tcp_timewait.c revision 53541
1/*
2 * Copyright (c) 1982, 1986, 1988, 1990, 1993, 1995
3 *	The Regents of the University of California.  All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 *    notice, this list of conditions and the following disclaimer.
10 * 2. Redistributions in binary form must reproduce the above copyright
11 *    notice, this list of conditions and the following disclaimer in the
12 *    documentation and/or other materials provided with the distribution.
13 * 3. All advertising materials mentioning features or use of this software
14 *    must display the following acknowledgement:
15 *	This product includes software developed by the University of
16 *	California, Berkeley and its contributors.
17 * 4. Neither the name of the University nor the names of its contributors
18 *    may be used to endorse or promote products derived from this software
19 *    without specific prior written permission.
20 *
21 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
22 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
25 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 * SUCH DAMAGE.
32 *
33 *	@(#)tcp_subr.c	8.2 (Berkeley) 5/24/95
34 * $FreeBSD: head/sys/netinet/tcp_timewait.c 53541 1999-11-22 02:45:11Z shin $
35 */
36
37#include "opt_compat.h"
38#include "opt_inet.h"
39#include "opt_tcpdebug.h"
40
41#include <sys/param.h>
42#include <sys/systm.h>
43#include <sys/callout.h>
44#include <sys/kernel.h>
45#include <sys/sysctl.h>
46#include <sys/malloc.h>
47#include <sys/mbuf.h>
48#include <sys/proc.h>
49#include <sys/socket.h>
50#include <sys/socketvar.h>
51#include <sys/protosw.h>
52
53#include <vm/vm_zone.h>
54
55#include <net/route.h>
56#include <net/if.h>
57
58#define _IP_VHL
59#include <netinet/in.h>
60#include <netinet/in_systm.h>
61#include <netinet/ip.h>
62#include <netinet/in_pcb.h>
63#include <netinet/in_var.h>
64#include <netinet/ip_var.h>
65#include <netinet/tcp.h>
66#include <netinet/tcp_fsm.h>
67#include <netinet/tcp_seq.h>
68#include <netinet/tcp_timer.h>
69#include <netinet/tcp_var.h>
70#include <netinet/tcpip.h>
71#ifdef TCPDEBUG
72#include <netinet/tcp_debug.h>
73#endif
74
75int 	tcp_mssdflt = TCP_MSS;
76SYSCTL_INT(_net_inet_tcp, TCPCTL_MSSDFLT, mssdflt, CTLFLAG_RW,
77    &tcp_mssdflt , 0, "Default TCP Maximum Segment Size");
78
79#ifdef INET6
80int	tcp_v6mssdflt = TCP6_MSS;
81SYSCTL_INT(_net_inet_tcp, TCPCTL_V6MSSDFLT, v6mssdflt,
82	CTLFLAG_RW, &tcp_v6mssdflt , 0, "");
83#endif
84
85#if 0
86static int 	tcp_rttdflt = TCPTV_SRTTDFLT / PR_SLOWHZ;
87SYSCTL_INT(_net_inet_tcp, TCPCTL_RTTDFLT, rttdflt, CTLFLAG_RW,
88    &tcp_rttdflt , 0, "Default maximum TCP Round Trip Time");
89#endif
90
91static int	tcp_do_rfc1323 = 1;
92SYSCTL_INT(_net_inet_tcp, TCPCTL_DO_RFC1323, rfc1323, CTLFLAG_RW,
93    &tcp_do_rfc1323 , 0, "Enable rfc1323 (high performance TCP) extensions");
94
95static int	tcp_do_rfc1644 = 0;
96SYSCTL_INT(_net_inet_tcp, TCPCTL_DO_RFC1644, rfc1644, CTLFLAG_RW,
97    &tcp_do_rfc1644 , 0, "Enable rfc1644 (TTCP) extensions");
98
99static int	tcp_tcbhashsize = 0;
100SYSCTL_INT(_net_inet_tcp, OID_AUTO, tcbhashsize, CTLFLAG_RD,
101     &tcp_tcbhashsize, 0, "Size of TCP control-block hashtable");
102
103SYSCTL_INT(_net_inet_tcp, OID_AUTO, pcbcount, CTLFLAG_RD,
104    &tcbinfo.ipi_count, 0, "Number of active PCBs");
105
106static void	tcp_cleartaocache __P((void));
107static void	tcp_notify __P((struct inpcb *, int));
108
109/*
110 * Target size of TCP PCB hash tables. Must be a power of two.
111 *
112 * Note that this can be overridden by the kernel environment
113 * variable net.inet.tcp.tcbhashsize
114 */
115#ifndef TCBHASHSIZE
116#define TCBHASHSIZE	512
117#endif
118
119/*
120 * This is the actual shape of what we allocate using the zone
121 * allocator.  Doing it this way allows us to protect both structures
122 * using the same generation count, and also eliminates the overhead
123 * of allocating tcpcbs separately.  By hiding the structure here,
124 * we avoid changing most of the rest of the code (although it needs
125 * to be changed, eventually, for greater efficiency).
126 */
127#define	ALIGNMENT	32
128#define	ALIGNM1		(ALIGNMENT - 1)
129struct	inp_tp {
130	union {
131		struct	inpcb inp;
132		char	align[(sizeof(struct inpcb) + ALIGNM1) & ~ALIGNM1];
133	} inp_tp_u;
134	struct	tcpcb tcb;
135	struct	callout inp_tp_rexmt, inp_tp_persist, inp_tp_keep, inp_tp_2msl;
136	struct	callout inp_tp_delack;
137};
138#undef ALIGNMENT
139#undef ALIGNM1
140
141/*
142 * Tcp initialization
143 */
144void
145tcp_init()
146{
147	int hashsize;
148
149	tcp_iss = random();	/* wrong, but better than a constant */
150	tcp_ccgen = 1;
151	tcp_cleartaocache();
152
153	tcp_delacktime = TCPTV_DELACK;
154	tcp_keepinit = TCPTV_KEEP_INIT;
155	tcp_keepidle = TCPTV_KEEP_IDLE;
156	tcp_keepintvl = TCPTV_KEEPINTVL;
157	tcp_maxpersistidle = TCPTV_KEEP_IDLE;
158	tcp_msl = TCPTV_MSL;
159
160	LIST_INIT(&tcb);
161	tcbinfo.listhead = &tcb;
162	TUNABLE_INT_FETCH("net.inet.tcp.tcbhashsize", TCBHASHSIZE, hashsize);
163	if (!powerof2(hashsize)) {
164		printf("WARNING: TCB hash size not a power of 2\n");
165		hashsize = 512; /* safe default */
166	}
167	tcp_tcbhashsize = hashsize;
168	tcbinfo.hashbase = hashinit(hashsize, M_PCB, &tcbinfo.hashmask);
169	tcbinfo.porthashbase = hashinit(hashsize, M_PCB,
170					&tcbinfo.porthashmask);
171	tcbinfo.ipi_zone = zinit("tcpcb", sizeof(struct inp_tp), maxsockets,
172				 ZONE_INTERRUPT, 0);
173
174	if (max_protohdr < sizeof(struct tcpiphdr))
175		max_protohdr = sizeof(struct tcpiphdr);
176	if (max_linkhdr + sizeof(struct tcpiphdr) > MHLEN)
177		panic("tcp_init");
178}
179
180/*
181 * Create template to be used to send tcp packets on a connection.
182 * Call after host entry created, allocates an mbuf and fills
183 * in a skeletal tcp/ip header, minimizing the amount of work
184 * necessary when the connection is used.
185 */
186struct tcpiphdr *
187tcp_template(tp)
188	struct tcpcb *tp;
189{
190	register struct inpcb *inp = tp->t_inpcb;
191	register struct mbuf *m;
192	register struct tcpiphdr *n;
193
194	if ((n = tp->t_template) == 0) {
195		m = m_get(M_DONTWAIT, MT_HEADER);
196		if (m == NULL)
197			return (0);
198		m->m_len = sizeof (struct tcpiphdr);
199		n = mtod(m, struct tcpiphdr *);
200	}
201	bzero(n->ti_x1, sizeof(n->ti_x1));
202	n->ti_pr = IPPROTO_TCP;
203	n->ti_len = htons(sizeof (struct tcpiphdr) - sizeof (struct ip));
204	n->ti_src = inp->inp_laddr;
205	n->ti_dst = inp->inp_faddr;
206	n->ti_sport = inp->inp_lport;
207	n->ti_dport = inp->inp_fport;
208	n->ti_seq = 0;
209	n->ti_ack = 0;
210	n->ti_x2 = 0;
211	n->ti_off = 5;
212	n->ti_flags = 0;
213	n->ti_win = 0;
214	n->ti_sum = 0;
215	n->ti_urp = 0;
216	return (n);
217}
218
219/*
220 * Send a single message to the TCP at address specified by
221 * the given TCP/IP header.  If m == 0, then we make a copy
222 * of the tcpiphdr at ti and send directly to the addressed host.
223 * This is used to force keep alive messages out using the TCP
224 * template for a connection tp->t_template.  If flags are given
225 * then we send a message back to the TCP which originated the
226 * segment ti, and discard the mbuf containing it and any other
227 * attached mbufs.
228 *
229 * In any case the ack and sequence number of the transmitted
230 * segment are as specified by the parameters.
231 *
232 * NOTE: If m != NULL, then ti must point to *inside* the mbuf.
233 */
234void
235tcp_respond(tp, ti, m, ack, seq, flags)
236	struct tcpcb *tp;
237	register struct tcpiphdr *ti;
238	register struct mbuf *m;
239	tcp_seq ack, seq;
240	int flags;
241{
242	register int tlen;
243	int win = 0;
244	struct route *ro = 0;
245	struct route sro;
246
247	if (tp) {
248		if (!(flags & TH_RST))
249			win = sbspace(&tp->t_inpcb->inp_socket->so_rcv);
250		ro = &tp->t_inpcb->inp_route;
251	} else {
252		ro = &sro;
253		bzero(ro, sizeof *ro);
254	}
255	if (m == 0) {
256		m = m_gethdr(M_DONTWAIT, MT_HEADER);
257		if (m == NULL)
258			return;
259#ifdef TCP_COMPAT_42
260		tlen = 1;
261#else
262		tlen = 0;
263#endif
264		m->m_data += max_linkhdr;
265		*mtod(m, struct tcpiphdr *) = *ti;
266		ti = mtod(m, struct tcpiphdr *);
267		flags = TH_ACK;
268	} else {
269		m_freem(m->m_next);
270		m->m_next = 0;
271		m->m_data = (caddr_t)ti;
272		m->m_len = sizeof (struct tcpiphdr);
273		tlen = 0;
274#define xchg(a,b,type) { type t; t=a; a=b; b=t; }
275		xchg(ti->ti_dst.s_addr, ti->ti_src.s_addr, n_long);
276		xchg(ti->ti_dport, ti->ti_sport, n_short);
277#undef xchg
278	}
279	ti->ti_len = htons((u_short)(sizeof (struct tcphdr) + tlen));
280	tlen += sizeof (struct tcpiphdr);
281	m->m_len = tlen;
282	m->m_pkthdr.len = tlen;
283	m->m_pkthdr.rcvif = (struct ifnet *) 0;
284	bzero(ti->ti_x1, sizeof(ti->ti_x1));
285	ti->ti_seq = htonl(seq);
286	ti->ti_ack = htonl(ack);
287	ti->ti_x2 = 0;
288	ti->ti_off = sizeof (struct tcphdr) >> 2;
289	ti->ti_flags = flags;
290	if (tp)
291		ti->ti_win = htons((u_short) (win >> tp->rcv_scale));
292	else
293		ti->ti_win = htons((u_short)win);
294	ti->ti_urp = 0;
295	ti->ti_sum = 0;
296	ti->ti_sum = in_cksum(m, tlen);
297	((struct ip *)ti)->ip_len = tlen;
298	((struct ip *)ti)->ip_ttl = ip_defttl;
299#ifdef TCPDEBUG
300	if (tp == NULL || (tp->t_inpcb->inp_socket->so_options & SO_DEBUG))
301		tcp_trace(TA_OUTPUT, 0, tp, ti, 0);
302#endif
303	(void) ip_output(m, NULL, ro, 0, NULL);
304	if (ro == &sro && ro->ro_rt) {
305		RTFREE(ro->ro_rt);
306	}
307}
308
309/*
310 * Create a new TCP control block, making an
311 * empty reassembly queue and hooking it to the argument
312 * protocol control block.  The `inp' parameter must have
313 * come from the zone allocator set up in tcp_init().
314 */
315struct tcpcb *
316tcp_newtcpcb(inp)
317	struct inpcb *inp;
318{
319	struct inp_tp *it;
320	register struct tcpcb *tp;
321
322	it = (struct inp_tp *)inp;
323	tp = &it->tcb;
324	bzero((char *) tp, sizeof(struct tcpcb));
325	tp->t_segq = NULL;
326	tp->t_maxseg = tp->t_maxopd = tcp_mssdflt;
327
328	/* Set up our timeouts. */
329	callout_init(tp->tt_rexmt = &it->inp_tp_rexmt);
330	callout_init(tp->tt_persist = &it->inp_tp_persist);
331	callout_init(tp->tt_keep = &it->inp_tp_keep);
332	callout_init(tp->tt_2msl = &it->inp_tp_2msl);
333	callout_init(tp->tt_delack = &it->inp_tp_delack);
334
335	if (tcp_do_rfc1323)
336		tp->t_flags = (TF_REQ_SCALE|TF_REQ_TSTMP);
337	if (tcp_do_rfc1644)
338		tp->t_flags |= TF_REQ_CC;
339	tp->t_inpcb = inp;	/* XXX */
340	/*
341	 * Init srtt to TCPTV_SRTTBASE (0), so we can tell that we have no
342	 * rtt estimate.  Set rttvar so that srtt + 4 * rttvar gives
343	 * reasonable initial retransmit time.
344	 */
345	tp->t_srtt = TCPTV_SRTTBASE;
346	tp->t_rttvar = ((TCPTV_RTOBASE - TCPTV_SRTTBASE) << TCP_RTTVAR_SHIFT) / 4;
347	tp->t_rttmin = TCPTV_MIN;
348	tp->t_rxtcur = TCPTV_RTOBASE;
349	tp->snd_cwnd = TCP_MAXWIN << TCP_MAX_WINSHIFT;
350	tp->snd_ssthresh = TCP_MAXWIN << TCP_MAX_WINSHIFT;
351	tp->t_rcvtime = ticks;
352	inp->inp_ip_ttl = ip_defttl;
353	inp->inp_ppcb = (caddr_t)tp;
354	return (tp);		/* XXX */
355}
356
357/*
358 * Drop a TCP connection, reporting
359 * the specified error.  If connection is synchronized,
360 * then send a RST to peer.
361 */
362struct tcpcb *
363tcp_drop(tp, errno)
364	register struct tcpcb *tp;
365	int errno;
366{
367	struct socket *so = tp->t_inpcb->inp_socket;
368
369	if (TCPS_HAVERCVDSYN(tp->t_state)) {
370		tp->t_state = TCPS_CLOSED;
371		(void) tcp_output(tp);
372		tcpstat.tcps_drops++;
373	} else
374		tcpstat.tcps_conndrops++;
375	if (errno == ETIMEDOUT && tp->t_softerror)
376		errno = tp->t_softerror;
377	so->so_error = errno;
378	return (tcp_close(tp));
379}
380
381/*
382 * Close a TCP control block:
383 *	discard all space held by the tcp
384 *	discard internet protocol block
385 *	wake up any sleepers
386 */
387struct tcpcb *
388tcp_close(tp)
389	register struct tcpcb *tp;
390{
391	register struct mbuf *q;
392	register struct mbuf *nq;
393	struct inpcb *inp = tp->t_inpcb;
394	struct socket *so = inp->inp_socket;
395	register struct rtentry *rt;
396	int dosavessthresh;
397
398	/*
399	 * Make sure that all of our timers are stopped before we
400	 * delete the PCB.
401	 */
402	callout_stop(tp->tt_rexmt);
403	callout_stop(tp->tt_persist);
404	callout_stop(tp->tt_keep);
405	callout_stop(tp->tt_2msl);
406	callout_stop(tp->tt_delack);
407
408	/*
409	 * If we got enough samples through the srtt filter,
410	 * save the rtt and rttvar in the routing entry.
411	 * 'Enough' is arbitrarily defined as the 16 samples.
412	 * 16 samples is enough for the srtt filter to converge
413	 * to within 5% of the correct value; fewer samples and
414	 * we could save a very bogus rtt.
415	 *
416	 * Don't update the default route's characteristics and don't
417	 * update anything that the user "locked".
418	 */
419	if (tp->t_rttupdated >= 16 &&
420	    (rt = inp->inp_route.ro_rt) &&
421	    ((struct sockaddr_in *)rt_key(rt))->sin_addr.s_addr != INADDR_ANY) {
422		register u_long i = 0;
423
424		if ((rt->rt_rmx.rmx_locks & RTV_RTT) == 0) {
425			i = tp->t_srtt *
426			    (RTM_RTTUNIT / (hz * TCP_RTT_SCALE));
427			if (rt->rt_rmx.rmx_rtt && i)
428				/*
429				 * filter this update to half the old & half
430				 * the new values, converting scale.
431				 * See route.h and tcp_var.h for a
432				 * description of the scaling constants.
433				 */
434				rt->rt_rmx.rmx_rtt =
435				    (rt->rt_rmx.rmx_rtt + i) / 2;
436			else
437				rt->rt_rmx.rmx_rtt = i;
438			tcpstat.tcps_cachedrtt++;
439		}
440		if ((rt->rt_rmx.rmx_locks & RTV_RTTVAR) == 0) {
441			i = tp->t_rttvar *
442			    (RTM_RTTUNIT / (hz * TCP_RTTVAR_SCALE));
443			if (rt->rt_rmx.rmx_rttvar && i)
444				rt->rt_rmx.rmx_rttvar =
445				    (rt->rt_rmx.rmx_rttvar + i) / 2;
446			else
447				rt->rt_rmx.rmx_rttvar = i;
448			tcpstat.tcps_cachedrttvar++;
449		}
450		/*
451		 * The old comment here said:
452		 * update the pipelimit (ssthresh) if it has been updated
453		 * already or if a pipesize was specified & the threshhold
454		 * got below half the pipesize.  I.e., wait for bad news
455		 * before we start updating, then update on both good
456		 * and bad news.
457		 *
458		 * But we want to save the ssthresh even if no pipesize is
459		 * specified explicitly in the route, because such
460		 * connections still have an implicit pipesize specified
461		 * by the global tcp_sendspace.  In the absence of a reliable
462		 * way to calculate the pipesize, it will have to do.
463		 */
464		i = tp->snd_ssthresh;
465		if (rt->rt_rmx.rmx_sendpipe != 0)
466			dosavessthresh = (i < rt->rt_rmx.rmx_sendpipe / 2);
467		else
468			dosavessthresh = (i < so->so_snd.sb_hiwat / 2);
469		if (((rt->rt_rmx.rmx_locks & RTV_SSTHRESH) == 0 &&
470		     i != 0 && rt->rt_rmx.rmx_ssthresh != 0)
471		    || dosavessthresh) {
472			/*
473			 * convert the limit from user data bytes to
474			 * packets then to packet data bytes.
475			 */
476			i = (i + tp->t_maxseg / 2) / tp->t_maxseg;
477			if (i < 2)
478				i = 2;
479			i *= (u_long)(tp->t_maxseg + sizeof (struct tcpiphdr));
480			if (rt->rt_rmx.rmx_ssthresh)
481				rt->rt_rmx.rmx_ssthresh =
482				    (rt->rt_rmx.rmx_ssthresh + i) / 2;
483			else
484				rt->rt_rmx.rmx_ssthresh = i;
485			tcpstat.tcps_cachedssthresh++;
486		}
487	}
488	/* free the reassembly queue, if any */
489	for (q = tp->t_segq; q; q = nq) {
490		nq = q->m_nextpkt;
491		tp->t_segq = nq;
492		m_freem(q);
493	}
494	if (tp->t_template)
495		(void) m_free(dtom(tp->t_template));
496	inp->inp_ppcb = NULL;
497	soisdisconnected(so);
498	in_pcbdetach(inp);
499	tcpstat.tcps_closed++;
500	return ((struct tcpcb *)0);
501}
502
503void
504tcp_drain()
505{
506
507}
508
509/*
510 * Notify a tcp user of an asynchronous error;
511 * store error as soft error, but wake up user
512 * (for now, won't do anything until can select for soft error).
513 */
514static void
515tcp_notify(inp, error)
516	struct inpcb *inp;
517	int error;
518{
519	register struct tcpcb *tp = (struct tcpcb *)inp->inp_ppcb;
520	register struct socket *so = inp->inp_socket;
521
522	/*
523	 * Ignore some errors if we are hooked up.
524	 * If connection hasn't completed, has retransmitted several times,
525	 * and receives a second error, give up now.  This is better
526	 * than waiting a long time to establish a connection that
527	 * can never complete.
528	 */
529	if (tp->t_state == TCPS_ESTABLISHED &&
530	     (error == EHOSTUNREACH || error == ENETUNREACH ||
531	      error == EHOSTDOWN)) {
532		return;
533	} else if (tp->t_state < TCPS_ESTABLISHED && tp->t_rxtshift > 3 &&
534	    tp->t_softerror)
535		so->so_error = error;
536	else
537		tp->t_softerror = error;
538	wakeup((caddr_t) &so->so_timeo);
539	sorwakeup(so);
540	sowwakeup(so);
541}
542
543static int
544tcp_pcblist SYSCTL_HANDLER_ARGS
545{
546	int error, i, n, s;
547	struct inpcb *inp, **inp_list;
548	inp_gen_t gencnt;
549	struct xinpgen xig;
550
551	/*
552	 * The process of preparing the TCB list is too time-consuming and
553	 * resource-intensive to repeat twice on every request.
554	 */
555	if (req->oldptr == 0) {
556		n = tcbinfo.ipi_count;
557		req->oldidx = 2 * (sizeof xig)
558			+ (n + n/8) * sizeof(struct xtcpcb);
559		return 0;
560	}
561
562	if (req->newptr != 0)
563		return EPERM;
564
565	/*
566	 * OK, now we're committed to doing something.
567	 */
568	s = splnet();
569	gencnt = tcbinfo.ipi_gencnt;
570	n = tcbinfo.ipi_count;
571	splx(s);
572
573	xig.xig_len = sizeof xig;
574	xig.xig_count = n;
575	xig.xig_gen = gencnt;
576	xig.xig_sogen = so_gencnt;
577	error = SYSCTL_OUT(req, &xig, sizeof xig);
578	if (error)
579		return error;
580
581	inp_list = malloc(n * sizeof *inp_list, M_TEMP, M_WAITOK);
582	if (inp_list == 0)
583		return ENOMEM;
584
585	s = splnet();
586	for (inp = tcbinfo.listhead->lh_first, i = 0; inp && i < n;
587	     inp = inp->inp_list.le_next) {
588		if (inp->inp_gencnt <= gencnt && !prison_xinpcb(req->p, inp))
589			inp_list[i++] = inp;
590	}
591	splx(s);
592	n = i;
593
594	error = 0;
595	for (i = 0; i < n; i++) {
596		inp = inp_list[i];
597		if (inp->inp_gencnt <= gencnt) {
598			struct xtcpcb xt;
599			caddr_t inp_ppcb;
600			xt.xt_len = sizeof xt;
601			/* XXX should avoid extra copy */
602			bcopy(inp, &xt.xt_inp, sizeof *inp);
603			inp_ppcb = inp->inp_ppcb;
604			if (inp_ppcb != NULL)
605				bcopy(inp_ppcb, &xt.xt_tp, sizeof xt.xt_tp);
606			else
607				bzero((char *) &xt.xt_tp, sizeof xt.xt_tp);
608			if (inp->inp_socket)
609				sotoxsocket(inp->inp_socket, &xt.xt_socket);
610			error = SYSCTL_OUT(req, &xt, sizeof xt);
611		}
612	}
613	if (!error) {
614		/*
615		 * Give the user an updated idea of our state.
616		 * If the generation differs from what we told
617		 * her before, she knows that something happened
618		 * while we were processing this request, and it
619		 * might be necessary to retry.
620		 */
621		s = splnet();
622		xig.xig_gen = tcbinfo.ipi_gencnt;
623		xig.xig_sogen = so_gencnt;
624		xig.xig_count = tcbinfo.ipi_count;
625		splx(s);
626		error = SYSCTL_OUT(req, &xig, sizeof xig);
627	}
628	free(inp_list, M_TEMP);
629	return error;
630}
631
632SYSCTL_PROC(_net_inet_tcp, TCPCTL_PCBLIST, pcblist, CTLFLAG_RD, 0, 0,
633	    tcp_pcblist, "S,xtcpcb", "List of active TCP connections");
634
635static int
636tcp_getcred SYSCTL_HANDLER_ARGS
637{
638	struct sockaddr_in addrs[2];
639	struct inpcb *inp;
640	int error, s;
641
642	error = suser(req->p);
643	if (error)
644		return (error);
645	error = SYSCTL_IN(req, addrs, sizeof(addrs));
646	if (error)
647		return (error);
648	s = splnet();
649	inp = in_pcblookup_hash(&tcbinfo, addrs[1].sin_addr, addrs[1].sin_port,
650	    addrs[0].sin_addr, addrs[0].sin_port, 0);
651	if (inp == NULL || inp->inp_socket == NULL) {
652		error = ENOENT;
653		goto out;
654	}
655	error = SYSCTL_OUT(req, inp->inp_socket->so_cred, sizeof(struct ucred));
656out:
657	splx(s);
658	return (error);
659}
660
661SYSCTL_PROC(_net_inet_tcp, OID_AUTO, getcred, CTLTYPE_OPAQUE|CTLFLAG_RW,
662    0, 0, tcp_getcred, "S,ucred", "Get the ucred of a TCP connection");
663
664void
665tcp_ctlinput(cmd, sa, vip)
666	int cmd;
667	struct sockaddr *sa;
668	void *vip;
669{
670	register struct ip *ip = vip;
671	register struct tcphdr *th;
672	void (*notify) __P((struct inpcb *, int)) = tcp_notify;
673
674	if (cmd == PRC_QUENCH)
675		notify = tcp_quench;
676	else if (cmd == PRC_MSGSIZE)
677		notify = tcp_mtudisc;
678	else if (!PRC_IS_REDIRECT(cmd) &&
679		 ((unsigned)cmd > PRC_NCMDS || inetctlerrmap[cmd] == 0))
680		return;
681	if (ip) {
682		th = (struct tcphdr *)((caddr_t)ip
683				       + (IP_VHL_HL(ip->ip_vhl) << 2));
684		in_pcbnotify(&tcb, sa, th->th_dport, ip->ip_src, th->th_sport,
685			cmd, notify);
686	} else
687		in_pcbnotify(&tcb, sa, 0, zeroin_addr, 0, cmd, notify);
688}
689
690/*
691 * When a source quench is received, close congestion window
692 * to one segment.  We will gradually open it again as we proceed.
693 */
694void
695tcp_quench(inp, errno)
696	struct inpcb *inp;
697	int errno;
698{
699	struct tcpcb *tp = intotcpcb(inp);
700
701	if (tp)
702		tp->snd_cwnd = tp->t_maxseg;
703}
704
705/*
706 * When `need fragmentation' ICMP is received, update our idea of the MSS
707 * based on the new value in the route.  Also nudge TCP to send something,
708 * since we know the packet we just sent was dropped.
709 * This duplicates some code in the tcp_mss() function in tcp_input.c.
710 */
711void
712tcp_mtudisc(inp, errno)
713	struct inpcb *inp;
714	int errno;
715{
716	struct tcpcb *tp = intotcpcb(inp);
717	struct rtentry *rt;
718	struct rmxp_tao *taop;
719	struct socket *so = inp->inp_socket;
720	int offered;
721	int mss;
722
723	if (tp) {
724		rt = tcp_rtlookup(inp);
725		if (!rt || !rt->rt_rmx.rmx_mtu) {
726			tp->t_maxopd = tp->t_maxseg = tcp_mssdflt;
727			return;
728		}
729		taop = rmx_taop(rt->rt_rmx);
730		offered = taop->tao_mssopt;
731		mss = rt->rt_rmx.rmx_mtu - sizeof(struct tcpiphdr);
732		if (offered)
733			mss = min(mss, offered);
734		/*
735		 * XXX - The above conditional probably violates the TCP
736		 * spec.  The problem is that, since we don't know the
737		 * other end's MSS, we are supposed to use a conservative
738		 * default.  But, if we do that, then MTU discovery will
739		 * never actually take place, because the conservative
740		 * default is much less than the MTUs typically seen
741		 * on the Internet today.  For the moment, we'll sweep
742		 * this under the carpet.
743		 *
744		 * The conservative default might not actually be a problem
745		 * if the only case this occurs is when sending an initial
746		 * SYN with options and data to a host we've never talked
747		 * to before.  Then, they will reply with an MSS value which
748		 * will get recorded and the new parameters should get
749		 * recomputed.  For Further Study.
750		 */
751		if (tp->t_maxopd <= mss)
752			return;
753		tp->t_maxopd = mss;
754
755		if ((tp->t_flags & (TF_REQ_TSTMP|TF_NOOPT)) == TF_REQ_TSTMP &&
756		    (tp->t_flags & TF_RCVD_TSTMP) == TF_RCVD_TSTMP)
757			mss -= TCPOLEN_TSTAMP_APPA;
758		if ((tp->t_flags & (TF_REQ_CC|TF_NOOPT)) == TF_REQ_CC &&
759		    (tp->t_flags & TF_RCVD_CC) == TF_RCVD_CC)
760			mss -= TCPOLEN_CC_APPA;
761#if	(MCLBYTES & (MCLBYTES - 1)) == 0
762		if (mss > MCLBYTES)
763			mss &= ~(MCLBYTES-1);
764#else
765		if (mss > MCLBYTES)
766			mss = mss / MCLBYTES * MCLBYTES;
767#endif
768		if (so->so_snd.sb_hiwat < mss)
769			mss = so->so_snd.sb_hiwat;
770
771		tp->t_maxseg = mss;
772
773		tcpstat.tcps_mturesent++;
774		tp->t_rtttime = 0;
775		tp->snd_nxt = tp->snd_una;
776		tcp_output(tp);
777	}
778}
779
780/*
781 * Look-up the routing entry to the peer of this inpcb.  If no route
782 * is found and it cannot be allocated the return NULL.  This routine
783 * is called by TCP routines that access the rmx structure and by tcp_mss
784 * to get the interface MTU.
785 */
786struct rtentry *
787tcp_rtlookup(inp)
788	struct inpcb *inp;
789{
790	struct route *ro;
791	struct rtentry *rt;
792
793	ro = &inp->inp_route;
794	rt = ro->ro_rt;
795	if (rt == NULL || !(rt->rt_flags & RTF_UP)) {
796		/* No route yet, so try to acquire one */
797		if (inp->inp_faddr.s_addr != INADDR_ANY) {
798			ro->ro_dst.sa_family = AF_INET;
799			ro->ro_dst.sa_len = sizeof(ro->ro_dst);
800			((struct sockaddr_in *) &ro->ro_dst)->sin_addr =
801				inp->inp_faddr;
802			rtalloc(ro);
803			rt = ro->ro_rt;
804		}
805	}
806	return rt;
807}
808
809/*
810 * Return a pointer to the cached information about the remote host.
811 * The cached information is stored in the protocol specific part of
812 * the route metrics.
813 */
814struct rmxp_tao *
815tcp_gettaocache(inp)
816	struct inpcb *inp;
817{
818	struct rtentry *rt = tcp_rtlookup(inp);
819
820	/* Make sure this is a host route and is up. */
821	if (rt == NULL ||
822	    (rt->rt_flags & (RTF_UP|RTF_HOST)) != (RTF_UP|RTF_HOST))
823		return NULL;
824
825	return rmx_taop(rt->rt_rmx);
826}
827
828/*
829 * Clear all the TAO cache entries, called from tcp_init.
830 *
831 * XXX
832 * This routine is just an empty one, because we assume that the routing
833 * routing tables are initialized at the same time when TCP, so there is
834 * nothing in the cache left over.
835 */
836static void
837tcp_cleartaocache()
838{
839}
840