nfs_socket.c revision 1.62 1 /* $NetBSD: nfs_socket.c,v 1.62 2000/09/27 18:36:03 fvdl Exp $ */
2
3 /*
4 * Copyright (c) 1989, 1991, 1993, 1995
5 * The Regents of the University of California. All rights reserved.
6 *
7 * This code is derived from software contributed to Berkeley by
8 * Rick Macklem at The University of Guelph.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the University of
21 * California, Berkeley and its contributors.
22 * 4. Neither the name of the University nor the names of its contributors
23 * may be used to endorse or promote products derived from this software
24 * without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36 * SUCH DAMAGE.
37 *
38 * @(#)nfs_socket.c 8.5 (Berkeley) 3/30/95
39 */
40
41 /*
42 * Socket operations for use by nfs
43 */
44
45 #include "fs_nfs.h"
46 #include "opt_nfs.h"
47 #include "opt_nfsserver.h"
48 #include "opt_inet.h"
49
50 #include <sys/param.h>
51 #include <sys/systm.h>
52 #include <sys/callout.h>
53 #include <sys/proc.h>
54 #include <sys/mount.h>
55 #include <sys/kernel.h>
56 #include <sys/mbuf.h>
57 #include <sys/vnode.h>
58 #include <sys/domain.h>
59 #include <sys/protosw.h>
60 #include <sys/socket.h>
61 #include <sys/socketvar.h>
62 #include <sys/syslog.h>
63 #include <sys/tprintf.h>
64 #include <sys/namei.h>
65 #include <sys/signal.h>
66 #include <sys/signalvar.h>
67
68 #include <netinet/in.h>
69 #include <netinet/tcp.h>
70
71 #include <nfs/rpcv2.h>
72 #include <nfs/nfsproto.h>
73 #include <nfs/nfs.h>
74 #include <nfs/xdr_subs.h>
75 #include <nfs/nfsm_subs.h>
76 #include <nfs/nfsmount.h>
77 #include <nfs/nfsnode.h>
78 #include <nfs/nfsrtt.h>
79 #include <nfs/nqnfs.h>
80 #include <nfs/nfs_var.h>
81
82 #define TRUE 1
83 #define FALSE 0
84
85 /*
86 * Estimate rto for an nfs rpc sent via. an unreliable datagram.
87 * Use the mean and mean deviation of rtt for the appropriate type of rpc
88 * for the frequent rpcs and a default for the others.
89 * The justification for doing "other" this way is that these rpcs
90 * happen so infrequently that timer est. would probably be stale.
91 * Also, since many of these rpcs are
92 * non-idempotent, a conservative timeout is desired.
93 * getattr, lookup - A+2D
94 * read, write - A+4D
95 * other - nm_timeo
96 */
97 #define NFS_RTO(n, t) \
98 ((t) == 0 ? (n)->nm_timeo : \
99 ((t) < 3 ? \
100 (((((n)->nm_srtt[t-1] + 3) >> 2) + (n)->nm_sdrtt[t-1] + 1) >> 1) : \
101 ((((n)->nm_srtt[t-1] + 7) >> 3) + (n)->nm_sdrtt[t-1] + 1)))
102 #define NFS_SRTT(r) (r)->r_nmp->nm_srtt[proct[(r)->r_procnum] - 1]
103 #define NFS_SDRTT(r) (r)->r_nmp->nm_sdrtt[proct[(r)->r_procnum] - 1]
104 /*
105 * External data, mostly RPC constants in XDR form
106 */
107 extern u_int32_t rpc_reply, rpc_msgdenied, rpc_mismatch, rpc_vers,
108 rpc_auth_unix, rpc_msgaccepted, rpc_call, rpc_autherr,
109 rpc_auth_kerb;
110 extern u_int32_t nfs_prog, nqnfs_prog;
111 extern time_t nqnfsstarttime;
112 extern struct nfsstats nfsstats;
113 extern int nfsv3_procid[NFS_NPROCS];
114 extern int nfs_ticks;
115
116 /*
117 * Defines which timer to use for the procnum.
118 * 0 - default
119 * 1 - getattr
120 * 2 - lookup
121 * 3 - read
122 * 4 - write
123 */
124 static int proct[NFS_NPROCS] = {
125 0, 1, 0, 2, 1, 3, 3, 4, 0, 0, 0, 0, 0, 0, 0, 0, 3, 3, 0, 0, 0, 0, 0,
126 0, 0, 0,
127 };
128
129 /*
130 * There is a congestion window for outstanding rpcs maintained per mount
131 * point. The cwnd size is adjusted in roughly the way that:
132 * Van Jacobson, Congestion avoidance and Control, In "Proceedings of
133 * SIGCOMM '88". ACM, August 1988.
134 * describes for TCP. The cwnd size is chopped in half on a retransmit timeout
135 * and incremented by 1/cwnd when each rpc reply is received and a full cwnd
136 * of rpcs is in progress.
137 * (The sent count and cwnd are scaled for integer arith.)
138 * Variants of "slow start" were tried and were found to be too much of a
139 * performance hit (ave. rtt 3 times larger),
140 * I suspect due to the large rtt that nfs rpcs have.
141 */
142 #define NFS_CWNDSCALE 256
143 #define NFS_MAXCWND (NFS_CWNDSCALE * 32)
144 static int nfs_backoff[8] = { 2, 4, 8, 16, 32, 64, 128, 256, };
145 int nfsrtton = 0;
146 struct nfsrtt nfsrtt;
147
148 struct callout nfs_timer_ch = CALLOUT_INITIALIZER;
149
150 /*
151 * Initialize sockets and congestion for a new NFS connection.
152 * We do not free the sockaddr if error.
153 */
154 int
155 nfs_connect(nmp, rep)
156 struct nfsmount *nmp;
157 struct nfsreq *rep;
158 {
159 struct socket *so;
160 int s, error, rcvreserve, sndreserve;
161 struct sockaddr *saddr;
162 struct sockaddr_in *sin;
163 #ifdef INET6
164 struct sockaddr_in6 *sin6;
165 #endif
166 struct mbuf *m;
167 u_int16_t tport;
168
169 nmp->nm_so = (struct socket *)0;
170 saddr = mtod(nmp->nm_nam, struct sockaddr *);
171 error = socreate(saddr->sa_family, &nmp->nm_so, nmp->nm_sotype,
172 nmp->nm_soproto);
173 if (error)
174 goto bad;
175 so = nmp->nm_so;
176 nmp->nm_soflags = so->so_proto->pr_flags;
177
178 /*
179 * Some servers require that the client port be a reserved port number.
180 */
181 if (saddr->sa_family == AF_INET && (nmp->nm_flag & NFSMNT_RESVPORT)) {
182 MGET(m, M_WAIT, MT_SONAME);
183 sin = mtod(m, struct sockaddr_in *);
184 sin->sin_len = m->m_len = sizeof (struct sockaddr_in);
185 sin->sin_family = AF_INET;
186 sin->sin_addr.s_addr = INADDR_ANY;
187 tport = IPPORT_RESERVED - 1;
188 sin->sin_port = htons(tport);
189 while ((error = sobind(so, m)) == EADDRINUSE &&
190 --tport > IPPORT_RESERVED / 2)
191 sin->sin_port = htons(tport);
192 m_freem(m);
193 if (error)
194 goto bad;
195 }
196 #ifdef INET6
197 if (saddr->sa_family == AF_INET6 && (nmp->nm_flag & NFSMNT_RESVPORT)) {
198 MGET(m, M_WAIT, MT_SONAME);
199 sin6 = mtod(m, struct sockaddr_in6 *);
200 sin6->sin6_len = m->m_len = sizeof (struct sockaddr_in6);
201 sin6->sin6_family = AF_INET6;
202 sin6->sin6_addr = in6addr_any;
203 tport = IPV6PORT_RESERVED - 1;
204 sin6->sin6_port = htons(tport);
205 while ((error = sobind(so, m)) == EADDRINUSE &&
206 --tport > IPV6PORT_RESERVED / 2)
207 sin6->sin6_port = htons(tport);
208 m_freem(m);
209 if (error)
210 goto bad;
211 }
212 #endif
213
214 /*
215 * Protocols that do not require connections may be optionally left
216 * unconnected for servers that reply from a port other than NFS_PORT.
217 */
218 if (nmp->nm_flag & NFSMNT_NOCONN) {
219 if (nmp->nm_soflags & PR_CONNREQUIRED) {
220 error = ENOTCONN;
221 goto bad;
222 }
223 } else {
224 error = soconnect(so, nmp->nm_nam);
225 if (error)
226 goto bad;
227
228 /*
229 * Wait for the connection to complete. Cribbed from the
230 * connect system call but with the wait timing out so
231 * that interruptible mounts don't hang here for a long time.
232 */
233 s = splsoftnet();
234 while ((so->so_state & SS_ISCONNECTING) && so->so_error == 0) {
235 (void) tsleep((caddr_t)&so->so_timeo, PSOCK,
236 "nfscn1", 2 * hz);
237 if ((so->so_state & SS_ISCONNECTING) &&
238 so->so_error == 0 && rep &&
239 (error = nfs_sigintr(nmp, rep, rep->r_procp)) != 0){
240 so->so_state &= ~SS_ISCONNECTING;
241 splx(s);
242 goto bad;
243 }
244 }
245 if (so->so_error) {
246 error = so->so_error;
247 so->so_error = 0;
248 splx(s);
249 goto bad;
250 }
251 splx(s);
252 }
253 if (nmp->nm_flag & (NFSMNT_SOFT | NFSMNT_INT)) {
254 so->so_rcv.sb_timeo = (5 * hz);
255 so->so_snd.sb_timeo = (5 * hz);
256 } else {
257 so->so_rcv.sb_timeo = 0;
258 so->so_snd.sb_timeo = 0;
259 }
260 if (nmp->nm_sotype == SOCK_DGRAM) {
261 sndreserve = (nmp->nm_wsize + NFS_MAXPKTHDR) * 2;
262 rcvreserve = (max(nmp->nm_rsize, nmp->nm_readdirsize) +
263 NFS_MAXPKTHDR) * 2;
264 } else if (nmp->nm_sotype == SOCK_SEQPACKET) {
265 sndreserve = (nmp->nm_wsize + NFS_MAXPKTHDR) * 2;
266 rcvreserve = (max(nmp->nm_rsize, nmp->nm_readdirsize) +
267 NFS_MAXPKTHDR) * 2;
268 } else {
269 if (nmp->nm_sotype != SOCK_STREAM)
270 panic("nfscon sotype");
271 if (so->so_proto->pr_flags & PR_CONNREQUIRED) {
272 MGET(m, M_WAIT, MT_SOOPTS);
273 *mtod(m, int32_t *) = 1;
274 m->m_len = sizeof(int32_t);
275 sosetopt(so, SOL_SOCKET, SO_KEEPALIVE, m);
276 }
277 if (so->so_proto->pr_protocol == IPPROTO_TCP) {
278 MGET(m, M_WAIT, MT_SOOPTS);
279 *mtod(m, int32_t *) = 1;
280 m->m_len = sizeof(int32_t);
281 sosetopt(so, IPPROTO_TCP, TCP_NODELAY, m);
282 }
283 sndreserve = (nmp->nm_wsize + NFS_MAXPKTHDR +
284 sizeof (u_int32_t)) * 2;
285 rcvreserve = (nmp->nm_rsize + NFS_MAXPKTHDR +
286 sizeof (u_int32_t)) * 2;
287 }
288 error = soreserve(so, sndreserve, rcvreserve);
289 if (error)
290 goto bad;
291 so->so_rcv.sb_flags |= SB_NOINTR;
292 so->so_snd.sb_flags |= SB_NOINTR;
293
294 /* Initialize other non-zero congestion variables */
295 nmp->nm_srtt[0] = nmp->nm_srtt[1] = nmp->nm_srtt[2] = nmp->nm_srtt[3] =
296 nmp->nm_srtt[4] = (NFS_TIMEO << 3);
297 nmp->nm_sdrtt[0] = nmp->nm_sdrtt[1] = nmp->nm_sdrtt[2] =
298 nmp->nm_sdrtt[3] = nmp->nm_sdrtt[4] = 0;
299 nmp->nm_cwnd = NFS_MAXCWND / 2; /* Initial send window */
300 nmp->nm_sent = 0;
301 nmp->nm_timeouts = 0;
302 return (0);
303
304 bad:
305 nfs_disconnect(nmp);
306 return (error);
307 }
308
309 /*
310 * Reconnect routine:
311 * Called when a connection is broken on a reliable protocol.
312 * - clean up the old socket
313 * - nfs_connect() again
314 * - set R_MUSTRESEND for all outstanding requests on mount point
315 * If this fails the mount point is DEAD!
316 * nb: Must be called with the nfs_sndlock() set on the mount point.
317 */
318 int
319 nfs_reconnect(rep)
320 struct nfsreq *rep;
321 {
322 struct nfsreq *rp;
323 struct nfsmount *nmp = rep->r_nmp;
324 int error;
325
326 nfs_disconnect(nmp);
327 while ((error = nfs_connect(nmp, rep)) != 0) {
328 if (error == EINTR || error == ERESTART)
329 return (EINTR);
330 (void) tsleep((caddr_t)&lbolt, PSOCK, "nfscn2", 0);
331 }
332
333 /*
334 * Loop through outstanding request list and fix up all requests
335 * on old socket.
336 */
337 for (rp = nfs_reqq.tqh_first; rp != 0; rp = rp->r_chain.tqe_next) {
338 if (rp->r_nmp == nmp)
339 rp->r_flags |= R_MUSTRESEND;
340 }
341 return (0);
342 }
343
344 /*
345 * NFS disconnect. Clean up and unlink.
346 */
347 void
348 nfs_disconnect(nmp)
349 struct nfsmount *nmp;
350 {
351 struct socket *so;
352 int drain = 0;
353
354 if (nmp->nm_so) {
355 so = nmp->nm_so;
356 nmp->nm_so = (struct socket *)0;
357 soshutdown(so, 2);
358 drain = (nmp->nm_iflag & NFSMNT_DISMNT) != 0;
359 if (drain) {
360 /*
361 * soshutdown() above should wake up the current
362 * listener.
363 * Now wake up those waiting for the recive lock, and
364 * wait for them to go away unhappy, to prevent *nmp
365 * from evaporating while they're sleeping.
366 */
367 while (nmp->nm_waiters > 0) {
368 wakeup (&nmp->nm_iflag);
369 (void) tsleep(&nmp->nm_waiters, PVFS,
370 "nfsdis", 0);
371 }
372 }
373 soclose(so);
374 }
375 #ifdef DIAGNOSTIC
376 if (drain && (nmp->nm_waiters > 0))
377 panic("nfs_disconnect: waiters left after drain?\n");
378 #endif
379 }
380
381 void
382 nfs_safedisconnect(nmp)
383 struct nfsmount *nmp;
384 {
385 struct nfsreq dummyreq;
386
387 memset(&dummyreq, 0, sizeof(dummyreq));
388 dummyreq.r_nmp = nmp;
389 nfs_rcvlock(&dummyreq); /* XXX ignored error return */
390 nfs_disconnect(nmp);
391 nfs_rcvunlock(&nmp->nm_iflag);
392 }
393
394 /*
395 * This is the nfs send routine. For connection based socket types, it
396 * must be called with an nfs_sndlock() on the socket.
397 * "rep == NULL" indicates that it has been called from a server.
398 * For the client side:
399 * - return EINTR if the RPC is terminated, 0 otherwise
400 * - set R_MUSTRESEND if the send fails for any reason
401 * - do any cleanup required by recoverable socket errors (? ? ?)
402 * For the server side:
403 * - return EINTR or ERESTART if interrupted by a signal
404 * - return EPIPE if a connection is lost for connection based sockets (TCP...)
405 * - do any cleanup required by recoverable socket errors (? ? ?)
406 */
407 int
408 nfs_send(so, nam, top, rep)
409 struct socket *so;
410 struct mbuf *nam;
411 struct mbuf *top;
412 struct nfsreq *rep;
413 {
414 struct mbuf *sendnam;
415 int error, soflags, flags;
416
417 if (rep) {
418 if (rep->r_flags & R_SOFTTERM) {
419 m_freem(top);
420 return (EINTR);
421 }
422 if ((so = rep->r_nmp->nm_so) == NULL) {
423 rep->r_flags |= R_MUSTRESEND;
424 m_freem(top);
425 return (0);
426 }
427 rep->r_flags &= ~R_MUSTRESEND;
428 soflags = rep->r_nmp->nm_soflags;
429 } else
430 soflags = so->so_proto->pr_flags;
431 if ((soflags & PR_CONNREQUIRED) || (so->so_state & SS_ISCONNECTED))
432 sendnam = (struct mbuf *)0;
433 else
434 sendnam = nam;
435 if (so->so_type == SOCK_SEQPACKET)
436 flags = MSG_EOR;
437 else
438 flags = 0;
439
440 error = (*so->so_send)(so, sendnam, (struct uio *)0, top,
441 (struct mbuf *)0, flags);
442 if (error) {
443 if (rep) {
444 if (error == ENOBUFS && so->so_type == SOCK_DGRAM) {
445 /*
446 * We're too fast for the network/driver,
447 * and UDP isn't flowcontrolled.
448 * We need to resend. This is not fatal,
449 * just try again.
450 *
451 * Could be smarter here by doing some sort
452 * of a backoff, but this is rare.
453 */
454 rep->r_flags |= R_MUSTRESEND;
455 } else {
456 log(LOG_INFO, "nfs send error %d for %s\n",
457 error,
458 rep->r_nmp->nm_mountp->mnt_stat.f_mntfromname);
459 /*
460 * Deal with errors for the client side.
461 */
462 if (rep->r_flags & R_SOFTTERM)
463 error = EINTR;
464 else
465 rep->r_flags |= R_MUSTRESEND;
466 }
467 } else
468 log(LOG_INFO, "nfsd send error %d\n", error);
469
470 /*
471 * Handle any recoverable (soft) socket errors here. (? ? ?)
472 */
473 if (error != EINTR && error != ERESTART &&
474 error != EWOULDBLOCK && error != EPIPE)
475 error = 0;
476 }
477 return (error);
478 }
479
480 #ifdef NFS
481 /*
482 * Receive a Sun RPC Request/Reply. For SOCK_DGRAM, the work is all
483 * done by soreceive(), but for SOCK_STREAM we must deal with the Record
484 * Mark and consolidate the data into a new mbuf list.
485 * nb: Sometimes TCP passes the data up to soreceive() in long lists of
486 * small mbufs.
487 * For SOCK_STREAM we must be very careful to read an entire record once
488 * we have read any of it, even if the system call has been interrupted.
489 */
490 int
491 nfs_receive(rep, aname, mp)
492 struct nfsreq *rep;
493 struct mbuf **aname;
494 struct mbuf **mp;
495 {
496 struct socket *so;
497 struct uio auio;
498 struct iovec aio;
499 struct mbuf *m;
500 struct mbuf *control;
501 u_int32_t len;
502 struct mbuf **getnam;
503 int error, sotype, rcvflg;
504 struct proc *p = curproc; /* XXX */
505
506 /*
507 * Set up arguments for soreceive()
508 */
509 *mp = (struct mbuf *)0;
510 *aname = (struct mbuf *)0;
511 sotype = rep->r_nmp->nm_sotype;
512
513 /*
514 * For reliable protocols, lock against other senders/receivers
515 * in case a reconnect is necessary.
516 * For SOCK_STREAM, first get the Record Mark to find out how much
517 * more there is to get.
518 * We must lock the socket against other receivers
519 * until we have an entire rpc request/reply.
520 */
521 if (sotype != SOCK_DGRAM) {
522 error = nfs_sndlock(&rep->r_nmp->nm_iflag, rep);
523 if (error)
524 return (error);
525 tryagain:
526 /*
527 * Check for fatal errors and resending request.
528 */
529 /*
530 * Ugh: If a reconnect attempt just happened, nm_so
531 * would have changed. NULL indicates a failed
532 * attempt that has essentially shut down this
533 * mount point.
534 */
535 if (rep->r_mrep || (rep->r_flags & R_SOFTTERM)) {
536 nfs_sndunlock(&rep->r_nmp->nm_iflag);
537 return (EINTR);
538 }
539 so = rep->r_nmp->nm_so;
540 if (!so) {
541 error = nfs_reconnect(rep);
542 if (error) {
543 nfs_sndunlock(&rep->r_nmp->nm_iflag);
544 return (error);
545 }
546 goto tryagain;
547 }
548 while (rep->r_flags & R_MUSTRESEND) {
549 m = m_copym(rep->r_mreq, 0, M_COPYALL, M_WAIT);
550 nfsstats.rpcretries++;
551 error = nfs_send(so, rep->r_nmp->nm_nam, m, rep);
552 if (error) {
553 if (error == EINTR || error == ERESTART ||
554 (error = nfs_reconnect(rep)) != 0) {
555 nfs_sndunlock(&rep->r_nmp->nm_iflag);
556 return (error);
557 }
558 goto tryagain;
559 }
560 }
561 nfs_sndunlock(&rep->r_nmp->nm_iflag);
562 if (sotype == SOCK_STREAM) {
563 aio.iov_base = (caddr_t) &len;
564 aio.iov_len = sizeof(u_int32_t);
565 auio.uio_iov = &aio;
566 auio.uio_iovcnt = 1;
567 auio.uio_segflg = UIO_SYSSPACE;
568 auio.uio_rw = UIO_READ;
569 auio.uio_offset = 0;
570 auio.uio_resid = sizeof(u_int32_t);
571 auio.uio_procp = p;
572 do {
573 rcvflg = MSG_WAITALL;
574 error = (*so->so_receive)(so, (struct mbuf **)0, &auio,
575 (struct mbuf **)0, (struct mbuf **)0, &rcvflg);
576 if (error == EWOULDBLOCK && rep) {
577 if (rep->r_flags & R_SOFTTERM)
578 return (EINTR);
579 }
580 } while (error == EWOULDBLOCK);
581 if (!error && auio.uio_resid > 0) {
582 /*
583 * Don't log a 0 byte receive; it means
584 * that the socket has been closed, and
585 * can happen during normal operation
586 * (forcible unmount or Solaris server).
587 */
588 if (auio.uio_resid != sizeof (u_int32_t))
589 log(LOG_INFO,
590 "short receive (%lu/%lu) from nfs server %s\n",
591 (u_long)sizeof(u_int32_t) - auio.uio_resid,
592 (u_long)sizeof(u_int32_t),
593 rep->r_nmp->nm_mountp->mnt_stat.f_mntfromname);
594 error = EPIPE;
595 }
596 if (error)
597 goto errout;
598 len = ntohl(len) & ~0x80000000;
599 /*
600 * This is SERIOUS! We are out of sync with the sender
601 * and forcing a disconnect/reconnect is all I can do.
602 */
603 if (len > NFS_MAXPACKET) {
604 log(LOG_ERR, "%s (%d) from nfs server %s\n",
605 "impossible packet length",
606 len,
607 rep->r_nmp->nm_mountp->mnt_stat.f_mntfromname);
608 error = EFBIG;
609 goto errout;
610 }
611 auio.uio_resid = len;
612 do {
613 rcvflg = MSG_WAITALL;
614 error = (*so->so_receive)(so, (struct mbuf **)0,
615 &auio, mp, (struct mbuf **)0, &rcvflg);
616 } while (error == EWOULDBLOCK || error == EINTR ||
617 error == ERESTART);
618 if (!error && auio.uio_resid > 0) {
619 if (len != auio.uio_resid)
620 log(LOG_INFO,
621 "short receive (%lu/%d) from nfs server %s\n",
622 (u_long)len - auio.uio_resid, len,
623 rep->r_nmp->nm_mountp->mnt_stat.f_mntfromname);
624 error = EPIPE;
625 }
626 } else {
627 /*
628 * NB: Since uio_resid is big, MSG_WAITALL is ignored
629 * and soreceive() will return when it has either a
630 * control msg or a data msg.
631 * We have no use for control msg., but must grab them
632 * and then throw them away so we know what is going
633 * on.
634 */
635 auio.uio_resid = len = 100000000; /* Anything Big */
636 auio.uio_procp = p;
637 do {
638 rcvflg = 0;
639 error = (*so->so_receive)(so, (struct mbuf **)0,
640 &auio, mp, &control, &rcvflg);
641 if (control)
642 m_freem(control);
643 if (error == EWOULDBLOCK && rep) {
644 if (rep->r_flags & R_SOFTTERM)
645 return (EINTR);
646 }
647 } while (error == EWOULDBLOCK ||
648 (!error && *mp == NULL && control));
649 if ((rcvflg & MSG_EOR) == 0)
650 printf("Egad!!\n");
651 if (!error && *mp == NULL)
652 error = EPIPE;
653 len -= auio.uio_resid;
654 }
655 errout:
656 if (error && error != EINTR && error != ERESTART) {
657 m_freem(*mp);
658 *mp = (struct mbuf *)0;
659 if (error != EPIPE)
660 log(LOG_INFO,
661 "receive error %d from nfs server %s\n",
662 error,
663 rep->r_nmp->nm_mountp->mnt_stat.f_mntfromname);
664 error = nfs_sndlock(&rep->r_nmp->nm_iflag, rep);
665 if (!error)
666 error = nfs_reconnect(rep);
667 if (!error)
668 goto tryagain;
669 else
670 nfs_sndunlock(&rep->r_nmp->nm_iflag);
671 }
672 } else {
673 if ((so = rep->r_nmp->nm_so) == NULL)
674 return (EACCES);
675 if (so->so_state & SS_ISCONNECTED)
676 getnam = (struct mbuf **)0;
677 else
678 getnam = aname;
679 auio.uio_resid = len = 1000000;
680 auio.uio_procp = p;
681 do {
682 rcvflg = 0;
683 error = (*so->so_receive)(so, getnam, &auio, mp,
684 (struct mbuf **)0, &rcvflg);
685 if (error == EWOULDBLOCK &&
686 (rep->r_flags & R_SOFTTERM))
687 return (EINTR);
688 } while (error == EWOULDBLOCK);
689 len -= auio.uio_resid;
690 if (!error && *mp == NULL)
691 error = EPIPE;
692 }
693 if (error) {
694 m_freem(*mp);
695 *mp = (struct mbuf *)0;
696 }
697 return (error);
698 }
699
700 /*
701 * Implement receipt of reply on a socket.
702 * We must search through the list of received datagrams matching them
703 * with outstanding requests using the xid, until ours is found.
704 */
705 /* ARGSUSED */
706 int
707 nfs_reply(myrep)
708 struct nfsreq *myrep;
709 {
710 struct nfsreq *rep;
711 struct nfsmount *nmp = myrep->r_nmp;
712 int32_t t1;
713 struct mbuf *mrep, *nam, *md;
714 u_int32_t rxid, *tl;
715 caddr_t dpos, cp2;
716 int error;
717
718 /*
719 * Loop around until we get our own reply
720 */
721 for (;;) {
722 /*
723 * Lock against other receivers so that I don't get stuck in
724 * sbwait() after someone else has received my reply for me.
725 * Also necessary for connection based protocols to avoid
726 * race conditions during a reconnect.
727 */
728 error = nfs_rcvlock(myrep);
729 if (error == EALREADY)
730 return (0);
731 if (error)
732 return (error);
733 /*
734 * Get the next Rpc reply off the socket
735 */
736 nmp->nm_waiters++;
737 error = nfs_receive(myrep, &nam, &mrep);
738 nfs_rcvunlock(&nmp->nm_iflag);
739 if (error) {
740
741 if (nmp->nm_iflag & NFSMNT_DISMNT) {
742 /*
743 * Oops, we're going away now..
744 */
745 nmp->nm_waiters--;
746 wakeup (&nmp->nm_waiters);
747 return error;
748 }
749 nmp->nm_waiters--;
750 /*
751 * Ignore routing errors on connectionless protocols? ?
752 */
753 if (NFSIGNORE_SOERROR(nmp->nm_soflags, error)) {
754 nmp->nm_so->so_error = 0;
755 #ifdef DEBUG
756 printf("nfs_reply: ignoring error %d\n", error);
757 #endif
758 if (myrep->r_flags & R_GETONEREP)
759 return (0);
760 continue;
761 }
762 return (error);
763 }
764 nmp->nm_waiters--;
765 if (nam)
766 m_freem(nam);
767
768 /*
769 * Get the xid and check that it is an rpc reply
770 */
771 md = mrep;
772 dpos = mtod(md, caddr_t);
773 nfsm_dissect(tl, u_int32_t *, 2*NFSX_UNSIGNED);
774 rxid = *tl++;
775 if (*tl != rpc_reply) {
776 #ifndef NFS_V2_ONLY
777 if (nmp->nm_flag & NFSMNT_NQNFS) {
778 if (nqnfs_callback(nmp, mrep, md, dpos))
779 nfsstats.rpcinvalid++;
780 } else
781 #endif
782 {
783 nfsstats.rpcinvalid++;
784 m_freem(mrep);
785 }
786 nfsmout:
787 if (myrep->r_flags & R_GETONEREP)
788 return (0);
789 continue;
790 }
791
792 /*
793 * Loop through the request list to match up the reply
794 * Iff no match, just drop the datagram
795 */
796 for (rep = nfs_reqq.tqh_first; rep != 0;
797 rep = rep->r_chain.tqe_next) {
798 if (rep->r_mrep == NULL && rxid == rep->r_xid) {
799 /* Found it.. */
800 rep->r_mrep = mrep;
801 rep->r_md = md;
802 rep->r_dpos = dpos;
803 if (nfsrtton) {
804 struct rttl *rt;
805
806 rt = &nfsrtt.rttl[nfsrtt.pos];
807 rt->proc = rep->r_procnum;
808 rt->rto = NFS_RTO(nmp, proct[rep->r_procnum]);
809 rt->sent = nmp->nm_sent;
810 rt->cwnd = nmp->nm_cwnd;
811 rt->srtt = nmp->nm_srtt[proct[rep->r_procnum] - 1];
812 rt->sdrtt = nmp->nm_sdrtt[proct[rep->r_procnum] - 1];
813 rt->fsid = nmp->nm_mountp->mnt_stat.f_fsid;
814 rt->tstamp = time;
815 if (rep->r_flags & R_TIMING)
816 rt->rtt = rep->r_rtt;
817 else
818 rt->rtt = 1000000;
819 nfsrtt.pos = (nfsrtt.pos + 1) % NFSRTTLOGSIZ;
820 }
821 /*
822 * Update congestion window.
823 * Do the additive increase of
824 * one rpc/rtt.
825 */
826 if (nmp->nm_cwnd <= nmp->nm_sent) {
827 nmp->nm_cwnd +=
828 (NFS_CWNDSCALE * NFS_CWNDSCALE +
829 (nmp->nm_cwnd >> 1)) / nmp->nm_cwnd;
830 if (nmp->nm_cwnd > NFS_MAXCWND)
831 nmp->nm_cwnd = NFS_MAXCWND;
832 }
833 rep->r_flags &= ~R_SENT;
834 nmp->nm_sent -= NFS_CWNDSCALE;
835 /*
836 * Update rtt using a gain of 0.125 on the mean
837 * and a gain of 0.25 on the deviation.
838 */
839 if (rep->r_flags & R_TIMING) {
840 /*
841 * Since the timer resolution of
842 * NFS_HZ is so course, it can often
843 * result in r_rtt == 0. Since
844 * r_rtt == N means that the actual
845 * rtt is between N+dt and N+2-dt ticks,
846 * add 1.
847 */
848 t1 = rep->r_rtt + 1;
849 t1 -= (NFS_SRTT(rep) >> 3);
850 NFS_SRTT(rep) += t1;
851 if (t1 < 0)
852 t1 = -t1;
853 t1 -= (NFS_SDRTT(rep) >> 2);
854 NFS_SDRTT(rep) += t1;
855 }
856 nmp->nm_timeouts = 0;
857 break;
858 }
859 }
860 /*
861 * If not matched to a request, drop it.
862 * If it's mine, get out.
863 */
864 if (rep == 0) {
865 nfsstats.rpcunexpected++;
866 m_freem(mrep);
867 } else if (rep == myrep) {
868 if (rep->r_mrep == NULL)
869 panic("nfsreply nil");
870 return (0);
871 }
872 if (myrep->r_flags & R_GETONEREP)
873 return (0);
874 }
875 }
876
877 /*
878 * nfs_request - goes something like this
879 * - fill in request struct
880 * - links it into list
881 * - calls nfs_send() for first transmit
882 * - calls nfs_receive() to get reply
883 * - break down rpc header and return with nfs reply pointed to
884 * by mrep or error
885 * nb: always frees up mreq mbuf list
886 */
887 int
888 nfs_request(vp, mrest, procnum, procp, cred, mrp, mdp, dposp)
889 struct vnode *vp;
890 struct mbuf *mrest;
891 int procnum;
892 struct proc *procp;
893 struct ucred *cred;
894 struct mbuf **mrp;
895 struct mbuf **mdp;
896 caddr_t *dposp;
897 {
898 struct mbuf *m, *mrep;
899 struct nfsreq *rep;
900 u_int32_t *tl;
901 int i;
902 struct nfsmount *nmp;
903 struct mbuf *md, *mheadend;
904 char nickv[RPCX_NICKVERF];
905 time_t reqtime, waituntil;
906 caddr_t dpos, cp2;
907 int t1, s, error = 0, mrest_len, auth_len, auth_type;
908 int trylater_delay = NQ_TRYLATERDEL, trylater_cnt = 0, failed_auth = 0;
909 int verf_len, verf_type;
910 u_int32_t xid;
911 char *auth_str, *verf_str;
912 NFSKERBKEY_T key; /* save session key */
913 #ifndef NFS_V2_ONLY
914 int nqlflag, cachable;
915 u_quad_t frev;
916 struct nfsnode *np;
917 #endif
918
919 nmp = VFSTONFS(vp->v_mount);
920 MALLOC(rep, struct nfsreq *, sizeof(struct nfsreq), M_NFSREQ, M_WAITOK);
921 rep->r_nmp = nmp;
922 rep->r_vp = vp;
923 rep->r_procp = procp;
924 rep->r_procnum = procnum;
925 i = 0;
926 m = mrest;
927 while (m) {
928 i += m->m_len;
929 m = m->m_next;
930 }
931 mrest_len = i;
932
933 /*
934 * Get the RPC header with authorization.
935 */
936 kerbauth:
937 verf_str = auth_str = (char *)0;
938 if (nmp->nm_flag & NFSMNT_KERB) {
939 verf_str = nickv;
940 verf_len = sizeof (nickv);
941 auth_type = RPCAUTH_KERB4;
942 memset((caddr_t)key, 0, sizeof (key));
943 if (failed_auth || nfs_getnickauth(nmp, cred, &auth_str,
944 &auth_len, verf_str, verf_len)) {
945 error = nfs_getauth(nmp, rep, cred, &auth_str,
946 &auth_len, verf_str, &verf_len, key);
947 if (error) {
948 free((caddr_t)rep, M_NFSREQ);
949 m_freem(mrest);
950 return (error);
951 }
952 }
953 } else {
954 auth_type = RPCAUTH_UNIX;
955 auth_len = (((cred->cr_ngroups > nmp->nm_numgrps) ?
956 nmp->nm_numgrps : cred->cr_ngroups) << 2) +
957 5 * NFSX_UNSIGNED;
958 }
959 m = nfsm_rpchead(cred, nmp->nm_flag, procnum, auth_type, auth_len,
960 auth_str, verf_len, verf_str, mrest, mrest_len, &mheadend, &xid);
961 if (auth_str)
962 free(auth_str, M_TEMP);
963
964 /*
965 * For stream protocols, insert a Sun RPC Record Mark.
966 */
967 if (nmp->nm_sotype == SOCK_STREAM) {
968 M_PREPEND(m, NFSX_UNSIGNED, M_WAIT);
969 *mtod(m, u_int32_t *) = htonl(0x80000000 |
970 (m->m_pkthdr.len - NFSX_UNSIGNED));
971 }
972 rep->r_mreq = m;
973 rep->r_xid = xid;
974 tryagain:
975 if (nmp->nm_flag & NFSMNT_SOFT)
976 rep->r_retry = nmp->nm_retry;
977 else
978 rep->r_retry = NFS_MAXREXMIT + 1; /* past clip limit */
979 rep->r_rtt = rep->r_rexmit = 0;
980 if (proct[procnum] > 0)
981 rep->r_flags = R_TIMING;
982 else
983 rep->r_flags = 0;
984 rep->r_mrep = NULL;
985
986 /*
987 * Do the client side RPC.
988 */
989 nfsstats.rpcrequests++;
990 /*
991 * Chain request into list of outstanding requests. Be sure
992 * to put it LAST so timer finds oldest requests first.
993 */
994 s = splsoftnet();
995 TAILQ_INSERT_TAIL(&nfs_reqq, rep, r_chain);
996
997 /* Get send time for nqnfs */
998 reqtime = time.tv_sec;
999
1000 /*
1001 * If backing off another request or avoiding congestion, don't
1002 * send this one now but let timer do it. If not timing a request,
1003 * do it now.
1004 */
1005 if (nmp->nm_so && (nmp->nm_sotype != SOCK_DGRAM ||
1006 (nmp->nm_flag & NFSMNT_DUMBTIMR) ||
1007 nmp->nm_sent < nmp->nm_cwnd)) {
1008 splx(s);
1009 if (nmp->nm_soflags & PR_CONNREQUIRED)
1010 error = nfs_sndlock(&nmp->nm_iflag, rep);
1011 if (!error) {
1012 m = m_copym(rep->r_mreq, 0, M_COPYALL, M_WAIT);
1013 error = nfs_send(nmp->nm_so, nmp->nm_nam, m, rep);
1014 if (nmp->nm_soflags & PR_CONNREQUIRED)
1015 nfs_sndunlock(&nmp->nm_iflag);
1016 }
1017 if (!error && (rep->r_flags & R_MUSTRESEND) == 0) {
1018 nmp->nm_sent += NFS_CWNDSCALE;
1019 rep->r_flags |= R_SENT;
1020 }
1021 } else {
1022 splx(s);
1023 rep->r_rtt = -1;
1024 }
1025
1026 /*
1027 * Wait for the reply from our send or the timer's.
1028 */
1029 if (!error || error == EPIPE)
1030 error = nfs_reply(rep);
1031
1032 /*
1033 * RPC done, unlink the request.
1034 */
1035 s = splsoftnet();
1036 TAILQ_REMOVE(&nfs_reqq, rep, r_chain);
1037 splx(s);
1038
1039 /*
1040 * Decrement the outstanding request count.
1041 */
1042 if (rep->r_flags & R_SENT) {
1043 rep->r_flags &= ~R_SENT; /* paranoia */
1044 nmp->nm_sent -= NFS_CWNDSCALE;
1045 }
1046
1047 /*
1048 * If there was a successful reply and a tprintf msg.
1049 * tprintf a response.
1050 */
1051 if (!error && (rep->r_flags & R_TPRINTFMSG))
1052 nfs_msg(rep->r_procp, nmp->nm_mountp->mnt_stat.f_mntfromname,
1053 "is alive again");
1054 mrep = rep->r_mrep;
1055 md = rep->r_md;
1056 dpos = rep->r_dpos;
1057 if (error) {
1058 m_freem(rep->r_mreq);
1059 free((caddr_t)rep, M_NFSREQ);
1060 return (error);
1061 }
1062
1063 /*
1064 * break down the rpc header and check if ok
1065 */
1066 nfsm_dissect(tl, u_int32_t *, 3 * NFSX_UNSIGNED);
1067 if (*tl++ == rpc_msgdenied) {
1068 if (*tl == rpc_mismatch)
1069 error = EOPNOTSUPP;
1070 else if ((nmp->nm_flag & NFSMNT_KERB) && *tl++ == rpc_autherr) {
1071 if (!failed_auth) {
1072 failed_auth++;
1073 mheadend->m_next = (struct mbuf *)0;
1074 m_freem(mrep);
1075 m_freem(rep->r_mreq);
1076 goto kerbauth;
1077 } else
1078 error = EAUTH;
1079 } else
1080 error = EACCES;
1081 m_freem(mrep);
1082 m_freem(rep->r_mreq);
1083 free((caddr_t)rep, M_NFSREQ);
1084 return (error);
1085 }
1086
1087 /*
1088 * Grab any Kerberos verifier, otherwise just throw it away.
1089 */
1090 verf_type = fxdr_unsigned(int, *tl++);
1091 i = fxdr_unsigned(int32_t, *tl);
1092 if ((nmp->nm_flag & NFSMNT_KERB) && verf_type == RPCAUTH_KERB4) {
1093 error = nfs_savenickauth(nmp, cred, i, key, &md, &dpos, mrep);
1094 if (error)
1095 goto nfsmout;
1096 } else if (i > 0)
1097 nfsm_adv(nfsm_rndup(i));
1098 nfsm_dissect(tl, u_int32_t *, NFSX_UNSIGNED);
1099 /* 0 == ok */
1100 if (*tl == 0) {
1101 nfsm_dissect(tl, u_int32_t *, NFSX_UNSIGNED);
1102 if (*tl != 0) {
1103 error = fxdr_unsigned(int, *tl);
1104 if ((nmp->nm_flag & NFSMNT_NFSV3) &&
1105 error == NFSERR_TRYLATER) {
1106 m_freem(mrep);
1107 error = 0;
1108 waituntil = time.tv_sec + trylater_delay;
1109 while (time.tv_sec < waituntil)
1110 (void) tsleep((caddr_t)&lbolt,
1111 PSOCK, "nqnfstry", 0);
1112 trylater_delay *= nfs_backoff[trylater_cnt];
1113 if (trylater_cnt < 7)
1114 trylater_cnt++;
1115 goto tryagain;
1116 }
1117
1118 /*
1119 * If the File Handle was stale, invalidate the
1120 * lookup cache, just in case.
1121 */
1122 if (error == ESTALE)
1123 cache_purge(vp);
1124 if (nmp->nm_flag & NFSMNT_NFSV3) {
1125 *mrp = mrep;
1126 *mdp = md;
1127 *dposp = dpos;
1128 error |= NFSERR_RETERR;
1129 } else
1130 m_freem(mrep);
1131 m_freem(rep->r_mreq);
1132 free((caddr_t)rep, M_NFSREQ);
1133 return (error);
1134 }
1135
1136 #ifndef NFS_V2_ONLY
1137 /*
1138 * For nqnfs, get any lease in reply
1139 */
1140 if (nmp->nm_flag & NFSMNT_NQNFS) {
1141 nfsm_dissect(tl, u_int32_t *, NFSX_UNSIGNED);
1142 if (*tl) {
1143 np = VTONFS(vp);
1144 nqlflag = fxdr_unsigned(int, *tl);
1145 nfsm_dissect(tl, u_int32_t *, 4*NFSX_UNSIGNED);
1146 cachable = fxdr_unsigned(int, *tl++);
1147 reqtime += fxdr_unsigned(int, *tl++);
1148 if (reqtime > time.tv_sec) {
1149 frev = fxdr_hyper(tl);
1150 nqnfs_clientlease(nmp, np, nqlflag,
1151 cachable, reqtime, frev);
1152 }
1153 }
1154 }
1155 #endif
1156 *mrp = mrep;
1157 *mdp = md;
1158 *dposp = dpos;
1159 m_freem(rep->r_mreq);
1160 FREE((caddr_t)rep, M_NFSREQ);
1161 return (0);
1162 }
1163 m_freem(mrep);
1164 error = EPROTONOSUPPORT;
1165 nfsmout:
1166 m_freem(rep->r_mreq);
1167 free((caddr_t)rep, M_NFSREQ);
1168 return (error);
1169 }
1170 #endif /* NFS */
1171
1172 /*
1173 * Generate the rpc reply header
1174 * siz arg. is used to decide if adding a cluster is worthwhile
1175 */
1176 int
1177 nfs_rephead(siz, nd, slp, err, cache, frev, mrq, mbp, bposp)
1178 int siz;
1179 struct nfsrv_descript *nd;
1180 struct nfssvc_sock *slp;
1181 int err;
1182 int cache;
1183 u_quad_t *frev;
1184 struct mbuf **mrq;
1185 struct mbuf **mbp;
1186 caddr_t *bposp;
1187 {
1188 u_int32_t *tl;
1189 struct mbuf *mreq;
1190 caddr_t bpos;
1191 struct mbuf *mb, *mb2;
1192
1193 MGETHDR(mreq, M_WAIT, MT_DATA);
1194 mb = mreq;
1195 /*
1196 * If this is a big reply, use a cluster else
1197 * try and leave leading space for the lower level headers.
1198 */
1199 siz += RPC_REPLYSIZ;
1200 if (siz >= max_datalen) {
1201 MCLGET(mreq, M_WAIT);
1202 } else
1203 mreq->m_data += max_hdr;
1204 tl = mtod(mreq, u_int32_t *);
1205 mreq->m_len = 6 * NFSX_UNSIGNED;
1206 bpos = ((caddr_t)tl) + mreq->m_len;
1207 *tl++ = txdr_unsigned(nd->nd_retxid);
1208 *tl++ = rpc_reply;
1209 if (err == ERPCMISMATCH || (err & NFSERR_AUTHERR)) {
1210 *tl++ = rpc_msgdenied;
1211 if (err & NFSERR_AUTHERR) {
1212 *tl++ = rpc_autherr;
1213 *tl = txdr_unsigned(err & ~NFSERR_AUTHERR);
1214 mreq->m_len -= NFSX_UNSIGNED;
1215 bpos -= NFSX_UNSIGNED;
1216 } else {
1217 *tl++ = rpc_mismatch;
1218 *tl++ = txdr_unsigned(RPC_VER2);
1219 *tl = txdr_unsigned(RPC_VER2);
1220 }
1221 } else {
1222 *tl++ = rpc_msgaccepted;
1223
1224 /*
1225 * For Kerberos authentication, we must send the nickname
1226 * verifier back, otherwise just RPCAUTH_NULL.
1227 */
1228 if (nd->nd_flag & ND_KERBFULL) {
1229 struct nfsuid *nuidp;
1230 struct timeval ktvin, ktvout;
1231
1232 for (nuidp = NUIDHASH(slp, nd->nd_cr.cr_uid)->lh_first;
1233 nuidp != 0; nuidp = nuidp->nu_hash.le_next) {
1234 if (nuidp->nu_cr.cr_uid == nd->nd_cr.cr_uid &&
1235 (!nd->nd_nam2 || netaddr_match(NU_NETFAM(nuidp),
1236 &nuidp->nu_haddr, nd->nd_nam2)))
1237 break;
1238 }
1239 if (nuidp) {
1240 ktvin.tv_sec =
1241 txdr_unsigned(nuidp->nu_timestamp.tv_sec - 1);
1242 ktvin.tv_usec =
1243 txdr_unsigned(nuidp->nu_timestamp.tv_usec);
1244
1245 /*
1246 * Encrypt the timestamp in ecb mode using the
1247 * session key.
1248 */
1249 #ifdef NFSKERB
1250 XXX
1251 #endif
1252
1253 *tl++ = rpc_auth_kerb;
1254 *tl++ = txdr_unsigned(3 * NFSX_UNSIGNED);
1255 *tl = ktvout.tv_sec;
1256 nfsm_build(tl, u_int32_t *, 3 * NFSX_UNSIGNED);
1257 *tl++ = ktvout.tv_usec;
1258 *tl++ = txdr_unsigned(nuidp->nu_cr.cr_uid);
1259 } else {
1260 *tl++ = 0;
1261 *tl++ = 0;
1262 }
1263 } else {
1264 *tl++ = 0;
1265 *tl++ = 0;
1266 }
1267 switch (err) {
1268 case EPROGUNAVAIL:
1269 *tl = txdr_unsigned(RPC_PROGUNAVAIL);
1270 break;
1271 case EPROGMISMATCH:
1272 *tl = txdr_unsigned(RPC_PROGMISMATCH);
1273 nfsm_build(tl, u_int32_t *, 2 * NFSX_UNSIGNED);
1274 if (nd->nd_flag & ND_NQNFS) {
1275 *tl++ = txdr_unsigned(3);
1276 *tl = txdr_unsigned(3);
1277 } else {
1278 *tl++ = txdr_unsigned(2);
1279 *tl = txdr_unsigned(3);
1280 }
1281 break;
1282 case EPROCUNAVAIL:
1283 *tl = txdr_unsigned(RPC_PROCUNAVAIL);
1284 break;
1285 case EBADRPC:
1286 *tl = txdr_unsigned(RPC_GARBAGE);
1287 break;
1288 default:
1289 *tl = 0;
1290 if (err != NFSERR_RETVOID) {
1291 nfsm_build(tl, u_int32_t *, NFSX_UNSIGNED);
1292 if (err)
1293 *tl = txdr_unsigned(nfsrv_errmap(nd, err));
1294 else
1295 *tl = 0;
1296 }
1297 break;
1298 };
1299 }
1300
1301 /*
1302 * For nqnfs, piggyback lease as requested.
1303 */
1304 if ((nd->nd_flag & ND_NQNFS) && err == 0) {
1305 if (nd->nd_flag & ND_LEASE) {
1306 nfsm_build(tl, u_int32_t *, 5 * NFSX_UNSIGNED);
1307 *tl++ = txdr_unsigned(nd->nd_flag & ND_LEASE);
1308 *tl++ = txdr_unsigned(cache);
1309 *tl++ = txdr_unsigned(nd->nd_duration);
1310 txdr_hyper(*frev, tl);
1311 } else {
1312 nfsm_build(tl, u_int32_t *, NFSX_UNSIGNED);
1313 *tl = 0;
1314 }
1315 }
1316 if (mrq != NULL)
1317 *mrq = mreq;
1318 *mbp = mb;
1319 *bposp = bpos;
1320 if (err != 0 && err != NFSERR_RETVOID)
1321 nfsstats.srvrpc_errs++;
1322 return (0);
1323 }
1324
1325 /*
1326 * Nfs timer routine
1327 * Scan the nfsreq list and retranmit any requests that have timed out
1328 * To avoid retransmission attempts on STREAM sockets (in the future) make
1329 * sure to set the r_retry field to 0 (implies nm_retry == 0).
1330 */
1331 void
1332 nfs_timer(arg)
1333 void *arg; /* never used */
1334 {
1335 struct nfsreq *rep;
1336 struct mbuf *m;
1337 struct socket *so;
1338 struct nfsmount *nmp;
1339 int timeo;
1340 int s, error;
1341 #ifdef NFSSERVER
1342 struct nfssvc_sock *slp;
1343 static long lasttime = 0;
1344 u_quad_t cur_usec;
1345 #endif
1346
1347 s = splsoftnet();
1348 for (rep = nfs_reqq.tqh_first; rep != 0; rep = rep->r_chain.tqe_next) {
1349 nmp = rep->r_nmp;
1350 if (rep->r_mrep || (rep->r_flags & R_SOFTTERM))
1351 continue;
1352 if (nfs_sigintr(nmp, rep, rep->r_procp)) {
1353 rep->r_flags |= R_SOFTTERM;
1354 continue;
1355 }
1356 if (rep->r_rtt >= 0) {
1357 rep->r_rtt++;
1358 if (nmp->nm_flag & NFSMNT_DUMBTIMR)
1359 timeo = nmp->nm_timeo;
1360 else
1361 timeo = NFS_RTO(nmp, proct[rep->r_procnum]);
1362 if (nmp->nm_timeouts > 0)
1363 timeo *= nfs_backoff[nmp->nm_timeouts - 1];
1364 if (rep->r_rtt <= timeo)
1365 continue;
1366 if (nmp->nm_timeouts < 8)
1367 nmp->nm_timeouts++;
1368 }
1369 /*
1370 * Check for server not responding
1371 */
1372 if ((rep->r_flags & R_TPRINTFMSG) == 0 &&
1373 rep->r_rexmit > nmp->nm_deadthresh) {
1374 nfs_msg(rep->r_procp,
1375 nmp->nm_mountp->mnt_stat.f_mntfromname,
1376 "not responding");
1377 rep->r_flags |= R_TPRINTFMSG;
1378 }
1379 if (rep->r_rexmit >= rep->r_retry) { /* too many */
1380 nfsstats.rpctimeouts++;
1381 rep->r_flags |= R_SOFTTERM;
1382 continue;
1383 }
1384 if (nmp->nm_sotype != SOCK_DGRAM) {
1385 if (++rep->r_rexmit > NFS_MAXREXMIT)
1386 rep->r_rexmit = NFS_MAXREXMIT;
1387 continue;
1388 }
1389 if ((so = nmp->nm_so) == NULL)
1390 continue;
1391
1392 /*
1393 * If there is enough space and the window allows..
1394 * Resend it
1395 * Set r_rtt to -1 in case we fail to send it now.
1396 */
1397 rep->r_rtt = -1;
1398 if (sbspace(&so->so_snd) >= rep->r_mreq->m_pkthdr.len &&
1399 ((nmp->nm_flag & NFSMNT_DUMBTIMR) ||
1400 (rep->r_flags & R_SENT) ||
1401 nmp->nm_sent < nmp->nm_cwnd) &&
1402 (m = m_copym(rep->r_mreq, 0, M_COPYALL, M_DONTWAIT))){
1403 if (so->so_state & SS_ISCONNECTED)
1404 error = (*so->so_proto->pr_usrreq)(so, PRU_SEND, m,
1405 (struct mbuf *)0, (struct mbuf *)0, (struct proc *)0);
1406 else
1407 error = (*so->so_proto->pr_usrreq)(so, PRU_SEND, m,
1408 nmp->nm_nam, (struct mbuf *)0, (struct proc *)0);
1409 if (error) {
1410 if (NFSIGNORE_SOERROR(nmp->nm_soflags, error)) {
1411 #ifdef DEBUG
1412 printf("nfs_timer: ignoring error %d\n",
1413 error);
1414 #endif
1415 so->so_error = 0;
1416 }
1417 } else {
1418 /*
1419 * Iff first send, start timing
1420 * else turn timing off, backoff timer
1421 * and divide congestion window by 2.
1422 */
1423 if (rep->r_flags & R_SENT) {
1424 rep->r_flags &= ~R_TIMING;
1425 if (++rep->r_rexmit > NFS_MAXREXMIT)
1426 rep->r_rexmit = NFS_MAXREXMIT;
1427 nmp->nm_cwnd >>= 1;
1428 if (nmp->nm_cwnd < NFS_CWNDSCALE)
1429 nmp->nm_cwnd = NFS_CWNDSCALE;
1430 nfsstats.rpcretries++;
1431 } else {
1432 rep->r_flags |= R_SENT;
1433 nmp->nm_sent += NFS_CWNDSCALE;
1434 }
1435 rep->r_rtt = 0;
1436 }
1437 }
1438 }
1439
1440 #ifdef NFSSERVER
1441 /*
1442 * Call the nqnfs server timer once a second to handle leases.
1443 */
1444 if (lasttime != time.tv_sec) {
1445 lasttime = time.tv_sec;
1446 nqnfs_serverd();
1447 }
1448
1449 /*
1450 * Scan the write gathering queues for writes that need to be
1451 * completed now.
1452 */
1453 cur_usec = (u_quad_t)time.tv_sec * 1000000 + (u_quad_t)time.tv_usec;
1454 for (slp = nfssvc_sockhead.tqh_first; slp != 0;
1455 slp = slp->ns_chain.tqe_next) {
1456 if (slp->ns_tq.lh_first && slp->ns_tq.lh_first->nd_time<=cur_usec)
1457 nfsrv_wakenfsd(slp);
1458 }
1459 #endif /* NFSSERVER */
1460 splx(s);
1461 callout_reset(&nfs_timer_ch, nfs_ticks, nfs_timer, NULL);
1462 }
1463
1464 /*
1465 * Test for a termination condition pending on the process.
1466 * This is used for NFSMNT_INT mounts.
1467 */
1468 int
1469 nfs_sigintr(nmp, rep, p)
1470 struct nfsmount *nmp;
1471 struct nfsreq *rep;
1472 struct proc *p;
1473 {
1474 sigset_t ss;
1475
1476 if (rep && (rep->r_flags & R_SOFTTERM))
1477 return (EINTR);
1478 if (!(nmp->nm_flag & NFSMNT_INT))
1479 return (0);
1480 if (p) {
1481 sigpending1(p, &ss);
1482 #if 0
1483 sigminusset(&p->p_sigignore, &ss);
1484 #endif
1485 if (sigismember(&ss, SIGINT) || sigismember(&ss, SIGTERM) ||
1486 sigismember(&ss, SIGKILL) || sigismember(&ss, SIGHUP) ||
1487 sigismember(&ss, SIGQUIT))
1488 return (EINTR);
1489 }
1490 return (0);
1491 }
1492
1493 /*
1494 * Lock a socket against others.
1495 * Necessary for STREAM sockets to ensure you get an entire rpc request/reply
1496 * and also to avoid race conditions between the processes with nfs requests
1497 * in progress when a reconnect is necessary.
1498 */
1499 int
1500 nfs_sndlock(flagp, rep)
1501 int *flagp;
1502 struct nfsreq *rep;
1503 {
1504 struct proc *p;
1505 int slpflag = 0, slptimeo = 0;
1506
1507 if (rep) {
1508 p = rep->r_procp;
1509 if (rep->r_nmp->nm_flag & NFSMNT_INT)
1510 slpflag = PCATCH;
1511 } else
1512 p = (struct proc *)0;
1513 while (*flagp & NFSMNT_SNDLOCK) {
1514 if (nfs_sigintr(rep->r_nmp, rep, p))
1515 return (EINTR);
1516 *flagp |= NFSMNT_WANTSND;
1517 (void) tsleep((caddr_t)flagp, slpflag | (PZERO - 1), "nfsndlck",
1518 slptimeo);
1519 if (slpflag == PCATCH) {
1520 slpflag = 0;
1521 slptimeo = 2 * hz;
1522 }
1523 }
1524 *flagp |= NFSMNT_SNDLOCK;
1525 return (0);
1526 }
1527
1528 /*
1529 * Unlock the stream socket for others.
1530 */
1531 void
1532 nfs_sndunlock(flagp)
1533 int *flagp;
1534 {
1535
1536 if ((*flagp & NFSMNT_SNDLOCK) == 0)
1537 panic("nfs sndunlock");
1538 *flagp &= ~NFSMNT_SNDLOCK;
1539 if (*flagp & NFSMNT_WANTSND) {
1540 *flagp &= ~NFSMNT_WANTSND;
1541 wakeup((caddr_t)flagp);
1542 }
1543 }
1544
1545 int
1546 nfs_rcvlock(rep)
1547 struct nfsreq *rep;
1548 {
1549 struct nfsmount *nmp = rep->r_nmp;
1550 int *flagp = &nmp->nm_iflag;
1551 int slpflag, slptimeo = 0;
1552
1553 if (*flagp & NFSMNT_DISMNT)
1554 return EIO;
1555
1556 if (*flagp & NFSMNT_INT)
1557 slpflag = PCATCH;
1558 else
1559 slpflag = 0;
1560 while (*flagp & NFSMNT_RCVLOCK) {
1561 if (nfs_sigintr(rep->r_nmp, rep, rep->r_procp))
1562 return (EINTR);
1563 *flagp |= NFSMNT_WANTRCV;
1564 nmp->nm_waiters++;
1565 (void) tsleep((caddr_t)flagp, slpflag | (PZERO - 1), "nfsrcvlk",
1566 slptimeo);
1567 nmp->nm_waiters--;
1568 if (*flagp & NFSMNT_DISMNT) {
1569 wakeup(&nmp->nm_waiters);
1570 return EIO;
1571 }
1572 /* If our reply was received while we were sleeping,
1573 * then just return without taking the lock to avoid a
1574 * situation where a single iod could 'capture' the
1575 * receive lock.
1576 */
1577 if (rep->r_mrep != NULL)
1578 return (EALREADY);
1579 if (slpflag == PCATCH) {
1580 slpflag = 0;
1581 slptimeo = 2 * hz;
1582 }
1583 }
1584 *flagp |= NFSMNT_RCVLOCK;
1585 return (0);
1586 }
1587
1588 /*
1589 * Unlock the stream socket for others.
1590 */
1591 void
1592 nfs_rcvunlock(flagp)
1593 int *flagp;
1594 {
1595
1596 if ((*flagp & NFSMNT_RCVLOCK) == 0)
1597 panic("nfs rcvunlock");
1598 *flagp &= ~NFSMNT_RCVLOCK;
1599 if (*flagp & NFSMNT_WANTRCV) {
1600 *flagp &= ~NFSMNT_WANTRCV;
1601 wakeup((caddr_t)flagp);
1602 }
1603 }
1604
1605 /*
1606 * Parse an RPC request
1607 * - verify it
1608 * - fill in the cred struct.
1609 */
1610 int
1611 nfs_getreq(nd, nfsd, has_header)
1612 struct nfsrv_descript *nd;
1613 struct nfsd *nfsd;
1614 int has_header;
1615 {
1616 int len, i;
1617 u_int32_t *tl;
1618 int32_t t1;
1619 struct uio uio;
1620 struct iovec iov;
1621 caddr_t dpos, cp2, cp;
1622 u_int32_t nfsvers, auth_type;
1623 uid_t nickuid;
1624 int error = 0, nqnfs = 0, ticklen;
1625 struct mbuf *mrep, *md;
1626 struct nfsuid *nuidp;
1627 struct timeval tvin, tvout;
1628
1629 mrep = nd->nd_mrep;
1630 md = nd->nd_md;
1631 dpos = nd->nd_dpos;
1632 if (has_header) {
1633 nfsm_dissect(tl, u_int32_t *, 10 * NFSX_UNSIGNED);
1634 nd->nd_retxid = fxdr_unsigned(u_int32_t, *tl++);
1635 if (*tl++ != rpc_call) {
1636 m_freem(mrep);
1637 return (EBADRPC);
1638 }
1639 } else
1640 nfsm_dissect(tl, u_int32_t *, 8 * NFSX_UNSIGNED);
1641 nd->nd_repstat = 0;
1642 nd->nd_flag = 0;
1643 if (*tl++ != rpc_vers) {
1644 nd->nd_repstat = ERPCMISMATCH;
1645 nd->nd_procnum = NFSPROC_NOOP;
1646 return (0);
1647 }
1648 if (*tl != nfs_prog) {
1649 if (*tl == nqnfs_prog)
1650 nqnfs++;
1651 else {
1652 nd->nd_repstat = EPROGUNAVAIL;
1653 nd->nd_procnum = NFSPROC_NOOP;
1654 return (0);
1655 }
1656 }
1657 tl++;
1658 nfsvers = fxdr_unsigned(u_int32_t, *tl++);
1659 if (((nfsvers < NFS_VER2 || nfsvers > NFS_VER3) && !nqnfs) ||
1660 (nfsvers != NQNFS_VER3 && nqnfs)) {
1661 nd->nd_repstat = EPROGMISMATCH;
1662 nd->nd_procnum = NFSPROC_NOOP;
1663 return (0);
1664 }
1665 if (nqnfs)
1666 nd->nd_flag = (ND_NFSV3 | ND_NQNFS);
1667 else if (nfsvers == NFS_VER3)
1668 nd->nd_flag = ND_NFSV3;
1669 nd->nd_procnum = fxdr_unsigned(u_int32_t, *tl++);
1670 if (nd->nd_procnum == NFSPROC_NULL)
1671 return (0);
1672 if (nd->nd_procnum >= NFS_NPROCS ||
1673 (!nqnfs && nd->nd_procnum >= NQNFSPROC_GETLEASE) ||
1674 (!nd->nd_flag && nd->nd_procnum > NFSV2PROC_STATFS)) {
1675 nd->nd_repstat = EPROCUNAVAIL;
1676 nd->nd_procnum = NFSPROC_NOOP;
1677 return (0);
1678 }
1679 if ((nd->nd_flag & ND_NFSV3) == 0)
1680 nd->nd_procnum = nfsv3_procid[nd->nd_procnum];
1681 auth_type = *tl++;
1682 len = fxdr_unsigned(int, *tl++);
1683 if (len < 0 || len > RPCAUTH_MAXSIZ) {
1684 m_freem(mrep);
1685 return (EBADRPC);
1686 }
1687
1688 nd->nd_flag &= ~ND_KERBAUTH;
1689 /*
1690 * Handle auth_unix or auth_kerb.
1691 */
1692 if (auth_type == rpc_auth_unix) {
1693 len = fxdr_unsigned(int, *++tl);
1694 if (len < 0 || len > NFS_MAXNAMLEN) {
1695 m_freem(mrep);
1696 return (EBADRPC);
1697 }
1698 nfsm_adv(nfsm_rndup(len));
1699 nfsm_dissect(tl, u_int32_t *, 3 * NFSX_UNSIGNED);
1700 memset((caddr_t)&nd->nd_cr, 0, sizeof (struct ucred));
1701 nd->nd_cr.cr_ref = 1;
1702 nd->nd_cr.cr_uid = fxdr_unsigned(uid_t, *tl++);
1703 nd->nd_cr.cr_gid = fxdr_unsigned(gid_t, *tl++);
1704 len = fxdr_unsigned(int, *tl);
1705 if (len < 0 || len > RPCAUTH_UNIXGIDS) {
1706 m_freem(mrep);
1707 return (EBADRPC);
1708 }
1709 nfsm_dissect(tl, u_int32_t *, (len + 2) * NFSX_UNSIGNED);
1710 for (i = 0; i < len; i++)
1711 if (i < NGROUPS)
1712 nd->nd_cr.cr_groups[i] = fxdr_unsigned(gid_t, *tl++);
1713 else
1714 tl++;
1715 nd->nd_cr.cr_ngroups = (len > NGROUPS) ? NGROUPS : len;
1716 if (nd->nd_cr.cr_ngroups > 1)
1717 nfsrvw_sort(nd->nd_cr.cr_groups, nd->nd_cr.cr_ngroups);
1718 len = fxdr_unsigned(int, *++tl);
1719 if (len < 0 || len > RPCAUTH_MAXSIZ) {
1720 m_freem(mrep);
1721 return (EBADRPC);
1722 }
1723 if (len > 0)
1724 nfsm_adv(nfsm_rndup(len));
1725 } else if (auth_type == rpc_auth_kerb) {
1726 switch (fxdr_unsigned(int, *tl++)) {
1727 case RPCAKN_FULLNAME:
1728 ticklen = fxdr_unsigned(int, *tl);
1729 *((u_int32_t *)nfsd->nfsd_authstr) = *tl;
1730 uio.uio_resid = nfsm_rndup(ticklen) + NFSX_UNSIGNED;
1731 nfsd->nfsd_authlen = uio.uio_resid + NFSX_UNSIGNED;
1732 if (uio.uio_resid > (len - 2 * NFSX_UNSIGNED)) {
1733 m_freem(mrep);
1734 return (EBADRPC);
1735 }
1736 uio.uio_offset = 0;
1737 uio.uio_iov = &iov;
1738 uio.uio_iovcnt = 1;
1739 uio.uio_segflg = UIO_SYSSPACE;
1740 iov.iov_base = (caddr_t)&nfsd->nfsd_authstr[4];
1741 iov.iov_len = RPCAUTH_MAXSIZ - 4;
1742 nfsm_mtouio(&uio, uio.uio_resid);
1743 nfsm_dissect(tl, u_int32_t *, 2 * NFSX_UNSIGNED);
1744 if (*tl++ != rpc_auth_kerb ||
1745 fxdr_unsigned(int, *tl) != 4 * NFSX_UNSIGNED) {
1746 printf("Bad kerb verifier\n");
1747 nd->nd_repstat = (NFSERR_AUTHERR|AUTH_BADVERF);
1748 nd->nd_procnum = NFSPROC_NOOP;
1749 return (0);
1750 }
1751 nfsm_dissect(cp, caddr_t, 4 * NFSX_UNSIGNED);
1752 tl = (u_int32_t *)cp;
1753 if (fxdr_unsigned(int, *tl) != RPCAKN_FULLNAME) {
1754 printf("Not fullname kerb verifier\n");
1755 nd->nd_repstat = (NFSERR_AUTHERR|AUTH_BADVERF);
1756 nd->nd_procnum = NFSPROC_NOOP;
1757 return (0);
1758 }
1759 cp += NFSX_UNSIGNED;
1760 memcpy(nfsd->nfsd_verfstr, cp, 3 * NFSX_UNSIGNED);
1761 nfsd->nfsd_verflen = 3 * NFSX_UNSIGNED;
1762 nd->nd_flag |= ND_KERBFULL;
1763 nfsd->nfsd_flag |= NFSD_NEEDAUTH;
1764 break;
1765 case RPCAKN_NICKNAME:
1766 if (len != 2 * NFSX_UNSIGNED) {
1767 printf("Kerb nickname short\n");
1768 nd->nd_repstat = (NFSERR_AUTHERR|AUTH_BADCRED);
1769 nd->nd_procnum = NFSPROC_NOOP;
1770 return (0);
1771 }
1772 nickuid = fxdr_unsigned(uid_t, *tl);
1773 nfsm_dissect(tl, u_int32_t *, 2 * NFSX_UNSIGNED);
1774 if (*tl++ != rpc_auth_kerb ||
1775 fxdr_unsigned(int, *tl) != 3 * NFSX_UNSIGNED) {
1776 printf("Kerb nick verifier bad\n");
1777 nd->nd_repstat = (NFSERR_AUTHERR|AUTH_BADVERF);
1778 nd->nd_procnum = NFSPROC_NOOP;
1779 return (0);
1780 }
1781 nfsm_dissect(tl, u_int32_t *, 3 * NFSX_UNSIGNED);
1782 tvin.tv_sec = *tl++;
1783 tvin.tv_usec = *tl;
1784
1785 for (nuidp = NUIDHASH(nfsd->nfsd_slp,nickuid)->lh_first;
1786 nuidp != 0; nuidp = nuidp->nu_hash.le_next) {
1787 if (nuidp->nu_cr.cr_uid == nickuid &&
1788 (!nd->nd_nam2 ||
1789 netaddr_match(NU_NETFAM(nuidp),
1790 &nuidp->nu_haddr, nd->nd_nam2)))
1791 break;
1792 }
1793 if (!nuidp) {
1794 nd->nd_repstat =
1795 (NFSERR_AUTHERR|AUTH_REJECTCRED);
1796 nd->nd_procnum = NFSPROC_NOOP;
1797 return (0);
1798 }
1799
1800 /*
1801 * Now, decrypt the timestamp using the session key
1802 * and validate it.
1803 */
1804 #ifdef NFSKERB
1805 XXX
1806 #endif
1807
1808 tvout.tv_sec = fxdr_unsigned(long, tvout.tv_sec);
1809 tvout.tv_usec = fxdr_unsigned(long, tvout.tv_usec);
1810 if (nuidp->nu_expire < time.tv_sec ||
1811 nuidp->nu_timestamp.tv_sec > tvout.tv_sec ||
1812 (nuidp->nu_timestamp.tv_sec == tvout.tv_sec &&
1813 nuidp->nu_timestamp.tv_usec > tvout.tv_usec)) {
1814 nuidp->nu_expire = 0;
1815 nd->nd_repstat =
1816 (NFSERR_AUTHERR|AUTH_REJECTVERF);
1817 nd->nd_procnum = NFSPROC_NOOP;
1818 return (0);
1819 }
1820 nfsrv_setcred(&nuidp->nu_cr, &nd->nd_cr);
1821 nd->nd_flag |= ND_KERBNICK;
1822 };
1823 } else {
1824 nd->nd_repstat = (NFSERR_AUTHERR | AUTH_REJECTCRED);
1825 nd->nd_procnum = NFSPROC_NOOP;
1826 return (0);
1827 }
1828
1829 /*
1830 * For nqnfs, get piggybacked lease request.
1831 */
1832 if (nqnfs && nd->nd_procnum != NQNFSPROC_EVICTED) {
1833 nfsm_dissect(tl, u_int32_t *, NFSX_UNSIGNED);
1834 nd->nd_flag |= fxdr_unsigned(int, *tl);
1835 if (nd->nd_flag & ND_LEASE) {
1836 nfsm_dissect(tl, u_int32_t *, NFSX_UNSIGNED);
1837 nd->nd_duration = fxdr_unsigned(u_int32_t, *tl);
1838 } else
1839 nd->nd_duration = NQ_MINLEASE;
1840 } else
1841 nd->nd_duration = NQ_MINLEASE;
1842 nd->nd_md = md;
1843 nd->nd_dpos = dpos;
1844 return (0);
1845 nfsmout:
1846 return (error);
1847 }
1848
1849 int
1850 nfs_msg(p, server, msg)
1851 struct proc *p;
1852 char *server, *msg;
1853 {
1854 tpr_t tpr;
1855
1856 if (p)
1857 tpr = tprintf_open(p);
1858 else
1859 tpr = NULL;
1860 tprintf(tpr, "nfs server %s: %s\n", server, msg);
1861 tprintf_close(tpr);
1862 return (0);
1863 }
1864
1865 #ifdef NFSSERVER
1866 int (*nfsrv3_procs[NFS_NPROCS]) __P((struct nfsrv_descript *,
1867 struct nfssvc_sock *, struct proc *,
1868 struct mbuf **)) = {
1869 nfsrv_null,
1870 nfsrv_getattr,
1871 nfsrv_setattr,
1872 nfsrv_lookup,
1873 nfsrv3_access,
1874 nfsrv_readlink,
1875 nfsrv_read,
1876 nfsrv_write,
1877 nfsrv_create,
1878 nfsrv_mkdir,
1879 nfsrv_symlink,
1880 nfsrv_mknod,
1881 nfsrv_remove,
1882 nfsrv_rmdir,
1883 nfsrv_rename,
1884 nfsrv_link,
1885 nfsrv_readdir,
1886 nfsrv_readdirplus,
1887 nfsrv_statfs,
1888 nfsrv_fsinfo,
1889 nfsrv_pathconf,
1890 nfsrv_commit,
1891 nqnfsrv_getlease,
1892 nqnfsrv_vacated,
1893 nfsrv_noop,
1894 nfsrv_noop
1895 };
1896
1897 /*
1898 * Socket upcall routine for the nfsd sockets.
1899 * The caddr_t arg is a pointer to the "struct nfssvc_sock".
1900 * Essentially do as much as possible non-blocking, else punt and it will
1901 * be called with M_WAIT from an nfsd.
1902 */
1903 void
1904 nfsrv_rcv(so, arg, waitflag)
1905 struct socket *so;
1906 caddr_t arg;
1907 int waitflag;
1908 {
1909 struct nfssvc_sock *slp = (struct nfssvc_sock *)arg;
1910 struct mbuf *m;
1911 struct mbuf *mp, *nam;
1912 struct uio auio;
1913 int flags, error;
1914
1915 if ((slp->ns_flag & SLP_VALID) == 0)
1916 return;
1917 #ifdef notdef
1918 /*
1919 * Define this to test for nfsds handling this under heavy load.
1920 */
1921 if (waitflag == M_DONTWAIT) {
1922 slp->ns_flag |= SLP_NEEDQ; goto dorecs;
1923 }
1924 #endif
1925 auio.uio_procp = NULL;
1926 if (so->so_type == SOCK_STREAM) {
1927 /*
1928 * If there are already records on the queue, defer soreceive()
1929 * to an nfsd so that there is feedback to the TCP layer that
1930 * the nfs servers are heavily loaded.
1931 */
1932 if (slp->ns_rec && waitflag == M_DONTWAIT) {
1933 slp->ns_flag |= SLP_NEEDQ;
1934 goto dorecs;
1935 }
1936
1937 /*
1938 * Do soreceive().
1939 */
1940 auio.uio_resid = 1000000000;
1941 flags = MSG_DONTWAIT;
1942 error = (*so->so_receive)(so, &nam, &auio, &mp, (struct mbuf **)0, &flags);
1943 if (error || mp == (struct mbuf *)0) {
1944 if (error == EWOULDBLOCK)
1945 slp->ns_flag |= SLP_NEEDQ;
1946 else
1947 slp->ns_flag |= SLP_DISCONN;
1948 goto dorecs;
1949 }
1950 m = mp;
1951 if (slp->ns_rawend) {
1952 slp->ns_rawend->m_next = m;
1953 slp->ns_cc += 1000000000 - auio.uio_resid;
1954 } else {
1955 slp->ns_raw = m;
1956 slp->ns_cc = 1000000000 - auio.uio_resid;
1957 }
1958 while (m->m_next)
1959 m = m->m_next;
1960 slp->ns_rawend = m;
1961
1962 /*
1963 * Now try and parse record(s) out of the raw stream data.
1964 */
1965 error = nfsrv_getstream(slp, waitflag);
1966 if (error) {
1967 if (error == EPERM)
1968 slp->ns_flag |= SLP_DISCONN;
1969 else
1970 slp->ns_flag |= SLP_NEEDQ;
1971 }
1972 } else {
1973 do {
1974 auio.uio_resid = 1000000000;
1975 flags = MSG_DONTWAIT;
1976 error = (*so->so_receive)(so, &nam, &auio, &mp,
1977 (struct mbuf **)0, &flags);
1978 if (mp) {
1979 if (nam) {
1980 m = nam;
1981 m->m_next = mp;
1982 } else
1983 m = mp;
1984 if (slp->ns_recend)
1985 slp->ns_recend->m_nextpkt = m;
1986 else
1987 slp->ns_rec = m;
1988 slp->ns_recend = m;
1989 m->m_nextpkt = (struct mbuf *)0;
1990 }
1991 if (error) {
1992 if ((so->so_proto->pr_flags & PR_CONNREQUIRED)
1993 && error != EWOULDBLOCK) {
1994 slp->ns_flag |= SLP_DISCONN;
1995 goto dorecs;
1996 }
1997 }
1998 } while (mp);
1999 }
2000
2001 /*
2002 * Now try and process the request records, non-blocking.
2003 */
2004 dorecs:
2005 if (waitflag == M_DONTWAIT &&
2006 (slp->ns_rec || (slp->ns_flag & (SLP_NEEDQ | SLP_DISCONN))))
2007 nfsrv_wakenfsd(slp);
2008 }
2009
2010 /*
2011 * Try and extract an RPC request from the mbuf data list received on a
2012 * stream socket. The "waitflag" argument indicates whether or not it
2013 * can sleep.
2014 */
2015 int
2016 nfsrv_getstream(slp, waitflag)
2017 struct nfssvc_sock *slp;
2018 int waitflag;
2019 {
2020 struct mbuf *m, **mpp;
2021 char *cp1, *cp2;
2022 int len;
2023 struct mbuf *om, *m2, *recm = NULL;
2024 u_int32_t recmark;
2025
2026 if (slp->ns_flag & SLP_GETSTREAM)
2027 panic("nfs getstream");
2028 slp->ns_flag |= SLP_GETSTREAM;
2029 for (;;) {
2030 if (slp->ns_reclen == 0) {
2031 if (slp->ns_cc < NFSX_UNSIGNED) {
2032 slp->ns_flag &= ~SLP_GETSTREAM;
2033 return (0);
2034 }
2035 m = slp->ns_raw;
2036 if (m->m_len >= NFSX_UNSIGNED) {
2037 memcpy((caddr_t)&recmark, mtod(m, caddr_t), NFSX_UNSIGNED);
2038 m->m_data += NFSX_UNSIGNED;
2039 m->m_len -= NFSX_UNSIGNED;
2040 } else {
2041 cp1 = (caddr_t)&recmark;
2042 cp2 = mtod(m, caddr_t);
2043 while (cp1 < ((caddr_t)&recmark) + NFSX_UNSIGNED) {
2044 while (m->m_len == 0) {
2045 m = m->m_next;
2046 cp2 = mtod(m, caddr_t);
2047 }
2048 *cp1++ = *cp2++;
2049 m->m_data++;
2050 m->m_len--;
2051 }
2052 }
2053 slp->ns_cc -= NFSX_UNSIGNED;
2054 recmark = ntohl(recmark);
2055 slp->ns_reclen = recmark & ~0x80000000;
2056 if (recmark & 0x80000000)
2057 slp->ns_flag |= SLP_LASTFRAG;
2058 else
2059 slp->ns_flag &= ~SLP_LASTFRAG;
2060 if (slp->ns_reclen > NFS_MAXPACKET) {
2061 slp->ns_flag &= ~SLP_GETSTREAM;
2062 return (EPERM);
2063 }
2064 }
2065
2066 /*
2067 * Now get the record part.
2068 */
2069 if (slp->ns_cc == slp->ns_reclen) {
2070 recm = slp->ns_raw;
2071 slp->ns_raw = slp->ns_rawend = (struct mbuf *)0;
2072 slp->ns_cc = slp->ns_reclen = 0;
2073 } else if (slp->ns_cc > slp->ns_reclen) {
2074 len = 0;
2075 m = slp->ns_raw;
2076 om = (struct mbuf *)0;
2077 while (len < slp->ns_reclen) {
2078 if ((len + m->m_len) > slp->ns_reclen) {
2079 size_t left = slp->ns_reclen - len;
2080
2081 MGETHDR(m2, waitflag, m->m_type);
2082 if (m2 == NULL) {
2083 slp->ns_flag &= ~SLP_GETSTREAM;
2084 return (EWOULDBLOCK);
2085 }
2086 if (left > MHLEN) {
2087 MCLGET(m2, waitflag);
2088 if (!(m2->m_flags & M_EXT)) {
2089 m_freem(m2);
2090 slp->ns_flag &= ~SLP_GETSTREAM;
2091 return (EWOULDBLOCK);
2092 }
2093 }
2094 memcpy(mtod(m2, caddr_t), mtod(m, caddr_t),
2095 left);
2096 m2->m_len = left;
2097 m->m_data += left;
2098 m->m_len -= left;
2099 if (om) {
2100 om->m_next = m2;
2101 recm = slp->ns_raw;
2102 } else
2103 recm = m2;
2104 len = slp->ns_reclen;
2105 } else if ((len + m->m_len) == slp->ns_reclen) {
2106 om = m;
2107 len += m->m_len;
2108 m = m->m_next;
2109 recm = slp->ns_raw;
2110 om->m_next = (struct mbuf *)0;
2111 } else {
2112 om = m;
2113 len += m->m_len;
2114 m = m->m_next;
2115 }
2116 }
2117 slp->ns_raw = m;
2118 slp->ns_cc -= len;
2119 slp->ns_reclen = 0;
2120 } else {
2121 slp->ns_flag &= ~SLP_GETSTREAM;
2122 return (0);
2123 }
2124
2125 /*
2126 * Accumulate the fragments into a record.
2127 */
2128 mpp = &slp->ns_frag;
2129 while (*mpp)
2130 mpp = &((*mpp)->m_next);
2131 *mpp = recm;
2132 if (slp->ns_flag & SLP_LASTFRAG) {
2133 if (slp->ns_recend)
2134 slp->ns_recend->m_nextpkt = slp->ns_frag;
2135 else
2136 slp->ns_rec = slp->ns_frag;
2137 slp->ns_recend = slp->ns_frag;
2138 slp->ns_frag = (struct mbuf *)0;
2139 }
2140 }
2141 }
2142
2143 /*
2144 * Parse an RPC header.
2145 */
2146 int
2147 nfsrv_dorec(slp, nfsd, ndp)
2148 struct nfssvc_sock *slp;
2149 struct nfsd *nfsd;
2150 struct nfsrv_descript **ndp;
2151 {
2152 struct mbuf *m, *nam;
2153 struct nfsrv_descript *nd;
2154 int error;
2155
2156 *ndp = NULL;
2157 if ((slp->ns_flag & SLP_VALID) == 0 ||
2158 (m = slp->ns_rec) == (struct mbuf *)0)
2159 return (ENOBUFS);
2160 slp->ns_rec = m->m_nextpkt;
2161 if (slp->ns_rec)
2162 m->m_nextpkt = (struct mbuf *)0;
2163 else
2164 slp->ns_recend = (struct mbuf *)0;
2165 if (m->m_type == MT_SONAME) {
2166 nam = m;
2167 m = m->m_next;
2168 nam->m_next = NULL;
2169 } else
2170 nam = NULL;
2171 MALLOC(nd, struct nfsrv_descript *, sizeof (struct nfsrv_descript),
2172 M_NFSRVDESC, M_WAITOK);
2173 nd->nd_md = nd->nd_mrep = m;
2174 nd->nd_nam2 = nam;
2175 nd->nd_dpos = mtod(m, caddr_t);
2176 error = nfs_getreq(nd, nfsd, TRUE);
2177 if (error) {
2178 m_freem(nam);
2179 free((caddr_t)nd, M_NFSRVDESC);
2180 return (error);
2181 }
2182 *ndp = nd;
2183 nfsd->nfsd_nd = nd;
2184 return (0);
2185 }
2186
2187
2188 /*
2189 * Search for a sleeping nfsd and wake it up.
2190 * SIDE EFFECT: If none found, set NFSD_CHECKSLP flag, so that one of the
2191 * running nfsds will go look for the work in the nfssvc_sock list.
2192 */
2193 void
2194 nfsrv_wakenfsd(slp)
2195 struct nfssvc_sock *slp;
2196 {
2197 struct nfsd *nd;
2198
2199 if ((slp->ns_flag & SLP_VALID) == 0)
2200 return;
2201 for (nd = nfsd_head.tqh_first; nd != 0; nd = nd->nfsd_chain.tqe_next) {
2202 if (nd->nfsd_flag & NFSD_WAITING) {
2203 nd->nfsd_flag &= ~NFSD_WAITING;
2204 if (nd->nfsd_slp)
2205 panic("nfsd wakeup");
2206 slp->ns_sref++;
2207 nd->nfsd_slp = slp;
2208 wakeup((caddr_t)nd);
2209 return;
2210 }
2211 }
2212 slp->ns_flag |= SLP_DOREC;
2213 nfsd_head_flag |= NFSD_CHECKSLP;
2214 }
2215 #endif /* NFSSERVER */
2216