Merge git://git.kernel.org/pub/scm/linux/kernel/git/sfrench/cifs-2.6
[deliverable/linux.git] / net / ipv4 / netfilter / ip_conntrack_proto_tcp.c
1 /* (C) 1999-2001 Paul `Rusty' Russell
2 * (C) 2002-2004 Netfilter Core Team <coreteam@netfilter.org>
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License version 2 as
6 * published by the Free Software Foundation.
7 *
8 * Jozsef Kadlecsik <kadlec@blackhole.kfki.hu>:
9 * - Real stateful connection tracking
10 * - Modified state transitions table
11 * - Window scaling support added
12 * - SACK support added
13 *
14 * Willy Tarreau:
15 * - State table bugfixes
16 * - More robust state changes
17 * - Tuning timer parameters
18 *
19 * version 2.2
20 */
21
22 #include <linux/types.h>
23 #include <linux/sched.h>
24 #include <linux/timer.h>
25 #include <linux/netfilter.h>
26 #include <linux/module.h>
27 #include <linux/in.h>
28 #include <linux/ip.h>
29 #include <linux/tcp.h>
30 #include <linux/spinlock.h>
31
32 #include <net/tcp.h>
33
34 #include <linux/netfilter_ipv4.h>
35 #include <linux/netfilter_ipv4/ip_conntrack.h>
36 #include <linux/netfilter_ipv4/ip_conntrack_protocol.h>
37
38 #if 0
39 #define DEBUGP printk
40 #define DEBUGP_VARS
41 #else
42 #define DEBUGP(format, args...)
43 #endif
44
45 /* Protects conntrack->proto.tcp */
46 static DEFINE_RWLOCK(tcp_lock);
47
48 /* "Be conservative in what you do,
49 be liberal in what you accept from others."
50 If it's non-zero, we mark only out of window RST segments as INVALID. */
51 int ip_ct_tcp_be_liberal __read_mostly = 0;
52
53 /* When connection is picked up from the middle, how many packets are required
54 to pass in each direction when we assume we are in sync - if any side uses
55 window scaling, we lost the game.
56 If it is set to zero, we disable picking up already established
57 connections. */
58 int ip_ct_tcp_loose __read_mostly = 3;
59
60 /* Max number of the retransmitted packets without receiving an (acceptable)
61 ACK from the destination. If this number is reached, a shorter timer
62 will be started. */
63 int ip_ct_tcp_max_retrans __read_mostly = 3;
64
65 /* FIXME: Examine ipfilter's timeouts and conntrack transitions more
66 closely. They're more complex. --RR */
67
68 static const char *tcp_conntrack_names[] = {
69 "NONE",
70 "SYN_SENT",
71 "SYN_RECV",
72 "ESTABLISHED",
73 "FIN_WAIT",
74 "CLOSE_WAIT",
75 "LAST_ACK",
76 "TIME_WAIT",
77 "CLOSE",
78 "LISTEN"
79 };
80
81 #define SECS * HZ
82 #define MINS * 60 SECS
83 #define HOURS * 60 MINS
84 #define DAYS * 24 HOURS
85
86 unsigned int ip_ct_tcp_timeout_syn_sent __read_mostly = 2 MINS;
87 unsigned int ip_ct_tcp_timeout_syn_recv __read_mostly = 60 SECS;
88 unsigned int ip_ct_tcp_timeout_established __read_mostly = 5 DAYS;
89 unsigned int ip_ct_tcp_timeout_fin_wait __read_mostly = 2 MINS;
90 unsigned int ip_ct_tcp_timeout_close_wait __read_mostly = 60 SECS;
91 unsigned int ip_ct_tcp_timeout_last_ack __read_mostly = 30 SECS;
92 unsigned int ip_ct_tcp_timeout_time_wait __read_mostly = 2 MINS;
93 unsigned int ip_ct_tcp_timeout_close __read_mostly = 10 SECS;
94
95 /* RFC1122 says the R2 limit should be at least 100 seconds.
96 Linux uses 15 packets as limit, which corresponds
97 to ~13-30min depending on RTO. */
98 unsigned int ip_ct_tcp_timeout_max_retrans __read_mostly = 5 MINS;
99
100 static const unsigned int * tcp_timeouts[]
101 = { NULL, /* TCP_CONNTRACK_NONE */
102 &ip_ct_tcp_timeout_syn_sent, /* TCP_CONNTRACK_SYN_SENT, */
103 &ip_ct_tcp_timeout_syn_recv, /* TCP_CONNTRACK_SYN_RECV, */
104 &ip_ct_tcp_timeout_established, /* TCP_CONNTRACK_ESTABLISHED, */
105 &ip_ct_tcp_timeout_fin_wait, /* TCP_CONNTRACK_FIN_WAIT, */
106 &ip_ct_tcp_timeout_close_wait, /* TCP_CONNTRACK_CLOSE_WAIT, */
107 &ip_ct_tcp_timeout_last_ack, /* TCP_CONNTRACK_LAST_ACK, */
108 &ip_ct_tcp_timeout_time_wait, /* TCP_CONNTRACK_TIME_WAIT, */
109 &ip_ct_tcp_timeout_close, /* TCP_CONNTRACK_CLOSE, */
110 NULL, /* TCP_CONNTRACK_LISTEN */
111 };
112
113 #define sNO TCP_CONNTRACK_NONE
114 #define sSS TCP_CONNTRACK_SYN_SENT
115 #define sSR TCP_CONNTRACK_SYN_RECV
116 #define sES TCP_CONNTRACK_ESTABLISHED
117 #define sFW TCP_CONNTRACK_FIN_WAIT
118 #define sCW TCP_CONNTRACK_CLOSE_WAIT
119 #define sLA TCP_CONNTRACK_LAST_ACK
120 #define sTW TCP_CONNTRACK_TIME_WAIT
121 #define sCL TCP_CONNTRACK_CLOSE
122 #define sLI TCP_CONNTRACK_LISTEN
123 #define sIV TCP_CONNTRACK_MAX
124 #define sIG TCP_CONNTRACK_IGNORE
125
126 /* What TCP flags are set from RST/SYN/FIN/ACK. */
127 enum tcp_bit_set {
128 TCP_SYN_SET,
129 TCP_SYNACK_SET,
130 TCP_FIN_SET,
131 TCP_ACK_SET,
132 TCP_RST_SET,
133 TCP_NONE_SET,
134 };
135
136 /*
137 * The TCP state transition table needs a few words...
138 *
139 * We are the man in the middle. All the packets go through us
140 * but might get lost in transit to the destination.
141 * It is assumed that the destinations can't receive segments
142 * we haven't seen.
143 *
144 * The checked segment is in window, but our windows are *not*
145 * equivalent with the ones of the sender/receiver. We always
146 * try to guess the state of the current sender.
147 *
148 * The meaning of the states are:
149 *
150 * NONE: initial state
151 * SYN_SENT: SYN-only packet seen
152 * SYN_RECV: SYN-ACK packet seen
153 * ESTABLISHED: ACK packet seen
154 * FIN_WAIT: FIN packet seen
155 * CLOSE_WAIT: ACK seen (after FIN)
156 * LAST_ACK: FIN seen (after FIN)
157 * TIME_WAIT: last ACK seen
158 * CLOSE: closed connection
159 *
160 * LISTEN state is not used.
161 *
162 * Packets marked as IGNORED (sIG):
163 * if they may be either invalid or valid
164 * and the receiver may send back a connection
165 * closing RST or a SYN/ACK.
166 *
167 * Packets marked as INVALID (sIV):
168 * if they are invalid
169 * or we do not support the request (simultaneous open)
170 */
171 static const enum tcp_conntrack tcp_conntracks[2][6][TCP_CONNTRACK_MAX] = {
172 {
173 /* ORIGINAL */
174 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
175 /*syn*/ { sSS, sSS, sIG, sIG, sIG, sIG, sIG, sSS, sSS, sIV },
176 /*
177 * sNO -> sSS Initialize a new connection
178 * sSS -> sSS Retransmitted SYN
179 * sSR -> sIG Late retransmitted SYN?
180 * sES -> sIG Error: SYNs in window outside the SYN_SENT state
181 * are errors. Receiver will reply with RST
182 * and close the connection.
183 * Or we are not in sync and hold a dead connection.
184 * sFW -> sIG
185 * sCW -> sIG
186 * sLA -> sIG
187 * sTW -> sSS Reopened connection (RFC 1122).
188 * sCL -> sSS
189 */
190 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
191 /*synack*/ { sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV },
192 /*
193 * A SYN/ACK from the client is always invalid:
194 * - either it tries to set up a simultaneous open, which is
195 * not supported;
196 * - or the firewall has just been inserted between the two hosts
197 * during the session set-up. The SYN will be retransmitted
198 * by the true client (or it'll time out).
199 */
200 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
201 /*fin*/ { sIV, sIV, sFW, sFW, sLA, sLA, sLA, sTW, sCL, sIV },
202 /*
203 * sNO -> sIV Too late and no reason to do anything...
204 * sSS -> sIV Client migth not send FIN in this state:
205 * we enforce waiting for a SYN/ACK reply first.
206 * sSR -> sFW Close started.
207 * sES -> sFW
208 * sFW -> sLA FIN seen in both directions, waiting for
209 * the last ACK.
210 * Migth be a retransmitted FIN as well...
211 * sCW -> sLA
212 * sLA -> sLA Retransmitted FIN. Remain in the same state.
213 * sTW -> sTW
214 * sCL -> sCL
215 */
216 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
217 /*ack*/ { sES, sIV, sES, sES, sCW, sCW, sTW, sTW, sCL, sIV },
218 /*
219 * sNO -> sES Assumed.
220 * sSS -> sIV ACK is invalid: we haven't seen a SYN/ACK yet.
221 * sSR -> sES Established state is reached.
222 * sES -> sES :-)
223 * sFW -> sCW Normal close request answered by ACK.
224 * sCW -> sCW
225 * sLA -> sTW Last ACK detected.
226 * sTW -> sTW Retransmitted last ACK. Remain in the same state.
227 * sCL -> sCL
228 */
229 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
230 /*rst*/ { sIV, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sIV },
231 /*none*/ { sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV }
232 },
233 {
234 /* REPLY */
235 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
236 /*syn*/ { sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV },
237 /*
238 * sNO -> sIV Never reached.
239 * sSS -> sIV Simultaneous open, not supported
240 * sSR -> sIV Simultaneous open, not supported.
241 * sES -> sIV Server may not initiate a connection.
242 * sFW -> sIV
243 * sCW -> sIV
244 * sLA -> sIV
245 * sTW -> sIV Reopened connection, but server may not do it.
246 * sCL -> sIV
247 */
248 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
249 /*synack*/ { sIV, sSR, sSR, sIG, sIG, sIG, sIG, sIG, sIG, sIV },
250 /*
251 * sSS -> sSR Standard open.
252 * sSR -> sSR Retransmitted SYN/ACK.
253 * sES -> sIG Late retransmitted SYN/ACK?
254 * sFW -> sIG Might be SYN/ACK answering ignored SYN
255 * sCW -> sIG
256 * sLA -> sIG
257 * sTW -> sIG
258 * sCL -> sIG
259 */
260 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
261 /*fin*/ { sIV, sIV, sFW, sFW, sLA, sLA, sLA, sTW, sCL, sIV },
262 /*
263 * sSS -> sIV Server might not send FIN in this state.
264 * sSR -> sFW Close started.
265 * sES -> sFW
266 * sFW -> sLA FIN seen in both directions.
267 * sCW -> sLA
268 * sLA -> sLA Retransmitted FIN.
269 * sTW -> sTW
270 * sCL -> sCL
271 */
272 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
273 /*ack*/ { sIV, sIG, sSR, sES, sCW, sCW, sTW, sTW, sCL, sIV },
274 /*
275 * sSS -> sIG Might be a half-open connection.
276 * sSR -> sSR Might answer late resent SYN.
277 * sES -> sES :-)
278 * sFW -> sCW Normal close request answered by ACK.
279 * sCW -> sCW
280 * sLA -> sTW Last ACK detected.
281 * sTW -> sTW Retransmitted last ACK.
282 * sCL -> sCL
283 */
284 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sLI */
285 /*rst*/ { sIV, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sIV },
286 /*none*/ { sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV }
287 }
288 };
289
290 static int tcp_pkt_to_tuple(const struct sk_buff *skb,
291 unsigned int dataoff,
292 struct ip_conntrack_tuple *tuple)
293 {
294 struct tcphdr _hdr, *hp;
295
296 /* Actually only need first 8 bytes. */
297 hp = skb_header_pointer(skb, dataoff, 8, &_hdr);
298 if (hp == NULL)
299 return 0;
300
301 tuple->src.u.tcp.port = hp->source;
302 tuple->dst.u.tcp.port = hp->dest;
303
304 return 1;
305 }
306
307 static int tcp_invert_tuple(struct ip_conntrack_tuple *tuple,
308 const struct ip_conntrack_tuple *orig)
309 {
310 tuple->src.u.tcp.port = orig->dst.u.tcp.port;
311 tuple->dst.u.tcp.port = orig->src.u.tcp.port;
312 return 1;
313 }
314
315 /* Print out the per-protocol part of the tuple. */
316 static int tcp_print_tuple(struct seq_file *s,
317 const struct ip_conntrack_tuple *tuple)
318 {
319 return seq_printf(s, "sport=%hu dport=%hu ",
320 ntohs(tuple->src.u.tcp.port),
321 ntohs(tuple->dst.u.tcp.port));
322 }
323
324 /* Print out the private part of the conntrack. */
325 static int tcp_print_conntrack(struct seq_file *s,
326 const struct ip_conntrack *conntrack)
327 {
328 enum tcp_conntrack state;
329
330 read_lock_bh(&tcp_lock);
331 state = conntrack->proto.tcp.state;
332 read_unlock_bh(&tcp_lock);
333
334 return seq_printf(s, "%s ", tcp_conntrack_names[state]);
335 }
336
337 #if defined(CONFIG_IP_NF_CONNTRACK_NETLINK) || \
338 defined(CONFIG_IP_NF_CONNTRACK_NETLINK_MODULE)
339 static int tcp_to_nfattr(struct sk_buff *skb, struct nfattr *nfa,
340 const struct ip_conntrack *ct)
341 {
342 struct nfattr *nest_parms;
343
344 read_lock_bh(&tcp_lock);
345 nest_parms = NFA_NEST(skb, CTA_PROTOINFO_TCP);
346 NFA_PUT(skb, CTA_PROTOINFO_TCP_STATE, sizeof(u_int8_t),
347 &ct->proto.tcp.state);
348 read_unlock_bh(&tcp_lock);
349
350 NFA_NEST_END(skb, nest_parms);
351
352 return 0;
353
354 nfattr_failure:
355 read_unlock_bh(&tcp_lock);
356 return -1;
357 }
358
359 static const size_t cta_min_tcp[CTA_PROTOINFO_TCP_MAX] = {
360 [CTA_PROTOINFO_TCP_STATE-1] = sizeof(u_int8_t),
361 };
362
363 static int nfattr_to_tcp(struct nfattr *cda[], struct ip_conntrack *ct)
364 {
365 struct nfattr *attr = cda[CTA_PROTOINFO_TCP-1];
366 struct nfattr *tb[CTA_PROTOINFO_TCP_MAX];
367
368 /* updates could not contain anything about the private
369 * protocol info, in that case skip the parsing */
370 if (!attr)
371 return 0;
372
373 nfattr_parse_nested(tb, CTA_PROTOINFO_TCP_MAX, attr);
374
375 if (nfattr_bad_size(tb, CTA_PROTOINFO_TCP_MAX, cta_min_tcp))
376 return -EINVAL;
377
378 if (!tb[CTA_PROTOINFO_TCP_STATE-1])
379 return -EINVAL;
380
381 write_lock_bh(&tcp_lock);
382 ct->proto.tcp.state =
383 *(u_int8_t *)NFA_DATA(tb[CTA_PROTOINFO_TCP_STATE-1]);
384 write_unlock_bh(&tcp_lock);
385
386 return 0;
387 }
388 #endif
389
390 static unsigned int get_conntrack_index(const struct tcphdr *tcph)
391 {
392 if (tcph->rst) return TCP_RST_SET;
393 else if (tcph->syn) return (tcph->ack ? TCP_SYNACK_SET : TCP_SYN_SET);
394 else if (tcph->fin) return TCP_FIN_SET;
395 else if (tcph->ack) return TCP_ACK_SET;
396 else return TCP_NONE_SET;
397 }
398
399 /* TCP connection tracking based on 'Real Stateful TCP Packet Filtering
400 in IP Filter' by Guido van Rooij.
401
402 http://www.nluug.nl/events/sane2000/papers.html
403 http://www.iae.nl/users/guido/papers/tcp_filtering.ps.gz
404
405 The boundaries and the conditions are changed according to RFC793:
406 the packet must intersect the window (i.e. segments may be
407 after the right or before the left edge) and thus receivers may ACK
408 segments after the right edge of the window.
409
410 td_maxend = max(sack + max(win,1)) seen in reply packets
411 td_maxwin = max(max(win, 1)) + (sack - ack) seen in sent packets
412 td_maxwin += seq + len - sender.td_maxend
413 if seq + len > sender.td_maxend
414 td_end = max(seq + len) seen in sent packets
415
416 I. Upper bound for valid data: seq <= sender.td_maxend
417 II. Lower bound for valid data: seq + len >= sender.td_end - receiver.td_maxwin
418 III. Upper bound for valid ack: sack <= receiver.td_end
419 IV. Lower bound for valid ack: ack >= receiver.td_end - MAXACKWINDOW
420
421 where sack is the highest right edge of sack block found in the packet.
422
423 The upper bound limit for a valid ack is not ignored -
424 we doesn't have to deal with fragments.
425 */
426
427 static inline __u32 segment_seq_plus_len(__u32 seq,
428 size_t len,
429 struct iphdr *iph,
430 struct tcphdr *tcph)
431 {
432 return (seq + len - (iph->ihl + tcph->doff)*4
433 + (tcph->syn ? 1 : 0) + (tcph->fin ? 1 : 0));
434 }
435
436 /* Fixme: what about big packets? */
437 #define MAXACKWINCONST 66000
438 #define MAXACKWINDOW(sender) \
439 ((sender)->td_maxwin > MAXACKWINCONST ? (sender)->td_maxwin \
440 : MAXACKWINCONST)
441
442 /*
443 * Simplified tcp_parse_options routine from tcp_input.c
444 */
445 static void tcp_options(const struct sk_buff *skb,
446 struct iphdr *iph,
447 struct tcphdr *tcph,
448 struct ip_ct_tcp_state *state)
449 {
450 unsigned char buff[(15 * 4) - sizeof(struct tcphdr)];
451 unsigned char *ptr;
452 int length = (tcph->doff*4) - sizeof(struct tcphdr);
453
454 if (!length)
455 return;
456
457 ptr = skb_header_pointer(skb,
458 (iph->ihl * 4) + sizeof(struct tcphdr),
459 length, buff);
460 BUG_ON(ptr == NULL);
461
462 state->td_scale =
463 state->flags = 0;
464
465 while (length > 0) {
466 int opcode=*ptr++;
467 int opsize;
468
469 switch (opcode) {
470 case TCPOPT_EOL:
471 return;
472 case TCPOPT_NOP: /* Ref: RFC 793 section 3.1 */
473 length--;
474 continue;
475 default:
476 opsize=*ptr++;
477 if (opsize < 2) /* "silly options" */
478 return;
479 if (opsize > length)
480 break; /* don't parse partial options */
481
482 if (opcode == TCPOPT_SACK_PERM
483 && opsize == TCPOLEN_SACK_PERM)
484 state->flags |= IP_CT_TCP_FLAG_SACK_PERM;
485 else if (opcode == TCPOPT_WINDOW
486 && opsize == TCPOLEN_WINDOW) {
487 state->td_scale = *(u_int8_t *)ptr;
488
489 if (state->td_scale > 14) {
490 /* See RFC1323 */
491 state->td_scale = 14;
492 }
493 state->flags |=
494 IP_CT_TCP_FLAG_WINDOW_SCALE;
495 }
496 ptr += opsize - 2;
497 length -= opsize;
498 }
499 }
500 }
501
502 static void tcp_sack(const struct sk_buff *skb,
503 struct iphdr *iph,
504 struct tcphdr *tcph,
505 __u32 *sack)
506 {
507 unsigned char buff[(15 * 4) - sizeof(struct tcphdr)];
508 unsigned char *ptr;
509 int length = (tcph->doff*4) - sizeof(struct tcphdr);
510 __u32 tmp;
511
512 if (!length)
513 return;
514
515 ptr = skb_header_pointer(skb,
516 (iph->ihl * 4) + sizeof(struct tcphdr),
517 length, buff);
518 BUG_ON(ptr == NULL);
519
520 /* Fast path for timestamp-only option */
521 if (length == TCPOLEN_TSTAMP_ALIGNED*4
522 && *(__be32 *)ptr ==
523 __constant_htonl((TCPOPT_NOP << 24)
524 | (TCPOPT_NOP << 16)
525 | (TCPOPT_TIMESTAMP << 8)
526 | TCPOLEN_TIMESTAMP))
527 return;
528
529 while (length > 0) {
530 int opcode=*ptr++;
531 int opsize, i;
532
533 switch (opcode) {
534 case TCPOPT_EOL:
535 return;
536 case TCPOPT_NOP: /* Ref: RFC 793 section 3.1 */
537 length--;
538 continue;
539 default:
540 opsize=*ptr++;
541 if (opsize < 2) /* "silly options" */
542 return;
543 if (opsize > length)
544 break; /* don't parse partial options */
545
546 if (opcode == TCPOPT_SACK
547 && opsize >= (TCPOLEN_SACK_BASE
548 + TCPOLEN_SACK_PERBLOCK)
549 && !((opsize - TCPOLEN_SACK_BASE)
550 % TCPOLEN_SACK_PERBLOCK)) {
551 for (i = 0;
552 i < (opsize - TCPOLEN_SACK_BASE);
553 i += TCPOLEN_SACK_PERBLOCK) {
554 tmp = ntohl(*((__be32 *)(ptr+i)+1));
555
556 if (after(tmp, *sack))
557 *sack = tmp;
558 }
559 return;
560 }
561 ptr += opsize - 2;
562 length -= opsize;
563 }
564 }
565 }
566
567 static int tcp_in_window(struct ip_ct_tcp *state,
568 enum ip_conntrack_dir dir,
569 unsigned int index,
570 const struct sk_buff *skb,
571 struct iphdr *iph,
572 struct tcphdr *tcph)
573 {
574 struct ip_ct_tcp_state *sender = &state->seen[dir];
575 struct ip_ct_tcp_state *receiver = &state->seen[!dir];
576 __u32 seq, ack, sack, end, win, swin;
577 int res;
578
579 /*
580 * Get the required data from the packet.
581 */
582 seq = ntohl(tcph->seq);
583 ack = sack = ntohl(tcph->ack_seq);
584 win = ntohs(tcph->window);
585 end = segment_seq_plus_len(seq, skb->len, iph, tcph);
586
587 if (receiver->flags & IP_CT_TCP_FLAG_SACK_PERM)
588 tcp_sack(skb, iph, tcph, &sack);
589
590 DEBUGP("tcp_in_window: START\n");
591 DEBUGP("tcp_in_window: src=%u.%u.%u.%u:%hu dst=%u.%u.%u.%u:%hu "
592 "seq=%u ack=%u sack=%u win=%u end=%u\n",
593 NIPQUAD(iph->saddr), ntohs(tcph->source),
594 NIPQUAD(iph->daddr), ntohs(tcph->dest),
595 seq, ack, sack, win, end);
596 DEBUGP("tcp_in_window: sender end=%u maxend=%u maxwin=%u scale=%i "
597 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
598 sender->td_end, sender->td_maxend, sender->td_maxwin,
599 sender->td_scale,
600 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
601 receiver->td_scale);
602
603 if (sender->td_end == 0) {
604 /*
605 * Initialize sender data.
606 */
607 if (tcph->syn && tcph->ack) {
608 /*
609 * Outgoing SYN-ACK in reply to a SYN.
610 */
611 sender->td_end =
612 sender->td_maxend = end;
613 sender->td_maxwin = (win == 0 ? 1 : win);
614
615 tcp_options(skb, iph, tcph, sender);
616 /*
617 * RFC 1323:
618 * Both sides must send the Window Scale option
619 * to enable window scaling in either direction.
620 */
621 if (!(sender->flags & IP_CT_TCP_FLAG_WINDOW_SCALE
622 && receiver->flags & IP_CT_TCP_FLAG_WINDOW_SCALE))
623 sender->td_scale =
624 receiver->td_scale = 0;
625 } else {
626 /*
627 * We are in the middle of a connection,
628 * its history is lost for us.
629 * Let's try to use the data from the packet.
630 */
631 sender->td_end = end;
632 sender->td_maxwin = (win == 0 ? 1 : win);
633 sender->td_maxend = end + sender->td_maxwin;
634 }
635 } else if (((state->state == TCP_CONNTRACK_SYN_SENT
636 && dir == IP_CT_DIR_ORIGINAL)
637 || (state->state == TCP_CONNTRACK_SYN_RECV
638 && dir == IP_CT_DIR_REPLY))
639 && after(end, sender->td_end)) {
640 /*
641 * RFC 793: "if a TCP is reinitialized ... then it need
642 * not wait at all; it must only be sure to use sequence
643 * numbers larger than those recently used."
644 */
645 sender->td_end =
646 sender->td_maxend = end;
647 sender->td_maxwin = (win == 0 ? 1 : win);
648
649 tcp_options(skb, iph, tcph, sender);
650 }
651
652 if (!(tcph->ack)) {
653 /*
654 * If there is no ACK, just pretend it was set and OK.
655 */
656 ack = sack = receiver->td_end;
657 } else if (((tcp_flag_word(tcph) & (TCP_FLAG_ACK|TCP_FLAG_RST)) ==
658 (TCP_FLAG_ACK|TCP_FLAG_RST))
659 && (ack == 0)) {
660 /*
661 * Broken TCP stacks, that set ACK in RST packets as well
662 * with zero ack value.
663 */
664 ack = sack = receiver->td_end;
665 }
666
667 if (seq == end
668 && (!tcph->rst
669 || (seq == 0 && state->state == TCP_CONNTRACK_SYN_SENT)))
670 /*
671 * Packets contains no data: we assume it is valid
672 * and check the ack value only.
673 * However RST segments are always validated by their
674 * SEQ number, except when seq == 0 (reset sent answering
675 * SYN.
676 */
677 seq = end = sender->td_end;
678
679 DEBUGP("tcp_in_window: src=%u.%u.%u.%u:%hu dst=%u.%u.%u.%u:%hu "
680 "seq=%u ack=%u sack =%u win=%u end=%u\n",
681 NIPQUAD(iph->saddr), ntohs(tcph->source),
682 NIPQUAD(iph->daddr), ntohs(tcph->dest),
683 seq, ack, sack, win, end);
684 DEBUGP("tcp_in_window: sender end=%u maxend=%u maxwin=%u scale=%i "
685 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
686 sender->td_end, sender->td_maxend, sender->td_maxwin,
687 sender->td_scale,
688 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
689 receiver->td_scale);
690
691 DEBUGP("tcp_in_window: I=%i II=%i III=%i IV=%i\n",
692 before(seq, sender->td_maxend + 1),
693 after(end, sender->td_end - receiver->td_maxwin - 1),
694 before(sack, receiver->td_end + 1),
695 after(ack, receiver->td_end - MAXACKWINDOW(sender)));
696
697 if (sender->loose || receiver->loose ||
698 (before(seq, sender->td_maxend + 1) &&
699 after(end, sender->td_end - receiver->td_maxwin - 1) &&
700 before(sack, receiver->td_end + 1) &&
701 after(ack, receiver->td_end - MAXACKWINDOW(sender)))) {
702 /*
703 * Take into account window scaling (RFC 1323).
704 */
705 if (!tcph->syn)
706 win <<= sender->td_scale;
707
708 /*
709 * Update sender data.
710 */
711 swin = win + (sack - ack);
712 if (sender->td_maxwin < swin)
713 sender->td_maxwin = swin;
714 if (after(end, sender->td_end))
715 sender->td_end = end;
716 /*
717 * Update receiver data.
718 */
719 if (after(end, sender->td_maxend))
720 receiver->td_maxwin += end - sender->td_maxend;
721 if (after(sack + win, receiver->td_maxend - 1)) {
722 receiver->td_maxend = sack + win;
723 if (win == 0)
724 receiver->td_maxend++;
725 }
726
727 /*
728 * Check retransmissions.
729 */
730 if (index == TCP_ACK_SET) {
731 if (state->last_dir == dir
732 && state->last_seq == seq
733 && state->last_ack == ack
734 && state->last_end == end
735 && state->last_win == win)
736 state->retrans++;
737 else {
738 state->last_dir = dir;
739 state->last_seq = seq;
740 state->last_ack = ack;
741 state->last_end = end;
742 state->last_win = win;
743 state->retrans = 0;
744 }
745 }
746 /*
747 * Close the window of disabled window tracking :-)
748 */
749 if (sender->loose)
750 sender->loose--;
751
752 res = 1;
753 } else {
754 if (LOG_INVALID(IPPROTO_TCP))
755 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
756 "ip_ct_tcp: %s ",
757 before(seq, sender->td_maxend + 1) ?
758 after(end, sender->td_end - receiver->td_maxwin - 1) ?
759 before(sack, receiver->td_end + 1) ?
760 after(ack, receiver->td_end - MAXACKWINDOW(sender)) ? "BUG"
761 : "ACK is under the lower bound (possible overly delayed ACK)"
762 : "ACK is over the upper bound (ACKed data not seen yet)"
763 : "SEQ is under the lower bound (already ACKed data retransmitted)"
764 : "SEQ is over the upper bound (over the window of the receiver)");
765
766 res = ip_ct_tcp_be_liberal;
767 }
768
769 DEBUGP("tcp_in_window: res=%i sender end=%u maxend=%u maxwin=%u "
770 "receiver end=%u maxend=%u maxwin=%u\n",
771 res, sender->td_end, sender->td_maxend, sender->td_maxwin,
772 receiver->td_end, receiver->td_maxend, receiver->td_maxwin);
773
774 return res;
775 }
776
777 #ifdef CONFIG_IP_NF_NAT_NEEDED
778 /* Update sender->td_end after NAT successfully mangled the packet */
779 void ip_conntrack_tcp_update(struct sk_buff *skb,
780 struct ip_conntrack *conntrack,
781 enum ip_conntrack_dir dir)
782 {
783 struct iphdr *iph = skb->nh.iph;
784 struct tcphdr *tcph = (void *)skb->nh.iph + skb->nh.iph->ihl*4;
785 __u32 end;
786 #ifdef DEBUGP_VARS
787 struct ip_ct_tcp_state *sender = &conntrack->proto.tcp.seen[dir];
788 struct ip_ct_tcp_state *receiver = &conntrack->proto.tcp.seen[!dir];
789 #endif
790
791 end = segment_seq_plus_len(ntohl(tcph->seq), skb->len, iph, tcph);
792
793 write_lock_bh(&tcp_lock);
794 /*
795 * We have to worry for the ack in the reply packet only...
796 */
797 if (after(end, conntrack->proto.tcp.seen[dir].td_end))
798 conntrack->proto.tcp.seen[dir].td_end = end;
799 conntrack->proto.tcp.last_end = end;
800 write_unlock_bh(&tcp_lock);
801 DEBUGP("tcp_update: sender end=%u maxend=%u maxwin=%u scale=%i "
802 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
803 sender->td_end, sender->td_maxend, sender->td_maxwin,
804 sender->td_scale,
805 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
806 receiver->td_scale);
807 }
808
809 #endif
810
811 #define TH_FIN 0x01
812 #define TH_SYN 0x02
813 #define TH_RST 0x04
814 #define TH_PUSH 0x08
815 #define TH_ACK 0x10
816 #define TH_URG 0x20
817 #define TH_ECE 0x40
818 #define TH_CWR 0x80
819
820 /* table of valid flag combinations - ECE and CWR are always valid */
821 static const u8 tcp_valid_flags[(TH_FIN|TH_SYN|TH_RST|TH_PUSH|TH_ACK|TH_URG) + 1] =
822 {
823 [TH_SYN] = 1,
824 [TH_SYN|TH_ACK] = 1,
825 [TH_SYN|TH_PUSH] = 1,
826 [TH_SYN|TH_ACK|TH_PUSH] = 1,
827 [TH_RST] = 1,
828 [TH_RST|TH_ACK] = 1,
829 [TH_RST|TH_ACK|TH_PUSH] = 1,
830 [TH_FIN|TH_ACK] = 1,
831 [TH_ACK] = 1,
832 [TH_ACK|TH_PUSH] = 1,
833 [TH_ACK|TH_URG] = 1,
834 [TH_ACK|TH_URG|TH_PUSH] = 1,
835 [TH_FIN|TH_ACK|TH_PUSH] = 1,
836 [TH_FIN|TH_ACK|TH_URG] = 1,
837 [TH_FIN|TH_ACK|TH_URG|TH_PUSH] = 1,
838 };
839
840 /* Protect conntrack agaist broken packets. Code taken from ipt_unclean.c. */
841 static int tcp_error(struct sk_buff *skb,
842 enum ip_conntrack_info *ctinfo,
843 unsigned int hooknum)
844 {
845 struct iphdr *iph = skb->nh.iph;
846 struct tcphdr _tcph, *th;
847 unsigned int tcplen = skb->len - iph->ihl * 4;
848 u_int8_t tcpflags;
849
850 /* Smaller that minimal TCP header? */
851 th = skb_header_pointer(skb, iph->ihl * 4,
852 sizeof(_tcph), &_tcph);
853 if (th == NULL) {
854 if (LOG_INVALID(IPPROTO_TCP))
855 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
856 "ip_ct_tcp: short packet ");
857 return -NF_ACCEPT;
858 }
859
860 /* Not whole TCP header or malformed packet */
861 if (th->doff*4 < sizeof(struct tcphdr) || tcplen < th->doff*4) {
862 if (LOG_INVALID(IPPROTO_TCP))
863 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
864 "ip_ct_tcp: truncated/malformed packet ");
865 return -NF_ACCEPT;
866 }
867
868 /* Checksum invalid? Ignore.
869 * We skip checking packets on the outgoing path
870 * because it is assumed to be correct.
871 */
872 /* FIXME: Source route IP option packets --RR */
873 if (ip_conntrack_checksum && hooknum == NF_IP_PRE_ROUTING &&
874 nf_ip_checksum(skb, hooknum, iph->ihl * 4, IPPROTO_TCP)) {
875 if (LOG_INVALID(IPPROTO_TCP))
876 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
877 "ip_ct_tcp: bad TCP checksum ");
878 return -NF_ACCEPT;
879 }
880
881 /* Check TCP flags. */
882 tcpflags = (((u_int8_t *)th)[13] & ~(TH_ECE|TH_CWR));
883 if (!tcp_valid_flags[tcpflags]) {
884 if (LOG_INVALID(IPPROTO_TCP))
885 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
886 "ip_ct_tcp: invalid TCP flag combination ");
887 return -NF_ACCEPT;
888 }
889
890 return NF_ACCEPT;
891 }
892
893 /* Returns verdict for packet, or -1 for invalid. */
894 static int tcp_packet(struct ip_conntrack *conntrack,
895 const struct sk_buff *skb,
896 enum ip_conntrack_info ctinfo)
897 {
898 enum tcp_conntrack new_state, old_state;
899 enum ip_conntrack_dir dir;
900 struct iphdr *iph = skb->nh.iph;
901 struct tcphdr *th, _tcph;
902 unsigned long timeout;
903 unsigned int index;
904
905 th = skb_header_pointer(skb, iph->ihl * 4,
906 sizeof(_tcph), &_tcph);
907 BUG_ON(th == NULL);
908
909 write_lock_bh(&tcp_lock);
910 old_state = conntrack->proto.tcp.state;
911 dir = CTINFO2DIR(ctinfo);
912 index = get_conntrack_index(th);
913 new_state = tcp_conntracks[dir][index][old_state];
914
915 switch (new_state) {
916 case TCP_CONNTRACK_IGNORE:
917 /* Ignored packets:
918 *
919 * a) SYN in ORIGINAL
920 * b) SYN/ACK in REPLY
921 * c) ACK in reply direction after initial SYN in original.
922 */
923 if (index == TCP_SYNACK_SET
924 && conntrack->proto.tcp.last_index == TCP_SYN_SET
925 && conntrack->proto.tcp.last_dir != dir
926 && ntohl(th->ack_seq) ==
927 conntrack->proto.tcp.last_end) {
928 /* This SYN/ACK acknowledges a SYN that we earlier
929 * ignored as invalid. This means that the client and
930 * the server are both in sync, while the firewall is
931 * not. We kill this session and block the SYN/ACK so
932 * that the client cannot but retransmit its SYN and
933 * thus initiate a clean new session.
934 */
935 write_unlock_bh(&tcp_lock);
936 if (LOG_INVALID(IPPROTO_TCP))
937 nf_log_packet(PF_INET, 0, skb, NULL, NULL,
938 NULL, "ip_ct_tcp: "
939 "killing out of sync session ");
940 if (del_timer(&conntrack->timeout))
941 conntrack->timeout.function((unsigned long)
942 conntrack);
943 return -NF_DROP;
944 }
945 conntrack->proto.tcp.last_index = index;
946 conntrack->proto.tcp.last_dir = dir;
947 conntrack->proto.tcp.last_seq = ntohl(th->seq);
948 conntrack->proto.tcp.last_end =
949 segment_seq_plus_len(ntohl(th->seq), skb->len, iph, th);
950
951 write_unlock_bh(&tcp_lock);
952 if (LOG_INVALID(IPPROTO_TCP))
953 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
954 "ip_ct_tcp: invalid packet ignored ");
955 return NF_ACCEPT;
956 case TCP_CONNTRACK_MAX:
957 /* Invalid packet */
958 DEBUGP("ip_ct_tcp: Invalid dir=%i index=%u ostate=%u\n",
959 dir, get_conntrack_index(th),
960 old_state);
961 write_unlock_bh(&tcp_lock);
962 if (LOG_INVALID(IPPROTO_TCP))
963 nf_log_packet(PF_INET, 0, skb, NULL, NULL, NULL,
964 "ip_ct_tcp: invalid state ");
965 return -NF_ACCEPT;
966 case TCP_CONNTRACK_SYN_SENT:
967 if (old_state < TCP_CONNTRACK_TIME_WAIT)
968 break;
969 if ((conntrack->proto.tcp.seen[dir].flags &
970 IP_CT_TCP_FLAG_CLOSE_INIT)
971 || after(ntohl(th->seq),
972 conntrack->proto.tcp.seen[dir].td_end)) {
973 /* Attempt to reopen a closed connection.
974 * Delete this connection and look up again. */
975 write_unlock_bh(&tcp_lock);
976 if (del_timer(&conntrack->timeout))
977 conntrack->timeout.function((unsigned long)
978 conntrack);
979 return -NF_REPEAT;
980 } else {
981 write_unlock_bh(&tcp_lock);
982 if (LOG_INVALID(IPPROTO_TCP))
983 nf_log_packet(PF_INET, 0, skb, NULL, NULL,
984 NULL, "ip_ct_tcp: invalid SYN");
985 return -NF_ACCEPT;
986 }
987 case TCP_CONNTRACK_CLOSE:
988 if (index == TCP_RST_SET
989 && ((test_bit(IPS_SEEN_REPLY_BIT, &conntrack->status)
990 && conntrack->proto.tcp.last_index == TCP_SYN_SET)
991 || (!test_bit(IPS_ASSURED_BIT, &conntrack->status)
992 && conntrack->proto.tcp.last_index == TCP_ACK_SET))
993 && ntohl(th->ack_seq) == conntrack->proto.tcp.last_end) {
994 /* RST sent to invalid SYN or ACK we had let through
995 * at a) and c) above:
996 *
997 * a) SYN was in window then
998 * c) we hold a half-open connection.
999 *
1000 * Delete our connection entry.
1001 * We skip window checking, because packet might ACK
1002 * segments we ignored. */
1003 goto in_window;
1004 }
1005 /* Just fall through */
1006 default:
1007 /* Keep compilers happy. */
1008 break;
1009 }
1010
1011 if (!tcp_in_window(&conntrack->proto.tcp, dir, index,
1012 skb, iph, th)) {
1013 write_unlock_bh(&tcp_lock);
1014 return -NF_ACCEPT;
1015 }
1016 in_window:
1017 /* From now on we have got in-window packets */
1018 conntrack->proto.tcp.last_index = index;
1019
1020 DEBUGP("tcp_conntracks: src=%u.%u.%u.%u:%hu dst=%u.%u.%u.%u:%hu "
1021 "syn=%i ack=%i fin=%i rst=%i old=%i new=%i\n",
1022 NIPQUAD(iph->saddr), ntohs(th->source),
1023 NIPQUAD(iph->daddr), ntohs(th->dest),
1024 (th->syn ? 1 : 0), (th->ack ? 1 : 0),
1025 (th->fin ? 1 : 0), (th->rst ? 1 : 0),
1026 old_state, new_state);
1027
1028 conntrack->proto.tcp.state = new_state;
1029 if (old_state != new_state
1030 && (new_state == TCP_CONNTRACK_FIN_WAIT
1031 || new_state == TCP_CONNTRACK_CLOSE))
1032 conntrack->proto.tcp.seen[dir].flags |= IP_CT_TCP_FLAG_CLOSE_INIT;
1033 timeout = conntrack->proto.tcp.retrans >= ip_ct_tcp_max_retrans
1034 && *tcp_timeouts[new_state] > ip_ct_tcp_timeout_max_retrans
1035 ? ip_ct_tcp_timeout_max_retrans : *tcp_timeouts[new_state];
1036 write_unlock_bh(&tcp_lock);
1037
1038 ip_conntrack_event_cache(IPCT_PROTOINFO_VOLATILE, skb);
1039 if (new_state != old_state)
1040 ip_conntrack_event_cache(IPCT_PROTOINFO, skb);
1041
1042 if (!test_bit(IPS_SEEN_REPLY_BIT, &conntrack->status)) {
1043 /* If only reply is a RST, we can consider ourselves not to
1044 have an established connection: this is a fairly common
1045 problem case, so we can delete the conntrack
1046 immediately. --RR */
1047 if (th->rst) {
1048 if (del_timer(&conntrack->timeout))
1049 conntrack->timeout.function((unsigned long)
1050 conntrack);
1051 return NF_ACCEPT;
1052 }
1053 } else if (!test_bit(IPS_ASSURED_BIT, &conntrack->status)
1054 && (old_state == TCP_CONNTRACK_SYN_RECV
1055 || old_state == TCP_CONNTRACK_ESTABLISHED)
1056 && new_state == TCP_CONNTRACK_ESTABLISHED) {
1057 /* Set ASSURED if we see see valid ack in ESTABLISHED
1058 after SYN_RECV or a valid answer for a picked up
1059 connection. */
1060 set_bit(IPS_ASSURED_BIT, &conntrack->status);
1061 ip_conntrack_event_cache(IPCT_STATUS, skb);
1062 }
1063 ip_ct_refresh_acct(conntrack, ctinfo, skb, timeout);
1064
1065 return NF_ACCEPT;
1066 }
1067
1068 /* Called when a new connection for this protocol found. */
1069 static int tcp_new(struct ip_conntrack *conntrack,
1070 const struct sk_buff *skb)
1071 {
1072 enum tcp_conntrack new_state;
1073 struct iphdr *iph = skb->nh.iph;
1074 struct tcphdr *th, _tcph;
1075 #ifdef DEBUGP_VARS
1076 struct ip_ct_tcp_state *sender = &conntrack->proto.tcp.seen[0];
1077 struct ip_ct_tcp_state *receiver = &conntrack->proto.tcp.seen[1];
1078 #endif
1079
1080 th = skb_header_pointer(skb, iph->ihl * 4,
1081 sizeof(_tcph), &_tcph);
1082 BUG_ON(th == NULL);
1083
1084 /* Don't need lock here: this conntrack not in circulation yet */
1085 new_state
1086 = tcp_conntracks[0][get_conntrack_index(th)]
1087 [TCP_CONNTRACK_NONE];
1088
1089 /* Invalid: delete conntrack */
1090 if (new_state >= TCP_CONNTRACK_MAX) {
1091 DEBUGP("ip_ct_tcp: invalid new deleting.\n");
1092 return 0;
1093 }
1094
1095 if (new_state == TCP_CONNTRACK_SYN_SENT) {
1096 /* SYN packet */
1097 conntrack->proto.tcp.seen[0].td_end =
1098 segment_seq_plus_len(ntohl(th->seq), skb->len,
1099 iph, th);
1100 conntrack->proto.tcp.seen[0].td_maxwin = ntohs(th->window);
1101 if (conntrack->proto.tcp.seen[0].td_maxwin == 0)
1102 conntrack->proto.tcp.seen[0].td_maxwin = 1;
1103 conntrack->proto.tcp.seen[0].td_maxend =
1104 conntrack->proto.tcp.seen[0].td_end;
1105
1106 tcp_options(skb, iph, th, &conntrack->proto.tcp.seen[0]);
1107 conntrack->proto.tcp.seen[1].flags = 0;
1108 conntrack->proto.tcp.seen[0].loose =
1109 conntrack->proto.tcp.seen[1].loose = 0;
1110 } else if (ip_ct_tcp_loose == 0) {
1111 /* Don't try to pick up connections. */
1112 return 0;
1113 } else {
1114 /*
1115 * We are in the middle of a connection,
1116 * its history is lost for us.
1117 * Let's try to use the data from the packet.
1118 */
1119 conntrack->proto.tcp.seen[0].td_end =
1120 segment_seq_plus_len(ntohl(th->seq), skb->len,
1121 iph, th);
1122 conntrack->proto.tcp.seen[0].td_maxwin = ntohs(th->window);
1123 if (conntrack->proto.tcp.seen[0].td_maxwin == 0)
1124 conntrack->proto.tcp.seen[0].td_maxwin = 1;
1125 conntrack->proto.tcp.seen[0].td_maxend =
1126 conntrack->proto.tcp.seen[0].td_end +
1127 conntrack->proto.tcp.seen[0].td_maxwin;
1128 conntrack->proto.tcp.seen[0].td_scale = 0;
1129
1130 /* We assume SACK. Should we assume window scaling too? */
1131 conntrack->proto.tcp.seen[0].flags =
1132 conntrack->proto.tcp.seen[1].flags = IP_CT_TCP_FLAG_SACK_PERM;
1133 conntrack->proto.tcp.seen[0].loose =
1134 conntrack->proto.tcp.seen[1].loose = ip_ct_tcp_loose;
1135 }
1136
1137 conntrack->proto.tcp.seen[1].td_end = 0;
1138 conntrack->proto.tcp.seen[1].td_maxend = 0;
1139 conntrack->proto.tcp.seen[1].td_maxwin = 1;
1140 conntrack->proto.tcp.seen[1].td_scale = 0;
1141
1142 /* tcp_packet will set them */
1143 conntrack->proto.tcp.state = TCP_CONNTRACK_NONE;
1144 conntrack->proto.tcp.last_index = TCP_NONE_SET;
1145
1146 DEBUGP("tcp_new: sender end=%u maxend=%u maxwin=%u scale=%i "
1147 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
1148 sender->td_end, sender->td_maxend, sender->td_maxwin,
1149 sender->td_scale,
1150 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
1151 receiver->td_scale);
1152 return 1;
1153 }
1154
1155 struct ip_conntrack_protocol ip_conntrack_protocol_tcp =
1156 {
1157 .proto = IPPROTO_TCP,
1158 .name = "tcp",
1159 .pkt_to_tuple = tcp_pkt_to_tuple,
1160 .invert_tuple = tcp_invert_tuple,
1161 .print_tuple = tcp_print_tuple,
1162 .print_conntrack = tcp_print_conntrack,
1163 .packet = tcp_packet,
1164 .new = tcp_new,
1165 .error = tcp_error,
1166 #if defined(CONFIG_IP_NF_CONNTRACK_NETLINK) || \
1167 defined(CONFIG_IP_NF_CONNTRACK_NETLINK_MODULE)
1168 .to_nfattr = tcp_to_nfattr,
1169 .from_nfattr = nfattr_to_tcp,
1170 .tuple_to_nfattr = ip_ct_port_tuple_to_nfattr,
1171 .nfattr_to_tuple = ip_ct_port_nfattr_to_tuple,
1172 #endif
1173 };
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