kern_subr.c revision 1.144 1 1.144 jmcneill /* $NetBSD: kern_subr.c,v 1.144 2006/09/24 03:54:00 jmcneill Exp $ */
2 1.31 thorpej
3 1.31 thorpej /*-
4 1.78 thorpej * Copyright (c) 1997, 1998, 1999, 2002 The NetBSD Foundation, Inc.
5 1.31 thorpej * All rights reserved.
6 1.31 thorpej *
7 1.31 thorpej * This code is derived from software contributed to The NetBSD Foundation
8 1.31 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.48 lukem * NASA Ames Research Center, and by Luke Mewburn.
10 1.31 thorpej *
11 1.31 thorpej * Redistribution and use in source and binary forms, with or without
12 1.31 thorpej * modification, are permitted provided that the following conditions
13 1.31 thorpej * are met:
14 1.31 thorpej * 1. Redistributions of source code must retain the above copyright
15 1.31 thorpej * notice, this list of conditions and the following disclaimer.
16 1.31 thorpej * 2. Redistributions in binary form must reproduce the above copyright
17 1.31 thorpej * notice, this list of conditions and the following disclaimer in the
18 1.31 thorpej * documentation and/or other materials provided with the distribution.
19 1.31 thorpej * 3. All advertising materials mentioning features or use of this software
20 1.31 thorpej * must display the following acknowledgement:
21 1.31 thorpej * This product includes software developed by the NetBSD
22 1.31 thorpej * Foundation, Inc. and its contributors.
23 1.31 thorpej * 4. Neither the name of The NetBSD Foundation nor the names of its
24 1.31 thorpej * contributors may be used to endorse or promote products derived
25 1.31 thorpej * from this software without specific prior written permission.
26 1.31 thorpej *
27 1.31 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 1.31 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 1.31 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 1.31 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 1.31 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 1.31 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 1.31 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 1.31 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 1.31 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 1.31 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 1.31 thorpej * POSSIBILITY OF SUCH DAMAGE.
38 1.31 thorpej */
39 1.12 cgd
40 1.9 cgd /*
41 1.10 cgd * Copyright (c) 1982, 1986, 1991, 1993
42 1.10 cgd * The Regents of the University of California. All rights reserved.
43 1.9 cgd * (c) UNIX System Laboratories, Inc.
44 1.9 cgd * All or some portions of this file are derived from material licensed
45 1.9 cgd * to the University of California by American Telephone and Telegraph
46 1.9 cgd * Co. or Unix System Laboratories, Inc. and are reproduced herein with
47 1.9 cgd * the permission of UNIX System Laboratories, Inc.
48 1.9 cgd *
49 1.18 thorpej * Copyright (c) 1992, 1993
50 1.18 thorpej * The Regents of the University of California. All rights reserved.
51 1.18 thorpej *
52 1.18 thorpej * This software was developed by the Computer Systems Engineering group
53 1.18 thorpej * at Lawrence Berkeley Laboratory under DARPA contract BG 91-66 and
54 1.18 thorpej * contributed to Berkeley.
55 1.18 thorpej *
56 1.18 thorpej * All advertising materials mentioning features or use of this software
57 1.18 thorpej * must display the following acknowledgement:
58 1.18 thorpej * This product includes software developed by the University of
59 1.18 thorpej * California, Lawrence Berkeley Laboratory.
60 1.18 thorpej *
61 1.9 cgd * Redistribution and use in source and binary forms, with or without
62 1.9 cgd * modification, are permitted provided that the following conditions
63 1.9 cgd * are met:
64 1.9 cgd * 1. Redistributions of source code must retain the above copyright
65 1.9 cgd * notice, this list of conditions and the following disclaimer.
66 1.9 cgd * 2. Redistributions in binary form must reproduce the above copyright
67 1.9 cgd * notice, this list of conditions and the following disclaimer in the
68 1.9 cgd * documentation and/or other materials provided with the distribution.
69 1.103 agc * 3. Neither the name of the University nor the names of its contributors
70 1.9 cgd * may be used to endorse or promote products derived from this software
71 1.9 cgd * without specific prior written permission.
72 1.9 cgd *
73 1.9 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
74 1.9 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
75 1.9 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
76 1.9 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
77 1.9 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
78 1.9 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
79 1.9 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
80 1.9 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
81 1.9 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
82 1.9 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
83 1.9 cgd * SUCH DAMAGE.
84 1.9 cgd *
85 1.38 fvdl * @(#)kern_subr.c 8.4 (Berkeley) 2/14/95
86 1.9 cgd */
87 1.77 lukem
88 1.77 lukem #include <sys/cdefs.h>
89 1.144 jmcneill __KERNEL_RCSID(0, "$NetBSD: kern_subr.c,v 1.144 2006/09/24 03:54:00 jmcneill Exp $");
90 1.34 mrg
91 1.78 thorpej #include "opt_ddb.h"
92 1.43 jonathan #include "opt_md.h"
93 1.81 christos #include "opt_syscall_debug.h"
94 1.81 christos #include "opt_ktrace.h"
95 1.142 matt #include "opt_ptrace.h"
96 1.81 christos #include "opt_systrace.h"
97 1.144 jmcneill #include "opt_powerhook.h"
98 1.9 cgd
99 1.9 cgd #include <sys/param.h>
100 1.9 cgd #include <sys/systm.h>
101 1.9 cgd #include <sys/proc.h>
102 1.10 cgd #include <sys/malloc.h>
103 1.18 thorpej #include <sys/mount.h>
104 1.18 thorpej #include <sys/device.h>
105 1.18 thorpej #include <sys/reboot.h>
106 1.18 thorpej #include <sys/conf.h>
107 1.18 thorpej #include <sys/disklabel.h>
108 1.10 cgd #include <sys/queue.h>
109 1.81 christos #include <sys/systrace.h>
110 1.81 christos #include <sys/ktrace.h>
111 1.128 christos #include <sys/ptrace.h>
112 1.119 reinoud #include <sys/fcntl.h>
113 1.9 cgd
114 1.82 thorpej #include <uvm/uvm_extern.h>
115 1.82 thorpej
116 1.18 thorpej #include <dev/cons.h>
117 1.18 thorpej
118 1.18 thorpej #include <net/if.h>
119 1.18 thorpej
120 1.18 thorpej /* XXX these should eventually move to subr_autoconf.c */
121 1.109 junyoung static struct device *finddevice(const char *);
122 1.109 junyoung static struct device *getdisk(char *, int, int, dev_t *, int);
123 1.109 junyoung static struct device *parsedisk(char *, int, int, dev_t *);
124 1.18 thorpej
125 1.80 christos /*
126 1.80 christos * A generic linear hook.
127 1.80 christos */
128 1.80 christos struct hook_desc {
129 1.80 christos LIST_ENTRY(hook_desc) hk_list;
130 1.109 junyoung void (*hk_fn)(void *);
131 1.80 christos void *hk_arg;
132 1.80 christos };
133 1.80 christos typedef LIST_HEAD(, hook_desc) hook_list_t;
134 1.80 christos
135 1.97 thorpej MALLOC_DEFINE(M_IOV, "iov", "large iov's");
136 1.97 thorpej
137 1.126 yamt void
138 1.126 yamt uio_setup_sysspace(struct uio *uio)
139 1.126 yamt {
140 1.126 yamt
141 1.126 yamt uio->uio_vmspace = vmspace_kernel();
142 1.126 yamt }
143 1.126 yamt
144 1.11 mycroft int
145 1.117 thorpej uiomove(void *buf, size_t n, struct uio *uio)
146 1.9 cgd {
147 1.126 yamt struct vmspace *vm = uio->uio_vmspace;
148 1.63 augustss struct iovec *iov;
149 1.9 cgd u_int cnt;
150 1.9 cgd int error = 0;
151 1.16 christos char *cp = buf;
152 1.112 yamt int hold_count;
153 1.112 yamt
154 1.112 yamt hold_count = KERNEL_LOCK_RELEASE_ALL();
155 1.112 yamt
156 1.138 yamt ASSERT_SLEEPABLE(NULL, "uiomove");
157 1.68 enami
158 1.68 enami #ifdef DIAGNOSTIC
159 1.9 cgd if (uio->uio_rw != UIO_READ && uio->uio_rw != UIO_WRITE)
160 1.9 cgd panic("uiomove: mode");
161 1.9 cgd #endif
162 1.9 cgd while (n > 0 && uio->uio_resid) {
163 1.9 cgd iov = uio->uio_iov;
164 1.9 cgd cnt = iov->iov_len;
165 1.9 cgd if (cnt == 0) {
166 1.105 yamt KASSERT(uio->uio_iovcnt > 0);
167 1.9 cgd uio->uio_iov++;
168 1.9 cgd uio->uio_iovcnt--;
169 1.9 cgd continue;
170 1.9 cgd }
171 1.9 cgd if (cnt > n)
172 1.9 cgd cnt = n;
173 1.126 yamt if (!VMSPACE_IS_KERNEL_P(vm)) {
174 1.104 yamt if (curcpu()->ci_schedstate.spc_flags &
175 1.67 thorpej SPCF_SHOULDYIELD)
176 1.95 thorpej preempt(1);
177 1.126 yamt }
178 1.9 cgd
179 1.126 yamt if (uio->uio_rw == UIO_READ) {
180 1.126 yamt error = copyout_vmspace(vm, cp, iov->iov_base,
181 1.126 yamt cnt);
182 1.126 yamt } else {
183 1.126 yamt error = copyin_vmspace(vm, iov->iov_base, cp,
184 1.126 yamt cnt);
185 1.126 yamt }
186 1.126 yamt if (error) {
187 1.9 cgd break;
188 1.9 cgd }
189 1.44 kleink iov->iov_base = (caddr_t)iov->iov_base + cnt;
190 1.9 cgd iov->iov_len -= cnt;
191 1.9 cgd uio->uio_resid -= cnt;
192 1.9 cgd uio->uio_offset += cnt;
193 1.9 cgd cp += cnt;
194 1.85 thorpej KDASSERT(cnt <= n);
195 1.9 cgd n -= cnt;
196 1.9 cgd }
197 1.112 yamt KERNEL_LOCK_ACQUIRE_COUNT(hold_count);
198 1.9 cgd return (error);
199 1.9 cgd }
200 1.9 cgd
201 1.9 cgd /*
202 1.110 itojun * Wrapper for uiomove() that validates the arguments against a known-good
203 1.111 matt * kernel buffer.
204 1.110 itojun */
205 1.110 itojun int
206 1.111 matt uiomove_frombuf(void *buf, size_t buflen, struct uio *uio)
207 1.110 itojun {
208 1.111 matt size_t offset;
209 1.110 itojun
210 1.143 christos if (uio->uio_offset < 0 || /* uio->uio_resid < 0 || */
211 1.110 itojun (offset = uio->uio_offset) != uio->uio_offset)
212 1.110 itojun return (EINVAL);
213 1.111 matt if (offset >= buflen)
214 1.110 itojun return (0);
215 1.111 matt return (uiomove((char *)buf + offset, buflen - offset, uio));
216 1.110 itojun }
217 1.110 itojun
218 1.110 itojun /*
219 1.9 cgd * Give next character to user as result of read.
220 1.9 cgd */
221 1.11 mycroft int
222 1.117 thorpej ureadc(int c, struct uio *uio)
223 1.9 cgd {
224 1.63 augustss struct iovec *iov;
225 1.9 cgd
226 1.11 mycroft if (uio->uio_resid <= 0)
227 1.11 mycroft panic("ureadc: non-positive resid");
228 1.9 cgd again:
229 1.11 mycroft if (uio->uio_iovcnt <= 0)
230 1.11 mycroft panic("ureadc: non-positive iovcnt");
231 1.9 cgd iov = uio->uio_iov;
232 1.11 mycroft if (iov->iov_len <= 0) {
233 1.9 cgd uio->uio_iovcnt--;
234 1.9 cgd uio->uio_iov++;
235 1.9 cgd goto again;
236 1.9 cgd }
237 1.126 yamt if (!VMSPACE_IS_KERNEL_P(uio->uio_vmspace)) {
238 1.9 cgd if (subyte(iov->iov_base, c) < 0)
239 1.9 cgd return (EFAULT);
240 1.126 yamt } else {
241 1.39 kleink *(char *)iov->iov_base = c;
242 1.9 cgd }
243 1.44 kleink iov->iov_base = (caddr_t)iov->iov_base + 1;
244 1.9 cgd iov->iov_len--;
245 1.9 cgd uio->uio_resid--;
246 1.9 cgd uio->uio_offset++;
247 1.9 cgd return (0);
248 1.82 thorpej }
249 1.82 thorpej
250 1.82 thorpej /*
251 1.126 yamt * Like copyin(), but operates on an arbitrary vmspace.
252 1.82 thorpej */
253 1.82 thorpej int
254 1.126 yamt copyin_vmspace(struct vmspace *vm, const void *uaddr, void *kaddr, size_t len)
255 1.82 thorpej {
256 1.82 thorpej struct iovec iov;
257 1.82 thorpej struct uio uio;
258 1.82 thorpej int error;
259 1.82 thorpej
260 1.82 thorpej if (len == 0)
261 1.82 thorpej return (0);
262 1.82 thorpej
263 1.126 yamt if (VMSPACE_IS_KERNEL_P(vm)) {
264 1.126 yamt return kcopy(uaddr, kaddr, len);
265 1.126 yamt }
266 1.126 yamt if (__predict_true(vm == curproc->p_vmspace)) {
267 1.118 christos return copyin(uaddr, kaddr, len);
268 1.126 yamt }
269 1.118 christos
270 1.82 thorpej iov.iov_base = kaddr;
271 1.82 thorpej iov.iov_len = len;
272 1.82 thorpej uio.uio_iov = &iov;
273 1.82 thorpej uio.uio_iovcnt = 1;
274 1.82 thorpej uio.uio_offset = (off_t)(intptr_t)uaddr;
275 1.82 thorpej uio.uio_resid = len;
276 1.82 thorpej uio.uio_rw = UIO_READ;
277 1.134 yamt UIO_SETUP_SYSSPACE(&uio);
278 1.126 yamt error = uvm_io(&vm->vm_map, &uio);
279 1.82 thorpej
280 1.82 thorpej return (error);
281 1.82 thorpej }
282 1.82 thorpej
283 1.82 thorpej /*
284 1.126 yamt * Like copyout(), but operates on an arbitrary vmspace.
285 1.82 thorpej */
286 1.82 thorpej int
287 1.126 yamt copyout_vmspace(struct vmspace *vm, const void *kaddr, void *uaddr, size_t len)
288 1.82 thorpej {
289 1.82 thorpej struct iovec iov;
290 1.82 thorpej struct uio uio;
291 1.82 thorpej int error;
292 1.82 thorpej
293 1.82 thorpej if (len == 0)
294 1.82 thorpej return (0);
295 1.82 thorpej
296 1.126 yamt if (VMSPACE_IS_KERNEL_P(vm)) {
297 1.126 yamt return kcopy(kaddr, uaddr, len);
298 1.126 yamt }
299 1.126 yamt if (__predict_true(vm == curproc->p_vmspace)) {
300 1.118 christos return copyout(kaddr, uaddr, len);
301 1.126 yamt }
302 1.118 christos
303 1.116 christos iov.iov_base = __UNCONST(kaddr); /* XXXUNCONST cast away const */
304 1.82 thorpej iov.iov_len = len;
305 1.82 thorpej uio.uio_iov = &iov;
306 1.82 thorpej uio.uio_iovcnt = 1;
307 1.82 thorpej uio.uio_offset = (off_t)(intptr_t)uaddr;
308 1.82 thorpej uio.uio_resid = len;
309 1.82 thorpej uio.uio_rw = UIO_WRITE;
310 1.134 yamt UIO_SETUP_SYSSPACE(&uio);
311 1.126 yamt error = uvm_io(&vm->vm_map, &uio);
312 1.126 yamt
313 1.126 yamt return (error);
314 1.126 yamt }
315 1.126 yamt
316 1.126 yamt /*
317 1.126 yamt * Like copyin(), but operates on an arbitrary process.
318 1.126 yamt */
319 1.126 yamt int
320 1.126 yamt copyin_proc(struct proc *p, const void *uaddr, void *kaddr, size_t len)
321 1.126 yamt {
322 1.126 yamt struct vmspace *vm;
323 1.126 yamt int error;
324 1.126 yamt
325 1.126 yamt error = proc_vmspace_getref(p, &vm);
326 1.126 yamt if (error) {
327 1.126 yamt return error;
328 1.126 yamt }
329 1.126 yamt error = copyin_vmspace(vm, uaddr, kaddr, len);
330 1.126 yamt uvmspace_free(vm);
331 1.82 thorpej
332 1.126 yamt return error;
333 1.126 yamt }
334 1.82 thorpej
335 1.126 yamt /*
336 1.126 yamt * Like copyout(), but operates on an arbitrary process.
337 1.126 yamt */
338 1.126 yamt int
339 1.126 yamt copyout_proc(struct proc *p, const void *kaddr, void *uaddr, size_t len)
340 1.126 yamt {
341 1.126 yamt struct vmspace *vm;
342 1.126 yamt int error;
343 1.126 yamt
344 1.126 yamt error = proc_vmspace_getref(p, &vm);
345 1.126 yamt if (error) {
346 1.126 yamt return error;
347 1.126 yamt }
348 1.132 yamt error = copyout_vmspace(vm, kaddr, uaddr, len);
349 1.126 yamt uvmspace_free(vm);
350 1.126 yamt
351 1.126 yamt return error;
352 1.9 cgd }
353 1.10 cgd
354 1.10 cgd /*
355 1.119 reinoud * Like copyin(), except it operates on kernel addresses when the FKIOCTL
356 1.119 reinoud * flag is passed in `ioctlflags' from the ioctl call.
357 1.119 reinoud */
358 1.119 reinoud int
359 1.119 reinoud ioctl_copyin(int ioctlflags, const void *src, void *dst, size_t len)
360 1.119 reinoud {
361 1.119 reinoud if (ioctlflags & FKIOCTL)
362 1.119 reinoud return kcopy(src, dst, len);
363 1.119 reinoud return copyin(src, dst, len);
364 1.119 reinoud }
365 1.119 reinoud
366 1.119 reinoud /*
367 1.119 reinoud * Like copyout(), except it operates on kernel addresses when the FKIOCTL
368 1.119 reinoud * flag is passed in `ioctlflags' from the ioctl call.
369 1.119 reinoud */
370 1.119 reinoud int
371 1.119 reinoud ioctl_copyout(int ioctlflags, const void *src, void *dst, size_t len)
372 1.119 reinoud {
373 1.119 reinoud if (ioctlflags & FKIOCTL)
374 1.119 reinoud return kcopy(src, dst, len);
375 1.119 reinoud return copyout(src, dst, len);
376 1.119 reinoud }
377 1.119 reinoud
378 1.119 reinoud /*
379 1.10 cgd * General routine to allocate a hash table.
380 1.42 chs * Allocate enough memory to hold at least `elements' list-head pointers.
381 1.42 chs * Return a pointer to the allocated space and set *hashmask to a pattern
382 1.42 chs * suitable for masking a value to use as an index into the returned array.
383 1.10 cgd */
384 1.10 cgd void *
385 1.117 thorpej hashinit(u_int elements, enum hashtype htype, struct malloc_type *mtype,
386 1.117 thorpej int mflags, u_long *hashmask)
387 1.10 cgd {
388 1.84 thorpej u_long hashsize, i;
389 1.72 ad LIST_HEAD(, generic) *hashtbl_list;
390 1.72 ad TAILQ_HEAD(, generic) *hashtbl_tailq;
391 1.84 thorpej size_t esize;
392 1.72 ad void *p;
393 1.10 cgd
394 1.84 thorpej if (elements == 0)
395 1.10 cgd panic("hashinit: bad cnt");
396 1.42 chs for (hashsize = 1; hashsize < elements; hashsize <<= 1)
397 1.10 cgd continue;
398 1.72 ad
399 1.72 ad switch (htype) {
400 1.72 ad case HASH_LIST:
401 1.72 ad esize = sizeof(*hashtbl_list);
402 1.72 ad break;
403 1.72 ad case HASH_TAILQ:
404 1.72 ad esize = sizeof(*hashtbl_tailq);
405 1.72 ad break;
406 1.106 christos default:
407 1.72 ad #ifdef DIAGNOSTIC
408 1.72 ad panic("hashinit: invalid table type");
409 1.106 christos #else
410 1.106 christos return NULL;
411 1.72 ad #endif
412 1.72 ad }
413 1.72 ad
414 1.84 thorpej if ((p = malloc(hashsize * esize, mtype, mflags)) == NULL)
415 1.66 enami return (NULL);
416 1.72 ad
417 1.72 ad switch (htype) {
418 1.72 ad case HASH_LIST:
419 1.72 ad hashtbl_list = p;
420 1.72 ad for (i = 0; i < hashsize; i++)
421 1.72 ad LIST_INIT(&hashtbl_list[i]);
422 1.72 ad break;
423 1.72 ad case HASH_TAILQ:
424 1.72 ad hashtbl_tailq = p;
425 1.72 ad for (i = 0; i < hashsize; i++)
426 1.72 ad TAILQ_INIT(&hashtbl_tailq[i]);
427 1.72 ad break;
428 1.72 ad }
429 1.10 cgd *hashmask = hashsize - 1;
430 1.72 ad return (p);
431 1.61 jdolecek }
432 1.61 jdolecek
433 1.61 jdolecek /*
434 1.61 jdolecek * Free memory from hash table previosly allocated via hashinit().
435 1.61 jdolecek */
436 1.61 jdolecek void
437 1.117 thorpej hashdone(void *hashtbl, struct malloc_type *mtype)
438 1.61 jdolecek {
439 1.65 enami
440 1.72 ad free(hashtbl, mtype);
441 1.14 cgd }
442 1.14 cgd
443 1.14 cgd
444 1.80 christos static void *
445 1.117 thorpej hook_establish(hook_list_t *list, void (*fn)(void *), void *arg)
446 1.14 cgd {
447 1.80 christos struct hook_desc *hd;
448 1.14 cgd
449 1.80 christos hd = malloc(sizeof(*hd), M_DEVBUF, M_NOWAIT);
450 1.80 christos if (hd == NULL)
451 1.59 enami return (NULL);
452 1.14 cgd
453 1.80 christos hd->hk_fn = fn;
454 1.80 christos hd->hk_arg = arg;
455 1.80 christos LIST_INSERT_HEAD(list, hd, hk_list);
456 1.14 cgd
457 1.80 christos return (hd);
458 1.14 cgd }
459 1.14 cgd
460 1.80 christos static void
461 1.117 thorpej hook_disestablish(hook_list_t *list, void *vhook)
462 1.14 cgd {
463 1.14 cgd #ifdef DIAGNOSTIC
464 1.80 christos struct hook_desc *hd;
465 1.14 cgd
466 1.83 matt LIST_FOREACH(hd, list, hk_list) {
467 1.80 christos if (hd == vhook)
468 1.14 cgd break;
469 1.83 matt }
470 1.83 matt
471 1.80 christos if (hd == NULL)
472 1.83 matt panic("hook_disestablish: hook %p not established", vhook);
473 1.14 cgd #endif
474 1.80 christos LIST_REMOVE((struct hook_desc *)vhook, hk_list);
475 1.80 christos free(vhook, M_DEVBUF);
476 1.80 christos }
477 1.80 christos
478 1.80 christos static void
479 1.117 thorpej hook_destroy(hook_list_t *list)
480 1.80 christos {
481 1.80 christos struct hook_desc *hd;
482 1.80 christos
483 1.87 matt while ((hd = LIST_FIRST(list)) != NULL) {
484 1.80 christos LIST_REMOVE(hd, hk_list);
485 1.80 christos free(hd, M_DEVBUF);
486 1.80 christos }
487 1.80 christos }
488 1.14 cgd
489 1.80 christos static void
490 1.117 thorpej hook_proc_run(hook_list_t *list, struct proc *p)
491 1.80 christos {
492 1.80 christos struct hook_desc *hd;
493 1.80 christos
494 1.80 christos for (hd = LIST_FIRST(list); hd != NULL; hd = LIST_NEXT(hd, hk_list)) {
495 1.109 junyoung ((void (*)(struct proc *, void *))*hd->hk_fn)(p,
496 1.80 christos hd->hk_arg);
497 1.80 christos }
498 1.80 christos }
499 1.80 christos
500 1.80 christos /*
501 1.80 christos * "Shutdown hook" types, functions, and variables.
502 1.80 christos *
503 1.80 christos * Should be invoked immediately before the
504 1.80 christos * system is halted or rebooted, i.e. after file systems unmounted,
505 1.80 christos * after crash dump done, etc.
506 1.80 christos *
507 1.80 christos * Each shutdown hook is removed from the list before it's run, so that
508 1.80 christos * it won't be run again.
509 1.80 christos */
510 1.80 christos
511 1.117 thorpej static hook_list_t shutdownhook_list;
512 1.80 christos
513 1.80 christos void *
514 1.117 thorpej shutdownhook_establish(void (*fn)(void *), void *arg)
515 1.80 christos {
516 1.80 christos return hook_establish(&shutdownhook_list, fn, arg);
517 1.80 christos }
518 1.80 christos
519 1.80 christos void
520 1.117 thorpej shutdownhook_disestablish(void *vhook)
521 1.80 christos {
522 1.89 simonb hook_disestablish(&shutdownhook_list, vhook);
523 1.14 cgd }
524 1.14 cgd
525 1.14 cgd /*
526 1.14 cgd * Run shutdown hooks. Should be invoked immediately before the
527 1.14 cgd * system is halted or rebooted, i.e. after file systems unmounted,
528 1.14 cgd * after crash dump done, etc.
529 1.17 cgd *
530 1.17 cgd * Each shutdown hook is removed from the list before it's run, so that
531 1.17 cgd * it won't be run again.
532 1.14 cgd */
533 1.14 cgd void
534 1.117 thorpej doshutdownhooks(void)
535 1.14 cgd {
536 1.80 christos struct hook_desc *dp;
537 1.14 cgd
538 1.87 matt while ((dp = LIST_FIRST(&shutdownhook_list)) != NULL) {
539 1.80 christos LIST_REMOVE(dp, hk_list);
540 1.80 christos (*dp->hk_fn)(dp->hk_arg);
541 1.17 cgd #if 0
542 1.17 cgd /*
543 1.17 cgd * Don't bother freeing the hook structure,, since we may
544 1.17 cgd * be rebooting because of a memory corruption problem,
545 1.17 cgd * and this might only make things worse. It doesn't
546 1.17 cgd * matter, anyway, since the system is just about to
547 1.17 cgd * reboot.
548 1.17 cgd */
549 1.17 cgd free(dp, M_DEVBUF);
550 1.17 cgd #endif
551 1.52 augustss }
552 1.52 augustss }
553 1.52 augustss
554 1.52 augustss /*
555 1.80 christos * "Mountroot hook" types, functions, and variables.
556 1.80 christos */
557 1.80 christos
558 1.117 thorpej static hook_list_t mountroothook_list;
559 1.80 christos
560 1.80 christos void *
561 1.117 thorpej mountroothook_establish(void (*fn)(struct device *), struct device *dev)
562 1.80 christos {
563 1.109 junyoung return hook_establish(&mountroothook_list, (void (*)(void *))fn, dev);
564 1.80 christos }
565 1.80 christos
566 1.80 christos void
567 1.117 thorpej mountroothook_disestablish(void *vhook)
568 1.80 christos {
569 1.89 simonb hook_disestablish(&mountroothook_list, vhook);
570 1.80 christos }
571 1.80 christos
572 1.80 christos void
573 1.117 thorpej mountroothook_destroy(void)
574 1.80 christos {
575 1.80 christos hook_destroy(&mountroothook_list);
576 1.80 christos }
577 1.80 christos
578 1.80 christos void
579 1.117 thorpej domountroothook(void)
580 1.80 christos {
581 1.80 christos struct hook_desc *hd;
582 1.80 christos
583 1.83 matt LIST_FOREACH(hd, &mountroothook_list, hk_list) {
584 1.80 christos if (hd->hk_arg == (void *)root_device) {
585 1.80 christos (*hd->hk_fn)(hd->hk_arg);
586 1.80 christos return;
587 1.80 christos }
588 1.80 christos }
589 1.80 christos }
590 1.80 christos
591 1.117 thorpej static hook_list_t exechook_list;
592 1.80 christos
593 1.80 christos void *
594 1.117 thorpej exechook_establish(void (*fn)(struct proc *, void *), void *arg)
595 1.80 christos {
596 1.109 junyoung return hook_establish(&exechook_list, (void (*)(void *))fn, arg);
597 1.80 christos }
598 1.80 christos
599 1.80 christos void
600 1.117 thorpej exechook_disestablish(void *vhook)
601 1.80 christos {
602 1.80 christos hook_disestablish(&exechook_list, vhook);
603 1.80 christos }
604 1.80 christos
605 1.80 christos /*
606 1.80 christos * Run exec hooks.
607 1.80 christos */
608 1.80 christos void
609 1.117 thorpej doexechooks(struct proc *p)
610 1.80 christos {
611 1.80 christos hook_proc_run(&exechook_list, p);
612 1.80 christos }
613 1.80 christos
614 1.117 thorpej static hook_list_t exithook_list;
615 1.80 christos
616 1.80 christos void *
617 1.117 thorpej exithook_establish(void (*fn)(struct proc *, void *), void *arg)
618 1.80 christos {
619 1.109 junyoung return hook_establish(&exithook_list, (void (*)(void *))fn, arg);
620 1.80 christos }
621 1.80 christos
622 1.80 christos void
623 1.117 thorpej exithook_disestablish(void *vhook)
624 1.80 christos {
625 1.80 christos hook_disestablish(&exithook_list, vhook);
626 1.80 christos }
627 1.80 christos
628 1.80 christos /*
629 1.80 christos * Run exit hooks.
630 1.80 christos */
631 1.80 christos void
632 1.117 thorpej doexithooks(struct proc *p)
633 1.80 christos {
634 1.80 christos hook_proc_run(&exithook_list, p);
635 1.96 thorpej }
636 1.96 thorpej
637 1.117 thorpej static hook_list_t forkhook_list;
638 1.96 thorpej
639 1.96 thorpej void *
640 1.117 thorpej forkhook_establish(void (*fn)(struct proc *, struct proc *))
641 1.96 thorpej {
642 1.109 junyoung return hook_establish(&forkhook_list, (void (*)(void *))fn, NULL);
643 1.96 thorpej }
644 1.96 thorpej
645 1.96 thorpej void
646 1.117 thorpej forkhook_disestablish(void *vhook)
647 1.96 thorpej {
648 1.96 thorpej hook_disestablish(&forkhook_list, vhook);
649 1.96 thorpej }
650 1.96 thorpej
651 1.96 thorpej /*
652 1.96 thorpej * Run fork hooks.
653 1.96 thorpej */
654 1.96 thorpej void
655 1.117 thorpej doforkhooks(struct proc *p2, struct proc *p1)
656 1.96 thorpej {
657 1.96 thorpej struct hook_desc *hd;
658 1.96 thorpej
659 1.96 thorpej LIST_FOREACH(hd, &forkhook_list, hk_list) {
660 1.109 junyoung ((void (*)(struct proc *, struct proc *))*hd->hk_fn)
661 1.96 thorpej (p2, p1);
662 1.96 thorpej }
663 1.80 christos }
664 1.80 christos
665 1.80 christos /*
666 1.52 augustss * "Power hook" types, functions, and variables.
667 1.71 augustss * The list of power hooks is kept ordered with the last registered hook
668 1.71 augustss * first.
669 1.71 augustss * When running the hooks on power down the hooks are called in reverse
670 1.71 augustss * registration order, when powering up in registration order.
671 1.52 augustss */
672 1.52 augustss struct powerhook_desc {
673 1.71 augustss CIRCLEQ_ENTRY(powerhook_desc) sfd_list;
674 1.109 junyoung void (*sfd_fn)(int, void *);
675 1.52 augustss void *sfd_arg;
676 1.144 jmcneill char sfd_name[16];
677 1.52 augustss };
678 1.52 augustss
679 1.117 thorpej static CIRCLEQ_HEAD(, powerhook_desc) powerhook_list =
680 1.117 thorpej CIRCLEQ_HEAD_INITIALIZER(powerhook_list);
681 1.52 augustss
682 1.52 augustss void *
683 1.144 jmcneill powerhook_establish(char *name, void (*fn)(int, void *), void *arg)
684 1.52 augustss {
685 1.52 augustss struct powerhook_desc *ndp;
686 1.52 augustss
687 1.52 augustss ndp = (struct powerhook_desc *)
688 1.52 augustss malloc(sizeof(*ndp), M_DEVBUF, M_NOWAIT);
689 1.52 augustss if (ndp == NULL)
690 1.59 enami return (NULL);
691 1.52 augustss
692 1.52 augustss ndp->sfd_fn = fn;
693 1.52 augustss ndp->sfd_arg = arg;
694 1.144 jmcneill strlcpy(ndp->sfd_name, name, sizeof(ndp->sfd_name));
695 1.71 augustss CIRCLEQ_INSERT_HEAD(&powerhook_list, ndp, sfd_list);
696 1.52 augustss
697 1.52 augustss return (ndp);
698 1.52 augustss }
699 1.52 augustss
700 1.52 augustss void
701 1.117 thorpej powerhook_disestablish(void *vhook)
702 1.52 augustss {
703 1.52 augustss #ifdef DIAGNOSTIC
704 1.52 augustss struct powerhook_desc *dp;
705 1.52 augustss
706 1.71 augustss CIRCLEQ_FOREACH(dp, &powerhook_list, sfd_list)
707 1.52 augustss if (dp == vhook)
708 1.71 augustss goto found;
709 1.83 matt panic("powerhook_disestablish: hook %p not established", vhook);
710 1.71 augustss found:
711 1.52 augustss #endif
712 1.52 augustss
713 1.71 augustss CIRCLEQ_REMOVE(&powerhook_list, (struct powerhook_desc *)vhook,
714 1.71 augustss sfd_list);
715 1.52 augustss free(vhook, M_DEVBUF);
716 1.52 augustss }
717 1.52 augustss
718 1.52 augustss /*
719 1.52 augustss * Run power hooks.
720 1.52 augustss */
721 1.52 augustss void
722 1.117 thorpej dopowerhooks(int why)
723 1.52 augustss {
724 1.52 augustss struct powerhook_desc *dp;
725 1.52 augustss
726 1.144 jmcneill #ifdef POWERHOOK_DEBUG
727 1.144 jmcneill printf("dopowerhooks ");
728 1.144 jmcneill switch (why) {
729 1.144 jmcneill case PWR_RESUME:
730 1.144 jmcneill printf("resume");
731 1.144 jmcneill break;
732 1.144 jmcneill case PWR_SOFTRESUME:
733 1.144 jmcneill printf("softresume");
734 1.144 jmcneill break;
735 1.144 jmcneill case PWR_SUSPEND:
736 1.144 jmcneill printf("suspend");
737 1.144 jmcneill break;
738 1.144 jmcneill case PWR_SOFTSUSPEND:
739 1.144 jmcneill printf("softsuspend");
740 1.144 jmcneill break;
741 1.144 jmcneill case PWR_STANDBY:
742 1.144 jmcneill printf("standby");
743 1.144 jmcneill break;
744 1.144 jmcneill }
745 1.144 jmcneill printf(":");
746 1.144 jmcneill #endif
747 1.144 jmcneill
748 1.73 takemura if (why == PWR_RESUME || why == PWR_SOFTRESUME) {
749 1.71 augustss CIRCLEQ_FOREACH_REVERSE(dp, &powerhook_list, sfd_list) {
750 1.144 jmcneill #ifdef POWERHOOK_DEBUG
751 1.144 jmcneill printf(" %s", dp->sfd_name);
752 1.144 jmcneill #endif
753 1.71 augustss (*dp->sfd_fn)(why, dp->sfd_arg);
754 1.71 augustss }
755 1.71 augustss } else {
756 1.71 augustss CIRCLEQ_FOREACH(dp, &powerhook_list, sfd_list) {
757 1.144 jmcneill #ifdef POWERHOOK_DEBUG
758 1.144 jmcneill printf(" %s", dp->sfd_name);
759 1.144 jmcneill #endif
760 1.71 augustss (*dp->sfd_fn)(why, dp->sfd_arg);
761 1.71 augustss }
762 1.18 thorpej }
763 1.144 jmcneill
764 1.144 jmcneill #ifdef POWERHOOK_DEBUG
765 1.144 jmcneill printf(".\n");
766 1.144 jmcneill #endif
767 1.18 thorpej }
768 1.18 thorpej
769 1.18 thorpej /*
770 1.18 thorpej * Determine the root device and, if instructed to, the root file system.
771 1.18 thorpej */
772 1.18 thorpej
773 1.18 thorpej #include "md.h"
774 1.18 thorpej #if NMD == 0
775 1.18 thorpej #undef MEMORY_DISK_HOOKS
776 1.18 thorpej #endif
777 1.18 thorpej
778 1.18 thorpej #ifdef MEMORY_DISK_HOOKS
779 1.28 leo static struct device fakemdrootdev[NMD];
780 1.127 cube extern struct cfdriver md_cd;
781 1.18 thorpej #endif
782 1.18 thorpej
783 1.108 christos #ifdef MEMORY_DISK_IS_ROOT
784 1.108 christos #define BOOT_FROM_MEMORY_HOOKS 1
785 1.108 christos #endif
786 1.108 christos
787 1.57 oster #include "raid.h"
788 1.57 oster #if NRAID == 1
789 1.109 junyoung #define BOOT_FROM_RAID_HOOKS 1
790 1.57 oster #endif
791 1.57 oster
792 1.57 oster #ifdef BOOT_FROM_RAID_HOOKS
793 1.57 oster extern int numraid;
794 1.57 oster extern struct device *raidrootdev;
795 1.57 oster #endif
796 1.57 oster
797 1.113 thorpej /*
798 1.113 thorpej * The device and wedge that we booted from. If booted_wedge is NULL,
799 1.113 thorpej * the we might consult booted_partition.
800 1.113 thorpej */
801 1.113 thorpej struct device *booted_device;
802 1.113 thorpej struct device *booted_wedge;
803 1.113 thorpej int booted_partition;
804 1.113 thorpej
805 1.113 thorpej /*
806 1.113 thorpej * Use partition letters if it's a disk class but not a wedge.
807 1.113 thorpej * XXX Check for wedge is kinda gross.
808 1.113 thorpej */
809 1.113 thorpej #define DEV_USES_PARTITIONS(dv) \
810 1.124 thorpej (device_class((dv)) == DV_DISK && \
811 1.125 thorpej !device_is_a((dv), "dk"))
812 1.113 thorpej
813 1.18 thorpej void
814 1.117 thorpej setroot(struct device *bootdv, int bootpartition)
815 1.18 thorpej {
816 1.18 thorpej struct device *dv;
817 1.55 enami int len;
818 1.37 hannken #ifdef MEMORY_DISK_HOOKS
819 1.37 hannken int i;
820 1.37 hannken #endif
821 1.25 mrg dev_t nrootdev;
822 1.26 thorpej dev_t ndumpdev = NODEV;
823 1.18 thorpej char buf[128];
824 1.18 thorpej const char *rootdevname;
825 1.26 thorpej const char *dumpdevname;
826 1.26 thorpej struct device *rootdv = NULL; /* XXX gcc -Wuninitialized */
827 1.26 thorpej struct device *dumpdv = NULL;
828 1.18 thorpej struct ifnet *ifp;
829 1.18 thorpej const char *deffsname;
830 1.18 thorpej struct vfsops *vops;
831 1.18 thorpej
832 1.28 leo #ifdef MEMORY_DISK_HOOKS
833 1.28 leo for (i = 0; i < NMD; i++) {
834 1.28 leo fakemdrootdev[i].dv_class = DV_DISK;
835 1.28 leo fakemdrootdev[i].dv_cfdata = NULL;
836 1.127 cube fakemdrootdev[i].dv_cfdriver = &md_cd;
837 1.28 leo fakemdrootdev[i].dv_unit = i;
838 1.28 leo fakemdrootdev[i].dv_parent = NULL;
839 1.110 itojun snprintf(fakemdrootdev[i].dv_xname,
840 1.110 itojun sizeof(fakemdrootdev[i].dv_xname), "md%d", i);
841 1.28 leo }
842 1.28 leo #endif /* MEMORY_DISK_HOOKS */
843 1.28 leo
844 1.22 leo #ifdef MEMORY_DISK_IS_ROOT
845 1.28 leo bootdv = &fakemdrootdev[0];
846 1.18 thorpej bootpartition = 0;
847 1.18 thorpej #endif
848 1.18 thorpej
849 1.18 thorpej /*
850 1.18 thorpej * If NFS is specified as the file system, and we found
851 1.18 thorpej * a DV_DISK boot device (or no boot device at all), then
852 1.18 thorpej * find a reasonable network interface for "rootspec".
853 1.18 thorpej */
854 1.18 thorpej vops = vfs_getopsbyname("nfs");
855 1.18 thorpej if (vops != NULL && vops->vfs_mountroot == mountroot &&
856 1.18 thorpej rootspec == NULL &&
857 1.124 thorpej (bootdv == NULL || device_class(bootdv) != DV_IFNET)) {
858 1.115 matt IFNET_FOREACH(ifp) {
859 1.18 thorpej if ((ifp->if_flags &
860 1.18 thorpej (IFF_LOOPBACK|IFF_POINTOPOINT)) == 0)
861 1.18 thorpej break;
862 1.83 matt }
863 1.18 thorpej if (ifp == NULL) {
864 1.18 thorpej /*
865 1.18 thorpej * Can't find a suitable interface; ask the
866 1.18 thorpej * user.
867 1.18 thorpej */
868 1.18 thorpej boothowto |= RB_ASKNAME;
869 1.18 thorpej } else {
870 1.18 thorpej /*
871 1.18 thorpej * Have a suitable interface; behave as if
872 1.18 thorpej * the user specified this interface.
873 1.18 thorpej */
874 1.18 thorpej rootspec = (const char *)ifp->if_xname;
875 1.18 thorpej }
876 1.18 thorpej }
877 1.24 thorpej
878 1.24 thorpej /*
879 1.24 thorpej * If wildcarded root and we the boot device wasn't determined,
880 1.24 thorpej * ask the user.
881 1.24 thorpej */
882 1.24 thorpej if (rootspec == NULL && bootdv == NULL)
883 1.24 thorpej boothowto |= RB_ASKNAME;
884 1.18 thorpej
885 1.18 thorpej top:
886 1.18 thorpej if (boothowto & RB_ASKNAME) {
887 1.26 thorpej struct device *defdumpdv;
888 1.26 thorpej
889 1.18 thorpej for (;;) {
890 1.18 thorpej printf("root device");
891 1.18 thorpej if (bootdv != NULL) {
892 1.18 thorpej printf(" (default %s", bootdv->dv_xname);
893 1.113 thorpej if (DEV_USES_PARTITIONS(bootdv))
894 1.18 thorpej printf("%c", bootpartition + 'a');
895 1.18 thorpej printf(")");
896 1.18 thorpej }
897 1.18 thorpej printf(": ");
898 1.64 itojun len = cngetsn(buf, sizeof(buf));
899 1.18 thorpej if (len == 0 && bootdv != NULL) {
900 1.99 itojun strlcpy(buf, bootdv->dv_xname, sizeof(buf));
901 1.18 thorpej len = strlen(buf);
902 1.18 thorpej }
903 1.18 thorpej if (len > 0 && buf[len - 1] == '*') {
904 1.18 thorpej buf[--len] = '\0';
905 1.51 thorpej dv = getdisk(buf, len, 1, &nrootdev, 0);
906 1.18 thorpej if (dv != NULL) {
907 1.18 thorpej rootdv = dv;
908 1.25 mrg break;
909 1.18 thorpej }
910 1.18 thorpej }
911 1.51 thorpej dv = getdisk(buf, len, bootpartition, &nrootdev, 0);
912 1.18 thorpej if (dv != NULL) {
913 1.18 thorpej rootdv = dv;
914 1.18 thorpej break;
915 1.18 thorpej }
916 1.18 thorpej }
917 1.18 thorpej
918 1.26 thorpej /*
919 1.26 thorpej * Set up the default dump device. If root is on
920 1.26 thorpej * a network device, there is no default dump
921 1.26 thorpej * device, since we don't support dumps to the
922 1.26 thorpej * network.
923 1.26 thorpej */
924 1.113 thorpej if (DEV_USES_PARTITIONS(rootdv) == 0)
925 1.26 thorpej defdumpdv = NULL;
926 1.26 thorpej else
927 1.26 thorpej defdumpdv = rootdv;
928 1.26 thorpej
929 1.26 thorpej for (;;) {
930 1.26 thorpej printf("dump device");
931 1.26 thorpej if (defdumpdv != NULL) {
932 1.26 thorpej /*
933 1.26 thorpej * Note, we know it's a disk if we get here.
934 1.26 thorpej */
935 1.26 thorpej printf(" (default %sb)", defdumpdv->dv_xname);
936 1.26 thorpej }
937 1.26 thorpej printf(": ");
938 1.64 itojun len = cngetsn(buf, sizeof(buf));
939 1.26 thorpej if (len == 0) {
940 1.26 thorpej if (defdumpdv != NULL) {
941 1.26 thorpej ndumpdev = MAKEDISKDEV(major(nrootdev),
942 1.26 thorpej DISKUNIT(nrootdev), 1);
943 1.26 thorpej }
944 1.54 enami dumpdv = defdumpdv;
945 1.26 thorpej break;
946 1.26 thorpej }
947 1.26 thorpej if (len == 4 && strcmp(buf, "none") == 0) {
948 1.55 enami dumpdv = NULL;
949 1.54 enami break;
950 1.26 thorpej }
951 1.51 thorpej dv = getdisk(buf, len, 1, &ndumpdev, 1);
952 1.55 enami if (dv != NULL) {
953 1.26 thorpej dumpdv = dv;
954 1.26 thorpej break;
955 1.26 thorpej }
956 1.26 thorpej }
957 1.26 thorpej
958 1.18 thorpej rootdev = nrootdev;
959 1.26 thorpej dumpdev = ndumpdev;
960 1.18 thorpej
961 1.36 thorpej for (vops = LIST_FIRST(&vfs_list); vops != NULL;
962 1.36 thorpej vops = LIST_NEXT(vops, vfs_list)) {
963 1.36 thorpej if (vops->vfs_mountroot != NULL &&
964 1.36 thorpej vops->vfs_mountroot == mountroot)
965 1.38 fvdl break;
966 1.18 thorpej }
967 1.36 thorpej
968 1.36 thorpej if (vops == NULL) {
969 1.18 thorpej mountroot = NULL;
970 1.18 thorpej deffsname = "generic";
971 1.18 thorpej } else
972 1.36 thorpej deffsname = vops->vfs_name;
973 1.36 thorpej
974 1.18 thorpej for (;;) {
975 1.18 thorpej printf("file system (default %s): ", deffsname);
976 1.64 itojun len = cngetsn(buf, sizeof(buf));
977 1.18 thorpej if (len == 0)
978 1.18 thorpej break;
979 1.18 thorpej if (len == 4 && strcmp(buf, "halt") == 0)
980 1.23 gwr cpu_reboot(RB_HALT, NULL);
981 1.76 thorpej else if (len == 6 && strcmp(buf, "reboot") == 0)
982 1.76 thorpej cpu_reboot(0, NULL);
983 1.78 thorpej #if defined(DDB)
984 1.78 thorpej else if (len == 3 && strcmp(buf, "ddb") == 0) {
985 1.78 thorpej console_debugger();
986 1.78 thorpej }
987 1.78 thorpej #endif
988 1.18 thorpej else if (len == 7 && strcmp(buf, "generic") == 0) {
989 1.18 thorpej mountroot = NULL;
990 1.18 thorpej break;
991 1.18 thorpej }
992 1.18 thorpej vops = vfs_getopsbyname(buf);
993 1.18 thorpej if (vops == NULL || vops->vfs_mountroot == NULL) {
994 1.18 thorpej printf("use one of: generic");
995 1.36 thorpej for (vops = LIST_FIRST(&vfs_list);
996 1.36 thorpej vops != NULL;
997 1.36 thorpej vops = LIST_NEXT(vops, vfs_list)) {
998 1.36 thorpej if (vops->vfs_mountroot != NULL)
999 1.36 thorpej printf(" %s", vops->vfs_name);
1000 1.36 thorpej }
1001 1.78 thorpej #if defined(DDB)
1002 1.78 thorpej printf(" ddb");
1003 1.78 thorpej #endif
1004 1.76 thorpej printf(" halt reboot\n");
1005 1.18 thorpej } else {
1006 1.18 thorpej mountroot = vops->vfs_mountroot;
1007 1.18 thorpej break;
1008 1.18 thorpej }
1009 1.18 thorpej }
1010 1.18 thorpej
1011 1.18 thorpej } else if (rootspec == NULL) {
1012 1.18 thorpej int majdev;
1013 1.18 thorpej
1014 1.18 thorpej /*
1015 1.18 thorpej * Wildcarded root; use the boot device.
1016 1.18 thorpej */
1017 1.26 thorpej rootdv = bootdv;
1018 1.26 thorpej
1019 1.88 gehenna majdev = devsw_name2blk(bootdv->dv_xname, NULL, 0);
1020 1.18 thorpej if (majdev >= 0) {
1021 1.18 thorpej /*
1022 1.113 thorpej * Root is on a disk. `bootpartition' is root,
1023 1.113 thorpej * unless the device does not use partitions.
1024 1.18 thorpej */
1025 1.113 thorpej if (DEV_USES_PARTITIONS(bootdv))
1026 1.135 thorpej rootdev = MAKEDISKDEV(majdev,
1027 1.135 thorpej device_unit(bootdv),
1028 1.135 thorpej bootpartition);
1029 1.113 thorpej else
1030 1.135 thorpej rootdev = makedev(majdev, device_unit(bootdv));
1031 1.18 thorpej }
1032 1.18 thorpej } else {
1033 1.18 thorpej
1034 1.18 thorpej /*
1035 1.25 mrg * `root on <dev> ...'
1036 1.18 thorpej */
1037 1.18 thorpej
1038 1.18 thorpej /*
1039 1.18 thorpej * If it's a network interface, we can bail out
1040 1.18 thorpej * early.
1041 1.18 thorpej */
1042 1.56 enami dv = finddevice(rootspec);
1043 1.124 thorpej if (dv != NULL && device_class(dv) == DV_IFNET) {
1044 1.26 thorpej rootdv = dv;
1045 1.26 thorpej goto haveroot;
1046 1.18 thorpej }
1047 1.18 thorpej
1048 1.88 gehenna rootdevname = devsw_blk2name(major(rootdev));
1049 1.18 thorpej if (rootdevname == NULL) {
1050 1.18 thorpej printf("unknown device major 0x%x\n", rootdev);
1051 1.18 thorpej boothowto |= RB_ASKNAME;
1052 1.18 thorpej goto top;
1053 1.18 thorpej }
1054 1.41 perry memset(buf, 0, sizeof(buf));
1055 1.110 itojun snprintf(buf, sizeof(buf), "%s%d", rootdevname,
1056 1.110 itojun DISKUNIT(rootdev));
1057 1.18 thorpej
1058 1.56 enami rootdv = finddevice(buf);
1059 1.26 thorpej if (rootdv == NULL) {
1060 1.18 thorpej printf("device %s (0x%x) not configured\n",
1061 1.18 thorpej buf, rootdev);
1062 1.18 thorpej boothowto |= RB_ASKNAME;
1063 1.18 thorpej goto top;
1064 1.18 thorpej }
1065 1.26 thorpej }
1066 1.18 thorpej
1067 1.26 thorpej haveroot:
1068 1.18 thorpej
1069 1.18 thorpej root_device = rootdv;
1070 1.18 thorpej
1071 1.124 thorpej switch (device_class(rootdv)) {
1072 1.18 thorpej case DV_IFNET:
1073 1.139 christos case DV_DISK:
1074 1.100 thorpej aprint_normal("root on %s", rootdv->dv_xname);
1075 1.140 christos if (DEV_USES_PARTITIONS(rootdv))
1076 1.139 christos aprint_normal("%c", DISKPART(rootdev) + 'a');
1077 1.18 thorpej break;
1078 1.18 thorpej
1079 1.18 thorpej default:
1080 1.18 thorpej printf("can't determine root device\n");
1081 1.18 thorpej boothowto |= RB_ASKNAME;
1082 1.18 thorpej goto top;
1083 1.18 thorpej }
1084 1.26 thorpej
1085 1.26 thorpej /*
1086 1.26 thorpej * Now configure the dump device.
1087 1.55 enami *
1088 1.26 thorpej * If we haven't figured out the dump device, do so, with
1089 1.26 thorpej * the following rules:
1090 1.26 thorpej *
1091 1.26 thorpej * (a) We already know dumpdv in the RB_ASKNAME case.
1092 1.26 thorpej *
1093 1.26 thorpej * (b) If dumpspec is set, try to use it. If the device
1094 1.26 thorpej * is not available, punt.
1095 1.26 thorpej *
1096 1.26 thorpej * (c) If dumpspec is not set, the dump device is
1097 1.26 thorpej * wildcarded or unspecified. If the root device
1098 1.26 thorpej * is DV_IFNET, punt. Otherwise, use partition b
1099 1.26 thorpej * of the root device.
1100 1.26 thorpej */
1101 1.26 thorpej
1102 1.55 enami if (boothowto & RB_ASKNAME) { /* (a) */
1103 1.55 enami if (dumpdv == NULL)
1104 1.55 enami goto nodumpdev;
1105 1.55 enami } else if (dumpspec != NULL) { /* (b) */
1106 1.55 enami if (strcmp(dumpspec, "none") == 0 || dumpdev == NODEV) {
1107 1.26 thorpej /*
1108 1.55 enami * Operator doesn't want a dump device.
1109 1.55 enami * Or looks like they tried to pick a network
1110 1.26 thorpej * device. Oops.
1111 1.26 thorpej */
1112 1.26 thorpej goto nodumpdev;
1113 1.26 thorpej }
1114 1.26 thorpej
1115 1.88 gehenna dumpdevname = devsw_blk2name(major(dumpdev));
1116 1.26 thorpej if (dumpdevname == NULL)
1117 1.26 thorpej goto nodumpdev;
1118 1.41 perry memset(buf, 0, sizeof(buf));
1119 1.110 itojun snprintf(buf, sizeof(buf), "%s%d", dumpdevname,
1120 1.110 itojun DISKUNIT(dumpdev));
1121 1.26 thorpej
1122 1.56 enami dumpdv = finddevice(buf);
1123 1.56 enami if (dumpdv == NULL) {
1124 1.26 thorpej /*
1125 1.26 thorpej * Device not configured.
1126 1.26 thorpej */
1127 1.26 thorpej goto nodumpdev;
1128 1.26 thorpej }
1129 1.55 enami } else { /* (c) */
1130 1.113 thorpej if (DEV_USES_PARTITIONS(rootdv) == 0)
1131 1.55 enami goto nodumpdev;
1132 1.55 enami else {
1133 1.55 enami dumpdv = rootdv;
1134 1.55 enami dumpdev = MAKEDISKDEV(major(rootdev),
1135 1.135 thorpej device_unit(dumpdv), 1);
1136 1.55 enami }
1137 1.26 thorpej }
1138 1.26 thorpej
1139 1.141 christos aprint_normal(" dumps on %s", dumpdv->dv_xname);
1140 1.140 christos if (DEV_USES_PARTITIONS(dumpdv))
1141 1.140 christos aprint_normal("%c", DISKPART(dumpdev) + 'a');
1142 1.140 christos aprint_normal("\n");
1143 1.26 thorpej return;
1144 1.26 thorpej
1145 1.26 thorpej nodumpdev:
1146 1.26 thorpej dumpdev = NODEV;
1147 1.100 thorpej aprint_normal("\n");
1148 1.18 thorpej }
1149 1.18 thorpej
1150 1.18 thorpej static struct device *
1151 1.117 thorpej finddevice(const char *name)
1152 1.56 enami {
1153 1.56 enami struct device *dv;
1154 1.108 christos #if defined(BOOT_FROM_RAID_HOOKS) || defined(BOOT_FROM_MEMORY_HOOKS)
1155 1.57 oster int j;
1156 1.108 christos #endif /* BOOT_FROM_RAID_HOOKS || BOOT_FROM_MEMORY_HOOKS */
1157 1.57 oster
1158 1.108 christos #ifdef BOOT_FROM_RAID_HOOKS
1159 1.57 oster for (j = 0; j < numraid; j++) {
1160 1.57 oster if (strcmp(name, raidrootdev[j].dv_xname) == 0) {
1161 1.57 oster dv = &raidrootdev[j];
1162 1.59 enami return (dv);
1163 1.57 oster }
1164 1.57 oster }
1165 1.108 christos #endif /* BOOT_FROM_RAID_HOOKS */
1166 1.108 christos
1167 1.108 christos #ifdef BOOT_FROM_MEMORY_HOOKS
1168 1.108 christos for (j = 0; j < NMD; j++) {
1169 1.108 christos if (strcmp(name, fakemdrootdev[j].dv_xname) == 0) {
1170 1.108 christos dv = &fakemdrootdev[j];
1171 1.108 christos return (dv);
1172 1.108 christos }
1173 1.108 christos }
1174 1.108 christos #endif /* BOOT_FROM_MEMORY_HOOKS */
1175 1.56 enami
1176 1.56 enami for (dv = TAILQ_FIRST(&alldevs); dv != NULL;
1177 1.56 enami dv = TAILQ_NEXT(dv, dv_list))
1178 1.56 enami if (strcmp(dv->dv_xname, name) == 0)
1179 1.56 enami break;
1180 1.56 enami return (dv);
1181 1.56 enami }
1182 1.56 enami
1183 1.56 enami static struct device *
1184 1.117 thorpej getdisk(char *str, int len, int defpart, dev_t *devp, int isdump)
1185 1.18 thorpej {
1186 1.28 leo struct device *dv;
1187 1.29 drochner #ifdef MEMORY_DISK_HOOKS
1188 1.28 leo int i;
1189 1.29 drochner #endif
1190 1.57 oster #ifdef BOOT_FROM_RAID_HOOKS
1191 1.57 oster int j;
1192 1.57 oster #endif
1193 1.18 thorpej
1194 1.51 thorpej if ((dv = parsedisk(str, len, defpart, devp)) == NULL) {
1195 1.18 thorpej printf("use one of:");
1196 1.18 thorpej #ifdef MEMORY_DISK_HOOKS
1197 1.26 thorpej if (isdump == 0)
1198 1.28 leo for (i = 0; i < NMD; i++)
1199 1.28 leo printf(" %s[a-%c]", fakemdrootdev[i].dv_xname,
1200 1.28 leo 'a' + MAXPARTITIONS - 1);
1201 1.18 thorpej #endif
1202 1.57 oster #ifdef BOOT_FROM_RAID_HOOKS
1203 1.57 oster if (isdump == 0)
1204 1.57 oster for (j = 0; j < numraid; j++)
1205 1.59 enami printf(" %s[a-%c]", raidrootdev[j].dv_xname,
1206 1.59 enami 'a' + MAXPARTITIONS - 1);
1207 1.57 oster #endif
1208 1.83 matt TAILQ_FOREACH(dv, &alldevs, dv_list) {
1209 1.113 thorpej if (DEV_USES_PARTITIONS(dv))
1210 1.18 thorpej printf(" %s[a-%c]", dv->dv_xname,
1211 1.19 cgd 'a' + MAXPARTITIONS - 1);
1212 1.124 thorpej else if (device_class(dv) == DV_DISK)
1213 1.113 thorpej printf(" %s", dv->dv_xname);
1214 1.124 thorpej if (isdump == 0 && device_class(dv) == DV_IFNET)
1215 1.18 thorpej printf(" %s", dv->dv_xname);
1216 1.18 thorpej }
1217 1.26 thorpej if (isdump)
1218 1.26 thorpej printf(" none");
1219 1.78 thorpej #if defined(DDB)
1220 1.78 thorpej printf(" ddb");
1221 1.78 thorpej #endif
1222 1.76 thorpej printf(" halt reboot\n");
1223 1.18 thorpej }
1224 1.18 thorpej return (dv);
1225 1.18 thorpej }
1226 1.18 thorpej
1227 1.18 thorpej static struct device *
1228 1.117 thorpej parsedisk(char *str, int len, int defpart, dev_t *devp)
1229 1.18 thorpej {
1230 1.18 thorpej struct device *dv;
1231 1.18 thorpej char *cp, c;
1232 1.29 drochner int majdev, part;
1233 1.29 drochner #ifdef MEMORY_DISK_HOOKS
1234 1.29 drochner int i;
1235 1.29 drochner #endif
1236 1.18 thorpej if (len == 0)
1237 1.18 thorpej return (NULL);
1238 1.18 thorpej
1239 1.18 thorpej if (len == 4 && strcmp(str, "halt") == 0)
1240 1.23 gwr cpu_reboot(RB_HALT, NULL);
1241 1.76 thorpej else if (len == 6 && strcmp(str, "reboot") == 0)
1242 1.76 thorpej cpu_reboot(0, NULL);
1243 1.78 thorpej #if defined(DDB)
1244 1.78 thorpej else if (len == 3 && strcmp(str, "ddb") == 0)
1245 1.78 thorpej console_debugger();
1246 1.78 thorpej #endif
1247 1.18 thorpej
1248 1.18 thorpej cp = str + len - 1;
1249 1.18 thorpej c = *cp;
1250 1.18 thorpej if (c >= 'a' && c <= ('a' + MAXPARTITIONS - 1)) {
1251 1.18 thorpej part = c - 'a';
1252 1.18 thorpej *cp = '\0';
1253 1.18 thorpej } else
1254 1.18 thorpej part = defpart;
1255 1.18 thorpej
1256 1.18 thorpej #ifdef MEMORY_DISK_HOOKS
1257 1.28 leo for (i = 0; i < NMD; i++)
1258 1.28 leo if (strcmp(str, fakemdrootdev[i].dv_xname) == 0) {
1259 1.28 leo dv = &fakemdrootdev[i];
1260 1.28 leo goto gotdisk;
1261 1.28 leo }
1262 1.18 thorpej #endif
1263 1.18 thorpej
1264 1.56 enami dv = finddevice(str);
1265 1.56 enami if (dv != NULL) {
1266 1.124 thorpej if (device_class(dv) == DV_DISK) {
1267 1.18 thorpej #ifdef MEMORY_DISK_HOOKS
1268 1.18 thorpej gotdisk:
1269 1.18 thorpej #endif
1270 1.88 gehenna majdev = devsw_name2blk(dv->dv_xname, NULL, 0);
1271 1.18 thorpej if (majdev < 0)
1272 1.18 thorpej panic("parsedisk");
1273 1.113 thorpej if (DEV_USES_PARTITIONS(dv))
1274 1.135 thorpej *devp = MAKEDISKDEV(majdev, device_unit(dv),
1275 1.135 thorpej part);
1276 1.113 thorpej else
1277 1.135 thorpej *devp = makedev(majdev, device_unit(dv));
1278 1.18 thorpej }
1279 1.18 thorpej
1280 1.124 thorpej if (device_class(dv) == DV_IFNET)
1281 1.18 thorpej *devp = NODEV;
1282 1.18 thorpej }
1283 1.18 thorpej
1284 1.18 thorpej *cp = c;
1285 1.18 thorpej return (dv);
1286 1.48 lukem }
1287 1.48 lukem
1288 1.48 lukem /*
1289 1.49 lukem * snprintf() `bytes' into `buf', reformatting it so that the number,
1290 1.49 lukem * plus a possible `x' + suffix extension) fits into len bytes (including
1291 1.49 lukem * the terminating NUL).
1292 1.60 enami * Returns the number of bytes stored in buf, or -1 if there was a problem.
1293 1.109 junyoung * E.g, given a len of 9 and a suffix of `B':
1294 1.48 lukem * bytes result
1295 1.48 lukem * ----- ------
1296 1.49 lukem * 99999 `99999 B'
1297 1.90 wiz * 100000 `97 kB'
1298 1.90 wiz * 66715648 `65152 kB'
1299 1.48 lukem * 252215296 `240 MB'
1300 1.48 lukem */
1301 1.48 lukem int
1302 1.117 thorpej humanize_number(char *buf, size_t len, uint64_t bytes, const char *suffix,
1303 1.117 thorpej int divisor)
1304 1.48 lukem {
1305 1.91 drochner /* prefixes are: (none), kilo, Mega, Giga, Tera, Peta, Exa */
1306 1.91 drochner const char *prefixes;
1307 1.86 thorpej int r;
1308 1.121 perry uint64_t umax;
1309 1.86 thorpej size_t i, suffixlen;
1310 1.48 lukem
1311 1.49 lukem if (buf == NULL || suffix == NULL)
1312 1.49 lukem return (-1);
1313 1.48 lukem if (len > 0)
1314 1.48 lukem buf[0] = '\0';
1315 1.49 lukem suffixlen = strlen(suffix);
1316 1.91 drochner /* check if enough room for `x y' + suffix + `\0' */
1317 1.49 lukem if (len < 4 + suffixlen)
1318 1.49 lukem return (-1);
1319 1.48 lukem
1320 1.91 drochner if (divisor == 1024) {
1321 1.91 drochner /*
1322 1.91 drochner * binary multiplies
1323 1.91 drochner * XXX IEC 60027-2 recommends Ki, Mi, Gi...
1324 1.91 drochner */
1325 1.91 drochner prefixes = " KMGTPE";
1326 1.91 drochner } else
1327 1.91 drochner prefixes = " kMGTPE"; /* SI for decimal multiplies */
1328 1.91 drochner
1329 1.116 christos umax = 1;
1330 1.49 lukem for (i = 0; i < len - suffixlen - 3; i++)
1331 1.116 christos umax *= 10;
1332 1.116 christos for (i = 0; bytes >= umax && prefixes[i + 1]; i++)
1333 1.58 sommerfe bytes /= divisor;
1334 1.48 lukem
1335 1.50 lukem r = snprintf(buf, len, "%qu%s%c%s", (unsigned long long)bytes,
1336 1.49 lukem i == 0 ? "" : " ", prefixes[i], suffix);
1337 1.48 lukem
1338 1.48 lukem return (r);
1339 1.49 lukem }
1340 1.49 lukem
1341 1.49 lukem int
1342 1.117 thorpej format_bytes(char *buf, size_t len, uint64_t bytes)
1343 1.49 lukem {
1344 1.49 lukem int rv;
1345 1.49 lukem size_t nlen;
1346 1.49 lukem
1347 1.58 sommerfe rv = humanize_number(buf, len, bytes, "B", 1024);
1348 1.49 lukem if (rv != -1) {
1349 1.49 lukem /* nuke the trailing ` B' if it exists */
1350 1.49 lukem nlen = strlen(buf) - 2;
1351 1.49 lukem if (strcmp(&buf[nlen], " B") == 0)
1352 1.49 lukem buf[nlen] = '\0';
1353 1.49 lukem }
1354 1.49 lukem return (rv);
1355 1.81 christos }
1356 1.81 christos
1357 1.92 jdolecek /*
1358 1.130 thorpej * Return TRUE if system call tracing is enabled for the specified process.
1359 1.130 thorpej */
1360 1.130 thorpej boolean_t
1361 1.130 thorpej trace_is_enabled(struct proc *p)
1362 1.130 thorpej {
1363 1.131 thorpej #ifdef SYSCALL_DEBUG
1364 1.131 thorpej return (TRUE);
1365 1.131 thorpej #endif
1366 1.130 thorpej #ifdef KTRACE
1367 1.130 thorpej if (ISSET(p->p_traceflag, (KTRFAC_SYSCALL | KTRFAC_SYSRET)))
1368 1.130 thorpej return (TRUE);
1369 1.130 thorpej #endif
1370 1.130 thorpej #ifdef SYSTRACE
1371 1.130 thorpej if (ISSET(p->p_flag, P_SYSTRACE))
1372 1.130 thorpej return (TRUE);
1373 1.130 thorpej #endif
1374 1.142 matt #ifdef PTRACE
1375 1.130 thorpej if (ISSET(p->p_flag, P_SYSCALL))
1376 1.130 thorpej return (TRUE);
1377 1.142 matt #endif
1378 1.130 thorpej
1379 1.130 thorpej return (FALSE);
1380 1.130 thorpej }
1381 1.130 thorpej
1382 1.130 thorpej /*
1383 1.92 jdolecek * Start trace of particular system call. If process is being traced,
1384 1.92 jdolecek * this routine is called by MD syscall dispatch code just before
1385 1.92 jdolecek * a system call is actually executed.
1386 1.92 jdolecek * MD caller guarantees the passed 'code' is within the supported
1387 1.92 jdolecek * system call number range for emulation the process runs under.
1388 1.92 jdolecek */
1389 1.81 christos int
1390 1.95 thorpej trace_enter(struct lwp *l, register_t code,
1391 1.117 thorpej register_t realcode, const struct sysent *callp, void *args)
1392 1.81 christos {
1393 1.142 matt #if defined(SYSCALL_DEBUG) || defined(KTRACE) || defined(PTRACE) || defined(SYSTRACE)
1394 1.95 thorpej struct proc *p = l->l_proc;
1395 1.95 thorpej
1396 1.81 christos #ifdef SYSCALL_DEBUG
1397 1.95 thorpej scdebug_call(l, code, args);
1398 1.81 christos #endif /* SYSCALL_DEBUG */
1399 1.81 christos
1400 1.81 christos #ifdef KTRACE
1401 1.81 christos if (KTRPOINT(p, KTR_SYSCALL))
1402 1.120 christos ktrsyscall(l, code, realcode, callp, args);
1403 1.81 christos #endif /* KTRACE */
1404 1.81 christos
1405 1.142 matt #ifdef PTRACE
1406 1.128 christos if ((p->p_flag & (P_SYSCALL|P_TRACED)) == (P_SYSCALL|P_TRACED))
1407 1.128 christos process_stoptrace(l);
1408 1.142 matt #endif
1409 1.128 christos
1410 1.81 christos #ifdef SYSTRACE
1411 1.81 christos if (ISSET(p->p_flag, P_SYSTRACE))
1412 1.137 ad return systrace_enter(l, code, args);
1413 1.81 christos #endif
1414 1.142 matt #endif /* SYSCALL_DEBUG || {K,P,SYS}TRACE */
1415 1.81 christos return 0;
1416 1.81 christos }
1417 1.81 christos
1418 1.92 jdolecek /*
1419 1.92 jdolecek * End trace of particular system call. If process is being traced,
1420 1.92 jdolecek * this routine is called by MD syscall dispatch code just after
1421 1.92 jdolecek * a system call finishes.
1422 1.92 jdolecek * MD caller guarantees the passed 'code' is within the supported
1423 1.92 jdolecek * system call number range for emulation the process runs under.
1424 1.92 jdolecek */
1425 1.81 christos void
1426 1.95 thorpej trace_exit(struct lwp *l, register_t code, void *args, register_t rval[],
1427 1.81 christos int error)
1428 1.81 christos {
1429 1.142 matt #if defined(SYSCALL_DEBUG) || defined(KTRACE) || defined(PTRACE) || defined(SYSTRACE)
1430 1.95 thorpej struct proc *p = l->l_proc;
1431 1.95 thorpej
1432 1.81 christos #ifdef SYSCALL_DEBUG
1433 1.95 thorpej scdebug_ret(l, code, error, rval);
1434 1.81 christos #endif /* SYSCALL_DEBUG */
1435 1.81 christos
1436 1.81 christos #ifdef KTRACE
1437 1.81 christos if (KTRPOINT(p, KTR_SYSRET)) {
1438 1.95 thorpej KERNEL_PROC_LOCK(l);
1439 1.120 christos ktrsysret(l, code, error, rval);
1440 1.95 thorpej KERNEL_PROC_UNLOCK(l);
1441 1.81 christos }
1442 1.81 christos #endif /* KTRACE */
1443 1.128 christos
1444 1.142 matt #ifdef PTRACE
1445 1.128 christos if ((p->p_flag & (P_SYSCALL|P_TRACED)) == (P_SYSCALL|P_TRACED))
1446 1.128 christos process_stoptrace(l);
1447 1.142 matt #endif
1448 1.81 christos
1449 1.81 christos #ifdef SYSTRACE
1450 1.122 chs if (ISSET(p->p_flag, P_SYSTRACE)) {
1451 1.122 chs KERNEL_PROC_LOCK(l);
1452 1.137 ad systrace_exit(l, code, args, rval, error);
1453 1.122 chs KERNEL_PROC_UNLOCK(l);
1454 1.122 chs }
1455 1.81 christos #endif
1456 1.142 matt #endif /* SYSCALL_DEBUG || {K,P,SYS}TRACE */
1457 1.10 cgd }
1458