main.c revision 1.18 1 1.18 joerg /* $NetBSD: main.c,v 1.18 2011/08/30 19:20:20 joerg Exp $ */
2 1.1 ad
3 1.1 ad /*-
4 1.16 ad * Copyright (c) 2006, 2007, 2009 The NetBSD Foundation, Inc.
5 1.1 ad * All rights reserved.
6 1.1 ad *
7 1.1 ad * This code is derived from software contributed to The NetBSD Foundation
8 1.1 ad * by Andrew Doran.
9 1.1 ad *
10 1.1 ad * Redistribution and use in source and binary forms, with or without
11 1.1 ad * modification, are permitted provided that the following conditions
12 1.1 ad * are met:
13 1.1 ad * 1. Redistributions of source code must retain the above copyright
14 1.1 ad * notice, this list of conditions and the following disclaimer.
15 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 ad * notice, this list of conditions and the following disclaimer in the
17 1.1 ad * documentation and/or other materials provided with the distribution.
18 1.1 ad *
19 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 ad * POSSIBILITY OF SUCH DAMAGE.
30 1.1 ad */
31 1.1 ad
32 1.1 ad #include <sys/cdefs.h>
33 1.1 ad #ifndef lint
34 1.18 joerg __RCSID("$NetBSD: main.c,v 1.18 2011/08/30 19:20:20 joerg Exp $");
35 1.1 ad #endif /* not lint */
36 1.1 ad
37 1.1 ad #include <sys/types.h>
38 1.1 ad #include <sys/param.h>
39 1.1 ad #include <sys/time.h>
40 1.1 ad #include <sys/fcntl.h>
41 1.1 ad #include <sys/ioctl.h>
42 1.1 ad #include <sys/wait.h>
43 1.1 ad #include <sys/signal.h>
44 1.1 ad #include <sys/sysctl.h>
45 1.1 ad
46 1.2 ad #include <dev/lockstat.h>
47 1.2 ad
48 1.1 ad #include <stdio.h>
49 1.1 ad #include <stdlib.h>
50 1.1 ad #include <string.h>
51 1.1 ad #include <limits.h>
52 1.1 ad #include <unistd.h>
53 1.1 ad #include <err.h>
54 1.1 ad #include <paths.h>
55 1.1 ad #include <util.h>
56 1.1 ad #include <ctype.h>
57 1.1 ad #include <errno.h>
58 1.9 ad #include <stdbool.h>
59 1.1 ad
60 1.1 ad #include "extern.h"
61 1.1 ad
62 1.1 ad #define _PATH_DEV_LOCKSTAT "/dev/lockstat"
63 1.1 ad
64 1.1 ad #define MILLI 1000.0
65 1.1 ad #define MICRO 1000000.0
66 1.1 ad #define NANO 1000000000.0
67 1.1 ad #define PICO 1000000000000.0
68 1.1 ad
69 1.1 ad TAILQ_HEAD(lock_head, lockstruct);
70 1.1 ad typedef struct lock_head locklist_t;
71 1.1 ad TAILQ_HEAD(buf_head, lsbuf);
72 1.1 ad typedef struct buf_head buflist_t;
73 1.1 ad
74 1.1 ad typedef struct lockstruct {
75 1.1 ad TAILQ_ENTRY(lockstruct) chain;
76 1.1 ad buflist_t bufs;
77 1.7 ad buflist_t tosort;
78 1.1 ad uintptr_t lock;
79 1.7 ad double time;
80 1.7 ad uint32_t count;
81 1.1 ad u_int flags;
82 1.5 ad u_int nbufs;
83 1.7 ad char name[NAME_SIZE];
84 1.1 ad } lock_t;
85 1.1 ad
86 1.1 ad typedef struct name {
87 1.1 ad const char *name;
88 1.1 ad int mask;
89 1.1 ad } name_t;
90 1.1 ad
91 1.18 joerg static const name_t locknames[] = {
92 1.1 ad { "adaptive_mutex", LB_ADAPTIVE_MUTEX },
93 1.1 ad { "spin_mutex", LB_SPIN_MUTEX },
94 1.7 ad { "rwlock", LB_RWLOCK },
95 1.6 ad { "kernel_lock", LB_KERNEL_LOCK },
96 1.13 ad { "preemption", LB_NOPREEMPT },
97 1.15 ad { "misc", LB_MISC },
98 1.1 ad { NULL, 0 }
99 1.1 ad };
100 1.1 ad
101 1.18 joerg static const name_t eventnames[] = {
102 1.1 ad { "spin", LB_SPIN },
103 1.7 ad { "sleep_exclusive", LB_SLEEP1 },
104 1.7 ad { "sleep_shared", LB_SLEEP2 },
105 1.1 ad { NULL, 0 },
106 1.1 ad };
107 1.1 ad
108 1.18 joerg static const name_t alltypes[] = {
109 1.1 ad { "Adaptive mutex spin", LB_ADAPTIVE_MUTEX | LB_SPIN },
110 1.7 ad { "Adaptive mutex sleep", LB_ADAPTIVE_MUTEX | LB_SLEEP1 },
111 1.1 ad { "Spin mutex spin", LB_SPIN_MUTEX | LB_SPIN },
112 1.7 ad { "RW lock sleep (writer)", LB_RWLOCK | LB_SLEEP1 },
113 1.7 ad { "RW lock sleep (reader)", LB_RWLOCK | LB_SLEEP2 },
114 1.12 ad { "RW lock spin", LB_RWLOCK | LB_SPIN },
115 1.5 ad { "Kernel lock spin", LB_KERNEL_LOCK | LB_SPIN },
116 1.13 ad { "Kernel preemption defer", LB_NOPREEMPT | LB_SPIN },
117 1.15 ad { "Miscellaneous wait", LB_MISC | LB_SPIN },
118 1.1 ad { NULL, 0 }
119 1.1 ad };
120 1.1 ad
121 1.18 joerg static const name_t xtypes[] = {
122 1.16 ad { "Spin", LB_SPIN },
123 1.16 ad { "Sleep (writer)", LB_SLEEP1 },
124 1.16 ad { "Sleep (reader)", LB_SLEEP2 },
125 1.16 ad { NULL, 0 }
126 1.16 ad };
127 1.16 ad
128 1.18 joerg static locklist_t locklist;
129 1.18 joerg static locklist_t freelist;
130 1.18 joerg static locklist_t sortlist;
131 1.18 joerg
132 1.18 joerg static lsbuf_t *bufs;
133 1.18 joerg static lsdisable_t ld;
134 1.18 joerg static bool lflag;
135 1.18 joerg static bool fflag;
136 1.18 joerg static int nbufs;
137 1.18 joerg static bool cflag;
138 1.18 joerg static bool xflag;
139 1.18 joerg static int lsfd;
140 1.18 joerg static int displayed;
141 1.18 joerg static int bin64;
142 1.18 joerg static double tscale;
143 1.18 joerg static double cscale;
144 1.18 joerg static double cpuscale[sizeof(ld.ld_freq) / sizeof(ld.ld_freq[0])];
145 1.18 joerg static FILE *outfp;
146 1.18 joerg
147 1.18 joerg static void findsym(findsym_t, char *, uintptr_t *, uintptr_t *, bool);
148 1.18 joerg static void spawn(int, char **);
149 1.18 joerg static void display(int, const char *name);
150 1.18 joerg __dead static void listnames(const name_t *);
151 1.18 joerg static void collapse(bool, bool);
152 1.18 joerg static int matchname(const name_t *, char *);
153 1.18 joerg static void makelists(int, int);
154 1.18 joerg static void nullsig(int);
155 1.18 joerg __dead static void usage(void);
156 1.18 joerg static int ncpu(void);
157 1.18 joerg static lock_t *morelocks(void);
158 1.1 ad
159 1.1 ad int
160 1.1 ad main(int argc, char **argv)
161 1.1 ad {
162 1.17 lukem int eventtype, locktype, ch, nlfd, fd;
163 1.17 lukem size_t i;
164 1.9 ad bool sflag, pflag, mflag, Mflag;
165 1.1 ad const char *nlistf, *outf;
166 1.1 ad char *lockname, *funcname;
167 1.1 ad const name_t *name;
168 1.1 ad lsenable_t le;
169 1.1 ad double ms;
170 1.1 ad char *p;
171 1.1 ad
172 1.1 ad nlistf = NULL;
173 1.1 ad outf = NULL;
174 1.1 ad lockname = NULL;
175 1.1 ad funcname = NULL;
176 1.1 ad eventtype = -1;
177 1.1 ad locktype = -1;
178 1.1 ad nbufs = 0;
179 1.9 ad sflag = false;
180 1.9 ad pflag = false;
181 1.9 ad mflag = false;
182 1.9 ad Mflag = false;
183 1.1 ad
184 1.16 ad while ((ch = getopt(argc, argv, "E:F:L:MN:T:b:ceflmo:pstx")) != -1)
185 1.1 ad switch (ch) {
186 1.1 ad case 'E':
187 1.1 ad eventtype = matchname(eventnames, optarg);
188 1.1 ad break;
189 1.1 ad case 'F':
190 1.1 ad funcname = optarg;
191 1.1 ad break;
192 1.1 ad case 'L':
193 1.1 ad lockname = optarg;
194 1.1 ad break;
195 1.1 ad case 'N':
196 1.1 ad nlistf = optarg;
197 1.1 ad break;
198 1.1 ad case 'T':
199 1.1 ad locktype = matchname(locknames, optarg);
200 1.1 ad break;
201 1.1 ad case 'b':
202 1.1 ad nbufs = (int)strtol(optarg, &p, 0);
203 1.1 ad if (!isdigit((u_int)*optarg) || *p != '\0')
204 1.1 ad usage();
205 1.1 ad break;
206 1.1 ad case 'c':
207 1.9 ad cflag = true;
208 1.1 ad break;
209 1.1 ad case 'e':
210 1.1 ad listnames(eventnames);
211 1.1 ad break;
212 1.9 ad case 'f':
213 1.9 ad fflag = true;
214 1.9 ad break;
215 1.1 ad case 'l':
216 1.9 ad lflag = true;
217 1.9 ad break;
218 1.9 ad case 'm':
219 1.9 ad mflag = true;
220 1.9 ad break;
221 1.9 ad case 'M':
222 1.9 ad Mflag = true;
223 1.1 ad break;
224 1.1 ad case 'o':
225 1.1 ad outf = optarg;
226 1.1 ad break;
227 1.1 ad case 'p':
228 1.9 ad pflag = true;
229 1.1 ad break;
230 1.1 ad case 's':
231 1.9 ad sflag = true;
232 1.1 ad break;
233 1.1 ad case 't':
234 1.1 ad listnames(locknames);
235 1.1 ad break;
236 1.16 ad case 'x':
237 1.16 ad xflag = true;
238 1.16 ad break;
239 1.1 ad default:
240 1.1 ad usage();
241 1.1 ad }
242 1.1 ad argc -= optind;
243 1.1 ad argv += optind;
244 1.1 ad
245 1.1 ad if (*argv == NULL)
246 1.1 ad usage();
247 1.1 ad
248 1.1 ad if (outf) {
249 1.5 ad fd = open(outf, O_WRONLY | O_CREAT | O_TRUNC, 0600);
250 1.5 ad if (fd == -1)
251 1.1 ad err(EXIT_FAILURE, "opening %s", outf);
252 1.1 ad outfp = fdopen(fd, "w");
253 1.1 ad } else
254 1.1 ad outfp = stdout;
255 1.1 ad
256 1.1 ad /*
257 1.1 ad * Find the name list for resolving symbol names, and load it into
258 1.1 ad * memory.
259 1.1 ad */
260 1.1 ad if (nlistf == NULL) {
261 1.1 ad nlfd = open(_PATH_KSYMS, O_RDONLY);
262 1.1 ad nlistf = getbootfile();
263 1.1 ad } else
264 1.1 ad nlfd = -1;
265 1.1 ad if (nlfd == -1) {
266 1.1 ad if ((nlfd = open(nlistf, O_RDONLY)) < 0)
267 1.1 ad err(EXIT_FAILURE, "cannot open " _PATH_KSYMS " or %s",
268 1.1 ad nlistf);
269 1.1 ad }
270 1.1 ad if (loadsym32(nlfd) != 0) {
271 1.1 ad if (loadsym64(nlfd) != 0)
272 1.1 ad errx(EXIT_FAILURE, "unable to load symbol table");
273 1.1 ad bin64 = 1;
274 1.1 ad }
275 1.1 ad close(nlfd);
276 1.1 ad
277 1.1 ad memset(&le, 0, sizeof(le));
278 1.1 ad le.le_nbufs = nbufs;
279 1.1 ad
280 1.1 ad /*
281 1.1 ad * Set up initial filtering.
282 1.1 ad */
283 1.1 ad if (lockname != NULL) {
284 1.7 ad findsym(LOCK_BYNAME, lockname, &le.le_lockstart,
285 1.9 ad &le.le_lockend, true);
286 1.1 ad le.le_flags |= LE_ONE_LOCK;
287 1.1 ad }
288 1.1 ad if (!lflag)
289 1.1 ad le.le_flags |= LE_CALLSITE;
290 1.9 ad if (!fflag)
291 1.9 ad le.le_flags |= LE_LOCK;
292 1.1 ad if (funcname != NULL) {
293 1.1 ad if (lflag)
294 1.1 ad usage();
295 1.9 ad findsym(FUNC_BYNAME, funcname, &le.le_csstart, &le.le_csend, true);
296 1.1 ad le.le_flags |= LE_ONE_CALLSITE;
297 1.1 ad }
298 1.1 ad le.le_mask = (eventtype & LB_EVENT_MASK) | (locktype & LB_LOCK_MASK);
299 1.1 ad
300 1.1 ad /*
301 1.1 ad * Start tracing.
302 1.1 ad */
303 1.1 ad if ((lsfd = open(_PATH_DEV_LOCKSTAT, O_RDONLY)) < 0)
304 1.1 ad err(EXIT_FAILURE, "cannot open " _PATH_DEV_LOCKSTAT);
305 1.1 ad if (ioctl(lsfd, IOC_LOCKSTAT_GVERSION, &ch) < 0)
306 1.1 ad err(EXIT_FAILURE, "ioctl");
307 1.1 ad if (ch != LS_VERSION)
308 1.7 ad errx(EXIT_FAILURE,
309 1.7 ad "incompatible lockstat interface version (%d, kernel %d)",
310 1.7 ad LS_VERSION, ch);
311 1.1 ad if (ioctl(lsfd, IOC_LOCKSTAT_ENABLE, &le))
312 1.1 ad err(EXIT_FAILURE, "cannot enable tracing");
313 1.1 ad
314 1.1 ad /*
315 1.1 ad * Execute the traced program.
316 1.1 ad */
317 1.1 ad spawn(argc, argv);
318 1.1 ad
319 1.1 ad /*
320 1.1 ad * Stop tracing, and read the trace buffers from the kernel.
321 1.1 ad */
322 1.1 ad if (ioctl(lsfd, IOC_LOCKSTAT_DISABLE, &ld) == -1) {
323 1.1 ad if (errno == EOVERFLOW) {
324 1.1 ad warnx("overflowed available kernel trace buffers");
325 1.1 ad exit(EXIT_FAILURE);
326 1.1 ad }
327 1.1 ad err(EXIT_FAILURE, "cannot disable tracing");
328 1.1 ad }
329 1.1 ad if ((bufs = malloc(ld.ld_size)) == NULL)
330 1.1 ad err(EXIT_FAILURE, "cannot allocate memory for user buffers");
331 1.17 lukem if ((size_t)read(lsfd, bufs, ld.ld_size) != ld.ld_size)
332 1.1 ad err(EXIT_FAILURE, "reading from " _PATH_DEV_LOCKSTAT);
333 1.1 ad if (close(lsfd))
334 1.1 ad err(EXIT_FAILURE, "close(" _PATH_DEV_LOCKSTAT ")");
335 1.1 ad
336 1.1 ad /*
337 1.7 ad * Figure out how to scale the results. For internal use we convert
338 1.7 ad * all times from CPU frequency based to picoseconds, and values are
339 1.7 ad * eventually displayed in ms.
340 1.1 ad */
341 1.1 ad for (i = 0; i < sizeof(ld.ld_freq) / sizeof(ld.ld_freq[0]); i++)
342 1.1 ad if (ld.ld_freq[i] != 0)
343 1.1 ad cpuscale[i] = PICO / ld.ld_freq[i];
344 1.1 ad ms = ld.ld_time.tv_sec * MILLI + ld.ld_time.tv_nsec / MICRO;
345 1.1 ad if (pflag)
346 1.1 ad cscale = 1.0 / ncpu();
347 1.1 ad else
348 1.1 ad cscale = 1.0;
349 1.1 ad cscale *= (sflag ? MILLI / ms : 1.0);
350 1.1 ad tscale = cscale / NANO;
351 1.1 ad nbufs = (int)(ld.ld_size / sizeof(lsbuf_t));
352 1.7 ad
353 1.7 ad TAILQ_INIT(&locklist);
354 1.7 ad TAILQ_INIT(&sortlist);
355 1.7 ad TAILQ_INIT(&freelist);
356 1.1 ad
357 1.9 ad if ((mflag | Mflag) != 0)
358 1.9 ad collapse(mflag, Mflag);
359 1.9 ad
360 1.1 ad /*
361 1.1 ad * Display the results.
362 1.1 ad */
363 1.1 ad fprintf(outfp, "Elapsed time: %.2f seconds.", ms / MILLI);
364 1.1 ad if (sflag || pflag) {
365 1.1 ad fprintf(outfp, " Displaying ");
366 1.1 ad if (pflag)
367 1.1 ad fprintf(outfp, "per-CPU ");
368 1.1 ad if (sflag)
369 1.1 ad fprintf(outfp, "per-second ");
370 1.1 ad fprintf(outfp, "averages.");
371 1.1 ad }
372 1.1 ad putc('\n', outfp);
373 1.1 ad
374 1.16 ad for (name = xflag ? xtypes : alltypes; name->name != NULL; name++) {
375 1.1 ad if (eventtype != -1 &&
376 1.1 ad (name->mask & LB_EVENT_MASK) != eventtype)
377 1.1 ad continue;
378 1.1 ad if (locktype != -1 &&
379 1.1 ad (name->mask & LB_LOCK_MASK) != locktype)
380 1.1 ad continue;
381 1.1 ad display(name->mask, name->name);
382 1.1 ad }
383 1.1 ad
384 1.1 ad if (displayed == 0)
385 1.1 ad fprintf(outfp, "None of the selected events were recorded.\n");
386 1.1 ad exit(EXIT_SUCCESS);
387 1.1 ad }
388 1.1 ad
389 1.18 joerg static void
390 1.1 ad usage(void)
391 1.1 ad {
392 1.1 ad
393 1.1 ad fprintf(stderr,
394 1.1 ad "%s: usage:\n"
395 1.1 ad "%s [options] <command>\n\n"
396 1.1 ad "-b nbuf\t\tset number of event buffers to allocate\n"
397 1.1 ad "-c\t\treport percentage of total events by count, not time\n"
398 1.10 wiz "-E event\t\tdisplay only one type of event\n"
399 1.1 ad "-e\t\tlist event types\n"
400 1.10 wiz "-F func\t\tlimit trace to one function\n"
401 1.9 ad "-f\t\ttrace only by function\n"
402 1.4 wiz "-L lock\t\tlimit trace to one lock (name, or address)\n"
403 1.1 ad "-l\t\ttrace only by lock\n"
404 1.10 wiz "-M\t\tmerge lock addresses within unique objects\n"
405 1.9 ad "-m\t\tmerge call sites within unique functions\n"
406 1.4 wiz "-N nlist\tspecify name list file\n"
407 1.1 ad "-o file\t\tsend output to named file, not stdout\n"
408 1.1 ad "-p\t\tshow average count/time per CPU, not total\n"
409 1.1 ad "-s\t\tshow average count/time per second, not total\n"
410 1.4 wiz "-T type\t\tdisplay only one type of lock\n"
411 1.16 ad "-t\t\tlist lock types\n"
412 1.16 ad "-x\t\tdon't differentiate event types\n",
413 1.1 ad getprogname(), getprogname());
414 1.1 ad
415 1.1 ad exit(EXIT_FAILURE);
416 1.1 ad }
417 1.1 ad
418 1.18 joerg static void
419 1.1 ad nullsig(int junk)
420 1.1 ad {
421 1.1 ad
422 1.1 ad (void)junk;
423 1.1 ad }
424 1.1 ad
425 1.18 joerg static void
426 1.1 ad listnames(const name_t *name)
427 1.1 ad {
428 1.1 ad
429 1.1 ad for (; name->name != NULL; name++)
430 1.1 ad printf("%s\n", name->name);
431 1.1 ad
432 1.1 ad exit(EXIT_SUCCESS);
433 1.1 ad }
434 1.1 ad
435 1.18 joerg static int
436 1.9 ad matchname(const name_t *name, char *string)
437 1.1 ad {
438 1.9 ad int empty, mask;
439 1.9 ad char *sp;
440 1.9 ad
441 1.9 ad empty = 1;
442 1.9 ad mask = 0;
443 1.9 ad
444 1.9 ad while ((sp = strsep(&string, ",")) != NULL) {
445 1.9 ad if (*sp == '\0')
446 1.9 ad usage();
447 1.1 ad
448 1.9 ad for (; name->name != NULL; name++) {
449 1.9 ad if (strcasecmp(name->name, sp) == 0) {
450 1.9 ad mask |= name->mask;
451 1.9 ad break;
452 1.9 ad }
453 1.9 ad }
454 1.9 ad if (name->name == NULL)
455 1.9 ad errx(EXIT_FAILURE, "unknown identifier `%s'", sp);
456 1.9 ad empty = 0;
457 1.9 ad }
458 1.9 ad
459 1.9 ad if (empty)
460 1.9 ad usage();
461 1.1 ad
462 1.9 ad return mask;
463 1.1 ad }
464 1.1 ad
465 1.1 ad /*
466 1.1 ad * Return the number of CPUs in the running system.
467 1.1 ad */
468 1.18 joerg static int
469 1.1 ad ncpu(void)
470 1.1 ad {
471 1.1 ad int rv, mib[2];
472 1.1 ad size_t varlen;
473 1.1 ad
474 1.1 ad mib[0] = CTL_HW;
475 1.1 ad mib[1] = HW_NCPU;
476 1.1 ad varlen = sizeof(rv);
477 1.1 ad if (sysctl(mib, 2, &rv, &varlen, NULL, (size_t)0) < 0)
478 1.1 ad rv = 1;
479 1.1 ad
480 1.1 ad return (rv);
481 1.1 ad }
482 1.1 ad
483 1.1 ad /*
484 1.1 ad * Call into the ELF parser and look up a symbol by name or by address.
485 1.1 ad */
486 1.18 joerg static void
487 1.9 ad findsym(findsym_t find, char *name, uintptr_t *start, uintptr_t *end, bool chg)
488 1.1 ad {
489 1.9 ad uintptr_t tend, sa, ea;
490 1.1 ad char *p;
491 1.1 ad int rv;
492 1.1 ad
493 1.9 ad if (!chg) {
494 1.9 ad sa = *start;
495 1.9 ad start = &sa;
496 1.9 ad end = &ea;
497 1.9 ad }
498 1.9 ad
499 1.1 ad if (end == NULL)
500 1.1 ad end = &tend;
501 1.1 ad
502 1.1 ad if (find == LOCK_BYNAME) {
503 1.1 ad if (isdigit((u_int)name[0])) {
504 1.1 ad *start = (uintptr_t)strtoul(name, &p, 0);
505 1.1 ad if (*p == '\0')
506 1.1 ad return;
507 1.1 ad }
508 1.1 ad }
509 1.1 ad
510 1.1 ad if (bin64)
511 1.1 ad rv = findsym64(find, name, start, end);
512 1.1 ad else
513 1.1 ad rv = findsym32(find, name, start, end);
514 1.1 ad
515 1.1 ad if (find == FUNC_BYNAME || find == LOCK_BYNAME) {
516 1.1 ad if (rv == -1)
517 1.1 ad errx(EXIT_FAILURE, "unable to find symbol `%s'", name);
518 1.1 ad return;
519 1.1 ad }
520 1.1 ad
521 1.1 ad if (rv == -1)
522 1.7 ad snprintf(name, NAME_SIZE, "%016lx", (long)*start);
523 1.1 ad }
524 1.1 ad
525 1.1 ad /*
526 1.1 ad * Fork off the child process and wait for it to complete. We trap SIGINT
527 1.1 ad * so that the caller can use Ctrl-C to stop tracing early and still get
528 1.1 ad * useful results.
529 1.1 ad */
530 1.18 joerg static void
531 1.1 ad spawn(int argc, char **argv)
532 1.1 ad {
533 1.1 ad pid_t pid;
534 1.1 ad
535 1.1 ad switch (pid = fork()) {
536 1.1 ad case 0:
537 1.1 ad close(lsfd);
538 1.1 ad if (execvp(argv[0], argv) == -1)
539 1.1 ad err(EXIT_FAILURE, "cannot exec");
540 1.1 ad break;
541 1.1 ad case -1:
542 1.1 ad err(EXIT_FAILURE, "cannot fork to exec");
543 1.1 ad break;
544 1.1 ad default:
545 1.1 ad signal(SIGINT, nullsig);
546 1.1 ad wait(NULL);
547 1.1 ad signal(SIGINT, SIG_DFL);
548 1.1 ad break;
549 1.1 ad }
550 1.1 ad }
551 1.1 ad
552 1.1 ad /*
553 1.7 ad * Allocate a new block of lock_t structures.
554 1.7 ad */
555 1.18 joerg static lock_t *
556 1.7 ad morelocks(void)
557 1.7 ad {
558 1.17 lukem const int batch = 32;
559 1.7 ad lock_t *l, *lp, *max;
560 1.7 ad
561 1.7 ad l = (lock_t *)malloc(sizeof(*l) * batch);
562 1.7 ad
563 1.7 ad for (lp = l, max = l + batch; lp < max; lp++)
564 1.7 ad TAILQ_INSERT_TAIL(&freelist, lp, chain);
565 1.7 ad
566 1.7 ad return l;
567 1.7 ad }
568 1.7 ad
569 1.7 ad /*
570 1.9 ad * Collapse addresses from unique objects.
571 1.9 ad */
572 1.18 joerg static void
573 1.9 ad collapse(bool func, bool lock)
574 1.9 ad {
575 1.9 ad lsbuf_t *lb, *max;
576 1.9 ad
577 1.9 ad for (lb = bufs, max = bufs + nbufs; lb < max; lb++) {
578 1.9 ad if (func && lb->lb_callsite != 0) {
579 1.9 ad findsym(FUNC_BYADDR, NULL, &lb->lb_callsite, NULL,
580 1.9 ad true);
581 1.9 ad }
582 1.9 ad if (lock && lb->lb_lock != 0) {
583 1.9 ad findsym(LOCK_BYADDR, NULL, &lb->lb_lock, NULL,
584 1.9 ad true);
585 1.9 ad }
586 1.9 ad }
587 1.9 ad }
588 1.9 ad
589 1.9 ad /*
590 1.1 ad * From the kernel supplied data, construct two dimensional lists of locks
591 1.7 ad * and event buffers, indexed by lock type and sorted by event type.
592 1.1 ad */
593 1.18 joerg static void
594 1.7 ad makelists(int mask, int event)
595 1.1 ad {
596 1.1 ad lsbuf_t *lb, *lb2, *max;
597 1.7 ad lock_t *l, *l2;
598 1.7 ad int type;
599 1.7 ad
600 1.7 ad /*
601 1.7 ad * Recycle lock_t structures from the last run.
602 1.7 ad */
603 1.7 ad while ((l = TAILQ_FIRST(&locklist)) != NULL) {
604 1.7 ad TAILQ_REMOVE(&locklist, l, chain);
605 1.7 ad TAILQ_INSERT_HEAD(&freelist, l, chain);
606 1.7 ad }
607 1.1 ad
608 1.7 ad type = mask & LB_LOCK_MASK;
609 1.1 ad
610 1.1 ad for (lb = bufs, max = bufs + nbufs; lb < max; lb++) {
611 1.16 ad if (!xflag && (lb->lb_flags & LB_LOCK_MASK) != type)
612 1.16 ad continue;
613 1.16 ad if (lb->lb_counts[event] == 0)
614 1.1 ad continue;
615 1.1 ad
616 1.1 ad /*
617 1.1 ad * Look for a record descibing this lock, and allocate a
618 1.1 ad * new one if needed.
619 1.1 ad */
620 1.7 ad TAILQ_FOREACH(l, &sortlist, chain) {
621 1.1 ad if (l->lock == lb->lb_lock)
622 1.1 ad break;
623 1.1 ad }
624 1.1 ad if (l == NULL) {
625 1.7 ad if ((l = TAILQ_FIRST(&freelist)) == NULL)
626 1.7 ad l = morelocks();
627 1.7 ad TAILQ_REMOVE(&freelist, l, chain);
628 1.1 ad l->flags = lb->lb_flags;
629 1.1 ad l->lock = lb->lb_lock;
630 1.5 ad l->nbufs = 0;
631 1.7 ad l->name[0] = '\0';
632 1.7 ad l->count = 0;
633 1.7 ad l->time = 0;
634 1.7 ad TAILQ_INIT(&l->tosort);
635 1.1 ad TAILQ_INIT(&l->bufs);
636 1.7 ad TAILQ_INSERT_TAIL(&sortlist, l, chain);
637 1.1 ad }
638 1.1 ad
639 1.1 ad /*
640 1.1 ad * Scale the time values per buffer and summarise
641 1.1 ad * times+counts per lock.
642 1.1 ad */
643 1.7 ad lb->lb_times[event] *= cpuscale[lb->lb_cpu];
644 1.7 ad l->count += lb->lb_counts[event];
645 1.7 ad l->time += lb->lb_times[event];
646 1.1 ad
647 1.1 ad /*
648 1.1 ad * Merge same lock+callsite pairs from multiple CPUs
649 1.1 ad * together.
650 1.1 ad */
651 1.7 ad TAILQ_FOREACH(lb2, &l->tosort, lb_chain.tailq) {
652 1.1 ad if (lb->lb_callsite == lb2->lb_callsite)
653 1.1 ad break;
654 1.1 ad }
655 1.1 ad if (lb2 != NULL) {
656 1.7 ad lb2->lb_counts[event] += lb->lb_counts[event];
657 1.7 ad lb2->lb_times[event] += lb->lb_times[event];
658 1.5 ad } else {
659 1.7 ad TAILQ_INSERT_HEAD(&l->tosort, lb, lb_chain.tailq);
660 1.5 ad l->nbufs++;
661 1.5 ad }
662 1.1 ad }
663 1.1 ad
664 1.7 ad /*
665 1.7 ad * Now sort the lists.
666 1.7 ad */
667 1.7 ad while ((l = TAILQ_FIRST(&sortlist)) != NULL) {
668 1.7 ad TAILQ_REMOVE(&sortlist, l, chain);
669 1.1 ad
670 1.1 ad /*
671 1.1 ad * Sort the buffers into the per-lock list.
672 1.1 ad */
673 1.7 ad while ((lb = TAILQ_FIRST(&l->tosort)) != NULL) {
674 1.7 ad TAILQ_REMOVE(&l->tosort, lb, lb_chain.tailq);
675 1.1 ad
676 1.7 ad lb2 = TAILQ_FIRST(&l->bufs);
677 1.1 ad while (lb2 != NULL) {
678 1.1 ad if (cflag) {
679 1.1 ad if (lb->lb_counts[event] >
680 1.1 ad lb2->lb_counts[event])
681 1.1 ad break;
682 1.1 ad } else if (lb->lb_times[event] >
683 1.1 ad lb2->lb_times[event])
684 1.1 ad break;
685 1.1 ad lb2 = TAILQ_NEXT(lb2, lb_chain.tailq);
686 1.1 ad }
687 1.1 ad if (lb2 == NULL)
688 1.7 ad TAILQ_INSERT_TAIL(&l->bufs, lb,
689 1.7 ad lb_chain.tailq);
690 1.1 ad else
691 1.1 ad TAILQ_INSERT_BEFORE(lb2, lb, lb_chain.tailq);
692 1.1 ad }
693 1.1 ad
694 1.1 ad /*
695 1.1 ad * Sort this lock into the per-type list, based on the
696 1.1 ad * totals per lock.
697 1.1 ad */
698 1.7 ad l2 = TAILQ_FIRST(&locklist);
699 1.1 ad while (l2 != NULL) {
700 1.1 ad if (cflag) {
701 1.7 ad if (l->count > l2->count)
702 1.1 ad break;
703 1.7 ad } else if (l->time > l2->time)
704 1.1 ad break;
705 1.1 ad l2 = TAILQ_NEXT(l2, chain);
706 1.1 ad }
707 1.1 ad if (l2 == NULL)
708 1.7 ad TAILQ_INSERT_TAIL(&locklist, l, chain);
709 1.1 ad else
710 1.1 ad TAILQ_INSERT_BEFORE(l2, l, chain);
711 1.1 ad }
712 1.1 ad }
713 1.1 ad
714 1.1 ad /*
715 1.1 ad * Display a summary table for one lock type / event type pair.
716 1.1 ad */
717 1.18 joerg static void
718 1.1 ad display(int mask, const char *name)
719 1.1 ad {
720 1.1 ad lock_t *l;
721 1.1 ad lsbuf_t *lb;
722 1.1 ad double pcscale, metric;
723 1.7 ad char fname[NAME_SIZE];
724 1.7 ad int event;
725 1.1 ad
726 1.7 ad event = (mask & LB_EVENT_MASK) - 1;
727 1.7 ad makelists(mask, event);
728 1.7 ad
729 1.7 ad if (TAILQ_EMPTY(&locklist))
730 1.1 ad return;
731 1.1 ad
732 1.1 ad fprintf(outfp, "\n-- %s\n\n"
733 1.7 ad "Total%% Count Time/ms Lock Caller\n"
734 1.5 ad "------ ------- --------- ---------------------- ------------------------------\n",
735 1.1 ad name);
736 1.1 ad
737 1.1 ad /*
738 1.1 ad * Sum up all events for this type of lock + event.
739 1.1 ad */
740 1.1 ad pcscale = 0;
741 1.7 ad TAILQ_FOREACH(l, &locklist, chain) {
742 1.1 ad if (cflag)
743 1.7 ad pcscale += l->count;
744 1.1 ad else
745 1.7 ad pcscale += l->time;
746 1.1 ad displayed++;
747 1.1 ad }
748 1.1 ad if (pcscale == 0)
749 1.1 ad pcscale = 100;
750 1.1 ad else
751 1.1 ad pcscale = (100.0 / pcscale);
752 1.1 ad
753 1.1 ad /*
754 1.1 ad * For each lock, print a summary total, followed by a breakdown by
755 1.1 ad * caller.
756 1.1 ad */
757 1.7 ad TAILQ_FOREACH(l, &locklist, chain) {
758 1.1 ad if (cflag)
759 1.7 ad metric = l->count;
760 1.1 ad else
761 1.7 ad metric = l->time;
762 1.1 ad metric *= pcscale;
763 1.1 ad
764 1.7 ad if (l->name[0] == '\0')
765 1.9 ad findsym(LOCK_BYADDR, l->name, &l->lock, NULL, false);
766 1.1 ad
767 1.6 ad if (lflag || l->nbufs > 1)
768 1.7 ad fprintf(outfp, "%6.2f %7d %9.2f %-22s <all>\n",
769 1.7 ad metric, (int)(l->count * cscale),
770 1.7 ad l->time * tscale, l->name);
771 1.1 ad
772 1.1 ad if (lflag)
773 1.1 ad continue;
774 1.1 ad
775 1.1 ad TAILQ_FOREACH(lb, &l->bufs, lb_chain.tailq) {
776 1.1 ad if (cflag)
777 1.1 ad metric = lb->lb_counts[event];
778 1.1 ad else
779 1.1 ad metric = lb->lb_times[event];
780 1.1 ad metric *= pcscale;
781 1.1 ad
782 1.9 ad findsym(FUNC_BYADDR, fname, &lb->lb_callsite, NULL,
783 1.9 ad false);
784 1.7 ad fprintf(outfp, "%6.2f %7d %9.2f %-22s %s\n",
785 1.7 ad metric, (int)(lb->lb_counts[event] * cscale),
786 1.7 ad lb->lb_times[event] * tscale, l->name, fname);
787 1.1 ad }
788 1.1 ad }
789 1.1 ad }
790