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kernfs_vnops.c revision 1.143.12.2
      1 /*	$NetBSD: kernfs_vnops.c,v 1.143.12.2 2012/04/05 21:33:42 mrg 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 1.143.12.2 2012/04/05 21:33:42 mrg Exp $");
     43 
     44 #include <sys/param.h>
     45 #include <sys/systm.h>
     46 #include <sys/kernel.h>
     47 #include <sys/vmmeter.h>
     48 #include <sys/time.h>
     49 #include <sys/proc.h>
     50 #include <sys/vnode.h>
     51 #include <sys/malloc.h>
     52 #include <sys/file.h>
     53 #include <sys/stat.h>
     54 #include <sys/mount.h>
     55 #include <sys/namei.h>
     56 #include <sys/buf.h>
     57 #include <sys/dirent.h>
     58 #include <sys/msgbuf.h>
     59 
     60 #include <miscfs/genfs/genfs.h>
     61 #include <miscfs/kernfs/kernfs.h>
     62 
     63 #include <uvm/uvm_extern.h>
     64 
     65 #define KSTRING	256		/* Largest I/O available via this filesystem */
     66 #define	UIO_MX 32
     67 
     68 #define	READ_MODE	(S_IRUSR|S_IRGRP|S_IROTH)
     69 #define	WRITE_MODE	(S_IWUSR|S_IRUSR|S_IRGRP|S_IROTH)
     70 #define	UREAD_MODE	(S_IRUSR)
     71 #define	DIR_MODE	(S_IRUSR|S_IXUSR|S_IRGRP|S_IXGRP|S_IROTH|S_IXOTH)
     72 #define	UDIR_MODE	(S_IRUSR|S_IXUSR)
     73 
     74 #define N(s) sizeof(s)-1, s
     75 const struct kern_target kern_targets[] = {
     76 /* NOTE: The name must be less than UIO_MX-16 chars in length */
     77      /*        name            data          tag           type  ro/rw */
     78      { DT_DIR, N("."),         0,            KFSkern,        VDIR, DIR_MODE   },
     79      { DT_DIR, N(".."),        0,            KFSroot,        VDIR, DIR_MODE   },
     80      { DT_REG, N("boottime"),  &boottime.tv_sec, KFSint,     VREG, READ_MODE  },
     81 			/* XXXUNCONST */
     82      { DT_REG, N("copyright"), __UNCONST(copyright),
     83      					     KFSstring,      VREG, READ_MODE  },
     84      { DT_REG, N("hostname"),  0,            KFShostname,    VREG, WRITE_MODE },
     85      { DT_REG, N("hz"),        &hz,          KFSint,         VREG, READ_MODE  },
     86      { DT_REG, N("loadavg"),   0,            KFSavenrun,     VREG, READ_MODE  },
     87      { DT_REG, N("msgbuf"),    0,	     KFSmsgbuf,      VREG, READ_MODE  },
     88      { DT_REG, N("pagesize"),  &uvmexp.pagesize, KFSint,     VREG, READ_MODE  },
     89      { DT_REG, N("physmem"),   &physmem,     KFSint,         VREG, READ_MODE  },
     90 #if 0
     91      { DT_DIR, N("root"),      0,            KFSnull,        VDIR, DIR_MODE   },
     92 #endif
     93      { DT_BLK, N("rootdev"),   &rootdev,     KFSdevice,      VBLK, READ_MODE  },
     94      { DT_CHR, N("rrootdev"),  &rrootdev,    KFSdevice,      VCHR, READ_MODE  },
     95      { DT_REG, N("time"),      0,            KFStime,        VREG, READ_MODE  },
     96 			/* XXXUNCONST */
     97      { DT_REG, N("version"),   __UNCONST(version),
     98      					     KFSstring,      VREG, READ_MODE  },
     99 };
    100 const struct kern_target subdir_targets[] = {
    101 /* NOTE: The name must be less than UIO_MX-16 chars in length */
    102      /*        name            data          tag           type  ro/rw */
    103      { DT_DIR, N("."),         0,            KFSsubdir,      VDIR, DIR_MODE   },
    104      { DT_DIR, N(".."),        0,            KFSkern,        VDIR, DIR_MODE   },
    105 };
    106 #undef N
    107 SIMPLEQ_HEAD(,dyn_kern_target) dyn_kern_targets =
    108 	SIMPLEQ_HEAD_INITIALIZER(dyn_kern_targets);
    109 int nkern_targets = sizeof(kern_targets) / sizeof(kern_targets[0]);
    110 const int static_nkern_targets = sizeof(kern_targets) / sizeof(kern_targets[0]);
    111 int nkern_dirs = 2;
    112 
    113 int kernfs_try_fileop(kfstype, kfsfileop, void *, int);
    114 int kernfs_try_xread(kfstype, const struct kernfs_node *, char **,
    115     size_t, int);
    116 int kernfs_try_xwrite(kfstype, const struct kernfs_node *, char *,
    117     size_t, int);
    118 
    119 static int kernfs_default_xread(void *v);
    120 static int kernfs_default_xwrite(void *v);
    121 static int kernfs_default_fileop_getattr(void *);
    122 
    123 /* must include all fileop's */
    124 const struct kernfs_fileop kernfs_default_fileops[] = {
    125   { .kf_fileop = KERNFS_XREAD },
    126   { .kf_fileop = KERNFS_XWRITE },
    127   { .kf_fileop = KERNFS_FILEOP_OPEN },
    128   { .kf_fileop = KERNFS_FILEOP_GETATTR,
    129     .kf_vop = kernfs_default_fileop_getattr },
    130   { .kf_fileop = KERNFS_FILEOP_IOCTL },
    131   { .kf_fileop = KERNFS_FILEOP_CLOSE },
    132   { .kf_fileop = KERNFS_FILEOP_READ,
    133     .kf_vop = kernfs_default_xread },
    134   { .kf_fileop = KERNFS_FILEOP_WRITE,
    135     .kf_vop = kernfs_default_xwrite },
    136 };
    137 
    138 int	kernfs_lookup(void *);
    139 #define	kernfs_create	genfs_eopnotsupp
    140 #define	kernfs_mknod	genfs_eopnotsupp
    141 int	kernfs_open(void *);
    142 int	kernfs_close(void *);
    143 int	kernfs_access(void *);
    144 int	kernfs_getattr(void *);
    145 int	kernfs_setattr(void *);
    146 int	kernfs_read(void *);
    147 int	kernfs_write(void *);
    148 #define	kernfs_fcntl	genfs_fcntl
    149 int	kernfs_ioctl(void *);
    150 #define	kernfs_poll	genfs_poll
    151 #define kernfs_revoke	genfs_revoke
    152 #define	kernfs_fsync	genfs_nullop
    153 #define	kernfs_seek	genfs_nullop
    154 #define	kernfs_remove	genfs_eopnotsupp
    155 int	kernfs_link(void *);
    156 #define	kernfs_rename	genfs_eopnotsupp
    157 #define	kernfs_mkdir	genfs_eopnotsupp
    158 #define	kernfs_rmdir	genfs_eopnotsupp
    159 int	kernfs_symlink(void *);
    160 int	kernfs_readdir(void *);
    161 #define	kernfs_readlink	genfs_eopnotsupp
    162 #define	kernfs_abortop	genfs_abortop
    163 int	kernfs_inactive(void *);
    164 int	kernfs_reclaim(void *);
    165 #define	kernfs_lock	genfs_lock
    166 #define	kernfs_unlock	genfs_unlock
    167 #define	kernfs_bmap	genfs_badop
    168 #define	kernfs_strategy	genfs_badop
    169 int	kernfs_print(void *);
    170 #define	kernfs_islocked	genfs_islocked
    171 int	kernfs_pathconf(void *);
    172 #define	kernfs_advlock	genfs_einval
    173 #define	kernfs_bwrite	genfs_eopnotsupp
    174 #define	kernfs_putpages	genfs_putpages
    175 
    176 static int	kernfs_xread(struct kernfs_node *, int, char **,
    177 				size_t, size_t *);
    178 static int	kernfs_xwrite(const struct kernfs_node *, char *, size_t);
    179 
    180 int (**kernfs_vnodeop_p)(void *);
    181 const struct vnodeopv_entry_desc kernfs_vnodeop_entries[] = {
    182 	{ &vop_default_desc, vn_default_error },
    183 	{ &vop_lookup_desc, kernfs_lookup },		/* lookup */
    184 	{ &vop_create_desc, kernfs_create },		/* create */
    185 	{ &vop_mknod_desc, kernfs_mknod },		/* mknod */
    186 	{ &vop_open_desc, kernfs_open },		/* open */
    187 	{ &vop_close_desc, kernfs_close },		/* close */
    188 	{ &vop_access_desc, kernfs_access },		/* access */
    189 	{ &vop_getattr_desc, kernfs_getattr },		/* getattr */
    190 	{ &vop_setattr_desc, kernfs_setattr },		/* setattr */
    191 	{ &vop_read_desc, kernfs_read },		/* read */
    192 	{ &vop_write_desc, kernfs_write },		/* write */
    193 	{ &vop_fcntl_desc, kernfs_fcntl },		/* fcntl */
    194 	{ &vop_ioctl_desc, kernfs_ioctl },		/* ioctl */
    195 	{ &vop_poll_desc, kernfs_poll },		/* poll */
    196 	{ &vop_revoke_desc, kernfs_revoke },		/* revoke */
    197 	{ &vop_fsync_desc, kernfs_fsync },		/* fsync */
    198 	{ &vop_seek_desc, kernfs_seek },		/* seek */
    199 	{ &vop_remove_desc, kernfs_remove },		/* remove */
    200 	{ &vop_link_desc, kernfs_link },		/* link */
    201 	{ &vop_rename_desc, kernfs_rename },		/* rename */
    202 	{ &vop_mkdir_desc, kernfs_mkdir },		/* mkdir */
    203 	{ &vop_rmdir_desc, kernfs_rmdir },		/* rmdir */
    204 	{ &vop_symlink_desc, kernfs_symlink },		/* symlink */
    205 	{ &vop_readdir_desc, kernfs_readdir },		/* readdir */
    206 	{ &vop_readlink_desc, kernfs_readlink },	/* readlink */
    207 	{ &vop_abortop_desc, kernfs_abortop },		/* abortop */
    208 	{ &vop_inactive_desc, kernfs_inactive },	/* inactive */
    209 	{ &vop_reclaim_desc, kernfs_reclaim },		/* reclaim */
    210 	{ &vop_lock_desc, kernfs_lock },		/* lock */
    211 	{ &vop_unlock_desc, kernfs_unlock },		/* unlock */
    212 	{ &vop_bmap_desc, kernfs_bmap },		/* bmap */
    213 	{ &vop_strategy_desc, kernfs_strategy },	/* strategy */
    214 	{ &vop_print_desc, kernfs_print },		/* print */
    215 	{ &vop_islocked_desc, kernfs_islocked },	/* islocked */
    216 	{ &vop_pathconf_desc, kernfs_pathconf },	/* pathconf */
    217 	{ &vop_advlock_desc, kernfs_advlock },		/* advlock */
    218 	{ &vop_bwrite_desc, kernfs_bwrite },		/* bwrite */
    219 	{ &vop_putpages_desc, kernfs_putpages },	/* putpages */
    220 	{ NULL, NULL }
    221 };
    222 const struct vnodeopv_desc kernfs_vnodeop_opv_desc =
    223 	{ &kernfs_vnodeop_p, kernfs_vnodeop_entries };
    224 
    225 static inline int
    226 kernfs_fileop_compare(struct kernfs_fileop *a, struct kernfs_fileop *b)
    227 {
    228 	if (a->kf_type < b->kf_type)
    229 		return -1;
    230 	if (a->kf_type > b->kf_type)
    231 		return 1;
    232 	if (a->kf_fileop < b->kf_fileop)
    233 		return -1;
    234 	if (a->kf_fileop > b->kf_fileop)
    235 		return 1;
    236 	return (0);
    237 }
    238 
    239 SPLAY_HEAD(kfsfileoptree, kernfs_fileop) kfsfileoptree =
    240 	SPLAY_INITIALIZER(kfsfileoptree);
    241 SPLAY_PROTOTYPE(kfsfileoptree, kernfs_fileop, kf_node, kernfs_fileop_compare);
    242 SPLAY_GENERATE(kfsfileoptree, kernfs_fileop, kf_node, kernfs_fileop_compare);
    243 
    244 kfstype
    245 kernfs_alloctype(int nkf, const struct kernfs_fileop *kf)
    246 {
    247 	static u_char nextfreetype = KFSlasttype;
    248 	struct kernfs_fileop *dkf, *fkf, skf;
    249 	int i;
    250 
    251 	/* XXX need to keep track of dkf's memory if we support
    252            deallocating types */
    253 	dkf = malloc(sizeof(kernfs_default_fileops), M_TEMP, M_WAITOK);
    254 	memcpy(dkf, kernfs_default_fileops, sizeof(kernfs_default_fileops));
    255 
    256 	for (i = 0; i < sizeof(kernfs_default_fileops) /
    257 		     sizeof(kernfs_default_fileops[0]); i++) {
    258 		dkf[i].kf_type = nextfreetype;
    259 		SPLAY_INSERT(kfsfileoptree, &kfsfileoptree, &dkf[i]);
    260 	}
    261 
    262 	for (i = 0; i < nkf; i++) {
    263 		skf.kf_type = nextfreetype;
    264 		skf.kf_fileop = kf[i].kf_fileop;
    265 		if ((fkf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
    266 			fkf->kf_vop = kf[i].kf_vop;
    267 	}
    268 
    269 	return nextfreetype++;
    270 }
    271 
    272 int
    273 kernfs_try_fileop(kfstype type, kfsfileop fileop, void *v, int error)
    274 {
    275 	struct kernfs_fileop *kf, skf;
    276 
    277 	skf.kf_type = type;
    278 	skf.kf_fileop = fileop;
    279 	if ((kf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
    280 		if (kf->kf_vop)
    281 			return kf->kf_vop(v);
    282 	return error;
    283 }
    284 
    285 int
    286 kernfs_try_xread(kfstype type, const struct kernfs_node *kfs, char **bfp,
    287     size_t len, int error)
    288 {
    289 	struct kernfs_fileop *kf, skf;
    290 
    291 	skf.kf_type = type;
    292 	skf.kf_fileop = KERNFS_XREAD;
    293 	if ((kf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
    294 		if (kf->kf_xread)
    295 			return kf->kf_xread(kfs, bfp, len);
    296 	return error;
    297 }
    298 
    299 int
    300 kernfs_try_xwrite(kfstype type, const struct kernfs_node *kfs, char *bf,
    301     size_t len, int error)
    302 {
    303 	struct kernfs_fileop *kf, skf;
    304 
    305 	skf.kf_type = type;
    306 	skf.kf_fileop = KERNFS_XWRITE;
    307 	if ((kf = SPLAY_FIND(kfsfileoptree, &kfsfileoptree, &skf)))
    308 		if (kf->kf_xwrite)
    309 			return kf->kf_xwrite(kfs, bf, len);
    310 	return error;
    311 }
    312 
    313 int
    314 kernfs_addentry(kernfs_parentdir_t *pkt, kernfs_entry_t *dkt)
    315 {
    316 	struct kernfs_subdir *ks, *parent;
    317 
    318 	if (pkt == NULL) {
    319 		SIMPLEQ_INSERT_TAIL(&dyn_kern_targets, dkt, dkt_queue);
    320 		nkern_targets++;
    321 		if (dkt->dkt_kt.kt_vtype == VDIR)
    322 			nkern_dirs++;
    323 	} else {
    324 		parent = (struct kernfs_subdir *)pkt->kt_data;
    325 		SIMPLEQ_INSERT_TAIL(&parent->ks_entries, dkt, dkt_queue);
    326 		parent->ks_nentries++;
    327 		if (dkt->dkt_kt.kt_vtype == VDIR)
    328 			parent->ks_dirs++;
    329 	}
    330 	if (dkt->dkt_kt.kt_vtype == VDIR && dkt->dkt_kt.kt_data == NULL) {
    331 		ks = malloc(sizeof(struct kernfs_subdir),
    332 		    M_TEMP, M_WAITOK);
    333 		SIMPLEQ_INIT(&ks->ks_entries);
    334 		ks->ks_nentries = 2; /* . and .. */
    335 		ks->ks_dirs = 2;
    336 		ks->ks_parent = pkt ? pkt : &kern_targets[0];
    337 		dkt->dkt_kt.kt_data = ks;
    338 	}
    339 	return 0;
    340 }
    341 
    342 static int
    343 kernfs_xread(struct kernfs_node *kfs, int off, char **bufp, size_t len, size_t *wrlen)
    344 {
    345 	const struct kern_target *kt;
    346 	int err;
    347 
    348 	kt = kfs->kfs_kt;
    349 
    350 	switch (kfs->kfs_type) {
    351 	case KFStime: {
    352 		struct timeval tv;
    353 
    354 		microtime(&tv);
    355 		snprintf(*bufp, len, "%lld %ld\n", (long long)tv.tv_sec,
    356 		    (long)tv.tv_usec);
    357 		break;
    358 	}
    359 
    360 	case KFSint: {
    361 		int *ip = kt->kt_data;
    362 
    363 		snprintf(*bufp, len, "%d\n", *ip);
    364 		break;
    365 	}
    366 
    367 	case KFSstring: {
    368 		char *cp = kt->kt_data;
    369 
    370 		*bufp = cp;
    371 		break;
    372 	}
    373 
    374 	case KFSmsgbuf: {
    375 		long n;
    376 
    377 		/*
    378 		 * deal with cases where the message buffer has
    379 		 * become corrupted.
    380 		 */
    381 		if (!msgbufenabled || msgbufp->msg_magic != MSG_MAGIC) {
    382 			msgbufenabled = 0;
    383 			return (ENXIO);
    384 		}
    385 
    386 		/*
    387 		 * Note that reads of /kern/msgbuf won't necessarily yield
    388 		 * consistent results, if the message buffer is modified
    389 		 * while the read is in progress.  The worst that can happen
    390 		 * is that incorrect data will be read.  There's no way
    391 		 * that this can crash the system unless the values in the
    392 		 * message buffer header are corrupted, but that'll cause
    393 		 * the system to die anyway.
    394 		 */
    395 		if (off >= msgbufp->msg_bufs) {
    396 			*wrlen = 0;
    397 			return (0);
    398 		}
    399 		n = msgbufp->msg_bufx + off;
    400 		if (n >= msgbufp->msg_bufs)
    401 			n -= msgbufp->msg_bufs;
    402 		len = min(msgbufp->msg_bufs - n, msgbufp->msg_bufs - off);
    403 		*bufp = msgbufp->msg_bufc + n;
    404 		*wrlen = len;
    405 		return (0);
    406 	}
    407 
    408 	case KFShostname: {
    409 		char *cp = hostname;
    410 		size_t xlen = hostnamelen;
    411 
    412 		if (xlen >= (len - 2))
    413 			return (EINVAL);
    414 
    415 		memcpy(*bufp, cp, xlen);
    416 		(*bufp)[xlen] = '\n';
    417 		(*bufp)[xlen+1] = '\0';
    418 		break;
    419 	}
    420 
    421 	case KFSavenrun:
    422 		averunnable.fscale = FSCALE;
    423 		snprintf(*bufp, len, "%d %d %d %ld\n",
    424 		    averunnable.ldavg[0], averunnable.ldavg[1],
    425 		    averunnable.ldavg[2], averunnable.fscale);
    426 		break;
    427 
    428 	default:
    429 		err = kernfs_try_xread(kfs->kfs_type, kfs, bufp, len,
    430 		    EOPNOTSUPP);
    431 		if (err)
    432 			return err;
    433 	}
    434 
    435 	len = strlen(*bufp);
    436 	if (len <= off)
    437 		*wrlen = 0;
    438 	else {
    439 		*bufp += off;
    440 		*wrlen = len - off;
    441 	}
    442 	return (0);
    443 }
    444 
    445 static int
    446 kernfs_xwrite(const struct kernfs_node *kfs, char *bf, size_t len)
    447 {
    448 
    449 	switch (kfs->kfs_type) {
    450 	case KFShostname:
    451 		if (bf[len-1] == '\n')
    452 			--len;
    453 		memcpy(hostname, bf, len);
    454 		hostname[len] = '\0';
    455 		hostnamelen = (size_t) len;
    456 		return (0);
    457 
    458 	default:
    459 		return kernfs_try_xwrite(kfs->kfs_type, kfs, bf, len, EIO);
    460 	}
    461 }
    462 
    463 
    464 /*
    465  * vp is the current namei directory
    466  * ndp is the name to locate in that directory...
    467  */
    468 int
    469 kernfs_lookup(void *v)
    470 {
    471 	struct vop_lookup_args /* {
    472 		struct vnode * a_dvp;
    473 		struct vnode ** a_vpp;
    474 		struct componentname * a_cnp;
    475 	} */ *ap = v;
    476 	struct componentname *cnp = ap->a_cnp;
    477 	struct vnode **vpp = ap->a_vpp;
    478 	struct vnode *dvp = ap->a_dvp;
    479 	const char *pname = cnp->cn_nameptr;
    480 	const struct kernfs_node *kfs;
    481 	const struct kern_target *kt;
    482 	const struct dyn_kern_target *dkt;
    483 	const struct kernfs_subdir *ks;
    484 	int error, i;
    485 
    486 	*vpp = NULLVP;
    487 
    488 	if (cnp->cn_nameiop == DELETE || cnp->cn_nameiop == RENAME)
    489 		return (EROFS);
    490 
    491 	if (cnp->cn_namelen == 1 && *pname == '.') {
    492 		*vpp = dvp;
    493 		vref(dvp);
    494 		return (0);
    495 	}
    496 
    497 	kfs = VTOKERN(dvp);
    498 	switch (kfs->kfs_type) {
    499 	case KFSkern:
    500 		/*
    501 		 * Shouldn't get here with .. in the root node.
    502 		 */
    503 		if (cnp->cn_flags & ISDOTDOT)
    504 			return (EIO);
    505 
    506 		for (i = 0; i < static_nkern_targets; i++) {
    507 			kt = &kern_targets[i];
    508 			if (cnp->cn_namelen == kt->kt_namlen &&
    509 			    memcmp(kt->kt_name, pname, cnp->cn_namelen) == 0)
    510 				goto found;
    511 		}
    512 		SIMPLEQ_FOREACH(dkt, &dyn_kern_targets, dkt_queue) {
    513 			if (cnp->cn_namelen == dkt->dkt_kt.kt_namlen &&
    514 			    memcmp(dkt->dkt_kt.kt_name, pname, cnp->cn_namelen) == 0) {
    515 				kt = &dkt->dkt_kt;
    516 				goto found;
    517 			}
    518 		}
    519 		break;
    520 
    521 	found:
    522 		error = kernfs_allocvp(dvp->v_mount, vpp, kt->kt_tag, kt, 0);
    523 		return (error);
    524 
    525 	case KFSsubdir:
    526 		ks = (struct kernfs_subdir *)kfs->kfs_kt->kt_data;
    527 		if (cnp->cn_flags & ISDOTDOT) {
    528 			kt = ks->ks_parent;
    529 			goto found;
    530 		}
    531 
    532 		SIMPLEQ_FOREACH(dkt, &ks->ks_entries, dkt_queue) {
    533 			if (cnp->cn_namelen == dkt->dkt_kt.kt_namlen &&
    534 			    memcmp(dkt->dkt_kt.kt_name, pname, cnp->cn_namelen) == 0) {
    535 				kt = &dkt->dkt_kt;
    536 				goto found;
    537 			}
    538 		}
    539 		break;
    540 
    541 	default:
    542 		return (ENOTDIR);
    543 	}
    544 
    545 	return (cnp->cn_nameiop == LOOKUP ? ENOENT : EROFS);
    546 }
    547 
    548 int
    549 kernfs_open(void *v)
    550 {
    551 	struct vop_open_args /* {
    552 		struct vnode *a_vp;
    553 		int a_mode;
    554 		kauth_cred_t a_cred;
    555 	} */ *ap = v;
    556 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    557 
    558 	return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_OPEN, v, 0);
    559 }
    560 
    561 int
    562 kernfs_close(void *v)
    563 {
    564 	struct vop_close_args /* {
    565 		struct vnode *a_vp;
    566 		int a_fflag;
    567 		kauth_cred_t a_cred;
    568 	} */ *ap = v;
    569 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    570 
    571 	return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_CLOSE, v, 0);
    572 }
    573 
    574 int
    575 kernfs_access(void *v)
    576 {
    577 	struct vop_access_args /* {
    578 		struct vnode *a_vp;
    579 		int a_mode;
    580 		kauth_cred_t a_cred;
    581 	} */ *ap = v;
    582 	struct vattr va;
    583 	int error;
    584 
    585 	if ((error = VOP_GETATTR(ap->a_vp, &va, ap->a_cred)) != 0)
    586 		return (error);
    587 
    588 	return kauth_authorize_vnode(ap->a_cred,
    589 	    kauth_access_action(ap->a_mode, ap->a_vp->v_type, va.va_mode),
    590 	    ap->a_vp, NULL, genfs_can_access(va.va_type, va.va_mode,
    591 	    va.va_uid, va.va_gid, ap->a_mode, ap->a_cred));
    592 }
    593 
    594 static int
    595 kernfs_default_fileop_getattr(void *v)
    596 {
    597 	struct vop_getattr_args /* {
    598 		struct vnode *a_vp;
    599 		struct vattr *a_vap;
    600 		kauth_cred_t a_cred;
    601 	} */ *ap = v;
    602 	struct vattr *vap = ap->a_vap;
    603 
    604 	vap->va_nlink = 1;
    605 	vap->va_bytes = vap->va_size = 0;
    606 
    607 	return 0;
    608 }
    609 
    610 int
    611 kernfs_getattr(void *v)
    612 {
    613 	struct vop_getattr_args /* {
    614 		struct vnode *a_vp;
    615 		struct vattr *a_vap;
    616 		kauth_cred_t a_cred;
    617 	} */ *ap = v;
    618 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    619 	struct kernfs_subdir *ks;
    620 	struct vattr *vap = ap->a_vap;
    621 	int error = 0;
    622 	char strbuf[KSTRING], *bf;
    623 	size_t nread, total;
    624 
    625 	vattr_null(vap);
    626 	vap->va_type = ap->a_vp->v_type;
    627 	vap->va_uid = 0;
    628 	vap->va_gid = 0;
    629 	vap->va_mode = kfs->kfs_mode;
    630 	vap->va_fileid = kfs->kfs_fileno;
    631 	vap->va_flags = 0;
    632 	vap->va_size = 0;
    633 	vap->va_blocksize = DEV_BSIZE;
    634 	/* Make all times be current TOD, except for the "boottime" node. */
    635 	if (kfs->kfs_kt->kt_namlen == 8 &&
    636 	    !memcmp(kfs->kfs_kt->kt_name, "boottime", 8)) {
    637 		vap->va_ctime = boottime;
    638 	} else {
    639 		getnanotime(&vap->va_ctime);
    640 	}
    641 	vap->va_atime = vap->va_mtime = vap->va_ctime;
    642 	vap->va_gen = 0;
    643 	vap->va_flags = 0;
    644 	vap->va_rdev = 0;
    645 	vap->va_bytes = 0;
    646 
    647 	switch (kfs->kfs_type) {
    648 	case KFSkern:
    649 		vap->va_nlink = nkern_dirs;
    650 		vap->va_bytes = vap->va_size = DEV_BSIZE;
    651 		break;
    652 
    653 	case KFSroot:
    654 		vap->va_nlink = 1;
    655 		vap->va_bytes = vap->va_size = DEV_BSIZE;
    656 		break;
    657 
    658 	case KFSsubdir:
    659 		ks = (struct kernfs_subdir *)kfs->kfs_kt->kt_data;
    660 		vap->va_nlink = ks->ks_dirs;
    661 		vap->va_bytes = vap->va_size = DEV_BSIZE;
    662 		break;
    663 
    664 	case KFSnull:
    665 	case KFStime:
    666 	case KFSint:
    667 	case KFSstring:
    668 	case KFShostname:
    669 	case KFSavenrun:
    670 	case KFSdevice:
    671 	case KFSmsgbuf:
    672 		vap->va_nlink = 1;
    673 		total = 0;
    674 		do {
    675 			bf = strbuf;
    676 			error = kernfs_xread(kfs, total, &bf,
    677 			    sizeof(strbuf), &nread);
    678 			total += nread;
    679 		} while (error == 0 && nread != 0);
    680 		vap->va_bytes = vap->va_size = total;
    681 		break;
    682 
    683 	default:
    684 		error = kernfs_try_fileop(kfs->kfs_type,
    685 		    KERNFS_FILEOP_GETATTR, v, EINVAL);
    686 		break;
    687 	}
    688 
    689 	return (error);
    690 }
    691 
    692 /*ARGSUSED*/
    693 int
    694 kernfs_setattr(void *v)
    695 {
    696 
    697 	/*
    698 	 * Silently ignore attribute changes.
    699 	 * This allows for open with truncate to have no
    700 	 * effect until some data is written.  I want to
    701 	 * do it this way because all writes are atomic.
    702 	 */
    703 	return (0);
    704 }
    705 
    706 int
    707 kernfs_default_xread(void *v)
    708 {
    709 	struct vop_read_args /* {
    710 		struct vnode *a_vp;
    711 		struct uio *a_uio;
    712 		int  a_ioflag;
    713 		kauth_cred_t a_cred;
    714 	} */ *ap = v;
    715 	struct uio *uio = ap->a_uio;
    716 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    717 	char strbuf[KSTRING], *bf;
    718 	int off;
    719 	size_t len;
    720 	int error;
    721 
    722 	if (ap->a_vp->v_type == VDIR)
    723 		return EISDIR;
    724 
    725 	off = (int)uio->uio_offset;
    726 	/* Don't allow negative offsets */
    727 	if (off < 0)
    728 		return EINVAL;
    729 
    730 	bf = strbuf;
    731 	if ((error = kernfs_xread(kfs, off, &bf, sizeof(strbuf), &len)) == 0)
    732 		error = uiomove(bf, len, uio);
    733 	return (error);
    734 }
    735 
    736 int
    737 kernfs_read(void *v)
    738 {
    739 	struct vop_read_args /* {
    740 		struct vnode *a_vp;
    741 		struct uio *a_uio;
    742 		int  a_ioflag;
    743 		struct ucred *a_cred;
    744 	} */ *ap = v;
    745 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    746 
    747 	if (kfs->kfs_type < KFSlasttype) {
    748 		/* use default function */
    749 		return kernfs_default_xread(v);
    750 	}
    751 	return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_READ, v,
    752 	   EOPNOTSUPP);
    753 }
    754 
    755 static int
    756 kernfs_default_xwrite(void *v)
    757 {
    758 	struct vop_write_args /* {
    759 		struct vnode *a_vp;
    760 		struct uio *a_uio;
    761 		int  a_ioflag;
    762 		kauth_cred_t a_cred;
    763 	} */ *ap = v;
    764 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    765 	struct uio *uio = ap->a_uio;
    766 	int error;
    767 	size_t xlen;
    768 	char strbuf[KSTRING];
    769 
    770 	if (uio->uio_offset != 0)
    771 		return (EINVAL);
    772 
    773 	xlen = min(uio->uio_resid, KSTRING-1);
    774 	if ((error = uiomove(strbuf, xlen, uio)) != 0)
    775 		return (error);
    776 
    777 	if (uio->uio_resid != 0)
    778 		return (EIO);
    779 
    780 	strbuf[xlen] = '\0';
    781 	xlen = strlen(strbuf);
    782 	return (kernfs_xwrite(kfs, strbuf, xlen));
    783 }
    784 
    785 int
    786 kernfs_write(void *v)
    787 {
    788 	struct vop_write_args /* {
    789 		struct vnode *a_vp;
    790 		struct uio *a_uio;
    791 		int  a_ioflag;
    792 		kauth_cred_t a_cred;
    793 	} */ *ap = v;
    794 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    795 
    796 	if (kfs->kfs_type < KFSlasttype) {
    797 		/* use default function */
    798 		return kernfs_default_xwrite(v);
    799 	}
    800 	return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_WRITE, v,
    801 	    EOPNOTSUPP);
    802 }
    803 
    804 int
    805 kernfs_ioctl(void *v)
    806 {
    807 	struct vop_ioctl_args /* {
    808 		const struct vnodeop_desc *a_desc;
    809 		struct vnode *a_vp;
    810 		u_long a_command;
    811 		void *a_data;
    812 		int a_fflag;
    813 		kauth_cred_t a_cred;
    814 	} */ *ap = v;
    815 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    816 
    817 	return kernfs_try_fileop(kfs->kfs_type, KERNFS_FILEOP_IOCTL, v,
    818 	    EPASSTHROUGH);
    819 }
    820 
    821 static int
    822 kernfs_setdirentfileno_kt(struct dirent *d, const struct kern_target *kt,
    823     u_int32_t value, struct vop_readdir_args *ap)
    824 {
    825 	struct kernfs_node *kfs;
    826 	struct vnode *vp;
    827 	int error;
    828 
    829 	if ((error = kernfs_allocvp(ap->a_vp->v_mount, &vp, kt->kt_tag, kt,
    830 	    value)) != 0)
    831 		return error;
    832 	if (kt->kt_tag == KFSdevice) {
    833 		struct vattr va;
    834 
    835 		error = VOP_GETATTR(vp, &va, ap->a_cred);
    836 		if (error != 0) {
    837 			return error;
    838 		}
    839 		d->d_fileno = va.va_fileid;
    840 	} else {
    841 		kfs = VTOKERN(vp);
    842 		d->d_fileno = kfs->kfs_fileno;
    843 	}
    844 	vput(vp);
    845 	return 0;
    846 }
    847 
    848 static int
    849 kernfs_setdirentfileno(struct dirent *d, off_t entry,
    850     struct kernfs_node *thisdir_kfs, const struct kern_target *parent_kt,
    851     const struct kern_target *kt, struct vop_readdir_args *ap)
    852 {
    853 	const struct kern_target *ikt;
    854 	int error;
    855 
    856 	switch (entry) {
    857 	case 0:
    858 		d->d_fileno = thisdir_kfs->kfs_fileno;
    859 		return 0;
    860 	case 1:
    861 		ikt = parent_kt;
    862 		break;
    863 	default:
    864 		ikt = kt;
    865 		break;
    866 	}
    867 	if (ikt != thisdir_kfs->kfs_kt) {
    868 		if ((error = kernfs_setdirentfileno_kt(d, ikt, 0, ap)) != 0)
    869 			return error;
    870 	} else
    871 		d->d_fileno = thisdir_kfs->kfs_fileno;
    872 	return 0;
    873 }
    874 
    875 int
    876 kernfs_readdir(void *v)
    877 {
    878 	struct vop_readdir_args /* {
    879 		struct vnode *a_vp;
    880 		struct uio *a_uio;
    881 		kauth_cred_t a_cred;
    882 		int *a_eofflag;
    883 		off_t **a_cookies;
    884 		int a_*ncookies;
    885 	} */ *ap = v;
    886 	struct uio *uio = ap->a_uio;
    887 	struct dirent d;
    888 	struct kernfs_node *kfs = VTOKERN(ap->a_vp);
    889 	const struct kern_target *kt;
    890 	const struct dyn_kern_target *dkt = NULL;
    891 	const struct kernfs_subdir *ks;
    892 	off_t i, j;
    893 	int error;
    894 	off_t *cookies = NULL;
    895 	int ncookies = 0, n;
    896 
    897 	if (uio->uio_resid < UIO_MX)
    898 		return (EINVAL);
    899 	if (uio->uio_offset < 0)
    900 		return (EINVAL);
    901 
    902 	error = 0;
    903 	i = uio->uio_offset;
    904 	memset(&d, 0, sizeof(d));
    905 	d.d_reclen = UIO_MX;
    906 	ncookies = uio->uio_resid / UIO_MX;
    907 
    908 	switch (kfs->kfs_type) {
    909 	case KFSkern:
    910 		if (i >= nkern_targets)
    911 			return (0);
    912 
    913 		if (ap->a_ncookies) {
    914 			ncookies = min(ncookies, (nkern_targets - i));
    915 			cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
    916 			    M_WAITOK);
    917 			*ap->a_cookies = cookies;
    918 		}
    919 
    920 		n = 0;
    921 		for (; i < nkern_targets && uio->uio_resid >= UIO_MX; i++) {
    922 			if (i < static_nkern_targets)
    923 				kt = &kern_targets[i];
    924 			else {
    925 				if (dkt == NULL) {
    926 					dkt = SIMPLEQ_FIRST(&dyn_kern_targets);
    927 					for (j = static_nkern_targets; j < i &&
    928 						     dkt != NULL; j++)
    929 						dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
    930 					if (j != i)
    931 						break;
    932 				} else {
    933 					dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
    934 				}
    935 				if (dkt == NULL)
    936 					break;
    937 				kt = &dkt->dkt_kt;
    938 			}
    939 			if (kt->kt_tag == KFSdevice) {
    940 				dev_t *dp = kt->kt_data;
    941 				struct vnode *fvp;
    942 
    943 				if (*dp == NODEV ||
    944 				    !vfinddev(*dp, kt->kt_vtype, &fvp))
    945 					continue;
    946 				vrele(fvp);
    947 			}
    948 			if (kt->kt_tag == KFSmsgbuf) {
    949 				if (!msgbufenabled
    950 				    || msgbufp->msg_magic != MSG_MAGIC) {
    951 					continue;
    952 				}
    953 			}
    954 			d.d_namlen = kt->kt_namlen;
    955 			if ((error = kernfs_setdirentfileno(&d, i, kfs,
    956 			    &kern_targets[0], kt, ap)) != 0)
    957 				break;
    958 			memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
    959 			d.d_type = kt->kt_type;
    960 			if ((error = uiomove(&d, UIO_MX, uio)) != 0)
    961 				break;
    962 			if (cookies)
    963 				*cookies++ = i + 1;
    964 			n++;
    965 		}
    966 		ncookies = n;
    967 		break;
    968 
    969 	case KFSroot:
    970 		if (i >= 2)
    971 			return 0;
    972 
    973 		if (ap->a_ncookies) {
    974 			ncookies = min(ncookies, (2 - i));
    975 			cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
    976 			    M_WAITOK);
    977 			*ap->a_cookies = cookies;
    978 		}
    979 
    980 		n = 0;
    981 		for (; i < 2 && uio->uio_resid >= UIO_MX; i++) {
    982 			kt = &kern_targets[i];
    983 			d.d_namlen = kt->kt_namlen;
    984 			d.d_fileno = KERNFS_FILENO(kt, kt->kt_tag, 0);
    985 			memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
    986 			d.d_type = kt->kt_type;
    987 			if ((error = uiomove(&d, UIO_MX, uio)) != 0)
    988 				break;
    989 			if (cookies)
    990 				*cookies++ = i + 1;
    991 			n++;
    992 		}
    993 		ncookies = n;
    994 		break;
    995 
    996 	case KFSsubdir:
    997 		ks = (struct kernfs_subdir *)kfs->kfs_kt->kt_data;
    998 		if (i >= ks->ks_nentries)
    999 			return (0);
   1000 
   1001 		if (ap->a_ncookies) {
   1002 			ncookies = min(ncookies, (ks->ks_nentries - i));
   1003 			cookies = malloc(ncookies * sizeof(off_t), M_TEMP,
   1004 			    M_WAITOK);
   1005 			*ap->a_cookies = cookies;
   1006 		}
   1007 
   1008 		dkt = SIMPLEQ_FIRST(&ks->ks_entries);
   1009 		for (j = 0; j < i && dkt != NULL; j++)
   1010 			dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
   1011 		n = 0;
   1012 		for (; i < ks->ks_nentries && uio->uio_resid >= UIO_MX; i++) {
   1013 			if (i < 2)
   1014 				kt = &subdir_targets[i];
   1015 			else {
   1016 				/* check if ks_nentries lied to us */
   1017 				if (dkt == NULL)
   1018 					break;
   1019 				kt = &dkt->dkt_kt;
   1020 				dkt = SIMPLEQ_NEXT(dkt, dkt_queue);
   1021 			}
   1022 			if (kt->kt_tag == KFSdevice) {
   1023 				dev_t *dp = kt->kt_data;
   1024 				struct vnode *fvp;
   1025 
   1026 				if (*dp == NODEV ||
   1027 				    !vfinddev(*dp, kt->kt_vtype, &fvp))
   1028 					continue;
   1029 				vrele(fvp);
   1030 			}
   1031 			d.d_namlen = kt->kt_namlen;
   1032 			if ((error = kernfs_setdirentfileno(&d, i, kfs,
   1033 			    ks->ks_parent, kt, ap)) != 0)
   1034 				break;
   1035 			memcpy(d.d_name, kt->kt_name, kt->kt_namlen + 1);
   1036 			d.d_type = kt->kt_type;
   1037 			if ((error = uiomove(&d, UIO_MX, uio)) != 0)
   1038 				break;
   1039 			if (cookies)
   1040 				*cookies++ = i + 1;
   1041 			n++;
   1042 		}
   1043 		ncookies = n;
   1044 		break;
   1045 
   1046 	default:
   1047 		error = ENOTDIR;
   1048 		break;
   1049 	}
   1050 
   1051 	if (ap->a_ncookies) {
   1052 		if (error) {
   1053 			if (cookies)
   1054 				free(*ap->a_cookies, M_TEMP);
   1055 			*ap->a_ncookies = 0;
   1056 			*ap->a_cookies = NULL;
   1057 		} else
   1058 			*ap->a_ncookies = ncookies;
   1059 	}
   1060 
   1061 	uio->uio_offset = i;
   1062 	return (error);
   1063 }
   1064 
   1065 int
   1066 kernfs_inactive(void *v)
   1067 {
   1068 	struct vop_inactive_args /* {
   1069 		struct vnode *a_vp;
   1070 		bool *a_recycle;
   1071 	} */ *ap = v;
   1072 	struct vnode *vp = ap->a_vp;
   1073 
   1074 	*ap->a_recycle = false;
   1075 	VOP_UNLOCK(vp);
   1076 	return (0);
   1077 }
   1078 
   1079 int
   1080 kernfs_reclaim(void *v)
   1081 {
   1082 	struct vop_reclaim_args /* {
   1083 		struct vnode *a_vp;
   1084 	} */ *ap = v;
   1085 
   1086 	return (kernfs_freevp(ap->a_vp));
   1087 }
   1088 
   1089 /*
   1090  * Return POSIX pathconf information applicable to special devices.
   1091  */
   1092 int
   1093 kernfs_pathconf(void *v)
   1094 {
   1095 	struct vop_pathconf_args /* {
   1096 		struct vnode *a_vp;
   1097 		int a_name;
   1098 		register_t *a_retval;
   1099 	} */ *ap = v;
   1100 
   1101 	switch (ap->a_name) {
   1102 	case _PC_LINK_MAX:
   1103 		*ap->a_retval = LINK_MAX;
   1104 		return (0);
   1105 	case _PC_MAX_CANON:
   1106 		*ap->a_retval = MAX_CANON;
   1107 		return (0);
   1108 	case _PC_MAX_INPUT:
   1109 		*ap->a_retval = MAX_INPUT;
   1110 		return (0);
   1111 	case _PC_PIPE_BUF:
   1112 		*ap->a_retval = PIPE_BUF;
   1113 		return (0);
   1114 	case _PC_CHOWN_RESTRICTED:
   1115 		*ap->a_retval = 1;
   1116 		return (0);
   1117 	case _PC_VDISABLE:
   1118 		*ap->a_retval = _POSIX_VDISABLE;
   1119 		return (0);
   1120 	case _PC_SYNC_IO:
   1121 		*ap->a_retval = 1;
   1122 		return (0);
   1123 	default:
   1124 		return (EINVAL);
   1125 	}
   1126 	/* NOTREACHED */
   1127 }
   1128 
   1129 /*
   1130  * Print out the contents of a /dev/fd vnode.
   1131  */
   1132 /* ARGSUSED */
   1133 int
   1134 kernfs_print(void *v)
   1135 {
   1136 
   1137 	printf("tag VT_KERNFS, kernfs vnode\n");
   1138 	return (0);
   1139 }
   1140 
   1141 int
   1142 kernfs_link(void *v)
   1143 {
   1144 	struct vop_link_args /* {
   1145 		struct vnode *a_dvp;
   1146 		struct vnode *a_vp;
   1147 		struct componentname *a_cnp;
   1148 	} */ *ap = v;
   1149 
   1150 	VOP_ABORTOP(ap->a_dvp, ap->a_cnp);
   1151 	vput(ap->a_dvp);
   1152 	return (EROFS);
   1153 }
   1154 
   1155 int
   1156 kernfs_symlink(void *v)
   1157 {
   1158 	struct vop_symlink_args /* {
   1159 		struct vnode *a_dvp;
   1160 		struct vnode **a_vpp;
   1161 		struct componentname *a_cnp;
   1162 		struct vattr *a_vap;
   1163 		char *a_target;
   1164 	} */ *ap = v;
   1165 
   1166 	VOP_ABORTOP(ap->a_dvp, ap->a_cnp);
   1167 	vput(ap->a_dvp);
   1168 	return (EROFS);
   1169 }
   1170