyette char *fmt = NULL, *fn = NULL;
2144 1.210 pgoyette size_t fmtlen = 0, fnlen = 0;
2145 1.210 pgoyette unsigned i;
2146 1.210 pgoyette
2147 1.210 pgoyette histsize = sizeof(struct kern_history_ent) * histp->n;
2148 1.210 pgoyette
2149 1.210 pgoyette if ((histents = malloc(histsize)) == NULL)
2150 1.210 pgoyette err(1, "malloc history entries");
2151 1.210 pgoyette
2152 1.210 pgoyette (void)memset(histents, 0, histsize);
2153 1.210 pgoyette
2154 1.211 pgoyette (void)printf("%"PRIu32" entries, next is %"PRIu32"\n",
2155 1.211 pgoyette histp->n, histp->f);
2156 1.211 pgoyette
2157 1.210 pgoyette deref_kptr(histp->e, histents, histsize, "history entries");
2158 1.210 pgoyette i = histp->f;
2159 1.210 pgoyette do {
2160 1.210 pgoyette e = &histents[i];
2161 1.210 pgoyette if (e->fmt != NULL) {
2162 1.210 pgoyette if (fmt == NULL || e->fmtlen > fmtlen) {
2163 1.210 pgoyette if (fmt != NULL)
2164 1.210 pgoyette free(fmt);
2165 1.210 pgoyette fmtlen = e->fmtlen;
2166 1.210 pgoyette if ((fmt = malloc(fmtlen + 1)) == NULL)
2167 1.210 pgoyette err(1, "malloc printf format");
2168 1.210 pgoyette }
2169 1.210 pgoyette if (fn == NULL || e->fnlen > fnlen) {
2170 1.210 pgoyette if (fn != NULL)
2171 1.210 pgoyette free(fn);
2172 1.210 pgoyette fnlen = e->fnlen;
2173 1.210 pgoyette if ((fn = malloc(fnlen + 1)) == NULL)
2174 1.210 pgoyette err(1, "malloc function name");
2175 1.210 pgoyette }
2176 1.210 pgoyette
2177 1.210 pgoyette deref_kptr(e->fmt, fmt, fmtlen, "printf format");
2178 1.210 pgoyette fmt[fmtlen] = '\0';
2179 1.210 pgoyette
2180 1.210 pgoyette deref_kptr(e->fn, fn, fnlen, "function name");
2181 1.210 pgoyette fn[fnlen] = '\0';
2182 1.210 pgoyette
2183 1.215 pgoyette bintime2timeval(&e->bt, &tv);
2184 1.215 pgoyette (void)printf("%06ld.%06ld ", (long int)tv.tv_sec,
2185 1.215 pgoyette (long int)tv.tv_usec);
2186 1.219 pgoyette (void)printf("%s#%" PRId32 "@%" PRId32 "d: ",
2187 1.219 pgoyette fn, e->call, e->cpunum);
2188 1.210 pgoyette (void)printf(fmt, e->v[0], e->v[1], e->v[2], e->v[3]);
2189 1.210 pgoyette (void)putchar('\n');
2190 1.210 pgoyette }
2191 1.210 pgoyette i = (i + 1) % histp->n;
2192 1.210 pgoyette } while (i != histp->f);
2193 1.210 pgoyette
2194 1.210 pgoyette free(histents);
2195 1.210 pgoyette if (fmt != NULL)
2196 1.210 pgoyette free(fmt);
2197 1.210 pgoyette if (fn != NULL)
2198 1.210 pgoyette free(fn);
2199 1.210 pgoyette }
2200 1.210 pgoyette
2201 1.210 pgoyette void
2202 1.210 pgoyette hist_traverse_sysctl(int todo, const char *histname)
2203 1.210 pgoyette {
2204 1.209 pgoyette int error;
2205 1.209 pgoyette int mib[4];
2206 1.209 pgoyette unsigned int i;
2207 1.209 pgoyette size_t len, miblen;
2208 1.209 pgoyette struct sysctlnode query, histnode[32];
2209 1.209 pgoyette
2210 1.209 pgoyette /* retrieve names of available histories */
2211 1.209 pgoyette miblen = __arraycount(mib);
2212 1.209 pgoyette error = sysctlnametomib("kern.hist", mib, &miblen);
2213 1.209 pgoyette if (error != 0) {
2214 1.214 pgoyette if (errno == ENOENT) {
2215 1.214 pgoyette warnx("kernel history is not compiled into the kernel.");
2216 1.214 pgoyette return;
2217 1.214 pgoyette } else
2218 1.214 pgoyette err(EXIT_FAILURE, "nametomib failed");
2219 1.209 pgoyette }
2220 1.210 pgoyette
2221 1.209 pgoyette /* get the list of nodenames below kern.hist */
2222 1.209 pgoyette mib[2] = CTL_QUERY;
2223 1.209 pgoyette memset(&query, 0, sizeof(query));
2224 1.209 pgoyette query.sysctl_flags = SYSCTL_VERSION;
2225 1.209 pgoyette len = sizeof(histnode);
2226 1.209 pgoyette error = sysctl(mib, 3, &histnode[0], &len, &query, sizeof(query));
2227 1.209 pgoyette if (error != 0) {
2228 1.209 pgoyette err(1, "query failed");
2229 1.209 pgoyette return;
2230 1.209 pgoyette }
2231 1.209 pgoyette if (len == 0) {
2232 1.210 pgoyette warnx("No active kernel history logs.");
2233 1.210 pgoyette return;
2234 1.210 pgoyette }
2235 1.210 pgoyette
2236 1.209 pgoyette len = len / sizeof(histnode[0]); /* get # of entries returned */
2237 1.209 pgoyette
2238 1.210 pgoyette if (todo & HISTLIST)
2239 1.210 pgoyette (void)printf("Active kernel histories:");
2240 1.210 pgoyette
2241 1.209 pgoyette for (i = 0; i < len; i++) {
2242 1.210 pgoyette if (todo & HISTLIST)
2243 1.209 pgoyette (void)printf(" %s", histnode[i].sysctl_name);
2244 1.210 pgoyette else {
2245 1.210 pgoyette /*
2246 1.210 pgoyette * If we're dumping all histories, do it, else
2247 1.210 pgoyette * check to see if this is the one we want.
2248 1.210 pgoyette */
2249 1.209 pgoyette if (histname == NULL ||
2250 1.209 pgoyette strcmp(histname, histnode[i].sysctl_name) == 0) {
2251 1.210 pgoyette if (histname == NULL)
2252 1.210 pgoyette (void)printf(
2253 1.209 pgoyette "\nkernel history `%s':\n",
2254 1.209 pgoyette histnode[i].sysctl_name);
2255 1.209 pgoyette mib[2] = histnode[i].sysctl_num;
2256 1.209 pgoyette mib[3] = CTL_EOL;
2257 1.210 pgoyette hist_dodump_sysctl(mib, 4);
2258 1.210 pgoyette }
2259 1.210 pgoyette }
2260 1.210 pgoyette }
2261 1.210 pgoyette
2262 1.210 pgoyette if (todo & HISTLIST)
2263 1.210 pgoyette (void)putchar('\n');
2264 1.219 pgoyette else if (mib[2] == CTL_QUERY)
2265 1.219 pgoyette warnx("history %s not found", histname);
2266 1.210 pgoyette }
2267 1.210 pgoyette
2268 1.210 pgoyette /*
2269 1.210 pgoyette * Actually dump the history buffer at the specified KVA.
2270 1.210 pgoyette */
2271 1.221 mrg void
2272 1.210 pgoyette hist_dodump_sysctl(int mib[], unsigned int miblen)
2273 1.221 mrg {
2274 1.209 pgoyette struct sysctl_history *hist;
2275 1.215 pgoyette struct timeval tv;
2276 1.209 pgoyette struct sysctl_history_event *e;
2277 1.210 pgoyette size_t histsize;
2278 1.209 pgoyette char *strp;
2279 1.210 pgoyette unsigned i;
2280 1.45 thorpej char *fmt = NULL, *fn = NULL;
2281 1.210 pgoyette
2282 1.209 pgoyette hist = NULL;
2283 1.209 pgoyette histsize = 0;
2284 1.210 pgoyette do {
2285 1.209 pgoyette errno = 0;
2286 1.209 pgoyette if (sysctl(mib, miblen, hist, &histsize, NULL, 0) == 0)
2287 1.209 pgoyette break;
2288 1.209 pgoyette if (errno != ENOMEM)
2289 1.209 pgoyette break;
2290 1.209 pgoyette if ((hist = realloc(hist, histsize)) == NULL)
2291 1.209 pgoyette errx(1, "realloc history buffer");
2292 1.209 pgoyette } while (errno == ENOMEM);
2293 1.209 pgoyette if (errno != 0)
2294 1.209 pgoyette err(1, "sysctl failed");
2295 1.210 pgoyette
2296 1.219 pgoyette strp = (char *)(&hist->sh_events[hist->sh_numentries]);
2297 1.210 pgoyette
2298 1.209 pgoyette (void)printf("%"PRIu32" entries, next is %"PRIu32"\n",
2299 1.219 pgoyette hist->sh_numentries,
2300 1.219 pgoyette hist->sh_nextfree);
2301 1.210 pgoyette
2302 1.219 pgoyette i = hist->sh_nextfree;
2303 1.45 thorpej
2304 1.45 thorpej do {
2305 1.209 pgoyette e = &hist->sh_events[i];
2306 1.209 pgoyette if (e->she_fmtoffset != 0) {
2307 1.209 pgoyette fmt = &strp[e->she_fmtoffset];
2308 1.209 pgoyette fn = &strp[e->she_funcoffset];
2309 1.215 pgoyette bintime2timeval(&e->she_bintime, &tv);
2310 1.219 pgoyette (void)printf("%06ld.%06ld %s#%"PRIu32"@%"PRIu32": ",
2311 1.215 pgoyette (long int)tv.tv_sec, (long int)tv.tv_usec,
2312 1.213 pgoyette fn, e->she_callnumber, e->she_cpunum);
2313 1.209 pgoyette (void)printf(fmt, e->she_values[0], e->she_values[1],
2314 1.209 pgoyette e->she_values[2], e->she_values[3]);
2315 1.210 pgoyette (void)putchar('\n');
2316 1.210 pgoyette }
2317 1.219 pgoyette i = (i + 1) % hist->sh_numentries;
2318 1.219 pgoyette } while (i != hist->sh_nextfree);
2319 1.210 pgoyette
2320 1.209 pgoyette free(hist);
2321 1.210 pgoyette }
2322 1.45 thorpej
2323 1.183 joerg static void
2324 1.73 simonb usage(void)
2325 1.1 cgd {
2326 1.47 mrg
2327 1.1 cgd (void)fprintf(stderr,
2328 1.155 yamt "usage: %s [-CefHiLlmstUvW] [-c count] [-h hashname] [-M core] [-N system]\n"
2329 1.127 wiz "\t\t[-u histname] [-w wait] [disks]\n", getprogname());
2330 1.1 cgd exit(1);
2331 1.1 cgd }
2332