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nfs_srvsocket.c revision 1.4.94.1
      1  1.4.94.1  martin /*	$NetBSD: nfs_srvsocket.c,v 1.4.94.1 2022/12/20 09:54:11 martin Exp $	*/
      2       1.1      ad 
      3       1.1      ad /*
      4       1.1      ad  * Copyright (c) 1989, 1991, 1993, 1995
      5       1.1      ad  *	The Regents of the University of California.  All rights reserved.
      6       1.1      ad  *
      7       1.1      ad  * This code is derived from software contributed to Berkeley by
      8       1.1      ad  * Rick Macklem at The University of Guelph.
      9       1.1      ad  *
     10       1.1      ad  * Redistribution and use in source and binary forms, with or without
     11       1.1      ad  * modification, are permitted provided that the following conditions
     12       1.1      ad  * are met:
     13       1.1      ad  * 1. Redistributions of source code must retain the above copyright
     14       1.1      ad  *    notice, this list of conditions and the following disclaimer.
     15       1.1      ad  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.1      ad  *    notice, this list of conditions and the following disclaimer in the
     17       1.1      ad  *    documentation and/or other materials provided with the distribution.
     18       1.1      ad  * 3. Neither the name of the University nor the names of its contributors
     19       1.1      ad  *    may be used to endorse or promote products derived from this software
     20       1.1      ad  *    without specific prior written permission.
     21       1.1      ad  *
     22       1.1      ad  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     23       1.1      ad  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     24       1.1      ad  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     25       1.1      ad  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     26       1.1      ad  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     27       1.1      ad  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     28       1.1      ad  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     29       1.1      ad  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     30       1.1      ad  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     31       1.1      ad  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     32       1.1      ad  * SUCH DAMAGE.
     33       1.1      ad  *
     34       1.1      ad  *	@(#)nfs_socket.c	8.5 (Berkeley) 3/30/95
     35       1.1      ad  */
     36       1.1      ad 
     37       1.1      ad /*
     38       1.1      ad  * Socket operations for use by nfs
     39       1.1      ad  */
     40       1.1      ad 
     41       1.1      ad #include <sys/cdefs.h>
     42  1.4.94.1  martin __KERNEL_RCSID(0, "$NetBSD: nfs_srvsocket.c,v 1.4.94.1 2022/12/20 09:54:11 martin Exp $");
     43       1.1      ad 
     44       1.1      ad #include <sys/param.h>
     45       1.1      ad #include <sys/systm.h>
     46       1.1      ad #include <sys/evcnt.h>
     47       1.1      ad #include <sys/callout.h>
     48       1.1      ad #include <sys/proc.h>
     49       1.1      ad #include <sys/mount.h>
     50       1.1      ad #include <sys/kernel.h>
     51       1.1      ad #include <sys/kmem.h>
     52       1.1      ad #include <sys/mbuf.h>
     53       1.1      ad #include <sys/vnode.h>
     54       1.1      ad #include <sys/domain.h>
     55       1.1      ad #include <sys/protosw.h>
     56       1.1      ad #include <sys/socket.h>
     57       1.1      ad #include <sys/socketvar.h>
     58       1.1      ad #include <sys/syslog.h>
     59       1.1      ad #include <sys/tprintf.h>
     60       1.1      ad #include <sys/namei.h>
     61       1.1      ad #include <sys/signal.h>
     62       1.1      ad #include <sys/signalvar.h>
     63       1.1      ad #include <sys/kauth.h>
     64       1.1      ad 
     65       1.1      ad #include <netinet/in.h>
     66       1.1      ad #include <netinet/tcp.h>
     67       1.1      ad 
     68       1.1      ad #include <nfs/rpcv2.h>
     69       1.1      ad #include <nfs/nfsproto.h>
     70       1.1      ad #include <nfs/nfs.h>
     71       1.1      ad #include <nfs/xdr_subs.h>
     72       1.1      ad #include <nfs/nfsm_subs.h>
     73       1.1      ad #include <nfs/nfsmount.h>
     74       1.1      ad #include <nfs/nfsnode.h>
     75       1.1      ad #include <nfs/nfsrtt.h>
     76       1.1      ad #include <nfs/nfs_var.h>
     77       1.1      ad 
     78       1.1      ad static void nfsrv_wakenfsd_locked(struct nfssvc_sock *);
     79       1.1      ad 
     80       1.2     dsl int (*nfsrv3_procs[NFS_NPROCS])(struct nfsrv_descript *,
     81       1.1      ad 				    struct nfssvc_sock *, struct lwp *,
     82       1.2     dsl 				    struct mbuf **) = {
     83       1.1      ad 	nfsrv_null,
     84       1.1      ad 	nfsrv_getattr,
     85       1.1      ad 	nfsrv_setattr,
     86       1.1      ad 	nfsrv_lookup,
     87       1.1      ad 	nfsrv3_access,
     88       1.1      ad 	nfsrv_readlink,
     89       1.1      ad 	nfsrv_read,
     90       1.1      ad 	nfsrv_write,
     91       1.1      ad 	nfsrv_create,
     92       1.1      ad 	nfsrv_mkdir,
     93       1.1      ad 	nfsrv_symlink,
     94       1.1      ad 	nfsrv_mknod,
     95       1.1      ad 	nfsrv_remove,
     96       1.1      ad 	nfsrv_rmdir,
     97       1.1      ad 	nfsrv_rename,
     98       1.1      ad 	nfsrv_link,
     99       1.1      ad 	nfsrv_readdir,
    100       1.1      ad 	nfsrv_readdirplus,
    101       1.1      ad 	nfsrv_statfs,
    102       1.1      ad 	nfsrv_fsinfo,
    103       1.1      ad 	nfsrv_pathconf,
    104       1.1      ad 	nfsrv_commit,
    105       1.1      ad 	nfsrv_noop
    106       1.1      ad };
    107       1.1      ad 
    108       1.1      ad /*
    109       1.1      ad  * Socket upcall routine for the nfsd sockets.
    110       1.1      ad  * The void *arg is a pointer to the "struct nfssvc_sock".
    111       1.1      ad  */
    112       1.1      ad void
    113       1.4     tls nfsrv_soupcall(struct socket *so, void *arg, int events, int waitflag)
    114       1.1      ad {
    115       1.1      ad 	struct nfssvc_sock *slp = (struct nfssvc_sock *)arg;
    116       1.1      ad 
    117       1.1      ad 	nfsdsock_setbits(slp, SLP_A_NEEDQ);
    118       1.1      ad 	nfsrv_wakenfsd(slp);
    119       1.1      ad }
    120       1.1      ad 
    121       1.1      ad void
    122       1.1      ad nfsrv_rcv(struct nfssvc_sock *slp)
    123       1.1      ad {
    124       1.1      ad 	struct socket *so;
    125       1.1      ad 	struct mbuf *m;
    126       1.1      ad 	struct mbuf *mp, *nam;
    127       1.1      ad 	struct uio auio;
    128       1.1      ad 	int flags;
    129       1.1      ad 	int error;
    130       1.1      ad 	int setflags = 0;
    131       1.1      ad 
    132       1.1      ad 	error = nfsdsock_lock(slp, true);
    133       1.1      ad 	if (error) {
    134       1.1      ad 		setflags |= SLP_A_NEEDQ;
    135       1.1      ad 		goto dorecs_unlocked;
    136       1.1      ad 	}
    137       1.1      ad 
    138       1.1      ad 	nfsdsock_clearbits(slp, SLP_A_NEEDQ);
    139       1.1      ad 
    140       1.1      ad 	so = slp->ns_so;
    141       1.1      ad 	if (so->so_type == SOCK_STREAM) {
    142       1.1      ad 		/*
    143       1.1      ad 		 * Do soreceive().
    144       1.1      ad 		 */
    145       1.1      ad 		auio.uio_resid = 1000000000;
    146       1.1      ad 		/* not need to setup uio_vmspace */
    147       1.1      ad 		flags = MSG_DONTWAIT;
    148       1.1      ad 		error = (*so->so_receive)(so, &nam, &auio, &mp, NULL, &flags);
    149       1.1      ad 		if (error || mp == NULL) {
    150       1.1      ad 			if (error == EWOULDBLOCK)
    151       1.1      ad 				setflags |= SLP_A_NEEDQ;
    152       1.1      ad 			else
    153       1.1      ad 				setflags |= SLP_A_DISCONN;
    154       1.1      ad 			goto dorecs;
    155       1.1      ad 		}
    156       1.1      ad 		m = mp;
    157       1.1      ad 		m_claimm(m, &nfs_mowner);
    158       1.1      ad 		if (slp->ns_rawend) {
    159       1.1      ad 			slp->ns_rawend->m_next = m;
    160       1.1      ad 			slp->ns_cc += 1000000000 - auio.uio_resid;
    161       1.1      ad 		} else {
    162       1.1      ad 			slp->ns_raw = m;
    163       1.1      ad 			slp->ns_cc = 1000000000 - auio.uio_resid;
    164       1.1      ad 		}
    165       1.1      ad 		while (m->m_next)
    166       1.1      ad 			m = m->m_next;
    167       1.1      ad 		slp->ns_rawend = m;
    168       1.1      ad 
    169       1.1      ad 		/*
    170       1.1      ad 		 * Now try and parse record(s) out of the raw stream data.
    171       1.1      ad 		 */
    172       1.1      ad 		error = nfsrv_getstream(slp, M_WAIT);
    173       1.1      ad 		if (error) {
    174       1.1      ad 			if (error == EPERM)
    175       1.1      ad 				setflags |= SLP_A_DISCONN;
    176       1.1      ad 			else
    177       1.1      ad 				setflags |= SLP_A_NEEDQ;
    178       1.1      ad 		}
    179       1.1      ad 	} else {
    180       1.1      ad 		do {
    181       1.1      ad 			auio.uio_resid = 1000000000;
    182       1.1      ad 			/* not need to setup uio_vmspace */
    183       1.1      ad 			flags = MSG_DONTWAIT;
    184       1.1      ad 			error = (*so->so_receive)(so, &nam, &auio, &mp, NULL,
    185       1.1      ad 			    &flags);
    186       1.1      ad 			if (mp) {
    187       1.1      ad 				if (nam) {
    188       1.1      ad 					m = nam;
    189       1.1      ad 					m->m_next = mp;
    190       1.1      ad 				} else
    191       1.1      ad 					m = mp;
    192       1.1      ad 				m_claimm(m, &nfs_mowner);
    193       1.1      ad 				if (slp->ns_recend)
    194       1.1      ad 					slp->ns_recend->m_nextpkt = m;
    195       1.1      ad 				else
    196       1.1      ad 					slp->ns_rec = m;
    197       1.1      ad 				slp->ns_recend = m;
    198       1.1      ad 				m->m_nextpkt = (struct mbuf *)0;
    199       1.1      ad 			}
    200       1.1      ad 			if (error) {
    201       1.1      ad 				if ((so->so_proto->pr_flags & PR_CONNREQUIRED)
    202       1.1      ad 				    && error != EWOULDBLOCK) {
    203       1.1      ad 					setflags |= SLP_A_DISCONN;
    204       1.1      ad 					goto dorecs;
    205       1.1      ad 				}
    206       1.1      ad 			}
    207       1.1      ad 		} while (mp);
    208       1.1      ad 	}
    209       1.1      ad dorecs:
    210       1.1      ad 	nfsdsock_unlock(slp);
    211       1.1      ad 
    212       1.1      ad dorecs_unlocked:
    213       1.1      ad 	if (setflags) {
    214       1.1      ad 		nfsdsock_setbits(slp, setflags);
    215       1.1      ad 	}
    216       1.1      ad }
    217       1.1      ad 
    218       1.1      ad int
    219       1.1      ad nfsdsock_lock(struct nfssvc_sock *slp, bool waitok)
    220       1.1      ad {
    221       1.1      ad 
    222       1.1      ad 	mutex_enter(&slp->ns_lock);
    223       1.1      ad 	while ((~slp->ns_flags & (SLP_BUSY|SLP_VALID)) == 0) {
    224       1.1      ad 		if (!waitok) {
    225       1.1      ad 			mutex_exit(&slp->ns_lock);
    226       1.1      ad 			return EWOULDBLOCK;
    227       1.1      ad 		}
    228       1.1      ad 		cv_wait(&slp->ns_cv, &slp->ns_lock);
    229       1.1      ad 	}
    230       1.1      ad 	if ((slp->ns_flags & SLP_VALID) == 0) {
    231       1.1      ad 		mutex_exit(&slp->ns_lock);
    232       1.1      ad 		return EINVAL;
    233       1.1      ad 	}
    234       1.1      ad 	KASSERT((slp->ns_flags & SLP_BUSY) == 0);
    235       1.1      ad 	slp->ns_flags |= SLP_BUSY;
    236       1.1      ad 	mutex_exit(&slp->ns_lock);
    237       1.1      ad 
    238       1.1      ad 	return 0;
    239       1.1      ad }
    240       1.1      ad 
    241       1.1      ad void
    242       1.1      ad nfsdsock_unlock(struct nfssvc_sock *slp)
    243       1.1      ad {
    244       1.1      ad 
    245       1.1      ad 	mutex_enter(&slp->ns_lock);
    246       1.1      ad 	KASSERT((slp->ns_flags & SLP_BUSY) != 0);
    247       1.1      ad 	cv_broadcast(&slp->ns_cv);
    248       1.1      ad 	slp->ns_flags &= ~SLP_BUSY;
    249       1.1      ad 	mutex_exit(&slp->ns_lock);
    250       1.1      ad }
    251       1.1      ad 
    252       1.1      ad int
    253       1.1      ad nfsdsock_drain(struct nfssvc_sock *slp)
    254       1.1      ad {
    255       1.1      ad 	int error = 0;
    256       1.1      ad 
    257       1.1      ad 	mutex_enter(&slp->ns_lock);
    258       1.1      ad 	if ((slp->ns_flags & SLP_VALID) == 0) {
    259       1.1      ad 		error = EINVAL;
    260       1.1      ad 		goto done;
    261       1.1      ad 	}
    262       1.1      ad 	slp->ns_flags &= ~SLP_VALID;
    263       1.1      ad 	while ((slp->ns_flags & SLP_BUSY) != 0) {
    264       1.1      ad 		cv_wait(&slp->ns_cv, &slp->ns_lock);
    265       1.1      ad 	}
    266       1.1      ad done:
    267       1.1      ad 	mutex_exit(&slp->ns_lock);
    268       1.1      ad 
    269       1.1      ad 	return error;
    270       1.1      ad }
    271       1.1      ad 
    272       1.1      ad /*
    273       1.1      ad  * Try and extract an RPC request from the mbuf data list received on a
    274       1.1      ad  * stream socket. The "waitflag" argument indicates whether or not it
    275       1.1      ad  * can sleep.
    276       1.1      ad  */
    277       1.1      ad int
    278       1.3     dsl nfsrv_getstream(struct nfssvc_sock *slp, int waitflag)
    279       1.1      ad {
    280       1.1      ad 	struct mbuf *m, **mpp;
    281       1.1      ad 	struct mbuf *recm;
    282       1.1      ad 	u_int32_t recmark;
    283       1.1      ad 	int error = 0;
    284       1.1      ad 
    285       1.1      ad 	KASSERT((slp->ns_flags & SLP_BUSY) != 0);
    286       1.1      ad 	for (;;) {
    287       1.1      ad 		if (slp->ns_reclen == 0) {
    288       1.1      ad 			if (slp->ns_cc < NFSX_UNSIGNED) {
    289       1.1      ad 				break;
    290       1.1      ad 			}
    291       1.1      ad 			m = slp->ns_raw;
    292       1.1      ad 			m_copydata(m, 0, NFSX_UNSIGNED, (void *)&recmark);
    293       1.1      ad 			m_adj(m, NFSX_UNSIGNED);
    294       1.1      ad 			slp->ns_cc -= NFSX_UNSIGNED;
    295       1.1      ad 			recmark = ntohl(recmark);
    296       1.1      ad 			slp->ns_reclen = recmark & ~0x80000000;
    297       1.1      ad 			if (recmark & 0x80000000)
    298       1.1      ad 				slp->ns_sflags |= SLP_S_LASTFRAG;
    299       1.1      ad 			else
    300       1.1      ad 				slp->ns_sflags &= ~SLP_S_LASTFRAG;
    301       1.1      ad 			if (slp->ns_reclen > NFS_MAXPACKET) {
    302       1.1      ad 				error = EPERM;
    303       1.1      ad 				break;
    304       1.1      ad 			}
    305       1.1      ad 		}
    306       1.1      ad 
    307       1.1      ad 		/*
    308       1.1      ad 		 * Now get the record part.
    309       1.1      ad 		 *
    310       1.1      ad 		 * Note that slp->ns_reclen may be 0.  Linux sometimes
    311       1.1      ad 		 * generates 0-length records.
    312       1.1      ad 		 */
    313       1.1      ad 		if (slp->ns_cc == slp->ns_reclen) {
    314       1.1      ad 			recm = slp->ns_raw;
    315       1.1      ad 			slp->ns_raw = slp->ns_rawend = (struct mbuf *)0;
    316       1.1      ad 			slp->ns_cc = slp->ns_reclen = 0;
    317       1.1      ad 		} else if (slp->ns_cc > slp->ns_reclen) {
    318       1.1      ad 			recm = slp->ns_raw;
    319       1.1      ad 			m = m_split(recm, slp->ns_reclen, waitflag);
    320       1.1      ad 			if (m == NULL) {
    321       1.1      ad 				error = EWOULDBLOCK;
    322       1.1      ad 				break;
    323       1.1      ad 			}
    324       1.1      ad 			m_claimm(recm, &nfs_mowner);
    325       1.1      ad 			slp->ns_raw = m;
    326  1.4.94.1  martin 			while (m->m_next)
    327  1.4.94.1  martin 				m = m->m_next;
    328  1.4.94.1  martin 			slp->ns_rawend = m;
    329       1.1      ad 			slp->ns_cc -= slp->ns_reclen;
    330       1.1      ad 			slp->ns_reclen = 0;
    331       1.1      ad 		} else {
    332       1.1      ad 			break;
    333       1.1      ad 		}
    334       1.1      ad 
    335       1.1      ad 		/*
    336       1.1      ad 		 * Accumulate the fragments into a record.
    337       1.1      ad 		 */
    338       1.1      ad 		mpp = &slp->ns_frag;
    339       1.1      ad 		while (*mpp)
    340       1.1      ad 			mpp = &((*mpp)->m_next);
    341       1.1      ad 		*mpp = recm;
    342       1.1      ad 		if (slp->ns_sflags & SLP_S_LASTFRAG) {
    343       1.1      ad 			if (slp->ns_recend)
    344       1.1      ad 				slp->ns_recend->m_nextpkt = slp->ns_frag;
    345       1.1      ad 			else
    346       1.1      ad 				slp->ns_rec = slp->ns_frag;
    347       1.1      ad 			slp->ns_recend = slp->ns_frag;
    348       1.1      ad 			slp->ns_frag = NULL;
    349       1.1      ad 		}
    350       1.1      ad 	}
    351       1.1      ad 
    352       1.1      ad 	return error;
    353       1.1      ad }
    354       1.1      ad 
    355       1.1      ad /*
    356       1.1      ad  * Parse an RPC header.
    357       1.1      ad  */
    358       1.1      ad int
    359       1.1      ad nfsrv_dorec(struct nfssvc_sock *slp, struct nfsd *nfsd,
    360       1.1      ad     struct nfsrv_descript **ndp, bool *more)
    361       1.1      ad {
    362       1.1      ad 	struct mbuf *m, *nam;
    363       1.1      ad 	struct nfsrv_descript *nd;
    364       1.1      ad 	int error;
    365       1.1      ad 
    366       1.1      ad 	*ndp = NULL;
    367       1.1      ad 	*more = false;
    368       1.1      ad 
    369       1.1      ad 	if (nfsdsock_lock(slp, true)) {
    370       1.1      ad 		return ENOBUFS;
    371       1.1      ad 	}
    372       1.1      ad 	m = slp->ns_rec;
    373       1.1      ad 	if (m == NULL) {
    374       1.1      ad 		nfsdsock_unlock(slp);
    375       1.1      ad 		return ENOBUFS;
    376       1.1      ad 	}
    377       1.1      ad 	slp->ns_rec = m->m_nextpkt;
    378       1.1      ad 	if (slp->ns_rec) {
    379       1.1      ad 		m->m_nextpkt = NULL;
    380       1.1      ad 		*more = true;
    381       1.1      ad 	} else {
    382       1.1      ad 		slp->ns_recend = NULL;
    383       1.1      ad 	}
    384       1.1      ad 	nfsdsock_unlock(slp);
    385       1.1      ad 
    386       1.1      ad 	if (m->m_type == MT_SONAME) {
    387       1.1      ad 		nam = m;
    388       1.1      ad 		m = m->m_next;
    389       1.1      ad 		nam->m_next = NULL;
    390       1.1      ad 	} else
    391       1.1      ad 		nam = NULL;
    392       1.1      ad 	nd = nfsdreq_alloc();
    393       1.1      ad 	nd->nd_md = nd->nd_mrep = m;
    394       1.1      ad 	nd->nd_nam2 = nam;
    395       1.1      ad 	nd->nd_dpos = mtod(m, void *);
    396       1.1      ad 	error = nfs_getreq(nd, nfsd, true);
    397       1.1      ad 	if (error) {
    398       1.1      ad 		m_freem(nam);
    399       1.1      ad 		nfsdreq_free(nd);
    400       1.1      ad 		return (error);
    401       1.1      ad 	}
    402       1.1      ad 	*ndp = nd;
    403       1.1      ad 	nfsd->nfsd_nd = nd;
    404       1.1      ad 	return (0);
    405       1.1      ad }
    406       1.1      ad 
    407       1.1      ad bool
    408       1.1      ad nfsrv_timer(void)
    409       1.1      ad {
    410       1.1      ad 	struct timeval tv;
    411       1.1      ad 	struct nfssvc_sock *slp;
    412       1.1      ad 	u_quad_t cur_usec;
    413       1.1      ad 	struct nfsrv_descript *nd;
    414       1.1      ad 	bool more;
    415       1.1      ad 
    416       1.1      ad 	/*
    417       1.1      ad 	 * Scan the write gathering queues for writes that need to be
    418       1.1      ad 	 * completed now.
    419       1.1      ad 	 */
    420       1.1      ad 	getmicrotime(&tv);
    421       1.1      ad 	cur_usec = (u_quad_t)tv.tv_sec * 1000000 + (u_quad_t)tv.tv_usec;
    422       1.1      ad 	more = false;
    423       1.1      ad 	mutex_enter(&nfsd_lock);
    424       1.1      ad 	TAILQ_FOREACH(slp, &nfssvc_sockhead, ns_chain) {
    425       1.1      ad 		nd = LIST_FIRST(&slp->ns_tq);
    426       1.1      ad 		if (nd != NULL) {
    427       1.1      ad 			if (nd->nd_time <= cur_usec) {
    428       1.1      ad 				nfsrv_wakenfsd_locked(slp);
    429       1.1      ad 			}
    430       1.1      ad 			more = true;
    431       1.1      ad 		}
    432       1.1      ad 	}
    433       1.1      ad 	mutex_exit(&nfsd_lock);
    434       1.1      ad 	return more;
    435       1.1      ad }
    436       1.1      ad 
    437       1.1      ad /*
    438       1.1      ad  * Search for a sleeping nfsd and wake it up.
    439       1.1      ad  * SIDE EFFECT: If none found, set NFSD_CHECKSLP flag, so that one of the
    440       1.1      ad  * running nfsds will go look for the work in the nfssvc_sock list.
    441       1.1      ad  */
    442       1.1      ad static void
    443       1.1      ad nfsrv_wakenfsd_locked(struct nfssvc_sock *slp)
    444       1.1      ad {
    445       1.1      ad 	struct nfsd *nd;
    446       1.1      ad 
    447       1.1      ad 	KASSERT(mutex_owned(&nfsd_lock));
    448       1.1      ad 
    449       1.1      ad 	if ((slp->ns_flags & SLP_VALID) == 0)
    450       1.1      ad 		return;
    451       1.1      ad 	if (slp->ns_gflags & SLP_G_DOREC)
    452       1.1      ad 		return;
    453       1.1      ad 	nd = SLIST_FIRST(&nfsd_idle_head);
    454       1.1      ad 	if (nd) {
    455       1.1      ad 		SLIST_REMOVE_HEAD(&nfsd_idle_head, nfsd_idle);
    456       1.1      ad 		if (nd->nfsd_slp)
    457       1.1      ad 			panic("nfsd wakeup");
    458       1.1      ad 		slp->ns_sref++;
    459       1.1      ad 		KASSERT(slp->ns_sref > 0);
    460       1.1      ad 		nd->nfsd_slp = slp;
    461       1.1      ad 		cv_signal(&nd->nfsd_cv);
    462       1.1      ad 	} else {
    463       1.1      ad 		slp->ns_gflags |= SLP_G_DOREC;
    464       1.1      ad 		nfsd_head_flag |= NFSD_CHECKSLP;
    465       1.1      ad 		TAILQ_INSERT_TAIL(&nfssvc_sockpending, slp, ns_pending);
    466       1.1      ad 	}
    467       1.1      ad }
    468       1.1      ad 
    469       1.1      ad void
    470       1.1      ad nfsrv_wakenfsd(struct nfssvc_sock *slp)
    471       1.1      ad {
    472       1.1      ad 
    473       1.1      ad 	mutex_enter(&nfsd_lock);
    474       1.1      ad 	nfsrv_wakenfsd_locked(slp);
    475       1.1      ad 	mutex_exit(&nfsd_lock);
    476       1.1      ad }
    477       1.1      ad 
    478       1.1      ad int
    479       1.1      ad nfsdsock_sendreply(struct nfssvc_sock *slp, struct nfsrv_descript *nd)
    480       1.1      ad {
    481       1.1      ad 	int error;
    482       1.1      ad 
    483       1.1      ad 	if (nd->nd_mrep != NULL) {
    484       1.1      ad 		m_freem(nd->nd_mrep);
    485       1.1      ad 		nd->nd_mrep = NULL;
    486       1.1      ad 	}
    487       1.1      ad 
    488       1.1      ad 	mutex_enter(&slp->ns_lock);
    489       1.1      ad 	if ((slp->ns_flags & SLP_SENDING) != 0) {
    490       1.1      ad 		SIMPLEQ_INSERT_TAIL(&slp->ns_sendq, nd, nd_sendq);
    491       1.1      ad 		mutex_exit(&slp->ns_lock);
    492       1.1      ad 		return 0;
    493       1.1      ad 	}
    494       1.1      ad 	KASSERT(SIMPLEQ_EMPTY(&slp->ns_sendq));
    495       1.1      ad 	slp->ns_flags |= SLP_SENDING;
    496       1.1      ad 	mutex_exit(&slp->ns_lock);
    497       1.1      ad 
    498       1.1      ad again:
    499       1.1      ad 	error = nfs_send(slp->ns_so, nd->nd_nam2, nd->nd_mreq, NULL, curlwp);
    500       1.1      ad 	if (nd->nd_nam2) {
    501       1.1      ad 		m_free(nd->nd_nam2);
    502       1.1      ad 	}
    503       1.1      ad 	nfsdreq_free(nd);
    504       1.1      ad 
    505       1.1      ad 	mutex_enter(&slp->ns_lock);
    506       1.1      ad 	KASSERT((slp->ns_flags & SLP_SENDING) != 0);
    507       1.1      ad 	nd = SIMPLEQ_FIRST(&slp->ns_sendq);
    508       1.1      ad 	if (nd != NULL) {
    509       1.1      ad 		SIMPLEQ_REMOVE_HEAD(&slp->ns_sendq, nd_sendq);
    510       1.1      ad 		mutex_exit(&slp->ns_lock);
    511       1.1      ad 		goto again;
    512       1.1      ad 	}
    513       1.1      ad 	slp->ns_flags &= ~SLP_SENDING;
    514       1.1      ad 	mutex_exit(&slp->ns_lock);
    515       1.1      ad 
    516       1.1      ad 	return error;
    517       1.1      ad }
    518       1.1      ad 
    519       1.1      ad void
    520       1.1      ad nfsdsock_setbits(struct nfssvc_sock *slp, int bits)
    521       1.1      ad {
    522       1.1      ad 
    523       1.1      ad 	mutex_enter(&slp->ns_alock);
    524       1.1      ad 	slp->ns_aflags |= bits;
    525       1.1      ad 	mutex_exit(&slp->ns_alock);
    526       1.1      ad }
    527       1.1      ad 
    528       1.1      ad void
    529       1.1      ad nfsdsock_clearbits(struct nfssvc_sock *slp, int bits)
    530       1.1      ad {
    531       1.1      ad 
    532       1.1      ad 	mutex_enter(&slp->ns_alock);
    533       1.1      ad 	slp->ns_aflags &= ~bits;
    534       1.1      ad 	mutex_exit(&slp->ns_alock);
    535       1.1      ad }
    536       1.1      ad 
    537       1.1      ad bool
    538       1.1      ad nfsdsock_testbits(struct nfssvc_sock *slp, int bits)
    539       1.1      ad {
    540       1.1      ad 
    541       1.1      ad 	return (slp->ns_aflags & bits);
    542       1.1      ad }
    543