subr_prf.c revision 1.162.2.1 1 /* $NetBSD: subr_prf.c,v 1.162.2.1 2018/04/07 04:12:19 pgoyette Exp $ */
2
3 /*-
4 * Copyright (c) 1986, 1988, 1991, 1993
5 * The Regents of the University of California. All rights reserved.
6 * (c) UNIX System Laboratories, Inc.
7 * All or some portions of this file are derived from material licensed
8 * to the University of California by American Telephone and Telegraph
9 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
10 * the permission of UNIX System Laboratories, Inc.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 * 3. Neither the name of the University nor the names of its contributors
21 * may be used to endorse or promote products derived from this software
22 * without specific prior written permission.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * SUCH DAMAGE.
35 *
36 * @(#)subr_prf.c 8.4 (Berkeley) 5/4/95
37 */
38
39 #include <sys/cdefs.h>
40 __KERNEL_RCSID(0, "$NetBSD: subr_prf.c,v 1.162.2.1 2018/04/07 04:12:19 pgoyette Exp $");
41
42 #ifdef _KERNEL_OPT
43 #include "opt_ddb.h"
44 #include "opt_ipkdb.h"
45 #include "opt_kgdb.h"
46 #include "opt_dump.h"
47 #include "opt_rnd_printf.h"
48 #endif
49
50 #include <sys/param.h>
51 #include <sys/stdint.h>
52 #include <sys/systm.h>
53 #include <sys/buf.h>
54 #include <sys/device.h>
55 #include <sys/reboot.h>
56 #include <sys/msgbuf.h>
57 #include <sys/proc.h>
58 #include <sys/ioctl.h>
59 #include <sys/vnode.h>
60 #include <sys/file.h>
61 #include <sys/tty.h>
62 #include <sys/tprintf.h>
63 #include <sys/spldebug.h>
64 #include <sys/syslog.h>
65 #include <sys/kprintf.h>
66 #include <sys/atomic.h>
67 #include <sys/kernel.h>
68 #include <sys/cpu.h>
69 #include <sys/sha2.h>
70 #include <sys/rndsource.h>
71
72 #include <dev/cons.h>
73
74 #include <net/if.h>
75
76 #ifdef IPKDB
77 #include <ipkdb/ipkdb.h>
78 #endif
79
80 static kmutex_t kprintf_mtx;
81 static bool kprintf_inited = false;
82
83 #ifdef KGDB
84 #include <sys/kgdb.h>
85 #endif
86
87 #ifdef DDB
88 #include <ddb/ddbvar.h> /* db_panic */
89 #include <ddb/db_output.h> /* db_printf, db_putchar prototypes */
90 #endif
91
92
93 /*
94 * defines
95 */
96 #define KLOG_PRI 0x80000000
97
98
99 /*
100 * local prototypes
101 */
102
103 static void putchar(int, int, struct tty *);
104
105
106 /*
107 * globals
108 */
109
110 extern struct tty *constty; /* pointer to console "window" tty */
111 extern int log_open; /* subr_log: is /dev/klog open? */
112 extern krndsource_t rnd_printf_source;
113 const char *panicstr; /* arg to first call to panic (used as a flag
114 to indicate that panic has already been called). */
115 struct cpu_info *paniccpu; /* cpu that first paniced */
116 long panicstart, panicend; /* position in the msgbuf of the start and
117 end of the formatted panicstr. */
118 int doing_shutdown; /* set to indicate shutdown in progress */
119
120 #ifdef RND_PRINTF
121 static bool kprintf_inited_callout = false;
122 static SHA512_CTX kprnd_sha;
123 static uint8_t kprnd_accum[SHA512_DIGEST_LENGTH];
124 static int kprnd_added;
125
126 static struct callout kprnd_callout;
127 #endif
128
129 #ifndef DUMP_ON_PANIC
130 #define DUMP_ON_PANIC 1
131 #endif
132 int dumponpanic = DUMP_ON_PANIC;
133
134 /*
135 * v_putc: routine to putc on virtual console
136 *
137 * the v_putc pointer can be used to redirect the console cnputc elsewhere
138 * [e.g. to a "virtual console"].
139 */
140
141 void (*v_putc)(int) = cnputc; /* start with cnputc (normal cons) */
142 void (*v_flush)(void) = cnflush; /* start with cnflush (normal cons) */
143
144 const char hexdigits[] = "0123456789abcdef";
145 const char HEXDIGITS[] = "0123456789ABCDEF";
146
147
148 /*
149 * functions
150 */
151
152 #ifdef RND_PRINTF
153 static void kprintf_rnd_get(size_t bytes, void *priv)
154 {
155 if (kprnd_added) {
156 KASSERT(kprintf_inited);
157 if (mutex_tryenter(&kprintf_mtx)) {
158 SHA512_Final(kprnd_accum, &kprnd_sha);
159 rnd_add_data(&rnd_printf_source,
160 kprnd_accum, sizeof(kprnd_accum), 0);
161 kprnd_added = 0;
162 /* This, we must do, since we called _Final. */
163 SHA512_Init(&kprnd_sha);
164 /* This is optional but seems useful. */
165 SHA512_Update(&kprnd_sha, kprnd_accum,
166 sizeof(kprnd_accum));
167 mutex_exit(&kprintf_mtx);
168 }
169 }
170 }
171
172 static void kprintf_rnd_callout(void *arg)
173 {
174 kprintf_rnd_get(0, NULL);
175 callout_schedule(&kprnd_callout, hz);
176 }
177
178 #endif
179
180 /*
181 * Locking is inited fairly early in MI bootstrap. Before that
182 * prints are done unlocked. But that doesn't really matter,
183 * since nothing can preempt us before interrupts are enabled.
184 */
185 void
186 kprintf_init(void)
187 {
188
189 KASSERT(!kprintf_inited && cold); /* not foolproof, but ... */
190 #ifdef RND_PRINTF
191 SHA512_Init(&kprnd_sha);
192 #endif
193 mutex_init(&kprintf_mtx, MUTEX_DEFAULT, IPL_HIGH);
194 kprintf_inited = true;
195 }
196
197 #ifdef RND_PRINTF
198 void
199 kprintf_init_callout(void)
200 {
201 KASSERT(!kprintf_inited_callout);
202 callout_init(&kprnd_callout, CALLOUT_MPSAFE);
203 callout_setfunc(&kprnd_callout, kprintf_rnd_callout, NULL);
204 callout_schedule(&kprnd_callout, hz);
205 kprintf_inited_callout = true;
206 }
207 #endif
208
209 void
210 kprintf_lock(void)
211 {
212
213 if (__predict_true(kprintf_inited))
214 mutex_enter(&kprintf_mtx);
215 }
216
217 void
218 kprintf_unlock(void)
219 {
220
221 if (__predict_true(kprintf_inited)) {
222 /* assert kprintf wasn't somehow inited while we were in */
223 KASSERT(mutex_owned(&kprintf_mtx));
224 mutex_exit(&kprintf_mtx);
225 }
226 }
227
228 /*
229 * twiddle: spin a little propellor on the console.
230 */
231
232 void
233 twiddle(void)
234 {
235 static const char twiddle_chars[] = "|/-\\";
236 static int pos;
237
238 kprintf_lock();
239
240 putchar(twiddle_chars[pos++ & 3], TOCONS, NULL);
241 putchar('\b', TOCONS, NULL);
242
243 kprintf_unlock();
244 }
245
246 /*
247 * panic: handle an unresolvable fatal error
248 *
249 * prints "panic: <message>" and reboots. if called twice (i.e. recursive
250 * call) we avoid trying to dump and just reboot (to avoid recursive panics).
251 */
252
253 void
254 panic(const char *fmt, ...)
255 {
256 va_list ap;
257
258 va_start(ap, fmt);
259 vpanic(fmt, ap);
260 va_end(ap);
261 }
262
263 void
264 vpanic(const char *fmt, va_list ap)
265 {
266 CPU_INFO_ITERATOR cii;
267 struct cpu_info *ci, *oci;
268 int bootopt;
269 static char scratchstr[384]; /* stores panic message */
270
271 spldebug_stop();
272
273 if (lwp0.l_cpu && curlwp) {
274 /*
275 * Disable preemption. If already panicing on another CPU, sit
276 * here and spin until the system is rebooted. Allow the CPU that
277 * first paniced to panic again.
278 */
279 kpreempt_disable();
280 ci = curcpu();
281 oci = atomic_cas_ptr((void *)&paniccpu, NULL, ci);
282 if (oci != NULL && oci != ci) {
283 /* Give interrupts a chance to try and prevent deadlock. */
284 for (;;) {
285 #ifndef _RUMPKERNEL /* XXXpooka: temporary build fix, see kern/40505 */
286 DELAY(10);
287 #endif /* _RUMPKERNEL */
288 }
289 }
290
291 /*
292 * Convert the current thread to a bound thread and prevent all
293 * CPUs from scheduling unbound jobs. Do so without taking any
294 * locks.
295 */
296 curlwp->l_pflag |= LP_BOUND;
297 for (CPU_INFO_FOREACH(cii, ci)) {
298 ci->ci_schedstate.spc_flags |= SPCF_OFFLINE;
299 }
300 }
301
302 bootopt = RB_AUTOBOOT | RB_NOSYNC;
303 if (!doing_shutdown) {
304 if (dumponpanic)
305 bootopt |= RB_DUMP;
306 } else
307 printf("Skipping crash dump on recursive panic\n");
308
309 doing_shutdown = 1;
310
311 if (logenabled(msgbufp))
312 panicstart = msgbufp->msg_bufx;
313
314 printf("panic: ");
315 if (panicstr == NULL) {
316 /* first time in panic - store fmt first for precaution */
317 panicstr = fmt;
318
319 vsnprintf(scratchstr, sizeof(scratchstr), fmt, ap);
320 printf("%s", scratchstr);
321 panicstr = scratchstr;
322 } else {
323 vprintf(fmt, ap);
324 }
325 printf("\n");
326
327 if (logenabled(msgbufp))
328 panicend = msgbufp->msg_bufx;
329
330 #ifdef IPKDB
331 ipkdb_panic();
332 #endif
333 #ifdef KGDB
334 kgdb_panic();
335 #endif
336 #ifdef KADB
337 if (boothowto & RB_KDB)
338 kdbpanic();
339 #endif
340 #ifdef DDB
341 db_panic();
342 #endif
343 cpu_reboot(bootopt, NULL);
344 }
345
346 /*
347 * kernel logging functions: log, logpri, addlog
348 */
349
350 /*
351 * log: write to the log buffer
352 *
353 * => will not sleep [so safe to call from interrupt]
354 * => will log to console if /dev/klog isn't open
355 */
356
357 void
358 log(int level, const char *fmt, ...)
359 {
360 va_list ap;
361
362 kprintf_lock();
363
364 klogpri(level); /* log the level first */
365 va_start(ap, fmt);
366 kprintf(fmt, TOLOG, NULL, NULL, ap);
367 va_end(ap);
368 if (!log_open) {
369 va_start(ap, fmt);
370 kprintf(fmt, TOCONS, NULL, NULL, ap);
371 va_end(ap);
372 }
373
374 kprintf_unlock();
375
376 logwakeup(); /* wake up anyone waiting for log msgs */
377 }
378
379 /*
380 * vlog: write to the log buffer [already have va_list]
381 */
382
383 void
384 vlog(int level, const char *fmt, va_list ap)
385 {
386 va_list cap;
387
388 va_copy(cap, ap);
389 kprintf_lock();
390
391 klogpri(level); /* log the level first */
392 kprintf(fmt, TOLOG, NULL, NULL, ap);
393 if (!log_open)
394 kprintf(fmt, TOCONS, NULL, NULL, cap);
395
396 kprintf_unlock();
397 va_end(cap);
398
399 logwakeup(); /* wake up anyone waiting for log msgs */
400 }
401
402 /*
403 * logpri: log the priority level to the klog
404 */
405
406 void
407 logpri(int level)
408 {
409
410 kprintf_lock();
411 klogpri(level);
412 kprintf_unlock();
413 }
414
415 /*
416 * Note: we must be in the mutex here!
417 */
418 void
419 klogpri(int level)
420 {
421 KASSERT((level & KLOG_PRI) == 0);
422
423 putchar(level | KLOG_PRI, TOLOG, NULL);
424 }
425
426 /*
427 * addlog: add info to previous log message
428 */
429
430 void
431 addlog(const char *fmt, ...)
432 {
433 va_list ap;
434
435 kprintf_lock();
436
437 va_start(ap, fmt);
438 kprintf(fmt, TOLOG, NULL, NULL, ap);
439 va_end(ap);
440 if (!log_open) {
441 va_start(ap, fmt);
442 kprintf(fmt, TOCONS, NULL, NULL, ap);
443 va_end(ap);
444 }
445
446 kprintf_unlock();
447
448 logwakeup();
449 }
450
451 static void
452 putone(int c, int flags, struct tty *tp)
453 {
454 if (panicstr)
455 constty = NULL;
456
457 if ((flags & TOCONS) && tp == NULL && constty) {
458 tp = constty;
459 flags |= TOTTY;
460 }
461 if ((flags & TOTTY) && tp &&
462 tputchar(c, flags, tp) < 0 &&
463 (flags & TOCONS) && tp == constty)
464 constty = NULL;
465 if ((flags & TOLOG) &&
466 c != '\0' && c != '\r' && c != 0177)
467 logputchar(c);
468 if ((flags & TOCONS) && constty == NULL && c != '\0')
469 (*v_putc)(c);
470 }
471
472 static void
473 putlogpri(int level)
474 {
475 char *p;
476 char snbuf[KPRINTF_BUFSIZE];
477
478 putone('<', TOLOG, NULL);
479 snprintf(snbuf, sizeof(snbuf), "%d", level);
480 for (p = snbuf ; *p ; p++)
481 putone(*p, TOLOG, NULL);
482 putone('>', TOLOG, NULL);
483 }
484
485 #ifdef KLOG_TIMESTAMP
486 static int needtstamp = 1;
487
488 static void
489 addtstamp(int flags, struct tty *tp)
490 {
491 char buf[64];
492 struct timespec ts;
493 int n;
494
495 getnanouptime(&ts);
496 n = snprintf(buf, sizeof(buf), "[% 9jd.%.9ld] ",
497 (intptr_t)ts.tv_sec, ts.tv_nsec);
498
499 for (int i = 0; i < n; i++)
500 putone(buf[i], flags, tp);
501 }
502 #endif
503
504 /*
505 * putchar: print a single character on console or user terminal.
506 *
507 * => if console, then the last MSGBUFS chars are saved in msgbuf
508 * for inspection later (e.g. dmesg/syslog)
509 * => we must already be in the mutex!
510 */
511 static void
512 putchar(int c, int flags, struct tty *tp)
513 {
514 if (c & KLOG_PRI) {
515 putlogpri(c & ~KLOG_PRI);
516 return;
517 }
518
519 #ifdef KLOG_TIMESTAMP
520 if (needtstamp) {
521 addtstamp(flags, tp);
522 needtstamp = 0;
523 }
524
525 if (c == '\n')
526 needtstamp++;
527 #endif
528 putone(c, flags, tp);
529
530 #ifdef DDB
531 if (flags & TODDB) {
532 db_putchar(c);
533 return;
534 }
535 #endif
536
537 #ifdef RND_PRINTF
538 if (__predict_true(kprintf_inited)) {
539 static uint8_t rbuf[SHA512_BLOCK_LENGTH];
540 static int cursor;
541
542 rbuf[cursor] = c;
543 if (cursor == sizeof(rbuf) - 1) {
544 SHA512_Update(&kprnd_sha, rbuf, sizeof(rbuf));
545 kprnd_added++;
546 cursor = 0;
547 } else {
548 cursor++;
549 }
550 }
551 #endif
552 }
553
554 /*
555 * tablefull: warn that a system table is full
556 */
557
558 void
559 tablefull(const char *tab, const char *hint)
560 {
561 if (hint)
562 log(LOG_ERR, "%s: table is full - %s\n", tab, hint);
563 else
564 log(LOG_ERR, "%s: table is full\n", tab);
565 }
566
567
568 /*
569 * uprintf: print to the controlling tty of the current process
570 *
571 * => we may block if the tty queue is full
572 * => no message is printed if the queue doesn't clear in a reasonable
573 * time
574 */
575
576 void
577 uprintf(const char *fmt, ...)
578 {
579 struct proc *p = curproc;
580 va_list ap;
581
582 /* mutex_enter(proc_lock); XXXSMP */
583
584 if (p->p_lflag & PL_CONTROLT && p->p_session->s_ttyvp) {
585 /* No mutex needed; going to process TTY. */
586 va_start(ap, fmt);
587 kprintf(fmt, TOTTY, p->p_session->s_ttyp, NULL, ap);
588 va_end(ap);
589 }
590
591 /* mutex_exit(proc_lock); XXXSMP */
592 }
593
594 void
595 uprintf_locked(const char *fmt, ...)
596 {
597 struct proc *p = curproc;
598 va_list ap;
599
600 if (p->p_lflag & PL_CONTROLT && p->p_session->s_ttyvp) {
601 /* No mutex needed; going to process TTY. */
602 va_start(ap, fmt);
603 kprintf(fmt, TOTTY, p->p_session->s_ttyp, NULL, ap);
604 va_end(ap);
605 }
606 }
607
608 /*
609 * tprintf functions: used to send messages to a specific process
610 *
611 * usage:
612 * get a tpr_t handle on a process "p" by using "tprintf_open(p)"
613 * use the handle when calling "tprintf"
614 * when done, do a "tprintf_close" to drop the handle
615 */
616
617 /*
618 * tprintf_open: get a tprintf handle on a process "p"
619 *
620 * => returns NULL if process can't be printed to
621 */
622
623 tpr_t
624 tprintf_open(struct proc *p)
625 {
626 tpr_t cookie;
627
628 cookie = NULL;
629
630 mutex_enter(proc_lock);
631 if (p->p_lflag & PL_CONTROLT && p->p_session->s_ttyvp) {
632 proc_sesshold(p->p_session);
633 cookie = (tpr_t)p->p_session;
634 }
635 mutex_exit(proc_lock);
636
637 return cookie;
638 }
639
640 /*
641 * tprintf_close: dispose of a tprintf handle obtained with tprintf_open
642 */
643
644 void
645 tprintf_close(tpr_t sess)
646 {
647
648 if (sess) {
649 mutex_enter(proc_lock);
650 /* Releases proc_lock. */
651 proc_sessrele((struct session *)sess);
652 }
653 }
654
655 /*
656 * tprintf: given tprintf handle to a process [obtained with tprintf_open],
657 * send a message to the controlling tty for that process.
658 *
659 * => also sends message to /dev/klog
660 */
661 void
662 tprintf(tpr_t tpr, const char *fmt, ...)
663 {
664 struct session *sess = (struct session *)tpr;
665 struct tty *tp = NULL;
666 int flags = TOLOG;
667 va_list ap;
668
669 /* mutex_enter(proc_lock); XXXSMP */
670 if (sess && sess->s_ttyvp && ttycheckoutq(sess->s_ttyp, 0)) {
671 flags |= TOTTY;
672 tp = sess->s_ttyp;
673 }
674
675 kprintf_lock();
676
677 klogpri(LOG_INFO);
678 va_start(ap, fmt);
679 kprintf(fmt, flags, tp, NULL, ap);
680 va_end(ap);
681
682 kprintf_unlock();
683 /* mutex_exit(proc_lock); XXXSMP */
684
685 logwakeup();
686 }
687
688
689 /*
690 * ttyprintf: send a message to a specific tty
691 *
692 * => should be used only by tty driver or anything that knows the
693 * underlying tty will not be revoked(2)'d away. [otherwise,
694 * use tprintf]
695 */
696 void
697 ttyprintf(struct tty *tp, const char *fmt, ...)
698 {
699 va_list ap;
700
701 /* No mutex needed; going to process TTY. */
702 va_start(ap, fmt);
703 kprintf(fmt, TOTTY, tp, NULL, ap);
704 va_end(ap);
705 }
706
707 #ifdef DDB
708
709 /*
710 * db_printf: printf for DDB (via db_putchar)
711 */
712
713 void
714 db_printf(const char *fmt, ...)
715 {
716 va_list ap;
717
718 /* No mutex needed; DDB pauses all processors. */
719 va_start(ap, fmt);
720 kprintf(fmt, TODDB, NULL, NULL, ap);
721 va_end(ap);
722
723 if (db_tee_msgbuf) {
724 va_start(ap, fmt);
725 kprintf(fmt, TOLOG, NULL, NULL, ap);
726 va_end(ap);
727 }
728 }
729
730 void
731 db_vprintf(const char *fmt, va_list ap)
732 {
733 va_list cap;
734
735 va_copy(cap, ap);
736 /* No mutex needed; DDB pauses all processors. */
737 kprintf(fmt, TODDB, NULL, NULL, ap);
738 if (db_tee_msgbuf)
739 kprintf(fmt, TOLOG, NULL, NULL, cap);
740 va_end(cap);
741 }
742
743 #endif /* DDB */
744
745 static void
746 kprintf_internal(const char *fmt, int oflags, void *vp, char *sbuf, ...)
747 {
748 va_list ap;
749
750 va_start(ap, sbuf);
751 (void)kprintf(fmt, oflags, vp, sbuf, ap);
752 va_end(ap);
753 }
754
755 /*
756 * Device autoconfiguration printf routines. These change their
757 * behavior based on the AB_* flags in boothowto. If AB_SILENT
758 * is set, messages never go to the console (but they still always
759 * go to the log). AB_VERBOSE overrides AB_SILENT.
760 */
761
762 /*
763 * aprint_normal: Send to console unless AB_QUIET. Always goes
764 * to the log.
765 */
766 static void
767 aprint_normal_internal(const char *prefix, const char *fmt, va_list ap)
768 {
769 int flags = TOLOG;
770
771 if ((boothowto & (AB_SILENT|AB_QUIET)) == 0 ||
772 (boothowto & AB_VERBOSE) != 0)
773 flags |= TOCONS;
774
775 kprintf_lock();
776
777 if (prefix)
778 kprintf_internal("%s: ", flags, NULL, NULL, prefix);
779 kprintf(fmt, flags, NULL, NULL, ap);
780
781 kprintf_unlock();
782
783 if (!panicstr)
784 logwakeup();
785 }
786
787 void
788 aprint_normal(const char *fmt, ...)
789 {
790 va_list ap;
791
792 va_start(ap, fmt);
793 aprint_normal_internal(NULL, fmt, ap);
794 va_end(ap);
795 }
796
797 void
798 aprint_normal_dev(device_t dv, const char *fmt, ...)
799 {
800 va_list ap;
801
802 va_start(ap, fmt);
803 aprint_normal_internal(device_xname(dv), fmt, ap);
804 va_end(ap);
805 }
806
807 void
808 aprint_normal_ifnet(struct ifnet *ifp, const char *fmt, ...)
809 {
810 va_list ap;
811
812 va_start(ap, fmt);
813 aprint_normal_internal(ifp->if_xname, fmt, ap);
814 va_end(ap);
815 }
816
817 /*
818 * aprint_error: Send to console unless AB_QUIET. Always goes
819 * to the log. Also counts the number of times called so other
820 * parts of the kernel can report the number of errors during a
821 * given phase of system startup.
822 */
823 static int aprint_error_count;
824
825 int
826 aprint_get_error_count(void)
827 {
828 int count;
829
830 kprintf_lock();
831
832 count = aprint_error_count;
833 aprint_error_count = 0;
834
835 kprintf_unlock();
836
837 return (count);
838 }
839
840 static void
841 aprint_error_internal(const char *prefix, const char *fmt, va_list ap)
842 {
843 int flags = TOLOG;
844
845 if ((boothowto & (AB_SILENT|AB_QUIET)) == 0 ||
846 (boothowto & AB_VERBOSE) != 0)
847 flags |= TOCONS;
848
849 kprintf_lock();
850
851 aprint_error_count++;
852
853 if (prefix)
854 kprintf_internal("%s: ", flags, NULL, NULL, prefix);
855 kprintf(fmt, flags, NULL, NULL, ap);
856
857 kprintf_unlock();
858
859 if (!panicstr)
860 logwakeup();
861 }
862
863 void
864 aprint_error(const char *fmt, ...)
865 {
866 va_list ap;
867
868 va_start(ap, fmt);
869 aprint_error_internal(NULL, fmt, ap);
870 va_end(ap);
871 }
872
873 void
874 aprint_error_dev(device_t dv, const char *fmt, ...)
875 {
876 va_list ap;
877
878 va_start(ap, fmt);
879 aprint_error_internal(device_xname(dv), fmt, ap);
880 va_end(ap);
881 }
882
883 void
884 aprint_error_ifnet(struct ifnet *ifp, const char *fmt, ...)
885 {
886 va_list ap;
887
888 va_start(ap, fmt);
889 aprint_error_internal(ifp->if_xname, fmt, ap);
890 va_end(ap);
891 }
892
893 /*
894 * aprint_naive: Send to console only if AB_QUIET. Never goes
895 * to the log.
896 */
897 static void
898 aprint_naive_internal(const char *prefix, const char *fmt, va_list ap)
899 {
900 if ((boothowto & (AB_QUIET|AB_SILENT|AB_VERBOSE)) != AB_QUIET)
901 return;
902
903 kprintf_lock();
904
905 if (prefix)
906 kprintf_internal("%s: ", TOCONS, NULL, NULL, prefix);
907 kprintf(fmt, TOCONS, NULL, NULL, ap);
908
909 kprintf_unlock();
910 }
911
912 void
913 aprint_naive(const char *fmt, ...)
914 {
915 va_list ap;
916
917 va_start(ap, fmt);
918 aprint_naive_internal(NULL, fmt, ap);
919 va_end(ap);
920 }
921
922 void
923 aprint_naive_dev(device_t dv, const char *fmt, ...)
924 {
925 va_list ap;
926
927 va_start(ap, fmt);
928 aprint_naive_internal(device_xname(dv), fmt, ap);
929 va_end(ap);
930 }
931
932 void
933 aprint_naive_ifnet(struct ifnet *ifp, const char *fmt, ...)
934 {
935 va_list ap;
936
937 va_start(ap, fmt);
938 aprint_naive_internal(ifp->if_xname, fmt, ap);
939 va_end(ap);
940 }
941
942 /*
943 * aprint_verbose: Send to console only if AB_VERBOSE. Always
944 * goes to the log.
945 */
946 static void
947 aprint_verbose_internal(const char *prefix, const char *fmt, va_list ap)
948 {
949 int flags = TOLOG;
950
951 if (boothowto & AB_VERBOSE)
952 flags |= TOCONS;
953
954 kprintf_lock();
955
956 if (prefix)
957 kprintf_internal("%s: ", flags, NULL, NULL, prefix);
958 kprintf(fmt, flags, NULL, NULL, ap);
959
960 kprintf_unlock();
961
962 if (!panicstr)
963 logwakeup();
964 }
965
966 void
967 aprint_verbose(const char *fmt, ...)
968 {
969 va_list ap;
970
971 va_start(ap, fmt);
972 aprint_verbose_internal(NULL, fmt, ap);
973 va_end(ap);
974 }
975
976 void
977 aprint_verbose_dev(device_t dv, const char *fmt, ...)
978 {
979 va_list ap;
980
981 va_start(ap, fmt);
982 aprint_verbose_internal(device_xname(dv), fmt, ap);
983 va_end(ap);
984 }
985
986 void
987 aprint_verbose_ifnet(struct ifnet *ifp, const char *fmt, ...)
988 {
989 va_list ap;
990
991 va_start(ap, fmt);
992 aprint_verbose_internal(ifp->if_xname, fmt, ap);
993 va_end(ap);
994 }
995
996 /*
997 * aprint_debug: Send to console and log only if AB_DEBUG.
998 */
999 static void
1000 aprint_debug_internal(const char *prefix, const char *fmt, va_list ap)
1001 {
1002 if ((boothowto & AB_DEBUG) == 0)
1003 return;
1004
1005 kprintf_lock();
1006
1007 if (prefix)
1008 kprintf_internal("%s: ", TOCONS | TOLOG, NULL, NULL, prefix);
1009 kprintf(fmt, TOCONS | TOLOG, NULL, NULL, ap);
1010
1011 kprintf_unlock();
1012 }
1013
1014 void
1015 aprint_debug(const char *fmt, ...)
1016 {
1017 va_list ap;
1018
1019 va_start(ap, fmt);
1020 aprint_debug_internal(NULL, fmt, ap);
1021 va_end(ap);
1022 }
1023
1024 void
1025 aprint_debug_dev(device_t dv, const char *fmt, ...)
1026 {
1027 va_list ap;
1028
1029 va_start(ap, fmt);
1030 aprint_debug_internal(device_xname(dv), fmt, ap);
1031 va_end(ap);
1032 }
1033
1034 void
1035 aprint_debug_ifnet(struct ifnet *ifp, const char *fmt, ...)
1036 {
1037 va_list ap;
1038
1039 va_start(ap, fmt);
1040 aprint_debug_internal(ifp->if_xname, fmt, ap);
1041 va_end(ap);
1042 }
1043
1044 void
1045 printf_tolog(const char *fmt, ...)
1046 {
1047 va_list ap;
1048
1049 kprintf_lock();
1050
1051 va_start(ap, fmt);
1052 kprintf(fmt, TOLOG, NULL, NULL, ap);
1053 va_end(ap);
1054
1055 kprintf_unlock();
1056 }
1057
1058 /*
1059 * printf_nolog: Like printf(), but does not send message to the log.
1060 */
1061
1062 void
1063 printf_nolog(const char *fmt, ...)
1064 {
1065 va_list ap;
1066
1067 kprintf_lock();
1068
1069 va_start(ap, fmt);
1070 kprintf(fmt, TOCONS, NULL, NULL, ap);
1071 va_end(ap);
1072
1073 kprintf_unlock();
1074 }
1075
1076 /*
1077 * normal kernel printf functions: printf, vprintf, snprintf, vsnprintf
1078 */
1079
1080 /*
1081 * printf: print a message to the console and the log
1082 */
1083 void
1084 printf(const char *fmt, ...)
1085 {
1086 va_list ap;
1087
1088 kprintf_lock();
1089
1090 va_start(ap, fmt);
1091 kprintf(fmt, TOCONS | TOLOG, NULL, NULL, ap);
1092 va_end(ap);
1093
1094 kprintf_unlock();
1095
1096 if (!panicstr)
1097 logwakeup();
1098 }
1099
1100 /*
1101 * vprintf: print a message to the console and the log [already have
1102 * va_list]
1103 */
1104
1105 void
1106 vprintf(const char *fmt, va_list ap)
1107 {
1108 kprintf_lock();
1109
1110 kprintf(fmt, TOCONS | TOLOG, NULL, NULL, ap);
1111
1112 kprintf_unlock();
1113
1114 if (!panicstr)
1115 logwakeup();
1116 }
1117
1118 /*
1119 * snprintf: print a message to a buffer
1120 */
1121 int
1122 snprintf(char *bf, size_t size, const char *fmt, ...)
1123 {
1124 int retval;
1125 va_list ap;
1126
1127 va_start(ap, fmt);
1128 retval = vsnprintf(bf, size, fmt, ap);
1129 va_end(ap);
1130
1131 return retval;
1132 }
1133
1134 /*
1135 * vsnprintf: print a message to a buffer [already have va_list]
1136 */
1137 int
1138 vsnprintf(char *bf, size_t size, const char *fmt, va_list ap)
1139 {
1140 int retval;
1141 char *p;
1142
1143 p = bf + size;
1144 retval = kprintf(fmt, TOBUFONLY, &p, bf, ap);
1145 if (bf && size > 0) {
1146 /* nul terminate */
1147 if (size <= (size_t)retval)
1148 bf[size - 1] = '\0';
1149 else
1150 bf[retval] = '\0';
1151 }
1152 return retval;
1153 }
1154
1155 /*
1156 * kprintf: scaled down version of printf(3).
1157 *
1158 * this version based on vfprintf() from libc which was derived from
1159 * software contributed to Berkeley by Chris Torek.
1160 *
1161 * NOTE: The kprintf mutex must be held if we're going TOBUF or TOCONS!
1162 */
1163
1164 /*
1165 * macros for converting digits to letters and vice versa
1166 */
1167 #define to_digit(c) ((c) - '0')
1168 #define is_digit(c) ((unsigned)to_digit(c) <= 9)
1169 #define to_char(n) ((n) + '0')
1170
1171 /*
1172 * flags used during conversion.
1173 */
1174 #define ALT 0x001 /* alternate form */
1175 #define HEXPREFIX 0x002 /* add 0x or 0X prefix */
1176 #define LADJUST 0x004 /* left adjustment */
1177 #define LONGDBL 0x008 /* long double; unimplemented */
1178 #define LONGINT 0x010 /* long integer */
1179 #define QUADINT 0x020 /* quad integer */
1180 #define SHORTINT 0x040 /* short integer */
1181 #define MAXINT 0x080 /* intmax_t */
1182 #define PTRINT 0x100 /* intptr_t */
1183 #define SIZEINT 0x200 /* size_t */
1184 #define ZEROPAD 0x400 /* zero (as opposed to blank) pad */
1185 #define FPT 0x800 /* Floating point number */
1186
1187 /*
1188 * To extend shorts properly, we need both signed and unsigned
1189 * argument extraction methods.
1190 */
1191 #define SARG() \
1192 (flags&MAXINT ? va_arg(ap, intmax_t) : \
1193 flags&PTRINT ? va_arg(ap, intptr_t) : \
1194 flags&SIZEINT ? va_arg(ap, ssize_t) : /* XXX */ \
1195 flags&QUADINT ? va_arg(ap, quad_t) : \
1196 flags&LONGINT ? va_arg(ap, long) : \
1197 flags&SHORTINT ? (long)(short)va_arg(ap, int) : \
1198 (long)va_arg(ap, int))
1199 #define UARG() \
1200 (flags&MAXINT ? va_arg(ap, uintmax_t) : \
1201 flags&PTRINT ? va_arg(ap, uintptr_t) : \
1202 flags&SIZEINT ? va_arg(ap, size_t) : \
1203 flags&QUADINT ? va_arg(ap, u_quad_t) : \
1204 flags&LONGINT ? va_arg(ap, u_long) : \
1205 flags&SHORTINT ? (u_long)(u_short)va_arg(ap, int) : \
1206 (u_long)va_arg(ap, u_int))
1207
1208 #define KPRINTF_PUTCHAR(C) { \
1209 if (oflags == TOBUFONLY) { \
1210 if (sbuf && ((vp == NULL) || (sbuf < tailp))) \
1211 *sbuf++ = (C); \
1212 } else { \
1213 putchar((C), oflags, vp); \
1214 } \
1215 }
1216
1217 void
1218 device_printf(device_t dev, const char *fmt, ...)
1219 {
1220 va_list ap;
1221
1222 va_start(ap, fmt);
1223 printf("%s: ", device_xname(dev));
1224 vprintf(fmt, ap);
1225 va_end(ap);
1226 return;
1227 }
1228
1229 /*
1230 * Guts of kernel printf. Note, we already expect to be in a mutex!
1231 */
1232 int
1233 kprintf(const char *fmt0, int oflags, void *vp, char *sbuf, va_list ap)
1234 {
1235 const char *fmt; /* format string */
1236 int ch; /* character from fmt */
1237 int n; /* handy integer (short term usage) */
1238 char *cp; /* handy char pointer (short term usage) */
1239 int flags; /* flags as above */
1240 int ret; /* return value accumulator */
1241 int width; /* width from format (%8d), or 0 */
1242 int prec; /* precision from format (%.3d), or -1 */
1243 char sign; /* sign prefix (' ', '+', '-', or \0) */
1244
1245 u_quad_t _uquad; /* integer arguments %[diouxX] */
1246 enum { OCT, DEC, HEX } base;/* base for [diouxX] conversion */
1247 int dprec; /* a copy of prec if [diouxX], 0 otherwise */
1248 int realsz; /* field size expanded by dprec */
1249 int size; /* size of converted field or string */
1250 const char *xdigs; /* digits for [xX] conversion */
1251 char bf[KPRINTF_BUFSIZE]; /* space for %c, %[diouxX] */
1252 char *tailp; /* tail pointer for snprintf */
1253
1254 if (oflags == TOBUFONLY && (vp != NULL))
1255 tailp = *(char **)vp;
1256 else
1257 tailp = NULL;
1258
1259 cp = NULL; /* XXX: shutup gcc */
1260 size = 0; /* XXX: shutup gcc */
1261
1262 fmt = fmt0;
1263 ret = 0;
1264
1265 xdigs = NULL; /* XXX: shut up gcc warning */
1266
1267 /*
1268 * Scan the format for conversions (`%' character).
1269 */
1270 for (;;) {
1271 for (; *fmt != '%' && *fmt; fmt++) {
1272 ret++;
1273 KPRINTF_PUTCHAR(*fmt);
1274 }
1275 if (*fmt == 0)
1276 goto done;
1277
1278 fmt++; /* skip over '%' */
1279
1280 flags = 0;
1281 dprec = 0;
1282 width = 0;
1283 prec = -1;
1284 sign = '\0';
1285
1286 rflag: ch = *fmt++;
1287 reswitch: switch (ch) {
1288 case ' ':
1289 /*
1290 * ``If the space and + flags both appear, the space
1291 * flag will be ignored.''
1292 * -- ANSI X3J11
1293 */
1294 if (!sign)
1295 sign = ' ';
1296 goto rflag;
1297 case '#':
1298 flags |= ALT;
1299 goto rflag;
1300 case '*':
1301 /*
1302 * ``A negative field width argument is taken as a
1303 * - flag followed by a positive field width.''
1304 * -- ANSI X3J11
1305 * They don't exclude field widths read from args.
1306 */
1307 if ((width = va_arg(ap, int)) >= 0)
1308 goto rflag;
1309 width = -width;
1310 /* FALLTHROUGH */
1311 case '-':
1312 flags |= LADJUST;
1313 goto rflag;
1314 case '+':
1315 sign = '+';
1316 goto rflag;
1317 case '.':
1318 if ((ch = *fmt++) == '*') {
1319 n = va_arg(ap, int);
1320 prec = n < 0 ? -1 : n;
1321 goto rflag;
1322 }
1323 n = 0;
1324 while (is_digit(ch)) {
1325 n = 10 * n + to_digit(ch);
1326 ch = *fmt++;
1327 }
1328 prec = n < 0 ? -1 : n;
1329 goto reswitch;
1330 case '0':
1331 /*
1332 * ``Note that 0 is taken as a flag, not as the
1333 * beginning of a field width.''
1334 * -- ANSI X3J11
1335 */
1336 flags |= ZEROPAD;
1337 goto rflag;
1338 case '1': case '2': case '3': case '4':
1339 case '5': case '6': case '7': case '8': case '9':
1340 n = 0;
1341 do {
1342 n = 10 * n + to_digit(ch);
1343 ch = *fmt++;
1344 } while (is_digit(ch));
1345 width = n;
1346 goto reswitch;
1347 case 'h':
1348 flags |= SHORTINT;
1349 goto rflag;
1350 case 'j':
1351 flags |= MAXINT;
1352 goto rflag;
1353 case 'l':
1354 if (*fmt == 'l') {
1355 fmt++;
1356 flags |= QUADINT;
1357 } else {
1358 flags |= LONGINT;
1359 }
1360 goto rflag;
1361 case 'q':
1362 flags |= QUADINT;
1363 goto rflag;
1364 case 't':
1365 flags |= PTRINT;
1366 goto rflag;
1367 case 'z':
1368 flags |= SIZEINT;
1369 goto rflag;
1370 case 'c':
1371 *(cp = bf) = va_arg(ap, int);
1372 size = 1;
1373 sign = '\0';
1374 break;
1375 case 'D':
1376 flags |= LONGINT;
1377 /*FALLTHROUGH*/
1378 case 'd':
1379 case 'i':
1380 _uquad = SARG();
1381 if ((quad_t)_uquad < 0) {
1382 _uquad = -_uquad;
1383 sign = '-';
1384 }
1385 base = DEC;
1386 goto number;
1387 case 'n':
1388 if (flags & MAXINT)
1389 *va_arg(ap, intmax_t *) = ret;
1390 else if (flags & PTRINT)
1391 *va_arg(ap, intptr_t *) = ret;
1392 else if (flags & SIZEINT)
1393 *va_arg(ap, ssize_t *) = ret;
1394 else if (flags & QUADINT)
1395 *va_arg(ap, quad_t *) = ret;
1396 else if (flags & LONGINT)
1397 *va_arg(ap, long *) = ret;
1398 else if (flags & SHORTINT)
1399 *va_arg(ap, short *) = ret;
1400 else
1401 *va_arg(ap, int *) = ret;
1402 continue; /* no output */
1403 case 'O':
1404 flags |= LONGINT;
1405 /*FALLTHROUGH*/
1406 case 'o':
1407 _uquad = UARG();
1408 base = OCT;
1409 goto nosign;
1410 case 'p':
1411 /*
1412 * ``The argument shall be a pointer to void. The
1413 * value of the pointer is converted to a sequence
1414 * of printable characters, in an implementation-
1415 * defined manner.''
1416 * -- ANSI X3J11
1417 */
1418 /* NOSTRICT */
1419 _uquad = (u_long)va_arg(ap, void *);
1420 base = HEX;
1421 xdigs = hexdigits;
1422 flags |= HEXPREFIX;
1423 ch = 'x';
1424 goto nosign;
1425 case 's':
1426 if ((cp = va_arg(ap, char *)) == NULL)
1427 /*XXXUNCONST*/
1428 cp = __UNCONST("(null)");
1429 if (prec >= 0) {
1430 /*
1431 * can't use strlen; can only look for the
1432 * NUL in the first `prec' characters, and
1433 * strlen() will go further.
1434 */
1435 char *p = memchr(cp, 0, prec);
1436
1437 if (p != NULL) {
1438 size = p - cp;
1439 if (size > prec)
1440 size = prec;
1441 } else
1442 size = prec;
1443 } else
1444 size = strlen(cp);
1445 sign = '\0';
1446 break;
1447 case 'U':
1448 flags |= LONGINT;
1449 /*FALLTHROUGH*/
1450 case 'u':
1451 _uquad = UARG();
1452 base = DEC;
1453 goto nosign;
1454 case 'X':
1455 xdigs = HEXDIGITS;
1456 goto hex;
1457 case 'x':
1458 xdigs = hexdigits;
1459 hex: _uquad = UARG();
1460 base = HEX;
1461 /* leading 0x/X only if non-zero */
1462 if (flags & ALT && _uquad != 0)
1463 flags |= HEXPREFIX;
1464
1465 /* unsigned conversions */
1466 nosign: sign = '\0';
1467 /*
1468 * ``... diouXx conversions ... if a precision is
1469 * specified, the 0 flag will be ignored.''
1470 * -- ANSI X3J11
1471 */
1472 number: if ((dprec = prec) >= 0)
1473 flags &= ~ZEROPAD;
1474
1475 /*
1476 * ``The result of converting a zero value with an
1477 * explicit precision of zero is no characters.''
1478 * -- ANSI X3J11
1479 */
1480 cp = bf + KPRINTF_BUFSIZE;
1481 if (_uquad != 0 || prec != 0) {
1482 /*
1483 * Unsigned mod is hard, and unsigned mod
1484 * by a constant is easier than that by
1485 * a variable; hence this switch.
1486 */
1487 switch (base) {
1488 case OCT:
1489 do {
1490 *--cp = to_char(_uquad & 7);
1491 _uquad >>= 3;
1492 } while (_uquad);
1493 /* handle octal leading 0 */
1494 if (flags & ALT && *cp != '0')
1495 *--cp = '0';
1496 break;
1497
1498 case DEC:
1499 /* many numbers are 1 digit */
1500 while (_uquad >= 10) {
1501 *--cp = to_char(_uquad % 10);
1502 _uquad /= 10;
1503 }
1504 *--cp = to_char(_uquad);
1505 break;
1506
1507 case HEX:
1508 do {
1509 *--cp = xdigs[_uquad & 15];
1510 _uquad >>= 4;
1511 } while (_uquad);
1512 break;
1513
1514 default:
1515 /*XXXUNCONST*/
1516 cp = __UNCONST("bug in kprintf: bad base");
1517 size = strlen(cp);
1518 goto skipsize;
1519 }
1520 }
1521 size = bf + KPRINTF_BUFSIZE - cp;
1522 skipsize:
1523 break;
1524 default: /* "%?" prints ?, unless ? is NUL */
1525 if (ch == '\0')
1526 goto done;
1527 /* pretend it was %c with argument ch */
1528 cp = bf;
1529 *cp = ch;
1530 size = 1;
1531 sign = '\0';
1532 break;
1533 }
1534
1535 /*
1536 * All reasonable formats wind up here. At this point, `cp'
1537 * points to a string which (if not flags&LADJUST) should be
1538 * padded out to `width' places. If flags&ZEROPAD, it should
1539 * first be prefixed by any sign or other prefix; otherwise,
1540 * it should be blank padded before the prefix is emitted.
1541 * After any left-hand padding and prefixing, emit zeroes
1542 * required by a decimal [diouxX] precision, then print the
1543 * string proper, then emit zeroes required by any leftover
1544 * floating precision; finally, if LADJUST, pad with blanks.
1545 *
1546 * Compute actual size, so we know how much to pad.
1547 * size excludes decimal prec; realsz includes it.
1548 */
1549 realsz = dprec > size ? dprec : size;
1550 if (sign)
1551 realsz++;
1552 else if (flags & HEXPREFIX)
1553 realsz+= 2;
1554
1555 /* adjust ret */
1556 ret += width > realsz ? width : realsz;
1557
1558 /* right-adjusting blank padding */
1559 if ((flags & (LADJUST|ZEROPAD)) == 0) {
1560 n = width - realsz;
1561 while (n-- > 0)
1562 KPRINTF_PUTCHAR(' ');
1563 }
1564
1565 /* prefix */
1566 if (sign) {
1567 KPRINTF_PUTCHAR(sign);
1568 } else if (flags & HEXPREFIX) {
1569 KPRINTF_PUTCHAR('0');
1570 KPRINTF_PUTCHAR(ch);
1571 }
1572
1573 /* right-adjusting zero padding */
1574 if ((flags & (LADJUST|ZEROPAD)) == ZEROPAD) {
1575 n = width - realsz;
1576 while (n-- > 0)
1577 KPRINTF_PUTCHAR('0');
1578 }
1579
1580 /* leading zeroes from decimal precision */
1581 n = dprec - size;
1582 while (n-- > 0)
1583 KPRINTF_PUTCHAR('0');
1584
1585 /* the string or number proper */
1586 for (; size--; cp++)
1587 KPRINTF_PUTCHAR(*cp);
1588 /* left-adjusting padding (always blank) */
1589 if (flags & LADJUST) {
1590 n = width - realsz;
1591 while (n-- > 0)
1592 KPRINTF_PUTCHAR(' ');
1593 }
1594 }
1595
1596 done:
1597 if ((oflags == TOBUFONLY) && (vp != NULL))
1598 *(char **)vp = sbuf;
1599 (*v_flush)();
1600
1601 #ifdef RND_PRINTF
1602 if (!cold) {
1603 struct timespec ts;
1604 (void)nanotime(&ts);
1605 SHA512_Update(&kprnd_sha, (char *)&ts, sizeof(ts));
1606 }
1607 #endif
1608 return ret;
1609 }
1610