2 * Copyright (c) 2000-2016 Apple Inc. All rights reserved.
4 * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
6 * This file contains Original Code and/or Modifications of Original Code
7 * as defined in and that are subject to the Apple Public Source License
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28 /* Copyright (c) 1995 NeXT Computer, Inc. All Rights Reserved */
30 * Copyright (c) 1989, 1993
31 * The Regents of the University of California. All rights reserved.
33 * This code is derived from software contributed to Berkeley by
34 * Rick Macklem at The University of Guelph.
36 * Redistribution and use in source and binary forms, with or without
37 * modification, are permitted provided that the following conditions
39 * 1. Redistributions of source code must retain the above copyright
40 * notice, this list of conditions and the following disclaimer.
41 * 2. Redistributions in binary form must reproduce the above copyright
42 * notice, this list of conditions and the following disclaimer in the
43 * documentation and/or other materials provided with the distribution.
44 * 3. All advertising materials mentioning features or use of this software
45 * must display the following acknowledgement:
46 * This product includes software developed by the University of
47 * California, Berkeley and its contributors.
48 * 4. Neither the name of the University nor the names of its contributors
49 * may be used to endorse or promote products derived from this software
50 * without specific prior written permission.
52 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
53 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
54 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
55 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
56 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
57 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
58 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
59 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
60 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
61 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64 * @(#)nfs_subs.c 8.8 (Berkeley) 5/22/95
65 * FreeBSD-Id: nfs_subs.c,v 1.47 1997/11/07 08:53:24 phk Exp $
69 * These functions support the macros and help fiddle mbuf chains for
70 * the nfs op functions. They do things like create the rpc header and
71 * copy data between mbuf chains and uio lists.
73 #include <sys/param.h>
75 #include <sys/kauth.h>
76 #include <sys/systm.h>
77 #include <sys/kernel.h>
78 #include <sys/mount_internal.h>
79 #include <sys/vnode_internal.h>
80 #include <sys/kpi_mbuf.h>
81 #include <sys/socket.h>
83 #include <sys/malloc.h>
84 #include <sys/syscall.h>
85 #include <sys/ubc_internal.h>
86 #include <sys/fcntl.h>
88 #include <sys/domain.h>
89 #include <libkern/OSAtomic.h>
90 #include <kern/thread_call.h>
93 #include <sys/vmparam.h>
96 #include <kern/clock.h>
98 #include <nfs/rpcv2.h>
99 #include <nfs/nfsproto.h>
101 #include <nfs/nfsnode.h>
103 #define _NFS_XDR_SUBS_FUNCS_ /* define this to get xdrbuf function definitions */
105 #include <nfs/xdr_subs.h>
106 #include <nfs/nfsm_subs.h>
107 #include <nfs/nfs_gss.h>
108 #include <nfs/nfsmount.h>
109 #include <nfs/nfs_lock.h>
111 #include <miscfs/specfs/specdev.h>
113 #include <netinet/in.h>
114 #include <net/kpi_interface.h>
116 #include <sys/utfconv.h>
121 struct nfsstats
__attribute__((aligned(8))) nfsstats
;
122 size_t nfs_mbuf_mhlen
= 0, nfs_mbuf_minclsize
= 0;
125 * functions to convert between NFS and VFS types
128 vtonfs_type(enum vtype vtype
, int nfsvers
)
144 if (nfsvers
> NFS_VER2
) {
148 if (nfsvers
> NFS_VER2
) {
160 nfstov_type(nfstype nvtype
, int nfsvers
)
176 if (nfsvers
> NFS_VER2
) {
180 if (nfsvers
> NFS_VER2
) {
184 if (nfsvers
> NFS_VER3
) {
188 if (nfsvers
> NFS_VER3
) {
197 vtonfsv2_mode(enum vtype vtype
, mode_t m
)
207 return vnode_makeimode(vtype
, m
);
209 return vnode_makeimode(VCHR
, m
);
214 return vnode_makeimode(VNON
, m
);
221 * Mapping of old NFS Version 2 RPC numbers to generic numbers.
223 int nfsv3_procid
[NFS_NPROCS
] = {
249 #endif /* NFSSERVER */
252 * and the reverse mapping from generic to Version 2 procedure numbers
254 int nfsv2_procid
[NFS_NPROCS
] = {
282 * initialize NFS's cache of mbuf constants
290 nfs_mbuf_mhlen
= ms
.mhlen
;
291 nfs_mbuf_minclsize
= ms
.minclsize
;
297 * allocate a list of mbufs to hold the given amount of data
300 nfsm_mbuf_get_list(size_t size
, mbuf_t
*mp
, int *mbcnt
)
303 mbuf_t mhead
, mlast
, m
;
307 mhead
= mlast
= NULL
;
311 nfsm_mbuf_get(error
, &m
, (size
- len
));
318 if (mlast
&& ((error
= mbuf_setnext(mlast
, m
)))) {
322 mlen
= mbuf_maxlen(m
);
323 if ((len
+ mlen
) > size
) {
326 mbuf_setlen(m
, mlen
);
339 #endif /* NFSSERVER */
342 * nfsm_chain_new_mbuf()
344 * Add a new mbuf to the given chain.
347 nfsm_chain_new_mbuf(struct nfsm_chain
*nmc
, size_t sizehint
)
352 if (nmc
->nmc_flags
& NFSM_CHAIN_FLAG_ADD_CLUSTERS
) {
353 sizehint
= nfs_mbuf_minclsize
;
356 /* allocate a new mbuf */
357 nfsm_mbuf_get(error
, &mb
, sizehint
);
362 panic("got NULL mbuf?");
365 /* do we have a current mbuf? */
367 /* first cap off current mbuf */
368 mbuf_setlen(nmc
->nmc_mcur
, nmc
->nmc_ptr
- (caddr_t
)mbuf_data(nmc
->nmc_mcur
));
369 /* then append the new mbuf */
370 error
= mbuf_setnext(nmc
->nmc_mcur
, mb
);
377 /* set up for using the new mbuf */
379 nmc
->nmc_ptr
= mbuf_data(mb
);
380 nmc
->nmc_left
= mbuf_trailingspace(mb
);
386 * nfsm_chain_add_opaque_f()
388 * Add "len" bytes of opaque data pointed to by "buf" to the given chain.
391 nfsm_chain_add_opaque_f(struct nfsm_chain
*nmc
, const u_char
*buf
, uint32_t len
)
393 uint32_t paddedlen
, tlen
;
396 paddedlen
= nfsm_rndup(len
);
399 if (!nmc
->nmc_left
) {
400 error
= nfsm_chain_new_mbuf(nmc
, paddedlen
);
405 tlen
= MIN(nmc
->nmc_left
, paddedlen
);
411 bcopy(buf
, nmc
->nmc_ptr
, tlen
);
413 bzero(nmc
->nmc_ptr
, tlen
);
415 nmc
->nmc_ptr
+= tlen
;
416 nmc
->nmc_left
-= tlen
;
428 * nfsm_chain_add_opaque_nopad_f()
430 * Add "len" bytes of opaque data pointed to by "buf" to the given chain.
434 nfsm_chain_add_opaque_nopad_f(struct nfsm_chain
*nmc
, const u_char
*buf
, uint32_t len
)
440 if (nmc
->nmc_left
<= 0) {
441 error
= nfsm_chain_new_mbuf(nmc
, len
);
446 tlen
= MIN(nmc
->nmc_left
, len
);
447 bcopy(buf
, nmc
->nmc_ptr
, tlen
);
448 nmc
->nmc_ptr
+= tlen
;
449 nmc
->nmc_left
-= tlen
;
457 * nfsm_chain_add_uio()
459 * Add "len" bytes of data from "uio" to the given chain.
462 nfsm_chain_add_uio(struct nfsm_chain
*nmc
, uio_t uio
, uint32_t len
)
464 uint32_t paddedlen
, tlen
;
467 paddedlen
= nfsm_rndup(len
);
470 if (!nmc
->nmc_left
) {
471 error
= nfsm_chain_new_mbuf(nmc
, paddedlen
);
476 tlen
= MIN(nmc
->nmc_left
, paddedlen
);
482 uiomove(nmc
->nmc_ptr
, tlen
, uio
);
484 bzero(nmc
->nmc_ptr
, tlen
);
486 nmc
->nmc_ptr
+= tlen
;
487 nmc
->nmc_left
-= tlen
;
498 * Find the length of the NFS mbuf chain
499 * up to the current encoding/decoding offset.
502 nfsm_chain_offset(struct nfsm_chain
*nmc
)
507 for (mb
= nmc
->nmc_mhead
; mb
; mb
= mbuf_next(mb
)) {
508 if (mb
== nmc
->nmc_mcur
) {
509 return len
+ (nmc
->nmc_ptr
- (caddr_t
) mbuf_data(mb
));
518 * nfsm_chain_advance()
520 * Advance an nfsm_chain by "len" bytes.
523 nfsm_chain_advance(struct nfsm_chain
*nmc
, uint32_t len
)
528 if (nmc
->nmc_left
>= len
) {
529 nmc
->nmc_left
-= len
;
533 len
-= nmc
->nmc_left
;
534 nmc
->nmc_mcur
= mb
= mbuf_next(nmc
->nmc_mcur
);
538 nmc
->nmc_ptr
= mbuf_data(mb
);
539 nmc
->nmc_left
= mbuf_len(mb
);
546 * nfsm_chain_reverse()
548 * Reverse decode offset in an nfsm_chain by "len" bytes.
551 nfsm_chain_reverse(struct nfsm_chain
*nmc
, uint32_t len
)
553 uint32_t mlen
, new_offset
;
556 mlen
= nmc
->nmc_ptr
- (caddr_t
) mbuf_data(nmc
->nmc_mcur
);
559 nmc
->nmc_left
+= len
;
563 new_offset
= nfsm_chain_offset(nmc
) - len
;
564 nfsm_chain_dissect_init(error
, nmc
, nmc
->nmc_mhead
);
569 return nfsm_chain_advance(nmc
, new_offset
);
573 * nfsm_chain_get_opaque_pointer_f()
575 * Return a pointer to the next "len" bytes of contiguous data in
576 * the mbuf chain. If the next "len" bytes are not contiguous, we
577 * try to manipulate the mbuf chain so that it is.
579 * The nfsm_chain is advanced by nfsm_rndup("len") bytes.
582 nfsm_chain_get_opaque_pointer_f(struct nfsm_chain
*nmc
, uint32_t len
, u_char
**pptr
)
585 uint32_t left
, need
, mblen
, cplen
, padlen
;
589 /* move to next mbuf with data */
590 while (nmc
->nmc_mcur
&& (nmc
->nmc_left
== 0)) {
591 mb
= mbuf_next(nmc
->nmc_mcur
);
596 nmc
->nmc_ptr
= mbuf_data(mb
);
597 nmc
->nmc_left
= mbuf_len(mb
);
599 /* check if we've run out of data */
600 if (!nmc
->nmc_mcur
) {
604 /* do we already have a contiguous buffer? */
605 if (nmc
->nmc_left
>= len
) {
606 /* the returned pointer will be the current pointer */
607 *pptr
= (u_char
*)nmc
->nmc_ptr
;
608 error
= nfsm_chain_advance(nmc
, nfsm_rndup(len
));
612 padlen
= nfsm_rndup(len
) - len
;
614 /* we need (len - left) more bytes */
615 mbcur
= nmc
->nmc_mcur
;
616 left
= nmc
->nmc_left
;
619 if (need
> mbuf_trailingspace(mbcur
)) {
621 * The needed bytes won't fit in the current mbuf so we'll
622 * allocate a new mbuf to hold the contiguous range of data.
624 nfsm_mbuf_get(error
, &mb
, len
);
628 /* double check that this mbuf can hold all the data */
629 if (mbuf_maxlen(mb
) < len
) {
634 /* the returned pointer will be the new mbuf's data pointer */
635 *pptr
= ptr
= mbuf_data(mb
);
637 /* copy "left" bytes to the new mbuf */
638 bcopy(nmc
->nmc_ptr
, ptr
, left
);
640 mbuf_setlen(mb
, left
);
642 /* insert the new mbuf between the current and next mbufs */
643 error
= mbuf_setnext(mb
, mbuf_next(mbcur
));
645 error
= mbuf_setnext(mbcur
, mb
);
652 /* reduce current mbuf's length by "left" */
653 mbuf_setlen(mbcur
, mbuf_len(mbcur
) - left
);
656 * update nmc's state to point at the end of the mbuf
657 * where the needed data will be copied to.
659 nmc
->nmc_mcur
= mbcur
= mb
;
661 nmc
->nmc_ptr
= (caddr_t
)ptr
;
663 /* The rest of the data will fit in this mbuf. */
665 /* the returned pointer will be the current pointer */
666 *pptr
= (u_char
*)nmc
->nmc_ptr
;
669 * update nmc's state to point at the end of the mbuf
670 * where the needed data will be copied to.
672 nmc
->nmc_ptr
+= left
;
677 * move the next "need" bytes into the current
678 * mbuf from the mbufs that follow
681 /* extend current mbuf length */
682 mbuf_setlen(mbcur
, mbuf_len(mbcur
) + need
);
684 /* mb follows mbufs we're copying/compacting data from */
685 mb
= mbuf_next(mbcur
);
688 /* copy as much as we need/can */
690 mblen
= mbuf_len(mb
);
691 cplen
= MIN(mblen
, need
);
693 bcopy(ptr
, nmc
->nmc_ptr
, cplen
);
695 * update the mbuf's pointer and length to reflect that
696 * the data was shifted to an earlier mbuf in the chain
698 error
= mbuf_setdata(mb
, ptr
+ cplen
, mblen
- cplen
);
700 mbuf_setlen(mbcur
, mbuf_len(mbcur
) - need
);
703 /* update pointer/need */
704 nmc
->nmc_ptr
+= cplen
;
707 /* if more needed, go to next mbuf */
713 /* did we run out of data in the mbuf chain? */
715 mbuf_setlen(mbcur
, mbuf_len(mbcur
) - need
);
720 * update nmc's state to point after this contiguous data
722 * "mb" points to the last mbuf we copied data from so we
723 * just set nmc to point at whatever remains in that mbuf.
726 nmc
->nmc_ptr
= mbuf_data(mb
);
727 nmc
->nmc_left
= mbuf_len(mb
);
729 /* move past any padding */
731 error
= nfsm_chain_advance(nmc
, padlen
);
738 * nfsm_chain_get_opaque_f()
740 * Read the next "len" bytes in the chain into "buf".
741 * The nfsm_chain is advanced by nfsm_rndup("len") bytes.
744 nfsm_chain_get_opaque_f(struct nfsm_chain
*nmc
, uint32_t len
, u_char
*buf
)
746 uint32_t cplen
, padlen
;
749 padlen
= nfsm_rndup(len
) - len
;
751 /* loop through mbufs copying all the data we need */
752 while (len
&& nmc
->nmc_mcur
) {
753 /* copy as much as we need/can */
754 cplen
= MIN(nmc
->nmc_left
, len
);
756 bcopy(nmc
->nmc_ptr
, buf
, cplen
);
757 nmc
->nmc_ptr
+= cplen
;
758 nmc
->nmc_left
-= cplen
;
762 /* if more needed, go to next mbuf */
764 mbuf_t mb
= mbuf_next(nmc
->nmc_mcur
);
766 nmc
->nmc_ptr
= mb
? mbuf_data(mb
) : NULL
;
767 nmc
->nmc_left
= mb
? mbuf_len(mb
) : 0;
771 /* did we run out of data in the mbuf chain? */
777 nfsm_chain_adv(error
, nmc
, padlen
);
784 * nfsm_chain_get_uio()
786 * Read the next "len" bytes in the chain into the given uio.
787 * The nfsm_chain is advanced by nfsm_rndup("len") bytes.
790 nfsm_chain_get_uio(struct nfsm_chain
*nmc
, uint32_t len
, uio_t uio
)
792 uint32_t cplen
, padlen
;
795 padlen
= nfsm_rndup(len
) - len
;
797 /* loop through mbufs copying all the data we need */
798 while (len
&& nmc
->nmc_mcur
) {
799 /* copy as much as we need/can */
800 cplen
= MIN(nmc
->nmc_left
, len
);
802 error
= uiomove(nmc
->nmc_ptr
, cplen
, uio
);
806 nmc
->nmc_ptr
+= cplen
;
807 nmc
->nmc_left
-= cplen
;
810 /* if more needed, go to next mbuf */
812 mbuf_t mb
= mbuf_next(nmc
->nmc_mcur
);
814 nmc
->nmc_ptr
= mb
? mbuf_data(mb
) : NULL
;
815 nmc
->nmc_left
= mb
? mbuf_len(mb
) : 0;
819 /* did we run out of data in the mbuf chain? */
825 nfsm_chain_adv(error
, nmc
, padlen
);
834 nfsm_chain_add_string_nfc(struct nfsm_chain
*nmc
, const uint8_t *s
, uint32_t slen
)
836 uint8_t smallbuf
[64];
837 uint8_t *nfcname
= smallbuf
;
838 size_t buflen
= sizeof(smallbuf
), nfclen
;
841 error
= utf8_normalizestr(s
, slen
, nfcname
, &nfclen
, buflen
, UTF_PRECOMPOSED
| UTF_NO_NULL_TERM
);
842 if (error
== ENAMETOOLONG
) {
844 MALLOC_ZONE(nfcname
, uint8_t *, MAXPATHLEN
, M_NAMEI
, M_WAITOK
);
846 error
= utf8_normalizestr(s
, slen
, nfcname
, &nfclen
, buflen
, UTF_PRECOMPOSED
| UTF_NO_NULL_TERM
);
850 /* if we got an error, just use the original string */
852 nfsm_chain_add_string(error
, nmc
, s
, slen
);
854 nfsm_chain_add_string(error
, nmc
, nfcname
, nfclen
);
857 if (nfcname
&& (nfcname
!= smallbuf
)) {
858 FREE_ZONE(nfcname
, MAXPATHLEN
, M_NAMEI
);
864 * Add an NFSv2 "sattr" structure to an mbuf chain
867 nfsm_chain_add_v2sattr_f(struct nfsm_chain
*nmc
, struct vnode_attr
*vap
, uint32_t szrdev
)
871 nfsm_chain_add_32(error
, nmc
, vtonfsv2_mode(vap
->va_type
,
872 (VATTR_IS_ACTIVE(vap
, va_mode
) ? vap
->va_mode
: 0600)));
873 nfsm_chain_add_32(error
, nmc
,
874 VATTR_IS_ACTIVE(vap
, va_uid
) ? vap
->va_uid
: (uint32_t)-1);
875 nfsm_chain_add_32(error
, nmc
,
876 VATTR_IS_ACTIVE(vap
, va_gid
) ? vap
->va_gid
: (uint32_t)-1);
877 nfsm_chain_add_32(error
, nmc
, szrdev
);
878 nfsm_chain_add_v2time(error
, nmc
,
879 VATTR_IS_ACTIVE(vap
, va_access_time
) ?
880 &vap
->va_access_time
: NULL
);
881 nfsm_chain_add_v2time(error
, nmc
,
882 VATTR_IS_ACTIVE(vap
, va_modify_time
) ?
883 &vap
->va_modify_time
: NULL
);
889 * Add an NFSv3 "sattr" structure to an mbuf chain
892 nfsm_chain_add_v3sattr_f(struct nfsm_chain
*nmc
, struct vnode_attr
*vap
)
896 if (VATTR_IS_ACTIVE(vap
, va_mode
)) {
897 nfsm_chain_add_32(error
, nmc
, TRUE
);
898 nfsm_chain_add_32(error
, nmc
, vap
->va_mode
);
900 nfsm_chain_add_32(error
, nmc
, FALSE
);
902 if (VATTR_IS_ACTIVE(vap
, va_uid
)) {
903 nfsm_chain_add_32(error
, nmc
, TRUE
);
904 nfsm_chain_add_32(error
, nmc
, vap
->va_uid
);
906 nfsm_chain_add_32(error
, nmc
, FALSE
);
908 if (VATTR_IS_ACTIVE(vap
, va_gid
)) {
909 nfsm_chain_add_32(error
, nmc
, TRUE
);
910 nfsm_chain_add_32(error
, nmc
, vap
->va_gid
);
912 nfsm_chain_add_32(error
, nmc
, FALSE
);
914 if (VATTR_IS_ACTIVE(vap
, va_data_size
)) {
915 nfsm_chain_add_32(error
, nmc
, TRUE
);
916 nfsm_chain_add_64(error
, nmc
, vap
->va_data_size
);
918 nfsm_chain_add_32(error
, nmc
, FALSE
);
920 if (vap
->va_vaflags
& VA_UTIMES_NULL
) {
921 nfsm_chain_add_32(error
, nmc
, NFS_TIME_SET_TO_SERVER
);
922 nfsm_chain_add_32(error
, nmc
, NFS_TIME_SET_TO_SERVER
);
924 if (VATTR_IS_ACTIVE(vap
, va_access_time
)) {
925 nfsm_chain_add_32(error
, nmc
, NFS_TIME_SET_TO_CLIENT
);
926 nfsm_chain_add_32(error
, nmc
, vap
->va_access_time
.tv_sec
);
927 nfsm_chain_add_32(error
, nmc
, vap
->va_access_time
.tv_nsec
);
929 nfsm_chain_add_32(error
, nmc
, NFS_TIME_DONT_CHANGE
);
931 if (VATTR_IS_ACTIVE(vap
, va_modify_time
)) {
932 nfsm_chain_add_32(error
, nmc
, NFS_TIME_SET_TO_CLIENT
);
933 nfsm_chain_add_32(error
, nmc
, vap
->va_modify_time
.tv_sec
);
934 nfsm_chain_add_32(error
, nmc
, vap
->va_modify_time
.tv_nsec
);
936 nfsm_chain_add_32(error
, nmc
, NFS_TIME_DONT_CHANGE
);
945 * nfsm_chain_get_fh_attr()
947 * Get the file handle and attributes from an mbuf chain. (NFSv2/v3)
950 nfsm_chain_get_fh_attr(
951 struct nfsm_chain
*nmc
,
957 struct nfs_vattr
*nvap
)
959 int error
= 0, gotfh
, gotattr
;
963 if (nfsvers
== NFS_VER3
) { /* check for file handle */
964 nfsm_chain_get_32(error
, nmc
, gotfh
);
966 if (!error
&& gotfh
) { /* get file handle */
967 nfsm_chain_get_fh(error
, nmc
, nfsvers
, fhp
);
971 if (nfsvers
== NFS_VER3
) { /* check for file attributes */
972 nfsm_chain_get_32(error
, nmc
, gotattr
);
976 if (!gotfh
) { /* skip attributes */
977 nfsm_chain_adv(error
, nmc
, NFSX_V3FATTR
);
978 } else { /* get attributes */
979 error
= nfs_parsefattr(nmc
, nfsvers
, nvap
);
982 /* we need valid attributes in order to call nfs_nget() */
983 if (nfs3_getattr_rpc(NULL
, NFSTOMP(dnp
), fhp
->fh_data
, fhp
->fh_len
, 0, ctx
, nvap
, xidp
)) {
993 * Get and process NFSv3 WCC data from an mbuf chain
996 nfsm_chain_get_wcc_data_f(
997 struct nfsm_chain
*nmc
,
999 struct timespec
*premtime
,
1006 nfsm_chain_get_32(error
, nmc
, flag
);
1007 if (!error
&& flag
) {
1008 nfsm_chain_adv(error
, nmc
, 2 * NFSX_UNSIGNED
);
1009 nfsm_chain_get_32(error
, nmc
, premtime
->tv_sec
);
1010 nfsm_chain_get_32(error
, nmc
, premtime
->tv_nsec
);
1011 nfsm_chain_adv(error
, nmc
, 2 * NFSX_UNSIGNED
);
1013 premtime
->tv_sec
= 0;
1014 premtime
->tv_nsec
= 0;
1016 nfsm_chain_postop_attr_update_flag(error
, nmc
, np
, *newpostattr
, xidp
);
1022 * Get the next RPC transaction ID (XID)
1025 nfs_get_xid(uint64_t *xidp
)
1029 lck_mtx_lock(nfs_request_mutex
);
1032 * Derive initial xid from system time.
1034 * Note: it's OK if this code inits nfs_xid to 0 (for example,
1035 * due to a broken clock) because we immediately increment it
1036 * and we guarantee to never use xid 0. So, nfs_xid should only
1037 * ever be 0 the first time this function is called.
1040 nfs_xid
= tv
.tv_sec
<< 12;
1042 if (++nfs_xid
== 0) {
1043 /* Skip zero xid if it should ever happen. */
1047 *xidp
= nfs_xid
+ ((uint64_t)nfs_xidwrap
<< 32);
1048 lck_mtx_unlock(nfs_request_mutex
);
1052 * Build the RPC header and fill in the authorization info.
1053 * Returns the head of the mbuf list and the xid.
1063 struct nfsmount
*nmp
= req
->r_nmp
;
1064 int nfsvers
= nmp
->nm_vers
;
1065 int proc
= ((nfsvers
== NFS_VER2
) ? nfsv2_procid
[req
->r_procnum
] : (int)req
->r_procnum
);
1067 return nfsm_rpchead2(nmp
, nmp
->nm_sotype
, NFS_PROG
, nfsvers
, proc
,
1068 req
->r_auth
, req
->r_cred
, req
, mrest
, xidp
, mreqp
);
1072 * get_auiliary_groups: Gets the supplementary groups from a credential.
1074 * IN: cred: credential to get the associated groups from.
1075 * OUT: groups: An array of gids of NGROUPS size.
1076 * IN: count: The number of groups to get; i.e.; the number of groups the server supports
1078 * returns: The number of groups found.
1080 * Just a wrapper around kauth_cred_getgroups to handle the case of a server supporting less
1084 get_auxiliary_groups(kauth_cred_t cred
, gid_t groups
[NGROUPS
], int count
)
1087 int maxcount
= count
< NGROUPS
? count
+ 1 : NGROUPS
;
1090 for (i
= 0; i
< NGROUPS
; i
++) {
1091 groups
[i
] = -2; /* Initialize to the nobody group */
1093 (void)kauth_cred_getgroups(cred
, groups
, &maxcount
);
1099 * kauth_get_groups returns the primary group followed by the
1100 * users auxiliary groups. If the number of groups the server supports
1101 * is less than NGROUPS, then we will drop the first group so that
1102 * we can send one more group over the wire.
1106 if (count
< NGROUPS
) {
1107 pgid
= kauth_cred_getgid(cred
);
1108 if (pgid
== groups
[0]) {
1110 for (i
= 0; i
< maxcount
; i
++) {
1111 groups
[i
] = groups
[i
+ 1];
1120 nfsm_rpchead2(struct nfsmount
*nmp
, int sotype
, int prog
, int vers
, int proc
, int auth_type
,
1121 kauth_cred_t cred
, struct nfsreq
*req
, mbuf_t mrest
, u_int64_t
*xidp
, mbuf_t
*mreqp
)
1124 int error
, i
, auth_len
= 0, authsiz
, reqlen
;
1126 struct nfsm_chain nmreq
;
1127 gid_t grouplist
[NGROUPS
];
1130 /* calculate expected auth length */
1131 switch (auth_type
) {
1137 int count
= nmp
->nm_numgrps
< NGROUPS
? nmp
->nm_numgrps
: NGROUPS
;
1142 groupcount
= get_auxiliary_groups(cred
, grouplist
, count
);
1143 if (groupcount
< 0) {
1146 auth_len
= ((uint32_t)groupcount
+ 5) * NFSX_UNSIGNED
;
1152 if (!req
|| !cred
) {
1155 auth_len
= 5 * NFSX_UNSIGNED
+ 0; // zero context handle for now
1160 authsiz
= nfsm_rndup(auth_len
);
1162 /* allocate the packet */
1163 headlen
= authsiz
+ 10 * NFSX_UNSIGNED
;
1164 if (sotype
== SOCK_STREAM
) { /* also include room for any RPC Record Mark */
1165 headlen
+= NFSX_UNSIGNED
;
1167 if (headlen
>= nfs_mbuf_minclsize
) {
1168 error
= mbuf_getpacket(MBUF_WAITOK
, &mreq
);
1170 error
= mbuf_gethdr(MBUF_WAITOK
, MBUF_TYPE_DATA
, &mreq
);
1172 if (headlen
< nfs_mbuf_mhlen
) {
1173 mbuf_align_32(mreq
, headlen
);
1175 mbuf_align_32(mreq
, 8 * NFSX_UNSIGNED
);
1180 /* unable to allocate packet */
1181 /* XXX should we keep statistics for these errors? */
1186 * If the caller gave us a non-zero XID then use it because
1187 * it may be a higher-level resend with a GSSAPI credential.
1188 * Otherwise, allocate a new one.
1194 /* build the header(s) */
1195 nfsm_chain_init(&nmreq
, mreq
);
1197 /* First, if it's a TCP stream insert space for an RPC record mark */
1198 if (sotype
== SOCK_STREAM
) {
1199 nfsm_chain_add_32(error
, &nmreq
, 0);
1202 /* Then the RPC header. */
1203 nfsm_chain_add_32(error
, &nmreq
, (*xidp
& 0xffffffff));
1204 nfsm_chain_add_32(error
, &nmreq
, RPC_CALL
);
1205 nfsm_chain_add_32(error
, &nmreq
, RPC_VER2
);
1206 nfsm_chain_add_32(error
, &nmreq
, prog
);
1207 nfsm_chain_add_32(error
, &nmreq
, vers
);
1208 nfsm_chain_add_32(error
, &nmreq
, proc
);
1211 switch (auth_type
) {
1213 nfsm_chain_add_32(error
, &nmreq
, RPCAUTH_NONE
); /* auth */
1214 nfsm_chain_add_32(error
, &nmreq
, 0); /* length */
1215 nfsm_chain_add_32(error
, &nmreq
, RPCAUTH_NONE
); /* verf */
1216 nfsm_chain_add_32(error
, &nmreq
, 0); /* length */
1217 nfsm_chain_build_done(error
, &nmreq
);
1218 /* Append the args mbufs */
1220 error
= mbuf_setnext(nmreq
.nmc_mcur
, mrest
);
1224 nfsm_chain_add_32(error
, &nmreq
, RPCAUTH_SYS
);
1225 nfsm_chain_add_32(error
, &nmreq
, authsiz
);
1226 nfsm_chain_add_32(error
, &nmreq
, 0); /* stamp */
1227 nfsm_chain_add_32(error
, &nmreq
, 0); /* zero-length hostname */
1228 nfsm_chain_add_32(error
, &nmreq
, kauth_cred_getuid(cred
)); /* UID */
1229 nfsm_chain_add_32(error
, &nmreq
, kauth_cred_getgid(cred
)); /* GID */
1230 nfsm_chain_add_32(error
, &nmreq
, groupcount
);/* additional GIDs */
1231 for (i
= 0; i
< groupcount
; i
++) {
1232 nfsm_chain_add_32(error
, &nmreq
, grouplist
[i
]);
1235 /* And the verifier... */
1236 nfsm_chain_add_32(error
, &nmreq
, RPCAUTH_NONE
); /* flavor */
1237 nfsm_chain_add_32(error
, &nmreq
, 0); /* length */
1238 nfsm_chain_build_done(error
, &nmreq
);
1240 /* Append the args mbufs */
1242 error
= mbuf_setnext(nmreq
.nmc_mcur
, mrest
);
1249 error
= nfs_gss_clnt_cred_put(req
, &nmreq
, mrest
);
1250 if (error
== ENEEDAUTH
) {
1251 int count
= nmp
->nm_numgrps
< NGROUPS
? nmp
->nm_numgrps
: NGROUPS
;
1254 * Use sec=sys for this user
1257 req
->r_auth
= auth_type
= RPCAUTH_SYS
;
1258 groupcount
= get_auxiliary_groups(cred
, grouplist
, count
);
1259 if (groupcount
< 0) {
1262 auth_len
= ((uint32_t)groupcount
+ 5) * NFSX_UNSIGNED
;
1263 authsiz
= nfsm_rndup(auth_len
);
1270 /* finish setting up the packet */
1272 error
= mbuf_pkthdr_setrcvif(mreq
, 0);
1280 /* Calculate the size of the request */
1282 for (mb
= nmreq
.nmc_mhead
; mb
; mb
= mbuf_next(mb
)) {
1283 reqlen
+= mbuf_len(mb
);
1286 mbuf_pkthdr_setlen(mreq
, reqlen
);
1289 * If the request goes on a TCP stream,
1290 * set its size in the RPC record mark.
1291 * The record mark count doesn't include itself
1292 * and the last fragment bit is set.
1294 if (sotype
== SOCK_STREAM
) {
1295 nfsm_chain_set_recmark(error
, &nmreq
,
1296 (reqlen
- NFSX_UNSIGNED
) | 0x80000000);
1304 * Parse an NFS file attribute structure out of an mbuf chain.
1307 nfs_parsefattr(struct nfsm_chain
*nmc
, int nfsvers
, struct nfs_vattr
*nvap
)
1319 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_TYPE
);
1320 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_MODE
);
1321 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_NUMLINKS
);
1322 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_OWNER
);
1323 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_OWNER_GROUP
);
1324 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_SIZE
);
1325 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_SPACE_USED
);
1326 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_RAWDEV
);
1327 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_FSID
);
1328 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_FILEID
);
1329 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_TIME_ACCESS
);
1330 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_TIME_MODIFY
);
1331 NFS_BITMAP_SET(nvap
->nva_bitmap
, NFS_FATTR_TIME_METADATA
);
1333 nfsm_chain_get_32(error
, nmc
, nvtype
);
1334 nfsm_chain_get_32(error
, nmc
, vmode
);
1337 if (nfsvers
== NFS_VER3
) {
1338 nvap
->nva_type
= vtype
= nfstov_type(nvtype
, nfsvers
);
1341 * The duplicate information returned in fa_type and fa_mode
1342 * is an ambiguity in the NFS version 2 protocol.
1344 * VREG should be taken literally as a regular file. If a
1345 * server intends to return some type information differently
1346 * in the upper bits of the mode field (e.g. for sockets, or
1347 * FIFOs), NFSv2 mandates fa_type to be VNON. Anyway, we
1348 * leave the examination of the mode bits even in the VREG
1349 * case to avoid breakage for bogus servers, but we make sure
1350 * that there are actually type bits set in the upper part of
1351 * fa_mode (and failing that, trust the va_type field).
1353 * NFSv3 cleared the issue, and requires fa_mode to not
1354 * contain any type information (while also introducing
1355 * sockets and FIFOs for fa_type).
1357 vtype
= nfstov_type(nvtype
, nfsvers
);
1358 if ((vtype
== VNON
) || ((vtype
== VREG
) && ((vmode
& S_IFMT
) != 0))) {
1359 vtype
= IFTOVT(vmode
);
1361 nvap
->nva_type
= vtype
;
1364 nvap
->nva_mode
= (vmode
& 07777);
1366 nfsm_chain_get_32(error
, nmc
, nvap
->nva_nlink
);
1367 nfsm_chain_get_32(error
, nmc
, nvap
->nva_uid
);
1368 nfsm_chain_get_32(error
, nmc
, nvap
->nva_gid
);
1370 if (nfsvers
== NFS_VER3
) {
1371 nfsm_chain_get_64(error
, nmc
, nvap
->nva_size
);
1372 nfsm_chain_get_64(error
, nmc
, nvap
->nva_bytes
);
1373 nfsm_chain_get_32(error
, nmc
, nvap
->nva_rawdev
.specdata1
);
1374 nfsm_chain_get_32(error
, nmc
, nvap
->nva_rawdev
.specdata2
);
1376 nfsm_chain_get_64(error
, nmc
, nvap
->nva_fsid
.major
);
1377 nvap
->nva_fsid
.minor
= 0;
1378 nfsm_chain_get_64(error
, nmc
, nvap
->nva_fileid
);
1380 nfsm_chain_get_32(error
, nmc
, nvap
->nva_size
);
1381 nfsm_chain_adv(error
, nmc
, NFSX_UNSIGNED
);
1382 nfsm_chain_get_32(error
, nmc
, rdev
);
1384 nvap
->nva_rawdev
.specdata1
= major(rdev
);
1385 nvap
->nva_rawdev
.specdata2
= minor(rdev
);
1386 nfsm_chain_get_32(error
, nmc
, val
); /* blocks */
1388 nvap
->nva_bytes
= val
* NFS_FABLKSIZE
;
1389 nfsm_chain_get_32(error
, nmc
, val
);
1391 nvap
->nva_fsid
.major
= (uint64_t)val
;
1392 nvap
->nva_fsid
.minor
= 0;
1393 nfsm_chain_get_32(error
, nmc
, val
);
1395 nvap
->nva_fileid
= (uint64_t)val
;
1396 /* Really ugly NFSv2 kludge. */
1397 if ((vtype
== VCHR
) && (rdev
== (dev_t
)0xffffffff)) {
1398 nvap
->nva_type
= VFIFO
;
1401 nfsm_chain_get_time(error
, nmc
, nfsvers
,
1402 nvap
->nva_timesec
[NFSTIME_ACCESS
],
1403 nvap
->nva_timensec
[NFSTIME_ACCESS
]);
1404 nfsm_chain_get_time(error
, nmc
, nfsvers
,
1405 nvap
->nva_timesec
[NFSTIME_MODIFY
],
1406 nvap
->nva_timensec
[NFSTIME_MODIFY
]);
1407 nfsm_chain_get_time(error
, nmc
, nfsvers
,
1408 nvap
->nva_timesec
[NFSTIME_CHANGE
],
1409 nvap
->nva_timensec
[NFSTIME_CHANGE
]);
1415 * Load the attribute cache (that lives in the nfsnode entry) with
1416 * the value pointed to by nvap, unless the file type in the attribute
1417 * cache doesn't match the file type in the nvap, in which case log a
1418 * warning and return ESTALE.
1420 * If the dontshrink flag is set, then it's not safe to call ubc_setsize()
1421 * to shrink the size of the file.
1426 struct nfs_vattr
*nvap
,
1433 struct nfs_vattr
*npnvap
;
1434 int xattr
= np
->n_vattr
.nva_flags
& NFS_FFLAG_IS_ATTR
;
1435 int referral
= np
->n_vattr
.nva_flags
& NFS_FFLAG_TRIGGER_REFERRAL
;
1436 int aclbit
, monitored
, error
= 0;
1438 struct nfsmount
*nmp
;
1439 uint32_t events
= np
->n_events
;
1441 if (np
->n_hflag
& NHINIT
) {
1446 mp
= vnode_mount(vp
);
1448 monitored
= vp
? vnode_ismonitored(vp
) : 0;
1450 FSDBG_TOP(527, np
, vp
, *xidp
>> 32, *xidp
);
1452 if (!((nmp
= VFSTONFS(mp
)))) {
1453 FSDBG_BOT(527, ENXIO
, 1, 0, *xidp
);
1457 if (*xidp
< np
->n_xid
) {
1459 * We have already updated attributes with a response from
1460 * a later request. The attributes we have here are probably
1461 * stale so we drop them (just return). However, our
1462 * out-of-order receipt could be correct - if the requests were
1463 * processed out of order at the server. Given the uncertainty
1464 * we invalidate our cached attributes. *xidp is zeroed here
1465 * to indicate the attributes were dropped - only getattr
1466 * cares - it needs to retry the rpc.
1468 NATTRINVALIDATE(np
);
1469 FSDBG_BOT(527, 0, np
, np
->n_xid
, *xidp
);
1474 if (vp
&& (nvap
->nva_type
!= vnode_vtype(vp
))) {
1476 * The filehandle has changed type on us. This can be
1477 * caused by either the server not having unique filehandles
1478 * or because another client has removed the previous
1479 * filehandle and a new object (of a different type)
1480 * has been created with the same filehandle.
1482 * We can't simply switch the type on the vnode because
1483 * there may be type-specific fields that need to be
1484 * cleaned up or set up.
1486 * So, what should we do with this vnode?
1488 * About the best we can do is log a warning and return
1489 * an error. ESTALE is about the closest error, but it
1490 * is a little strange that we come up with this error
1491 * internally instead of simply passing it through from
1492 * the server. Hopefully, the vnode will be reclaimed
1493 * soon so the filehandle can be reincarnated as the new
1496 printf("nfs loadattrcache vnode changed type, was %d now %d\n",
1497 vnode_vtype(vp
), nvap
->nva_type
);
1500 events
|= VNODE_EVENT_DELETE
;
1505 npnvap
= &np
->n_vattr
;
1508 * The ACL cache needs special handling because it is not
1509 * always updated. Save current ACL cache state so it can
1510 * be restored after copying the new attributes into place.
1512 aclbit
= NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_ACL
);
1513 acl
= npnvap
->nva_acl
;
1517 * For monitored nodes, check for attribute changes that should generate events.
1519 if (NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_NUMLINKS
) &&
1520 (nvap
->nva_nlink
!= npnvap
->nva_nlink
)) {
1521 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_LINK
;
1523 if (events
& VNODE_EVENT_PERMS
) {
1524 /* no need to do all the checking if it's already set */;
1525 } else if (NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_MODE
) &&
1526 (nvap
->nva_mode
!= npnvap
->nva_mode
)) {
1527 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_PERMS
;
1528 } else if (NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_OWNER
) &&
1529 (nvap
->nva_uid
!= npnvap
->nva_uid
)) {
1530 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_PERMS
;
1531 } else if (NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_OWNER_GROUP
) &&
1532 (nvap
->nva_gid
!= npnvap
->nva_gid
)) {
1533 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_PERMS
;
1534 } else if (nmp
->nm_vers
>= NFS_VER4
) {
1535 if (NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_OWNER
) &&
1536 !kauth_guid_equal(&nvap
->nva_uuuid
, &npnvap
->nva_uuuid
)) {
1537 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_PERMS
;
1538 } else if (NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_OWNER_GROUP
) &&
1539 !kauth_guid_equal(&nvap
->nva_guuid
, &npnvap
->nva_guuid
)) {
1540 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_PERMS
;
1541 } else if ((NFS_BITMAP_ISSET(nvap
->nva_bitmap
, NFS_FATTR_ACL
) &&
1542 nvap
->nva_acl
&& npnvap
->nva_acl
&&
1543 ((nvap
->nva_acl
->acl_entrycount
!= npnvap
->nva_acl
->acl_entrycount
) ||
1544 bcmp(nvap
->nva_acl
, npnvap
->nva_acl
, KAUTH_ACL_COPYSIZE(nvap
->nva_acl
))))) {
1545 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_PERMS
;
1548 if (((nmp
->nm_vers
>= NFS_VER4
) && (nvap
->nva_change
!= npnvap
->nva_change
)) ||
1549 (NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_TIME_MODIFY
) &&
1550 ((nvap
->nva_timesec
[NFSTIME_MODIFY
] != npnvap
->nva_timesec
[NFSTIME_MODIFY
]) ||
1551 (nvap
->nva_timensec
[NFSTIME_MODIFY
] != npnvap
->nva_timensec
[NFSTIME_MODIFY
])))) {
1552 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_WRITE
;
1554 if (!events
&& NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_RAWDEV
) &&
1555 ((nvap
->nva_rawdev
.specdata1
!= npnvap
->nva_rawdev
.specdata1
) ||
1556 (nvap
->nva_rawdev
.specdata2
!= npnvap
->nva_rawdev
.specdata2
))) {
1557 events
|= VNODE_EVENT_ATTRIB
;
1559 if (!events
&& NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_FILEID
) &&
1560 (nvap
->nva_fileid
!= npnvap
->nva_fileid
)) {
1561 events
|= VNODE_EVENT_ATTRIB
;
1563 if (!events
&& NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_ARCHIVE
) &&
1564 ((nvap
->nva_flags
& NFS_FFLAG_ARCHIVED
) != (npnvap
->nva_flags
& NFS_FFLAG_ARCHIVED
))) {
1565 events
|= VNODE_EVENT_ATTRIB
;
1567 if (!events
&& NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_HIDDEN
) &&
1568 ((nvap
->nva_flags
& NFS_FFLAG_HIDDEN
) != (npnvap
->nva_flags
& NFS_FFLAG_HIDDEN
))) {
1569 events
|= VNODE_EVENT_ATTRIB
;
1571 if (!events
&& NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_TIME_CREATE
) &&
1572 ((nvap
->nva_timesec
[NFSTIME_CREATE
] != npnvap
->nva_timesec
[NFSTIME_CREATE
]) ||
1573 (nvap
->nva_timensec
[NFSTIME_CREATE
] != npnvap
->nva_timensec
[NFSTIME_CREATE
]))) {
1574 events
|= VNODE_EVENT_ATTRIB
;
1576 if (!events
&& NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_TIME_BACKUP
) &&
1577 ((nvap
->nva_timesec
[NFSTIME_BACKUP
] != npnvap
->nva_timesec
[NFSTIME_BACKUP
]) ||
1578 (nvap
->nva_timensec
[NFSTIME_BACKUP
] != npnvap
->nva_timensec
[NFSTIME_BACKUP
]))) {
1579 events
|= VNODE_EVENT_ATTRIB
;
1583 /* Copy the attributes to the attribute cache */
1584 bcopy((caddr_t
)nvap
, (caddr_t
)npnvap
, sizeof(*nvap
));
1587 np
->n_attrstamp
= now
.tv_sec
;
1589 /* NFS_FFLAG_IS_ATTR and NFS_FFLAG_TRIGGER_REFERRAL need to be sticky... */
1591 nvap
->nva_flags
|= xattr
;
1593 if (vp
&& referral
) {
1594 nvap
->nva_flags
|= referral
;
1597 if (NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_ACL
)) {
1598 /* we're updating the ACL */
1599 if (nvap
->nva_acl
) {
1600 /* make a copy of the acl for the cache */
1601 npnvap
->nva_acl
= kauth_acl_alloc(nvap
->nva_acl
->acl_entrycount
);
1602 if (npnvap
->nva_acl
) {
1603 bcopy(nvap
->nva_acl
, npnvap
->nva_acl
, KAUTH_ACL_COPYSIZE(nvap
->nva_acl
));
1605 /* can't make a copy to cache, invalidate ACL cache */
1606 NFS_BITMAP_CLR(npnvap
->nva_bitmap
, NFS_FATTR_ACL
);
1612 kauth_acl_free(acl
);
1616 if (NFS_BITMAP_ISSET(npnvap
->nva_bitmap
, NFS_FATTR_ACL
)) {
1617 /* update the ACL timestamp */
1618 np
->n_aclstamp
= now
.tv_sec
;
1620 /* we aren't updating the ACL, so restore original values */
1622 NFS_BITMAP_SET(npnvap
->nva_bitmap
, NFS_FATTR_ACL
);
1624 npnvap
->nva_acl
= acl
;
1629 * For NFSv4, if the fsid doesn't match the fsid for the mount, then
1630 * this node is for a different file system on the server. So we mark
1631 * this node as a trigger node that will trigger the mirror mount.
1633 if ((nmp
->nm_vers
>= NFS_VER4
) && (nvap
->nva_type
== VDIR
) &&
1634 ((np
->n_vattr
.nva_fsid
.major
!= nmp
->nm_fsid
.major
) ||
1635 (np
->n_vattr
.nva_fsid
.minor
!= nmp
->nm_fsid
.minor
))) {
1636 np
->n_vattr
.nva_flags
|= NFS_FFLAG_TRIGGER
;
1640 if (!vp
|| (nvap
->nva_type
!= VREG
)) {
1641 np
->n_size
= nvap
->nva_size
;
1642 } else if (nvap
->nva_size
!= np
->n_size
) {
1643 FSDBG(527, np
, nvap
->nva_size
, np
->n_size
, (nvap
->nva_type
== VREG
) | (np
->n_flag
& NMODIFIED
? 6 : 4));
1644 if (!UBCINFOEXISTS(vp
) || (dontshrink
&& (nvap
->nva_size
< np
->n_size
))) {
1645 /* asked not to shrink, so stick with current size */
1646 FSDBG(527, np
, np
->n_size
, np
->n_vattr
.nva_size
, 0xf00d0001);
1647 nvap
->nva_size
= np
->n_size
;
1648 NATTRINVALIDATE(np
);
1649 } else if ((np
->n_flag
& NMODIFIED
) && (nvap
->nva_size
< np
->n_size
)) {
1650 /* if we've modified, stick with larger size */
1651 FSDBG(527, np
, np
->n_size
, np
->n_vattr
.nva_size
, 0xf00d0002);
1652 nvap
->nva_size
= np
->n_size
;
1653 npnvap
->nva_size
= np
->n_size
;
1656 * n_size is protected by the data lock, so we need to
1657 * defer updating it until it's safe. We save the new size
1658 * and set a flag and it'll get updated the next time we get/drop
1659 * the data lock or the next time we do a getattr.
1661 np
->n_newsize
= nvap
->nva_size
;
1662 SET(np
->n_flag
, NUPDATESIZE
);
1664 events
|= VNODE_EVENT_ATTRIB
| VNODE_EVENT_EXTEND
;
1669 if (np
->n_flag
& NCHG
) {
1670 if (np
->n_flag
& NACC
) {
1671 nvap
->nva_timesec
[NFSTIME_ACCESS
] = np
->n_atim
.tv_sec
;
1672 nvap
->nva_timensec
[NFSTIME_ACCESS
] = np
->n_atim
.tv_nsec
;
1674 if (np
->n_flag
& NUPD
) {
1675 nvap
->nva_timesec
[NFSTIME_MODIFY
] = np
->n_mtim
.tv_sec
;
1676 nvap
->nva_timensec
[NFSTIME_MODIFY
] = np
->n_mtim
.tv_nsec
;
1681 if (monitored
&& events
) {
1682 nfs_vnode_notify(np
, events
);
1684 FSDBG_BOT(527, error
, np
, np
->n_size
, *xidp
);
1689 * Calculate the attribute timeout based on
1690 * how recently the file has been modified.
1693 nfs_attrcachetimeout(nfsnode_t np
)
1695 struct nfsmount
*nmp
;
1701 if (nfs_mount_gone(nmp
)) {
1705 isdir
= vnode_isdir(NFSTOV(np
));
1707 if ((nmp
->nm_vers
>= NFS_VER4
) && (np
->n_openflags
& N_DELEG_MASK
)) {
1708 /* If we have a delegation, we always use the max timeout. */
1709 timeo
= isdir
? nmp
->nm_acdirmax
: nmp
->nm_acregmax
;
1710 } else if ((np
)->n_flag
& NMODIFIED
) {
1711 /* If we have modifications, we always use the min timeout. */
1712 timeo
= isdir
? nmp
->nm_acdirmin
: nmp
->nm_acregmin
;
1714 /* Otherwise, we base the timeout on how old the file seems. */
1715 /* Note that if the client and server clocks are way out of sync, */
1716 /* timeout will probably get clamped to a min or max value */
1718 timeo
= (now
.tv_sec
- (np
)->n_vattr
.nva_timesec
[NFSTIME_MODIFY
]) / 10;
1720 if (timeo
< nmp
->nm_acdirmin
) {
1721 timeo
= nmp
->nm_acdirmin
;
1722 } else if (timeo
> nmp
->nm_acdirmax
) {
1723 timeo
= nmp
->nm_acdirmax
;
1726 if (timeo
< nmp
->nm_acregmin
) {
1727 timeo
= nmp
->nm_acregmin
;
1728 } else if (timeo
> nmp
->nm_acregmax
) {
1729 timeo
= nmp
->nm_acregmax
;
1738 * Check the attribute cache time stamp.
1739 * If the cache is valid, copy contents to *nvaper and return 0
1740 * otherwise return an error.
1741 * Must be called with the node locked.
1744 nfs_getattrcache(nfsnode_t np
, struct nfs_vattr
*nvaper
, int flags
)
1746 struct nfs_vattr
*nvap
;
1747 struct timeval nowup
;
1749 struct nfsmount
*nmp
;
1751 /* Check if the attributes are valid. */
1752 if (!NATTRVALID(np
) || ((flags
& NGA_ACL
) && !NACLVALID(np
))) {
1753 FSDBG(528, np
, 0, 0xffffff01, ENOENT
);
1754 OSAddAtomic64(1, &nfsstats
.attrcache_misses
);
1759 if (nfs_mount_gone(nmp
)) {
1763 * Verify the cached attributes haven't timed out.
1764 * If the server isn't responding, skip the check
1765 * and return cached attributes.
1767 if (!nfs_use_cache(nmp
)) {
1768 microuptime(&nowup
);
1769 if (np
->n_attrstamp
> nowup
.tv_sec
) {
1770 printf("NFS: Attribute time stamp is in the future by %ld seconds. Invalidating cache\n",
1771 np
->n_attrstamp
- nowup
.tv_sec
);
1772 NATTRINVALIDATE(np
);
1773 NACCESSINVALIDATE(np
);
1776 timeo
= nfs_attrcachetimeout(np
);
1777 if ((nowup
.tv_sec
- np
->n_attrstamp
) >= timeo
) {
1778 FSDBG(528, np
, 0, 0xffffff02, ENOENT
);
1779 OSAddAtomic64(1, &nfsstats
.attrcache_misses
);
1782 if ((flags
& NGA_ACL
) && ((nowup
.tv_sec
- np
->n_aclstamp
) >= timeo
)) {
1783 FSDBG(528, np
, 0, 0xffffff02, ENOENT
);
1784 OSAddAtomic64(1, &nfsstats
.attrcache_misses
);
1789 nvap
= &np
->n_vattr
;
1790 FSDBG(528, np
, nvap
->nva_size
, np
->n_size
, 0xcace);
1791 OSAddAtomic64(1, &nfsstats
.attrcache_hits
);
1793 if (nvap
->nva_type
!= VREG
) {
1794 np
->n_size
= nvap
->nva_size
;
1795 } else if (nvap
->nva_size
!= np
->n_size
) {
1796 FSDBG(528, np
, nvap
->nva_size
, np
->n_size
, (nvap
->nva_type
== VREG
) | (np
->n_flag
& NMODIFIED
? 6 : 4));
1797 if ((np
->n_flag
& NMODIFIED
) && (nvap
->nva_size
< np
->n_size
)) {
1798 /* if we've modified, stick with larger size */
1799 nvap
->nva_size
= np
->n_size
;
1802 * n_size is protected by the data lock, so we need to
1803 * defer updating it until it's safe. We save the new size
1804 * and set a flag and it'll get updated the next time we get/drop
1805 * the data lock or the next time we do a getattr.
1807 np
->n_newsize
= nvap
->nva_size
;
1808 SET(np
->n_flag
, NUPDATESIZE
);
1812 bcopy((caddr_t
)nvap
, (caddr_t
)nvaper
, sizeof(struct nfs_vattr
));
1813 if (np
->n_flag
& NCHG
) {
1814 if (np
->n_flag
& NACC
) {
1815 nvaper
->nva_timesec
[NFSTIME_ACCESS
] = np
->n_atim
.tv_sec
;
1816 nvaper
->nva_timensec
[NFSTIME_ACCESS
] = np
->n_atim
.tv_nsec
;
1818 if (np
->n_flag
& NUPD
) {
1819 nvaper
->nva_timesec
[NFSTIME_MODIFY
] = np
->n_mtim
.tv_sec
;
1820 nvaper
->nva_timensec
[NFSTIME_MODIFY
] = np
->n_mtim
.tv_nsec
;
1823 if (nvap
->nva_acl
) {
1824 if (flags
& NGA_ACL
) {
1825 nvaper
->nva_acl
= kauth_acl_alloc(nvap
->nva_acl
->acl_entrycount
);
1826 if (!nvaper
->nva_acl
) {
1829 bcopy(nvap
->nva_acl
, nvaper
->nva_acl
, KAUTH_ACL_COPYSIZE(nvap
->nva_acl
));
1831 nvaper
->nva_acl
= NULL
;
1838 * When creating file system objects:
1839 * Don't bother setting UID if it's the same as the credential performing the create.
1840 * Don't bother setting GID if it's the same as the directory or credential.
1843 nfs_avoid_needless_id_setting_on_create(nfsnode_t dnp
, struct vnode_attr
*vap
, vfs_context_t ctx
)
1845 if (VATTR_IS_ACTIVE(vap
, va_uid
)) {
1846 if (kauth_cred_getuid(vfs_context_ucred(ctx
)) == vap
->va_uid
) {
1847 VATTR_CLEAR_ACTIVE(vap
, va_uid
);
1848 VATTR_CLEAR_ACTIVE(vap
, va_uuuid
);
1851 if (VATTR_IS_ACTIVE(vap
, va_gid
)) {
1852 if ((vap
->va_gid
== dnp
->n_vattr
.nva_gid
) ||
1853 (kauth_cred_getgid(vfs_context_ucred(ctx
)) == vap
->va_gid
)) {
1854 VATTR_CLEAR_ACTIVE(vap
, va_gid
);
1855 VATTR_CLEAR_ACTIVE(vap
, va_guuid
);
1861 * Convert a universal address string to a sockaddr structure.
1863 * Universal addresses can be in the following formats:
1865 * d = decimal (IPv4)
1866 * x = hexadecimal (IPv6)
1867 * p = port (decimal)
1872 * x:x:x:x:x:x:x:x.p.p
1873 * x:x:x:x:x:x:d.d.d.d
1874 * x:x:x:x:x:x:d.d.d.d.p.p
1876 * IPv6 strings can also have a series of zeroes elided
1877 * IPv6 strings can also have a %scope suffix at the end (after any port)
1879 * rules & exceptions:
1880 * - value before : is hex
1881 * - value before . is dec
1882 * - once . hit, all values are dec
1883 * - hex+port case means value before first dot is actually hex
1884 * - . is always preceded by digits except if last hex was double-colon
1886 * scan, converting #s to bytes
1887 * first time a . is encountered, scan the rest to count them.
1888 * 2 dots = just port
1889 * 3 dots = just IPv4 no port
1890 * 5 dots = IPv4 and port
1893 #define IS_DIGIT(C) \
1894 (((C) >= '0') && ((C) <= '9'))
1896 #define IS_XDIGIT(C) \
1898 (((C) >= 'A') && ((C) <= 'F')) || \
1899 (((C) >= 'a') && ((C) <= 'f')))
1902 nfs_uaddr2sockaddr(const char *uaddr
, struct sockaddr
*addr
)
1904 const char *p
, *pd
; /* pointers to current character in scan */
1905 const char *pnum
; /* pointer to current number to decode */
1906 const char *pscope
; /* pointer to IPv6 scope ID */
1907 uint8_t a
[18]; /* octet array to store address bytes */
1908 int i
; /* index of next octet to decode */
1909 int dci
; /* index of octet to insert double-colon zeroes */
1910 int dcount
, xdcount
; /* count of digits in current number */
1911 int needmore
; /* set when we know we need more input (e.g. after colon, period) */
1912 int dots
; /* # of dots */
1913 int hex
; /* contains hex values */
1914 unsigned long val
; /* decoded value */
1915 int s
; /* index used for sliding array to insert elided zeroes */
1918 #define DECIMALVALUE 1
1921 if ((dcount <= 0) || (dcount > (((TYPE) == DECIMALVALUE) ? 3 : 4))) \
1923 if (((TYPE) == DECIMALVALUE) && xdcount) \
1925 val = strtoul(pnum, NULL, ((TYPE) == DECIMALVALUE) ? 10 : 16); \
1926 if (((TYPE) == DECIMALVALUE) && (val >= 256)) \
1928 /* check if there is room left in the array */ \
1929 if (i > (int)(sizeof(a) - (((TYPE) == HEXVALUE) ? 2 : 1) - ((dci != -1) ? 2 : 0))) \
1931 if ((TYPE) == HEXVALUE) \
1932 a[i++] = ((val >> 8) & 0xff); \
1933 a[i++] = (val & 0xff); \
1939 i
= dcount
= xdcount
= 0;
1943 if ((*p
== ':') && (*++p
!= ':')) { /* if it starts with colon, gotta be a double */
1948 if (IS_XDIGIT(*p
)) {
1950 if (!IS_DIGIT(*p
)) {
1955 } else if (*p
== '.') {
1956 /* rest is decimal IPv4 dotted quad and/or port */
1958 /* this is the first, so count them */
1959 for (pd
= p
; *pd
; pd
++) {
1964 } else if (hex
&& (*pd
== '%')) {
1966 } else if ((*pd
< '0') || (*pd
> '9')) {
1970 if ((dots
!= 2) && (dots
!= 3) && (dots
!= 5)) {
1973 if (hex
&& (dots
== 2)) { /* hex+port */
1974 if (!dcount
&& needmore
) {
1977 if (dcount
) { /* last hex may be elided zero */
1986 dcount
= xdcount
= 0;
1989 } else if (*p
== ':') {
1994 if (!dcount
) { /* missing number, probably double colon */
1995 if (dci
>= 0) { /* can only have one double colon */
2002 dcount
= xdcount
= 0;
2006 } else if (*p
== '%') { /* scope ID delimiter */
2013 } else { /* unexpected character */
2017 if (needmore
&& !dcount
) {
2020 if (dcount
) { /* decode trailing number */
2021 GET(dots
? DECIMALVALUE
: HEXVALUE
);
2023 if (dci
>= 0) { /* got a double-colon at i, need to insert a range of zeroes */
2024 /* if we got a port, slide to end of array */
2025 /* otherwise, slide to end of address (non-port) values */
2026 int end
= ((dots
== 2) || (dots
== 5)) ? sizeof(a
) : (sizeof(a
) - 2);
2027 if (i
% 2) { /* length of zero range must be multiple of 2 */
2030 if (i
>= end
) { /* no room? */
2033 /* slide (i-dci) numbers up from index dci */
2034 for (s
= 0; s
< (i
- dci
); s
++) {
2035 a
[end
- 1 - s
] = a
[i
- 1 - s
];
2037 /* zero (end-i) numbers at index dci */
2038 for (s
= 0; s
< (end
- i
); s
++) {
2044 /* copy out resulting socket address */
2046 struct sockaddr_in6
*sin6
= (struct sockaddr_in6
*)addr
;
2047 if ((((dots
== 0) || (dots
== 3)) && (i
!= (sizeof(a
) - 2)))) {
2050 if ((((dots
== 2) || (dots
== 5)) && (i
!= sizeof(a
)))) {
2053 bzero(sin6
, sizeof(struct sockaddr_in6
));
2054 sin6
->sin6_len
= sizeof(struct sockaddr_in6
);
2055 sin6
->sin6_family
= AF_INET6
;
2056 bcopy(a
, &sin6
->sin6_addr
.s6_addr
, sizeof(struct in6_addr
));
2057 if ((dots
== 5) || (dots
== 2)) {
2058 sin6
->sin6_port
= htons((a
[16] << 8) | a
[17]);
2061 for (p
= pscope
; IS_DIGIT(*p
); p
++) {
2064 if (*p
&& !IS_DIGIT(*p
)) { /* name */
2065 ifnet_t interface
= NULL
;
2066 if (ifnet_find_by_name(pscope
, &interface
) == 0) {
2067 sin6
->sin6_scope_id
= ifnet_index(interface
);
2070 ifnet_release(interface
);
2072 } else { /* decimal number */
2073 sin6
->sin6_scope_id
= strtoul(pscope
, NULL
, 10);
2075 /* XXX should we also embed scope id for linklocal? */
2078 struct sockaddr_in
*sin
= (struct sockaddr_in
*)addr
;
2079 if ((dots
!= 3) && (dots
!= 5)) {
2082 if ((dots
== 3) && (i
!= 4)) {
2085 if ((dots
== 5) && (i
!= 6)) {
2088 bzero(sin
, sizeof(struct sockaddr_in
));
2089 sin
->sin_len
= sizeof(struct sockaddr_in
);
2090 sin
->sin_family
= AF_INET
;
2091 bcopy(a
, &sin
->sin_addr
.s_addr
, sizeof(struct in_addr
));
2093 sin
->sin_port
= htons((a
[4] << 8) | a
[5]);
2100 /* NFS Client debugging support */
2101 uint32_t nfs_debug_ctl
;
2103 #include <libkern/libkern.h>
2107 nfs_printf(int facility
, int level
, const char *fmt
, ...)
2111 if ((uint32_t)level
> NFS_DEBUG_LEVEL
) {
2114 if (NFS_DEBUG_FACILITY
&& !((uint32_t)facility
& NFS_DEBUG_FACILITY
)) {
2123 /* Is a mount gone away? */
2125 nfs_mount_gone(struct nfsmount
*nmp
)
2127 return !nmp
|| vfs_isforce(nmp
->nm_mountp
) || (nmp
->nm_state
& (NFSSTA_FORCE
| NFSSTA_DEAD
));
2131 * Return some of the more significant mount options
2132 * as a string, e.g. "'ro,hard,intr,tcp,vers=3,sec=krb5,deadtimeout=0'
2135 nfs_mountopts(struct nfsmount
*nmp
, char *buf
, int buflen
)
2139 c
= snprintf(buf
, buflen
, "%s,%s,%s,%s,vers=%d,sec=%s,%sdeadtimeout=%d",
2140 (vfs_flags(nmp
->nm_mountp
) & MNT_RDONLY
) ? "ro" : "rw",
2141 NMFLAG(nmp
, SOFT
) ? "soft" : "hard",
2142 NMFLAG(nmp
, INTR
) ? "intr" : "nointr",
2143 nmp
->nm_sotype
== SOCK_STREAM
? "tcp" : "udp",
2145 nmp
->nm_auth
== RPCAUTH_KRB5
? "krb5" :
2146 nmp
->nm_auth
== RPCAUTH_KRB5I
? "krb5i" :
2147 nmp
->nm_auth
== RPCAUTH_KRB5P
? "krb5p" :
2148 nmp
->nm_auth
== RPCAUTH_SYS
? "sys" : "none",
2149 nmp
->nm_lockmode
== NFS_LOCK_MODE_ENABLED
? "locks," :
2150 nmp
->nm_lockmode
== NFS_LOCK_MODE_DISABLED
? "nolocks," :
2151 nmp
->nm_lockmode
== NFS_LOCK_MODE_LOCAL
? "locallocks," : "",
2152 nmp
->nm_deadtimeout
);
2154 return c
> buflen
? ENOMEM
: 0;
2157 #endif /* NFSCLIENT */
2160 * Schedule a callout thread to run an NFS timer function
2161 * interval milliseconds in the future.
2164 nfs_interval_timer_start(thread_call_t call
, int interval
)
2168 clock_interval_to_deadline(interval
, 1000 * 1000, &deadline
);
2169 thread_call_enter_delayed(call
, deadline
);
2175 int nfsrv_cmp_secflavs(struct nfs_sec
*, struct nfs_sec
*);
2176 int nfsrv_hang_addrlist(struct nfs_export
*, struct user_nfs_export_args
*);
2177 int nfsrv_free_netopt(struct radix_node
*, void *);
2178 int nfsrv_free_addrlist(struct nfs_export
*, struct user_nfs_export_args
*);
2179 struct nfs_export_options
*nfsrv_export_lookup(struct nfs_export
*, mbuf_t
);
2180 struct nfs_export
*nfsrv_fhtoexport(struct nfs_filehandle
*);
2181 struct nfs_user_stat_node
*nfsrv_get_user_stat_node(struct nfs_active_user_list
*, struct sockaddr
*, uid_t
);
2182 void nfsrv_init_user_list(struct nfs_active_user_list
*);
2183 void nfsrv_free_user_list(struct nfs_active_user_list
*);
2186 * add NFSv3 WCC data to an mbuf chain
2189 nfsm_chain_add_wcc_data_f(
2190 struct nfsrv_descript
*nd
,
2191 struct nfsm_chain
*nmc
,
2193 struct vnode_attr
*prevap
,
2195 struct vnode_attr
*postvap
)
2200 nfsm_chain_add_32(error
, nmc
, FALSE
);
2202 nfsm_chain_add_32(error
, nmc
, TRUE
);
2203 nfsm_chain_add_64(error
, nmc
, prevap
->va_data_size
);
2204 nfsm_chain_add_time(error
, nmc
, NFS_VER3
, &prevap
->va_modify_time
);
2205 nfsm_chain_add_time(error
, nmc
, NFS_VER3
, &prevap
->va_change_time
);
2207 nfsm_chain_add_postop_attr(error
, nd
, nmc
, postattrerr
, postvap
);
2213 * Extract a lookup path from the given mbufs and store it in
2214 * a newly allocated buffer saved in the given nameidata structure.
2217 nfsm_chain_get_path_namei(
2218 struct nfsm_chain
*nmc
,
2220 struct nameidata
*nip
)
2222 struct componentname
*cnp
= &nip
->ni_cnd
;
2226 if (len
> (MAXPATHLEN
- 1)) {
2227 return ENAMETOOLONG
;
2231 * Get a buffer for the name to be translated, and copy the
2232 * name into the buffer.
2234 MALLOC_ZONE(cnp
->cn_pnbuf
, caddr_t
, MAXPATHLEN
, M_NAMEI
, M_WAITOK
);
2235 if (!cnp
->cn_pnbuf
) {
2238 cnp
->cn_pnlen
= MAXPATHLEN
;
2239 cnp
->cn_flags
|= HASBUF
;
2241 /* Copy the name from the mbuf list to the string */
2243 nfsm_chain_get_opaque(error
, nmc
, len
, cp
);
2247 cnp
->cn_pnbuf
[len
] = '\0';
2249 /* sanity check the string */
2250 if ((strlen(cp
) != len
) || strchr(cp
, '/')) {
2255 if (cnp
->cn_pnbuf
) {
2256 FREE_ZONE(cnp
->cn_pnbuf
, MAXPATHLEN
, M_NAMEI
);
2258 cnp
->cn_flags
&= ~HASBUF
;
2260 nip
->ni_pathlen
= len
;
2266 * Set up nameidata for a lookup() call and do it.
2270 struct nfsrv_descript
*nd
,
2272 struct nameidata
*nip
,
2273 struct nfs_filehandle
*nfhp
,
2275 struct nfs_export
**nxp
,
2276 struct nfs_export_options
**nxop
)
2280 struct componentname
*cnp
= &nip
->ni_cnd
;
2287 * Extract and set starting directory.
2289 error
= nfsrv_fhtovp(nfhp
, nd
, &dp
, nxp
, nxop
);
2293 error
= nfsrv_credcheck(nd
, ctx
, *nxp
, *nxop
);
2294 if (error
|| (vnode_vtype(dp
) != VDIR
)) {
2301 nip
->ni_cnd
.cn_context
= ctx
;
2303 if (*nxop
&& ((*nxop
)->nxo_flags
& NX_READONLY
)) {
2304 cnp
->cn_flags
|= RDONLY
;
2307 cnp
->cn_flags
|= NOCROSSMOUNT
;
2308 cnp
->cn_nameptr
= cnp
->cn_pnbuf
;
2309 nip
->ni_usedvp
= nip
->ni_startdir
= dp
;
2310 nip
->ni_rootdir
= rootvnode
;
2313 * And call lookup() to do the real work
2315 cnflags
= nip
->ni_cnd
.cn_flags
; /* store in case we have to restore */
2316 while ((error
= lookup(nip
)) == ERECYCLE
) {
2317 nip
->ni_cnd
.cn_flags
= cnflags
;
2318 cnp
->cn_nameptr
= cnp
->cn_pnbuf
;
2319 nip
->ni_usedvp
= nip
->ni_dvp
= nip
->ni_startdir
= dp
;
2325 /* Check for encountering a symbolic link */
2326 if (cnp
->cn_flags
& ISSYMLINK
) {
2327 if (cnp
->cn_flags
& (LOCKPARENT
| WANTPARENT
)) {
2328 vnode_put(nip
->ni_dvp
);
2331 vnode_put(nip
->ni_vp
);
2338 tmppn
= cnp
->cn_pnbuf
;
2339 cnp
->cn_pnbuf
= NULL
;
2340 cnp
->cn_flags
&= ~HASBUF
;
2341 FREE_ZONE(tmppn
, cnp
->cn_pnlen
, M_NAMEI
);
2347 * A fiddled version of m_adj() that ensures null fill to a 4-byte
2348 * boundary and only trims off the back end
2351 nfsm_adj(mbuf_t mp
, int len
, int nul
)
2358 * Trim from tail. Scan the mbuf chain,
2359 * calculating its length and finding the last mbuf.
2360 * If the adjustment only affects this mbuf, then just
2361 * adjust and return. Otherwise, rescan and truncate
2362 * after the remaining size.
2369 mnext
= mbuf_next(m
);
2370 if (mnext
== NULL
) {
2377 mbuf_setlen(m
, mlen
);
2379 cp
= (caddr_t
)mbuf_data(m
) + mlen
- nul
;
2380 for (i
= 0; i
< nul
; i
++) {
2391 * Correct length for chain is "count".
2392 * Find the mbuf with last data, adjust its length,
2393 * and toss data from remaining mbufs on chain.
2395 for (m
= mp
; m
; m
= mbuf_next(m
)) {
2397 if (mlen
>= count
) {
2399 mbuf_setlen(m
, count
);
2401 cp
= (caddr_t
)mbuf_data(m
) + mlen
- nul
;
2402 for (i
= 0; i
< nul
; i
++) {
2410 for (m
= mbuf_next(m
); m
; m
= mbuf_next(m
)) {
2416 * Trim the header out of the mbuf list and trim off any trailing
2417 * junk so that the mbuf list has only the write data.
2420 nfsm_chain_trim_data(struct nfsm_chain
*nmc
, int len
, int *mlen
)
2422 int cnt
= 0, dlen
, adjust
;
2431 for (m
= nmc
->nmc_mhead
; m
&& (m
!= nmc
->nmc_mcur
); m
= mbuf_next(m
)) {
2438 /* trim current mbuf */
2439 data
= mbuf_data(m
);
2441 adjust
= nmc
->nmc_ptr
- data
;
2443 if ((dlen
> 0) && (adjust
> 0)) {
2444 if (mbuf_setdata(m
, nmc
->nmc_ptr
, dlen
)) {
2448 mbuf_setlen(m
, dlen
);
2451 /* skip next len bytes */
2452 for (; m
&& (cnt
< len
); m
= mbuf_next(m
)) {
2456 /* truncate to end of data */
2457 mbuf_setlen(m
, dlen
- (cnt
- len
));
2458 if (m
== nmc
->nmc_mcur
) {
2459 nmc
->nmc_left
-= (cnt
- len
);
2468 /* trim any trailing data */
2469 if (m
== nmc
->nmc_mcur
) {
2472 for (; m
; m
= mbuf_next(m
)) {
2480 nfsm_chain_add_fattr(
2481 struct nfsrv_descript
*nd
,
2482 struct nfsm_chain
*nmc
,
2483 struct vnode_attr
*vap
)
2487 // XXX Should we assert here that all fields are supported?
2489 nfsm_chain_add_32(error
, nmc
, vtonfs_type(vap
->va_type
, nd
->nd_vers
));
2490 if (nd
->nd_vers
== NFS_VER3
) {
2491 nfsm_chain_add_32(error
, nmc
, vap
->va_mode
& 07777);
2493 nfsm_chain_add_32(error
, nmc
, vtonfsv2_mode(vap
->va_type
, vap
->va_mode
));
2495 nfsm_chain_add_32(error
, nmc
, vap
->va_nlink
);
2496 nfsm_chain_add_32(error
, nmc
, vap
->va_uid
);
2497 nfsm_chain_add_32(error
, nmc
, vap
->va_gid
);
2498 if (nd
->nd_vers
== NFS_VER3
) {
2499 nfsm_chain_add_64(error
, nmc
, vap
->va_data_size
);
2500 nfsm_chain_add_64(error
, nmc
, vap
->va_data_alloc
);
2501 nfsm_chain_add_32(error
, nmc
, major(vap
->va_rdev
));
2502 nfsm_chain_add_32(error
, nmc
, minor(vap
->va_rdev
));
2503 nfsm_chain_add_64(error
, nmc
, vap
->va_fsid
);
2504 nfsm_chain_add_64(error
, nmc
, vap
->va_fileid
);
2506 nfsm_chain_add_32(error
, nmc
, vap
->va_data_size
);
2507 nfsm_chain_add_32(error
, nmc
, NFS_FABLKSIZE
);
2508 if (vap
->va_type
== VFIFO
) {
2509 nfsm_chain_add_32(error
, nmc
, 0xffffffff);
2511 nfsm_chain_add_32(error
, nmc
, vap
->va_rdev
);
2513 nfsm_chain_add_32(error
, nmc
, vap
->va_data_alloc
/ NFS_FABLKSIZE
);
2514 nfsm_chain_add_32(error
, nmc
, vap
->va_fsid
);
2515 nfsm_chain_add_32(error
, nmc
, vap
->va_fileid
);
2517 nfsm_chain_add_time(error
, nmc
, nd
->nd_vers
, &vap
->va_access_time
);
2518 nfsm_chain_add_time(error
, nmc
, nd
->nd_vers
, &vap
->va_modify_time
);
2519 nfsm_chain_add_time(error
, nmc
, nd
->nd_vers
, &vap
->va_change_time
);
2525 nfsm_chain_get_sattr(
2526 struct nfsrv_descript
*nd
,
2527 struct nfsm_chain
*nmc
,
2528 struct vnode_attr
*vap
)
2533 struct timespec now
;
2535 if (nd
->nd_vers
== NFS_VER2
) {
2537 * There is/was a bug in the Sun client that puts 0xffff in the mode
2538 * field of sattr when it should put in 0xffffffff. The u_short
2539 * doesn't sign extend. So check the low order 2 bytes for 0xffff.
2541 nfsm_chain_get_32(error
, nmc
, val
);
2542 if ((val
& 0xffff) != 0xffff) {
2543 VATTR_SET(vap
, va_mode
, val
& 07777);
2544 /* save the "type" bits for NFSv2 create */
2545 VATTR_SET(vap
, va_type
, IFTOVT(val
));
2546 VATTR_CLEAR_ACTIVE(vap
, va_type
);
2548 nfsm_chain_get_32(error
, nmc
, val
);
2549 if (val
!= (uint32_t)-1) {
2550 VATTR_SET(vap
, va_uid
, val
);
2552 nfsm_chain_get_32(error
, nmc
, val
);
2553 if (val
!= (uint32_t)-1) {
2554 VATTR_SET(vap
, va_gid
, val
);
2556 /* save the "size" bits for NFSv2 create (even if they appear unset) */
2557 nfsm_chain_get_32(error
, nmc
, val
);
2558 VATTR_SET(vap
, va_data_size
, val
);
2559 if (val
== (uint32_t)-1) {
2560 VATTR_CLEAR_ACTIVE(vap
, va_data_size
);
2562 nfsm_chain_get_time(error
, nmc
, NFS_VER2
,
2563 vap
->va_access_time
.tv_sec
,
2564 vap
->va_access_time
.tv_nsec
);
2565 if (vap
->va_access_time
.tv_sec
!= -1) {
2566 VATTR_SET_ACTIVE(vap
, va_access_time
);
2568 nfsm_chain_get_time(error
, nmc
, NFS_VER2
,
2569 vap
->va_modify_time
.tv_sec
,
2570 vap
->va_modify_time
.tv_nsec
);
2571 if (vap
->va_modify_time
.tv_sec
!= -1) {
2572 VATTR_SET_ACTIVE(vap
, va_modify_time
);
2578 nfsm_chain_get_32(error
, nmc
, val
);
2580 nfsm_chain_get_32(error
, nmc
, val
);
2581 VATTR_SET(vap
, va_mode
, val
& 07777);
2583 nfsm_chain_get_32(error
, nmc
, val
);
2585 nfsm_chain_get_32(error
, nmc
, val
);
2586 VATTR_SET(vap
, va_uid
, val
);
2588 nfsm_chain_get_32(error
, nmc
, val
);
2590 nfsm_chain_get_32(error
, nmc
, val
);
2591 VATTR_SET(vap
, va_gid
, val
);
2593 nfsm_chain_get_32(error
, nmc
, val
);
2595 nfsm_chain_get_64(error
, nmc
, val64
);
2596 VATTR_SET(vap
, va_data_size
, val64
);
2599 nfsm_chain_get_32(error
, nmc
, val
);
2601 case NFS_TIME_SET_TO_CLIENT
:
2602 nfsm_chain_get_time(error
, nmc
, nd
->nd_vers
,
2603 vap
->va_access_time
.tv_sec
,
2604 vap
->va_access_time
.tv_nsec
);
2605 VATTR_SET_ACTIVE(vap
, va_access_time
);
2606 vap
->va_vaflags
&= ~VA_UTIMES_NULL
;
2608 case NFS_TIME_SET_TO_SERVER
:
2609 VATTR_SET(vap
, va_access_time
, now
);
2610 vap
->va_vaflags
|= VA_UTIMES_NULL
;
2613 nfsm_chain_get_32(error
, nmc
, val
);
2615 case NFS_TIME_SET_TO_CLIENT
:
2616 nfsm_chain_get_time(error
, nmc
, nd
->nd_vers
,
2617 vap
->va_modify_time
.tv_sec
,
2618 vap
->va_modify_time
.tv_nsec
);
2619 VATTR_SET_ACTIVE(vap
, va_modify_time
);
2620 vap
->va_vaflags
&= ~VA_UTIMES_NULL
;
2622 case NFS_TIME_SET_TO_SERVER
:
2623 VATTR_SET(vap
, va_modify_time
, now
);
2624 if (!VATTR_IS_ACTIVE(vap
, va_access_time
)) {
2625 vap
->va_vaflags
|= VA_UTIMES_NULL
;
2634 * Compare two security flavor structs
2637 nfsrv_cmp_secflavs(struct nfs_sec
*sf1
, struct nfs_sec
*sf2
)
2641 if (sf1
->count
!= sf2
->count
) {
2644 for (i
= 0; i
< sf1
->count
; i
++) {
2645 if (sf1
->flavors
[i
] != sf2
->flavors
[i
]) {
2653 * Build hash lists of net addresses and hang them off the NFS export.
2654 * Called by nfsrv_export() to set up the lists of export addresses.
2657 nfsrv_hang_addrlist(struct nfs_export
*nx
, struct user_nfs_export_args
*unxa
)
2659 struct nfs_export_net_args nxna
;
2660 struct nfs_netopt
*no
, *rn_no
;
2661 struct radix_node_head
*rnh
;
2662 struct radix_node
*rn
;
2663 struct sockaddr
*saddr
, *smask
;
2670 uaddr
= unxa
->nxa_nets
;
2671 for (net
= 0; net
< unxa
->nxa_netcount
; net
++, uaddr
+= sizeof(nxna
)) {
2672 error
= copyin(uaddr
, &nxna
, sizeof(nxna
));
2677 if (nxna
.nxna_addr
.ss_len
> sizeof(struct sockaddr_storage
) ||
2678 nxna
.nxna_mask
.ss_len
> sizeof(struct sockaddr_storage
) ||
2679 nxna
.nxna_addr
.ss_family
> AF_MAX
||
2680 nxna
.nxna_mask
.ss_family
> AF_MAX
) {
2684 if (nxna
.nxna_flags
& (NX_MAPROOT
| NX_MAPALL
)) {
2685 struct posix_cred temp_pcred
;
2686 bzero(&temp_pcred
, sizeof(temp_pcred
));
2687 temp_pcred
.cr_uid
= nxna
.nxna_cred
.cr_uid
;
2688 temp_pcred
.cr_ngroups
= nxna
.nxna_cred
.cr_ngroups
;
2689 for (i
= 0; i
< nxna
.nxna_cred
.cr_ngroups
&& i
< NGROUPS
; i
++) {
2690 temp_pcred
.cr_groups
[i
] = nxna
.nxna_cred
.cr_groups
[i
];
2692 cred
= posix_cred_create(&temp_pcred
);
2693 if (!IS_VALID_CRED(cred
)) {
2700 if (nxna
.nxna_addr
.ss_len
== 0) {
2701 /* No address means this is a default/world export */
2702 if (nx
->nx_flags
& NX_DEFAULTEXPORT
) {
2703 if (IS_VALID_CRED(cred
)) {
2704 kauth_cred_unref(&cred
);
2708 nx
->nx_flags
|= NX_DEFAULTEXPORT
;
2709 nx
->nx_defopt
.nxo_flags
= nxna
.nxna_flags
;
2710 nx
->nx_defopt
.nxo_cred
= cred
;
2711 bcopy(&nxna
.nxna_sec
, &nx
->nx_defopt
.nxo_sec
, sizeof(struct nfs_sec
));
2716 i
= sizeof(struct nfs_netopt
);
2717 i
+= nxna
.nxna_addr
.ss_len
+ nxna
.nxna_mask
.ss_len
;
2718 MALLOC(no
, struct nfs_netopt
*, i
, M_NETADDR
, M_WAITOK
);
2720 if (IS_VALID_CRED(cred
)) {
2721 kauth_cred_unref(&cred
);
2725 bzero(no
, sizeof(struct nfs_netopt
));
2726 no
->no_opt
.nxo_flags
= nxna
.nxna_flags
;
2727 no
->no_opt
.nxo_cred
= cred
;
2728 bcopy(&nxna
.nxna_sec
, &no
->no_opt
.nxo_sec
, sizeof(struct nfs_sec
));
2730 saddr
= (struct sockaddr
*)(no
+ 1);
2731 bcopy(&nxna
.nxna_addr
, saddr
, nxna
.nxna_addr
.ss_len
);
2732 if (nxna
.nxna_mask
.ss_len
) {
2733 smask
= (struct sockaddr
*)((caddr_t
)saddr
+ nxna
.nxna_addr
.ss_len
);
2734 bcopy(&nxna
.nxna_mask
, smask
, nxna
.nxna_mask
.ss_len
);
2738 i
= saddr
->sa_family
;
2739 if ((rnh
= nx
->nx_rtable
[i
]) == 0) {
2741 * Seems silly to initialize every AF when most are not
2742 * used, do so on demand here
2744 TAILQ_FOREACH(dom
, &domains
, dom_entry
) {
2745 if (dom
->dom_family
== i
&& dom
->dom_rtattach
) {
2746 dom
->dom_rtattach((void **)&nx
->nx_rtable
[i
],
2751 if ((rnh
= nx
->nx_rtable
[i
]) == 0) {
2752 if (IS_VALID_CRED(cred
)) {
2753 kauth_cred_unref(&cred
);
2755 _FREE(no
, M_NETADDR
);
2759 rn
= (*rnh
->rnh_addaddr
)((caddr_t
)saddr
, (caddr_t
)smask
, rnh
, no
->no_rnodes
);
2762 * One of the reasons that rnh_addaddr may fail is that
2763 * the entry already exists. To check for this case, we
2764 * look up the entry to see if it is there. If so, we
2765 * do not need to make a new entry but do continue.
2767 * XXX should this be rnh_lookup() instead?
2770 rn
= (*rnh
->rnh_matchaddr
)((caddr_t
)saddr
, rnh
);
2771 rn_no
= (struct nfs_netopt
*)rn
;
2772 if (rn
!= 0 && (rn
->rn_flags
& RNF_ROOT
) == 0 &&
2773 (rn_no
->no_opt
.nxo_flags
== nxna
.nxna_flags
) &&
2774 (!nfsrv_cmp_secflavs(&rn_no
->no_opt
.nxo_sec
, &nxna
.nxna_sec
))) {
2775 kauth_cred_t cred2
= rn_no
->no_opt
.nxo_cred
;
2776 if (cred
== cred2
) {
2777 /* creds are same (or both NULL) */
2779 } else if (cred
&& cred2
&& (kauth_cred_getuid(cred
) == kauth_cred_getuid(cred2
))) {
2781 * Now compare the effective and
2782 * supplementary groups...
2784 * Note: This comparison, as written,
2785 * does not correctly indicate that
2786 * the groups are equivalent, since
2787 * other than the first supplementary
2788 * group, which is also the effective
2789 * group, order on the remaining groups
2790 * doesn't matter, and this is an
2793 gid_t groups
[NGROUPS
];
2794 gid_t groups2
[NGROUPS
];
2795 int groupcount
= NGROUPS
;
2796 int group2count
= NGROUPS
;
2798 if (!kauth_cred_getgroups(cred
, groups
, &groupcount
) &&
2799 !kauth_cred_getgroups(cred2
, groups2
, &group2count
) &&
2800 groupcount
== group2count
) {
2801 for (i
= 0; i
< group2count
; i
++) {
2802 if (groups
[i
] != groups2
[i
]) {
2806 if (i
>= group2count
|| i
>= NGROUPS
) {
2812 if (IS_VALID_CRED(cred
)) {
2813 kauth_cred_unref(&cred
);
2815 _FREE(no
, M_NETADDR
);
2828 * In order to properly track an export's netopt count, we need to pass
2829 * an additional argument to nfsrv_free_netopt() so that it can decrement
2830 * the export's netopt count.
2832 struct nfsrv_free_netopt_arg
{
2834 struct radix_node_head
*rnh
;
2838 nfsrv_free_netopt(struct radix_node
*rn
, void *w
)
2840 struct nfsrv_free_netopt_arg
*fna
= (struct nfsrv_free_netopt_arg
*)w
;
2841 struct radix_node_head
*rnh
= fna
->rnh
;
2842 uint32_t *cnt
= fna
->cnt
;
2843 struct nfs_netopt
*nno
= (struct nfs_netopt
*)rn
;
2845 (*rnh
->rnh_deladdr
)(rn
->rn_key
, rn
->rn_mask
, rnh
);
2846 if (IS_VALID_CRED(nno
->no_opt
.nxo_cred
)) {
2847 kauth_cred_unref(&nno
->no_opt
.nxo_cred
);
2849 _FREE((caddr_t
)rn
, M_NETADDR
);
2855 * Free the net address hash lists that are hanging off the mount points.
2858 nfsrv_free_addrlist(struct nfs_export
*nx
, struct user_nfs_export_args
*unxa
)
2860 struct nfs_export_net_args nxna
;
2861 struct radix_node_head
*rnh
;
2862 struct radix_node
*rn
;
2863 struct nfsrv_free_netopt_arg fna
;
2864 struct nfs_netopt
*nno
;
2869 if (!unxa
|| !unxa
->nxa_netcount
) {
2870 /* delete everything */
2871 for (i
= 0; i
<= AF_MAX
; i
++) {
2872 if ((rnh
= nx
->nx_rtable
[i
])) {
2874 fna
.cnt
= &nx
->nx_expcnt
;
2875 (*rnh
->rnh_walktree
)(rnh
, nfsrv_free_netopt
, (caddr_t
)&fna
);
2876 _FREE((caddr_t
)rnh
, M_RTABLE
);
2877 nx
->nx_rtable
[i
] = 0;
2883 /* delete only the exports specified */
2884 uaddr
= unxa
->nxa_nets
;
2885 for (net
= 0; net
< unxa
->nxa_netcount
; net
++, uaddr
+= sizeof(nxna
)) {
2886 error
= copyin(uaddr
, &nxna
, sizeof(nxna
));
2891 if (nxna
.nxna_addr
.ss_len
== 0) {
2892 /* No address means this is a default/world export */
2893 if (nx
->nx_flags
& NX_DEFAULTEXPORT
) {
2894 nx
->nx_flags
&= ~NX_DEFAULTEXPORT
;
2895 if (IS_VALID_CRED(nx
->nx_defopt
.nxo_cred
)) {
2896 kauth_cred_unref(&nx
->nx_defopt
.nxo_cred
);
2903 if ((rnh
= nx
->nx_rtable
[nxna
.nxna_addr
.ss_family
]) == 0) {
2904 /* AF not initialized? */
2905 if (!(unxa
->nxa_flags
& NXA_ADD
)) {
2906 printf("nfsrv_free_addrlist: address not found (0)\n");
2911 rn
= (*rnh
->rnh_lookup
)(&nxna
.nxna_addr
,
2912 nxna
.nxna_mask
.ss_len
? &nxna
.nxna_mask
: NULL
, rnh
);
2913 if (!rn
|| (rn
->rn_flags
& RNF_ROOT
)) {
2914 if (!(unxa
->nxa_flags
& NXA_ADD
)) {
2915 printf("nfsrv_free_addrlist: address not found (1)\n");
2920 (*rnh
->rnh_deladdr
)(rn
->rn_key
, rn
->rn_mask
, rnh
);
2921 nno
= (struct nfs_netopt
*)rn
;
2922 if (IS_VALID_CRED(nno
->no_opt
.nxo_cred
)) {
2923 kauth_cred_unref(&nno
->no_opt
.nxo_cred
);
2925 _FREE((caddr_t
)rn
, M_NETADDR
);
2928 if (nx
->nx_expcnt
== ((nx
->nx_flags
& NX_DEFAULTEXPORT
) ? 1 : 0)) {
2929 /* no more entries in rnh, so free it up */
2930 _FREE((caddr_t
)rnh
, M_RTABLE
);
2931 nx
->nx_rtable
[nxna
.nxna_addr
.ss_family
] = 0;
2938 void enablequotas(struct mount
*mp
, vfs_context_t ctx
); // XXX
2941 nfsrv_export(struct user_nfs_export_args
*unxa
, vfs_context_t ctx
)
2945 struct nfs_exportfs
*nxfs
, *nxfs2
, *nxfs3
;
2946 struct nfs_export
*nx
, *nx2
, *nx3
;
2947 struct nfs_filehandle nfh
;
2948 struct nameidata mnd
, xnd
;
2949 vnode_t mvp
= NULL
, xvp
= NULL
;
2951 char path
[MAXPATHLEN
];
2954 if (unxa
->nxa_flags
== NXA_CHECK
) {
2955 /* just check if the path is an NFS-exportable file system */
2956 error
= copyinstr(unxa
->nxa_fspath
, path
, MAXPATHLEN
, &pathlen
);
2960 NDINIT(&mnd
, LOOKUP
, OP_LOOKUP
, FOLLOW
| LOCKLEAF
| AUDITVNPATH1
,
2961 UIO_SYSSPACE
, CAST_USER_ADDR_T(path
), ctx
);
2962 error
= namei(&mnd
);
2967 mp
= vnode_mount(mvp
);
2968 /* make sure it's the root of a file system */
2969 if (!vnode_isvroot(mvp
)) {
2972 /* make sure the file system is NFS-exportable */
2974 nfh
.nfh_len
= NFSV3_MAX_FID_SIZE
;
2975 error
= VFS_VPTOFH(mvp
, (int*)&nfh
.nfh_len
, &nfh
.nfh_fid
[0], NULL
);
2977 if (!error
&& (nfh
.nfh_len
> (int)NFSV3_MAX_FID_SIZE
)) {
2980 if (!error
&& !(mp
->mnt_vtable
->vfc_vfsflags
& VFC_VFSREADDIR_EXTENDED
)) {
2988 /* all other operations: must be super user */
2989 if ((error
= vfs_context_suser(ctx
))) {
2993 if (unxa
->nxa_flags
& NXA_DELETE_ALL
) {
2994 /* delete all exports on all file systems */
2995 lck_rw_lock_exclusive(&nfsrv_export_rwlock
);
2996 while ((nxfs
= LIST_FIRST(&nfsrv_exports
))) {
2997 mp
= vfs_getvfs_by_mntonname(nxfs
->nxfs_path
);
2999 vfs_clearflags(mp
, MNT_EXPORTED
);
3003 /* delete all exports on this file system */
3004 while ((nx
= LIST_FIRST(&nxfs
->nxfs_exports
))) {
3005 LIST_REMOVE(nx
, nx_next
);
3006 LIST_REMOVE(nx
, nx_hash
);
3007 /* delete all netopts for this export */
3008 nfsrv_free_addrlist(nx
, NULL
);
3009 nx
->nx_flags
&= ~NX_DEFAULTEXPORT
;
3010 if (IS_VALID_CRED(nx
->nx_defopt
.nxo_cred
)) {
3011 kauth_cred_unref(&nx
->nx_defopt
.nxo_cred
);
3013 /* free active user list for this export */
3014 nfsrv_free_user_list(&nx
->nx_user_list
);
3015 FREE(nx
->nx_path
, M_TEMP
);
3018 LIST_REMOVE(nxfs
, nxfs_next
);
3019 FREE(nxfs
->nxfs_path
, M_TEMP
);
3022 if (nfsrv_export_hashtbl
) {
3023 /* all exports deleted, clean up export hash table */
3024 FREE(nfsrv_export_hashtbl
, M_TEMP
);
3025 nfsrv_export_hashtbl
= NULL
;
3027 lck_rw_done(&nfsrv_export_rwlock
);
3031 error
= copyinstr(unxa
->nxa_fspath
, path
, MAXPATHLEN
, &pathlen
);
3036 lck_rw_lock_exclusive(&nfsrv_export_rwlock
);
3038 /* init export hash table if not already */
3039 if (!nfsrv_export_hashtbl
) {
3040 if (nfsrv_export_hash_size
<= 0) {
3041 nfsrv_export_hash_size
= NFSRVEXPHASHSZ
;
3043 nfsrv_export_hashtbl
= hashinit(nfsrv_export_hash_size
, M_TEMP
, &nfsrv_export_hash
);
3046 // first check if we've already got an exportfs with the given ID
3047 LIST_FOREACH(nxfs
, &nfsrv_exports
, nxfs_next
) {
3048 if (nxfs
->nxfs_id
== unxa
->nxa_fsid
) {
3053 /* verify exported FS path matches given path */
3054 if (strncmp(path
, nxfs
->nxfs_path
, MAXPATHLEN
)) {
3058 if ((unxa
->nxa_flags
& (NXA_ADD
| NXA_OFFLINE
)) == NXA_ADD
) {
3059 /* if adding, verify that the mount is still what we expect */
3060 mp
= vfs_getvfs_by_mntonname(nxfs
->nxfs_path
);
3065 /* find exported FS root vnode */
3066 NDINIT(&mnd
, LOOKUP
, OP_LOOKUP
, FOLLOW
| LOCKLEAF
| AUDITVNPATH1
,
3067 UIO_SYSSPACE
, CAST_USER_ADDR_T(nxfs
->nxfs_path
), ctx
);
3068 error
= namei(&mnd
);
3073 /* make sure it's (still) the root of a file system */
3074 if (!vnode_isvroot(mvp
)) {
3078 /* sanity check: this should be same mount */
3079 if (mp
!= vnode_mount(mvp
)) {
3085 /* no current exported file system with that ID */
3086 if (!(unxa
->nxa_flags
& NXA_ADD
)) {
3091 /* find exported FS root vnode */
3092 NDINIT(&mnd
, LOOKUP
, OP_LOOKUP
, FOLLOW
| LOCKLEAF
| AUDITVNPATH1
,
3093 UIO_SYSSPACE
, CAST_USER_ADDR_T(path
), ctx
);
3094 error
= namei(&mnd
);
3096 if (!(unxa
->nxa_flags
& NXA_OFFLINE
)) {
3101 /* make sure it's the root of a file system */
3102 if (!vnode_isvroot(mvp
)) {
3103 /* bail if not marked offline */
3104 if (!(unxa
->nxa_flags
& NXA_OFFLINE
)) {
3112 mp
= vnode_mount(mvp
);
3115 /* make sure the file system is NFS-exportable */
3116 nfh
.nfh_len
= NFSV3_MAX_FID_SIZE
;
3117 error
= VFS_VPTOFH(mvp
, (int*)&nfh
.nfh_len
, &nfh
.nfh_fid
[0], NULL
);
3118 if (!error
&& (nfh
.nfh_len
> (int)NFSV3_MAX_FID_SIZE
)) {
3121 if (!error
&& !(mp
->mnt_vtable
->vfc_vfsflags
& VFC_VFSREADDIR_EXTENDED
)) {
3130 /* add an exportfs for it */
3131 MALLOC(nxfs
, struct nfs_exportfs
*, sizeof(struct nfs_exportfs
), M_TEMP
, M_WAITOK
);
3136 bzero(nxfs
, sizeof(struct nfs_exportfs
));
3137 nxfs
->nxfs_id
= unxa
->nxa_fsid
;
3138 MALLOC(nxfs
->nxfs_path
, char*, pathlen
, M_TEMP
, M_WAITOK
);
3139 if (!nxfs
->nxfs_path
) {
3144 bcopy(path
, nxfs
->nxfs_path
, pathlen
);
3145 /* insert into list in reverse-sorted order */
3147 LIST_FOREACH(nxfs2
, &nfsrv_exports
, nxfs_next
) {
3148 if (strncmp(nxfs
->nxfs_path
, nxfs2
->nxfs_path
, MAXPATHLEN
) > 0) {
3154 LIST_INSERT_BEFORE(nxfs2
, nxfs
, nxfs_next
);
3156 LIST_INSERT_AFTER(nxfs3
, nxfs
, nxfs_next
);
3158 LIST_INSERT_HEAD(&nfsrv_exports
, nxfs
, nxfs_next
);
3161 /* make sure any quotas are enabled before we export the file system */
3163 enablequotas(mp
, ctx
);
3167 if (unxa
->nxa_exppath
) {
3168 error
= copyinstr(unxa
->nxa_exppath
, path
, MAXPATHLEN
, &pathlen
);
3172 LIST_FOREACH(nx
, &nxfs
->nxfs_exports
, nx_next
) {
3173 if (nx
->nx_id
== unxa
->nxa_expid
) {
3178 /* verify exported FS path matches given path */
3179 if (strncmp(path
, nx
->nx_path
, MAXPATHLEN
)) {
3184 /* no current export with that ID */
3185 if (!(unxa
->nxa_flags
& NXA_ADD
)) {
3189 /* add an export for it */
3190 MALLOC(nx
, struct nfs_export
*, sizeof(struct nfs_export
), M_TEMP
, M_WAITOK
);
3195 bzero(nx
, sizeof(struct nfs_export
));
3196 nx
->nx_id
= unxa
->nxa_expid
;
3198 microtime(&nx
->nx_exptime
);
3199 MALLOC(nx
->nx_path
, char*, pathlen
, M_TEMP
, M_WAITOK
);
3206 bcopy(path
, nx
->nx_path
, pathlen
);
3207 /* initialize the active user list */
3208 nfsrv_init_user_list(&nx
->nx_user_list
);
3209 /* insert into list in reverse-sorted order */
3211 LIST_FOREACH(nx2
, &nxfs
->nxfs_exports
, nx_next
) {
3212 if (strncmp(nx
->nx_path
, nx2
->nx_path
, MAXPATHLEN
) > 0) {
3218 LIST_INSERT_BEFORE(nx2
, nx
, nx_next
);
3220 LIST_INSERT_AFTER(nx3
, nx
, nx_next
);
3222 LIST_INSERT_HEAD(&nxfs
->nxfs_exports
, nx
, nx_next
);
3224 /* insert into hash */
3225 LIST_INSERT_HEAD(NFSRVEXPHASH(nxfs
->nxfs_id
, nx
->nx_id
), nx
, nx_hash
);
3228 * We don't allow/support nested exports. Check if the new entry
3229 * nests with the entries before and after or if there's an
3230 * entry for the file system root and subdirs.
3233 if ((nx3
&& !strncmp(nx3
->nx_path
, nx
->nx_path
, pathlen
- 1) &&
3234 (nx3
->nx_path
[pathlen
- 1] == '/')) ||
3235 (nx2
&& !strncmp(nx2
->nx_path
, nx
->nx_path
, strlen(nx2
->nx_path
)) &&
3236 (nx
->nx_path
[strlen(nx2
->nx_path
)] == '/'))) {
3240 /* check export conflict with fs root export and vice versa */
3241 expisroot
= !nx
->nx_path
[0] ||
3242 ((nx
->nx_path
[0] == '.') && !nx
->nx_path
[1]);
3243 LIST_FOREACH(nx2
, &nxfs
->nxfs_exports
, nx_next
) {
3248 } else if (!nx2
->nx_path
[0]) {
3250 } else if ((nx2
->nx_path
[0] == '.') && !nx2
->nx_path
[1]) {
3260 * Don't actually return an error because mountd is
3261 * probably about to delete the conflicting export.
3262 * This can happen when a new export momentarily conflicts
3263 * with an old export while the transition is being made.
3264 * Theoretically, mountd could be written to avoid this
3265 * transient situation - but it would greatly increase the
3266 * complexity of mountd for very little overall benefit.
3268 printf("nfsrv_export: warning: nested exports: %s/%s\n",
3269 nxfs
->nxfs_path
, nx
->nx_path
);
3272 nx
->nx_fh
.nfh_xh
.nxh_flags
= NXHF_INVALIDFH
;
3274 /* make sure file handle is set up */
3275 if ((nx
->nx_fh
.nfh_xh
.nxh_version
!= htonl(NFS_FH_VERSION
)) ||
3276 (nx
->nx_fh
.nfh_xh
.nxh_flags
& NXHF_INVALIDFH
)) {
3277 /* try to set up export root file handle */
3278 nx
->nx_fh
.nfh_xh
.nxh_version
= htonl(NFS_FH_VERSION
);
3279 nx
->nx_fh
.nfh_xh
.nxh_fsid
= htonl(nx
->nx_fs
->nxfs_id
);
3280 nx
->nx_fh
.nfh_xh
.nxh_expid
= htonl(nx
->nx_id
);
3281 nx
->nx_fh
.nfh_xh
.nxh_flags
= 0;
3282 nx
->nx_fh
.nfh_xh
.nxh_reserved
= 0;
3283 nx
->nx_fh
.nfh_fhp
= (u_char
*)&nx
->nx_fh
.nfh_xh
;
3284 bzero(&nx
->nx_fh
.nfh_fid
[0], NFSV2_MAX_FID_SIZE
);
3286 /* find export root vnode */
3287 if (!nx
->nx_path
[0] || ((nx
->nx_path
[0] == '.') && !nx
->nx_path
[1])) {
3288 /* exporting file system's root directory */
3292 xnd
.ni_cnd
.cn_nameiop
= LOOKUP
;
3294 xnd
.ni_op
= OP_LOOKUP
;
3296 xnd
.ni_cnd
.cn_flags
= LOCKLEAF
;
3297 xnd
.ni_pathlen
= pathlen
- 1;
3298 xnd
.ni_cnd
.cn_nameptr
= xnd
.ni_cnd
.cn_pnbuf
= path
;
3299 xnd
.ni_startdir
= mvp
;
3300 xnd
.ni_usedvp
= mvp
;
3301 xnd
.ni_rootdir
= rootvnode
;
3302 xnd
.ni_cnd
.cn_context
= ctx
;
3303 while ((error
= lookup(&xnd
)) == ERECYCLE
) {
3304 xnd
.ni_cnd
.cn_flags
= LOCKLEAF
;
3305 xnd
.ni_cnd
.cn_nameptr
= xnd
.ni_cnd
.cn_pnbuf
;
3306 xnd
.ni_usedvp
= xnd
.ni_dvp
= xnd
.ni_startdir
= mvp
;
3314 if (vnode_vtype(xvp
) != VDIR
) {
3320 /* grab file handle */
3321 nx
->nx_fh
.nfh_len
= NFSV3_MAX_FID_SIZE
;
3322 error
= VFS_VPTOFH(xvp
, (int*)&nx
->nx_fh
.nfh_len
, &nx
->nx_fh
.nfh_fid
[0], NULL
);
3323 if (!error
&& (nx
->nx_fh
.nfh_len
> (int)NFSV3_MAX_FID_SIZE
)) {
3326 nx
->nx_fh
.nfh_xh
.nxh_fidlen
= nx
->nx_fh
.nfh_len
;
3327 nx
->nx_fh
.nfh_len
+= sizeof(nx
->nx_fh
.nfh_xh
);
3335 nx
->nx_fh
.nfh_xh
.nxh_flags
= NXHF_INVALIDFH
;
3336 nx
->nx_fh
.nfh_xh
.nxh_fidlen
= 0;
3337 nx
->nx_fh
.nfh_len
= sizeof(nx
->nx_fh
.nfh_xh
);
3344 /* perform the export changes */
3345 if (unxa
->nxa_flags
& NXA_DELETE
) {
3347 /* delete all exports on this file system */
3348 while ((nx
= LIST_FIRST(&nxfs
->nxfs_exports
))) {
3349 LIST_REMOVE(nx
, nx_next
);
3350 LIST_REMOVE(nx
, nx_hash
);
3351 /* delete all netopts for this export */
3352 nfsrv_free_addrlist(nx
, NULL
);
3353 nx
->nx_flags
&= ~NX_DEFAULTEXPORT
;
3354 if (IS_VALID_CRED(nx
->nx_defopt
.nxo_cred
)) {
3355 kauth_cred_unref(&nx
->nx_defopt
.nxo_cred
);
3357 /* delete active user list for this export */
3358 nfsrv_free_user_list(&nx
->nx_user_list
);
3359 FREE(nx
->nx_path
, M_TEMP
);
3363 } else if (!unxa
->nxa_netcount
) {
3364 /* delete all netopts for this export */
3365 nfsrv_free_addrlist(nx
, NULL
);
3366 nx
->nx_flags
&= ~NX_DEFAULTEXPORT
;
3367 if (IS_VALID_CRED(nx
->nx_defopt
.nxo_cred
)) {
3368 kauth_cred_unref(&nx
->nx_defopt
.nxo_cred
);
3371 /* delete only the netopts for the given addresses */
3372 error
= nfsrv_free_addrlist(nx
, unxa
);
3378 if (unxa
->nxa_flags
& NXA_ADD
) {
3380 * If going offline set the export time so that when
3381 * coming back on line we will present a new write verifier
3384 if (unxa
->nxa_flags
& NXA_OFFLINE
) {
3385 microtime(&nx
->nx_exptime
);
3388 error
= nfsrv_hang_addrlist(nx
, unxa
);
3390 vfs_setflags(mp
, MNT_EXPORTED
);
3395 if (nx
&& !nx
->nx_expcnt
) {
3396 /* export has no export options */
3397 LIST_REMOVE(nx
, nx_next
);
3398 LIST_REMOVE(nx
, nx_hash
);
3399 /* delete active user list for this export */
3400 nfsrv_free_user_list(&nx
->nx_user_list
);
3401 FREE(nx
->nx_path
, M_TEMP
);
3404 if (LIST_EMPTY(&nxfs
->nxfs_exports
)) {
3405 /* exported file system has no more exports */
3406 LIST_REMOVE(nxfs
, nxfs_next
);
3407 FREE(nxfs
->nxfs_path
, M_TEMP
);
3410 vfs_clearflags(mp
, MNT_EXPORTED
);
3423 lck_rw_done(&nfsrv_export_rwlock
);
3428 * Check if there is a least one export that will allow this address.
3430 * Return 0, if there is an export that will allow this address,
3431 * else return EACCES
3434 nfsrv_check_exports_allow_address(mbuf_t nam
)
3436 struct nfs_exportfs
*nxfs
;
3437 struct nfs_export
*nx
;
3438 struct nfs_export_options
*nxo
= NULL
;
3444 lck_rw_lock_shared(&nfsrv_export_rwlock
);
3445 LIST_FOREACH(nxfs
, &nfsrv_exports
, nxfs_next
) {
3446 LIST_FOREACH(nx
, &nxfs
->nxfs_exports
, nx_next
) {
3447 /* A little optimizing by checking for the default first */
3448 if (nx
->nx_flags
& NX_DEFAULTEXPORT
) {
3449 nxo
= &nx
->nx_defopt
;
3451 if (nxo
|| (nxo
= nfsrv_export_lookup(nx
, nam
))) {
3457 lck_rw_done(&nfsrv_export_rwlock
);
3459 return nxo
? 0 : EACCES
;
3462 struct nfs_export_options
*
3463 nfsrv_export_lookup(struct nfs_export
*nx
, mbuf_t nam
)
3465 struct nfs_export_options
*nxo
= NULL
;
3466 struct nfs_netopt
*no
= NULL
;
3467 struct radix_node_head
*rnh
;
3468 struct sockaddr
*saddr
;
3470 /* Lookup in the export list first. */
3472 saddr
= mbuf_data(nam
);
3473 if (saddr
->sa_family
> AF_MAX
) {
3474 /* Bogus sockaddr? Don't match anything. */
3477 rnh
= nx
->nx_rtable
[saddr
->sa_family
];
3479 no
= (struct nfs_netopt
*)
3480 (*rnh
->rnh_matchaddr
)((caddr_t
)saddr
, rnh
);
3481 if (no
&& no
->no_rnodes
->rn_flags
& RNF_ROOT
) {
3489 /* If no address match, use the default if it exists. */
3490 if ((nxo
== NULL
) && (nx
->nx_flags
& NX_DEFAULTEXPORT
)) {
3491 nxo
= &nx
->nx_defopt
;
3496 /* find an export for the given handle */
3498 nfsrv_fhtoexport(struct nfs_filehandle
*nfhp
)
3500 struct nfs_exphandle
*nxh
= (struct nfs_exphandle
*)nfhp
->nfh_fhp
;
3501 struct nfs_export
*nx
;
3502 uint32_t fsid
, expid
;
3504 if (!nfsrv_export_hashtbl
) {
3507 fsid
= ntohl(nxh
->nxh_fsid
);
3508 expid
= ntohl(nxh
->nxh_expid
);
3509 nx
= NFSRVEXPHASH(fsid
, expid
)->lh_first
;
3510 for (; nx
; nx
= LIST_NEXT(nx
, nx_hash
)) {
3511 if (nx
->nx_fs
->nxfs_id
!= fsid
) {
3514 if (nx
->nx_id
!= expid
) {
3523 * nfsrv_fhtovp() - convert FH to vnode and export info
3527 struct nfs_filehandle
*nfhp
,
3528 struct nfsrv_descript
*nd
,
3530 struct nfs_export
**nxp
,
3531 struct nfs_export_options
**nxop
)
3533 struct nfs_exphandle
*nxh
= (struct nfs_exphandle
*)nfhp
->nfh_fhp
;
3534 struct nfs_export_options
*nxo
;
3550 v
= ntohl(nxh
->nxh_version
);
3551 if (v
!= NFS_FH_VERSION
) {
3552 /* file handle format not supported */
3555 if (nfhp
->nfh_len
> NFSV3_MAX_FH_SIZE
) {
3558 if (nfhp
->nfh_len
< (int)sizeof(struct nfs_exphandle
)) {
3561 v
= ntohs(nxh
->nxh_flags
);
3562 if (v
& NXHF_INVALIDFH
) {
3566 *nxp
= nfsrv_fhtoexport(nfhp
);
3571 /* Get the export option structure for this <export, client> tuple. */
3572 *nxop
= nxo
= nfsrv_export_lookup(*nxp
, nam
);
3573 if (nam
&& (*nxop
== NULL
)) {
3578 /* Validate the security flavor of the request */
3579 for (i
= 0, valid
= 0; i
< nxo
->nxo_sec
.count
; i
++) {
3580 if (nd
->nd_sec
== nxo
->nxo_sec
.flavors
[i
]) {
3587 * RFC 2623 section 2.3.2 recommends no authentication
3588 * requirement for certain NFS procedures used for mounting.
3589 * This allows an unauthenticated superuser on the client
3590 * to do mounts for the benefit of authenticated users.
3592 if (nd
->nd_vers
== NFS_VER2
) {
3593 if (nd
->nd_procnum
== NFSV2PROC_GETATTR
||
3594 nd
->nd_procnum
== NFSV2PROC_STATFS
) {
3598 if (nd
->nd_vers
== NFS_VER3
) {
3599 if (nd
->nd_procnum
== NFSPROC_FSINFO
) {
3605 return NFSERR_AUTHERR
| AUTH_REJECTCRED
;
3610 if (nxo
&& (nxo
->nxo_flags
& NX_OFFLINE
)) {
3611 return (nd
== NULL
|| nd
->nd_vers
== NFS_VER2
) ? ESTALE
: NFSERR_TRYLATER
;
3614 /* find mount structure */
3615 mp
= vfs_getvfs_by_mntonname((*nxp
)->nx_fs
->nxfs_path
);
3617 error
= vfs_busy(mp
, LK_NOWAIT
);
3625 * We have an export, but no mount?
3626 * Perhaps the export just hasn't been marked offline yet.
3628 return (nd
== NULL
|| nd
->nd_vers
== NFS_VER2
) ? ESTALE
: NFSERR_TRYLATER
;
3631 fidp
= nfhp
->nfh_fhp
+ sizeof(*nxh
);
3632 error
= VFS_FHTOVP(mp
, nxh
->nxh_fidlen
, fidp
, vpp
, NULL
);
3637 /* vnode pointer should be good at this point or ... */
3645 * nfsrv_credcheck() - check/map credentials according
3646 * to given export options.
3650 struct nfsrv_descript
*nd
,
3652 __unused
struct nfs_export
*nx
,
3653 struct nfs_export_options
*nxo
)
3655 if (nxo
&& nxo
->nxo_cred
) {
3656 if ((nxo
->nxo_flags
& NX_MAPALL
) ||
3657 ((nxo
->nxo_flags
& NX_MAPROOT
) && !suser(nd
->nd_cr
, NULL
))) {
3658 kauth_cred_ref(nxo
->nxo_cred
);
3659 kauth_cred_unref(&nd
->nd_cr
);
3660 nd
->nd_cr
= nxo
->nxo_cred
;
3663 ctx
->vc_ucred
= nd
->nd_cr
;
3668 * nfsrv_vptofh() - convert vnode to file handle for given export
3670 * If the caller is passing in a vnode for a ".." directory entry,
3671 * they can pass a directory NFS file handle (dnfhp) which will be
3672 * checked against the root export file handle. If it matches, we
3673 * refuse to provide the file handle for the out-of-export directory.
3677 struct nfs_export
*nx
,
3679 struct nfs_filehandle
*dnfhp
,
3682 struct nfs_filehandle
*nfhp
)
3685 uint32_t maxfidsize
;
3687 nfhp
->nfh_fhp
= (u_char
*)&nfhp
->nfh_xh
;
3688 nfhp
->nfh_xh
.nxh_version
= htonl(NFS_FH_VERSION
);
3689 nfhp
->nfh_xh
.nxh_fsid
= htonl(nx
->nx_fs
->nxfs_id
);
3690 nfhp
->nfh_xh
.nxh_expid
= htonl(nx
->nx_id
);
3691 nfhp
->nfh_xh
.nxh_flags
= 0;
3692 nfhp
->nfh_xh
.nxh_reserved
= 0;
3694 if (nfsvers
== NFS_VER2
) {
3695 bzero(&nfhp
->nfh_fid
[0], NFSV2_MAX_FID_SIZE
);
3698 /* if directory FH matches export root, return invalid FH */
3699 if (dnfhp
&& nfsrv_fhmatch(dnfhp
, &nx
->nx_fh
)) {
3700 if (nfsvers
== NFS_VER2
) {
3701 nfhp
->nfh_len
= NFSX_V2FH
;
3703 nfhp
->nfh_len
= sizeof(nfhp
->nfh_xh
);
3705 nfhp
->nfh_xh
.nxh_fidlen
= 0;
3706 nfhp
->nfh_xh
.nxh_flags
= htons(NXHF_INVALIDFH
);
3710 if (nfsvers
== NFS_VER2
) {
3711 maxfidsize
= NFSV2_MAX_FID_SIZE
;
3713 maxfidsize
= NFSV3_MAX_FID_SIZE
;
3715 nfhp
->nfh_len
= maxfidsize
;
3717 error
= VFS_VPTOFH(vp
, (int*)&nfhp
->nfh_len
, &nfhp
->nfh_fid
[0], ctx
);
3721 if (nfhp
->nfh_len
> maxfidsize
) {
3724 nfhp
->nfh_xh
.nxh_fidlen
= nfhp
->nfh_len
;
3725 nfhp
->nfh_len
+= sizeof(nfhp
->nfh_xh
);
3726 if ((nfsvers
== NFS_VER2
) && (nfhp
->nfh_len
< NFSX_V2FH
)) {
3727 nfhp
->nfh_len
= NFSX_V2FH
;
3734 * Compare two file handles to see it they're the same.
3735 * Note that we don't use nfh_len because that may include
3736 * padding in an NFSv2 file handle.
3739 nfsrv_fhmatch(struct nfs_filehandle
*fh1
, struct nfs_filehandle
*fh2
)
3741 struct nfs_exphandle
*nxh1
, *nxh2
;
3744 nxh1
= (struct nfs_exphandle
*)fh1
->nfh_fhp
;
3745 nxh2
= (struct nfs_exphandle
*)fh2
->nfh_fhp
;
3746 len1
= sizeof(fh1
->nfh_xh
) + nxh1
->nxh_fidlen
;
3747 len2
= sizeof(fh2
->nfh_xh
) + nxh2
->nxh_fidlen
;
3751 if (bcmp(nxh1
, nxh2
, len1
)) {
3758 * Functions for dealing with active user lists
3762 * Search the hash table for a user node with a matching IP address and uid field.
3763 * If found, the node's tm_last timestamp is updated and the node is returned.
3765 * If not found, a new node is allocated (or reclaimed via LRU), initialized, and returned.
3766 * Returns NULL if a new node could not be allcoated.
3768 * The list's user_mutex lock MUST be held.
3770 struct nfs_user_stat_node
*
3771 nfsrv_get_user_stat_node(struct nfs_active_user_list
*list
, struct sockaddr
*saddr
, uid_t uid
)
3773 struct nfs_user_stat_node
*unode
;
3775 struct nfs_user_stat_hashtbl_head
*head
;
3777 /* seach the hash table */
3778 head
= NFS_USER_STAT_HASH(list
->user_hashtbl
, uid
);
3779 LIST_FOREACH(unode
, head
, hash_link
) {
3780 if ((uid
== unode
->uid
) && (nfs_sockaddr_cmp(saddr
, (struct sockaddr
*)&unode
->sock
) == 0)) {
3781 /* found matching node */
3787 /* found node in the hash table, now update lru position */
3788 TAILQ_REMOVE(&list
->user_lru
, unode
, lru_link
);
3789 TAILQ_INSERT_TAIL(&list
->user_lru
, unode
, lru_link
);
3791 /* update time stamp */
3793 unode
->tm_last
= (uint32_t)now
.tv_sec
;
3797 if (list
->node_count
< nfsrv_user_stat_max_nodes
) {
3798 /* Allocate a new node */
3799 MALLOC(unode
, struct nfs_user_stat_node
*, sizeof(struct nfs_user_stat_node
),
3800 M_TEMP
, M_WAITOK
| M_ZERO
);
3806 /* increment node count */
3807 OSAddAtomic(1, &nfsrv_user_stat_node_count
);
3810 /* reuse the oldest node in the lru list */
3811 unode
= TAILQ_FIRST(&list
->user_lru
);
3817 /* Remove the node */
3818 TAILQ_REMOVE(&list
->user_lru
, unode
, lru_link
);
3819 LIST_REMOVE(unode
, hash_link
);
3822 /* Initialize the node */
3824 bcopy(saddr
, &unode
->sock
, saddr
->sa_len
);
3827 unode
->bytes_read
= 0;
3828 unode
->bytes_written
= 0;
3829 unode
->tm_start
= (uint32_t)now
.tv_sec
;
3830 unode
->tm_last
= (uint32_t)now
.tv_sec
;
3832 /* insert the node */
3833 TAILQ_INSERT_TAIL(&list
->user_lru
, unode
, lru_link
);
3834 LIST_INSERT_HEAD(head
, unode
, hash_link
);
3840 nfsrv_update_user_stat(struct nfs_export
*nx
, struct nfsrv_descript
*nd
, uid_t uid
, u_int ops
, u_int rd_bytes
, u_int wr_bytes
)
3842 struct nfs_user_stat_node
*unode
;
3843 struct nfs_active_user_list
*ulist
;
3844 struct sockaddr
*saddr
;
3846 if ((!nfsrv_user_stat_enabled
) || (!nx
) || (!nd
) || (!nd
->nd_nam
)) {
3850 saddr
= (struct sockaddr
*)mbuf_data(nd
->nd_nam
);
3852 /* check address family before going any further */
3853 if ((saddr
->sa_family
!= AF_INET
) && (saddr
->sa_family
!= AF_INET6
)) {
3857 ulist
= &nx
->nx_user_list
;
3859 /* lock the active user list */
3860 lck_mtx_lock(&ulist
->user_mutex
);
3862 /* get the user node */
3863 unode
= nfsrv_get_user_stat_node(ulist
, saddr
, uid
);
3866 lck_mtx_unlock(&ulist
->user_mutex
);
3870 /* update counters */
3872 unode
->bytes_read
+= rd_bytes
;
3873 unode
->bytes_written
+= wr_bytes
;
3876 lck_mtx_unlock(&ulist
->user_mutex
);
3879 /* initialize an active user list */
3881 nfsrv_init_user_list(struct nfs_active_user_list
*ulist
)
3885 /* initialize the lru */
3886 TAILQ_INIT(&ulist
->user_lru
);
3888 /* initialize the hash table */
3889 for (i
= 0; i
< NFS_USER_STAT_HASH_SIZE
; i
++) {
3890 LIST_INIT(&ulist
->user_hashtbl
[i
]);
3892 ulist
->node_count
= 0;
3894 lck_mtx_init(&ulist
->user_mutex
, nfsrv_active_user_mutex_group
, LCK_ATTR_NULL
);
3897 /* Free all nodes in an active user list */
3899 nfsrv_free_user_list(struct nfs_active_user_list
*ulist
)
3901 struct nfs_user_stat_node
*unode
;
3907 while ((unode
= TAILQ_FIRST(&ulist
->user_lru
))) {
3908 /* Remove node and free */
3909 TAILQ_REMOVE(&ulist
->user_lru
, unode
, lru_link
);
3910 LIST_REMOVE(unode
, hash_link
);
3911 FREE(unode
, M_TEMP
);
3913 /* decrement node count */
3914 OSAddAtomic(-1, &nfsrv_user_stat_node_count
);
3916 ulist
->node_count
= 0;
3918 lck_mtx_destroy(&ulist
->user_mutex
, nfsrv_active_user_mutex_group
);
3921 /* Reclaim old expired user nodes from active user lists. */
3923 nfsrv_active_user_list_reclaim(void)
3925 struct nfs_exportfs
*nxfs
;
3926 struct nfs_export
*nx
;
3927 struct nfs_active_user_list
*ulist
;
3928 struct nfs_user_stat_hashtbl_head oldlist
;
3929 struct nfs_user_stat_node
*unode
, *unode_next
;
3933 LIST_INIT(&oldlist
);
3935 lck_rw_lock_shared(&nfsrv_export_rwlock
);
3937 tstale
= now
.tv_sec
- nfsrv_user_stat_max_idle_sec
;
3938 LIST_FOREACH(nxfs
, &nfsrv_exports
, nxfs_next
) {
3939 LIST_FOREACH(nx
, &nxfs
->nxfs_exports
, nx_next
) {
3940 /* Scan through all user nodes of this export */
3941 ulist
= &nx
->nx_user_list
;
3942 lck_mtx_lock(&ulist
->user_mutex
);
3943 for (unode
= TAILQ_FIRST(&ulist
->user_lru
); unode
; unode
= unode_next
) {
3944 unode_next
= TAILQ_NEXT(unode
, lru_link
);
3946 /* check if this node has expired */
3947 if (unode
->tm_last
>= tstale
) {
3951 /* Remove node from the active user list */
3952 TAILQ_REMOVE(&ulist
->user_lru
, unode
, lru_link
);
3953 LIST_REMOVE(unode
, hash_link
);
3955 /* Add node to temp list */
3956 LIST_INSERT_HEAD(&oldlist
, unode
, hash_link
);
3958 /* decrement node count */
3959 OSAddAtomic(-1, &nfsrv_user_stat_node_count
);
3960 ulist
->node_count
--;
3962 /* can unlock this export's list now */
3963 lck_mtx_unlock(&ulist
->user_mutex
);
3966 lck_rw_done(&nfsrv_export_rwlock
);
3968 /* Free expired nodes */
3969 while ((unode
= LIST_FIRST(&oldlist
))) {
3970 LIST_REMOVE(unode
, hash_link
);
3971 FREE(unode
, M_TEMP
);
3976 * Maps errno values to nfs error numbers.
3977 * Use NFSERR_IO as the catch all for ones not specifically defined in
3980 static u_char nfsrv_v2errmap
[] = {
3981 NFSERR_PERM
, NFSERR_NOENT
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3982 NFSERR_NXIO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3983 NFSERR_IO
, NFSERR_IO
, NFSERR_ACCES
, NFSERR_IO
, NFSERR_IO
,
3984 NFSERR_IO
, NFSERR_EXIST
, NFSERR_IO
, NFSERR_NODEV
, NFSERR_NOTDIR
,
3985 NFSERR_ISDIR
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3986 NFSERR_IO
, NFSERR_FBIG
, NFSERR_NOSPC
, NFSERR_IO
, NFSERR_ROFS
,
3987 NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3988 NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3989 NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3990 NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3991 NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3992 NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
, NFSERR_IO
,
3993 NFSERR_IO
, NFSERR_IO
, NFSERR_NAMETOL
, NFSERR_IO
, NFSERR_IO
,
3994 NFSERR_NOTEMPTY
, NFSERR_IO
, NFSERR_IO
, NFSERR_DQUOT
, NFSERR_STALE
,
3998 * Maps errno values to nfs error numbers.
3999 * Although it is not obvious whether or not NFS clients really care if
4000 * a returned error value is in the specified list for the procedure, the
4001 * safest thing to do is filter them appropriately. For Version 2, the
4002 * X/Open XNFS document is the only specification that defines error values
4003 * for each RPC (The RFC simply lists all possible error values for all RPCs),
4004 * so I have decided to not do this for Version 2.
4005 * The first entry is the default error return and the rest are the valid
4006 * errors for that RPC in increasing numeric order.
4008 static short nfsv3err_null
[] = {
4013 static short nfsv3err_getattr
[] = {
4023 static short nfsv3err_setattr
[] = {
4040 static short nfsv3err_lookup
[] = {
4054 static short nfsv3err_access
[] = {
4064 static short nfsv3err_readlink
[] = {
4077 static short nfsv3err_read
[] = {
4090 static short nfsv3err_write
[] = {
4106 static short nfsv3err_create
[] = {
4124 static short nfsv3err_mkdir
[] = {
4142 static short nfsv3err_symlink
[] = {
4160 static short nfsv3err_mknod
[] = {
4179 static short nfsv3err_remove
[] = {
4194 static short nfsv3err_rmdir
[] = {
4213 static short nfsv3err_rename
[] = {
4237 static short nfsv3err_link
[] = {
4258 static short nfsv3err_readdir
[] = {
4272 static short nfsv3err_readdirplus
[] = {
4287 static short nfsv3err_fsstat
[] = {
4297 static short nfsv3err_fsinfo
[] = {
4306 static short nfsv3err_pathconf
[] = {
4315 static short nfsv3err_commit
[] = {
4325 static short *nfsrv_v3errmap
[] = {
4343 nfsv3err_readdirplus
,
4351 * Map errnos to NFS error numbers. For Version 3 also filter out error
4352 * numbers not specified for the associated procedure.
4355 nfsrv_errmap(struct nfsrv_descript
*nd
, int err
)
4357 short *defaulterrp
, *errp
;
4359 if (nd
->nd_vers
== NFS_VER2
) {
4360 if (err
<= (int)sizeof(nfsrv_v2errmap
)) {
4361 return (int)nfsrv_v2errmap
[err
- 1];
4366 if (nd
->nd_procnum
> NFSPROC_COMMIT
) {
4367 return err
& 0xffff;
4369 errp
= defaulterrp
= nfsrv_v3errmap
[nd
->nd_procnum
];
4373 } else if (*errp
> err
) {
4377 return (int)*defaulterrp
;
4380 #endif /* NFSSERVER */