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1 /* Kernel communication using routing socket.
2 * Copyright (C) 1999 Kunihiro Ishiguro
3 *
4 * This file is part of GNU Zebra.
5 *
6 * GNU Zebra is free software; you can redistribute it and/or modify it
7 * under the terms of the GNU General Public License as published by the
8 * Free Software Foundation; either version 2, or (at your option) any
9 * later version.
10 *
11 * GNU Zebra is distributed in the hope that it will be useful, but
12 * WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License along
17 * with this program; see the file COPYING; if not, write to the Free Software
18 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
19 */
20
21 #include <zebra.h>
22
23 #ifndef HAVE_NETLINK
24
25 #include <net/if_types.h>
26 #ifdef __OpenBSD__
27 #include <netmpls/mpls.h>
28 #endif
29
30 #include "if.h"
31 #include "prefix.h"
32 #include "sockunion.h"
33 #include "connected.h"
34 #include "memory.h"
35 #include "zebra_memory.h"
36 #include "ioctl.h"
37 #include "log.h"
38 #include "table.h"
39 #include "rib.h"
40 #include "privs.h"
41 #include "vrf.h"
42 #include "lib_errors.h"
43
44 #include "zebra/rt.h"
45 #include "zebra/interface.h"
46 #include "zebra/zebra_router.h"
47 #include "zebra/debug.h"
48 #include "zebra/kernel_socket.h"
49 #include "zebra/rib.h"
50 #include "zebra/zebra_errors.h"
51 #include "zebra/zebra_ptm.h"
52
53 extern struct zebra_privs_t zserv_privs;
54
55 /*
56 * Historically, the BSD routing socket has aligned data following a
57 * struct sockaddr to sizeof(long), which was 4 bytes on some
58 * platforms, and 8 bytes on others. NetBSD 6 changed the routing
59 * socket to align to sizeof(uint64_t), which is 8 bytes. OS X
60 * appears to align to sizeof(int), which is 4 bytes.
61 *
62 * Alignment of zero-sized sockaddrs is nonsensical, but historically
63 * BSD defines RT_ROUNDUP(0) to be the alignment interval (rather than
64 * 0). We follow this practice without questioning it, but it is a
65 * bug if quagga calls ROUNDUP with 0.
66 */
67 #ifdef __APPLE__
68 #define ROUNDUP_TYPE int
69 #else
70 #define ROUNDUP_TYPE long
71 #endif
72
73 /*
74 * Because of these varying conventions, the only sane approach is for
75 * the <net/route.h> header to define some flavor of ROUNDUP macro.
76 */
77
78 /* OS X (Xcode as of 2014-12) is known not to define RT_ROUNDUP */
79 #if defined(RT_ROUNDUP)
80 #define ROUNDUP(a) RT_ROUNDUP(a)
81 #endif /* defined(RT_ROUNDUP) */
82
83 #if defined(SUNOS_5)
84 /* Solaris has struct sockaddr_in[6] definitions at 16 / 32 bytes size,
85 * so the whole concept doesn't really apply. */
86 #define ROUNDUP(a) (a)
87 #endif
88
89 /*
90 * If ROUNDUP has not yet been defined in terms of platform-provided
91 * defines, attempt to cope with heuristics.
92 */
93 #if !defined(ROUNDUP)
94
95 /*
96 * If you're porting to a platform that changed RT_ROUNDUP but doesn't
97 * have it in its headers, this will break rather obviously and you'll
98 * have to fix it here.
99 */
100 #define ROUNDUP(a) \
101 ((a) > 0 ? (1 + (((a)-1) | (sizeof(ROUNDUP_TYPE) - 1))) \
102 : sizeof(ROUNDUP_TYPE))
103
104 #endif /* defined(ROUNDUP) */
105
106
107 #if defined(SA_SIZE)
108 /* SAROUNDUP is the only thing we need, and SA_SIZE provides that */
109 #define SAROUNDUP(a) SA_SIZE(a)
110 #else /* !SA_SIZE */
111 /*
112 * Given a pointer (sockaddr or void *), return the number of bytes
113 * taken up by the sockaddr and any padding needed for alignment.
114 */
115 #if defined(HAVE_STRUCT_SOCKADDR_SA_LEN)
116 #define SAROUNDUP(X) ROUNDUP(((struct sockaddr *)(X))->sa_len)
117 #else
118 /*
119 * One would hope all fixed-size structure definitions are aligned,
120 * but round them up nonetheless.
121 */
122 #define SAROUNDUP(X) \
123 (((struct sockaddr *)(X))->sa_family == AF_INET \
124 ? ROUNDUP(sizeof(struct sockaddr_in)) \
125 : (((struct sockaddr *)(X))->sa_family == AF_INET6 \
126 ? ROUNDUP(sizeof(struct sockaddr_in6)) \
127 : (((struct sockaddr *)(X))->sa_family == AF_LINK \
128 ? ROUNDUP(sizeof(struct sockaddr_dl)) \
129 : sizeof(struct sockaddr))))
130 #endif /* HAVE_STRUCT_SOCKADDR_SA_LEN */
131
132 #endif /* !SA_SIZE */
133
134 /* Routing socket message types. */
135 const struct message rtm_type_str[] = {{RTM_ADD, "RTM_ADD"},
136 {RTM_DELETE, "RTM_DELETE"},
137 {RTM_CHANGE, "RTM_CHANGE"},
138 {RTM_GET, "RTM_GET"},
139 {RTM_LOSING, "RTM_LOSING"},
140 {RTM_REDIRECT, "RTM_REDIRECT"},
141 {RTM_MISS, "RTM_MISS"},
142 #ifdef RTM_LOCK
143 {RTM_LOCK, "RTM_LOCK"},
144 #endif /* RTM_LOCK */
145 #ifdef OLDADD
146 {RTM_OLDADD, "RTM_OLDADD"},
147 #endif /* RTM_OLDADD */
148 #ifdef RTM_OLDDEL
149 {RTM_OLDDEL, "RTM_OLDDEL"},
150 #endif /* RTM_OLDDEL */
151 #ifdef RTM_RESOLVE
152 {RTM_RESOLVE, "RTM_RESOLVE"},
153 #endif /* RTM_RESOLVE */
154 {RTM_NEWADDR, "RTM_NEWADDR"},
155 {RTM_DELADDR, "RTM_DELADDR"},
156 {RTM_IFINFO, "RTM_IFINFO"},
157 #ifdef RTM_OIFINFO
158 {RTM_OIFINFO, "RTM_OIFINFO"},
159 #endif /* RTM_OIFINFO */
160 #ifdef RTM_NEWMADDR
161 {RTM_NEWMADDR, "RTM_NEWMADDR"},
162 #endif /* RTM_NEWMADDR */
163 #ifdef RTM_DELMADDR
164 {RTM_DELMADDR, "RTM_DELMADDR"},
165 #endif /* RTM_DELMADDR */
166 #ifdef RTM_IFANNOUNCE
167 {RTM_IFANNOUNCE, "RTM_IFANNOUNCE"},
168 #endif /* RTM_IFANNOUNCE */
169 {0}};
170
171 static const struct message rtm_flag_str[] = {{RTF_UP, "UP"},
172 {RTF_GATEWAY, "GATEWAY"},
173 {RTF_HOST, "HOST"},
174 {RTF_REJECT, "REJECT"},
175 {RTF_DYNAMIC, "DYNAMIC"},
176 {RTF_MODIFIED, "MODIFIED"},
177 {RTF_DONE, "DONE"},
178 #ifdef RTF_MASK
179 {RTF_MASK, "MASK"},
180 #endif /* RTF_MASK */
181 #ifdef RTF_CLONING
182 {RTF_CLONING, "CLONING"},
183 #endif /* RTF_CLONING */
184 #ifdef RTF_XRESOLVE
185 {RTF_XRESOLVE, "XRESOLVE"},
186 #endif /* RTF_XRESOLVE */
187 #ifdef RTF_LLINFO
188 {RTF_LLINFO, "LLINFO"},
189 #endif /* RTF_LLINFO */
190 {RTF_STATIC, "STATIC"},
191 {RTF_BLACKHOLE, "BLACKHOLE"},
192 #ifdef RTF_PRIVATE
193 {RTF_PRIVATE, "PRIVATE"},
194 #endif /* RTF_PRIVATE */
195 {RTF_PROTO1, "PROTO1"},
196 {RTF_PROTO2, "PROTO2"},
197 #ifdef RTF_PRCLONING
198 {RTF_PRCLONING, "PRCLONING"},
199 #endif /* RTF_PRCLONING */
200 #ifdef RTF_WASCLONED
201 {RTF_WASCLONED, "WASCLONED"},
202 #endif /* RTF_WASCLONED */
203 #ifdef RTF_PROTO3
204 {RTF_PROTO3, "PROTO3"},
205 #endif /* RTF_PROTO3 */
206 #ifdef RTF_PINNED
207 {RTF_PINNED, "PINNED"},
208 #endif /* RTF_PINNED */
209 #ifdef RTF_LOCAL
210 {RTF_LOCAL, "LOCAL"},
211 #endif /* RTF_LOCAL */
212 #ifdef RTF_BROADCAST
213 {RTF_BROADCAST, "BROADCAST"},
214 #endif /* RTF_BROADCAST */
215 #ifdef RTF_MULTICAST
216 {RTF_MULTICAST, "MULTICAST"},
217 #endif /* RTF_MULTICAST */
218 #ifdef RTF_MULTIRT
219 {RTF_MULTIRT, "MULTIRT"},
220 #endif /* RTF_MULTIRT */
221 #ifdef RTF_SETSRC
222 {RTF_SETSRC, "SETSRC"},
223 #endif /* RTF_SETSRC */
224 {0}};
225
226 /* Kernel routing update socket. */
227 int routing_sock = -1;
228
229 /* Kernel dataplane routing update socket, used in the dataplane pthread
230 * context.
231 */
232 int dplane_routing_sock = -1;
233
234 /* Yes I'm checking ugly routing socket behavior. */
235 /* #define DEBUG */
236
237 size_t _rta_get(caddr_t sap, void *destp, size_t destlen, bool checkaf);
238 size_t rta_get(caddr_t sap, void *dest, size_t destlen);
239 size_t rta_getattr(caddr_t sap, void *destp, size_t destlen);
240 size_t rta_getsdlname(caddr_t sap, void *dest, short *destlen);
241 const char *rtatostr(unsigned int flags, char *buf, size_t buflen);
242
243 /* Supported address family check. */
244 static inline int af_check(int family)
245 {
246 if (family == AF_INET)
247 return 1;
248 if (family == AF_INET6)
249 return 1;
250 return 0;
251 }
252
253 size_t _rta_get(caddr_t sap, void *destp, size_t destlen, bool checkaf)
254 {
255 struct sockaddr *sa = (struct sockaddr *)sap;
256 struct sockaddr_dl *sdl;
257 uint8_t *dest = destp;
258 size_t tlen, copylen;
259
260 #ifdef HAVE_STRUCT_SOCKADDR_SA_LEN
261 copylen = sa->sa_len;
262 tlen = (copylen == 0) ? sizeof(ROUNDUP_TYPE) : ROUNDUP(copylen);
263 #else /* !HAVE_STRUCT_SOCKADDR_SA_LEN */
264 copylen = tlen = SAROUNDUP(sap);
265 #endif /* !HAVE_STRUCT_SOCKADDR_SA_LEN */
266
267 if (copylen > 0 && dest != NULL) {
268 if (checkaf && af_check(sa->sa_family) == 0)
269 return tlen;
270 /*
271 * Handle sockaddr_dl corner case:
272 * RTA_NETMASK might be AF_LINK, but it doesn't anything
273 * relevant (e.g. zeroed out fields). Check for this
274 * case and avoid warning log message.
275 */
276 if (sa->sa_family == AF_LINK) {
277 sdl = (struct sockaddr_dl *)sa;
278 if (sdl->sdl_index == 0 || sdl->sdl_nlen == 0)
279 copylen = destlen;
280 }
281
282 if (copylen > destlen) {
283 zlog_warn(
284 "%s: destination buffer too small (%zu vs %zu)",
285 __func__, copylen, destlen);
286 memcpy(dest, sap, destlen);
287 } else
288 memcpy(dest, sap, copylen);
289 }
290
291 return tlen;
292 }
293
294 size_t rta_get(caddr_t sap, void *destp, size_t destlen)
295 {
296 return _rta_get(sap, destp, destlen, true);
297 }
298
299 size_t rta_getattr(caddr_t sap, void *destp, size_t destlen)
300 {
301 return _rta_get(sap, destp, destlen, false);
302 }
303
304 size_t rta_getsdlname(caddr_t sap, void *destp, short *destlen)
305 {
306 struct sockaddr_dl *sdl = (struct sockaddr_dl *)sap;
307 uint8_t *dest = destp;
308 size_t tlen, copylen;
309
310 copylen = sdl->sdl_nlen;
311 #ifdef HAVE_STRUCT_SOCKADDR_SA_LEN
312 struct sockaddr *sa = (struct sockaddr *)sap;
313
314 tlen = (sa->sa_len == 0) ? sizeof(ROUNDUP_TYPE) : ROUNDUP(sa->sa_len);
315 #else /* !HAVE_STRUCT_SOCKADDR_SA_LEN */
316 tlen = SAROUNDUP(sap);
317 #endif /* !HAVE_STRUCT_SOCKADDR_SA_LEN */
318
319 if (copylen > 0 && dest != NULL && sdl->sdl_family == AF_LINK) {
320 if (copylen > IFNAMSIZ) {
321 zlog_warn(
322 "%s: destination buffer too small (%zu vs %d)",
323 __func__, copylen, IFNAMSIZ);
324 memcpy(dest, sdl->sdl_data, IFNAMSIZ);
325 dest[IFNAMSIZ] = 0;
326 *destlen = IFNAMSIZ;
327 } else {
328 memcpy(dest, sdl->sdl_data, copylen);
329 dest[copylen] = 0;
330 *destlen = copylen;
331 }
332 } else
333 *destlen = 0;
334
335 return tlen;
336 }
337
338 const char *rtatostr(unsigned int flags, char *buf, size_t buflen)
339 {
340 const char *flagstr, *bufstart;
341 int bit, wlen;
342 char ustr[32];
343
344 /* Hold the pointer to the buffer beginning. */
345 bufstart = buf;
346
347 for (bit = 1; bit; bit <<= 1) {
348 if ((flags & bit) == 0)
349 continue;
350
351 switch (bit) {
352 case RTA_DST:
353 flagstr = "DST";
354 break;
355 case RTA_GATEWAY:
356 flagstr = "GATEWAY";
357 break;
358 case RTA_NETMASK:
359 flagstr = "NETMASK";
360 break;
361 #ifdef RTA_GENMASK
362 case RTA_GENMASK:
363 flagstr = "GENMASK";
364 break;
365 #endif /* RTA_GENMASK */
366 case RTA_IFP:
367 flagstr = "IFP";
368 break;
369 case RTA_IFA:
370 flagstr = "IFA";
371 break;
372 #ifdef RTA_AUTHOR
373 case RTA_AUTHOR:
374 flagstr = "AUTHOR";
375 break;
376 #endif /* RTA_AUTHOR */
377 case RTA_BRD:
378 flagstr = "BRD";
379 break;
380 #ifdef RTA_SRC
381 case RTA_SRC:
382 flagstr = "SRC";
383 break;
384 #endif /* RTA_SRC */
385 #ifdef RTA_SRCMASK
386 case RTA_SRCMASK:
387 flagstr = "SRCMASK";
388 break;
389 #endif /* RTA_SRCMASK */
390 #ifdef RTA_LABEL
391 case RTA_LABEL:
392 flagstr = "LABEL";
393 break;
394 #endif /* RTA_LABEL */
395
396 default:
397 snprintf(ustr, sizeof(ustr), "0x%x", bit);
398 flagstr = ustr;
399 break;
400 }
401
402 wlen = snprintf(buf, buflen, "%s,", flagstr);
403 buf += wlen;
404 buflen -= wlen;
405 }
406
407 /* Check for empty buffer. */
408 if (bufstart != buf)
409 buf--;
410
411 /* Remove the last comma. */
412 *buf = 0;
413
414 return bufstart;
415 }
416
417 /* Dump routing table flag for debug purpose. */
418 static void rtm_flag_dump(int flag)
419 {
420 const struct message *mes;
421 static char buf[BUFSIZ];
422
423 buf[0] = '\0';
424 for (mes = rtm_flag_str; mes->key != 0; mes++) {
425 if (mes->key & flag) {
426 strlcat(buf, mes->str, BUFSIZ);
427 strlcat(buf, " ", BUFSIZ);
428 }
429 }
430 zlog_debug("Kernel: %s", buf);
431 }
432
433 #ifdef RTM_IFANNOUNCE
434 /* Interface adding function */
435 static int ifan_read(struct if_announcemsghdr *ifan)
436 {
437 struct interface *ifp;
438
439 ifp = if_lookup_by_index(ifan->ifan_index, VRF_DEFAULT);
440
441 if (ifp)
442 assert((ifp->ifindex == ifan->ifan_index)
443 || (ifp->ifindex == IFINDEX_INTERNAL));
444
445 if ((ifp == NULL) || ((ifp->ifindex == IFINDEX_INTERNAL)
446 && (ifan->ifan_what == IFAN_ARRIVAL))) {
447 if (IS_ZEBRA_DEBUG_KERNEL)
448 zlog_debug(
449 "%s: creating interface for ifindex %d, name %s",
450 __func__, ifan->ifan_index, ifan->ifan_name);
451
452 /* Create Interface */
453 ifp = if_get_by_name(ifan->ifan_name, VRF_DEFAULT);
454 if_set_index(ifp, ifan->ifan_index);
455
456 if_get_metric(ifp);
457 if_add_update(ifp);
458 } else if (ifp != NULL && ifan->ifan_what == IFAN_DEPARTURE)
459 if_delete_update(ifp);
460
461 if_get_flags(ifp);
462 if_get_mtu(ifp);
463 if_get_metric(ifp);
464
465 if (IS_ZEBRA_DEBUG_KERNEL)
466 zlog_debug("%s: interface %s index %d", __func__,
467 ifan->ifan_name, ifan->ifan_index);
468
469 return 0;
470 }
471 #endif /* RTM_IFANNOUNCE */
472
473 #ifdef HAVE_BSD_IFI_LINK_STATE
474 /* BSD link detect translation */
475 static void bsd_linkdetect_translate(struct if_msghdr *ifm)
476 {
477 if ((ifm->ifm_data.ifi_link_state >= LINK_STATE_UP)
478 || (ifm->ifm_data.ifi_link_state == LINK_STATE_UNKNOWN))
479 SET_FLAG(ifm->ifm_flags, IFF_RUNNING);
480 else
481 UNSET_FLAG(ifm->ifm_flags, IFF_RUNNING);
482 }
483 #endif /* HAVE_BSD_IFI_LINK_STATE */
484
485 static enum zebra_link_type sdl_to_zebra_link_type(unsigned int sdlt)
486 {
487 switch (sdlt) {
488 case IFT_ETHER:
489 return ZEBRA_LLT_ETHER;
490 case IFT_X25:
491 return ZEBRA_LLT_X25;
492 case IFT_FDDI:
493 return ZEBRA_LLT_FDDI;
494 case IFT_PPP:
495 return ZEBRA_LLT_PPP;
496 case IFT_LOOP:
497 return ZEBRA_LLT_LOOPBACK;
498 case IFT_SLIP:
499 return ZEBRA_LLT_SLIP;
500 case IFT_ARCNET:
501 return ZEBRA_LLT_ARCNET;
502 case IFT_ATM:
503 return ZEBRA_LLT_ATM;
504 case IFT_LOCALTALK:
505 return ZEBRA_LLT_LOCALTLK;
506 case IFT_HIPPI:
507 return ZEBRA_LLT_HIPPI;
508 #ifdef IFT_IEEE1394
509 case IFT_IEEE1394:
510 return ZEBRA_LLT_IEEE1394;
511 #endif
512
513 default:
514 return ZEBRA_LLT_UNKNOWN;
515 }
516 }
517
518 /*
519 * Handle struct if_msghdr obtained from reading routing socket or
520 * sysctl (from interface_list). There may or may not be sockaddrs
521 * present after the header.
522 */
523 int ifm_read(struct if_msghdr *ifm)
524 {
525 struct interface *ifp = NULL;
526 struct sockaddr_dl *sdl = NULL;
527 char ifname[IFNAMSIZ];
528 short ifnlen = 0;
529 int maskbit;
530 caddr_t cp;
531 char fbuf[64];
532
533 /* terminate ifname at head (for strnlen) and tail (for safety) */
534 ifname[IFNAMSIZ - 1] = '\0';
535
536 /* paranoia: sanity check structure */
537 if (ifm->ifm_msglen < sizeof(struct if_msghdr)) {
538 flog_err(EC_ZEBRA_NETLINK_LENGTH_ERROR,
539 "ifm_read: ifm->ifm_msglen %d too short\n",
540 ifm->ifm_msglen);
541 return -1;
542 }
543
544 /*
545 * Check for a sockaddr_dl following the message. First, point to
546 * where a socakddr might be if one follows the message.
547 */
548 cp = (void *)(ifm + 1);
549
550 #ifdef SUNOS_5
551 /*
552 * XXX This behavior should be narrowed to only the kernel versions
553 * for which the structures returned do not match the headers.
554 *
555 * if_msghdr_t on 64 bit kernels in Solaris 9 and earlier versions
556 * is 12 bytes larger than the 32 bit version.
557 */
558 if (((struct sockaddr *)cp)->sa_family == AF_UNSPEC)
559 cp += 12;
560 #endif
561
562 /* Look up for RTA_IFP and skip others. */
563 for (maskbit = 1; maskbit; maskbit <<= 1) {
564 if ((maskbit & ifm->ifm_addrs) == 0)
565 continue;
566 if (maskbit != RTA_IFP) {
567 cp += rta_get(cp, NULL, 0);
568 continue;
569 }
570
571 /* Save the pointer to the structure. */
572 sdl = (struct sockaddr_dl *)cp;
573 cp += rta_getsdlname(cp, ifname, &ifnlen);
574 }
575
576 if (IS_ZEBRA_DEBUG_KERNEL)
577 zlog_debug("%s: sdl ifname %s addrs {%s}", __func__,
578 (ifnlen ? ifname : "(nil)"),
579 rtatostr(ifm->ifm_addrs, fbuf, sizeof(fbuf)));
580
581 /*
582 * Look up on ifindex first, because ifindices are the primary handle
583 * for
584 * interfaces across the user/kernel boundary, for most systems. (Some
585 * messages, such as up/down status changes on NetBSD, do not include a
586 * sockaddr_dl).
587 */
588 if ((ifp = if_lookup_by_index(ifm->ifm_index, VRF_DEFAULT)) != NULL) {
589 /* we have an ifp, verify that the name matches as some systems,
590 * eg Solaris, have a 1:many association of ifindex:ifname
591 * if they dont match, we dont have the correct ifp and should
592 * set it back to NULL to let next check do lookup by name
593 */
594 if (ifnlen && (strncmp(ifp->name, ifname, IFNAMSIZ) != 0)) {
595 if (IS_ZEBRA_DEBUG_KERNEL)
596 zlog_debug(
597 "%s: ifp name %s doesn't match sdl name %s",
598 __func__, ifp->name, ifname);
599 ifp = NULL;
600 }
601 }
602
603 /*
604 * If we dont have an ifp, try looking up by name. Particularly as some
605 * systems (Solaris) have a 1:many mapping of ifindex:ifname - the
606 * ifname
607 * is therefore our unique handle to that interface.
608 *
609 * Interfaces specified in the configuration file for which the ifindex
610 * has not been determined will have ifindex == IFINDEX_INTERNAL, and
611 * such
612 * interfaces are found by this search, and then their ifindex values
613 * can
614 * be filled in.
615 */
616 if ((ifp == NULL) && ifnlen)
617 ifp = if_lookup_by_name(ifname, VRF_DEFAULT);
618
619 /*
620 * If ifp still does not exist or has an invalid index
621 * (IFINDEX_INTERNAL),
622 * create or fill in an interface.
623 */
624 if ((ifp == NULL) || (ifp->ifindex == IFINDEX_INTERNAL)) {
625 /*
626 * To create or fill in an interface, a sockaddr_dl (via
627 * RTA_IFP) is required.
628 */
629 if (!ifnlen) {
630 zlog_debug("Interface index %d (new) missing ifname",
631 ifm->ifm_index);
632 return -1;
633 }
634
635 #ifndef RTM_IFANNOUNCE
636 /* Down->Down interface should be ignored here.
637 * See further comment below.
638 */
639 if (!CHECK_FLAG(ifm->ifm_flags, IFF_UP))
640 return 0;
641 #endif /* !RTM_IFANNOUNCE */
642
643 if (ifp == NULL) {
644 /* Interface that zebra was not previously aware of, so
645 * create. */
646 ifp = if_create_name(ifname, VRF_DEFAULT);
647 if (IS_ZEBRA_DEBUG_KERNEL)
648 zlog_debug("%s: creating ifp for ifindex %d",
649 __func__, ifm->ifm_index);
650 }
651
652 if (IS_ZEBRA_DEBUG_KERNEL)
653 zlog_debug(
654 "%s: updated/created ifp, ifname %s, ifindex %d",
655 __func__, ifp->name, ifp->ifindex);
656 /*
657 * Fill in newly created interface structure, or larval
658 * structure with ifindex IFINDEX_INTERNAL.
659 */
660 if_set_index(ifp, ifm->ifm_index);
661
662 #ifdef HAVE_BSD_IFI_LINK_STATE /* translate BSD kernel msg for link-state */
663 bsd_linkdetect_translate(ifm);
664 #endif /* HAVE_BSD_IFI_LINK_STATE */
665
666 if_flags_update(ifp, ifm->ifm_flags);
667 #if defined(__bsdi__)
668 if_kvm_get_mtu(ifp);
669 #else
670 if_get_mtu(ifp);
671 #endif /* __bsdi__ */
672 if_get_metric(ifp);
673
674 /*
675 * XXX sockaddr_dl contents can be larger than the structure
676 * definition. There are 2 big families here:
677 * - BSD has sdl_len + sdl_data[16] + overruns sdl_data
678 * we MUST use sdl_len here or we'll truncate data.
679 * - Solaris has no sdl_len, but sdl_data[244]
680 * presumably, it's not going to run past that, so sizeof()
681 * is fine here.
682 * a nonzero ifnlen from rta_getsdlname() means sdl is valid
683 */
684 ifp->ll_type = ZEBRA_LLT_UNKNOWN;
685 ifp->hw_addr_len = 0;
686 if (ifnlen) {
687 #ifdef HAVE_STRUCT_SOCKADDR_DL_SDL_LEN
688 memcpy(&((struct zebra_if *)ifp->info)->sdl, sdl,
689 sdl->sdl_len);
690 #else
691 memcpy(&((struct zebra_if *)ifp->info)->sdl, sdl,
692 sizeof(struct sockaddr_dl));
693 #endif /* HAVE_STRUCT_SOCKADDR_DL_SDL_LEN */
694
695 ifp->ll_type = sdl_to_zebra_link_type(sdl->sdl_type);
696 if (sdl->sdl_alen <= sizeof(ifp->hw_addr)) {
697 memcpy(ifp->hw_addr, LLADDR(sdl),
698 sdl->sdl_alen);
699 ifp->hw_addr_len = sdl->sdl_alen;
700 }
701 }
702
703 if_add_update(ifp);
704 } else
705 /*
706 * Interface structure exists. Adjust stored flags from
707 * notification. If interface has up->down or down->up
708 * transition, call state change routines (to adjust routes,
709 * notify routing daemons, etc.). (Other flag changes are stored
710 * but apparently do not trigger action.)
711 */
712 {
713 if (ifp->ifindex != ifm->ifm_index) {
714 zlog_debug(
715 "%s: index mismatch, ifname %s, ifp index %d, "
716 "ifm index %d",
717 __func__, ifp->name, ifp->ifindex,
718 ifm->ifm_index);
719 return -1;
720 }
721
722 #ifdef HAVE_BSD_IFI_LINK_STATE /* translate BSD kernel msg for link-state */
723 bsd_linkdetect_translate(ifm);
724 #endif /* HAVE_BSD_IFI_LINK_STATE */
725
726 /* update flags and handle operative->inoperative transition, if
727 * any */
728 if_flags_update(ifp, ifm->ifm_flags);
729
730 #ifndef RTM_IFANNOUNCE
731 if (!if_is_up(ifp)) {
732 /* No RTM_IFANNOUNCE on this platform, so we can never
733 * distinguish between ~IFF_UP and delete. We must
734 * presume
735 * it has been deleted.
736 * Eg, Solaris will not notify us of unplumb.
737 *
738 * XXX: Fixme - this should be runtime detected
739 * So that a binary compiled on a system with IFANNOUNCE
740 * will still behave correctly if run on a platform
741 * without
742 */
743 if_delete_update(ifp);
744 }
745 #endif /* RTM_IFANNOUNCE */
746 if (if_is_up(ifp)) {
747 #if defined(__bsdi__)
748 if_kvm_get_mtu(ifp);
749 #else
750 if_get_mtu(ifp);
751 #endif /* __bsdi__ */
752 if_get_metric(ifp);
753 }
754 }
755
756 #ifdef HAVE_NET_RT_IFLIST
757 ifp->stats = ifm->ifm_data;
758 #endif /* HAVE_NET_RT_IFLIST */
759 ifp->speed = ifm->ifm_data.ifi_baudrate / 1000000;
760
761 if (IS_ZEBRA_DEBUG_KERNEL)
762 zlog_debug("%s: interface %s index %d", __func__, ifp->name,
763 ifp->ifindex);
764
765 return 0;
766 }
767
768 /* Address read from struct ifa_msghdr. */
769 static void ifam_read_mesg(struct ifa_msghdr *ifm, union sockunion *addr,
770 union sockunion *mask, union sockunion *brd,
771 char *ifname, short *ifnlen)
772 {
773 caddr_t pnt, end;
774 union sockunion dst;
775 union sockunion gateway;
776 int maskbit;
777 char fbuf[64];
778
779 pnt = (caddr_t)(ifm + 1);
780 end = ((caddr_t)ifm) + ifm->ifam_msglen;
781
782 /* Be sure structure is cleared */
783 memset(mask, 0, sizeof(union sockunion));
784 memset(addr, 0, sizeof(union sockunion));
785 memset(brd, 0, sizeof(union sockunion));
786 memset(&dst, 0, sizeof(union sockunion));
787 memset(&gateway, 0, sizeof(union sockunion));
788
789 /* We fetch each socket variable into sockunion. */
790 for (maskbit = 1; maskbit; maskbit <<= 1) {
791 if ((maskbit & ifm->ifam_addrs) == 0)
792 continue;
793
794 switch (maskbit) {
795 case RTA_DST:
796 pnt += rta_get(pnt, &dst, sizeof(dst));
797 break;
798 case RTA_GATEWAY:
799 pnt += rta_get(pnt, &gateway, sizeof(gateway));
800 break;
801 case RTA_NETMASK:
802 pnt += rta_getattr(pnt, mask, sizeof(*mask));
803 break;
804 case RTA_IFP:
805 pnt += rta_getsdlname(pnt, ifname, ifnlen);
806 break;
807 case RTA_IFA:
808 pnt += rta_get(pnt, addr, sizeof(*addr));
809 break;
810 case RTA_BRD:
811 pnt += rta_get(pnt, brd, sizeof(*brd));
812 break;
813
814 default:
815 pnt += rta_get(pnt, NULL, 0);
816 break;
817 }
818
819 if (pnt > end) {
820 zlog_warn("%s: overflow detected (pnt:%p end:%p)",
821 __func__, pnt, end);
822 break;
823 }
824 }
825
826 if (IS_ZEBRA_DEBUG_KERNEL) {
827 switch (sockunion_family(addr)) {
828 case AF_INET:
829 case AF_INET6: {
830 char buf[4][INET6_ADDRSTRLEN];
831 int masklen =
832 (sockunion_family(addr) == AF_INET)
833 ? ip_masklen(mask->sin.sin_addr)
834 : ip6_masklen(mask->sin6.sin6_addr);
835 zlog_debug(
836 "%s: ifindex %d, ifname %s, ifam_addrs {%s}, "
837 "ifam_flags 0x%x, addr %s/%d broad %s dst %s "
838 "gateway %s",
839 __func__, ifm->ifam_index,
840 (ifnlen ? ifname : "(nil)"),
841 rtatostr(ifm->ifam_addrs, fbuf, sizeof(fbuf)),
842 ifm->ifam_flags,
843 sockunion2str(addr, buf[0], sizeof(buf[0])),
844 masklen,
845 sockunion2str(brd, buf[1], sizeof(buf[1])),
846 sockunion2str(&dst, buf[2], sizeof(buf[2])),
847 sockunion2str(&gateway, buf[2],
848 sizeof(buf[2])));
849 } break;
850 default:
851 zlog_debug("%s: ifindex %d, ifname %s, ifam_addrs {%s}",
852 __func__, ifm->ifam_index,
853 (ifnlen ? ifname : "(nil)"),
854 rtatostr(ifm->ifam_addrs, fbuf,
855 sizeof(fbuf)));
856 break;
857 }
858 }
859
860 /* Assert read up end point matches to end point */
861 pnt = (caddr_t)ROUNDUP((size_t)pnt);
862 if (pnt != (caddr_t)ROUNDUP((size_t)end))
863 zlog_debug("ifam_read() doesn't read all socket data");
864 }
865
866 /* Interface's address information get. */
867 int ifam_read(struct ifa_msghdr *ifam)
868 {
869 struct interface *ifp = NULL;
870 union sockunion addr, mask, brd;
871 char ifname[INTERFACE_NAMSIZ];
872 short ifnlen = 0;
873 char isalias = 0;
874 int flags = 0;
875
876 ifname[0] = ifname[INTERFACE_NAMSIZ - 1] = '\0';
877
878 /* Allocate and read address information. */
879 ifam_read_mesg(ifam, &addr, &mask, &brd, ifname, &ifnlen);
880
881 if ((ifp = if_lookup_by_index(ifam->ifam_index, VRF_DEFAULT)) == NULL) {
882 flog_warn(EC_ZEBRA_UNKNOWN_INTERFACE,
883 "%s: no interface for ifname %s, index %d", __func__,
884 ifname, ifam->ifam_index);
885 return -1;
886 }
887
888 if (ifnlen && strncmp(ifp->name, ifname, INTERFACE_NAMSIZ))
889 isalias = 1;
890
891 /* N.B. The info in ifa_msghdr does not tell us whether the RTA_BRD
892 field contains a broadcast address or a peer address, so we are
893 forced to
894 rely upon the interface type. */
895 if (if_is_pointopoint(ifp))
896 SET_FLAG(flags, ZEBRA_IFA_PEER);
897
898 #if 0
899 /* it might seem cute to grab the interface metric here, however
900 * we're processing an address update message, and so some systems
901 * (e.g. FBSD) dont bother to fill in ifam_metric. Disabled, but left
902 * in deliberately, as comment.
903 */
904 ifp->metric = ifam->ifam_metric;
905 #endif
906
907 /* Add connected address. */
908 switch (sockunion_family(&addr)) {
909 case AF_INET:
910 if (ifam->ifam_type == RTM_NEWADDR)
911 connected_add_ipv4(ifp, flags, &addr.sin.sin_addr,
912 ip_masklen(mask.sin.sin_addr),
913 &brd.sin.sin_addr,
914 (isalias ? ifname : NULL),
915 METRIC_MAX);
916 else
917 connected_delete_ipv4(ifp, flags, &addr.sin.sin_addr,
918 ip_masklen(mask.sin.sin_addr),
919 &brd.sin.sin_addr);
920 break;
921 case AF_INET6:
922 /* Unset interface index from link-local address when IPv6 stack
923 is KAME. */
924 if (IN6_IS_ADDR_LINKLOCAL(&addr.sin6.sin6_addr)) {
925 SET_IN6_LINKLOCAL_IFINDEX(addr.sin6.sin6_addr, 0);
926 }
927
928 if (ifam->ifam_type == RTM_NEWADDR)
929 connected_add_ipv6(ifp, flags, &addr.sin6.sin6_addr,
930 NULL,
931 ip6_masklen(mask.sin6.sin6_addr),
932 (isalias ? ifname : NULL),
933 METRIC_MAX);
934 else
935 connected_delete_ipv6(ifp, &addr.sin6.sin6_addr, NULL,
936 ip6_masklen(mask.sin6.sin6_addr));
937 break;
938 default:
939 /* Unsupported family silently ignore... */
940 break;
941 }
942
943 /* Check interface flag for implicit up of the interface. */
944 if_refresh(ifp);
945
946 #ifdef SUNOS_5
947 /* In addition to lacking IFANNOUNCE, on SUNOS IFF_UP is strange.
948 * See comments for SUNOS_5 in interface.c::if_flags_mangle.
949 *
950 * Here we take care of case where the real IFF_UP was previously
951 * unset (as kept in struct zebra_if.primary_state) and the mangled
952 * IFF_UP (ie IFF_UP set || listcount(connected) has now transitioned
953 * to unset due to the lost non-primary address having DELADDR'd.
954 *
955 * we must delete the interface, because in between here and next
956 * event for this interface-name the administrator could unplumb
957 * and replumb the interface.
958 */
959 if (!if_is_up(ifp))
960 if_delete_update(ifp);
961 #endif /* SUNOS_5 */
962
963 return 0;
964 }
965
966 /* Interface function for reading kernel routing table information. */
967 static int rtm_read_mesg(struct rt_msghdr *rtm, union sockunion *dest,
968 union sockunion *mask, union sockunion *gate,
969 char *ifname, short *ifnlen)
970 {
971 caddr_t pnt, end;
972 int maskbit;
973
974 /* Pnt points out socket data start point. */
975 pnt = (caddr_t)(rtm + 1);
976 end = ((caddr_t)rtm) + rtm->rtm_msglen;
977
978 /* rt_msghdr version check. */
979 if (rtm->rtm_version != RTM_VERSION)
980 flog_warn(EC_ZEBRA_RTM_VERSION_MISMATCH,
981 "Routing message version different %d should be %d."
982 "This may cause problem\n",
983 rtm->rtm_version, RTM_VERSION);
984
985 /* Be sure structure is cleared */
986 memset(dest, 0, sizeof(union sockunion));
987 memset(gate, 0, sizeof(union sockunion));
988 memset(mask, 0, sizeof(union sockunion));
989
990 /* We fetch each socket variable into sockunion. */
991 /* We fetch each socket variable into sockunion. */
992 for (maskbit = 1; maskbit; maskbit <<= 1) {
993 if ((maskbit & rtm->rtm_addrs) == 0)
994 continue;
995
996 switch (maskbit) {
997 case RTA_DST:
998 pnt += rta_get(pnt, dest, sizeof(*dest));
999 break;
1000 case RTA_GATEWAY:
1001 pnt += rta_get(pnt, gate, sizeof(*gate));
1002 break;
1003 case RTA_NETMASK:
1004 pnt += rta_getattr(pnt, mask, sizeof(*mask));
1005 break;
1006 case RTA_IFP:
1007 pnt += rta_getsdlname(pnt, ifname, ifnlen);
1008 break;
1009
1010 default:
1011 pnt += rta_get(pnt, NULL, 0);
1012 break;
1013 }
1014
1015 if (pnt > end) {
1016 zlog_warn("%s: overflow detected (pnt:%p end:%p)",
1017 __func__, pnt, end);
1018 break;
1019 }
1020 }
1021
1022 /* If there is netmask information set it's family same as
1023 destination family*/
1024 if (rtm->rtm_addrs & RTA_NETMASK)
1025 mask->sa.sa_family = dest->sa.sa_family;
1026
1027 /* Assert read up to the end of pointer. */
1028 if (pnt != end)
1029 zlog_debug("rtm_read() doesn't read all socket data.");
1030
1031 return rtm->rtm_flags;
1032 }
1033
1034 void rtm_read(struct rt_msghdr *rtm)
1035 {
1036 int flags;
1037 uint8_t zebra_flags;
1038 union sockunion dest, mask, gate;
1039 char ifname[INTERFACE_NAMSIZ + 1];
1040 short ifnlen = 0;
1041 struct nexthop nh;
1042 struct prefix p;
1043 ifindex_t ifindex = 0;
1044 afi_t afi;
1045 char fbuf[64];
1046
1047 zebra_flags = 0;
1048
1049 /* Read destination and netmask and gateway from rtm message
1050 structure. */
1051 flags = rtm_read_mesg(rtm, &dest, &mask, &gate, ifname, &ifnlen);
1052 if (!(flags & RTF_DONE))
1053 return;
1054 if (IS_ZEBRA_DEBUG_KERNEL)
1055 zlog_debug("%s: got rtm of type %d (%s) addrs {%s}", __func__,
1056 rtm->rtm_type,
1057 lookup_msg(rtm_type_str, rtm->rtm_type, NULL),
1058 rtatostr(rtm->rtm_addrs, fbuf, sizeof(fbuf)));
1059
1060 #ifdef RTF_CLONED /*bsdi, netbsd 1.6*/
1061 if (flags & RTF_CLONED)
1062 return;
1063 #endif
1064 #ifdef RTF_WASCLONED /*freebsd*/
1065 if (flags & RTF_WASCLONED)
1066 return;
1067 #endif
1068
1069 if ((rtm->rtm_type == RTM_ADD || rtm->rtm_type == RTM_CHANGE)
1070 && !(flags & RTF_UP))
1071 return;
1072
1073 /* This is connected route. */
1074 if (!(flags & RTF_GATEWAY))
1075 return;
1076
1077 if (flags & RTF_PROTO1)
1078 SET_FLAG(zebra_flags, ZEBRA_FLAG_SELFROUTE);
1079
1080 memset(&nh, 0, sizeof(nh));
1081
1082 nh.vrf_id = VRF_DEFAULT;
1083 /* This is a reject or blackhole route */
1084 if (flags & RTF_REJECT) {
1085 nh.type = NEXTHOP_TYPE_BLACKHOLE;
1086 nh.bh_type = BLACKHOLE_REJECT;
1087 } else if (flags & RTF_BLACKHOLE) {
1088 nh.type = NEXTHOP_TYPE_BLACKHOLE;
1089 nh.bh_type = BLACKHOLE_NULL;
1090 }
1091
1092 /*
1093 * Ignore our own messages.
1094 */
1095 if (rtm->rtm_type != RTM_GET && rtm->rtm_pid == pid)
1096 return;
1097
1098 if (dest.sa.sa_family == AF_INET) {
1099 afi = AFI_IP;
1100 p.family = AF_INET;
1101 p.u.prefix4 = dest.sin.sin_addr;
1102 if (flags & RTF_HOST)
1103 p.prefixlen = IPV4_MAX_PREFIXLEN;
1104 else
1105 p.prefixlen = ip_masklen(mask.sin.sin_addr);
1106
1107 if (!nh.type) {
1108 nh.type = NEXTHOP_TYPE_IPV4;
1109 nh.gate.ipv4 = gate.sin.sin_addr;
1110 }
1111 } else if (dest.sa.sa_family == AF_INET6) {
1112 afi = AFI_IP6;
1113 p.family = AF_INET6;
1114 p.u.prefix6 = dest.sin6.sin6_addr;
1115 if (flags & RTF_HOST)
1116 p.prefixlen = IPV6_MAX_PREFIXLEN;
1117 else
1118 p.prefixlen = ip6_masklen(mask.sin6.sin6_addr);
1119
1120 #ifdef KAME
1121 if (IN6_IS_ADDR_LINKLOCAL(&gate.sin6.sin6_addr)) {
1122 ifindex = IN6_LINKLOCAL_IFINDEX(gate.sin6.sin6_addr);
1123 SET_IN6_LINKLOCAL_IFINDEX(gate.sin6.sin6_addr, 0);
1124 }
1125 #endif /* KAME */
1126
1127 if (!nh.type) {
1128 nh.type = ifindex ? NEXTHOP_TYPE_IPV6_IFINDEX
1129 : NEXTHOP_TYPE_IPV6;
1130 nh.gate.ipv6 = gate.sin6.sin6_addr;
1131 nh.ifindex = ifindex;
1132 }
1133 } else
1134 return;
1135
1136 /*
1137 * CHANGE: delete the old prefix, we have no further information
1138 * to specify the route really
1139 */
1140 if (rtm->rtm_type == RTM_CHANGE)
1141 rib_delete(afi, SAFI_UNICAST, VRF_DEFAULT, ZEBRA_ROUTE_KERNEL,
1142 0, zebra_flags, &p, NULL, NULL, 0, RT_TABLE_MAIN, 0,
1143 0, true);
1144 if (rtm->rtm_type == RTM_GET || rtm->rtm_type == RTM_ADD
1145 || rtm->rtm_type == RTM_CHANGE)
1146 rib_add(afi, SAFI_UNICAST, VRF_DEFAULT, ZEBRA_ROUTE_KERNEL, 0,
1147 zebra_flags, &p, NULL, &nh, 0, RT_TABLE_MAIN,
1148 0, 0, 0, 0);
1149 else
1150 rib_delete(afi, SAFI_UNICAST, VRF_DEFAULT, ZEBRA_ROUTE_KERNEL,
1151 0, zebra_flags, &p, NULL, &nh, 0, RT_TABLE_MAIN, 0,
1152 0, true);
1153 }
1154
1155 /* Interface function for the kernel routing table updates. Support
1156 * for RTM_CHANGE will be needed.
1157 * Exported only for rt_socket.c
1158 */
1159 int rtm_write(int message, union sockunion *dest, union sockunion *mask,
1160 union sockunion *gate, union sockunion *mpls, unsigned int index,
1161 enum blackhole_type bh_type, int metric)
1162 {
1163 int ret;
1164 caddr_t pnt;
1165 struct interface *ifp;
1166
1167 /* Sequencial number of routing message. */
1168 static int msg_seq = 0;
1169
1170 /* Struct of rt_msghdr and buffer for storing socket's data. */
1171 struct {
1172 struct rt_msghdr rtm;
1173 char buf[512];
1174 } msg;
1175
1176 if (dplane_routing_sock < 0)
1177 return ZEBRA_ERR_EPERM;
1178
1179 /* Clear and set rt_msghdr values */
1180 memset(&msg, 0, sizeof(struct rt_msghdr));
1181 msg.rtm.rtm_version = RTM_VERSION;
1182 msg.rtm.rtm_type = message;
1183 msg.rtm.rtm_seq = msg_seq++;
1184 msg.rtm.rtm_addrs = RTA_DST;
1185 msg.rtm.rtm_addrs |= RTA_GATEWAY;
1186 msg.rtm.rtm_flags = RTF_UP;
1187 #ifdef __OpenBSD__
1188 msg.rtm.rtm_flags |= RTF_MPATH;
1189 msg.rtm.rtm_fmask = RTF_MPLS;
1190 #endif
1191 msg.rtm.rtm_index = index;
1192
1193 if (metric != 0) {
1194 msg.rtm.rtm_rmx.rmx_hopcount = metric;
1195 msg.rtm.rtm_inits |= RTV_HOPCOUNT;
1196 }
1197
1198 ifp = if_lookup_by_index(index, VRF_DEFAULT);
1199
1200 if (gate && (message == RTM_ADD || message == RTM_CHANGE))
1201 msg.rtm.rtm_flags |= RTF_GATEWAY;
1202
1203 /* When RTF_CLONING is unavailable on BSD, should we set some
1204 * other flag instead?
1205 */
1206 #ifdef RTF_CLONING
1207 if (!gate && (message == RTM_ADD || message == RTM_CHANGE) && ifp
1208 && (ifp->flags & IFF_POINTOPOINT) == 0)
1209 msg.rtm.rtm_flags |= RTF_CLONING;
1210 #endif /* RTF_CLONING */
1211
1212 /* If no protocol specific gateway is specified, use link
1213 address for gateway. */
1214 if (!gate) {
1215 if (!ifp) {
1216 char dest_buf[INET_ADDRSTRLEN] = "NULL",
1217 mask_buf[INET_ADDRSTRLEN] = "255.255.255.255";
1218 if (dest)
1219 inet_ntop(AF_INET, &dest->sin.sin_addr,
1220 dest_buf, INET_ADDRSTRLEN);
1221 if (mask)
1222 inet_ntop(AF_INET, &mask->sin.sin_addr,
1223 mask_buf, INET_ADDRSTRLEN);
1224 flog_warn(
1225 EC_ZEBRA_RTM_NO_GATEWAY,
1226 "%s: %s/%s: gate == NULL and no gateway found for ifindex %d",
1227 __func__, dest_buf, mask_buf, index);
1228 return -1;
1229 }
1230 gate = (union sockunion *)&((struct zebra_if *)ifp->info)->sdl;
1231 }
1232
1233 if (mask)
1234 msg.rtm.rtm_addrs |= RTA_NETMASK;
1235 else if (message == RTM_ADD || message == RTM_CHANGE)
1236 msg.rtm.rtm_flags |= RTF_HOST;
1237
1238 #ifdef __OpenBSD__
1239 if (mpls) {
1240 msg.rtm.rtm_addrs |= RTA_SRC;
1241 msg.rtm.rtm_flags |= RTF_MPLS;
1242
1243 if (mpls->smpls.smpls_label
1244 != htonl(MPLS_LABEL_IMPLICIT_NULL << MPLS_LABEL_OFFSET))
1245 msg.rtm.rtm_mpls = MPLS_OP_PUSH;
1246 }
1247 #endif
1248
1249 /* Tagging route with flags */
1250 msg.rtm.rtm_flags |= (RTF_PROTO1);
1251
1252 switch (bh_type) {
1253 case BLACKHOLE_UNSPEC:
1254 break;
1255 case BLACKHOLE_REJECT:
1256 msg.rtm.rtm_flags |= RTF_REJECT;
1257 break;
1258 default:
1259 msg.rtm.rtm_flags |= RTF_BLACKHOLE;
1260 break;
1261 }
1262
1263
1264 #define SOCKADDRSET(X, R) \
1265 if (msg.rtm.rtm_addrs & (R)) { \
1266 int len = SAROUNDUP(X); \
1267 memcpy(pnt, (caddr_t)(X), len); \
1268 pnt += len; \
1269 }
1270
1271 pnt = (caddr_t)msg.buf;
1272
1273 /* Write each socket data into rtm message buffer */
1274 SOCKADDRSET(dest, RTA_DST);
1275 SOCKADDRSET(gate, RTA_GATEWAY);
1276 SOCKADDRSET(mask, RTA_NETMASK);
1277 #ifdef __OpenBSD__
1278 SOCKADDRSET(mpls, RTA_SRC);
1279 #endif
1280
1281 msg.rtm.rtm_msglen = pnt - (caddr_t)&msg;
1282
1283 ret = write(dplane_routing_sock, &msg, msg.rtm.rtm_msglen);
1284
1285 if (ret != msg.rtm.rtm_msglen) {
1286 if (errno == EEXIST)
1287 return ZEBRA_ERR_RTEXIST;
1288 if (errno == ENETUNREACH)
1289 return ZEBRA_ERR_RTUNREACH;
1290 if (errno == ESRCH)
1291 return ZEBRA_ERR_RTNOEXIST;
1292
1293 flog_err_sys(EC_LIB_SOCKET, "%s: write : %s (%d)", __func__,
1294 safe_strerror(errno), errno);
1295 return ZEBRA_ERR_KERNEL;
1296 }
1297 return ZEBRA_ERR_NOERROR;
1298 }
1299
1300
1301 #include "thread.h"
1302 #include "zebra/zserv.h"
1303
1304 /* For debug purpose. */
1305 static void rtmsg_debug(struct rt_msghdr *rtm)
1306 {
1307 char fbuf[64];
1308
1309 zlog_debug("Kernel: Len: %d Type: %s", rtm->rtm_msglen,
1310 lookup_msg(rtm_type_str, rtm->rtm_type, NULL));
1311 rtm_flag_dump(rtm->rtm_flags);
1312 zlog_debug("Kernel: message seq %d", rtm->rtm_seq);
1313 zlog_debug("Kernel: pid %lld, rtm_addrs {%s}", (long long)rtm->rtm_pid,
1314 rtatostr(rtm->rtm_addrs, fbuf, sizeof(fbuf)));
1315 }
1316
1317 /* This is pretty gross, better suggestions welcome -- mhandler */
1318 #ifndef RTAX_MAX
1319 #ifdef RTA_NUMBITS
1320 #define RTAX_MAX RTA_NUMBITS
1321 #else
1322 #define RTAX_MAX 8
1323 #endif /* RTA_NUMBITS */
1324 #endif /* RTAX_MAX */
1325
1326 /* Kernel routing table and interface updates via routing socket. */
1327 static int kernel_read(struct thread *thread)
1328 {
1329 int sock;
1330 int nbytes;
1331 struct rt_msghdr *rtm;
1332
1333 /*
1334 * This must be big enough for any message the kernel might send.
1335 * Rather than determining how many sockaddrs of what size might be
1336 * in each particular message, just use RTAX_MAX of sockaddr_storage
1337 * for each. Note that the sockaddrs must be after each message
1338 * definition, or rather after whichever happens to be the largest,
1339 * since the buffer needs to be big enough for a message and the
1340 * sockaddrs together.
1341 */
1342 union {
1343 /* Routing information. */
1344 struct {
1345 struct rt_msghdr rtm;
1346 struct sockaddr_storage addr[RTAX_MAX];
1347 } r;
1348
1349 /* Interface information. */
1350 struct {
1351 struct if_msghdr ifm;
1352 struct sockaddr_storage addr[RTAX_MAX];
1353 } im;
1354
1355 /* Interface address information. */
1356 struct {
1357 struct ifa_msghdr ifa;
1358 struct sockaddr_storage addr[RTAX_MAX];
1359 } ia;
1360
1361 #ifdef RTM_IFANNOUNCE
1362 /* Interface arrival/departure */
1363 struct {
1364 struct if_announcemsghdr ifan;
1365 struct sockaddr_storage addr[RTAX_MAX];
1366 } ian;
1367 #endif /* RTM_IFANNOUNCE */
1368
1369 } buf;
1370
1371 /* Fetch routing socket. */
1372 sock = THREAD_FD(thread);
1373
1374 nbytes = read(sock, &buf, sizeof buf);
1375
1376 if (nbytes <= 0) {
1377 if (nbytes < 0 && errno != EWOULDBLOCK && errno != EAGAIN)
1378 flog_err_sys(EC_LIB_SOCKET, "routing socket error: %s",
1379 safe_strerror(errno));
1380 return 0;
1381 }
1382
1383 thread_add_read(zrouter.master, kernel_read, NULL, sock, NULL);
1384
1385 if (IS_ZEBRA_DEBUG_KERNEL)
1386 rtmsg_debug(&buf.r.rtm);
1387
1388 rtm = &buf.r.rtm;
1389
1390 /*
1391 * Ensure that we didn't drop any data, so that processing routines
1392 * can assume they have the whole message.
1393 */
1394 if (rtm->rtm_msglen != nbytes) {
1395 zlog_debug(
1396 "kernel_read: rtm->rtm_msglen %d, nbytes %d, type %d\n",
1397 rtm->rtm_msglen, nbytes, rtm->rtm_type);
1398 return -1;
1399 }
1400
1401 switch (rtm->rtm_type) {
1402 case RTM_ADD:
1403 case RTM_DELETE:
1404 case RTM_CHANGE:
1405 rtm_read(rtm);
1406 break;
1407 case RTM_IFINFO:
1408 ifm_read(&buf.im.ifm);
1409 break;
1410 case RTM_NEWADDR:
1411 case RTM_DELADDR:
1412 ifam_read(&buf.ia.ifa);
1413 break;
1414 #ifdef RTM_IFANNOUNCE
1415 case RTM_IFANNOUNCE:
1416 ifan_read(&buf.ian.ifan);
1417 break;
1418 #endif /* RTM_IFANNOUNCE */
1419 default:
1420 if (IS_ZEBRA_DEBUG_KERNEL)
1421 zlog_debug("Unprocessed RTM_type: %d", rtm->rtm_type);
1422 break;
1423 }
1424 return 0;
1425 }
1426
1427 /* Make routing socket. */
1428 static void routing_socket(struct zebra_ns *zns)
1429 {
1430 frr_with_privs(&zserv_privs) {
1431 routing_sock = ns_socket(AF_ROUTE, SOCK_RAW, 0, zns->ns_id);
1432
1433 dplane_routing_sock =
1434 ns_socket(AF_ROUTE, SOCK_RAW, 0, zns->ns_id);
1435 }
1436
1437 if (routing_sock < 0) {
1438 flog_err_sys(EC_LIB_SOCKET, "Can't init kernel routing socket");
1439 return;
1440 }
1441
1442 if (dplane_routing_sock < 0) {
1443 flog_err_sys(EC_LIB_SOCKET,
1444 "Can't init kernel dataplane routing socket");
1445 return;
1446 }
1447
1448 /* XXX: Socket should be NONBLOCK, however as we currently
1449 * discard failed writes, this will lead to inconsistencies.
1450 * For now, socket must be blocking.
1451 */
1452 /*if (fcntl (routing_sock, F_SETFL, O_NONBLOCK) < 0)
1453 zlog_warn ("Can't set O_NONBLOCK to routing socket");*/
1454
1455 /* kernel_read needs rewrite. */
1456 thread_add_read(zrouter.master, kernel_read, NULL, routing_sock, NULL);
1457 }
1458
1459 /* Exported interface function. This function simply calls
1460 routing_socket (). */
1461 void kernel_init(struct zebra_ns *zns)
1462 {
1463 routing_socket(zns);
1464 }
1465
1466 void kernel_terminate(struct zebra_ns *zns, bool complete)
1467 {
1468 return;
1469 }
1470
1471 #endif /* !HAVE_NETLINK */