kernfs_vnops.c revision 1.128 1 /* $NetBSD: kernfs_vnops.c,v 1.128 2006/11/16 01:33:38 christos Exp $ */
2
3 /*
4 * Copyright (c) 1992, 1993
5 * The Regents of the University of California. All rights reserved.
6 *
7 * This code is derived from software donated to Berkeley by
8 * Jan-Simon Pendry.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. Neither the name of the University nor the names of its contributors
19 * may be used to endorse or promote products derived from this software
20 * without specific prior written permission.
21 *
22 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32 * SUCH DAMAGE.
33 *
34 * @(#)kernfs_vnops.c 8.15 (Berkeley) 5/21/95
35 */
36
37 /*
38 * Kernel parameter filesystem (/kern)
39 */
40
41 #include <sys/cdefs.h>
42 __KERNEL_RCSID(0, "$NetBSD: kernfs_vnops.c,v 1.128 2006/11/16 01:33:38 christos Exp $");
43
44 #ifdef _KERNEL_OPT
45 #include "opt_ipsec.h"
46 #endif
47
48 #include <sys/param.h>
49 #include <sys/systm.h>
50 #include <sys/kernel.h>
51 #include <sys/vmmeter.h>
52 #include <sys/time.h>
53 #include <sys/proc.h>
54 #include <sys/vnode.h>
55 #include <sys/malloc.h>
56 #include <sys/file.h>
57 #include <sys/stat.h>
58 #include <sys/mount.h>
59 #include <sys/namei.h>
60 #include <sys/buf.h>
61 #include <sys/dirent.h>
62 #include <sys/msgbuf.h>
63
64 #include <miscfs/genfs/genfs.h>
65 #include <miscfs/kernfs/kernfs.h>
66
67 #ifdef IPSEC
68 #include <sys/mbuf.h>
69 #include <net/route.h>
70 #include <netinet/in.h>
71 #include <netinet6/ipsec.h>
72 #include <netkey/key.h>
73 #endif
74
75 #include <uvm/uvm_extern.h>
76
77 #define KSTRING 256 /* Largest I/O available via this filesystem */
78 #define UIO_MX 32
79
80 #define READ_MODE (S_IRUSR|S_IRGRP|S_IROTH)
81 #define WRITE_MODE (S_IWUSR|S_IRUSR|S_IRGRP|S_IROTH)
82 #define UREAD_MODE (S_IRUSR)
83 #define DIR_MODE (S_IRUSR|S_IXUSR|S_IRGRP|S_IXGRP|S_IROTH|S_IXOTH)
84 #define UDIR_MODE (S_IRUSR|S_IXUSR)
85
86 #define N(s) sizeof(s)-1, s
87 const struct kern_target kern_targets[] = {
88 /* NOTE: The name must be less than UIO_MX-16 chars in length */
89 /* name data tag type ro/rw */
90 { DT_DIR, N("."), 0, KFSkern, VDIR, DIR_MODE },
91 { DT_DIR, N(".."), 0, KFSroot, VDIR, DIR_MODE },
92 { DT_REG, N("boottime"), &boottime.tv_sec, KFSint, VREG, READ_MODE },
93 /* XXXUNCONST */
94 { DT_REG, N("copyright"), __UNCONST(copyright),
95 KFSstring, VREG, READ_MODE },
96 { DT_REG, N("hostname"), 0, KFShostname, VREG, WRITE_MODE },
97 { DT_REG, N("hz"), &hz, KFSint, VREG, READ_MODE },
98 #ifdef IPSEC
99 { DT_DIR, N("ipsecsa"), 0, KFSipsecsadir, VDIR, UDIR_MODE },
100 { DT_DIR, N("ipsecsp"), 0, KFSipsecspdir, VDIR, UDIR_MODE },
101 #endif
102 { DT_REG, N("loadavg"), 0, KFSavenrun, VREG, READ_MODE },
103 { DT_REG, N("msgbuf"), 0, KFSmsgbuf, VREG, READ_MODE },
104 { DT_REG, N("pagesize"), &uvmexp.pagesize, KFSint, VREG, READ_MODE },
105 { DT_REG, N("physmem"), &physmem, KFSint, VREG, READ_MODE },
106 #if 0
107 { DT_DIR, N("root"), 0, KFSnull, VDIR, DIR_MODE },
108 #endif
109 { DT_BLK, N("rootdev"), &rootdev, KFSdevice, VBLK, READ_MODE },
110 { DT_CHR, N("rrootdev"), &rrootdev, KFSdevice, VCHR, READ_MODE },
111 { DT_REG, N("time"), 0, KFStime, VREG, READ_MODE },
112 /* XXXUNCONST */
113 { DT_REG, N("version"), __UNCONST(version),
114 KFSstring, VREG, READ_MODE },
115 };
116 const struct kern_target subdir_targets[] = {
117 /* NOTE: The name must be less than UIO_MX-16 chars in length */
118 /* name data tag type ro/rw */
119 { DT_DIR, N("."), 0, KFSsubdir, VDIR, DIR_MODE },
120 { DT_DIR, N(".."), 0, KFSkern, VDIR, DIR_MODE },
121 };
122 #ifdef IPSEC
123 const struct kern_target ipsecsa_targets[] = {
124 /* NOTE: The name must be less than UIO_MX-16 chars in length */
125 /* name data tag type ro/rw */
126 { DT_DIR, N("."), 0, KFSipsecsadir, VDIR, DIR_MODE },
127 { DT_DIR, N(".."), 0, KFSkern, VDIR, DIR_MODE },
128 };
129 const struct kern_target ipsecsp_targets[] = {
130 /* NOTE: The name must be less than UIO_MX-16 chars in length */
131 /* name data tag type ro/rw */
132 { DT_DIR, N("."), 0, KFSipsecspdir, VDIR, DIR_MODE },
133 { DT_DIR, N(".."), 0, KFSkern, VDIR, DIR_MODE },
134 };
135 const struct kern_target ipsecsa_kt =
136 { DT_DIR, N(""), 0, KFSipsecsa, VREG, UREAD_MODE };
137 const struct kern_target ipsecsp_kt =
138 { DT_DIR, N(""), 0, KFSipsecsp, VREG, UREAD_MODE };
139 #endif
140 #undef N
141 SIMPLEQ_HEAD(,dyn_kern_target) dyn_kern_targets =
142 SIMPLEQ_HEAD_INITIALIZER(dyn_kern_targets);
143 int nkern_targets = sizeof(kern_targets) / sizeof(kern_targets[0]);
144 const int static_nkern_targets = sizeof(kern_targets) / sizeof(kern_targets[0]);
145 #ifdef IPSEC
146 int nipsecsa_targets = sizeof(ipsecsa_targets) / sizeof(ipsecsa_targets[0]);
147 int nipsecsp_targets = sizeof(ipsecsp_targets) / sizeof(ipsecsp_targets[0]);
148 int nkern_dirs = 4; /* 2 extra subdirs */
149 #else
150 int nkern_dirs = 2;
151 #endif
152
153 int kernfs_try_fileop(kfstype, kfsfileop, void *, int);
154 int kernfs_try_xread(kfstype, const struct kernfs_node *, char **,
155 size_t, int);
156 int kernfs_try_xwrite(kfstype, const struct kernfs_node *, char *,
157 size_t, int);
158
159 static int kernfs_default_xread(void *v);
160 static int kernfs_default_xwrite(void *v);
161 static int kernfs_default_fileop_getattr(void *);
162
163 /* must include all fileop's */
164 const struct kernfs_fileop kernfs_default_fileops[] = {
165 { .kf_fileop = KERNFS_XREAD },
166 { .kf_fileop = KERNFS_XWRITE },
167 { .kf_fileop = KERNFS_FILEOP_OPEN },
168 { .kf_fileop = KERNFS_FILEOP_GETATTR,
169 .kf_vop = kernfs_default_fileop_getattr },
170 { .kf_fileop = KERNFS_FILEOP_IOCTL },
171 { .kf_fileop = KERNFS_FILEOP_CLOSE },
172 { .kf_fileop = KERNFS_FILEOP_READ,
173 .kf_vop = kernfs_default_xread },
174 { .kf_fileop = KERNFS_FILEOP_WRITE,
175 .kf_vop = kernfs_default_xwrite },
176 };
177
178 int kernfs_lookup(void *);
179 #define kernfs_create genfs_eopnotsupp
180 #define kernfs_mknod genfs_eopnotsupp
181 int kernfs_open(void *);
182 int kernfs_close(void *);
183 int kernfs_access(void *);
184 int kernfs_getattr(void *);
185 int kernfs_setattr(void *);
186 int kernfs_read(void *);
187 int kernfs_write(void *);
188 #define kernfs_fcntl genfs_fcntl
189 int kernfs_ioctl(void *);
190 #define kernfs_poll genfs_poll
191 #define kernfs_revoke genfs_revoke
192 #define kernfs_fsync genfs_nullop
193 #define kernfs_seek genfs_nullop
194 #define kernfs_remove genfs_eopnotsupp
195 int kernfs_link(void *);
196 #define kernfs_rename genfs_eopnotsupp
197 #define kernfs_mkdir genfs_eopnotsupp
198 #define kernfs_rmdir genfs_eopnotsupp
199 int kernfs_symlink(void *);
200 int kernfs_readdir(void *);
201 #define kernfs_readlink genfs_eopnotsupp
202 #define kernfs_abortop genfs_abortop
203 int kernfs_inactive(void *);
204 int kernfs_reclaim(void *);
205 #define kernfs_lock genfs_lock
206 #define kernfs_unlock genfs_unlock
207 #define kernfs_bmap genfs_badop
208 #define kernfs_strategy genfs_badop
209 int kernfs_print(void *);
210 #define kernfs_islocked genfs_islocked
211 int kernfs_pathconf(void *);
212 #define kernfs_advlock genfs_einval
213 #define kernfs_bwrite genfs_eopnotsupp
214 #define kernfs_putpages genfs_putpages
215
216 static int kernfs_xread(struct kernfs_node *, int, char **,
217 size_t, size_t *);
218 static int kernfs_xwrite(const struct kernfs_node *, char *, size_t);
219
220 int (**kernfs_vnodeop_p)(void *);
221 const struct vnodeopv_entry_desc kernfs_vnodeop_entries[] = {
222 { &vop_default_desc, vn_default_error },
223 { &vop_lookup_desc, kernfs_lookup }, /* lookup */
224 { &vop_create_desc, kernfs_create }, /* create */
225 { &vop_mknod_desc, kernfs_mknod }, /* mknod */
226 { &vop_open_desc, kernfs_open }, /* open */
227 { &vop_close_desc, kernfs_close }, /* close */
228 { &vop_access_desc, kernfs_access }, /* access */
229 { &vop_getattr_desc, kernfs_getattr }, /* getattr */
230 { &vop_setattr_desc, kernfs_setattr }, /* setattr */
231 { &vop_read_desc, kernfs_read }, /* read */
232 { &vop_write_desc, kernfs_write }, /* write */
233 { &vop_fcntl_desc, kernfs_fcntl }, /* fcntl */
234 { &vop_ioctl_desc, kernfs_ioctl }, /* ioctl */
235 { &vop_poll_desc, kernfs_poll }, /* poll */
236 { &vop_revoke_desc, kernfs_revoke }, /* revoke */
237 { &vop_fsync_desc, kernfs_fsync }, /* fsync */
238 { &vop_seek_desc, kernfs_seek }, /* seek */
239 { &vop_remove_desc, kernfs_remove }, /* remove */
240 { &vop_link_desc, kernfs_link }, /* link */
241 { &vop_rename_desc, kernfs_rename }, /* rename */
242 { &vop_mkdir_desc, kernfs_mkdir }, /* mkdir */
243 { &vop_rmdir_desc, kernfs_rmdir }, /* rmdir */
244 { &vop_symlink_desc, kernfs_symlink }, /* symlink */
245 { &vop_readdir_desc, kernfs_readdir }, /* readdir */
246 { &vop_readlink_desc, kernfs_readlink }, /* readlink */
247 { &vop_abortop_desc, kernfs_abortop }, /* abortop */
248 { &vop_inactive_desc, kernfs_inactive }, /* inactive */
249 { &vop_reclaim_desc, kernfs_reclaim }, /* reclaim */
250 { &vop_lock_desc, kernfs_lock }, /* lock */
251 { &vop_unlock_desc, kernfs_unlock }, /* unlock */
252 { &vop_bmap_desc, kernfs_bmap }, /* bmap */
253 { &vop_strategy_desc, kernfs_strategy }, /* strategy */
254 { &vop_print_desc, kernfs_print }, /* print */
255 { &vop_islocked_desc, kernfs_islocked }, /* islocked */
256 { &vop_pathconf_desc, kernfs_pathconf }, /* pathconf */
257 { &vop_advlock_desc, kernfs_advlock }, /* advlock */
258 { &vop_bwrite_desc, kernfs_bwrite }, /* bwrite */
259 { &vop_putpages_desc, kernfs_putpages }, /* putpages */
260 { NULL, NULL }
261 };
262 const struct vnodeopv_desc kernfs_vnodeop_opv_desc =
263 { &kernfs_vnodeop_p, kernfs_vnodeop_entries };
264
265 static inline int
266 kernfs_fileop_compare(struct kernfs_fileop *a, struct kernfs_fileop *b)
267 {
268 if (a->kf_type < b->kf_type)
269 return -1;
270 if (a->kf_type > b->kf_type)
271 return 1;
272 if (a->kf_fileop < b->kf_fileop)
273 return -1;
274 if (a->kf_fileop > b->kf_fileop)
275 return 1;
276 return (0);
277 }
278
279 SPLAY_HEAD(kfsfileoptree, kernfs_fileop) kfsfileoptree =
280 SPLAY_INITIALIZER(kfsfileoptree);
281 SPLAY_PROTOTYPE(kfsfileoptree, kernfs_fileop, kf_node, kernfs_fileop_compare);
282 SPLAY_GENERATE(kfsfileoptree, kernfs_fileop, kf_node, kernfs_fileop_compare);
283
284 kfstype
285 kernfs_alloctype(int nkf, const struct kernfs_fileop *kf)
286 {
287 static u_char nextfreetype = KFSlasttype;
288 struct kernfs_fileop *dkf, *fkf, skf;
289 int i;
290
291 /* XXX need to keep track of dkf's memory if we support
292 deallocating types */
293 dkf = malloc(sizeof(kernfs_default_fileops), M_TEMP, M_WAITOK);
294 memcpy(dkf, kernfs_default_fileops, sizeof(kernfs_default_fileops));
295
296 for (i = 0; i < sizeof(kernfs_default_fileops) /
297 sizeof(kernfs_default_fileops[0]); i++) {
298 dkf[i].kf_type = nextfreetype;
299 SPLAY_INSERT(kfsfileoptree, &kfsfileoptree, &dkf[i]);
300 }
301
302 for (i = 0; i < nkf; i++) {
303 skf.kf_type = nextfreetype;
304 skf.kf_fileop = kf[i].kf_fileop;
305 if ((fkf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
306 fkf->kf_vop = kf[i].kf_vop;
307 }
308
309 return nextfreetype++;
310 }
311
312 int
313 kernfs_try_fileop(kfstype type, kfsfileop fileop, void *v, int error)
314 {
315 struct kernfs_fileop *kf, skf;
316
317 skf.kf_type = type;
318 skf.kf_fileop = fileop;
319 if ((kf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
320 if (kf->kf_vop)
321 return kf->kf_vop(v);
322 return error;
323 }
324
325 int
326 kernfs_try_xread(kfstype type, const struct kernfs_node *kfs, char **bfp,
327 size_t len, int error)
328 {
329 struct kernfs_fileop *kf, skf;
330
331 skf.kf_type = type;
332 skf.kf_fileop = KERNFS_XREAD;
333 if ((kf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
334 if (kf->kf_xread)
335 return kf->kf_xread(kfs, bfp, len);
336 return error;
337 }
338
339 int
340 kernfs_try_xwrite(kfstype type, const struct kernfs_node *kfs, char *bf,
341 size_t len, int error)
342 {
343 struct kernfs_fileop *kf, skf;
344
345 skf.kf_type = type;
346 skf.kf_fileop = KERNFS_XWRITE;
347 if ((kf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
348 if (kf->kf_xwrite)
349 return kf->kf_xwrite(kfs, bf, len);
350 return error;
351 }
352
353 int
354 kernfs_addentry(kernfs_parentdir_t *pkt, kernfs_entry_t *dkt)
355 {
356 struct kernfs_subdir *ks, *parent;
357
358 if (pkt == NULL) {
359 SIMPLEQ_INSERT_TAIL(&dyn_kern_targets, dkt, dkt_queue);
360 nkern_targets++;
361 if (dkt->dkt_kt.kt_vtype == VDIR)
362 nkern_dirs++;
363 } else {
364 parent = (struct kernfs_subdir *)pkt->kt_data;
365 SIMPLEQ_INSERT_TAIL(&parent->ks_entries, dkt, dkt_queue);
366 parent->ks_nentries++;
367 if (dkt->dkt_kt.kt_vtype == VDIR)
368 parent->ks_dirs++;
369 }
370 if (dkt->dkt_kt.kt_vtype == VDIR && dkt->dkt_kt.kt_data == NULL) {
371 ks = malloc(sizeof(struct kernfs_subdir),
372 M_TEMP, M_WAITOK);
373 SIMPLEQ_INIT(&ks->ks_entries);
374 ks->ks_nentries = 2; /* . and .. */
375 ks->ks_dirs = 2;
376 ks->ks_parent = pkt ? pkt : &kern_targets[0];
377 dkt->dkt_kt.kt_data = ks;
378 }
379 return 0;
380 }
381
382 static int
383 kernfs_xread(kfs, off, bufp, len, wrlen)
384 struct kernfs_node *kfs;
385 int off;
386 char **bufp;
387 size_t len;
388 size_t *wrlen;
389 {
390 const struct kern_target *kt;
391 #ifdef IPSEC
392 struct mbuf *m;
393 #endif
394 int err;
395
396 kt = kfs->kfs_kt;
397
398 switch (kfs->kfs_type) {
399 case KFStime: {
400 struct timeval tv;
401
402 microtime(&tv);
403 snprintf(*bufp, len, "%ld %ld\n", tv.tv_sec, tv.tv_usec);
404 break;
405 }
406
407 case KFSint: {
408 int *ip = kt->kt_data;
409
410 snprintf(*bufp, len, "%d\n", *ip);
411 break;
412 }
413
414 case KFSstring: {
415 char *cp = kt->kt_data;
416
417 *bufp = cp;
418 break;
419 }
420
421 case KFSmsgbuf: {
422 long n;
423
424 /*
425 * deal with cases where the message buffer has
426 * become corrupted.
427 */
428 if (!msgbufenabled || msgbufp->msg_magic != MSG_MAGIC) {
429 msgbufenabled = 0;
430 return (ENXIO);
431 }
432
433 /*
434 * Note that reads of /kern/msgbuf won't necessarily yield
435 * consistent results, if the message buffer is modified
436 * while the read is in progress. The worst that can happen
437 * is that incorrect data will be read. There's no way
438 * that this can crash the system unless the values in the
439 * message buffer header are corrupted, but that'll cause
440 * the system to die anyway.
441 */
442 if (off >= msgbufp->msg_bufs) {
443 *wrlen = 0;
444 return (0);
445 }
446 n = msgbufp->msg_bufx + off;
447 if (n >= msgbufp->msg_bufs)
448 n -= msgbufp->msg_bufs;
449 len = min(msgbufp->msg_bufs - n, msgbufp->msg_bufs - off);
450 *bufp = msgbufp->msg_bufc + n;
451 *wrlen = len;
452 return (0);
453 }
454
455 case KFShostname: {
456 char *cp = hostname;
457 size_t xlen = hostnamelen;
458
459 if (xlen >= (len - 2))
460 return (EINVAL);
461
462 memcpy(*bufp, cp, xlen);
463 (*bufp)[xlen] = '\n';
464 (*bufp)[xlen+1] = '\0';
465 len = strlen(*bufp);
466 break;
467 }
468
469 case KFSavenrun:
470 averunnable.fscale = FSCALE;
471 snprintf(*bufp, len, "%d %d %d %ld\n",
472 averunnable.ldavg[0], averunnable.ldavg[1],
473 averunnable.ldavg[2], averunnable.fscale);
474 break;
475
476 #ifdef IPSEC
477 case KFSipsecsa:
478 /*
479 * Note that SA configuration could be changed during the
480 * read operation, resulting in garbled output.
481 */
482 m = key_setdumpsa_spi(htonl(kfs->kfs_value));
483 if (!m)
484 return (ENOBUFS);
485 if (off >= m->m_pkthdr.len) {
486 *wrlen = 0;
487 m_freem(m);
488 return (0);
489 }
490 if (len > m->m_pkthdr.len - off)
491 len = m->m_pkthdr.len - off;
492 m_copydata(m, off, len, *bufp);
493 *wrlen = len;
494 m_freem(m);
495 return (0);
496
497 case KFSipsecsp:
498 /*
499 * Note that SP configuration could be changed during the
500 * read operation, resulting in garbled output.
501 */
502 if (!kfs->kfs_v) {
503 struct secpolicy *sp;
504
505 sp = key_getspbyid(kfs->kfs_value);
506 if (sp)
507 kfs->kfs_v = sp;
508 else
509 return (ENOENT);
510 }
511 m = key_setdumpsp((struct secpolicy *)kfs->kfs_v,
512 SADB_X_SPDGET, 0, 0);
513 if (!m)
514 return (ENOBUFS);
515 if (off >= m->m_pkthdr.len) {
516 *wrlen = 0;
517 m_freem(m);
518 return (0);
519 }
520 if (len > m->m_pkthdr.len - off)
521 len = m->m_pkthdr.len - off;
522 m_copydata(m, off, len, *bufp);
523 *wrlen = len;
524 m_freem(m);
525 return (0);
526 #endif
527
528 default:
529 err = kernfs_try_xread(kfs->kfs_type, kfs, bufp, len,
530 EOPNOTSUPP);
531 if (err)
532 return err;
533 }
534
535 len = strlen(*bufp);
536 if (len <= off)
537 *wrlen = 0;
538 else {
539 *bufp += off;
540 *wrlen = len - off;
541 }
542 return (0);
543 }
544
545 static int
546 kernfs_xwrite(kfs, bf, len)
547 const struct kernfs_node *kfs;
548 char *bf;
549 size_t len;
550 {
551
552 switch (kfs->kfs_type) {
553 case KFShostname:
554 if (bf[len-1] == '\n')
555 --len;
556 memcpy(hostname, bf, len);
557 hostname[len] = '\0';
558 hostnamelen = (size_t) len;
559 return (0);
560
561 default:
562 return kernfs_try_xwrite(kfs->kfs_type, kfs, bf, len, EIO);
563 }
564 }
565
566
567 /*
568 * vp is the current namei directory
569 * ndp is the name to locate in that directory...
570 */
571 int
572 kernfs_lookup(v)
573 void *v;
574 {
575 struct vop_lookup_args /* {
576 struct vnode * a_dvp;
577 struct vnode ** a_vpp;
578 struct componentname * a_cnp;
579 } */ *ap = v;
580 struct componentname *cnp = ap->a_cnp;
581 struct vnode **vpp = ap->a_vpp;
582 struct vnode *dvp = ap->a_dvp;
583 const char *pname = cnp->cn_nameptr;
584 const struct kernfs_node *kfs;
585 const struct kern_target *kt;
586 const struct dyn_kern_target *dkt;
587 const struct kernfs_subdir *ks;
588 int error, i, wantpunlock;
589 #ifdef IPSEC
590 char *ep;
591 u_int32_t id;
592 #endif
593
594 *vpp = NULLVP;
595 cnp->cn_flags &= ~PDIRUNLOCK;
596
597 if (cnp->cn_nameiop == DELETE || cnp->cn_nameiop == RENAME)
598 return (EROFS);
599
600 if (cnp->cn_namelen == 1 && *pname == '.') {
601 *vpp = dvp;
602 VREF(dvp);
603 return (0);
604 }
605
606 wantpunlock = (~cnp->cn_flags & (LOCKPARENT | ISLASTCN));
607 kfs = VTOKERN(dvp);
608 switch (kfs->kfs_type) {
609 case KFSkern:
610 /*
611 * Shouldn't get here with .. in the root node.
612 */
613 if (cnp->cn_flags & ISDOTDOT)
614 return (EIO);
615
616 for (i = 0; i < static_nkern_targets; i++) {
617 kt = &kern_targets[i];
618 if (cnp->cn_namelen == kt->kt_namlen &&
619 memcmp(kt->kt_name, pname, cnp->cn_namelen) == 0)
620 goto found;
621 }
622 SIMPLEQ_FOREACH(dkt, &dyn_kern_targets, dkt_queue) {
623 if (cnp->cn_namelen == dkt->dkt_kt.kt_namlen &&
624 memcmp(dkt->dkt_kt.kt_name, pname, cnp->cn_namelen) == 0) {
625 kt = &dkt->dkt_kt;
626 goto found;
627 }
628 }
629 break;
630
631 found:
632 error = kernfs_allocvp(dvp->v_mount, vpp, kt->kt_tag, kt, 0);
633 if ((error == 0) && wantpunlock) {
634 VOP_UNLOCK(dvp, 0);
635 cnp->cn_flags |= PDIRUNLOCK;
636 }
637 return (error);
638
639 case KFSsubdir:
640 ks = (struct kernfs_subdir *)kfs->kfs_kt->kt_data;
641 if (cnp->cn_flags & ISDOTDOT) {
642 kt = ks->ks_parent;
643 goto found;
644 }
645
646 SIMPLEQ_FOREACH(dkt, &ks->ks_entries, dkt_queue) {
647 if (cnp->cn_namelen == dkt->dkt_kt.kt_namlen &&
648 memcmp(dkt->dkt_kt.kt_name, pname, cnp->cn_namelen) == 0) {
649 kt = &dkt->dkt_kt;
650 goto found;
651 }
652 }
653 break;
654
655 #ifdef IPSEC
656 case KFSipsecsadir:
657 if (cnp->cn_flags & ISDOTDOT) {
658 kt = &kern_targets[0];
659 goto found;
660 }
661
662 for (i = 2; i < nipsecsa_targets; i++) {
663 kt = &ipsecsa_targets[i];
664 if (cnp->cn_namelen == kt->kt_namlen &&
665 memcmp(kt->kt_name, pname, cnp->cn_namelen) == 0)
666 goto found;
667 }
668
669 ep = NULL;
670 id = strtoul(pname, &ep, 10);
671 if (!ep || *ep || ep == pname)
672 break;
673
674 error = kernfs_allocvp(dvp->v_mount, vpp, KFSipsecsa, &ipsecsa_kt, id);
675 if ((error == 0) && wantpunlock) {
676 VOP_UNLOCK(dvp, 0);
677 cnp->cn_flags |= PDIRUNLOCK;
678 }
679 return (error);
680
681 case KFSipsecspdir:
682 if (cnp->cn_flags & ISDOTDOT) {
683 kt = &kern_targets[0];
684 goto found;
685 }
686
687 for (i = 2; i < nipsecsp_targets; i++) {
688 kt = &ipsecsp_targets[i];
689 if (cnp->cn_namelen == kt->kt_namlen &&
690 memcmp(kt->kt_name, pname, cnp->cn_namelen) == 0)
691 goto found;
692 }
693
694 ep = NULL;
695 id = strtoul(pname, &ep, 10);
696 if (!ep || *ep || ep == pname)
697 break;
698
699 error = kernfs_allocvp(dvp->v_mount, vpp, KFSipsecsp, &ipsecsp_kt, id);
700 if ((error == 0) && wantpunlock) {
701 VOP_UNLOCK(dvp, 0);
702 cnp->cn_flags |= PDIRUNLOCK;
703 }
704 return (error);
705 #endif
706
707 default:
708 return (ENOTDIR);
709 }
710
711 return (cnp->cn_nameiop == LOOKUP ? ENOENT : EROFS);
712 }
713
714 int
715 kernfs_open(v)
716 void *v;
717 {
718 struct vop_open_args /* {
719 struct vnode *a_vp;
720 int a_mode;
721 kauth_cred_t a_cred;
722 struct lwp *a_l;
723 } */ *ap = v;
724 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
725 #ifdef IPSEC
726 struct mbuf *m;
727 struct secpolicy *sp;
728 #endif
729
730 switch (kfs->kfs_type) {
731 #ifdef IPSEC
732 case KFSipsecsa:
733 m = key_setdumpsa_spi(htonl(kfs->kfs_value));
734 if (m) {
735 m_freem(m);
736 return (0);
737 } else
738 return (ENOENT);
739
740 case KFSipsecsp:
741 sp = key_getspbyid(kfs->kfs_value);
742 if (sp) {
743 kfs->kfs_v = sp;
744 return (0);
745 } else
746 return (ENOENT);
747 #endif
748
749 default:
750 return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_OPEN,
751 v, 0);
752 }
753 }
754
755 int
756 kernfs_close(v)
757 void *v;
758 {
759 struct vop_close_args /* {
760 struct vnode *a_vp;
761 int a_fflag;
762 kauth_cred_t a_cred;
763 struct lwp *a_l;
764 } */ *ap = v;
765 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
766
767 switch (kfs->kfs_type) {
768 #ifdef IPSEC
769 case KFSipsecsp:
770 key_freesp((struct secpolicy *)kfs->kfs_v);
771 break;
772 #endif
773
774 default:
775 return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_CLOSE,
776 v, 0);
777 }
778
779 return (0);
780 }
781
782 int
783 kernfs_access(v)
784 void *v;
785 {
786 struct vop_access_args /* {
787 struct vnode *a_vp;
788 int a_mode;
789 kauth_cred_t a_cred;
790 struct lwp *a_l;
791 } */ *ap = v;
792 struct vattr va;
793 int error;
794
795 if ((error = VOP_GETATTR(ap->a_vp, &va, ap->a_cred, ap->a_l)) != 0)
796 return (error);
797
798 return (vaccess(va.va_type, va.va_mode, va.va_uid, va.va_gid,
799 ap->a_mode, ap->a_cred));
800 }
801
802 static int
803 kernfs_default_fileop_getattr(v)
804 void *v;
805 {
806 struct vop_getattr_args /* {
807 struct vnode *a_vp;
808 struct vattr *a_vap;
809 kauth_cred_t a_cred;
810 struct lwp *a_l;
811 } */ *ap = v;
812 struct vattr *vap = ap->a_vap;
813
814 vap->va_nlink = 1;
815 vap->va_bytes = vap->va_size = 0;
816
817 return 0;
818 }
819
820 int
821 kernfs_getattr(v)
822 void *v;
823 {
824 struct vop_getattr_args /* {
825 struct vnode *a_vp;
826 struct vattr *a_vap;
827 kauth_cred_t a_cred;
828 struct lwp *a_l;
829 } */ *ap = v;
830 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
831 struct kernfs_subdir *ks;
832 struct vattr *vap = ap->a_vap;
833 int error = 0;
834 char strbuf[KSTRING], *bf;
835 size_t nread, total;
836
837 VATTR_NULL(vap);
838 vap->va_type = ap->a_vp->v_type;
839 vap->va_uid = 0;
840 vap->va_gid = 0;
841 vap->va_mode = kfs->kfs_mode;
842 vap->va_fileid = kfs->kfs_fileno;
843 vap->va_flags = 0;
844 vap->va_size = 0;
845 vap->va_blocksize = DEV_BSIZE;
846 /* Make all times be current TOD, except for the "boottime" node. */
847 if (kfs->kfs_kt && kfs->kfs_kt->kt_namlen == 8 &&
848 !memcmp(kfs->kfs_kt->kt_name, "boottime", 8)) {
849 TIMEVAL_TO_TIMESPEC(&boottime, &vap->va_ctime);
850 } else {
851 getnanotime(&vap->va_ctime);
852 }
853 vap->va_atime = vap->va_mtime = vap->va_ctime;
854 vap->va_gen = 0;
855 vap->va_flags = 0;
856 vap->va_rdev = 0;
857 vap->va_bytes = 0;
858
859 switch (kfs->kfs_type) {
860 case KFSkern:
861 vap->va_nlink = nkern_dirs;
862 vap->va_bytes = vap->va_size = DEV_BSIZE;
863 break;
864
865 case KFSroot:
866 vap->va_nlink = 1;
867 vap->va_bytes = vap->va_size = DEV_BSIZE;
868 break;
869
870 case KFSsubdir:
871 ks = (struct kernfs_subdir *)kfs->kfs_kt->kt_data;
872 vap->va_nlink = ks->ks_dirs;
873 vap->va_bytes = vap->va_size = DEV_BSIZE;
874 break;
875
876 case KFSnull:
877 case KFStime:
878 case KFSint:
879 case KFSstring:
880 case KFShostname:
881 case KFSavenrun:
882 case KFSdevice:
883 case KFSmsgbuf:
884 #ifdef IPSEC
885 case KFSipsecsa:
886 case KFSipsecsp:
887 #endif
888 vap->va_nlink = 1;
889 total = 0;
890 do {
891 bf = strbuf;
892 error = kernfs_xread(kfs, total, &bf,
893 sizeof(strbuf), &nread);
894 total += nread;
895 } while (error == 0 && nread != 0);
896 vap->va_bytes = vap->va_size = total;
897 break;
898
899 #ifdef IPSEC
900 case KFSipsecsadir:
901 case KFSipsecspdir:
902 vap->va_nlink = 2;
903 vap->va_bytes = vap->va_size = DEV_BSIZE;
904 break;
905 #endif
906
907 default:
908 error = kernfs_try_fileop(kfs->kfs_type,
909 KERNFS_FILEOP_GETATTR, v, EINVAL);
910 break;
911 }
912
913 return (error);
914 }
915
916 /*ARGSUSED*/
917 int
918 kernfs_setattr(void *v)
919 {
920
921 /*
922 * Silently ignore attribute changes.
923 * This allows for open with truncate to have no
924 * effect until some data is written. I want to
925 * do it this way because all writes are atomic.
926 */
927 return (0);
928 }
929
930 int
931 kernfs_default_xread(v)
932 void *v;
933 {
934 struct vop_read_args /* {
935 struct vnode *a_vp;
936 struct uio *a_uio;
937 int a_ioflag;
938 kauth_cred_t a_cred;
939 } */ *ap = v;
940 struct uio *uio = ap->a_uio;
941 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
942 char strbuf[KSTRING], *bf;
943 int off;
944 size_t len;
945 int error;
946
947 if (ap->a_vp->v_type == VDIR)
948 return (EOPNOTSUPP);
949
950 off = (int)uio->uio_offset;
951 /* Don't allow negative offsets */
952 if (off < 0)
953 return EINVAL;
954
955 bf = strbuf;
956 if ((error = kernfs_xread(kfs, off, &bf, sizeof(strbuf), &len)) == 0)
957 error = uiomove(bf, len, uio);
958 return (error);
959 }
960
961 int
962 kernfs_read(v)
963 void *v;
964 {
965 struct vop_read_args /* {
966 struct vnode *a_vp;
967 struct uio *a_uio;
968 int a_ioflag;
969 struct ucred *a_cred;
970 } */ *ap = v;
971 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
972
973 if (kfs->kfs_type < KFSlasttype) {
974 /* use default function */
975 return kernfs_default_xread(v);
976 }
977 return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_READ, v,
978 EOPNOTSUPP);
979 }
980
981 static int
982 kernfs_default_xwrite(v)
983 void *v;
984 {
985 struct vop_write_args /* {
986 struct vnode *a_vp;
987 struct uio *a_uio;
988 int a_ioflag;
989 kauth_cred_t a_cred;
990 } */ *ap = v;
991 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
992 struct uio *uio = ap->a_uio;
993 int error;
994 size_t xlen;
995 char strbuf[KSTRING];
996
997 if (uio->uio_offset != 0)
998 return (EINVAL);
999
1000 xlen = min(uio->uio_resid, KSTRING-1);
1001 if ((error = uiomove(strbuf, xlen, uio)) != 0)
1002 return (error);
1003
1004 if (uio->uio_resid != 0)
1005 return (EIO);
1006
1007 strbuf[xlen] = '\0';
1008 xlen = strlen(strbuf);
1009 return (kernfs_xwrite(kfs, strbuf, xlen));
1010 }
1011
1012 int
1013 kernfs_write(v)
1014 void *v;
1015 {
1016 struct vop_write_args /* {
1017 struct vnode *a_vp;
1018 struct uio *a_uio;
1019 int a_ioflag;
1020 kauth_cred_t a_cred;
1021 } */ *ap = v;
1022 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
1023
1024 if (kfs->kfs_type < KFSlasttype) {
1025 /* use default function */
1026 return kernfs_default_xwrite(v);
1027 }
1028 return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_WRITE, v,
1029 EOPNOTSUPP);
1030 }
1031
1032 int
1033 kernfs_ioctl(v)
1034 void *v;
1035 {
1036 struct vop_ioctl_args /* {
1037 const struct vnodeop_desc *a_desc;
1038 struct vnode *a_vp;
1039 u_long a_command;
1040 void *a_data;
1041 int a_fflag;
1042 kauth_cred_t a_cred;
1043 struct lwp *a_l;
1044 } */ *ap = v;
1045 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
1046
1047 return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_IOCTL, v,
1048 EPASSTHROUGH);
1049 }
1050
1051 static int
1052 kernfs_setdirentfileno_kt(struct dirent *d, const struct kern_target *kt,
1053 u_int32_t value, struct vop_readdir_args *ap)
1054 {
1055 struct kernfs_node *kfs;
1056 struct vnode *vp;
1057 int error;
1058
1059 if ((error = kernfs_allocvp(ap->a_vp->v_mount, &vp, kt->kt_tag, kt,
1060 value)) != 0)
1061 return error;
1062 if (kt->kt_tag == KFSdevice) {
1063 struct vattr va;
1064
1065 error = VOP_GETATTR(vp, &va, ap->a_cred, curlwp);
1066 if (error != 0) {
1067 return error;
1068 }
1069 d->d_fileno = va.va_fileid;
1070 } else {
1071 kfs = VTOKERN(vp);
1072 d->d_fileno = kfs->kfs_fileno;
1073 }
1074 vput(vp);
1075 return 0;
1076 }
1077
1078 static int
1079 kernfs_setdirentfileno(struct dirent *d, off_t entry,
1080 struct kernfs_node *thisdir_kfs, const struct kern_target *parent_kt,
1081 const struct kern_target *kt, struct vop_readdir_args *ap)
1082 {
1083 const struct kern_target *ikt;
1084 int error;
1085
1086 switch (entry) {
1087 case 0:
1088 d->d_fileno = thisdir_kfs->kfs_fileno;
1089 return 0;
1090 case 1:
1091 ikt = parent_kt;
1092 break;
1093 default:
1094 ikt = kt;
1095 break;
1096 }
1097 if (ikt != thisdir_kfs->kfs_kt) {
1098 if ((error = kernfs_setdirentfileno_kt(d, ikt, 0, ap)) != 0)
1099 return error;
1100 } else
1101 d->d_fileno = thisdir_kfs->kfs_fileno;
1102 return 0;
1103 }
1104
1105 int
1106 kernfs_readdir(v)
1107 void *v;
1108 {
1109 struct vop_readdir_args /* {
1110 struct vnode *a_vp;
1111 struct uio *a_uio;
1112 kauth_cred_t a_cred;
1113 int *a_eofflag;
1114 off_t **a_cookies;
1115 int a_*ncookies;
1116 } */ *ap = v;
1117 struct uio *uio = ap->a_uio;
1118 struct dirent d;
1119 struct kernfs_node *kfs = VTOKERN(ap->a_vp);
1120 const struct kern_target *kt;
1121 const struct dyn_kern_target *dkt = NULL;
1122 const struct kernfs_subdir *ks;
1123 off_t i, j;
1124 int error;
1125 off_t *cookies = NULL;
1126 int ncookies = 0, n;
1127 #ifdef IPSEC
1128 struct secasvar *sav, *sav2;
1129 struct secpolicy *sp;
1130 #endif
1131
1132 if (uio->uio_resid < UIO_MX)
1133 return (EINVAL);
1134 if (uio->uio_offset < 0)
1135 return (EINVAL);
1136
1137 error = 0;
1138 i = uio->uio_offset;
1139 memset(&d, 0, sizeof(d));
1140 d.d_reclen = UIO_MX;
1141 ncookies = uio->uio_resid / UIO_MX;
1142
1143 switch (kfs->kfs_type) {
1144 case KFSkern:
1145 if (i >= nkern_targets)
1146 return (0);
1147
1148 if (ap->a_ncookies) {
1149 ncookies = min(ncookies, (nkern_targets - i));
1150 cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
1151 M_WAITOK);
1152 *ap->a_cookies = cookies;
1153 }
1154
1155 n = 0;
1156 for (; i < nkern_targets && uio->uio_resid >= UIO_MX; i++) {
1157 if (i < static_nkern_targets)
1158 kt = &kern_targets[i];
1159 else {
1160 if (dkt == NULL) {
1161 dkt = SIMPLEQ_FIRST(&dyn_kern_targets);
1162 for (j = static_nkern_targets; j < i &&
1163 dkt != NULL; j++)
1164 dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
1165 if (j != i)
1166 break;
1167 } else {
1168 dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
1169 }
1170 if (dkt == NULL)
1171 break;
1172 kt = &dkt->dkt_kt;
1173 }
1174 if (kt->kt_tag == KFSdevice) {
1175 dev_t *dp = kt->kt_data;
1176 struct vnode *fvp;
1177
1178 if (*dp == NODEV ||
1179 !vfinddev(*dp, kt->kt_vtype, &fvp))
1180 continue;
1181 }
1182 d.d_namlen = kt->kt_namlen;
1183 if ((error = kernfs_setdirentfileno(&d, i, kfs,
1184 &kern_targets[0], kt, ap)) != 0)
1185 break;
1186 memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
1187 d.d_type = kt->kt_type;
1188 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1189 break;
1190 if (cookies)
1191 *cookies++ = i + 1;
1192 n++;
1193 }
1194 ncookies = n;
1195 break;
1196
1197 case KFSroot:
1198 if (i >= 2)
1199 return 0;
1200
1201 if (ap->a_ncookies) {
1202 ncookies = min(ncookies, (2 - i));
1203 cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
1204 M_WAITOK);
1205 *ap->a_cookies = cookies;
1206 }
1207
1208 n = 0;
1209 for (; i < 2 && uio->uio_resid >= UIO_MX; i++) {
1210 kt = &kern_targets[i];
1211 d.d_namlen = kt->kt_namlen;
1212 d.d_fileno = KERNFS_FILENO(kt, kt->kt_tag, 0);
1213 memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
1214 d.d_type = kt->kt_type;
1215 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1216 break;
1217 if (cookies)
1218 *cookies++ = i + 1;
1219 n++;
1220 }
1221 ncookies = n;
1222 break;
1223
1224 case KFSsubdir:
1225 ks = (struct kernfs_subdir *)kfs->kfs_kt->kt_data;
1226 if (i >= ks->ks_nentries)
1227 return (0);
1228
1229 if (ap->a_ncookies) {
1230 ncookies = min(ncookies, (ks->ks_nentries - i));
1231 cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
1232 M_WAITOK);
1233 *ap->a_cookies = cookies;
1234 }
1235
1236 dkt = SIMPLEQ_FIRST(&ks->ks_entries);
1237 for (j = 0; j < i && dkt != NULL; j++)
1238 dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
1239 n = 0;
1240 for (; i < ks->ks_nentries && uio->uio_resid >= UIO_MX; i++) {
1241 if (i < 2)
1242 kt = &subdir_targets[i];
1243 else {
1244 /* check if ks_nentries lied to us */
1245 if (dkt == NULL)
1246 break;
1247 kt = &dkt->dkt_kt;
1248 dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
1249 }
1250 if (kt->kt_tag == KFSdevice) {
1251 dev_t *dp = kt->kt_data;
1252 struct vnode *fvp;
1253
1254 if (*dp == NODEV ||
1255 !vfinddev(*dp, kt->kt_vtype, &fvp))
1256 continue;
1257 }
1258 d.d_namlen = kt->kt_namlen;
1259 if ((error = kernfs_setdirentfileno(&d, i, kfs,
1260 ks->ks_parent, kt, ap)) != 0)
1261 break;
1262 memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
1263 d.d_type = kt->kt_type;
1264 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1265 break;
1266 if (cookies)
1267 *cookies++ = i + 1;
1268 n++;
1269 }
1270 ncookies = n;
1271 break;
1272
1273 #ifdef IPSEC
1274 case KFSipsecsadir:
1275 /* count SA in the system */
1276 n = 0;
1277 TAILQ_FOREACH(sav, &satailq, tailq) {
1278 for (sav2 = TAILQ_FIRST(&satailq);
1279 sav2 != sav;
1280 sav2 = TAILQ_NEXT(sav2, tailq)) {
1281 if (sav->spi == sav2->spi) {
1282 /* multiple SA with same SPI */
1283 break;
1284 }
1285 }
1286 if (sav == sav2 || sav->spi != sav2->spi)
1287 n++;
1288 }
1289
1290 if (i >= nipsecsa_targets + n)
1291 return (0);
1292
1293 if (ap->a_ncookies) {
1294 ncookies = min(ncookies, (n - i));
1295 cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
1296 M_WAITOK);
1297 *ap->a_cookies = cookies;
1298 }
1299
1300 n = 0;
1301 for (; i < nipsecsa_targets && uio->uio_resid >= UIO_MX; i++) {
1302 kt = &ipsecsa_targets[i];
1303 d.d_namlen = kt->kt_namlen;
1304 if ((error = kernfs_setdirentfileno(&d, i, kfs,
1305 &kern_targets[0], kt, ap)) != 0)
1306 break;
1307 memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
1308 d.d_type = kt->kt_type;
1309 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1310 break;
1311 if (cookies)
1312 *cookies++ = i + 1;
1313 n++;
1314 }
1315 if (error) {
1316 ncookies = n;
1317 break;
1318 }
1319
1320 TAILQ_FOREACH(sav, &satailq, tailq) {
1321 for (sav2 = TAILQ_FIRST(&satailq);
1322 sav2 != sav;
1323 sav2 = TAILQ_NEXT(sav2, tailq)) {
1324 if (sav->spi == sav2->spi) {
1325 /* multiple SA with same SPI */
1326 break;
1327 }
1328 }
1329 if (sav != sav2 && sav->spi == sav2->spi)
1330 continue;
1331 if (uio->uio_resid < UIO_MX)
1332 break;
1333 if ((error = kernfs_setdirentfileno_kt(&d, &ipsecsa_kt,
1334 sav->spi, ap)) != 0)
1335 break;
1336 d.d_namlen = snprintf(d.d_name, sizeof(d.d_name),
1337 "%u", ntohl(sav->spi));
1338 d.d_type = DT_REG;
1339 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1340 break;
1341 if (cookies)
1342 *cookies++ = i + 1;
1343 n++;
1344 i++;
1345 }
1346 ncookies = n;
1347 break;
1348
1349 case KFSipsecspdir:
1350 /* count SP in the system */
1351 n = 0;
1352 TAILQ_FOREACH(sp, &sptailq, tailq)
1353 n++;
1354
1355 if (i >= nipsecsp_targets + n)
1356 return (0);
1357
1358 if (ap->a_ncookies) {
1359 ncookies = min(ncookies, (n - i));
1360 cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
1361 M_WAITOK);
1362 *ap->a_cookies = cookies;
1363 }
1364
1365 n = 0;
1366 for (; i < nipsecsp_targets && uio->uio_resid >= UIO_MX; i++) {
1367 kt = &ipsecsp_targets[i];
1368 d.d_namlen = kt->kt_namlen;
1369 if ((error = kernfs_setdirentfileno(&d, i, kfs,
1370 &kern_targets[0], kt, ap)) != 0)
1371 break;
1372 memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
1373 d.d_type = kt->kt_type;
1374 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1375 break;
1376 if (cookies)
1377 *cookies++ = i + 1;
1378 n++;
1379 }
1380 if (error) {
1381 ncookies = n;
1382 break;
1383 }
1384
1385 TAILQ_FOREACH(sp, &sptailq, tailq) {
1386 if (uio->uio_resid < UIO_MX)
1387 break;
1388 if ((error = kernfs_setdirentfileno_kt(&d, &ipsecsp_kt,
1389 sp->id, ap)) != 0)
1390 break;
1391 d.d_namlen = snprintf(d.d_name, sizeof(d.d_name),
1392 "%u", sp->id);
1393 d.d_type = DT_REG;
1394 if ((error = uiomove(&d, UIO_MX, uio)) != 0)
1395 break;
1396 if (cookies)
1397 *cookies++ = i + 1;
1398 n++;
1399 i++;
1400 }
1401 ncookies = n;
1402 break;
1403 #endif
1404
1405 default:
1406 error = ENOTDIR;
1407 break;
1408 }
1409
1410 if (ap->a_ncookies) {
1411 if (error) {
1412 if (cookies)
1413 free(*ap->a_cookies, M_TEMP);
1414 *ap->a_ncookies = 0;
1415 *ap->a_cookies = NULL;
1416 } else
1417 *ap->a_ncookies = ncookies;
1418 }
1419
1420 uio->uio_offset = i;
1421 return (error);
1422 }
1423
1424 int
1425 kernfs_inactive(v)
1426 void *v;
1427 {
1428 struct vop_inactive_args /* {
1429 struct vnode *a_vp;
1430 struct lwp *a_l;
1431 } */ *ap = v;
1432 struct vnode *vp = ap->a_vp;
1433 const struct kernfs_node *kfs = VTOKERN(ap->a_vp);
1434 #ifdef IPSEC
1435 struct mbuf *m;
1436 struct secpolicy *sp;
1437 #endif
1438
1439 VOP_UNLOCK(vp, 0);
1440 switch (kfs->kfs_type) {
1441 #ifdef IPSEC
1442 case KFSipsecsa:
1443 m = key_setdumpsa_spi(htonl(kfs->kfs_value));
1444 if (m)
1445 m_freem(m);
1446 else
1447 vgone(vp);
1448 break;
1449 case KFSipsecsp:
1450 sp = key_getspbyid(kfs->kfs_value);
1451 if (sp)
1452 key_freesp(sp);
1453 else {
1454 /* should never happen as we hold a refcnt */
1455 vgone(vp);
1456 }
1457 break;
1458 #endif
1459 default:
1460 break;
1461 }
1462 return (0);
1463 }
1464
1465 int
1466 kernfs_reclaim(v)
1467 void *v;
1468 {
1469 struct vop_reclaim_args /* {
1470 struct vnode *a_vp;
1471 } */ *ap = v;
1472
1473 return (kernfs_freevp(ap->a_vp));
1474 }
1475
1476 /*
1477 * Return POSIX pathconf information applicable to special devices.
1478 */
1479 int
1480 kernfs_pathconf(v)
1481 void *v;
1482 {
1483 struct vop_pathconf_args /* {
1484 struct vnode *a_vp;
1485 int a_name;
1486 register_t *a_retval;
1487 } */ *ap = v;
1488
1489 switch (ap->a_name) {
1490 case _PC_LINK_MAX:
1491 *ap->a_retval = LINK_MAX;
1492 return (0);
1493 case _PC_MAX_CANON:
1494 *ap->a_retval = MAX_CANON;
1495 return (0);
1496 case _PC_MAX_INPUT:
1497 *ap->a_retval = MAX_INPUT;
1498 return (0);
1499 case _PC_PIPE_BUF:
1500 *ap->a_retval = PIPE_BUF;
1501 return (0);
1502 case _PC_CHOWN_RESTRICTED:
1503 *ap->a_retval = 1;
1504 return (0);
1505 case _PC_VDISABLE:
1506 *ap->a_retval = _POSIX_VDISABLE;
1507 return (0);
1508 case _PC_SYNC_IO:
1509 *ap->a_retval = 1;
1510 return (0);
1511 default:
1512 return (EINVAL);
1513 }
1514 /* NOTREACHED */
1515 }
1516
1517 /*
1518 * Print out the contents of a /dev/fd vnode.
1519 */
1520 /* ARGSUSED */
1521 int
1522 kernfs_print(void *v)
1523 {
1524
1525 printf("tag VT_KERNFS, kernfs vnode\n");
1526 return (0);
1527 }
1528
1529 int
1530 kernfs_link(v)
1531 void *v;
1532 {
1533 struct vop_link_args /* {
1534 struct vnode *a_dvp;
1535 struct vnode *a_vp;
1536 struct componentname *a_cnp;
1537 } */ *ap = v;
1538
1539 VOP_ABORTOP(ap->a_dvp, ap->a_cnp);
1540 vput(ap->a_dvp);
1541 return (EROFS);
1542 }
1543
1544 int
1545 kernfs_symlink(v)
1546 void *v;
1547 {
1548 struct vop_symlink_args /* {
1549 struct vnode *a_dvp;
1550 struct vnode **a_vpp;
1551 struct componentname *a_cnp;
1552 struct vattr *a_vap;
1553 char *a_target;
1554 } */ *ap = v;
1555
1556 VOP_ABORTOP(ap->a_dvp, ap->a_cnp);
1557 vput(ap->a_dvp);
1558 return (EROFS);
1559 }
1560