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1 /* (C) 1999-2001 Paul `Rusty' Russell
2 * (C) 2002-2004 Netfilter Core Team <coreteam@netfilter.org>
3 * (C) 2002-2013 Jozsef Kadlecsik <kadlec@blackhole.kfki.hu>
4 * (C) 2006-2012 Patrick McHardy <kaber@trash.net>
5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License version 2 as
8 * published by the Free Software Foundation.
9 */
10
11 #include <linux/types.h>
12 #include <linux/timer.h>
13 #include <linux/module.h>
14 #include <linux/in.h>
15 #include <linux/tcp.h>
16 #include <linux/spinlock.h>
17 #include <linux/skbuff.h>
18 #include <linux/ipv6.h>
19 #include <net/ip6_checksum.h>
20 #include <asm/unaligned.h>
21
22 #include <net/tcp.h>
23
24 #include <linux/netfilter.h>
25 #include <linux/netfilter_ipv4.h>
26 #include <linux/netfilter_ipv6.h>
27 #include <net/netfilter/nf_conntrack.h>
28 #include <net/netfilter/nf_conntrack_l4proto.h>
29 #include <net/netfilter/nf_conntrack_ecache.h>
30 #include <net/netfilter/nf_conntrack_seqadj.h>
31 #include <net/netfilter/nf_conntrack_synproxy.h>
32 #include <net/netfilter/nf_log.h>
33 #include <net/netfilter/ipv4/nf_conntrack_ipv4.h>
34 #include <net/netfilter/ipv6/nf_conntrack_ipv6.h>
35
36 /* "Be conservative in what you do,
37 be liberal in what you accept from others."
38 If it's non-zero, we mark only out of window RST segments as INVALID. */
39 static int nf_ct_tcp_be_liberal __read_mostly = 0;
40
41 /* If it is set to zero, we disable picking up already established
42 connections. */
43 static int nf_ct_tcp_loose __read_mostly = 1;
44
45 /* Max number of the retransmitted packets without receiving an (acceptable)
46 ACK from the destination. If this number is reached, a shorter timer
47 will be started. */
48 static int nf_ct_tcp_max_retrans __read_mostly = 3;
49
50 /* FIXME: Examine ipfilter's timeouts and conntrack transitions more
51 closely. They're more complex. --RR */
52
53 static const char *const tcp_conntrack_names[] = {
54 "NONE",
55 "SYN_SENT",
56 "SYN_RECV",
57 "ESTABLISHED",
58 "FIN_WAIT",
59 "CLOSE_WAIT",
60 "LAST_ACK",
61 "TIME_WAIT",
62 "CLOSE",
63 "SYN_SENT2",
64 };
65
66 #define SECS * HZ
67 #define MINS * 60 SECS
68 #define HOURS * 60 MINS
69 #define DAYS * 24 HOURS
70
71 static unsigned int tcp_timeouts[TCP_CONNTRACK_TIMEOUT_MAX] __read_mostly = {
72 [TCP_CONNTRACK_SYN_SENT] = 2 MINS,
73 [TCP_CONNTRACK_SYN_RECV] = 60 SECS,
74 [TCP_CONNTRACK_ESTABLISHED] = 5 DAYS,
75 [TCP_CONNTRACK_FIN_WAIT] = 2 MINS,
76 [TCP_CONNTRACK_CLOSE_WAIT] = 60 SECS,
77 [TCP_CONNTRACK_LAST_ACK] = 30 SECS,
78 [TCP_CONNTRACK_TIME_WAIT] = 2 MINS,
79 [TCP_CONNTRACK_CLOSE] = 10 SECS,
80 [TCP_CONNTRACK_SYN_SENT2] = 2 MINS,
81 /* RFC1122 says the R2 limit should be at least 100 seconds.
82 Linux uses 15 packets as limit, which corresponds
83 to ~13-30min depending on RTO. */
84 [TCP_CONNTRACK_RETRANS] = 5 MINS,
85 [TCP_CONNTRACK_UNACK] = 5 MINS,
86 };
87
88 #define sNO TCP_CONNTRACK_NONE
89 #define sSS TCP_CONNTRACK_SYN_SENT
90 #define sSR TCP_CONNTRACK_SYN_RECV
91 #define sES TCP_CONNTRACK_ESTABLISHED
92 #define sFW TCP_CONNTRACK_FIN_WAIT
93 #define sCW TCP_CONNTRACK_CLOSE_WAIT
94 #define sLA TCP_CONNTRACK_LAST_ACK
95 #define sTW TCP_CONNTRACK_TIME_WAIT
96 #define sCL TCP_CONNTRACK_CLOSE
97 #define sS2 TCP_CONNTRACK_SYN_SENT2
98 #define sIV TCP_CONNTRACK_MAX
99 #define sIG TCP_CONNTRACK_IGNORE
100
101 /* What TCP flags are set from RST/SYN/FIN/ACK. */
102 enum tcp_bit_set {
103 TCP_SYN_SET,
104 TCP_SYNACK_SET,
105 TCP_FIN_SET,
106 TCP_ACK_SET,
107 TCP_RST_SET,
108 TCP_NONE_SET,
109 };
110
111 /*
112 * The TCP state transition table needs a few words...
113 *
114 * We are the man in the middle. All the packets go through us
115 * but might get lost in transit to the destination.
116 * It is assumed that the destinations can't receive segments
117 * we haven't seen.
118 *
119 * The checked segment is in window, but our windows are *not*
120 * equivalent with the ones of the sender/receiver. We always
121 * try to guess the state of the current sender.
122 *
123 * The meaning of the states are:
124 *
125 * NONE: initial state
126 * SYN_SENT: SYN-only packet seen
127 * SYN_SENT2: SYN-only packet seen from reply dir, simultaneous open
128 * SYN_RECV: SYN-ACK packet seen
129 * ESTABLISHED: ACK packet seen
130 * FIN_WAIT: FIN packet seen
131 * CLOSE_WAIT: ACK seen (after FIN)
132 * LAST_ACK: FIN seen (after FIN)
133 * TIME_WAIT: last ACK seen
134 * CLOSE: closed connection (RST)
135 *
136 * Packets marked as IGNORED (sIG):
137 * if they may be either invalid or valid
138 * and the receiver may send back a connection
139 * closing RST or a SYN/ACK.
140 *
141 * Packets marked as INVALID (sIV):
142 * if we regard them as truly invalid packets
143 */
144 static const u8 tcp_conntracks[2][6][TCP_CONNTRACK_MAX] = {
145 {
146 /* ORIGINAL */
147 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
148 /*syn*/ { sSS, sSS, sIG, sIG, sIG, sIG, sIG, sSS, sSS, sS2 },
149 /*
150 * sNO -> sSS Initialize a new connection
151 * sSS -> sSS Retransmitted SYN
152 * sS2 -> sS2 Late retransmitted SYN
153 * sSR -> sIG
154 * sES -> sIG Error: SYNs in window outside the SYN_SENT state
155 * are errors. Receiver will reply with RST
156 * and close the connection.
157 * Or we are not in sync and hold a dead connection.
158 * sFW -> sIG
159 * sCW -> sIG
160 * sLA -> sIG
161 * sTW -> sSS Reopened connection (RFC 1122).
162 * sCL -> sSS
163 */
164 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
165 /*synack*/ { sIV, sIV, sSR, sIV, sIV, sIV, sIV, sIV, sIV, sSR },
166 /*
167 * sNO -> sIV Too late and no reason to do anything
168 * sSS -> sIV Client can't send SYN and then SYN/ACK
169 * sS2 -> sSR SYN/ACK sent to SYN2 in simultaneous open
170 * sSR -> sSR Late retransmitted SYN/ACK in simultaneous open
171 * sES -> sIV Invalid SYN/ACK packets sent by the client
172 * sFW -> sIV
173 * sCW -> sIV
174 * sLA -> sIV
175 * sTW -> sIV
176 * sCL -> sIV
177 */
178 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
179 /*fin*/ { sIV, sIV, sFW, sFW, sLA, sLA, sLA, sTW, sCL, sIV },
180 /*
181 * sNO -> sIV Too late and no reason to do anything...
182 * sSS -> sIV Client migth not send FIN in this state:
183 * we enforce waiting for a SYN/ACK reply first.
184 * sS2 -> sIV
185 * sSR -> sFW Close started.
186 * sES -> sFW
187 * sFW -> sLA FIN seen in both directions, waiting for
188 * the last ACK.
189 * Migth be a retransmitted FIN as well...
190 * sCW -> sLA
191 * sLA -> sLA Retransmitted FIN. Remain in the same state.
192 * sTW -> sTW
193 * sCL -> sCL
194 */
195 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
196 /*ack*/ { sES, sIV, sES, sES, sCW, sCW, sTW, sTW, sCL, sIV },
197 /*
198 * sNO -> sES Assumed.
199 * sSS -> sIV ACK is invalid: we haven't seen a SYN/ACK yet.
200 * sS2 -> sIV
201 * sSR -> sES Established state is reached.
202 * sES -> sES :-)
203 * sFW -> sCW Normal close request answered by ACK.
204 * sCW -> sCW
205 * sLA -> sTW Last ACK detected (RFC5961 challenged)
206 * sTW -> sTW Retransmitted last ACK. Remain in the same state.
207 * sCL -> sCL
208 */
209 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
210 /*rst*/ { sIV, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sCL },
211 /*none*/ { sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV }
212 },
213 {
214 /* REPLY */
215 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
216 /*syn*/ { sIV, sS2, sIV, sIV, sIV, sIV, sIV, sSS, sIV, sS2 },
217 /*
218 * sNO -> sIV Never reached.
219 * sSS -> sS2 Simultaneous open
220 * sS2 -> sS2 Retransmitted simultaneous SYN
221 * sSR -> sIV Invalid SYN packets sent by the server
222 * sES -> sIV
223 * sFW -> sIV
224 * sCW -> sIV
225 * sLA -> sIV
226 * sTW -> sSS Reopened connection, but server may have switched role
227 * sCL -> sIV
228 */
229 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
230 /*synack*/ { sIV, sSR, sIG, sIG, sIG, sIG, sIG, sIG, sIG, sSR },
231 /*
232 * sSS -> sSR Standard open.
233 * sS2 -> sSR Simultaneous open
234 * sSR -> sIG Retransmitted SYN/ACK, ignore it.
235 * sES -> sIG Late retransmitted SYN/ACK?
236 * sFW -> sIG Might be SYN/ACK answering ignored SYN
237 * sCW -> sIG
238 * sLA -> sIG
239 * sTW -> sIG
240 * sCL -> sIG
241 */
242 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
243 /*fin*/ { sIV, sIV, sFW, sFW, sLA, sLA, sLA, sTW, sCL, sIV },
244 /*
245 * sSS -> sIV Server might not send FIN in this state.
246 * sS2 -> sIV
247 * sSR -> sFW Close started.
248 * sES -> sFW
249 * sFW -> sLA FIN seen in both directions.
250 * sCW -> sLA
251 * sLA -> sLA Retransmitted FIN.
252 * sTW -> sTW
253 * sCL -> sCL
254 */
255 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
256 /*ack*/ { sIV, sIG, sSR, sES, sCW, sCW, sTW, sTW, sCL, sIG },
257 /*
258 * sSS -> sIG Might be a half-open connection.
259 * sS2 -> sIG
260 * sSR -> sSR Might answer late resent SYN.
261 * sES -> sES :-)
262 * sFW -> sCW Normal close request answered by ACK.
263 * sCW -> sCW
264 * sLA -> sTW Last ACK detected (RFC5961 challenged)
265 * sTW -> sTW Retransmitted last ACK.
266 * sCL -> sCL
267 */
268 /* sNO, sSS, sSR, sES, sFW, sCW, sLA, sTW, sCL, sS2 */
269 /*rst*/ { sIV, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sCL, sCL },
270 /*none*/ { sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV, sIV }
271 }
272 };
273
274 static inline struct nf_tcp_net *tcp_pernet(struct net *net)
275 {
276 return &net->ct.nf_ct_proto.tcp;
277 }
278
279 static bool tcp_pkt_to_tuple(const struct sk_buff *skb, unsigned int dataoff,
280 struct net *net, struct nf_conntrack_tuple *tuple)
281 {
282 const struct tcphdr *hp;
283 struct tcphdr _hdr;
284
285 /* Actually only need first 4 bytes to get ports. */
286 hp = skb_header_pointer(skb, dataoff, 4, &_hdr);
287 if (hp == NULL)
288 return false;
289
290 tuple->src.u.tcp.port = hp->source;
291 tuple->dst.u.tcp.port = hp->dest;
292
293 return true;
294 }
295
296 static bool tcp_invert_tuple(struct nf_conntrack_tuple *tuple,
297 const struct nf_conntrack_tuple *orig)
298 {
299 tuple->src.u.tcp.port = orig->dst.u.tcp.port;
300 tuple->dst.u.tcp.port = orig->src.u.tcp.port;
301 return true;
302 }
303
304 /* Print out the per-protocol part of the tuple. */
305 static void tcp_print_tuple(struct seq_file *s,
306 const struct nf_conntrack_tuple *tuple)
307 {
308 seq_printf(s, "sport=%hu dport=%hu ",
309 ntohs(tuple->src.u.tcp.port),
310 ntohs(tuple->dst.u.tcp.port));
311 }
312
313 /* Print out the private part of the conntrack. */
314 static void tcp_print_conntrack(struct seq_file *s, struct nf_conn *ct)
315 {
316 seq_printf(s, "%s ", tcp_conntrack_names[ct->proto.tcp.state]);
317 }
318
319 static unsigned int get_conntrack_index(const struct tcphdr *tcph)
320 {
321 if (tcph->rst) return TCP_RST_SET;
322 else if (tcph->syn) return (tcph->ack ? TCP_SYNACK_SET : TCP_SYN_SET);
323 else if (tcph->fin) return TCP_FIN_SET;
324 else if (tcph->ack) return TCP_ACK_SET;
325 else return TCP_NONE_SET;
326 }
327
328 /* TCP connection tracking based on 'Real Stateful TCP Packet Filtering
329 in IP Filter' by Guido van Rooij.
330
331 http://www.sane.nl/events/sane2000/papers.html
332 http://www.darkart.com/mirrors/www.obfuscation.org/ipf/
333
334 The boundaries and the conditions are changed according to RFC793:
335 the packet must intersect the window (i.e. segments may be
336 after the right or before the left edge) and thus receivers may ACK
337 segments after the right edge of the window.
338
339 td_maxend = max(sack + max(win,1)) seen in reply packets
340 td_maxwin = max(max(win, 1)) + (sack - ack) seen in sent packets
341 td_maxwin += seq + len - sender.td_maxend
342 if seq + len > sender.td_maxend
343 td_end = max(seq + len) seen in sent packets
344
345 I. Upper bound for valid data: seq <= sender.td_maxend
346 II. Lower bound for valid data: seq + len >= sender.td_end - receiver.td_maxwin
347 III. Upper bound for valid (s)ack: sack <= receiver.td_end
348 IV. Lower bound for valid (s)ack: sack >= receiver.td_end - MAXACKWINDOW
349
350 where sack is the highest right edge of sack block found in the packet
351 or ack in the case of packet without SACK option.
352
353 The upper bound limit for a valid (s)ack is not ignored -
354 we doesn't have to deal with fragments.
355 */
356
357 static inline __u32 segment_seq_plus_len(__u32 seq,
358 size_t len,
359 unsigned int dataoff,
360 const struct tcphdr *tcph)
361 {
362 /* XXX Should I use payload length field in IP/IPv6 header ?
363 * - YK */
364 return (seq + len - dataoff - tcph->doff*4
365 + (tcph->syn ? 1 : 0) + (tcph->fin ? 1 : 0));
366 }
367
368 /* Fixme: what about big packets? */
369 #define MAXACKWINCONST 66000
370 #define MAXACKWINDOW(sender) \
371 ((sender)->td_maxwin > MAXACKWINCONST ? (sender)->td_maxwin \
372 : MAXACKWINCONST)
373
374 /*
375 * Simplified tcp_parse_options routine from tcp_input.c
376 */
377 static void tcp_options(const struct sk_buff *skb,
378 unsigned int dataoff,
379 const struct tcphdr *tcph,
380 struct ip_ct_tcp_state *state)
381 {
382 unsigned char buff[(15 * 4) - sizeof(struct tcphdr)];
383 const unsigned char *ptr;
384 int length = (tcph->doff*4) - sizeof(struct tcphdr);
385
386 if (!length)
387 return;
388
389 ptr = skb_header_pointer(skb, dataoff + sizeof(struct tcphdr),
390 length, buff);
391 BUG_ON(ptr == NULL);
392
393 state->td_scale =
394 state->flags = 0;
395
396 while (length > 0) {
397 int opcode=*ptr++;
398 int opsize;
399
400 switch (opcode) {
401 case TCPOPT_EOL:
402 return;
403 case TCPOPT_NOP: /* Ref: RFC 793 section 3.1 */
404 length--;
405 continue;
406 default:
407 if (length < 2)
408 return;
409 opsize=*ptr++;
410 if (opsize < 2) /* "silly options" */
411 return;
412 if (opsize > length)
413 return; /* don't parse partial options */
414
415 if (opcode == TCPOPT_SACK_PERM
416 && opsize == TCPOLEN_SACK_PERM)
417 state->flags |= IP_CT_TCP_FLAG_SACK_PERM;
418 else if (opcode == TCPOPT_WINDOW
419 && opsize == TCPOLEN_WINDOW) {
420 state->td_scale = *(u_int8_t *)ptr;
421
422 if (state->td_scale > TCP_MAX_WSCALE)
423 state->td_scale = TCP_MAX_WSCALE;
424
425 state->flags |=
426 IP_CT_TCP_FLAG_WINDOW_SCALE;
427 }
428 ptr += opsize - 2;
429 length -= opsize;
430 }
431 }
432 }
433
434 static void tcp_sack(const struct sk_buff *skb, unsigned int dataoff,
435 const struct tcphdr *tcph, __u32 *sack)
436 {
437 unsigned char buff[(15 * 4) - sizeof(struct tcphdr)];
438 const unsigned char *ptr;
439 int length = (tcph->doff*4) - sizeof(struct tcphdr);
440 __u32 tmp;
441
442 if (!length)
443 return;
444
445 ptr = skb_header_pointer(skb, dataoff + sizeof(struct tcphdr),
446 length, buff);
447 BUG_ON(ptr == NULL);
448
449 /* Fast path for timestamp-only option */
450 if (length == TCPOLEN_TSTAMP_ALIGNED
451 && *(__be32 *)ptr == htonl((TCPOPT_NOP << 24)
452 | (TCPOPT_NOP << 16)
453 | (TCPOPT_TIMESTAMP << 8)
454 | TCPOLEN_TIMESTAMP))
455 return;
456
457 while (length > 0) {
458 int opcode = *ptr++;
459 int opsize, i;
460
461 switch (opcode) {
462 case TCPOPT_EOL:
463 return;
464 case TCPOPT_NOP: /* Ref: RFC 793 section 3.1 */
465 length--;
466 continue;
467 default:
468 if (length < 2)
469 return;
470 opsize = *ptr++;
471 if (opsize < 2) /* "silly options" */
472 return;
473 if (opsize > length)
474 return; /* don't parse partial options */
475
476 if (opcode == TCPOPT_SACK
477 && opsize >= (TCPOLEN_SACK_BASE
478 + TCPOLEN_SACK_PERBLOCK)
479 && !((opsize - TCPOLEN_SACK_BASE)
480 % TCPOLEN_SACK_PERBLOCK)) {
481 for (i = 0;
482 i < (opsize - TCPOLEN_SACK_BASE);
483 i += TCPOLEN_SACK_PERBLOCK) {
484 tmp = get_unaligned_be32((__be32 *)(ptr+i)+1);
485
486 if (after(tmp, *sack))
487 *sack = tmp;
488 }
489 return;
490 }
491 ptr += opsize - 2;
492 length -= opsize;
493 }
494 }
495 }
496
497 static bool tcp_in_window(const struct nf_conn *ct,
498 struct ip_ct_tcp *state,
499 enum ip_conntrack_dir dir,
500 unsigned int index,
501 const struct sk_buff *skb,
502 unsigned int dataoff,
503 const struct tcphdr *tcph,
504 u_int8_t pf)
505 {
506 struct net *net = nf_ct_net(ct);
507 struct nf_tcp_net *tn = tcp_pernet(net);
508 struct ip_ct_tcp_state *sender = &state->seen[dir];
509 struct ip_ct_tcp_state *receiver = &state->seen[!dir];
510 const struct nf_conntrack_tuple *tuple = &ct->tuplehash[dir].tuple;
511 __u32 seq, ack, sack, end, win, swin;
512 s32 receiver_offset;
513 bool res, in_recv_win;
514
515 /*
516 * Get the required data from the packet.
517 */
518 seq = ntohl(tcph->seq);
519 ack = sack = ntohl(tcph->ack_seq);
520 win = ntohs(tcph->window);
521 end = segment_seq_plus_len(seq, skb->len, dataoff, tcph);
522
523 if (receiver->flags & IP_CT_TCP_FLAG_SACK_PERM)
524 tcp_sack(skb, dataoff, tcph, &sack);
525
526 /* Take into account NAT sequence number mangling */
527 receiver_offset = nf_ct_seq_offset(ct, !dir, ack - 1);
528 ack -= receiver_offset;
529 sack -= receiver_offset;
530
531 pr_debug("tcp_in_window: START\n");
532 pr_debug("tcp_in_window: ");
533 nf_ct_dump_tuple(tuple);
534 pr_debug("seq=%u ack=%u+(%d) sack=%u+(%d) win=%u end=%u\n",
535 seq, ack, receiver_offset, sack, receiver_offset, win, end);
536 pr_debug("tcp_in_window: sender end=%u maxend=%u maxwin=%u scale=%i "
537 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
538 sender->td_end, sender->td_maxend, sender->td_maxwin,
539 sender->td_scale,
540 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
541 receiver->td_scale);
542
543 if (sender->td_maxwin == 0) {
544 /*
545 * Initialize sender data.
546 */
547 if (tcph->syn) {
548 /*
549 * SYN-ACK in reply to a SYN
550 * or SYN from reply direction in simultaneous open.
551 */
552 sender->td_end =
553 sender->td_maxend = end;
554 sender->td_maxwin = (win == 0 ? 1 : win);
555
556 tcp_options(skb, dataoff, tcph, sender);
557 /*
558 * RFC 1323:
559 * Both sides must send the Window Scale option
560 * to enable window scaling in either direction.
561 */
562 if (!(sender->flags & IP_CT_TCP_FLAG_WINDOW_SCALE
563 && receiver->flags & IP_CT_TCP_FLAG_WINDOW_SCALE))
564 sender->td_scale =
565 receiver->td_scale = 0;
566 if (!tcph->ack)
567 /* Simultaneous open */
568 return true;
569 } else {
570 /*
571 * We are in the middle of a connection,
572 * its history is lost for us.
573 * Let's try to use the data from the packet.
574 */
575 sender->td_end = end;
576 swin = win << sender->td_scale;
577 sender->td_maxwin = (swin == 0 ? 1 : swin);
578 sender->td_maxend = end + sender->td_maxwin;
579 /*
580 * We haven't seen traffic in the other direction yet
581 * but we have to tweak window tracking to pass III
582 * and IV until that happens.
583 */
584 if (receiver->td_maxwin == 0)
585 receiver->td_end = receiver->td_maxend = sack;
586 }
587 } else if (((state->state == TCP_CONNTRACK_SYN_SENT
588 && dir == IP_CT_DIR_ORIGINAL)
589 || (state->state == TCP_CONNTRACK_SYN_RECV
590 && dir == IP_CT_DIR_REPLY))
591 && after(end, sender->td_end)) {
592 /*
593 * RFC 793: "if a TCP is reinitialized ... then it need
594 * not wait at all; it must only be sure to use sequence
595 * numbers larger than those recently used."
596 */
597 sender->td_end =
598 sender->td_maxend = end;
599 sender->td_maxwin = (win == 0 ? 1 : win);
600
601 tcp_options(skb, dataoff, tcph, sender);
602 }
603
604 if (!(tcph->ack)) {
605 /*
606 * If there is no ACK, just pretend it was set and OK.
607 */
608 ack = sack = receiver->td_end;
609 } else if (((tcp_flag_word(tcph) & (TCP_FLAG_ACK|TCP_FLAG_RST)) ==
610 (TCP_FLAG_ACK|TCP_FLAG_RST))
611 && (ack == 0)) {
612 /*
613 * Broken TCP stacks, that set ACK in RST packets as well
614 * with zero ack value.
615 */
616 ack = sack = receiver->td_end;
617 }
618
619 if (tcph->rst && seq == 0 && state->state == TCP_CONNTRACK_SYN_SENT)
620 /*
621 * RST sent answering SYN.
622 */
623 seq = end = sender->td_end;
624
625 pr_debug("tcp_in_window: ");
626 nf_ct_dump_tuple(tuple);
627 pr_debug("seq=%u ack=%u+(%d) sack=%u+(%d) win=%u end=%u\n",
628 seq, ack, receiver_offset, sack, receiver_offset, win, end);
629 pr_debug("tcp_in_window: sender end=%u maxend=%u maxwin=%u scale=%i "
630 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
631 sender->td_end, sender->td_maxend, sender->td_maxwin,
632 sender->td_scale,
633 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
634 receiver->td_scale);
635
636 /* Is the ending sequence in the receive window (if available)? */
637 in_recv_win = !receiver->td_maxwin ||
638 after(end, sender->td_end - receiver->td_maxwin - 1);
639
640 pr_debug("tcp_in_window: I=%i II=%i III=%i IV=%i\n",
641 before(seq, sender->td_maxend + 1),
642 (in_recv_win ? 1 : 0),
643 before(sack, receiver->td_end + 1),
644 after(sack, receiver->td_end - MAXACKWINDOW(sender) - 1));
645
646 if (before(seq, sender->td_maxend + 1) &&
647 in_recv_win &&
648 before(sack, receiver->td_end + 1) &&
649 after(sack, receiver->td_end - MAXACKWINDOW(sender) - 1)) {
650 /*
651 * Take into account window scaling (RFC 1323).
652 */
653 if (!tcph->syn)
654 win <<= sender->td_scale;
655
656 /*
657 * Update sender data.
658 */
659 swin = win + (sack - ack);
660 if (sender->td_maxwin < swin)
661 sender->td_maxwin = swin;
662 if (after(end, sender->td_end)) {
663 sender->td_end = end;
664 sender->flags |= IP_CT_TCP_FLAG_DATA_UNACKNOWLEDGED;
665 }
666 if (tcph->ack) {
667 if (!(sender->flags & IP_CT_TCP_FLAG_MAXACK_SET)) {
668 sender->td_maxack = ack;
669 sender->flags |= IP_CT_TCP_FLAG_MAXACK_SET;
670 } else if (after(ack, sender->td_maxack))
671 sender->td_maxack = ack;
672 }
673
674 /*
675 * Update receiver data.
676 */
677 if (receiver->td_maxwin != 0 && after(end, sender->td_maxend))
678 receiver->td_maxwin += end - sender->td_maxend;
679 if (after(sack + win, receiver->td_maxend - 1)) {
680 receiver->td_maxend = sack + win;
681 if (win == 0)
682 receiver->td_maxend++;
683 }
684 if (ack == receiver->td_end)
685 receiver->flags &= ~IP_CT_TCP_FLAG_DATA_UNACKNOWLEDGED;
686
687 /*
688 * Check retransmissions.
689 */
690 if (index == TCP_ACK_SET) {
691 if (state->last_dir == dir
692 && state->last_seq == seq
693 && state->last_ack == ack
694 && state->last_end == end
695 && state->last_win == win)
696 state->retrans++;
697 else {
698 state->last_dir = dir;
699 state->last_seq = seq;
700 state->last_ack = ack;
701 state->last_end = end;
702 state->last_win = win;
703 state->retrans = 0;
704 }
705 }
706 res = true;
707 } else {
708 res = false;
709 if (sender->flags & IP_CT_TCP_FLAG_BE_LIBERAL ||
710 tn->tcp_be_liberal)
711 res = true;
712 if (!res && LOG_INVALID(net, IPPROTO_TCP))
713 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
714 "nf_ct_tcp: %s ",
715 before(seq, sender->td_maxend + 1) ?
716 in_recv_win ?
717 before(sack, receiver->td_end + 1) ?
718 after(sack, receiver->td_end - MAXACKWINDOW(sender) - 1) ? "BUG"
719 : "ACK is under the lower bound (possible overly delayed ACK)"
720 : "ACK is over the upper bound (ACKed data not seen yet)"
721 : "SEQ is under the lower bound (already ACKed data retransmitted)"
722 : "SEQ is over the upper bound (over the window of the receiver)");
723 }
724
725 pr_debug("tcp_in_window: res=%u sender end=%u maxend=%u maxwin=%u "
726 "receiver end=%u maxend=%u maxwin=%u\n",
727 res, sender->td_end, sender->td_maxend, sender->td_maxwin,
728 receiver->td_end, receiver->td_maxend, receiver->td_maxwin);
729
730 return res;
731 }
732
733 /* table of valid flag combinations - PUSH, ECE and CWR are always valid */
734 static const u8 tcp_valid_flags[(TCPHDR_FIN|TCPHDR_SYN|TCPHDR_RST|TCPHDR_ACK|
735 TCPHDR_URG) + 1] =
736 {
737 [TCPHDR_SYN] = 1,
738 [TCPHDR_SYN|TCPHDR_URG] = 1,
739 [TCPHDR_SYN|TCPHDR_ACK] = 1,
740 [TCPHDR_RST] = 1,
741 [TCPHDR_RST|TCPHDR_ACK] = 1,
742 [TCPHDR_FIN|TCPHDR_ACK] = 1,
743 [TCPHDR_FIN|TCPHDR_ACK|TCPHDR_URG] = 1,
744 [TCPHDR_ACK] = 1,
745 [TCPHDR_ACK|TCPHDR_URG] = 1,
746 };
747
748 /* Protect conntrack agaist broken packets. Code taken from ipt_unclean.c. */
749 static int tcp_error(struct net *net, struct nf_conn *tmpl,
750 struct sk_buff *skb,
751 unsigned int dataoff,
752 u_int8_t pf,
753 unsigned int hooknum)
754 {
755 const struct tcphdr *th;
756 struct tcphdr _tcph;
757 unsigned int tcplen = skb->len - dataoff;
758 u_int8_t tcpflags;
759
760 /* Smaller that minimal TCP header? */
761 th = skb_header_pointer(skb, dataoff, sizeof(_tcph), &_tcph);
762 if (th == NULL) {
763 if (LOG_INVALID(net, IPPROTO_TCP))
764 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
765 "nf_ct_tcp: short packet ");
766 return -NF_ACCEPT;
767 }
768
769 /* Not whole TCP header or malformed packet */
770 if (th->doff*4 < sizeof(struct tcphdr) || tcplen < th->doff*4) {
771 if (LOG_INVALID(net, IPPROTO_TCP))
772 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
773 "nf_ct_tcp: truncated/malformed packet ");
774 return -NF_ACCEPT;
775 }
776
777 /* Checksum invalid? Ignore.
778 * We skip checking packets on the outgoing path
779 * because the checksum is assumed to be correct.
780 */
781 /* FIXME: Source route IP option packets --RR */
782 if (net->ct.sysctl_checksum && hooknum == NF_INET_PRE_ROUTING &&
783 nf_checksum(skb, hooknum, dataoff, IPPROTO_TCP, pf)) {
784 if (LOG_INVALID(net, IPPROTO_TCP))
785 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
786 "nf_ct_tcp: bad TCP checksum ");
787 return -NF_ACCEPT;
788 }
789
790 /* Check TCP flags. */
791 tcpflags = (tcp_flag_byte(th) & ~(TCPHDR_ECE|TCPHDR_CWR|TCPHDR_PSH));
792 if (!tcp_valid_flags[tcpflags]) {
793 if (LOG_INVALID(net, IPPROTO_TCP))
794 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
795 "nf_ct_tcp: invalid TCP flag combination ");
796 return -NF_ACCEPT;
797 }
798
799 return NF_ACCEPT;
800 }
801
802 static unsigned int *tcp_get_timeouts(struct net *net)
803 {
804 return tcp_pernet(net)->timeouts;
805 }
806
807 /* Returns verdict for packet, or -1 for invalid. */
808 static int tcp_packet(struct nf_conn *ct,
809 const struct sk_buff *skb,
810 unsigned int dataoff,
811 enum ip_conntrack_info ctinfo,
812 u_int8_t pf,
813 unsigned int hooknum,
814 unsigned int *timeouts)
815 {
816 struct net *net = nf_ct_net(ct);
817 struct nf_tcp_net *tn = tcp_pernet(net);
818 struct nf_conntrack_tuple *tuple;
819 enum tcp_conntrack new_state, old_state;
820 enum ip_conntrack_dir dir;
821 const struct tcphdr *th;
822 struct tcphdr _tcph;
823 unsigned long timeout;
824 unsigned int index;
825
826 th = skb_header_pointer(skb, dataoff, sizeof(_tcph), &_tcph);
827 BUG_ON(th == NULL);
828
829 spin_lock_bh(&ct->lock);
830 old_state = ct->proto.tcp.state;
831 dir = CTINFO2DIR(ctinfo);
832 index = get_conntrack_index(th);
833 new_state = tcp_conntracks[dir][index][old_state];
834 tuple = &ct->tuplehash[dir].tuple;
835
836 switch (new_state) {
837 case TCP_CONNTRACK_SYN_SENT:
838 if (old_state < TCP_CONNTRACK_TIME_WAIT)
839 break;
840 /* RFC 1122: "When a connection is closed actively,
841 * it MUST linger in TIME-WAIT state for a time 2xMSL
842 * (Maximum Segment Lifetime). However, it MAY accept
843 * a new SYN from the remote TCP to reopen the connection
844 * directly from TIME-WAIT state, if..."
845 * We ignore the conditions because we are in the
846 * TIME-WAIT state anyway.
847 *
848 * Handle aborted connections: we and the server
849 * think there is an existing connection but the client
850 * aborts it and starts a new one.
851 */
852 if (((ct->proto.tcp.seen[dir].flags
853 | ct->proto.tcp.seen[!dir].flags)
854 & IP_CT_TCP_FLAG_CLOSE_INIT)
855 || (ct->proto.tcp.last_dir == dir
856 && ct->proto.tcp.last_index == TCP_RST_SET)) {
857 /* Attempt to reopen a closed/aborted connection.
858 * Delete this connection and look up again. */
859 spin_unlock_bh(&ct->lock);
860
861 /* Only repeat if we can actually remove the timer.
862 * Destruction may already be in progress in process
863 * context and we must give it a chance to terminate.
864 */
865 if (nf_ct_kill(ct))
866 return -NF_REPEAT;
867 return NF_DROP;
868 }
869 /* Fall through */
870 case TCP_CONNTRACK_IGNORE:
871 /* Ignored packets:
872 *
873 * Our connection entry may be out of sync, so ignore
874 * packets which may signal the real connection between
875 * the client and the server.
876 *
877 * a) SYN in ORIGINAL
878 * b) SYN/ACK in REPLY
879 * c) ACK in reply direction after initial SYN in original.
880 *
881 * If the ignored packet is invalid, the receiver will send
882 * a RST we'll catch below.
883 */
884 if (index == TCP_SYNACK_SET
885 && ct->proto.tcp.last_index == TCP_SYN_SET
886 && ct->proto.tcp.last_dir != dir
887 && ntohl(th->ack_seq) == ct->proto.tcp.last_end) {
888 /* b) This SYN/ACK acknowledges a SYN that we earlier
889 * ignored as invalid. This means that the client and
890 * the server are both in sync, while the firewall is
891 * not. We get in sync from the previously annotated
892 * values.
893 */
894 old_state = TCP_CONNTRACK_SYN_SENT;
895 new_state = TCP_CONNTRACK_SYN_RECV;
896 ct->proto.tcp.seen[ct->proto.tcp.last_dir].td_end =
897 ct->proto.tcp.last_end;
898 ct->proto.tcp.seen[ct->proto.tcp.last_dir].td_maxend =
899 ct->proto.tcp.last_end;
900 ct->proto.tcp.seen[ct->proto.tcp.last_dir].td_maxwin =
901 ct->proto.tcp.last_win == 0 ?
902 1 : ct->proto.tcp.last_win;
903 ct->proto.tcp.seen[ct->proto.tcp.last_dir].td_scale =
904 ct->proto.tcp.last_wscale;
905 ct->proto.tcp.last_flags &= ~IP_CT_EXP_CHALLENGE_ACK;
906 ct->proto.tcp.seen[ct->proto.tcp.last_dir].flags =
907 ct->proto.tcp.last_flags;
908 memset(&ct->proto.tcp.seen[dir], 0,
909 sizeof(struct ip_ct_tcp_state));
910 break;
911 }
912 ct->proto.tcp.last_index = index;
913 ct->proto.tcp.last_dir = dir;
914 ct->proto.tcp.last_seq = ntohl(th->seq);
915 ct->proto.tcp.last_end =
916 segment_seq_plus_len(ntohl(th->seq), skb->len, dataoff, th);
917 ct->proto.tcp.last_win = ntohs(th->window);
918
919 /* a) This is a SYN in ORIGINAL. The client and the server
920 * may be in sync but we are not. In that case, we annotate
921 * the TCP options and let the packet go through. If it is a
922 * valid SYN packet, the server will reply with a SYN/ACK, and
923 * then we'll get in sync. Otherwise, the server potentially
924 * responds with a challenge ACK if implementing RFC5961.
925 */
926 if (index == TCP_SYN_SET && dir == IP_CT_DIR_ORIGINAL) {
927 struct ip_ct_tcp_state seen = {};
928
929 ct->proto.tcp.last_flags =
930 ct->proto.tcp.last_wscale = 0;
931 tcp_options(skb, dataoff, th, &seen);
932 if (seen.flags & IP_CT_TCP_FLAG_WINDOW_SCALE) {
933 ct->proto.tcp.last_flags |=
934 IP_CT_TCP_FLAG_WINDOW_SCALE;
935 ct->proto.tcp.last_wscale = seen.td_scale;
936 }
937 if (seen.flags & IP_CT_TCP_FLAG_SACK_PERM) {
938 ct->proto.tcp.last_flags |=
939 IP_CT_TCP_FLAG_SACK_PERM;
940 }
941 /* Mark the potential for RFC5961 challenge ACK,
942 * this pose a special problem for LAST_ACK state
943 * as ACK is intrepretated as ACKing last FIN.
944 */
945 if (old_state == TCP_CONNTRACK_LAST_ACK)
946 ct->proto.tcp.last_flags |=
947 IP_CT_EXP_CHALLENGE_ACK;
948 }
949 spin_unlock_bh(&ct->lock);
950 if (LOG_INVALID(net, IPPROTO_TCP))
951 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
952 "nf_ct_tcp: invalid packet ignored in "
953 "state %s ", tcp_conntrack_names[old_state]);
954 return NF_ACCEPT;
955 case TCP_CONNTRACK_MAX:
956 /* Special case for SYN proxy: when the SYN to the server or
957 * the SYN/ACK from the server is lost, the client may transmit
958 * a keep-alive packet while in SYN_SENT state. This needs to
959 * be associated with the original conntrack entry in order to
960 * generate a new SYN with the correct sequence number.
961 */
962 if (nfct_synproxy(ct) && old_state == TCP_CONNTRACK_SYN_SENT &&
963 index == TCP_ACK_SET && dir == IP_CT_DIR_ORIGINAL &&
964 ct->proto.tcp.last_dir == IP_CT_DIR_ORIGINAL &&
965 ct->proto.tcp.seen[dir].td_end - 1 == ntohl(th->seq)) {
966 pr_debug("nf_ct_tcp: SYN proxy client keep alive\n");
967 spin_unlock_bh(&ct->lock);
968 return NF_ACCEPT;
969 }
970
971 /* Invalid packet */
972 pr_debug("nf_ct_tcp: Invalid dir=%i index=%u ostate=%u\n",
973 dir, get_conntrack_index(th), old_state);
974 spin_unlock_bh(&ct->lock);
975 if (LOG_INVALID(net, IPPROTO_TCP))
976 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
977 "nf_ct_tcp: invalid state ");
978 return -NF_ACCEPT;
979 case TCP_CONNTRACK_TIME_WAIT:
980 /* RFC5961 compliance cause stack to send "challenge-ACK"
981 * e.g. in response to spurious SYNs. Conntrack MUST
982 * not believe this ACK is acking last FIN.
983 */
984 if (old_state == TCP_CONNTRACK_LAST_ACK &&
985 index == TCP_ACK_SET &&
986 ct->proto.tcp.last_dir != dir &&
987 ct->proto.tcp.last_index == TCP_SYN_SET &&
988 (ct->proto.tcp.last_flags & IP_CT_EXP_CHALLENGE_ACK)) {
989 /* Detected RFC5961 challenge ACK */
990 ct->proto.tcp.last_flags &= ~IP_CT_EXP_CHALLENGE_ACK;
991 spin_unlock_bh(&ct->lock);
992 if (LOG_INVALID(net, IPPROTO_TCP))
993 nf_log_packet(net, pf, 0, skb, NULL, NULL, NULL,
994 "nf_ct_tcp: challenge-ACK ignored ");
995 return NF_ACCEPT; /* Don't change state */
996 }
997 break;
998 case TCP_CONNTRACK_CLOSE:
999 if (index == TCP_RST_SET
1000 && (ct->proto.tcp.seen[!dir].flags & IP_CT_TCP_FLAG_MAXACK_SET)
1001 && before(ntohl(th->seq), ct->proto.tcp.seen[!dir].td_maxack)) {
1002 /* Invalid RST */
1003 spin_unlock_bh(&ct->lock);
1004 if (LOG_INVALID(net, IPPROTO_TCP))
1005 nf_log_packet(net, pf, 0, skb, NULL, NULL,
1006 NULL, "nf_ct_tcp: invalid RST ");
1007 return -NF_ACCEPT;
1008 }
1009 if (index == TCP_RST_SET
1010 && ((test_bit(IPS_SEEN_REPLY_BIT, &ct->status)
1011 && ct->proto.tcp.last_index == TCP_SYN_SET)
1012 || (!test_bit(IPS_ASSURED_BIT, &ct->status)
1013 && ct->proto.tcp.last_index == TCP_ACK_SET))
1014 && ntohl(th->ack_seq) == ct->proto.tcp.last_end) {
1015 /* RST sent to invalid SYN or ACK we had let through
1016 * at a) and c) above:
1017 *
1018 * a) SYN was in window then
1019 * c) we hold a half-open connection.
1020 *
1021 * Delete our connection entry.
1022 * We skip window checking, because packet might ACK
1023 * segments we ignored. */
1024 goto in_window;
1025 }
1026 /* Just fall through */
1027 default:
1028 /* Keep compilers happy. */
1029 break;
1030 }
1031
1032 if (!tcp_in_window(ct, &ct->proto.tcp, dir, index,
1033 skb, dataoff, th, pf)) {
1034 spin_unlock_bh(&ct->lock);
1035 return -NF_ACCEPT;
1036 }
1037 in_window:
1038 /* From now on we have got in-window packets */
1039 ct->proto.tcp.last_index = index;
1040 ct->proto.tcp.last_dir = dir;
1041
1042 pr_debug("tcp_conntracks: ");
1043 nf_ct_dump_tuple(tuple);
1044 pr_debug("syn=%i ack=%i fin=%i rst=%i old=%i new=%i\n",
1045 (th->syn ? 1 : 0), (th->ack ? 1 : 0),
1046 (th->fin ? 1 : 0), (th->rst ? 1 : 0),
1047 old_state, new_state);
1048
1049 ct->proto.tcp.state = new_state;
1050 if (old_state != new_state
1051 && new_state == TCP_CONNTRACK_FIN_WAIT)
1052 ct->proto.tcp.seen[dir].flags |= IP_CT_TCP_FLAG_CLOSE_INIT;
1053
1054 if (ct->proto.tcp.retrans >= tn->tcp_max_retrans &&
1055 timeouts[new_state] > timeouts[TCP_CONNTRACK_RETRANS])
1056 timeout = timeouts[TCP_CONNTRACK_RETRANS];
1057 else if ((ct->proto.tcp.seen[0].flags | ct->proto.tcp.seen[1].flags) &
1058 IP_CT_TCP_FLAG_DATA_UNACKNOWLEDGED &&
1059 timeouts[new_state] > timeouts[TCP_CONNTRACK_UNACK])
1060 timeout = timeouts[TCP_CONNTRACK_UNACK];
1061 else
1062 timeout = timeouts[new_state];
1063 spin_unlock_bh(&ct->lock);
1064
1065 if (new_state != old_state)
1066 nf_conntrack_event_cache(IPCT_PROTOINFO, ct);
1067
1068 if (!test_bit(IPS_SEEN_REPLY_BIT, &ct->status)) {
1069 /* If only reply is a RST, we can consider ourselves not to
1070 have an established connection: this is a fairly common
1071 problem case, so we can delete the conntrack
1072 immediately. --RR */
1073 if (th->rst) {
1074 nf_ct_kill_acct(ct, ctinfo, skb);
1075 return NF_ACCEPT;
1076 }
1077 /* ESTABLISHED without SEEN_REPLY, i.e. mid-connection
1078 * pickup with loose=1. Avoid large ESTABLISHED timeout.
1079 */
1080 if (new_state == TCP_CONNTRACK_ESTABLISHED &&
1081 timeout > timeouts[TCP_CONNTRACK_UNACK])
1082 timeout = timeouts[TCP_CONNTRACK_UNACK];
1083 } else if (!test_bit(IPS_ASSURED_BIT, &ct->status)
1084 && (old_state == TCP_CONNTRACK_SYN_RECV
1085 || old_state == TCP_CONNTRACK_ESTABLISHED)
1086 && new_state == TCP_CONNTRACK_ESTABLISHED) {
1087 /* Set ASSURED if we see see valid ack in ESTABLISHED
1088 after SYN_RECV or a valid answer for a picked up
1089 connection. */
1090 set_bit(IPS_ASSURED_BIT, &ct->status);
1091 nf_conntrack_event_cache(IPCT_ASSURED, ct);
1092 }
1093 nf_ct_refresh_acct(ct, ctinfo, skb, timeout);
1094
1095 return NF_ACCEPT;
1096 }
1097
1098 /* Called when a new connection for this protocol found. */
1099 static bool tcp_new(struct nf_conn *ct, const struct sk_buff *skb,
1100 unsigned int dataoff, unsigned int *timeouts)
1101 {
1102 enum tcp_conntrack new_state;
1103 const struct tcphdr *th;
1104 struct tcphdr _tcph;
1105 struct net *net = nf_ct_net(ct);
1106 struct nf_tcp_net *tn = tcp_pernet(net);
1107 const struct ip_ct_tcp_state *sender = &ct->proto.tcp.seen[0];
1108 const struct ip_ct_tcp_state *receiver = &ct->proto.tcp.seen[1];
1109
1110 th = skb_header_pointer(skb, dataoff, sizeof(_tcph), &_tcph);
1111 BUG_ON(th == NULL);
1112
1113 /* Don't need lock here: this conntrack not in circulation yet */
1114 new_state = tcp_conntracks[0][get_conntrack_index(th)][TCP_CONNTRACK_NONE];
1115
1116 /* Invalid: delete conntrack */
1117 if (new_state >= TCP_CONNTRACK_MAX) {
1118 pr_debug("nf_ct_tcp: invalid new deleting.\n");
1119 return false;
1120 }
1121
1122 if (new_state == TCP_CONNTRACK_SYN_SENT) {
1123 memset(&ct->proto.tcp, 0, sizeof(ct->proto.tcp));
1124 /* SYN packet */
1125 ct->proto.tcp.seen[0].td_end =
1126 segment_seq_plus_len(ntohl(th->seq), skb->len,
1127 dataoff, th);
1128 ct->proto.tcp.seen[0].td_maxwin = ntohs(th->window);
1129 if (ct->proto.tcp.seen[0].td_maxwin == 0)
1130 ct->proto.tcp.seen[0].td_maxwin = 1;
1131 ct->proto.tcp.seen[0].td_maxend =
1132 ct->proto.tcp.seen[0].td_end;
1133
1134 tcp_options(skb, dataoff, th, &ct->proto.tcp.seen[0]);
1135 } else if (tn->tcp_loose == 0) {
1136 /* Don't try to pick up connections. */
1137 return false;
1138 } else {
1139 memset(&ct->proto.tcp, 0, sizeof(ct->proto.tcp));
1140 /*
1141 * We are in the middle of a connection,
1142 * its history is lost for us.
1143 * Let's try to use the data from the packet.
1144 */
1145 ct->proto.tcp.seen[0].td_end =
1146 segment_seq_plus_len(ntohl(th->seq), skb->len,
1147 dataoff, th);
1148 ct->proto.tcp.seen[0].td_maxwin = ntohs(th->window);
1149 if (ct->proto.tcp.seen[0].td_maxwin == 0)
1150 ct->proto.tcp.seen[0].td_maxwin = 1;
1151 ct->proto.tcp.seen[0].td_maxend =
1152 ct->proto.tcp.seen[0].td_end +
1153 ct->proto.tcp.seen[0].td_maxwin;
1154
1155 /* We assume SACK and liberal window checking to handle
1156 * window scaling */
1157 ct->proto.tcp.seen[0].flags =
1158 ct->proto.tcp.seen[1].flags = IP_CT_TCP_FLAG_SACK_PERM |
1159 IP_CT_TCP_FLAG_BE_LIBERAL;
1160 }
1161
1162 /* tcp_packet will set them */
1163 ct->proto.tcp.last_index = TCP_NONE_SET;
1164
1165 pr_debug("tcp_new: sender end=%u maxend=%u maxwin=%u scale=%i "
1166 "receiver end=%u maxend=%u maxwin=%u scale=%i\n",
1167 sender->td_end, sender->td_maxend, sender->td_maxwin,
1168 sender->td_scale,
1169 receiver->td_end, receiver->td_maxend, receiver->td_maxwin,
1170 receiver->td_scale);
1171 return true;
1172 }
1173
1174 static bool tcp_can_early_drop(const struct nf_conn *ct)
1175 {
1176 switch (ct->proto.tcp.state) {
1177 case TCP_CONNTRACK_FIN_WAIT:
1178 case TCP_CONNTRACK_LAST_ACK:
1179 case TCP_CONNTRACK_TIME_WAIT:
1180 case TCP_CONNTRACK_CLOSE:
1181 case TCP_CONNTRACK_CLOSE_WAIT:
1182 return true;
1183 default:
1184 break;
1185 }
1186
1187 return false;
1188 }
1189
1190 #if IS_ENABLED(CONFIG_NF_CT_NETLINK)
1191
1192 #include <linux/netfilter/nfnetlink.h>
1193 #include <linux/netfilter/nfnetlink_conntrack.h>
1194
1195 static int tcp_to_nlattr(struct sk_buff *skb, struct nlattr *nla,
1196 struct nf_conn *ct)
1197 {
1198 struct nlattr *nest_parms;
1199 struct nf_ct_tcp_flags tmp = {};
1200
1201 spin_lock_bh(&ct->lock);
1202 nest_parms = nla_nest_start(skb, CTA_PROTOINFO_TCP | NLA_F_NESTED);
1203 if (!nest_parms)
1204 goto nla_put_failure;
1205
1206 if (nla_put_u8(skb, CTA_PROTOINFO_TCP_STATE, ct->proto.tcp.state) ||
1207 nla_put_u8(skb, CTA_PROTOINFO_TCP_WSCALE_ORIGINAL,
1208 ct->proto.tcp.seen[0].td_scale) ||
1209 nla_put_u8(skb, CTA_PROTOINFO_TCP_WSCALE_REPLY,
1210 ct->proto.tcp.seen[1].td_scale))
1211 goto nla_put_failure;
1212
1213 tmp.flags = ct->proto.tcp.seen[0].flags;
1214 if (nla_put(skb, CTA_PROTOINFO_TCP_FLAGS_ORIGINAL,
1215 sizeof(struct nf_ct_tcp_flags), &tmp))
1216 goto nla_put_failure;
1217
1218 tmp.flags = ct->proto.tcp.seen[1].flags;
1219 if (nla_put(skb, CTA_PROTOINFO_TCP_FLAGS_REPLY,
1220 sizeof(struct nf_ct_tcp_flags), &tmp))
1221 goto nla_put_failure;
1222 spin_unlock_bh(&ct->lock);
1223
1224 nla_nest_end(skb, nest_parms);
1225
1226 return 0;
1227
1228 nla_put_failure:
1229 spin_unlock_bh(&ct->lock);
1230 return -1;
1231 }
1232
1233 static const struct nla_policy tcp_nla_policy[CTA_PROTOINFO_TCP_MAX+1] = {
1234 [CTA_PROTOINFO_TCP_STATE] = { .type = NLA_U8 },
1235 [CTA_PROTOINFO_TCP_WSCALE_ORIGINAL] = { .type = NLA_U8 },
1236 [CTA_PROTOINFO_TCP_WSCALE_REPLY] = { .type = NLA_U8 },
1237 [CTA_PROTOINFO_TCP_FLAGS_ORIGINAL] = { .len = sizeof(struct nf_ct_tcp_flags) },
1238 [CTA_PROTOINFO_TCP_FLAGS_REPLY] = { .len = sizeof(struct nf_ct_tcp_flags) },
1239 };
1240
1241 static int nlattr_to_tcp(struct nlattr *cda[], struct nf_conn *ct)
1242 {
1243 struct nlattr *pattr = cda[CTA_PROTOINFO_TCP];
1244 struct nlattr *tb[CTA_PROTOINFO_TCP_MAX+1];
1245 int err;
1246
1247 /* updates could not contain anything about the private
1248 * protocol info, in that case skip the parsing */
1249 if (!pattr)
1250 return 0;
1251
1252 err = nla_parse_nested(tb, CTA_PROTOINFO_TCP_MAX, pattr,
1253 tcp_nla_policy, NULL);
1254 if (err < 0)
1255 return err;
1256
1257 if (tb[CTA_PROTOINFO_TCP_STATE] &&
1258 nla_get_u8(tb[CTA_PROTOINFO_TCP_STATE]) >= TCP_CONNTRACK_MAX)
1259 return -EINVAL;
1260
1261 spin_lock_bh(&ct->lock);
1262 if (tb[CTA_PROTOINFO_TCP_STATE])
1263 ct->proto.tcp.state = nla_get_u8(tb[CTA_PROTOINFO_TCP_STATE]);
1264
1265 if (tb[CTA_PROTOINFO_TCP_FLAGS_ORIGINAL]) {
1266 struct nf_ct_tcp_flags *attr =
1267 nla_data(tb[CTA_PROTOINFO_TCP_FLAGS_ORIGINAL]);
1268 ct->proto.tcp.seen[0].flags &= ~attr->mask;
1269 ct->proto.tcp.seen[0].flags |= attr->flags & attr->mask;
1270 }
1271
1272 if (tb[CTA_PROTOINFO_TCP_FLAGS_REPLY]) {
1273 struct nf_ct_tcp_flags *attr =
1274 nla_data(tb[CTA_PROTOINFO_TCP_FLAGS_REPLY]);
1275 ct->proto.tcp.seen[1].flags &= ~attr->mask;
1276 ct->proto.tcp.seen[1].flags |= attr->flags & attr->mask;
1277 }
1278
1279 if (tb[CTA_PROTOINFO_TCP_WSCALE_ORIGINAL] &&
1280 tb[CTA_PROTOINFO_TCP_WSCALE_REPLY] &&
1281 ct->proto.tcp.seen[0].flags & IP_CT_TCP_FLAG_WINDOW_SCALE &&
1282 ct->proto.tcp.seen[1].flags & IP_CT_TCP_FLAG_WINDOW_SCALE) {
1283 ct->proto.tcp.seen[0].td_scale =
1284 nla_get_u8(tb[CTA_PROTOINFO_TCP_WSCALE_ORIGINAL]);
1285 ct->proto.tcp.seen[1].td_scale =
1286 nla_get_u8(tb[CTA_PROTOINFO_TCP_WSCALE_REPLY]);
1287 }
1288 spin_unlock_bh(&ct->lock);
1289
1290 return 0;
1291 }
1292
1293 static int tcp_nlattr_size(void)
1294 {
1295 return nla_total_size(0) /* CTA_PROTOINFO_TCP */
1296 + nla_policy_len(tcp_nla_policy, CTA_PROTOINFO_TCP_MAX + 1);
1297 }
1298
1299 static int tcp_nlattr_tuple_size(void)
1300 {
1301 return nla_policy_len(nf_ct_port_nla_policy, CTA_PROTO_MAX + 1);
1302 }
1303 #endif
1304
1305 #if IS_ENABLED(CONFIG_NF_CT_NETLINK_TIMEOUT)
1306
1307 #include <linux/netfilter/nfnetlink.h>
1308 #include <linux/netfilter/nfnetlink_cttimeout.h>
1309
1310 static int tcp_timeout_nlattr_to_obj(struct nlattr *tb[],
1311 struct net *net, void *data)
1312 {
1313 unsigned int *timeouts = data;
1314 struct nf_tcp_net *tn = tcp_pernet(net);
1315 int i;
1316
1317 /* set default TCP timeouts. */
1318 for (i=0; i<TCP_CONNTRACK_TIMEOUT_MAX; i++)
1319 timeouts[i] = tn->timeouts[i];
1320
1321 if (tb[CTA_TIMEOUT_TCP_SYN_SENT]) {
1322 timeouts[TCP_CONNTRACK_SYN_SENT] =
1323 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_SYN_SENT]))*HZ;
1324 }
1325 if (tb[CTA_TIMEOUT_TCP_SYN_RECV]) {
1326 timeouts[TCP_CONNTRACK_SYN_RECV] =
1327 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_SYN_RECV]))*HZ;
1328 }
1329 if (tb[CTA_TIMEOUT_TCP_ESTABLISHED]) {
1330 timeouts[TCP_CONNTRACK_ESTABLISHED] =
1331 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_ESTABLISHED]))*HZ;
1332 }
1333 if (tb[CTA_TIMEOUT_TCP_FIN_WAIT]) {
1334 timeouts[TCP_CONNTRACK_FIN_WAIT] =
1335 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_FIN_WAIT]))*HZ;
1336 }
1337 if (tb[CTA_TIMEOUT_TCP_CLOSE_WAIT]) {
1338 timeouts[TCP_CONNTRACK_CLOSE_WAIT] =
1339 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_CLOSE_WAIT]))*HZ;
1340 }
1341 if (tb[CTA_TIMEOUT_TCP_LAST_ACK]) {
1342 timeouts[TCP_CONNTRACK_LAST_ACK] =
1343 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_LAST_ACK]))*HZ;
1344 }
1345 if (tb[CTA_TIMEOUT_TCP_TIME_WAIT]) {
1346 timeouts[TCP_CONNTRACK_TIME_WAIT] =
1347 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_TIME_WAIT]))*HZ;
1348 }
1349 if (tb[CTA_TIMEOUT_TCP_CLOSE]) {
1350 timeouts[TCP_CONNTRACK_CLOSE] =
1351 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_CLOSE]))*HZ;
1352 }
1353 if (tb[CTA_TIMEOUT_TCP_SYN_SENT2]) {
1354 timeouts[TCP_CONNTRACK_SYN_SENT2] =
1355 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_SYN_SENT2]))*HZ;
1356 }
1357 if (tb[CTA_TIMEOUT_TCP_RETRANS]) {
1358 timeouts[TCP_CONNTRACK_RETRANS] =
1359 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_RETRANS]))*HZ;
1360 }
1361 if (tb[CTA_TIMEOUT_TCP_UNACK]) {
1362 timeouts[TCP_CONNTRACK_UNACK] =
1363 ntohl(nla_get_be32(tb[CTA_TIMEOUT_TCP_UNACK]))*HZ;
1364 }
1365 return 0;
1366 }
1367
1368 static int
1369 tcp_timeout_obj_to_nlattr(struct sk_buff *skb, const void *data)
1370 {
1371 const unsigned int *timeouts = data;
1372
1373 if (nla_put_be32(skb, CTA_TIMEOUT_TCP_SYN_SENT,
1374 htonl(timeouts[TCP_CONNTRACK_SYN_SENT] / HZ)) ||
1375 nla_put_be32(skb, CTA_TIMEOUT_TCP_SYN_RECV,
1376 htonl(timeouts[TCP_CONNTRACK_SYN_RECV] / HZ)) ||
1377 nla_put_be32(skb, CTA_TIMEOUT_TCP_ESTABLISHED,
1378 htonl(timeouts[TCP_CONNTRACK_ESTABLISHED] / HZ)) ||
1379 nla_put_be32(skb, CTA_TIMEOUT_TCP_FIN_WAIT,
1380 htonl(timeouts[TCP_CONNTRACK_FIN_WAIT] / HZ)) ||
1381 nla_put_be32(skb, CTA_TIMEOUT_TCP_CLOSE_WAIT,
1382 htonl(timeouts[TCP_CONNTRACK_CLOSE_WAIT] / HZ)) ||
1383 nla_put_be32(skb, CTA_TIMEOUT_TCP_LAST_ACK,
1384 htonl(timeouts[TCP_CONNTRACK_LAST_ACK] / HZ)) ||
1385 nla_put_be32(skb, CTA_TIMEOUT_TCP_TIME_WAIT,
1386 htonl(timeouts[TCP_CONNTRACK_TIME_WAIT] / HZ)) ||
1387 nla_put_be32(skb, CTA_TIMEOUT_TCP_CLOSE,
1388 htonl(timeouts[TCP_CONNTRACK_CLOSE] / HZ)) ||
1389 nla_put_be32(skb, CTA_TIMEOUT_TCP_SYN_SENT2,
1390 htonl(timeouts[TCP_CONNTRACK_SYN_SENT2] / HZ)) ||
1391 nla_put_be32(skb, CTA_TIMEOUT_TCP_RETRANS,
1392 htonl(timeouts[TCP_CONNTRACK_RETRANS] / HZ)) ||
1393 nla_put_be32(skb, CTA_TIMEOUT_TCP_UNACK,
1394 htonl(timeouts[TCP_CONNTRACK_UNACK] / HZ)))
1395 goto nla_put_failure;
1396 return 0;
1397
1398 nla_put_failure:
1399 return -ENOSPC;
1400 }
1401
1402 static const struct nla_policy tcp_timeout_nla_policy[CTA_TIMEOUT_TCP_MAX+1] = {
1403 [CTA_TIMEOUT_TCP_SYN_SENT] = { .type = NLA_U32 },
1404 [CTA_TIMEOUT_TCP_SYN_RECV] = { .type = NLA_U32 },
1405 [CTA_TIMEOUT_TCP_ESTABLISHED] = { .type = NLA_U32 },
1406 [CTA_TIMEOUT_TCP_FIN_WAIT] = { .type = NLA_U32 },
1407 [CTA_TIMEOUT_TCP_CLOSE_WAIT] = { .type = NLA_U32 },
1408 [CTA_TIMEOUT_TCP_LAST_ACK] = { .type = NLA_U32 },
1409 [CTA_TIMEOUT_TCP_TIME_WAIT] = { .type = NLA_U32 },
1410 [CTA_TIMEOUT_TCP_CLOSE] = { .type = NLA_U32 },
1411 [CTA_TIMEOUT_TCP_SYN_SENT2] = { .type = NLA_U32 },
1412 [CTA_TIMEOUT_TCP_RETRANS] = { .type = NLA_U32 },
1413 [CTA_TIMEOUT_TCP_UNACK] = { .type = NLA_U32 },
1414 };
1415 #endif /* CONFIG_NF_CT_NETLINK_TIMEOUT */
1416
1417 #ifdef CONFIG_SYSCTL
1418 static struct ctl_table tcp_sysctl_table[] = {
1419 {
1420 .procname = "nf_conntrack_tcp_timeout_syn_sent",
1421 .maxlen = sizeof(unsigned int),
1422 .mode = 0644,
1423 .proc_handler = proc_dointvec_jiffies,
1424 },
1425 {
1426 .procname = "nf_conntrack_tcp_timeout_syn_recv",
1427 .maxlen = sizeof(unsigned int),
1428 .mode = 0644,
1429 .proc_handler = proc_dointvec_jiffies,
1430 },
1431 {
1432 .procname = "nf_conntrack_tcp_timeout_established",
1433 .maxlen = sizeof(unsigned int),
1434 .mode = 0644,
1435 .proc_handler = proc_dointvec_jiffies,
1436 },
1437 {
1438 .procname = "nf_conntrack_tcp_timeout_fin_wait",
1439 .maxlen = sizeof(unsigned int),
1440 .mode = 0644,
1441 .proc_handler = proc_dointvec_jiffies,
1442 },
1443 {
1444 .procname = "nf_conntrack_tcp_timeout_close_wait",
1445 .maxlen = sizeof(unsigned int),
1446 .mode = 0644,
1447 .proc_handler = proc_dointvec_jiffies,
1448 },
1449 {
1450 .procname = "nf_conntrack_tcp_timeout_last_ack",
1451 .maxlen = sizeof(unsigned int),
1452 .mode = 0644,
1453 .proc_handler = proc_dointvec_jiffies,
1454 },
1455 {
1456 .procname = "nf_conntrack_tcp_timeout_time_wait",
1457 .maxlen = sizeof(unsigned int),
1458 .mode = 0644,
1459 .proc_handler = proc_dointvec_jiffies,
1460 },
1461 {
1462 .procname = "nf_conntrack_tcp_timeout_close",
1463 .maxlen = sizeof(unsigned int),
1464 .mode = 0644,
1465 .proc_handler = proc_dointvec_jiffies,
1466 },
1467 {
1468 .procname = "nf_conntrack_tcp_timeout_max_retrans",
1469 .maxlen = sizeof(unsigned int),
1470 .mode = 0644,
1471 .proc_handler = proc_dointvec_jiffies,
1472 },
1473 {
1474 .procname = "nf_conntrack_tcp_timeout_unacknowledged",
1475 .maxlen = sizeof(unsigned int),
1476 .mode = 0644,
1477 .proc_handler = proc_dointvec_jiffies,
1478 },
1479 {
1480 .procname = "nf_conntrack_tcp_loose",
1481 .maxlen = sizeof(unsigned int),
1482 .mode = 0644,
1483 .proc_handler = proc_dointvec,
1484 },
1485 {
1486 .procname = "nf_conntrack_tcp_be_liberal",
1487 .maxlen = sizeof(unsigned int),
1488 .mode = 0644,
1489 .proc_handler = proc_dointvec,
1490 },
1491 {
1492 .procname = "nf_conntrack_tcp_max_retrans",
1493 .maxlen = sizeof(unsigned int),
1494 .mode = 0644,
1495 .proc_handler = proc_dointvec,
1496 },
1497 { }
1498 };
1499 #endif /* CONFIG_SYSCTL */
1500
1501 static int tcp_kmemdup_sysctl_table(struct nf_proto_net *pn,
1502 struct nf_tcp_net *tn)
1503 {
1504 #ifdef CONFIG_SYSCTL
1505 if (pn->ctl_table)
1506 return 0;
1507
1508 pn->ctl_table = kmemdup(tcp_sysctl_table,
1509 sizeof(tcp_sysctl_table),
1510 GFP_KERNEL);
1511 if (!pn->ctl_table)
1512 return -ENOMEM;
1513
1514 pn->ctl_table[0].data = &tn->timeouts[TCP_CONNTRACK_SYN_SENT];
1515 pn->ctl_table[1].data = &tn->timeouts[TCP_CONNTRACK_SYN_RECV];
1516 pn->ctl_table[2].data = &tn->timeouts[TCP_CONNTRACK_ESTABLISHED];
1517 pn->ctl_table[3].data = &tn->timeouts[TCP_CONNTRACK_FIN_WAIT];
1518 pn->ctl_table[4].data = &tn->timeouts[TCP_CONNTRACK_CLOSE_WAIT];
1519 pn->ctl_table[5].data = &tn->timeouts[TCP_CONNTRACK_LAST_ACK];
1520 pn->ctl_table[6].data = &tn->timeouts[TCP_CONNTRACK_TIME_WAIT];
1521 pn->ctl_table[7].data = &tn->timeouts[TCP_CONNTRACK_CLOSE];
1522 pn->ctl_table[8].data = &tn->timeouts[TCP_CONNTRACK_RETRANS];
1523 pn->ctl_table[9].data = &tn->timeouts[TCP_CONNTRACK_UNACK];
1524 pn->ctl_table[10].data = &tn->tcp_loose;
1525 pn->ctl_table[11].data = &tn->tcp_be_liberal;
1526 pn->ctl_table[12].data = &tn->tcp_max_retrans;
1527 #endif
1528 return 0;
1529 }
1530
1531 static int tcp_init_net(struct net *net, u_int16_t proto)
1532 {
1533 struct nf_tcp_net *tn = tcp_pernet(net);
1534 struct nf_proto_net *pn = &tn->pn;
1535
1536 if (!pn->users) {
1537 int i;
1538
1539 for (i = 0; i < TCP_CONNTRACK_TIMEOUT_MAX; i++)
1540 tn->timeouts[i] = tcp_timeouts[i];
1541
1542 tn->tcp_loose = nf_ct_tcp_loose;
1543 tn->tcp_be_liberal = nf_ct_tcp_be_liberal;
1544 tn->tcp_max_retrans = nf_ct_tcp_max_retrans;
1545 }
1546
1547 return tcp_kmemdup_sysctl_table(pn, tn);
1548 }
1549
1550 static struct nf_proto_net *tcp_get_net_proto(struct net *net)
1551 {
1552 return &net->ct.nf_ct_proto.tcp.pn;
1553 }
1554
1555 struct nf_conntrack_l4proto nf_conntrack_l4proto_tcp4 __read_mostly =
1556 {
1557 .l3proto = PF_INET,
1558 .l4proto = IPPROTO_TCP,
1559 .name = "tcp",
1560 .pkt_to_tuple = tcp_pkt_to_tuple,
1561 .invert_tuple = tcp_invert_tuple,
1562 .print_tuple = tcp_print_tuple,
1563 .print_conntrack = tcp_print_conntrack,
1564 .packet = tcp_packet,
1565 .get_timeouts = tcp_get_timeouts,
1566 .new = tcp_new,
1567 .error = tcp_error,
1568 .can_early_drop = tcp_can_early_drop,
1569 #if IS_ENABLED(CONFIG_NF_CT_NETLINK)
1570 .to_nlattr = tcp_to_nlattr,
1571 .nlattr_size = tcp_nlattr_size,
1572 .from_nlattr = nlattr_to_tcp,
1573 .tuple_to_nlattr = nf_ct_port_tuple_to_nlattr,
1574 .nlattr_to_tuple = nf_ct_port_nlattr_to_tuple,
1575 .nlattr_tuple_size = tcp_nlattr_tuple_size,
1576 .nla_policy = nf_ct_port_nla_policy,
1577 #endif
1578 #if IS_ENABLED(CONFIG_NF_CT_NETLINK_TIMEOUT)
1579 .ctnl_timeout = {
1580 .nlattr_to_obj = tcp_timeout_nlattr_to_obj,
1581 .obj_to_nlattr = tcp_timeout_obj_to_nlattr,
1582 .nlattr_max = CTA_TIMEOUT_TCP_MAX,
1583 .obj_size = sizeof(unsigned int) *
1584 TCP_CONNTRACK_TIMEOUT_MAX,
1585 .nla_policy = tcp_timeout_nla_policy,
1586 },
1587 #endif /* CONFIG_NF_CT_NETLINK_TIMEOUT */
1588 .init_net = tcp_init_net,
1589 .get_net_proto = tcp_get_net_proto,
1590 };
1591 EXPORT_SYMBOL_GPL(nf_conntrack_l4proto_tcp4);
1592
1593 struct nf_conntrack_l4proto nf_conntrack_l4proto_tcp6 __read_mostly =
1594 {
1595 .l3proto = PF_INET6,
1596 .l4proto = IPPROTO_TCP,
1597 .name = "tcp",
1598 .pkt_to_tuple = tcp_pkt_to_tuple,
1599 .invert_tuple = tcp_invert_tuple,
1600 .print_tuple = tcp_print_tuple,
1601 .print_conntrack = tcp_print_conntrack,
1602 .packet = tcp_packet,
1603 .get_timeouts = tcp_get_timeouts,
1604 .new = tcp_new,
1605 .error = tcp_error,
1606 .can_early_drop = tcp_can_early_drop,
1607 #if IS_ENABLED(CONFIG_NF_CT_NETLINK)
1608 .to_nlattr = tcp_to_nlattr,
1609 .nlattr_size = tcp_nlattr_size,
1610 .from_nlattr = nlattr_to_tcp,
1611 .tuple_to_nlattr = nf_ct_port_tuple_to_nlattr,
1612 .nlattr_to_tuple = nf_ct_port_nlattr_to_tuple,
1613 .nlattr_tuple_size = tcp_nlattr_tuple_size,
1614 .nla_policy = nf_ct_port_nla_policy,
1615 #endif
1616 #if IS_ENABLED(CONFIG_NF_CT_NETLINK_TIMEOUT)
1617 .ctnl_timeout = {
1618 .nlattr_to_obj = tcp_timeout_nlattr_to_obj,
1619 .obj_to_nlattr = tcp_timeout_obj_to_nlattr,
1620 .nlattr_max = CTA_TIMEOUT_TCP_MAX,
1621 .obj_size = sizeof(unsigned int) *
1622 TCP_CONNTRACK_TIMEOUT_MAX,
1623 .nla_policy = tcp_timeout_nla_policy,
1624 },
1625 #endif /* CONFIG_NF_CT_NETLINK_TIMEOUT */
1626 .init_net = tcp_init_net,
1627 .get_net_proto = tcp_get_net_proto,
1628 };
1629 EXPORT_SYMBOL_GPL(nf_conntrack_l4proto_tcp6);