iscontrol(8): Fix synopsis, sync usage() & improve markup
[dragonfly.git] / sys / kern / subr_prf.c
blob85d50b6ff80713a5ea57de590ae8f63b7b39511f
1 /*-
2 * Copyright (c) 1986, 1988, 1991, 1993
3 * The Regents of the University of California. All rights reserved.
4 * (c) UNIX System Laboratories, Inc.
5 * All or some portions of this file are derived from material licensed
6 * to the University of California by American Telephone and Telegraph
7 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
8 * the permission of UNIX System Laboratories, Inc.
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the University of
21 * California, Berkeley and its contributors.
22 * 4. Neither the name of the University nor the names of its contributors
23 * may be used to endorse or promote products derived from this software
24 * without specific prior written permission.
26 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36 * SUCH DAMAGE.
38 * @(#)subr_prf.c 8.3 (Berkeley) 1/21/94
39 * $FreeBSD: src/sys/kern/subr_prf.c,v 1.61.2.5 2002/08/31 18:22:08 dwmalone Exp $
40 * $DragonFly: src/sys/kern/subr_prf.c,v 1.21 2008/07/17 23:56:23 dillon Exp $
43 #include "opt_ddb.h"
45 #include <sys/param.h>
46 #include <sys/systm.h>
47 #include <sys/kernel.h>
48 #include <sys/msgbuf.h>
49 #include <sys/malloc.h>
50 #include <sys/proc.h>
51 #include <sys/priv.h>
52 #include <sys/tty.h>
53 #include <sys/tprintf.h>
54 #include <sys/stdint.h>
55 #include <sys/syslog.h>
56 #include <sys/cons.h>
57 #include <sys/uio.h>
58 #include <sys/sysctl.h>
59 #include <sys/lock.h>
60 #include <sys/ctype.h>
62 #ifdef DDB
63 #include <ddb/ddb.h>
64 #endif
67 * Note that stdarg.h and the ANSI style va_start macro is used for both
68 * ANSI and traditional C compilers. We use the __ machine version to stay
69 * within the kernel header file set.
71 #include <machine/stdarg.h>
73 #define TOCONS 0x01
74 #define TOTTY 0x02
75 #define TOLOG 0x04
77 /* Max number conversion buffer length: a u_quad_t in base 2, plus NUL byte. */
78 #define MAXNBUF (sizeof(intmax_t) * NBBY + 1)
80 struct putchar_arg {
81 int flags;
82 int pri;
83 struct tty *tty;
86 struct snprintf_arg {
87 char *str;
88 size_t remain;
91 extern int log_open;
93 struct tty *constty; /* pointer to console "window" tty */
95 static void (*v_putc)(int) = cnputc; /* routine to putc on virtual console */
96 static void msglogchar(int c, int pri);
97 static void msgaddchar(int c, void *dummy);
98 static void kputchar (int ch, void *arg);
99 static char *ksprintn (char *nbuf, uintmax_t num, int base, int *lenp,
100 int upper);
101 static void snprintf_func (int ch, void *arg);
103 static int consintr = 1; /* Ok to handle console interrupts? */
104 static int msgbufmapped; /* Set when safe to use msgbuf */
105 int msgbuftrigger;
107 static int log_console_output = 1;
108 TUNABLE_INT("kern.log_console_output", &log_console_output);
109 SYSCTL_INT(_kern, OID_AUTO, log_console_output, CTLFLAG_RW,
110 &log_console_output, 0, "");
112 static int unprivileged_read_msgbuf = 1;
113 SYSCTL_INT(_security, OID_AUTO, unprivileged_read_msgbuf, CTLFLAG_RW,
114 &unprivileged_read_msgbuf, 0,
115 "Unprivileged processes may read the kernel message buffer");
118 * Warn that a system table is full.
120 void
121 tablefull(const char *tab)
124 log(LOG_ERR, "%s: table is full\n", tab);
128 * Uprintf prints to the controlling terminal for the current process.
131 uprintf(const char *fmt, ...)
133 struct proc *p = curproc;
134 __va_list ap;
135 struct putchar_arg pca;
136 int retval = 0;
138 if (p && p->p_flag & P_CONTROLT &&
139 p->p_session->s_ttyvp) {
140 __va_start(ap, fmt);
141 pca.tty = p->p_session->s_ttyp;
142 pca.flags = TOTTY;
144 retval = kvcprintf(fmt, kputchar, &pca, 10, ap);
145 __va_end(ap);
147 return (retval);
150 tpr_t
151 tprintf_open(struct proc *p)
154 if ((p->p_flag & P_CONTROLT) && p->p_session->s_ttyvp) {
155 sess_hold(p->p_session);
156 return ((tpr_t) p->p_session);
158 return ((tpr_t) NULL);
161 void
162 tprintf_close(tpr_t sess)
164 if (sess)
165 sess_rele((struct session *) sess);
169 * tprintf prints on the controlling terminal associated
170 * with the given session.
173 tprintf(tpr_t tpr, const char *fmt, ...)
175 struct session *sess = (struct session *)tpr;
176 struct tty *tp = NULL;
177 int flags = TOLOG;
178 __va_list ap;
179 struct putchar_arg pca;
180 int retval;
182 if (sess && sess->s_ttyvp && ttycheckoutq(sess->s_ttyp, 0)) {
183 flags |= TOTTY;
184 tp = sess->s_ttyp;
186 __va_start(ap, fmt);
187 pca.tty = tp;
188 pca.flags = flags;
189 pca.pri = LOG_INFO;
190 retval = kvcprintf(fmt, kputchar, &pca, 10, ap);
191 __va_end(ap);
192 msgbuftrigger = 1;
193 return (retval);
197 * Ttyprintf displays a message on a tty; it should be used only by
198 * the tty driver, or anything that knows the underlying tty will not
199 * be revoke(2)'d away. Other callers should use tprintf.
202 ttyprintf(struct tty *tp, const char *fmt, ...)
204 __va_list ap;
205 struct putchar_arg pca;
206 int retval;
208 __va_start(ap, fmt);
209 pca.tty = tp;
210 pca.flags = TOTTY;
211 retval = kvcprintf(fmt, kputchar, &pca, 10, ap);
212 __va_end(ap);
213 return (retval);
217 * Log writes to the log buffer, and guarantees not to sleep (so can be
218 * called by interrupt routines). If there is no process reading the
219 * log yet, it writes to the console also.
222 log(int level, const char *fmt, ...)
224 __va_list ap;
225 int retval;
226 struct putchar_arg pca;
228 pca.tty = NULL;
229 pca.pri = level;
230 pca.flags = log_open ? TOLOG : TOCONS;
232 __va_start(ap, fmt);
233 retval = kvcprintf(fmt, kputchar, &pca, 10, ap);
234 __va_end(ap);
236 msgbuftrigger = 1;
237 return (retval);
240 #define CONSCHUNK 128
242 void
243 log_console(struct uio *uio)
245 int c, i, error, iovlen, nl;
246 struct uio muio;
247 struct iovec *miov = NULL;
248 char *consbuffer;
249 int pri;
251 if (!log_console_output)
252 return;
254 pri = LOG_INFO | LOG_CONSOLE;
255 muio = *uio;
256 iovlen = uio->uio_iovcnt * sizeof (struct iovec);
257 MALLOC(miov, struct iovec *, iovlen, M_TEMP, M_WAITOK);
258 MALLOC(consbuffer, char *, CONSCHUNK, M_TEMP, M_WAITOK);
259 bcopy((caddr_t)muio.uio_iov, (caddr_t)miov, iovlen);
260 muio.uio_iov = miov;
261 uio = &muio;
263 nl = 0;
264 while (uio->uio_resid > 0) {
265 c = (int)szmin(uio->uio_resid, CONSCHUNK);
266 error = uiomove(consbuffer, (size_t)c, uio);
267 if (error != 0)
268 break;
269 for (i = 0; i < c; i++) {
270 msglogchar(consbuffer[i], pri);
271 if (consbuffer[i] == '\n')
272 nl = 1;
273 else
274 nl = 0;
277 if (!nl)
278 msglogchar('\n', pri);
279 msgbuftrigger = 1;
280 FREE(miov, M_TEMP);
281 FREE(consbuffer, M_TEMP);
282 return;
286 * Output to the console.
288 * NOT YET ENTIRELY MPSAFE
291 kprintf(const char *fmt, ...)
293 __va_list ap;
294 int savintr;
295 struct putchar_arg pca;
296 int retval;
298 savintr = consintr; /* disable interrupts */
299 consintr = 0;
300 __va_start(ap, fmt);
301 pca.tty = NULL;
302 pca.flags = TOCONS | TOLOG;
303 pca.pri = -1;
304 cons_lock();
305 retval = kvcprintf(fmt, kputchar, &pca, 10, ap);
306 cons_unlock();
307 __va_end(ap);
308 if (!panicstr)
309 msgbuftrigger = 1;
310 consintr = savintr; /* reenable interrupts */
311 return (retval);
315 kvprintf(const char *fmt, __va_list ap)
317 int savintr;
318 struct putchar_arg pca;
319 int retval;
321 savintr = consintr; /* disable interrupts */
322 consintr = 0;
323 pca.tty = NULL;
324 pca.flags = TOCONS | TOLOG;
325 pca.pri = -1;
326 cons_lock();
327 retval = kvcprintf(fmt, kputchar, &pca, 10, ap);
328 cons_unlock();
329 if (!panicstr)
330 msgbuftrigger = 1;
331 consintr = savintr; /* reenable interrupts */
332 return (retval);
336 * Limited rate kprintf. The passed rate structure must be initialized
337 * with the desired reporting frequency. A frequency of 0 will result in
338 * no output.
340 * count may be initialized to a negative number to allow an initial
341 * burst.
343 void
344 krateprintf(struct krate *rate, const char *fmt, ...)
346 __va_list ap;
348 if (rate->ticks != (int)time_second) {
349 rate->ticks = (int)time_second;
350 if (rate->count > 0)
351 rate->count = 0;
353 if (rate->count < rate->freq) {
354 ++rate->count;
355 __va_start(ap, fmt);
356 kvprintf(fmt, ap);
357 __va_end(ap);
362 * Print a character on console or users terminal. If destination is
363 * the console then the last bunch of characters are saved in msgbuf for
364 * inspection later.
366 * NOT YET ENTIRELY MPSAFE, EVEN WHEN LOGGING JUST TO THE SYSCONSOLE.
368 static void
369 kputchar(int c, void *arg)
371 struct putchar_arg *ap = (struct putchar_arg*) arg;
372 int flags = ap->flags;
373 struct tty *tp = ap->tty;
374 if (panicstr)
375 constty = NULL;
376 if ((flags & TOCONS) && tp == NULL && constty) {
377 tp = constty;
378 flags |= TOTTY;
380 if ((flags & TOTTY) && tp && tputchar(c, tp) < 0 &&
381 (flags & TOCONS) && tp == constty)
382 constty = NULL;
383 if ((flags & TOLOG))
384 msglogchar(c, ap->pri);
385 if ((flags & TOCONS) && constty == NULL && c != '\0')
386 (*v_putc)(c);
390 * Scaled down version of sprintf(3).
393 ksprintf(char *buf, const char *cfmt, ...)
395 int retval;
396 __va_list ap;
398 __va_start(ap, cfmt);
399 retval = kvcprintf(cfmt, NULL, (void *)buf, 10, ap);
400 buf[retval] = '\0';
401 __va_end(ap);
402 return (retval);
406 * Scaled down version of vsprintf(3).
409 kvsprintf(char *buf, const char *cfmt, __va_list ap)
411 int retval;
413 retval = kvcprintf(cfmt, NULL, (void *)buf, 10, ap);
414 buf[retval] = '\0';
415 return (retval);
419 * Scaled down version of snprintf(3).
422 ksnprintf(char *str, size_t size, const char *format, ...)
424 int retval;
425 __va_list ap;
427 __va_start(ap, format);
428 retval = kvsnprintf(str, size, format, ap);
429 __va_end(ap);
430 return(retval);
434 * Scaled down version of vsnprintf(3).
437 kvsnprintf(char *str, size_t size, const char *format, __va_list ap)
439 struct snprintf_arg info;
440 int retval;
442 info.str = str;
443 info.remain = size;
444 retval = kvcprintf(format, snprintf_func, &info, 10, ap);
445 if (info.remain >= 1)
446 *info.str++ = '\0';
447 return (retval);
451 ksnrprintf(char *str, size_t size, int radix, const char *format, ...)
453 int retval;
454 __va_list ap;
456 __va_start(ap, format);
457 retval = kvsnrprintf(str, size, radix, format, ap);
458 __va_end(ap);
459 return(retval);
463 kvsnrprintf(char *str, size_t size, int radix, const char *format, __va_list ap)
465 struct snprintf_arg info;
466 int retval;
468 info.str = str;
469 info.remain = size;
470 retval = kvcprintf(format, snprintf_func, &info, radix, ap);
471 if (info.remain >= 1)
472 *info.str++ = '\0';
473 return (retval);
477 kvasnrprintf(char **strp, size_t size, int radix,
478 const char *format, __va_list ap)
480 struct snprintf_arg info;
481 int retval;
483 *strp = kmalloc(size, M_TEMP, M_WAITOK);
484 info.str = *strp;
485 info.remain = size;
486 retval = kvcprintf(format, snprintf_func, &info, radix, ap);
487 if (info.remain >= 1)
488 *info.str++ = '\0';
489 return (retval);
492 void
493 kvasfree(char **strp)
495 if (*strp) {
496 kfree(*strp, M_TEMP);
497 *strp = NULL;
501 static void
502 snprintf_func(int ch, void *arg)
504 struct snprintf_arg *const info = arg;
506 if (info->remain >= 2) {
507 *info->str++ = ch;
508 info->remain--;
513 * Put a NUL-terminated ASCII number (base <= 36) in a buffer in reverse
514 * order; return an optional length and a pointer to the last character
515 * written in the buffer (i.e., the first character of the string).
516 * The buffer pointed to by `nbuf' must have length >= MAXNBUF.
518 static char *
519 ksprintn(char *nbuf, uintmax_t num, int base, int *lenp, int upper)
521 char *p, c;
523 p = nbuf;
524 *p = '\0';
525 do {
526 c = hex2ascii(num % base);
527 *++p = upper ? toupper(c) : c;
528 } while (num /= base);
529 if (lenp)
530 *lenp = p - nbuf;
531 return (p);
535 * Scaled down version of printf(3).
537 * Two additional formats:
539 * The format %b is supported to decode error registers.
540 * Its usage is:
542 * kprintf("reg=%b\n", regval, "<base><arg>*");
544 * where <base> is the output base expressed as a control character, e.g.
545 * \10 gives octal; \20 gives hex. Each arg is a sequence of characters,
546 * the first of which gives the bit number to be inspected (origin 1), and
547 * the next characters (up to a control character, i.e. a character <= 32),
548 * give the name of the register. Thus:
550 * kvcprintf("reg=%b\n", 3, "\10\2BITTWO\1BITONE\n");
552 * would produce output:
554 * reg=3<BITTWO,BITONE>
556 * XXX: %D -- Hexdump, takes pointer and separator string:
557 * ("%6D", ptr, ":") -> XX:XX:XX:XX:XX:XX
558 * ("%*D", len, ptr, " " -> XX XX XX XX ...
561 kvcprintf(char const *fmt, void (*func)(int, void*), void *arg, int radix, __va_list ap)
563 #define PCHAR(c) {int cc=(c); if (func) (*func)(cc,arg); else *d++ = cc; retval++; }
564 char nbuf[MAXNBUF];
565 char *d;
566 const char *p, *percent, *q;
567 u_char *up;
568 int ch, n;
569 uintmax_t num;
570 int base, tmp, width, ladjust, sharpflag, neg, sign, dot;
571 int jflag, lflag, qflag, tflag, zflag;
572 int dwidth, upper;
573 char padc;
574 int retval = 0, stop = 0;
576 num = 0;
577 if (!func)
578 d = (char *) arg;
579 else
580 d = NULL;
582 if (fmt == NULL)
583 fmt = "(fmt null)\n";
585 if (radix < 2 || radix > 36)
586 radix = 10;
588 for (;;) {
589 padc = ' ';
590 width = 0;
591 while ((ch = (u_char)*fmt++) != '%' || stop) {
592 if (ch == '\0')
593 return (retval);
594 PCHAR(ch);
596 percent = fmt - 1;
597 dot = dwidth = ladjust = neg = sharpflag = sign = upper = 0;
598 jflag = lflag = qflag = tflag = zflag = 0;
600 reswitch:
601 switch (ch = (u_char)*fmt++) {
602 case '.':
603 dot = 1;
604 goto reswitch;
605 case '#':
606 sharpflag = 1;
607 goto reswitch;
608 case '+':
609 sign = 1;
610 goto reswitch;
611 case '-':
612 ladjust = 1;
613 goto reswitch;
614 case '%':
615 PCHAR(ch);
616 break;
617 case '*':
618 if (!dot) {
619 width = __va_arg(ap, int);
620 if (width < 0) {
621 ladjust = !ladjust;
622 width = -width;
624 } else {
625 dwidth = __va_arg(ap, int);
627 goto reswitch;
628 case '0':
629 if (!dot) {
630 padc = '0';
631 goto reswitch;
633 case '1': case '2': case '3': case '4':
634 case '5': case '6': case '7': case '8': case '9':
635 for (n = 0;; ++fmt) {
636 n = n * 10 + ch - '0';
637 ch = *fmt;
638 if (ch < '0' || ch > '9')
639 break;
641 if (dot)
642 dwidth = n;
643 else
644 width = n;
645 goto reswitch;
646 case 'b':
647 num = (u_int)__va_arg(ap, int);
648 p = __va_arg(ap, char *);
649 for (q = ksprintn(nbuf, num, *p++, NULL, 0); *q;)
650 PCHAR(*q--);
652 if (num == 0)
653 break;
655 for (tmp = 0; *p;) {
656 n = *p++;
657 if (num & (1 << (n - 1))) {
658 PCHAR(tmp ? ',' : '<');
659 for (; (n = *p) > ' '; ++p)
660 PCHAR(n);
661 tmp = 1;
662 } else
663 for (; *p > ' '; ++p)
664 continue;
666 if (tmp)
667 PCHAR('>');
668 break;
669 case 'c':
670 PCHAR(__va_arg(ap, int));
671 break;
672 case 'D':
673 up = __va_arg(ap, u_char *);
674 p = __va_arg(ap, char *);
675 if (!width)
676 width = 16;
677 while(width--) {
678 PCHAR(hex2ascii(*up >> 4));
679 PCHAR(hex2ascii(*up & 0x0f));
680 up++;
681 if (width)
682 for (q=p;*q;q++)
683 PCHAR(*q);
685 break;
686 case 'd':
687 case 'i':
688 base = 10;
689 sign = 1;
690 goto handle_sign;
691 case 'j':
692 jflag = 1;
693 goto reswitch;
694 case 'l':
695 if (lflag) {
696 lflag = 0;
697 qflag = 1;
698 } else
699 lflag = 1;
700 goto reswitch;
701 case 'n':
702 if (jflag)
703 *(__va_arg(ap, intmax_t *)) = retval;
704 else if (lflag)
705 *(__va_arg(ap, long *)) = retval;
706 else if (qflag)
707 *(__va_arg(ap, quad_t *)) = retval;
708 else
709 *(__va_arg(ap, int *)) = retval;
710 break;
711 case 'o':
712 base = 8;
713 goto handle_nosign;
714 case 'p':
715 base = 16;
716 sharpflag = (width == 0);
717 sign = 0;
718 num = (uintptr_t)__va_arg(ap, void *);
719 goto number;
720 case 'q':
721 qflag = 1;
722 goto reswitch;
723 case 'r':
724 base = radix;
725 if (sign)
726 goto handle_sign;
727 goto handle_nosign;
728 case 's':
729 p = __va_arg(ap, char *);
730 if (p == NULL)
731 p = "(null)";
732 if (!dot)
733 n = strlen (p);
734 else
735 for (n = 0; n < dwidth && p[n]; n++)
736 continue;
738 width -= n;
740 if (!ladjust && width > 0)
741 while (width--)
742 PCHAR(padc);
743 while (n--)
744 PCHAR(*p++);
745 if (ladjust && width > 0)
746 while (width--)
747 PCHAR(padc);
748 break;
749 case 't':
750 tflag = 1;
751 goto reswitch;
752 case 'u':
753 base = 10;
754 goto handle_nosign;
755 case 'X':
756 upper = 1;
757 /* FALLTHROUGH */
758 case 'x':
759 base = 16;
760 goto handle_nosign;
761 case 'z':
762 zflag = 1;
763 goto reswitch;
764 handle_nosign:
765 sign = 0;
766 if (jflag)
767 num = __va_arg(ap, uintmax_t);
768 else if (lflag)
769 num = __va_arg(ap, u_long);
770 else if (qflag)
771 num = __va_arg(ap, u_quad_t);
772 else if (tflag)
773 num = __va_arg(ap, ptrdiff_t);
774 else if (zflag)
775 num = __va_arg(ap, size_t);
776 else
777 num = __va_arg(ap, u_int);
778 goto number;
779 handle_sign:
780 if (jflag)
781 num = __va_arg(ap, intmax_t);
782 else if (lflag)
783 num = __va_arg(ap, long);
784 else if (qflag)
785 num = __va_arg(ap, quad_t);
786 else if (tflag)
787 num = __va_arg(ap, ptrdiff_t);
788 else if (zflag)
789 num = __va_arg(ap, ssize_t);
790 else
791 num = __va_arg(ap, int);
792 number:
793 if (sign && (intmax_t)num < 0) {
794 neg = 1;
795 num = -(intmax_t)num;
797 p = ksprintn(nbuf, num, base, &tmp, upper);
798 if (sharpflag && num != 0) {
799 if (base == 8)
800 tmp++;
801 else if (base == 16)
802 tmp += 2;
804 if (neg)
805 tmp++;
807 if (!ladjust && padc != '0' && width &&
808 (width -= tmp) > 0) {
809 while (width--)
810 PCHAR(padc);
812 if (neg)
813 PCHAR('-');
814 if (sharpflag && num != 0) {
815 if (base == 8) {
816 PCHAR('0');
817 } else if (base == 16) {
818 PCHAR('0');
819 PCHAR('x');
822 if (!ladjust && width && (width -= tmp) > 0)
823 while (width--)
824 PCHAR(padc);
826 while (*p)
827 PCHAR(*p--);
829 if (ladjust && width && (width -= tmp) > 0)
830 while (width--)
831 PCHAR(padc);
833 break;
834 default:
835 while (percent < fmt)
836 PCHAR(*percent++);
838 * Since we ignore an formatting argument it is no
839 * longer safe to obey the remaining formatting
840 * arguments as the arguments will no longer match
841 * the format specs.
843 stop = 1;
844 break;
847 #undef PCHAR
851 * Put character in log buffer with a particular priority.
853 * MPSAFE
855 static void
856 msglogchar(int c, int pri)
858 static int lastpri = -1;
859 static int dangling;
860 char nbuf[MAXNBUF];
861 char *p;
863 if (!msgbufmapped)
864 return;
865 if (c == '\0' || c == '\r')
866 return;
867 if (pri != -1 && pri != lastpri) {
868 if (dangling) {
869 msgaddchar('\n', NULL);
870 dangling = 0;
872 msgaddchar('<', NULL);
873 for (p = ksprintn(nbuf, (uintmax_t)pri, 10, NULL, 0); *p;)
874 msgaddchar(*p--, NULL);
875 msgaddchar('>', NULL);
876 lastpri = pri;
878 msgaddchar(c, NULL);
879 if (c == '\n') {
880 dangling = 0;
881 lastpri = -1;
882 } else {
883 dangling = 1;
888 * Put char in log buffer. Make sure nothing blows up beyond repair if
889 * we have an MP race.
891 * MPSAFE.
893 static void
894 msgaddchar(int c, void *dummy)
896 struct msgbuf *mbp;
897 int rindex;
898 int windex;
900 if (!msgbufmapped)
901 return;
902 mbp = msgbufp;
903 windex = mbp->msg_bufx;
904 mbp->msg_ptr[windex] = c;
905 if (++windex >= mbp->msg_size)
906 windex = 0;
907 rindex = mbp->msg_bufr;
908 if (windex == rindex) {
909 rindex += 32;
910 if (rindex >= mbp->msg_size)
911 rindex -= mbp->msg_size;
912 mbp->msg_bufr = rindex;
914 mbp->msg_bufx = windex;
917 static void
918 msgbufcopy(struct msgbuf *oldp)
920 int pos;
922 pos = oldp->msg_bufr;
923 while (pos != oldp->msg_bufx) {
924 msglogchar(oldp->msg_ptr[pos], -1);
925 if (++pos >= oldp->msg_size)
926 pos = 0;
930 void
931 msgbufinit(void *ptr, size_t size)
933 char *cp;
934 static struct msgbuf *oldp = NULL;
936 size -= sizeof(*msgbufp);
937 cp = (char *)ptr;
938 msgbufp = (struct msgbuf *) (cp + size);
939 if (msgbufp->msg_magic != MSG_MAGIC || msgbufp->msg_size != size ||
940 msgbufp->msg_bufx >= size || msgbufp->msg_bufr >= size) {
941 bzero(cp, size);
942 bzero(msgbufp, sizeof(*msgbufp));
943 msgbufp->msg_magic = MSG_MAGIC;
944 msgbufp->msg_size = (char *)msgbufp - cp;
946 msgbufp->msg_ptr = cp;
947 if (msgbufmapped && oldp != msgbufp)
948 msgbufcopy(oldp);
949 msgbufmapped = 1;
950 oldp = msgbufp;
953 /* Sysctls for accessing/clearing the msgbuf */
955 static int
956 sysctl_kern_msgbuf(SYSCTL_HANDLER_ARGS)
958 struct ucred *cred;
959 int error;
962 * Only wheel or root can access the message log.
964 if (unprivileged_read_msgbuf == 0) {
965 KKASSERT(req->td->td_proc);
966 cred = req->td->td_proc->p_ucred;
968 if ((cred->cr_prison || groupmember(0, cred) == 0) &&
969 priv_check(req->td, PRIV_ROOT) != 0
971 return (EPERM);
976 * Unwind the buffer, so that it's linear (possibly starting with
977 * some initial nulls).
979 error = sysctl_handle_opaque(oidp, msgbufp->msg_ptr + msgbufp->msg_bufx,
980 msgbufp->msg_size - msgbufp->msg_bufx, req);
981 if (error)
982 return (error);
983 if (msgbufp->msg_bufx > 0) {
984 error = sysctl_handle_opaque(oidp, msgbufp->msg_ptr,
985 msgbufp->msg_bufx, req);
987 return (error);
990 SYSCTL_PROC(_kern, OID_AUTO, msgbuf, CTLTYPE_STRING | CTLFLAG_RD,
991 0, 0, sysctl_kern_msgbuf, "A", "Contents of kernel message buffer");
993 static int msgbuf_clear;
995 static int
996 sysctl_kern_msgbuf_clear(SYSCTL_HANDLER_ARGS)
998 int error;
999 error = sysctl_handle_int(oidp, oidp->oid_arg1, oidp->oid_arg2, req);
1000 if (!error && req->newptr) {
1001 /* Clear the buffer and reset write pointer */
1002 bzero(msgbufp->msg_ptr, msgbufp->msg_size);
1003 msgbufp->msg_bufr = msgbufp->msg_bufx = 0;
1004 msgbuf_clear = 0;
1006 return (error);
1009 SYSCTL_PROC(_kern, OID_AUTO, msgbuf_clear,
1010 CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_SECURE, &msgbuf_clear, 0,
1011 sysctl_kern_msgbuf_clear, "I", "Clear kernel message buffer");
1013 #ifdef DDB
1015 DB_SHOW_COMMAND(msgbuf, db_show_msgbuf)
1017 int i, j;
1019 if (!msgbufmapped) {
1020 db_printf("msgbuf not mapped yet\n");
1021 return;
1023 db_printf("msgbufp = %p\n", msgbufp);
1024 db_printf("magic = %x, size = %d, r= %d, w = %d, ptr = %p\n",
1025 msgbufp->msg_magic, msgbufp->msg_size, msgbufp->msg_bufr,
1026 msgbufp->msg_bufx, msgbufp->msg_ptr);
1027 for (i = 0; i < msgbufp->msg_size; i++) {
1028 j = (i + msgbufp->msg_bufr) % msgbufp->msg_size;
1029 db_printf("%c", msgbufp->msg_ptr[j]);
1031 db_printf("\n");
1034 #endif /* DDB */