if_spppsubr.c revision 1.167 1 /* $NetBSD: if_spppsubr.c,v 1.167 2017/01/16 15:44:46 christos Exp $ */
2
3 /*
4 * Synchronous PPP/Cisco link level subroutines.
5 * Keepalive protocol implemented in both Cisco and PPP modes.
6 *
7 * Copyright (C) 1994-1996 Cronyx Engineering Ltd.
8 * Author: Serge Vakulenko, <vak (at) cronyx.ru>
9 *
10 * Heavily revamped to conform to RFC 1661.
11 * Copyright (C) 1997, Joerg Wunsch.
12 *
13 * RFC2472 IPv6CP support.
14 * Copyright (C) 2000, Jun-ichiro itojun Hagino <itojun (at) iijlab.net>.
15 *
16 * Redistribution and use in source and binary forms, with or without
17 * modification, are permitted provided that the following conditions are met:
18 * 1. Redistributions of source code must retain the above copyright notice,
19 * this list of conditions and the following disclaimer.
20 * 2. Redistributions in binary form must reproduce the above copyright notice,
21 * this list of conditions and the following disclaimer in the documentation
22 * and/or other materials provided with the distribution.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE FREEBSD PROJECT ``AS IS'' AND ANY
25 * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE FREEBSD PROJECT OR CONTRIBUTORS BE
28 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
29 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
30 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
31 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
32 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
33 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
34 * POSSIBILITY OF SUCH DAMAGE.
35 *
36 * From: Version 2.4, Thu Apr 30 17:17:21 MSD 1997
37 *
38 * From: if_spppsubr.c,v 1.39 1998/04/04 13:26:03 phk Exp
39 *
40 * From: Id: if_spppsubr.c,v 1.23 1999/02/23 14:47:50 hm Exp
41 */
42
43 #include <sys/cdefs.h>
44 __KERNEL_RCSID(0, "$NetBSD: if_spppsubr.c,v 1.167 2017/01/16 15:44:46 christos Exp $");
45
46 #if defined(_KERNEL_OPT)
47 #include "opt_inet.h"
48 #include "opt_modular.h"
49 #include "opt_compat_netbsd.h"
50 #include "opt_net_mpsafe.h"
51 #endif
52
53
54 #include <sys/param.h>
55 #include <sys/proc.h>
56 #include <sys/systm.h>
57 #include <sys/kernel.h>
58 #include <sys/sockio.h>
59 #include <sys/socket.h>
60 #include <sys/syslog.h>
61 #include <sys/malloc.h>
62 #include <sys/mbuf.h>
63 #include <sys/callout.h>
64 #include <sys/md5.h>
65 #include <sys/inttypes.h>
66 #include <sys/kauth.h>
67 #include <sys/cprng.h>
68 #include <sys/module.h>
69 #include <sys/workqueue.h>
70 #include <sys/atomic.h>
71
72 #include <net/if.h>
73 #include <net/netisr.h>
74 #include <net/if_types.h>
75 #include <net/route.h>
76 #include <net/ppp_defs.h>
77
78 #include <netinet/in.h>
79 #include <netinet/in_systm.h>
80 #include <netinet/in_var.h>
81 #ifdef INET
82 #include <netinet/ip.h>
83 #include <netinet/tcp.h>
84 #endif
85 #include <net/ethertypes.h>
86
87 #ifdef INET6
88 #include <netinet6/scope6_var.h>
89 #endif
90
91 #include <net/if_sppp.h>
92 #include <net/if_spppvar.h>
93
94 #ifdef NET_MPSAFE
95 #define SPPPSUBR_MPSAFE 1
96 #endif
97
98 #define LCP_KEEPALIVE_INTERVAL 10 /* seconds between checks */
99 #define LOOPALIVECNT 3 /* loopback detection tries */
100 #define DEFAULT_MAXALIVECNT 3 /* max. missed alive packets */
101 #define DEFAULT_NORECV_TIME 15 /* before we get worried */
102 #define DEFAULT_MAX_AUTH_FAILURES 5 /* max. auth. failures */
103
104 /*
105 * Interface flags that can be set in an ifconfig command.
106 *
107 * Setting link0 will make the link passive, i.e. it will be marked
108 * as being administrative openable, but won't be opened to begin
109 * with. Incoming calls will be answered, or subsequent calls with
110 * -link1 will cause the administrative open of the LCP layer.
111 *
112 * Setting link1 will cause the link to auto-dial only as packets
113 * arrive to be sent.
114 *
115 * Setting IFF_DEBUG will syslog the option negotiation and state
116 * transitions at level kern.debug. Note: all logs consistently look
117 * like
118 *
119 * <if-name><unit>: <proto-name> <additional info...>
120 *
121 * with <if-name><unit> being something like "bppp0", and <proto-name>
122 * being one of "lcp", "ipcp", "cisco", "chap", "pap", etc.
123 */
124
125 #define IFF_PASSIVE IFF_LINK0 /* wait passively for connection */
126 #define IFF_AUTO IFF_LINK1 /* auto-dial on output */
127
128 #define CONF_REQ 1 /* PPP configure request */
129 #define CONF_ACK 2 /* PPP configure acknowledge */
130 #define CONF_NAK 3 /* PPP configure negative ack */
131 #define CONF_REJ 4 /* PPP configure reject */
132 #define TERM_REQ 5 /* PPP terminate request */
133 #define TERM_ACK 6 /* PPP terminate acknowledge */
134 #define CODE_REJ 7 /* PPP code reject */
135 #define PROTO_REJ 8 /* PPP protocol reject */
136 #define ECHO_REQ 9 /* PPP echo request */
137 #define ECHO_REPLY 10 /* PPP echo reply */
138 #define DISC_REQ 11 /* PPP discard request */
139
140 #define LCP_OPT_MRU 1 /* maximum receive unit */
141 #define LCP_OPT_ASYNC_MAP 2 /* async control character map */
142 #define LCP_OPT_AUTH_PROTO 3 /* authentication protocol */
143 #define LCP_OPT_QUAL_PROTO 4 /* quality protocol */
144 #define LCP_OPT_MAGIC 5 /* magic number */
145 #define LCP_OPT_RESERVED 6 /* reserved */
146 #define LCP_OPT_PROTO_COMP 7 /* protocol field compression */
147 #define LCP_OPT_ADDR_COMP 8 /* address/control field compression */
148
149 #define IPCP_OPT_ADDRESSES 1 /* both IP addresses; deprecated */
150 #define IPCP_OPT_COMPRESSION 2 /* IP compression protocol */
151 #define IPCP_OPT_ADDRESS 3 /* local IP address */
152 #define IPCP_OPT_PRIMDNS 129 /* primary remote dns address */
153 #define IPCP_OPT_SECDNS 131 /* secondary remote dns address */
154
155 #define IPCP_UPDATE_LIMIT 8 /* limit of pending IP updating job */
156 #define IPCP_SET_ADDRS 1 /* marker for IP address setting job */
157 #define IPCP_CLEAR_ADDRS 2 /* marker for IP address clearing job */
158
159 #define IPV6CP_OPT_IFID 1 /* interface identifier */
160 #define IPV6CP_OPT_COMPRESSION 2 /* IPv6 compression protocol */
161
162 #define PAP_REQ 1 /* PAP name/password request */
163 #define PAP_ACK 2 /* PAP acknowledge */
164 #define PAP_NAK 3 /* PAP fail */
165
166 #define CHAP_CHALLENGE 1 /* CHAP challenge request */
167 #define CHAP_RESPONSE 2 /* CHAP challenge response */
168 #define CHAP_SUCCESS 3 /* CHAP response ok */
169 #define CHAP_FAILURE 4 /* CHAP response failed */
170
171 #define CHAP_MD5 5 /* hash algorithm - MD5 */
172
173 #define CISCO_MULTICAST 0x8f /* Cisco multicast address */
174 #define CISCO_UNICAST 0x0f /* Cisco unicast address */
175 #define CISCO_KEEPALIVE 0x8035 /* Cisco keepalive protocol */
176 #define CISCO_ADDR_REQ 0 /* Cisco address request */
177 #define CISCO_ADDR_REPLY 1 /* Cisco address reply */
178 #define CISCO_KEEPALIVE_REQ 2 /* Cisco keepalive request */
179
180 /* states are named and numbered according to RFC 1661 */
181 #define STATE_INITIAL 0
182 #define STATE_STARTING 1
183 #define STATE_CLOSED 2
184 #define STATE_STOPPED 3
185 #define STATE_CLOSING 4
186 #define STATE_STOPPING 5
187 #define STATE_REQ_SENT 6
188 #define STATE_ACK_RCVD 7
189 #define STATE_ACK_SENT 8
190 #define STATE_OPENED 9
191
192 struct ppp_header {
193 uint8_t address;
194 uint8_t control;
195 uint16_t protocol;
196 } __packed;
197 #define PPP_HEADER_LEN sizeof (struct ppp_header)
198
199 struct lcp_header {
200 uint8_t type;
201 uint8_t ident;
202 uint16_t len;
203 } __packed;
204 #define LCP_HEADER_LEN sizeof (struct lcp_header)
205
206 struct cisco_packet {
207 uint32_t type;
208 uint32_t par1;
209 uint32_t par2;
210 uint16_t rel;
211 uint16_t time0;
212 uint16_t time1;
213 } __packed;
214 #define CISCO_PACKET_LEN 18
215
216 /*
217 * We follow the spelling and capitalization of RFC 1661 here, to make
218 * it easier comparing with the standard. Please refer to this RFC in
219 * case you can't make sense out of these abbreviation; it will also
220 * explain the semantics related to the various events and actions.
221 */
222 struct cp {
223 u_short proto; /* PPP control protocol number */
224 u_char protoidx; /* index into state table in struct sppp */
225 u_char flags;
226 #define CP_LCP 0x01 /* this is the LCP */
227 #define CP_AUTH 0x02 /* this is an authentication protocol */
228 #define CP_NCP 0x04 /* this is a NCP */
229 #define CP_QUAL 0x08 /* this is a quality reporting protocol */
230 const char *name; /* name of this control protocol */
231 /* event handlers */
232 void (*Up)(struct sppp *sp);
233 void (*Down)(struct sppp *sp);
234 void (*Open)(struct sppp *sp);
235 void (*Close)(struct sppp *sp);
236 void (*TO)(void *sp);
237 int (*RCR)(struct sppp *sp, struct lcp_header *h, int len);
238 void (*RCN_rej)(struct sppp *sp, struct lcp_header *h, int len);
239 void (*RCN_nak)(struct sppp *sp, struct lcp_header *h, int len);
240 /* actions */
241 void (*tlu)(struct sppp *sp);
242 void (*tld)(struct sppp *sp);
243 void (*tls)(struct sppp *sp);
244 void (*tlf)(struct sppp *sp);
245 void (*scr)(struct sppp *sp);
246 };
247
248 static struct sppp *spppq;
249 static kmutex_t *spppq_lock = NULL;
250 static callout_t keepalive_ch;
251
252 #define SPPPQ_LOCK() if (spppq_lock) \
253 mutex_enter(spppq_lock);
254 #define SPPPQ_UNLOCK() if (spppq_lock) \
255 mutex_exit(spppq_lock);
256
257 #ifdef INET
258 #ifndef SPPPSUBR_MPSAFE
259 /*
260 * The following disgusting hack gets around the problem that IP TOS
261 * can't be set yet. We want to put "interactive" traffic on a high
262 * priority queue. To decide if traffic is interactive, we check that
263 * a) it is TCP and b) one of its ports is telnet, rlogin or ftp control.
264 *
265 * XXX is this really still necessary? - joerg -
266 */
267 static u_short interactive_ports[8] = {
268 0, 513, 0, 0,
269 0, 21, 0, 23,
270 };
271 #define INTERACTIVE(p) (interactive_ports[(p) & 7] == (p))
272 #endif /* SPPPSUBR_MPSAFE */
273 #endif
274
275 /* almost every function needs these */
276 #define STDDCL \
277 struct ifnet *ifp = &sp->pp_if; \
278 int debug = ifp->if_flags & IFF_DEBUG
279
280 static int sppp_output(struct ifnet *ifp, struct mbuf *m,
281 const struct sockaddr *dst, const struct rtentry *rt);
282
283 static void sppp_cisco_send(struct sppp *sp, int type, int32_t par1, int32_t par2);
284 static void sppp_cisco_input(struct sppp *sp, struct mbuf *m);
285
286 static void sppp_cp_input(const struct cp *cp, struct sppp *sp,
287 struct mbuf *m);
288 static void sppp_cp_send(struct sppp *sp, u_short proto, u_char type,
289 u_char ident, u_short len, void *data);
290 /* static void sppp_cp_timeout(void *arg); */
291 static void sppp_cp_change_state(const struct cp *cp, struct sppp *sp,
292 int newstate);
293 static void sppp_auth_send(const struct cp *cp,
294 struct sppp *sp, unsigned int type, unsigned int id,
295 ...);
296
297 static void sppp_up_event(const struct cp *cp, struct sppp *sp);
298 static void sppp_down_event(const struct cp *cp, struct sppp *sp);
299 static void sppp_open_event(const struct cp *cp, struct sppp *sp);
300 static void sppp_close_event(const struct cp *cp, struct sppp *sp);
301 static void sppp_to_event(const struct cp *cp, struct sppp *sp);
302
303 static void sppp_null(struct sppp *sp);
304
305 static void sppp_lcp_init(struct sppp *sp);
306 static void sppp_lcp_up(struct sppp *sp);
307 static void sppp_lcp_down(struct sppp *sp);
308 static void sppp_lcp_open(struct sppp *sp);
309 static void sppp_lcp_close(struct sppp *sp);
310 static void sppp_lcp_TO(void *sp);
311 static int sppp_lcp_RCR(struct sppp *sp, struct lcp_header *h, int len);
312 static void sppp_lcp_RCN_rej(struct sppp *sp, struct lcp_header *h, int len);
313 static void sppp_lcp_RCN_nak(struct sppp *sp, struct lcp_header *h, int len);
314 static void sppp_lcp_tlu(struct sppp *sp);
315 static void sppp_lcp_tld(struct sppp *sp);
316 static void sppp_lcp_tls(struct sppp *sp);
317 static void sppp_lcp_tlf(struct sppp *sp);
318 static void sppp_lcp_scr(struct sppp *sp);
319 static void sppp_lcp_check_and_close(struct sppp *sp);
320 static int sppp_ncp_check(struct sppp *sp);
321
322 static void sppp_ipcp_init(struct sppp *sp);
323 static void sppp_ipcp_up(struct sppp *sp);
324 static void sppp_ipcp_down(struct sppp *sp);
325 static void sppp_ipcp_open(struct sppp *sp);
326 static void sppp_ipcp_close(struct sppp *sp);
327 static void sppp_ipcp_TO(void *sp);
328 static int sppp_ipcp_RCR(struct sppp *sp, struct lcp_header *h, int len);
329 static void sppp_ipcp_RCN_rej(struct sppp *sp, struct lcp_header *h, int len);
330 static void sppp_ipcp_RCN_nak(struct sppp *sp, struct lcp_header *h, int len);
331 static void sppp_ipcp_tlu(struct sppp *sp);
332 static void sppp_ipcp_tld(struct sppp *sp);
333 static void sppp_ipcp_tls(struct sppp *sp);
334 static void sppp_ipcp_tlf(struct sppp *sp);
335 static void sppp_ipcp_scr(struct sppp *sp);
336
337 static void sppp_ipv6cp_init(struct sppp *sp);
338 static void sppp_ipv6cp_up(struct sppp *sp);
339 static void sppp_ipv6cp_down(struct sppp *sp);
340 static void sppp_ipv6cp_open(struct sppp *sp);
341 static void sppp_ipv6cp_close(struct sppp *sp);
342 static void sppp_ipv6cp_TO(void *sp);
343 static int sppp_ipv6cp_RCR(struct sppp *sp, struct lcp_header *h, int len);
344 static void sppp_ipv6cp_RCN_rej(struct sppp *sp, struct lcp_header *h, int len);
345 static void sppp_ipv6cp_RCN_nak(struct sppp *sp, struct lcp_header *h, int len);
346 static void sppp_ipv6cp_tlu(struct sppp *sp);
347 static void sppp_ipv6cp_tld(struct sppp *sp);
348 static void sppp_ipv6cp_tls(struct sppp *sp);
349 static void sppp_ipv6cp_tlf(struct sppp *sp);
350 static void sppp_ipv6cp_scr(struct sppp *sp);
351
352 static void sppp_pap_input(struct sppp *sp, struct mbuf *m);
353 static void sppp_pap_init(struct sppp *sp);
354 static void sppp_pap_open(struct sppp *sp);
355 static void sppp_pap_close(struct sppp *sp);
356 static void sppp_pap_TO(void *sp);
357 static void sppp_pap_my_TO(void *sp);
358 static void sppp_pap_tlu(struct sppp *sp);
359 static void sppp_pap_tld(struct sppp *sp);
360 static void sppp_pap_scr(struct sppp *sp);
361
362 static void sppp_chap_input(struct sppp *sp, struct mbuf *m);
363 static void sppp_chap_init(struct sppp *sp);
364 static void sppp_chap_open(struct sppp *sp);
365 static void sppp_chap_close(struct sppp *sp);
366 static void sppp_chap_TO(void *sp);
367 static void sppp_chap_tlu(struct sppp *sp);
368 static void sppp_chap_tld(struct sppp *sp);
369 static void sppp_chap_scr(struct sppp *sp);
370
371 static const char *sppp_auth_type_name(u_short proto, u_char type);
372 static const char *sppp_cp_type_name(u_char type);
373 static const char *sppp_dotted_quad(uint32_t addr);
374 static const char *sppp_ipcp_opt_name(u_char opt);
375 #ifdef INET6
376 static const char *sppp_ipv6cp_opt_name(u_char opt);
377 #endif
378 static const char *sppp_lcp_opt_name(u_char opt);
379 static const char *sppp_phase_name(int phase);
380 static const char *sppp_proto_name(u_short proto);
381 static const char *sppp_state_name(int state);
382 static int sppp_params(struct sppp *sp, u_long cmd, void *data);
383 #ifdef INET
384 static void sppp_get_ip_addrs(struct sppp *sp, uint32_t *src, uint32_t *dst,
385 uint32_t *srcmask);
386 static void sppp_set_ip_addrs_work(struct work *wk, struct sppp *sp);
387 static void sppp_set_ip_addrs(struct sppp *sp);
388 static void sppp_clear_ip_addrs_work(struct work *wk, struct sppp *sp);
389 static void sppp_clear_ip_addrs(struct sppp *sp);
390 static void sppp_update_ip_addrs_work(struct work *wk, void *arg);
391 #endif
392 static void sppp_keepalive(void *dummy);
393 static void sppp_phase_network(struct sppp *sp);
394 static void sppp_print_bytes(const u_char *p, u_short len);
395 static void sppp_print_string(const char *p, u_short len);
396 #ifdef INET6
397 static void sppp_get_ip6_addrs(struct sppp *sp, struct in6_addr *src,
398 struct in6_addr *dst, struct in6_addr *srcmask);
399 #ifdef IPV6CP_MYIFID_DYN
400 static void sppp_set_ip6_addr(struct sppp *sp, const struct in6_addr *src);
401 static void sppp_gen_ip6_addr(struct sppp *sp, const struct in6_addr *src);
402 #endif
403 static void sppp_suggest_ip6_addr(struct sppp *sp, struct in6_addr *src);
404 #endif
405
406 /* our control protocol descriptors */
407 static const struct cp lcp = {
408 PPP_LCP, IDX_LCP, CP_LCP, "lcp",
409 sppp_lcp_up, sppp_lcp_down, sppp_lcp_open, sppp_lcp_close,
410 sppp_lcp_TO, sppp_lcp_RCR, sppp_lcp_RCN_rej, sppp_lcp_RCN_nak,
411 sppp_lcp_tlu, sppp_lcp_tld, sppp_lcp_tls, sppp_lcp_tlf,
412 sppp_lcp_scr
413 };
414
415 static const struct cp ipcp = {
416 PPP_IPCP, IDX_IPCP,
417 #ifdef INET
418 CP_NCP, /*don't run IPCP if there's no IPv4 support*/
419 #else
420 0,
421 #endif
422 "ipcp",
423 sppp_ipcp_up, sppp_ipcp_down, sppp_ipcp_open, sppp_ipcp_close,
424 sppp_ipcp_TO, sppp_ipcp_RCR, sppp_ipcp_RCN_rej, sppp_ipcp_RCN_nak,
425 sppp_ipcp_tlu, sppp_ipcp_tld, sppp_ipcp_tls, sppp_ipcp_tlf,
426 sppp_ipcp_scr
427 };
428
429 static const struct cp ipv6cp = {
430 PPP_IPV6CP, IDX_IPV6CP,
431 #ifdef INET6 /*don't run IPv6CP if there's no IPv6 support*/
432 CP_NCP,
433 #else
434 0,
435 #endif
436 "ipv6cp",
437 sppp_ipv6cp_up, sppp_ipv6cp_down, sppp_ipv6cp_open, sppp_ipv6cp_close,
438 sppp_ipv6cp_TO, sppp_ipv6cp_RCR, sppp_ipv6cp_RCN_rej, sppp_ipv6cp_RCN_nak,
439 sppp_ipv6cp_tlu, sppp_ipv6cp_tld, sppp_ipv6cp_tls, sppp_ipv6cp_tlf,
440 sppp_ipv6cp_scr
441 };
442
443 static const struct cp pap = {
444 PPP_PAP, IDX_PAP, CP_AUTH, "pap",
445 sppp_null, sppp_null, sppp_pap_open, sppp_pap_close,
446 sppp_pap_TO, 0, 0, 0,
447 sppp_pap_tlu, sppp_pap_tld, sppp_null, sppp_null,
448 sppp_pap_scr
449 };
450
451 static const struct cp chap = {
452 PPP_CHAP, IDX_CHAP, CP_AUTH, "chap",
453 sppp_null, sppp_null, sppp_chap_open, sppp_chap_close,
454 sppp_chap_TO, 0, 0, 0,
455 sppp_chap_tlu, sppp_chap_tld, sppp_null, sppp_null,
456 sppp_chap_scr
457 };
458
459 static const struct cp *cps[IDX_COUNT] = {
460 &lcp, /* IDX_LCP */
461 &ipcp, /* IDX_IPCP */
462 &ipv6cp, /* IDX_IPV6CP */
463 &pap, /* IDX_PAP */
464 &chap, /* IDX_CHAP */
465 };
466
467 static void
468 sppp_change_phase(struct sppp *sp, int phase)
469 {
470 STDDCL;
471
472 KASSERT(sppp_locked(sp));
473
474 if (sp->pp_phase == phase)
475 return;
476
477 sp->pp_phase = phase;
478
479 if (phase == SPPP_PHASE_NETWORK)
480 if_link_state_change(ifp, LINK_STATE_UP);
481 else
482 if_link_state_change(ifp, LINK_STATE_DOWN);
483
484 if (debug)
485 {
486 log(LOG_INFO, "%s: phase %s\n", ifp->if_xname,
487 sppp_phase_name(sp->pp_phase));
488 }
489 }
490
491 /*
492 * Exported functions, comprising our interface to the lower layer.
493 */
494
495 /*
496 * Process the received packet.
497 */
498 void
499 sppp_input(struct ifnet *ifp, struct mbuf *m)
500 {
501 struct ppp_header *h = NULL;
502 pktqueue_t *pktq = NULL;
503 struct ifqueue *inq = NULL;
504 uint16_t protocol;
505 struct sppp *sp = (struct sppp *)ifp;
506 int debug = ifp->if_flags & IFF_DEBUG;
507 int isr = 0;
508
509 KASSERT(!sppp_locked(sp));
510
511 sppp_lock_enter(sp);
512
513 if (ifp->if_flags & IFF_UP) {
514 /* Count received bytes, add hardware framing */
515 ifp->if_ibytes += m->m_pkthdr.len + sp->pp_framebytes;
516 /* Note time of last receive */
517 sp->pp_last_receive = time_uptime;
518 }
519
520 if (m->m_pkthdr.len <= PPP_HEADER_LEN) {
521 /* Too small packet, drop it. */
522 if (debug)
523 log(LOG_DEBUG,
524 "%s: input packet is too small, %d bytes\n",
525 ifp->if_xname, m->m_pkthdr.len);
526 drop:
527 ++ifp->if_ierrors;
528 ++ifp->if_iqdrops;
529 m_freem(m);
530 sppp_lock_exit(sp);
531 return;
532 }
533
534 if (sp->pp_flags & PP_NOFRAMING) {
535 memcpy(&protocol, mtod(m, void *), 2);
536 protocol = ntohs(protocol);
537 m_adj(m, 2);
538 } else {
539
540 /* Get PPP header. */
541 h = mtod(m, struct ppp_header *);
542 m_adj(m, PPP_HEADER_LEN);
543
544 switch (h->address) {
545 case PPP_ALLSTATIONS:
546 if (h->control != PPP_UI)
547 goto invalid;
548 if (sp->pp_flags & PP_CISCO) {
549 if (debug)
550 log(LOG_DEBUG,
551 "%s: PPP packet in Cisco mode "
552 "<addr=0x%x ctrl=0x%x proto=0x%x>\n",
553 ifp->if_xname,
554 h->address, h->control, ntohs(h->protocol));
555 goto drop;
556 }
557 break;
558 case CISCO_MULTICAST:
559 case CISCO_UNICAST:
560 /* Don't check the control field here (RFC 1547). */
561 if (! (sp->pp_flags & PP_CISCO)) {
562 if (debug)
563 log(LOG_DEBUG,
564 "%s: Cisco packet in PPP mode "
565 "<addr=0x%x ctrl=0x%x proto=0x%x>\n",
566 ifp->if_xname,
567 h->address, h->control, ntohs(h->protocol));
568 goto drop;
569 }
570 switch (ntohs(h->protocol)) {
571 default:
572 ++ifp->if_noproto;
573 goto invalid;
574 case CISCO_KEEPALIVE:
575 sppp_lock_exit(sp);
576 sppp_cisco_input((struct sppp *) ifp, m);
577 m_freem(m);
578 return;
579 #ifdef INET
580 case ETHERTYPE_IP:
581 pktq = ip_pktq;
582 break;
583 #endif
584 #ifdef INET6
585 case ETHERTYPE_IPV6:
586 pktq = ip6_pktq;
587 break;
588 #endif
589 }
590 goto queue_pkt;
591 default: /* Invalid PPP packet. */
592 invalid:
593 if (debug)
594 log(LOG_DEBUG,
595 "%s: invalid input packet "
596 "<addr=0x%x ctrl=0x%x proto=0x%x>\n",
597 ifp->if_xname,
598 h->address, h->control, ntohs(h->protocol));
599 goto drop;
600 }
601 protocol = ntohs(h->protocol);
602 }
603
604 switch (protocol) {
605 default:
606 if (sp->state[IDX_LCP] == STATE_OPENED) {
607 uint16_t prot = htons(protocol);
608 sppp_cp_send(sp, PPP_LCP, PROTO_REJ,
609 ++sp->pp_seq[IDX_LCP], m->m_pkthdr.len + 2,
610 &prot);
611 }
612 if (debug)
613 log(LOG_DEBUG,
614 "%s: invalid input protocol "
615 "<proto=0x%x>\n", ifp->if_xname, ntohs(protocol));
616 ++ifp->if_noproto;
617 goto drop;
618 case PPP_LCP:
619 sppp_lock_exit(sp);
620 sppp_cp_input(&lcp, sp, m);
621 m_freem(m);
622 return;
623 case PPP_PAP:
624 if (sp->pp_phase >= SPPP_PHASE_AUTHENTICATE) {
625 sppp_lock_exit(sp);
626 sppp_pap_input(sp, m);
627 } else
628 sppp_lock_exit(sp);
629 m_freem(m);
630 return;
631 case PPP_CHAP:
632 if (sp->pp_phase >= SPPP_PHASE_AUTHENTICATE) {
633 sppp_lock_exit(sp);
634 sppp_chap_input(sp, m);
635 } else
636 sppp_lock_exit(sp);
637 m_freem(m);
638 return;
639 #ifdef INET
640 case PPP_IPCP:
641 if (sp->pp_phase == SPPP_PHASE_NETWORK) {
642 sppp_lock_exit(sp);
643 sppp_cp_input(&ipcp, sp, m);
644 } else
645 sppp_lock_exit(sp);
646 m_freem(m);
647 return;
648 case PPP_IP:
649 if (sp->state[IDX_IPCP] == STATE_OPENED) {
650 sp->pp_last_activity = time_uptime;
651 pktq = ip_pktq;
652 }
653 break;
654 #endif
655 #ifdef INET6
656 case PPP_IPV6CP:
657 if (sp->pp_phase == SPPP_PHASE_NETWORK) {
658 sppp_lock_exit(sp);
659 sppp_cp_input(&ipv6cp, sp, m);
660 } else
661 sppp_lock_exit(sp);
662 m_freem(m);
663 return;
664
665 case PPP_IPV6:
666 if (sp->state[IDX_IPV6CP] == STATE_OPENED) {
667 sp->pp_last_activity = time_uptime;
668 pktq = ip6_pktq;
669 }
670 break;
671 #endif
672 }
673
674 queue_pkt:
675 if ((ifp->if_flags & IFF_UP) == 0 || (!inq && !pktq)) {
676 goto drop;
677 }
678
679 sppp_lock_exit(sp);
680 /* Check queue. */
681 if (__predict_true(pktq)) {
682 if (__predict_false(!pktq_enqueue(pktq, m, 0))) {
683 sppp_lock_enter(sp);
684 goto drop;
685 }
686 return;
687 }
688
689 IFQ_LOCK(inq);
690 if (IF_QFULL(inq)) {
691 /* Queue overflow. */
692 IF_DROP(inq);
693 IFQ_UNLOCK(inq);
694 if (debug)
695 log(LOG_DEBUG, "%s: protocol queue overflow\n",
696 ifp->if_xname);
697 sppp_lock_enter(sp);
698 goto drop;
699 }
700 IF_ENQUEUE(inq, m);
701 IFQ_UNLOCK(inq);
702 schednetisr(isr);
703 }
704
705 /*
706 * Enqueue transmit packet.
707 */
708 static int
709 sppp_output(struct ifnet *ifp, struct mbuf *m,
710 const struct sockaddr *dst, const struct rtentry *rt)
711 {
712 struct sppp *sp = (struct sppp *) ifp;
713 struct ppp_header *h = NULL;
714 #ifndef SPPPSUBR_MPSAFE
715 struct ifqueue *ifq = NULL; /* XXX */
716 #endif
717 int s, error = 0;
718 uint16_t protocol;
719
720 s = splnet();
721
722 sppp_lock_enter(sp);
723 sp->pp_last_activity = time_uptime;
724
725 if ((ifp->if_flags & IFF_UP) == 0 ||
726 (ifp->if_flags & (IFF_RUNNING | IFF_AUTO)) == 0) {
727 sppp_lock_exit(sp);
728 m_freem(m);
729 splx(s);
730 return (ENETDOWN);
731 }
732
733 if ((ifp->if_flags & (IFF_RUNNING | IFF_AUTO)) == IFF_AUTO) {
734 /*
735 * Interface is not yet running, but auto-dial. Need
736 * to start LCP for it.
737 */
738 ifp->if_flags |= IFF_RUNNING;
739 splx(s);
740 lcp.Open(sp);
741 s = splnet();
742 }
743
744 /*
745 * If the queueing discipline needs packet classification,
746 * do it before prepending link headers.
747 */
748 IFQ_CLASSIFY(&ifp->if_snd, m, dst->sa_family);
749
750 #ifdef INET
751 if (dst->sa_family == AF_INET) {
752 struct ip *ip = NULL;
753 #ifndef SPPPSUBR_MPSAFE
754 struct tcphdr *th = NULL;
755 #endif
756
757 if (m->m_len >= sizeof(struct ip)) {
758 ip = mtod(m, struct ip *);
759 #ifndef SPPPSUBR_MPSAFE
760 if (ip->ip_p == IPPROTO_TCP &&
761 m->m_len >= sizeof(struct ip) + (ip->ip_hl << 2) +
762 sizeof(struct tcphdr)) {
763 th = (struct tcphdr *)
764 ((char *)ip + (ip->ip_hl << 2));
765 }
766 #endif
767 } else
768 ip = NULL;
769
770 /*
771 * When using dynamic local IP address assignment by using
772 * 0.0.0.0 as a local address, the first TCP session will
773 * not connect because the local TCP checksum is computed
774 * using 0.0.0.0 which will later become our real IP address
775 * so the TCP checksum computed at the remote end will
776 * become invalid. So we
777 * - don't let packets with src ip addr 0 thru
778 * - we flag TCP packets with src ip 0 as an error
779 */
780 if (ip && ip->ip_src.s_addr == INADDR_ANY) {
781 uint8_t proto = ip->ip_p;
782
783 sppp_lock_exit(sp);
784 m_freem(m);
785 splx(s);
786 if (proto == IPPROTO_TCP)
787 return (EADDRNOTAVAIL);
788 else
789 return (0);
790 }
791
792 #ifndef SPPPSUBR_MPSAFE
793 /*
794 * Put low delay, telnet, rlogin and ftp control packets
795 * in front of the queue.
796 */
797 if (!IF_QFULL(&sp->pp_fastq) &&
798 ((ip && (ip->ip_tos & IPTOS_LOWDELAY)) ||
799 (th && (INTERACTIVE(ntohs(th->th_sport)) ||
800 INTERACTIVE(ntohs(th->th_dport))))))
801 ifq = &sp->pp_fastq;
802 #endif /* !SPPPSUBR_MPSAFE */
803 }
804 #endif
805
806 #ifdef INET6
807 if (dst->sa_family == AF_INET6) {
808 /* XXX do something tricky here? */
809 }
810 #endif
811
812 if ((sp->pp_flags & PP_NOFRAMING) == 0) {
813 /*
814 * Prepend general data packet PPP header. For now, IP only.
815 */
816 M_PREPEND(m, PPP_HEADER_LEN, M_DONTWAIT);
817 if (! m) {
818 if (ifp->if_flags & IFF_DEBUG)
819 log(LOG_DEBUG, "%s: no memory for transmit header\n",
820 ifp->if_xname);
821 ++ifp->if_oerrors;
822 sppp_lock_exit(sp);
823 splx(s);
824 return (ENOBUFS);
825 }
826 /*
827 * May want to check size of packet
828 * (albeit due to the implementation it's always enough)
829 */
830 h = mtod(m, struct ppp_header *);
831 if (sp->pp_flags & PP_CISCO) {
832 h->address = CISCO_UNICAST; /* unicast address */
833 h->control = 0;
834 } else {
835 h->address = PPP_ALLSTATIONS; /* broadcast address */
836 h->control = PPP_UI; /* Unnumbered Info */
837 }
838 }
839
840 switch (dst->sa_family) {
841 #ifdef INET
842 case AF_INET: /* Internet Protocol */
843 if (sp->pp_flags & PP_CISCO)
844 protocol = htons(ETHERTYPE_IP);
845 else {
846 /*
847 * Don't choke with an ENETDOWN early. It's
848 * possible that we just started dialing out,
849 * so don't drop the packet immediately. If
850 * we notice that we run out of buffer space
851 * below, we will however remember that we are
852 * not ready to carry IP packets, and return
853 * ENETDOWN, as opposed to ENOBUFS.
854 */
855 protocol = htons(PPP_IP);
856 if (sp->state[IDX_IPCP] != STATE_OPENED)
857 error = ENETDOWN;
858 }
859 break;
860 #endif
861 #ifdef INET6
862 case AF_INET6: /* Internet Protocol version 6 */
863 if (sp->pp_flags & PP_CISCO)
864 protocol = htons(ETHERTYPE_IPV6);
865 else {
866 /*
867 * Don't choke with an ENETDOWN early. It's
868 * possible that we just started dialing out,
869 * so don't drop the packet immediately. If
870 * we notice that we run out of buffer space
871 * below, we will however remember that we are
872 * not ready to carry IP packets, and return
873 * ENETDOWN, as opposed to ENOBUFS.
874 */
875 protocol = htons(PPP_IPV6);
876 if (sp->state[IDX_IPV6CP] != STATE_OPENED)
877 error = ENETDOWN;
878 }
879 break;
880 #endif
881 default:
882 m_freem(m);
883 ++ifp->if_oerrors;
884 sppp_lock_exit(sp);
885 splx(s);
886 return (EAFNOSUPPORT);
887 }
888
889 if (sp->pp_flags & PP_NOFRAMING) {
890 M_PREPEND(m, 2, M_DONTWAIT);
891 if (m == NULL) {
892 if (ifp->if_flags & IFF_DEBUG)
893 log(LOG_DEBUG, "%s: no memory for transmit header\n",
894 ifp->if_xname);
895 ++ifp->if_oerrors;
896 sppp_lock_exit(sp);
897 splx(s);
898 return (ENOBUFS);
899 }
900 *mtod(m, uint16_t *) = protocol;
901 } else {
902 h->protocol = protocol;
903 }
904
905
906 #ifdef SPPPSUBR_MPSAFE
907 error = if_transmit_lock(ifp, m);
908 if (error == 0)
909 ifp->if_obytes += m->m_pkthdr.len + sp->pp_framebytes;
910 #else /* !SPPPSUBR_MPSAFE */
911 error = ifq_enqueue2(ifp, ifq, m);
912
913 if (error == 0) {
914 /*
915 * Count output packets and bytes.
916 * The packet length includes header + additional hardware
917 * framing according to RFC 1333.
918 */
919 if (!(ifp->if_flags & IFF_OACTIVE)) {
920 sppp_lock_exit(sp);
921 if_start_lock(ifp);
922 sppp_lock_enter(sp);
923 }
924 ifp->if_obytes += m->m_pkthdr.len + sp->pp_framebytes;
925 }
926 #endif /* !SPPPSUBR_MPSAFE */
927 sppp_lock_exit(sp);
928 splx(s);
929 return error;
930 }
931
932 static int
933 sppp_mediachange(struct ifnet *ifp)
934 {
935
936 return (0);
937 }
938
939 static void
940 sppp_mediastatus(struct ifnet *ifp, struct ifmediareq *imr)
941 {
942 struct sppp *sp = (struct sppp *)ifp;
943 KASSERT(!sppp_locked(sp));
944
945 sppp_lock_enter(sp);
946 switch (ifp->if_link_state) {
947 case LINK_STATE_UP:
948 imr->ifm_status = IFM_AVALID | IFM_ACTIVE;
949 break;
950 case LINK_STATE_DOWN:
951 imr->ifm_status = IFM_AVALID;
952 break;
953 default:
954 /* Should be impossible as we set link state down in attach. */
955 imr->ifm_status = 0;
956 break;
957 }
958 sppp_lock_exit(sp);
959 }
960
961 void
962 sppp_attach(struct ifnet *ifp)
963 {
964 struct sppp *sp = (struct sppp *) ifp;
965
966 /* Initialize keepalive handler. */
967 if (! spppq) {
968 callout_init(&keepalive_ch, 0);
969 callout_reset(&keepalive_ch, hz * LCP_KEEPALIVE_INTERVAL, sppp_keepalive, NULL);
970 }
971
972 if (! spppq_lock)
973 spppq_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SOFTNET);
974
975 /* Insert new entry into the keepalive list. */
976 sp->pp_next = spppq;
977 spppq = sp;
978
979 sp->pp_if.if_type = IFT_PPP;
980 sp->pp_if.if_output = sppp_output;
981 sp->pp_fastq.ifq_maxlen = 32;
982 sp->pp_cpq.ifq_maxlen = 20;
983 sp->pp_loopcnt = 0;
984 sp->pp_alivecnt = 0;
985 sp->pp_last_activity = 0;
986 sp->pp_last_receive = 0;
987 sp->pp_maxalive = DEFAULT_MAXALIVECNT;
988 sp->pp_max_noreceive = DEFAULT_NORECV_TIME;
989 sp->pp_idle_timeout = 0;
990 memset(&sp->pp_seq[0], 0, sizeof(sp->pp_seq));
991 memset(&sp->pp_rseq[0], 0, sizeof(sp->pp_rseq));
992 sp->pp_auth_failures = 0;
993 sp->pp_max_auth_fail = DEFAULT_MAX_AUTH_FAILURES;
994 sp->pp_phase = SPPP_PHASE_DEAD;
995 sp->pp_up = lcp.Up;
996 sp->pp_down = lcp.Down;
997 sp->pp_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SOFTNET);
998
999 if_alloc_sadl(ifp);
1000
1001 /* Lets not beat about the bush, we know we're down. */
1002 ifp->if_link_state = LINK_STATE_DOWN;
1003 /* There is no media for PPP, but it's needed to report link status. */
1004 ifmedia_init(&sp->pp_im, 0, sppp_mediachange, sppp_mediastatus);
1005
1006 memset(&sp->myauth, 0, sizeof sp->myauth);
1007 memset(&sp->hisauth, 0, sizeof sp->hisauth);
1008 sppp_lcp_init(sp);
1009 sppp_ipcp_init(sp);
1010 sppp_ipv6cp_init(sp);
1011 sppp_pap_init(sp);
1012 sppp_chap_init(sp);
1013 }
1014
1015 void
1016 sppp_detach(struct ifnet *ifp)
1017 {
1018 struct sppp **q, *p, *sp = (struct sppp *) ifp;
1019
1020 sppp_lock_enter(sp);
1021 /* Remove the entry from the keepalive list. */
1022 SPPPQ_LOCK();
1023 for (q = &spppq; (p = *q); q = &p->pp_next)
1024 if (p == sp) {
1025 *q = p->pp_next;
1026 break;
1027 }
1028
1029 /* to avoid workqueue enqueued */
1030 atomic_swap_uint(&sp->ipcp.update_addrs_enqueued, 1);
1031 workqueue_destroy(sp->ipcp.update_addrs_wq);
1032 pcq_destroy(sp->ipcp.update_addrs_q);
1033
1034 /* Stop keepalive handler. */
1035 if (! spppq) {
1036 callout_stop(&keepalive_ch);
1037 }
1038 SPPPQ_UNLOCK();
1039
1040 callout_stop(&sp->ch[IDX_LCP]);
1041 callout_stop(&sp->ch[IDX_IPCP]);
1042 callout_stop(&sp->ch[IDX_PAP]);
1043 callout_stop(&sp->ch[IDX_CHAP]);
1044 #ifdef INET6
1045 callout_stop(&sp->ch[IDX_IPV6CP]);
1046 #endif
1047 callout_stop(&sp->pap_my_to_ch);
1048
1049 /* free authentication info */
1050 if (sp->myauth.name) free(sp->myauth.name, M_DEVBUF);
1051 if (sp->myauth.secret) free(sp->myauth.secret, M_DEVBUF);
1052 if (sp->hisauth.name) free(sp->hisauth.name, M_DEVBUF);
1053 if (sp->hisauth.secret) free(sp->hisauth.secret, M_DEVBUF);
1054
1055 /* Safety - shouldn't be needed as there is no media to set. */
1056 ifmedia_delete_instance(&sp->pp_im, IFM_INST_ANY);
1057
1058 sppp_lock_exit(sp);
1059 if (sp->pp_lock)
1060 mutex_obj_free(sp->pp_lock);
1061
1062 }
1063
1064 /*
1065 * Flush the interface output queue.
1066 */
1067 void
1068 sppp_flush(struct ifnet *ifp)
1069 {
1070 struct sppp *sp = (struct sppp *) ifp;
1071
1072 IFQ_PURGE(&sp->pp_if.if_snd);
1073 IF_PURGE(&sp->pp_fastq);
1074 IF_PURGE(&sp->pp_cpq);
1075 }
1076
1077 /*
1078 * Check if the output queue is empty.
1079 */
1080 int
1081 sppp_isempty(struct ifnet *ifp)
1082 {
1083 struct sppp *sp = (struct sppp *) ifp;
1084 int empty, s;
1085
1086 KASSERT(!sppp_locked(sp));
1087
1088 s = splnet();
1089 sppp_lock_enter(sp);
1090 empty = IF_IS_EMPTY(&sp->pp_fastq) && IF_IS_EMPTY(&sp->pp_cpq) &&
1091 IFQ_IS_EMPTY(&sp->pp_if.if_snd);
1092 sppp_lock_exit(sp);
1093 splx(s);
1094 return (empty);
1095 }
1096
1097 /*
1098 * Get next packet to send.
1099 */
1100 struct mbuf *
1101 sppp_dequeue(struct ifnet *ifp)
1102 {
1103 struct sppp *sp = (struct sppp *) ifp;
1104 struct mbuf *m;
1105 int s;
1106
1107 s = splnet();
1108 sppp_lock_enter(sp);
1109 /*
1110 * Process only the control protocol queue until we have at
1111 * least one NCP open.
1112 *
1113 * Do always serve all three queues in Cisco mode.
1114 */
1115 IF_DEQUEUE(&sp->pp_cpq, m);
1116 if (m == NULL &&
1117 (sppp_ncp_check(sp) || (sp->pp_flags & PP_CISCO) != 0)) {
1118 IF_DEQUEUE(&sp->pp_fastq, m);
1119 if (m == NULL)
1120 IFQ_DEQUEUE(&sp->pp_if.if_snd, m);
1121 }
1122 sppp_lock_exit(sp);
1123 splx(s);
1124 return m;
1125 }
1126
1127 /*
1128 * Process an ioctl request. Called on low priority level.
1129 */
1130 int
1131 sppp_ioctl(struct ifnet *ifp, u_long cmd, void *data)
1132 {
1133 struct lwp *l = curlwp; /* XXX */
1134 struct ifreq *ifr = (struct ifreq *) data;
1135 struct ifaddr *ifa = (struct ifaddr *) data;
1136 struct sppp *sp = (struct sppp *) ifp;
1137 int s, error=0, going_up, going_down, newmode;
1138
1139 s = splnet();
1140 switch (cmd) {
1141 case SIOCINITIFADDR:
1142 ifa->ifa_rtrequest = p2p_rtrequest;
1143 break;
1144
1145 case SIOCSIFFLAGS:
1146 if ((error = ifioctl_common(ifp, cmd, data)) != 0)
1147 break;
1148
1149 sppp_lock_enter(sp);
1150 going_up = ifp->if_flags & IFF_UP &&
1151 (ifp->if_flags & IFF_RUNNING) == 0;
1152 going_down = (ifp->if_flags & IFF_UP) == 0 &&
1153 ifp->if_flags & IFF_RUNNING;
1154 newmode = ifp->if_flags & (IFF_AUTO | IFF_PASSIVE);
1155 if (newmode == (IFF_AUTO | IFF_PASSIVE)) {
1156 /* sanity */
1157 newmode = IFF_PASSIVE;
1158 ifp->if_flags &= ~IFF_AUTO;
1159 }
1160
1161 if (going_up || going_down) {
1162 lcp.Close(sp);
1163 }
1164 if (going_up && newmode == 0) {
1165 /* neither auto-dial nor passive */
1166 ifp->if_flags |= IFF_RUNNING;
1167 if (!(sp->pp_flags & PP_CISCO))
1168 lcp.Open(sp);
1169 } else if (going_down) {
1170 sppp_flush(ifp);
1171 ifp->if_flags &= ~IFF_RUNNING;
1172 }
1173 sppp_lock_exit(sp);
1174 break;
1175
1176 case SIOCSIFMTU:
1177 if (ifr->ifr_mtu < PPP_MINMRU ||
1178 ifr->ifr_mtu > sp->lcp.their_mru) {
1179 error = EINVAL;
1180 break;
1181 }
1182 /*FALLTHROUGH*/
1183 case SIOCGIFMTU:
1184 if ((error = ifioctl_common(ifp, cmd, data)) == ENETRESET)
1185 error = 0;
1186 break;
1187 case SIOCADDMULTI:
1188 case SIOCDELMULTI:
1189 break;
1190
1191 case SPPPSETAUTHCFG:
1192 case SPPPSETLCPCFG:
1193 case SPPPSETIDLETO:
1194 case SPPPSETAUTHFAILURE:
1195 case SPPPSETDNSOPTS:
1196 case SPPPSETKEEPALIVE:
1197 #if defined(COMPAT_50) || defined(MODULAR)
1198 case __SPPPSETIDLETO50:
1199 case __SPPPSETKEEPALIVE50:
1200 #endif /* COMPAT_50 || MODULAR */
1201 error = kauth_authorize_network(l->l_cred,
1202 KAUTH_NETWORK_INTERFACE,
1203 KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp, (void *)cmd,
1204 NULL);
1205 if (error)
1206 break;
1207 error = sppp_params(sp, cmd, data);
1208 break;
1209
1210 case SPPPGETAUTHCFG:
1211 case SPPPGETLCPCFG:
1212 case SPPPGETAUTHFAILURES:
1213 error = kauth_authorize_network(l->l_cred,
1214 KAUTH_NETWORK_INTERFACE,
1215 KAUTH_REQ_NETWORK_INTERFACE_GETPRIV, ifp, (void *)cmd,
1216 NULL);
1217 if (error)
1218 break;
1219 error = sppp_params(sp, cmd, data);
1220 break;
1221
1222 case SPPPGETSTATUS:
1223 case SPPPGETSTATUSNCP:
1224 case SPPPGETIDLETO:
1225 case SPPPGETDNSOPTS:
1226 case SPPPGETDNSADDRS:
1227 case SPPPGETKEEPALIVE:
1228 #if defined(COMPAT_50) || defined(MODULAR)
1229 case __SPPPGETIDLETO50:
1230 case __SPPPGETKEEPALIVE50:
1231 #endif /* COMPAT_50 || MODULAR */
1232 error = sppp_params(sp, cmd, data);
1233 break;
1234
1235 case SIOCGIFMEDIA:
1236 error = ifmedia_ioctl(ifp, ifr, &sp->pp_im, cmd);
1237 break;
1238
1239 default:
1240 error = ifioctl_common(ifp, cmd, data);
1241 break;
1242 }
1243 splx(s);
1244 return (error);
1245 }
1246
1247
1248 /*
1249 * Cisco framing implementation.
1250 */
1251
1252 /*
1253 * Handle incoming Cisco keepalive protocol packets.
1254 */
1255 static void
1256 sppp_cisco_input(struct sppp *sp, struct mbuf *m)
1257 {
1258 STDDCL;
1259 struct cisco_packet *h;
1260 #ifdef INET
1261 uint32_t me, mymask = 0; /* XXX: GCC */
1262 #endif
1263
1264 KASSERT(!sppp_locked(sp));
1265
1266 sppp_lock_enter(sp);
1267
1268 if (m->m_pkthdr.len < CISCO_PACKET_LEN) {
1269 if (debug)
1270 log(LOG_DEBUG,
1271 "%s: cisco invalid packet length: %d bytes\n",
1272 ifp->if_xname, m->m_pkthdr.len);
1273 sppp_lock_exit(sp);
1274 return;
1275 }
1276 h = mtod(m, struct cisco_packet *);
1277 if (debug)
1278 log(LOG_DEBUG,
1279 "%s: cisco input: %d bytes "
1280 "<0x%x 0x%x 0x%x 0x%x 0x%x-0x%x>\n",
1281 ifp->if_xname, m->m_pkthdr.len,
1282 ntohl(h->type), h->par1, h->par2, (u_int)h->rel,
1283 (u_int)h->time0, (u_int)h->time1);
1284 switch (ntohl(h->type)) {
1285 default:
1286 if (debug)
1287 addlog("%s: cisco unknown packet type: 0x%x\n",
1288 ifp->if_xname, ntohl(h->type));
1289 break;
1290 case CISCO_ADDR_REPLY:
1291 /* Reply on address request, ignore */
1292 break;
1293 case CISCO_KEEPALIVE_REQ:
1294 sp->pp_alivecnt = 0;
1295 sp->pp_rseq[IDX_LCP] = ntohl(h->par1);
1296 if (sp->pp_seq[IDX_LCP] == sp->pp_rseq[IDX_LCP]) {
1297 /* Local and remote sequence numbers are equal.
1298 * Probably, the line is in loopback mode. */
1299 if (sp->pp_loopcnt >= LOOPALIVECNT) {
1300 printf ("%s: loopback\n",
1301 ifp->if_xname);
1302 sp->pp_loopcnt = 0;
1303 if (ifp->if_flags & IFF_UP) {
1304 sppp_lock_exit(sp);
1305 if_down(ifp);
1306 sppp_lock_enter(sp);
1307 IF_PURGE(&sp->pp_cpq);
1308 }
1309 }
1310 ++sp->pp_loopcnt;
1311
1312 /* Generate new local sequence number */
1313 sp->pp_seq[IDX_LCP] = cprng_fast32();
1314 break;
1315 }
1316 sp->pp_loopcnt = 0;
1317 if (! (ifp->if_flags & IFF_UP) &&
1318 (ifp->if_flags & IFF_RUNNING)) {
1319 sppp_lock_exit(sp);
1320 if_up(ifp);
1321 sppp_lock_enter(sp);
1322 }
1323 break;
1324 case CISCO_ADDR_REQ:
1325 #ifdef INET
1326 sppp_lock_exit(sp);
1327 sppp_get_ip_addrs(sp, &me, 0, &mymask);
1328 if (me != 0L)
1329 sppp_cisco_send(sp, CISCO_ADDR_REPLY, me, mymask);
1330 #endif
1331 sppp_lock_enter(sp);
1332 break;
1333 }
1334 sppp_lock_exit(sp);
1335 }
1336
1337 /*
1338 * Send Cisco keepalive packet.
1339 */
1340 static void
1341 sppp_cisco_send(struct sppp *sp, int type, int32_t par1, int32_t par2)
1342 {
1343 STDDCL;
1344 struct ppp_header *h;
1345 struct cisco_packet *ch;
1346 struct mbuf *m;
1347 uint32_t t;
1348
1349 KASSERT(sppp_locked(sp));
1350
1351 t = time_uptime * 1000;
1352 MGETHDR(m, M_DONTWAIT, MT_DATA);
1353 if (! m)
1354 return;
1355 m->m_pkthdr.len = m->m_len = PPP_HEADER_LEN + CISCO_PACKET_LEN;
1356 m_reset_rcvif(m);
1357
1358 h = mtod(m, struct ppp_header *);
1359 h->address = CISCO_MULTICAST;
1360 h->control = 0;
1361 h->protocol = htons(CISCO_KEEPALIVE);
1362
1363 ch = (struct cisco_packet *)(h + 1);
1364 ch->type = htonl(type);
1365 ch->par1 = htonl(par1);
1366 ch->par2 = htonl(par2);
1367 ch->rel = -1;
1368
1369 ch->time0 = htons((u_short)(t >> 16));
1370 ch->time1 = htons((u_short) t);
1371
1372 if (debug)
1373 log(LOG_DEBUG,
1374 "%s: cisco output: <0x%x 0x%x 0x%x 0x%x 0x%x-0x%x>\n",
1375 ifp->if_xname, ntohl(ch->type), ch->par1,
1376 ch->par2, (u_int)ch->rel, (u_int)ch->time0,
1377 (u_int)ch->time1);
1378
1379 if (IF_QFULL(&sp->pp_cpq)) {
1380 IF_DROP(&sp->pp_fastq);
1381 IF_DROP(&ifp->if_snd);
1382 m_freem(m);
1383 ++ifp->if_oerrors;
1384 return;
1385 } else
1386 IF_ENQUEUE(&sp->pp_cpq, m);
1387 if (! (ifp->if_flags & IFF_OACTIVE)) {
1388 sppp_lock_exit(sp);
1389 if_start_lock(ifp);
1390 sppp_lock_enter(sp);
1391 }
1392 ifp->if_obytes += m->m_pkthdr.len + sp->pp_framebytes;
1393 }
1394
1395 /*
1396 * PPP protocol implementation.
1397 */
1398
1399 /*
1400 * Send PPP control protocol packet.
1401 */
1402 static void
1403 sppp_cp_send(struct sppp *sp, u_short proto, u_char type,
1404 u_char ident, u_short len, void *data)
1405 {
1406 STDDCL;
1407 struct lcp_header *lh;
1408 struct mbuf *m;
1409 size_t pkthdrlen;
1410
1411 KASSERT(sppp_locked(sp));
1412
1413 pkthdrlen = (sp->pp_flags & PP_NOFRAMING) ? 2 : PPP_HEADER_LEN;
1414
1415 if (len > MHLEN - pkthdrlen - LCP_HEADER_LEN)
1416 len = MHLEN - pkthdrlen - LCP_HEADER_LEN;
1417 MGETHDR(m, M_DONTWAIT, MT_DATA);
1418 if (! m)
1419 return;
1420 m->m_pkthdr.len = m->m_len = pkthdrlen + LCP_HEADER_LEN + len;
1421 m_reset_rcvif(m);
1422
1423 if (sp->pp_flags & PP_NOFRAMING) {
1424 *mtod(m, uint16_t *) = htons(proto);
1425 lh = (struct lcp_header *)(mtod(m, uint8_t *) + 2);
1426 } else {
1427 struct ppp_header *h;
1428 h = mtod(m, struct ppp_header *);
1429 h->address = PPP_ALLSTATIONS; /* broadcast address */
1430 h->control = PPP_UI; /* Unnumbered Info */
1431 h->protocol = htons(proto); /* Link Control Protocol */
1432 lh = (struct lcp_header *)(h + 1);
1433 }
1434 lh->type = type;
1435 lh->ident = ident;
1436 lh->len = htons(LCP_HEADER_LEN + len);
1437 if (len)
1438 memcpy(lh + 1, data, len);
1439
1440 if (debug) {
1441 log(LOG_DEBUG, "%s: %s output <%s id=0x%x len=%d",
1442 ifp->if_xname,
1443 sppp_proto_name(proto),
1444 sppp_cp_type_name(lh->type), lh->ident, ntohs(lh->len));
1445 if (len)
1446 sppp_print_bytes((u_char *)(lh + 1), len);
1447 addlog(">\n");
1448 }
1449 if (IF_QFULL(&sp->pp_cpq)) {
1450 IF_DROP(&sp->pp_fastq);
1451 IF_DROP(&ifp->if_snd);
1452 m_freem(m);
1453 ++ifp->if_oerrors;
1454 return;
1455 } else
1456 IF_ENQUEUE(&sp->pp_cpq, m);
1457
1458 if (! (ifp->if_flags & IFF_OACTIVE)) {
1459 sppp_lock_exit(sp);
1460 if_start_lock(ifp);
1461 sppp_lock_enter(sp);
1462 }
1463
1464 ifp->if_obytes += m->m_pkthdr.len + sp->pp_framebytes;
1465 }
1466
1467 /*
1468 * Handle incoming PPP control protocol packets.
1469 */
1470 static void
1471 sppp_cp_input(const struct cp *cp, struct sppp *sp, struct mbuf *m)
1472 {
1473 STDDCL;
1474 struct lcp_header *h;
1475 int printlen, len = m->m_pkthdr.len;
1476 int rv;
1477 u_char *p;
1478 uint32_t u32;
1479
1480 KASSERT(!sppp_locked(sp));
1481 if (len < 4) {
1482 if (debug)
1483 log(LOG_DEBUG,
1484 "%s: %s invalid packet length: %d bytes\n",
1485 ifp->if_xname, cp->name, len);
1486 return;
1487 }
1488 h = mtod(m, struct lcp_header *);
1489 if (debug) {
1490 printlen = ntohs(h->len);
1491 log(LOG_DEBUG,
1492 "%s: %s input(%s): <%s id=0x%x len=%d",
1493 ifp->if_xname, cp->name,
1494 sppp_state_name(sp->state[cp->protoidx]),
1495 sppp_cp_type_name(h->type), h->ident, printlen);
1496 if (len < printlen)
1497 printlen = len;
1498 if (printlen > 4)
1499 sppp_print_bytes((u_char *)(h + 1), printlen - 4);
1500 addlog(">\n");
1501 }
1502 if (len > ntohs(h->len))
1503 len = ntohs(h->len);
1504 p = (u_char *)(h + 1);
1505 switch (h->type) {
1506 case CONF_REQ:
1507 if (len < 4) {
1508 if (debug)
1509 addlog("%s: %s invalid conf-req length %d\n",
1510 ifp->if_xname, cp->name,
1511 len);
1512 sppp_lock_enter(sp);
1513 ++ifp->if_ierrors;
1514 sppp_lock_exit(sp);
1515 break;
1516 }
1517 /* handle states where RCR doesn't get a SCA/SCN */
1518 sppp_lock_enter(sp);
1519 switch (sp->state[cp->protoidx]) {
1520 case STATE_CLOSING:
1521 case STATE_STOPPING:
1522 sppp_lock_exit(sp);
1523 return;
1524 case STATE_CLOSED:
1525 sppp_cp_send(sp, cp->proto, TERM_ACK, h->ident,
1526 0, 0);
1527 sppp_lock_exit(sp);
1528 return;
1529 }
1530 rv = (cp->RCR)(sp, h, len);
1531 if (rv < 0) {
1532 /* fatal error, shut down */
1533 (cp->tld)(sp);
1534 sppp_lcp_tlf(sp);
1535 sppp_lock_exit(sp);
1536 return;
1537 }
1538 switch (sp->state[cp->protoidx]) {
1539 case STATE_OPENED:
1540 (cp->tld)(sp);
1541 (cp->scr)(sp);
1542 /* fall through... */
1543 case STATE_ACK_SENT:
1544 case STATE_REQ_SENT:
1545 sppp_cp_change_state(cp, sp, rv?
1546 STATE_ACK_SENT: STATE_REQ_SENT);
1547 break;
1548 case STATE_STOPPED:
1549 sp->rst_counter[cp->protoidx] = sp->lcp.max_configure;
1550 (cp->scr)(sp);
1551 sppp_cp_change_state(cp, sp, rv?
1552 STATE_ACK_SENT: STATE_REQ_SENT);
1553 break;
1554 case STATE_ACK_RCVD:
1555 if (rv) {
1556 sppp_cp_change_state(cp, sp, STATE_OPENED);
1557 if (debug)
1558 log(LOG_DEBUG, "%s: %s tlu\n",
1559 ifp->if_xname,
1560 cp->name);
1561 (cp->tlu)(sp);
1562 } else
1563 sppp_cp_change_state(cp, sp, STATE_ACK_RCVD);
1564 break;
1565 default:
1566 sppp_lock_enter(sp);
1567 printf("%s: %s illegal %s in state %s\n",
1568 ifp->if_xname, cp->name,
1569 sppp_cp_type_name(h->type),
1570 sppp_state_name(sp->state[cp->protoidx]));
1571 ++ifp->if_ierrors;
1572 }
1573 sppp_lock_exit(sp);
1574 break;
1575 case CONF_ACK:
1576 sppp_lock_enter(sp);
1577 if (h->ident != sp->confid[cp->protoidx]) {
1578 if (debug)
1579 addlog("%s: %s id mismatch 0x%x != 0x%x\n",
1580 ifp->if_xname, cp->name,
1581 h->ident, sp->confid[cp->protoidx]);
1582 ++ifp->if_ierrors;
1583 sppp_lock_exit(sp);
1584 break;
1585 }
1586 switch (sp->state[cp->protoidx]) {
1587 case STATE_CLOSED:
1588 case STATE_STOPPED:
1589 sppp_cp_send(sp, cp->proto, TERM_ACK, h->ident, 0, 0);
1590 break;
1591 case STATE_CLOSING:
1592 case STATE_STOPPING:
1593 break;
1594 case STATE_REQ_SENT:
1595 sp->rst_counter[cp->protoidx] = sp->lcp.max_configure;
1596 sppp_cp_change_state(cp, sp, STATE_ACK_RCVD);
1597 break;
1598 case STATE_OPENED:
1599 (cp->tld)(sp);
1600 /* fall through */
1601 case STATE_ACK_RCVD:
1602 (cp->scr)(sp);
1603 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
1604 break;
1605 case STATE_ACK_SENT:
1606 sp->rst_counter[cp->protoidx] = sp->lcp.max_configure;
1607 sppp_cp_change_state(cp, sp, STATE_OPENED);
1608 if (debug)
1609 log(LOG_DEBUG, "%s: %s tlu\n",
1610 ifp->if_xname, cp->name);
1611 (cp->tlu)(sp);
1612 break;
1613 default:
1614 printf("%s: %s illegal %s in state %s\n",
1615 ifp->if_xname, cp->name,
1616 sppp_cp_type_name(h->type),
1617 sppp_state_name(sp->state[cp->protoidx]));
1618 ++ifp->if_ierrors;
1619 }
1620 sppp_lock_exit(sp);
1621 break;
1622 case CONF_NAK:
1623 case CONF_REJ:
1624 sppp_lock_enter(sp);
1625 if (h->ident != sp->confid[cp->protoidx]) {
1626 if (debug)
1627 addlog("%s: %s id mismatch 0x%x != 0x%x\n",
1628 ifp->if_xname, cp->name,
1629 h->ident, sp->confid[cp->protoidx]);
1630 ++ifp->if_ierrors;
1631 sppp_lock_exit(sp);
1632 break;
1633 }
1634 if (h->type == CONF_NAK)
1635 (cp->RCN_nak)(sp, h, len);
1636 else /* CONF_REJ */
1637 (cp->RCN_rej)(sp, h, len);
1638
1639 switch (sp->state[cp->protoidx]) {
1640 case STATE_CLOSED:
1641 case STATE_STOPPED:
1642 sppp_cp_send(sp, cp->proto, TERM_ACK, h->ident, 0, 0);
1643 break;
1644 case STATE_REQ_SENT:
1645 case STATE_ACK_SENT:
1646 sp->rst_counter[cp->protoidx] = sp->lcp.max_configure;
1647 (cp->scr)(sp);
1648 break;
1649 case STATE_OPENED:
1650 (cp->tld)(sp);
1651 /* fall through */
1652 case STATE_ACK_RCVD:
1653 sppp_cp_change_state(cp, sp, STATE_ACK_SENT);
1654 (cp->scr)(sp);
1655 break;
1656 case STATE_CLOSING:
1657 case STATE_STOPPING:
1658 break;
1659 default:
1660 printf("%s: %s illegal %s in state %s\n",
1661 ifp->if_xname, cp->name,
1662 sppp_cp_type_name(h->type),
1663 sppp_state_name(sp->state[cp->protoidx]));
1664 ++ifp->if_ierrors;
1665 }
1666 sppp_lock_exit(sp);
1667 break;
1668
1669 case TERM_REQ:
1670 sppp_lock_enter(sp);
1671 switch (sp->state[cp->protoidx]) {
1672 case STATE_ACK_RCVD:
1673 case STATE_ACK_SENT:
1674 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
1675 /* fall through */
1676 case STATE_CLOSED:
1677 case STATE_STOPPED:
1678 case STATE_CLOSING:
1679 case STATE_STOPPING:
1680 case STATE_REQ_SENT:
1681 sta:
1682 /* Send Terminate-Ack packet. */
1683 if (debug)
1684 log(LOG_DEBUG, "%s: %s send terminate-ack\n",
1685 ifp->if_xname, cp->name);
1686 sppp_cp_send(sp, cp->proto, TERM_ACK, h->ident, 0, 0);
1687 break;
1688 case STATE_OPENED:
1689 (cp->tld)(sp);
1690 sp->rst_counter[cp->protoidx] = 0;
1691 sppp_cp_change_state(cp, sp, STATE_STOPPING);
1692 goto sta;
1693 default:
1694 printf("%s: %s illegal %s in state %s\n",
1695 ifp->if_xname, cp->name,
1696 sppp_cp_type_name(h->type),
1697 sppp_state_name(sp->state[cp->protoidx]));
1698 ++ifp->if_ierrors;
1699 }
1700 sppp_lock_exit(sp);
1701 break;
1702 case TERM_ACK:
1703 sppp_lock_enter(sp);
1704 switch (sp->state[cp->protoidx]) {
1705 case STATE_CLOSED:
1706 case STATE_STOPPED:
1707 case STATE_REQ_SENT:
1708 case STATE_ACK_SENT:
1709 break;
1710 case STATE_CLOSING:
1711 (cp->tlf)(sp);
1712 sppp_cp_change_state(cp, sp, STATE_CLOSED);
1713 sppp_lcp_check_and_close(sp);
1714 break;
1715 case STATE_STOPPING:
1716 (cp->tlf)(sp);
1717 sppp_cp_change_state(cp, sp, STATE_STOPPED);
1718 sppp_lcp_check_and_close(sp);
1719 break;
1720 case STATE_ACK_RCVD:
1721 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
1722 break;
1723 case STATE_OPENED:
1724 (cp->tld)(sp);
1725 (cp->scr)(sp);
1726 sppp_cp_change_state(cp, sp, STATE_ACK_RCVD);
1727 break;
1728 default:
1729 printf("%s: %s illegal %s in state %s\n",
1730 ifp->if_xname, cp->name,
1731 sppp_cp_type_name(h->type),
1732 sppp_state_name(sp->state[cp->protoidx]));
1733 ++ifp->if_ierrors;
1734 }
1735 sppp_lock_exit(sp);
1736 break;
1737 case CODE_REJ:
1738 /* XXX catastrophic rejects (RXJ-) aren't handled yet. */
1739 sppp_lock_enter(sp);
1740 log(LOG_INFO,
1741 "%s: %s: ignoring RXJ (%s) for code ?, "
1742 "danger will robinson\n",
1743 ifp->if_xname, cp->name,
1744 sppp_cp_type_name(h->type));
1745 switch (sp->state[cp->protoidx]) {
1746 case STATE_CLOSED:
1747 case STATE_STOPPED:
1748 case STATE_REQ_SENT:
1749 case STATE_ACK_SENT:
1750 case STATE_CLOSING:
1751 case STATE_STOPPING:
1752 case STATE_OPENED:
1753 break;
1754 case STATE_ACK_RCVD:
1755 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
1756 break;
1757 default:
1758 printf("%s: %s illegal %s in state %s\n",
1759 ifp->if_xname, cp->name,
1760 sppp_cp_type_name(h->type),
1761 sppp_state_name(sp->state[cp->protoidx]));
1762 ++ifp->if_ierrors;
1763 }
1764 sppp_lock_exit(sp);
1765 break;
1766 case PROTO_REJ:
1767 {
1768 int catastrophic;
1769 const struct cp *upper;
1770 int i;
1771 uint16_t proto;
1772
1773 catastrophic = 0;
1774 upper = NULL;
1775 proto = p[0] << 8 | p[1];
1776 for (i = 0; i < IDX_COUNT; i++) {
1777 if (cps[i]->proto == proto) {
1778 upper = cps[i];
1779 break;
1780 }
1781 }
1782 if (upper == NULL)
1783 catastrophic++;
1784
1785 sppp_lock_enter(sp);
1786
1787 if (debug)
1788 log(LOG_INFO,
1789 "%s: %s: RXJ%c (%s) for proto 0x%x (%s/%s)\n",
1790 ifp->if_xname, cp->name, catastrophic ? '-' : '+',
1791 sppp_cp_type_name(h->type), proto,
1792 upper ? upper->name : "unknown",
1793 upper ? sppp_state_name(sp->state[upper->protoidx]) : "?");
1794
1795 /*
1796 * if we got RXJ+ against conf-req, the peer does not implement
1797 * this particular protocol type. terminate the protocol.
1798 */
1799 if (upper && !catastrophic) {
1800 if (sp->state[upper->protoidx] == STATE_REQ_SENT) {
1801 upper->Close(sp);
1802 sppp_lock_exit(sp);
1803 break;
1804 }
1805 }
1806
1807 /* XXX catastrophic rejects (RXJ-) aren't handled yet. */
1808 switch (sp->state[cp->protoidx]) {
1809 case STATE_CLOSED:
1810 case STATE_STOPPED:
1811 case STATE_REQ_SENT:
1812 case STATE_ACK_SENT:
1813 case STATE_CLOSING:
1814 case STATE_STOPPING:
1815 case STATE_OPENED:
1816 break;
1817 case STATE_ACK_RCVD:
1818 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
1819 break;
1820 default:
1821 printf("%s: %s illegal %s in state %s\n",
1822 ifp->if_xname, cp->name,
1823 sppp_cp_type_name(h->type),
1824 sppp_state_name(sp->state[cp->protoidx]));
1825 ++ifp->if_ierrors;
1826 }
1827 sppp_lock_exit(sp);
1828 break;
1829 }
1830 case DISC_REQ:
1831 if (cp->proto != PPP_LCP)
1832 goto illegal;
1833 /* Discard the packet. */
1834 break;
1835 case ECHO_REQ:
1836 if (cp->proto != PPP_LCP)
1837 goto illegal;
1838 sppp_lock_enter(sp);
1839 if (sp->state[cp->protoidx] != STATE_OPENED) {
1840 if (debug)
1841 addlog("%s: lcp echo req but lcp closed\n",
1842 ifp->if_xname);
1843 ++ifp->if_ierrors;
1844 sppp_lock_exit(sp);
1845 break;
1846 }
1847 if (len < 8) {
1848 if (debug)
1849 addlog("%s: invalid lcp echo request "
1850 "packet length: %d bytes\n",
1851 ifp->if_xname, len);
1852 sppp_lock_exit(sp);
1853 break;
1854 }
1855 memcpy(&u32, h + 1, sizeof u32);
1856 if (ntohl(u32) == sp->lcp.magic) {
1857 /* Line loopback mode detected. */
1858 printf("%s: loopback\n", ifp->if_xname);
1859 if_down(ifp);
1860 IF_PURGE(&sp->pp_cpq);
1861
1862 /* Shut down the PPP link. */
1863 /* XXX */
1864 lcp.Down(sp);
1865 lcp.Up(sp);
1866 sppp_lock_exit(sp);
1867 break;
1868 }
1869 u32 = htonl(sp->lcp.magic);
1870 memcpy(h + 1, &u32, sizeof u32);
1871 if (debug)
1872 addlog("%s: got lcp echo req, sending echo rep\n",
1873 ifp->if_xname);
1874 sppp_cp_send(sp, PPP_LCP, ECHO_REPLY, h->ident, len - 4,
1875 h + 1);
1876 sppp_lock_exit(sp);
1877 break;
1878 case ECHO_REPLY:
1879 if (cp->proto != PPP_LCP)
1880 goto illegal;
1881 sppp_lock_enter(sp);
1882 if (h->ident != sp->lcp.echoid) {
1883 ++ifp->if_ierrors;
1884 sppp_lock_exit(sp);
1885 break;
1886 }
1887 if (len < 8) {
1888 if (debug)
1889 addlog("%s: lcp invalid echo reply "
1890 "packet length: %d bytes\n",
1891 ifp->if_xname, len);
1892 sppp_lock_exit(sp);
1893 break;
1894 }
1895 if (debug)
1896 addlog("%s: lcp got echo rep\n",
1897 ifp->if_xname);
1898 memcpy(&u32, h + 1, sizeof u32);
1899 if (ntohl(u32) != sp->lcp.magic)
1900 sp->pp_alivecnt = 0;
1901 sppp_lock_exit(sp);
1902 break;
1903 default:
1904 /* Unknown packet type -- send Code-Reject packet. */
1905 illegal:
1906 sppp_lock_enter(sp);
1907 if (debug)
1908 addlog("%s: %s send code-rej for 0x%x\n",
1909 ifp->if_xname, cp->name, h->type);
1910 sppp_cp_send(sp, cp->proto, CODE_REJ,
1911 ++sp->pp_seq[cp->protoidx], m->m_pkthdr.len, h);
1912 ++ifp->if_ierrors;
1913 sppp_lock_exit(sp);
1914 }
1915 }
1916
1917
1918 /*
1919 * The generic part of all Up/Down/Open/Close/TO event handlers.
1920 * Basically, the state transition handling in the automaton.
1921 */
1922 static void
1923 sppp_up_event(const struct cp *cp, struct sppp *sp)
1924 {
1925 STDDCL;
1926
1927 KASSERT(sppp_locked(sp));
1928
1929 if (debug)
1930 log(LOG_DEBUG, "%s: %s up(%s)\n",
1931 ifp->if_xname, cp->name,
1932 sppp_state_name(sp->state[cp->protoidx]));
1933
1934 switch (sp->state[cp->protoidx]) {
1935 case STATE_INITIAL:
1936 sppp_cp_change_state(cp, sp, STATE_CLOSED);
1937 break;
1938 case STATE_STARTING:
1939 sp->rst_counter[cp->protoidx] = sp->lcp.max_configure;
1940 (cp->scr)(sp);
1941 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
1942 break;
1943 default:
1944 printf("%s: %s illegal up in state %s\n",
1945 ifp->if_xname, cp->name,
1946 sppp_state_name(sp->state[cp->protoidx]));
1947 }
1948 }
1949
1950 static void
1951 sppp_down_event(const struct cp *cp, struct sppp *sp)
1952 {
1953 STDDCL;
1954
1955 KASSERT(sppp_locked(sp));
1956
1957 if (debug)
1958 log(LOG_DEBUG, "%s: %s down(%s)\n",
1959 ifp->if_xname, cp->name,
1960 sppp_state_name(sp->state[cp->protoidx]));
1961
1962 switch (sp->state[cp->protoidx]) {
1963 case STATE_CLOSED:
1964 case STATE_CLOSING:
1965 sppp_cp_change_state(cp, sp, STATE_INITIAL);
1966 break;
1967 case STATE_STOPPED:
1968 (cp->tls)(sp);
1969 /* fall through */
1970 case STATE_STOPPING:
1971 case STATE_REQ_SENT:
1972 case STATE_ACK_RCVD:
1973 case STATE_ACK_SENT:
1974 sppp_cp_change_state(cp, sp, STATE_STARTING);
1975 break;
1976 case STATE_OPENED:
1977 (cp->tld)(sp);
1978 sppp_cp_change_state(cp, sp, STATE_STARTING);
1979 break;
1980 default:
1981 printf("%s: %s illegal down in state %s\n",
1982 ifp->if_xname, cp->name,
1983 sppp_state_name(sp->state[cp->protoidx]));
1984 }
1985 }
1986
1987
1988 static void
1989 sppp_open_event(const struct cp *cp, struct sppp *sp)
1990 {
1991 STDDCL;
1992
1993 KASSERT(sppp_locked(sp));
1994
1995 if (debug)
1996 log(LOG_DEBUG, "%s: %s open(%s)\n",
1997 ifp->if_xname, cp->name,
1998 sppp_state_name(sp->state[cp->protoidx]));
1999
2000 switch (sp->state[cp->protoidx]) {
2001 case STATE_INITIAL:
2002 sppp_cp_change_state(cp, sp, STATE_STARTING);
2003 (cp->tls)(sp);
2004 break;
2005 case STATE_STARTING:
2006 break;
2007 case STATE_CLOSED:
2008 sp->rst_counter[cp->protoidx] = sp->lcp.max_configure;
2009 (cp->scr)(sp);
2010 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
2011 break;
2012 case STATE_STOPPED:
2013 case STATE_STOPPING:
2014 case STATE_REQ_SENT:
2015 case STATE_ACK_RCVD:
2016 case STATE_ACK_SENT:
2017 case STATE_OPENED:
2018 break;
2019 case STATE_CLOSING:
2020 sppp_cp_change_state(cp, sp, STATE_STOPPING);
2021 break;
2022 }
2023 }
2024
2025
2026 static void
2027 sppp_close_event(const struct cp *cp, struct sppp *sp)
2028 {
2029 STDDCL;
2030
2031 KASSERT(sppp_locked(sp));
2032
2033 if (debug)
2034 log(LOG_DEBUG, "%s: %s close(%s)\n",
2035 ifp->if_xname, cp->name,
2036 sppp_state_name(sp->state[cp->protoidx]));
2037
2038 switch (sp->state[cp->protoidx]) {
2039 case STATE_INITIAL:
2040 case STATE_CLOSED:
2041 case STATE_CLOSING:
2042 break;
2043 case STATE_STARTING:
2044 sppp_cp_change_state(cp, sp, STATE_INITIAL);
2045 (cp->tlf)(sp);
2046 break;
2047 case STATE_STOPPED:
2048 sppp_cp_change_state(cp, sp, STATE_CLOSED);
2049 break;
2050 case STATE_STOPPING:
2051 sppp_cp_change_state(cp, sp, STATE_CLOSING);
2052 break;
2053 case STATE_OPENED:
2054 (cp->tld)(sp);
2055 /* fall through */
2056 case STATE_REQ_SENT:
2057 case STATE_ACK_RCVD:
2058 case STATE_ACK_SENT:
2059 sp->rst_counter[cp->protoidx] = sp->lcp.max_terminate;
2060 sppp_cp_send(sp, cp->proto, TERM_REQ,
2061 ++sp->pp_seq[cp->protoidx], 0, 0);
2062 sppp_cp_change_state(cp, sp, STATE_CLOSING);
2063 break;
2064 }
2065 }
2066
2067 static void
2068 sppp_to_event(const struct cp *cp, struct sppp *sp)
2069 {
2070 STDDCL;
2071 int s;
2072
2073 KASSERT(sppp_locked(sp));
2074
2075 s = splnet();
2076
2077 if (debug)
2078 log(LOG_DEBUG, "%s: %s TO(%s) rst_counter = %d\n",
2079 ifp->if_xname, cp->name,
2080 sppp_state_name(sp->state[cp->protoidx]),
2081 sp->rst_counter[cp->protoidx]);
2082
2083 if (--sp->rst_counter[cp->protoidx] < 0)
2084 /* TO- event */
2085 switch (sp->state[cp->protoidx]) {
2086 case STATE_CLOSING:
2087 (cp->tlf)(sp);
2088 sppp_cp_change_state(cp, sp, STATE_CLOSED);
2089 sppp_lcp_check_and_close(sp);
2090 break;
2091 case STATE_STOPPING:
2092 (cp->tlf)(sp);
2093 sppp_cp_change_state(cp, sp, STATE_STOPPED);
2094 sppp_lcp_check_and_close(sp);
2095 break;
2096 case STATE_REQ_SENT:
2097 case STATE_ACK_RCVD:
2098 case STATE_ACK_SENT:
2099 (cp->tlf)(sp);
2100 sppp_cp_change_state(cp, sp, STATE_STOPPED);
2101 sppp_lcp_check_and_close(sp);
2102 break;
2103 }
2104 else
2105 /* TO+ event */
2106 switch (sp->state[cp->protoidx]) {
2107 case STATE_CLOSING:
2108 case STATE_STOPPING:
2109 sppp_cp_send(sp, cp->proto, TERM_REQ,
2110 ++sp->pp_seq[cp->protoidx], 0, 0);
2111 callout_reset(&sp->ch[cp->protoidx], sp->lcp.timeout,
2112 cp->TO, sp);
2113 break;
2114 case STATE_REQ_SENT:
2115 case STATE_ACK_RCVD:
2116 (cp->scr)(sp);
2117 /* sppp_cp_change_state() will restart the timer */
2118 sppp_cp_change_state(cp, sp, STATE_REQ_SENT);
2119 break;
2120 case STATE_ACK_SENT:
2121 (cp->scr)(sp);
2122 callout_reset(&sp->ch[cp->protoidx], sp->lcp.timeout,
2123 cp->TO, sp);
2124 break;
2125 }
2126
2127 splx(s);
2128 }
2129
2130 /*
2131 * Change the state of a control protocol in the state automaton.
2132 * Takes care of starting/stopping the restart timer.
2133 */
2134 void
2135 sppp_cp_change_state(const struct cp *cp, struct sppp *sp, int newstate)
2136 {
2137 KASSERT(sppp_locked(sp));
2138
2139 sp->state[cp->protoidx] = newstate;
2140 callout_stop(&sp->ch[cp->protoidx]);
2141 switch (newstate) {
2142 case STATE_INITIAL:
2143 case STATE_STARTING:
2144 case STATE_CLOSED:
2145 case STATE_STOPPED:
2146 case STATE_OPENED:
2147 break;
2148 case STATE_CLOSING:
2149 case STATE_STOPPING:
2150 case STATE_REQ_SENT:
2151 case STATE_ACK_RCVD:
2152 case STATE_ACK_SENT:
2153 callout_reset(&sp->ch[cp->protoidx], sp->lcp.timeout,
2154 cp->TO, sp);
2155 break;
2156 }
2157 }
2158
2159 /*
2160 *--------------------------------------------------------------------------*
2161 * *
2162 * The LCP implementation. *
2163 * *
2164 *--------------------------------------------------------------------------*
2165 */
2166 static void
2167 sppp_lcp_init(struct sppp *sp)
2168 {
2169 sppp_lock_enter(sp);
2170 sp->lcp.opts = (1 << LCP_OPT_MAGIC);
2171 sp->lcp.magic = 0;
2172 sp->state[IDX_LCP] = STATE_INITIAL;
2173 sp->fail_counter[IDX_LCP] = 0;
2174 sp->pp_seq[IDX_LCP] = 0;
2175 sp->pp_rseq[IDX_LCP] = 0;
2176 sp->lcp.protos = 0;
2177
2178 /*
2179 * Initialize counters and timeout values. Note that we don't
2180 * use the 3 seconds suggested in RFC 1661 since we are likely
2181 * running on a fast link. XXX We should probably implement
2182 * the exponential backoff option. Note that these values are
2183 * relevant for all control protocols, not just LCP only.
2184 */
2185 sp->lcp.timeout = 1 * hz;
2186 sp->lcp.max_terminate = 2;
2187 sp->lcp.max_configure = 10;
2188 sp->lcp.max_failure = 10;
2189 callout_init(&sp->ch[IDX_LCP], 0);
2190 sppp_lock_exit(sp);
2191 }
2192
2193 static void
2194 sppp_lcp_up(struct sppp *sp)
2195 {
2196 STDDCL;
2197
2198 KASSERT(sppp_locked(sp));
2199
2200 /* Initialize activity timestamp: opening a connection is an activity */
2201 sp->pp_last_receive = sp->pp_last_activity = time_uptime;
2202
2203 /*
2204 * If this interface is passive or dial-on-demand, and we are
2205 * still in Initial state, it means we've got an incoming
2206 * call. Activate the interface.
2207 */
2208 if ((ifp->if_flags & (IFF_AUTO | IFF_PASSIVE)) != 0) {
2209 if (debug)
2210 log(LOG_DEBUG,
2211 "%s: Up event", ifp->if_xname);
2212 ifp->if_flags |= IFF_RUNNING;
2213 if (sp->state[IDX_LCP] == STATE_INITIAL) {
2214 if (debug)
2215 addlog("(incoming call)\n");
2216 sp->pp_flags |= PP_CALLIN;
2217 lcp.Open(sp);
2218 } else if (debug)
2219 addlog("\n");
2220 } else if ((ifp->if_flags & (IFF_AUTO | IFF_PASSIVE)) == 0 &&
2221 (sp->state[IDX_LCP] == STATE_INITIAL)) {
2222 ifp->if_flags |= IFF_RUNNING;
2223 lcp.Open(sp);
2224 }
2225
2226 sppp_up_event(&lcp, sp);
2227 }
2228
2229 static void
2230 sppp_lcp_down(struct sppp *sp)
2231 {
2232 STDDCL;
2233
2234 KASSERT(sppp_locked(sp));
2235
2236 sppp_down_event(&lcp, sp);
2237
2238 /*
2239 * If this is neither a dial-on-demand nor a passive
2240 * interface, simulate an ``ifconfig down'' action, so the
2241 * administrator can force a redial by another ``ifconfig
2242 * up''. XXX For leased line operation, should we immediately
2243 * try to reopen the connection here?
2244 */
2245 if ((ifp->if_flags & (IFF_AUTO | IFF_PASSIVE)) == 0) {
2246 if (debug)
2247 log(LOG_INFO,
2248 "%s: Down event (carrier loss), taking interface down.\n",
2249 ifp->if_xname);
2250 sppp_lock_exit(sp);
2251 if_down(ifp);
2252 sppp_lock_enter(sp);
2253 } else {
2254 if (debug)
2255 log(LOG_DEBUG,
2256 "%s: Down event (carrier loss)\n",
2257 ifp->if_xname);
2258 }
2259 sp->pp_flags &= ~PP_CALLIN;
2260 if (sp->state[IDX_LCP] != STATE_INITIAL)
2261 lcp.Close(sp);
2262 ifp->if_flags &= ~IFF_RUNNING;
2263 }
2264
2265 static void
2266 sppp_lcp_open(struct sppp *sp)
2267 {
2268 KASSERT(sppp_locked(sp));
2269
2270 if (sp->pp_if.if_mtu < PP_MTU) {
2271 sp->lcp.mru = sp->pp_if.if_mtu;
2272 sp->lcp.opts |= (1 << LCP_OPT_MRU);
2273 } else
2274 sp->lcp.mru = PP_MTU;
2275 sp->lcp.their_mru = PP_MTU;
2276
2277 /*
2278 * If we are authenticator, negotiate LCP_AUTH
2279 */
2280 if (sp->hisauth.proto != 0)
2281 sp->lcp.opts |= (1 << LCP_OPT_AUTH_PROTO);
2282 else
2283 sp->lcp.opts &= ~(1 << LCP_OPT_AUTH_PROTO);
2284 sp->pp_flags &= ~PP_NEEDAUTH;
2285 sppp_open_event(&lcp, sp);
2286 }
2287
2288 static void
2289 sppp_lcp_close(struct sppp *sp)
2290 {
2291 KASSERT(sppp_locked(sp));
2292 sppp_close_event(&lcp, sp);
2293 }
2294
2295 static void
2296 sppp_lcp_TO(void *cookie)
2297 {
2298 struct sppp *sp = (struct sppp*)cookie;
2299 KASSERT(!sppp_locked(sp));
2300
2301 sppp_lock_enter(sp);
2302 sppp_to_event(&lcp, sp);
2303 sppp_lock_exit(sp);
2304 }
2305
2306 /*
2307 * Analyze a configure request. Return true if it was agreeable, and
2308 * caused action sca, false if it has been rejected or nak'ed, and
2309 * caused action scn. (The return value is used to make the state
2310 * transition decision in the state automaton.)
2311 */
2312 static int
2313 sppp_lcp_RCR(struct sppp *sp, struct lcp_header *h, int len)
2314 {
2315 STDDCL;
2316 u_char *buf, *r, *p, l, blen;
2317 int origlen, rlen;
2318 uint32_t nmagic;
2319 u_short authproto;
2320
2321 KASSERT(sppp_locked(sp));
2322
2323 len -= 4;
2324 origlen = len;
2325 buf = r = malloc (blen = len, M_TEMP, M_NOWAIT);
2326 if (! buf)
2327 return (0);
2328
2329 if (debug)
2330 log(LOG_DEBUG, "%s: lcp parse opts:",
2331 ifp->if_xname);
2332
2333 /* pass 1: check for things that need to be rejected */
2334 p = (void *)(h + 1);
2335 for (rlen = 0; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
2336 /* Sanity check option length */
2337 if (l > len) {
2338 /*
2339 * Malicious option - drop immediately.
2340 * XXX Maybe we should just RXJ it?
2341 */
2342 addlog("%s: received malicious LCP option 0x%02x, "
2343 "length 0x%02x, (len: 0x%02x) dropping.\n", ifp->if_xname,
2344 p[0], l, len);
2345 goto drop;
2346 }
2347 if (debug)
2348 addlog(" %s", sppp_lcp_opt_name(*p));
2349 switch (*p) {
2350 case LCP_OPT_MAGIC:
2351 /* Magic number. */
2352 /* fall through, both are same length */
2353 case LCP_OPT_ASYNC_MAP:
2354 /* Async control character map. */
2355 if (len >= 6 || l == 6)
2356 continue;
2357 if (debug)
2358 addlog(" [invalid]");
2359 break;
2360 case LCP_OPT_MRU:
2361 /* Maximum receive unit. */
2362 if (len >= 4 && l == 4)
2363 continue;
2364 if (debug)
2365 addlog(" [invalid]");
2366 break;
2367 case LCP_OPT_AUTH_PROTO:
2368 if (len < 4) {
2369 if (debug)
2370 addlog(" [invalid]");
2371 break;
2372 }
2373 authproto = (p[2] << 8) + p[3];
2374 if (authproto == PPP_CHAP && l != 5) {
2375 if (debug)
2376 addlog(" [invalid chap len]");
2377 break;
2378 }
2379 if (sp->myauth.proto == 0) {
2380 /* we are not configured to do auth */
2381 if (debug)
2382 addlog(" [not configured]");
2383 break;
2384 }
2385 /*
2386 * Remote want us to authenticate, remember this,
2387 * so we stay in SPPP_PHASE_AUTHENTICATE after LCP got
2388 * up.
2389 */
2390 sp->pp_flags |= PP_NEEDAUTH;
2391 continue;
2392 default:
2393 /* Others not supported. */
2394 if (debug)
2395 addlog(" [rej]");
2396 break;
2397 }
2398 if (rlen + l > blen) {
2399 if (debug)
2400 addlog(" [overflow]");
2401 continue;
2402 }
2403 /* Add the option to rejected list. */
2404 memcpy(r, p, l);
2405 r += l;
2406 rlen += l;
2407 }
2408 if (rlen) {
2409 if (debug)
2410 addlog(" send conf-rej\n");
2411 sppp_cp_send(sp, PPP_LCP, CONF_REJ, h->ident, rlen, buf);
2412 goto end;
2413 } else if (debug)
2414 addlog("\n");
2415
2416 /*
2417 * pass 2: check for option values that are unacceptable and
2418 * thus require to be nak'ed.
2419 */
2420 if (debug)
2421 log(LOG_DEBUG, "%s: lcp parse opt values: ",
2422 ifp->if_xname);
2423
2424 p = (void *)(h + 1);
2425 len = origlen;
2426 for (rlen = 0; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
2427 if (debug)
2428 addlog(" %s", sppp_lcp_opt_name(*p));
2429 switch (*p) {
2430 case LCP_OPT_MAGIC:
2431 /* Magic number -- extract. */
2432 nmagic = (uint32_t)p[2] << 24 |
2433 (uint32_t)p[3] << 16 | p[4] << 8 | p[5];
2434 if (nmagic != sp->lcp.magic) {
2435 if (debug)
2436 addlog(" 0x%x", nmagic);
2437 continue;
2438 }
2439 /*
2440 * Local and remote magics equal -- loopback?
2441 */
2442 if (sp->pp_loopcnt >= LOOPALIVECNT*5) {
2443 printf ("%s: loopback\n",
2444 ifp->if_xname);
2445 sp->pp_loopcnt = 0;
2446 if (ifp->if_flags & IFF_UP) {
2447 sppp_lock_exit(sp);
2448 if_down(ifp);
2449 sppp_lock_enter(sp);
2450 IF_PURGE(&sp->pp_cpq);
2451 /* XXX ? */
2452 lcp.Down(sp);
2453 lcp.Up(sp);
2454 }
2455 } else if (debug)
2456 addlog(" [glitch]");
2457 ++sp->pp_loopcnt;
2458 /*
2459 * We negate our magic here, and NAK it. If
2460 * we see it later in an NAK packet, we
2461 * suggest a new one.
2462 */
2463 nmagic = ~sp->lcp.magic;
2464 /* Gonna NAK it. */
2465 p[2] = nmagic >> 24;
2466 p[3] = nmagic >> 16;
2467 p[4] = nmagic >> 8;
2468 p[5] = nmagic;
2469 break;
2470
2471 case LCP_OPT_ASYNC_MAP:
2472 /*
2473 * Async control character map -- just ignore it.
2474 *
2475 * Quote from RFC 1662, chapter 6:
2476 * To enable this functionality, synchronous PPP
2477 * implementations MUST always respond to the
2478 * Async-Control-Character-Map Configuration
2479 * Option with the LCP Configure-Ack. However,
2480 * acceptance of the Configuration Option does
2481 * not imply that the synchronous implementation
2482 * will do any ACCM mapping. Instead, all such
2483 * octet mapping will be performed by the
2484 * asynchronous-to-synchronous converter.
2485 */
2486 continue;
2487
2488 case LCP_OPT_MRU:
2489 /*
2490 * Maximum receive unit. Always agreeable,
2491 * but ignored by now.
2492 */
2493 sp->lcp.their_mru = p[2] * 256 + p[3];
2494 if (debug)
2495 addlog(" %ld", sp->lcp.their_mru);
2496 continue;
2497
2498 case LCP_OPT_AUTH_PROTO:
2499 authproto = (p[2] << 8) + p[3];
2500 if (sp->myauth.proto != authproto) {
2501 /* not agreed, nak */
2502 if (debug)
2503 addlog(" [mine %s != his %s]",
2504 sppp_proto_name(sp->myauth.proto),
2505 sppp_proto_name(authproto));
2506 p[2] = sp->myauth.proto >> 8;
2507 p[3] = sp->myauth.proto;
2508 break;
2509 }
2510 if (authproto == PPP_CHAP && p[4] != CHAP_MD5) {
2511 if (debug)
2512 addlog(" [chap not MD5]");
2513 p[4] = CHAP_MD5;
2514 break;
2515 }
2516 continue;
2517 }
2518 if (rlen + l > blen) {
2519 if (debug)
2520 addlog(" [overflow]");
2521 continue;
2522 }
2523 /* Add the option to nak'ed list. */
2524 memcpy(r, p, l);
2525 r += l;
2526 rlen += l;
2527 }
2528 if (rlen) {
2529 if (++sp->fail_counter[IDX_LCP] >= sp->lcp.max_failure) {
2530 if (debug)
2531 addlog(" max_failure (%d) exceeded, "
2532 "send conf-rej\n",
2533 sp->lcp.max_failure);
2534 sppp_cp_send(sp, PPP_LCP, CONF_REJ, h->ident, rlen, buf);
2535 } else {
2536 if (debug)
2537 addlog(" send conf-nak\n");
2538 sppp_cp_send(sp, PPP_LCP, CONF_NAK, h->ident, rlen, buf);
2539 }
2540 goto end;
2541 } else {
2542 if (debug)
2543 addlog(" send conf-ack\n");
2544 sp->fail_counter[IDX_LCP] = 0;
2545 sp->pp_loopcnt = 0;
2546 sppp_cp_send(sp, PPP_LCP, CONF_ACK, h->ident, origlen, h + 1);
2547 }
2548
2549 end:
2550 free(buf, M_TEMP);
2551 return (rlen == 0);
2552
2553 drop:
2554 free(buf, M_TEMP);
2555 return -1;
2556 }
2557
2558 /*
2559 * Analyze the LCP Configure-Reject option list, and adjust our
2560 * negotiation.
2561 */
2562 static void
2563 sppp_lcp_RCN_rej(struct sppp *sp, struct lcp_header *h, int len)
2564 {
2565 STDDCL;
2566 u_char *buf, *p, l;
2567
2568 KASSERT(sppp_locked(sp));
2569
2570 len -= 4;
2571 buf = malloc (len, M_TEMP, M_NOWAIT);
2572 if (!buf)
2573 return;
2574
2575 if (debug)
2576 log(LOG_DEBUG, "%s: lcp rej opts:",
2577 ifp->if_xname);
2578
2579 p = (void *)(h + 1);
2580 for (; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
2581 /* Sanity check option length */
2582 if (l > len) {
2583 /*
2584 * Malicious option - drop immediately.
2585 * XXX Maybe we should just RXJ it?
2586 */
2587 addlog("%s: received malicious LCP option, "
2588 "dropping.\n", ifp->if_xname);
2589 goto drop;
2590 }
2591 if (debug)
2592 addlog(" %s", sppp_lcp_opt_name(*p));
2593 switch (*p) {
2594 case LCP_OPT_MAGIC:
2595 /* Magic number -- can't use it, use 0 */
2596 sp->lcp.opts &= ~(1 << LCP_OPT_MAGIC);
2597 sp->lcp.magic = 0;
2598 break;
2599 case LCP_OPT_MRU:
2600 /*
2601 * We try to negotiate a lower MRU if the underlying
2602 * link's MTU is less than PP_MTU (e.g. PPPoE). If the
2603 * peer rejects this lower rate, fallback to the
2604 * default.
2605 */
2606 if (debug) {
2607 addlog("%s: warning: peer rejected our MRU of "
2608 "%ld bytes. Defaulting to %d bytes\n",
2609 ifp->if_xname, sp->lcp.mru, PP_MTU);
2610 }
2611 sp->lcp.opts &= ~(1 << LCP_OPT_MRU);
2612 sp->lcp.mru = PP_MTU;
2613 break;
2614 case LCP_OPT_AUTH_PROTO:
2615 /*
2616 * Peer doesn't want to authenticate himself,
2617 * deny unless this is a dialout call, and
2618 * SPPP_AUTHFLAG_NOCALLOUT is set.
2619 */
2620 if ((sp->pp_flags & PP_CALLIN) == 0 &&
2621 (sp->hisauth.flags & SPPP_AUTHFLAG_NOCALLOUT) != 0) {
2622 if (debug)
2623 addlog(" [don't insist on auth "
2624 "for callout]");
2625 sp->lcp.opts &= ~(1 << LCP_OPT_AUTH_PROTO);
2626 break;
2627 }
2628 if (debug)
2629 addlog("[access denied]\n");
2630 lcp.Close(sp);
2631 break;
2632 }
2633 }
2634 if (debug)
2635 addlog("\n");
2636 drop:
2637 free(buf, M_TEMP);
2638 return;
2639 }
2640
2641 /*
2642 * Analyze the LCP Configure-NAK option list, and adjust our
2643 * negotiation.
2644 */
2645 static void
2646 sppp_lcp_RCN_nak(struct sppp *sp, struct lcp_header *h, int len)
2647 {
2648 STDDCL;
2649 u_char *buf, *p, l, blen;
2650 uint32_t magic;
2651
2652 KASSERT(sppp_locked(sp));
2653
2654 len -= 4;
2655 buf = malloc (blen = len, M_TEMP, M_NOWAIT);
2656 if (!buf)
2657 return;
2658
2659 if (debug)
2660 log(LOG_DEBUG, "%s: lcp nak opts:",
2661 ifp->if_xname);
2662
2663 p = (void *)(h + 1);
2664 for (; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
2665 /* Sanity check option length */
2666 if (l > len) {
2667 /*
2668 * Malicious option - drop immediately.
2669 * XXX Maybe we should just RXJ it?
2670 */
2671 addlog("%s: received malicious LCP option, "
2672 "dropping.\n", ifp->if_xname);
2673 goto drop;
2674 }
2675 if (debug)
2676 addlog(" %s", sppp_lcp_opt_name(*p));
2677 switch (*p) {
2678 case LCP_OPT_MAGIC:
2679 /* Magic number -- renegotiate */
2680 if ((sp->lcp.opts & (1 << LCP_OPT_MAGIC)) &&
2681 len >= 6 && l == 6) {
2682 magic = (uint32_t)p[2] << 24 |
2683 (uint32_t)p[3] << 16 | p[4] << 8 | p[5];
2684 /*
2685 * If the remote magic is our negated one,
2686 * this looks like a loopback problem.
2687 * Suggest a new magic to make sure.
2688 */
2689 if (magic == ~sp->lcp.magic) {
2690 if (debug)
2691 addlog(" magic glitch");
2692 sp->lcp.magic = cprng_fast32();
2693 } else {
2694 sp->lcp.magic = magic;
2695 if (debug)
2696 addlog(" %d", magic);
2697 }
2698 }
2699 break;
2700 case LCP_OPT_MRU:
2701 /*
2702 * Peer wants to advise us to negotiate an MRU.
2703 * Agree on it if it's reasonable, or use
2704 * default otherwise.
2705 */
2706 if (len >= 4 && l == 4) {
2707 u_int mru = p[2] * 256 + p[3];
2708 if (debug)
2709 addlog(" %d", mru);
2710 if (mru < PPP_MINMRU || mru > sp->pp_if.if_mtu)
2711 mru = sp->pp_if.if_mtu;
2712 sp->lcp.mru = mru;
2713 sp->lcp.opts |= (1 << LCP_OPT_MRU);
2714 }
2715 break;
2716 case LCP_OPT_AUTH_PROTO:
2717 /*
2718 * Peer doesn't like our authentication method,
2719 * deny.
2720 */
2721 if (debug)
2722 addlog("[access denied]\n");
2723 lcp.Close(sp);
2724 break;
2725 }
2726 }
2727 if (debug)
2728 addlog("\n");
2729 drop:
2730 free(buf, M_TEMP);
2731 return;
2732 }
2733
2734 static void
2735 sppp_lcp_tlu(struct sppp *sp)
2736 {
2737 struct ifnet *ifp = &sp->pp_if;
2738 int i;
2739 uint32_t mask;
2740
2741 KASSERT(sppp_locked(sp));
2742
2743 /* XXX ? */
2744 if (! (ifp->if_flags & IFF_UP) &&
2745 (ifp->if_flags & IFF_RUNNING)) {
2746 /* Coming out of loopback mode. */
2747 sppp_lock_exit(sp);
2748 if_up(ifp);
2749 sppp_lock_enter(sp);
2750 }
2751
2752 for (i = 0; i < IDX_COUNT; i++)
2753 if ((cps[i])->flags & CP_QUAL)
2754 (cps[i])->Open(sp);
2755
2756 if ((sp->lcp.opts & (1 << LCP_OPT_AUTH_PROTO)) != 0 ||
2757 (sp->pp_flags & PP_NEEDAUTH) != 0)
2758 sppp_change_phase(sp, SPPP_PHASE_AUTHENTICATE);
2759 else
2760 sppp_change_phase(sp, SPPP_PHASE_NETWORK);
2761
2762 /*
2763 * Open all authentication protocols. This is even required
2764 * if we already proceeded to network phase, since it might be
2765 * that remote wants us to authenticate, so we might have to
2766 * send a PAP request. Undesired authentication protocols
2767 * don't do anything when they get an Open event.
2768 */
2769 for (i = 0; i < IDX_COUNT; i++)
2770 if ((cps[i])->flags & CP_AUTH)
2771 (cps[i])->Open(sp);
2772
2773 if (sp->pp_phase == SPPP_PHASE_NETWORK) {
2774 /* Notify all NCPs. */
2775 for (i = 0; i < IDX_COUNT; i++)
2776 if ((cps[i])->flags & CP_NCP)
2777 (cps[i])->Open(sp);
2778 }
2779
2780 /* Send Up events to all started protos. */
2781 for (i = 0, mask = 1; i < IDX_COUNT; i++, mask <<= 1) {
2782 if ((sp->lcp.protos & mask) && ((cps[i])->flags & CP_LCP) == 0) {
2783 (cps[i])->Up(sp);
2784 }
2785 }
2786
2787 /* notify low-level driver of state change */
2788 if (sp->pp_chg)
2789 sp->pp_chg(sp, (int)sp->pp_phase);
2790
2791 if (sp->pp_phase == SPPP_PHASE_NETWORK)
2792 /* if no NCP is starting, close down */
2793 sppp_lcp_check_and_close(sp);
2794 }
2795
2796 static void
2797 sppp_lcp_tld(struct sppp *sp)
2798 {
2799 int i;
2800 uint32_t mask;
2801
2802 KASSERT(sppp_locked(sp));
2803
2804 sppp_change_phase(sp, SPPP_PHASE_TERMINATE);
2805
2806 /*
2807 * Take upper layers down. We send the Down event first and
2808 * the Close second to prevent the upper layers from sending
2809 * ``a flurry of terminate-request packets'', as the RFC
2810 * describes it.
2811 */
2812 for (i = 0, mask = 1; i < IDX_COUNT; i++, mask <<= 1) {
2813 if ((sp->lcp.protos & mask) && ((cps[i])->flags & CP_LCP) == 0) {
2814 (cps[i])->Down(sp);
2815 (cps[i])->Close(sp);
2816 }
2817 }
2818 }
2819
2820 static void
2821 sppp_lcp_tls(struct sppp *sp)
2822 {
2823
2824 KASSERT(sppp_locked(sp));
2825
2826 if (sp->pp_max_auth_fail != 0 && sp->pp_auth_failures >= sp->pp_max_auth_fail) {
2827 printf("%s: authentication failed %d times, not retrying again\n",
2828 sp->pp_if.if_xname, sp->pp_auth_failures);
2829 sppp_lock_exit(sp);
2830 if_down(&sp->pp_if);
2831 sppp_lock_enter(sp);
2832 return;
2833 }
2834
2835 sppp_change_phase(sp, SPPP_PHASE_ESTABLISH);
2836
2837 /* Notify lower layer if desired. */
2838 if (sp->pp_tls)
2839 (sp->pp_tls)(sp);
2840 }
2841
2842 static void
2843 sppp_lcp_tlf(struct sppp *sp)
2844 {
2845 KASSERT(sppp_locked(sp));
2846
2847 sppp_change_phase(sp, SPPP_PHASE_DEAD);
2848
2849 /* Notify lower layer if desired. */
2850 if (sp->pp_tlf)
2851 (sp->pp_tlf)(sp);
2852 }
2853
2854 static void
2855 sppp_lcp_scr(struct sppp *sp)
2856 {
2857 char opt[6 /* magicnum */ + 4 /* mru */ + 5 /* chap */];
2858 int i = 0;
2859 u_short authproto;
2860
2861 KASSERT(sppp_locked(sp));
2862
2863 if (sp->lcp.opts & (1 << LCP_OPT_MAGIC)) {
2864 if (! sp->lcp.magic)
2865 sp->lcp.magic = cprng_fast32();
2866 opt[i++] = LCP_OPT_MAGIC;
2867 opt[i++] = 6;
2868 opt[i++] = sp->lcp.magic >> 24;
2869 opt[i++] = sp->lcp.magic >> 16;
2870 opt[i++] = sp->lcp.magic >> 8;
2871 opt[i++] = sp->lcp.magic;
2872 }
2873
2874 if (sp->lcp.opts & (1 << LCP_OPT_MRU)) {
2875 opt[i++] = LCP_OPT_MRU;
2876 opt[i++] = 4;
2877 opt[i++] = sp->lcp.mru >> 8;
2878 opt[i++] = sp->lcp.mru;
2879 }
2880
2881 if (sp->lcp.opts & (1 << LCP_OPT_AUTH_PROTO)) {
2882 authproto = sp->hisauth.proto;
2883 opt[i++] = LCP_OPT_AUTH_PROTO;
2884 opt[i++] = authproto == PPP_CHAP? 5: 4;
2885 opt[i++] = authproto >> 8;
2886 opt[i++] = authproto;
2887 if (authproto == PPP_CHAP)
2888 opt[i++] = CHAP_MD5;
2889 }
2890
2891 sp->confid[IDX_LCP] = ++sp->pp_seq[IDX_LCP];
2892 sppp_cp_send(sp, PPP_LCP, CONF_REQ, sp->confid[IDX_LCP], i, &opt);
2893 }
2894
2895 /*
2896 * Check the open NCPs, return true if at least one NCP is open.
2897 */
2898 static int
2899 sppp_ncp_check(struct sppp *sp)
2900 {
2901 int i, mask;
2902
2903 for (i = 0, mask = 1; i < IDX_COUNT; i++, mask <<= 1)
2904 if ((sp->lcp.protos & mask) && (cps[i])->flags & CP_NCP)
2905 return 1;
2906 return 0;
2907 }
2908
2909 /*
2910 * Re-check the open NCPs and see if we should terminate the link.
2911 * Called by the NCPs during their tlf action handling.
2912 */
2913 static void
2914 sppp_lcp_check_and_close(struct sppp *sp)
2915 {
2916 KASSERT(sppp_locked(sp));
2917
2918 if (sp->pp_phase < SPPP_PHASE_NETWORK)
2919 /* don't bother, we are already going down */
2920 return;
2921
2922 if (sppp_ncp_check(sp))
2923 return;
2924 lcp.Close(sp);
2925 }
2926
2927
2928 /*
2929 *--------------------------------------------------------------------------*
2930 * *
2931 * The IPCP implementation. *
2932 * *
2933 *--------------------------------------------------------------------------*
2934 */
2935
2936 static void
2937 sppp_ipcp_init(struct sppp *sp)
2938 {
2939 int error;
2940
2941 sppp_lock_enter(sp);
2942 sp->ipcp.opts = 0;
2943 sp->ipcp.flags = 0;
2944 sp->state[IDX_IPCP] = STATE_INITIAL;
2945 sp->fail_counter[IDX_IPCP] = 0;
2946 sp->pp_seq[IDX_IPCP] = 0;
2947 sp->pp_rseq[IDX_IPCP] = 0;
2948 callout_init(&sp->ch[IDX_IPCP], 0);
2949
2950 error = workqueue_create(&sp->ipcp.update_addrs_wq, "ipcp_update_addrs",
2951 sppp_update_ip_addrs_work, sp, PRI_SOFTNET, IPL_NET, 0);
2952 if (error)
2953 panic("%s: update_addrs workqueue_create failed (%d)\n",
2954 __func__, error);
2955 sp->ipcp.update_addrs_q = pcq_create(IPCP_UPDATE_LIMIT, KM_SLEEP);
2956
2957 sp->ipcp.update_addrs_enqueued = 0;
2958 sppp_lock_exit(sp);
2959 }
2960
2961 static void
2962 sppp_ipcp_up(struct sppp *sp)
2963 {
2964 KASSERT(sppp_locked(sp));
2965 sppp_up_event(&ipcp, sp);
2966 }
2967
2968 static void
2969 sppp_ipcp_down(struct sppp *sp)
2970 {
2971 KASSERT(sppp_locked(sp));
2972 sppp_down_event(&ipcp, sp);
2973 }
2974
2975 static void
2976 sppp_ipcp_open(struct sppp *sp)
2977 {
2978 STDDCL;
2979 uint32_t myaddr, hisaddr;
2980
2981 KASSERT(sppp_locked(sp));
2982
2983 sp->ipcp.flags &= ~(IPCP_HISADDR_SEEN|IPCP_MYADDR_SEEN|IPCP_MYADDR_DYN|IPCP_HISADDR_DYN);
2984 sp->ipcp.req_myaddr = 0;
2985 sp->ipcp.req_hisaddr = 0;
2986 memset(&sp->dns_addrs, 0, sizeof sp->dns_addrs);
2987
2988 #ifdef INET
2989 sppp_get_ip_addrs(sp, &myaddr, &hisaddr, 0);
2990 #else
2991 myaddr = hisaddr = 0;
2992 #endif
2993 /*
2994 * If we don't have his address, this probably means our
2995 * interface doesn't want to talk IP at all. (This could
2996 * be the case if somebody wants to speak only IPX, for
2997 * example.) Don't open IPCP in this case.
2998 */
2999 if (hisaddr == 0) {
3000 /* XXX this message should go away */
3001 if (debug)
3002 log(LOG_DEBUG, "%s: ipcp_open(): no IP interface\n",
3003 ifp->if_xname);
3004 return;
3005 }
3006
3007 if (myaddr == 0) {
3008 /*
3009 * I don't have an assigned address, so i need to
3010 * negotiate my address.
3011 */
3012 sp->ipcp.flags |= IPCP_MYADDR_DYN;
3013 sp->ipcp.opts |= (1 << IPCP_OPT_ADDRESS);
3014 }
3015 if (hisaddr == 1) {
3016 /*
3017 * XXX - remove this hack!
3018 * remote has no valid address, we need to get one assigned.
3019 */
3020 sp->ipcp.flags |= IPCP_HISADDR_DYN;
3021 }
3022 sppp_open_event(&ipcp, sp);
3023 }
3024
3025 static void
3026 sppp_ipcp_close(struct sppp *sp)
3027 {
3028
3029 KASSERT(sppp_locked(sp));
3030 sppp_close_event(&ipcp, sp);
3031
3032 #ifdef INET
3033 if (sp->ipcp.flags & (IPCP_MYADDR_DYN|IPCP_HISADDR_DYN))
3034 /*
3035 * Some address was dynamic, clear it again.
3036 */
3037 sppp_clear_ip_addrs(sp);
3038 #endif
3039 }
3040
3041 static void
3042 sppp_ipcp_TO(void *cookie)
3043 {
3044 struct sppp *sp = cookie;
3045
3046 KASSERT(!sppp_locked(sp));
3047
3048 sppp_lock_enter(sp);
3049 sppp_to_event(&ipcp, (struct sppp *)cookie);
3050 sppp_lock_exit(sp);
3051 }
3052
3053 /*
3054 * Analyze a configure request. Return true if it was agreeable, and
3055 * caused action sca, false if it has been rejected or nak'ed, and
3056 * caused action scn. (The return value is used to make the state
3057 * transition decision in the state automaton.)
3058 */
3059 static int
3060 sppp_ipcp_RCR(struct sppp *sp, struct lcp_header *h, int len)
3061 {
3062 u_char *buf, *r, *p, l, blen;
3063 struct ifnet *ifp = &sp->pp_if;
3064 int rlen, origlen, debug = ifp->if_flags & IFF_DEBUG;
3065 uint32_t hisaddr, desiredaddr;
3066
3067 KASSERT(sppp_locked(sp));
3068 len -= 4;
3069 origlen = len;
3070 /*
3071 * Make sure to allocate a buf that can at least hold a
3072 * conf-nak with an `address' option. We might need it below.
3073 */
3074 blen = len < 6 ? 6 : len;
3075 buf = r = malloc (blen, M_TEMP, M_NOWAIT);
3076 if (! buf)
3077 return (0);
3078
3079 /* pass 1: see if we can recognize them */
3080 if (debug)
3081 log(LOG_DEBUG, "%s: ipcp parse opts:",
3082 ifp->if_xname);
3083 p = (void *)(h + 1);
3084 for (rlen = 0; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3085 /* Sanity check option length */
3086 if (l > len) {
3087 /* XXX should we just RXJ? */
3088 addlog("%s: malicious IPCP option received, dropping\n",
3089 ifp->if_xname);
3090 goto drop;
3091 }
3092 if (debug)
3093 addlog(" %s", sppp_ipcp_opt_name(*p));
3094 switch (*p) {
3095 #ifdef notyet
3096 case IPCP_OPT_COMPRESSION:
3097 if (len >= 6 && l >= 6) {
3098 /* correctly formed compress option */
3099 continue;
3100 }
3101 if (debug)
3102 addlog(" [invalid]");
3103 break;
3104 #endif
3105 case IPCP_OPT_ADDRESS:
3106 if (len >= 6 && l == 6) {
3107 /* correctly formed address option */
3108 continue;
3109 }
3110 if (debug)
3111 addlog(" [invalid]");
3112 break;
3113 default:
3114 /* Others not supported. */
3115 if (debug)
3116 addlog(" [rej]");
3117 break;
3118 }
3119 /* Add the option to rejected list. */
3120 if (rlen + l > blen) {
3121 if (debug)
3122 addlog(" [overflow]");
3123 continue;
3124 }
3125 memcpy(r, p, l);
3126 r += l;
3127 rlen += l;
3128 }
3129 if (rlen) {
3130 if (debug)
3131 addlog(" send conf-rej\n");
3132 sppp_cp_send(sp, PPP_IPCP, CONF_REJ, h->ident, rlen, buf);
3133 goto end;
3134 } else if (debug)
3135 addlog("\n");
3136
3137 /* pass 2: parse option values */
3138 if (sp->ipcp.flags & IPCP_HISADDR_SEEN)
3139 hisaddr = sp->ipcp.req_hisaddr; /* we already aggreed on that */
3140 else
3141 #ifdef INET
3142 sppp_get_ip_addrs(sp, 0, &hisaddr, 0); /* user configuration */
3143 #else
3144 hisaddr = 0;
3145 #endif
3146 if (debug)
3147 log(LOG_DEBUG, "%s: ipcp parse opt values: ",
3148 ifp->if_xname);
3149 p = (void *)(h + 1);
3150 len = origlen;
3151 for (rlen=0; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3152 if (debug)
3153 addlog(" %s", sppp_ipcp_opt_name(*p));
3154 switch (*p) {
3155 #ifdef notyet
3156 case IPCP_OPT_COMPRESSION:
3157 continue;
3158 #endif
3159 case IPCP_OPT_ADDRESS:
3160 desiredaddr = p[2] << 24 | p[3] << 16 |
3161 p[4] << 8 | p[5];
3162 if (desiredaddr == hisaddr ||
3163 ((sp->ipcp.flags & IPCP_HISADDR_DYN) && desiredaddr != 0)) {
3164 /*
3165 * Peer's address is same as our value,
3166 * this is agreeable. Gonna conf-ack
3167 * it.
3168 */
3169 if (debug)
3170 addlog(" %s [ack]",
3171 sppp_dotted_quad(hisaddr));
3172 /* record that we've seen it already */
3173 sp->ipcp.flags |= IPCP_HISADDR_SEEN;
3174 sp->ipcp.req_hisaddr = desiredaddr;
3175 hisaddr = desiredaddr;
3176 continue;
3177 }
3178 /*
3179 * The address wasn't agreeable. This is either
3180 * he sent us 0.0.0.0, asking to assign him an
3181 * address, or he send us another address not
3182 * matching our value. Either case, we gonna
3183 * conf-nak it with our value.
3184 */
3185 if (debug) {
3186 if (desiredaddr == 0)
3187 addlog(" [addr requested]");
3188 else
3189 addlog(" %s [not agreed]",
3190 sppp_dotted_quad(desiredaddr));
3191 }
3192
3193 p[2] = hisaddr >> 24;
3194 p[3] = hisaddr >> 16;
3195 p[4] = hisaddr >> 8;
3196 p[5] = hisaddr;
3197 break;
3198 }
3199 if (rlen + l > blen) {
3200 if (debug)
3201 addlog(" [overflow]");
3202 continue;
3203 }
3204 /* Add the option to nak'ed list. */
3205 memcpy(r, p, l);
3206 r += l;
3207 rlen += l;
3208 }
3209
3210 /*
3211 * If we are about to conf-ack the request, but haven't seen
3212 * his address so far, gonna conf-nak it instead, with the
3213 * `address' option present and our idea of his address being
3214 * filled in there, to request negotiation of both addresses.
3215 *
3216 * XXX This can result in an endless req - nak loop if peer
3217 * doesn't want to send us his address. Q: What should we do
3218 * about it? XXX A: implement the max-failure counter.
3219 */
3220 if (rlen == 0 && !(sp->ipcp.flags & IPCP_HISADDR_SEEN)) {
3221 buf[0] = IPCP_OPT_ADDRESS;
3222 buf[1] = 6;
3223 buf[2] = hisaddr >> 24;
3224 buf[3] = hisaddr >> 16;
3225 buf[4] = hisaddr >> 8;
3226 buf[5] = hisaddr;
3227 rlen = 6;
3228 if (debug)
3229 addlog(" still need hisaddr");
3230 }
3231
3232 if (rlen) {
3233 if (debug)
3234 addlog(" send conf-nak\n");
3235 sppp_cp_send(sp, PPP_IPCP, CONF_NAK, h->ident, rlen, buf);
3236 } else {
3237 if (debug)
3238 addlog(" send conf-ack\n");
3239 sppp_cp_send(sp, PPP_IPCP, CONF_ACK, h->ident, origlen, h + 1);
3240 }
3241
3242 end:
3243 free(buf, M_TEMP);
3244 return (rlen == 0);
3245
3246 drop:
3247 free(buf, M_TEMP);
3248 return -1;
3249 }
3250
3251 /*
3252 * Analyze the IPCP Configure-Reject option list, and adjust our
3253 * negotiation.
3254 */
3255 static void
3256 sppp_ipcp_RCN_rej(struct sppp *sp, struct lcp_header *h, int len)
3257 {
3258 u_char *buf, *p, l, blen;
3259 struct ifnet *ifp = &sp->pp_if;
3260 int debug = ifp->if_flags & IFF_DEBUG;
3261
3262 KASSERT(sppp_locked(sp));
3263
3264 len -= 4;
3265 buf = malloc (blen = len, M_TEMP, M_NOWAIT);
3266 if (!buf)
3267 return;
3268
3269 if (debug)
3270 log(LOG_DEBUG, "%s: ipcp rej opts:",
3271 ifp->if_xname);
3272
3273 p = (void *)(h + 1);
3274 for (; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3275 /* Sanity check option length */
3276 if (l > len) {
3277 /* XXX should we just RXJ? */
3278 addlog("%s: malicious IPCP option received, dropping\n",
3279 ifp->if_xname);
3280 goto drop;
3281 }
3282 if (debug)
3283 addlog(" %s", sppp_ipcp_opt_name(*p));
3284 switch (*p) {
3285 case IPCP_OPT_ADDRESS:
3286 /*
3287 * Peer doesn't grok address option. This is
3288 * bad. XXX Should we better give up here?
3289 */
3290 sp->ipcp.opts &= ~(1 << IPCP_OPT_ADDRESS);
3291 break;
3292 #ifdef notyet
3293 case IPCP_OPT_COMPRESS:
3294 sp->ipcp.opts &= ~(1 << IPCP_OPT_COMPRESS);
3295 break;
3296 #endif
3297 }
3298 }
3299 if (debug)
3300 addlog("\n");
3301 drop:
3302 free(buf, M_TEMP);
3303 return;
3304 }
3305
3306 /*
3307 * Analyze the IPCP Configure-NAK option list, and adjust our
3308 * negotiation.
3309 */
3310 static void
3311 sppp_ipcp_RCN_nak(struct sppp *sp, struct lcp_header *h, int len)
3312 {
3313 u_char *p, l;
3314 struct ifnet *ifp = &sp->pp_if;
3315 int debug = ifp->if_flags & IFF_DEBUG;
3316 uint32_t wantaddr;
3317
3318 KASSERT(sppp_locked(sp));
3319
3320 len -= 4;
3321
3322 if (debug)
3323 log(LOG_DEBUG, "%s: ipcp nak opts:",
3324 ifp->if_xname);
3325
3326 p = (void *)(h + 1);
3327 for (; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3328 /* Sanity check option length */
3329 if (l > len) {
3330 /* XXX should we just RXJ? */
3331 addlog("%s: malicious IPCP option received, dropping\n",
3332 ifp->if_xname);
3333 return;
3334 }
3335 if (debug)
3336 addlog(" %s", sppp_ipcp_opt_name(*p));
3337 switch (*p) {
3338 case IPCP_OPT_ADDRESS:
3339 /*
3340 * Peer doesn't like our local IP address. See
3341 * if we can do something for him. We'll drop
3342 * him our address then.
3343 */
3344 if (len >= 6 && l == 6) {
3345 wantaddr = p[2] << 24 | p[3] << 16 |
3346 p[4] << 8 | p[5];
3347 sp->ipcp.opts |= (1 << IPCP_OPT_ADDRESS);
3348 if (debug)
3349 addlog(" [wantaddr %s]",
3350 sppp_dotted_quad(wantaddr));
3351 /*
3352 * When doing dynamic address assignment,
3353 * we accept his offer. Otherwise, we
3354 * ignore it and thus continue to negotiate
3355 * our already existing value.
3356 */
3357 if (sp->ipcp.flags & IPCP_MYADDR_DYN) {
3358 if (debug)
3359 addlog(" [agree]");
3360 sp->ipcp.flags |= IPCP_MYADDR_SEEN;
3361 sp->ipcp.req_myaddr = wantaddr;
3362 }
3363 }
3364 break;
3365
3366 case IPCP_OPT_PRIMDNS:
3367 if (len >= 6 && l == 6) {
3368 sp->dns_addrs[0] = p[2] << 24 | p[3] << 16 |
3369 p[4] << 8 | p[5];
3370 }
3371 break;
3372
3373 case IPCP_OPT_SECDNS:
3374 if (len >= 6 && l == 6) {
3375 sp->dns_addrs[1] = p[2] << 24 | p[3] << 16 |
3376 p[4] << 8 | p[5];
3377 }
3378 break;
3379 #ifdef notyet
3380 case IPCP_OPT_COMPRESS:
3381 /*
3382 * Peer wants different compression parameters.
3383 */
3384 break;
3385 #endif
3386 }
3387 }
3388 if (debug)
3389 addlog("\n");
3390 }
3391
3392 static void
3393 sppp_ipcp_tlu(struct sppp *sp)
3394 {
3395 #ifdef INET
3396 KASSERT(sppp_locked(sp));
3397 /* we are up. Set addresses and notify anyone interested */
3398 sppp_set_ip_addrs(sp);
3399 #endif
3400 }
3401
3402 static void
3403 sppp_ipcp_tld(struct sppp *sp)
3404 {
3405 }
3406
3407 static void
3408 sppp_ipcp_tls(struct sppp *sp)
3409 {
3410 KASSERT(sppp_locked(sp));
3411 /* indicate to LCP that it must stay alive */
3412 sp->lcp.protos |= (1 << IDX_IPCP);
3413 }
3414
3415 static void
3416 sppp_ipcp_tlf(struct sppp *sp)
3417 {
3418 KASSERT(sppp_locked(sp));
3419 /* we no longer need LCP */
3420 sp->lcp.protos &= ~(1 << IDX_IPCP);
3421 }
3422
3423 static void
3424 sppp_ipcp_scr(struct sppp *sp)
3425 {
3426 uint8_t opt[6 /* compression */ + 6 /* address */ + 12 /* dns addresses */];
3427 #ifdef INET
3428 uint32_t ouraddr;
3429 #endif
3430 int i = 0;
3431
3432 KASSERT(sppp_locked(sp));
3433
3434 #ifdef notyet
3435 if (sp->ipcp.opts & (1 << IPCP_OPT_COMPRESSION)) {
3436 opt[i++] = IPCP_OPT_COMPRESSION;
3437 opt[i++] = 6;
3438 opt[i++] = 0; /* VJ header compression */
3439 opt[i++] = 0x2d; /* VJ header compression */
3440 opt[i++] = max_slot_id;
3441 opt[i++] = comp_slot_id;
3442 }
3443 #endif
3444
3445 #ifdef INET
3446 if (sp->ipcp.opts & (1 << IPCP_OPT_ADDRESS)) {
3447 if (sp->ipcp.flags & IPCP_MYADDR_SEEN)
3448 ouraddr = sp->ipcp.req_myaddr; /* not sure if this can ever happen */
3449 else
3450 sppp_get_ip_addrs(sp, &ouraddr, 0, 0);
3451 opt[i++] = IPCP_OPT_ADDRESS;
3452 opt[i++] = 6;
3453 opt[i++] = ouraddr >> 24;
3454 opt[i++] = ouraddr >> 16;
3455 opt[i++] = ouraddr >> 8;
3456 opt[i++] = ouraddr;
3457 }
3458 #endif
3459
3460 if (sp->query_dns & 1) {
3461 opt[i++] = IPCP_OPT_PRIMDNS;
3462 opt[i++] = 6;
3463 opt[i++] = sp->dns_addrs[0] >> 24;
3464 opt[i++] = sp->dns_addrs[0] >> 16;
3465 opt[i++] = sp->dns_addrs[0] >> 8;
3466 opt[i++] = sp->dns_addrs[0];
3467 }
3468 if (sp->query_dns & 2) {
3469 opt[i++] = IPCP_OPT_SECDNS;
3470 opt[i++] = 6;
3471 opt[i++] = sp->dns_addrs[1] >> 24;
3472 opt[i++] = sp->dns_addrs[1] >> 16;
3473 opt[i++] = sp->dns_addrs[1] >> 8;
3474 opt[i++] = sp->dns_addrs[1];
3475 }
3476
3477 sp->confid[IDX_IPCP] = ++sp->pp_seq[IDX_IPCP];
3478 sppp_cp_send(sp, PPP_IPCP, CONF_REQ, sp->confid[IDX_IPCP], i, &opt);
3479 }
3480
3481
3482 /*
3483 *--------------------------------------------------------------------------*
3484 * *
3485 * The IPv6CP implementation. *
3486 * *
3487 *--------------------------------------------------------------------------*
3488 */
3489
3490 #ifdef INET6
3491 static void
3492 sppp_ipv6cp_init(struct sppp *sp)
3493 {
3494 sppp_lock_enter(sp);
3495 sp->ipv6cp.opts = 0;
3496 sp->ipv6cp.flags = 0;
3497 sp->state[IDX_IPV6CP] = STATE_INITIAL;
3498 sp->fail_counter[IDX_IPV6CP] = 0;
3499 sp->pp_seq[IDX_IPV6CP] = 0;
3500 sp->pp_rseq[IDX_IPV6CP] = 0;
3501 callout_init(&sp->ch[IDX_IPV6CP], 0);
3502 sppp_lock_exit(sp);
3503 }
3504
3505 static void
3506 sppp_ipv6cp_up(struct sppp *sp)
3507 {
3508 KASSERT(sppp_locked(sp));
3509 sppp_up_event(&ipv6cp, sp);
3510 }
3511
3512 static void
3513 sppp_ipv6cp_down(struct sppp *sp)
3514 {
3515 KASSERT(sppp_locked(sp));
3516 sppp_down_event(&ipv6cp, sp);
3517 }
3518
3519 static void
3520 sppp_ipv6cp_open(struct sppp *sp)
3521 {
3522 STDDCL;
3523 struct in6_addr myaddr, hisaddr;
3524
3525 KASSERT(sppp_locked(sp));
3526
3527 #ifdef IPV6CP_MYIFID_DYN
3528 sp->ipv6cp.flags &= ~(IPV6CP_MYIFID_SEEN|IPV6CP_MYIFID_DYN);
3529 #else
3530 sp->ipv6cp.flags &= ~IPV6CP_MYIFID_SEEN;
3531 #endif
3532
3533 sppp_get_ip6_addrs(sp, &myaddr, &hisaddr, 0);
3534 /*
3535 * If we don't have our address, this probably means our
3536 * interface doesn't want to talk IPv6 at all. (This could
3537 * be the case if somebody wants to speak only IPX, for
3538 * example.) Don't open IPv6CP in this case.
3539 */
3540 if (IN6_IS_ADDR_UNSPECIFIED(&myaddr)) {
3541 /* XXX this message should go away */
3542 if (debug)
3543 log(LOG_DEBUG, "%s: ipv6cp_open(): no IPv6 interface\n",
3544 ifp->if_xname);
3545 return;
3546 }
3547
3548 sp->ipv6cp.flags |= IPV6CP_MYIFID_SEEN;
3549 sp->ipv6cp.opts |= (1 << IPV6CP_OPT_IFID);
3550 sppp_open_event(&ipv6cp, sp);
3551 }
3552
3553 static void
3554 sppp_ipv6cp_close(struct sppp *sp)
3555 {
3556 KASSERT(sppp_locked(sp));
3557 sppp_close_event(&ipv6cp, sp);
3558 }
3559
3560 static void
3561 sppp_ipv6cp_TO(void *cookie)
3562 {
3563 struct sppp *sp = cookie;
3564 KASSERT(!sppp_locked(sp));
3565
3566 sppp_lock_enter(sp);
3567 sppp_to_event(&ipv6cp, (struct sppp *)cookie);
3568 sppp_lock_exit(sp);
3569 }
3570
3571 /*
3572 * Analyze a configure request. Return true if it was agreeable, and
3573 * caused action sca, false if it has been rejected or nak'ed, and
3574 * caused action scn. (The return value is used to make the state
3575 * transition decision in the state automaton.)
3576 */
3577 static int
3578 sppp_ipv6cp_RCR(struct sppp *sp, struct lcp_header *h, int len)
3579 {
3580 u_char *buf, *r, *p, l, blen;
3581 struct ifnet *ifp = &sp->pp_if;
3582 int rlen, origlen, debug = ifp->if_flags & IFF_DEBUG;
3583 struct in6_addr myaddr, desiredaddr, suggestaddr;
3584 int ifidcount;
3585 int type;
3586 int collision, nohisaddr;
3587 char ip6buf[INET6_ADDRSTRLEN];
3588
3589 KASSERT(sppp_locked(sp));
3590
3591 len -= 4;
3592 origlen = len;
3593 /*
3594 * Make sure to allocate a buf that can at least hold a
3595 * conf-nak with an `address' option. We might need it below.
3596 */
3597 blen = len < 6 ? 6 : len;
3598 buf = r = malloc (blen, M_TEMP, M_NOWAIT);
3599 if (! buf)
3600 return (0);
3601
3602 /* pass 1: see if we can recognize them */
3603 if (debug)
3604 log(LOG_DEBUG, "%s: ipv6cp parse opts:",
3605 ifp->if_xname);
3606 p = (void *)(h + 1);
3607 ifidcount = 0;
3608 for (rlen = 0; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3609 /* Sanity check option length */
3610 if (l > len) {
3611 /* XXX just RXJ? */
3612 addlog("%s: received malicious IPCPv6 option, "
3613 "dropping\n", ifp->if_xname);
3614 goto drop;
3615 }
3616 if (debug)
3617 addlog(" %s", sppp_ipv6cp_opt_name(*p));
3618 switch (*p) {
3619 case IPV6CP_OPT_IFID:
3620 if (len >= 10 && l == 10 && ifidcount == 0) {
3621 /* correctly formed address option */
3622 ifidcount++;
3623 continue;
3624 }
3625 if (debug)
3626 addlog(" [invalid]");
3627 break;
3628 #ifdef notyet
3629 case IPV6CP_OPT_COMPRESSION:
3630 if (len >= 4 && l >= 4) {
3631 /* correctly formed compress option */
3632 continue;
3633 }
3634 if (debug)
3635 addlog(" [invalid]");
3636 break;
3637 #endif
3638 default:
3639 /* Others not supported. */
3640 if (debug)
3641 addlog(" [rej]");
3642 break;
3643 }
3644 if (rlen + l > blen) {
3645 if (debug)
3646 addlog(" [overflow]");
3647 continue;
3648 }
3649 /* Add the option to rejected list. */
3650 memcpy(r, p, l);
3651 r += l;
3652 rlen += l;
3653 }
3654 if (rlen) {
3655 if (debug)
3656 addlog(" send conf-rej\n");
3657 sppp_cp_send(sp, PPP_IPV6CP, CONF_REJ, h->ident, rlen, buf);
3658 goto end;
3659 } else if (debug)
3660 addlog("\n");
3661
3662 /* pass 2: parse option values */
3663 sppp_get_ip6_addrs(sp, &myaddr, 0, 0);
3664 if (debug)
3665 log(LOG_DEBUG, "%s: ipv6cp parse opt values: ",
3666 ifp->if_xname);
3667 p = (void *)(h + 1);
3668 len = origlen;
3669 type = CONF_ACK;
3670 for (rlen = 0; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3671 if (debug)
3672 addlog(" %s", sppp_ipv6cp_opt_name(*p));
3673 switch (*p) {
3674 #ifdef notyet
3675 case IPV6CP_OPT_COMPRESSION:
3676 continue;
3677 #endif
3678 case IPV6CP_OPT_IFID:
3679 memset(&desiredaddr, 0, sizeof(desiredaddr));
3680 memcpy(&desiredaddr.s6_addr[8], &p[2], 8);
3681 collision = (memcmp(&desiredaddr.s6_addr[8],
3682 &myaddr.s6_addr[8], 8) == 0);
3683 nohisaddr = IN6_IS_ADDR_UNSPECIFIED(&desiredaddr);
3684
3685 desiredaddr.s6_addr16[0] = htons(0xfe80);
3686 (void)in6_setscope(&desiredaddr, &sp->pp_if, NULL);
3687
3688 if (!collision && !nohisaddr) {
3689 /* no collision, hisaddr known - Conf-Ack */
3690 type = CONF_ACK;
3691
3692 if (debug) {
3693 addlog(" %s [%s]",
3694 IN6_PRINT(ip6buf, &desiredaddr),
3695 sppp_cp_type_name(type));
3696 }
3697 continue;
3698 }
3699
3700 memset(&suggestaddr, 0, sizeof(suggestaddr));
3701 if (collision && nohisaddr) {
3702 /* collision, hisaddr unknown - Conf-Rej */
3703 type = CONF_REJ;
3704 memset(&p[2], 0, 8);
3705 } else {
3706 /*
3707 * - no collision, hisaddr unknown, or
3708 * - collision, hisaddr known
3709 * Conf-Nak, suggest hisaddr
3710 */
3711 type = CONF_NAK;
3712 sppp_suggest_ip6_addr(sp, &suggestaddr);
3713 memcpy(&p[2], &suggestaddr.s6_addr[8], 8);
3714 }
3715 if (debug)
3716 addlog(" %s [%s]", IN6_PRINT(ip6buf, &desiredaddr),
3717 sppp_cp_type_name(type));
3718 break;
3719 }
3720 if (rlen + l > blen) {
3721 if (debug)
3722 addlog(" [overflow]");
3723 continue;
3724 }
3725 /* Add the option to nak'ed list. */
3726 memcpy(r, p, l);
3727 r += l;
3728 rlen += l;
3729 }
3730
3731 if (rlen == 0 && type == CONF_ACK) {
3732 if (debug)
3733 addlog(" send %s\n", sppp_cp_type_name(type));
3734 sppp_cp_send(sp, PPP_IPV6CP, type, h->ident, origlen, h + 1);
3735 } else {
3736 #ifdef notdef
3737 if (type == CONF_ACK)
3738 panic("IPv6CP RCR: CONF_ACK with non-zero rlen");
3739 #endif
3740
3741 if (debug) {
3742 addlog(" send %s suggest %s\n",
3743 sppp_cp_type_name(type), IN6_PRINT(ip6buf, &suggestaddr));
3744 }
3745 sppp_cp_send(sp, PPP_IPV6CP, type, h->ident, rlen, buf);
3746 }
3747
3748 end:
3749 free(buf, M_TEMP);
3750 return (rlen == 0);
3751
3752 drop:
3753 free(buf, M_TEMP);
3754 return -1;
3755 }
3756
3757 /*
3758 * Analyze the IPv6CP Configure-Reject option list, and adjust our
3759 * negotiation.
3760 */
3761 static void
3762 sppp_ipv6cp_RCN_rej(struct sppp *sp, struct lcp_header *h, int len)
3763 {
3764 u_char *buf, *p, l, blen;
3765 struct ifnet *ifp = &sp->pp_if;
3766 int debug = ifp->if_flags & IFF_DEBUG;
3767
3768 KASSERT(sppp_locked(sp));
3769
3770 len -= 4;
3771 buf = malloc (blen = len, M_TEMP, M_NOWAIT);
3772 if (!buf)
3773 return;
3774
3775 if (debug)
3776 log(LOG_DEBUG, "%s: ipv6cp rej opts:",
3777 ifp->if_xname);
3778
3779 p = (void *)(h + 1);
3780 for (; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3781 if (l > len) {
3782 /* XXX just RXJ? */
3783 addlog("%s: received malicious IPCPv6 option, "
3784 "dropping\n", ifp->if_xname);
3785 goto drop;
3786 }
3787 if (debug)
3788 addlog(" %s", sppp_ipv6cp_opt_name(*p));
3789 switch (*p) {
3790 case IPV6CP_OPT_IFID:
3791 /*
3792 * Peer doesn't grok address option. This is
3793 * bad. XXX Should we better give up here?
3794 */
3795 sp->ipv6cp.opts &= ~(1 << IPV6CP_OPT_IFID);
3796 break;
3797 #ifdef notyet
3798 case IPV6CP_OPT_COMPRESS:
3799 sp->ipv6cp.opts &= ~(1 << IPV6CP_OPT_COMPRESS);
3800 break;
3801 #endif
3802 }
3803 }
3804 if (debug)
3805 addlog("\n");
3806 drop:
3807 free(buf, M_TEMP);
3808 return;
3809 }
3810
3811 /*
3812 * Analyze the IPv6CP Configure-NAK option list, and adjust our
3813 * negotiation.
3814 */
3815 static void
3816 sppp_ipv6cp_RCN_nak(struct sppp *sp, struct lcp_header *h, int len)
3817 {
3818 u_char *buf, *p, l, blen;
3819 struct ifnet *ifp = &sp->pp_if;
3820 int debug = ifp->if_flags & IFF_DEBUG;
3821 struct in6_addr suggestaddr;
3822 char ip6buf[INET6_ADDRSTRLEN];
3823
3824 KASSERT(sppp_locked(sp));
3825
3826 len -= 4;
3827 buf = malloc (blen = len, M_TEMP, M_NOWAIT);
3828 if (!buf)
3829 return;
3830
3831 if (debug)
3832 log(LOG_DEBUG, "%s: ipv6cp nak opts:",
3833 ifp->if_xname);
3834
3835 p = (void *)(h + 1);
3836 for (; len > 1 && (l = p[1]) != 0; len -= l, p += l) {
3837 if (l > len) {
3838 /* XXX just RXJ? */
3839 addlog("%s: received malicious IPCPv6 option, "
3840 "dropping\n", ifp->if_xname);
3841 goto drop;
3842 }
3843 if (debug)
3844 addlog(" %s", sppp_ipv6cp_opt_name(*p));
3845 switch (*p) {
3846 case IPV6CP_OPT_IFID:
3847 /*
3848 * Peer doesn't like our local ifid. See
3849 * if we can do something for him. We'll drop
3850 * him our address then.
3851 */
3852 if (len < 10 || l != 10)
3853 break;
3854 memset(&suggestaddr, 0, sizeof(suggestaddr));
3855 suggestaddr.s6_addr16[0] = htons(0xfe80);
3856 (void)in6_setscope(&suggestaddr, &sp->pp_if, NULL);
3857 memcpy(&suggestaddr.s6_addr[8], &p[2], 8);
3858
3859 sp->ipv6cp.opts |= (1 << IPV6CP_OPT_IFID);
3860 if (debug)
3861 addlog(" [suggestaddr %s]",
3862 IN6_PRINT(ip6buf, &suggestaddr));
3863 #ifdef IPV6CP_MYIFID_DYN
3864 /*
3865 * When doing dynamic address assignment,
3866 * we accept his offer.
3867 */
3868 if (sp->ipv6cp.flags & IPV6CP_MYIFID_DYN) {
3869 struct in6_addr lastsuggest;
3870 /*
3871 * If <suggested myaddr from peer> equals to
3872 * <hisaddr we have suggested last time>,
3873 * we have a collision. generate new random
3874 * ifid.
3875 */
3876 sppp_suggest_ip6_addr(&lastsuggest);
3877 if (IN6_ARE_ADDR_EQUAL(&suggestaddr,
3878 lastsuggest)) {
3879 if (debug)
3880 addlog(" [random]");
3881 sppp_gen_ip6_addr(sp, &suggestaddr);
3882 }
3883 sppp_set_ip6_addr(sp, &suggestaddr, 0);
3884 if (debug)
3885 addlog(" [agree]");
3886 sp->ipv6cp.flags |= IPV6CP_MYIFID_SEEN;
3887 }
3888 #else
3889 /*
3890 * Since we do not do dynamic address assignment,
3891 * we ignore it and thus continue to negotiate
3892 * our already existing value. This can possibly
3893 * go into infinite request-reject loop.
3894 *
3895 * This is not likely because we normally use
3896 * ifid based on MAC-address.
3897 * If you have no ethernet card on the node, too bad.
3898 * XXX should we use fail_counter?
3899 */
3900 #endif
3901 break;
3902 #ifdef notyet
3903 case IPV6CP_OPT_COMPRESS:
3904 /*
3905 * Peer wants different compression parameters.
3906 */
3907 break;
3908 #endif
3909 }
3910 }
3911 if (debug)
3912 addlog("\n");
3913 drop:
3914 free(buf, M_TEMP);
3915 return;
3916 }
3917
3918 static void
3919 sppp_ipv6cp_tlu(struct sppp *sp)
3920 {
3921 KASSERT(sppp_locked(sp));
3922 /* we are up - notify isdn daemon */
3923 if (sp->pp_con)
3924 sp->pp_con(sp);
3925 }
3926
3927 static void
3928 sppp_ipv6cp_tld(struct sppp *sp)
3929 {
3930 }
3931
3932 static void
3933 sppp_ipv6cp_tls(struct sppp *sp)
3934 {
3935 KASSERT(sppp_locked(sp));
3936 /* indicate to LCP that it must stay alive */
3937 sp->lcp.protos |= (1 << IDX_IPV6CP);
3938 }
3939
3940 static void
3941 sppp_ipv6cp_tlf(struct sppp *sp)
3942 {
3943 KASSERT(sppp_locked(sp));
3944 /* we no longer need LCP */
3945 sp->lcp.protos &= ~(1 << IDX_IPV6CP);
3946 }
3947
3948 static void
3949 sppp_ipv6cp_scr(struct sppp *sp)
3950 {
3951 char opt[10 /* ifid */ + 4 /* compression, minimum */];
3952 struct in6_addr ouraddr;
3953 int i = 0;
3954
3955 KASSERT(sppp_locked(sp));
3956
3957 if (sp->ipv6cp.opts & (1 << IPV6CP_OPT_IFID)) {
3958 sppp_get_ip6_addrs(sp, &ouraddr, 0, 0);
3959 opt[i++] = IPV6CP_OPT_IFID;
3960 opt[i++] = 10;
3961 memcpy(&opt[i], &ouraddr.s6_addr[8], 8);
3962 i += 8;
3963 }
3964
3965 #ifdef notyet
3966 if (sp->ipv6cp.opts & (1 << IPV6CP_OPT_COMPRESSION)) {
3967 opt[i++] = IPV6CP_OPT_COMPRESSION;
3968 opt[i++] = 4;
3969 opt[i++] = 0; /* TBD */
3970 opt[i++] = 0; /* TBD */
3971 /* variable length data may follow */
3972 }
3973 #endif
3974
3975 sp->confid[IDX_IPV6CP] = ++sp->pp_seq[IDX_IPV6CP];
3976 sppp_cp_send(sp, PPP_IPV6CP, CONF_REQ, sp->confid[IDX_IPV6CP], i, &opt);
3977 }
3978 #else /*INET6*/
3979 static void
3980 sppp_ipv6cp_init(struct sppp *sp)
3981 {
3982 }
3983
3984 static void
3985 sppp_ipv6cp_up(struct sppp *sp)
3986 {
3987 }
3988
3989 static void
3990 sppp_ipv6cp_down(struct sppp *sp)
3991 {
3992 }
3993
3994 static void
3995 sppp_ipv6cp_open(struct sppp *sp)
3996 {
3997 }
3998
3999 static void
4000 sppp_ipv6cp_close(struct sppp *sp)
4001 {
4002 }
4003
4004 static void
4005 sppp_ipv6cp_TO(void *sp)
4006 {
4007 }
4008
4009 static int
4010 sppp_ipv6cp_RCR(struct sppp *sp, struct lcp_header *h,
4011 int len)
4012 {
4013 return 0;
4014 }
4015
4016 static void
4017 sppp_ipv6cp_RCN_rej(struct sppp *sp, struct lcp_header *h,
4018 int len)
4019 {
4020 }
4021
4022 static void
4023 sppp_ipv6cp_RCN_nak(struct sppp *sp, struct lcp_header *h,
4024 int len)
4025 {
4026 }
4027
4028 static void
4029 sppp_ipv6cp_tlu(struct sppp *sp)
4030 {
4031 }
4032
4033 static void
4034 sppp_ipv6cp_tld(struct sppp *sp)
4035 {
4036 }
4037
4038 static void
4039 sppp_ipv6cp_tls(struct sppp *sp)
4040 {
4041 }
4042
4043 static void
4044 sppp_ipv6cp_tlf(struct sppp *sp)
4045 {
4046 }
4047
4048 static void
4049 sppp_ipv6cp_scr(struct sppp *sp)
4050 {
4051 }
4052 #endif /*INET6*/
4053
4054
4055 /*
4056 *--------------------------------------------------------------------------*
4057 * *
4058 * The CHAP implementation. *
4059 * *
4060 *--------------------------------------------------------------------------*
4061 */
4062
4063 /*
4064 * The authentication protocols don't employ a full-fledged state machine as
4065 * the control protocols do, since they do have Open and Close events, but
4066 * not Up and Down, nor are they explicitly terminated. Also, use of the
4067 * authentication protocols may be different in both directions (this makes
4068 * sense, think of a machine that never accepts incoming calls but only
4069 * calls out, it doesn't require the called party to authenticate itself).
4070 *
4071 * Our state machine for the local authentication protocol (we are requesting
4072 * the peer to authenticate) looks like:
4073 *
4074 * RCA-
4075 * +--------------------------------------------+
4076 * V scn,tld|
4077 * +--------+ Close +---------+ RCA+
4078 * | |<----------------------------------| |------+
4079 * +--->| Closed | TO* | Opened | sca |
4080 * | | |-----+ +-------| |<-----+
4081 * | +--------+ irc | | +---------+
4082 * | ^ | | ^
4083 * | | | | |
4084 * | | | | |
4085 * | TO-| | | |
4086 * | |tld TO+ V | |
4087 * | | +------->+ | |
4088 * | | | | | |
4089 * | +--------+ V | |
4090 * | | |<----+<--------------------+ |
4091 * | | Req- | scr |
4092 * | | Sent | |
4093 * | | | |
4094 * | +--------+ |
4095 * | RCA- | | RCA+ |
4096 * +------+ +------------------------------------------+
4097 * scn,tld sca,irc,ict,tlu
4098 *
4099 *
4100 * with:
4101 *
4102 * Open: LCP reached authentication phase
4103 * Close: LCP reached terminate phase
4104 *
4105 * RCA+: received reply (pap-req, chap-response), acceptable
4106 * RCN: received reply (pap-req, chap-response), not acceptable
4107 * TO+: timeout with restart counter >= 0
4108 * TO-: timeout with restart counter < 0
4109 * TO*: reschedule timeout for CHAP
4110 *
4111 * scr: send request packet (none for PAP, chap-challenge)
4112 * sca: send ack packet (pap-ack, chap-success)
4113 * scn: send nak packet (pap-nak, chap-failure)
4114 * ict: initialize re-challenge timer (CHAP only)
4115 *
4116 * tlu: this-layer-up, LCP reaches network phase
4117 * tld: this-layer-down, LCP enters terminate phase
4118 *
4119 * Note that in CHAP mode, after sending a new challenge, while the state
4120 * automaton falls back into Req-Sent state, it doesn't signal a tld
4121 * event to LCP, so LCP remains in network phase. Only after not getting
4122 * any response (or after getting an unacceptable response), CHAP closes,
4123 * causing LCP to enter terminate phase.
4124 *
4125 * With PAP, there is no initial request that can be sent. The peer is
4126 * expected to send one based on the successful negotiation of PAP as
4127 * the authentication protocol during the LCP option negotiation.
4128 *
4129 * Incoming authentication protocol requests (remote requests
4130 * authentication, we are peer) don't employ a state machine at all,
4131 * they are simply answered. Some peers [Ascend P50 firmware rev
4132 * 4.50] react allergically when sending IPCP/IPv6CP requests while they are
4133 * still in authentication phase (thereby violating the standard that
4134 * demands that these NCP packets are to be discarded), so we keep
4135 * track of the peer demanding us to authenticate, and only proceed to
4136 * phase network once we've seen a positive acknowledge for the
4137 * authentication.
4138 */
4139
4140 /*
4141 * Handle incoming CHAP packets.
4142 */
4143 void
4144 sppp_chap_input(struct sppp *sp, struct mbuf *m)
4145 {
4146 STDDCL;
4147 struct lcp_header *h;
4148 int len, x;
4149 u_char *value, *name, digest[sizeof(sp->myauth.challenge)], dsize;
4150 int value_len, name_len;
4151 MD5_CTX ctx;
4152
4153 KASSERT(!sppp_locked(sp));
4154
4155 len = m->m_pkthdr.len;
4156 if (len < 4) {
4157 if (debug)
4158 log(LOG_DEBUG,
4159 "%s: chap invalid packet length: %d bytes\n",
4160 ifp->if_xname, len);
4161 return;
4162 }
4163 h = mtod(m, struct lcp_header *);
4164 if (len > ntohs(h->len))
4165 len = ntohs(h->len);
4166
4167 switch (h->type) {
4168 /* challenge, failure and success are his authproto */
4169 case CHAP_CHALLENGE:
4170 sppp_lock_enter(sp);
4171 if (sp->myauth.secret == NULL || sp->myauth.name == NULL) {
4172 /* can't do anything useful */
4173 sp->pp_auth_failures++;
4174 printf("%s: chap input without my name and my secret being set\n",
4175 ifp->if_xname);
4176 sppp_lock_exit(sp);
4177 break;
4178 }
4179 value = 1 + (u_char *)(h + 1);
4180 value_len = value[-1];
4181 name = value + value_len;
4182 name_len = len - value_len - 5;
4183 if (name_len < 0) {
4184 if (debug) {
4185 log(LOG_DEBUG,
4186 "%s: chap corrupted challenge "
4187 "<%s id=0x%x len=%d",
4188 ifp->if_xname,
4189 sppp_auth_type_name(PPP_CHAP, h->type),
4190 h->ident, ntohs(h->len));
4191 if (len > 4)
4192 sppp_print_bytes((u_char *)(h + 1),
4193 len - 4);
4194 addlog(">\n");
4195 }
4196 sppp_lock_exit(sp);
4197 break;
4198 }
4199
4200 if (debug) {
4201 log(LOG_DEBUG,
4202 "%s: chap input <%s id=0x%x len=%d name=",
4203 ifp->if_xname,
4204 sppp_auth_type_name(PPP_CHAP, h->type), h->ident,
4205 ntohs(h->len));
4206 sppp_print_string((char *) name, name_len);
4207 addlog(" value-size=%d value=", value_len);
4208 sppp_print_bytes(value, value_len);
4209 addlog(">\n");
4210 }
4211
4212 /* Compute reply value. */
4213 MD5Init(&ctx);
4214 MD5Update(&ctx, &h->ident, 1);
4215 MD5Update(&ctx, sp->myauth.secret, sp->myauth.secret_len);
4216 MD5Update(&ctx, value, value_len);
4217 MD5Final(digest, &ctx);
4218 dsize = sizeof digest;
4219
4220 sppp_auth_send(&chap, sp, CHAP_RESPONSE, h->ident,
4221 sizeof dsize, (const char *)&dsize,
4222 sizeof digest, digest,
4223 sp->myauth.name_len,
4224 sp->myauth.name,
4225 0);
4226 sppp_lock_exit(sp);
4227 break;
4228
4229 case CHAP_SUCCESS:
4230 sppp_lock_enter(sp);
4231 if (debug) {
4232 log(LOG_DEBUG, "%s: chap success",
4233 ifp->if_xname);
4234 if (len > 4) {
4235 addlog(": ");
4236 sppp_print_string((char *)(h + 1), len - 4);
4237 }
4238 addlog("\n");
4239 }
4240 x = splnet();
4241 sp->pp_auth_failures = 0;
4242 sp->pp_flags &= ~PP_NEEDAUTH;
4243 if (sp->myauth.proto == PPP_CHAP &&
4244 (sp->lcp.opts & (1 << LCP_OPT_AUTH_PROTO)) &&
4245 (sp->lcp.protos & (1 << IDX_CHAP)) == 0) {
4246 /*
4247 * We are authenticator for CHAP but didn't
4248 * complete yet. Leave it to tlu to proceed
4249 * to network phase.
4250 */
4251 splx(x);
4252 sppp_lock_exit(sp);
4253 break;
4254 }
4255 splx(x);
4256 sppp_phase_network(sp);
4257 sppp_lock_exit(sp);
4258 break;
4259
4260 case CHAP_FAILURE:
4261 x = splnet();
4262 sppp_lock_enter(sp);
4263 sp->pp_auth_failures++;
4264 splx(x);
4265 if (debug) {
4266 log(LOG_INFO, "%s: chap failure",
4267 ifp->if_xname);
4268 if (len > 4) {
4269 addlog(": ");
4270 sppp_print_string((char *)(h + 1), len - 4);
4271 }
4272 addlog("\n");
4273 } else
4274 log(LOG_INFO, "%s: chap failure\n",
4275 ifp->if_xname);
4276 sppp_lock_exit(sp);
4277 /* await LCP shutdown by authenticator */
4278 break;
4279
4280 /* response is my authproto */
4281 case CHAP_RESPONSE:
4282 sppp_lock_enter(sp);
4283 if (sp->hisauth.secret == NULL) {
4284 /* can't do anything useful */
4285 printf("%s: chap input without his secret being set\n",
4286 ifp->if_xname);
4287 sppp_lock_exit(sp);
4288 break;
4289 }
4290 value = 1 + (u_char *)(h + 1);
4291 value_len = value[-1];
4292 name = value + value_len;
4293 name_len = len - value_len - 5;
4294 if (name_len < 0) {
4295 if (debug) {
4296 log(LOG_DEBUG,
4297 "%s: chap corrupted response "
4298 "<%s id=0x%x len=%d",
4299 ifp->if_xname,
4300 sppp_auth_type_name(PPP_CHAP, h->type),
4301 h->ident, ntohs(h->len));
4302 if (len > 4)
4303 sppp_print_bytes((u_char *)(h + 1),
4304 len - 4);
4305 addlog(">\n");
4306 }
4307 sppp_lock_exit(sp);
4308 break;
4309 }
4310 if (h->ident != sp->confid[IDX_CHAP]) {
4311 if (debug)
4312 log(LOG_DEBUG,
4313 "%s: chap dropping response for old ID "
4314 "(got %d, expected %d)\n",
4315 ifp->if_xname,
4316 h->ident, sp->confid[IDX_CHAP]);
4317 sppp_lock_exit(sp);
4318 break;
4319 }
4320 if (sp->hisauth.name != NULL &&
4321 (name_len != sp->hisauth.name_len
4322 || memcmp(name, sp->hisauth.name, name_len) != 0)) {
4323 log(LOG_INFO, "%s: chap response, his name ",
4324 ifp->if_xname);
4325 sppp_print_string(name, name_len);
4326 addlog(" != expected ");
4327 sppp_print_string(sp->hisauth.name,
4328 sp->hisauth.name_len);
4329 addlog("\n");
4330 goto chap_failure;
4331 }
4332 if (debug) {
4333 log(LOG_DEBUG, "%s: chap input(%s) "
4334 "<%s id=0x%x len=%d name=",
4335 ifp->if_xname,
4336 sppp_state_name(sp->state[IDX_CHAP]),
4337 sppp_auth_type_name(PPP_CHAP, h->type),
4338 h->ident, ntohs(h->len));
4339 sppp_print_string((char *)name, name_len);
4340 addlog(" value-size=%d value=", value_len);
4341 sppp_print_bytes(value, value_len);
4342 addlog(">\n");
4343 }
4344 if (value_len != sizeof(sp->hisauth.challenge)) {
4345 if (debug)
4346 log(LOG_DEBUG,
4347 "%s: chap bad hash value length: "
4348 "%d bytes, should be %zu\n",
4349 ifp->if_xname, value_len,
4350 sizeof(sp->hisauth.challenge));
4351 goto chap_failure;
4352 }
4353
4354 MD5Init(&ctx);
4355 MD5Update(&ctx, &h->ident, 1);
4356 MD5Update(&ctx, sp->hisauth.secret, sp->hisauth.secret_len);
4357 MD5Update(&ctx, sp->hisauth.challenge, sizeof(sp->hisauth.challenge));
4358 MD5Final(digest, &ctx);
4359
4360 #define FAILMSG "Failed..."
4361 #define SUCCMSG "Welcome!"
4362
4363 if (value_len != sizeof digest ||
4364 memcmp(digest, value, value_len) != 0) {
4365 chap_failure:
4366 KASSERT(sppp_locked(sp));
4367 /* action scn, tld */
4368 x = splnet();
4369 sp->pp_auth_failures++;
4370 splx(x);
4371 sppp_auth_send(&chap, sp, CHAP_FAILURE, h->ident,
4372 sizeof(FAILMSG) - 1, (const u_char *)FAILMSG,
4373 0);
4374 chap.tld(sp);
4375 sppp_lock_exit(sp);
4376 break;
4377 }
4378 sp->pp_auth_failures = 0;
4379 /* action sca, perhaps tlu */
4380 if (sp->state[IDX_CHAP] == STATE_REQ_SENT ||
4381 sp->state[IDX_CHAP] == STATE_OPENED)
4382 sppp_auth_send(&chap, sp, CHAP_SUCCESS, h->ident,
4383 sizeof(SUCCMSG) - 1, (const u_char *)SUCCMSG,
4384 0);
4385 if (sp->state[IDX_CHAP] == STATE_REQ_SENT) {
4386 sppp_cp_change_state(&chap, sp, STATE_OPENED);
4387 chap.tlu(sp);
4388 }
4389 sppp_lock_exit(sp);
4390 break;
4391
4392 default:
4393 /* Unknown CHAP packet type -- ignore. */
4394 sppp_lock_enter(sp);
4395 if (debug) {
4396 log(LOG_DEBUG, "%s: chap unknown input(%s) "
4397 "<0x%x id=0x%xh len=%d",
4398 ifp->if_xname,
4399 sppp_state_name(sp->state[IDX_CHAP]),
4400 h->type, h->ident, ntohs(h->len));
4401 if (len > 4)
4402 sppp_print_bytes((u_char *)(h + 1), len - 4);
4403 addlog(">\n");
4404 }
4405 sppp_lock_exit(sp);
4406 break;
4407
4408 }
4409 }
4410
4411 void
4412 sppp_lock_enter(struct sppp *sp)
4413 {
4414 if (sp->pp_lock)
4415 mutex_enter(sp->pp_lock);
4416 }
4417
4418 void
4419 sppp_lock_exit(struct sppp *sp)
4420 {
4421 if (sp->pp_lock)
4422 mutex_exit(sp->pp_lock);
4423 }
4424
4425 int
4426 sppp_locked(struct sppp *sp)
4427 {
4428 return (!(sp->pp_lock) || mutex_owned(sp->pp_lock));
4429 }
4430
4431 static void
4432 sppp_chap_init(struct sppp *sp)
4433 {
4434 sppp_lock_enter(sp);
4435 /* Chap doesn't have STATE_INITIAL at all. */
4436 sp->state[IDX_CHAP] = STATE_CLOSED;
4437 sp->fail_counter[IDX_CHAP] = 0;
4438 sp->pp_seq[IDX_CHAP] = 0;
4439 sp->pp_rseq[IDX_CHAP] = 0;
4440 callout_init(&sp->ch[IDX_CHAP], 0);
4441 sppp_lock_exit(sp);
4442 }
4443
4444 static void
4445 sppp_chap_open(struct sppp *sp)
4446 {
4447 KASSERT(sppp_locked(sp));
4448 if (sp->hisauth.proto == PPP_CHAP &&
4449 (sp->lcp.opts & (1 << LCP_OPT_AUTH_PROTO)) != 0) {
4450 /* we are authenticator for CHAP, start it */
4451 chap.scr(sp);
4452 sp->rst_counter[IDX_CHAP] = sp->lcp.max_configure;
4453 sppp_cp_change_state(&chap, sp, STATE_REQ_SENT);
4454 }
4455 /* nothing to be done if we are peer, await a challenge */
4456 }
4457
4458 static void
4459 sppp_chap_close(struct sppp *sp)
4460 {
4461 KASSERT(sppp_locked(sp));
4462
4463 if (sp->state[IDX_CHAP] != STATE_CLOSED)
4464 sppp_cp_change_state(&chap, sp, STATE_CLOSED);
4465 }
4466
4467 static void
4468 sppp_chap_TO(void *cookie)
4469 {
4470 struct sppp *sp = (struct sppp *)cookie;
4471 STDDCL;
4472 int s;
4473
4474 KASSERT(!sppp_locked(sp));
4475
4476 s = splnet();
4477 sppp_lock_enter(sp);
4478
4479 if (debug)
4480 log(LOG_DEBUG, "%s: chap TO(%s) rst_counter = %d\n",
4481 ifp->if_xname,
4482 sppp_state_name(sp->state[IDX_CHAP]),
4483 sp->rst_counter[IDX_CHAP]);
4484
4485 if (--sp->rst_counter[IDX_CHAP] < 0)
4486 /* TO- event */
4487 switch (sp->state[IDX_CHAP]) {
4488 case STATE_REQ_SENT:
4489 chap.tld(sp);
4490 sppp_cp_change_state(&chap, sp, STATE_CLOSED);
4491 break;
4492 }
4493 else
4494 /* TO+ (or TO*) event */
4495 switch (sp->state[IDX_CHAP]) {
4496 case STATE_OPENED:
4497 /* TO* event */
4498 sp->rst_counter[IDX_CHAP] = sp->lcp.max_configure;
4499 /* fall through */
4500 case STATE_REQ_SENT:
4501 chap.scr(sp);
4502 /* sppp_cp_change_state() will restart the timer */
4503 sppp_cp_change_state(&chap, sp, STATE_REQ_SENT);
4504 break;
4505 }
4506
4507 sppp_lock_exit(sp);
4508 splx(s);
4509 }
4510
4511 static void
4512 sppp_chap_tlu(struct sppp *sp)
4513 {
4514 STDDCL;
4515 int i, x;
4516
4517 KASSERT(sppp_locked(sp));
4518 i = 0;
4519 sp->rst_counter[IDX_CHAP] = sp->lcp.max_configure;
4520
4521 /*
4522 * Some broken CHAP implementations (Conware CoNet, firmware
4523 * 4.0.?) don't want to re-authenticate their CHAP once the
4524 * initial challenge-response exchange has taken place.
4525 * Provide for an option to avoid rechallenges.
4526 */
4527 if ((sp->hisauth.flags & SPPP_AUTHFLAG_NORECHALLENGE) == 0) {
4528 /*
4529 * Compute the re-challenge timeout. This will yield
4530 * a number between 300 and 810 seconds.
4531 */
4532 i = 300 + ((unsigned)(cprng_fast32() & 0xff00) >> 7);
4533
4534 callout_reset(&sp->ch[IDX_CHAP], i * hz, chap.TO, sp);
4535 }
4536
4537 if (debug) {
4538 log(LOG_DEBUG,
4539 "%s: chap %s, ",
4540 ifp->if_xname,
4541 sp->pp_phase == SPPP_PHASE_NETWORK? "reconfirmed": "tlu");
4542 if ((sp->hisauth.flags & SPPP_AUTHFLAG_NORECHALLENGE) == 0)
4543 addlog("next re-challenge in %d seconds\n", i);
4544 else
4545 addlog("re-challenging supressed\n");
4546 }
4547
4548 x = splnet();
4549 sp->pp_auth_failures = 0;
4550 /* indicate to LCP that we need to be closed down */
4551 sp->lcp.protos |= (1 << IDX_CHAP);
4552
4553 if (sp->pp_flags & PP_NEEDAUTH) {
4554 /*
4555 * Remote is authenticator, but his auth proto didn't
4556 * complete yet. Defer the transition to network
4557 * phase.
4558 */
4559 splx(x);
4560 return;
4561 }
4562 splx(x);
4563
4564 /*
4565 * If we are already in phase network, we are done here. This
4566 * is the case if this is a dummy tlu event after a re-challenge.
4567 */
4568 if (sp->pp_phase != SPPP_PHASE_NETWORK)
4569 sppp_phase_network(sp);
4570 }
4571
4572 static void
4573 sppp_chap_tld(struct sppp *sp)
4574 {
4575 STDDCL;
4576
4577 KASSERT(sppp_locked(sp));
4578
4579 if (debug)
4580 log(LOG_DEBUG, "%s: chap tld\n", ifp->if_xname);
4581 callout_stop(&sp->ch[IDX_CHAP]);
4582 sp->lcp.protos &= ~(1 << IDX_CHAP);
4583
4584 lcp.Close(sp);
4585 }
4586
4587 static void
4588 sppp_chap_scr(struct sppp *sp)
4589 {
4590 uint32_t *ch;
4591 u_char clen = 4 * sizeof(uint32_t);
4592
4593 KASSERT(sppp_locked(sp));
4594
4595 if (sp->hisauth.name == NULL) {
4596 /* can't do anything useful */
4597 printf("%s: chap starting without his name being set\n",
4598 sp->pp_if.if_xname);
4599 return;
4600 }
4601
4602 /* Compute random challenge. */
4603 ch = (uint32_t *)sp->hisauth.challenge;
4604 cprng_strong(kern_cprng, ch, clen, 0);
4605
4606 sp->confid[IDX_CHAP] = ++sp->pp_seq[IDX_CHAP];
4607
4608 sppp_auth_send(&chap, sp, CHAP_CHALLENGE, sp->confid[IDX_CHAP],
4609 sizeof clen, (const char *)&clen,
4610 sizeof(sp->hisauth.challenge), sp->hisauth.challenge,
4611 0);
4612 }
4613
4614 /*
4615 *--------------------------------------------------------------------------*
4616 * *
4617 * The PAP implementation. *
4618 * *
4619 *--------------------------------------------------------------------------*
4620 */
4621 /*
4622 * For PAP, we need to keep a little state also if we are the peer, not the
4623 * authenticator. This is since we don't get a request to authenticate, but
4624 * have to repeatedly authenticate ourself until we got a response (or the
4625 * retry counter is expired).
4626 */
4627
4628 /*
4629 * Handle incoming PAP packets. */
4630 static void
4631 sppp_pap_input(struct sppp *sp, struct mbuf *m)
4632 {
4633 STDDCL;
4634 struct lcp_header *h;
4635 int len, x;
4636 u_char mlen;
4637 char *name, *secret;
4638 int name_len, secret_len;
4639
4640 KASSERT(!sppp_locked(sp));
4641
4642 /*
4643 * Malicious input might leave this uninitialized, so
4644 * init to an impossible value.
4645 */
4646 secret_len = -1;
4647
4648 len = m->m_pkthdr.len;
4649 if (len < 5) {
4650 if (debug)
4651 log(LOG_DEBUG,
4652 "%s: pap invalid packet length: %d bytes\n",
4653 ifp->if_xname, len);
4654 return;
4655 }
4656 h = mtod(m, struct lcp_header *);
4657 if (len > ntohs(h->len))
4658 len = ntohs(h->len);
4659 switch (h->type) {
4660 /* PAP request is my authproto */
4661 case PAP_REQ:
4662 sppp_lock_enter(sp);
4663 if (sp->hisauth.name == NULL || sp->hisauth.secret == NULL) {
4664 /* can't do anything useful */
4665 printf("%s: "
4666 "pap request without his name and his secret being set\n",
4667 ifp->if_xname);
4668 sppp_lock_exit(sp);
4669 break;
4670 }
4671 name = 1 + (u_char *)(h + 1);
4672 name_len = name[-1];
4673 secret = name + name_len + 1;
4674 if (name_len > len - 6 ||
4675 (secret_len = secret[-1]) > len - 6 - name_len) {
4676 if (debug) {
4677 log(LOG_DEBUG, "%s: pap corrupted input "
4678 "<%s id=0x%x len=%d",
4679 ifp->if_xname,
4680 sppp_auth_type_name(PPP_PAP, h->type),
4681 h->ident, ntohs(h->len));
4682 if (len > 4)
4683 sppp_print_bytes((u_char *)(h + 1),
4684 len - 4);
4685 addlog(">\n");
4686 }
4687 sppp_lock_exit(sp);
4688 break;
4689 }
4690 if (debug) {
4691 log(LOG_DEBUG, "%s: pap input(%s) "
4692 "<%s id=0x%x len=%d name=",
4693 ifp->if_xname,
4694 sppp_state_name(sp->state[IDX_PAP]),
4695 sppp_auth_type_name(PPP_PAP, h->type),
4696 h->ident, ntohs(h->len));
4697 sppp_print_string((char *)name, name_len);
4698 addlog(" secret=");
4699 sppp_print_string((char *)secret, secret_len);
4700 addlog(">\n");
4701 }
4702 if (name_len != sp->hisauth.name_len ||
4703 secret_len != sp->hisauth.secret_len ||
4704 memcmp(name, sp->hisauth.name, name_len) != 0 ||
4705 memcmp(secret, sp->hisauth.secret, secret_len) != 0) {
4706 /* action scn, tld */
4707 sp->pp_auth_failures++;
4708 mlen = sizeof(FAILMSG) - 1;
4709 sppp_auth_send(&pap, sp, PAP_NAK, h->ident,
4710 sizeof mlen, (const char *)&mlen,
4711 sizeof(FAILMSG) - 1, (const u_char *)FAILMSG,
4712 0);
4713 pap.tld(sp);
4714 sppp_lock_exit(sp);
4715 break;
4716 }
4717 /* action sca, perhaps tlu */
4718 if (sp->state[IDX_PAP] == STATE_REQ_SENT ||
4719 sp->state[IDX_PAP] == STATE_OPENED) {
4720 mlen = sizeof(SUCCMSG) - 1;
4721 sppp_auth_send(&pap, sp, PAP_ACK, h->ident,
4722 sizeof mlen, (const char *)&mlen,
4723 sizeof(SUCCMSG) - 1, (const u_char *)SUCCMSG,
4724 0);
4725 }
4726 if (sp->state[IDX_PAP] == STATE_REQ_SENT) {
4727 sppp_cp_change_state(&pap, sp, STATE_OPENED);
4728 pap.tlu(sp);
4729 }
4730 sppp_lock_exit(sp);
4731 break;
4732
4733 /* ack and nak are his authproto */
4734 case PAP_ACK:
4735 sppp_lock_enter(sp);
4736 callout_stop(&sp->pap_my_to_ch);
4737 if (debug) {
4738 log(LOG_DEBUG, "%s: pap success",
4739 ifp->if_xname);
4740 name = 1 + (u_char *)(h + 1);
4741 name_len = name[-1];
4742 if (len > 5 && name_len < len+4) {
4743 addlog(": ");
4744 sppp_print_string(name, name_len);
4745 }
4746 addlog("\n");
4747 }
4748 x = splnet();
4749 sp->pp_auth_failures = 0;
4750 sp->pp_flags &= ~PP_NEEDAUTH;
4751 if (sp->myauth.proto == PPP_PAP &&
4752 (sp->lcp.opts & (1 << LCP_OPT_AUTH_PROTO)) &&
4753 (sp->lcp.protos & (1 << IDX_PAP)) == 0) {
4754 /*
4755 * We are authenticator for PAP but didn't
4756 * complete yet. Leave it to tlu to proceed
4757 * to network phase.
4758 */
4759 splx(x);
4760 sppp_lock_exit(sp);
4761 break;
4762 }
4763 splx(x);
4764 sppp_phase_network(sp);
4765 sppp_lock_exit(sp);
4766 break;
4767
4768 case PAP_NAK:
4769 sppp_lock_enter(sp);
4770 callout_stop(&sp->pap_my_to_ch);
4771 sp->pp_auth_failures++;
4772 if (debug) {
4773 log(LOG_INFO, "%s: pap failure",
4774 ifp->if_xname);
4775 name = 1 + (u_char *)(h + 1);
4776 name_len = name[-1];
4777 if (len > 5 && name_len < len+4) {
4778 addlog(": ");
4779 sppp_print_string(name, name_len);
4780 }
4781 addlog("\n");
4782 } else
4783 log(LOG_INFO, "%s: pap failure\n",
4784 ifp->if_xname);
4785 /* await LCP shutdown by authenticator */
4786 sppp_lock_exit(sp);
4787 break;
4788
4789 default:
4790 /* Unknown PAP packet type -- ignore. */
4791 sppp_lock_enter(sp);
4792 if (debug) {
4793 log(LOG_DEBUG, "%s: pap corrupted input "
4794 "<0x%x id=0x%x len=%d",
4795 ifp->if_xname,
4796 h->type, h->ident, ntohs(h->len));
4797 if (len > 4)
4798 sppp_print_bytes((u_char *)(h + 1), len - 4);
4799 addlog(">\n");
4800 }
4801 sppp_lock_exit(sp);
4802 break;
4803
4804 }
4805 }
4806
4807 static void
4808 sppp_pap_init(struct sppp *sp)
4809 {
4810 /* PAP doesn't have STATE_INITIAL at all. */
4811 sppp_lock_enter(sp);
4812 sp->state[IDX_PAP] = STATE_CLOSED;
4813 sp->fail_counter[IDX_PAP] = 0;
4814 sp->pp_seq[IDX_PAP] = 0;
4815 sp->pp_rseq[IDX_PAP] = 0;
4816 callout_init(&sp->ch[IDX_PAP], 0);
4817 callout_init(&sp->pap_my_to_ch, 0);
4818 sppp_lock_exit(sp);
4819 }
4820
4821 static void
4822 sppp_pap_open(struct sppp *sp)
4823 {
4824 KASSERT(sppp_locked(sp));
4825
4826 if (sp->hisauth.proto == PPP_PAP &&
4827 (sp->lcp.opts & (1 << LCP_OPT_AUTH_PROTO)) != 0) {
4828 /* we are authenticator for PAP, start our timer */
4829 sp->rst_counter[IDX_PAP] = sp->lcp.max_configure;
4830 sppp_cp_change_state(&pap, sp, STATE_REQ_SENT);
4831 }
4832 if (sp->myauth.proto == PPP_PAP) {
4833 /* we are peer, send a request, and start a timer */
4834 pap.scr(sp);
4835 callout_reset(&sp->pap_my_to_ch, sp->lcp.timeout,
4836 sppp_pap_my_TO, sp);
4837 }
4838 }
4839
4840 static void
4841 sppp_pap_close(struct sppp *sp)
4842 {
4843 KASSERT(sppp_locked(sp));
4844 if (sp->state[IDX_PAP] != STATE_CLOSED)
4845 sppp_cp_change_state(&pap, sp, STATE_CLOSED);
4846 }
4847
4848 /*
4849 * That's the timeout routine if we are authenticator. Since the
4850 * authenticator is basically passive in PAP, we can't do much here.
4851 */
4852 static void
4853 sppp_pap_TO(void *cookie)
4854 {
4855 struct sppp *sp = (struct sppp *)cookie;
4856 STDDCL;
4857 int s;
4858
4859 KASSERT(!sppp_locked(sp));
4860
4861 s = splnet();
4862 sppp_lock_enter(sp);
4863 if (debug)
4864 log(LOG_DEBUG, "%s: pap TO(%s) rst_counter = %d\n",
4865 ifp->if_xname,
4866 sppp_state_name(sp->state[IDX_PAP]),
4867 sp->rst_counter[IDX_PAP]);
4868
4869 if (--sp->rst_counter[IDX_PAP] < 0)
4870 /* TO- event */
4871 switch (sp->state[IDX_PAP]) {
4872 case STATE_REQ_SENT:
4873 pap.tld(sp);
4874 sppp_cp_change_state(&pap, sp, STATE_CLOSED);
4875 break;
4876 }
4877 else
4878 /* TO+ event, not very much we could do */
4879 switch (sp->state[IDX_PAP]) {
4880 case STATE_REQ_SENT:
4881 /* sppp_cp_change_state() will restart the timer */
4882 sppp_cp_change_state(&pap, sp, STATE_REQ_SENT);
4883 break;
4884 }
4885
4886 sppp_lock_exit(sp);
4887 splx(s);
4888 }
4889
4890 /*
4891 * That's the timeout handler if we are peer. Since the peer is active,
4892 * we need to retransmit our PAP request since it is apparently lost.
4893 * XXX We should impose a max counter.
4894 */
4895 static void
4896 sppp_pap_my_TO(void *cookie)
4897 {
4898 struct sppp *sp = (struct sppp *)cookie;
4899 STDDCL;
4900
4901 KASSERT(!sppp_locked(sp));
4902
4903 sppp_lock_enter(sp);
4904 if (debug)
4905 log(LOG_DEBUG, "%s: pap peer TO\n",
4906 ifp->if_xname);
4907
4908 pap.scr(sp);
4909 sppp_lock_exit(sp);
4910 }
4911
4912 static void
4913 sppp_pap_tlu(struct sppp *sp)
4914 {
4915 STDDCL;
4916 int x;
4917
4918 KASSERT(sppp_locked(sp));
4919 sp->rst_counter[IDX_PAP] = sp->lcp.max_configure;
4920
4921 if (debug)
4922 log(LOG_DEBUG, "%s: %s tlu\n",
4923 ifp->if_xname, pap.name);
4924
4925 x = splnet();
4926 sp->pp_auth_failures = 0;
4927 /* indicate to LCP that we need to be closed down */
4928 sp->lcp.protos |= (1 << IDX_PAP);
4929
4930 if (sp->pp_flags & PP_NEEDAUTH) {
4931 /*
4932 * Remote is authenticator, but his auth proto didn't
4933 * complete yet. Defer the transition to network
4934 * phase.
4935 */
4936 splx(x);
4937 return;
4938 }
4939 splx(x);
4940 sppp_phase_network(sp);
4941 }
4942
4943 static void
4944 sppp_pap_tld(struct sppp *sp)
4945 {
4946 STDDCL;
4947
4948 KASSERT(sppp_locked(sp));
4949
4950 if (debug)
4951 log(LOG_DEBUG, "%s: pap tld\n", ifp->if_xname);
4952 callout_stop(&sp->ch[IDX_PAP]);
4953 callout_stop(&sp->pap_my_to_ch);
4954 sp->lcp.protos &= ~(1 << IDX_PAP);
4955
4956 lcp.Close(sp);
4957 }
4958
4959 static void
4960 sppp_pap_scr(struct sppp *sp)
4961 {
4962 u_char idlen, pwdlen;
4963
4964 KASSERT(sppp_locked(sp));
4965
4966 if (sp->myauth.secret == NULL || sp->myauth.name == NULL) {
4967 /* can't do anything useful */
4968 printf("%s: pap starting without my name and secret being set\n",
4969 sp->pp_if.if_xname);
4970 return;
4971 }
4972
4973 sp->confid[IDX_PAP] = ++sp->pp_seq[IDX_PAP];
4974 pwdlen = sp->myauth.secret_len;
4975 idlen = sp->myauth.name_len;
4976
4977 sppp_auth_send(&pap, sp, PAP_REQ, sp->confid[IDX_PAP],
4978 sizeof idlen, (const char *)&idlen,
4979 idlen, sp->myauth.name,
4980 sizeof pwdlen, (const char *)&pwdlen,
4981 pwdlen, sp->myauth.secret,
4982 0);
4983 }
4984
4985 /*
4986 * Random miscellaneous functions.
4987 */
4988
4989 /*
4990 * Send a PAP or CHAP proto packet.
4991 *
4992 * Varadic function, each of the elements for the ellipsis is of type
4993 * ``size_t mlen, const u_char *msg''. Processing will stop iff
4994 * mlen == 0.
4995 * NOTE: never declare variadic functions with types subject to type
4996 * promotion (i.e. u_char). This is asking for big trouble depending
4997 * on the architecture you are on...
4998 */
4999
5000 static void
5001 sppp_auth_send(const struct cp *cp, struct sppp *sp,
5002 unsigned int type, unsigned int id,
5003 ...)
5004 {
5005 STDDCL;
5006 struct lcp_header *lh;
5007 struct mbuf *m;
5008 u_char *p;
5009 int len;
5010 size_t pkthdrlen;
5011 unsigned int mlen;
5012 const char *msg;
5013 va_list ap;
5014
5015 KASSERT(sppp_locked(sp));
5016
5017 MGETHDR(m, M_DONTWAIT, MT_DATA);
5018 if (! m)
5019 return;
5020 m_reset_rcvif(m);
5021
5022 if (sp->pp_flags & PP_NOFRAMING) {
5023 *mtod(m, uint16_t *) = htons(cp->proto);
5024 pkthdrlen = 2;
5025 lh = (struct lcp_header *)(mtod(m, uint8_t *)+2);
5026 } else {
5027 struct ppp_header *h;
5028 h = mtod(m, struct ppp_header *);
5029 h->address = PPP_ALLSTATIONS; /* broadcast address */
5030 h->control = PPP_UI; /* Unnumbered Info */
5031 h->protocol = htons(cp->proto);
5032 pkthdrlen = PPP_HEADER_LEN;
5033
5034 lh = (struct lcp_header *)(h + 1);
5035 }
5036
5037 lh->type = type;
5038 lh->ident = id;
5039 p = (u_char *)(lh + 1);
5040
5041 va_start(ap, id);
5042 len = 0;
5043
5044 while ((mlen = (unsigned int)va_arg(ap, size_t)) != 0) {
5045 msg = va_arg(ap, const char *);
5046 len += mlen;
5047 if (len > MHLEN - pkthdrlen - LCP_HEADER_LEN) {
5048 va_end(ap);
5049 m_freem(m);
5050 return;
5051 }
5052
5053 memcpy(p, msg, mlen);
5054 p += mlen;
5055 }
5056 va_end(ap);
5057
5058 m->m_pkthdr.len = m->m_len = pkthdrlen + LCP_HEADER_LEN + len;
5059 lh->len = htons(LCP_HEADER_LEN + len);
5060
5061 if (debug) {
5062 log(LOG_DEBUG, "%s: %s output <%s id=0x%x len=%d",
5063 ifp->if_xname, cp->name,
5064 sppp_auth_type_name(cp->proto, lh->type),
5065 lh->ident, ntohs(lh->len));
5066 if (len)
5067 sppp_print_bytes((u_char *)(lh + 1), len);
5068 addlog(">\n");
5069 }
5070 if (IF_QFULL(&sp->pp_cpq)) {
5071 IF_DROP(&sp->pp_fastq);
5072 IF_DROP(&ifp->if_snd);
5073 m_freem(m);
5074 ++ifp->if_oerrors;
5075 return;
5076 } else
5077 IF_ENQUEUE(&sp->pp_cpq, m);
5078 if (! (ifp->if_flags & IFF_OACTIVE)) {
5079 sppp_lock_exit(sp);
5080 if_start_lock(ifp);
5081 sppp_lock_enter(sp);
5082 }
5083 ifp->if_obytes += m->m_pkthdr.len + 3;
5084 }
5085
5086 /*
5087 * Send keepalive packets, every 10 seconds.
5088 */
5089 static void
5090 sppp_keepalive(void *dummy)
5091 {
5092 struct sppp *sp;
5093 int s;
5094 time_t now;
5095
5096 SPPPQ_LOCK();
5097
5098 s = splnet();
5099 now = time_uptime;
5100 for (sp=spppq; sp; sp=sp->pp_next) {
5101 struct ifnet *ifp = NULL;
5102
5103 sppp_lock_enter(sp);
5104 ifp = &sp->pp_if;
5105
5106 /* check idle timeout */
5107 if ((sp->pp_idle_timeout != 0) && (ifp->if_flags & IFF_RUNNING)
5108 && (sp->pp_phase == SPPP_PHASE_NETWORK)) {
5109 /* idle timeout is enabled for this interface */
5110 if ((now-sp->pp_last_activity) >= sp->pp_idle_timeout) {
5111 if (ifp->if_flags & IFF_DEBUG)
5112 printf("%s: no activity for %lu seconds\n",
5113 sp->pp_if.if_xname,
5114 (unsigned long)(now-sp->pp_last_activity));
5115 lcp.Close(sp);
5116 sppp_lock_exit(sp);
5117 continue;
5118 }
5119 }
5120
5121 /* Keepalive mode disabled or channel down? */
5122 if (! (sp->pp_flags & PP_KEEPALIVE) ||
5123 ! (ifp->if_flags & IFF_RUNNING)) {
5124 sppp_lock_exit(sp);
5125 continue;
5126 }
5127
5128
5129 /* No keepalive in PPP mode if LCP not opened yet. */
5130 if (! (sp->pp_flags & PP_CISCO) &&
5131 sp->pp_phase < SPPP_PHASE_AUTHENTICATE) {
5132 sppp_lock_exit(sp);
5133 continue;
5134 }
5135
5136 /* No echo reply, but maybe user data passed through? */
5137 if ((now - sp->pp_last_receive) < sp->pp_max_noreceive) {
5138 sp->pp_alivecnt = 0;
5139 sppp_lock_exit(sp);
5140 continue;
5141 }
5142
5143 if (sp->pp_alivecnt >= sp->pp_maxalive) {
5144 /* No keepalive packets got. Stop the interface. */
5145 sppp_lock_exit(sp);
5146 if_down (ifp);
5147 sppp_lock_enter(sp);
5148 IF_PURGE(&sp->pp_cpq);
5149 if (! (sp->pp_flags & PP_CISCO)) {
5150 printf("%s: LCP keepalive timed out, going to restart the connection\n",
5151 ifp->if_xname);
5152 sp->pp_alivecnt = 0;
5153
5154 /* we are down, close all open protocols */
5155 lcp.Close(sp);
5156
5157 /* And now prepare LCP to reestablish the link, if configured to do so. */
5158 sppp_cp_change_state(&lcp, sp, STATE_STOPPED);
5159
5160 /* Close connection immediately, completition of this
5161 * will summon the magic needed to reestablish it. */
5162 if (sp->pp_tlf)
5163 sp->pp_tlf(sp);
5164
5165 sppp_lock_exit(sp);
5166 continue;
5167 }
5168 }
5169 if (sp->pp_alivecnt < sp->pp_maxalive)
5170 ++sp->pp_alivecnt;
5171 if (sp->pp_flags & PP_CISCO)
5172 sppp_cisco_send(sp, CISCO_KEEPALIVE_REQ,
5173 ++sp->pp_seq[IDX_LCP], sp->pp_rseq[IDX_LCP]);
5174 else if (sp->pp_phase >= SPPP_PHASE_AUTHENTICATE) {
5175 int32_t nmagic = htonl(sp->lcp.magic);
5176 sp->lcp.echoid = ++sp->pp_seq[IDX_LCP];
5177 sppp_cp_send(sp, PPP_LCP, ECHO_REQ,
5178 sp->lcp.echoid, 4, &nmagic);
5179 }
5180
5181 sppp_lock_exit(sp);
5182 }
5183 splx(s);
5184 callout_reset(&keepalive_ch, hz * LCP_KEEPALIVE_INTERVAL, sppp_keepalive, NULL);
5185
5186 SPPPQ_UNLOCK();
5187 }
5188
5189 #ifdef INET
5190 /*
5191 * Get both IP addresses.
5192 */
5193 static void
5194 sppp_get_ip_addrs(struct sppp *sp, uint32_t *src, uint32_t *dst, uint32_t *srcmask)
5195 {
5196 struct ifnet *ifp = &sp->pp_if;
5197 struct ifaddr *ifa;
5198 struct sockaddr_in *si, *sm;
5199 uint32_t ssrc, ddst;
5200
5201 sm = NULL;
5202 ssrc = ddst = 0;
5203 /*
5204 * Pick the first AF_INET address from the list,
5205 * aliases don't make any sense on a p2p link anyway.
5206 */
5207 si = 0;
5208 IFADDR_READER_FOREACH(ifa, ifp) {
5209 if (ifa->ifa_addr->sa_family == AF_INET) {
5210 si = (struct sockaddr_in *)ifa->ifa_addr;
5211 sm = (struct sockaddr_in *)ifa->ifa_netmask;
5212 if (si)
5213 break;
5214 }
5215 }
5216 if (ifa) {
5217 if (si && si->sin_addr.s_addr) {
5218 ssrc = si->sin_addr.s_addr;
5219 if (srcmask)
5220 *srcmask = ntohl(sm->sin_addr.s_addr);
5221 }
5222
5223 si = (struct sockaddr_in *)ifa->ifa_dstaddr;
5224 if (si && si->sin_addr.s_addr)
5225 ddst = si->sin_addr.s_addr;
5226 }
5227
5228 if (dst) *dst = ntohl(ddst);
5229 if (src) *src = ntohl(ssrc);
5230 }
5231
5232 /*
5233 * Set IP addresses. Must be called at splnet.
5234 * If an address is 0, leave it the way it is.
5235 */
5236 static void
5237 sppp_set_ip_addrs_work(struct work *wk, struct sppp *sp)
5238 {
5239 STDDCL;
5240 struct ifaddr *ifa;
5241 struct sockaddr_in *si, *dest;
5242 uint32_t myaddr = 0, hisaddr = 0;
5243 int s;
5244
5245 /*
5246 * Pick the first AF_INET address from the list,
5247 * aliases don't make any sense on a p2p link anyway.
5248 */
5249 si = dest = NULL;
5250 s = pserialize_read_enter();
5251 IFADDR_READER_FOREACH(ifa, ifp) {
5252 if (ifa->ifa_addr->sa_family == AF_INET) {
5253 si = (struct sockaddr_in *)ifa->ifa_addr;
5254 dest = (struct sockaddr_in *)ifa->ifa_dstaddr;
5255 break;
5256 }
5257 }
5258 pserialize_read_exit(s);
5259
5260 if ((sp->ipcp.flags & IPCP_MYADDR_DYN) && (sp->ipcp.flags & IPCP_MYADDR_SEEN))
5261 myaddr = sp->ipcp.req_myaddr;
5262 else if (si != NULL)
5263 myaddr = ntohl(si->sin_addr.s_addr);
5264
5265 if ((sp->ipcp.flags & IPCP_HISADDR_DYN) && (sp->ipcp.flags & IPCP_HISADDR_SEEN))
5266 hisaddr = sp->ipcp.req_hisaddr;
5267 else if (dest != NULL)
5268 hisaddr = ntohl(dest->sin_addr.s_addr);
5269
5270 if (si != NULL && dest != NULL) {
5271 int error;
5272 struct sockaddr_in new_sin = *si;
5273 struct sockaddr_in new_dst = *dest;
5274
5275 if (myaddr != 0)
5276 new_sin.sin_addr.s_addr = htonl(myaddr);
5277 if (hisaddr != 0) {
5278 new_dst.sin_addr.s_addr = htonl(hisaddr);
5279 if (new_dst.sin_addr.s_addr != dest->sin_addr.s_addr)
5280 sp->ipcp.saved_hisaddr = dest->sin_addr.s_addr;
5281 }
5282
5283 in_addrhash_remove(ifatoia(ifa));
5284
5285 error = in_ifinit(ifp, ifatoia(ifa), &new_sin, &new_dst, 0);
5286
5287 in_addrhash_insert(ifatoia(ifa));
5288
5289 if (debug && error)
5290 {
5291 log(LOG_DEBUG, "%s: %s: in_ifinit failed, error=%d\n",
5292 ifp->if_xname, __func__, error);
5293 }
5294 if (!error) {
5295 pfil_run_addrhooks(if_pfil, SIOCAIFADDR, ifa);
5296 }
5297 }
5298
5299 if (ifp->if_mtu > sp->lcp.their_mru) {
5300 sp->pp_saved_mtu = ifp->if_mtu;
5301 ifp->if_mtu = sp->lcp.their_mru;
5302 if (debug)
5303 log(LOG_DEBUG,
5304 "%s: setting MTU to %" PRIu64 " bytes\n",
5305 ifp->if_xname, ifp->if_mtu);
5306 }
5307
5308 if (sp->pp_con)
5309 sp->pp_con(sp);
5310 }
5311
5312 static void
5313 sppp_set_ip_addrs(struct sppp *sp)
5314 {
5315 struct ifnet *ifp = &sp->pp_if;
5316
5317 if (!pcq_put(sp->ipcp.update_addrs_q, (void *)IPCP_SET_ADDRS)) {
5318 log(LOG_WARNING, "%s: cannot enqueued, ignore sppp_clear_ip_addrs\n",
5319 ifp->if_xname);
5320 return;
5321 }
5322
5323 if (atomic_swap_uint(&sp->ipcp.update_addrs_enqueued, 1) == 1)
5324 return;
5325
5326 workqueue_enqueue(sp->ipcp.update_addrs_wq, &sp->ipcp.update_addrs_wk, NULL);
5327 }
5328
5329 /*
5330 * Clear IP addresses. Must be called at splnet.
5331 */
5332 static void
5333 sppp_clear_ip_addrs_work(struct work *wk, struct sppp *sp)
5334 {
5335 STDDCL;
5336 struct ifaddr *ifa;
5337 struct sockaddr_in *si, *dest;
5338 int s;
5339
5340 /*
5341 * Pick the first AF_INET address from the list,
5342 * aliases don't make any sense on a p2p link anyway.
5343 */
5344 si = dest = NULL;
5345 s = pserialize_read_enter();
5346 IFADDR_READER_FOREACH(ifa, ifp) {
5347 if (ifa->ifa_addr->sa_family == AF_INET) {
5348 si = (struct sockaddr_in *)ifa->ifa_addr;
5349 dest = (struct sockaddr_in *)ifa->ifa_dstaddr;
5350 break;
5351 }
5352 }
5353 pserialize_read_exit(s);
5354
5355 if (si != NULL) {
5356 struct sockaddr_in new_sin = *si;
5357 struct sockaddr_in new_dst = *dest;
5358 int error;
5359
5360 if (sp->ipcp.flags & IPCP_MYADDR_DYN)
5361 new_sin.sin_addr.s_addr = 0;
5362 if (sp->ipcp.flags & IPCP_HISADDR_DYN)
5363 new_dst.sin_addr.s_addr = sp->ipcp.saved_hisaddr;
5364
5365 in_addrhash_remove(ifatoia(ifa));
5366
5367 error = in_ifinit(ifp, ifatoia(ifa), &new_sin, &new_dst, 0);
5368
5369 in_addrhash_insert(ifatoia(ifa));
5370
5371 if (debug && error)
5372 {
5373 log(LOG_DEBUG, "%s: %s: in_ifinit failed, error=%d\n",
5374 ifp->if_xname, __func__, error);
5375 }
5376 if (!error) {
5377 pfil_run_addrhooks(if_pfil, SIOCAIFADDR, ifa);
5378 }
5379 }
5380
5381 if (sp->pp_saved_mtu > 0) {
5382 ifp->if_mtu = sp->pp_saved_mtu;
5383 sp->pp_saved_mtu = 0;
5384 if (debug)
5385 log(LOG_DEBUG,
5386 "%s: resetting MTU to %" PRIu64 " bytes\n",
5387 ifp->if_xname, ifp->if_mtu);
5388 }
5389 }
5390
5391 static void
5392 sppp_clear_ip_addrs(struct sppp *sp)
5393 {
5394 struct ifnet *ifp = &sp->pp_if;
5395
5396 if (!pcq_put(sp->ipcp.update_addrs_q, (void *)IPCP_CLEAR_ADDRS)) {
5397 log(LOG_WARNING, "%s: cannot enqueued, ignore sppp_clear_ip_addrs\n",
5398 ifp->if_xname);
5399 return;
5400 }
5401
5402 if (atomic_swap_uint(&sp->ipcp.update_addrs_enqueued, 1) == 1)
5403 return;
5404
5405 workqueue_enqueue(sp->ipcp.update_addrs_wq, &sp->ipcp.update_addrs_wk, NULL);
5406 }
5407
5408 static void
5409 sppp_update_ip_addrs_work(struct work *wk, void *arg)
5410 {
5411 struct sppp *sp = arg;
5412 void *work;
5413
5414 atomic_swap_uint(&sp->ipcp.update_addrs_enqueued, 0);
5415
5416 while ((work = pcq_get(sp->ipcp.update_addrs_q)) != NULL) {
5417 int update = (intptr_t)work;
5418
5419 if (update == IPCP_SET_ADDRS)
5420 sppp_set_ip_addrs_work(wk, sp);
5421 else if (update == IPCP_CLEAR_ADDRS)
5422 sppp_clear_ip_addrs_work(wk, sp);
5423 }
5424 }
5425 #endif
5426
5427 #ifdef INET6
5428 /*
5429 * Get both IPv6 addresses.
5430 */
5431 static void
5432 sppp_get_ip6_addrs(struct sppp *sp, struct in6_addr *src, struct in6_addr *dst,
5433 struct in6_addr *srcmask)
5434 {
5435 struct ifnet *ifp = &sp->pp_if;
5436 struct ifaddr *ifa;
5437 struct sockaddr_in6 *si, *sm;
5438 struct in6_addr ssrc, ddst;
5439
5440 sm = NULL;
5441 memset(&ssrc, 0, sizeof(ssrc));
5442 memset(&ddst, 0, sizeof(ddst));
5443 /*
5444 * Pick the first link-local AF_INET6 address from the list,
5445 * aliases don't make any sense on a p2p link anyway.
5446 */
5447 si = 0;
5448 IFADDR_READER_FOREACH(ifa, ifp)
5449 if (ifa->ifa_addr->sa_family == AF_INET6) {
5450 si = (struct sockaddr_in6 *)ifa->ifa_addr;
5451 sm = (struct sockaddr_in6 *)ifa->ifa_netmask;
5452 if (si && IN6_IS_ADDR_LINKLOCAL(&si->sin6_addr))
5453 break;
5454 }
5455 if (ifa) {
5456 if (si && !IN6_IS_ADDR_UNSPECIFIED(&si->sin6_addr)) {
5457 memcpy(&ssrc, &si->sin6_addr, sizeof(ssrc));
5458 if (srcmask) {
5459 memcpy(srcmask, &sm->sin6_addr,
5460 sizeof(*srcmask));
5461 }
5462 }
5463
5464 si = (struct sockaddr_in6 *)ifa->ifa_dstaddr;
5465 if (si && !IN6_IS_ADDR_UNSPECIFIED(&si->sin6_addr))
5466 memcpy(&ddst, &si->sin6_addr, sizeof(ddst));
5467 }
5468
5469 if (dst)
5470 memcpy(dst, &ddst, sizeof(*dst));
5471 if (src)
5472 memcpy(src, &ssrc, sizeof(*src));
5473 }
5474
5475 #ifdef IPV6CP_MYIFID_DYN
5476 /*
5477 * Generate random ifid.
5478 */
5479 static void
5480 sppp_gen_ip6_addr(struct sppp *sp, struct in6_addr *addr)
5481 {
5482 /* TBD */
5483 }
5484
5485 /*
5486 * Set my IPv6 address. Must be called at splnet.
5487 */
5488 static void
5489 sppp_set_ip6_addr(struct sppp *sp, const struct in6_addr *src)
5490 {
5491 STDDCL;
5492 struct ifaddr *ifa;
5493 struct sockaddr_in6 *sin6;
5494
5495 /*
5496 * Pick the first link-local AF_INET6 address from the list,
5497 * aliases don't make any sense on a p2p link anyway.
5498 */
5499
5500 sin6 = NULL;
5501 IFADDR_READER_FOREACH(ifa, ifp)
5502 {
5503 if (ifa->ifa_addr->sa_family == AF_INET6)
5504 {
5505 sin6 = (struct sockaddr_in6 *)ifa->ifa_addr;
5506 if (sin6 && IN6_IS_ADDR_LINKLOCAL(&sin6->sin6_addr))
5507 break;
5508 }
5509 }
5510
5511 if (ifa && sin6)
5512 {
5513 int error;
5514 struct sockaddr_in6 new_sin6 = *sin6;
5515
5516 memcpy(&new_sin6.sin6_addr, src, sizeof(new_sin6.sin6_addr));
5517 error = in6_ifinit(ifp, ifatoia6(ifa), &new_sin6, 1);
5518 if (debug && error)
5519 {
5520 log(LOG_DEBUG, "%s: %s: in6_ifinit failed, error=%d\n",
5521 ifp->if_xname, __func__, error);
5522 }
5523 if (!error) {
5524 pfil_run_addrhooks(if_pfil, SIOCAIFADDR_IN6, ifa);
5525 }
5526 }
5527 }
5528 #endif
5529
5530 /*
5531 * Suggest a candidate address to be used by peer.
5532 */
5533 static void
5534 sppp_suggest_ip6_addr(struct sppp *sp, struct in6_addr *suggest)
5535 {
5536 struct in6_addr myaddr;
5537 struct timeval tv;
5538
5539 sppp_get_ip6_addrs(sp, &myaddr, 0, 0);
5540
5541 myaddr.s6_addr[8] &= ~0x02; /* u bit to "local" */
5542 microtime(&tv);
5543 if ((tv.tv_usec & 0xff) == 0 && (tv.tv_sec & 0xff) == 0) {
5544 myaddr.s6_addr[14] ^= 0xff;
5545 myaddr.s6_addr[15] ^= 0xff;
5546 } else {
5547 myaddr.s6_addr[14] ^= (tv.tv_usec & 0xff);
5548 myaddr.s6_addr[15] ^= (tv.tv_sec & 0xff);
5549 }
5550 if (suggest)
5551 memcpy(suggest, &myaddr, sizeof(myaddr));
5552 }
5553 #endif /*INET6*/
5554
5555 /*
5556 * Process ioctl requests specific to the PPP interface.
5557 * Permissions have already been checked.
5558 */
5559 static int
5560 sppp_params(struct sppp *sp, u_long cmd, void *data)
5561 {
5562 switch (cmd) {
5563 case SPPPGETAUTHCFG:
5564 {
5565 struct spppauthcfg *cfg = (struct spppauthcfg *)data;
5566 int error;
5567 size_t len;
5568
5569 sppp_lock_enter(sp);
5570
5571 cfg->myauthflags = sp->myauth.flags;
5572 cfg->hisauthflags = sp->hisauth.flags;
5573 strlcpy(cfg->ifname, sp->pp_if.if_xname, sizeof(cfg->ifname));
5574 cfg->hisauth = 0;
5575 if (sp->hisauth.proto)
5576 cfg->hisauth = (sp->hisauth.proto == PPP_PAP) ? SPPP_AUTHPROTO_PAP : SPPP_AUTHPROTO_CHAP;
5577 cfg->myauth = 0;
5578 if (sp->myauth.proto)
5579 cfg->myauth = (sp->myauth.proto == PPP_PAP) ? SPPP_AUTHPROTO_PAP : SPPP_AUTHPROTO_CHAP;
5580 if (cfg->myname_length == 0) {
5581 if (sp->myauth.name != NULL)
5582 cfg->myname_length = sp->myauth.name_len + 1;
5583 } else {
5584 if (sp->myauth.name == NULL) {
5585 cfg->myname_length = 0;
5586 } else {
5587 len = sp->myauth.name_len + 1;
5588
5589 sppp_lock_exit(sp);
5590
5591 if (cfg->myname_length < len)
5592 return (ENAMETOOLONG);
5593 error = copyout(sp->myauth.name, cfg->myname, len);
5594 if (error) return error;
5595
5596 sppp_lock_enter(sp);
5597 }
5598 }
5599 if (cfg->hisname_length == 0) {
5600 if (sp->hisauth.name != NULL)
5601 cfg->hisname_length = sp->hisauth.name_len + 1;
5602 } else {
5603 if (sp->hisauth.name == NULL) {
5604 cfg->hisname_length = 0;
5605 } else {
5606 len = sp->hisauth.name_len + 1;
5607
5608 sppp_lock_exit(sp);
5609 if (cfg->hisname_length < len)
5610 return (ENAMETOOLONG);
5611 error = copyout(sp->hisauth.name, cfg->hisname, len);
5612 if (error) return error;
5613 sppp_lock_enter(sp);
5614 }
5615 }
5616 sppp_lock_exit(sp);
5617 }
5618 break;
5619 case SPPPSETAUTHCFG:
5620 {
5621 struct spppauthcfg *cfg = (struct spppauthcfg *)data;
5622 int error;
5623
5624 sppp_lock_enter(sp);
5625
5626 if (sp->myauth.name) {
5627 free(sp->myauth.name, M_DEVBUF);
5628 sp->myauth.name = NULL;
5629 }
5630 if (sp->myauth.secret) {
5631 free(sp->myauth.secret, M_DEVBUF);
5632 sp->myauth.secret = NULL;
5633 }
5634 if (sp->hisauth.name) {
5635 free(sp->hisauth.name, M_DEVBUF);
5636 sp->hisauth.name = NULL;
5637 }
5638 if (sp->hisauth.secret) {
5639 free(sp->hisauth.secret, M_DEVBUF);
5640 sp->hisauth.secret = NULL;
5641 }
5642
5643 if (cfg->hisname != NULL && cfg->hisname_length > 0) {
5644 if (cfg->hisname_length >= MCLBYTES) {
5645 sppp_lock_exit(sp);
5646 return (ENAMETOOLONG);
5647 }
5648 sp->hisauth.name = malloc(cfg->hisname_length, M_DEVBUF, M_WAITOK);
5649 error = copyin(cfg->hisname, sp->hisauth.name, cfg->hisname_length);
5650 if (error) {
5651 free(sp->hisauth.name, M_DEVBUF);
5652 sp->hisauth.name = NULL;
5653 sppp_lock_exit(sp);
5654 return error;
5655 }
5656 sp->hisauth.name_len = cfg->hisname_length - 1;
5657 sp->hisauth.name[sp->hisauth.name_len] = 0;
5658 }
5659 if (cfg->hissecret != NULL && cfg->hissecret_length > 0) {
5660 if (cfg->hissecret_length >= MCLBYTES) {
5661 sppp_lock_exit(sp);
5662 return (ENAMETOOLONG);
5663 }
5664 sp->hisauth.secret = malloc(cfg->hissecret_length,
5665 M_DEVBUF, M_WAITOK);
5666 error = copyin(cfg->hissecret, sp->hisauth.secret,
5667 cfg->hissecret_length);
5668 if (error) {
5669 free(sp->hisauth.secret, M_DEVBUF);
5670 sp->hisauth.secret = NULL;
5671 sppp_lock_exit(sp);
5672 return error;
5673 }
5674 sp->hisauth.secret_len = cfg->hissecret_length - 1;
5675 sp->hisauth.secret[sp->hisauth.secret_len] = 0;
5676 }
5677 if (cfg->myname != NULL && cfg->myname_length > 0) {
5678 if (cfg->myname_length >= MCLBYTES) {
5679 sppp_lock_exit(sp);
5680 return (ENAMETOOLONG);
5681 }
5682 sp->myauth.name = malloc(cfg->myname_length, M_DEVBUF, M_WAITOK);
5683 error = copyin(cfg->myname, sp->myauth.name, cfg->myname_length);
5684 if (error) {
5685 free(sp->myauth.name, M_DEVBUF);
5686 sp->myauth.name = NULL;
5687 sppp_lock_exit(sp);
5688 return error;
5689 }
5690 sp->myauth.name_len = cfg->myname_length - 1;
5691 sp->myauth.name[sp->myauth.name_len] = 0;
5692 }
5693 if (cfg->mysecret != NULL && cfg->mysecret_length > 0) {
5694 if (cfg->mysecret_length >= MCLBYTES) {
5695 sppp_lock_exit(sp);
5696 return (ENAMETOOLONG);
5697 }
5698 sp->myauth.secret = malloc(cfg->mysecret_length,
5699 M_DEVBUF, M_WAITOK);
5700 error = copyin(cfg->mysecret, sp->myauth.secret,
5701 cfg->mysecret_length);
5702 if (error) {
5703 free(sp->myauth.secret, M_DEVBUF);
5704 sp->myauth.secret = NULL;
5705 sppp_lock_exit(sp);
5706 return error;
5707 }
5708 sp->myauth.secret_len = cfg->mysecret_length - 1;
5709 sp->myauth.secret[sp->myauth.secret_len] = 0;
5710 }
5711 sp->myauth.flags = cfg->myauthflags;
5712 if (cfg->myauth)
5713 sp->myauth.proto = (cfg->myauth == SPPP_AUTHPROTO_PAP) ? PPP_PAP : PPP_CHAP;
5714 sp->hisauth.flags = cfg->hisauthflags;
5715 if (cfg->hisauth)
5716 sp->hisauth.proto = (cfg->hisauth == SPPP_AUTHPROTO_PAP) ? PPP_PAP : PPP_CHAP;
5717 sp->pp_auth_failures = 0;
5718 if (sp->hisauth.proto != 0)
5719 sp->lcp.opts |= (1 << LCP_OPT_AUTH_PROTO);
5720 else
5721 sp->lcp.opts &= ~(1 << LCP_OPT_AUTH_PROTO);
5722
5723 sppp_lock_exit(sp);
5724 }
5725 break;
5726 case SPPPGETLCPCFG:
5727 {
5728 struct sppplcpcfg *lcpp = (struct sppplcpcfg *)data;
5729 sppp_lock_enter(sp);
5730 lcpp->lcp_timeout = sp->lcp.timeout;
5731 sppp_lock_exit(sp);
5732 }
5733 break;
5734 case SPPPSETLCPCFG:
5735 {
5736 struct sppplcpcfg *lcpp = (struct sppplcpcfg *)data;
5737 sppp_lock_enter(sp);
5738 sp->lcp.timeout = lcpp->lcp_timeout;
5739 sppp_lock_exit(sp);
5740 }
5741 break;
5742 case SPPPGETSTATUS:
5743 {
5744 struct spppstatus *status = (struct spppstatus *)data;
5745 sppp_lock_enter(sp);
5746 status->phase = sp->pp_phase;
5747 sppp_lock_exit(sp);
5748 }
5749 break;
5750 case SPPPGETSTATUSNCP:
5751 {
5752 struct spppstatusncp *status = (struct spppstatusncp *)data;
5753 sppp_lock_enter(sp);
5754 status->phase = sp->pp_phase;
5755 sppp_lock_exit(sp);
5756 status->ncpup = sppp_ncp_check(sp);
5757 }
5758 break;
5759 case SPPPGETIDLETO:
5760 {
5761 struct spppidletimeout *to = (struct spppidletimeout *)data;
5762 sppp_lock_enter(sp);
5763 to->idle_seconds = sp->pp_idle_timeout;
5764 sppp_lock_exit(sp);
5765 }
5766 break;
5767 case SPPPSETIDLETO:
5768 {
5769 struct spppidletimeout *to = (struct spppidletimeout *)data;
5770 sppp_lock_enter(sp);
5771 sp->pp_idle_timeout = to->idle_seconds;
5772 sppp_lock_exit(sp);
5773 }
5774 break;
5775 case SPPPSETAUTHFAILURE:
5776 {
5777 struct spppauthfailuresettings *afsettings = (struct spppauthfailuresettings *)data;
5778 sppp_lock_enter(sp);
5779 sp->pp_max_auth_fail = afsettings->max_failures;
5780 sp->pp_auth_failures = 0;
5781 sppp_lock_exit(sp);
5782 }
5783 break;
5784 case SPPPGETAUTHFAILURES:
5785 {
5786 struct spppauthfailurestats *stats = (struct spppauthfailurestats *)data;
5787 sppp_lock_enter(sp);
5788 stats->auth_failures = sp->pp_auth_failures;
5789 stats->max_failures = sp->pp_max_auth_fail;
5790 sppp_lock_exit(sp);
5791 }
5792 break;
5793 case SPPPSETDNSOPTS:
5794 {
5795 struct spppdnssettings *req = (struct spppdnssettings *)data;
5796 sppp_lock_enter(sp);
5797 sp->query_dns = req->query_dns & 3;
5798 sppp_lock_exit(sp);
5799 }
5800 break;
5801 case SPPPGETDNSOPTS:
5802 {
5803 struct spppdnssettings *req = (struct spppdnssettings *)data;
5804 sppp_lock_enter(sp);
5805 req->query_dns = sp->query_dns;
5806 sppp_lock_exit(sp);
5807 }
5808 break;
5809 case SPPPGETDNSADDRS:
5810 {
5811 struct spppdnsaddrs *addrs = (struct spppdnsaddrs *)data;
5812 sppp_lock_enter(sp);
5813 memcpy(&addrs->dns, &sp->dns_addrs, sizeof addrs->dns);
5814 sppp_lock_exit(sp);
5815 }
5816 break;
5817 case SPPPGETKEEPALIVE:
5818 {
5819 struct spppkeepalivesettings *settings =
5820 (struct spppkeepalivesettings*)data;
5821 sppp_lock_enter(sp);
5822 settings->maxalive = sp->pp_maxalive;
5823 settings->max_noreceive = sp->pp_max_noreceive;
5824 sppp_lock_exit(sp);
5825 }
5826 break;
5827 case SPPPSETKEEPALIVE:
5828 {
5829 struct spppkeepalivesettings *settings =
5830 (struct spppkeepalivesettings*)data;
5831 sppp_lock_enter(sp);
5832 sp->pp_maxalive = settings->maxalive;
5833 sp->pp_max_noreceive = settings->max_noreceive;
5834 sppp_lock_exit(sp);
5835 }
5836 break;
5837 #if defined(COMPAT_50) || defined(MODULAR)
5838 case __SPPPGETIDLETO50:
5839 {
5840 struct spppidletimeout50 *to = (struct spppidletimeout50 *)data;
5841 sppp_lock_enter(sp);
5842 to->idle_seconds = (uint32_t)sp->pp_idle_timeout;
5843 sppp_lock_exit(sp);
5844 }
5845 break;
5846 case __SPPPSETIDLETO50:
5847 {
5848 struct spppidletimeout50 *to = (struct spppidletimeout50 *)data;
5849 sppp_lock_enter(sp);
5850 sp->pp_idle_timeout = (time_t)to->idle_seconds;
5851 sppp_lock_exit(sp);
5852 }
5853 break;
5854 case __SPPPGETKEEPALIVE50:
5855 {
5856 struct spppkeepalivesettings50 *settings =
5857 (struct spppkeepalivesettings50*)data;
5858 sppp_lock_enter(sp);
5859 settings->maxalive = sp->pp_maxalive;
5860 settings->max_noreceive = (uint32_t)sp->pp_max_noreceive;
5861 sppp_lock_exit(sp);
5862 }
5863 break;
5864 case __SPPPSETKEEPALIVE50:
5865 {
5866 struct spppkeepalivesettings50 *settings =
5867 (struct spppkeepalivesettings50*)data;
5868 sppp_lock_enter(sp);
5869 sp->pp_maxalive = settings->maxalive;
5870 sp->pp_max_noreceive = (time_t)settings->max_noreceive;
5871 sppp_lock_exit(sp);
5872 }
5873 break;
5874 #endif /* COMPAT_50 || MODULAR */
5875 default:
5876 return (EINVAL);
5877 }
5878
5879 return (0);
5880 }
5881
5882 static void
5883 sppp_phase_network(struct sppp *sp)
5884 {
5885 int i;
5886 uint32_t mask;
5887
5888 KASSERT(sppp_locked(sp));
5889
5890 sppp_change_phase(sp, SPPP_PHASE_NETWORK);
5891
5892 /* Notify NCPs now. */
5893 for (i = 0; i < IDX_COUNT; i++)
5894 if ((cps[i])->flags & CP_NCP)
5895 (cps[i])->Open(sp);
5896
5897 /* Send Up events to all NCPs. */
5898 for (i = 0, mask = 1; i < IDX_COUNT; i++, mask <<= 1)
5899 if ((sp->lcp.protos & mask) && ((cps[i])->flags & CP_NCP)) {
5900 (cps[i])->Up(sp);
5901 }
5902
5903 /* if no NCP is starting, all this was in vain, close down */
5904 sppp_lcp_check_and_close(sp);
5905 }
5906
5907
5908 static const char *
5909 sppp_cp_type_name(u_char type)
5910 {
5911 static char buf[12];
5912 switch (type) {
5913 case CONF_REQ: return "conf-req";
5914 case CONF_ACK: return "conf-ack";
5915 case CONF_NAK: return "conf-nak";
5916 case CONF_REJ: return "conf-rej";
5917 case TERM_REQ: return "term-req";
5918 case TERM_ACK: return "term-ack";
5919 case CODE_REJ: return "code-rej";
5920 case PROTO_REJ: return "proto-rej";
5921 case ECHO_REQ: return "echo-req";
5922 case ECHO_REPLY: return "echo-reply";
5923 case DISC_REQ: return "discard-req";
5924 }
5925 snprintf(buf, sizeof(buf), "0x%x", type);
5926 return buf;
5927 }
5928
5929 static const char *
5930 sppp_auth_type_name(u_short proto, u_char type)
5931 {
5932 static char buf[32];
5933 const char *name;
5934
5935 switch (proto) {
5936 case PPP_CHAP:
5937 switch (type) {
5938 case CHAP_CHALLENGE: return "challenge";
5939 case CHAP_RESPONSE: return "response";
5940 case CHAP_SUCCESS: return "success";
5941 case CHAP_FAILURE: return "failure";
5942 default: name = "chap"; break;
5943 }
5944 break;
5945
5946 case PPP_PAP:
5947 switch (type) {
5948 case PAP_REQ: return "req";
5949 case PAP_ACK: return "ack";
5950 case PAP_NAK: return "nak";
5951 default: name = "pap"; break;
5952 }
5953 break;
5954
5955 default:
5956 name = "bad";
5957 break;
5958 }
5959
5960 snprintf(buf, sizeof(buf), "%s(%#x) %#x", name, proto, type);
5961 return buf;
5962 }
5963
5964 static const char *
5965 sppp_lcp_opt_name(u_char opt)
5966 {
5967 static char buf[12];
5968 switch (opt) {
5969 case LCP_OPT_MRU: return "mru";
5970 case LCP_OPT_ASYNC_MAP: return "async-map";
5971 case LCP_OPT_AUTH_PROTO: return "auth-proto";
5972 case LCP_OPT_QUAL_PROTO: return "qual-proto";
5973 case LCP_OPT_MAGIC: return "magic";
5974 case LCP_OPT_PROTO_COMP: return "proto-comp";
5975 case LCP_OPT_ADDR_COMP: return "addr-comp";
5976 }
5977 snprintf(buf, sizeof(buf), "0x%x", opt);
5978 return buf;
5979 }
5980
5981 static const char *
5982 sppp_ipcp_opt_name(u_char opt)
5983 {
5984 static char buf[12];
5985 switch (opt) {
5986 case IPCP_OPT_ADDRESSES: return "addresses";
5987 case IPCP_OPT_COMPRESSION: return "compression";
5988 case IPCP_OPT_ADDRESS: return "address";
5989 }
5990 snprintf(buf, sizeof(buf), "0x%x", opt);
5991 return buf;
5992 }
5993
5994 #ifdef INET6
5995 static const char *
5996 sppp_ipv6cp_opt_name(u_char opt)
5997 {
5998 static char buf[12];
5999 switch (opt) {
6000 case IPV6CP_OPT_IFID: return "ifid";
6001 case IPV6CP_OPT_COMPRESSION: return "compression";
6002 }
6003 snprintf(buf, sizeof(buf), "0x%x", opt);
6004 return buf;
6005 }
6006 #endif
6007
6008 static const char *
6009 sppp_state_name(int state)
6010 {
6011 switch (state) {
6012 case STATE_INITIAL: return "initial";
6013 case STATE_STARTING: return "starting";
6014 case STATE_CLOSED: return "closed";
6015 case STATE_STOPPED: return "stopped";
6016 case STATE_CLOSING: return "closing";
6017 case STATE_STOPPING: return "stopping";
6018 case STATE_REQ_SENT: return "req-sent";
6019 case STATE_ACK_RCVD: return "ack-rcvd";
6020 case STATE_ACK_SENT: return "ack-sent";
6021 case STATE_OPENED: return "opened";
6022 }
6023 return "illegal";
6024 }
6025
6026 static const char *
6027 sppp_phase_name(int phase)
6028 {
6029 switch (phase) {
6030 case SPPP_PHASE_DEAD: return "dead";
6031 case SPPP_PHASE_ESTABLISH: return "establish";
6032 case SPPP_PHASE_TERMINATE: return "terminate";
6033 case SPPP_PHASE_AUTHENTICATE: return "authenticate";
6034 case SPPP_PHASE_NETWORK: return "network";
6035 }
6036 return "illegal";
6037 }
6038
6039 static const char *
6040 sppp_proto_name(u_short proto)
6041 {
6042 static char buf[12];
6043 switch (proto) {
6044 case PPP_LCP: return "lcp";
6045 case PPP_IPCP: return "ipcp";
6046 case PPP_PAP: return "pap";
6047 case PPP_CHAP: return "chap";
6048 case PPP_IPV6CP: return "ipv6cp";
6049 }
6050 snprintf(buf, sizeof(buf), "0x%x", (unsigned)proto);
6051 return buf;
6052 }
6053
6054 static void
6055 sppp_print_bytes(const u_char *p, u_short len)
6056 {
6057 addlog(" %02x", *p++);
6058 while (--len > 0)
6059 addlog("-%02x", *p++);
6060 }
6061
6062 static void
6063 sppp_print_string(const char *p, u_short len)
6064 {
6065 u_char c;
6066
6067 while (len-- > 0) {
6068 c = *p++;
6069 /*
6070 * Print only ASCII chars directly. RFC 1994 recommends
6071 * using only them, but we don't rely on it. */
6072 if (c < ' ' || c > '~')
6073 addlog("\\x%x", c);
6074 else
6075 addlog("%c", c);
6076 }
6077 }
6078
6079 static const char *
6080 sppp_dotted_quad(uint32_t addr)
6081 {
6082 static char s[16];
6083 snprintf(s, sizeof(s), "%d.%d.%d.%d",
6084 (int)((addr >> 24) & 0xff),
6085 (int)((addr >> 16) & 0xff),
6086 (int)((addr >> 8) & 0xff),
6087 (int)(addr & 0xff));
6088 return s;
6089 }
6090
6091 /* a dummy, used to drop uninteresting events */
6092 static void
6093 sppp_null(struct sppp *unused)
6094 {
6095 /* do just nothing */
6096 }
6097 /*
6098 * This file is large. Tell emacs to highlight it nevertheless.
6099 *
6100 * Local Variables:
6101 * hilit-auto-highlight-maxout: 120000
6102 * End:
6103 */
6104
6105 /*
6106 * Module glue
6107 */
6108 MODULE(MODULE_CLASS_MISC, sppp_subr, NULL);
6109
6110 static int
6111 sppp_subr_modcmd(modcmd_t cmd, void *arg)
6112 {
6113 switch (cmd) {
6114 case MODULE_CMD_INIT:
6115 case MODULE_CMD_FINI:
6116 return 0;
6117 case MODULE_CMD_STAT:
6118 case MODULE_CMD_AUTOUNLOAD:
6119 default:
6120 return ENOTTY;
6121 }
6122 }
6123
6124