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uipc_socket2.c revision 1.105
      1  1.105      elad /*	$NetBSD: uipc_socket2.c,v 1.105 2009/12/30 18:33:53 elad Exp $	*/
      2   1.91        ad 
      3   1.91        ad /*-
      4   1.91        ad  * Copyright (c) 2008 The NetBSD Foundation, Inc.
      5   1.91        ad  * All rights reserved.
      6   1.91        ad  *
      7   1.91        ad  * Redistribution and use in source and binary forms, with or without
      8   1.91        ad  * modification, are permitted provided that the following conditions
      9   1.91        ad  * are met:
     10   1.91        ad  * 1. Redistributions of source code must retain the above copyright
     11   1.91        ad  *    notice, this list of conditions and the following disclaimer.
     12   1.91        ad  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.91        ad  *    notice, this list of conditions and the following disclaimer in the
     14   1.91        ad  *    documentation and/or other materials provided with the distribution.
     15   1.91        ad  *
     16   1.91        ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     17   1.91        ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     18   1.91        ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     19   1.91        ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     20   1.91        ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     21   1.91        ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     22   1.91        ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     23   1.91        ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     24   1.91        ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     25   1.91        ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     26   1.91        ad  * POSSIBILITY OF SUCH DAMAGE.
     27   1.91        ad  */
     28    1.9       cgd 
     29    1.1       cgd /*
     30    1.7   mycroft  * Copyright (c) 1982, 1986, 1988, 1990, 1993
     31    1.7   mycroft  *	The Regents of the University of California.  All rights reserved.
     32    1.1       cgd  *
     33    1.1       cgd  * Redistribution and use in source and binary forms, with or without
     34    1.1       cgd  * modification, are permitted provided that the following conditions
     35    1.1       cgd  * are met:
     36    1.1       cgd  * 1. Redistributions of source code must retain the above copyright
     37    1.1       cgd  *    notice, this list of conditions and the following disclaimer.
     38    1.1       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     39    1.1       cgd  *    notice, this list of conditions and the following disclaimer in the
     40    1.1       cgd  *    documentation and/or other materials provided with the distribution.
     41   1.54       agc  * 3. Neither the name of the University nor the names of its contributors
     42    1.1       cgd  *    may be used to endorse or promote products derived from this software
     43    1.1       cgd  *    without specific prior written permission.
     44    1.1       cgd  *
     45    1.1       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     46    1.1       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     47    1.1       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     48    1.1       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     49    1.1       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     50    1.1       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     51    1.1       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     52    1.1       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     53    1.1       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     54    1.1       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     55    1.1       cgd  * SUCH DAMAGE.
     56    1.1       cgd  *
     57   1.23      fvdl  *	@(#)uipc_socket2.c	8.2 (Berkeley) 2/14/95
     58    1.1       cgd  */
     59   1.42     lukem 
     60   1.42     lukem #include <sys/cdefs.h>
     61  1.105      elad __KERNEL_RCSID(0, "$NetBSD: uipc_socket2.c,v 1.105 2009/12/30 18:33:53 elad Exp $");
     62   1.51    martin 
     63   1.51    martin #include "opt_mbuftrace.h"
     64   1.58   thorpej #include "opt_sb_max.h"
     65    1.1       cgd 
     66    1.5   mycroft #include <sys/param.h>
     67    1.5   mycroft #include <sys/systm.h>
     68    1.5   mycroft #include <sys/proc.h>
     69    1.5   mycroft #include <sys/file.h>
     70    1.5   mycroft #include <sys/buf.h>
     71    1.5   mycroft #include <sys/malloc.h>
     72    1.5   mycroft #include <sys/mbuf.h>
     73    1.5   mycroft #include <sys/protosw.h>
     74   1.91        ad #include <sys/domain.h>
     75   1.55  christos #include <sys/poll.h>
     76    1.5   mycroft #include <sys/socket.h>
     77    1.5   mycroft #include <sys/socketvar.h>
     78   1.11  christos #include <sys/signalvar.h>
     79   1.71      elad #include <sys/kauth.h>
     80   1.91        ad #include <sys/pool.h>
     81   1.98     pooka #include <sys/uidinfo.h>
     82    1.1       cgd 
     83    1.1       cgd /*
     84   1.91        ad  * Primitive routines for operating on sockets and socket buffers.
     85   1.91        ad  *
     86   1.91        ad  * Locking rules and assumptions:
     87   1.91        ad  *
     88   1.91        ad  * o socket::so_lock can change on the fly.  The low level routines used
     89   1.91        ad  *   to lock sockets are aware of this.  When so_lock is acquired, the
     90   1.91        ad  *   routine locking must check to see if so_lock still points to the
     91   1.91        ad  *   lock that was acquired.  If so_lock has changed in the meantime, the
     92   1.91        ad  *   now irellevant lock that was acquired must be dropped and the lock
     93   1.91        ad  *   operation retried.  Although not proven here, this is completely safe
     94   1.91        ad  *   on a multiprocessor system, even with relaxed memory ordering, given
     95   1.91        ad  *   the next two rules:
     96   1.91        ad  *
     97   1.91        ad  * o In order to mutate so_lock, the lock pointed to by the current value
     98   1.91        ad  *   of so_lock must be held: i.e., the socket must be held locked by the
     99   1.91        ad  *   changing thread.  The thread must issue membar_exit() to prevent
    100   1.91        ad  *   memory accesses being reordered, and can set so_lock to the desired
    101   1.91        ad  *   value.  If the lock pointed to by the new value of so_lock is not
    102   1.91        ad  *   held by the changing thread, the socket must then be considered
    103   1.91        ad  *   unlocked.
    104   1.91        ad  *
    105   1.91        ad  * o If so_lock is mutated, and the previous lock referred to by so_lock
    106   1.91        ad  *   could still be visible to other threads in the system (e.g. via file
    107   1.91        ad  *   descriptor or protocol-internal reference), then the old lock must
    108   1.91        ad  *   remain valid until the socket and/or protocol control block has been
    109   1.91        ad  *   torn down.
    110   1.91        ad  *
    111   1.91        ad  * o If a socket has a non-NULL so_head value (i.e. is in the process of
    112   1.91        ad  *   connecting), then locking the socket must also lock the socket pointed
    113   1.91        ad  *   to by so_head: their lock pointers must match.
    114   1.91        ad  *
    115   1.91        ad  * o If a socket has connections in progress (so_q, so_q0 not empty) then
    116   1.91        ad  *   locking the socket must also lock the sockets attached to both queues.
    117   1.91        ad  *   Again, their lock pointers must match.
    118   1.91        ad  *
    119   1.91        ad  * o Beyond the initial lock assigment in socreate(), assigning locks to
    120   1.91        ad  *   sockets is the responsibility of the individual protocols / protocol
    121   1.91        ad  *   domains.
    122    1.1       cgd  */
    123    1.1       cgd 
    124   1.94        ad static pool_cache_t socket_cache;
    125    1.1       cgd 
    126   1.58   thorpej u_long	sb_max = SB_MAX;	/* maximum socket buffer size */
    127   1.58   thorpej static u_long sb_max_adj;	/* adjusted sb_max */
    128   1.58   thorpej 
    129    1.1       cgd /*
    130    1.1       cgd  * Procedures to manipulate state flags of socket
    131    1.1       cgd  * and do appropriate wakeups.  Normal sequence from the
    132    1.1       cgd  * active (originating) side is that soisconnecting() is
    133    1.1       cgd  * called during processing of connect() call,
    134    1.1       cgd  * resulting in an eventual call to soisconnected() if/when the
    135    1.1       cgd  * connection is established.  When the connection is torn down
    136    1.1       cgd  * soisdisconnecting() is called during processing of disconnect() call,
    137    1.1       cgd  * and soisdisconnected() is called when the connection to the peer
    138    1.1       cgd  * is totally severed.  The semantics of these routines are such that
    139    1.1       cgd  * connectionless protocols can call soisconnected() and soisdisconnected()
    140    1.1       cgd  * only, bypassing the in-progress calls when setting up a ``connection''
    141    1.1       cgd  * takes no time.
    142    1.1       cgd  *
    143    1.1       cgd  * From the passive side, a socket is created with
    144    1.1       cgd  * two queues of sockets: so_q0 for connections in progress
    145    1.1       cgd  * and so_q for connections already made and awaiting user acceptance.
    146    1.1       cgd  * As a protocol is preparing incoming connections, it creates a socket
    147    1.1       cgd  * structure queued on so_q0 by calling sonewconn().  When the connection
    148    1.1       cgd  * is established, soisconnected() is called, and transfers the
    149    1.1       cgd  * socket structure to so_q, making it available to accept().
    150   1.66     perry  *
    151    1.1       cgd  * If a socket is closed with sockets on either
    152    1.1       cgd  * so_q0 or so_q, these sockets are dropped.
    153    1.1       cgd  *
    154    1.1       cgd  * If higher level protocols are implemented in
    155    1.1       cgd  * the kernel, the wakeups done here will sometimes
    156    1.1       cgd  * cause software-interrupt process scheduling.
    157    1.1       cgd  */
    158    1.1       cgd 
    159    1.7   mycroft void
    160   1.37     lukem soisconnecting(struct socket *so)
    161    1.1       cgd {
    162    1.1       cgd 
    163   1.91        ad 	KASSERT(solocked(so));
    164   1.91        ad 
    165    1.1       cgd 	so->so_state &= ~(SS_ISCONNECTED|SS_ISDISCONNECTING);
    166    1.1       cgd 	so->so_state |= SS_ISCONNECTING;
    167    1.1       cgd }
    168    1.1       cgd 
    169    1.7   mycroft void
    170   1.37     lukem soisconnected(struct socket *so)
    171    1.1       cgd {
    172   1.37     lukem 	struct socket	*head;
    173    1.1       cgd 
    174   1.37     lukem 	head = so->so_head;
    175   1.91        ad 
    176   1.91        ad 	KASSERT(solocked(so));
    177   1.91        ad 	KASSERT(head == NULL || solocked2(so, head));
    178   1.91        ad 
    179    1.1       cgd 	so->so_state &= ~(SS_ISCONNECTING|SS_ISDISCONNECTING|SS_ISCONFIRMING);
    180    1.1       cgd 	so->so_state |= SS_ISCONNECTED;
    181   1.97       tls 	if (head && so->so_onq == &head->so_q0) {
    182   1.97       tls 		if ((so->so_options & SO_ACCEPTFILTER) == 0) {
    183   1.97       tls 			soqremque(so, 0);
    184   1.97       tls 			soqinsque(head, so, 1);
    185   1.97       tls 			sorwakeup(head);
    186   1.97       tls 			cv_broadcast(&head->so_cv);
    187   1.97       tls 		} else {
    188   1.97       tls 			so->so_upcall =
    189   1.97       tls 			    head->so_accf->so_accept_filter->accf_callback;
    190   1.97       tls 			so->so_upcallarg = head->so_accf->so_accept_filter_arg;
    191   1.97       tls 			so->so_rcv.sb_flags |= SB_UPCALL;
    192   1.97       tls 			so->so_options &= ~SO_ACCEPTFILTER;
    193  1.104       tls 			(*so->so_upcall)(so, so->so_upcallarg,
    194  1.104       tls 					 POLLIN|POLLRDNORM, M_DONTWAIT);
    195  1.101      yamt 		}
    196    1.1       cgd 	} else {
    197   1.91        ad 		cv_broadcast(&so->so_cv);
    198    1.1       cgd 		sorwakeup(so);
    199    1.1       cgd 		sowwakeup(so);
    200    1.1       cgd 	}
    201    1.1       cgd }
    202    1.1       cgd 
    203    1.7   mycroft void
    204   1.37     lukem soisdisconnecting(struct socket *so)
    205    1.1       cgd {
    206    1.1       cgd 
    207   1.91        ad 	KASSERT(solocked(so));
    208   1.91        ad 
    209    1.1       cgd 	so->so_state &= ~SS_ISCONNECTING;
    210    1.1       cgd 	so->so_state |= (SS_ISDISCONNECTING|SS_CANTRCVMORE|SS_CANTSENDMORE);
    211   1.91        ad 	cv_broadcast(&so->so_cv);
    212    1.1       cgd 	sowwakeup(so);
    213    1.1       cgd 	sorwakeup(so);
    214    1.1       cgd }
    215    1.1       cgd 
    216    1.7   mycroft void
    217   1.37     lukem soisdisconnected(struct socket *so)
    218    1.1       cgd {
    219    1.1       cgd 
    220   1.91        ad 	KASSERT(solocked(so));
    221   1.91        ad 
    222    1.1       cgd 	so->so_state &= ~(SS_ISCONNECTING|SS_ISCONNECTED|SS_ISDISCONNECTING);
    223   1.27   mycroft 	so->so_state |= (SS_CANTRCVMORE|SS_CANTSENDMORE|SS_ISDISCONNECTED);
    224   1.91        ad 	cv_broadcast(&so->so_cv);
    225    1.1       cgd 	sowwakeup(so);
    226    1.1       cgd 	sorwakeup(so);
    227    1.1       cgd }
    228    1.1       cgd 
    229   1.94        ad void
    230   1.94        ad soinit2(void)
    231   1.94        ad {
    232   1.94        ad 
    233   1.94        ad 	socket_cache = pool_cache_init(sizeof(struct socket), 0, 0, 0,
    234   1.94        ad 	    "socket", NULL, IPL_SOFTNET, NULL, NULL, NULL);
    235   1.94        ad }
    236   1.94        ad 
    237    1.1       cgd /*
    238    1.1       cgd  * When an attempt at a new connection is noted on a socket
    239    1.1       cgd  * which accepts connections, sonewconn is called.  If the
    240    1.1       cgd  * connection is possible (subject to space constraints, etc.)
    241    1.1       cgd  * then we allocate a new structure, propoerly linked into the
    242    1.1       cgd  * data structure of the original socket, and return this.
    243   1.77    plunky  * Connstatus may be 0, SS_ISCONFIRMING, or SS_ISCONNECTED.
    244    1.1       cgd  */
    245    1.1       cgd struct socket *
    246   1.76    plunky sonewconn(struct socket *head, int connstatus)
    247    1.1       cgd {
    248   1.37     lukem 	struct socket	*so;
    249   1.91        ad 	int		soqueue, error;
    250   1.91        ad 
    251  1.102      yamt 	KASSERT(connstatus == 0 || connstatus == SS_ISCONFIRMING ||
    252  1.102      yamt 	    connstatus == SS_ISCONNECTED);
    253   1.91        ad 	KASSERT(solocked(head));
    254    1.1       cgd 
    255   1.97       tls 	if ((head->so_options & SO_ACCEPTFILTER) != 0)
    256   1.97       tls 		connstatus = 0;
    257   1.37     lukem 	soqueue = connstatus ? 1 : 0;
    258    1.1       cgd 	if (head->so_qlen + head->so_q0len > 3 * head->so_qlimit / 2)
    259  1.100    dyoung 		return NULL;
    260   1.91        ad 	so = soget(false);
    261   1.66     perry 	if (so == NULL)
    262  1.100    dyoung 		return NULL;
    263   1.91        ad 	mutex_obj_hold(head->so_lock);
    264   1.91        ad 	so->so_lock = head->so_lock;
    265    1.1       cgd 	so->so_type = head->so_type;
    266    1.1       cgd 	so->so_options = head->so_options &~ SO_ACCEPTCONN;
    267    1.1       cgd 	so->so_linger = head->so_linger;
    268    1.1       cgd 	so->so_state = head->so_state | SS_NOFDREF;
    269   1.89        ad 	so->so_nbio = head->so_nbio;
    270    1.1       cgd 	so->so_proto = head->so_proto;
    271    1.1       cgd 	so->so_timeo = head->so_timeo;
    272    1.1       cgd 	so->so_pgid = head->so_pgid;
    273   1.24      matt 	so->so_send = head->so_send;
    274   1.24      matt 	so->so_receive = head->so_receive;
    275   1.67  christos 	so->so_uidinfo = head->so_uidinfo;
    276   1.96      yamt 	so->so_egid = head->so_egid;
    277   1.96      yamt 	so->so_cpid = head->so_cpid;
    278   1.49      matt #ifdef MBUFTRACE
    279   1.49      matt 	so->so_mowner = head->so_mowner;
    280   1.49      matt 	so->so_rcv.sb_mowner = head->so_rcv.sb_mowner;
    281   1.49      matt 	so->so_snd.sb_mowner = head->so_snd.sb_mowner;
    282   1.49      matt #endif
    283  1.103  christos 	if (soreserve(so, head->so_snd.sb_hiwat, head->so_rcv.sb_hiwat) != 0)
    284  1.103  christos 		goto out;
    285   1.83       tls 	so->so_snd.sb_lowat = head->so_snd.sb_lowat;
    286   1.83       tls 	so->so_rcv.sb_lowat = head->so_rcv.sb_lowat;
    287   1.84       tls 	so->so_rcv.sb_timeo = head->so_rcv.sb_timeo;
    288   1.84       tls 	so->so_snd.sb_timeo = head->so_snd.sb_timeo;
    289   1.85     rmind 	so->so_rcv.sb_flags |= head->so_rcv.sb_flags & SB_AUTOSIZE;
    290   1.85     rmind 	so->so_snd.sb_flags |= head->so_snd.sb_flags & SB_AUTOSIZE;
    291    1.1       cgd 	soqinsque(head, so, soqueue);
    292   1.91        ad 	error = (*so->so_proto->pr_usrreq)(so, PRU_ATTACH, NULL, NULL,
    293   1.91        ad 	    NULL, NULL);
    294   1.91        ad 	KASSERT(solocked(so));
    295   1.91        ad 	if (error != 0) {
    296    1.1       cgd 		(void) soqremque(so, soqueue);
    297  1.103  christos out:
    298   1.99        ad 		/*
    299   1.99        ad 		 * Remove acccept filter if one is present.
    300   1.99        ad 		 * XXX Is this really needed?
    301   1.99        ad 		 */
    302   1.97       tls 		if (so->so_accf != NULL)
    303   1.99        ad 			(void)accept_filt_clear(so);
    304   1.91        ad 		soput(so);
    305  1.100    dyoung 		return NULL;
    306    1.1       cgd 	}
    307    1.1       cgd 	if (connstatus) {
    308    1.1       cgd 		sorwakeup(head);
    309   1.91        ad 		cv_broadcast(&head->so_cv);
    310    1.1       cgd 		so->so_state |= connstatus;
    311    1.1       cgd 	}
    312  1.100    dyoung 	return so;
    313    1.1       cgd }
    314    1.1       cgd 
    315   1.91        ad struct socket *
    316   1.91        ad soget(bool waitok)
    317   1.91        ad {
    318   1.91        ad 	struct socket *so;
    319   1.91        ad 
    320   1.94        ad 	so = pool_cache_get(socket_cache, (waitok ? PR_WAITOK : PR_NOWAIT));
    321   1.91        ad 	if (__predict_false(so == NULL))
    322   1.91        ad 		return (NULL);
    323   1.91        ad 	memset(so, 0, sizeof(*so));
    324   1.91        ad 	TAILQ_INIT(&so->so_q0);
    325   1.91        ad 	TAILQ_INIT(&so->so_q);
    326   1.91        ad 	cv_init(&so->so_cv, "socket");
    327   1.91        ad 	cv_init(&so->so_rcv.sb_cv, "netio");
    328   1.91        ad 	cv_init(&so->so_snd.sb_cv, "netio");
    329   1.91        ad 	selinit(&so->so_rcv.sb_sel);
    330   1.91        ad 	selinit(&so->so_snd.sb_sel);
    331   1.91        ad 	so->so_rcv.sb_so = so;
    332   1.91        ad 	so->so_snd.sb_so = so;
    333   1.91        ad 	return so;
    334   1.91        ad }
    335   1.91        ad 
    336   1.91        ad void
    337   1.91        ad soput(struct socket *so)
    338   1.91        ad {
    339   1.91        ad 
    340   1.91        ad 	KASSERT(!cv_has_waiters(&so->so_cv));
    341   1.91        ad 	KASSERT(!cv_has_waiters(&so->so_rcv.sb_cv));
    342   1.91        ad 	KASSERT(!cv_has_waiters(&so->so_snd.sb_cv));
    343   1.91        ad 	seldestroy(&so->so_rcv.sb_sel);
    344   1.91        ad 	seldestroy(&so->so_snd.sb_sel);
    345   1.91        ad 	mutex_obj_free(so->so_lock);
    346   1.91        ad 	cv_destroy(&so->so_cv);
    347   1.91        ad 	cv_destroy(&so->so_rcv.sb_cv);
    348   1.91        ad 	cv_destroy(&so->so_snd.sb_cv);
    349   1.94        ad 	pool_cache_put(socket_cache, so);
    350   1.91        ad }
    351   1.91        ad 
    352    1.7   mycroft void
    353   1.37     lukem soqinsque(struct socket *head, struct socket *so, int q)
    354    1.1       cgd {
    355    1.1       cgd 
    356   1.91        ad 	KASSERT(solocked2(head, so));
    357   1.91        ad 
    358   1.22   thorpej #ifdef DIAGNOSTIC
    359   1.22   thorpej 	if (so->so_onq != NULL)
    360   1.22   thorpej 		panic("soqinsque");
    361   1.22   thorpej #endif
    362   1.22   thorpej 
    363    1.1       cgd 	so->so_head = head;
    364    1.1       cgd 	if (q == 0) {
    365    1.1       cgd 		head->so_q0len++;
    366   1.22   thorpej 		so->so_onq = &head->so_q0;
    367    1.1       cgd 	} else {
    368    1.1       cgd 		head->so_qlen++;
    369   1.22   thorpej 		so->so_onq = &head->so_q;
    370    1.1       cgd 	}
    371   1.22   thorpej 	TAILQ_INSERT_TAIL(so->so_onq, so, so_qe);
    372    1.1       cgd }
    373    1.1       cgd 
    374    1.7   mycroft int
    375   1.37     lukem soqremque(struct socket *so, int q)
    376    1.1       cgd {
    377   1.37     lukem 	struct socket	*head;
    378    1.1       cgd 
    379   1.37     lukem 	head = so->so_head;
    380   1.91        ad 
    381   1.91        ad 	KASSERT(solocked(so));
    382   1.22   thorpej 	if (q == 0) {
    383   1.22   thorpej 		if (so->so_onq != &head->so_q0)
    384   1.17   thorpej 			return (0);
    385    1.1       cgd 		head->so_q0len--;
    386    1.1       cgd 	} else {
    387   1.22   thorpej 		if (so->so_onq != &head->so_q)
    388   1.22   thorpej 			return (0);
    389    1.1       cgd 		head->so_qlen--;
    390    1.1       cgd 	}
    391   1.91        ad 	KASSERT(solocked2(so, head));
    392   1.22   thorpej 	TAILQ_REMOVE(so->so_onq, so, so_qe);
    393   1.22   thorpej 	so->so_onq = NULL;
    394   1.22   thorpej 	so->so_head = NULL;
    395    1.1       cgd 	return (1);
    396    1.1       cgd }
    397    1.1       cgd 
    398    1.1       cgd /*
    399    1.1       cgd  * Socantsendmore indicates that no more data will be sent on the
    400    1.1       cgd  * socket; it would normally be applied to a socket when the user
    401    1.1       cgd  * informs the system that no more data is to be sent, by the protocol
    402    1.1       cgd  * code (in case PRU_SHUTDOWN).  Socantrcvmore indicates that no more data
    403    1.1       cgd  * will be received, and will normally be applied to the socket by a
    404    1.1       cgd  * protocol when it detects that the peer will send no more data.
    405    1.1       cgd  * Data queued for reading in the socket may yet be read.
    406    1.1       cgd  */
    407    1.1       cgd 
    408    1.4    andrew void
    409   1.37     lukem socantsendmore(struct socket *so)
    410    1.1       cgd {
    411    1.1       cgd 
    412   1.91        ad 	KASSERT(solocked(so));
    413   1.91        ad 
    414    1.1       cgd 	so->so_state |= SS_CANTSENDMORE;
    415    1.1       cgd 	sowwakeup(so);
    416    1.1       cgd }
    417    1.1       cgd 
    418    1.4    andrew void
    419   1.37     lukem socantrcvmore(struct socket *so)
    420    1.1       cgd {
    421    1.1       cgd 
    422   1.91        ad 	KASSERT(solocked(so));
    423   1.91        ad 
    424    1.1       cgd 	so->so_state |= SS_CANTRCVMORE;
    425    1.1       cgd 	sorwakeup(so);
    426    1.1       cgd }
    427    1.1       cgd 
    428    1.1       cgd /*
    429    1.1       cgd  * Wait for data to arrive at/drain from a socket buffer.
    430    1.1       cgd  */
    431    1.7   mycroft int
    432   1.37     lukem sbwait(struct sockbuf *sb)
    433    1.1       cgd {
    434   1.91        ad 	struct socket *so;
    435   1.91        ad 	kmutex_t *lock;
    436   1.91        ad 	int error;
    437    1.1       cgd 
    438   1.91        ad 	so = sb->sb_so;
    439    1.1       cgd 
    440   1.91        ad 	KASSERT(solocked(so));
    441    1.1       cgd 
    442   1.91        ad 	sb->sb_flags |= SB_NOTIFY;
    443   1.91        ad 	lock = so->so_lock;
    444   1.91        ad 	if ((sb->sb_flags & SB_NOINTR) != 0)
    445   1.91        ad 		error = cv_timedwait(&sb->sb_cv, lock, sb->sb_timeo);
    446   1.91        ad 	else
    447   1.91        ad 		error = cv_timedwait_sig(&sb->sb_cv, lock, sb->sb_timeo);
    448   1.91        ad 	if (__predict_false(lock != so->so_lock))
    449   1.91        ad 		solockretry(so, lock);
    450   1.91        ad 	return error;
    451    1.1       cgd }
    452    1.1       cgd 
    453    1.1       cgd /*
    454    1.1       cgd  * Wakeup processes waiting on a socket buffer.
    455    1.1       cgd  * Do asynchronous notification via SIGIO
    456   1.39      manu  * if the socket buffer has the SB_ASYNC flag set.
    457    1.1       cgd  */
    458    1.7   mycroft void
    459   1.55  christos sowakeup(struct socket *so, struct sockbuf *sb, int code)
    460    1.1       cgd {
    461   1.90     rmind 	int band;
    462   1.90     rmind 
    463   1.91        ad 	KASSERT(solocked(so));
    464   1.91        ad 	KASSERT(sb->sb_so == so);
    465   1.91        ad 
    466   1.90     rmind 	if (code == POLL_IN)
    467   1.90     rmind 		band = POLLIN|POLLRDNORM;
    468   1.90     rmind 	else
    469   1.90     rmind 		band = POLLOUT|POLLWRNORM;
    470   1.91        ad 	sb->sb_flags &= ~SB_NOTIFY;
    471   1.91        ad 	selnotify(&sb->sb_sel, band, NOTE_SUBMIT);
    472   1.91        ad 	cv_broadcast(&sb->sb_cv);
    473   1.90     rmind 	if (sb->sb_flags & SB_ASYNC)
    474   1.57  christos 		fownsignal(so->so_pgid, SIGIO, code, band, so);
    475   1.24      matt 	if (sb->sb_flags & SB_UPCALL)
    476  1.104       tls 		(*so->so_upcall)(so, so->so_upcallarg, band, M_DONTWAIT);
    477    1.1       cgd }
    478    1.1       cgd 
    479    1.1       cgd /*
    480   1.95        ad  * Reset a socket's lock pointer.  Wake all threads waiting on the
    481   1.95        ad  * socket's condition variables so that they can restart their waits
    482   1.95        ad  * using the new lock.  The existing lock must be held.
    483   1.95        ad  */
    484   1.95        ad void
    485   1.95        ad solockreset(struct socket *so, kmutex_t *lock)
    486   1.95        ad {
    487   1.95        ad 
    488   1.95        ad 	KASSERT(solocked(so));
    489   1.95        ad 
    490   1.95        ad 	so->so_lock = lock;
    491   1.95        ad 	cv_broadcast(&so->so_snd.sb_cv);
    492   1.95        ad 	cv_broadcast(&so->so_rcv.sb_cv);
    493   1.95        ad 	cv_broadcast(&so->so_cv);
    494   1.95        ad }
    495   1.95        ad 
    496   1.95        ad /*
    497    1.1       cgd  * Socket buffer (struct sockbuf) utility routines.
    498    1.1       cgd  *
    499    1.1       cgd  * Each socket contains two socket buffers: one for sending data and
    500    1.1       cgd  * one for receiving data.  Each buffer contains a queue of mbufs,
    501    1.1       cgd  * information about the number of mbufs and amount of data in the
    502   1.13   mycroft  * queue, and other fields allowing poll() statements and notification
    503    1.1       cgd  * on data availability to be implemented.
    504    1.1       cgd  *
    505    1.1       cgd  * Data stored in a socket buffer is maintained as a list of records.
    506    1.1       cgd  * Each record is a list of mbufs chained together with the m_next
    507    1.1       cgd  * field.  Records are chained together with the m_nextpkt field. The upper
    508    1.1       cgd  * level routine soreceive() expects the following conventions to be
    509    1.1       cgd  * observed when placing information in the receive buffer:
    510    1.1       cgd  *
    511    1.1       cgd  * 1. If the protocol requires each message be preceded by the sender's
    512    1.1       cgd  *    name, then a record containing that name must be present before
    513    1.1       cgd  *    any associated data (mbuf's must be of type MT_SONAME).
    514    1.1       cgd  * 2. If the protocol supports the exchange of ``access rights'' (really
    515    1.1       cgd  *    just additional data associated with the message), and there are
    516    1.1       cgd  *    ``rights'' to be received, then a record containing this data
    517   1.10   mycroft  *    should be present (mbuf's must be of type MT_CONTROL).
    518    1.1       cgd  * 3. If a name or rights record exists, then it must be followed by
    519    1.1       cgd  *    a data record, perhaps of zero length.
    520    1.1       cgd  *
    521    1.1       cgd  * Before using a new socket structure it is first necessary to reserve
    522    1.1       cgd  * buffer space to the socket, by calling sbreserve().  This should commit
    523    1.1       cgd  * some of the available buffer space in the system buffer pool for the
    524    1.1       cgd  * socket (currently, it does nothing but enforce limits).  The space
    525    1.1       cgd  * should be released by calling sbrelease() when the socket is destroyed.
    526    1.1       cgd  */
    527    1.1       cgd 
    528    1.7   mycroft int
    529   1.58   thorpej sb_max_set(u_long new_sbmax)
    530   1.58   thorpej {
    531   1.58   thorpej 	int s;
    532   1.58   thorpej 
    533   1.58   thorpej 	if (new_sbmax < (16 * 1024))
    534   1.58   thorpej 		return (EINVAL);
    535   1.58   thorpej 
    536   1.58   thorpej 	s = splsoftnet();
    537   1.58   thorpej 	sb_max = new_sbmax;
    538   1.58   thorpej 	sb_max_adj = (u_quad_t)new_sbmax * MCLBYTES / (MSIZE + MCLBYTES);
    539   1.58   thorpej 	splx(s);
    540   1.58   thorpej 
    541   1.58   thorpej 	return (0);
    542   1.58   thorpej }
    543   1.58   thorpej 
    544   1.58   thorpej int
    545   1.37     lukem soreserve(struct socket *so, u_long sndcc, u_long rcvcc)
    546    1.1       cgd {
    547   1.91        ad 
    548   1.91        ad 	KASSERT(so->so_lock == NULL || solocked(so));
    549   1.91        ad 
    550   1.74  christos 	/*
    551   1.74  christos 	 * there's at least one application (a configure script of screen)
    552   1.74  christos 	 * which expects a fifo is writable even if it has "some" bytes
    553   1.74  christos 	 * in its buffer.
    554   1.74  christos 	 * so we want to make sure (hiwat - lowat) >= (some bytes).
    555   1.74  christos 	 *
    556   1.74  christos 	 * PIPE_BUF here is an arbitrary value chosen as (some bytes) above.
    557   1.74  christos 	 * we expect it's large enough for such applications.
    558   1.74  christos 	 */
    559   1.74  christos 	u_long  lowat = MAX(sock_loan_thresh, MCLBYTES);
    560   1.74  christos 	u_long  hiwat = lowat + PIPE_BUF;
    561    1.1       cgd 
    562   1.74  christos 	if (sndcc < hiwat)
    563   1.74  christos 		sndcc = hiwat;
    564   1.59  christos 	if (sbreserve(&so->so_snd, sndcc, so) == 0)
    565    1.1       cgd 		goto bad;
    566   1.59  christos 	if (sbreserve(&so->so_rcv, rcvcc, so) == 0)
    567    1.1       cgd 		goto bad2;
    568    1.1       cgd 	if (so->so_rcv.sb_lowat == 0)
    569    1.1       cgd 		so->so_rcv.sb_lowat = 1;
    570    1.1       cgd 	if (so->so_snd.sb_lowat == 0)
    571   1.74  christos 		so->so_snd.sb_lowat = lowat;
    572    1.1       cgd 	if (so->so_snd.sb_lowat > so->so_snd.sb_hiwat)
    573    1.1       cgd 		so->so_snd.sb_lowat = so->so_snd.sb_hiwat;
    574    1.1       cgd 	return (0);
    575   1.37     lukem  bad2:
    576   1.59  christos 	sbrelease(&so->so_snd, so);
    577   1.37     lukem  bad:
    578    1.1       cgd 	return (ENOBUFS);
    579    1.1       cgd }
    580    1.1       cgd 
    581    1.1       cgd /*
    582    1.1       cgd  * Allot mbufs to a sockbuf.
    583    1.1       cgd  * Attempt to scale mbmax so that mbcnt doesn't become limiting
    584    1.1       cgd  * if buffering efficiency is near the normal case.
    585    1.1       cgd  */
    586    1.7   mycroft int
    587   1.59  christos sbreserve(struct sockbuf *sb, u_long cc, struct socket *so)
    588    1.1       cgd {
    589   1.75        ad 	struct lwp *l = curlwp; /* XXX */
    590   1.62  christos 	rlim_t maxcc;
    591   1.67  christos 	struct uidinfo *uidinfo;
    592    1.1       cgd 
    593   1.91        ad 	KASSERT(so->so_lock == NULL || solocked(so));
    594   1.91        ad 	KASSERT(sb->sb_so == so);
    595   1.91        ad 	KASSERT(sb_max_adj != 0);
    596   1.91        ad 
    597   1.58   thorpej 	if (cc == 0 || cc > sb_max_adj)
    598    1.1       cgd 		return (0);
    599   1.93  christos 
    600  1.105      elad 	maxcc = l->l_proc->p_rlimit[RLIMIT_SBSIZE].rlim_cur;
    601   1.93  christos 
    602   1.93  christos 	uidinfo = so->so_uidinfo;
    603   1.67  christos 	if (!chgsbsize(uidinfo, &sb->sb_hiwat, cc, maxcc))
    604   1.62  christos 		return 0;
    605    1.1       cgd 	sb->sb_mbmax = min(cc * 2, sb_max);
    606    1.1       cgd 	if (sb->sb_lowat > sb->sb_hiwat)
    607    1.1       cgd 		sb->sb_lowat = sb->sb_hiwat;
    608    1.1       cgd 	return (1);
    609    1.1       cgd }
    610    1.1       cgd 
    611    1.1       cgd /*
    612   1.91        ad  * Free mbufs held by a socket, and reserved mbuf space.  We do not assert
    613   1.91        ad  * that the socket is held locked here: see sorflush().
    614    1.1       cgd  */
    615    1.7   mycroft void
    616   1.59  christos sbrelease(struct sockbuf *sb, struct socket *so)
    617    1.1       cgd {
    618    1.1       cgd 
    619   1.91        ad 	KASSERT(sb->sb_so == so);
    620   1.91        ad 
    621    1.1       cgd 	sbflush(sb);
    622   1.87      yamt 	(void)chgsbsize(so->so_uidinfo, &sb->sb_hiwat, 0, RLIM_INFINITY);
    623   1.59  christos 	sb->sb_mbmax = 0;
    624    1.1       cgd }
    625    1.1       cgd 
    626    1.1       cgd /*
    627    1.1       cgd  * Routines to add and remove
    628    1.1       cgd  * data from an mbuf queue.
    629    1.1       cgd  *
    630    1.1       cgd  * The routines sbappend() or sbappendrecord() are normally called to
    631    1.1       cgd  * append new mbufs to a socket buffer, after checking that adequate
    632    1.1       cgd  * space is available, comparing the function sbspace() with the amount
    633    1.1       cgd  * of data to be added.  sbappendrecord() differs from sbappend() in
    634    1.1       cgd  * that data supplied is treated as the beginning of a new record.
    635    1.1       cgd  * To place a sender's address, optional access rights, and data in a
    636    1.1       cgd  * socket receive buffer, sbappendaddr() should be used.  To place
    637    1.1       cgd  * access rights and data in a socket receive buffer, sbappendrights()
    638    1.1       cgd  * should be used.  In either case, the new data begins a new record.
    639    1.1       cgd  * Note that unlike sbappend() and sbappendrecord(), these routines check
    640    1.1       cgd  * for the caller that there will be enough space to store the data.
    641    1.1       cgd  * Each fails if there is not enough space, or if it cannot find mbufs
    642    1.1       cgd  * to store additional information in.
    643    1.1       cgd  *
    644    1.1       cgd  * Reliable protocols may use the socket send buffer to hold data
    645    1.1       cgd  * awaiting acknowledgement.  Data is normally copied from a socket
    646    1.1       cgd  * send buffer in a protocol with m_copy for output to a peer,
    647    1.1       cgd  * and then removing the data from the socket buffer with sbdrop()
    648    1.1       cgd  * or sbdroprecord() when the data is acknowledged by the peer.
    649    1.1       cgd  */
    650    1.1       cgd 
    651   1.43   thorpej #ifdef SOCKBUF_DEBUG
    652   1.43   thorpej void
    653   1.43   thorpej sblastrecordchk(struct sockbuf *sb, const char *where)
    654   1.43   thorpej {
    655   1.43   thorpej 	struct mbuf *m = sb->sb_mb;
    656   1.43   thorpej 
    657   1.91        ad 	KASSERT(solocked(sb->sb_so));
    658   1.91        ad 
    659   1.43   thorpej 	while (m && m->m_nextpkt)
    660   1.43   thorpej 		m = m->m_nextpkt;
    661   1.43   thorpej 
    662   1.43   thorpej 	if (m != sb->sb_lastrecord) {
    663   1.43   thorpej 		printf("sblastrecordchk: sb_mb %p sb_lastrecord %p last %p\n",
    664   1.43   thorpej 		    sb->sb_mb, sb->sb_lastrecord, m);
    665   1.43   thorpej 		printf("packet chain:\n");
    666   1.43   thorpej 		for (m = sb->sb_mb; m != NULL; m = m->m_nextpkt)
    667   1.43   thorpej 			printf("\t%p\n", m);
    668   1.47    provos 		panic("sblastrecordchk from %s", where);
    669   1.43   thorpej 	}
    670   1.43   thorpej }
    671   1.43   thorpej 
    672   1.43   thorpej void
    673   1.43   thorpej sblastmbufchk(struct sockbuf *sb, const char *where)
    674   1.43   thorpej {
    675   1.43   thorpej 	struct mbuf *m = sb->sb_mb;
    676   1.43   thorpej 	struct mbuf *n;
    677   1.43   thorpej 
    678   1.91        ad 	KASSERT(solocked(sb->sb_so));
    679   1.91        ad 
    680   1.43   thorpej 	while (m && m->m_nextpkt)
    681   1.43   thorpej 		m = m->m_nextpkt;
    682   1.43   thorpej 
    683   1.43   thorpej 	while (m && m->m_next)
    684   1.43   thorpej 		m = m->m_next;
    685   1.43   thorpej 
    686   1.43   thorpej 	if (m != sb->sb_mbtail) {
    687   1.43   thorpej 		printf("sblastmbufchk: sb_mb %p sb_mbtail %p last %p\n",
    688   1.43   thorpej 		    sb->sb_mb, sb->sb_mbtail, m);
    689   1.43   thorpej 		printf("packet tree:\n");
    690   1.43   thorpej 		for (m = sb->sb_mb; m != NULL; m = m->m_nextpkt) {
    691   1.43   thorpej 			printf("\t");
    692   1.43   thorpej 			for (n = m; n != NULL; n = n->m_next)
    693   1.43   thorpej 				printf("%p ", n);
    694   1.43   thorpej 			printf("\n");
    695   1.43   thorpej 		}
    696   1.43   thorpej 		panic("sblastmbufchk from %s", where);
    697   1.43   thorpej 	}
    698   1.43   thorpej }
    699   1.43   thorpej #endif /* SOCKBUF_DEBUG */
    700   1.43   thorpej 
    701   1.63  jonathan /*
    702   1.63  jonathan  * Link a chain of records onto a socket buffer
    703   1.63  jonathan  */
    704   1.63  jonathan #define	SBLINKRECORDCHAIN(sb, m0, mlast)				\
    705   1.43   thorpej do {									\
    706   1.43   thorpej 	if ((sb)->sb_lastrecord != NULL)				\
    707   1.43   thorpej 		(sb)->sb_lastrecord->m_nextpkt = (m0);			\
    708   1.43   thorpej 	else								\
    709   1.43   thorpej 		(sb)->sb_mb = (m0);					\
    710   1.63  jonathan 	(sb)->sb_lastrecord = (mlast);					\
    711   1.43   thorpej } while (/*CONSTCOND*/0)
    712   1.43   thorpej 
    713   1.63  jonathan 
    714   1.63  jonathan #define	SBLINKRECORD(sb, m0)						\
    715   1.63  jonathan     SBLINKRECORDCHAIN(sb, m0, m0)
    716   1.63  jonathan 
    717    1.1       cgd /*
    718    1.1       cgd  * Append mbuf chain m to the last record in the
    719    1.1       cgd  * socket buffer sb.  The additional space associated
    720    1.1       cgd  * the mbuf chain is recorded in sb.  Empty mbufs are
    721    1.1       cgd  * discarded and mbufs are compacted where possible.
    722    1.1       cgd  */
    723    1.7   mycroft void
    724   1.37     lukem sbappend(struct sockbuf *sb, struct mbuf *m)
    725    1.1       cgd {
    726   1.37     lukem 	struct mbuf	*n;
    727    1.1       cgd 
    728   1.91        ad 	KASSERT(solocked(sb->sb_so));
    729   1.91        ad 
    730    1.1       cgd 	if (m == 0)
    731    1.1       cgd 		return;
    732   1.43   thorpej 
    733   1.49      matt #ifdef MBUFTRACE
    734   1.65  jonathan 	m_claimm(m, sb->sb_mowner);
    735   1.49      matt #endif
    736   1.49      matt 
    737   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappend 1");
    738   1.43   thorpej 
    739   1.43   thorpej 	if ((n = sb->sb_lastrecord) != NULL) {
    740   1.43   thorpej 		/*
    741   1.43   thorpej 		 * XXX Would like to simply use sb_mbtail here, but
    742   1.43   thorpej 		 * XXX I need to verify that I won't miss an EOR that
    743   1.43   thorpej 		 * XXX way.
    744   1.43   thorpej 		 */
    745    1.1       cgd 		do {
    746    1.1       cgd 			if (n->m_flags & M_EOR) {
    747    1.1       cgd 				sbappendrecord(sb, m); /* XXXXXX!!!! */
    748    1.1       cgd 				return;
    749    1.1       cgd 			}
    750    1.1       cgd 		} while (n->m_next && (n = n->m_next));
    751   1.43   thorpej 	} else {
    752   1.43   thorpej 		/*
    753   1.43   thorpej 		 * If this is the first record in the socket buffer, it's
    754   1.43   thorpej 		 * also the last record.
    755   1.43   thorpej 		 */
    756   1.43   thorpej 		sb->sb_lastrecord = m;
    757    1.1       cgd 	}
    758    1.1       cgd 	sbcompress(sb, m, n);
    759   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappend 2");
    760   1.43   thorpej }
    761   1.43   thorpej 
    762   1.43   thorpej /*
    763   1.43   thorpej  * This version of sbappend() should only be used when the caller
    764   1.43   thorpej  * absolutely knows that there will never be more than one record
    765   1.43   thorpej  * in the socket buffer, that is, a stream protocol (such as TCP).
    766   1.43   thorpej  */
    767   1.43   thorpej void
    768   1.44   thorpej sbappendstream(struct sockbuf *sb, struct mbuf *m)
    769   1.43   thorpej {
    770   1.43   thorpej 
    771   1.91        ad 	KASSERT(solocked(sb->sb_so));
    772   1.43   thorpej 	KDASSERT(m->m_nextpkt == NULL);
    773   1.43   thorpej 	KASSERT(sb->sb_mb == sb->sb_lastrecord);
    774   1.43   thorpej 
    775   1.43   thorpej 	SBLASTMBUFCHK(sb, __func__);
    776   1.43   thorpej 
    777   1.49      matt #ifdef MBUFTRACE
    778   1.65  jonathan 	m_claimm(m, sb->sb_mowner);
    779   1.49      matt #endif
    780   1.49      matt 
    781   1.43   thorpej 	sbcompress(sb, m, sb->sb_mbtail);
    782   1.43   thorpej 
    783   1.43   thorpej 	sb->sb_lastrecord = sb->sb_mb;
    784   1.43   thorpej 	SBLASTRECORDCHK(sb, __func__);
    785    1.1       cgd }
    786    1.1       cgd 
    787    1.1       cgd #ifdef SOCKBUF_DEBUG
    788    1.7   mycroft void
    789   1.37     lukem sbcheck(struct sockbuf *sb)
    790    1.1       cgd {
    791   1.91        ad 	struct mbuf	*m, *m2;
    792   1.43   thorpej 	u_long		len, mbcnt;
    793    1.1       cgd 
    794   1.91        ad 	KASSERT(solocked(sb->sb_so));
    795   1.91        ad 
    796   1.37     lukem 	len = 0;
    797   1.37     lukem 	mbcnt = 0;
    798   1.91        ad 	for (m = sb->sb_mb; m; m = m->m_nextpkt) {
    799   1.91        ad 		for (m2 = m; m2 != NULL; m2 = m2->m_next) {
    800   1.91        ad 			len += m2->m_len;
    801   1.91        ad 			mbcnt += MSIZE;
    802   1.91        ad 			if (m2->m_flags & M_EXT)
    803   1.91        ad 				mbcnt += m2->m_ext.ext_size;
    804   1.91        ad 			if (m2->m_nextpkt != NULL)
    805   1.91        ad 				panic("sbcheck nextpkt");
    806   1.91        ad 		}
    807    1.1       cgd 	}
    808    1.1       cgd 	if (len != sb->sb_cc || mbcnt != sb->sb_mbcnt) {
    809   1.43   thorpej 		printf("cc %lu != %lu || mbcnt %lu != %lu\n", len, sb->sb_cc,
    810    1.1       cgd 		    mbcnt, sb->sb_mbcnt);
    811    1.1       cgd 		panic("sbcheck");
    812    1.1       cgd 	}
    813    1.1       cgd }
    814    1.1       cgd #endif
    815    1.1       cgd 
    816    1.1       cgd /*
    817    1.1       cgd  * As above, except the mbuf chain
    818    1.1       cgd  * begins a new record.
    819    1.1       cgd  */
    820    1.7   mycroft void
    821   1.37     lukem sbappendrecord(struct sockbuf *sb, struct mbuf *m0)
    822    1.1       cgd {
    823   1.37     lukem 	struct mbuf	*m;
    824    1.1       cgd 
    825   1.91        ad 	KASSERT(solocked(sb->sb_so));
    826   1.91        ad 
    827    1.1       cgd 	if (m0 == 0)
    828    1.1       cgd 		return;
    829   1.43   thorpej 
    830   1.49      matt #ifdef MBUFTRACE
    831   1.65  jonathan 	m_claimm(m0, sb->sb_mowner);
    832   1.49      matt #endif
    833    1.1       cgd 	/*
    834    1.1       cgd 	 * Put the first mbuf on the queue.
    835    1.1       cgd 	 * Note this permits zero length records.
    836    1.1       cgd 	 */
    837    1.1       cgd 	sballoc(sb, m0);
    838   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappendrecord 1");
    839   1.43   thorpej 	SBLINKRECORD(sb, m0);
    840    1.1       cgd 	m = m0->m_next;
    841    1.1       cgd 	m0->m_next = 0;
    842    1.1       cgd 	if (m && (m0->m_flags & M_EOR)) {
    843    1.1       cgd 		m0->m_flags &= ~M_EOR;
    844    1.1       cgd 		m->m_flags |= M_EOR;
    845    1.1       cgd 	}
    846    1.1       cgd 	sbcompress(sb, m, m0);
    847   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappendrecord 2");
    848    1.1       cgd }
    849    1.1       cgd 
    850    1.1       cgd /*
    851    1.1       cgd  * As above except that OOB data
    852    1.1       cgd  * is inserted at the beginning of the sockbuf,
    853    1.1       cgd  * but after any other OOB data.
    854    1.1       cgd  */
    855    1.7   mycroft void
    856   1.37     lukem sbinsertoob(struct sockbuf *sb, struct mbuf *m0)
    857    1.1       cgd {
    858   1.37     lukem 	struct mbuf	*m, **mp;
    859    1.1       cgd 
    860   1.91        ad 	KASSERT(solocked(sb->sb_so));
    861   1.91        ad 
    862    1.1       cgd 	if (m0 == 0)
    863    1.1       cgd 		return;
    864   1.43   thorpej 
    865   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbinsertoob 1");
    866   1.43   thorpej 
    867   1.11  christos 	for (mp = &sb->sb_mb; (m = *mp) != NULL; mp = &((*mp)->m_nextpkt)) {
    868    1.1       cgd 	    again:
    869    1.1       cgd 		switch (m->m_type) {
    870    1.1       cgd 
    871    1.1       cgd 		case MT_OOBDATA:
    872    1.1       cgd 			continue;		/* WANT next train */
    873    1.1       cgd 
    874    1.1       cgd 		case MT_CONTROL:
    875   1.11  christos 			if ((m = m->m_next) != NULL)
    876    1.1       cgd 				goto again;	/* inspect THIS train further */
    877    1.1       cgd 		}
    878    1.1       cgd 		break;
    879    1.1       cgd 	}
    880    1.1       cgd 	/*
    881    1.1       cgd 	 * Put the first mbuf on the queue.
    882    1.1       cgd 	 * Note this permits zero length records.
    883    1.1       cgd 	 */
    884    1.1       cgd 	sballoc(sb, m0);
    885    1.1       cgd 	m0->m_nextpkt = *mp;
    886   1.43   thorpej 	if (*mp == NULL) {
    887   1.43   thorpej 		/* m0 is actually the new tail */
    888   1.43   thorpej 		sb->sb_lastrecord = m0;
    889   1.43   thorpej 	}
    890    1.1       cgd 	*mp = m0;
    891    1.1       cgd 	m = m0->m_next;
    892    1.1       cgd 	m0->m_next = 0;
    893    1.1       cgd 	if (m && (m0->m_flags & M_EOR)) {
    894    1.1       cgd 		m0->m_flags &= ~M_EOR;
    895    1.1       cgd 		m->m_flags |= M_EOR;
    896    1.1       cgd 	}
    897    1.1       cgd 	sbcompress(sb, m, m0);
    898   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbinsertoob 2");
    899    1.1       cgd }
    900    1.1       cgd 
    901    1.1       cgd /*
    902    1.1       cgd  * Append address and data, and optionally, control (ancillary) data
    903    1.1       cgd  * to the receive queue of a socket.  If present,
    904    1.1       cgd  * m0 must include a packet header with total length.
    905    1.1       cgd  * Returns 0 if no space in sockbuf or insufficient mbufs.
    906    1.1       cgd  */
    907    1.7   mycroft int
    908   1.61      matt sbappendaddr(struct sockbuf *sb, const struct sockaddr *asa, struct mbuf *m0,
    909   1.37     lukem 	struct mbuf *control)
    910    1.1       cgd {
    911   1.43   thorpej 	struct mbuf	*m, *n, *nlast;
    912   1.50      fvdl 	int		space, len;
    913    1.1       cgd 
    914   1.91        ad 	KASSERT(solocked(sb->sb_so));
    915   1.91        ad 
    916   1.37     lukem 	space = asa->sa_len;
    917   1.37     lukem 
    918   1.49      matt 	if (m0 != NULL) {
    919   1.49      matt 		if ((m0->m_flags & M_PKTHDR) == 0)
    920   1.49      matt 			panic("sbappendaddr");
    921    1.1       cgd 		space += m0->m_pkthdr.len;
    922   1.49      matt #ifdef MBUFTRACE
    923   1.65  jonathan 		m_claimm(m0, sb->sb_mowner);
    924   1.49      matt #endif
    925   1.49      matt 	}
    926    1.1       cgd 	for (n = control; n; n = n->m_next) {
    927    1.1       cgd 		space += n->m_len;
    928   1.49      matt 		MCLAIM(n, sb->sb_mowner);
    929    1.1       cgd 		if (n->m_next == 0)	/* keep pointer to last control buf */
    930    1.1       cgd 			break;
    931    1.1       cgd 	}
    932    1.1       cgd 	if (space > sbspace(sb))
    933    1.1       cgd 		return (0);
    934    1.1       cgd 	MGET(m, M_DONTWAIT, MT_SONAME);
    935    1.1       cgd 	if (m == 0)
    936    1.1       cgd 		return (0);
    937   1.49      matt 	MCLAIM(m, sb->sb_mowner);
    938   1.50      fvdl 	/*
    939   1.50      fvdl 	 * XXX avoid 'comparison always true' warning which isn't easily
    940   1.50      fvdl 	 * avoided.
    941   1.50      fvdl 	 */
    942   1.50      fvdl 	len = asa->sa_len;
    943   1.50      fvdl 	if (len > MLEN) {
    944   1.20   thorpej 		MEXTMALLOC(m, asa->sa_len, M_NOWAIT);
    945   1.20   thorpej 		if ((m->m_flags & M_EXT) == 0) {
    946   1.20   thorpej 			m_free(m);
    947   1.20   thorpej 			return (0);
    948   1.20   thorpej 		}
    949   1.20   thorpej 	}
    950    1.1       cgd 	m->m_len = asa->sa_len;
    951   1.82  christos 	memcpy(mtod(m, void *), asa, asa->sa_len);
    952    1.1       cgd 	if (n)
    953    1.1       cgd 		n->m_next = m0;		/* concatenate data to control */
    954    1.1       cgd 	else
    955    1.1       cgd 		control = m0;
    956    1.1       cgd 	m->m_next = control;
    957   1.43   thorpej 
    958   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappendaddr 1");
    959   1.43   thorpej 
    960   1.43   thorpej 	for (n = m; n->m_next != NULL; n = n->m_next)
    961    1.1       cgd 		sballoc(sb, n);
    962   1.43   thorpej 	sballoc(sb, n);
    963   1.43   thorpej 	nlast = n;
    964   1.43   thorpej 	SBLINKRECORD(sb, m);
    965   1.43   thorpej 
    966   1.43   thorpej 	sb->sb_mbtail = nlast;
    967   1.43   thorpej 	SBLASTMBUFCHK(sb, "sbappendaddr");
    968   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappendaddr 2");
    969   1.43   thorpej 
    970    1.1       cgd 	return (1);
    971    1.1       cgd }
    972    1.1       cgd 
    973   1.63  jonathan /*
    974   1.63  jonathan  * Helper for sbappendchainaddr: prepend a struct sockaddr* to
    975   1.63  jonathan  * an mbuf chain.
    976   1.63  jonathan  */
    977   1.70     perry static inline struct mbuf *
    978   1.81      yamt m_prepend_sockaddr(struct sockbuf *sb, struct mbuf *m0,
    979   1.64  jonathan 		   const struct sockaddr *asa)
    980   1.63  jonathan {
    981   1.63  jonathan 	struct mbuf *m;
    982   1.64  jonathan 	const int salen = asa->sa_len;
    983   1.63  jonathan 
    984   1.91        ad 	KASSERT(solocked(sb->sb_so));
    985   1.91        ad 
    986   1.63  jonathan 	/* only the first in each chain need be a pkthdr */
    987   1.63  jonathan 	MGETHDR(m, M_DONTWAIT, MT_SONAME);
    988   1.63  jonathan 	if (m == 0)
    989   1.63  jonathan 		return (0);
    990   1.63  jonathan 	MCLAIM(m, sb->sb_mowner);
    991   1.64  jonathan #ifdef notyet
    992   1.64  jonathan 	if (salen > MHLEN) {
    993   1.64  jonathan 		MEXTMALLOC(m, salen, M_NOWAIT);
    994   1.64  jonathan 		if ((m->m_flags & M_EXT) == 0) {
    995   1.64  jonathan 			m_free(m);
    996   1.64  jonathan 			return (0);
    997   1.64  jonathan 		}
    998   1.64  jonathan 	}
    999   1.64  jonathan #else
   1000   1.64  jonathan 	KASSERT(salen <= MHLEN);
   1001   1.64  jonathan #endif
   1002   1.64  jonathan 	m->m_len = salen;
   1003   1.82  christos 	memcpy(mtod(m, void *), asa, salen);
   1004   1.63  jonathan 	m->m_next = m0;
   1005   1.64  jonathan 	m->m_pkthdr.len = salen + m0->m_pkthdr.len;
   1006   1.63  jonathan 
   1007   1.63  jonathan 	return m;
   1008   1.63  jonathan }
   1009   1.63  jonathan 
   1010   1.63  jonathan int
   1011   1.63  jonathan sbappendaddrchain(struct sockbuf *sb, const struct sockaddr *asa,
   1012   1.63  jonathan 		  struct mbuf *m0, int sbprio)
   1013   1.63  jonathan {
   1014   1.63  jonathan 	int space;
   1015   1.63  jonathan 	struct mbuf *m, *n, *n0, *nlast;
   1016   1.63  jonathan 	int error;
   1017   1.63  jonathan 
   1018   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1019   1.91        ad 
   1020   1.63  jonathan 	/*
   1021   1.63  jonathan 	 * XXX sbprio reserved for encoding priority of this* request:
   1022   1.63  jonathan 	 *  SB_PRIO_NONE --> honour normal sb limits
   1023   1.63  jonathan 	 *  SB_PRIO_ONESHOT_OVERFLOW --> if socket has any space,
   1024   1.63  jonathan 	 *	take whole chain. Intended for large requests
   1025   1.63  jonathan 	 *      that should be delivered atomically (all, or none).
   1026   1.63  jonathan 	 * SB_PRIO_OVERDRAFT -- allow a small (2*MLEN) overflow
   1027   1.63  jonathan 	 *       over normal socket limits, for messages indicating
   1028   1.63  jonathan 	 *       buffer overflow in earlier normal/lower-priority messages
   1029   1.63  jonathan 	 * SB_PRIO_BESTEFFORT -->  ignore limits entirely.
   1030   1.63  jonathan 	 *       Intended for  kernel-generated messages only.
   1031   1.63  jonathan 	 *        Up to generator to avoid total mbuf resource exhaustion.
   1032   1.63  jonathan 	 */
   1033   1.63  jonathan 	(void)sbprio;
   1034   1.63  jonathan 
   1035   1.63  jonathan 	if (m0 && (m0->m_flags & M_PKTHDR) == 0)
   1036   1.63  jonathan 		panic("sbappendaddrchain");
   1037   1.63  jonathan 
   1038   1.63  jonathan 	space = sbspace(sb);
   1039   1.66     perry 
   1040   1.63  jonathan #ifdef notyet
   1041   1.66     perry 	/*
   1042   1.63  jonathan 	 * Enforce SB_PRIO_* limits as described above.
   1043   1.63  jonathan 	 */
   1044   1.63  jonathan #endif
   1045   1.63  jonathan 
   1046   1.63  jonathan 	n0 = NULL;
   1047   1.63  jonathan 	nlast = NULL;
   1048   1.63  jonathan 	for (m = m0; m; m = m->m_nextpkt) {
   1049   1.63  jonathan 		struct mbuf *np;
   1050   1.63  jonathan 
   1051   1.64  jonathan #ifdef MBUFTRACE
   1052   1.65  jonathan 		m_claimm(m, sb->sb_mowner);
   1053   1.64  jonathan #endif
   1054   1.64  jonathan 
   1055   1.63  jonathan 		/* Prepend sockaddr to this record (m) of input chain m0 */
   1056   1.64  jonathan 	  	n = m_prepend_sockaddr(sb, m, asa);
   1057   1.63  jonathan 		if (n == NULL) {
   1058   1.63  jonathan 			error = ENOBUFS;
   1059   1.63  jonathan 			goto bad;
   1060   1.63  jonathan 		}
   1061   1.63  jonathan 
   1062   1.63  jonathan 		/* Append record (asa+m) to end of new chain n0 */
   1063   1.63  jonathan 		if (n0 == NULL) {
   1064   1.63  jonathan 			n0 = n;
   1065   1.63  jonathan 		} else {
   1066   1.63  jonathan 			nlast->m_nextpkt = n;
   1067   1.63  jonathan 		}
   1068   1.63  jonathan 		/* Keep track of last record on new chain */
   1069   1.63  jonathan 		nlast = n;
   1070   1.63  jonathan 
   1071   1.63  jonathan 		for (np = n; np; np = np->m_next)
   1072   1.63  jonathan 			sballoc(sb, np);
   1073   1.63  jonathan 	}
   1074   1.63  jonathan 
   1075   1.64  jonathan 	SBLASTRECORDCHK(sb, "sbappendaddrchain 1");
   1076   1.64  jonathan 
   1077   1.63  jonathan 	/* Drop the entire chain of (asa+m) records onto the socket */
   1078   1.63  jonathan 	SBLINKRECORDCHAIN(sb, n0, nlast);
   1079   1.64  jonathan 
   1080   1.64  jonathan 	SBLASTRECORDCHK(sb, "sbappendaddrchain 2");
   1081   1.64  jonathan 
   1082   1.63  jonathan 	for (m = nlast; m->m_next; m = m->m_next)
   1083   1.63  jonathan 		;
   1084   1.63  jonathan 	sb->sb_mbtail = m;
   1085   1.64  jonathan 	SBLASTMBUFCHK(sb, "sbappendaddrchain");
   1086   1.64  jonathan 
   1087   1.63  jonathan 	return (1);
   1088   1.63  jonathan 
   1089   1.63  jonathan bad:
   1090   1.64  jonathan 	/*
   1091   1.64  jonathan 	 * On error, free the prepended addreseses. For consistency
   1092   1.64  jonathan 	 * with sbappendaddr(), leave it to our caller to free
   1093   1.64  jonathan 	 * the input record chain passed to us as m0.
   1094   1.64  jonathan 	 */
   1095   1.64  jonathan 	while ((n = n0) != NULL) {
   1096   1.64  jonathan 	  	struct mbuf *np;
   1097   1.64  jonathan 
   1098   1.64  jonathan 		/* Undo the sballoc() of this record */
   1099   1.64  jonathan 		for (np = n; np; np = np->m_next)
   1100   1.64  jonathan 			sbfree(sb, np);
   1101   1.64  jonathan 
   1102   1.64  jonathan 		n0 = n->m_nextpkt;	/* iterate at next prepended address */
   1103   1.64  jonathan 		MFREE(n, np);		/* free prepended address (not data) */
   1104   1.64  jonathan 	}
   1105   1.66     perry 	return 0;
   1106   1.63  jonathan }
   1107   1.63  jonathan 
   1108   1.63  jonathan 
   1109    1.7   mycroft int
   1110   1.37     lukem sbappendcontrol(struct sockbuf *sb, struct mbuf *m0, struct mbuf *control)
   1111    1.1       cgd {
   1112   1.43   thorpej 	struct mbuf	*m, *mlast, *n;
   1113   1.37     lukem 	int		space;
   1114    1.1       cgd 
   1115   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1116   1.91        ad 
   1117   1.37     lukem 	space = 0;
   1118    1.1       cgd 	if (control == 0)
   1119    1.1       cgd 		panic("sbappendcontrol");
   1120    1.1       cgd 	for (m = control; ; m = m->m_next) {
   1121    1.1       cgd 		space += m->m_len;
   1122   1.49      matt 		MCLAIM(m, sb->sb_mowner);
   1123    1.1       cgd 		if (m->m_next == 0)
   1124    1.1       cgd 			break;
   1125    1.1       cgd 	}
   1126    1.1       cgd 	n = m;			/* save pointer to last control buffer */
   1127   1.49      matt 	for (m = m0; m; m = m->m_next) {
   1128   1.49      matt 		MCLAIM(m, sb->sb_mowner);
   1129    1.1       cgd 		space += m->m_len;
   1130   1.49      matt 	}
   1131    1.1       cgd 	if (space > sbspace(sb))
   1132    1.1       cgd 		return (0);
   1133    1.1       cgd 	n->m_next = m0;			/* concatenate data to control */
   1134   1.43   thorpej 
   1135   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappendcontrol 1");
   1136   1.43   thorpej 
   1137   1.43   thorpej 	for (m = control; m->m_next != NULL; m = m->m_next)
   1138    1.1       cgd 		sballoc(sb, m);
   1139   1.43   thorpej 	sballoc(sb, m);
   1140   1.43   thorpej 	mlast = m;
   1141   1.43   thorpej 	SBLINKRECORD(sb, control);
   1142   1.43   thorpej 
   1143   1.43   thorpej 	sb->sb_mbtail = mlast;
   1144   1.43   thorpej 	SBLASTMBUFCHK(sb, "sbappendcontrol");
   1145   1.43   thorpej 	SBLASTRECORDCHK(sb, "sbappendcontrol 2");
   1146   1.43   thorpej 
   1147    1.1       cgd 	return (1);
   1148    1.1       cgd }
   1149    1.1       cgd 
   1150    1.1       cgd /*
   1151    1.1       cgd  * Compress mbuf chain m into the socket
   1152    1.1       cgd  * buffer sb following mbuf n.  If n
   1153    1.1       cgd  * is null, the buffer is presumed empty.
   1154    1.1       cgd  */
   1155    1.7   mycroft void
   1156   1.37     lukem sbcompress(struct sockbuf *sb, struct mbuf *m, struct mbuf *n)
   1157    1.1       cgd {
   1158   1.37     lukem 	int		eor;
   1159   1.37     lukem 	struct mbuf	*o;
   1160    1.1       cgd 
   1161   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1162   1.91        ad 
   1163   1.37     lukem 	eor = 0;
   1164    1.1       cgd 	while (m) {
   1165    1.1       cgd 		eor |= m->m_flags & M_EOR;
   1166    1.1       cgd 		if (m->m_len == 0 &&
   1167    1.1       cgd 		    (eor == 0 ||
   1168    1.1       cgd 		     (((o = m->m_next) || (o = n)) &&
   1169    1.1       cgd 		      o->m_type == m->m_type))) {
   1170   1.46   thorpej 			if (sb->sb_lastrecord == m)
   1171   1.46   thorpej 				sb->sb_lastrecord = m->m_next;
   1172    1.1       cgd 			m = m_free(m);
   1173    1.1       cgd 			continue;
   1174    1.1       cgd 		}
   1175   1.40   thorpej 		if (n && (n->m_flags & M_EOR) == 0 &&
   1176   1.40   thorpej 		    /* M_TRAILINGSPACE() checks buffer writeability */
   1177   1.40   thorpej 		    m->m_len <= MCLBYTES / 4 && /* XXX Don't copy too much */
   1178   1.40   thorpej 		    m->m_len <= M_TRAILINGSPACE(n) &&
   1179   1.40   thorpej 		    n->m_type == m->m_type) {
   1180   1.82  christos 			memcpy(mtod(n, char *) + n->m_len, mtod(m, void *),
   1181    1.1       cgd 			    (unsigned)m->m_len);
   1182    1.1       cgd 			n->m_len += m->m_len;
   1183    1.1       cgd 			sb->sb_cc += m->m_len;
   1184    1.1       cgd 			m = m_free(m);
   1185    1.1       cgd 			continue;
   1186    1.1       cgd 		}
   1187    1.1       cgd 		if (n)
   1188    1.1       cgd 			n->m_next = m;
   1189    1.1       cgd 		else
   1190    1.1       cgd 			sb->sb_mb = m;
   1191   1.43   thorpej 		sb->sb_mbtail = m;
   1192    1.1       cgd 		sballoc(sb, m);
   1193    1.1       cgd 		n = m;
   1194    1.1       cgd 		m->m_flags &= ~M_EOR;
   1195    1.1       cgd 		m = m->m_next;
   1196    1.1       cgd 		n->m_next = 0;
   1197    1.1       cgd 	}
   1198    1.1       cgd 	if (eor) {
   1199    1.1       cgd 		if (n)
   1200    1.1       cgd 			n->m_flags |= eor;
   1201    1.1       cgd 		else
   1202   1.15  christos 			printf("semi-panic: sbcompress\n");
   1203    1.1       cgd 	}
   1204   1.43   thorpej 	SBLASTMBUFCHK(sb, __func__);
   1205    1.1       cgd }
   1206    1.1       cgd 
   1207    1.1       cgd /*
   1208    1.1       cgd  * Free all mbufs in a sockbuf.
   1209    1.1       cgd  * Check that all resources are reclaimed.
   1210    1.1       cgd  */
   1211    1.7   mycroft void
   1212   1.37     lukem sbflush(struct sockbuf *sb)
   1213    1.1       cgd {
   1214    1.1       cgd 
   1215   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1216   1.43   thorpej 	KASSERT((sb->sb_flags & SB_LOCK) == 0);
   1217   1.43   thorpej 
   1218    1.1       cgd 	while (sb->sb_mbcnt)
   1219    1.1       cgd 		sbdrop(sb, (int)sb->sb_cc);
   1220   1.43   thorpej 
   1221   1.43   thorpej 	KASSERT(sb->sb_cc == 0);
   1222   1.43   thorpej 	KASSERT(sb->sb_mb == NULL);
   1223   1.43   thorpej 	KASSERT(sb->sb_mbtail == NULL);
   1224   1.43   thorpej 	KASSERT(sb->sb_lastrecord == NULL);
   1225    1.1       cgd }
   1226    1.1       cgd 
   1227    1.1       cgd /*
   1228    1.1       cgd  * Drop data from (the front of) a sockbuf.
   1229    1.1       cgd  */
   1230    1.7   mycroft void
   1231   1.37     lukem sbdrop(struct sockbuf *sb, int len)
   1232    1.1       cgd {
   1233   1.37     lukem 	struct mbuf	*m, *mn, *next;
   1234    1.1       cgd 
   1235   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1236   1.91        ad 
   1237    1.1       cgd 	next = (m = sb->sb_mb) ? m->m_nextpkt : 0;
   1238    1.1       cgd 	while (len > 0) {
   1239    1.1       cgd 		if (m == 0) {
   1240    1.1       cgd 			if (next == 0)
   1241    1.1       cgd 				panic("sbdrop");
   1242    1.1       cgd 			m = next;
   1243    1.1       cgd 			next = m->m_nextpkt;
   1244    1.1       cgd 			continue;
   1245    1.1       cgd 		}
   1246    1.1       cgd 		if (m->m_len > len) {
   1247    1.1       cgd 			m->m_len -= len;
   1248    1.1       cgd 			m->m_data += len;
   1249    1.1       cgd 			sb->sb_cc -= len;
   1250    1.1       cgd 			break;
   1251    1.1       cgd 		}
   1252    1.1       cgd 		len -= m->m_len;
   1253    1.1       cgd 		sbfree(sb, m);
   1254    1.1       cgd 		MFREE(m, mn);
   1255    1.1       cgd 		m = mn;
   1256    1.1       cgd 	}
   1257    1.1       cgd 	while (m && m->m_len == 0) {
   1258    1.1       cgd 		sbfree(sb, m);
   1259    1.1       cgd 		MFREE(m, mn);
   1260    1.1       cgd 		m = mn;
   1261    1.1       cgd 	}
   1262    1.1       cgd 	if (m) {
   1263    1.1       cgd 		sb->sb_mb = m;
   1264    1.1       cgd 		m->m_nextpkt = next;
   1265    1.1       cgd 	} else
   1266    1.1       cgd 		sb->sb_mb = next;
   1267   1.43   thorpej 	/*
   1268   1.45   thorpej 	 * First part is an inline SB_EMPTY_FIXUP().  Second part
   1269   1.43   thorpej 	 * makes sure sb_lastrecord is up-to-date if we dropped
   1270   1.43   thorpej 	 * part of the last record.
   1271   1.43   thorpej 	 */
   1272   1.43   thorpej 	m = sb->sb_mb;
   1273   1.43   thorpej 	if (m == NULL) {
   1274   1.43   thorpej 		sb->sb_mbtail = NULL;
   1275   1.43   thorpej 		sb->sb_lastrecord = NULL;
   1276   1.43   thorpej 	} else if (m->m_nextpkt == NULL)
   1277   1.43   thorpej 		sb->sb_lastrecord = m;
   1278    1.1       cgd }
   1279    1.1       cgd 
   1280    1.1       cgd /*
   1281    1.1       cgd  * Drop a record off the front of a sockbuf
   1282    1.1       cgd  * and move the next record to the front.
   1283    1.1       cgd  */
   1284    1.7   mycroft void
   1285   1.37     lukem sbdroprecord(struct sockbuf *sb)
   1286    1.1       cgd {
   1287   1.37     lukem 	struct mbuf	*m, *mn;
   1288    1.1       cgd 
   1289   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1290   1.91        ad 
   1291    1.1       cgd 	m = sb->sb_mb;
   1292    1.1       cgd 	if (m) {
   1293    1.1       cgd 		sb->sb_mb = m->m_nextpkt;
   1294    1.1       cgd 		do {
   1295    1.1       cgd 			sbfree(sb, m);
   1296    1.1       cgd 			MFREE(m, mn);
   1297   1.11  christos 		} while ((m = mn) != NULL);
   1298    1.1       cgd 	}
   1299   1.45   thorpej 	SB_EMPTY_FIXUP(sb);
   1300   1.19   thorpej }
   1301   1.19   thorpej 
   1302   1.19   thorpej /*
   1303   1.19   thorpej  * Create a "control" mbuf containing the specified data
   1304   1.19   thorpej  * with the specified type for presentation on a socket buffer.
   1305   1.19   thorpej  */
   1306   1.19   thorpej struct mbuf *
   1307   1.82  christos sbcreatecontrol(void *p, int size, int type, int level)
   1308   1.19   thorpej {
   1309   1.37     lukem 	struct cmsghdr	*cp;
   1310   1.37     lukem 	struct mbuf	*m;
   1311   1.19   thorpej 
   1312   1.35    itojun 	if (CMSG_SPACE(size) > MCLBYTES) {
   1313   1.30    itojun 		printf("sbcreatecontrol: message too large %d\n", size);
   1314   1.30    itojun 		return NULL;
   1315   1.30    itojun 	}
   1316   1.30    itojun 
   1317   1.19   thorpej 	if ((m = m_get(M_DONTWAIT, MT_CONTROL)) == NULL)
   1318   1.19   thorpej 		return ((struct mbuf *) NULL);
   1319   1.35    itojun 	if (CMSG_SPACE(size) > MLEN) {
   1320   1.30    itojun 		MCLGET(m, M_DONTWAIT);
   1321   1.30    itojun 		if ((m->m_flags & M_EXT) == 0) {
   1322   1.30    itojun 			m_free(m);
   1323   1.30    itojun 			return NULL;
   1324   1.30    itojun 		}
   1325   1.30    itojun 	}
   1326   1.19   thorpej 	cp = mtod(m, struct cmsghdr *);
   1327   1.26     perry 	memcpy(CMSG_DATA(cp), p, size);
   1328   1.35    itojun 	m->m_len = CMSG_SPACE(size);
   1329   1.35    itojun 	cp->cmsg_len = CMSG_LEN(size);
   1330   1.19   thorpej 	cp->cmsg_level = level;
   1331   1.19   thorpej 	cp->cmsg_type = type;
   1332   1.19   thorpej 	return (m);
   1333    1.1       cgd }
   1334   1.91        ad 
   1335   1.91        ad void
   1336   1.91        ad solockretry(struct socket *so, kmutex_t *lock)
   1337   1.91        ad {
   1338   1.91        ad 
   1339   1.91        ad 	while (lock != so->so_lock) {
   1340   1.91        ad 		mutex_exit(lock);
   1341   1.91        ad 		lock = so->so_lock;
   1342   1.91        ad 		mutex_enter(lock);
   1343   1.91        ad 	}
   1344   1.91        ad }
   1345   1.91        ad 
   1346   1.91        ad bool
   1347   1.91        ad solocked(struct socket *so)
   1348   1.91        ad {
   1349   1.91        ad 
   1350   1.91        ad 	return mutex_owned(so->so_lock);
   1351   1.91        ad }
   1352   1.91        ad 
   1353   1.91        ad bool
   1354   1.91        ad solocked2(struct socket *so1, struct socket *so2)
   1355   1.91        ad {
   1356   1.91        ad 	kmutex_t *lock;
   1357   1.91        ad 
   1358   1.91        ad 	lock = so1->so_lock;
   1359   1.91        ad 	if (lock != so2->so_lock)
   1360   1.91        ad 		return false;
   1361   1.91        ad 	return mutex_owned(lock);
   1362   1.91        ad }
   1363   1.91        ad 
   1364   1.91        ad /*
   1365   1.91        ad  * Assign a default lock to a new socket.  For PRU_ATTACH, and done by
   1366   1.91        ad  * protocols that do not have special locking requirements.
   1367   1.91        ad  */
   1368   1.91        ad void
   1369   1.91        ad sosetlock(struct socket *so)
   1370   1.91        ad {
   1371   1.91        ad 	kmutex_t *lock;
   1372   1.91        ad 
   1373   1.91        ad 	if (so->so_lock == NULL) {
   1374   1.91        ad 		lock = softnet_lock;
   1375   1.91        ad 		so->so_lock = lock;
   1376   1.91        ad 		mutex_obj_hold(lock);
   1377   1.91        ad 		mutex_enter(lock);
   1378   1.91        ad 	}
   1379   1.91        ad 
   1380   1.91        ad 	/* In all cases, lock must be held on return from PRU_ATTACH. */
   1381   1.91        ad 	KASSERT(solocked(so));
   1382   1.91        ad }
   1383   1.91        ad 
   1384   1.91        ad /*
   1385   1.91        ad  * Set lock on sockbuf sb; sleep if lock is already held.
   1386   1.91        ad  * Unless SB_NOINTR is set on sockbuf, sleep is interruptible.
   1387   1.91        ad  * Returns error without lock if sleep is interrupted.
   1388   1.91        ad  */
   1389   1.91        ad int
   1390   1.91        ad sblock(struct sockbuf *sb, int wf)
   1391   1.91        ad {
   1392   1.91        ad 	struct socket *so;
   1393   1.91        ad 	kmutex_t *lock;
   1394   1.91        ad 	int error;
   1395   1.91        ad 
   1396   1.91        ad 	KASSERT(solocked(sb->sb_so));
   1397   1.91        ad 
   1398   1.91        ad 	for (;;) {
   1399   1.91        ad 		if (__predict_true((sb->sb_flags & SB_LOCK) == 0)) {
   1400   1.91        ad 			sb->sb_flags |= SB_LOCK;
   1401   1.91        ad 			return 0;
   1402   1.91        ad 		}
   1403   1.91        ad 		if (wf != M_WAITOK)
   1404   1.91        ad 			return EWOULDBLOCK;
   1405   1.91        ad 		so = sb->sb_so;
   1406   1.91        ad 		lock = so->so_lock;
   1407   1.91        ad 		if ((sb->sb_flags & SB_NOINTR) != 0) {
   1408   1.91        ad 			cv_wait(&so->so_cv, lock);
   1409   1.91        ad 			error = 0;
   1410   1.91        ad 		} else
   1411   1.91        ad 			error = cv_wait_sig(&so->so_cv, lock);
   1412   1.91        ad 		if (__predict_false(lock != so->so_lock))
   1413   1.91        ad 			solockretry(so, lock);
   1414   1.91        ad 		if (error != 0)
   1415   1.91        ad 			return error;
   1416   1.91        ad 	}
   1417   1.91        ad }
   1418   1.91        ad 
   1419   1.91        ad void
   1420   1.91        ad sbunlock(struct sockbuf *sb)
   1421   1.91        ad {
   1422   1.91        ad 	struct socket *so;
   1423   1.91        ad 
   1424   1.91        ad 	so = sb->sb_so;
   1425   1.91        ad 
   1426   1.91        ad 	KASSERT(solocked(so));
   1427   1.91        ad 	KASSERT((sb->sb_flags & SB_LOCK) != 0);
   1428   1.91        ad 
   1429   1.91        ad 	sb->sb_flags &= ~SB_LOCK;
   1430   1.91        ad 	cv_broadcast(&so->so_cv);
   1431   1.91        ad }
   1432   1.91        ad 
   1433   1.91        ad int
   1434  1.101      yamt sowait(struct socket *so, bool catch, int timo)
   1435   1.91        ad {
   1436   1.91        ad 	kmutex_t *lock;
   1437   1.91        ad 	int error;
   1438   1.91        ad 
   1439   1.91        ad 	KASSERT(solocked(so));
   1440  1.101      yamt 	KASSERT(catch || timo != 0);
   1441   1.91        ad 
   1442   1.91        ad 	lock = so->so_lock;
   1443  1.101      yamt 	if (catch)
   1444  1.101      yamt 		error = cv_timedwait_sig(&so->so_cv, lock, timo);
   1445  1.101      yamt 	else
   1446  1.101      yamt 		error = cv_timedwait(&so->so_cv, lock, timo);
   1447   1.91        ad 	if (__predict_false(lock != so->so_lock))
   1448   1.91        ad 		solockretry(so, lock);
   1449   1.91        ad 	return error;
   1450   1.91        ad }
   1451