tcp_input.c revision 1.1 1 1.1 cgd /*
2 1.1 cgd * Copyright (c) 1982, 1986, 1988, 1990 Regents of the University of California.
3 1.1 cgd * All rights reserved.
4 1.1 cgd *
5 1.1 cgd * Redistribution and use in source and binary forms, with or without
6 1.1 cgd * modification, are permitted provided that the following conditions
7 1.1 cgd * are met:
8 1.1 cgd * 1. Redistributions of source code must retain the above copyright
9 1.1 cgd * notice, this list of conditions and the following disclaimer.
10 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
11 1.1 cgd * notice, this list of conditions and the following disclaimer in the
12 1.1 cgd * documentation and/or other materials provided with the distribution.
13 1.1 cgd * 3. All advertising materials mentioning features or use of this software
14 1.1 cgd * must display the following acknowledgement:
15 1.1 cgd * This product includes software developed by the University of
16 1.1 cgd * California, Berkeley and its contributors.
17 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
18 1.1 cgd * may be used to endorse or promote products derived from this software
19 1.1 cgd * without specific prior written permission.
20 1.1 cgd *
21 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
22 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
25 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 1.1 cgd * SUCH DAMAGE.
32 1.1 cgd *
33 1.1 cgd * @(#)tcp_input.c 7.25 (Berkeley) 6/30/90
34 1.1 cgd */
35 1.1 cgd
36 1.1 cgd #include "param.h"
37 1.1 cgd #include "systm.h"
38 1.1 cgd #include "malloc.h"
39 1.1 cgd #include "mbuf.h"
40 1.1 cgd #include "protosw.h"
41 1.1 cgd #include "socket.h"
42 1.1 cgd #include "socketvar.h"
43 1.1 cgd #include "errno.h"
44 1.1 cgd
45 1.1 cgd #include "../net/if.h"
46 1.1 cgd #include "../net/route.h"
47 1.1 cgd
48 1.1 cgd #include "in.h"
49 1.1 cgd #include "in_systm.h"
50 1.1 cgd #include "ip.h"
51 1.1 cgd #include "in_pcb.h"
52 1.1 cgd #include "ip_var.h"
53 1.1 cgd #include "tcp.h"
54 1.1 cgd #include "tcp_fsm.h"
55 1.1 cgd #include "tcp_seq.h"
56 1.1 cgd #include "tcp_timer.h"
57 1.1 cgd #include "tcp_var.h"
58 1.1 cgd #include "tcpip.h"
59 1.1 cgd #include "tcp_debug.h"
60 1.1 cgd
61 1.1 cgd int tcprexmtthresh = 3;
62 1.1 cgd int tcppredack; /* XXX debugging: times hdr predict ok for acks */
63 1.1 cgd int tcppreddat; /* XXX # times header prediction ok for data packets */
64 1.1 cgd int tcppcbcachemiss;
65 1.1 cgd struct tcpiphdr tcp_saveti;
66 1.1 cgd struct inpcb *tcp_last_inpcb = &tcb;
67 1.1 cgd
68 1.1 cgd struct tcpcb *tcp_newtcpcb();
69 1.1 cgd
70 1.1 cgd /*
71 1.1 cgd * Insert segment ti into reassembly queue of tcp with
72 1.1 cgd * control block tp. Return TH_FIN if reassembly now includes
73 1.1 cgd * a segment with FIN. The macro form does the common case inline
74 1.1 cgd * (segment is the next to be received on an established connection,
75 1.1 cgd * and the queue is empty), avoiding linkage into and removal
76 1.1 cgd * from the queue and repetition of various conversions.
77 1.1 cgd * Set DELACK for segments received in order, but ack immediately
78 1.1 cgd * when segments are out of order (so fast retransmit can work).
79 1.1 cgd */
80 1.1 cgd #define TCP_REASS(tp, ti, m, so, flags) { \
81 1.1 cgd if ((ti)->ti_seq == (tp)->rcv_nxt && \
82 1.1 cgd (tp)->seg_next == (struct tcpiphdr *)(tp) && \
83 1.1 cgd (tp)->t_state == TCPS_ESTABLISHED) { \
84 1.1 cgd tp->t_flags |= TF_DELACK; \
85 1.1 cgd (tp)->rcv_nxt += (ti)->ti_len; \
86 1.1 cgd flags = (ti)->ti_flags & TH_FIN; \
87 1.1 cgd tcpstat.tcps_rcvpack++;\
88 1.1 cgd tcpstat.tcps_rcvbyte += (ti)->ti_len;\
89 1.1 cgd sbappend(&(so)->so_rcv, (m)); \
90 1.1 cgd sorwakeup(so); \
91 1.1 cgd } else { \
92 1.1 cgd (flags) = tcp_reass((tp), (ti), (m)); \
93 1.1 cgd tp->t_flags |= TF_ACKNOW; \
94 1.1 cgd } \
95 1.1 cgd }
96 1.1 cgd
97 1.1 cgd tcp_reass(tp, ti, m)
98 1.1 cgd register struct tcpcb *tp;
99 1.1 cgd register struct tcpiphdr *ti;
100 1.1 cgd struct mbuf *m;
101 1.1 cgd {
102 1.1 cgd register struct tcpiphdr *q;
103 1.1 cgd struct socket *so = tp->t_inpcb->inp_socket;
104 1.1 cgd int flags;
105 1.1 cgd
106 1.1 cgd /*
107 1.1 cgd * Call with ti==0 after become established to
108 1.1 cgd * force pre-ESTABLISHED data up to user socket.
109 1.1 cgd */
110 1.1 cgd if (ti == 0)
111 1.1 cgd goto present;
112 1.1 cgd
113 1.1 cgd /*
114 1.1 cgd * Find a segment which begins after this one does.
115 1.1 cgd */
116 1.1 cgd for (q = tp->seg_next; q != (struct tcpiphdr *)tp;
117 1.1 cgd q = (struct tcpiphdr *)q->ti_next)
118 1.1 cgd if (SEQ_GT(q->ti_seq, ti->ti_seq))
119 1.1 cgd break;
120 1.1 cgd
121 1.1 cgd /*
122 1.1 cgd * If there is a preceding segment, it may provide some of
123 1.1 cgd * our data already. If so, drop the data from the incoming
124 1.1 cgd * segment. If it provides all of our data, drop us.
125 1.1 cgd */
126 1.1 cgd if ((struct tcpiphdr *)q->ti_prev != (struct tcpiphdr *)tp) {
127 1.1 cgd register int i;
128 1.1 cgd q = (struct tcpiphdr *)q->ti_prev;
129 1.1 cgd /* conversion to int (in i) handles seq wraparound */
130 1.1 cgd i = q->ti_seq + q->ti_len - ti->ti_seq;
131 1.1 cgd if (i > 0) {
132 1.1 cgd if (i >= ti->ti_len) {
133 1.1 cgd tcpstat.tcps_rcvduppack++;
134 1.1 cgd tcpstat.tcps_rcvdupbyte += ti->ti_len;
135 1.1 cgd m_freem(m);
136 1.1 cgd return (0);
137 1.1 cgd }
138 1.1 cgd m_adj(m, i);
139 1.1 cgd ti->ti_len -= i;
140 1.1 cgd ti->ti_seq += i;
141 1.1 cgd }
142 1.1 cgd q = (struct tcpiphdr *)(q->ti_next);
143 1.1 cgd }
144 1.1 cgd tcpstat.tcps_rcvoopack++;
145 1.1 cgd tcpstat.tcps_rcvoobyte += ti->ti_len;
146 1.1 cgd REASS_MBUF(ti) = m; /* XXX */
147 1.1 cgd
148 1.1 cgd /*
149 1.1 cgd * While we overlap succeeding segments trim them or,
150 1.1 cgd * if they are completely covered, dequeue them.
151 1.1 cgd */
152 1.1 cgd while (q != (struct tcpiphdr *)tp) {
153 1.1 cgd register int i = (ti->ti_seq + ti->ti_len) - q->ti_seq;
154 1.1 cgd if (i <= 0)
155 1.1 cgd break;
156 1.1 cgd if (i < q->ti_len) {
157 1.1 cgd q->ti_seq += i;
158 1.1 cgd q->ti_len -= i;
159 1.1 cgd m_adj(REASS_MBUF(q), i);
160 1.1 cgd break;
161 1.1 cgd }
162 1.1 cgd q = (struct tcpiphdr *)q->ti_next;
163 1.1 cgd m = REASS_MBUF((struct tcpiphdr *)q->ti_prev);
164 1.1 cgd remque(q->ti_prev);
165 1.1 cgd m_freem(m);
166 1.1 cgd }
167 1.1 cgd
168 1.1 cgd /*
169 1.1 cgd * Stick new segment in its place.
170 1.1 cgd */
171 1.1 cgd insque(ti, q->ti_prev);
172 1.1 cgd
173 1.1 cgd present:
174 1.1 cgd /*
175 1.1 cgd * Present data to user, advancing rcv_nxt through
176 1.1 cgd * completed sequence space.
177 1.1 cgd */
178 1.1 cgd if (TCPS_HAVERCVDSYN(tp->t_state) == 0)
179 1.1 cgd return (0);
180 1.1 cgd ti = tp->seg_next;
181 1.1 cgd if (ti == (struct tcpiphdr *)tp || ti->ti_seq != tp->rcv_nxt)
182 1.1 cgd return (0);
183 1.1 cgd if (tp->t_state == TCPS_SYN_RECEIVED && ti->ti_len)
184 1.1 cgd return (0);
185 1.1 cgd do {
186 1.1 cgd tp->rcv_nxt += ti->ti_len;
187 1.1 cgd flags = ti->ti_flags & TH_FIN;
188 1.1 cgd remque(ti);
189 1.1 cgd m = REASS_MBUF(ti);
190 1.1 cgd ti = (struct tcpiphdr *)ti->ti_next;
191 1.1 cgd if (so->so_state & SS_CANTRCVMORE)
192 1.1 cgd m_freem(m);
193 1.1 cgd else
194 1.1 cgd sbappend(&so->so_rcv, m);
195 1.1 cgd } while (ti != (struct tcpiphdr *)tp && ti->ti_seq == tp->rcv_nxt);
196 1.1 cgd sorwakeup(so);
197 1.1 cgd return (flags);
198 1.1 cgd }
199 1.1 cgd
200 1.1 cgd /*
201 1.1 cgd * TCP input routine, follows pages 65-76 of the
202 1.1 cgd * protocol specification dated September, 1981 very closely.
203 1.1 cgd */
204 1.1 cgd tcp_input(m, iphlen)
205 1.1 cgd register struct mbuf *m;
206 1.1 cgd int iphlen;
207 1.1 cgd {
208 1.1 cgd register struct tcpiphdr *ti;
209 1.1 cgd register struct inpcb *inp;
210 1.1 cgd struct mbuf *om = 0;
211 1.1 cgd int len, tlen, off;
212 1.1 cgd register struct tcpcb *tp = 0;
213 1.1 cgd register int tiflags;
214 1.1 cgd struct socket *so;
215 1.1 cgd int todrop, acked, ourfinisacked, needoutput = 0;
216 1.1 cgd short ostate;
217 1.1 cgd struct in_addr laddr;
218 1.1 cgd int dropsocket = 0;
219 1.1 cgd int iss = 0;
220 1.1 cgd
221 1.1 cgd tcpstat.tcps_rcvtotal++;
222 1.1 cgd /*
223 1.1 cgd * Get IP and TCP header together in first mbuf.
224 1.1 cgd * Note: IP leaves IP header in first mbuf.
225 1.1 cgd */
226 1.1 cgd ti = mtod(m, struct tcpiphdr *);
227 1.1 cgd if (iphlen > sizeof (struct ip))
228 1.1 cgd ip_stripoptions(m, (struct mbuf *)0);
229 1.1 cgd if (m->m_len < sizeof (struct tcpiphdr)) {
230 1.1 cgd if ((m = m_pullup(m, sizeof (struct tcpiphdr))) == 0) {
231 1.1 cgd tcpstat.tcps_rcvshort++;
232 1.1 cgd return;
233 1.1 cgd }
234 1.1 cgd ti = mtod(m, struct tcpiphdr *);
235 1.1 cgd }
236 1.1 cgd
237 1.1 cgd /*
238 1.1 cgd * Checksum extended TCP header and data.
239 1.1 cgd */
240 1.1 cgd tlen = ((struct ip *)ti)->ip_len;
241 1.1 cgd len = sizeof (struct ip) + tlen;
242 1.1 cgd ti->ti_next = ti->ti_prev = 0;
243 1.1 cgd ti->ti_x1 = 0;
244 1.1 cgd ti->ti_len = (u_short)tlen;
245 1.1 cgd HTONS(ti->ti_len);
246 1.1 cgd if (ti->ti_sum = in_cksum(m, len)) {
247 1.1 cgd tcpstat.tcps_rcvbadsum++;
248 1.1 cgd goto drop;
249 1.1 cgd }
250 1.1 cgd
251 1.1 cgd /*
252 1.1 cgd * Check that TCP offset makes sense,
253 1.1 cgd * pull out TCP options and adjust length. XXX
254 1.1 cgd */
255 1.1 cgd off = ti->ti_off << 2;
256 1.1 cgd if (off < sizeof (struct tcphdr) || off > tlen) {
257 1.1 cgd tcpstat.tcps_rcvbadoff++;
258 1.1 cgd goto drop;
259 1.1 cgd }
260 1.1 cgd tlen -= off;
261 1.1 cgd ti->ti_len = tlen;
262 1.1 cgd if (off > sizeof (struct tcphdr)) {
263 1.1 cgd if (m->m_len < sizeof(struct ip) + off) {
264 1.1 cgd if ((m = m_pullup(m, sizeof (struct ip) + off)) == 0) {
265 1.1 cgd tcpstat.tcps_rcvshort++;
266 1.1 cgd return;
267 1.1 cgd }
268 1.1 cgd ti = mtod(m, struct tcpiphdr *);
269 1.1 cgd }
270 1.1 cgd om = m_get(M_DONTWAIT, MT_DATA);
271 1.1 cgd if (om == 0)
272 1.1 cgd goto drop;
273 1.1 cgd om->m_len = off - sizeof (struct tcphdr);
274 1.1 cgd { caddr_t op = mtod(m, caddr_t) + sizeof (struct tcpiphdr);
275 1.1 cgd bcopy(op, mtod(om, caddr_t), (unsigned)om->m_len);
276 1.1 cgd m->m_len -= om->m_len;
277 1.1 cgd m->m_pkthdr.len -= om->m_len;
278 1.1 cgd bcopy(op+om->m_len, op,
279 1.1 cgd (unsigned)(m->m_len-sizeof (struct tcpiphdr)));
280 1.1 cgd }
281 1.1 cgd }
282 1.1 cgd tiflags = ti->ti_flags;
283 1.1 cgd
284 1.1 cgd /*
285 1.1 cgd * Convert TCP protocol specific fields to host format.
286 1.1 cgd */
287 1.1 cgd NTOHL(ti->ti_seq);
288 1.1 cgd NTOHL(ti->ti_ack);
289 1.1 cgd NTOHS(ti->ti_win);
290 1.1 cgd NTOHS(ti->ti_urp);
291 1.1 cgd
292 1.1 cgd /*
293 1.1 cgd * Locate pcb for segment.
294 1.1 cgd */
295 1.1 cgd findpcb:
296 1.1 cgd inp = tcp_last_inpcb;
297 1.1 cgd if (inp->inp_lport != ti->ti_dport ||
298 1.1 cgd inp->inp_fport != ti->ti_sport ||
299 1.1 cgd inp->inp_faddr.s_addr != ti->ti_src.s_addr ||
300 1.1 cgd inp->inp_laddr.s_addr != ti->ti_dst.s_addr) {
301 1.1 cgd inp = in_pcblookup(&tcb, ti->ti_src, ti->ti_sport,
302 1.1 cgd ti->ti_dst, ti->ti_dport, INPLOOKUP_WILDCARD);
303 1.1 cgd if (inp)
304 1.1 cgd tcp_last_inpcb = inp;
305 1.1 cgd ++tcppcbcachemiss;
306 1.1 cgd }
307 1.1 cgd
308 1.1 cgd /*
309 1.1 cgd * If the state is CLOSED (i.e., TCB does not exist) then
310 1.1 cgd * all data in the incoming segment is discarded.
311 1.1 cgd * If the TCB exists but is in CLOSED state, it is embryonic,
312 1.1 cgd * but should either do a listen or a connect soon.
313 1.1 cgd */
314 1.1 cgd if (inp == 0)
315 1.1 cgd goto dropwithreset;
316 1.1 cgd tp = intotcpcb(inp);
317 1.1 cgd if (tp == 0)
318 1.1 cgd goto dropwithreset;
319 1.1 cgd if (tp->t_state == TCPS_CLOSED)
320 1.1 cgd goto drop;
321 1.1 cgd so = inp->inp_socket;
322 1.1 cgd if (so->so_options & (SO_DEBUG|SO_ACCEPTCONN)) {
323 1.1 cgd if (so->so_options & SO_DEBUG) {
324 1.1 cgd ostate = tp->t_state;
325 1.1 cgd tcp_saveti = *ti;
326 1.1 cgd }
327 1.1 cgd if (so->so_options & SO_ACCEPTCONN) {
328 1.1 cgd so = sonewconn(so, 0);
329 1.1 cgd if (so == 0)
330 1.1 cgd goto drop;
331 1.1 cgd /*
332 1.1 cgd * This is ugly, but ....
333 1.1 cgd *
334 1.1 cgd * Mark socket as temporary until we're
335 1.1 cgd * committed to keeping it. The code at
336 1.1 cgd * ``drop'' and ``dropwithreset'' check the
337 1.1 cgd * flag dropsocket to see if the temporary
338 1.1 cgd * socket created here should be discarded.
339 1.1 cgd * We mark the socket as discardable until
340 1.1 cgd * we're committed to it below in TCPS_LISTEN.
341 1.1 cgd */
342 1.1 cgd dropsocket++;
343 1.1 cgd inp = (struct inpcb *)so->so_pcb;
344 1.1 cgd inp->inp_laddr = ti->ti_dst;
345 1.1 cgd inp->inp_lport = ti->ti_dport;
346 1.1 cgd #if BSD>=43
347 1.1 cgd inp->inp_options = ip_srcroute();
348 1.1 cgd #endif
349 1.1 cgd tp = intotcpcb(inp);
350 1.1 cgd tp->t_state = TCPS_LISTEN;
351 1.1 cgd }
352 1.1 cgd }
353 1.1 cgd
354 1.1 cgd /*
355 1.1 cgd * Segment received on connection.
356 1.1 cgd * Reset idle time and keep-alive timer.
357 1.1 cgd */
358 1.1 cgd tp->t_idle = 0;
359 1.1 cgd tp->t_timer[TCPT_KEEP] = tcp_keepidle;
360 1.1 cgd
361 1.1 cgd /*
362 1.1 cgd * Process options if not in LISTEN state,
363 1.1 cgd * else do it below (after getting remote address).
364 1.1 cgd */
365 1.1 cgd if (om && tp->t_state != TCPS_LISTEN) {
366 1.1 cgd tcp_dooptions(tp, om, ti);
367 1.1 cgd om = 0;
368 1.1 cgd }
369 1.1 cgd /*
370 1.1 cgd * Header prediction: check for the two common cases
371 1.1 cgd * of a uni-directional data xfer. If the packet has
372 1.1 cgd * no control flags, is in-sequence, the window didn't
373 1.1 cgd * change and we're not retransmitting, it's a
374 1.1 cgd * candidate. If the length is zero and the ack moved
375 1.1 cgd * forward, we're the sender side of the xfer. Just
376 1.1 cgd * free the data acked & wake any higher level process
377 1.1 cgd * that was blocked waiting for space. If the length
378 1.1 cgd * is non-zero and the ack didn't move, we're the
379 1.1 cgd * receiver side. If we're getting packets in-order
380 1.1 cgd * (the reassembly queue is empty), add the data to
381 1.1 cgd * the socket buffer and note that we need a delayed ack.
382 1.1 cgd */
383 1.1 cgd if (tp->t_state == TCPS_ESTABLISHED &&
384 1.1 cgd (tiflags & (TH_SYN|TH_FIN|TH_RST|TH_URG|TH_ACK)) == TH_ACK &&
385 1.1 cgd ti->ti_seq == tp->rcv_nxt &&
386 1.1 cgd ti->ti_win && ti->ti_win == tp->snd_wnd &&
387 1.1 cgd tp->snd_nxt == tp->snd_max) {
388 1.1 cgd if (ti->ti_len == 0) {
389 1.1 cgd if (SEQ_GT(ti->ti_ack, tp->snd_una) &&
390 1.1 cgd SEQ_LEQ(ti->ti_ack, tp->snd_max) &&
391 1.1 cgd tp->snd_cwnd >= tp->snd_wnd) {
392 1.1 cgd /*
393 1.1 cgd * this is a pure ack for outstanding data.
394 1.1 cgd */
395 1.1 cgd ++tcppredack;
396 1.1 cgd if (tp->t_rtt && SEQ_GT(ti->ti_ack,tp->t_rtseq))
397 1.1 cgd tcp_xmit_timer(tp);
398 1.1 cgd acked = ti->ti_ack - tp->snd_una;
399 1.1 cgd tcpstat.tcps_rcvackpack++;
400 1.1 cgd tcpstat.tcps_rcvackbyte += acked;
401 1.1 cgd sbdrop(&so->so_snd, acked);
402 1.1 cgd tp->snd_una = ti->ti_ack;
403 1.1 cgd m_freem(m);
404 1.1 cgd
405 1.1 cgd /*
406 1.1 cgd * If all outstanding data are acked, stop
407 1.1 cgd * retransmit timer, otherwise restart timer
408 1.1 cgd * using current (possibly backed-off) value.
409 1.1 cgd * If process is waiting for space,
410 1.1 cgd * wakeup/selwakeup/signal. If data
411 1.1 cgd * are ready to send, let tcp_output
412 1.1 cgd * decide between more output or persist.
413 1.1 cgd */
414 1.1 cgd if (tp->snd_una == tp->snd_max)
415 1.1 cgd tp->t_timer[TCPT_REXMT] = 0;
416 1.1 cgd else if (tp->t_timer[TCPT_PERSIST] == 0)
417 1.1 cgd tp->t_timer[TCPT_REXMT] = tp->t_rxtcur;
418 1.1 cgd
419 1.1 cgd if (so->so_snd.sb_flags & SB_NOTIFY)
420 1.1 cgd sowwakeup(so);
421 1.1 cgd if (so->so_snd.sb_cc)
422 1.1 cgd (void) tcp_output(tp);
423 1.1 cgd return;
424 1.1 cgd }
425 1.1 cgd } else if (ti->ti_ack == tp->snd_una &&
426 1.1 cgd tp->seg_next == (struct tcpiphdr *)tp &&
427 1.1 cgd ti->ti_len <= sbspace(&so->so_rcv)) {
428 1.1 cgd /*
429 1.1 cgd * this is a pure, in-sequence data packet
430 1.1 cgd * with nothing on the reassembly queue and
431 1.1 cgd * we have enough buffer space to take it.
432 1.1 cgd */
433 1.1 cgd ++tcppreddat;
434 1.1 cgd tp->rcv_nxt += ti->ti_len;
435 1.1 cgd tcpstat.tcps_rcvpack++;
436 1.1 cgd tcpstat.tcps_rcvbyte += ti->ti_len;
437 1.1 cgd /*
438 1.1 cgd * Drop TCP and IP headers then add data
439 1.1 cgd * to socket buffer
440 1.1 cgd */
441 1.1 cgd m->m_data += sizeof(struct tcpiphdr);
442 1.1 cgd m->m_len -= sizeof(struct tcpiphdr);
443 1.1 cgd sbappend(&so->so_rcv, m);
444 1.1 cgd sorwakeup(so);
445 1.1 cgd tp->t_flags |= TF_DELACK;
446 1.1 cgd return;
447 1.1 cgd }
448 1.1 cgd }
449 1.1 cgd
450 1.1 cgd /*
451 1.1 cgd * Drop TCP and IP headers; TCP options were dropped above.
452 1.1 cgd */
453 1.1 cgd m->m_data += sizeof(struct tcpiphdr);
454 1.1 cgd m->m_len -= sizeof(struct tcpiphdr);
455 1.1 cgd
456 1.1 cgd /*
457 1.1 cgd * Calculate amount of space in receive window,
458 1.1 cgd * and then do TCP input processing.
459 1.1 cgd * Receive window is amount of space in rcv queue,
460 1.1 cgd * but not less than advertised window.
461 1.1 cgd */
462 1.1 cgd { int win;
463 1.1 cgd
464 1.1 cgd win = sbspace(&so->so_rcv);
465 1.1 cgd if (win < 0)
466 1.1 cgd win = 0;
467 1.1 cgd tp->rcv_wnd = max(win, (int)(tp->rcv_adv - tp->rcv_nxt));
468 1.1 cgd }
469 1.1 cgd
470 1.1 cgd switch (tp->t_state) {
471 1.1 cgd
472 1.1 cgd /*
473 1.1 cgd * If the state is LISTEN then ignore segment if it contains an RST.
474 1.1 cgd * If the segment contains an ACK then it is bad and send a RST.
475 1.1 cgd * If it does not contain a SYN then it is not interesting; drop it.
476 1.1 cgd * Don't bother responding if the destination was a broadcast.
477 1.1 cgd * Otherwise initialize tp->rcv_nxt, and tp->irs, select an initial
478 1.1 cgd * tp->iss, and send a segment:
479 1.1 cgd * <SEQ=ISS><ACK=RCV_NXT><CTL=SYN,ACK>
480 1.1 cgd * Also initialize tp->snd_nxt to tp->iss+1 and tp->snd_una to tp->iss.
481 1.1 cgd * Fill in remote peer address fields if not previously specified.
482 1.1 cgd * Enter SYN_RECEIVED state, and process any other fields of this
483 1.1 cgd * segment in this state.
484 1.1 cgd */
485 1.1 cgd case TCPS_LISTEN: {
486 1.1 cgd struct mbuf *am;
487 1.1 cgd register struct sockaddr_in *sin;
488 1.1 cgd
489 1.1 cgd if (tiflags & TH_RST)
490 1.1 cgd goto drop;
491 1.1 cgd if (tiflags & TH_ACK)
492 1.1 cgd goto dropwithreset;
493 1.1 cgd if ((tiflags & TH_SYN) == 0)
494 1.1 cgd goto drop;
495 1.1 cgd if (m->m_flags & M_BCAST)
496 1.1 cgd goto drop;
497 1.1 cgd am = m_get(M_DONTWAIT, MT_SONAME); /* XXX */
498 1.1 cgd if (am == NULL)
499 1.1 cgd goto drop;
500 1.1 cgd am->m_len = sizeof (struct sockaddr_in);
501 1.1 cgd sin = mtod(am, struct sockaddr_in *);
502 1.1 cgd sin->sin_family = AF_INET;
503 1.1 cgd sin->sin_len = sizeof(*sin);
504 1.1 cgd sin->sin_addr = ti->ti_src;
505 1.1 cgd sin->sin_port = ti->ti_sport;
506 1.1 cgd laddr = inp->inp_laddr;
507 1.1 cgd if (inp->inp_laddr.s_addr == INADDR_ANY)
508 1.1 cgd inp->inp_laddr = ti->ti_dst;
509 1.1 cgd if (in_pcbconnect(inp, am)) {
510 1.1 cgd inp->inp_laddr = laddr;
511 1.1 cgd (void) m_free(am);
512 1.1 cgd goto drop;
513 1.1 cgd }
514 1.1 cgd (void) m_free(am);
515 1.1 cgd tp->t_template = tcp_template(tp);
516 1.1 cgd if (tp->t_template == 0) {
517 1.1 cgd tp = tcp_drop(tp, ENOBUFS);
518 1.1 cgd dropsocket = 0; /* socket is already gone */
519 1.1 cgd goto drop;
520 1.1 cgd }
521 1.1 cgd if (om) {
522 1.1 cgd tcp_dooptions(tp, om, ti);
523 1.1 cgd om = 0;
524 1.1 cgd }
525 1.1 cgd if (iss)
526 1.1 cgd tp->iss = iss;
527 1.1 cgd else
528 1.1 cgd tp->iss = tcp_iss;
529 1.1 cgd tcp_iss += TCP_ISSINCR/2;
530 1.1 cgd tp->irs = ti->ti_seq;
531 1.1 cgd tcp_sendseqinit(tp);
532 1.1 cgd tcp_rcvseqinit(tp);
533 1.1 cgd tp->t_flags |= TF_ACKNOW;
534 1.1 cgd tp->t_state = TCPS_SYN_RECEIVED;
535 1.1 cgd tp->t_timer[TCPT_KEEP] = TCPTV_KEEP_INIT;
536 1.1 cgd dropsocket = 0; /* committed to socket */
537 1.1 cgd tcpstat.tcps_accepts++;
538 1.1 cgd goto trimthenstep6;
539 1.1 cgd }
540 1.1 cgd
541 1.1 cgd /*
542 1.1 cgd * If the state is SYN_SENT:
543 1.1 cgd * if seg contains an ACK, but not for our SYN, drop the input.
544 1.1 cgd * if seg contains a RST, then drop the connection.
545 1.1 cgd * if seg does not contain SYN, then drop it.
546 1.1 cgd * Otherwise this is an acceptable SYN segment
547 1.1 cgd * initialize tp->rcv_nxt and tp->irs
548 1.1 cgd * if seg contains ack then advance tp->snd_una
549 1.1 cgd * if SYN has been acked change to ESTABLISHED else SYN_RCVD state
550 1.1 cgd * arrange for segment to be acked (eventually)
551 1.1 cgd * continue processing rest of data/controls, beginning with URG
552 1.1 cgd */
553 1.1 cgd case TCPS_SYN_SENT:
554 1.1 cgd if ((tiflags & TH_ACK) &&
555 1.1 cgd (SEQ_LEQ(ti->ti_ack, tp->iss) ||
556 1.1 cgd SEQ_GT(ti->ti_ack, tp->snd_max)))
557 1.1 cgd goto dropwithreset;
558 1.1 cgd if (tiflags & TH_RST) {
559 1.1 cgd if (tiflags & TH_ACK)
560 1.1 cgd tp = tcp_drop(tp, ECONNREFUSED);
561 1.1 cgd goto drop;
562 1.1 cgd }
563 1.1 cgd if ((tiflags & TH_SYN) == 0)
564 1.1 cgd goto drop;
565 1.1 cgd if (tiflags & TH_ACK) {
566 1.1 cgd tp->snd_una = ti->ti_ack;
567 1.1 cgd if (SEQ_LT(tp->snd_nxt, tp->snd_una))
568 1.1 cgd tp->snd_nxt = tp->snd_una;
569 1.1 cgd }
570 1.1 cgd tp->t_timer[TCPT_REXMT] = 0;
571 1.1 cgd tp->irs = ti->ti_seq;
572 1.1 cgd tcp_rcvseqinit(tp);
573 1.1 cgd tp->t_flags |= TF_ACKNOW;
574 1.1 cgd if (tiflags & TH_ACK && SEQ_GT(tp->snd_una, tp->iss)) {
575 1.1 cgd tcpstat.tcps_connects++;
576 1.1 cgd soisconnected(so);
577 1.1 cgd tp->t_state = TCPS_ESTABLISHED;
578 1.1 cgd (void) tcp_reass(tp, (struct tcpiphdr *)0,
579 1.1 cgd (struct mbuf *)0);
580 1.1 cgd /*
581 1.1 cgd * if we didn't have to retransmit the SYN,
582 1.1 cgd * use its rtt as our initial srtt & rtt var.
583 1.1 cgd */
584 1.1 cgd if (tp->t_rtt)
585 1.1 cgd tcp_xmit_timer(tp);
586 1.1 cgd } else
587 1.1 cgd tp->t_state = TCPS_SYN_RECEIVED;
588 1.1 cgd
589 1.1 cgd trimthenstep6:
590 1.1 cgd /*
591 1.1 cgd * Advance ti->ti_seq to correspond to first data byte.
592 1.1 cgd * If data, trim to stay within window,
593 1.1 cgd * dropping FIN if necessary.
594 1.1 cgd */
595 1.1 cgd ti->ti_seq++;
596 1.1 cgd if (ti->ti_len > tp->rcv_wnd) {
597 1.1 cgd todrop = ti->ti_len - tp->rcv_wnd;
598 1.1 cgd m_adj(m, -todrop);
599 1.1 cgd ti->ti_len = tp->rcv_wnd;
600 1.1 cgd tiflags &= ~TH_FIN;
601 1.1 cgd tcpstat.tcps_rcvpackafterwin++;
602 1.1 cgd tcpstat.tcps_rcvbyteafterwin += todrop;
603 1.1 cgd }
604 1.1 cgd tp->snd_wl1 = ti->ti_seq - 1;
605 1.1 cgd tp->rcv_up = ti->ti_seq;
606 1.1 cgd goto step6;
607 1.1 cgd }
608 1.1 cgd
609 1.1 cgd /*
610 1.1 cgd * States other than LISTEN or SYN_SENT.
611 1.1 cgd * First check that at least some bytes of segment are within
612 1.1 cgd * receive window. If segment begins before rcv_nxt,
613 1.1 cgd * drop leading data (and SYN); if nothing left, just ack.
614 1.1 cgd */
615 1.1 cgd todrop = tp->rcv_nxt - ti->ti_seq;
616 1.1 cgd if (todrop > 0) {
617 1.1 cgd if (tiflags & TH_SYN) {
618 1.1 cgd tiflags &= ~TH_SYN;
619 1.1 cgd ti->ti_seq++;
620 1.1 cgd if (ti->ti_urp > 1)
621 1.1 cgd ti->ti_urp--;
622 1.1 cgd else
623 1.1 cgd tiflags &= ~TH_URG;
624 1.1 cgd todrop--;
625 1.1 cgd }
626 1.1 cgd if (todrop > ti->ti_len ||
627 1.1 cgd todrop == ti->ti_len && (tiflags&TH_FIN) == 0) {
628 1.1 cgd tcpstat.tcps_rcvduppack++;
629 1.1 cgd tcpstat.tcps_rcvdupbyte += ti->ti_len;
630 1.1 cgd /*
631 1.1 cgd * If segment is just one to the left of the window,
632 1.1 cgd * check two special cases:
633 1.1 cgd * 1. Don't toss RST in response to 4.2-style keepalive.
634 1.1 cgd * 2. If the only thing to drop is a FIN, we can drop
635 1.1 cgd * it, but check the ACK or we will get into FIN
636 1.1 cgd * wars if our FINs crossed (both CLOSING).
637 1.1 cgd * In either case, send ACK to resynchronize,
638 1.1 cgd * but keep on processing for RST or ACK.
639 1.1 cgd */
640 1.1 cgd if ((tiflags & TH_FIN && todrop == ti->ti_len + 1)
641 1.1 cgd #ifdef TCP_COMPAT_42
642 1.1 cgd || (tiflags & TH_RST && ti->ti_seq == tp->rcv_nxt - 1)
643 1.1 cgd #endif
644 1.1 cgd ) {
645 1.1 cgd todrop = ti->ti_len;
646 1.1 cgd tiflags &= ~TH_FIN;
647 1.1 cgd tp->t_flags |= TF_ACKNOW;
648 1.1 cgd } else
649 1.1 cgd goto dropafterack;
650 1.1 cgd } else {
651 1.1 cgd tcpstat.tcps_rcvpartduppack++;
652 1.1 cgd tcpstat.tcps_rcvpartdupbyte += todrop;
653 1.1 cgd }
654 1.1 cgd m_adj(m, todrop);
655 1.1 cgd ti->ti_seq += todrop;
656 1.1 cgd ti->ti_len -= todrop;
657 1.1 cgd if (ti->ti_urp > todrop)
658 1.1 cgd ti->ti_urp -= todrop;
659 1.1 cgd else {
660 1.1 cgd tiflags &= ~TH_URG;
661 1.1 cgd ti->ti_urp = 0;
662 1.1 cgd }
663 1.1 cgd }
664 1.1 cgd
665 1.1 cgd /*
666 1.1 cgd * If new data are received on a connection after the
667 1.1 cgd * user processes are gone, then RST the other end.
668 1.1 cgd */
669 1.1 cgd if ((so->so_state & SS_NOFDREF) &&
670 1.1 cgd tp->t_state > TCPS_CLOSE_WAIT && ti->ti_len) {
671 1.1 cgd tp = tcp_close(tp);
672 1.1 cgd tcpstat.tcps_rcvafterclose++;
673 1.1 cgd goto dropwithreset;
674 1.1 cgd }
675 1.1 cgd
676 1.1 cgd /*
677 1.1 cgd * If segment ends after window, drop trailing data
678 1.1 cgd * (and PUSH and FIN); if nothing left, just ACK.
679 1.1 cgd */
680 1.1 cgd todrop = (ti->ti_seq+ti->ti_len) - (tp->rcv_nxt+tp->rcv_wnd);
681 1.1 cgd if (todrop > 0) {
682 1.1 cgd tcpstat.tcps_rcvpackafterwin++;
683 1.1 cgd if (todrop >= ti->ti_len) {
684 1.1 cgd tcpstat.tcps_rcvbyteafterwin += ti->ti_len;
685 1.1 cgd /*
686 1.1 cgd * If a new connection request is received
687 1.1 cgd * while in TIME_WAIT, drop the old connection
688 1.1 cgd * and start over if the sequence numbers
689 1.1 cgd * are above the previous ones.
690 1.1 cgd */
691 1.1 cgd if (tiflags & TH_SYN &&
692 1.1 cgd tp->t_state == TCPS_TIME_WAIT &&
693 1.1 cgd SEQ_GT(ti->ti_seq, tp->rcv_nxt)) {
694 1.1 cgd iss = tp->rcv_nxt + TCP_ISSINCR;
695 1.1 cgd tp = tcp_close(tp);
696 1.1 cgd goto findpcb;
697 1.1 cgd }
698 1.1 cgd /*
699 1.1 cgd * If window is closed can only take segments at
700 1.1 cgd * window edge, and have to drop data and PUSH from
701 1.1 cgd * incoming segments. Continue processing, but
702 1.1 cgd * remember to ack. Otherwise, drop segment
703 1.1 cgd * and ack.
704 1.1 cgd */
705 1.1 cgd if (tp->rcv_wnd == 0 && ti->ti_seq == tp->rcv_nxt) {
706 1.1 cgd tp->t_flags |= TF_ACKNOW;
707 1.1 cgd tcpstat.tcps_rcvwinprobe++;
708 1.1 cgd } else
709 1.1 cgd goto dropafterack;
710 1.1 cgd } else
711 1.1 cgd tcpstat.tcps_rcvbyteafterwin += todrop;
712 1.1 cgd m_adj(m, -todrop);
713 1.1 cgd ti->ti_len -= todrop;
714 1.1 cgd tiflags &= ~(TH_PUSH|TH_FIN);
715 1.1 cgd }
716 1.1 cgd
717 1.1 cgd /*
718 1.1 cgd * If the RST bit is set examine the state:
719 1.1 cgd * SYN_RECEIVED STATE:
720 1.1 cgd * If passive open, return to LISTEN state.
721 1.1 cgd * If active open, inform user that connection was refused.
722 1.1 cgd * ESTABLISHED, FIN_WAIT_1, FIN_WAIT2, CLOSE_WAIT STATES:
723 1.1 cgd * Inform user that connection was reset, and close tcb.
724 1.1 cgd * CLOSING, LAST_ACK, TIME_WAIT STATES
725 1.1 cgd * Close the tcb.
726 1.1 cgd */
727 1.1 cgd if (tiflags&TH_RST) switch (tp->t_state) {
728 1.1 cgd
729 1.1 cgd case TCPS_SYN_RECEIVED:
730 1.1 cgd so->so_error = ECONNREFUSED;
731 1.1 cgd goto close;
732 1.1 cgd
733 1.1 cgd case TCPS_ESTABLISHED:
734 1.1 cgd case TCPS_FIN_WAIT_1:
735 1.1 cgd case TCPS_FIN_WAIT_2:
736 1.1 cgd case TCPS_CLOSE_WAIT:
737 1.1 cgd so->so_error = ECONNRESET;
738 1.1 cgd close:
739 1.1 cgd tp->t_state = TCPS_CLOSED;
740 1.1 cgd tcpstat.tcps_drops++;
741 1.1 cgd tp = tcp_close(tp);
742 1.1 cgd goto drop;
743 1.1 cgd
744 1.1 cgd case TCPS_CLOSING:
745 1.1 cgd case TCPS_LAST_ACK:
746 1.1 cgd case TCPS_TIME_WAIT:
747 1.1 cgd tp = tcp_close(tp);
748 1.1 cgd goto drop;
749 1.1 cgd }
750 1.1 cgd
751 1.1 cgd /*
752 1.1 cgd * If a SYN is in the window, then this is an
753 1.1 cgd * error and we send an RST and drop the connection.
754 1.1 cgd */
755 1.1 cgd if (tiflags & TH_SYN) {
756 1.1 cgd tp = tcp_drop(tp, ECONNRESET);
757 1.1 cgd goto dropwithreset;
758 1.1 cgd }
759 1.1 cgd
760 1.1 cgd /*
761 1.1 cgd * If the ACK bit is off we drop the segment and return.
762 1.1 cgd */
763 1.1 cgd if ((tiflags & TH_ACK) == 0)
764 1.1 cgd goto drop;
765 1.1 cgd
766 1.1 cgd /*
767 1.1 cgd * Ack processing.
768 1.1 cgd */
769 1.1 cgd switch (tp->t_state) {
770 1.1 cgd
771 1.1 cgd /*
772 1.1 cgd * In SYN_RECEIVED state if the ack ACKs our SYN then enter
773 1.1 cgd * ESTABLISHED state and continue processing, otherwise
774 1.1 cgd * send an RST.
775 1.1 cgd */
776 1.1 cgd case TCPS_SYN_RECEIVED:
777 1.1 cgd if (SEQ_GT(tp->snd_una, ti->ti_ack) ||
778 1.1 cgd SEQ_GT(ti->ti_ack, tp->snd_max))
779 1.1 cgd goto dropwithreset;
780 1.1 cgd tcpstat.tcps_connects++;
781 1.1 cgd soisconnected(so);
782 1.1 cgd tp->t_state = TCPS_ESTABLISHED;
783 1.1 cgd (void) tcp_reass(tp, (struct tcpiphdr *)0, (struct mbuf *)0);
784 1.1 cgd tp->snd_wl1 = ti->ti_seq - 1;
785 1.1 cgd /* fall into ... */
786 1.1 cgd
787 1.1 cgd /*
788 1.1 cgd * In ESTABLISHED state: drop duplicate ACKs; ACK out of range
789 1.1 cgd * ACKs. If the ack is in the range
790 1.1 cgd * tp->snd_una < ti->ti_ack <= tp->snd_max
791 1.1 cgd * then advance tp->snd_una to ti->ti_ack and drop
792 1.1 cgd * data from the retransmission queue. If this ACK reflects
793 1.1 cgd * more up to date window information we update our window information.
794 1.1 cgd */
795 1.1 cgd case TCPS_ESTABLISHED:
796 1.1 cgd case TCPS_FIN_WAIT_1:
797 1.1 cgd case TCPS_FIN_WAIT_2:
798 1.1 cgd case TCPS_CLOSE_WAIT:
799 1.1 cgd case TCPS_CLOSING:
800 1.1 cgd case TCPS_LAST_ACK:
801 1.1 cgd case TCPS_TIME_WAIT:
802 1.1 cgd
803 1.1 cgd if (SEQ_LEQ(ti->ti_ack, tp->snd_una)) {
804 1.1 cgd if (ti->ti_len == 0 && ti->ti_win == tp->snd_wnd) {
805 1.1 cgd tcpstat.tcps_rcvdupack++;
806 1.1 cgd /*
807 1.1 cgd * If we have outstanding data (other than
808 1.1 cgd * a window probe), this is a completely
809 1.1 cgd * duplicate ack (ie, window info didn't
810 1.1 cgd * change), the ack is the biggest we've
811 1.1 cgd * seen and we've seen exactly our rexmt
812 1.1 cgd * threshhold of them, assume a packet
813 1.1 cgd * has been dropped and retransmit it.
814 1.1 cgd * Kludge snd_nxt & the congestion
815 1.1 cgd * window so we send only this one
816 1.1 cgd * packet.
817 1.1 cgd *
818 1.1 cgd * We know we're losing at the current
819 1.1 cgd * window size so do congestion avoidance
820 1.1 cgd * (set ssthresh to half the current window
821 1.1 cgd * and pull our congestion window back to
822 1.1 cgd * the new ssthresh).
823 1.1 cgd *
824 1.1 cgd * Dup acks mean that packets have left the
825 1.1 cgd * network (they're now cached at the receiver)
826 1.1 cgd * so bump cwnd by the amount in the receiver
827 1.1 cgd * to keep a constant cwnd packets in the
828 1.1 cgd * network.
829 1.1 cgd */
830 1.1 cgd if (tp->t_timer[TCPT_REXMT] == 0 ||
831 1.1 cgd ti->ti_ack != tp->snd_una)
832 1.1 cgd tp->t_dupacks = 0;
833 1.1 cgd else if (++tp->t_dupacks == tcprexmtthresh) {
834 1.1 cgd tcp_seq onxt = tp->snd_nxt;
835 1.1 cgd u_int win =
836 1.1 cgd min(tp->snd_wnd, tp->snd_cwnd) / 2 /
837 1.1 cgd tp->t_maxseg;
838 1.1 cgd
839 1.1 cgd if (win < 2)
840 1.1 cgd win = 2;
841 1.1 cgd tp->snd_ssthresh = win * tp->t_maxseg;
842 1.1 cgd tp->t_timer[TCPT_REXMT] = 0;
843 1.1 cgd tp->t_rtt = 0;
844 1.1 cgd tp->snd_nxt = ti->ti_ack;
845 1.1 cgd tp->snd_cwnd = tp->t_maxseg;
846 1.1 cgd (void) tcp_output(tp);
847 1.1 cgd tp->snd_cwnd = tp->snd_ssthresh +
848 1.1 cgd tp->t_maxseg * tp->t_dupacks;
849 1.1 cgd if (SEQ_GT(onxt, tp->snd_nxt))
850 1.1 cgd tp->snd_nxt = onxt;
851 1.1 cgd goto drop;
852 1.1 cgd } else if (tp->t_dupacks > tcprexmtthresh) {
853 1.1 cgd tp->snd_cwnd += tp->t_maxseg;
854 1.1 cgd (void) tcp_output(tp);
855 1.1 cgd goto drop;
856 1.1 cgd }
857 1.1 cgd } else
858 1.1 cgd tp->t_dupacks = 0;
859 1.1 cgd break;
860 1.1 cgd }
861 1.1 cgd /*
862 1.1 cgd * If the congestion window was inflated to account
863 1.1 cgd * for the other side's cached packets, retract it.
864 1.1 cgd */
865 1.1 cgd if (tp->t_dupacks > tcprexmtthresh &&
866 1.1 cgd tp->snd_cwnd > tp->snd_ssthresh)
867 1.1 cgd tp->snd_cwnd = tp->snd_ssthresh;
868 1.1 cgd tp->t_dupacks = 0;
869 1.1 cgd if (SEQ_GT(ti->ti_ack, tp->snd_max)) {
870 1.1 cgd tcpstat.tcps_rcvacktoomuch++;
871 1.1 cgd goto dropafterack;
872 1.1 cgd }
873 1.1 cgd acked = ti->ti_ack - tp->snd_una;
874 1.1 cgd tcpstat.tcps_rcvackpack++;
875 1.1 cgd tcpstat.tcps_rcvackbyte += acked;
876 1.1 cgd
877 1.1 cgd /*
878 1.1 cgd * If transmit timer is running and timed sequence
879 1.1 cgd * number was acked, update smoothed round trip time.
880 1.1 cgd * Since we now have an rtt measurement, cancel the
881 1.1 cgd * timer backoff (cf., Phil Karn's retransmit alg.).
882 1.1 cgd * Recompute the initial retransmit timer.
883 1.1 cgd */
884 1.1 cgd if (tp->t_rtt && SEQ_GT(ti->ti_ack, tp->t_rtseq))
885 1.1 cgd tcp_xmit_timer(tp);
886 1.1 cgd
887 1.1 cgd /*
888 1.1 cgd * If all outstanding data is acked, stop retransmit
889 1.1 cgd * timer and remember to restart (more output or persist).
890 1.1 cgd * If there is more data to be acked, restart retransmit
891 1.1 cgd * timer, using current (possibly backed-off) value.
892 1.1 cgd */
893 1.1 cgd if (ti->ti_ack == tp->snd_max) {
894 1.1 cgd tp->t_timer[TCPT_REXMT] = 0;
895 1.1 cgd needoutput = 1;
896 1.1 cgd } else if (tp->t_timer[TCPT_PERSIST] == 0)
897 1.1 cgd tp->t_timer[TCPT_REXMT] = tp->t_rxtcur;
898 1.1 cgd /*
899 1.1 cgd * When new data is acked, open the congestion window.
900 1.1 cgd * If the window gives us less than ssthresh packets
901 1.1 cgd * in flight, open exponentially (maxseg per packet).
902 1.1 cgd * Otherwise open linearly: maxseg per window
903 1.1 cgd * (maxseg^2 / cwnd per packet), plus a constant
904 1.1 cgd * fraction of a packet (maxseg/8) to help larger windows
905 1.1 cgd * open quickly enough.
906 1.1 cgd */
907 1.1 cgd {
908 1.1 cgd register u_int cw = tp->snd_cwnd;
909 1.1 cgd register u_int incr = tp->t_maxseg;
910 1.1 cgd
911 1.1 cgd if (cw > tp->snd_ssthresh)
912 1.1 cgd incr = incr * incr / cw + incr / 8;
913 1.1 cgd tp->snd_cwnd = min(cw + incr, TCP_MAXWIN);
914 1.1 cgd }
915 1.1 cgd if (acked > so->so_snd.sb_cc) {
916 1.1 cgd tp->snd_wnd -= so->so_snd.sb_cc;
917 1.1 cgd sbdrop(&so->so_snd, (int)so->so_snd.sb_cc);
918 1.1 cgd ourfinisacked = 1;
919 1.1 cgd } else {
920 1.1 cgd sbdrop(&so->so_snd, acked);
921 1.1 cgd tp->snd_wnd -= acked;
922 1.1 cgd ourfinisacked = 0;
923 1.1 cgd }
924 1.1 cgd if (so->so_snd.sb_flags & SB_NOTIFY)
925 1.1 cgd sowwakeup(so);
926 1.1 cgd tp->snd_una = ti->ti_ack;
927 1.1 cgd if (SEQ_LT(tp->snd_nxt, tp->snd_una))
928 1.1 cgd tp->snd_nxt = tp->snd_una;
929 1.1 cgd
930 1.1 cgd switch (tp->t_state) {
931 1.1 cgd
932 1.1 cgd /*
933 1.1 cgd * In FIN_WAIT_1 STATE in addition to the processing
934 1.1 cgd * for the ESTABLISHED state if our FIN is now acknowledged
935 1.1 cgd * then enter FIN_WAIT_2.
936 1.1 cgd */
937 1.1 cgd case TCPS_FIN_WAIT_1:
938 1.1 cgd if (ourfinisacked) {
939 1.1 cgd /*
940 1.1 cgd * If we can't receive any more
941 1.1 cgd * data, then closing user can proceed.
942 1.1 cgd * Starting the timer is contrary to the
943 1.1 cgd * specification, but if we don't get a FIN
944 1.1 cgd * we'll hang forever.
945 1.1 cgd */
946 1.1 cgd if (so->so_state & SS_CANTRCVMORE) {
947 1.1 cgd soisdisconnected(so);
948 1.1 cgd tp->t_timer[TCPT_2MSL] = tcp_maxidle;
949 1.1 cgd }
950 1.1 cgd tp->t_state = TCPS_FIN_WAIT_2;
951 1.1 cgd }
952 1.1 cgd break;
953 1.1 cgd
954 1.1 cgd /*
955 1.1 cgd * In CLOSING STATE in addition to the processing for
956 1.1 cgd * the ESTABLISHED state if the ACK acknowledges our FIN
957 1.1 cgd * then enter the TIME-WAIT state, otherwise ignore
958 1.1 cgd * the segment.
959 1.1 cgd */
960 1.1 cgd case TCPS_CLOSING:
961 1.1 cgd if (ourfinisacked) {
962 1.1 cgd tp->t_state = TCPS_TIME_WAIT;
963 1.1 cgd tcp_canceltimers(tp);
964 1.1 cgd tp->t_timer[TCPT_2MSL] = 2 * TCPTV_MSL;
965 1.1 cgd soisdisconnected(so);
966 1.1 cgd }
967 1.1 cgd break;
968 1.1 cgd
969 1.1 cgd /*
970 1.1 cgd * In LAST_ACK, we may still be waiting for data to drain
971 1.1 cgd * and/or to be acked, as well as for the ack of our FIN.
972 1.1 cgd * If our FIN is now acknowledged, delete the TCB,
973 1.1 cgd * enter the closed state and return.
974 1.1 cgd */
975 1.1 cgd case TCPS_LAST_ACK:
976 1.1 cgd if (ourfinisacked) {
977 1.1 cgd tp = tcp_close(tp);
978 1.1 cgd goto drop;
979 1.1 cgd }
980 1.1 cgd break;
981 1.1 cgd
982 1.1 cgd /*
983 1.1 cgd * In TIME_WAIT state the only thing that should arrive
984 1.1 cgd * is a retransmission of the remote FIN. Acknowledge
985 1.1 cgd * it and restart the finack timer.
986 1.1 cgd */
987 1.1 cgd case TCPS_TIME_WAIT:
988 1.1 cgd tp->t_timer[TCPT_2MSL] = 2 * TCPTV_MSL;
989 1.1 cgd goto dropafterack;
990 1.1 cgd }
991 1.1 cgd }
992 1.1 cgd
993 1.1 cgd step6:
994 1.1 cgd /*
995 1.1 cgd * Update window information.
996 1.1 cgd * Don't look at window if no ACK: TAC's send garbage on first SYN.
997 1.1 cgd */
998 1.1 cgd if ((tiflags & TH_ACK) &&
999 1.1 cgd (SEQ_LT(tp->snd_wl1, ti->ti_seq) || tp->snd_wl1 == ti->ti_seq &&
1000 1.1 cgd (SEQ_LT(tp->snd_wl2, ti->ti_ack) ||
1001 1.1 cgd tp->snd_wl2 == ti->ti_ack && ti->ti_win > tp->snd_wnd))) {
1002 1.1 cgd /* keep track of pure window updates */
1003 1.1 cgd if (ti->ti_len == 0 &&
1004 1.1 cgd tp->snd_wl2 == ti->ti_ack && ti->ti_win > tp->snd_wnd)
1005 1.1 cgd tcpstat.tcps_rcvwinupd++;
1006 1.1 cgd tp->snd_wnd = ti->ti_win;
1007 1.1 cgd tp->snd_wl1 = ti->ti_seq;
1008 1.1 cgd tp->snd_wl2 = ti->ti_ack;
1009 1.1 cgd if (tp->snd_wnd > tp->max_sndwnd)
1010 1.1 cgd tp->max_sndwnd = tp->snd_wnd;
1011 1.1 cgd needoutput = 1;
1012 1.1 cgd }
1013 1.1 cgd
1014 1.1 cgd /*
1015 1.1 cgd * Process segments with URG.
1016 1.1 cgd */
1017 1.1 cgd if ((tiflags & TH_URG) && ti->ti_urp &&
1018 1.1 cgd TCPS_HAVERCVDFIN(tp->t_state) == 0) {
1019 1.1 cgd /*
1020 1.1 cgd * This is a kludge, but if we receive and accept
1021 1.1 cgd * random urgent pointers, we'll crash in
1022 1.1 cgd * soreceive. It's hard to imagine someone
1023 1.1 cgd * actually wanting to send this much urgent data.
1024 1.1 cgd */
1025 1.1 cgd if (ti->ti_urp + so->so_rcv.sb_cc > SB_MAX) {
1026 1.1 cgd ti->ti_urp = 0; /* XXX */
1027 1.1 cgd tiflags &= ~TH_URG; /* XXX */
1028 1.1 cgd goto dodata; /* XXX */
1029 1.1 cgd }
1030 1.1 cgd /*
1031 1.1 cgd * If this segment advances the known urgent pointer,
1032 1.1 cgd * then mark the data stream. This should not happen
1033 1.1 cgd * in CLOSE_WAIT, CLOSING, LAST_ACK or TIME_WAIT STATES since
1034 1.1 cgd * a FIN has been received from the remote side.
1035 1.1 cgd * In these states we ignore the URG.
1036 1.1 cgd *
1037 1.1 cgd * According to RFC961 (Assigned Protocols),
1038 1.1 cgd * the urgent pointer points to the last octet
1039 1.1 cgd * of urgent data. We continue, however,
1040 1.1 cgd * to consider it to indicate the first octet
1041 1.1 cgd * of data past the urgent section as the original
1042 1.1 cgd * spec states (in one of two places).
1043 1.1 cgd */
1044 1.1 cgd if (SEQ_GT(ti->ti_seq+ti->ti_urp, tp->rcv_up)) {
1045 1.1 cgd tp->rcv_up = ti->ti_seq + ti->ti_urp;
1046 1.1 cgd so->so_oobmark = so->so_rcv.sb_cc +
1047 1.1 cgd (tp->rcv_up - tp->rcv_nxt) - 1;
1048 1.1 cgd if (so->so_oobmark == 0)
1049 1.1 cgd so->so_state |= SS_RCVATMARK;
1050 1.1 cgd sohasoutofband(so);
1051 1.1 cgd tp->t_oobflags &= ~(TCPOOB_HAVEDATA | TCPOOB_HADDATA);
1052 1.1 cgd }
1053 1.1 cgd /*
1054 1.1 cgd * Remove out of band data so doesn't get presented to user.
1055 1.1 cgd * This can happen independent of advancing the URG pointer,
1056 1.1 cgd * but if two URG's are pending at once, some out-of-band
1057 1.1 cgd * data may creep in... ick.
1058 1.1 cgd */
1059 1.1 cgd if (ti->ti_urp <= ti->ti_len
1060 1.1 cgd #ifdef SO_OOBINLINE
1061 1.1 cgd && (so->so_options & SO_OOBINLINE) == 0
1062 1.1 cgd #endif
1063 1.1 cgd )
1064 1.1 cgd tcp_pulloutofband(so, ti, m);
1065 1.1 cgd } else
1066 1.1 cgd /*
1067 1.1 cgd * If no out of band data is expected,
1068 1.1 cgd * pull receive urgent pointer along
1069 1.1 cgd * with the receive window.
1070 1.1 cgd */
1071 1.1 cgd if (SEQ_GT(tp->rcv_nxt, tp->rcv_up))
1072 1.1 cgd tp->rcv_up = tp->rcv_nxt;
1073 1.1 cgd dodata: /* XXX */
1074 1.1 cgd
1075 1.1 cgd /*
1076 1.1 cgd * Process the segment text, merging it into the TCP sequencing queue,
1077 1.1 cgd * and arranging for acknowledgment of receipt if necessary.
1078 1.1 cgd * This process logically involves adjusting tp->rcv_wnd as data
1079 1.1 cgd * is presented to the user (this happens in tcp_usrreq.c,
1080 1.1 cgd * case PRU_RCVD). If a FIN has already been received on this
1081 1.1 cgd * connection then we just ignore the text.
1082 1.1 cgd */
1083 1.1 cgd if ((ti->ti_len || (tiflags&TH_FIN)) &&
1084 1.1 cgd TCPS_HAVERCVDFIN(tp->t_state) == 0) {
1085 1.1 cgd TCP_REASS(tp, ti, m, so, tiflags);
1086 1.1 cgd /*
1087 1.1 cgd * Note the amount of data that peer has sent into
1088 1.1 cgd * our window, in order to estimate the sender's
1089 1.1 cgd * buffer size.
1090 1.1 cgd */
1091 1.1 cgd len = so->so_rcv.sb_hiwat - (tp->rcv_adv - tp->rcv_nxt);
1092 1.1 cgd } else {
1093 1.1 cgd m_freem(m);
1094 1.1 cgd tiflags &= ~TH_FIN;
1095 1.1 cgd }
1096 1.1 cgd
1097 1.1 cgd /*
1098 1.1 cgd * If FIN is received ACK the FIN and let the user know
1099 1.1 cgd * that the connection is closing.
1100 1.1 cgd */
1101 1.1 cgd if (tiflags & TH_FIN) {
1102 1.1 cgd if (TCPS_HAVERCVDFIN(tp->t_state) == 0) {
1103 1.1 cgd socantrcvmore(so);
1104 1.1 cgd tp->t_flags |= TF_ACKNOW;
1105 1.1 cgd tp->rcv_nxt++;
1106 1.1 cgd }
1107 1.1 cgd switch (tp->t_state) {
1108 1.1 cgd
1109 1.1 cgd /*
1110 1.1 cgd * In SYN_RECEIVED and ESTABLISHED STATES
1111 1.1 cgd * enter the CLOSE_WAIT state.
1112 1.1 cgd */
1113 1.1 cgd case TCPS_SYN_RECEIVED:
1114 1.1 cgd case TCPS_ESTABLISHED:
1115 1.1 cgd tp->t_state = TCPS_CLOSE_WAIT;
1116 1.1 cgd break;
1117 1.1 cgd
1118 1.1 cgd /*
1119 1.1 cgd * If still in FIN_WAIT_1 STATE FIN has not been acked so
1120 1.1 cgd * enter the CLOSING state.
1121 1.1 cgd */
1122 1.1 cgd case TCPS_FIN_WAIT_1:
1123 1.1 cgd tp->t_state = TCPS_CLOSING;
1124 1.1 cgd break;
1125 1.1 cgd
1126 1.1 cgd /*
1127 1.1 cgd * In FIN_WAIT_2 state enter the TIME_WAIT state,
1128 1.1 cgd * starting the time-wait timer, turning off the other
1129 1.1 cgd * standard timers.
1130 1.1 cgd */
1131 1.1 cgd case TCPS_FIN_WAIT_2:
1132 1.1 cgd tp->t_state = TCPS_TIME_WAIT;
1133 1.1 cgd tcp_canceltimers(tp);
1134 1.1 cgd tp->t_timer[TCPT_2MSL] = 2 * TCPTV_MSL;
1135 1.1 cgd soisdisconnected(so);
1136 1.1 cgd break;
1137 1.1 cgd
1138 1.1 cgd /*
1139 1.1 cgd * In TIME_WAIT state restart the 2 MSL time_wait timer.
1140 1.1 cgd */
1141 1.1 cgd case TCPS_TIME_WAIT:
1142 1.1 cgd tp->t_timer[TCPT_2MSL] = 2 * TCPTV_MSL;
1143 1.1 cgd break;
1144 1.1 cgd }
1145 1.1 cgd }
1146 1.1 cgd if (so->so_options & SO_DEBUG)
1147 1.1 cgd tcp_trace(TA_INPUT, ostate, tp, &tcp_saveti, 0);
1148 1.1 cgd
1149 1.1 cgd /*
1150 1.1 cgd * Return any desired output.
1151 1.1 cgd */
1152 1.1 cgd if (needoutput || (tp->t_flags & TF_ACKNOW))
1153 1.1 cgd (void) tcp_output(tp);
1154 1.1 cgd return;
1155 1.1 cgd
1156 1.1 cgd dropafterack:
1157 1.1 cgd /*
1158 1.1 cgd * Generate an ACK dropping incoming segment if it occupies
1159 1.1 cgd * sequence space, where the ACK reflects our state.
1160 1.1 cgd */
1161 1.1 cgd if (tiflags & TH_RST)
1162 1.1 cgd goto drop;
1163 1.1 cgd m_freem(m);
1164 1.1 cgd tp->t_flags |= TF_ACKNOW;
1165 1.1 cgd (void) tcp_output(tp);
1166 1.1 cgd return;
1167 1.1 cgd
1168 1.1 cgd dropwithreset:
1169 1.1 cgd if (om) {
1170 1.1 cgd (void) m_free(om);
1171 1.1 cgd om = 0;
1172 1.1 cgd }
1173 1.1 cgd /*
1174 1.1 cgd * Generate a RST, dropping incoming segment.
1175 1.1 cgd * Make ACK acceptable to originator of segment.
1176 1.1 cgd * Don't bother to respond if destination was broadcast.
1177 1.1 cgd */
1178 1.1 cgd if ((tiflags & TH_RST) || m->m_flags & M_BCAST)
1179 1.1 cgd goto drop;
1180 1.1 cgd if (tiflags & TH_ACK)
1181 1.1 cgd tcp_respond(tp, ti, m, (tcp_seq)0, ti->ti_ack, TH_RST);
1182 1.1 cgd else {
1183 1.1 cgd if (tiflags & TH_SYN)
1184 1.1 cgd ti->ti_len++;
1185 1.1 cgd tcp_respond(tp, ti, m, ti->ti_seq+ti->ti_len, (tcp_seq)0,
1186 1.1 cgd TH_RST|TH_ACK);
1187 1.1 cgd }
1188 1.1 cgd /* destroy temporarily created socket */
1189 1.1 cgd if (dropsocket)
1190 1.1 cgd (void) soabort(so);
1191 1.1 cgd return;
1192 1.1 cgd
1193 1.1 cgd drop:
1194 1.1 cgd if (om)
1195 1.1 cgd (void) m_free(om);
1196 1.1 cgd /*
1197 1.1 cgd * Drop space held by incoming segment and return.
1198 1.1 cgd */
1199 1.1 cgd if (tp && (tp->t_inpcb->inp_socket->so_options & SO_DEBUG))
1200 1.1 cgd tcp_trace(TA_DROP, ostate, tp, &tcp_saveti, 0);
1201 1.1 cgd m_freem(m);
1202 1.1 cgd /* destroy temporarily created socket */
1203 1.1 cgd if (dropsocket)
1204 1.1 cgd (void) soabort(so);
1205 1.1 cgd return;
1206 1.1 cgd }
1207 1.1 cgd
1208 1.1 cgd tcp_dooptions(tp, om, ti)
1209 1.1 cgd struct tcpcb *tp;
1210 1.1 cgd struct mbuf *om;
1211 1.1 cgd struct tcpiphdr *ti;
1212 1.1 cgd {
1213 1.1 cgd register u_char *cp;
1214 1.1 cgd u_short mss;
1215 1.1 cgd int opt, optlen, cnt;
1216 1.1 cgd
1217 1.1 cgd cp = mtod(om, u_char *);
1218 1.1 cgd cnt = om->m_len;
1219 1.1 cgd for (; cnt > 0; cnt -= optlen, cp += optlen) {
1220 1.1 cgd opt = cp[0];
1221 1.1 cgd if (opt == TCPOPT_EOL)
1222 1.1 cgd break;
1223 1.1 cgd if (opt == TCPOPT_NOP)
1224 1.1 cgd optlen = 1;
1225 1.1 cgd else {
1226 1.1 cgd optlen = cp[1];
1227 1.1 cgd if (optlen <= 0)
1228 1.1 cgd break;
1229 1.1 cgd }
1230 1.1 cgd switch (opt) {
1231 1.1 cgd
1232 1.1 cgd default:
1233 1.1 cgd continue;
1234 1.1 cgd
1235 1.1 cgd case TCPOPT_MAXSEG:
1236 1.1 cgd if (optlen != 4)
1237 1.1 cgd continue;
1238 1.1 cgd if (!(ti->ti_flags & TH_SYN))
1239 1.1 cgd continue;
1240 1.1 cgd bcopy((char *) cp + 2, (char *) &mss, sizeof(mss));
1241 1.1 cgd NTOHS(mss);
1242 1.1 cgd (void) tcp_mss(tp, mss); /* sets t_maxseg */
1243 1.1 cgd break;
1244 1.1 cgd }
1245 1.1 cgd }
1246 1.1 cgd (void) m_free(om);
1247 1.1 cgd }
1248 1.1 cgd
1249 1.1 cgd /*
1250 1.1 cgd * Pull out of band byte out of a segment so
1251 1.1 cgd * it doesn't appear in the user's data queue.
1252 1.1 cgd * It is still reflected in the segment length for
1253 1.1 cgd * sequencing purposes.
1254 1.1 cgd */
1255 1.1 cgd tcp_pulloutofband(so, ti, m)
1256 1.1 cgd struct socket *so;
1257 1.1 cgd struct tcpiphdr *ti;
1258 1.1 cgd register struct mbuf *m;
1259 1.1 cgd {
1260 1.1 cgd int cnt = ti->ti_urp - 1;
1261 1.1 cgd
1262 1.1 cgd while (cnt >= 0) {
1263 1.1 cgd if (m->m_len > cnt) {
1264 1.1 cgd char *cp = mtod(m, caddr_t) + cnt;
1265 1.1 cgd struct tcpcb *tp = sototcpcb(so);
1266 1.1 cgd
1267 1.1 cgd tp->t_iobc = *cp;
1268 1.1 cgd tp->t_oobflags |= TCPOOB_HAVEDATA;
1269 1.1 cgd bcopy(cp+1, cp, (unsigned)(m->m_len - cnt - 1));
1270 1.1 cgd m->m_len--;
1271 1.1 cgd return;
1272 1.1 cgd }
1273 1.1 cgd cnt -= m->m_len;
1274 1.1 cgd m = m->m_next;
1275 1.1 cgd if (m == 0)
1276 1.1 cgd break;
1277 1.1 cgd }
1278 1.1 cgd panic("tcp_pulloutofband");
1279 1.1 cgd }
1280 1.1 cgd
1281 1.1 cgd /*
1282 1.1 cgd * Collect new round-trip time estimate
1283 1.1 cgd * and update averages and current timeout.
1284 1.1 cgd */
1285 1.1 cgd tcp_xmit_timer(tp)
1286 1.1 cgd register struct tcpcb *tp;
1287 1.1 cgd {
1288 1.1 cgd register short delta;
1289 1.1 cgd
1290 1.1 cgd tcpstat.tcps_rttupdated++;
1291 1.1 cgd if (tp->t_srtt != 0) {
1292 1.1 cgd /*
1293 1.1 cgd * srtt is stored as fixed point with 3 bits after the
1294 1.1 cgd * binary point (i.e., scaled by 8). The following magic
1295 1.1 cgd * is equivalent to the smoothing algorithm in rfc793 with
1296 1.1 cgd * an alpha of .875 (srtt = rtt/8 + srtt*7/8 in fixed
1297 1.1 cgd * point). Adjust t_rtt to origin 0.
1298 1.1 cgd */
1299 1.1 cgd delta = tp->t_rtt - 1 - (tp->t_srtt >> TCP_RTT_SHIFT);
1300 1.1 cgd if ((tp->t_srtt += delta) <= 0)
1301 1.1 cgd tp->t_srtt = 1;
1302 1.1 cgd /*
1303 1.1 cgd * We accumulate a smoothed rtt variance (actually, a
1304 1.1 cgd * smoothed mean difference), then set the retransmit
1305 1.1 cgd * timer to smoothed rtt + 4 times the smoothed variance.
1306 1.1 cgd * rttvar is stored as fixed point with 2 bits after the
1307 1.1 cgd * binary point (scaled by 4). The following is
1308 1.1 cgd * equivalent to rfc793 smoothing with an alpha of .75
1309 1.1 cgd * (rttvar = rttvar*3/4 + |delta| / 4). This replaces
1310 1.1 cgd * rfc793's wired-in beta.
1311 1.1 cgd */
1312 1.1 cgd if (delta < 0)
1313 1.1 cgd delta = -delta;
1314 1.1 cgd delta -= (tp->t_rttvar >> TCP_RTTVAR_SHIFT);
1315 1.1 cgd if ((tp->t_rttvar += delta) <= 0)
1316 1.1 cgd tp->t_rttvar = 1;
1317 1.1 cgd } else {
1318 1.1 cgd /*
1319 1.1 cgd * No rtt measurement yet - use the unsmoothed rtt.
1320 1.1 cgd * Set the variance to half the rtt (so our first
1321 1.1 cgd * retransmit happens at 2*rtt)
1322 1.1 cgd */
1323 1.1 cgd tp->t_srtt = tp->t_rtt << TCP_RTT_SHIFT;
1324 1.1 cgd tp->t_rttvar = tp->t_rtt << (TCP_RTTVAR_SHIFT - 1);
1325 1.1 cgd }
1326 1.1 cgd tp->t_rtt = 0;
1327 1.1 cgd tp->t_rxtshift = 0;
1328 1.1 cgd
1329 1.1 cgd /*
1330 1.1 cgd * the retransmit should happen at rtt + 4 * rttvar.
1331 1.1 cgd * Because of the way we do the smoothing, srtt and rttvar
1332 1.1 cgd * will each average +1/2 tick of bias. When we compute
1333 1.1 cgd * the retransmit timer, we want 1/2 tick of rounding and
1334 1.1 cgd * 1 extra tick because of +-1/2 tick uncertainty in the
1335 1.1 cgd * firing of the timer. The bias will give us exactly the
1336 1.1 cgd * 1.5 tick we need. But, because the bias is
1337 1.1 cgd * statistical, we have to test that we don't drop below
1338 1.1 cgd * the minimum feasible timer (which is 2 ticks).
1339 1.1 cgd */
1340 1.1 cgd TCPT_RANGESET(tp->t_rxtcur, TCP_REXMTVAL(tp),
1341 1.1 cgd tp->t_rttmin, TCPTV_REXMTMAX);
1342 1.1 cgd
1343 1.1 cgd /*
1344 1.1 cgd * We received an ack for a packet that wasn't retransmitted;
1345 1.1 cgd * it is probably safe to discard any error indications we've
1346 1.1 cgd * received recently. This isn't quite right, but close enough
1347 1.1 cgd * for now (a route might have failed after we sent a segment,
1348 1.1 cgd * and the return path might not be symmetrical).
1349 1.1 cgd */
1350 1.1 cgd tp->t_softerror = 0;
1351 1.1 cgd }
1352 1.1 cgd
1353 1.1 cgd /*
1354 1.1 cgd * Determine a reasonable value for maxseg size.
1355 1.1 cgd * If the route is known, check route for mtu.
1356 1.1 cgd * If none, use an mss that can be handled on the outgoing
1357 1.1 cgd * interface without forcing IP to fragment; if bigger than
1358 1.1 cgd * an mbuf cluster (MCLBYTES), round down to nearest multiple of MCLBYTES
1359 1.1 cgd * to utilize large mbufs. If no route is found, route has no mtu,
1360 1.1 cgd * or the destination isn't local, use a default, hopefully conservative
1361 1.1 cgd * size (usually 512 or the default IP max size, but no more than the mtu
1362 1.1 cgd * of the interface), as we can't discover anything about intervening
1363 1.1 cgd * gateways or networks. We also initialize the congestion/slow start
1364 1.1 cgd * window to be a single segment if the destination isn't local.
1365 1.1 cgd * While looking at the routing entry, we also initialize other path-dependent
1366 1.1 cgd * parameters from pre-set or cached values in the routing entry.
1367 1.1 cgd */
1368 1.1 cgd
1369 1.1 cgd tcp_mss(tp, offer)
1370 1.1 cgd register struct tcpcb *tp;
1371 1.1 cgd u_short offer;
1372 1.1 cgd {
1373 1.1 cgd struct route *ro;
1374 1.1 cgd register struct rtentry *rt;
1375 1.1 cgd struct ifnet *ifp;
1376 1.1 cgd register int rtt, mss;
1377 1.1 cgd u_long bufsize;
1378 1.1 cgd struct inpcb *inp;
1379 1.1 cgd struct socket *so;
1380 1.1 cgd extern int tcp_mssdflt, tcp_rttdflt;
1381 1.1 cgd
1382 1.1 cgd inp = tp->t_inpcb;
1383 1.1 cgd ro = &inp->inp_route;
1384 1.1 cgd
1385 1.1 cgd if ((rt = ro->ro_rt) == (struct rtentry *)0) {
1386 1.1 cgd /* No route yet, so try to acquire one */
1387 1.1 cgd if (inp->inp_faddr.s_addr != INADDR_ANY) {
1388 1.1 cgd ro->ro_dst.sa_family = AF_INET;
1389 1.1 cgd ro->ro_dst.sa_len = sizeof(ro->ro_dst);
1390 1.1 cgd ((struct sockaddr_in *) &ro->ro_dst)->sin_addr =
1391 1.1 cgd inp->inp_faddr;
1392 1.1 cgd rtalloc(ro);
1393 1.1 cgd }
1394 1.1 cgd if ((rt = ro->ro_rt) == (struct rtentry *)0)
1395 1.1 cgd return (tcp_mssdflt);
1396 1.1 cgd }
1397 1.1 cgd ifp = rt->rt_ifp;
1398 1.1 cgd so = inp->inp_socket;
1399 1.1 cgd
1400 1.1 cgd #ifdef RTV_MTU /* if route characteristics exist ... */
1401 1.1 cgd /*
1402 1.1 cgd * While we're here, check if there's an initial rtt
1403 1.1 cgd * or rttvar. Convert from the route-table units
1404 1.1 cgd * to scaled multiples of the slow timeout timer.
1405 1.1 cgd */
1406 1.1 cgd if (tp->t_srtt == 0 && (rtt = rt->rt_rmx.rmx_rtt)) {
1407 1.1 cgd if (rt->rt_rmx.rmx_locks & RTV_MTU)
1408 1.1 cgd tp->t_rttmin = rtt / (RTM_RTTUNIT / PR_SLOWHZ);
1409 1.1 cgd tp->t_srtt = rtt / (RTM_RTTUNIT / (PR_SLOWHZ * TCP_RTT_SCALE));
1410 1.1 cgd if (rt->rt_rmx.rmx_rttvar)
1411 1.1 cgd tp->t_rttvar = rt->rt_rmx.rmx_rttvar /
1412 1.1 cgd (RTM_RTTUNIT / (PR_SLOWHZ * TCP_RTTVAR_SCALE));
1413 1.1 cgd else
1414 1.1 cgd /* default variation is +- 1 rtt */
1415 1.1 cgd tp->t_rttvar =
1416 1.1 cgd tp->t_srtt * TCP_RTTVAR_SCALE / TCP_RTT_SCALE;
1417 1.1 cgd TCPT_RANGESET(tp->t_rxtcur,
1418 1.1 cgd ((tp->t_srtt >> 2) + tp->t_rttvar) >> 1,
1419 1.1 cgd tp->t_rttmin, TCPTV_REXMTMAX);
1420 1.1 cgd }
1421 1.1 cgd /*
1422 1.1 cgd * if there's an mtu associated with the route, use it
1423 1.1 cgd */
1424 1.1 cgd if (rt->rt_rmx.rmx_mtu)
1425 1.1 cgd mss = rt->rt_rmx.rmx_mtu - sizeof(struct tcpiphdr);
1426 1.1 cgd else
1427 1.1 cgd #endif /* RTV_MTU */
1428 1.1 cgd {
1429 1.1 cgd mss = ifp->if_mtu - sizeof(struct tcpiphdr);
1430 1.1 cgd #if (MCLBYTES & (MCLBYTES - 1)) == 0
1431 1.1 cgd if (mss > MCLBYTES)
1432 1.1 cgd mss &= ~(MCLBYTES-1);
1433 1.1 cgd #else
1434 1.1 cgd if (mss > MCLBYTES)
1435 1.1 cgd mss = mss / MCLBYTES * MCLBYTES;
1436 1.1 cgd #endif
1437 1.1 cgd if (!in_localaddr(inp->inp_faddr))
1438 1.1 cgd mss = min(mss, tcp_mssdflt);
1439 1.1 cgd }
1440 1.1 cgd /*
1441 1.1 cgd * The current mss, t_maxseg, is initialized to the default value.
1442 1.1 cgd * If we compute a smaller value, reduce the current mss.
1443 1.1 cgd * If we compute a larger value, return it for use in sending
1444 1.1 cgd * a max seg size option, but don't store it for use
1445 1.1 cgd * unless we received an offer at least that large from peer.
1446 1.1 cgd * However, do not accept offers under 32 bytes.
1447 1.1 cgd */
1448 1.1 cgd if (offer)
1449 1.1 cgd mss = min(mss, offer);
1450 1.1 cgd mss = max(mss, 32); /* sanity */
1451 1.1 cgd if (mss < tp->t_maxseg || offer != 0) {
1452 1.1 cgd /*
1453 1.1 cgd * If there's a pipesize, change the socket buffer
1454 1.1 cgd * to that size. Make the socket buffers an integral
1455 1.1 cgd * number of mss units; if the mss is larger than
1456 1.1 cgd * the socket buffer, decrease the mss.
1457 1.1 cgd */
1458 1.1 cgd #ifdef RTV_SPIPE
1459 1.1 cgd if ((bufsize = rt->rt_rmx.rmx_sendpipe) == 0)
1460 1.1 cgd #endif
1461 1.1 cgd bufsize = so->so_snd.sb_hiwat;
1462 1.1 cgd if (bufsize < mss)
1463 1.1 cgd mss = bufsize;
1464 1.1 cgd else {
1465 1.1 cgd bufsize = min(bufsize, SB_MAX) / mss * mss;
1466 1.1 cgd (void) sbreserve(&so->so_snd, bufsize);
1467 1.1 cgd }
1468 1.1 cgd tp->t_maxseg = mss;
1469 1.1 cgd
1470 1.1 cgd #ifdef RTV_RPIPE
1471 1.1 cgd if ((bufsize = rt->rt_rmx.rmx_recvpipe) == 0)
1472 1.1 cgd #endif
1473 1.1 cgd bufsize = so->so_rcv.sb_hiwat;
1474 1.1 cgd if (bufsize > mss) {
1475 1.1 cgd bufsize = min(bufsize, SB_MAX) / mss * mss;
1476 1.1 cgd (void) sbreserve(&so->so_rcv, bufsize);
1477 1.1 cgd }
1478 1.1 cgd }
1479 1.1 cgd tp->snd_cwnd = mss;
1480 1.1 cgd
1481 1.1 cgd #ifdef RTV_SSTHRESH
1482 1.1 cgd if (rt->rt_rmx.rmx_ssthresh) {
1483 1.1 cgd /*
1484 1.1 cgd * There's some sort of gateway or interface
1485 1.1 cgd * buffer limit on the path. Use this to set
1486 1.1 cgd * the slow start threshhold, but set the
1487 1.1 cgd * threshold to no less than 2*mss.
1488 1.1 cgd */
1489 1.1 cgd tp->snd_ssthresh = max(2 * mss, rt->rt_rmx.rmx_ssthresh);
1490 1.1 cgd }
1491 1.1 cgd #endif /* RTV_MTU */
1492 1.1 cgd return (mss);
1493 1.1 cgd }
1494