Updates to release checklist in Makefile.in.
[secnet] / netlink.c
1 /* User-kernel network link */
2
3 /* See RFCs 791, 792, 1123 and 1812 */
4
5 /* The netlink device is actually a router. Tunnels are unnumbered
6 point-to-point lines (RFC1812 section 2.2.7); the router has a
7 single address (the 'router-id'). */
8
9 /* This is where we currently have the anti-spoofing paranoia - before
10 sending a packet to the kernel we check that the tunnel it came
11 over could reasonably have produced it. */
12
13
14 /* Points to note from RFC1812 (which may require changes in this
15 file):
16
17 3.3.4 Maximum Transmission Unit - MTU
18
19 The MTU of each logical interface MUST be configurable within the
20 range of legal MTUs for the interface.
21
22 Many Link Layer protocols define a maximum frame size that may be
23 sent. In such cases, a router MUST NOT allow an MTU to be set which
24 would allow sending of frames larger than those allowed by the Link
25 Layer protocol. However, a router SHOULD be willing to receive a
26 packet as large as the maximum frame size even if that is larger than
27 the MTU.
28
29 4.2.1 A router SHOULD count datagrams discarded.
30
31 4.2.2.1 Source route options - we probably should implement processing
32 of source routes, even though mostly the security policy will prevent
33 their use.
34
35 5.3.13.4 Source Route Options
36
37 A router MUST implement support for source route options in forwarded
38 packets. A router MAY implement a configuration option that, when
39 enabled, causes all source-routed packets to be discarded. However,
40 such an option MUST NOT be enabled by default.
41
42 5.3.13.5 Record Route Option
43
44 Routers MUST support the Record Route option in forwarded packets.
45
46 A router MAY provide a configuration option that, if enabled, will
47 cause the router to ignore (i.e., pass through unchanged) Record
48 Route options in forwarded packets. If provided, such an option MUST
49 default to enabling the record-route. This option should not affect
50 the processing of Record Route options in datagrams received by the
51 router itself (in particular, Record Route options in ICMP echo
52 requests will still be processed according to Section [4.3.3.6]).
53
54 5.3.13.6 Timestamp Option
55
56 Routers MUST support the timestamp option in forwarded packets. A
57 timestamp value MUST follow the rules given [INTRO:2].
58
59 If the flags field = 3 (timestamp and prespecified address), the
60 router MUST add its timestamp if the next prespecified address
61 matches any of the router's IP addresses. It is not necessary that
62 the prespecified address be either the address of the interface on
63 which the packet arrived or the address of the interface over which
64 it will be sent.
65
66
67 4.2.2.7 Fragmentation: RFC 791 Section 3.2
68
69 Fragmentation, as described in [INTERNET:1], MUST be supported by a
70 router.
71
72 4.2.2.8 Reassembly: RFC 791 Section 3.2
73
74 As specified in the corresponding section of [INTRO:2], a router MUST
75 support reassembly of datagrams that it delivers to itself.
76
77 4.2.2.9 Time to Live: RFC 791 Section 3.2
78
79 Note in particular that a router MUST NOT check the TTL of a packet
80 except when forwarding it.
81
82 A router MUST NOT discard a datagram just because it was received
83 with TTL equal to zero or one; if it is to the router and otherwise
84 valid, the router MUST attempt to receive it.
85
86 On messages the router originates, the IP layer MUST provide a means
87 for the transport layer to set the TTL field of every datagram that
88 is sent. When a fixed TTL value is used, it MUST be configurable.
89
90
91 8.1 The Simple Network Management Protocol - SNMP
92 8.1.1 SNMP Protocol Elements
93
94 Routers MUST be manageable by SNMP [MGT:3]. The SNMP MUST operate
95 using UDP/IP as its transport and network protocols.
96
97
98 */
99
100 #include <string.h>
101 #include <assert.h>
102 #include <limits.h>
103 #include "secnet.h"
104 #include "util.h"
105 #include "ipaddr.h"
106 #include "netlink.h"
107 #include "process.h"
108
109 #define ICMP_TYPE_ECHO_REPLY 0
110
111 #define ICMP_TYPE_UNREACHABLE 3
112 #define ICMP_CODE_NET_UNREACHABLE 0
113 #define ICMP_CODE_PROTOCOL_UNREACHABLE 2
114 #define ICMP_CODE_FRAGMENTATION_REQUIRED 4
115 #define ICMP_CODE_NET_PROHIBITED 13
116
117 #define ICMP_TYPE_ECHO_REQUEST 8
118
119 #define ICMP_TYPE_TIME_EXCEEDED 11
120 #define ICMP_CODE_TTL_EXCEEDED 0
121
122 /* Generic IP checksum routine */
123 static inline uint16_t ip_csum(uint8_t *iph,int32_t count)
124 {
125 register uint32_t sum=0;
126
127 while (count>1) {
128 sum+=ntohs(*(uint16_t *)iph);
129 iph+=2;
130 count-=2;
131 }
132 if(count>0)
133 sum+=*(uint8_t *)iph;
134 while (sum>>16)
135 sum=(sum&0xffff)+(sum>>16);
136 return htons(~sum);
137 }
138
139 #ifdef i386
140 /*
141 * This is a version of ip_compute_csum() optimized for IP headers,
142 * which always checksum on 4 octet boundaries.
143 *
144 * By Jorge Cwik <jorge@laser.satlink.net>, adapted for linux by
145 * Arnt Gulbrandsen.
146 */
147 static inline uint16_t ip_fast_csum(uint8_t *iph, int32_t ihl) {
148 uint32_t sum;
149
150 __asm__ __volatile__(
151 "movl (%1), %0 ;\n"
152 "subl $4, %2 ;\n"
153 "jbe 2f ;\n"
154 "addl 4(%1), %0 ;\n"
155 "adcl 8(%1), %0 ;\n"
156 "adcl 12(%1), %0 ;\n"
157 "1: adcl 16(%1), %0 ;\n"
158 "lea 4(%1), %1 ;\n"
159 "decl %2 ;\n"
160 "jne 1b ;\n"
161 "adcl $0, %0 ;\n"
162 "movl %0, %2 ;\n"
163 "shrl $16, %0 ;\n"
164 "addw %w2, %w0 ;\n"
165 "adcl $0, %0 ;\n"
166 "notl %0 ;\n"
167 "2: ;\n"
168 /* Since the input registers which are loaded with iph and ipl
169 are modified, we must also specify them as outputs, or gcc
170 will assume they contain their original values. */
171 : "=r" (sum), "=r" (iph), "=r" (ihl)
172 : "1" (iph), "2" (ihl)
173 : "memory");
174 return sum;
175 }
176 #else
177 static inline uint16_t ip_fast_csum(uint8_t *iph, int32_t ihl)
178 {
179 assert(ihl < INT_MAX/4);
180 return ip_csum(iph,ihl*4);
181 }
182 #endif
183
184 struct iphdr {
185 #if defined (WORDS_BIGENDIAN)
186 uint8_t version:4,
187 ihl:4;
188 #else
189 uint8_t ihl:4,
190 version:4;
191 #endif
192 uint8_t tos;
193 uint16_t tot_len;
194 uint16_t id;
195 uint16_t frag_off;
196 uint8_t ttl;
197 uint8_t protocol;
198 uint16_t check;
199 uint32_t saddr;
200 uint32_t daddr;
201 /* The options start here. */
202 };
203
204 struct icmphdr {
205 struct iphdr iph;
206 uint8_t type;
207 uint8_t code;
208 uint16_t check;
209 union {
210 uint32_t unused;
211 struct {
212 uint8_t pointer;
213 uint8_t unused1;
214 uint16_t unused2;
215 } pprob;
216 uint32_t gwaddr;
217 struct {
218 uint16_t id;
219 uint16_t seq;
220 } echo;
221 } d;
222 };
223
224 static void netlink_packet_deliver(struct netlink *st,
225 struct netlink_client *client,
226 struct buffer_if *buf);
227
228 /* XXX RFC1812 4.3.2.5:
229 All other ICMP error messages (Destination Unreachable,
230 Redirect, Time Exceeded, and Parameter Problem) SHOULD have their
231 precedence value set to 6 (INTERNETWORK CONTROL) or 7 (NETWORK
232 CONTROL). The IP Precedence value for these error messages MAY be
233 settable.
234 */
235 static struct icmphdr *netlink_icmp_tmpl(struct netlink *st,
236 uint32_t dest,uint16_t len)
237 {
238 struct icmphdr *h;
239
240 BUF_ALLOC(&st->icmp,"netlink_icmp_tmpl");
241 buffer_init(&st->icmp,calculate_max_start_pad());
242 h=buf_append(&st->icmp,sizeof(*h));
243
244 h->iph.version=4;
245 h->iph.ihl=5;
246 h->iph.tos=0;
247 h->iph.tot_len=htons(len+(h->iph.ihl*4)+8);
248 h->iph.id=0;
249 h->iph.frag_off=0;
250 h->iph.ttl=255; /* XXX should be configurable */
251 h->iph.protocol=1;
252 h->iph.saddr=htonl(st->secnet_address);
253 h->iph.daddr=htonl(dest);
254 h->iph.check=0;
255 h->iph.check=ip_fast_csum((uint8_t *)&h->iph,h->iph.ihl);
256 h->check=0;
257 h->d.unused=0;
258
259 return h;
260 }
261
262 /* Fill in the ICMP checksum field correctly */
263 static void netlink_icmp_csum(struct icmphdr *h)
264 {
265 int32_t len;
266
267 len=ntohs(h->iph.tot_len)-(4*h->iph.ihl);
268 h->check=0;
269 h->check=ip_csum(&h->type,len);
270 }
271
272 /* RFC1122:
273 * An ICMP error message MUST NOT be sent as the result of
274 * receiving:
275 *
276 * * an ICMP error message, or
277 *
278 * * a datagram destined to an IP broadcast or IP multicast
279 * address, or
280 *
281 * * a datagram sent as a link-layer broadcast, or
282 *
283 * * a non-initial fragment, or
284 *
285 * * a datagram whose source address does not define a single
286 * host -- e.g., a zero address, a loopback address, a
287 * broadcast address, a multicast address, or a Class E
288 * address.
289 */
290 static bool_t netlink_icmp_may_reply(struct buffer_if *buf)
291 {
292 struct iphdr *iph;
293 struct icmphdr *icmph;
294 uint32_t source;
295
296 if (buf->size < (int)sizeof(struct icmphdr)) return False;
297 iph=(struct iphdr *)buf->start;
298 icmph=(struct icmphdr *)buf->start;
299 if (iph->protocol==1) {
300 switch(icmph->type) {
301 case 3: /* Destination unreachable */
302 case 11: /* Time Exceeded */
303 case 12: /* Parameter Problem */
304 return False;
305 }
306 }
307 /* How do we spot broadcast destination addresses? */
308 if (ntohs(iph->frag_off)&0x1fff) return False; /* Non-initial fragment */
309 source=ntohl(iph->saddr);
310 if (source==0) return False;
311 if ((source&0xff000000)==0x7f000000) return False;
312 /* How do we spot broadcast source addresses? */
313 if ((source&0xf0000000)==0xe0000000) return False; /* Multicast */
314 if ((source&0xf0000000)==0xf0000000) return False; /* Class E */
315 return True;
316 }
317
318 /* How much of the original IP packet do we include in its ICMP
319 response? The header plus up to 64 bits. */
320
321 /* XXX TODO RFC1812:
322 4.3.2.3 Original Message Header
323
324 Historically, every ICMP error message has included the Internet
325 header and at least the first 8 data bytes of the datagram that
326 triggered the error. This is no longer adequate, due to the use of
327 IP-in-IP tunneling and other technologies. Therefore, the ICMP
328 datagram SHOULD contain as much of the original datagram as possible
329 without the length of the ICMP datagram exceeding 576 bytes. The
330 returned IP header (and user data) MUST be identical to that which
331 was received, except that the router is not required to undo any
332 modifications to the IP header that are normally performed in
333 forwarding that were performed before the error was detected (e.g.,
334 decrementing the TTL, or updating options). Note that the
335 requirements of Section [4.3.3.5] supersede this requirement in some
336 cases (i.e., for a Parameter Problem message, if the problem is in a
337 modified field, the router must undo the modification). See Section
338 [4.3.3.5]).
339 */
340 static uint16_t netlink_icmp_reply_len(struct buffer_if *buf)
341 {
342 if (buf->size < (int)sizeof(struct iphdr)) return 0;
343 struct iphdr *iph=(struct iphdr *)buf->start;
344 uint16_t hlen,plen;
345
346 hlen=iph->ihl*4;
347 /* We include the first 8 bytes of the packet data, provided they exist */
348 hlen+=8;
349 plen=ntohs(iph->tot_len);
350 return (hlen>plen?plen:hlen);
351 }
352
353 /* client indicates where the packet we're constructing a response to
354 comes from. NULL indicates the host. */
355 static void netlink_icmp_simple(struct netlink *st, struct buffer_if *buf,
356 struct netlink_client *client,
357 uint8_t type, uint8_t code)
358 {
359 struct icmphdr *h;
360 uint16_t len;
361
362 if (netlink_icmp_may_reply(buf)) {
363 struct iphdr *iph=(struct iphdr *)buf->start;
364 len=netlink_icmp_reply_len(buf);
365 h=netlink_icmp_tmpl(st,ntohl(iph->saddr),len);
366 h->type=type; h->code=code;
367 memcpy(buf_append(&st->icmp,len),buf->start,len);
368 netlink_icmp_csum(h);
369 netlink_packet_deliver(st,NULL,&st->icmp);
370 BUF_ASSERT_FREE(&st->icmp);
371 }
372 }
373
374 /*
375 * RFC1122: 3.1.2.2 MUST silently discard any IP frame that fails the
376 * checksum.
377 * RFC1812: 4.2.2.5 MUST discard messages containing invalid checksums.
378 *
379 * Is the datagram acceptable?
380 *
381 * 1. Length at least the size of an ip header
382 * 2. Version of 4
383 * 3. Checksums correctly.
384 * 4. Doesn't have a bogus length
385 */
386 static bool_t netlink_check(struct netlink *st, struct buffer_if *buf,
387 char *errmsgbuf, int errmsgbuflen)
388 {
389 #define BAD(...) do{ \
390 snprintf(errmsgbuf,errmsgbuflen,__VA_ARGS__); \
391 return False; \
392 }while(0)
393
394 if (buf->size < (int)sizeof(struct iphdr)) BAD("len %"PRIu32"",buf->size);
395 struct iphdr *iph=(struct iphdr *)buf->start;
396 int32_t len;
397
398 if (iph->ihl < 5) BAD("ihl %u",iph->ihl);
399 if (iph->version != 4) BAD("version %u",iph->version);
400 if (buf->size < iph->ihl*4) BAD("size %"PRId32"<%u*4",buf->size,iph->ihl);
401 if (ip_fast_csum((uint8_t *)iph, iph->ihl)!=0) BAD("csum");
402 len=ntohs(iph->tot_len);
403 /* There should be no padding */
404 if (buf->size!=len) BAD("len %"PRId32"!=%"PRId32,buf->size,len);
405 if (len<(iph->ihl<<2)) BAD("len %"PRId32"<(%u<<2)",len,iph->ihl);
406 /* XXX check that there's no source route specified */
407 return True;
408
409 #undef BAD
410 }
411
412 /* Deliver a packet. "client" is the _origin_ of the packet, not its
413 destination, and is NULL for packets from the host and packets
414 generated internally in secnet. */
415 static void netlink_packet_deliver(struct netlink *st,
416 struct netlink_client *client,
417 struct buffer_if *buf)
418 {
419 if (buf->size < (int)sizeof(struct iphdr)) {
420 Message(M_ERR,"%s: trying to deliver a too-short packet"
421 " from %s!\n",st->name, client?client->name:"(local)");
422 BUF_FREE(buf);
423 return;
424 }
425
426 struct iphdr *iph=(struct iphdr *)buf->start;
427 uint32_t dest=ntohl(iph->daddr);
428 uint32_t source=ntohl(iph->saddr);
429 uint32_t best_quality;
430 bool_t allow_route=False;
431 bool_t found_allowed=False;
432 int best_match;
433 int i;
434
435 BUF_ASSERT_USED(buf);
436
437 if (dest==st->secnet_address) {
438 Message(M_ERR,"%s: trying to deliver a packet to myself!\n",st->name);
439 BUF_FREE(buf);
440 return;
441 }
442
443 /* Packets from the host (client==NULL) may always be routed. Packets
444 from clients with the allow_route option will also be routed. */
445 if (!client || (client && (client->options & OPT_ALLOWROUTE)))
446 allow_route=True;
447
448 /* If !allow_route, we check the routing table anyway, and if
449 there's a suitable route with OPT_ALLOWROUTE set we use it. If
450 there's a suitable route, but none with OPT_ALLOWROUTE set then
451 we generate ICMP 'communication with destination network
452 administratively prohibited'. */
453
454 best_quality=0;
455 best_match=-1;
456 for (i=0; i<st->n_clients; i++) {
457 if (st->routes[i]->up &&
458 ipset_contains_addr(st->routes[i]->networks,dest)) {
459 /* It's an available route to the correct destination. But is
460 it better than the one we already have? */
461
462 /* If we have already found an allowed route then we don't
463 bother looking at routes we're not allowed to use. If
464 we don't yet have an allowed route we'll consider any. */
465 if (!allow_route && found_allowed) {
466 if (!(st->routes[i]->options&OPT_ALLOWROUTE)) continue;
467 }
468
469 if (st->routes[i]->link_quality>best_quality
470 || best_quality==0) {
471 best_quality=st->routes[i]->link_quality;
472 best_match=i;
473 if (st->routes[i]->options&OPT_ALLOWROUTE)
474 found_allowed=True;
475 /* If quality isn't perfect we may wish to
476 consider kicking the tunnel with a 0-length
477 packet to prompt it to perform a key setup.
478 Then it'll eventually decide it's up or
479 down. */
480 /* If quality is perfect and we're allowed to use the
481 route we don't need to search any more. */
482 if (best_quality>=MAXIMUM_LINK_QUALITY &&
483 (allow_route || found_allowed)) break;
484 }
485 }
486 }
487 if (best_match==-1) {
488 /* The packet's not going down a tunnel. It might (ought to)
489 be for the host. */
490 if (ipset_contains_addr(st->networks,dest)) {
491 st->deliver_to_host(st->dst,buf);
492 st->outcount++;
493 BUF_ASSERT_FREE(buf);
494 } else {
495 string_t s,d;
496 s=ipaddr_to_string(source);
497 d=ipaddr_to_string(dest);
498 Message(M_DEBUG,"%s: don't know where to deliver packet "
499 "(s=%s, d=%s)\n", st->name, s, d);
500 free(s); free(d);
501 netlink_icmp_simple(st,buf,client,ICMP_TYPE_UNREACHABLE,
502 ICMP_CODE_NET_UNREACHABLE);
503 BUF_FREE(buf);
504 }
505 } else {
506 if (!allow_route &&
507 !(st->routes[best_match]->options&OPT_ALLOWROUTE)) {
508 string_t s,d;
509 s=ipaddr_to_string(source);
510 d=ipaddr_to_string(dest);
511 /* We have a usable route but aren't allowed to use it.
512 Generate ICMP destination unreachable: communication
513 with destination network administratively prohibited */
514 Message(M_NOTICE,"%s: denied forwarding for packet (s=%s, d=%s)\n",
515 st->name,s,d);
516 free(s); free(d);
517
518 netlink_icmp_simple(st,buf,client,ICMP_TYPE_UNREACHABLE,
519 ICMP_CODE_NET_PROHIBITED);
520 BUF_FREE(buf);
521 } else {
522 if (best_quality>0) {
523 /* XXX Fragment if required */
524 st->routes[best_match]->deliver(
525 st->routes[best_match]->dst, buf);
526 st->routes[best_match]->outcount++;
527 BUF_ASSERT_FREE(buf);
528 } else {
529 /* Generate ICMP destination unreachable */
530 netlink_icmp_simple(st,buf,client,ICMP_TYPE_UNREACHABLE,
531 ICMP_CODE_NET_UNREACHABLE); /* client==NULL */
532 BUF_FREE(buf);
533 }
534 }
535 }
536 BUF_ASSERT_FREE(buf);
537 }
538
539 static void netlink_packet_forward(struct netlink *st,
540 struct netlink_client *client,
541 struct buffer_if *buf)
542 {
543 if (buf->size < (int)sizeof(struct iphdr)) return;
544 struct iphdr *iph=(struct iphdr *)buf->start;
545
546 BUF_ASSERT_USED(buf);
547
548 /* Packet has already been checked */
549 if (iph->ttl<=1) {
550 /* Generate ICMP time exceeded */
551 netlink_icmp_simple(st,buf,client,ICMP_TYPE_TIME_EXCEEDED,
552 ICMP_CODE_TTL_EXCEEDED);
553 BUF_FREE(buf);
554 return;
555 }
556 iph->ttl--;
557 iph->check=0;
558 iph->check=ip_fast_csum((uint8_t *)iph,iph->ihl);
559
560 netlink_packet_deliver(st,client,buf);
561 BUF_ASSERT_FREE(buf);
562 }
563
564 /* Deal with packets addressed explicitly to us */
565 static void netlink_packet_local(struct netlink *st,
566 struct netlink_client *client,
567 struct buffer_if *buf)
568 {
569 struct icmphdr *h;
570
571 st->localcount++;
572
573 if (buf->size < (int)sizeof(struct icmphdr)) {
574 Message(M_WARNING,"%s: short packet addressed to secnet; "
575 "ignoring it\n",st->name);
576 BUF_FREE(buf);
577 return;
578 }
579 h=(struct icmphdr *)buf->start;
580
581 if ((ntohs(h->iph.frag_off)&0xbfff)!=0) {
582 Message(M_WARNING,"%s: fragmented packet addressed to secnet; "
583 "ignoring it\n",st->name);
584 BUF_FREE(buf);
585 return;
586 }
587
588 if (h->iph.protocol==1) {
589 /* It's ICMP */
590 if (h->type==ICMP_TYPE_ECHO_REQUEST && h->code==0) {
591 /* ICMP echo-request. Special case: we re-use the buffer
592 to construct the reply. */
593 h->type=ICMP_TYPE_ECHO_REPLY;
594 h->iph.daddr=h->iph.saddr;
595 h->iph.saddr=htonl(st->secnet_address);
596 h->iph.ttl=255;
597 h->iph.check=0;
598 h->iph.check=ip_fast_csum((uint8_t *)h,h->iph.ihl);
599 netlink_icmp_csum(h);
600 netlink_packet_deliver(st,NULL,buf);
601 return;
602 }
603 Message(M_WARNING,"%s: unknown incoming ICMP\n",st->name);
604 } else {
605 /* Send ICMP protocol unreachable */
606 netlink_icmp_simple(st,buf,client,ICMP_TYPE_UNREACHABLE,
607 ICMP_CODE_PROTOCOL_UNREACHABLE);
608 BUF_FREE(buf);
609 return;
610 }
611
612 BUF_FREE(buf);
613 }
614
615 /* If cid==NULL packet is from host, otherwise cid specifies which tunnel
616 it came from. */
617 static void netlink_incoming(struct netlink *st, struct netlink_client *client,
618 struct buffer_if *buf)
619 {
620 uint32_t source,dest;
621 struct iphdr *iph;
622 char errmsgbuf[50];
623 const char *sourcedesc=client?client->name:"host";
624
625 BUF_ASSERT_USED(buf);
626
627 if (!netlink_check(st,buf,errmsgbuf,sizeof(errmsgbuf))) {
628 Message(M_WARNING,"%s: bad IP packet from %s: %s\n",
629 st->name,sourcedesc,
630 errmsgbuf);
631 BUF_FREE(buf);
632 return;
633 }
634 assert(buf->size >= (int)sizeof(struct icmphdr));
635 iph=(struct iphdr *)buf->start;
636
637 source=ntohl(iph->saddr);
638 dest=ntohl(iph->daddr);
639
640 /* Check source. If we don't like the source, there's no point
641 generating ICMP because we won't know how to get it to the
642 source of the packet. */
643 if (client) {
644 /* Check that the packet source is appropriate for the tunnel
645 it came down */
646 if (!ipset_contains_addr(client->networks,source)) {
647 string_t s,d;
648 s=ipaddr_to_string(source);
649 d=ipaddr_to_string(dest);
650 Message(M_WARNING,"%s: packet from tunnel %s with bad "
651 "source address (s=%s,d=%s)\n",st->name,client->name,s,d);
652 free(s); free(d);
653 BUF_FREE(buf);
654 return;
655 }
656 } else {
657 /* Check that the packet originates in our configured local
658 network, and hasn't been forwarded from elsewhere or
659 generated with the wrong source address */
660 if (!ipset_contains_addr(st->networks,source)) {
661 string_t s,d;
662 s=ipaddr_to_string(source);
663 d=ipaddr_to_string(dest);
664 Message(M_WARNING,"%s: outgoing packet with bad source address "
665 "(s=%s,d=%s)\n",st->name,s,d);
666 free(s); free(d);
667 BUF_FREE(buf);
668 return;
669 }
670 }
671
672 /* If this is a point-to-point device we don't examine the
673 destination address at all; we blindly send it down our
674 one-and-only registered tunnel, or to the host, depending on
675 where it came from. It's up to external software to check
676 address validity and generate ICMP, etc. */
677 if (st->ptp) {
678 if (client) {
679 st->deliver_to_host(st->dst,buf);
680 } else {
681 st->clients->deliver(st->clients->dst,buf);
682 }
683 BUF_ASSERT_FREE(buf);
684 return;
685 }
686
687 /* st->secnet_address needs checking before matching destination
688 addresses */
689 if (dest==st->secnet_address) {
690 netlink_packet_local(st,client,buf);
691 BUF_ASSERT_FREE(buf);
692 return;
693 }
694 netlink_packet_forward(st,client,buf);
695 BUF_ASSERT_FREE(buf);
696 }
697
698 static void netlink_inst_incoming(void *sst, struct buffer_if *buf)
699 {
700 struct netlink_client *c=sst;
701 struct netlink *st=c->nst;
702
703 netlink_incoming(st,c,buf);
704 }
705
706 static void netlink_dev_incoming(void *sst, struct buffer_if *buf)
707 {
708 struct netlink *st=sst;
709
710 netlink_incoming(st,NULL,buf);
711 }
712
713 static void netlink_set_quality(void *sst, uint32_t quality)
714 {
715 struct netlink_client *c=sst;
716 struct netlink *st=c->nst;
717
718 c->link_quality=quality;
719 c->up=(c->link_quality==LINK_QUALITY_DOWN)?False:True;
720 if (c->options&OPT_SOFTROUTE) {
721 st->set_routes(st->dst,c);
722 }
723 }
724
725 static void netlink_output_subnets(struct netlink *st, uint32_t loglevel,
726 struct subnet_list *snets)
727 {
728 int32_t i;
729 string_t net;
730
731 for (i=0; i<snets->entries; i++) {
732 net=subnet_to_string(snets->list[i]);
733 Message(loglevel,"%s ",net);
734 free(net);
735 }
736 }
737
738 static void netlink_dump_routes(struct netlink *st, bool_t requested)
739 {
740 int i;
741 string_t net;
742 uint32_t c=M_INFO;
743
744 if (requested) c=M_WARNING;
745 if (st->ptp) {
746 net=ipaddr_to_string(st->secnet_address);
747 Message(c,"%s: point-to-point (remote end is %s); routes:\n",
748 st->name, net);
749 free(net);
750 netlink_output_subnets(st,c,st->clients->subnets);
751 Message(c,"\n");
752 } else {
753 Message(c,"%s: routing table:\n",st->name);
754 for (i=0; i<st->n_clients; i++) {
755 netlink_output_subnets(st,c,st->routes[i]->subnets);
756 Message(c,"-> tunnel %s (%s,mtu %d,%s routes,%s,"
757 "quality %d,use %d,pri %lu)\n",
758 st->routes[i]->name,
759 st->routes[i]->up?"up":"down",
760 st->routes[i]->mtu,
761 st->routes[i]->options&OPT_SOFTROUTE?"soft":"hard",
762 st->routes[i]->options&OPT_ALLOWROUTE?"free":"restricted",
763 st->routes[i]->link_quality,
764 st->routes[i]->outcount,
765 (unsigned long)st->routes[i]->priority);
766 }
767 net=ipaddr_to_string(st->secnet_address);
768 Message(c,"%s/32 -> netlink \"%s\" (use %d)\n",
769 net,st->name,st->localcount);
770 free(net);
771 for (i=0; i<st->subnets->entries; i++) {
772 net=subnet_to_string(st->subnets->list[i]);
773 Message(c,"%s ",net);
774 free(net);
775 }
776 if (i>0)
777 Message(c,"-> host (use %d)\n",st->outcount);
778 }
779 }
780
781 /* ap is a pointer to a member of the routes array */
782 static int netlink_compare_client_priority(const void *ap, const void *bp)
783 {
784 const struct netlink_client *const*a=ap;
785 const struct netlink_client *const*b=bp;
786
787 if ((*a)->priority==(*b)->priority) return 0;
788 if ((*a)->priority<(*b)->priority) return 1;
789 return -1;
790 }
791
792 static void netlink_phase_hook(void *sst, uint32_t new_phase)
793 {
794 struct netlink *st=sst;
795 struct netlink_client *c;
796 int32_t i;
797
798 /* All the networks serviced by the various tunnels should now
799 * have been registered. We build a routing table by sorting the
800 * clients by priority. */
801 st->routes=safe_malloc_ary(sizeof(*st->routes),st->n_clients,
802 "netlink_phase_hook");
803 /* Fill the table */
804 i=0;
805 for (c=st->clients; c; c=c->next) {
806 assert(i<INT_MAX);
807 st->routes[i++]=c;
808 }
809 /* Sort the table in descending order of priority */
810 qsort(st->routes,st->n_clients,sizeof(*st->routes),
811 netlink_compare_client_priority);
812
813 netlink_dump_routes(st,False);
814 }
815
816 static void netlink_signal_handler(void *sst, int signum)
817 {
818 struct netlink *st=sst;
819 Message(M_INFO,"%s: route dump requested by SIGUSR1\n",st->name);
820 netlink_dump_routes(st,True);
821 }
822
823 static void netlink_inst_set_mtu(void *sst, int32_t new_mtu)
824 {
825 struct netlink_client *c=sst;
826
827 c->mtu=new_mtu;
828 }
829
830 static void netlink_inst_reg(void *sst, netlink_deliver_fn *deliver,
831 void *dst)
832 {
833 struct netlink_client *c=sst;
834
835 c->deliver=deliver;
836 c->dst=dst;
837 }
838
839 static struct flagstr netlink_option_table[]={
840 { "soft", OPT_SOFTROUTE },
841 { "allow-route", OPT_ALLOWROUTE },
842 { NULL, 0}
843 };
844 /* This is the routine that gets called when the closure that's
845 returned by an invocation of a netlink device closure (eg. tun,
846 userv-ipif) is invoked. It's used to create routes and pass in
847 information about them; the closure it returns is used by site
848 code. */
849 static closure_t *netlink_inst_create(struct netlink *st,
850 struct cloc loc, dict_t *dict)
851 {
852 struct netlink_client *c;
853 string_t name;
854 struct ipset *networks;
855 uint32_t options,priority;
856 int32_t mtu;
857 list_t *l;
858
859 name=dict_read_string(dict, "name", True, st->name, loc);
860
861 l=dict_lookup(dict,"routes");
862 if (!l)
863 cfgfatal(loc,st->name,"required parameter \"routes\" not found\n");
864 networks=string_list_to_ipset(l,loc,st->name,"routes");
865 options=string_list_to_word(dict_lookup(dict,"options"),
866 netlink_option_table,st->name);
867
868 priority=dict_read_number(dict,"priority",False,st->name,loc,0);
869 mtu=dict_read_number(dict,"mtu",False,st->name,loc,0);
870
871 if ((options&OPT_SOFTROUTE) && !st->set_routes) {
872 cfgfatal(loc,st->name,"this netlink device does not support "
873 "soft routes.\n");
874 return NULL;
875 }
876
877 if (options&OPT_SOFTROUTE) {
878 /* XXX for now we assume that soft routes require root privilege;
879 this may not always be true. The device driver can tell us. */
880 require_root_privileges=True;
881 require_root_privileges_explanation="netlink: soft routes";
882 if (st->ptp) {
883 cfgfatal(loc,st->name,"point-to-point netlinks do not support "
884 "soft routes.\n");
885 return NULL;
886 }
887 }
888
889 /* Check that nets are a subset of st->remote_networks;
890 refuse to register if they are not. */
891 if (!ipset_is_subset(st->remote_networks,networks)) {
892 cfgfatal(loc,st->name,"routes are not allowed\n");
893 return NULL;
894 }
895
896 c=safe_malloc(sizeof(*c),"netlink_inst_create");
897 c->cl.description=name;
898 c->cl.type=CL_NETLINK;
899 c->cl.apply=NULL;
900 c->cl.interface=&c->ops;
901 c->ops.st=c;
902 c->ops.reg=netlink_inst_reg;
903 c->ops.deliver=netlink_inst_incoming;
904 c->ops.set_quality=netlink_set_quality;
905 c->ops.set_mtu=netlink_inst_set_mtu;
906 c->nst=st;
907
908 c->networks=networks;
909 c->subnets=ipset_to_subnet_list(networks);
910 c->priority=priority;
911 c->deliver=NULL;
912 c->dst=NULL;
913 c->name=name;
914 c->link_quality=LINK_QUALITY_UNUSED;
915 c->mtu=mtu?mtu:st->mtu;
916 c->options=options;
917 c->outcount=0;
918 c->up=False;
919 c->kup=False;
920 c->next=st->clients;
921 st->clients=c;
922 assert(st->n_clients < INT_MAX);
923 st->n_clients++;
924
925 return &c->cl;
926 }
927
928 static list_t *netlink_inst_apply(closure_t *self, struct cloc loc,
929 dict_t *context, list_t *args)
930 {
931 struct netlink *st=self->interface;
932
933 dict_t *dict;
934 item_t *item;
935 closure_t *cl;
936
937 item=list_elem(args,0);
938 if (!item || item->type!=t_dict) {
939 cfgfatal(loc,st->name,"must have a dictionary argument\n");
940 }
941 dict=item->data.dict;
942
943 cl=netlink_inst_create(st,loc,dict);
944
945 return new_closure(cl);
946 }
947
948 netlink_deliver_fn *netlink_init(struct netlink *st,
949 void *dst, struct cloc loc,
950 dict_t *dict, cstring_t description,
951 netlink_route_fn *set_routes,
952 netlink_deliver_fn *to_host)
953 {
954 item_t *sa, *ptpa;
955 list_t *l;
956
957 st->dst=dst;
958 st->cl.description=description;
959 st->cl.type=CL_PURE;
960 st->cl.apply=netlink_inst_apply;
961 st->cl.interface=st;
962 st->clients=NULL;
963 st->routes=NULL;
964 st->n_clients=0;
965 st->set_routes=set_routes;
966 st->deliver_to_host=to_host;
967
968 st->name=dict_read_string(dict,"name",False,description,loc);
969 if (!st->name) st->name=description;
970 l=dict_lookup(dict,"networks");
971 if (l)
972 st->networks=string_list_to_ipset(l,loc,st->name,"networks");
973 else {
974 struct ipset *empty;
975 empty=ipset_new();
976 st->networks=ipset_complement(empty);
977 ipset_free(empty);
978 }
979 l=dict_lookup(dict,"remote-networks");
980 if (l) {
981 st->remote_networks=string_list_to_ipset(l,loc,st->name,
982 "remote-networks");
983 } else {
984 struct ipset *empty;
985 empty=ipset_new();
986 st->remote_networks=ipset_complement(empty);
987 ipset_free(empty);
988 }
989
990 sa=dict_find_item(dict,"secnet-address",False,"netlink",loc);
991 ptpa=dict_find_item(dict,"ptp-address",False,"netlink",loc);
992 if (sa && ptpa) {
993 cfgfatal(loc,st->name,"you may not specify secnet-address and "
994 "ptp-address in the same netlink device\n");
995 }
996 if (!(sa || ptpa)) {
997 cfgfatal(loc,st->name,"you must specify secnet-address or "
998 "ptp-address for this netlink device\n");
999 }
1000 if (sa) {
1001 st->secnet_address=string_item_to_ipaddr(sa,"netlink");
1002 st->ptp=False;
1003 } else {
1004 st->secnet_address=string_item_to_ipaddr(ptpa,"netlink");
1005 st->ptp=True;
1006 }
1007 /* To be strictly correct we could subtract secnet_address from
1008 networks here. It shouldn't make any practical difference,
1009 though, and will make the route dump look complicated... */
1010 st->subnets=ipset_to_subnet_list(st->networks);
1011 st->mtu=dict_read_number(dict, "mtu", False, "netlink", loc, DEFAULT_MTU);
1012 buffer_new(&st->icmp,ICMP_BUFSIZE);
1013 st->outcount=0;
1014 st->localcount=0;
1015
1016 add_hook(PHASE_SETUP,netlink_phase_hook,st);
1017 request_signal_notification(SIGUSR1, netlink_signal_handler, st);
1018
1019 /* If we're point-to-point then we return a CL_NETLINK directly,
1020 rather than a CL_NETLINK_OLD or pure closure (depending on
1021 compatibility). This CL_NETLINK is for our one and only
1022 client. Our cl.apply function is NULL. */
1023 if (st->ptp) {
1024 closure_t *cl;
1025 cl=netlink_inst_create(st,loc,dict);
1026 st->cl=*cl;
1027 }
1028 return netlink_dev_incoming;
1029 }
1030
1031 /* No connection to the kernel at all... */
1032
1033 struct null {
1034 struct netlink nl;
1035 };
1036
1037 static bool_t null_set_route(void *sst, struct netlink_client *routes)
1038 {
1039 struct null *st=sst;
1040
1041 if (routes->up!=routes->kup) {
1042 Message(M_INFO,"%s: setting routes for tunnel %s to state %s\n",
1043 st->nl.name,routes->name,
1044 routes->up?"up":"down");
1045 routes->kup=routes->up;
1046 return True;
1047 }
1048 return False;
1049 }
1050
1051 static void null_deliver(void *sst, struct buffer_if *buf)
1052 {
1053 return;
1054 }
1055
1056 static list_t *null_apply(closure_t *self, struct cloc loc, dict_t *context,
1057 list_t *args)
1058 {
1059 struct null *st;
1060 item_t *item;
1061 dict_t *dict;
1062
1063 st=safe_malloc(sizeof(*st),"null_apply");
1064
1065 item=list_elem(args,0);
1066 if (!item || item->type!=t_dict)
1067 cfgfatal(loc,"null-netlink","parameter must be a dictionary\n");
1068
1069 dict=item->data.dict;
1070
1071 netlink_init(&st->nl,st,loc,dict,"null-netlink",null_set_route,
1072 null_deliver);
1073
1074 return new_closure(&st->nl.cl);
1075 }
1076
1077 void netlink_module(dict_t *dict)
1078 {
1079 add_closure(dict,"null-netlink",null_apply);
1080 }