slcompress.c revision 1.38 1 1.38 tsutsui /* $NetBSD: slcompress.c,v 1.38 2009/04/18 15:20:06 tsutsui Exp $ */
2 1.16 christos /* Id: slcompress.c,v 1.3 1996/05/24 07:04:47 paulus Exp */
3 1.9 cgd
4 1.8 mycroft /*
5 1.8 mycroft * Copyright (c) 1989, 1993, 1994
6 1.8 mycroft * The Regents of the University of California. All rights reserved.
7 1.1 cgd *
8 1.4 deraadt * Redistribution and use in source and binary forms, with or without
9 1.4 deraadt * modification, are permitted provided that the following conditions
10 1.4 deraadt * are met:
11 1.4 deraadt * 1. Redistributions of source code must retain the above copyright
12 1.4 deraadt * notice, this list of conditions and the following disclaimer.
13 1.4 deraadt * 2. Redistributions in binary form must reproduce the above copyright
14 1.4 deraadt * notice, this list of conditions and the following disclaimer in the
15 1.4 deraadt * documentation and/or other materials provided with the distribution.
16 1.25 agc * 3. Neither the name of the University nor the names of its contributors
17 1.4 deraadt * may be used to endorse or promote products derived from this software
18 1.4 deraadt * without specific prior written permission.
19 1.1 cgd *
20 1.4 deraadt * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
21 1.4 deraadt * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22 1.4 deraadt * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23 1.4 deraadt * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
24 1.4 deraadt * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25 1.4 deraadt * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26 1.4 deraadt * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27 1.4 deraadt * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28 1.4 deraadt * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29 1.4 deraadt * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30 1.4 deraadt * SUCH DAMAGE.
31 1.4 deraadt *
32 1.9 cgd * @(#)slcompress.c 8.2 (Berkeley) 4/16/94
33 1.4 deraadt */
34 1.4 deraadt
35 1.4 deraadt /*
36 1.4 deraadt * Routines to compress and uncompess tcp packets (for transmission
37 1.4 deraadt * over low speed serial lines.
38 1.4 deraadt *
39 1.4 deraadt * Van Jacobson (van (at) helios.ee.lbl.gov), Dec 31, 1989:
40 1.8 mycroft * - Initial distribution.
41 1.1 cgd */
42 1.23 lukem
43 1.23 lukem #include <sys/cdefs.h>
44 1.38 tsutsui __KERNEL_RCSID(0, "$NetBSD: slcompress.c,v 1.38 2009/04/18 15:20:06 tsutsui Exp $");
45 1.8 mycroft
46 1.26 christos #include "opt_inet.h"
47 1.26 christos #ifdef INET
48 1.1 cgd #include <sys/param.h>
49 1.1 cgd #include <sys/mbuf.h>
50 1.14 christos #include <sys/systm.h>
51 1.5 mycroft
52 1.1 cgd #include <netinet/in.h>
53 1.1 cgd #include <netinet/in_systm.h>
54 1.1 cgd #include <netinet/ip.h>
55 1.1 cgd #include <netinet/tcp.h>
56 1.1 cgd
57 1.5 mycroft #include <net/slcompress.h>
58 1.1 cgd
59 1.1 cgd #ifndef SL_NO_STATS
60 1.1 cgd #define INCR(counter) ++comp->counter;
61 1.1 cgd #else
62 1.1 cgd #define INCR(counter)
63 1.1 cgd #endif
64 1.1 cgd
65 1.17 christos
66 1.1 cgd void
67 1.28 thorpej sl_compress_init(struct slcompress *comp)
68 1.17 christos {
69 1.21 augustss u_int i;
70 1.21 augustss struct cstate *tstate = comp->tstate;
71 1.17 christos
72 1.34 christos memset(comp, 0, sizeof(*comp));
73 1.17 christos for (i = MAX_STATES - 1; i > 0; --i) {
74 1.17 christos tstate[i].cs_id = i;
75 1.17 christos tstate[i].cs_next = &tstate[i - 1];
76 1.17 christos }
77 1.17 christos tstate[0].cs_next = &tstate[MAX_STATES - 1];
78 1.17 christos tstate[0].cs_id = 0;
79 1.17 christos comp->last_cs = &tstate[0];
80 1.17 christos comp->last_recv = 255;
81 1.17 christos comp->last_xmit = 255;
82 1.17 christos comp->flags = SLF_TOSS;
83 1.17 christos }
84 1.17 christos
85 1.17 christos
86 1.17 christos /*
87 1.17 christos * Like sl_compress_init, but we get to specify the maximum connection
88 1.17 christos * ID to use on transmission.
89 1.17 christos */
90 1.17 christos void
91 1.28 thorpej sl_compress_setup(struct slcompress *comp, int max_state)
92 1.7 paulus {
93 1.21 augustss u_int i;
94 1.21 augustss struct cstate *tstate = comp->tstate;
95 1.7 paulus
96 1.15 paulus if (max_state == -1) {
97 1.7 paulus max_state = MAX_STATES - 1;
98 1.34 christos memset(comp, 0, sizeof(*comp));
99 1.15 paulus } else {
100 1.15 paulus /* Don't reset statistics */
101 1.34 christos memset(comp->tstate, 0, sizeof(comp->tstate));
102 1.34 christos memset(comp->rstate, 0, sizeof(comp->rstate));
103 1.15 paulus }
104 1.7 paulus for (i = max_state; i > 0; --i) {
105 1.7 paulus tstate[i].cs_id = i;
106 1.7 paulus tstate[i].cs_next = &tstate[i - 1];
107 1.7 paulus }
108 1.7 paulus tstate[0].cs_next = &tstate[max_state];
109 1.1 cgd tstate[0].cs_id = 0;
110 1.1 cgd comp->last_cs = &tstate[0];
111 1.1 cgd comp->last_recv = 255;
112 1.1 cgd comp->last_xmit = 255;
113 1.2 cgd comp->flags = SLF_TOSS;
114 1.1 cgd }
115 1.1 cgd
116 1.1 cgd
117 1.1 cgd /* ENCODE encodes a number that is known to be non-zero. ENCODEZ
118 1.1 cgd * checks for zero (since zero has to be encoded in the long, 3 byte
119 1.1 cgd * form).
120 1.1 cgd */
121 1.1 cgd #define ENCODE(n) { \
122 1.33 matt if ((uint16_t)(n) >= 256) { \
123 1.1 cgd *cp++ = 0; \
124 1.1 cgd cp[1] = (n); \
125 1.1 cgd cp[0] = (n) >> 8; \
126 1.1 cgd cp += 2; \
127 1.1 cgd } else { \
128 1.1 cgd *cp++ = (n); \
129 1.1 cgd } \
130 1.1 cgd }
131 1.1 cgd #define ENCODEZ(n) { \
132 1.33 matt if ((uint16_t)(n) >= 256 || (uint16_t)(n) == 0) { \
133 1.1 cgd *cp++ = 0; \
134 1.1 cgd cp[1] = (n); \
135 1.1 cgd cp[0] = (n) >> 8; \
136 1.1 cgd cp += 2; \
137 1.1 cgd } else { \
138 1.1 cgd *cp++ = (n); \
139 1.1 cgd } \
140 1.1 cgd }
141 1.1 cgd
142 1.1 cgd #define DECODEL(f) { \
143 1.1 cgd if (*cp == 0) {\
144 1.1 cgd (f) = htonl(ntohl(f) + ((cp[1] << 8) | cp[2])); \
145 1.1 cgd cp += 3; \
146 1.1 cgd } else { \
147 1.33 matt (f) = htonl(ntohl(f) + (uint32_t)*cp++); \
148 1.1 cgd } \
149 1.1 cgd }
150 1.1 cgd
151 1.1 cgd #define DECODES(f) { \
152 1.1 cgd if (*cp == 0) {\
153 1.1 cgd (f) = htons(ntohs(f) + ((cp[1] << 8) | cp[2])); \
154 1.1 cgd cp += 3; \
155 1.1 cgd } else { \
156 1.33 matt (f) = htons(ntohs(f) + (uint32_t)*cp++); \
157 1.1 cgd } \
158 1.1 cgd }
159 1.1 cgd
160 1.1 cgd #define DECODEU(f) { \
161 1.1 cgd if (*cp == 0) {\
162 1.1 cgd (f) = htons((cp[1] << 8) | cp[2]); \
163 1.1 cgd cp += 3; \
164 1.1 cgd } else { \
165 1.33 matt (f) = htons((uint32_t)*cp++); \
166 1.1 cgd } \
167 1.1 cgd }
168 1.1 cgd
169 1.8 mycroft u_int
170 1.28 thorpej sl_compress_tcp(struct mbuf *m, struct ip *ip, struct slcompress *comp,
171 1.28 thorpej int compress_cid)
172 1.1 cgd {
173 1.21 augustss struct cstate *cs = comp->last_cs->cs_next;
174 1.21 augustss u_int hlen = ip->ip_hl;
175 1.21 augustss struct tcphdr *oth;
176 1.21 augustss struct tcphdr *th;
177 1.21 augustss u_int deltaS, deltaA;
178 1.21 augustss u_int changes = 0;
179 1.1 cgd u_char new_seq[16];
180 1.21 augustss u_char *cp = new_seq;
181 1.1 cgd
182 1.1 cgd /*
183 1.1 cgd * Bail if this is an IP fragment or if the TCP packet isn't
184 1.1 cgd * `compressible' (i.e., ACK isn't set or some other control bit is
185 1.1 cgd * set). (We assume that the caller has already made sure the
186 1.1 cgd * packet is IP proto TCP).
187 1.1 cgd */
188 1.1 cgd if ((ip->ip_off & htons(0x3fff)) || m->m_len < 40)
189 1.1 cgd return (TYPE_IP);
190 1.1 cgd
191 1.10 cgd th = (struct tcphdr *)&((int32_t *)ip)[hlen];
192 1.1 cgd if ((th->th_flags & (TH_SYN|TH_FIN|TH_RST|TH_ACK)) != TH_ACK)
193 1.1 cgd return (TYPE_IP);
194 1.1 cgd /*
195 1.1 cgd * Packet is compressible -- we're going to send either a
196 1.1 cgd * COMPRESSED_TCP or UNCOMPRESSED_TCP packet. Either way we need
197 1.1 cgd * to locate (or create) the connection state. Special case the
198 1.1 cgd * most recently used connection since it's most likely to be used
199 1.1 cgd * again & we don't have to do any reordering if it's used.
200 1.1 cgd */
201 1.1 cgd INCR(sls_packets)
202 1.1 cgd if (ip->ip_src.s_addr != cs->cs_ip.ip_src.s_addr ||
203 1.1 cgd ip->ip_dst.s_addr != cs->cs_ip.ip_dst.s_addr ||
204 1.10 cgd *(int32_t *)th != ((int32_t *)&cs->cs_ip)[cs->cs_ip.ip_hl]) {
205 1.1 cgd /*
206 1.1 cgd * Wasn't the first -- search for it.
207 1.1 cgd *
208 1.1 cgd * States are kept in a circularly linked list with
209 1.1 cgd * last_cs pointing to the end of the list. The
210 1.1 cgd * list is kept in lru order by moving a state to the
211 1.1 cgd * head of the list whenever it is referenced. Since
212 1.1 cgd * the list is short and, empirically, the connection
213 1.1 cgd * we want is almost always near the front, we locate
214 1.1 cgd * states via linear search. If we don't find a state
215 1.1 cgd * for the datagram, the oldest state is (re-)used.
216 1.1 cgd */
217 1.21 augustss struct cstate *lcs;
218 1.21 augustss struct cstate *lastcs = comp->last_cs;
219 1.1 cgd
220 1.1 cgd do {
221 1.1 cgd lcs = cs; cs = cs->cs_next;
222 1.1 cgd INCR(sls_searches)
223 1.1 cgd if (ip->ip_src.s_addr == cs->cs_ip.ip_src.s_addr
224 1.1 cgd && ip->ip_dst.s_addr == cs->cs_ip.ip_dst.s_addr
225 1.10 cgd && *(int32_t *)th ==
226 1.10 cgd ((int32_t *)&cs->cs_ip)[cs->cs_ip.ip_hl])
227 1.1 cgd goto found;
228 1.1 cgd } while (cs != lastcs);
229 1.1 cgd
230 1.1 cgd /*
231 1.1 cgd * Didn't find it -- re-use oldest cstate. Send an
232 1.1 cgd * uncompressed packet that tells the other side what
233 1.1 cgd * connection number we're using for this conversation.
234 1.1 cgd * Note that since the state list is circular, the oldest
235 1.1 cgd * state points to the newest and we only need to set
236 1.1 cgd * last_cs to update the lru linkage.
237 1.1 cgd */
238 1.1 cgd INCR(sls_misses)
239 1.1 cgd comp->last_cs = lcs;
240 1.1 cgd hlen += th->th_off;
241 1.1 cgd hlen <<= 2;
242 1.18 christos if (hlen > m->m_len)
243 1.18 christos return (TYPE_IP);
244 1.1 cgd goto uncompressed;
245 1.1 cgd
246 1.1 cgd found:
247 1.1 cgd /*
248 1.1 cgd * Found it -- move to the front on the connection list.
249 1.1 cgd */
250 1.1 cgd if (cs == lastcs)
251 1.1 cgd comp->last_cs = lcs;
252 1.1 cgd else {
253 1.1 cgd lcs->cs_next = cs->cs_next;
254 1.1 cgd cs->cs_next = lastcs->cs_next;
255 1.1 cgd lastcs->cs_next = cs;
256 1.1 cgd }
257 1.1 cgd }
258 1.1 cgd
259 1.1 cgd /*
260 1.1 cgd * Make sure that only what we expect to change changed. The first
261 1.1 cgd * line of the `if' checks the IP protocol version, header length &
262 1.1 cgd * type of service. The 2nd line checks the "Don't fragment" bit.
263 1.1 cgd * The 3rd line checks the time-to-live and protocol (the protocol
264 1.1 cgd * check is unnecessary but costless). The 4th line checks the TCP
265 1.1 cgd * header length. The 5th line checks IP options, if any. The 6th
266 1.1 cgd * line checks TCP options, if any. If any of these things are
267 1.1 cgd * different between the previous & current datagram, we send the
268 1.1 cgd * current datagram `uncompressed'.
269 1.1 cgd */
270 1.10 cgd oth = (struct tcphdr *)&((int32_t *)&cs->cs_ip)[hlen];
271 1.1 cgd deltaS = hlen;
272 1.1 cgd hlen += th->th_off;
273 1.1 cgd hlen <<= 2;
274 1.18 christos if (hlen > m->m_len)
275 1.18 christos return (TYPE_IP);
276 1.1 cgd
277 1.33 matt if (((uint16_t *)ip)[0] != ((uint16_t *)&cs->cs_ip)[0] ||
278 1.33 matt ((uint16_t *)ip)[3] != ((uint16_t *)&cs->cs_ip)[3] ||
279 1.33 matt ((uint16_t *)ip)[4] != ((uint16_t *)&cs->cs_ip)[4] ||
280 1.1 cgd th->th_off != oth->th_off ||
281 1.1 cgd (deltaS > 5 &&
282 1.38 tsutsui memcmp(ip + 1, &cs->cs_ip + 1, (deltaS - 5) << 2)) ||
283 1.1 cgd (th->th_off > 5 &&
284 1.38 tsutsui memcmp(th + 1, oth + 1, (th->th_off - 5) << 2)))
285 1.1 cgd goto uncompressed;
286 1.1 cgd
287 1.1 cgd /*
288 1.1 cgd * Figure out which of the changing fields changed. The
289 1.1 cgd * receiver expects changes in the order: urgent, window,
290 1.1 cgd * ack, seq (the order minimizes the number of temporaries
291 1.1 cgd * needed in this section of code).
292 1.1 cgd */
293 1.1 cgd if (th->th_flags & TH_URG) {
294 1.1 cgd deltaS = ntohs(th->th_urp);
295 1.1 cgd ENCODEZ(deltaS);
296 1.1 cgd changes |= NEW_U;
297 1.1 cgd } else if (th->th_urp != oth->th_urp)
298 1.1 cgd /* argh! URG not set but urp changed -- a sensible
299 1.1 cgd * implementation should never do this but RFC793
300 1.1 cgd * doesn't prohibit the change so we have to deal
301 1.1 cgd * with it. */
302 1.1 cgd goto uncompressed;
303 1.1 cgd
304 1.33 matt deltaS = (uint16_t)(ntohs(th->th_win) - ntohs(oth->th_win));
305 1.14 christos if (deltaS) {
306 1.1 cgd ENCODE(deltaS);
307 1.1 cgd changes |= NEW_W;
308 1.1 cgd }
309 1.1 cgd
310 1.14 christos deltaA = ntohl(th->th_ack) - ntohl(oth->th_ack);
311 1.14 christos if (deltaA) {
312 1.1 cgd if (deltaA > 0xffff)
313 1.1 cgd goto uncompressed;
314 1.1 cgd ENCODE(deltaA);
315 1.1 cgd changes |= NEW_A;
316 1.1 cgd }
317 1.1 cgd
318 1.14 christos deltaS = ntohl(th->th_seq) - ntohl(oth->th_seq);
319 1.14 christos if (deltaS) {
320 1.1 cgd if (deltaS > 0xffff)
321 1.1 cgd goto uncompressed;
322 1.1 cgd ENCODE(deltaS);
323 1.1 cgd changes |= NEW_S;
324 1.1 cgd }
325 1.1 cgd
326 1.24 itojun switch (changes) {
327 1.1 cgd
328 1.1 cgd case 0:
329 1.1 cgd /*
330 1.1 cgd * Nothing changed. If this packet contains data and the
331 1.1 cgd * last one didn't, this is probably a data packet following
332 1.1 cgd * an ack (normal on an interactive connection) and we send
333 1.1 cgd * it compressed. Otherwise it's probably a retransmit,
334 1.1 cgd * retransmitted ack or window probe. Send it uncompressed
335 1.1 cgd * in case the other side missed the compressed version.
336 1.1 cgd */
337 1.1 cgd if (ip->ip_len != cs->cs_ip.ip_len &&
338 1.1 cgd ntohs(cs->cs_ip.ip_len) == hlen)
339 1.1 cgd break;
340 1.1 cgd
341 1.1 cgd /* (fall through) */
342 1.1 cgd
343 1.1 cgd case SPECIAL_I:
344 1.1 cgd case SPECIAL_D:
345 1.1 cgd /*
346 1.1 cgd * actual changes match one of our special case encodings --
347 1.1 cgd * send packet uncompressed.
348 1.1 cgd */
349 1.1 cgd goto uncompressed;
350 1.1 cgd
351 1.1 cgd case NEW_S|NEW_A:
352 1.1 cgd if (deltaS == deltaA &&
353 1.1 cgd deltaS == ntohs(cs->cs_ip.ip_len) - hlen) {
354 1.1 cgd /* special case for echoed terminal traffic */
355 1.1 cgd changes = SPECIAL_I;
356 1.1 cgd cp = new_seq;
357 1.1 cgd }
358 1.1 cgd break;
359 1.1 cgd
360 1.1 cgd case NEW_S:
361 1.1 cgd if (deltaS == ntohs(cs->cs_ip.ip_len) - hlen) {
362 1.1 cgd /* special case for data xfer */
363 1.1 cgd changes = SPECIAL_D;
364 1.1 cgd cp = new_seq;
365 1.1 cgd }
366 1.1 cgd break;
367 1.1 cgd }
368 1.1 cgd
369 1.1 cgd deltaS = ntohs(ip->ip_id) - ntohs(cs->cs_ip.ip_id);
370 1.1 cgd if (deltaS != 1) {
371 1.1 cgd ENCODEZ(deltaS);
372 1.1 cgd changes |= NEW_I;
373 1.1 cgd }
374 1.1 cgd if (th->th_flags & TH_PUSH)
375 1.1 cgd changes |= TCP_PUSH_BIT;
376 1.1 cgd /*
377 1.1 cgd * Grab the cksum before we overwrite it below. Then update our
378 1.1 cgd * state with this packet's header.
379 1.1 cgd */
380 1.1 cgd deltaA = ntohs(th->th_sum);
381 1.38 tsutsui memcpy(&cs->cs_ip, ip, hlen);
382 1.1 cgd
383 1.1 cgd /*
384 1.1 cgd * We want to use the original packet as our compressed packet.
385 1.1 cgd * (cp - new_seq) is the number of bytes we need for compressed
386 1.1 cgd * sequence numbers. In addition we need one byte for the change
387 1.1 cgd * mask, one for the connection id and two for the tcp checksum.
388 1.1 cgd * So, (cp - new_seq) + 4 bytes of header are needed. hlen is how
389 1.1 cgd * many bytes of the original packet to toss so subtract the two to
390 1.1 cgd * get the new packet size.
391 1.1 cgd */
392 1.1 cgd deltaS = cp - new_seq;
393 1.1 cgd cp = (u_char *)ip;
394 1.1 cgd if (compress_cid == 0 || comp->last_xmit != cs->cs_id) {
395 1.1 cgd comp->last_xmit = cs->cs_id;
396 1.1 cgd hlen -= deltaS + 4;
397 1.1 cgd cp += hlen;
398 1.1 cgd *cp++ = changes | NEW_C;
399 1.1 cgd *cp++ = cs->cs_id;
400 1.1 cgd } else {
401 1.1 cgd hlen -= deltaS + 3;
402 1.1 cgd cp += hlen;
403 1.1 cgd *cp++ = changes;
404 1.1 cgd }
405 1.1 cgd m->m_len -= hlen;
406 1.1 cgd m->m_data += hlen;
407 1.1 cgd *cp++ = deltaA >> 8;
408 1.1 cgd *cp++ = deltaA;
409 1.38 tsutsui memcpy(cp, new_seq, deltaS);
410 1.1 cgd INCR(sls_compressed)
411 1.1 cgd return (TYPE_COMPRESSED_TCP);
412 1.1 cgd
413 1.1 cgd /*
414 1.1 cgd * Update connection state cs & send uncompressed packet ('uncompressed'
415 1.1 cgd * means a regular ip/tcp packet but with the 'conversation id' we hope
416 1.1 cgd * to use on future compressed packets in the protocol field).
417 1.1 cgd */
418 1.1 cgd uncompressed:
419 1.38 tsutsui memcpy(&cs->cs_ip, ip, hlen);
420 1.1 cgd ip->ip_p = cs->cs_id;
421 1.1 cgd comp->last_xmit = cs->cs_id;
422 1.1 cgd return (TYPE_UNCOMPRESSED_TCP);
423 1.1 cgd }
424 1.1 cgd
425 1.1 cgd
426 1.1 cgd int
427 1.28 thorpej sl_uncompress_tcp(u_char **bufp, int len, u_int type, struct slcompress *comp)
428 1.1 cgd {
429 1.12 paulus u_char *hdr, *cp;
430 1.18 christos int vjlen;
431 1.18 christos u_int hlen;
432 1.8 mycroft
433 1.31 christos cp = bufp ? *bufp : NULL;
434 1.12 paulus vjlen = sl_uncompress_tcp_core(cp, len, len, type, comp, &hdr, &hlen);
435 1.12 paulus if (vjlen < 0)
436 1.12 paulus return (0); /* error */
437 1.12 paulus if (vjlen == 0)
438 1.12 paulus return (len); /* was uncompressed already */
439 1.12 paulus
440 1.12 paulus cp += vjlen;
441 1.12 paulus len -= vjlen;
442 1.12 paulus
443 1.12 paulus /*
444 1.12 paulus * At this point, cp points to the first byte of data in the
445 1.12 paulus * packet. If we're not aligned on a 4-byte boundary, copy the
446 1.12 paulus * data down so the ip & tcp headers will be aligned. Then back up
447 1.12 paulus * cp by the tcp/ip header length to make room for the reconstructed
448 1.12 paulus * header (we assume the packet we were handed has enough space to
449 1.12 paulus * prepend 128 bytes of header).
450 1.12 paulus */
451 1.13 cgd if ((long)cp & 3) {
452 1.12 paulus if (len > 0)
453 1.32 christos memmove((void *)((long)cp &~ 3), cp, len);
454 1.13 cgd cp = (u_char *)((long)cp &~ 3);
455 1.12 paulus }
456 1.12 paulus cp -= hlen;
457 1.12 paulus len += hlen;
458 1.38 tsutsui memcpy(cp, hdr, hlen);
459 1.12 paulus
460 1.30 christos *bufp = cp;
461 1.12 paulus return (len);
462 1.4 deraadt }
463 1.4 deraadt
464 1.4 deraadt /*
465 1.4 deraadt * Uncompress a packet of total length total_len. The first buflen
466 1.12 paulus * bytes are at buf; this must include the entire (compressed or
467 1.12 paulus * uncompressed) TCP/IP header. This procedure returns the length
468 1.12 paulus * of the VJ header, with a pointer to the uncompressed IP header
469 1.12 paulus * in *hdrp and its length in *hlenp.
470 1.4 deraadt */
471 1.4 deraadt int
472 1.28 thorpej sl_uncompress_tcp_core(u_char *buf, int buflen, int total_len, u_int type,
473 1.28 thorpej struct slcompress *comp, u_char **hdrp, u_int *hlenp)
474 1.4 deraadt {
475 1.21 augustss u_char *cp;
476 1.21 augustss u_int hlen, changes;
477 1.21 augustss struct tcphdr *th;
478 1.21 augustss struct cstate *cs;
479 1.21 augustss struct ip *ip;
480 1.33 matt uint16_t *bp;
481 1.21 augustss u_int vjlen;
482 1.1 cgd
483 1.1 cgd switch (type) {
484 1.1 cgd
485 1.1 cgd case TYPE_UNCOMPRESSED_TCP:
486 1.31 christos if (buf == NULL)
487 1.31 christos goto bad;
488 1.12 paulus ip = (struct ip *) buf;
489 1.1 cgd if (ip->ip_p >= MAX_STATES)
490 1.1 cgd goto bad;
491 1.1 cgd cs = &comp->rstate[comp->last_recv = ip->ip_p];
492 1.1 cgd comp->flags &=~ SLF_TOSS;
493 1.1 cgd ip->ip_p = IPPROTO_TCP;
494 1.16 christos /*
495 1.16 christos * Calculate the size of the TCP/IP header and make sure that
496 1.16 christos * we don't overflow the space we have available for it.
497 1.16 christos */
498 1.16 christos hlen = ip->ip_hl << 2;
499 1.16 christos if (hlen + sizeof(struct tcphdr) > buflen)
500 1.16 christos goto bad;
501 1.16 christos hlen += ((struct tcphdr *)&((char *)ip)[hlen])->th_off << 2;
502 1.16 christos if (hlen > MAX_HDR || hlen > buflen)
503 1.16 christos goto bad;
504 1.38 tsutsui memcpy(&cs->cs_ip, ip, hlen);
505 1.1 cgd cs->cs_hlen = hlen;
506 1.1 cgd INCR(sls_uncompressedin)
507 1.12 paulus *hdrp = (u_char *) &cs->cs_ip;
508 1.12 paulus *hlenp = hlen;
509 1.12 paulus return (0);
510 1.1 cgd
511 1.1 cgd default:
512 1.1 cgd goto bad;
513 1.1 cgd
514 1.1 cgd case TYPE_COMPRESSED_TCP:
515 1.1 cgd break;
516 1.1 cgd }
517 1.1 cgd /* We've got a compressed packet. */
518 1.1 cgd INCR(sls_compressedin)
519 1.31 christos if (buf == NULL)
520 1.31 christos goto bad;
521 1.12 paulus cp = buf;
522 1.1 cgd changes = *cp++;
523 1.1 cgd if (changes & NEW_C) {
524 1.1 cgd /* Make sure the state index is in range, then grab the state.
525 1.1 cgd * If we have a good state index, clear the 'discard' flag. */
526 1.1 cgd if (*cp >= MAX_STATES)
527 1.1 cgd goto bad;
528 1.1 cgd
529 1.1 cgd comp->flags &=~ SLF_TOSS;
530 1.1 cgd comp->last_recv = *cp++;
531 1.1 cgd } else {
532 1.1 cgd /* this packet has an implicit state index. If we've
533 1.1 cgd * had a line error since the last time we got an
534 1.1 cgd * explicit state index, we have to toss the packet. */
535 1.1 cgd if (comp->flags & SLF_TOSS) {
536 1.1 cgd INCR(sls_tossed)
537 1.12 paulus return (-1);
538 1.1 cgd }
539 1.1 cgd }
540 1.1 cgd cs = &comp->rstate[comp->last_recv];
541 1.1 cgd hlen = cs->cs_ip.ip_hl << 2;
542 1.1 cgd th = (struct tcphdr *)&((u_char *)&cs->cs_ip)[hlen];
543 1.1 cgd th->th_sum = htons((*cp << 8) | cp[1]);
544 1.1 cgd cp += 2;
545 1.1 cgd if (changes & TCP_PUSH_BIT)
546 1.1 cgd th->th_flags |= TH_PUSH;
547 1.1 cgd else
548 1.1 cgd th->th_flags &=~ TH_PUSH;
549 1.1 cgd
550 1.1 cgd switch (changes & SPECIALS_MASK) {
551 1.1 cgd case SPECIAL_I:
552 1.1 cgd {
553 1.21 augustss u_int i = ntohs(cs->cs_ip.ip_len) - cs->cs_hlen;
554 1.1 cgd th->th_ack = htonl(ntohl(th->th_ack) + i);
555 1.1 cgd th->th_seq = htonl(ntohl(th->th_seq) + i);
556 1.1 cgd }
557 1.1 cgd break;
558 1.1 cgd
559 1.1 cgd case SPECIAL_D:
560 1.1 cgd th->th_seq = htonl(ntohl(th->th_seq) + ntohs(cs->cs_ip.ip_len)
561 1.1 cgd - cs->cs_hlen);
562 1.1 cgd break;
563 1.1 cgd
564 1.1 cgd default:
565 1.1 cgd if (changes & NEW_U) {
566 1.1 cgd th->th_flags |= TH_URG;
567 1.1 cgd DECODEU(th->th_urp)
568 1.1 cgd } else
569 1.1 cgd th->th_flags &=~ TH_URG;
570 1.1 cgd if (changes & NEW_W)
571 1.1 cgd DECODES(th->th_win)
572 1.1 cgd if (changes & NEW_A)
573 1.1 cgd DECODEL(th->th_ack)
574 1.1 cgd if (changes & NEW_S)
575 1.1 cgd DECODEL(th->th_seq)
576 1.1 cgd break;
577 1.1 cgd }
578 1.1 cgd if (changes & NEW_I) {
579 1.1 cgd DECODES(cs->cs_ip.ip_id)
580 1.1 cgd } else
581 1.1 cgd cs->cs_ip.ip_id = htons(ntohs(cs->cs_ip.ip_id) + 1);
582 1.1 cgd
583 1.1 cgd /*
584 1.1 cgd * At this point, cp points to the first byte of data in the
585 1.12 paulus * packet. Fill in the IP total length and update the IP
586 1.12 paulus * header checksum.
587 1.1 cgd */
588 1.12 paulus vjlen = cp - buf;
589 1.12 paulus buflen -= vjlen;
590 1.4 deraadt if (buflen < 0)
591 1.1 cgd /* we must have dropped some characters (crc should detect
592 1.1 cgd * this but the old slip framing won't) */
593 1.1 cgd goto bad;
594 1.1 cgd
595 1.12 paulus total_len += cs->cs_hlen - vjlen;
596 1.4 deraadt cs->cs_ip.ip_len = htons(total_len);
597 1.1 cgd
598 1.1 cgd /* recompute the ip header checksum */
599 1.33 matt bp = (uint16_t *) &cs->cs_ip;
600 1.12 paulus cs->cs_ip.ip_sum = 0;
601 1.12 paulus for (changes = 0; hlen > 0; hlen -= 2)
602 1.12 paulus changes += *bp++;
603 1.12 paulus changes = (changes & 0xffff) + (changes >> 16);
604 1.12 paulus changes = (changes & 0xffff) + (changes >> 16);
605 1.12 paulus cs->cs_ip.ip_sum = ~ changes;
606 1.12 paulus
607 1.12 paulus *hdrp = (u_char *) &cs->cs_ip;
608 1.12 paulus *hlenp = cs->cs_hlen;
609 1.12 paulus return vjlen;
610 1.12 paulus
611 1.1 cgd bad:
612 1.1 cgd comp->flags |= SLF_TOSS;
613 1.1 cgd INCR(sls_errorin)
614 1.12 paulus return (-1);
615 1.1 cgd }
616 1.26 christos #endif
617