1 1.2 pgoyette /* $NetBSD: nfs_clport.c,v 1.2 2016/12/13 22:17:33 pgoyette Exp $ */ 2 1.1 dholland /*- 3 1.1 dholland * Copyright (c) 1989, 1993 4 1.1 dholland * The Regents of the University of California. All rights reserved. 5 1.1 dholland * 6 1.1 dholland * This code is derived from software contributed to Berkeley by 7 1.1 dholland * Rick Macklem at The University of Guelph. 8 1.1 dholland * 9 1.1 dholland * Redistribution and use in source and binary forms, with or without 10 1.1 dholland * modification, are permitted provided that the following conditions 11 1.1 dholland * are met: 12 1.1 dholland * 1. Redistributions of source code must retain the above copyright 13 1.1 dholland * notice, this list of conditions and the following disclaimer. 14 1.1 dholland * 2. Redistributions in binary form must reproduce the above copyright 15 1.1 dholland * notice, this list of conditions and the following disclaimer in the 16 1.1 dholland * documentation and/or other materials provided with the distribution. 17 1.1 dholland * 4. Neither the name of the University nor the names of its contributors 18 1.1 dholland * may be used to endorse or promote products derived from this software 19 1.1 dholland * without specific prior written permission. 20 1.1 dholland * 21 1.1 dholland * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 22 1.1 dholland * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 23 1.1 dholland * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 24 1.1 dholland * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 25 1.1 dholland * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 26 1.1 dholland * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 27 1.1 dholland * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 28 1.1 dholland * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 29 1.1 dholland * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 30 1.1 dholland * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 31 1.1 dholland * SUCH DAMAGE. 32 1.1 dholland * 33 1.1 dholland */ 34 1.1 dholland 35 1.1 dholland #include <sys/cdefs.h> 36 1.2 pgoyette /* __FBSDID("FreeBSD: head/sys/fs/nfsclient/nfs_clport.c 299413 2016-05-11 06:35:46Z kib "); */ 37 1.2 pgoyette __RCSID("$NetBSD: nfs_clport.c,v 1.2 2016/12/13 22:17:33 pgoyette Exp $"); 38 1.1 dholland 39 1.2 pgoyette #ifdef _KERNEL_OPT 40 1.2 pgoyette #include "opt_inet.h" 41 1.1 dholland #include "opt_inet6.h" 42 1.2 pgoyette #endif 43 1.1 dholland 44 1.2 pgoyette #include <sys/capsicum.h> 45 1.1 dholland 46 1.1 dholland /* 47 1.1 dholland * generally, I don't like #includes inside .h files, but it seems to 48 1.1 dholland * be the easiest way to handle the port. 49 1.1 dholland */ 50 1.2 pgoyette #include <sys/fail.h> 51 1.2 pgoyette 52 1.1 dholland #include <sys/hash.h> 53 1.2 pgoyette #include <sys/sysctl.h> 54 1.2 pgoyette #include <fs/nfs/common/nfsport.h> 55 1.2 pgoyette 56 1.2 pgoyette #include <netinet/in_fib.h> 57 1.1 dholland #include <netinet/if_ether.h> 58 1.2 pgoyette #include <netinet6/ip6_var.h> 59 1.1 dholland #include <net/if_types.h> 60 1.1 dholland 61 1.2 pgoyette #include <fs/nfs/client/nfs_kdtrace.h> 62 1.1 dholland 63 1.1 dholland #ifdef KDTRACE_HOOKS 64 1.1 dholland dtrace_nfsclient_attrcache_flush_probe_func_t 65 1.1 dholland dtrace_nfscl_attrcache_flush_done_probe; 66 1.1 dholland uint32_t nfscl_attrcache_flush_done_id; 67 1.1 dholland 68 1.1 dholland dtrace_nfsclient_attrcache_get_hit_probe_func_t 69 1.1 dholland dtrace_nfscl_attrcache_get_hit_probe; 70 1.1 dholland uint32_t nfscl_attrcache_get_hit_id; 71 1.1 dholland 72 1.1 dholland dtrace_nfsclient_attrcache_get_miss_probe_func_t 73 1.1 dholland dtrace_nfscl_attrcache_get_miss_probe; 74 1.1 dholland uint32_t nfscl_attrcache_get_miss_id; 75 1.1 dholland 76 1.1 dholland dtrace_nfsclient_attrcache_load_probe_func_t 77 1.1 dholland dtrace_nfscl_attrcache_load_done_probe; 78 1.1 dholland uint32_t nfscl_attrcache_load_done_id; 79 1.1 dholland #endif /* !KDTRACE_HOOKS */ 80 1.1 dholland 81 1.1 dholland extern u_int32_t newnfs_true, newnfs_false, newnfs_xdrneg1; 82 1.1 dholland extern struct vop_vector newnfs_vnodeops; 83 1.1 dholland extern struct vop_vector newnfs_fifoops; 84 1.1 dholland extern uma_zone_t newnfsnode_zone; 85 1.1 dholland extern struct buf_ops buf_ops_newnfs; 86 1.1 dholland extern int ncl_pbuf_freecnt; 87 1.1 dholland extern short nfsv4_cbport; 88 1.1 dholland extern int nfscl_enablecallb; 89 1.1 dholland extern int nfs_numnfscbd; 90 1.1 dholland extern int nfscl_inited; 91 1.1 dholland struct mtx nfs_clstate_mutex; 92 1.1 dholland struct mtx ncl_iod_mutex; 93 1.1 dholland NFSDLOCKMUTEX; 94 1.1 dholland 95 1.1 dholland extern void (*ncl_call_invalcaches)(struct vnode *); 96 1.1 dholland 97 1.2 pgoyette SYSCTL_DECL(_vfs_nfs); 98 1.2 pgoyette static int ncl_fileid_maxwarnings = 10; 99 1.2 pgoyette SYSCTL_INT(_vfs_nfs, OID_AUTO, fileid_maxwarnings, CTLFLAG_RWTUN, 100 1.2 pgoyette &ncl_fileid_maxwarnings, 0, 101 1.2 pgoyette "Limit fileid corruption warnings; 0 is off; -1 is unlimited"); 102 1.2 pgoyette static volatile int ncl_fileid_nwarnings; 103 1.2 pgoyette 104 1.2 pgoyette static void nfscl_warn_fileid(struct nfsmount *, struct nfsvattr *, 105 1.2 pgoyette struct nfsvattr *); 106 1.2 pgoyette 107 1.1 dholland /* 108 1.1 dholland * Comparison function for vfs_hash functions. 109 1.1 dholland */ 110 1.1 dholland int 111 1.1 dholland newnfs_vncmpf(struct vnode *vp, void *arg) 112 1.1 dholland { 113 1.1 dholland struct nfsfh *nfhp = (struct nfsfh *)arg; 114 1.1 dholland struct nfsnode *np = VTONFS(vp); 115 1.1 dholland 116 1.1 dholland if (np->n_fhp->nfh_len != nfhp->nfh_len || 117 1.1 dholland NFSBCMP(np->n_fhp->nfh_fh, nfhp->nfh_fh, nfhp->nfh_len)) 118 1.1 dholland return (1); 119 1.1 dholland return (0); 120 1.1 dholland } 121 1.1 dholland 122 1.1 dholland /* 123 1.1 dholland * Look up a vnode/nfsnode by file handle. 124 1.1 dholland * Callers must check for mount points!! 125 1.1 dholland * In all cases, a pointer to a 126 1.1 dholland * nfsnode structure is returned. 127 1.1 dholland * This variant takes a "struct nfsfh *" as second argument and uses 128 1.1 dholland * that structure up, either by hanging off the nfsnode or FREEing it. 129 1.1 dholland */ 130 1.1 dholland int 131 1.1 dholland nfscl_nget(struct mount *mntp, struct vnode *dvp, struct nfsfh *nfhp, 132 1.1 dholland struct componentname *cnp, struct thread *td, struct nfsnode **npp, 133 1.1 dholland void *stuff, int lkflags) 134 1.1 dholland { 135 1.1 dholland struct nfsnode *np, *dnp; 136 1.1 dholland struct vnode *vp, *nvp; 137 1.1 dholland struct nfsv4node *newd, *oldd; 138 1.1 dholland int error; 139 1.1 dholland u_int hash; 140 1.1 dholland struct nfsmount *nmp; 141 1.1 dholland 142 1.1 dholland nmp = VFSTONFS(mntp); 143 1.1 dholland dnp = VTONFS(dvp); 144 1.1 dholland *npp = NULL; 145 1.1 dholland 146 1.1 dholland hash = fnv_32_buf(nfhp->nfh_fh, nfhp->nfh_len, FNV1_32_INIT); 147 1.1 dholland 148 1.1 dholland error = vfs_hash_get(mntp, hash, lkflags, 149 1.1 dholland td, &nvp, newnfs_vncmpf, nfhp); 150 1.1 dholland if (error == 0 && nvp != NULL) { 151 1.1 dholland /* 152 1.1 dholland * I believe there is a slight chance that vgonel() could 153 1.1 dholland * get called on this vnode between when NFSVOPLOCK() drops 154 1.1 dholland * the VI_LOCK() and vget() acquires it again, so that it 155 1.1 dholland * hasn't yet had v_usecount incremented. If this were to 156 1.1 dholland * happen, the VI_DOOMED flag would be set, so check for 157 1.1 dholland * that here. Since we now have the v_usecount incremented, 158 1.1 dholland * we should be ok until we vrele() it, if the VI_DOOMED 159 1.1 dholland * flag isn't set now. 160 1.1 dholland */ 161 1.1 dholland VI_LOCK(nvp); 162 1.1 dholland if ((nvp->v_iflag & VI_DOOMED)) { 163 1.1 dholland VI_UNLOCK(nvp); 164 1.1 dholland vrele(nvp); 165 1.1 dholland error = ENOENT; 166 1.1 dholland } else { 167 1.1 dholland VI_UNLOCK(nvp); 168 1.1 dholland } 169 1.1 dholland } 170 1.1 dholland if (error) { 171 1.1 dholland FREE((caddr_t)nfhp, M_NFSFH); 172 1.1 dholland return (error); 173 1.1 dholland } 174 1.1 dholland if (nvp != NULL) { 175 1.1 dholland np = VTONFS(nvp); 176 1.1 dholland /* 177 1.1 dholland * For NFSv4, check to see if it is the same name and 178 1.1 dholland * replace the name, if it is different. 179 1.1 dholland */ 180 1.1 dholland oldd = newd = NULL; 181 1.1 dholland if ((nmp->nm_flag & NFSMNT_NFSV4) && np->n_v4 != NULL && 182 1.1 dholland nvp->v_type == VREG && 183 1.1 dholland (np->n_v4->n4_namelen != cnp->cn_namelen || 184 1.1 dholland NFSBCMP(cnp->cn_nameptr, NFS4NODENAME(np->n_v4), 185 1.1 dholland cnp->cn_namelen) || 186 1.1 dholland dnp->n_fhp->nfh_len != np->n_v4->n4_fhlen || 187 1.1 dholland NFSBCMP(dnp->n_fhp->nfh_fh, np->n_v4->n4_data, 188 1.1 dholland dnp->n_fhp->nfh_len))) { 189 1.1 dholland MALLOC(newd, struct nfsv4node *, 190 1.1 dholland sizeof (struct nfsv4node) + dnp->n_fhp->nfh_len + 191 1.1 dholland + cnp->cn_namelen - 1, M_NFSV4NODE, M_WAITOK); 192 1.1 dholland NFSLOCKNODE(np); 193 1.1 dholland if (newd != NULL && np->n_v4 != NULL && nvp->v_type == VREG 194 1.1 dholland && (np->n_v4->n4_namelen != cnp->cn_namelen || 195 1.1 dholland NFSBCMP(cnp->cn_nameptr, NFS4NODENAME(np->n_v4), 196 1.1 dholland cnp->cn_namelen) || 197 1.1 dholland dnp->n_fhp->nfh_len != np->n_v4->n4_fhlen || 198 1.1 dholland NFSBCMP(dnp->n_fhp->nfh_fh, np->n_v4->n4_data, 199 1.1 dholland dnp->n_fhp->nfh_len))) { 200 1.1 dholland oldd = np->n_v4; 201 1.1 dholland np->n_v4 = newd; 202 1.1 dholland newd = NULL; 203 1.1 dholland np->n_v4->n4_fhlen = dnp->n_fhp->nfh_len; 204 1.1 dholland np->n_v4->n4_namelen = cnp->cn_namelen; 205 1.1 dholland NFSBCOPY(dnp->n_fhp->nfh_fh, np->n_v4->n4_data, 206 1.1 dholland dnp->n_fhp->nfh_len); 207 1.1 dholland NFSBCOPY(cnp->cn_nameptr, NFS4NODENAME(np->n_v4), 208 1.1 dholland cnp->cn_namelen); 209 1.1 dholland } 210 1.1 dholland NFSUNLOCKNODE(np); 211 1.1 dholland } 212 1.1 dholland if (newd != NULL) 213 1.1 dholland FREE((caddr_t)newd, M_NFSV4NODE); 214 1.1 dholland if (oldd != NULL) 215 1.1 dholland FREE((caddr_t)oldd, M_NFSV4NODE); 216 1.1 dholland *npp = np; 217 1.1 dholland FREE((caddr_t)nfhp, M_NFSFH); 218 1.1 dholland return (0); 219 1.1 dholland } 220 1.1 dholland np = uma_zalloc(newnfsnode_zone, M_WAITOK | M_ZERO); 221 1.1 dholland 222 1.2 pgoyette error = getnewvnode(nfs_vnode_tag, mntp, &newnfs_vnodeops, &nvp); 223 1.1 dholland if (error) { 224 1.1 dholland uma_zfree(newnfsnode_zone, np); 225 1.1 dholland FREE((caddr_t)nfhp, M_NFSFH); 226 1.1 dholland return (error); 227 1.1 dholland } 228 1.1 dholland vp = nvp; 229 1.1 dholland KASSERT(vp->v_bufobj.bo_bsize != 0, ("nfscl_nget: bo_bsize == 0")); 230 1.1 dholland vp->v_bufobj.bo_ops = &buf_ops_newnfs; 231 1.1 dholland vp->v_data = np; 232 1.1 dholland np->n_vnode = vp; 233 1.1 dholland /* 234 1.1 dholland * Initialize the mutex even if the vnode is going to be a loser. 235 1.1 dholland * This simplifies the logic in reclaim, which can then unconditionally 236 1.1 dholland * destroy the mutex (in the case of the loser, or if hash_insert 237 1.1 dholland * happened to return an error no special casing is needed). 238 1.1 dholland */ 239 1.1 dholland mtx_init(&np->n_mtx, "NEWNFSnode lock", NULL, MTX_DEF | MTX_DUPOK); 240 1.1 dholland 241 1.1 dholland /* 242 1.1 dholland * Are we getting the root? If so, make sure the vnode flags 243 1.1 dholland * are correct 244 1.1 dholland */ 245 1.1 dholland if ((nfhp->nfh_len == nmp->nm_fhsize) && 246 1.1 dholland !bcmp(nfhp->nfh_fh, nmp->nm_fh, nfhp->nfh_len)) { 247 1.1 dholland if (vp->v_type == VNON) 248 1.1 dholland vp->v_type = VDIR; 249 1.1 dholland vp->v_vflag |= VV_ROOT; 250 1.1 dholland } 251 1.1 dholland 252 1.1 dholland np->n_fhp = nfhp; 253 1.1 dholland /* 254 1.1 dholland * For NFSv4, we have to attach the directory file handle and 255 1.1 dholland * file name, so that Open Ops can be done later. 256 1.1 dholland */ 257 1.1 dholland if (nmp->nm_flag & NFSMNT_NFSV4) { 258 1.1 dholland MALLOC(np->n_v4, struct nfsv4node *, sizeof (struct nfsv4node) 259 1.1 dholland + dnp->n_fhp->nfh_len + cnp->cn_namelen - 1, M_NFSV4NODE, 260 1.1 dholland M_WAITOK); 261 1.1 dholland np->n_v4->n4_fhlen = dnp->n_fhp->nfh_len; 262 1.1 dholland np->n_v4->n4_namelen = cnp->cn_namelen; 263 1.1 dholland NFSBCOPY(dnp->n_fhp->nfh_fh, np->n_v4->n4_data, 264 1.1 dholland dnp->n_fhp->nfh_len); 265 1.1 dholland NFSBCOPY(cnp->cn_nameptr, NFS4NODENAME(np->n_v4), 266 1.1 dholland cnp->cn_namelen); 267 1.1 dholland } else { 268 1.1 dholland np->n_v4 = NULL; 269 1.1 dholland } 270 1.1 dholland 271 1.1 dholland /* 272 1.1 dholland * NFS supports recursive and shared locking. 273 1.1 dholland */ 274 1.1 dholland lockmgr(vp->v_vnlock, LK_EXCLUSIVE | LK_NOWITNESS, NULL); 275 1.1 dholland VN_LOCK_AREC(vp); 276 1.1 dholland VN_LOCK_ASHARE(vp); 277 1.1 dholland error = insmntque(vp, mntp); 278 1.1 dholland if (error != 0) { 279 1.1 dholland *npp = NULL; 280 1.1 dholland mtx_destroy(&np->n_mtx); 281 1.1 dholland FREE((caddr_t)nfhp, M_NFSFH); 282 1.1 dholland if (np->n_v4 != NULL) 283 1.1 dholland FREE((caddr_t)np->n_v4, M_NFSV4NODE); 284 1.1 dholland uma_zfree(newnfsnode_zone, np); 285 1.1 dholland return (error); 286 1.1 dholland } 287 1.1 dholland error = vfs_hash_insert(vp, hash, lkflags, 288 1.1 dholland td, &nvp, newnfs_vncmpf, nfhp); 289 1.1 dholland if (error) 290 1.1 dholland return (error); 291 1.1 dholland if (nvp != NULL) { 292 1.1 dholland *npp = VTONFS(nvp); 293 1.1 dholland /* vfs_hash_insert() vput()'s the losing vnode */ 294 1.1 dholland return (0); 295 1.1 dholland } 296 1.1 dholland *npp = np; 297 1.1 dholland 298 1.1 dholland return (0); 299 1.1 dholland } 300 1.1 dholland 301 1.1 dholland /* 302 1.2 pgoyette * Another variant of nfs_nget(). This one is only used by reopen. It 303 1.1 dholland * takes almost the same args as nfs_nget(), but only succeeds if an entry 304 1.1 dholland * exists in the cache. (Since files should already be "open" with a 305 1.1 dholland * vnode ref cnt on the node when reopen calls this, it should always 306 1.1 dholland * succeed.) 307 1.1 dholland * Also, don't get a vnode lock, since it may already be locked by some 308 1.1 dholland * other process that is handling it. This is ok, since all other threads 309 1.1 dholland * on the client are blocked by the nfsc_lock being exclusively held by the 310 1.1 dholland * caller of this function. 311 1.1 dholland */ 312 1.1 dholland int 313 1.1 dholland nfscl_ngetreopen(struct mount *mntp, u_int8_t *fhp, int fhsize, 314 1.1 dholland struct thread *td, struct nfsnode **npp) 315 1.1 dholland { 316 1.1 dholland struct vnode *nvp; 317 1.1 dholland u_int hash; 318 1.1 dholland struct nfsfh *nfhp; 319 1.1 dholland int error; 320 1.1 dholland 321 1.1 dholland *npp = NULL; 322 1.1 dholland /* For forced dismounts, just return error. */ 323 1.1 dholland if ((mntp->mnt_kern_flag & MNTK_UNMOUNTF)) 324 1.1 dholland return (EINTR); 325 1.1 dholland MALLOC(nfhp, struct nfsfh *, sizeof (struct nfsfh) + fhsize, 326 1.1 dholland M_NFSFH, M_WAITOK); 327 1.1 dholland bcopy(fhp, &nfhp->nfh_fh[0], fhsize); 328 1.1 dholland nfhp->nfh_len = fhsize; 329 1.1 dholland 330 1.1 dholland hash = fnv_32_buf(fhp, fhsize, FNV1_32_INIT); 331 1.1 dholland 332 1.1 dholland /* 333 1.1 dholland * First, try to get the vnode locked, but don't block for the lock. 334 1.1 dholland */ 335 1.1 dholland error = vfs_hash_get(mntp, hash, (LK_EXCLUSIVE | LK_NOWAIT), td, &nvp, 336 1.1 dholland newnfs_vncmpf, nfhp); 337 1.1 dholland if (error == 0 && nvp != NULL) { 338 1.1 dholland NFSVOPUNLOCK(nvp, 0); 339 1.1 dholland } else if (error == EBUSY) { 340 1.1 dholland /* 341 1.2 pgoyette * It is safe so long as a vflush() with 342 1.1 dholland * FORCECLOSE has not been done. Since the Renew thread is 343 1.1 dholland * stopped and the MNTK_UNMOUNTF flag is set before doing 344 1.1 dholland * a vflush() with FORCECLOSE, we should be ok here. 345 1.1 dholland */ 346 1.1 dholland if ((mntp->mnt_kern_flag & MNTK_UNMOUNTF)) 347 1.1 dholland error = EINTR; 348 1.2 pgoyette else { 349 1.2 pgoyette vfs_hash_ref(mntp, hash, td, &nvp, newnfs_vncmpf, nfhp); 350 1.2 pgoyette if (nvp == NULL) { 351 1.2 pgoyette error = ENOENT; 352 1.2 pgoyette } else if ((nvp->v_iflag & VI_DOOMED) != 0) { 353 1.2 pgoyette error = ENOENT; 354 1.2 pgoyette vrele(nvp); 355 1.2 pgoyette } else { 356 1.2 pgoyette error = 0; 357 1.2 pgoyette } 358 1.2 pgoyette } 359 1.1 dholland } 360 1.1 dholland FREE(nfhp, M_NFSFH); 361 1.1 dholland if (error) 362 1.1 dholland return (error); 363 1.1 dholland if (nvp != NULL) { 364 1.1 dholland *npp = VTONFS(nvp); 365 1.1 dholland return (0); 366 1.1 dholland } 367 1.1 dholland return (EINVAL); 368 1.1 dholland } 369 1.1 dholland 370 1.2 pgoyette static void 371 1.2 pgoyette nfscl_warn_fileid(struct nfsmount *nmp, struct nfsvattr *oldnap, 372 1.2 pgoyette struct nfsvattr *newnap) 373 1.2 pgoyette { 374 1.2 pgoyette int off; 375 1.2 pgoyette 376 1.2 pgoyette if (ncl_fileid_maxwarnings >= 0 && 377 1.2 pgoyette ncl_fileid_nwarnings >= ncl_fileid_maxwarnings) 378 1.2 pgoyette return; 379 1.2 pgoyette off = 0; 380 1.2 pgoyette if (ncl_fileid_maxwarnings >= 0) { 381 1.2 pgoyette if (++ncl_fileid_nwarnings >= ncl_fileid_maxwarnings) 382 1.2 pgoyette off = 1; 383 1.2 pgoyette } 384 1.2 pgoyette 385 1.2 pgoyette printf("newnfs: server '%s' error: fileid changed. " 386 1.2 pgoyette "fsid %jx:%jx: expected fileid %#jx, got %#jx. " 387 1.2 pgoyette "(BROKEN NFS SERVER OR MIDDLEWARE)\n", 388 1.2 pgoyette nmp->nm_com.nmcom_hostname, 389 1.2 pgoyette (uintmax_t)nmp->nm_fsid[0], 390 1.2 pgoyette (uintmax_t)nmp->nm_fsid[1], 391 1.2 pgoyette (uintmax_t)oldnap->na_fileid, 392 1.2 pgoyette (uintmax_t)newnap->na_fileid); 393 1.2 pgoyette 394 1.2 pgoyette if (off) 395 1.2 pgoyette printf("newnfs: Logged %d times about fileid corruption; " 396 1.2 pgoyette "going quiet to avoid spamming logs excessively. (Limit " 397 1.2 pgoyette "is: %d).\n", ncl_fileid_nwarnings, 398 1.2 pgoyette ncl_fileid_maxwarnings); 399 1.2 pgoyette } 400 1.2 pgoyette 401 1.1 dholland /* 402 1.1 dholland * Load the attribute cache (that lives in the nfsnode entry) with 403 1.1 dholland * the attributes of the second argument and 404 1.1 dholland * Iff vaper not NULL 405 1.1 dholland * copy the attributes to *vaper 406 1.1 dholland * Similar to nfs_loadattrcache(), except the attributes are passed in 407 1.1 dholland * instead of being parsed out of the mbuf list. 408 1.1 dholland */ 409 1.1 dholland int 410 1.1 dholland nfscl_loadattrcache(struct vnode **vpp, struct nfsvattr *nap, void *nvaper, 411 1.1 dholland void *stuff, int writeattr, int dontshrink) 412 1.1 dholland { 413 1.1 dholland struct vnode *vp = *vpp; 414 1.1 dholland struct vattr *vap, *nvap = &nap->na_vattr, *vaper = nvaper; 415 1.1 dholland struct nfsnode *np; 416 1.1 dholland struct nfsmount *nmp; 417 1.1 dholland struct timespec mtime_save; 418 1.1 dholland u_quad_t nsize; 419 1.2 pgoyette int setnsize, error, force_fid_err; 420 1.2 pgoyette 421 1.2 pgoyette error = 0; 422 1.2 pgoyette setnsize = 0; 423 1.2 pgoyette nsize = 0; 424 1.1 dholland 425 1.1 dholland /* 426 1.1 dholland * If v_type == VNON it is a new node, so fill in the v_type, 427 1.1 dholland * n_mtime fields. Check to see if it represents a special 428 1.1 dholland * device, and if so, check for a possible alias. Once the 429 1.1 dholland * correct vnode has been obtained, fill in the rest of the 430 1.1 dholland * information. 431 1.1 dholland */ 432 1.1 dholland np = VTONFS(vp); 433 1.1 dholland NFSLOCKNODE(np); 434 1.1 dholland if (vp->v_type != nvap->va_type) { 435 1.1 dholland vp->v_type = nvap->va_type; 436 1.1 dholland if (vp->v_type == VFIFO) 437 1.1 dholland vp->v_op = &newnfs_fifoops; 438 1.1 dholland np->n_mtime = nvap->va_mtime; 439 1.1 dholland } 440 1.1 dholland nmp = VFSTONFS(vp->v_mount); 441 1.1 dholland vap = &np->n_vattr.na_vattr; 442 1.1 dholland mtime_save = vap->va_mtime; 443 1.1 dholland if (writeattr) { 444 1.1 dholland np->n_vattr.na_filerev = nap->na_filerev; 445 1.1 dholland np->n_vattr.na_size = nap->na_size; 446 1.1 dholland np->n_vattr.na_mtime = nap->na_mtime; 447 1.1 dholland np->n_vattr.na_ctime = nap->na_ctime; 448 1.1 dholland np->n_vattr.na_fsid = nap->na_fsid; 449 1.1 dholland np->n_vattr.na_mode = nap->na_mode; 450 1.1 dholland } else { 451 1.2 pgoyette force_fid_err = 0; 452 1.2 pgoyette KFAIL_POINT_ERROR(DEBUG_FP, nfscl_force_fileid_warning, 453 1.2 pgoyette force_fid_err); 454 1.2 pgoyette /* 455 1.2 pgoyette * BROKEN NFS SERVER OR MIDDLEWARE 456 1.2 pgoyette * 457 1.2 pgoyette * Certain NFS servers (certain old proprietary filers ca. 458 1.2 pgoyette * 2006) or broken middleboxes (e.g. WAN accelerator products) 459 1.2 pgoyette * will respond to GETATTR requests with results for a 460 1.2 pgoyette * different fileid. 461 1.2 pgoyette * 462 1.2 pgoyette * The WAN accelerator we've observed not only serves stale 463 1.2 pgoyette * cache results for a given file, it also occasionally serves 464 1.2 pgoyette * results for wholly different files. This causes surprising 465 1.2 pgoyette * problems; for example the cached size attribute of a file 466 1.2 pgoyette * may truncate down and then back up, resulting in zero 467 1.2 pgoyette * regions in file contents read by applications. We observed 468 1.2 pgoyette * this reliably with Clang and .c files during parallel build. 469 1.2 pgoyette * A pcap revealed packet fragmentation and GETATTR RPC 470 1.2 pgoyette * responses with wholly wrong fileids. 471 1.2 pgoyette */ 472 1.2 pgoyette if ((np->n_vattr.na_fileid != 0 && 473 1.2 pgoyette np->n_vattr.na_fileid != nap->na_fileid) || 474 1.2 pgoyette force_fid_err) { 475 1.2 pgoyette nfscl_warn_fileid(nmp, &np->n_vattr, nap); 476 1.2 pgoyette error = EIDRM; 477 1.2 pgoyette goto out; 478 1.2 pgoyette } 479 1.1 dholland NFSBCOPY((caddr_t)nap, (caddr_t)&np->n_vattr, 480 1.1 dholland sizeof (struct nfsvattr)); 481 1.1 dholland } 482 1.1 dholland 483 1.1 dholland /* 484 1.1 dholland * For NFSv4, if the node's fsid is not equal to the mount point's 485 1.1 dholland * fsid, return the low order 32bits of the node's fsid. This 486 1.1 dholland * allows getcwd(3) to work. There is a chance that the fsid might 487 1.1 dholland * be the same as a local fs, but since this is in an NFS mount 488 1.1 dholland * point, I don't think that will cause any problems? 489 1.1 dholland */ 490 1.1 dholland if (NFSHASNFSV4(nmp) && NFSHASHASSETFSID(nmp) && 491 1.1 dholland (nmp->nm_fsid[0] != np->n_vattr.na_filesid[0] || 492 1.1 dholland nmp->nm_fsid[1] != np->n_vattr.na_filesid[1])) { 493 1.1 dholland /* 494 1.1 dholland * va_fsid needs to be set to some value derived from 495 1.1 dholland * np->n_vattr.na_filesid that is not equal 496 1.1 dholland * vp->v_mount->mnt_stat.f_fsid[0], so that it changes 497 1.1 dholland * from the value used for the top level server volume 498 1.1 dholland * in the mounted subtree. 499 1.1 dholland */ 500 1.1 dholland if (vp->v_mount->mnt_stat.f_fsid.val[0] != 501 1.1 dholland (uint32_t)np->n_vattr.na_filesid[0]) 502 1.1 dholland vap->va_fsid = (uint32_t)np->n_vattr.na_filesid[0]; 503 1.1 dholland else 504 1.1 dholland vap->va_fsid = (uint32_t)hash32_buf( 505 1.1 dholland np->n_vattr.na_filesid, 2 * sizeof(uint64_t), 0); 506 1.1 dholland } else 507 1.1 dholland vap->va_fsid = vp->v_mount->mnt_stat.f_fsid.val[0]; 508 1.1 dholland np->n_attrstamp = time_second; 509 1.1 dholland if (vap->va_size != np->n_size) { 510 1.1 dholland if (vap->va_type == VREG) { 511 1.1 dholland if (dontshrink && vap->va_size < np->n_size) { 512 1.1 dholland /* 513 1.1 dholland * We've been told not to shrink the file; 514 1.1 dholland * zero np->n_attrstamp to indicate that 515 1.1 dholland * the attributes are stale. 516 1.1 dholland */ 517 1.1 dholland vap->va_size = np->n_size; 518 1.1 dholland np->n_attrstamp = 0; 519 1.1 dholland KDTRACE_NFS_ATTRCACHE_FLUSH_DONE(vp); 520 1.1 dholland vnode_pager_setsize(vp, np->n_size); 521 1.1 dholland } else if (np->n_flag & NMODIFIED) { 522 1.1 dholland /* 523 1.1 dholland * We've modified the file: Use the larger 524 1.1 dholland * of our size, and the server's size. 525 1.1 dholland */ 526 1.1 dholland if (vap->va_size < np->n_size) { 527 1.1 dholland vap->va_size = np->n_size; 528 1.1 dholland } else { 529 1.1 dholland np->n_size = vap->va_size; 530 1.1 dholland np->n_flag |= NSIZECHANGED; 531 1.1 dholland } 532 1.1 dholland vnode_pager_setsize(vp, np->n_size); 533 1.1 dholland } else if (vap->va_size < np->n_size) { 534 1.1 dholland /* 535 1.1 dholland * When shrinking the size, the call to 536 1.1 dholland * vnode_pager_setsize() cannot be done 537 1.1 dholland * with the mutex held, so delay it until 538 1.1 dholland * after the mtx_unlock call. 539 1.1 dholland */ 540 1.1 dholland nsize = np->n_size = vap->va_size; 541 1.1 dholland np->n_flag |= NSIZECHANGED; 542 1.1 dholland setnsize = 1; 543 1.1 dholland } else { 544 1.1 dholland np->n_size = vap->va_size; 545 1.1 dholland np->n_flag |= NSIZECHANGED; 546 1.1 dholland vnode_pager_setsize(vp, np->n_size); 547 1.1 dholland } 548 1.1 dholland } else { 549 1.1 dholland np->n_size = vap->va_size; 550 1.1 dholland } 551 1.1 dholland } 552 1.1 dholland /* 553 1.1 dholland * The following checks are added to prevent a race between (say) 554 1.1 dholland * a READDIR+ and a WRITE. 555 1.1 dholland * READDIR+, WRITE requests sent out. 556 1.1 dholland * READDIR+ resp, WRITE resp received on client. 557 1.1 dholland * However, the WRITE resp was handled before the READDIR+ resp 558 1.1 dholland * causing the post op attrs from the write to be loaded first 559 1.1 dholland * and the attrs from the READDIR+ to be loaded later. If this 560 1.1 dholland * happens, we have stale attrs loaded into the attrcache. 561 1.1 dholland * We detect this by for the mtime moving back. We invalidate the 562 1.1 dholland * attrcache when this happens. 563 1.1 dholland */ 564 1.1 dholland if (timespeccmp(&mtime_save, &vap->va_mtime, >)) { 565 1.1 dholland /* Size changed or mtime went backwards */ 566 1.1 dholland np->n_attrstamp = 0; 567 1.1 dholland KDTRACE_NFS_ATTRCACHE_FLUSH_DONE(vp); 568 1.1 dholland } 569 1.1 dholland if (vaper != NULL) { 570 1.1 dholland NFSBCOPY((caddr_t)vap, (caddr_t)vaper, sizeof(*vap)); 571 1.1 dholland if (np->n_flag & NCHG) { 572 1.1 dholland if (np->n_flag & NACC) 573 1.1 dholland vaper->va_atime = np->n_atim; 574 1.1 dholland if (np->n_flag & NUPD) 575 1.1 dholland vaper->va_mtime = np->n_mtim; 576 1.1 dholland } 577 1.1 dholland } 578 1.2 pgoyette 579 1.2 pgoyette out: 580 1.1 dholland #ifdef KDTRACE_HOOKS 581 1.1 dholland if (np->n_attrstamp != 0) 582 1.2 pgoyette KDTRACE_NFS_ATTRCACHE_LOAD_DONE(vp, vap, error); 583 1.1 dholland #endif 584 1.1 dholland NFSUNLOCKNODE(np); 585 1.1 dholland if (setnsize) 586 1.1 dholland vnode_pager_setsize(vp, nsize); 587 1.2 pgoyette return (error); 588 1.1 dholland } 589 1.1 dholland 590 1.1 dholland /* 591 1.1 dholland * Fill in the client id name. For these bytes: 592 1.1 dholland * 1 - they must be unique 593 1.1 dholland * 2 - they should be persistent across client reboots 594 1.1 dholland * 1 is more critical than 2 595 1.1 dholland * Use the mount point's unique id plus either the uuid or, if that 596 1.1 dholland * isn't set, random junk. 597 1.1 dholland */ 598 1.1 dholland void 599 1.1 dholland nfscl_fillclid(u_int64_t clval, char *uuid, u_int8_t *cp, u_int16_t idlen) 600 1.1 dholland { 601 1.1 dholland int uuidlen; 602 1.1 dholland 603 1.1 dholland /* 604 1.1 dholland * First, put in the 64bit mount point identifier. 605 1.1 dholland */ 606 1.1 dholland if (idlen >= sizeof (u_int64_t)) { 607 1.1 dholland NFSBCOPY((caddr_t)&clval, cp, sizeof (u_int64_t)); 608 1.1 dholland cp += sizeof (u_int64_t); 609 1.1 dholland idlen -= sizeof (u_int64_t); 610 1.1 dholland } 611 1.1 dholland 612 1.1 dholland /* 613 1.1 dholland * If uuid is non-zero length, use it. 614 1.1 dholland */ 615 1.1 dholland uuidlen = strlen(uuid); 616 1.1 dholland if (uuidlen > 0 && idlen >= uuidlen) { 617 1.1 dholland NFSBCOPY(uuid, cp, uuidlen); 618 1.1 dholland cp += uuidlen; 619 1.1 dholland idlen -= uuidlen; 620 1.1 dholland } 621 1.1 dholland 622 1.1 dholland /* 623 1.1 dholland * This only normally happens if the uuid isn't set. 624 1.1 dholland */ 625 1.1 dholland while (idlen > 0) { 626 1.1 dholland *cp++ = (u_int8_t)(arc4random() % 256); 627 1.1 dholland idlen--; 628 1.1 dholland } 629 1.1 dholland } 630 1.1 dholland 631 1.1 dholland /* 632 1.1 dholland * Fill in a lock owner name. For now, pid + the process's creation time. 633 1.1 dholland */ 634 1.1 dholland void 635 1.1 dholland nfscl_filllockowner(void *id, u_int8_t *cp, int flags) 636 1.1 dholland { 637 1.1 dholland union { 638 1.1 dholland u_int32_t lval; 639 1.1 dholland u_int8_t cval[4]; 640 1.1 dholland } tl; 641 1.1 dholland struct proc *p; 642 1.1 dholland 643 1.1 dholland if (id == NULL) { 644 1.1 dholland printf("NULL id\n"); 645 1.1 dholland bzero(cp, NFSV4CL_LOCKNAMELEN); 646 1.1 dholland return; 647 1.1 dholland } 648 1.1 dholland if ((flags & F_POSIX) != 0) { 649 1.1 dholland p = (struct proc *)id; 650 1.1 dholland tl.lval = p->p_pid; 651 1.1 dholland *cp++ = tl.cval[0]; 652 1.1 dholland *cp++ = tl.cval[1]; 653 1.1 dholland *cp++ = tl.cval[2]; 654 1.1 dholland *cp++ = tl.cval[3]; 655 1.1 dholland tl.lval = p->p_stats->p_start.tv_sec; 656 1.1 dholland *cp++ = tl.cval[0]; 657 1.1 dholland *cp++ = tl.cval[1]; 658 1.1 dholland *cp++ = tl.cval[2]; 659 1.1 dholland *cp++ = tl.cval[3]; 660 1.1 dholland tl.lval = p->p_stats->p_start.tv_usec; 661 1.1 dholland *cp++ = tl.cval[0]; 662 1.1 dholland *cp++ = tl.cval[1]; 663 1.1 dholland *cp++ = tl.cval[2]; 664 1.1 dholland *cp = tl.cval[3]; 665 1.1 dholland } else if ((flags & F_FLOCK) != 0) { 666 1.1 dholland bcopy(&id, cp, sizeof(id)); 667 1.1 dholland bzero(&cp[sizeof(id)], NFSV4CL_LOCKNAMELEN - sizeof(id)); 668 1.1 dholland } else { 669 1.1 dholland printf("nfscl_filllockowner: not F_POSIX or F_FLOCK\n"); 670 1.1 dholland bzero(cp, NFSV4CL_LOCKNAMELEN); 671 1.1 dholland } 672 1.1 dholland } 673 1.1 dholland 674 1.1 dholland /* 675 1.1 dholland * Find the parent process for the thread passed in as an argument. 676 1.1 dholland * If none exists, return NULL, otherwise return a thread for the parent. 677 1.1 dholland * (Can be any of the threads, since it is only used for td->td_proc.) 678 1.1 dholland */ 679 1.1 dholland NFSPROC_T * 680 1.1 dholland nfscl_getparent(struct thread *td) 681 1.1 dholland { 682 1.1 dholland struct proc *p; 683 1.1 dholland struct thread *ptd; 684 1.1 dholland 685 1.1 dholland if (td == NULL) 686 1.1 dholland return (NULL); 687 1.1 dholland p = td->td_proc; 688 1.1 dholland if (p->p_pid == 0) 689 1.1 dholland return (NULL); 690 1.1 dholland p = p->p_pptr; 691 1.1 dholland if (p == NULL) 692 1.1 dholland return (NULL); 693 1.1 dholland ptd = TAILQ_FIRST(&p->p_threads); 694 1.1 dholland return (ptd); 695 1.1 dholland } 696 1.1 dholland 697 1.1 dholland /* 698 1.1 dholland * Start up the renew kernel thread. 699 1.1 dholland */ 700 1.1 dholland static void 701 1.1 dholland start_nfscl(void *arg) 702 1.1 dholland { 703 1.1 dholland struct nfsclclient *clp; 704 1.1 dholland struct thread *td; 705 1.1 dholland 706 1.1 dholland clp = (struct nfsclclient *)arg; 707 1.1 dholland td = TAILQ_FIRST(&clp->nfsc_renewthread->p_threads); 708 1.1 dholland nfscl_renewthread(clp, td); 709 1.1 dholland kproc_exit(0); 710 1.1 dholland } 711 1.1 dholland 712 1.1 dholland void 713 1.1 dholland nfscl_start_renewthread(struct nfsclclient *clp) 714 1.1 dholland { 715 1.1 dholland 716 1.1 dholland kproc_create(start_nfscl, (void *)clp, &clp->nfsc_renewthread, 0, 0, 717 1.1 dholland "nfscl"); 718 1.1 dholland } 719 1.1 dholland 720 1.1 dholland /* 721 1.1 dholland * Handle wcc_data. 722 1.1 dholland * For NFSv4, it assumes that nfsv4_wccattr() was used to set up the getattr 723 1.1 dholland * as the first Op after PutFH. 724 1.1 dholland * (For NFSv4, the postop attributes are after the Op, so they can't be 725 1.1 dholland * parsed here. A separate call to nfscl_postop_attr() is required.) 726 1.1 dholland */ 727 1.1 dholland int 728 1.1 dholland nfscl_wcc_data(struct nfsrv_descript *nd, struct vnode *vp, 729 1.1 dholland struct nfsvattr *nap, int *flagp, int *wccflagp, void *stuff) 730 1.1 dholland { 731 1.1 dholland u_int32_t *tl; 732 1.1 dholland struct nfsnode *np = VTONFS(vp); 733 1.1 dholland struct nfsvattr nfsva; 734 1.1 dholland int error = 0; 735 1.1 dholland 736 1.1 dholland if (wccflagp != NULL) 737 1.1 dholland *wccflagp = 0; 738 1.1 dholland if (nd->nd_flag & ND_NFSV3) { 739 1.1 dholland *flagp = 0; 740 1.1 dholland NFSM_DISSECT(tl, u_int32_t *, NFSX_UNSIGNED); 741 1.1 dholland if (*tl == newnfs_true) { 742 1.1 dholland NFSM_DISSECT(tl, u_int32_t *, 6 * NFSX_UNSIGNED); 743 1.1 dholland if (wccflagp != NULL) { 744 1.1 dholland mtx_lock(&np->n_mtx); 745 1.1 dholland *wccflagp = (np->n_mtime.tv_sec == 746 1.1 dholland fxdr_unsigned(u_int32_t, *(tl + 2)) && 747 1.1 dholland np->n_mtime.tv_nsec == 748 1.1 dholland fxdr_unsigned(u_int32_t, *(tl + 3))); 749 1.1 dholland mtx_unlock(&np->n_mtx); 750 1.1 dholland } 751 1.1 dholland } 752 1.1 dholland error = nfscl_postop_attr(nd, nap, flagp, stuff); 753 1.1 dholland } else if ((nd->nd_flag & (ND_NOMOREDATA | ND_NFSV4 | ND_V4WCCATTR)) 754 1.1 dholland == (ND_NFSV4 | ND_V4WCCATTR)) { 755 1.1 dholland error = nfsv4_loadattr(nd, NULL, &nfsva, NULL, 756 1.1 dholland NULL, 0, NULL, NULL, NULL, NULL, NULL, 0, 757 1.1 dholland NULL, NULL, NULL, NULL, NULL); 758 1.1 dholland if (error) 759 1.1 dholland return (error); 760 1.1 dholland /* 761 1.1 dholland * Get rid of Op# and status for next op. 762 1.1 dholland */ 763 1.1 dholland NFSM_DISSECT(tl, u_int32_t *, 2 * NFSX_UNSIGNED); 764 1.1 dholland if (*++tl) 765 1.1 dholland nd->nd_flag |= ND_NOMOREDATA; 766 1.1 dholland if (wccflagp != NULL && 767 1.1 dholland nfsva.na_vattr.va_mtime.tv_sec != 0) { 768 1.1 dholland mtx_lock(&np->n_mtx); 769 1.1 dholland *wccflagp = (np->n_mtime.tv_sec == 770 1.1 dholland nfsva.na_vattr.va_mtime.tv_sec && 771 1.1 dholland np->n_mtime.tv_nsec == 772 1.1 dholland nfsva.na_vattr.va_mtime.tv_sec); 773 1.1 dholland mtx_unlock(&np->n_mtx); 774 1.1 dholland } 775 1.1 dholland } 776 1.1 dholland nfsmout: 777 1.1 dholland return (error); 778 1.1 dholland } 779 1.1 dholland 780 1.1 dholland /* 781 1.1 dholland * Get postop attributes. 782 1.1 dholland */ 783 1.1 dholland int 784 1.1 dholland nfscl_postop_attr(struct nfsrv_descript *nd, struct nfsvattr *nap, int *retp, 785 1.1 dholland void *stuff) 786 1.1 dholland { 787 1.1 dholland u_int32_t *tl; 788 1.1 dholland int error = 0; 789 1.1 dholland 790 1.1 dholland *retp = 0; 791 1.1 dholland if (nd->nd_flag & ND_NOMOREDATA) 792 1.1 dholland return (error); 793 1.1 dholland if (nd->nd_flag & ND_NFSV3) { 794 1.1 dholland NFSM_DISSECT(tl, u_int32_t *, NFSX_UNSIGNED); 795 1.1 dholland *retp = fxdr_unsigned(int, *tl); 796 1.1 dholland } else if (nd->nd_flag & ND_NFSV4) { 797 1.1 dholland /* 798 1.1 dholland * For NFSv4, the postop attr are at the end, so no point 799 1.1 dholland * in looking if nd_repstat != 0. 800 1.1 dholland */ 801 1.1 dholland if (!nd->nd_repstat) { 802 1.1 dholland NFSM_DISSECT(tl, u_int32_t *, 2 * NFSX_UNSIGNED); 803 1.1 dholland if (*(tl + 1)) 804 1.1 dholland /* should never happen since nd_repstat != 0 */ 805 1.1 dholland nd->nd_flag |= ND_NOMOREDATA; 806 1.1 dholland else 807 1.1 dholland *retp = 1; 808 1.1 dholland } 809 1.1 dholland } else if (!nd->nd_repstat) { 810 1.1 dholland /* For NFSv2, the attributes are here iff nd_repstat == 0 */ 811 1.1 dholland *retp = 1; 812 1.1 dholland } 813 1.1 dholland if (*retp) { 814 1.1 dholland error = nfsm_loadattr(nd, nap); 815 1.1 dholland if (error) 816 1.1 dholland *retp = 0; 817 1.1 dholland } 818 1.1 dholland nfsmout: 819 1.1 dholland return (error); 820 1.1 dholland } 821 1.1 dholland 822 1.1 dholland /* 823 1.1 dholland * Fill in the setable attributes. The full argument indicates whether 824 1.1 dholland * to fill in them all or just mode and time. 825 1.1 dholland */ 826 1.1 dholland void 827 1.1 dholland nfscl_fillsattr(struct nfsrv_descript *nd, struct vattr *vap, 828 1.1 dholland struct vnode *vp, int flags, u_int32_t rdev) 829 1.1 dholland { 830 1.1 dholland u_int32_t *tl; 831 1.1 dholland struct nfsv2_sattr *sp; 832 1.1 dholland nfsattrbit_t attrbits; 833 1.1 dholland 834 1.1 dholland switch (nd->nd_flag & (ND_NFSV2 | ND_NFSV3 | ND_NFSV4)) { 835 1.1 dholland case ND_NFSV2: 836 1.1 dholland NFSM_BUILD(sp, struct nfsv2_sattr *, NFSX_V2SATTR); 837 1.1 dholland if (vap->va_mode == (mode_t)VNOVAL) 838 1.1 dholland sp->sa_mode = newnfs_xdrneg1; 839 1.1 dholland else 840 1.1 dholland sp->sa_mode = vtonfsv2_mode(vap->va_type, vap->va_mode); 841 1.1 dholland if (vap->va_uid == (uid_t)VNOVAL) 842 1.1 dholland sp->sa_uid = newnfs_xdrneg1; 843 1.1 dholland else 844 1.1 dholland sp->sa_uid = txdr_unsigned(vap->va_uid); 845 1.1 dholland if (vap->va_gid == (gid_t)VNOVAL) 846 1.1 dholland sp->sa_gid = newnfs_xdrneg1; 847 1.1 dholland else 848 1.1 dholland sp->sa_gid = txdr_unsigned(vap->va_gid); 849 1.1 dholland if (flags & NFSSATTR_SIZE0) 850 1.1 dholland sp->sa_size = 0; 851 1.1 dholland else if (flags & NFSSATTR_SIZENEG1) 852 1.1 dholland sp->sa_size = newnfs_xdrneg1; 853 1.1 dholland else if (flags & NFSSATTR_SIZERDEV) 854 1.1 dholland sp->sa_size = txdr_unsigned(rdev); 855 1.1 dholland else 856 1.1 dholland sp->sa_size = txdr_unsigned(vap->va_size); 857 1.1 dholland txdr_nfsv2time(&vap->va_atime, &sp->sa_atime); 858 1.1 dholland txdr_nfsv2time(&vap->va_mtime, &sp->sa_mtime); 859 1.1 dholland break; 860 1.1 dholland case ND_NFSV3: 861 1.1 dholland if (vap->va_mode != (mode_t)VNOVAL) { 862 1.1 dholland NFSM_BUILD(tl, u_int32_t *, 2 * NFSX_UNSIGNED); 863 1.1 dholland *tl++ = newnfs_true; 864 1.1 dholland *tl = txdr_unsigned(vap->va_mode); 865 1.1 dholland } else { 866 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 867 1.1 dholland *tl = newnfs_false; 868 1.1 dholland } 869 1.1 dholland if ((flags & NFSSATTR_FULL) && vap->va_uid != (uid_t)VNOVAL) { 870 1.1 dholland NFSM_BUILD(tl, u_int32_t *, 2 * NFSX_UNSIGNED); 871 1.1 dholland *tl++ = newnfs_true; 872 1.1 dholland *tl = txdr_unsigned(vap->va_uid); 873 1.1 dholland } else { 874 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 875 1.1 dholland *tl = newnfs_false; 876 1.1 dholland } 877 1.1 dholland if ((flags & NFSSATTR_FULL) && vap->va_gid != (gid_t)VNOVAL) { 878 1.1 dholland NFSM_BUILD(tl, u_int32_t *, 2 * NFSX_UNSIGNED); 879 1.1 dholland *tl++ = newnfs_true; 880 1.1 dholland *tl = txdr_unsigned(vap->va_gid); 881 1.1 dholland } else { 882 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 883 1.1 dholland *tl = newnfs_false; 884 1.1 dholland } 885 1.1 dholland if ((flags & NFSSATTR_FULL) && vap->va_size != VNOVAL) { 886 1.1 dholland NFSM_BUILD(tl, u_int32_t *, 3 * NFSX_UNSIGNED); 887 1.1 dholland *tl++ = newnfs_true; 888 1.1 dholland txdr_hyper(vap->va_size, tl); 889 1.1 dholland } else { 890 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 891 1.1 dholland *tl = newnfs_false; 892 1.1 dholland } 893 1.1 dholland if (vap->va_atime.tv_sec != VNOVAL) { 894 1.1 dholland if ((vap->va_vaflags & VA_UTIMES_NULL) == 0) { 895 1.1 dholland NFSM_BUILD(tl, u_int32_t *, 3 * NFSX_UNSIGNED); 896 1.1 dholland *tl++ = txdr_unsigned(NFSV3SATTRTIME_TOCLIENT); 897 1.1 dholland txdr_nfsv3time(&vap->va_atime, tl); 898 1.1 dholland } else { 899 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 900 1.1 dholland *tl = txdr_unsigned(NFSV3SATTRTIME_TOSERVER); 901 1.1 dholland } 902 1.1 dholland } else { 903 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 904 1.1 dholland *tl = txdr_unsigned(NFSV3SATTRTIME_DONTCHANGE); 905 1.1 dholland } 906 1.1 dholland if (vap->va_mtime.tv_sec != VNOVAL) { 907 1.1 dholland if ((vap->va_vaflags & VA_UTIMES_NULL) == 0) { 908 1.1 dholland NFSM_BUILD(tl, u_int32_t *, 3 * NFSX_UNSIGNED); 909 1.1 dholland *tl++ = txdr_unsigned(NFSV3SATTRTIME_TOCLIENT); 910 1.1 dholland txdr_nfsv3time(&vap->va_mtime, tl); 911 1.1 dholland } else { 912 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 913 1.1 dholland *tl = txdr_unsigned(NFSV3SATTRTIME_TOSERVER); 914 1.1 dholland } 915 1.1 dholland } else { 916 1.1 dholland NFSM_BUILD(tl, u_int32_t *, NFSX_UNSIGNED); 917 1.1 dholland *tl = txdr_unsigned(NFSV3SATTRTIME_DONTCHANGE); 918 1.1 dholland } 919 1.1 dholland break; 920 1.1 dholland case ND_NFSV4: 921 1.1 dholland NFSZERO_ATTRBIT(&attrbits); 922 1.1 dholland if (vap->va_mode != (mode_t)VNOVAL) 923 1.1 dholland NFSSETBIT_ATTRBIT(&attrbits, NFSATTRBIT_MODE); 924 1.1 dholland if ((flags & NFSSATTR_FULL) && vap->va_uid != (uid_t)VNOVAL) 925 1.1 dholland NFSSETBIT_ATTRBIT(&attrbits, NFSATTRBIT_OWNER); 926 1.1 dholland if ((flags & NFSSATTR_FULL) && vap->va_gid != (gid_t)VNOVAL) 927 1.1 dholland NFSSETBIT_ATTRBIT(&attrbits, NFSATTRBIT_OWNERGROUP); 928 1.1 dholland if ((flags & NFSSATTR_FULL) && vap->va_size != VNOVAL) 929 1.1 dholland NFSSETBIT_ATTRBIT(&attrbits, NFSATTRBIT_SIZE); 930 1.1 dholland if (vap->va_atime.tv_sec != VNOVAL) 931 1.1 dholland NFSSETBIT_ATTRBIT(&attrbits, NFSATTRBIT_TIMEACCESSSET); 932 1.1 dholland if (vap->va_mtime.tv_sec != VNOVAL) 933 1.1 dholland NFSSETBIT_ATTRBIT(&attrbits, NFSATTRBIT_TIMEMODIFYSET); 934 1.1 dholland (void) nfsv4_fillattr(nd, vp->v_mount, vp, NULL, vap, NULL, 0, 935 1.1 dholland &attrbits, NULL, NULL, 0, 0, 0, 0, (uint64_t)0); 936 1.1 dholland break; 937 1.2 pgoyette } 938 1.1 dholland } 939 1.1 dholland 940 1.1 dholland /* 941 1.1 dholland * nfscl_request() - mostly a wrapper for newnfs_request(). 942 1.1 dholland */ 943 1.1 dholland int 944 1.1 dholland nfscl_request(struct nfsrv_descript *nd, struct vnode *vp, NFSPROC_T *p, 945 1.1 dholland struct ucred *cred, void *stuff) 946 1.1 dholland { 947 1.1 dholland int ret, vers; 948 1.1 dholland struct nfsmount *nmp; 949 1.1 dholland 950 1.1 dholland nmp = VFSTONFS(vp->v_mount); 951 1.1 dholland if (nd->nd_flag & ND_NFSV4) 952 1.1 dholland vers = NFS_VER4; 953 1.1 dholland else if (nd->nd_flag & ND_NFSV3) 954 1.1 dholland vers = NFS_VER3; 955 1.1 dholland else 956 1.1 dholland vers = NFS_VER2; 957 1.1 dholland ret = newnfs_request(nd, nmp, NULL, &nmp->nm_sockreq, vp, p, cred, 958 1.1 dholland NFS_PROG, vers, NULL, 1, NULL, NULL); 959 1.1 dholland return (ret); 960 1.1 dholland } 961 1.1 dholland 962 1.1 dholland /* 963 1.1 dholland * fill in this bsden's variant of statfs using nfsstatfs. 964 1.1 dholland */ 965 1.1 dholland void 966 1.1 dholland nfscl_loadsbinfo(struct nfsmount *nmp, struct nfsstatfs *sfp, void *statfs) 967 1.1 dholland { 968 1.1 dholland struct statfs *sbp = (struct statfs *)statfs; 969 1.1 dholland 970 1.1 dholland if (nmp->nm_flag & (NFSMNT_NFSV3 | NFSMNT_NFSV4)) { 971 1.1 dholland sbp->f_bsize = NFS_FABLKSIZE; 972 1.1 dholland sbp->f_blocks = sfp->sf_tbytes / NFS_FABLKSIZE; 973 1.1 dholland sbp->f_bfree = sfp->sf_fbytes / NFS_FABLKSIZE; 974 1.1 dholland /* 975 1.1 dholland * Although sf_abytes is uint64_t and f_bavail is int64_t, 976 1.1 dholland * the value after dividing by NFS_FABLKSIZE is small 977 1.1 dholland * enough that it will fit in 63bits, so it is ok to 978 1.1 dholland * assign it to f_bavail without fear that it will become 979 1.1 dholland * negative. 980 1.1 dholland */ 981 1.1 dholland sbp->f_bavail = sfp->sf_abytes / NFS_FABLKSIZE; 982 1.1 dholland sbp->f_files = sfp->sf_tfiles; 983 1.1 dholland /* Since f_ffree is int64_t, clip it to 63bits. */ 984 1.1 dholland if (sfp->sf_ffiles > INT64_MAX) 985 1.1 dholland sbp->f_ffree = INT64_MAX; 986 1.1 dholland else 987 1.1 dholland sbp->f_ffree = sfp->sf_ffiles; 988 1.1 dholland } else if ((nmp->nm_flag & NFSMNT_NFSV4) == 0) { 989 1.1 dholland /* 990 1.1 dholland * The type casts to (int32_t) ensure that this code is 991 1.1 dholland * compatible with the old NFS client, in that it will 992 1.1 dholland * propagate bit31 to the high order bits. This may or may 993 1.1 dholland * not be correct for NFSv2, but since it is a legacy 994 1.1 dholland * environment, I'd rather retain backwards compatibility. 995 1.1 dholland */ 996 1.1 dholland sbp->f_bsize = (int32_t)sfp->sf_bsize; 997 1.1 dholland sbp->f_blocks = (int32_t)sfp->sf_blocks; 998 1.1 dholland sbp->f_bfree = (int32_t)sfp->sf_bfree; 999 1.1 dholland sbp->f_bavail = (int32_t)sfp->sf_bavail; 1000 1.1 dholland sbp->f_files = 0; 1001 1.1 dholland sbp->f_ffree = 0; 1002 1.1 dholland } 1003 1.1 dholland } 1004 1.1 dholland 1005 1.1 dholland /* 1006 1.1 dholland * Use the fsinfo stuff to update the mount point. 1007 1.1 dholland */ 1008 1.1 dholland void 1009 1.1 dholland nfscl_loadfsinfo(struct nfsmount *nmp, struct nfsfsinfo *fsp) 1010 1.1 dholland { 1011 1.1 dholland 1012 1.1 dholland if ((nmp->nm_wsize == 0 || fsp->fs_wtpref < nmp->nm_wsize) && 1013 1.1 dholland fsp->fs_wtpref >= NFS_FABLKSIZE) 1014 1.1 dholland nmp->nm_wsize = (fsp->fs_wtpref + NFS_FABLKSIZE - 1) & 1015 1.1 dholland ~(NFS_FABLKSIZE - 1); 1016 1.1 dholland if (fsp->fs_wtmax < nmp->nm_wsize && fsp->fs_wtmax > 0) { 1017 1.1 dholland nmp->nm_wsize = fsp->fs_wtmax & ~(NFS_FABLKSIZE - 1); 1018 1.1 dholland if (nmp->nm_wsize == 0) 1019 1.1 dholland nmp->nm_wsize = fsp->fs_wtmax; 1020 1.1 dholland } 1021 1.1 dholland if (nmp->nm_wsize < NFS_FABLKSIZE) 1022 1.1 dholland nmp->nm_wsize = NFS_FABLKSIZE; 1023 1.1 dholland if ((nmp->nm_rsize == 0 || fsp->fs_rtpref < nmp->nm_rsize) && 1024 1.1 dholland fsp->fs_rtpref >= NFS_FABLKSIZE) 1025 1.1 dholland nmp->nm_rsize = (fsp->fs_rtpref + NFS_FABLKSIZE - 1) & 1026 1.1 dholland ~(NFS_FABLKSIZE - 1); 1027 1.1 dholland if (fsp->fs_rtmax < nmp->nm_rsize && fsp->fs_rtmax > 0) { 1028 1.1 dholland nmp->nm_rsize = fsp->fs_rtmax & ~(NFS_FABLKSIZE - 1); 1029 1.1 dholland if (nmp->nm_rsize == 0) 1030 1.1 dholland nmp->nm_rsize = fsp->fs_rtmax; 1031 1.1 dholland } 1032 1.1 dholland if (nmp->nm_rsize < NFS_FABLKSIZE) 1033 1.1 dholland nmp->nm_rsize = NFS_FABLKSIZE; 1034 1.1 dholland if ((nmp->nm_readdirsize == 0 || fsp->fs_dtpref < nmp->nm_readdirsize) 1035 1.1 dholland && fsp->fs_dtpref >= NFS_DIRBLKSIZ) 1036 1.1 dholland nmp->nm_readdirsize = (fsp->fs_dtpref + NFS_DIRBLKSIZ - 1) & 1037 1.1 dholland ~(NFS_DIRBLKSIZ - 1); 1038 1.1 dholland if (fsp->fs_rtmax < nmp->nm_readdirsize && fsp->fs_rtmax > 0) { 1039 1.1 dholland nmp->nm_readdirsize = fsp->fs_rtmax & ~(NFS_DIRBLKSIZ - 1); 1040 1.1 dholland if (nmp->nm_readdirsize == 0) 1041 1.1 dholland nmp->nm_readdirsize = fsp->fs_rtmax; 1042 1.1 dholland } 1043 1.1 dholland if (nmp->nm_readdirsize < NFS_DIRBLKSIZ) 1044 1.1 dholland nmp->nm_readdirsize = NFS_DIRBLKSIZ; 1045 1.1 dholland if (fsp->fs_maxfilesize > 0 && 1046 1.1 dholland fsp->fs_maxfilesize < nmp->nm_maxfilesize) 1047 1.1 dholland nmp->nm_maxfilesize = fsp->fs_maxfilesize; 1048 1.1 dholland nmp->nm_mountp->mnt_stat.f_iosize = newnfs_iosize(nmp); 1049 1.1 dholland nmp->nm_state |= NFSSTA_GOTFSINFO; 1050 1.1 dholland } 1051 1.1 dholland 1052 1.1 dholland /* 1053 1.2 pgoyette * Lookups source address which should be used to communicate with 1054 1.2 pgoyette * @nmp and stores it inside @pdst. 1055 1.2 pgoyette * 1056 1.2 pgoyette * Returns 0 on success. 1057 1.1 dholland */ 1058 1.1 dholland u_int8_t * 1059 1.2 pgoyette nfscl_getmyip(struct nfsmount *nmp, struct in6_addr *paddr, int *isinet6p) 1060 1.1 dholland { 1061 1.2 pgoyette #if defined(INET6) || defined(INET) 1062 1.2 pgoyette int error, fibnum; 1063 1.1 dholland 1064 1.2 pgoyette fibnum = curthread->td_proc->p_fibnum; 1065 1.2 pgoyette #endif 1066 1.2 pgoyette #ifdef INET 1067 1.1 dholland if (nmp->nm_nam->sa_family == AF_INET) { 1068 1.2 pgoyette struct sockaddr_in *sin; 1069 1.2 pgoyette struct nhop4_extended nh_ext; 1070 1.2 pgoyette 1071 1.1 dholland sin = (struct sockaddr_in *)nmp->nm_nam; 1072 1.1 dholland CURVNET_SET(CRED_TO_VNET(nmp->nm_sockreq.nr_cred)); 1073 1.2 pgoyette error = fib4_lookup_nh_ext(fibnum, sin->sin_addr, 0, 0, 1074 1.2 pgoyette &nh_ext); 1075 1.2 pgoyette CURVNET_RESTORE(); 1076 1.2 pgoyette if (error != 0) 1077 1.2 pgoyette return (NULL); 1078 1.2 pgoyette 1079 1.2 pgoyette if ((ntohl(nh_ext.nh_src.s_addr) >> IN_CLASSA_NSHIFT) == 1080 1.2 pgoyette IN_LOOPBACKNET) { 1081 1.2 pgoyette /* Ignore loopback addresses */ 1082 1.2 pgoyette return (NULL); 1083 1.1 dholland } 1084 1.2 pgoyette 1085 1.2 pgoyette *isinet6p = 0; 1086 1.2 pgoyette *((struct in_addr *)paddr) = nh_ext.nh_src; 1087 1.2 pgoyette 1088 1.2 pgoyette return (u_int8_t *)paddr; 1089 1.2 pgoyette } 1090 1.2 pgoyette #endif 1091 1.1 dholland #ifdef INET6 1092 1.2 pgoyette if (nmp->nm_nam->sa_family == AF_INET6) { 1093 1.2 pgoyette struct sockaddr_in6 *sin6; 1094 1.1 dholland 1095 1.1 dholland sin6 = (struct sockaddr_in6 *)nmp->nm_nam; 1096 1.2 pgoyette 1097 1.1 dholland CURVNET_SET(CRED_TO_VNET(nmp->nm_sockreq.nr_cred)); 1098 1.2 pgoyette error = in6_selectsrc_addr(fibnum, &sin6->sin6_addr, 1099 1.2 pgoyette sin6->sin6_scope_id, NULL, paddr, NULL); 1100 1.1 dholland CURVNET_RESTORE(); 1101 1.2 pgoyette if (error != 0) 1102 1.2 pgoyette return (NULL); 1103 1.2 pgoyette 1104 1.2 pgoyette if (IN6_IS_ADDR_LOOPBACK(paddr)) 1105 1.2 pgoyette return (NULL); 1106 1.2 pgoyette 1107 1.2 pgoyette /* Scope is embedded in */ 1108 1.2 pgoyette *isinet6p = 1; 1109 1.2 pgoyette 1110 1.2 pgoyette return (u_int8_t *)paddr; 1111 1.2 pgoyette } 1112 1.1 dholland #endif 1113 1.2 pgoyette return (NULL); 1114 1.1 dholland } 1115 1.1 dholland 1116 1.1 dholland /* 1117 1.1 dholland * Copy NFS uid, gids from the cred structure. 1118 1.1 dholland */ 1119 1.1 dholland void 1120 1.1 dholland newnfs_copyincred(struct ucred *cr, struct nfscred *nfscr) 1121 1.1 dholland { 1122 1.1 dholland int i; 1123 1.1 dholland 1124 1.1 dholland KASSERT(cr->cr_ngroups >= 0, 1125 1.1 dholland ("newnfs_copyincred: negative cr_ngroups")); 1126 1.1 dholland nfscr->nfsc_uid = cr->cr_uid; 1127 1.1 dholland nfscr->nfsc_ngroups = MIN(cr->cr_ngroups, NFS_MAXGRPS + 1); 1128 1.1 dholland for (i = 0; i < nfscr->nfsc_ngroups; i++) 1129 1.1 dholland nfscr->nfsc_groups[i] = cr->cr_groups[i]; 1130 1.1 dholland } 1131 1.1 dholland 1132 1.1 dholland 1133 1.1 dholland /* 1134 1.1 dholland * Do any client specific initialization. 1135 1.1 dholland */ 1136 1.1 dholland void 1137 1.1 dholland nfscl_init(void) 1138 1.1 dholland { 1139 1.1 dholland static int inited = 0; 1140 1.1 dholland 1141 1.1 dholland if (inited) 1142 1.1 dholland return; 1143 1.1 dholland inited = 1; 1144 1.1 dholland nfscl_inited = 1; 1145 1.1 dholland ncl_pbuf_freecnt = nswbuf / 2 + 1; 1146 1.1 dholland } 1147 1.1 dholland 1148 1.1 dholland /* 1149 1.1 dholland * Check each of the attributes to be set, to ensure they aren't already 1150 1.1 dholland * the correct value. Disable setting ones already correct. 1151 1.1 dholland */ 1152 1.1 dholland int 1153 1.1 dholland nfscl_checksattr(struct vattr *vap, struct nfsvattr *nvap) 1154 1.1 dholland { 1155 1.1 dholland 1156 1.1 dholland if (vap->va_mode != (mode_t)VNOVAL) { 1157 1.1 dholland if (vap->va_mode == nvap->na_mode) 1158 1.1 dholland vap->va_mode = (mode_t)VNOVAL; 1159 1.1 dholland } 1160 1.1 dholland if (vap->va_uid != (uid_t)VNOVAL) { 1161 1.1 dholland if (vap->va_uid == nvap->na_uid) 1162 1.1 dholland vap->va_uid = (uid_t)VNOVAL; 1163 1.1 dholland } 1164 1.1 dholland if (vap->va_gid != (gid_t)VNOVAL) { 1165 1.1 dholland if (vap->va_gid == nvap->na_gid) 1166 1.1 dholland vap->va_gid = (gid_t)VNOVAL; 1167 1.1 dholland } 1168 1.1 dholland if (vap->va_size != VNOVAL) { 1169 1.1 dholland if (vap->va_size == nvap->na_size) 1170 1.1 dholland vap->va_size = VNOVAL; 1171 1.1 dholland } 1172 1.1 dholland 1173 1.1 dholland /* 1174 1.1 dholland * We are normally called with only a partially initialized 1175 1.1 dholland * VAP. Since the NFSv3 spec says that server may use the 1176 1.1 dholland * file attributes to store the verifier, the spec requires 1177 1.1 dholland * us to do a SETATTR RPC. FreeBSD servers store the verifier 1178 1.1 dholland * in atime, but we can't really assume that all servers will 1179 1.1 dholland * so we ensure that our SETATTR sets both atime and mtime. 1180 1.2 pgoyette * Set the VA_UTIMES_NULL flag for this case, so that 1181 1.2 pgoyette * the server's time will be used. This is needed to 1182 1.2 pgoyette * work around a bug in some Solaris servers, where 1183 1.2 pgoyette * setting the time TOCLIENT causes the Setattr RPC 1184 1.2 pgoyette * to return NFS_OK, but not set va_mode. 1185 1.1 dholland */ 1186 1.2 pgoyette if (vap->va_mtime.tv_sec == VNOVAL) { 1187 1.1 dholland vfs_timestamp(&vap->va_mtime); 1188 1.2 pgoyette vap->va_vaflags |= VA_UTIMES_NULL; 1189 1.2 pgoyette } 1190 1.1 dholland if (vap->va_atime.tv_sec == VNOVAL) 1191 1.1 dholland vap->va_atime = vap->va_mtime; 1192 1.1 dholland return (1); 1193 1.1 dholland } 1194 1.1 dholland 1195 1.1 dholland /* 1196 1.1 dholland * Map nfsv4 errors to errno.h errors. 1197 1.1 dholland * The uid and gid arguments are only used for NFSERR_BADOWNER and that 1198 1.1 dholland * error should only be returned for the Open, Create and Setattr Ops. 1199 1.1 dholland * As such, most calls can just pass in 0 for those arguments. 1200 1.1 dholland */ 1201 1.1 dholland APPLESTATIC int 1202 1.1 dholland nfscl_maperr(struct thread *td, int error, uid_t uid, gid_t gid) 1203 1.1 dholland { 1204 1.1 dholland struct proc *p; 1205 1.1 dholland 1206 1.1 dholland if (error < 10000) 1207 1.1 dholland return (error); 1208 1.1 dholland if (td != NULL) 1209 1.1 dholland p = td->td_proc; 1210 1.1 dholland else 1211 1.1 dholland p = NULL; 1212 1.1 dholland switch (error) { 1213 1.1 dholland case NFSERR_BADOWNER: 1214 1.1 dholland tprintf(p, LOG_INFO, 1215 1.1 dholland "No name and/or group mapping for uid,gid:(%d,%d)\n", 1216 1.1 dholland uid, gid); 1217 1.1 dholland return (EPERM); 1218 1.1 dholland case NFSERR_BADNAME: 1219 1.1 dholland case NFSERR_BADCHAR: 1220 1.1 dholland printf("nfsv4 char/name not handled by server\n"); 1221 1.1 dholland return (ENOENT); 1222 1.1 dholland case NFSERR_STALECLIENTID: 1223 1.1 dholland case NFSERR_STALESTATEID: 1224 1.1 dholland case NFSERR_EXPIRED: 1225 1.1 dholland case NFSERR_BADSTATEID: 1226 1.1 dholland case NFSERR_BADSESSION: 1227 1.1 dholland printf("nfsv4 recover err returned %d\n", error); 1228 1.1 dholland return (EIO); 1229 1.1 dholland case NFSERR_BADHANDLE: 1230 1.1 dholland case NFSERR_SERVERFAULT: 1231 1.1 dholland case NFSERR_BADTYPE: 1232 1.1 dholland case NFSERR_FHEXPIRED: 1233 1.1 dholland case NFSERR_RESOURCE: 1234 1.1 dholland case NFSERR_MOVED: 1235 1.1 dholland case NFSERR_NOFILEHANDLE: 1236 1.1 dholland case NFSERR_MINORVERMISMATCH: 1237 1.1 dholland case NFSERR_OLDSTATEID: 1238 1.1 dholland case NFSERR_BADSEQID: 1239 1.1 dholland case NFSERR_LEASEMOVED: 1240 1.1 dholland case NFSERR_RECLAIMBAD: 1241 1.1 dholland case NFSERR_BADXDR: 1242 1.1 dholland case NFSERR_OPILLEGAL: 1243 1.1 dholland printf("nfsv4 client/server protocol prob err=%d\n", 1244 1.1 dholland error); 1245 1.1 dholland return (EIO); 1246 1.1 dholland default: 1247 1.1 dholland tprintf(p, LOG_INFO, "nfsv4 err=%d\n", error); 1248 1.1 dholland return (EIO); 1249 1.1 dholland }; 1250 1.1 dholland } 1251 1.1 dholland 1252 1.1 dholland /* 1253 1.1 dholland * Check to see if the process for this owner exists. Return 1 if it doesn't 1254 1.1 dholland * and 0 otherwise. 1255 1.1 dholland */ 1256 1.1 dholland int 1257 1.1 dholland nfscl_procdoesntexist(u_int8_t *own) 1258 1.1 dholland { 1259 1.1 dholland union { 1260 1.1 dholland u_int32_t lval; 1261 1.1 dholland u_int8_t cval[4]; 1262 1.1 dholland } tl; 1263 1.1 dholland struct proc *p; 1264 1.1 dholland pid_t pid; 1265 1.1 dholland int ret = 0; 1266 1.1 dholland 1267 1.1 dholland tl.cval[0] = *own++; 1268 1.1 dholland tl.cval[1] = *own++; 1269 1.1 dholland tl.cval[2] = *own++; 1270 1.1 dholland tl.cval[3] = *own++; 1271 1.1 dholland pid = tl.lval; 1272 1.1 dholland p = pfind_locked(pid); 1273 1.1 dholland if (p == NULL) 1274 1.1 dholland return (1); 1275 1.1 dholland if (p->p_stats == NULL) { 1276 1.1 dholland PROC_UNLOCK(p); 1277 1.1 dholland return (0); 1278 1.1 dholland } 1279 1.1 dholland tl.cval[0] = *own++; 1280 1.1 dholland tl.cval[1] = *own++; 1281 1.1 dholland tl.cval[2] = *own++; 1282 1.1 dholland tl.cval[3] = *own++; 1283 1.1 dholland if (tl.lval != p->p_stats->p_start.tv_sec) { 1284 1.1 dholland ret = 1; 1285 1.1 dholland } else { 1286 1.1 dholland tl.cval[0] = *own++; 1287 1.1 dholland tl.cval[1] = *own++; 1288 1.1 dholland tl.cval[2] = *own++; 1289 1.1 dholland tl.cval[3] = *own; 1290 1.1 dholland if (tl.lval != p->p_stats->p_start.tv_usec) 1291 1.1 dholland ret = 1; 1292 1.1 dholland } 1293 1.1 dholland PROC_UNLOCK(p); 1294 1.1 dholland return (ret); 1295 1.1 dholland } 1296 1.1 dholland 1297 1.1 dholland /* 1298 1.1 dholland * - nfs pseudo system call for the client 1299 1.1 dholland */ 1300 1.1 dholland /* 1301 1.1 dholland * MPSAFE 1302 1.1 dholland */ 1303 1.1 dholland static int 1304 1.1 dholland nfssvc_nfscl(struct thread *td, struct nfssvc_args *uap) 1305 1.1 dholland { 1306 1.1 dholland struct file *fp; 1307 1.1 dholland struct nfscbd_args nfscbdarg; 1308 1.1 dholland struct nfsd_nfscbd_args nfscbdarg2; 1309 1.1 dholland struct nameidata nd; 1310 1.1 dholland struct nfscl_dumpmntopts dumpmntopts; 1311 1.1 dholland cap_rights_t rights; 1312 1.1 dholland char *buf; 1313 1.1 dholland int error; 1314 1.1 dholland 1315 1.1 dholland if (uap->flag & NFSSVC_CBADDSOCK) { 1316 1.1 dholland error = copyin(uap->argp, (caddr_t)&nfscbdarg, sizeof(nfscbdarg)); 1317 1.1 dholland if (error) 1318 1.1 dholland return (error); 1319 1.1 dholland /* 1320 1.1 dholland * Since we don't know what rights might be required, 1321 1.1 dholland * pretend that we need them all. It is better to be too 1322 1.1 dholland * careful than too reckless. 1323 1.1 dholland */ 1324 1.1 dholland error = fget(td, nfscbdarg.sock, 1325 1.1 dholland cap_rights_init(&rights, CAP_SOCK_CLIENT), &fp); 1326 1.1 dholland if (error) 1327 1.1 dholland return (error); 1328 1.1 dholland if (fp->f_type != DTYPE_SOCKET) { 1329 1.1 dholland fdrop(fp, td); 1330 1.1 dholland return (EPERM); 1331 1.1 dholland } 1332 1.1 dholland error = nfscbd_addsock(fp); 1333 1.1 dholland fdrop(fp, td); 1334 1.1 dholland if (!error && nfscl_enablecallb == 0) { 1335 1.1 dholland nfsv4_cbport = nfscbdarg.port; 1336 1.1 dholland nfscl_enablecallb = 1; 1337 1.1 dholland } 1338 1.1 dholland } else if (uap->flag & NFSSVC_NFSCBD) { 1339 1.1 dholland if (uap->argp == NULL) 1340 1.1 dholland return (EINVAL); 1341 1.1 dholland error = copyin(uap->argp, (caddr_t)&nfscbdarg2, 1342 1.1 dholland sizeof(nfscbdarg2)); 1343 1.1 dholland if (error) 1344 1.1 dholland return (error); 1345 1.1 dholland error = nfscbd_nfsd(td, &nfscbdarg2); 1346 1.1 dholland } else if (uap->flag & NFSSVC_DUMPMNTOPTS) { 1347 1.1 dholland error = copyin(uap->argp, &dumpmntopts, sizeof(dumpmntopts)); 1348 1.1 dholland if (error == 0 && (dumpmntopts.ndmnt_blen < 256 || 1349 1.1 dholland dumpmntopts.ndmnt_blen > 1024)) 1350 1.1 dholland error = EINVAL; 1351 1.1 dholland if (error == 0) 1352 1.1 dholland error = nfsrv_lookupfilename(&nd, 1353 1.1 dholland dumpmntopts.ndmnt_fname, td); 1354 1.1 dholland if (error == 0 && strcmp(nd.ni_vp->v_mount->mnt_vfc->vfc_name, 1355 1.1 dholland "nfs") != 0) { 1356 1.1 dholland vput(nd.ni_vp); 1357 1.1 dholland error = EINVAL; 1358 1.1 dholland } 1359 1.1 dholland if (error == 0) { 1360 1.1 dholland buf = malloc(dumpmntopts.ndmnt_blen, M_TEMP, M_WAITOK); 1361 1.1 dholland nfscl_retopts(VFSTONFS(nd.ni_vp->v_mount), buf, 1362 1.1 dholland dumpmntopts.ndmnt_blen); 1363 1.1 dholland vput(nd.ni_vp); 1364 1.1 dholland error = copyout(buf, dumpmntopts.ndmnt_buf, 1365 1.1 dholland dumpmntopts.ndmnt_blen); 1366 1.1 dholland free(buf, M_TEMP); 1367 1.1 dholland } 1368 1.1 dholland } else { 1369 1.1 dholland error = EINVAL; 1370 1.1 dholland } 1371 1.1 dholland return (error); 1372 1.1 dholland } 1373 1.1 dholland 1374 1.1 dholland extern int (*nfsd_call_nfscl)(struct thread *, struct nfssvc_args *); 1375 1.1 dholland 1376 1.1 dholland /* 1377 1.1 dholland * Called once to initialize data structures... 1378 1.1 dholland */ 1379 1.1 dholland static int 1380 1.1 dholland nfscl_modevent(module_t mod, int type, void *data) 1381 1.1 dholland { 1382 1.1 dholland int error = 0; 1383 1.1 dholland static int loaded = 0; 1384 1.1 dholland 1385 1.1 dholland switch (type) { 1386 1.1 dholland case MOD_LOAD: 1387 1.1 dholland if (loaded) 1388 1.1 dholland return (0); 1389 1.1 dholland newnfs_portinit(); 1390 1.1 dholland mtx_init(&nfs_clstate_mutex, "nfs_clstate_mutex", NULL, 1391 1.1 dholland MTX_DEF); 1392 1.1 dholland mtx_init(&ncl_iod_mutex, "ncl_iod_mutex", NULL, MTX_DEF); 1393 1.1 dholland nfscl_init(); 1394 1.1 dholland NFSD_LOCK(); 1395 1.1 dholland nfsrvd_cbinit(0); 1396 1.1 dholland NFSD_UNLOCK(); 1397 1.1 dholland ncl_call_invalcaches = ncl_invalcaches; 1398 1.1 dholland nfsd_call_nfscl = nfssvc_nfscl; 1399 1.1 dholland loaded = 1; 1400 1.1 dholland break; 1401 1.1 dholland 1402 1.1 dholland case MOD_UNLOAD: 1403 1.1 dholland if (nfs_numnfscbd != 0) { 1404 1.1 dholland error = EBUSY; 1405 1.1 dholland break; 1406 1.1 dholland } 1407 1.1 dholland 1408 1.1 dholland /* 1409 1.1 dholland * XXX: Unloading of nfscl module is unsupported. 1410 1.1 dholland */ 1411 1.1 dholland #if 0 1412 1.1 dholland ncl_call_invalcaches = NULL; 1413 1.1 dholland nfsd_call_nfscl = NULL; 1414 1.1 dholland /* and get rid of the mutexes */ 1415 1.1 dholland mtx_destroy(&nfs_clstate_mutex); 1416 1.1 dholland mtx_destroy(&ncl_iod_mutex); 1417 1.1 dholland loaded = 0; 1418 1.1 dholland break; 1419 1.1 dholland #else 1420 1.1 dholland /* FALLTHROUGH */ 1421 1.1 dholland #endif 1422 1.1 dholland default: 1423 1.1 dholland error = EOPNOTSUPP; 1424 1.1 dholland break; 1425 1.1 dholland } 1426 1.1 dholland return error; 1427 1.1 dholland } 1428 1.1 dholland static moduledata_t nfscl_mod = { 1429 1.1 dholland "nfscl", 1430 1.1 dholland nfscl_modevent, 1431 1.1 dholland NULL, 1432 1.1 dholland }; 1433 1.1 dholland DECLARE_MODULE(nfscl, nfscl_mod, SI_SUB_VFS, SI_ORDER_FIRST); 1434 1.1 dholland 1435 1.1 dholland /* So that loader and kldload(2) can find us, wherever we are.. */ 1436 1.1 dholland MODULE_VERSION(nfscl, 1); 1437 1.1 dholland MODULE_DEPEND(nfscl, nfscommon, 1, 1, 1); 1438 1.1 dholland MODULE_DEPEND(nfscl, krpc, 1, 1, 1); 1439 1.1 dholland MODULE_DEPEND(nfscl, nfssvc, 1, 1, 1); 1440 1.1 dholland MODULE_DEPEND(nfscl, nfslock, 1, 1, 1); 1441 1.1 dholland 1442