tcp: Fix window scaling for accecpted socket
[dragonfly.git] / sys / netinet / tcp_input.c
1 /*
2  * Copyright (c) 2002, 2003, 2004 Jeffrey M. Hsu.  All rights reserved.
3  * Copyright (c) 2002, 2003, 2004 The DragonFly Project.  All rights reserved.
4  *
5  * This code is derived from software contributed to The DragonFly Project
6  * by Jeffrey M. Hsu.
7  *
8  * Redistribution and use in source and binary forms, with or without
9  * modification, are permitted provided that the following conditions
10  * are met:
11  * 1. Redistributions of source code must retain the above copyright
12  *    notice, this list of conditions and the following disclaimer.
13  * 2. Redistributions in binary form must reproduce the above copyright
14  *    notice, this list of conditions and the following disclaimer in the
15  *    documentation and/or other materials provided with the distribution.
16  * 3. Neither the name of The DragonFly Project nor the names of its
17  *    contributors may be used to endorse or promote products derived
18  *    from this software without specific, prior written permission.
19  *
20  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
21  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
22  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
23  * FOR A PARTICULAR PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE
24  * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
25  * INCIDENTAL, SPECIAL, EXEMPLARY OR CONSEQUENTIAL DAMAGES (INCLUDING,
26  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
27  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
28  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
29  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT
30  * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31  * SUCH DAMAGE.
32  */
33
34 /*
35  * Copyright (c) 1982, 1986, 1988, 1990, 1993, 1994, 1995
36  *      The Regents of the University of California.  All rights reserved.
37  *
38  * Redistribution and use in source and binary forms, with or without
39  * modification, are permitted provided that the following conditions
40  * are met:
41  * 1. Redistributions of source code must retain the above copyright
42  *    notice, this list of conditions and the following disclaimer.
43  * 2. Redistributions in binary form must reproduce the above copyright
44  *    notice, this list of conditions and the following disclaimer in the
45  *    documentation and/or other materials provided with the distribution.
46  * 3. All advertising materials mentioning features or use of this software
47  *    must display the following acknowledgement:
48  *      This product includes software developed by the University of
49  *      California, Berkeley and its contributors.
50  * 4. Neither the name of the University nor the names of its contributors
51  *    may be used to endorse or promote products derived from this software
52  *    without specific prior written permission.
53  *
54  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
55  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
56  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
57  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
58  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
59  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
60  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
61  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
62  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
63  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64  * SUCH DAMAGE.
65  *
66  *      @(#)tcp_input.c 8.12 (Berkeley) 5/24/95
67  * $FreeBSD: src/sys/netinet/tcp_input.c,v 1.107.2.38 2003/05/21 04:46:41 cjc Exp $
68  */
69
70 #include "opt_inet.h"
71 #include "opt_inet6.h"
72 #include "opt_ipsec.h"
73 #include "opt_tcpdebug.h"
74 #include "opt_tcp_input.h"
75
76 #include <sys/param.h>
77 #include <sys/systm.h>
78 #include <sys/kernel.h>
79 #include <sys/sysctl.h>
80 #include <sys/malloc.h>
81 #include <sys/mbuf.h>
82 #include <sys/proc.h>           /* for proc0 declaration */
83 #include <sys/protosw.h>
84 #include <sys/socket.h>
85 #include <sys/socketvar.h>
86 #include <sys/syslog.h>
87 #include <sys/in_cksum.h>
88
89 #include <sys/socketvar2.h>
90
91 #include <machine/cpu.h>        /* before tcp_seq.h, for tcp_random18() */
92 #include <machine/stdarg.h>
93
94 #include <net/if.h>
95 #include <net/route.h>
96
97 #include <netinet/in.h>
98 #include <netinet/in_systm.h>
99 #include <netinet/ip.h>
100 #include <netinet/ip_icmp.h>    /* for ICMP_BANDLIM */
101 #include <netinet/in_var.h>
102 #include <netinet/icmp_var.h>   /* for ICMP_BANDLIM */
103 #include <netinet/in_pcb.h>
104 #include <netinet/ip_var.h>
105 #include <netinet/ip6.h>
106 #include <netinet/icmp6.h>
107 #include <netinet6/nd6.h>
108 #include <netinet6/ip6_var.h>
109 #include <netinet6/in6_pcb.h>
110 #include <netinet/tcp.h>
111 #include <netinet/tcp_fsm.h>
112 #include <netinet/tcp_seq.h>
113 #include <netinet/tcp_timer.h>
114 #include <netinet/tcp_timer2.h>
115 #include <netinet/tcp_var.h>
116 #include <netinet6/tcp6_var.h>
117 #include <netinet/tcpip.h>
118
119 #ifdef TCPDEBUG
120 #include <netinet/tcp_debug.h>
121
122 u_char tcp_saveipgen[40];    /* the size must be of max ip header, now IPv6 */
123 struct tcphdr tcp_savetcp;
124 #endif
125
126 #ifdef FAST_IPSEC
127 #include <netproto/ipsec/ipsec.h>
128 #include <netproto/ipsec/ipsec6.h>
129 #endif
130
131 #ifdef IPSEC
132 #include <netinet6/ipsec.h>
133 #include <netinet6/ipsec6.h>
134 #include <netproto/key/key.h>
135 #endif
136
137 MALLOC_DEFINE(M_TSEGQ, "tseg_qent", "TCP segment queue entry");
138
139 static int log_in_vain = 0;
140 SYSCTL_INT(_net_inet_tcp, OID_AUTO, log_in_vain, CTLFLAG_RW,
141     &log_in_vain, 0, "Log all incoming TCP connections");
142
143 static int blackhole = 0;
144 SYSCTL_INT(_net_inet_tcp, OID_AUTO, blackhole, CTLFLAG_RW,
145     &blackhole, 0, "Do not send RST when dropping refused connections");
146
147 int tcp_delack_enabled = 1;
148 SYSCTL_INT(_net_inet_tcp, OID_AUTO, delayed_ack, CTLFLAG_RW,
149     &tcp_delack_enabled, 0,
150     "Delay ACK to try and piggyback it onto a data packet");
151
152 #ifdef TCP_DROP_SYNFIN
153 static int drop_synfin = 0;
154 SYSCTL_INT(_net_inet_tcp, OID_AUTO, drop_synfin, CTLFLAG_RW,
155     &drop_synfin, 0, "Drop TCP packets with SYN+FIN set");
156 #endif
157
158 static int tcp_do_limitedtransmit = 1;
159 SYSCTL_INT(_net_inet_tcp, OID_AUTO, limitedtransmit, CTLFLAG_RW,
160     &tcp_do_limitedtransmit, 0, "Enable RFC 3042 (Limited Transmit)");
161
162 static int tcp_do_early_retransmit = 1;
163 SYSCTL_INT(_net_inet_tcp, OID_AUTO, earlyretransmit, CTLFLAG_RW,
164     &tcp_do_early_retransmit, 0, "Early retransmit");
165
166 int tcp_aggregate_acks = 1;
167 SYSCTL_INT(_net_inet_tcp, OID_AUTO, aggregate_acks, CTLFLAG_RW,
168     &tcp_aggregate_acks, 0, "Aggregate built-up acks into one ack");
169
170 static int tcp_do_eifel_detect = 1;
171 SYSCTL_INT(_net_inet_tcp, OID_AUTO, eifel, CTLFLAG_RW,
172     &tcp_do_eifel_detect, 0, "Eifel detection algorithm (RFC 3522)");
173
174 static int tcp_do_abc = 1;
175 SYSCTL_INT(_net_inet_tcp, OID_AUTO, abc, CTLFLAG_RW,
176     &tcp_do_abc, 0,
177     "TCP Appropriate Byte Counting (RFC 3465)");
178
179 /*
180  * Define as tunable for easy testing with SACK on and off.
181  * Warning:  do not change setting in the middle of an existing active TCP flow,
182  *   else strange things might happen to that flow.
183  */
184 int tcp_do_sack = 1;
185 SYSCTL_INT(_net_inet_tcp, OID_AUTO, sack, CTLFLAG_RW,
186     &tcp_do_sack, 0, "Enable SACK Algorithms");
187
188 int tcp_do_smartsack = 1;
189 SYSCTL_INT(_net_inet_tcp, OID_AUTO, smartsack, CTLFLAG_RW,
190     &tcp_do_smartsack, 0, "Enable Smart SACK Algorithms");
191
192 int tcp_do_rescuesack = 1;
193 SYSCTL_INT(_net_inet_tcp, OID_AUTO, rescuesack, CTLFLAG_RW,
194     &tcp_do_rescuesack, 0, "Rescue retransmission for SACK");
195
196 int tcp_aggressive_rescuesack = 1;
197 SYSCTL_INT(_net_inet_tcp, OID_AUTO, rescuesack_agg, CTLFLAG_RW,
198     &tcp_aggressive_rescuesack, 0, "Aggressive rescue retransmission for SACK");
199
200 SYSCTL_NODE(_net_inet_tcp, OID_AUTO, reass, CTLFLAG_RW, 0,
201     "TCP Segment Reassembly Queue");
202
203 int tcp_reass_maxseg = 0;
204 SYSCTL_INT(_net_inet_tcp_reass, OID_AUTO, maxsegments, CTLFLAG_RD,
205     &tcp_reass_maxseg, 0,
206     "Global maximum number of TCP Segments in Reassembly Queue");
207
208 int tcp_reass_qsize = 0;
209 SYSCTL_INT(_net_inet_tcp_reass, OID_AUTO, cursegments, CTLFLAG_RD,
210     &tcp_reass_qsize, 0,
211     "Global number of TCP Segments currently in Reassembly Queue");
212
213 static int tcp_reass_overflows = 0;
214 SYSCTL_INT(_net_inet_tcp_reass, OID_AUTO, overflows, CTLFLAG_RD,
215     &tcp_reass_overflows, 0,
216     "Global number of TCP Segment Reassembly Queue Overflows");
217
218 int tcp_do_autorcvbuf = 1;
219 SYSCTL_INT(_net_inet_tcp, OID_AUTO, recvbuf_auto, CTLFLAG_RW,
220     &tcp_do_autorcvbuf, 0, "Enable automatic receive buffer sizing");
221
222 int tcp_autorcvbuf_inc = 16*1024;
223 SYSCTL_INT(_net_inet_tcp, OID_AUTO, recvbuf_inc, CTLFLAG_RW,
224     &tcp_autorcvbuf_inc, 0,
225     "Incrementor step size of automatic receive buffer");
226
227 int tcp_autorcvbuf_max = 2*1024*1024;
228 SYSCTL_INT(_net_inet_tcp, OID_AUTO, recvbuf_max, CTLFLAG_RW,
229     &tcp_autorcvbuf_max, 0, "Max size of automatic receive buffer");
230
231 int tcp_sosend_agglim = 2;
232 SYSCTL_INT(_net_inet_tcp, OID_AUTO, sosend_agglim, CTLFLAG_RW,
233     &tcp_sosend_agglim, 0, "TCP sosend mbuf aggregation limit");
234
235 int tcp_sosend_async = 1;
236 SYSCTL_INT(_net_inet_tcp, OID_AUTO, sosend_async, CTLFLAG_RW,
237     &tcp_sosend_async, 0, "TCP asynchronized pru_send");
238
239 static void      tcp_dooptions(struct tcpopt *, u_char *, int, boolean_t);
240 static void      tcp_pulloutofband(struct socket *,
241                      struct tcphdr *, struct mbuf *, int);
242 static int       tcp_reass(struct tcpcb *, struct tcphdr *, int *,
243                      struct mbuf *);
244 static void      tcp_xmit_timer(struct tcpcb *, int);
245 static void      tcp_newreno_partial_ack(struct tcpcb *, struct tcphdr *, int);
246 static void      tcp_sack_rexmt(struct tcpcb *, struct tcphdr *);
247 static int       tcp_rmx_msl(const struct tcpcb *);
248 static void      tcp_established(struct tcpcb *);
249
250 /* Neighbor Discovery, Neighbor Unreachability Detection Upper layer hint. */
251 #ifdef INET6
252 #define ND6_HINT(tp) \
253 do { \
254         if ((tp) && (tp)->t_inpcb && \
255             ((tp)->t_inpcb->inp_vflag & INP_IPV6) && \
256             (tp)->t_inpcb->in6p_route.ro_rt) \
257                 nd6_nud_hint((tp)->t_inpcb->in6p_route.ro_rt, NULL, 0); \
258 } while (0)
259 #else
260 #define ND6_HINT(tp)
261 #endif
262
263 /*
264  * Indicate whether this ack should be delayed.  We can delay the ack if
265  *      - delayed acks are enabled and
266  *      - there is no delayed ack timer in progress and
267  *      - our last ack wasn't a 0-sized window.  We never want to delay
268  *        the ack that opens up a 0-sized window.
269  */
270 #define DELAY_ACK(tp) \
271         (tcp_delack_enabled && !tcp_callout_pending(tp, tp->tt_delack) && \
272         !(tp->t_flags & TF_RXWIN0SENT))
273
274 #define acceptable_window_update(tp, th, tiwin)                         \
275     (SEQ_LT(tp->snd_wl1, th->th_seq) ||                                 \
276      (tp->snd_wl1 == th->th_seq &&                                      \
277       (SEQ_LT(tp->snd_wl2, th->th_ack) ||                               \
278        (tp->snd_wl2 == th->th_ack && tiwin > tp->snd_wnd))))
279
280 static int
281 tcp_reass(struct tcpcb *tp, struct tcphdr *th, int *tlenp, struct mbuf *m)
282 {
283         struct tseg_qent *q;
284         struct tseg_qent *p = NULL;
285         struct tseg_qent *te;
286         struct socket *so = tp->t_inpcb->inp_socket;
287         int flags;
288
289         /*
290          * Call with th == NULL after become established to
291          * force pre-ESTABLISHED data up to user socket.
292          */
293         if (th == NULL)
294                 goto present;
295
296         /*
297          * Limit the number of segments in the reassembly queue to prevent
298          * holding on to too many segments (and thus running out of mbufs).
299          * Make sure to let the missing segment through which caused this
300          * queue.  Always keep one global queue entry spare to be able to
301          * process the missing segment.
302          */
303         if (th->th_seq != tp->rcv_nxt &&
304             tcp_reass_qsize + 1 >= tcp_reass_maxseg) {
305                 tcp_reass_overflows++;
306                 tcpstat.tcps_rcvmemdrop++;
307                 m_freem(m);
308                 /* no SACK block to report */
309                 tp->reportblk.rblk_start = tp->reportblk.rblk_end;
310                 return (0);
311         }
312
313         /* Allocate a new queue entry. */
314         te = kmalloc(sizeof(struct tseg_qent), M_TSEGQ, M_INTWAIT | M_NULLOK);
315         if (te == NULL) {
316                 tcpstat.tcps_rcvmemdrop++;
317                 m_freem(m);
318                 /* no SACK block to report */
319                 tp->reportblk.rblk_start = tp->reportblk.rblk_end;
320                 return (0);
321         }
322         atomic_add_int(&tcp_reass_qsize, 1);
323
324         /*
325          * Find a segment which begins after this one does.
326          */
327         LIST_FOREACH(q, &tp->t_segq, tqe_q) {
328                 if (SEQ_GT(q->tqe_th->th_seq, th->th_seq))
329                         break;
330                 p = q;
331         }
332
333         /*
334          * If there is a preceding segment, it may provide some of
335          * our data already.  If so, drop the data from the incoming
336          * segment.  If it provides all of our data, drop us.
337          */
338         if (p != NULL) {
339                 tcp_seq_diff_t i;
340
341                 /* conversion to int (in i) handles seq wraparound */
342                 i = p->tqe_th->th_seq + p->tqe_len - th->th_seq;
343                 if (i > 0) {            /* overlaps preceding segment */
344                         tp->t_flags |= (TF_DUPSEG | TF_ENCLOSESEG);
345                         /* enclosing block starts w/ preceding segment */
346                         tp->encloseblk.rblk_start = p->tqe_th->th_seq;
347                         if (i >= *tlenp) {
348                                 /* preceding encloses incoming segment */
349                                 tp->encloseblk.rblk_end = TCP_SACK_BLKEND(
350                                     p->tqe_th->th_seq + p->tqe_len,
351                                     p->tqe_th->th_flags);
352                                 tcpstat.tcps_rcvduppack++;
353                                 tcpstat.tcps_rcvdupbyte += *tlenp;
354                                 m_freem(m);
355                                 kfree(te, M_TSEGQ);
356                                 atomic_add_int(&tcp_reass_qsize, -1);
357                                 /*
358                                  * Try to present any queued data
359                                  * at the left window edge to the user.
360                                  * This is needed after the 3-WHS
361                                  * completes.
362                                  */
363                                 goto present;   /* ??? */
364                         }
365                         m_adj(m, i);
366                         *tlenp -= i;
367                         th->th_seq += i;
368                         /* incoming segment end is enclosing block end */
369                         tp->encloseblk.rblk_end = TCP_SACK_BLKEND(
370                             th->th_seq + *tlenp, th->th_flags);
371                         /* trim end of reported D-SACK block */
372                         tp->reportblk.rblk_end = th->th_seq;
373                 }
374         }
375         tcpstat.tcps_rcvoopack++;
376         tcpstat.tcps_rcvoobyte += *tlenp;
377
378         /*
379          * While we overlap succeeding segments trim them or,
380          * if they are completely covered, dequeue them.
381          */
382         while (q) {
383                 tcp_seq_diff_t i = (th->th_seq + *tlenp) - q->tqe_th->th_seq;
384                 tcp_seq qend = q->tqe_th->th_seq + q->tqe_len;
385                 tcp_seq qend_sack = TCP_SACK_BLKEND(qend, q->tqe_th->th_flags);
386                 struct tseg_qent *nq;
387
388                 if (i <= 0)
389                         break;
390                 if (!(tp->t_flags & TF_DUPSEG)) {    /* first time through */
391                         tp->t_flags |= (TF_DUPSEG | TF_ENCLOSESEG);
392                         tp->encloseblk = tp->reportblk;
393                         /* report trailing duplicate D-SACK segment */
394                         tp->reportblk.rblk_start = q->tqe_th->th_seq;
395                 }
396                 if ((tp->t_flags & TF_ENCLOSESEG) &&
397                     SEQ_GT(qend_sack, tp->encloseblk.rblk_end)) {
398                         /* extend enclosing block if one exists */
399                         tp->encloseblk.rblk_end = qend_sack;
400                 }
401                 if (i < q->tqe_len) {
402                         q->tqe_th->th_seq += i;
403                         q->tqe_len -= i;
404                         m_adj(q->tqe_m, i);
405                         break;
406                 }
407
408                 nq = LIST_NEXT(q, tqe_q);
409                 LIST_REMOVE(q, tqe_q);
410                 m_freem(q->tqe_m);
411                 kfree(q, M_TSEGQ);
412                 atomic_add_int(&tcp_reass_qsize, -1);
413                 q = nq;
414         }
415
416         /* Insert the new segment queue entry into place. */
417         te->tqe_m = m;
418         te->tqe_th = th;
419         te->tqe_len = *tlenp;
420
421         /* check if can coalesce with following segment */
422         if (q != NULL && (th->th_seq + *tlenp == q->tqe_th->th_seq)) {
423                 tcp_seq tend = te->tqe_th->th_seq + te->tqe_len;
424                 tcp_seq tend_sack = TCP_SACK_BLKEND(tend, te->tqe_th->th_flags);
425
426                 te->tqe_len += q->tqe_len;
427                 if (q->tqe_th->th_flags & TH_FIN)
428                         te->tqe_th->th_flags |= TH_FIN;
429                 m_cat(te->tqe_m, q->tqe_m);
430                 tp->encloseblk.rblk_end = tend_sack;
431                 /*
432                  * When not reporting a duplicate segment, use
433                  * the larger enclosing block as the SACK block.
434                  */
435                 if (!(tp->t_flags & TF_DUPSEG))
436                         tp->reportblk.rblk_end = tend_sack;
437                 LIST_REMOVE(q, tqe_q);
438                 kfree(q, M_TSEGQ);
439                 atomic_add_int(&tcp_reass_qsize, -1);
440         }
441
442         if (p == NULL) {
443                 LIST_INSERT_HEAD(&tp->t_segq, te, tqe_q);
444         } else {
445                 /* check if can coalesce with preceding segment */
446                 if (p->tqe_th->th_seq + p->tqe_len == th->th_seq) {
447                         p->tqe_len += te->tqe_len;
448                         m_cat(p->tqe_m, te->tqe_m);
449                         tp->encloseblk.rblk_start = p->tqe_th->th_seq;
450                         /*
451                          * When not reporting a duplicate segment, use
452                          * the larger enclosing block as the SACK block.
453                          */
454                         if (!(tp->t_flags & TF_DUPSEG))
455                                 tp->reportblk.rblk_start = p->tqe_th->th_seq;
456                         kfree(te, M_TSEGQ);
457                         atomic_add_int(&tcp_reass_qsize, -1);
458                 } else {
459                         LIST_INSERT_AFTER(p, te, tqe_q);
460                 }
461         }
462
463 present:
464         /*
465          * Present data to user, advancing rcv_nxt through
466          * completed sequence space.
467          */
468         if (!TCPS_HAVEESTABLISHED(tp->t_state))
469                 return (0);
470         q = LIST_FIRST(&tp->t_segq);
471         if (q == NULL || q->tqe_th->th_seq != tp->rcv_nxt)
472                 return (0);
473         tp->rcv_nxt += q->tqe_len;
474         if (!(tp->t_flags & TF_DUPSEG)) {
475                 /* no SACK block to report since ACK advanced */
476                 tp->reportblk.rblk_start = tp->reportblk.rblk_end;
477         }
478         /* no enclosing block to report since ACK advanced */
479         tp->t_flags &= ~TF_ENCLOSESEG;
480         flags = q->tqe_th->th_flags & TH_FIN;
481         LIST_REMOVE(q, tqe_q);
482         KASSERT(LIST_EMPTY(&tp->t_segq) ||
483                 LIST_FIRST(&tp->t_segq)->tqe_th->th_seq != tp->rcv_nxt,
484                 ("segment not coalesced"));
485         if (so->so_state & SS_CANTRCVMORE) {
486                 m_freem(q->tqe_m);
487         } else {
488                 lwkt_gettoken(&so->so_rcv.ssb_token);
489                 ssb_appendstream(&so->so_rcv, q->tqe_m);
490                 lwkt_reltoken(&so->so_rcv.ssb_token);
491         }
492         kfree(q, M_TSEGQ);
493         atomic_add_int(&tcp_reass_qsize, -1);
494         ND6_HINT(tp);
495         sorwakeup(so);
496         return (flags);
497 }
498
499 /*
500  * TCP input routine, follows pages 65-76 of the
501  * protocol specification dated September, 1981 very closely.
502  */
503 #ifdef INET6
504 int
505 tcp6_input(struct mbuf **mp, int *offp, int proto)
506 {
507         struct mbuf *m = *mp;
508         struct in6_ifaddr *ia6;
509
510         IP6_EXTHDR_CHECK(m, *offp, sizeof(struct tcphdr), IPPROTO_DONE);
511
512         /*
513          * draft-itojun-ipv6-tcp-to-anycast
514          * better place to put this in?
515          */
516         ia6 = ip6_getdstifaddr(m);
517         if (ia6 && (ia6->ia6_flags & IN6_IFF_ANYCAST)) {
518                 struct ip6_hdr *ip6;
519
520                 ip6 = mtod(m, struct ip6_hdr *);
521                 icmp6_error(m, ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_ADDR,
522                             offsetof(struct ip6_hdr, ip6_dst));
523                 return (IPPROTO_DONE);
524         }
525
526         tcp_input(mp, offp, proto);
527         return (IPPROTO_DONE);
528 }
529 #endif
530
531 int
532 tcp_input(struct mbuf **mp, int *offp, int proto)
533 {
534         int off0;
535         struct tcphdr *th;
536         struct ip *ip = NULL;
537         struct ipovly *ipov;
538         struct inpcb *inp = NULL;
539         u_char *optp = NULL;
540         int optlen = 0;
541         int tlen, off;
542         int len = 0;
543         int drop_hdrlen;
544         struct tcpcb *tp = NULL;
545         int thflags;
546         struct socket *so = NULL;
547         int todrop, acked;
548         boolean_t ourfinisacked, needoutput = FALSE;
549         u_long tiwin;
550         int recvwin;
551         struct tcpopt to;               /* options in this segment */
552         struct sockaddr_in *next_hop = NULL;
553         int rstreason; /* For badport_bandlim accounting purposes */
554         int cpu;
555         struct ip6_hdr *ip6 = NULL;
556         struct mbuf *m;
557 #ifdef INET6
558         boolean_t isipv6;
559 #else
560         const boolean_t isipv6 = FALSE;
561 #endif
562 #ifdef TCPDEBUG
563         short ostate = 0;
564 #endif
565
566         off0 = *offp;
567         m = *mp;
568         *mp = NULL;
569
570         tcpstat.tcps_rcvtotal++;
571
572         if (m->m_pkthdr.fw_flags & IPFORWARD_MBUF_TAGGED) {
573                 struct m_tag *mtag;
574
575                 mtag = m_tag_find(m, PACKET_TAG_IPFORWARD, NULL);
576                 KKASSERT(mtag != NULL);
577                 next_hop = m_tag_data(mtag);
578         }
579
580 #ifdef INET6
581         isipv6 = (mtod(m, struct ip *)->ip_v == 6) ? TRUE : FALSE;
582 #endif
583
584         if (isipv6) {
585                 /* IP6_EXTHDR_CHECK() is already done at tcp6_input() */
586                 ip6 = mtod(m, struct ip6_hdr *);
587                 tlen = (sizeof *ip6) + ntohs(ip6->ip6_plen) - off0;
588                 if (in6_cksum(m, IPPROTO_TCP, off0, tlen)) {
589                         tcpstat.tcps_rcvbadsum++;
590                         goto drop;
591                 }
592                 th = (struct tcphdr *)((caddr_t)ip6 + off0);
593
594                 /*
595                  * Be proactive about unspecified IPv6 address in source.
596                  * As we use all-zero to indicate unbounded/unconnected pcb,
597                  * unspecified IPv6 address can be used to confuse us.
598                  *
599                  * Note that packets with unspecified IPv6 destination is
600                  * already dropped in ip6_input.
601                  */
602                 if (IN6_IS_ADDR_UNSPECIFIED(&ip6->ip6_src)) {
603                         /* XXX stat */
604                         goto drop;
605                 }
606         } else {
607                 /*
608                  * Get IP and TCP header together in first mbuf.
609                  * Note: IP leaves IP header in first mbuf.
610                  */
611                 if (off0 > sizeof(struct ip)) {
612                         ip_stripoptions(m);
613                         off0 = sizeof(struct ip);
614                 }
615                 /* already checked and pulled up in ip_demux() */
616                 KASSERT(m->m_len >= sizeof(struct tcpiphdr),
617                     ("TCP header not in one mbuf: m->m_len %d", m->m_len));
618                 ip = mtod(m, struct ip *);
619                 ipov = (struct ipovly *)ip;
620                 th = (struct tcphdr *)((caddr_t)ip + off0);
621                 tlen = ip->ip_len;
622
623                 if (m->m_pkthdr.csum_flags & CSUM_DATA_VALID) {
624                         if (m->m_pkthdr.csum_flags & CSUM_PSEUDO_HDR)
625                                 th->th_sum = m->m_pkthdr.csum_data;
626                         else
627                                 th->th_sum = in_pseudo(ip->ip_src.s_addr,
628                                                 ip->ip_dst.s_addr,
629                                                 htonl(m->m_pkthdr.csum_data +
630                                                         ip->ip_len +
631                                                         IPPROTO_TCP));
632                         th->th_sum ^= 0xffff;
633                 } else {
634                         /*
635                          * Checksum extended TCP header and data.
636                          */
637                         len = sizeof(struct ip) + tlen;
638                         bzero(ipov->ih_x1, sizeof ipov->ih_x1);
639                         ipov->ih_len = (u_short)tlen;
640                         ipov->ih_len = htons(ipov->ih_len);
641                         th->th_sum = in_cksum(m, len);
642                 }
643                 if (th->th_sum) {
644                         tcpstat.tcps_rcvbadsum++;
645                         goto drop;
646                 }
647 #ifdef INET6
648                 /* Re-initialization for later version check */
649                 ip->ip_v = IPVERSION;
650 #endif
651         }
652
653         /*
654          * Check that TCP offset makes sense,
655          * pull out TCP options and adjust length.              XXX
656          */
657         off = th->th_off << 2;
658         /* already checked and pulled up in ip_demux() */
659         KASSERT(off >= sizeof(struct tcphdr) && off <= tlen,
660             ("bad TCP data offset %d (tlen %d)", off, tlen));
661         tlen -= off;    /* tlen is used instead of ti->ti_len */
662         if (off > sizeof(struct tcphdr)) {
663                 if (isipv6) {
664                         IP6_EXTHDR_CHECK(m, off0, off, IPPROTO_DONE);
665                         ip6 = mtod(m, struct ip6_hdr *);
666                         th = (struct tcphdr *)((caddr_t)ip6 + off0);
667                 } else {
668                         /* already pulled up in ip_demux() */
669                         KASSERT(m->m_len >= sizeof(struct ip) + off,
670                             ("TCP header and options not in one mbuf: "
671                              "m_len %d, off %d", m->m_len, off));
672                 }
673                 optlen = off - sizeof(struct tcphdr);
674                 optp = (u_char *)(th + 1);
675         }
676         thflags = th->th_flags;
677
678 #ifdef TCP_DROP_SYNFIN
679         /*
680          * If the drop_synfin option is enabled, drop all packets with
681          * both the SYN and FIN bits set. This prevents e.g. nmap from
682          * identifying the TCP/IP stack.
683          *
684          * This is a violation of the TCP specification.
685          */
686         if (drop_synfin && (thflags & (TH_SYN | TH_FIN)) == (TH_SYN | TH_FIN))
687                 goto drop;
688 #endif
689
690         /*
691          * Convert TCP protocol specific fields to host format.
692          */
693         th->th_seq = ntohl(th->th_seq);
694         th->th_ack = ntohl(th->th_ack);
695         th->th_win = ntohs(th->th_win);
696         th->th_urp = ntohs(th->th_urp);
697
698         /*
699          * Delay dropping TCP, IP headers, IPv6 ext headers, and TCP options,
700          * until after ip6_savecontrol() is called and before other functions
701          * which don't want those proto headers.
702          * Because ip6_savecontrol() is going to parse the mbuf to
703          * search for data to be passed up to user-land, it wants mbuf
704          * parameters to be unchanged.
705          * XXX: the call of ip6_savecontrol() has been obsoleted based on
706          * latest version of the advanced API (20020110).
707          */
708         drop_hdrlen = off0 + off;
709
710         /*
711          * Locate pcb for segment.
712          */
713 findpcb:
714         /* IPFIREWALL_FORWARD section */
715         if (next_hop != NULL && !isipv6) {  /* IPv6 support is not there yet */
716                 /*
717                  * Transparently forwarded. Pretend to be the destination.
718                  * already got one like this?
719                  */
720                 cpu = mycpu->gd_cpuid;
721                 inp = in_pcblookup_hash(&tcbinfo[cpu],
722                                         ip->ip_src, th->th_sport,
723                                         ip->ip_dst, th->th_dport,
724                                         0, m->m_pkthdr.rcvif);
725                 if (!inp) {
726                         /*
727                          * It's new.  Try to find the ambushing socket.
728                          */
729
730                         /*
731                          * The rest of the ipfw code stores the port in
732                          * host order.  XXX
733                          * (The IP address is still in network order.)
734                          */
735                         in_port_t dport = next_hop->sin_port ?
736                                                 htons(next_hop->sin_port) :
737                                                 th->th_dport;
738
739                         cpu = tcp_addrcpu(ip->ip_src.s_addr, th->th_sport,
740                                           next_hop->sin_addr.s_addr, dport);
741                         inp = in_pcblookup_hash(&tcbinfo[cpu],
742                                                 ip->ip_src, th->th_sport,
743                                                 next_hop->sin_addr, dport,
744                                                 1, m->m_pkthdr.rcvif);
745                 }
746         } else {
747                 if (isipv6) {
748                         inp = in6_pcblookup_hash(&tcbinfo[0],
749                                                  &ip6->ip6_src, th->th_sport,
750                                                  &ip6->ip6_dst, th->th_dport,
751                                                  1, m->m_pkthdr.rcvif);
752                 } else {
753                         cpu = mycpu->gd_cpuid;
754                         inp = in_pcblookup_hash(&tcbinfo[cpu],
755                                                 ip->ip_src, th->th_sport,
756                                                 ip->ip_dst, th->th_dport,
757                                                 1, m->m_pkthdr.rcvif);
758                 }
759         }
760
761         /*
762          * If the state is CLOSED (i.e., TCB does not exist) then
763          * all data in the incoming segment is discarded.
764          * If the TCB exists but is in CLOSED state, it is embryonic,
765          * but should either do a listen or a connect soon.
766          */
767         if (inp == NULL) {
768                 if (log_in_vain) {
769 #ifdef INET6
770                         char dbuf[INET6_ADDRSTRLEN+2], sbuf[INET6_ADDRSTRLEN+2];
771 #else
772                         char dbuf[sizeof "aaa.bbb.ccc.ddd"];
773                         char sbuf[sizeof "aaa.bbb.ccc.ddd"];
774 #endif
775                         if (isipv6) {
776                                 strcpy(dbuf, "[");
777                                 strcat(dbuf, ip6_sprintf(&ip6->ip6_dst));
778                                 strcat(dbuf, "]");
779                                 strcpy(sbuf, "[");
780                                 strcat(sbuf, ip6_sprintf(&ip6->ip6_src));
781                                 strcat(sbuf, "]");
782                         } else {
783                                 strcpy(dbuf, inet_ntoa(ip->ip_dst));
784                                 strcpy(sbuf, inet_ntoa(ip->ip_src));
785                         }
786                         switch (log_in_vain) {
787                         case 1:
788                                 if (!(thflags & TH_SYN))
789                                         break;
790                         case 2:
791                                 log(LOG_INFO,
792                                     "Connection attempt to TCP %s:%d "
793                                     "from %s:%d flags:0x%02x\n",
794                                     dbuf, ntohs(th->th_dport), sbuf,
795                                     ntohs(th->th_sport), thflags);
796                                 break;
797                         default:
798                                 break;
799                         }
800                 }
801                 if (blackhole) {
802                         switch (blackhole) {
803                         case 1:
804                                 if (thflags & TH_SYN)
805                                         goto drop;
806                                 break;
807                         case 2:
808                                 goto drop;
809                         default:
810                                 goto drop;
811                         }
812                 }
813                 rstreason = BANDLIM_RST_CLOSEDPORT;
814                 goto dropwithreset;
815         }
816
817 #ifdef IPSEC
818         if (isipv6) {
819                 if (ipsec6_in_reject_so(m, inp->inp_socket)) {
820                         ipsec6stat.in_polvio++;
821                         goto drop;
822                 }
823         } else {
824                 if (ipsec4_in_reject_so(m, inp->inp_socket)) {
825                         ipsecstat.in_polvio++;
826                         goto drop;
827                 }
828         }
829 #endif
830 #ifdef FAST_IPSEC
831         if (isipv6) {
832                 if (ipsec6_in_reject(m, inp))
833                         goto drop;
834         } else {
835                 if (ipsec4_in_reject(m, inp))
836                         goto drop;
837         }
838 #endif
839         /* Check the minimum TTL for socket. */
840 #ifdef INET6
841         if ((isipv6 ? ip6->ip6_hlim : ip->ip_ttl) < inp->inp_ip_minttl)
842                 goto drop;
843 #endif
844
845         tp = intotcpcb(inp);
846         if (tp == NULL) {
847                 rstreason = BANDLIM_RST_CLOSEDPORT;
848                 goto dropwithreset;
849         }
850         if (tp->t_state <= TCPS_CLOSED)
851                 goto drop;
852
853         so = inp->inp_socket;
854
855 #ifdef TCPDEBUG
856         if (so->so_options & SO_DEBUG) {
857                 ostate = tp->t_state;
858                 if (isipv6)
859                         bcopy(ip6, tcp_saveipgen, sizeof(*ip6));
860                 else
861                         bcopy(ip, tcp_saveipgen, sizeof(*ip));
862                 tcp_savetcp = *th;
863         }
864 #endif
865
866         bzero(&to, sizeof to);
867
868         if (so->so_options & SO_ACCEPTCONN) {
869                 struct in_conninfo inc;
870
871 #ifdef INET6
872                 inc.inc_isipv6 = (isipv6 == TRUE);
873 #endif
874                 if (isipv6) {
875                         inc.inc6_faddr = ip6->ip6_src;
876                         inc.inc6_laddr = ip6->ip6_dst;
877                         inc.inc6_route.ro_rt = NULL;            /* XXX */
878                 } else {
879                         inc.inc_faddr = ip->ip_src;
880                         inc.inc_laddr = ip->ip_dst;
881                         inc.inc_route.ro_rt = NULL;             /* XXX */
882                 }
883                 inc.inc_fport = th->th_sport;
884                 inc.inc_lport = th->th_dport;
885
886                 /*
887                  * If the state is LISTEN then ignore segment if it contains
888                  * a RST.  If the segment contains an ACK then it is bad and
889                  * send a RST.  If it does not contain a SYN then it is not
890                  * interesting; drop it.
891                  *
892                  * If the state is SYN_RECEIVED (syncache) and seg contains
893                  * an ACK, but not for our SYN/ACK, send a RST.  If the seg
894                  * contains a RST, check the sequence number to see if it
895                  * is a valid reset segment.
896                  */
897                 if ((thflags & (TH_RST | TH_ACK | TH_SYN)) != TH_SYN) {
898                         if ((thflags & (TH_RST | TH_ACK | TH_SYN)) == TH_ACK) {
899                                 if (!syncache_expand(&inc, th, &so, m)) {
900                                         /*
901                                          * No syncache entry, or ACK was not
902                                          * for our SYN/ACK.  Send a RST.
903                                          */
904                                         tcpstat.tcps_badsyn++;
905                                         rstreason = BANDLIM_RST_OPENPORT;
906                                         goto dropwithreset;
907                                 }
908
909                                 /*
910                                  * Could not complete 3-way handshake,
911                                  * connection is being closed down, and
912                                  * syncache will free mbuf.
913                                  */
914                                 if (so == NULL)
915                                         return(IPPROTO_DONE);
916
917                                 /*
918                                  * We must be in the correct protocol thread
919                                  * for this connection.
920                                  */
921                                 KKASSERT(so->so_port == &curthread->td_msgport);
922
923                                 /*
924                                  * Socket is created in state SYN_RECEIVED.
925                                  * Continue processing segment.
926                                  */
927                                 inp = so->so_pcb;
928                                 tp = intotcpcb(inp);
929                                 /*
930                                  * This is what would have happened in
931                                  * tcp_output() when the SYN,ACK was sent.
932                                  */
933                                 tp->snd_up = tp->snd_una;
934                                 tp->snd_max = tp->snd_nxt = tp->iss + 1;
935                                 tp->last_ack_sent = tp->rcv_nxt;
936
937                                 goto after_listen;
938                         }
939                         if (thflags & TH_RST) {
940                                 syncache_chkrst(&inc, th);
941                                 goto drop;
942                         }
943                         if (thflags & TH_ACK) {
944                                 syncache_badack(&inc);
945                                 tcpstat.tcps_badsyn++;
946                                 rstreason = BANDLIM_RST_OPENPORT;
947                                 goto dropwithreset;
948                         }
949                         goto drop;
950                 }
951
952                 /*
953                  * Segment's flags are (SYN) or (SYN | FIN).
954                  */
955 #ifdef INET6
956                 /*
957                  * If deprecated address is forbidden,
958                  * we do not accept SYN to deprecated interface
959                  * address to prevent any new inbound connection from
960                  * getting established.
961                  * When we do not accept SYN, we send a TCP RST,
962                  * with deprecated source address (instead of dropping
963                  * it).  We compromise it as it is much better for peer
964                  * to send a RST, and RST will be the final packet
965                  * for the exchange.
966                  *
967                  * If we do not forbid deprecated addresses, we accept
968                  * the SYN packet.  RFC2462 does not suggest dropping
969                  * SYN in this case.
970                  * If we decipher RFC2462 5.5.4, it says like this:
971                  * 1. use of deprecated addr with existing
972                  *    communication is okay - "SHOULD continue to be
973                  *    used"
974                  * 2. use of it with new communication:
975                  *   (2a) "SHOULD NOT be used if alternate address
976                  *        with sufficient scope is available"
977                  *   (2b) nothing mentioned otherwise.
978                  * Here we fall into (2b) case as we have no choice in
979                  * our source address selection - we must obey the peer.
980                  *
981                  * The wording in RFC2462 is confusing, and there are
982                  * multiple description text for deprecated address
983                  * handling - worse, they are not exactly the same.
984                  * I believe 5.5.4 is the best one, so we follow 5.5.4.
985                  */
986                 if (isipv6 && !ip6_use_deprecated) {
987                         struct in6_ifaddr *ia6;
988
989                         if ((ia6 = ip6_getdstifaddr(m)) &&
990                             (ia6->ia6_flags & IN6_IFF_DEPRECATED)) {
991                                 tp = NULL;
992                                 rstreason = BANDLIM_RST_OPENPORT;
993                                 goto dropwithreset;
994                         }
995                 }
996 #endif
997                 /*
998                  * If it is from this socket, drop it, it must be forged.
999                  * Don't bother responding if the destination was a broadcast.
1000                  */
1001                 if (th->th_dport == th->th_sport) {
1002                         if (isipv6) {
1003                                 if (IN6_ARE_ADDR_EQUAL(&ip6->ip6_dst,
1004                                                        &ip6->ip6_src))
1005                                         goto drop;
1006                         } else {
1007                                 if (ip->ip_dst.s_addr == ip->ip_src.s_addr)
1008                                         goto drop;
1009                         }
1010                 }
1011                 /*
1012                  * RFC1122 4.2.3.10, p. 104: discard bcast/mcast SYN
1013                  *
1014                  * Note that it is quite possible to receive unicast
1015                  * link-layer packets with a broadcast IP address. Use
1016                  * in_broadcast() to find them.
1017                  */
1018                 if (m->m_flags & (M_BCAST | M_MCAST))
1019                         goto drop;
1020                 if (isipv6) {
1021                         if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst) ||
1022                             IN6_IS_ADDR_MULTICAST(&ip6->ip6_src))
1023                                 goto drop;
1024                 } else {
1025                         if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr)) ||
1026                             IN_MULTICAST(ntohl(ip->ip_src.s_addr)) ||
1027                             ip->ip_src.s_addr == htonl(INADDR_BROADCAST) ||
1028                             in_broadcast(ip->ip_dst, m->m_pkthdr.rcvif))
1029                                 goto drop;
1030                 }
1031                 /*
1032                  * SYN appears to be valid; create compressed TCP state
1033                  * for syncache, or perform t/tcp connection.
1034                  */
1035                 if (so->so_qlen <= so->so_qlimit) {
1036                         tcp_dooptions(&to, optp, optlen, TRUE);
1037                         if (!syncache_add(&inc, &to, th, so, m))
1038                                 goto drop;
1039
1040                         /*
1041                          * Entry added to syncache, mbuf used to
1042                          * send SYN,ACK packet.
1043                          */
1044                         return(IPPROTO_DONE);
1045                 }
1046                 goto drop;
1047         }
1048
1049 after_listen:
1050         /*
1051          * Should not happen - syncache should pick up these connections.
1052          *
1053          * Once we are past handling listen sockets we must be in the
1054          * correct protocol processing thread.
1055          */
1056         KASSERT(tp->t_state != TCPS_LISTEN, ("tcp_input: TCPS_LISTEN state"));
1057         KKASSERT(so->so_port == &curthread->td_msgport);
1058
1059         /* Unscale the window into a 32-bit value. */
1060         if (!(thflags & TH_SYN))
1061                 tiwin = th->th_win << tp->snd_scale;
1062         else
1063                 tiwin = th->th_win;
1064
1065         /*
1066          * This is the second part of the MSS DoS prevention code (after
1067          * minmss on the sending side) and it deals with too many too small
1068          * tcp packets in a too short timeframe (1 second).
1069          *
1070          * XXX Removed.  This code was crap.  It does not scale to network
1071          *     speed, and default values break NFS.  Gone.
1072          */
1073         /* REMOVED */
1074
1075         /*
1076          * Segment received on connection.
1077          *
1078          * Reset idle time and keep-alive timer.  Don't waste time if less
1079          * then a second has elapsed.
1080          */
1081         if ((int)(ticks - tp->t_rcvtime) > hz)
1082                 tcp_timer_keep_activity(tp, thflags);
1083
1084         /*
1085          * Process options.
1086          * XXX this is tradtitional behavior, may need to be cleaned up.
1087          */
1088         tcp_dooptions(&to, optp, optlen, (thflags & TH_SYN) != 0);
1089         if (tp->t_state == TCPS_SYN_SENT && (thflags & TH_SYN)) {
1090                 if ((to.to_flags & TOF_SCALE) && (tp->t_flags & TF_REQ_SCALE)) {
1091                         tp->t_flags |= TF_RCVD_SCALE;
1092                         tp->snd_scale = to.to_requested_s_scale;
1093                 }
1094
1095                 /*
1096                  * Initial send window; will be updated upon next ACK
1097                  */
1098                 tp->snd_wnd = th->th_win;
1099
1100                 if (to.to_flags & TOF_TS) {
1101                         tp->t_flags |= TF_RCVD_TSTMP;
1102                         tp->ts_recent = to.to_tsval;
1103                         tp->ts_recent_age = ticks;
1104                 }
1105                 if (!(to.to_flags & TOF_MSS))
1106                         to.to_mss = 0;
1107                 tcp_mss(tp, to.to_mss);
1108                 /*
1109                  * Only set the TF_SACK_PERMITTED per-connection flag
1110                  * if we got a SACK_PERMITTED option from the other side
1111                  * and the global tcp_do_sack variable is true.
1112                  */
1113                 if (tcp_do_sack && (to.to_flags & TOF_SACK_PERMITTED))
1114                         tp->t_flags |= TF_SACK_PERMITTED;
1115         }
1116
1117         /*
1118          * Header prediction: check for the two common cases
1119          * of a uni-directional data xfer.  If the packet has
1120          * no control flags, is in-sequence, the window didn't
1121          * change and we're not retransmitting, it's a
1122          * candidate.  If the length is zero and the ack moved
1123          * forward, we're the sender side of the xfer.  Just
1124          * free the data acked & wake any higher level process
1125          * that was blocked waiting for space.  If the length
1126          * is non-zero and the ack didn't move, we're the
1127          * receiver side.  If we're getting packets in-order
1128          * (the reassembly queue is empty), add the data to
1129          * the socket buffer and note that we need a delayed ack.
1130          * Make sure that the hidden state-flags are also off.
1131          * Since we check for TCPS_ESTABLISHED above, it can only
1132          * be TH_NEEDSYN.
1133          */
1134         if (tp->t_state == TCPS_ESTABLISHED &&
1135             (thflags & (TH_SYN|TH_FIN|TH_RST|TH_URG|TH_ACK)) == TH_ACK &&
1136             !(tp->t_flags & (TF_NEEDSYN | TF_NEEDFIN)) &&
1137             (!(to.to_flags & TOF_TS) ||
1138              TSTMP_GEQ(to.to_tsval, tp->ts_recent)) &&
1139             th->th_seq == tp->rcv_nxt &&
1140             tp->snd_nxt == tp->snd_max) {
1141
1142                 /*
1143                  * If last ACK falls within this segment's sequence numbers,
1144                  * record the timestamp.
1145                  * NOTE that the test is modified according to the latest
1146                  * proposal of the tcplw@cray.com list (Braden 1993/04/26).
1147                  */
1148                 if ((to.to_flags & TOF_TS) &&
1149                     SEQ_LEQ(th->th_seq, tp->last_ack_sent)) {
1150                         tp->ts_recent_age = ticks;
1151                         tp->ts_recent = to.to_tsval;
1152                 }
1153
1154                 if (tlen == 0) {
1155                         if (SEQ_GT(th->th_ack, tp->snd_una) &&
1156                             SEQ_LEQ(th->th_ack, tp->snd_max) &&
1157                             tp->snd_cwnd >= tp->snd_wnd &&
1158                             !IN_FASTRECOVERY(tp)) {
1159                                 /*
1160                                  * This is a pure ack for outstanding data.
1161                                  */
1162                                 ++tcpstat.tcps_predack;
1163                                 /*
1164                                  * "bad retransmit" recovery
1165                                  *
1166                                  * If Eifel detection applies, then
1167                                  * it is deterministic, so use it
1168                                  * unconditionally over the old heuristic.
1169                                  * Otherwise, fall back to the old heuristic.
1170                                  */
1171                                 if (tcp_do_eifel_detect &&
1172                                     (to.to_flags & TOF_TS) && to.to_tsecr &&
1173                                     (tp->t_flags & TF_FIRSTACCACK)) {
1174                                         /* Eifel detection applicable. */
1175                                         if (to.to_tsecr < tp->t_rexmtTS) {
1176                                                 tcp_revert_congestion_state(tp);
1177                                                 ++tcpstat.tcps_eifeldetected;
1178                                                 if (tp->t_rxtshift != 1 ||
1179                                                     ticks >= tp->t_badrxtwin)
1180                                                         ++tcpstat.tcps_rttcantdetect;
1181                                         }
1182                                 } else if (tp->t_rxtshift == 1 &&
1183                                            ticks < tp->t_badrxtwin) {
1184                                         tcp_revert_congestion_state(tp);
1185                                         ++tcpstat.tcps_rttdetected;
1186                                 }
1187                                 tp->t_flags &= ~(TF_FIRSTACCACK |
1188                                                  TF_FASTREXMT | TF_EARLYREXMT);
1189                                 /*
1190                                  * Recalculate the retransmit timer / rtt.
1191                                  *
1192                                  * Some machines (certain windows boxes)
1193                                  * send broken timestamp replies during the
1194                                  * SYN+ACK phase, ignore timestamps of 0.
1195                                  */
1196                                 if ((to.to_flags & TOF_TS) && to.to_tsecr) {
1197                                         tcp_xmit_timer(tp,
1198                                                        ticks - to.to_tsecr + 1);
1199                                 } else if (tp->t_rtttime &&
1200                                            SEQ_GT(th->th_ack, tp->t_rtseq)) {
1201                                         tcp_xmit_timer(tp,
1202                                                        ticks - tp->t_rtttime);
1203                                 }
1204                                 tcp_xmit_bandwidth_limit(tp, th->th_ack);
1205                                 acked = th->th_ack - tp->snd_una;
1206                                 tcpstat.tcps_rcvackpack++;
1207                                 tcpstat.tcps_rcvackbyte += acked;
1208                                 sbdrop(&so->so_snd.sb, acked);
1209                                 tp->snd_recover = th->th_ack - 1;
1210                                 tp->snd_una = th->th_ack;
1211                                 tp->t_dupacks = 0;
1212                                 /*
1213                                  * Update window information.
1214                                  */
1215                                 if (tiwin != tp->snd_wnd &&
1216                                     acceptable_window_update(tp, th, tiwin)) {
1217                                         /* keep track of pure window updates */
1218                                         if (tp->snd_wl2 == th->th_ack &&
1219                                             tiwin > tp->snd_wnd)
1220                                                 tcpstat.tcps_rcvwinupd++;
1221                                         tp->snd_wnd = tiwin;
1222                                         tp->snd_wl1 = th->th_seq;
1223                                         tp->snd_wl2 = th->th_ack;
1224                                         if (tp->snd_wnd > tp->max_sndwnd)
1225                                                 tp->max_sndwnd = tp->snd_wnd;
1226                                 }
1227                                 m_freem(m);
1228                                 ND6_HINT(tp); /* some progress has been done */
1229                                 /*
1230                                  * If all outstanding data are acked, stop
1231                                  * retransmit timer, otherwise restart timer
1232                                  * using current (possibly backed-off) value.
1233                                  * If process is waiting for space,
1234                                  * wakeup/selwakeup/signal.  If data
1235                                  * are ready to send, let tcp_output
1236                                  * decide between more output or persist.
1237                                  */
1238                                 if (tp->snd_una == tp->snd_max) {
1239                                         tcp_callout_stop(tp, tp->tt_rexmt);
1240                                 } else if (!tcp_callout_active(tp,
1241                                             tp->tt_persist)) {
1242                                         tcp_callout_reset(tp, tp->tt_rexmt,
1243                                             tp->t_rxtcur, tcp_timer_rexmt);
1244                                 }
1245                                 sowwakeup(so);
1246                                 if (so->so_snd.ssb_cc > 0)
1247                                         tcp_output(tp);
1248                                 return(IPPROTO_DONE);
1249                         }
1250                 } else if (tiwin == tp->snd_wnd &&
1251                     th->th_ack == tp->snd_una &&
1252                     LIST_EMPTY(&tp->t_segq) &&
1253                     tlen <= ssb_space(&so->so_rcv)) {
1254                         u_long newsize = 0;     /* automatic sockbuf scaling */
1255                         /*
1256                          * This is a pure, in-sequence data packet
1257                          * with nothing on the reassembly queue and
1258                          * we have enough buffer space to take it.
1259                          */
1260                         ++tcpstat.tcps_preddat;
1261                         tp->rcv_nxt += tlen;
1262                         tcpstat.tcps_rcvpack++;
1263                         tcpstat.tcps_rcvbyte += tlen;
1264                         ND6_HINT(tp);   /* some progress has been done */
1265                 /*
1266                  * Automatic sizing of receive socket buffer.  Often the send
1267                  * buffer size is not optimally adjusted to the actual network
1268                  * conditions at hand (delay bandwidth product).  Setting the
1269                  * buffer size too small limits throughput on links with high
1270                  * bandwidth and high delay (eg. trans-continental/oceanic links).
1271                  *
1272                  * On the receive side the socket buffer memory is only rarely
1273                  * used to any significant extent.  This allows us to be much
1274                  * more aggressive in scaling the receive socket buffer.  For
1275                  * the case that the buffer space is actually used to a large
1276                  * extent and we run out of kernel memory we can simply drop
1277                  * the new segments; TCP on the sender will just retransmit it
1278                  * later.  Setting the buffer size too big may only consume too
1279                  * much kernel memory if the application doesn't read() from
1280                  * the socket or packet loss or reordering makes use of the
1281                  * reassembly queue.
1282                  *
1283                  * The criteria to step up the receive buffer one notch are:
1284                  *  1. the number of bytes received during the time it takes
1285                  *     one timestamp to be reflected back to us (the RTT);
1286                  *  2. received bytes per RTT is within seven eighth of the
1287                  *     current socket buffer size;
1288                  *  3. receive buffer size has not hit maximal automatic size;
1289                  *
1290                  * This algorithm does one step per RTT at most and only if
1291                  * we receive a bulk stream w/o packet losses or reorderings.
1292                  * Shrinking the buffer during idle times is not necessary as
1293                  * it doesn't consume any memory when idle.
1294                  *
1295                  * TODO: Only step up if the application is actually serving
1296                  * the buffer to better manage the socket buffer resources.
1297                  */
1298                         if (tcp_do_autorcvbuf &&
1299                             to.to_tsecr &&
1300                             (so->so_rcv.ssb_flags & SSB_AUTOSIZE)) {
1301                                 if (to.to_tsecr > tp->rfbuf_ts &&
1302                                     to.to_tsecr - tp->rfbuf_ts < hz) {
1303                                         if (tp->rfbuf_cnt >
1304                                             (so->so_rcv.ssb_hiwat / 8 * 7) &&
1305                                             so->so_rcv.ssb_hiwat <
1306                                             tcp_autorcvbuf_max) {
1307                                                 newsize =
1308                                                     ulmin(so->so_rcv.ssb_hiwat +
1309                                                           tcp_autorcvbuf_inc,
1310                                                           tcp_autorcvbuf_max);
1311                                         }
1312                                         /* Start over with next RTT. */
1313                                         tp->rfbuf_ts = 0;
1314                                         tp->rfbuf_cnt = 0;
1315                                 } else
1316                                         tp->rfbuf_cnt += tlen;  /* add up */
1317                         }
1318                         /*
1319                          * Add data to socket buffer.
1320                          */
1321                         if (so->so_state & SS_CANTRCVMORE) {
1322                                 m_freem(m);
1323                         } else {
1324                                 /*
1325                                  * Set new socket buffer size, give up when
1326                                  * limit is reached.
1327                                  *
1328                                  * Adjusting the size can mess up ACK
1329                                  * sequencing when pure window updates are
1330                                  * being avoided (which is the default),
1331                                  * so force an ack.
1332                                  */
1333                                 lwkt_gettoken(&so->so_rcv.ssb_token);
1334                                 if (newsize) {
1335                                         tp->t_flags |= TF_RXRESIZED;
1336                                         if (!ssb_reserve(&so->so_rcv, newsize,
1337                                                          so, NULL)) {
1338                                                 atomic_clear_int(&so->so_rcv.ssb_flags, SSB_AUTOSIZE);
1339                                         }
1340                                         if (newsize >=
1341                                             (TCP_MAXWIN << tp->rcv_scale)) {
1342                                                 atomic_clear_int(&so->so_rcv.ssb_flags, SSB_AUTOSIZE);
1343                                         }
1344                                 }
1345                                 m_adj(m, drop_hdrlen); /* delayed header drop */
1346                                 ssb_appendstream(&so->so_rcv, m);
1347                                 lwkt_reltoken(&so->so_rcv.ssb_token);
1348                         }
1349                         sorwakeup(so);
1350                         /*
1351                          * This code is responsible for most of the ACKs
1352                          * the TCP stack sends back after receiving a data
1353                          * packet.  Note that the DELAY_ACK check fails if
1354                          * the delack timer is already running, which results
1355                          * in an ack being sent every other packet (which is
1356                          * what we want).
1357                          *
1358                          * We then further aggregate acks by not actually
1359                          * sending one until the protocol thread has completed
1360                          * processing the current backlog of packets.  This
1361                          * does not delay the ack any further, but allows us
1362                          * to take advantage of the packet aggregation that
1363                          * high speed NICs do (usually blocks of 8-10 packets)
1364                          * to send a single ack rather then four or five acks,
1365                          * greatly reducing the ack rate, the return channel
1366                          * bandwidth, and the protocol overhead on both ends.
1367                          *
1368                          * Since this also has the effect of slowing down
1369                          * the exponential slow-start ramp-up, systems with 
1370                          * very large bandwidth-delay products might want
1371                          * to turn the feature off.
1372                          */
1373                         if (DELAY_ACK(tp)) {
1374                                 tcp_callout_reset(tp, tp->tt_delack,
1375                                     tcp_delacktime, tcp_timer_delack);
1376                         } else if (tcp_aggregate_acks) {
1377                                 tp->t_flags |= TF_ACKNOW;
1378                                 if (!(tp->t_flags & TF_ONOUTPUTQ)) {
1379                                         tp->t_flags |= TF_ONOUTPUTQ;
1380                                         tp->tt_cpu = mycpu->gd_cpuid;
1381                                         TAILQ_INSERT_TAIL(
1382                                             &tcpcbackq[tp->tt_cpu],
1383                                             tp, t_outputq);
1384                                 }
1385                         } else {
1386                                 tp->t_flags |= TF_ACKNOW;
1387                                 tcp_output(tp);
1388                         }
1389                         return(IPPROTO_DONE);
1390                 }
1391         }
1392
1393         /*
1394          * Calculate amount of space in receive window,
1395          * and then do TCP input processing.
1396          * Receive window is amount of space in rcv queue,
1397          * but not less than advertised window.
1398          */
1399         recvwin = ssb_space(&so->so_rcv);
1400         if (recvwin < 0)
1401                 recvwin = 0;
1402         tp->rcv_wnd = imax(recvwin, (int)(tp->rcv_adv - tp->rcv_nxt));
1403
1404         /* Reset receive buffer auto scaling when not in bulk receive mode. */
1405         tp->rfbuf_ts = 0;
1406         tp->rfbuf_cnt = 0;
1407
1408         switch (tp->t_state) {
1409         /*
1410          * If the state is SYN_RECEIVED:
1411          *      if seg contains an ACK, but not for our SYN/ACK, send a RST.
1412          */
1413         case TCPS_SYN_RECEIVED:
1414                 if ((thflags & TH_ACK) &&
1415                     (SEQ_LEQ(th->th_ack, tp->snd_una) ||
1416                      SEQ_GT(th->th_ack, tp->snd_max))) {
1417                                 rstreason = BANDLIM_RST_OPENPORT;
1418                                 goto dropwithreset;
1419                 }
1420                 break;
1421
1422         /*
1423          * If the state is SYN_SENT:
1424          *      if seg contains an ACK, but not for our SYN, drop the input.
1425          *      if seg contains a RST, then drop the connection.
1426          *      if seg does not contain SYN, then drop it.
1427          * Otherwise this is an acceptable SYN segment
1428          *      initialize tp->rcv_nxt and tp->irs
1429          *      if seg contains ack then advance tp->snd_una
1430          *      if SYN has been acked change to ESTABLISHED else SYN_RCVD state
1431          *      arrange for segment to be acked (eventually)
1432          *      continue processing rest of data/controls, beginning with URG
1433          */
1434         case TCPS_SYN_SENT:
1435                 if ((thflags & TH_ACK) &&
1436                     (SEQ_LEQ(th->th_ack, tp->iss) ||
1437                      SEQ_GT(th->th_ack, tp->snd_max))) {
1438                         rstreason = BANDLIM_UNLIMITED;
1439                         goto dropwithreset;
1440                 }
1441                 if (thflags & TH_RST) {
1442                         if (thflags & TH_ACK)
1443                                 tp = tcp_drop(tp, ECONNREFUSED);
1444                         goto drop;
1445                 }
1446                 if (!(thflags & TH_SYN))
1447                         goto drop;
1448
1449                 tp->irs = th->th_seq;
1450                 tcp_rcvseqinit(tp);
1451                 if (thflags & TH_ACK) {
1452                         /* Our SYN was acked. */
1453                         tcpstat.tcps_connects++;
1454                         soisconnected(so);
1455                         /* Do window scaling on this connection? */
1456                         if ((tp->t_flags & (TF_RCVD_SCALE | TF_REQ_SCALE)) ==
1457                             (TF_RCVD_SCALE | TF_REQ_SCALE))
1458                                 tp->rcv_scale = tp->request_r_scale;
1459                         tp->rcv_adv += tp->rcv_wnd;
1460                         tp->snd_una++;          /* SYN is acked */
1461                         tcp_callout_stop(tp, tp->tt_rexmt);
1462                         /*
1463                          * If there's data, delay ACK; if there's also a FIN
1464                          * ACKNOW will be turned on later.
1465                          */
1466                         if (DELAY_ACK(tp) && tlen != 0) {
1467                                 tcp_callout_reset(tp, tp->tt_delack,
1468                                     tcp_delacktime, tcp_timer_delack);
1469                         } else {
1470                                 tp->t_flags |= TF_ACKNOW;
1471                         }
1472                         /*
1473                          * Received <SYN,ACK> in SYN_SENT[*] state.
1474                          * Transitions:
1475                          *      SYN_SENT  --> ESTABLISHED
1476                          *      SYN_SENT* --> FIN_WAIT_1
1477                          */
1478                         tp->t_starttime = ticks;
1479                         if (tp->t_flags & TF_NEEDFIN) {
1480                                 tp->t_state = TCPS_FIN_WAIT_1;
1481                                 tp->t_flags &= ~TF_NEEDFIN;
1482                                 thflags &= ~TH_SYN;
1483                         } else {
1484                                 tcp_established(tp);
1485                         }
1486                 } else {
1487                         /*
1488                          * Received initial SYN in SYN-SENT[*] state =>
1489                          * simultaneous open.
1490                          * Do 3-way handshake:
1491                          *        SYN-SENT -> SYN-RECEIVED
1492                          *        SYN-SENT* -> SYN-RECEIVED*
1493                          */
1494                         tp->t_flags |= TF_ACKNOW;
1495                         tcp_callout_stop(tp, tp->tt_rexmt);
1496                         tp->t_state = TCPS_SYN_RECEIVED;
1497                 }
1498
1499                 /*
1500                  * Advance th->th_seq to correspond to first data byte.
1501                  * If data, trim to stay within window,
1502                  * dropping FIN if necessary.
1503                  */
1504                 th->th_seq++;
1505                 if (tlen > tp->rcv_wnd) {
1506                         todrop = tlen - tp->rcv_wnd;
1507                         m_adj(m, -todrop);
1508                         tlen = tp->rcv_wnd;
1509                         thflags &= ~TH_FIN;
1510                         tcpstat.tcps_rcvpackafterwin++;
1511                         tcpstat.tcps_rcvbyteafterwin += todrop;
1512                 }
1513                 tp->snd_wl1 = th->th_seq - 1;
1514                 tp->rcv_up = th->th_seq;
1515                 /*
1516                  * Client side of transaction: already sent SYN and data.
1517                  * If the remote host used T/TCP to validate the SYN,
1518                  * our data will be ACK'd; if so, enter normal data segment
1519                  * processing in the middle of step 5, ack processing.
1520                  * Otherwise, goto step 6.
1521                  */
1522                 if (thflags & TH_ACK)
1523                         goto process_ACK;
1524
1525                 goto step6;
1526
1527         /*
1528          * If the state is LAST_ACK or CLOSING or TIME_WAIT:
1529          *      do normal processing (we no longer bother with T/TCP).
1530          */
1531         case TCPS_LAST_ACK:
1532         case TCPS_CLOSING:
1533         case TCPS_TIME_WAIT:
1534                 break;  /* continue normal processing */
1535         }
1536
1537         /*
1538          * States other than LISTEN or SYN_SENT.
1539          * First check the RST flag and sequence number since reset segments
1540          * are exempt from the timestamp and connection count tests.  This
1541          * fixes a bug introduced by the Stevens, vol. 2, p. 960 bugfix
1542          * below which allowed reset segments in half the sequence space
1543          * to fall though and be processed (which gives forged reset
1544          * segments with a random sequence number a 50 percent chance of
1545          * killing a connection).
1546          * Then check timestamp, if present.
1547          * Then check the connection count, if present.
1548          * Then check that at least some bytes of segment are within
1549          * receive window.  If segment begins before rcv_nxt,
1550          * drop leading data (and SYN); if nothing left, just ack.
1551          *
1552          *
1553          * If the RST bit is set, check the sequence number to see
1554          * if this is a valid reset segment.
1555          * RFC 793 page 37:
1556          *   In all states except SYN-SENT, all reset (RST) segments
1557          *   are validated by checking their SEQ-fields.  A reset is
1558          *   valid if its sequence number is in the window.
1559          * Note: this does not take into account delayed ACKs, so
1560          *   we should test against last_ack_sent instead of rcv_nxt.
1561          *   The sequence number in the reset segment is normally an
1562          *   echo of our outgoing acknowledgement numbers, but some hosts
1563          *   send a reset with the sequence number at the rightmost edge
1564          *   of our receive window, and we have to handle this case.
1565          * If we have multiple segments in flight, the intial reset
1566          * segment sequence numbers will be to the left of last_ack_sent,
1567          * but they will eventually catch up.
1568          * In any case, it never made sense to trim reset segments to
1569          * fit the receive window since RFC 1122 says:
1570          *   4.2.2.12  RST Segment: RFC-793 Section 3.4
1571          *
1572          *    A TCP SHOULD allow a received RST segment to include data.
1573          *
1574          *    DISCUSSION
1575          *         It has been suggested that a RST segment could contain
1576          *         ASCII text that encoded and explained the cause of the
1577          *         RST.  No standard has yet been established for such
1578          *         data.
1579          *
1580          * If the reset segment passes the sequence number test examine
1581          * the state:
1582          *    SYN_RECEIVED STATE:
1583          *      If passive open, return to LISTEN state.
1584          *      If active open, inform user that connection was refused.
1585          *    ESTABLISHED, FIN_WAIT_1, FIN_WAIT_2, CLOSE_WAIT STATES:
1586          *      Inform user that connection was reset, and close tcb.
1587          *    CLOSING, LAST_ACK STATES:
1588          *      Close the tcb.
1589          *    TIME_WAIT STATE:
1590          *      Drop the segment - see Stevens, vol. 2, p. 964 and
1591          *      RFC 1337.
1592          */
1593         if (thflags & TH_RST) {
1594                 if (SEQ_GEQ(th->th_seq, tp->last_ack_sent) &&
1595                     SEQ_LEQ(th->th_seq, tp->last_ack_sent + tp->rcv_wnd)) {
1596                         switch (tp->t_state) {
1597
1598                         case TCPS_SYN_RECEIVED:
1599                                 so->so_error = ECONNREFUSED;
1600                                 goto close;
1601
1602                         case TCPS_ESTABLISHED:
1603                         case TCPS_FIN_WAIT_1:
1604                         case TCPS_FIN_WAIT_2:
1605                         case TCPS_CLOSE_WAIT:
1606                                 so->so_error = ECONNRESET;
1607                         close:
1608                                 tp->t_state = TCPS_CLOSED;
1609                                 tcpstat.tcps_drops++;
1610                                 tp = tcp_close(tp);
1611                                 break;
1612
1613                         case TCPS_CLOSING:
1614                         case TCPS_LAST_ACK:
1615                                 tp = tcp_close(tp);
1616                                 break;
1617
1618                         case TCPS_TIME_WAIT:
1619                                 break;
1620                         }
1621                 }
1622                 goto drop;
1623         }
1624
1625         /*
1626          * RFC 1323 PAWS: If we have a timestamp reply on this segment
1627          * and it's less than ts_recent, drop it.
1628          */
1629         if ((to.to_flags & TOF_TS) && tp->ts_recent != 0 &&
1630             TSTMP_LT(to.to_tsval, tp->ts_recent)) {
1631
1632                 /* Check to see if ts_recent is over 24 days old.  */
1633                 if ((int)(ticks - tp->ts_recent_age) > TCP_PAWS_IDLE) {
1634                         /*
1635                          * Invalidate ts_recent.  If this segment updates
1636                          * ts_recent, the age will be reset later and ts_recent
1637                          * will get a valid value.  If it does not, setting
1638                          * ts_recent to zero will at least satisfy the
1639                          * requirement that zero be placed in the timestamp
1640                          * echo reply when ts_recent isn't valid.  The
1641                          * age isn't reset until we get a valid ts_recent
1642                          * because we don't want out-of-order segments to be
1643                          * dropped when ts_recent is old.
1644                          */
1645                         tp->ts_recent = 0;
1646                 } else {
1647                         tcpstat.tcps_rcvduppack++;
1648                         tcpstat.tcps_rcvdupbyte += tlen;
1649                         tcpstat.tcps_pawsdrop++;
1650                         if (tlen)
1651                                 goto dropafterack;
1652                         goto drop;
1653                 }
1654         }
1655
1656         /*
1657          * In the SYN-RECEIVED state, validate that the packet belongs to
1658          * this connection before trimming the data to fit the receive
1659          * window.  Check the sequence number versus IRS since we know
1660          * the sequence numbers haven't wrapped.  This is a partial fix
1661          * for the "LAND" DoS attack.
1662          */
1663         if (tp->t_state == TCPS_SYN_RECEIVED && SEQ_LT(th->th_seq, tp->irs)) {
1664                 rstreason = BANDLIM_RST_OPENPORT;
1665                 goto dropwithreset;
1666         }
1667
1668         todrop = tp->rcv_nxt - th->th_seq;
1669         if (todrop > 0) {
1670                 if (TCP_DO_SACK(tp)) {
1671                         /* Report duplicate segment at head of packet. */
1672                         tp->reportblk.rblk_start = th->th_seq;
1673                         tp->reportblk.rblk_end = TCP_SACK_BLKEND(
1674                             th->th_seq + tlen, thflags);
1675                         if (SEQ_GT(tp->reportblk.rblk_end, tp->rcv_nxt))
1676                                 tp->reportblk.rblk_end = tp->rcv_nxt;
1677                         tp->t_flags |= (TF_DUPSEG | TF_SACKLEFT | TF_ACKNOW);
1678                 }
1679                 if (thflags & TH_SYN) {
1680                         thflags &= ~TH_SYN;
1681                         th->th_seq++;
1682                         if (th->th_urp > 1)
1683                                 th->th_urp--;
1684                         else
1685                                 thflags &= ~TH_URG;
1686                         todrop--;
1687                 }
1688                 /*
1689                  * Following if statement from Stevens, vol. 2, p. 960.
1690                  */
1691                 if (todrop > tlen ||
1692                     (todrop == tlen && !(thflags & TH_FIN))) {
1693                         /*
1694                          * Any valid FIN must be to the left of the window.
1695                          * At this point the FIN must be a duplicate or out
1696                          * of sequence; drop it.
1697                          */
1698                         thflags &= ~TH_FIN;
1699
1700                         /*
1701                          * Send an ACK to resynchronize and drop any data.
1702                          * But keep on processing for RST or ACK.
1703                          */
1704                         tp->t_flags |= TF_ACKNOW;
1705                         todrop = tlen;
1706                         tcpstat.tcps_rcvduppack++;
1707                         tcpstat.tcps_rcvdupbyte += todrop;
1708                 } else {
1709                         tcpstat.tcps_rcvpartduppack++;
1710                         tcpstat.tcps_rcvpartdupbyte += todrop;
1711                 }
1712                 drop_hdrlen += todrop;  /* drop from the top afterwards */
1713                 th->th_seq += todrop;
1714                 tlen -= todrop;
1715                 if (th->th_urp > todrop)
1716                         th->th_urp -= todrop;
1717                 else {
1718                         thflags &= ~TH_URG;
1719                         th->th_urp = 0;
1720                 }
1721         }
1722
1723         /*
1724          * If new data are received on a connection after the
1725          * user processes are gone, then RST the other end.
1726          */
1727         if ((so->so_state & SS_NOFDREF) &&
1728             tp->t_state > TCPS_CLOSE_WAIT && tlen) {
1729                 tp = tcp_close(tp);
1730                 tcpstat.tcps_rcvafterclose++;
1731                 rstreason = BANDLIM_UNLIMITED;
1732                 goto dropwithreset;
1733         }
1734
1735         /*
1736          * If segment ends after window, drop trailing data
1737          * (and PUSH and FIN); if nothing left, just ACK.
1738          */
1739         todrop = (th->th_seq + tlen) - (tp->rcv_nxt + tp->rcv_wnd);
1740         if (todrop > 0) {
1741                 tcpstat.tcps_rcvpackafterwin++;
1742                 if (todrop >= tlen) {
1743                         tcpstat.tcps_rcvbyteafterwin += tlen;
1744                         /*
1745                          * If a new connection request is received
1746                          * while in TIME_WAIT, drop the old connection
1747                          * and start over if the sequence numbers
1748                          * are above the previous ones.
1749                          */
1750                         if (thflags & TH_SYN &&
1751                             tp->t_state == TCPS_TIME_WAIT &&
1752                             SEQ_GT(th->th_seq, tp->rcv_nxt)) {
1753                                 tp = tcp_close(tp);
1754                                 goto findpcb;
1755                         }
1756                         /*
1757                          * If window is closed can only take segments at
1758                          * window edge, and have to drop data and PUSH from
1759                          * incoming segments.  Continue processing, but
1760                          * remember to ack.  Otherwise, drop segment
1761                          * and ack.
1762                          */
1763                         if (tp->rcv_wnd == 0 && th->th_seq == tp->rcv_nxt) {
1764                                 tp->t_flags |= TF_ACKNOW;
1765                                 tcpstat.tcps_rcvwinprobe++;
1766                         } else
1767                                 goto dropafterack;
1768                 } else
1769                         tcpstat.tcps_rcvbyteafterwin += todrop;
1770                 m_adj(m, -todrop);
1771                 tlen -= todrop;
1772                 thflags &= ~(TH_PUSH | TH_FIN);
1773         }
1774
1775         /*
1776          * If last ACK falls within this segment's sequence numbers,
1777          * record its timestamp.
1778          * NOTE:
1779          * 1) That the test incorporates suggestions from the latest
1780          *    proposal of the tcplw@cray.com list (Braden 1993/04/26).
1781          * 2) That updating only on newer timestamps interferes with
1782          *    our earlier PAWS tests, so this check should be solely
1783          *    predicated on the sequence space of this segment.
1784          * 3) That we modify the segment boundary check to be
1785          *        Last.ACK.Sent <= SEG.SEQ + SEG.LEN
1786          *    instead of RFC1323's
1787          *        Last.ACK.Sent < SEG.SEQ + SEG.LEN,
1788          *    This modified check allows us to overcome RFC1323's
1789          *    limitations as described in Stevens TCP/IP Illustrated
1790          *    Vol. 2 p.869. In such cases, we can still calculate the
1791          *    RTT correctly when RCV.NXT == Last.ACK.Sent.
1792          */
1793         if ((to.to_flags & TOF_TS) && SEQ_LEQ(th->th_seq, tp->last_ack_sent) &&
1794             SEQ_LEQ(tp->last_ack_sent, (th->th_seq + tlen
1795                                         + ((thflags & TH_SYN) != 0)
1796                                         + ((thflags & TH_FIN) != 0)))) {
1797                 tp->ts_recent_age = ticks;
1798                 tp->ts_recent = to.to_tsval;
1799         }
1800
1801         /*
1802          * If a SYN is in the window, then this is an
1803          * error and we send an RST and drop the connection.
1804          */
1805         if (thflags & TH_SYN) {
1806                 tp = tcp_drop(tp, ECONNRESET);
1807                 rstreason = BANDLIM_UNLIMITED;
1808                 goto dropwithreset;
1809         }
1810
1811         /*
1812          * If the ACK bit is off:  if in SYN-RECEIVED state or SENDSYN
1813          * flag is on (half-synchronized state), then queue data for
1814          * later processing; else drop segment and return.
1815          */
1816         if (!(thflags & TH_ACK)) {
1817                 if (tp->t_state == TCPS_SYN_RECEIVED ||
1818                     (tp->t_flags & TF_NEEDSYN))
1819                         goto step6;
1820                 else
1821                         goto drop;
1822         }
1823
1824         /*
1825          * Ack processing.
1826          */
1827         switch (tp->t_state) {
1828         /*
1829          * In SYN_RECEIVED state, the ACK acknowledges our SYN, so enter
1830          * ESTABLISHED state and continue processing.
1831          * The ACK was checked above.
1832          */
1833         case TCPS_SYN_RECEIVED:
1834
1835                 tcpstat.tcps_connects++;
1836                 soisconnected(so);
1837                 /* Do window scaling? */
1838                 if ((tp->t_flags & (TF_RCVD_SCALE | TF_REQ_SCALE)) ==
1839                     (TF_RCVD_SCALE | TF_REQ_SCALE))
1840                         tp->rcv_scale = tp->request_r_scale;
1841                 /*
1842                  * Make transitions:
1843                  *      SYN-RECEIVED  -> ESTABLISHED
1844                  *      SYN-RECEIVED* -> FIN-WAIT-1
1845                  */
1846                 tp->t_starttime = ticks;
1847                 if (tp->t_flags & TF_NEEDFIN) {
1848                         tp->t_state = TCPS_FIN_WAIT_1;
1849                         tp->t_flags &= ~TF_NEEDFIN;
1850                 } else {
1851                         tcp_established(tp);
1852                 }
1853                 /*
1854                  * If segment contains data or ACK, will call tcp_reass()
1855                  * later; if not, do so now to pass queued data to user.
1856                  */
1857                 if (tlen == 0 && !(thflags & TH_FIN))
1858                         tcp_reass(tp, NULL, NULL, NULL);
1859                 /* fall into ... */
1860
1861         /*
1862          * In ESTABLISHED state: drop duplicate ACKs; ACK out of range
1863          * ACKs.  If the ack is in the range
1864          *      tp->snd_una < th->th_ack <= tp->snd_max
1865          * then advance tp->snd_una to th->th_ack and drop
1866          * data from the retransmission queue.  If this ACK reflects
1867          * more up to date window information we update our window information.
1868          */
1869         case TCPS_ESTABLISHED:
1870         case TCPS_FIN_WAIT_1:
1871         case TCPS_FIN_WAIT_2:
1872         case TCPS_CLOSE_WAIT:
1873         case TCPS_CLOSING:
1874         case TCPS_LAST_ACK:
1875         case TCPS_TIME_WAIT:
1876
1877                 if (SEQ_LEQ(th->th_ack, tp->snd_una)) {
1878                         if (TCP_DO_SACK(tp))
1879                                 tcp_sack_update_scoreboard(tp, &to);
1880                         if (tlen != 0 || tiwin != tp->snd_wnd) {
1881                                 tp->t_dupacks = 0;
1882                                 break;
1883                         }
1884                         tcpstat.tcps_rcvdupack++;
1885                         if (!tcp_callout_active(tp, tp->tt_rexmt) ||
1886                             th->th_ack != tp->snd_una) {
1887                                 tp->t_dupacks = 0;
1888                                 break;
1889                         }
1890                         /*
1891                          * We have outstanding data (other than
1892                          * a window probe), this is a completely
1893                          * duplicate ack (ie, window info didn't
1894                          * change), the ack is the biggest we've
1895                          * seen and we've seen exactly our rexmt
1896                          * threshhold of them, so assume a packet
1897                          * has been dropped and retransmit it.
1898                          * Kludge snd_nxt & the congestion
1899                          * window so we send only this one
1900                          * packet.
1901                          */
1902                         if (IN_FASTRECOVERY(tp)) {
1903                                 if (TCP_DO_SACK(tp)) {
1904                                         /* No artifical cwnd inflation. */
1905                                         tcp_sack_rexmt(tp, th);
1906                                 } else {
1907                                         /*
1908                                          * Dup acks mean that packets
1909                                          * have left the network
1910                                          * (they're now cached at the
1911                                          * receiver) so bump cwnd by
1912                                          * the amount in the receiver
1913                                          * to keep a constant cwnd
1914                                          * packets in the network.
1915                                          */
1916                                         tp->snd_cwnd += tp->t_maxseg;
1917                                         tcp_output(tp);
1918                                 }
1919                         } else if (SEQ_LT(th->th_ack, tp->snd_recover)) {
1920                                 tp->t_dupacks = 0;
1921                                 break;
1922                         } else if (++tp->t_dupacks == tcprexmtthresh) {
1923                                 tcp_seq old_snd_nxt;
1924                                 u_int win;
1925
1926 fastretransmit:
1927                                 if (tcp_do_eifel_detect &&
1928                                     (tp->t_flags & TF_RCVD_TSTMP)) {
1929                                         tcp_save_congestion_state(tp);
1930                                         tp->t_flags |= TF_FASTREXMT;
1931                                 }
1932                                 /*
1933                                  * We know we're losing at the current
1934                                  * window size, so do congestion avoidance:
1935                                  * set ssthresh to half the current window
1936                                  * and pull our congestion window back to the
1937                                  * new ssthresh.
1938                                  */
1939                                 win = min(tp->snd_wnd, tp->snd_cwnd) / 2 /
1940                                     tp->t_maxseg;
1941                                 if (win < 2)
1942                                         win = 2;
1943                                 tp->snd_ssthresh = win * tp->t_maxseg;
1944                                 ENTER_FASTRECOVERY(tp);
1945                                 tp->snd_recover = tp->snd_max;
1946                                 tcp_callout_stop(tp, tp->tt_rexmt);
1947                                 tp->t_rtttime = 0;
1948                                 old_snd_nxt = tp->snd_nxt;
1949                                 tp->snd_nxt = th->th_ack;
1950                                 tp->snd_cwnd = tp->t_maxseg;
1951                                 tcp_output(tp);
1952                                 ++tcpstat.tcps_sndfastrexmit;
1953                                 tp->snd_cwnd = tp->snd_ssthresh;
1954                                 tp->rexmt_high = tp->snd_nxt;
1955                                 tp->t_flags &= ~TF_SACKRESCUED;
1956                                 if (SEQ_GT(old_snd_nxt, tp->snd_nxt))
1957                                         tp->snd_nxt = old_snd_nxt;
1958                                 KASSERT(tp->snd_limited <= 2,
1959                                     ("tp->snd_limited too big"));
1960                                 if (TCP_DO_SACK(tp))
1961                                         tcp_sack_rexmt(tp, th);
1962                                 else
1963                                         tp->snd_cwnd += tp->t_maxseg *
1964                                             (tp->t_dupacks - tp->snd_limited);
1965                         } else if (tcp_do_limitedtransmit) {
1966                                 u_long oldcwnd = tp->snd_cwnd;
1967                                 tcp_seq oldsndmax = tp->snd_max;
1968                                 tcp_seq oldsndnxt = tp->snd_nxt;
1969                                 /* outstanding data */
1970                                 uint32_t ownd = tp->snd_max - tp->snd_una;
1971                                 u_int sent;
1972
1973 #define iceildiv(n, d)          (((n)+(d)-1) / (d))
1974
1975                                 KASSERT(tp->t_dupacks == 1 ||
1976                                         tp->t_dupacks == 2,
1977                                     ("dupacks not 1 or 2"));
1978                                 if (tp->t_dupacks == 1)
1979                                         tp->snd_limited = 0;
1980                                 tp->snd_nxt = tp->snd_max;
1981                                 tp->snd_cwnd = ownd +
1982                                     (tp->t_dupacks - tp->snd_limited) *
1983                                     tp->t_maxseg;
1984                                 tcp_output(tp);
1985
1986                                 if (SEQ_LT(oldsndnxt, oldsndmax)) {
1987                                         KASSERT(SEQ_GEQ(oldsndnxt, tp->snd_una),
1988                                             ("snd_una moved in other threads"));
1989                                         tp->snd_nxt = oldsndnxt;
1990                                 }
1991                                 tp->snd_cwnd = oldcwnd;
1992                                 sent = tp->snd_max - oldsndmax;
1993                                 if (sent > tp->t_maxseg) {
1994                                         KASSERT((tp->t_dupacks == 2 &&
1995                                                  tp->snd_limited == 0) ||
1996                                                 (sent == tp->t_maxseg + 1 &&
1997                                                  tp->t_flags & TF_SENTFIN),
1998                                             ("sent too much"));
1999                                         KASSERT(sent <= tp->t_maxseg * 2,
2000                                             ("sent too many segments"));
2001                                         tp->snd_limited = 2;
2002                                         tcpstat.tcps_sndlimited += 2;
2003                                 } else if (sent > 0) {
2004                                         ++tp->snd_limited;
2005                                         ++tcpstat.tcps_sndlimited;
2006                                 } else if (tcp_do_early_retransmit &&
2007                                     (tcp_do_eifel_detect &&
2008                                      (tp->t_flags & TF_RCVD_TSTMP)) &&
2009                                     ownd < 4 * tp->t_maxseg &&
2010                                     tp->t_dupacks + 1 >=
2011                                       iceildiv(ownd, tp->t_maxseg) &&
2012                                     (!TCP_DO_SACK(tp) ||
2013                                      ownd <= tp->t_maxseg ||
2014                                      tcp_sack_has_sacked(&tp->scb,
2015                                                         ownd - tp->t_maxseg))) {
2016                                         ++tcpstat.tcps_sndearlyrexmit;
2017                                         tp->t_flags |= TF_EARLYREXMT;
2018                                         goto fastretransmit;
2019                                 }
2020                         }
2021                         goto drop;
2022                 }
2023
2024                 KASSERT(SEQ_GT(th->th_ack, tp->snd_una), ("th_ack <= snd_una"));
2025                 tp->t_dupacks = 0;
2026                 if (SEQ_GT(th->th_ack, tp->snd_max)) {
2027                         /*
2028                          * Detected optimistic ACK attack.
2029                          * Force slow-start to de-synchronize attack.
2030                          */
2031                         tp->snd_cwnd = tp->t_maxseg;
2032                         tp->snd_wacked = 0;
2033
2034                         tcpstat.tcps_rcvacktoomuch++;
2035                         goto dropafterack;
2036                 }
2037                 /*
2038                  * If we reach this point, ACK is not a duplicate,
2039                  *     i.e., it ACKs something we sent.
2040                  */
2041                 if (tp->t_flags & TF_NEEDSYN) {
2042                         /*
2043                          * T/TCP: Connection was half-synchronized, and our
2044                          * SYN has been ACK'd (so connection is now fully
2045                          * synchronized).  Go to non-starred state,
2046                          * increment snd_una for ACK of SYN, and check if
2047                          * we can do window scaling.
2048                          */
2049                         tp->t_flags &= ~TF_NEEDSYN;
2050                         tp->snd_una++;
2051                         /* Do window scaling? */
2052                         if ((tp->t_flags & (TF_RCVD_SCALE | TF_REQ_SCALE)) ==
2053                             (TF_RCVD_SCALE | TF_REQ_SCALE))
2054                                 tp->rcv_scale = tp->request_r_scale;
2055                 }
2056
2057 process_ACK:
2058                 acked = th->th_ack - tp->snd_una;
2059                 tcpstat.tcps_rcvackpack++;
2060                 tcpstat.tcps_rcvackbyte += acked;
2061
2062                 if (tcp_do_eifel_detect && acked > 0 &&
2063                     (to.to_flags & TOF_TS) && (to.to_tsecr != 0) &&
2064                     (tp->t_flags & TF_FIRSTACCACK)) {
2065                         /* Eifel detection applicable. */
2066                         if (to.to_tsecr < tp->t_rexmtTS) {
2067                                 ++tcpstat.tcps_eifeldetected;
2068                                 tcp_revert_congestion_state(tp);
2069                                 if (tp->t_rxtshift != 1 ||
2070                                     ticks >= tp->t_badrxtwin)
2071                                         ++tcpstat.tcps_rttcantdetect;
2072                         }
2073                 } else if (tp->t_rxtshift == 1 && ticks < tp->t_badrxtwin) {
2074                         /*
2075                          * If we just performed our first retransmit,
2076                          * and the ACK arrives within our recovery window,
2077                          * then it was a mistake to do the retransmit
2078                          * in the first place.  Recover our original cwnd
2079                          * and ssthresh, and proceed to transmit where we
2080                          * left off.
2081                          */
2082                         tcp_revert_congestion_state(tp);
2083                         ++tcpstat.tcps_rttdetected;
2084                 }
2085
2086                 /*
2087                  * If we have a timestamp reply, update smoothed
2088                  * round trip time.  If no timestamp is present but
2089                  * transmit timer is running and timed sequence
2090                  * number was acked, update smoothed round trip time.
2091                  * Since we now have an rtt measurement, cancel the
2092                  * timer backoff (cf., Phil Karn's retransmit alg.).
2093                  * Recompute the initial retransmit timer.
2094                  *
2095                  * Some machines (certain windows boxes) send broken
2096                  * timestamp replies during the SYN+ACK phase, ignore
2097                  * timestamps of 0.
2098                  */
2099                 if ((to.to_flags & TOF_TS) && (to.to_tsecr != 0))
2100                         tcp_xmit_timer(tp, ticks - to.to_tsecr + 1);
2101                 else if (tp->t_rtttime && SEQ_GT(th->th_ack, tp->t_rtseq))
2102                         tcp_xmit_timer(tp, ticks - tp->t_rtttime);
2103                 tcp_xmit_bandwidth_limit(tp, th->th_ack);
2104
2105                 /*
2106                  * If no data (only SYN) was ACK'd,
2107                  *    skip rest of ACK processing.
2108                  */
2109                 if (acked == 0)
2110                         goto step6;
2111
2112                 /* Stop looking for an acceptable ACK since one was received. */
2113                 tp->t_flags &= ~(TF_FIRSTACCACK | TF_FASTREXMT | TF_EARLYREXMT);
2114
2115                 if (acked > so->so_snd.ssb_cc) {
2116                         tp->snd_wnd -= so->so_snd.ssb_cc;
2117                         sbdrop(&so->so_snd.sb, (int)so->so_snd.ssb_cc);
2118                         ourfinisacked = TRUE;
2119                 } else {
2120                         sbdrop(&so->so_snd.sb, acked);
2121                         tp->snd_wnd -= acked;
2122                         ourfinisacked = FALSE;
2123                 }
2124                 sowwakeup(so);
2125
2126                 /*
2127                  * Update window information.
2128                  */
2129                 if (acceptable_window_update(tp, th, tiwin)) {
2130                         /* keep track of pure window updates */
2131                         if (tlen == 0 && tp->snd_wl2 == th->th_ack &&
2132                             tiwin > tp->snd_wnd)
2133                                 tcpstat.tcps_rcvwinupd++;
2134                         tp->snd_wnd = tiwin;
2135                         tp->snd_wl1 = th->th_seq;
2136                         tp->snd_wl2 = th->th_ack;
2137                         if (tp->snd_wnd > tp->max_sndwnd)
2138                                 tp->max_sndwnd = tp->snd_wnd;
2139                         needoutput = TRUE;
2140                 }
2141
2142                 tp->snd_una = th->th_ack;
2143                 if (TCP_DO_SACK(tp))
2144                         tcp_sack_update_scoreboard(tp, &to);
2145                 if (IN_FASTRECOVERY(tp)) {
2146                         if (SEQ_GEQ(th->th_ack, tp->snd_recover)) {
2147                                 EXIT_FASTRECOVERY(tp);
2148                                 needoutput = TRUE;
2149                                 /*
2150                                  * If the congestion window was inflated
2151                                  * to account for the other side's
2152                                  * cached packets, retract it.
2153                                  */
2154                                 if (!TCP_DO_SACK(tp))
2155                                         tp->snd_cwnd = tp->snd_ssthresh;
2156
2157                                 /*
2158                                  * Window inflation should have left us
2159                                  * with approximately snd_ssthresh outstanding
2160                                  * data.  But, in case we would be inclined
2161                                  * to send a burst, better do it using
2162                                  * slow start.
2163                                  */
2164                                 if (SEQ_GT(th->th_ack + tp->snd_cwnd,
2165                                            tp->snd_max + 2 * tp->t_maxseg))
2166                                         tp->snd_cwnd =
2167                                             (tp->snd_max - tp->snd_una) +
2168                                             2 * tp->t_maxseg;
2169
2170                                 tp->snd_wacked = 0;
2171                         } else {
2172                                 if (TCP_DO_SACK(tp)) {
2173                                         tp->snd_max_rexmt = tp->snd_max;
2174                                         tcp_sack_rexmt(tp, th);
2175                                 } else {
2176                                         tcp_newreno_partial_ack(tp, th, acked);
2177                                 }
2178                                 needoutput = FALSE;
2179                         }
2180                 } else {
2181                         /*
2182                          * Open the congestion window.  When in slow-start,
2183                          * open exponentially: maxseg per packet.  Otherwise,
2184                          * open linearly: maxseg per window.
2185                          */
2186                         if (tp->snd_cwnd <= tp->snd_ssthresh) {
2187                                 u_int abc_sslimit =
2188                                     (SEQ_LT(tp->snd_nxt, tp->snd_max) ?
2189                                      tp->t_maxseg : 2 * tp->t_maxseg);
2190
2191                                 /* slow-start */
2192                                 tp->snd_cwnd += tcp_do_abc ?
2193                                     min(acked, abc_sslimit) : tp->t_maxseg;
2194                         } else {
2195                                 /* linear increase */
2196                                 tp->snd_wacked += tcp_do_abc ? acked :
2197                                     tp->t_maxseg;
2198                                 if (tp->snd_wacked >= tp->snd_cwnd) {
2199                                         tp->snd_wacked -= tp->snd_cwnd;
2200                                         tp->snd_cwnd += tp->t_maxseg;
2201                                 }
2202                         }
2203                         tp->snd_cwnd = min(tp->snd_cwnd,
2204                                            TCP_MAXWIN << tp->snd_scale);
2205                         tp->snd_recover = th->th_ack - 1;
2206                 }
2207                 if (SEQ_LT(tp->snd_nxt, tp->snd_una))
2208                         tp->snd_nxt = tp->snd_una;
2209
2210                 /*
2211                  * If all outstanding data is acked, stop retransmit
2212                  * timer and remember to restart (more output or persist).
2213                  * If there is more data to be acked, restart retransmit
2214                  * timer, using current (possibly backed-off) value.
2215                  */
2216                 if (th->th_ack == tp->snd_max) {
2217                         tcp_callout_stop(tp, tp->tt_rexmt);
2218                         needoutput = TRUE;
2219                 } else if (!tcp_callout_active(tp, tp->tt_persist)) {
2220                         tcp_callout_reset(tp, tp->tt_rexmt, tp->t_rxtcur,
2221                             tcp_timer_rexmt);
2222                 }
2223
2224                 switch (tp->t_state) {
2225                 /*
2226                  * In FIN_WAIT_1 STATE in addition to the processing
2227                  * for the ESTABLISHED state if our FIN is now acknowledged
2228                  * then enter FIN_WAIT_2.
2229                  */
2230                 case TCPS_FIN_WAIT_1:
2231                         if (ourfinisacked) {
2232                                 /*
2233                                  * If we can't receive any more
2234                                  * data, then closing user can proceed.
2235                                  * Starting the timer is contrary to the
2236                                  * specification, but if we don't get a FIN
2237                                  * we'll hang forever.
2238                                  */
2239                                 if (so->so_state & SS_CANTRCVMORE) {
2240                                         soisdisconnected(so);
2241                                         tcp_callout_reset(tp, tp->tt_2msl,
2242                                             tp->t_maxidle, tcp_timer_2msl);
2243                                 }
2244                                 tp->t_state = TCPS_FIN_WAIT_2;
2245                         }
2246                         break;
2247
2248                 /*
2249                  * In CLOSING STATE in addition to the processing for
2250                  * the ESTABLISHED state if the ACK acknowledges our FIN
2251                  * then enter the TIME-WAIT state, otherwise ignore
2252                  * the segment.
2253                  */
2254                 case TCPS_CLOSING:
2255                         if (ourfinisacked) {
2256                                 tp->t_state = TCPS_TIME_WAIT;
2257                                 tcp_canceltimers(tp);
2258                                 tcp_callout_reset(tp, tp->tt_2msl,
2259                                             2 * tcp_rmx_msl(tp),
2260                                             tcp_timer_2msl);
2261                                 soisdisconnected(so);
2262                         }
2263                         break;
2264
2265                 /*
2266                  * In LAST_ACK, we may still be waiting for data to drain
2267                  * and/or to be acked, as well as for the ack of our FIN.
2268                  * If our FIN is now acknowledged, delete the TCB,
2269                  * enter the closed state and return.
2270                  */
2271                 case TCPS_LAST_ACK:
2272                         if (ourfinisacked) {
2273                                 tp = tcp_close(tp);
2274                                 goto drop;
2275                         }
2276                         break;
2277
2278                 /*
2279                  * In TIME_WAIT state the only thing that should arrive
2280                  * is a retransmission of the remote FIN.  Acknowledge
2281                  * it and restart the finack timer.
2282                  */
2283                 case TCPS_TIME_WAIT:
2284                         tcp_callout_reset(tp, tp->tt_2msl, 2 * tcp_rmx_msl(tp),
2285                             tcp_timer_2msl);
2286                         goto dropafterack;
2287                 }
2288         }
2289
2290 step6:
2291         /*
2292          * Update window information.
2293          * Don't look at window if no ACK: TAC's send garbage on first SYN.
2294          */
2295         if ((thflags & TH_ACK) &&
2296             acceptable_window_update(tp, th, tiwin)) {
2297                 /* keep track of pure window updates */
2298                 if (tlen == 0 && tp->snd_wl2 == th->th_ack &&
2299                     tiwin > tp->snd_wnd)
2300                         tcpstat.tcps_rcvwinupd++;
2301                 tp->snd_wnd = tiwin;
2302                 tp->snd_wl1 = th->th_seq;
2303                 tp->snd_wl2 = th->th_ack;
2304                 if (tp->snd_wnd > tp->max_sndwnd)
2305                         tp->max_sndwnd = tp->snd_wnd;
2306                 needoutput = TRUE;
2307         }
2308
2309         /*
2310          * Process segments with URG.
2311          */
2312         if ((thflags & TH_URG) && th->th_urp &&
2313             !TCPS_HAVERCVDFIN(tp->t_state)) {
2314                 /*
2315                  * This is a kludge, but if we receive and accept
2316                  * random urgent pointers, we'll crash in
2317                  * soreceive.  It's hard to imagine someone
2318                  * actually wanting to send this much urgent data.
2319                  */
2320                 if (th->th_urp + so->so_rcv.ssb_cc > sb_max) {
2321                         th->th_urp = 0;                 /* XXX */
2322                         thflags &= ~TH_URG;             /* XXX */
2323                         goto dodata;                    /* XXX */
2324                 }
2325                 /*
2326                  * If this segment advances the known urgent pointer,
2327                  * then mark the data stream.  This should not happen
2328                  * in CLOSE_WAIT, CLOSING, LAST_ACK or TIME_WAIT STATES since
2329                  * a FIN has been received from the remote side.
2330                  * In these states we ignore the URG.
2331                  *
2332                  * According to RFC961 (Assigned Protocols),
2333                  * the urgent pointer points to the last octet
2334                  * of urgent data.  We continue, however,
2335                  * to consider it to indicate the first octet
2336                  * of data past the urgent section as the original
2337                  * spec states (in one of two places).
2338                  */
2339                 if (SEQ_GT(th->th_seq + th->th_urp, tp->rcv_up)) {
2340                         tp->rcv_up = th->th_seq + th->th_urp;
2341                         so->so_oobmark = so->so_rcv.ssb_cc +
2342                             (tp->rcv_up - tp->rcv_nxt) - 1;
2343                         if (so->so_oobmark == 0)
2344                                 sosetstate(so, SS_RCVATMARK);
2345                         sohasoutofband(so);
2346                         tp->t_oobflags &= ~(TCPOOB_HAVEDATA | TCPOOB_HADDATA);
2347                 }
2348                 /*
2349                  * Remove out of band data so doesn't get presented to user.
2350                  * This can happen independent of advancing the URG pointer,
2351                  * but if two URG's are pending at once, some out-of-band
2352                  * data may creep in... ick.
2353                  */
2354                 if (th->th_urp <= (u_long)tlen &&
2355                     !(so->so_options & SO_OOBINLINE)) {
2356                         /* hdr drop is delayed */
2357                         tcp_pulloutofband(so, th, m, drop_hdrlen);
2358                 }
2359         } else {
2360                 /*
2361                  * If no out of band data is expected,
2362                  * pull receive urgent pointer along
2363                  * with the receive window.
2364                  */
2365                 if (SEQ_GT(tp->rcv_nxt, tp->rcv_up))
2366                         tp->rcv_up = tp->rcv_nxt;
2367         }
2368
2369 dodata:                                                 /* XXX */
2370         /*
2371          * Process the segment text, merging it into the TCP sequencing queue,
2372          * and arranging for acknowledgment of receipt if necessary.
2373          * This process logically involves adjusting tp->rcv_wnd as data
2374          * is presented to the user (this happens in tcp_usrreq.c,
2375          * case PRU_RCVD).  If a FIN has already been received on this
2376          * connection then we just ignore the text.
2377          */
2378         if ((tlen || (thflags & TH_FIN)) && !TCPS_HAVERCVDFIN(tp->t_state)) {
2379                 m_adj(m, drop_hdrlen);  /* delayed header drop */
2380                 /*
2381                  * Insert segment which includes th into TCP reassembly queue
2382                  * with control block tp.  Set thflags to whether reassembly now
2383                  * includes a segment with FIN.  This handles the common case
2384                  * inline (segment is the next to be received on an established
2385                  * connection, and the queue is empty), avoiding linkage into
2386                  * and removal from the queue and repetition of various
2387                  * conversions.
2388                  * Set DELACK for segments received in order, but ack
2389                  * immediately when segments are out of order (so
2390                  * fast retransmit can work).
2391                  */
2392                 if (th->th_seq == tp->rcv_nxt &&
2393                     LIST_EMPTY(&tp->t_segq) &&
2394                     TCPS_HAVEESTABLISHED(tp->t_state)) {
2395                         if (DELAY_ACK(tp)) {
2396                                 tcp_callout_reset(tp, tp->tt_delack,
2397                                     tcp_delacktime, tcp_timer_delack);
2398                         } else {
2399                                 tp->t_flags |= TF_ACKNOW;
2400                         }
2401                         tp->rcv_nxt += tlen;
2402                         thflags = th->th_flags & TH_FIN;
2403                         tcpstat.tcps_rcvpack++;
2404                         tcpstat.tcps_rcvbyte += tlen;
2405                         ND6_HINT(tp);
2406                         if (so->so_state & SS_CANTRCVMORE) {
2407                                 m_freem(m);
2408                         } else {
2409                                 lwkt_gettoken(&so->so_rcv.ssb_token);
2410                                 ssb_appendstream(&so->so_rcv, m);
2411                                 lwkt_reltoken(&so->so_rcv.ssb_token);
2412                         }
2413                         sorwakeup(so);
2414                 } else {
2415                         if (!(tp->t_flags & TF_DUPSEG)) {
2416                                 /* Initialize SACK report block. */
2417                                 tp->reportblk.rblk_start = th->th_seq;
2418                                 tp->reportblk.rblk_end = TCP_SACK_BLKEND(
2419                                     th->th_seq + tlen, thflags);
2420                         }
2421                         thflags = tcp_reass(tp, th, &tlen, m);
2422                         tp->t_flags |= TF_ACKNOW;
2423                 }
2424
2425                 /*
2426                  * Note the amount of data that peer has sent into
2427                  * our window, in order to estimate the sender's
2428                  * buffer size.
2429                  */
2430                 len = so->so_rcv.ssb_hiwat - (tp->rcv_adv - tp->rcv_nxt);
2431         } else {
2432                 m_freem(m);
2433                 thflags &= ~TH_FIN;
2434         }
2435
2436         /*
2437          * If FIN is received ACK the FIN and let the user know
2438          * that the connection is closing.
2439          */
2440         if (thflags & TH_FIN) {
2441                 if (!TCPS_HAVERCVDFIN(tp->t_state)) {
2442                         socantrcvmore(so);
2443                         /*
2444                          * If connection is half-synchronized
2445                          * (ie NEEDSYN flag on) then delay ACK,
2446                          * so it may be piggybacked when SYN is sent.
2447                          * Otherwise, since we received a FIN then no
2448                          * more input can be expected, send ACK now.
2449                          */
2450                         if (DELAY_ACK(tp) && (tp->t_flags & TF_NEEDSYN)) {
2451                                 tcp_callout_reset(tp, tp->tt_delack,
2452                                     tcp_delacktime, tcp_timer_delack);
2453                         } else {
2454                                 tp->t_flags |= TF_ACKNOW;
2455                         }
2456                         tp->rcv_nxt++;
2457                 }
2458
2459                 switch (tp->t_state) {
2460                 /*
2461                  * In SYN_RECEIVED and ESTABLISHED STATES
2462                  * enter the CLOSE_WAIT state.
2463                  */
2464                 case TCPS_SYN_RECEIVED:
2465                         tp->t_starttime = ticks;
2466                         /*FALLTHROUGH*/
2467                 case TCPS_ESTABLISHED:
2468                         tp->t_state = TCPS_CLOSE_WAIT;
2469                         break;
2470
2471                 /*
2472                  * If still in FIN_WAIT_1 STATE FIN has not been acked so
2473                  * enter the CLOSING state.
2474                  */
2475                 case TCPS_FIN_WAIT_1:
2476                         tp->t_state = TCPS_CLOSING;
2477                         break;
2478
2479                 /*
2480                  * In FIN_WAIT_2 state enter the TIME_WAIT state,
2481                  * starting the time-wait timer, turning off the other
2482                  * standard timers.
2483                  */
2484                 case TCPS_FIN_WAIT_2:
2485                         tp->t_state = TCPS_TIME_WAIT;
2486                         tcp_canceltimers(tp);
2487                         tcp_callout_reset(tp, tp->tt_2msl, 2 * tcp_rmx_msl(tp),
2488                                     tcp_timer_2msl);
2489                         soisdisconnected(so);
2490                         break;
2491
2492                 /*
2493                  * In TIME_WAIT state restart the 2 MSL time_wait timer.
2494                  */
2495                 case TCPS_TIME_WAIT:
2496                         tcp_callout_reset(tp, tp->tt_2msl, 2 * tcp_rmx_msl(tp),
2497                             tcp_timer_2msl);
2498                         break;
2499                 }
2500         }
2501
2502 #ifdef TCPDEBUG
2503         if (so->so_options & SO_DEBUG)
2504                 tcp_trace(TA_INPUT, ostate, tp, tcp_saveipgen, &tcp_savetcp, 0);
2505 #endif
2506
2507         /*
2508          * Return any desired output.
2509          */
2510         if (needoutput || (tp->t_flags & TF_ACKNOW))
2511                 tcp_output(tp);
2512         tcp_sack_report_cleanup(tp);
2513         return(IPPROTO_DONE);
2514
2515 dropafterack:
2516         /*
2517          * Generate an ACK dropping incoming segment if it occupies
2518          * sequence space, where the ACK reflects our state.
2519          *
2520          * We can now skip the test for the RST flag since all
2521          * paths to this code happen after packets containing
2522          * RST have been dropped.
2523          *
2524          * In the SYN-RECEIVED state, don't send an ACK unless the
2525          * segment we received passes the SYN-RECEIVED ACK test.
2526          * If it fails send a RST.  This breaks the loop in the
2527          * "LAND" DoS attack, and also prevents an ACK storm
2528          * between two listening ports that have been sent forged
2529          * SYN segments, each with the source address of the other.
2530          */
2531         if (tp->t_state == TCPS_SYN_RECEIVED && (thflags & TH_ACK) &&
2532             (SEQ_GT(tp->snd_una, th->th_ack) ||
2533              SEQ_GT(th->th_ack, tp->snd_max)) ) {
2534                 rstreason = BANDLIM_RST_OPENPORT;
2535                 goto dropwithreset;
2536         }
2537 #ifdef TCPDEBUG
2538         if (so->so_options & SO_DEBUG)
2539                 tcp_trace(TA_DROP, ostate, tp, tcp_saveipgen, &tcp_savetcp, 0);
2540 #endif
2541         m_freem(m);
2542         tp->t_flags |= TF_ACKNOW;
2543         tcp_output(tp);
2544         tcp_sack_report_cleanup(tp);
2545         return(IPPROTO_DONE);
2546
2547 dropwithreset:
2548         /*
2549          * Generate a RST, dropping incoming segment.
2550          * Make ACK acceptable to originator of segment.
2551          * Don't bother to respond if destination was broadcast/multicast.
2552          */
2553         if ((thflags & TH_RST) || m->m_flags & (M_BCAST | M_MCAST))
2554                 goto drop;
2555         if (isipv6) {
2556                 if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst) ||
2557                     IN6_IS_ADDR_MULTICAST(&ip6->ip6_src))
2558                         goto drop;
2559         } else {
2560                 if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr)) ||
2561                     IN_MULTICAST(ntohl(ip->ip_src.s_addr)) ||
2562                     ip->ip_src.s_addr == htonl(INADDR_BROADCAST) ||
2563                     in_broadcast(ip->ip_dst, m->m_pkthdr.rcvif))
2564                         goto drop;
2565         }
2566         /* IPv6 anycast check is done at tcp6_input() */
2567
2568         /*
2569          * Perform bandwidth limiting.
2570          */
2571 #ifdef ICMP_BANDLIM
2572         if (badport_bandlim(rstreason) < 0)
2573                 goto drop;
2574 #endif
2575
2576 #ifdef TCPDEBUG
2577         if (tp == NULL || (tp->t_inpcb->inp_socket->so_options & SO_DEBUG))
2578                 tcp_trace(TA_DROP, ostate, tp, tcp_saveipgen, &tcp_savetcp, 0);
2579 #endif
2580         if (thflags & TH_ACK)
2581                 /* mtod() below is safe as long as hdr dropping is delayed */
2582                 tcp_respond(tp, mtod(m, void *), th, m, (tcp_seq)0, th->th_ack,
2583                             TH_RST);
2584         else {
2585                 if (thflags & TH_SYN)
2586                         tlen++;
2587                 /* mtod() below is safe as long as hdr dropping is delayed */
2588                 tcp_respond(tp, mtod(m, void *), th, m, th->th_seq + tlen,
2589                             (tcp_seq)0, TH_RST | TH_ACK);
2590         }
2591         if (tp != NULL)
2592                 tcp_sack_report_cleanup(tp);
2593         return(IPPROTO_DONE);
2594
2595 drop:
2596         /*
2597          * Drop space held by incoming segment and return.
2598          */
2599 #ifdef TCPDEBUG
2600         if (tp == NULL || (tp->t_inpcb->inp_socket->so_options & SO_DEBUG))
2601                 tcp_trace(TA_DROP, ostate, tp, tcp_saveipgen, &tcp_savetcp, 0);
2602 #endif
2603         m_freem(m);
2604         if (tp != NULL)
2605                 tcp_sack_report_cleanup(tp);
2606         return(IPPROTO_DONE);
2607 }
2608
2609 /*
2610  * Parse TCP options and place in tcpopt.
2611  */
2612 static void
2613 tcp_dooptions(struct tcpopt *to, u_char *cp, int cnt, boolean_t is_syn)
2614 {
2615         int opt, optlen, i;
2616
2617         to->to_flags = 0;
2618         for (; cnt > 0; cnt -= optlen, cp += optlen) {
2619                 opt = cp[0];
2620                 if (opt == TCPOPT_EOL)
2621                         break;
2622                 if (opt == TCPOPT_NOP)
2623                         optlen = 1;
2624                 else {
2625                         if (cnt < 2)
2626                                 break;
2627                         optlen = cp[1];
2628                         if (optlen < 2 || optlen > cnt)
2629                                 break;
2630                 }
2631                 switch (opt) {
2632                 case TCPOPT_MAXSEG:
2633                         if (optlen != TCPOLEN_MAXSEG)
2634                                 continue;
2635                         if (!is_syn)
2636                                 continue;
2637                         to->to_flags |= TOF_MSS;
2638                         bcopy(cp + 2, &to->to_mss, sizeof to->to_mss);
2639                         to->to_mss = ntohs(to->to_mss);
2640                         break;
2641                 case TCPOPT_WINDOW:
2642                         if (optlen != TCPOLEN_WINDOW)
2643                                 continue;
2644                         if (!is_syn)
2645                                 continue;
2646                         to->to_flags |= TOF_SCALE;
2647                         to->to_requested_s_scale = min(cp[2], TCP_MAX_WINSHIFT);
2648                         break;
2649                 case TCPOPT_TIMESTAMP:
2650                         if (optlen != TCPOLEN_TIMESTAMP)
2651                                 continue;
2652                         to->to_flags |= TOF_TS;
2653                         bcopy(cp + 2, &to->to_tsval, sizeof to->to_tsval);
2654                         to->to_tsval = ntohl(to->to_tsval);
2655                         bcopy(cp + 6, &to->to_tsecr, sizeof to->to_tsecr);
2656                         to->to_tsecr = ntohl(to->to_tsecr);
2657                         /*
2658                          * If echoed timestamp is later than the current time,
2659                          * fall back to non RFC1323 RTT calculation.
2660                          */
2661                         if (to->to_tsecr != 0 && TSTMP_GT(to->to_tsecr, ticks))
2662                                 to->to_tsecr = 0;
2663                         break;
2664                 case TCPOPT_SACK_PERMITTED:
2665                         if (optlen != TCPOLEN_SACK_PERMITTED)
2666                                 continue;
2667                         if (!is_syn)
2668                                 continue;
2669                         to->to_flags |= TOF_SACK_PERMITTED;
2670                         break;
2671                 case TCPOPT_SACK:
2672                         if ((optlen - 2) & 0x07)        /* not multiple of 8 */
2673                                 continue;
2674                         to->to_nsackblocks = (optlen - 2) / 8;
2675                         to->to_sackblocks = (struct raw_sackblock *) (cp + 2);
2676                         to->to_flags |= TOF_SACK;
2677                         for (i = 0; i < to->to_nsackblocks; i++) {
2678                                 struct raw_sackblock *r = &to->to_sackblocks[i];
2679
2680                                 r->rblk_start = ntohl(r->rblk_start);
2681                                 r->rblk_end = ntohl(r->rblk_end);
2682
2683                                 if (SEQ_LEQ(r->rblk_end, r->rblk_start)) {
2684                                         /*
2685                                          * Invalid SACK block; discard all
2686                                          * SACK blocks
2687                                          */
2688                                         tcpstat.tcps_rcvbadsackopt++;
2689                                         to->to_nsackblocks = 0;
2690                                         to->to_sackblocks = NULL;
2691                                         to->to_flags &= ~TOF_SACK;
2692                                         break;
2693                                 }
2694                         }
2695                         break;
2696 #ifdef TCP_SIGNATURE
2697                 /*
2698                  * XXX In order to reply to a host which has set the
2699                  * TCP_SIGNATURE option in its initial SYN, we have to
2700                  * record the fact that the option was observed here
2701                  * for the syncache code to perform the correct response.
2702                  */
2703                 case TCPOPT_SIGNATURE:
2704                         if (optlen != TCPOLEN_SIGNATURE)
2705                                 continue;
2706                         to->to_flags |= (TOF_SIGNATURE | TOF_SIGLEN);
2707                         break;
2708 #endif /* TCP_SIGNATURE */
2709                 default:
2710                         continue;
2711                 }
2712         }
2713 }
2714
2715 /*
2716  * Pull out of band byte out of a segment so
2717  * it doesn't appear in the user's data queue.
2718  * It is still reflected in the segment length for
2719  * sequencing purposes.
2720  * "off" is the delayed to be dropped hdrlen.
2721  */
2722 static void
2723 tcp_pulloutofband(struct socket *so, struct tcphdr *th, struct mbuf *m, int off)
2724 {
2725         int cnt = off + th->th_urp - 1;
2726
2727         while (cnt >= 0) {
2728                 if (m->m_len > cnt) {
2729                         char *cp = mtod(m, caddr_t) + cnt;
2730                         struct tcpcb *tp = sototcpcb(so);
2731
2732                         tp->t_iobc = *cp;
2733                         tp->t_oobflags |= TCPOOB_HAVEDATA;
2734                         bcopy(cp + 1, cp, m->m_len - cnt - 1);
2735                         m->m_len--;
2736                         if (m->m_flags & M_PKTHDR)
2737                                 m->m_pkthdr.len--;
2738                         return;
2739                 }
2740                 cnt -= m->m_len;
2741                 m = m->m_next;
2742                 if (m == NULL)
2743                         break;
2744         }
2745         panic("tcp_pulloutofband");
2746 }
2747
2748 /*
2749  * Collect new round-trip time estimate
2750  * and update averages and current timeout.
2751  */
2752 static void
2753 tcp_xmit_timer(struct tcpcb *tp, int rtt)
2754 {
2755         int delta;
2756
2757         tcpstat.tcps_rttupdated++;
2758         tp->t_rttupdated++;
2759         if (tp->t_srtt != 0) {
2760                 /*
2761                  * srtt is stored as fixed point with 5 bits after the
2762                  * binary point (i.e., scaled by 8).  The following magic
2763                  * is equivalent to the smoothing algorithm in rfc793 with
2764                  * an alpha of .875 (srtt = rtt/8 + srtt*7/8 in fixed
2765                  * point).  Adjust rtt to origin 0.
2766                  */
2767                 delta = ((rtt - 1) << TCP_DELTA_SHIFT)
2768                         - (tp->t_srtt >> (TCP_RTT_SHIFT - TCP_DELTA_SHIFT));
2769
2770                 if ((tp->t_srtt += delta) <= 0)
2771                         tp->t_srtt = 1;
2772
2773                 /*
2774                  * We accumulate a smoothed rtt variance (actually, a
2775                  * smoothed mean difference), then set the retransmit
2776                  * timer to smoothed rtt + 4 times the smoothed variance.
2777                  * rttvar is stored as fixed point with 4 bits after the
2778                  * binary point (scaled by 16).  The following is
2779                  * equivalent to rfc793 smoothing with an alpha of .75
2780                  * (rttvar = rttvar*3/4 + |delta| / 4).  This replaces
2781                  * rfc793's wired-in beta.
2782                  */
2783                 if (delta < 0)
2784                         delta = -delta;
2785                 delta -= tp->t_rttvar >> (TCP_RTTVAR_SHIFT - TCP_DELTA_SHIFT);
2786                 if ((tp->t_rttvar += delta) <= 0)
2787                         tp->t_rttvar = 1;
2788                 if (tp->t_rttbest > tp->t_srtt + tp->t_rttvar)
2789                         tp->t_rttbest = tp->t_srtt + tp->t_rttvar;
2790         } else {
2791                 /*
2792                  * No rtt measurement yet - use the unsmoothed rtt.
2793                  * Set the variance to half the rtt (so our first
2794                  * retransmit happens at 3*rtt).
2795                  */
2796                 tp->t_srtt = rtt << TCP_RTT_SHIFT;
2797                 tp->t_rttvar = rtt << (TCP_RTTVAR_SHIFT - 1);
2798                 tp->t_rttbest = tp->t_srtt + tp->t_rttvar;
2799         }
2800         tp->t_rtttime = 0;
2801         tp->t_rxtshift = 0;
2802
2803         /*
2804          * the retransmit should happen at rtt + 4 * rttvar.
2805          * Because of the way we do the smoothing, srtt and rttvar
2806          * will each average +1/2 tick of bias.  When we compute
2807          * the retransmit timer, we want 1/2 tick of rounding and
2808          * 1 extra tick because of +-1/2 tick uncertainty in the
2809          * firing of the timer.  The bias will give us exactly the
2810          * 1.5 tick we need.  But, because the bias is
2811          * statistical, we have to test that we don't drop below
2812          * the minimum feasible timer (which is 2 ticks).
2813          */
2814         TCPT_RANGESET(tp->t_rxtcur, TCP_REXMTVAL(tp),
2815                       max(tp->t_rttmin, rtt + 2), TCPTV_REXMTMAX);
2816
2817         /*
2818          * We received an ack for a packet that wasn't retransmitted;
2819          * it is probably safe to discard any error indications we've
2820          * received recently.  This isn't quite right, but close enough
2821          * for now (a route might have failed after we sent a segment,
2822          * and the return path might not be symmetrical).
2823          */
2824         tp->t_softerror = 0;
2825 }
2826
2827 /*
2828  * Determine a reasonable value for maxseg size.
2829  * If the route is known, check route for mtu.
2830  * If none, use an mss that can be handled on the outgoing
2831  * interface without forcing IP to fragment; if bigger than
2832  * an mbuf cluster (MCLBYTES), round down to nearest multiple of MCLBYTES
2833  * to utilize large mbufs.  If no route is found, route has no mtu,
2834  * or the destination isn't local, use a default, hopefully conservative
2835  * size (usually 512 or the default IP max size, but no more than the mtu
2836  * of the interface), as we can't discover anything about intervening
2837  * gateways or networks.  We also initialize the congestion/slow start
2838  * window to be a single segment if the destination isn't local.
2839  * While looking at the routing entry, we also initialize other path-dependent
2840  * parameters from pre-set or cached values in the routing entry.
2841  *
2842  * Also take into account the space needed for options that we
2843  * send regularly.  Make maxseg shorter by that amount to assure
2844  * that we can send maxseg amount of data even when the options
2845  * are present.  Store the upper limit of the length of options plus
2846  * data in maxopd.
2847  *
2848  * NOTE that this routine is only called when we process an incoming
2849  * segment, for outgoing segments only tcp_mssopt is called.
2850  */
2851 void
2852 tcp_mss(struct tcpcb *tp, int offer)
2853 {
2854         struct rtentry *rt;
2855         struct ifnet *ifp;
2856         int rtt, mss;
2857         u_long bufsize;
2858         struct inpcb *inp = tp->t_inpcb;
2859         struct socket *so;
2860 #ifdef INET6
2861         boolean_t isipv6 = ((inp->inp_vflag & INP_IPV6) ? TRUE : FALSE);
2862         size_t min_protoh = isipv6 ?
2863                             sizeof(struct ip6_hdr) + sizeof(struct tcphdr) :
2864                             sizeof(struct tcpiphdr);
2865 #else
2866         const boolean_t isipv6 = FALSE;
2867         const size_t min_protoh = sizeof(struct tcpiphdr);
2868 #endif
2869
2870         if (isipv6)
2871                 rt = tcp_rtlookup6(&inp->inp_inc);
2872         else
2873                 rt = tcp_rtlookup(&inp->inp_inc);
2874         if (rt == NULL) {
2875                 tp->t_maxopd = tp->t_maxseg =
2876                     (isipv6 ? tcp_v6mssdflt : tcp_mssdflt);
2877                 return;
2878         }
2879         ifp = rt->rt_ifp;
2880         so = inp->inp_socket;
2881
2882         /*
2883          * Offer == 0 means that there was no MSS on the SYN segment,
2884          * in this case we use either the interface mtu or tcp_mssdflt.
2885          *
2886          * An offer which is too large will be cut down later.
2887          */
2888         if (offer == 0) {
2889                 if (isipv6) {
2890                         if (in6_localaddr(&inp->in6p_faddr)) {
2891                                 offer = ND_IFINFO(rt->rt_ifp)->linkmtu -
2892                                         min_protoh;
2893                         } else {
2894                                 offer = tcp_v6mssdflt;
2895                         }
2896                 } else {
2897                         if (in_localaddr(inp->inp_faddr))
2898                                 offer = ifp->if_mtu - min_protoh;
2899                         else
2900                                 offer = tcp_mssdflt;
2901                 }
2902         }
2903
2904         /*
2905          * Prevent DoS attack with too small MSS. Round up
2906          * to at least minmss.
2907          *
2908          * Sanity check: make sure that maxopd will be large
2909          * enough to allow some data on segments even is the
2910          * all the option space is used (40bytes).  Otherwise
2911          * funny things may happen in tcp_output.
2912          */
2913         offer = max(offer, tcp_minmss);
2914         offer = max(offer, 64);
2915
2916         rt->rt_rmx.rmx_mssopt = offer;
2917
2918         /*
2919          * While we're here, check if there's an initial rtt
2920          * or rttvar.  Convert from the route-table units
2921          * to scaled multiples of the slow timeout timer.
2922          */
2923         if (tp->t_srtt == 0 && (rtt = rt->rt_rmx.rmx_rtt)) {
2924                 /*
2925                  * XXX the lock bit for RTT indicates that the value
2926                  * is also a minimum value; this is subject to time.
2927                  */
2928                 if (rt->rt_rmx.rmx_locks & RTV_RTT)
2929                         tp->t_rttmin = rtt / (RTM_RTTUNIT / hz);
2930                 tp->t_srtt = rtt / (RTM_RTTUNIT / (hz * TCP_RTT_SCALE));
2931                 tp->t_rttbest = tp->t_srtt + TCP_RTT_SCALE;
2932                 tcpstat.tcps_usedrtt++;
2933                 if (rt->rt_rmx.rmx_rttvar) {
2934                         tp->t_rttvar = rt->rt_rmx.rmx_rttvar /
2935                             (RTM_RTTUNIT / (hz * TCP_RTTVAR_SCALE));
2936                         tcpstat.tcps_usedrttvar++;
2937                 } else {
2938                         /* default variation is +- 1 rtt */
2939                         tp->t_rttvar =
2940                             tp->t_srtt * TCP_RTTVAR_SCALE / TCP_RTT_SCALE;
2941                 }
2942                 TCPT_RANGESET(tp->t_rxtcur,
2943                               ((tp->t_srtt >> 2) + tp->t_rttvar) >> 1,
2944                               tp->t_rttmin, TCPTV_REXMTMAX);
2945         }
2946
2947         /*
2948          * if there's an mtu associated with the route, use it
2949          * else, use the link mtu.  Take the smaller of mss or offer
2950          * as our final mss.
2951          */
2952         if (rt->rt_rmx.rmx_mtu) {
2953                 mss = rt->rt_rmx.rmx_mtu - min_protoh;
2954         } else {
2955                 if (isipv6)
2956                         mss = ND_IFINFO(rt->rt_ifp)->linkmtu - min_protoh;
2957                 else
2958                         mss = ifp->if_mtu - min_protoh;
2959         }
2960         mss = min(mss, offer);
2961
2962         /*
2963          * maxopd stores the maximum length of data AND options
2964          * in a segment; maxseg is the amount of data in a normal
2965          * segment.  We need to store this value (maxopd) apart
2966          * from maxseg, because now every segment carries options
2967          * and thus we normally have somewhat less data in segments.
2968          */
2969         tp->t_maxopd = mss;
2970
2971         if ((tp->t_flags & (TF_REQ_TSTMP | TF_NOOPT)) == TF_REQ_TSTMP &&
2972             ((tp->t_flags & TF_RCVD_TSTMP) == TF_RCVD_TSTMP))
2973                 mss -= TCPOLEN_TSTAMP_APPA;
2974
2975 #if     (MCLBYTES & (MCLBYTES - 1)) == 0
2976                 if (mss > MCLBYTES)
2977                         mss &= ~(MCLBYTES-1);
2978 #else
2979                 if (mss > MCLBYTES)
2980                         mss = mss / MCLBYTES * MCLBYTES;
2981 #endif
2982         /*
2983          * If there's a pipesize, change the socket buffer
2984          * to that size.  Make the socket buffers an integral
2985          * number of mss units; if the mss is larger than
2986          * the socket buffer, decrease the mss.
2987          */
2988 #ifdef RTV_SPIPE
2989         if ((bufsize = rt->rt_rmx.rmx_sendpipe) == 0)
2990 #endif
2991                 bufsize = so->so_snd.ssb_hiwat;
2992         if (bufsize < mss)
2993                 mss = bufsize;
2994         else {
2995                 bufsize = roundup(bufsize, mss);
2996                 if (bufsize > sb_max)
2997                         bufsize = sb_max;
2998                 if (bufsize > so->so_snd.ssb_hiwat)
2999                         ssb_reserve(&so->so_snd, bufsize, so, NULL);
3000         }
3001         tp->t_maxseg = mss;
3002
3003 #ifdef RTV_RPIPE
3004         if ((bufsize = rt->rt_rmx.rmx_recvpipe) == 0)
3005 #endif
3006                 bufsize = so->so_rcv.ssb_hiwat;
3007         if (bufsize > mss) {
3008                 bufsize = roundup(bufsize, mss);
3009                 if (bufsize > sb_max)
3010                         bufsize = sb_max;
3011                 if (bufsize > so->so_rcv.ssb_hiwat) {
3012                         lwkt_gettoken(&so->so_rcv.ssb_token);
3013                         ssb_reserve(&so->so_rcv, bufsize, so, NULL);
3014                         lwkt_reltoken(&so->so_rcv.ssb_token);
3015                 }
3016         }
3017
3018         /*
3019          * Set the slow-start flight size
3020          *
3021          * NOTE: t_maxseg must have been configured!
3022          */
3023         tp->snd_cwnd = tcp_initial_window(tp);
3024
3025         if (rt->rt_rmx.rmx_ssthresh) {
3026                 /*
3027                  * There's some sort of gateway or interface
3028                  * buffer limit on the path.  Use this to set
3029                  * the slow start threshhold, but set the
3030                  * threshold to no less than 2*mss.
3031                  */
3032                 tp->snd_ssthresh = max(2 * mss, rt->rt_rmx.rmx_ssthresh);
3033                 tcpstat.tcps_usedssthresh++;
3034         }
3035 }
3036
3037 /*
3038  * Determine the MSS option to send on an outgoing SYN.
3039  */
3040 int
3041 tcp_mssopt(struct tcpcb *tp)
3042 {
3043         struct rtentry *rt;
3044 #ifdef INET6
3045         boolean_t isipv6 =
3046             ((tp->t_inpcb->inp_vflag & INP_IPV6) ? TRUE : FALSE);
3047         int min_protoh = isipv6 ?
3048                              sizeof(struct ip6_hdr) + sizeof(struct tcphdr) :
3049                              sizeof(struct tcpiphdr);
3050 #else
3051         const boolean_t isipv6 = FALSE;
3052         const size_t min_protoh = sizeof(struct tcpiphdr);
3053 #endif
3054
3055         if (isipv6)
3056                 rt = tcp_rtlookup6(&tp->t_inpcb->inp_inc);
3057         else
3058                 rt = tcp_rtlookup(&tp->t_inpcb->inp_inc);
3059         if (rt == NULL)
3060                 return (isipv6 ? tcp_v6mssdflt : tcp_mssdflt);
3061
3062         return (rt->rt_ifp->if_mtu - min_protoh);
3063 }
3064
3065 /*
3066  * When a partial ack arrives, force the retransmission of the
3067  * next unacknowledged segment.  Do not exit Fast Recovery.
3068  *
3069  * Implement the Slow-but-Steady variant of NewReno by restarting the
3070  * the retransmission timer.  Turn it off here so it can be restarted
3071  * later in tcp_output().
3072  */
3073 static void
3074 tcp_newreno_partial_ack(struct tcpcb *tp, struct tcphdr *th, int acked)
3075 {
3076         tcp_seq old_snd_nxt = tp->snd_nxt;
3077         u_long ocwnd = tp->snd_cwnd;
3078
3079         tcp_callout_stop(tp, tp->tt_rexmt);
3080         tp->t_rtttime = 0;
3081         tp->snd_nxt = th->th_ack;
3082         /* Set snd_cwnd to one segment beyond acknowledged offset. */
3083         tp->snd_cwnd = tp->t_maxseg;
3084         tp->t_flags |= TF_ACKNOW;
3085         tcp_output(tp);
3086         if (SEQ_GT(old_snd_nxt, tp->snd_nxt))
3087                 tp->snd_nxt = old_snd_nxt;
3088         /* partial window deflation */
3089         if (ocwnd > acked)
3090                 tp->snd_cwnd = ocwnd - acked + tp->t_maxseg;
3091         else
3092                 tp->snd_cwnd = tp->t_maxseg;
3093 }
3094
3095 /*
3096  * In contrast to the Slow-but-Steady NewReno variant,
3097  * we do not reset the retransmission timer for SACK retransmissions,
3098  * except when retransmitting snd_una.
3099  */
3100 static void
3101 tcp_sack_rexmt(struct tcpcb *tp, struct tcphdr *th)
3102 {
3103         tcp_seq old_snd_nxt = tp->snd_nxt;
3104         u_long ocwnd = tp->snd_cwnd;
3105         uint32_t pipe;
3106         int nseg = 0;           /* consecutive new segments */
3107         int nseg_rexmt = 0;     /* retransmitted segments */
3108 #define MAXBURST 4              /* limit burst of new packets on partial ack */
3109
3110         tp->t_rtttime = 0;
3111         pipe = tcp_sack_compute_pipe(tp);
3112         while ((tcp_seq_diff_t)(ocwnd - pipe) >= (tcp_seq_diff_t)tp->t_maxseg &&
3113             (!tcp_do_smartsack || nseg < MAXBURST)) {
3114                 tcp_seq old_snd_max, old_rexmt_high, nextrexmt;
3115                 uint32_t sent, seglen;
3116                 boolean_t rescue;
3117                 int error;
3118
3119                 old_rexmt_high = tp->rexmt_high;
3120                 if (!tcp_sack_nextseg(tp, &nextrexmt, &seglen, &rescue)) {
3121                         tp->rexmt_high = old_rexmt_high;
3122                         break;
3123                 }
3124
3125                 /*
3126                  * If the next tranmission is a rescue retranmission,
3127                  * we check whether we have already sent some data
3128                  * (either new segments or retransmitted segments)
3129                  * into the the network or not.  Since the idea of rescue
3130                  * retransmission is to sustain ACK clock, as long as
3131                  * some segments are in the network, ACK clock will be
3132                  * kept ticking.
3133                  */
3134                 if (rescue && (nseg_rexmt > 0 || nseg > 0)) {
3135                         tp->rexmt_high = old_rexmt_high;
3136                         break;
3137                 }
3138
3139                 if (nextrexmt == tp->snd_max)
3140                         ++nseg;
3141                 else
3142                         ++nseg_rexmt;
3143                 tp->snd_nxt = nextrexmt;
3144                 tp->snd_cwnd = nextrexmt - tp->snd_una + seglen;
3145                 old_snd_max = tp->snd_max;
3146                 if (nextrexmt == tp->snd_una)
3147                         tcp_callout_stop(tp, tp->tt_rexmt);
3148                 error = tcp_output(tp);
3149                 if (error != 0) {
3150                         tp->rexmt_high = old_rexmt_high;
3151                         break;
3152                 }
3153                 sent = tp->snd_nxt - nextrexmt;
3154                 if (sent <= 0) {
3155                         tp->rexmt_high = old_rexmt_high;
3156                         break;
3157                 }
3158                 pipe += sent;
3159                 tcpstat.tcps_sndsackpack++;
3160                 tcpstat.tcps_sndsackbyte += sent;
3161
3162                 if (rescue) {
3163                         tcpstat.tcps_sackrescue++;
3164                         tp->rexmt_rescue = tp->snd_nxt;
3165                         tp->t_flags |= TF_SACKRESCUED;
3166                         break;
3167                 }
3168                 if (SEQ_LT(nextrexmt, old_snd_max) &&
3169                     SEQ_LT(tp->rexmt_high, tp->snd_nxt)) {
3170                         tp->rexmt_high = seq_min(tp->snd_nxt, old_snd_max);
3171                         if ((tp->t_flags & TF_SACKRESCUED) &&
3172                             SEQ_LT(tp->rexmt_rescue, tp->rexmt_high)) {
3173                                 /* Drag RescueRxt along with HighRxt */
3174                                 tp->rexmt_rescue = tp->rexmt_high;
3175                         }
3176                 }
3177         }
3178         if (SEQ_GT(old_snd_nxt, tp->snd_nxt))
3179                 tp->snd_nxt = old_snd_nxt;
3180         tp->snd_cwnd = ocwnd;
3181 }
3182
3183 /*
3184  * Reset idle time and keep-alive timer, typically called when a valid
3185  * tcp packet is received but may also be called when FASTKEEP is set
3186  * to prevent the previous long-timeout from calculating to a drop.
3187  *
3188  * Only update t_rcvtime for non-SYN packets.
3189  *
3190  * Handle the case where one side thinks the connection is established
3191  * but the other side has, say, rebooted without cleaning out the
3192  * connection.   The SYNs could be construed as an attack and wind
3193  * up ignored, but in case it isn't an attack we can validate the
3194  * connection by forcing a keepalive.
3195  */
3196 void
3197 tcp_timer_keep_activity(struct tcpcb *tp, int thflags)
3198 {
3199         if (TCPS_HAVEESTABLISHED(tp->t_state)) {
3200                 if ((thflags & (TH_SYN | TH_ACK)) == TH_SYN) {
3201                         tp->t_flags |= TF_KEEPALIVE;
3202                         tcp_callout_reset(tp, tp->tt_keep, hz / 2,
3203                                           tcp_timer_keep);
3204                 } else {
3205                         tp->t_rcvtime = ticks;
3206                         tp->t_flags &= ~TF_KEEPALIVE;
3207                         tcp_callout_reset(tp, tp->tt_keep,
3208                                           tp->t_keepidle,
3209                                           tcp_timer_keep);
3210                 }
3211         }
3212 }
3213
3214 static int
3215 tcp_rmx_msl(const struct tcpcb *tp)
3216 {
3217         struct rtentry *rt;
3218         struct inpcb *inp = tp->t_inpcb;
3219         int msl;
3220 #ifdef INET6
3221         boolean_t isipv6 = ((inp->inp_vflag & INP_IPV6) ? TRUE : FALSE);
3222 #else
3223         const boolean_t isipv6 = FALSE;
3224 #endif
3225
3226         if (isipv6)
3227                 rt = tcp_rtlookup6(&inp->inp_inc);
3228         else
3229                 rt = tcp_rtlookup(&inp->inp_inc);
3230         if (rt == NULL || rt->rt_rmx.rmx_msl == 0)
3231                 return tcp_msl;
3232
3233         msl = (rt->rt_rmx.rmx_msl * hz) / 1000;
3234         if (msl == 0)
3235                 msl = 1;
3236
3237         return msl;
3238 }
3239
3240 static void
3241 tcp_established(struct tcpcb *tp)
3242 {
3243         tp->t_state = TCPS_ESTABLISHED;
3244         tcp_callout_reset(tp, tp->tt_keep, tp->t_keepidle, tcp_timer_keep);
3245
3246         if (tp->t_rxtsyn > 0) {
3247                 /*
3248                  * RFC6298:
3249                  * "If the timer expires awaiting the ACK of a SYN segment
3250                  *  and the TCP implementation is using an RTO less than 3
3251                  *  seconds, the RTO MUST be re-initialized to 3 seconds
3252                  *  when data transmission begins"
3253                  */
3254                 if (tp->t_rxtcur < TCPTV_RTOBASE3)
3255                         tp->t_rxtcur = TCPTV_RTOBASE3;
3256         }
3257 }