1 /* SPDX-License-Identifier: LGPL-2.1-only */
2 /*
3 * Copyright (c) 2003-2012 Thomas Graf <[email protected]>
4 * Copyright (c) 2003-2006 Baruch Even <[email protected]>
5 * Copyright (c) 2003-2006 Mediatrix Telecom, inc. <[email protected]>
6 */
7
8 /**
9 * @ingroup rtnl
10 * @defgroup rtaddr Addresses
11 * @brief
12 *
13 * @note The maximum size of an address label is IFNAMSIZ.
14 *
15 * @note The address may not contain a prefix length if the peer address
16 * has been specified already.
17 *
18 * @par 1) Address Addition
19 * @code
20 * // Allocate an empty address object to be filled out with the attributes
21 * // of the new address.
22 * struct rtnl_addr *addr = rtnl_addr_alloc();
23 *
24 * // Fill out the mandatory attributes of the new address. Setting the
25 * // local address will automatically set the address family and the
26 * // prefix length to the correct values.
27 * rtnl_addr_set_ifindex(addr, ifindex);
28 * rtnl_addr_set_local(addr, local_addr);
29 *
30 * // The label of the address can be specified, currently only supported
31 * // by IPv4 and DECnet.
32 * rtnl_addr_set_label(addr, "mylabel");
33 *
34 * // The peer address can be specified if necessary, in either case a peer
35 * // address will be sent to the kernel in order to fullfil the interface
36 * // requirements. If none is set, it will equal the local address.
37 * // Note: Real peer addresses are only supported by IPv4 for now.
38 * rtnl_addr_set_peer(addr, peer_addr);
39 *
40 * // In case you want to have the address have a scope other than global
41 * // it may be overwritten using rtnl_addr_set_scope(). The scope currently
42 * // cannot be set for IPv6 addresses.
43 * rtnl_addr_set_scope(addr, rtnl_str2scope("site"));
44 *
45 * // Broadcast address may be specified using the relevant
46 * // functions, the address family will be verified if one of the other
47 * // addresses has been set already. Currently only works for IPv4.
48 * rtnl_addr_set_broadcast(addr, broadcast_addr);
49 *
50 * // Build the netlink message and send it to the kernel, the operation will
51 * // block until the operation has been completed. Alternatively the required
52 * // netlink message can be built using rtnl_addr_build_add_request() to be
53 * // sent out using nl_send_auto_complete().
54 * rtnl_addr_add(sk, addr, 0);
55 *
56 * // Free the memory
57 * rtnl_addr_put(addr);
58 * @endcode
59 *
60 * @par 2) Address Deletion
61 * @code
62 * // Allocate an empty address object to be filled out with the attributes
63 * // matching the address to be deleted. Alternatively a fully equipped
64 * // address object out of a cache can be used instead.
65 * struct rtnl_addr *addr = rtnl_addr_alloc();
66 *
67 * // The only mandatory parameter besides the address family is the interface
68 * // index the address is on, i.e. leaving out all other parameters will
69 * // result in all addresses of the specified address family interface tuple
70 * // to be deleted.
71 * rtnl_addr_set_ifindex(addr, ifindex);
72 *
73 * // Specyfing the address family manually is only required if neither the
74 * // local nor peer address have been specified.
75 * rtnl_addr_set_family(addr, AF_INET);
76 *
77 * // Specyfing the local address is optional but the best choice to delete
78 * // specific addresses.
79 * rtnl_addr_set_local(addr, local_addr);
80 *
81 * // The label of the address can be specified, currently only supported
82 * // by IPv4 and DECnet.
83 * rtnl_addr_set_label(addr, "mylabel");
84 *
85 * // The peer address can be specified if necessary, in either case a peer
86 * // address will be sent to the kernel in order to fullfil the interface
87 * // requirements. If none is set, it will equal the local address.
88 * // Note: Real peer addresses are only supported by IPv4 for now.
89 * rtnl_addr_set_peer(addr, peer_addr);
90 *
91 * // Build the netlink message and send it to the kernel, the operation will
92 * // block until the operation has been completed. Alternatively the required
93 * // netlink message can be built using rtnl_addr_build_delete_request()
94 * // to be sent out using nl_send_auto_complete().
95 * rtnl_addr_delete(sk, addr, 0);
96 *
97 * // Free the memory
98 * rtnl_addr_put(addr);
99 * @endcode
100 * @{
101 */
102
103 #include "nl-default.h"
104
105 #include <netlink/netlink.h>
106 #include <netlink/route/rtnl.h>
107 #include <netlink/route/addr.h>
108 #include <netlink/route/route.h>
109 #include <netlink/route/link.h>
110 #include <netlink/utils.h>
111
112 #include "nl-route.h"
113 #include "nl-priv-dynamic-core/nl-core.h"
114 #include "nl-priv-dynamic-core/cache-api.h"
115
116 /** @cond SKIP */
117 struct rtnl_addr_cacheinfo {
118 /* Preferred lifetime in seconds, ticking from when the message gets constructed */
119 uint32_t aci_prefered;
120
121 /* Valid lifetime in seconds, ticking from when the message gets constructed */
122 uint32_t aci_valid;
123
124 /* Timestamp of creation in 1/100s since boottime, clock_gettime(CLOCK_MONOTONIC) */
125 uint32_t aci_cstamp;
126
127 /* Timestamp of last update in 1/100s since boottime, clock_gettime(CLOCK_MONOTONIC) */
128 uint32_t aci_tstamp;
129 };
130
131 struct rtnl_addr {
132 NLHDR_COMMON
133
134 uint8_t a_family;
135 uint8_t a_prefixlen;
136 uint8_t a_scope;
137 uint32_t a_flags;
138 uint32_t a_ifindex;
139
140 struct nl_addr *a_peer;
141 struct nl_addr *a_local;
142 struct nl_addr *a_bcast;
143 struct nl_addr *a_anycast;
144 struct nl_addr *a_multicast;
145
146 struct rtnl_addr_cacheinfo a_cacheinfo;
147
148 char a_label[IFNAMSIZ];
149 uint32_t a_flag_mask;
150 struct rtnl_link *a_link;
151 };
152
153 #define ADDR_ATTR_FAMILY 0x0001
154 #define ADDR_ATTR_PREFIXLEN 0x0002
155 #define ADDR_ATTR_FLAGS 0x0004
156 #define ADDR_ATTR_SCOPE 0x0008
157 #define ADDR_ATTR_IFINDEX 0x0010
158 #define ADDR_ATTR_LABEL 0x0020
159 #define ADDR_ATTR_CACHEINFO 0x0040
160 #define ADDR_ATTR_PEER 0x0080
161 #define ADDR_ATTR_LOCAL 0x0100
162 #define ADDR_ATTR_BROADCAST 0x0200
163 #define ADDR_ATTR_MULTICAST 0x0400
164 #define ADDR_ATTR_ANYCAST 0x0800
165
166 static struct nl_cache_ops rtnl_addr_ops;
167 static struct nl_object_ops addr_obj_ops;
168 /** @endcond */
169
addr_constructor(struct nl_object * obj)170 static void addr_constructor(struct nl_object *obj)
171 {
172 struct rtnl_addr *addr = nl_object_priv(obj);
173
174 addr->a_scope = RT_SCOPE_NOWHERE;
175 }
176
addr_free_data(struct nl_object * obj)177 static void addr_free_data(struct nl_object *obj)
178 {
179 struct rtnl_addr *addr = nl_object_priv(obj);
180
181 if (!addr)
182 return;
183
184 nl_addr_put(addr->a_peer);
185 nl_addr_put(addr->a_local);
186 nl_addr_put(addr->a_bcast);
187 nl_addr_put(addr->a_multicast);
188 nl_addr_put(addr->a_anycast);
189 rtnl_link_put(addr->a_link);
190 }
191
addr_clone(struct nl_object * _dst,struct nl_object * _src)192 static int addr_clone(struct nl_object *_dst, struct nl_object *_src)
193 {
194 struct rtnl_addr *dst = nl_object_priv(_dst);
195 struct rtnl_addr *src = nl_object_priv(_src);
196
197 dst->a_peer = NULL;
198 dst->a_local = NULL;
199 dst->a_bcast = NULL;
200 dst->a_anycast = NULL;
201 dst->a_multicast = NULL;
202 dst->a_link = NULL;
203
204 if (src->a_link) {
205 nl_object_get(OBJ_CAST(src->a_link));
206 dst->a_link = src->a_link;
207 }
208
209 if (src->a_peer)
210 if (!(dst->a_peer = nl_addr_clone(src->a_peer)))
211 return -NLE_NOMEM;
212
213 if (src->a_local)
214 if (!(dst->a_local = nl_addr_clone(src->a_local)))
215 return -NLE_NOMEM;
216
217 if (src->a_bcast)
218 if (!(dst->a_bcast = nl_addr_clone(src->a_bcast)))
219 return -NLE_NOMEM;
220
221 if (src->a_multicast)
222 if (!(dst->a_multicast = nl_addr_clone(src->a_multicast)))
223 return -NLE_NOMEM;
224
225 if (src->a_anycast)
226 if (!(dst->a_anycast = nl_addr_clone(src->a_anycast)))
227 return -NLE_NOMEM;
228
229 return 0;
230 }
231
232 static struct nla_policy addr_policy[IFA_MAX+1] = {
233 [IFA_LABEL] = { .type = NLA_STRING,
234 .maxlen = IFNAMSIZ },
235 [IFA_CACHEINFO] = { .minlen = sizeof(struct ifa_cacheinfo) },
236 };
237
addr_msg_parser(struct nl_cache_ops * ops,struct sockaddr_nl * who,struct nlmsghdr * nlh,struct nl_parser_param * pp)238 static int addr_msg_parser(struct nl_cache_ops *ops, struct sockaddr_nl *who,
239 struct nlmsghdr *nlh, struct nl_parser_param *pp)
240 {
241 struct rtnl_addr *addr;
242 struct ifaddrmsg *ifa;
243 struct nlattr *tb[IFA_MAX+1];
244 int err, family;
245 struct nl_cache *link_cache;
246 struct nl_addr *plen_addr = NULL;
247
248 addr = rtnl_addr_alloc();
249 if (!addr)
250 return -NLE_NOMEM;
251
252 addr->ce_msgtype = nlh->nlmsg_type;
253
254 err = nlmsg_parse(nlh, sizeof(*ifa), tb, IFA_MAX, addr_policy);
255 if (err < 0)
256 goto errout;
257
258 ifa = nlmsg_data(nlh);
259 addr->a_family = family = ifa->ifa_family;
260 addr->a_prefixlen = ifa->ifa_prefixlen;
261 addr->a_scope = ifa->ifa_scope;
262 addr->a_flags = tb[IFA_FLAGS] ? nla_get_u32(tb[IFA_FLAGS]) :
263 ifa->ifa_flags;
264 addr->a_ifindex = ifa->ifa_index;
265
266 addr->ce_mask = (ADDR_ATTR_FAMILY | ADDR_ATTR_PREFIXLEN |
267 ADDR_ATTR_FLAGS | ADDR_ATTR_SCOPE | ADDR_ATTR_IFINDEX);
268
269 if (tb[IFA_LABEL]) {
270 nla_strlcpy(addr->a_label, tb[IFA_LABEL], IFNAMSIZ);
271 addr->ce_mask |= ADDR_ATTR_LABEL;
272 }
273
274 /* IPv6 only */
275 if (tb[IFA_CACHEINFO]) {
276 struct ifa_cacheinfo *ca;
277
278 ca = nla_data(tb[IFA_CACHEINFO]);
279 addr->a_cacheinfo.aci_prefered = ca->ifa_prefered;
280 addr->a_cacheinfo.aci_valid = ca->ifa_valid;
281 addr->a_cacheinfo.aci_cstamp = ca->cstamp;
282 addr->a_cacheinfo.aci_tstamp = ca->tstamp;
283 addr->ce_mask |= ADDR_ATTR_CACHEINFO;
284 }
285
286 if (family == AF_INET) {
287 uint32_t null = 0;
288
289 /* for IPv4/AF_INET, kernel always sets IFA_LOCAL and IFA_ADDRESS, unless it
290 * is effectively 0.0.0.0. */
291 if (tb[IFA_LOCAL])
292 addr->a_local = nl_addr_alloc_attr(tb[IFA_LOCAL], family);
293 else
294 addr->a_local = nl_addr_build(family, &null, sizeof (null));
295 if (!addr->a_local)
296 goto errout_nomem;
297 addr->ce_mask |= ADDR_ATTR_LOCAL;
298
299 if (tb[IFA_ADDRESS])
300 addr->a_peer = nl_addr_alloc_attr(tb[IFA_ADDRESS], family);
301 else
302 addr->a_peer = nl_addr_build(family, &null, sizeof (null));
303 if (!addr->a_peer)
304 goto errout_nomem;
305
306 if (!nl_addr_cmp (addr->a_local, addr->a_peer)) {
307 /* having IFA_ADDRESS equal to IFA_LOCAL does not really mean
308 * there is no peer. It means the peer is equal to the local address,
309 * which is the case for "normal" addresses.
310 *
311 * Still, clear the peer and pretend it is unset for backward
312 * compatibility. */
313 nl_addr_put(addr->a_peer);
314 addr->a_peer = NULL;
315 } else
316 addr->ce_mask |= ADDR_ATTR_PEER;
317
318 plen_addr = addr->a_local;
319 } else {
320 if (tb[IFA_LOCAL]) {
321 addr->a_local = nl_addr_alloc_attr(tb[IFA_LOCAL], family);
322 if (!addr->a_local)
323 goto errout_nomem;
324 addr->ce_mask |= ADDR_ATTR_LOCAL;
325 plen_addr = addr->a_local;
326 }
327
328 if (tb[IFA_ADDRESS]) {
329 struct nl_addr *a;
330
331 a = nl_addr_alloc_attr(tb[IFA_ADDRESS], family);
332 if (!a)
333 goto errout_nomem;
334
335 /* IPv6 sends the local address as IFA_ADDRESS with
336 * no IFA_LOCAL, IPv4 sends both IFA_LOCAL and IFA_ADDRESS
337 * with IFA_ADDRESS being the peer address if they differ */
338 if (!tb[IFA_LOCAL] || !nl_addr_cmp(a, addr->a_local)) {
339 nl_addr_put(addr->a_local);
340 addr->a_local = a;
341 addr->ce_mask |= ADDR_ATTR_LOCAL;
342 } else {
343 addr->a_peer = a;
344 addr->ce_mask |= ADDR_ATTR_PEER;
345 }
346
347 plen_addr = a;
348 }
349 }
350
351 if (plen_addr)
352 nl_addr_set_prefixlen(plen_addr, addr->a_prefixlen);
353
354 /* IPv4 only */
355 if (tb[IFA_BROADCAST]) {
356 addr->a_bcast = nl_addr_alloc_attr(tb[IFA_BROADCAST], family);
357 if (!addr->a_bcast)
358 goto errout_nomem;
359
360 addr->ce_mask |= ADDR_ATTR_BROADCAST;
361 }
362
363 /* IPv6 only */
364 if (tb[IFA_MULTICAST]) {
365 addr->a_multicast = nl_addr_alloc_attr(tb[IFA_MULTICAST],
366 family);
367 if (!addr->a_multicast)
368 goto errout_nomem;
369
370 addr->ce_mask |= ADDR_ATTR_MULTICAST;
371 }
372
373 /* IPv6 only */
374 if (tb[IFA_ANYCAST]) {
375 addr->a_anycast = nl_addr_alloc_attr(tb[IFA_ANYCAST],
376 family);
377 if (!addr->a_anycast)
378 goto errout_nomem;
379
380 addr->ce_mask |= ADDR_ATTR_ANYCAST;
381 }
382
383 if ((link_cache = __nl_cache_mngt_require("route/link"))) {
384 struct rtnl_link *link;
385
386 if ((link = rtnl_link_get(link_cache, addr->a_ifindex))) {
387 rtnl_addr_set_link(addr, link);
388
389 /* rtnl_addr_set_link incs refcnt */
390 rtnl_link_put(link);
391 }
392 }
393
394 err = pp->pp_cb((struct nl_object *) addr, pp);
395 errout:
396 rtnl_addr_put(addr);
397
398 return err;
399
400 errout_nomem:
401 err = -NLE_NOMEM;
402 goto errout;
403 }
404
addr_request_update(struct nl_cache * cache,struct nl_sock * sk)405 static int addr_request_update(struct nl_cache *cache, struct nl_sock *sk)
406 {
407 return nl_rtgen_request(sk, RTM_GETADDR, AF_UNSPEC, NLM_F_DUMP);
408 }
409
addr_dump_line(struct nl_object * obj,struct nl_dump_params * p)410 static void addr_dump_line(struct nl_object *obj, struct nl_dump_params *p)
411 {
412 struct rtnl_addr *addr = (struct rtnl_addr *) obj;
413 struct nl_cache *link_cache;
414 char buf[128];
415
416 link_cache = nl_cache_mngt_require_safe("route/link");
417
418 if (addr->ce_mask & ADDR_ATTR_LOCAL)
419 nl_dump_line(p, "%s",
420 nl_addr2str(addr->a_local, buf, sizeof(buf)));
421 else
422 nl_dump_line(p, "none");
423
424 if (addr->ce_mask & ADDR_ATTR_PEER)
425 nl_dump(p, " peer %s",
426 nl_addr2str(addr->a_peer, buf, sizeof(buf)));
427
428 nl_dump(p, " %s ", nl_af2str(addr->a_family, buf, sizeof(buf)));
429
430 if (link_cache)
431 nl_dump(p, "dev %s ",
432 rtnl_link_i2name(link_cache, addr->a_ifindex,
433 buf, sizeof(buf)));
434 else
435 nl_dump(p, "dev %d ", addr->a_ifindex);
436
437 nl_dump(p, "scope %s",
438 rtnl_scope2str(addr->a_scope, buf, sizeof(buf)));
439
440 rtnl_addr_flags2str(addr->a_flags, buf, sizeof(buf));
441 if (buf[0])
442 nl_dump(p, " <%s>", buf);
443
444 nl_dump(p, "\n");
445
446 if (link_cache)
447 nl_cache_put(link_cache);
448 }
449
addr_dump_details(struct nl_object * obj,struct nl_dump_params * p)450 static void addr_dump_details(struct nl_object *obj, struct nl_dump_params *p)
451 {
452 struct rtnl_addr *addr = (struct rtnl_addr *) obj;
453 char buf[128];
454
455 addr_dump_line(obj, p);
456
457 if (addr->ce_mask & (ADDR_ATTR_LABEL | ADDR_ATTR_BROADCAST |
458 ADDR_ATTR_MULTICAST)) {
459 nl_dump_line(p, " ");
460
461 if (addr->ce_mask & ADDR_ATTR_LABEL)
462 nl_dump(p, " label %s", addr->a_label);
463
464 if (addr->ce_mask & ADDR_ATTR_BROADCAST)
465 nl_dump(p, " broadcast %s",
466 nl_addr2str(addr->a_bcast, buf, sizeof(buf)));
467
468 if (addr->ce_mask & ADDR_ATTR_MULTICAST)
469 nl_dump(p, " multicast %s",
470 nl_addr2str(addr->a_multicast, buf,
471 sizeof(buf)));
472
473 if (addr->ce_mask & ADDR_ATTR_ANYCAST)
474 nl_dump(p, " anycast %s",
475 nl_addr2str(addr->a_anycast, buf,
476 sizeof(buf)));
477
478 nl_dump(p, "\n");
479 }
480
481 if (addr->ce_mask & ADDR_ATTR_CACHEINFO) {
482 struct rtnl_addr_cacheinfo *ci = &addr->a_cacheinfo;
483
484 nl_dump_line(p, " valid-lifetime %s",
485 ci->aci_valid == 0xFFFFFFFFU ? "forever" :
486 nl_msec2str(ci->aci_valid * 1000,
487 buf, sizeof(buf)));
488
489 nl_dump(p, " preferred-lifetime %s\n",
490 ci->aci_prefered == 0xFFFFFFFFU ? "forever" :
491 nl_msec2str(ci->aci_prefered * 1000,
492 buf, sizeof(buf)));
493
494 nl_dump_line(p, " created boot-time+%s ",
495 nl_msec2str(addr->a_cacheinfo.aci_cstamp * 10,
496 buf, sizeof(buf)));
497
498 nl_dump(p, "last-updated boot-time+%s\n",
499 nl_msec2str(addr->a_cacheinfo.aci_tstamp * 10,
500 buf, sizeof(buf)));
501 }
502 }
503
addr_dump_stats(struct nl_object * obj,struct nl_dump_params * p)504 static void addr_dump_stats(struct nl_object *obj, struct nl_dump_params *p)
505 {
506 addr_dump_details(obj, p);
507 }
508
addr_id_attrs_get(struct nl_object * obj)509 static uint32_t addr_id_attrs_get(struct nl_object *obj)
510 {
511 struct rtnl_addr *addr = (struct rtnl_addr *)obj;
512 uint32_t rv;
513
514 switch (addr->a_family) {
515 case AF_INET:
516 rv = (ADDR_ATTR_FAMILY | ADDR_ATTR_IFINDEX |
517 ADDR_ATTR_LOCAL | ADDR_ATTR_PREFIXLEN);
518 if (addr->a_peer)
519 rv |= ADDR_ATTR_PEER;
520 return rv;
521 case AF_INET6:
522 return (ADDR_ATTR_FAMILY | ADDR_ATTR_IFINDEX |
523 ADDR_ATTR_LOCAL);
524 default:
525 return (ADDR_ATTR_FAMILY | ADDR_ATTR_IFINDEX |
526 ADDR_ATTR_LOCAL | ADDR_ATTR_PREFIXLEN);
527 }
528 }
529
addr_compare(struct nl_object * _a,struct nl_object * _b,uint64_t attrs,int flags)530 static uint64_t addr_compare(struct nl_object *_a, struct nl_object *_b,
531 uint64_t attrs, int flags)
532 {
533 struct rtnl_addr *a = (struct rtnl_addr *) _a;
534 struct rtnl_addr *b = (struct rtnl_addr *) _b;
535 uint64_t diff = 0;
536
537 #define _DIFF(ATTR, EXPR) ATTR_DIFF(attrs, ATTR, a, b, EXPR)
538 diff |= _DIFF(ADDR_ATTR_IFINDEX, a->a_ifindex != b->a_ifindex);
539 diff |= _DIFF(ADDR_ATTR_FAMILY, a->a_family != b->a_family);
540 diff |= _DIFF(ADDR_ATTR_SCOPE, a->a_scope != b->a_scope);
541 diff |= _DIFF(ADDR_ATTR_LABEL, strcmp(a->a_label, b->a_label));
542 if (attrs & ADDR_ATTR_PEER) {
543 if ((flags & ID_COMPARISON) && a->a_family == AF_INET &&
544 b->a_family == AF_INET && a->a_peer && b->a_peer &&
545 a->a_prefixlen == b->a_prefixlen) {
546 /* when comparing two IPv4 addresses for id-equality, the network part
547 * of the PEER address shall be compared.
548 */
549 diff |= _DIFF(ADDR_ATTR_PEER,
550 nl_addr_cmp_prefix(a->a_peer, b->a_peer));
551 } else
552 diff |= _DIFF(ADDR_ATTR_PEER,
553 nl_addr_cmp(a->a_peer, b->a_peer));
554 }
555 diff |= _DIFF(ADDR_ATTR_LOCAL, nl_addr_cmp(a->a_local, b->a_local));
556 diff |= _DIFF(ADDR_ATTR_MULTICAST,
557 nl_addr_cmp(a->a_multicast, b->a_multicast));
558 diff |= _DIFF(ADDR_ATTR_BROADCAST, nl_addr_cmp(a->a_bcast, b->a_bcast));
559 diff |= _DIFF(ADDR_ATTR_ANYCAST,
560 nl_addr_cmp(a->a_anycast, b->a_anycast));
561 diff |= _DIFF(ADDR_ATTR_CACHEINFO,
562 memcmp(&a->a_cacheinfo, &b->a_cacheinfo,
563 sizeof(a->a_cacheinfo)));
564
565 if (flags & LOOSE_COMPARISON)
566 diff |= _DIFF(ADDR_ATTR_FLAGS,
567 (a->a_flags ^ b->a_flags) & b->a_flag_mask);
568 else
569 diff |= _DIFF(ADDR_ATTR_FLAGS, a->a_flags != b->a_flags);
570 #undef _DIFF
571
572 return diff;
573 }
574
575 static const struct trans_tbl addr_attrs[] = {
576 __ADD(ADDR_ATTR_FAMILY, family),
577 __ADD(ADDR_ATTR_PREFIXLEN, prefixlen),
578 __ADD(ADDR_ATTR_FLAGS, flags),
579 __ADD(ADDR_ATTR_SCOPE, scope),
580 __ADD(ADDR_ATTR_IFINDEX, ifindex),
581 __ADD(ADDR_ATTR_LABEL, label),
582 __ADD(ADDR_ATTR_CACHEINFO, cacheinfo),
583 __ADD(ADDR_ATTR_PEER, peer),
584 __ADD(ADDR_ATTR_LOCAL, local),
585 __ADD(ADDR_ATTR_BROADCAST, broadcast),
586 __ADD(ADDR_ATTR_MULTICAST, multicast),
587 };
588
addr_attrs2str(int attrs,char * buf,size_t len)589 static char *addr_attrs2str(int attrs, char *buf, size_t len)
590 {
591 return __flags2str(attrs, buf, len, addr_attrs,
592 ARRAY_SIZE(addr_attrs));
593 }
594
595 /**
596 * @name Allocation/Freeing
597 * @{
598 */
599
rtnl_addr_alloc(void)600 struct rtnl_addr *rtnl_addr_alloc(void)
601 {
602 return (struct rtnl_addr *) nl_object_alloc(&addr_obj_ops);
603 }
604
rtnl_addr_put(struct rtnl_addr * addr)605 void rtnl_addr_put(struct rtnl_addr *addr)
606 {
607 nl_object_put((struct nl_object *) addr);
608 }
609
610 /** @} */
611
612 /**
613 * @name Cache Management
614 * @{
615 */
616
rtnl_addr_alloc_cache(struct nl_sock * sk,struct nl_cache ** result)617 int rtnl_addr_alloc_cache(struct nl_sock *sk, struct nl_cache **result)
618 {
619 return nl_cache_alloc_and_fill(&rtnl_addr_ops, sk, result);
620 }
621
622 /**
623 * Search address in cache
624 * @arg cache Address cache
625 * @arg ifindex Interface index of address
626 * @arg addr Local address part
627 *
628 * Searches address cache previously allocated with rtnl_addr_alloc_cache()
629 * for an address with a matching local address.
630 *
631 * The reference counter is incremented before returning the address, therefore
632 * the reference must be given back with rtnl_addr_put() after usage.
633 *
634 * @return Address object or NULL if no match was found.
635 */
rtnl_addr_get(struct nl_cache * cache,int ifindex,struct nl_addr * addr)636 struct rtnl_addr *rtnl_addr_get(struct nl_cache *cache, int ifindex,
637 struct nl_addr *addr)
638 {
639 struct rtnl_addr *a;
640
641 if (cache->c_ops != &rtnl_addr_ops)
642 return NULL;
643
644 nl_list_for_each_entry(a, &cache->c_items, ce_list) {
645 if (ifindex != 0 && a->a_ifindex != ((unsigned)ifindex))
646 continue;
647
648 if (a->ce_mask & ADDR_ATTR_LOCAL &&
649 !nl_addr_cmp(a->a_local, addr)) {
650 nl_object_get((struct nl_object *) a);
651 return a;
652 }
653 }
654
655 return NULL;
656 }
657
658 /** @} */
659
build_addr_msg(struct rtnl_addr * tmpl,int cmd,int flags,struct nl_msg ** result)660 static int build_addr_msg(struct rtnl_addr *tmpl, int cmd, int flags,
661 struct nl_msg **result)
662 {
663 struct nl_msg *msg;
664 struct ifaddrmsg am = {
665 .ifa_family = tmpl->a_family,
666 .ifa_index = tmpl->a_ifindex,
667 .ifa_prefixlen = tmpl->a_prefixlen,
668 .ifa_flags = tmpl->a_flags,
669 };
670
671 if (tmpl->ce_mask & ADDR_ATTR_SCOPE)
672 am.ifa_scope = tmpl->a_scope;
673 else {
674 /* compatibility hack */
675 if (tmpl->a_family == AF_INET &&
676 tmpl->ce_mask & ADDR_ATTR_LOCAL &&
677 *((char *) nl_addr_get_binary_addr(tmpl->a_local)) == 127)
678 am.ifa_scope = RT_SCOPE_HOST;
679 else
680 am.ifa_scope = RT_SCOPE_UNIVERSE;
681 }
682
683 msg = nlmsg_alloc_simple(cmd, flags);
684 if (!msg)
685 return -NLE_NOMEM;
686
687 if (nlmsg_append(msg, &am, sizeof(am), NLMSG_ALIGNTO) < 0)
688 goto nla_put_failure;
689
690 if (tmpl->ce_mask & ADDR_ATTR_LOCAL)
691 NLA_PUT_ADDR(msg, IFA_LOCAL, tmpl->a_local);
692
693 if (tmpl->ce_mask & ADDR_ATTR_PEER)
694 NLA_PUT_ADDR(msg, IFA_ADDRESS, tmpl->a_peer);
695 else if (tmpl->ce_mask & ADDR_ATTR_LOCAL)
696 NLA_PUT_ADDR(msg, IFA_ADDRESS, tmpl->a_local);
697
698 if (tmpl->ce_mask & ADDR_ATTR_LABEL)
699 NLA_PUT_STRING(msg, IFA_LABEL, tmpl->a_label);
700
701 if (tmpl->ce_mask & ADDR_ATTR_BROADCAST)
702 NLA_PUT_ADDR(msg, IFA_BROADCAST, tmpl->a_bcast);
703
704 if (tmpl->ce_mask & ADDR_ATTR_CACHEINFO) {
705 struct ifa_cacheinfo ca = {
706 .ifa_valid = tmpl->a_cacheinfo.aci_valid,
707 .ifa_prefered = tmpl->a_cacheinfo.aci_prefered,
708 };
709
710 NLA_PUT(msg, IFA_CACHEINFO, sizeof(ca), &ca);
711 }
712
713 if (tmpl->a_flags & ~0xFF) {
714 /* only set the IFA_FLAGS attribute, if they actually contain additional
715 * flags that are not already set to am.ifa_flags.
716 *
717 * Older kernels refuse RTM_NEWADDR and RTM_NEWROUTE messages with EINVAL
718 * if they contain unknown netlink attributes. See net/core/rtnetlink.c, which
719 * was fixed by kernel commit 661d2967b3f1b34eeaa7e212e7b9bbe8ee072b59.
720 *
721 * With this workaround, libnl will function correctly with older kernels,
722 * unless there is a new libnl user that wants to set these flags. In this
723 * case it's up to the user to workaround this issue. */
724 NLA_PUT_U32(msg, IFA_FLAGS, tmpl->a_flags);
725 }
726
727 *result = msg;
728 return 0;
729
730 nla_put_failure:
731 nlmsg_free(msg);
732 return -NLE_MSGSIZE;
733 }
734
735 /**
736 * @name Addition
737 * @{
738 */
739
740 /**
741 * Build netlink request message to request addition of new address
742 * @arg addr Address object representing the new address.
743 * @arg flags Additional netlink message flags.
744 * @arg result Pointer to store resulting message.
745 *
746 * Builds a new netlink message requesting the addition of a new
747 * address. The netlink message header isn't fully equipped with
748 * all relevant fields and must thus be sent out via nl_send_auto_complete()
749 * or supplemented as needed.
750 *
751 * Minimal required attributes:
752 * - interface index (rtnl_addr_set_ifindex())
753 * - local address (rtnl_addr_set_local())
754 *
755 * The scope will default to universe except for loopback addresses in
756 * which case a host scope is used if not specified otherwise.
757 *
758 * @note Free the memory after usage using nlmsg_free().
759 *
760 * @return 0 on success or a negative error code.
761 */
rtnl_addr_build_add_request(struct rtnl_addr * addr,int flags,struct nl_msg ** result)762 int rtnl_addr_build_add_request(struct rtnl_addr *addr, int flags,
763 struct nl_msg **result)
764 {
765 uint32_t required = ADDR_ATTR_IFINDEX | ADDR_ATTR_FAMILY |
766 ADDR_ATTR_PREFIXLEN | ADDR_ATTR_LOCAL;
767
768 if ((addr->ce_mask & required) != required)
769 return -NLE_MISSING_ATTR;
770
771 return build_addr_msg(addr, RTM_NEWADDR, NLM_F_CREATE | flags, result);
772 }
773
774 /**
775 * Request addition of new address
776 * @arg sk Netlink socket.
777 * @arg addr Address object representing the new address.
778 * @arg flags Additional netlink message flags.
779 *
780 * Builds a netlink message by calling rtnl_addr_build_add_request(),
781 * sends the request to the kernel and waits for the next ACK to be
782 * received and thus blocks until the request has been fullfilled.
783 *
784 * @see rtnl_addr_build_add_request()
785 *
786 * @return 0 on success or a negative error if an error occured.
787 */
rtnl_addr_add(struct nl_sock * sk,struct rtnl_addr * addr,int flags)788 int rtnl_addr_add(struct nl_sock *sk, struct rtnl_addr *addr, int flags)
789 {
790 struct nl_msg *msg;
791 int err;
792
793 if ((err = rtnl_addr_build_add_request(addr, flags, &msg)) < 0)
794 return err;
795
796 err = nl_send_auto_complete(sk, msg);
797 nlmsg_free(msg);
798 if (err < 0)
799 return err;
800
801 return wait_for_ack(sk);
802 }
803
804 /** @} */
805
806 /**
807 * @name Deletion
808 * @{
809 */
810
811 /**
812 * Build a netlink request message to request deletion of an address
813 * @arg addr Address object to be deleteted.
814 * @arg flags Additional netlink message flags.
815 * @arg result Pointer to store resulting message.
816 *
817 * Builds a new netlink message requesting a deletion of an address.
818 * The netlink message header isn't fully equipped with all relevant
819 * fields and must thus be sent out via nl_send_auto_complete()
820 * or supplemented as needed.
821 *
822 * Minimal required attributes:
823 * - interface index (rtnl_addr_set_ifindex())
824 * - address family (rtnl_addr_set_family())
825 *
826 * Optional attributes:
827 * - local address (rtnl_addr_set_local())
828 * - label (rtnl_addr_set_label(), IPv4/DECnet only)
829 * - peer address (rtnl_addr_set_peer(), IPv4 only)
830 *
831 * @note Free the memory after usage using nlmsg_free().
832 *
833 * @return 0 on success or a negative error code.
834 */
rtnl_addr_build_delete_request(struct rtnl_addr * addr,int flags,struct nl_msg ** result)835 int rtnl_addr_build_delete_request(struct rtnl_addr *addr, int flags,
836 struct nl_msg **result)
837 {
838 uint32_t required = ADDR_ATTR_IFINDEX | ADDR_ATTR_FAMILY;
839
840 if ((addr->ce_mask & required) != required)
841 return -NLE_MISSING_ATTR;
842
843 return build_addr_msg(addr, RTM_DELADDR, flags, result);
844 }
845
846 /**
847 * Request deletion of an address
848 * @arg sk Netlink socket.
849 * @arg addr Address object to be deleted.
850 * @arg flags Additional netlink message flags.
851 *
852 * Builds a netlink message by calling rtnl_addr_build_delete_request(),
853 * sends the request to the kernel and waits for the next ACK to be
854 * received and thus blocks until the request has been fullfilled.
855 *
856 * @see rtnl_addr_build_delete_request();
857 *
858 * @return 0 on success or a negative error if an error occured.
859 */
rtnl_addr_delete(struct nl_sock * sk,struct rtnl_addr * addr,int flags)860 int rtnl_addr_delete(struct nl_sock *sk, struct rtnl_addr *addr, int flags)
861 {
862 struct nl_msg *msg;
863 int err;
864
865 if ((err = rtnl_addr_build_delete_request(addr, flags, &msg)) < 0)
866 return err;
867
868 err = nl_send_auto_complete(sk, msg);
869 nlmsg_free(msg);
870 if (err < 0)
871 return err;
872
873 return wait_for_ack(sk);
874 }
875
876 /** @} */
877
878 /**
879 * @name Attributes
880 * @{
881 */
882
rtnl_addr_set_label(struct rtnl_addr * addr,const char * label)883 int rtnl_addr_set_label(struct rtnl_addr *addr, const char *label)
884 {
885 if (strlen(label) > sizeof(addr->a_label) - 1)
886 return -NLE_RANGE;
887
888 strcpy(addr->a_label, label);
889 addr->ce_mask |= ADDR_ATTR_LABEL;
890
891 return 0;
892 }
893
rtnl_addr_get_label(struct rtnl_addr * addr)894 char *rtnl_addr_get_label(struct rtnl_addr *addr)
895 {
896 if (addr->ce_mask & ADDR_ATTR_LABEL)
897 return addr->a_label;
898 else
899 return NULL;
900 }
901
rtnl_addr_set_ifindex(struct rtnl_addr * addr,int ifindex)902 void rtnl_addr_set_ifindex(struct rtnl_addr *addr, int ifindex)
903 {
904 addr->a_ifindex = ifindex;
905 addr->ce_mask |= ADDR_ATTR_IFINDEX;
906 }
907
rtnl_addr_get_ifindex(struct rtnl_addr * addr)908 int rtnl_addr_get_ifindex(struct rtnl_addr *addr)
909 {
910 return addr->a_ifindex;
911 }
912
rtnl_addr_set_link(struct rtnl_addr * addr,struct rtnl_link * link)913 void rtnl_addr_set_link(struct rtnl_addr *addr, struct rtnl_link *link)
914 {
915 rtnl_link_put(addr->a_link);
916
917 if (!link)
918 return;
919
920 nl_object_get(OBJ_CAST(link));
921 addr->a_link = link;
922 addr->a_ifindex = link->l_index;
923 addr->ce_mask |= ADDR_ATTR_IFINDEX;
924 }
925
rtnl_addr_get_link(struct rtnl_addr * addr)926 struct rtnl_link *rtnl_addr_get_link(struct rtnl_addr *addr)
927 {
928 if (addr->a_link) {
929 nl_object_get(OBJ_CAST(addr->a_link));
930 return addr->a_link;
931 }
932
933 return NULL;
934 }
935
rtnl_addr_set_family(struct rtnl_addr * addr,int family)936 void rtnl_addr_set_family(struct rtnl_addr *addr, int family)
937 {
938 addr->a_family = family;
939 addr->ce_mask |= ADDR_ATTR_FAMILY;
940 }
941
rtnl_addr_get_family(struct rtnl_addr * addr)942 int rtnl_addr_get_family(struct rtnl_addr *addr)
943 {
944 return addr->a_family;
945 }
946
947 /**
948 * Set the prefix length / netmask
949 * @arg addr Address
950 * @arg prefixlen Length of prefix (netmask)
951 *
952 * Modifies the length of the prefix. If the address object contains a peer
953 * address the prefix length will apply to it, otherwise the prefix length
954 * will apply to the local address of the address.
955 *
956 * If the address object contains a peer or local address the corresponding
957 * `struct nl_addr` will be updated with the new prefix length.
958 *
959 * @note Specifying a length of 0 will remove the prefix length alltogether.
960 *
961 * @see rtnl_addr_get_prefixlen()
962 */
rtnl_addr_set_prefixlen(struct rtnl_addr * addr,int prefixlen)963 void rtnl_addr_set_prefixlen(struct rtnl_addr *addr, int prefixlen)
964 {
965 addr->a_prefixlen = prefixlen;
966
967 if (prefixlen)
968 addr->ce_mask |= ADDR_ATTR_PREFIXLEN;
969 else
970 addr->ce_mask &= ~ADDR_ATTR_PREFIXLEN;
971
972 /*
973 * The prefix length always applies to the peer address if
974 * a peer address is present.
975 */
976 if (addr->a_peer)
977 nl_addr_set_prefixlen(addr->a_peer, prefixlen);
978 else if (addr->a_local)
979 nl_addr_set_prefixlen(addr->a_local, prefixlen);
980 }
981
rtnl_addr_get_prefixlen(struct rtnl_addr * addr)982 int rtnl_addr_get_prefixlen(struct rtnl_addr *addr)
983 {
984 return addr->a_prefixlen;
985 }
986
rtnl_addr_set_scope(struct rtnl_addr * addr,int scope)987 void rtnl_addr_set_scope(struct rtnl_addr *addr, int scope)
988 {
989 addr->a_scope = scope;
990 addr->ce_mask |= ADDR_ATTR_SCOPE;
991 }
992
rtnl_addr_get_scope(struct rtnl_addr * addr)993 int rtnl_addr_get_scope(struct rtnl_addr *addr)
994 {
995 return addr->a_scope;
996 }
997
rtnl_addr_set_flags(struct rtnl_addr * addr,unsigned int flags)998 void rtnl_addr_set_flags(struct rtnl_addr *addr, unsigned int flags)
999 {
1000 addr->a_flag_mask |= flags;
1001 addr->a_flags |= flags;
1002 addr->ce_mask |= ADDR_ATTR_FLAGS;
1003 }
1004
rtnl_addr_unset_flags(struct rtnl_addr * addr,unsigned int flags)1005 void rtnl_addr_unset_flags(struct rtnl_addr *addr, unsigned int flags)
1006 {
1007 addr->a_flag_mask |= flags;
1008 addr->a_flags &= ~flags;
1009 addr->ce_mask |= ADDR_ATTR_FLAGS;
1010 }
1011
rtnl_addr_get_flags(struct rtnl_addr * addr)1012 unsigned int rtnl_addr_get_flags(struct rtnl_addr *addr)
1013 {
1014 return addr->a_flags;
1015 }
1016
__assign_addr(struct rtnl_addr * addr,struct nl_addr ** pos,struct nl_addr * new,int flag)1017 static inline int __assign_addr(struct rtnl_addr *addr, struct nl_addr **pos,
1018 struct nl_addr *new, int flag)
1019 {
1020 if (new) {
1021 if (addr->ce_mask & ADDR_ATTR_FAMILY) {
1022 if (new->a_family != addr->a_family)
1023 return -NLE_AF_MISMATCH;
1024 } else
1025 addr->a_family = new->a_family;
1026
1027 if (*pos)
1028 nl_addr_put(*pos);
1029
1030 *pos = nl_addr_get(new);
1031 addr->ce_mask |= (flag | ADDR_ATTR_FAMILY);
1032 } else {
1033 if (*pos)
1034 nl_addr_put(*pos);
1035
1036 *pos = NULL;
1037 addr->ce_mask &= ~flag;
1038 }
1039
1040 return 0;
1041 }
1042
rtnl_addr_set_local(struct rtnl_addr * addr,struct nl_addr * local)1043 int rtnl_addr_set_local(struct rtnl_addr *addr, struct nl_addr *local)
1044 {
1045 int err;
1046
1047 /* Prohibit local address with prefix length if peer address is present */
1048 if ((addr->ce_mask & ADDR_ATTR_PEER) && local &&
1049 nl_addr_get_prefixlen(local))
1050 return -NLE_INVAL;
1051
1052 err = __assign_addr(addr, &addr->a_local, local, ADDR_ATTR_LOCAL);
1053 if (err < 0)
1054 return err;
1055
1056 /* Never overwrite the prefix length if a peer address is present */
1057 if (!(addr->ce_mask & ADDR_ATTR_PEER))
1058 rtnl_addr_set_prefixlen(addr, local ? nl_addr_get_prefixlen(local) : 0);
1059
1060 return 0;
1061 }
1062
rtnl_addr_get_local(struct rtnl_addr * addr)1063 struct nl_addr *rtnl_addr_get_local(struct rtnl_addr *addr)
1064 {
1065 return addr->a_local;
1066 }
1067
rtnl_addr_set_peer(struct rtnl_addr * addr,struct nl_addr * peer)1068 int rtnl_addr_set_peer(struct rtnl_addr *addr, struct nl_addr *peer)
1069 {
1070 int err;
1071
1072 if (peer && peer->a_family != AF_INET)
1073 return -NLE_AF_NOSUPPORT;
1074
1075 err = __assign_addr(addr, &addr->a_peer, peer, ADDR_ATTR_PEER);
1076 if (err < 0)
1077 return err;
1078
1079 rtnl_addr_set_prefixlen(addr, peer ? nl_addr_get_prefixlen(peer) : 0);
1080
1081 return 0;
1082 }
1083
rtnl_addr_get_peer(struct rtnl_addr * addr)1084 struct nl_addr *rtnl_addr_get_peer(struct rtnl_addr *addr)
1085 {
1086 return addr->a_peer;
1087 }
1088
rtnl_addr_set_broadcast(struct rtnl_addr * addr,struct nl_addr * bcast)1089 int rtnl_addr_set_broadcast(struct rtnl_addr *addr, struct nl_addr *bcast)
1090 {
1091 if (bcast && bcast->a_family != AF_INET)
1092 return -NLE_AF_NOSUPPORT;
1093
1094 return __assign_addr(addr, &addr->a_bcast, bcast, ADDR_ATTR_BROADCAST);
1095 }
1096
rtnl_addr_get_broadcast(struct rtnl_addr * addr)1097 struct nl_addr *rtnl_addr_get_broadcast(struct rtnl_addr *addr)
1098 {
1099 return addr->a_bcast;
1100 }
1101
rtnl_addr_set_multicast(struct rtnl_addr * addr,struct nl_addr * multicast)1102 int rtnl_addr_set_multicast(struct rtnl_addr *addr, struct nl_addr *multicast)
1103 {
1104 if (multicast && multicast->a_family != AF_INET6)
1105 return -NLE_AF_NOSUPPORT;
1106
1107 return __assign_addr(addr, &addr->a_multicast, multicast,
1108 ADDR_ATTR_MULTICAST);
1109 }
1110
rtnl_addr_get_multicast(struct rtnl_addr * addr)1111 struct nl_addr *rtnl_addr_get_multicast(struct rtnl_addr *addr)
1112 {
1113 return addr->a_multicast;
1114 }
1115
rtnl_addr_set_anycast(struct rtnl_addr * addr,struct nl_addr * anycast)1116 int rtnl_addr_set_anycast(struct rtnl_addr *addr, struct nl_addr *anycast)
1117 {
1118 if (anycast && anycast->a_family != AF_INET6)
1119 return -NLE_AF_NOSUPPORT;
1120
1121 return __assign_addr(addr, &addr->a_anycast, anycast,
1122 ADDR_ATTR_ANYCAST);
1123 }
1124
rtnl_addr_get_anycast(struct rtnl_addr * addr)1125 struct nl_addr *rtnl_addr_get_anycast(struct rtnl_addr *addr)
1126 {
1127 return addr->a_anycast;
1128 }
1129
rtnl_addr_get_valid_lifetime(struct rtnl_addr * addr)1130 uint32_t rtnl_addr_get_valid_lifetime(struct rtnl_addr *addr)
1131 {
1132 if (addr->ce_mask & ADDR_ATTR_CACHEINFO)
1133 return addr->a_cacheinfo.aci_valid;
1134 else
1135 return 0xFFFFFFFFU;
1136 }
1137
rtnl_addr_set_valid_lifetime(struct rtnl_addr * addr,uint32_t lifetime)1138 void rtnl_addr_set_valid_lifetime(struct rtnl_addr *addr, uint32_t lifetime)
1139 {
1140 addr->a_cacheinfo.aci_valid = lifetime;
1141 addr->ce_mask |= ADDR_ATTR_CACHEINFO;
1142 }
1143
rtnl_addr_get_preferred_lifetime(struct rtnl_addr * addr)1144 uint32_t rtnl_addr_get_preferred_lifetime(struct rtnl_addr *addr)
1145 {
1146 if (addr->ce_mask & ADDR_ATTR_CACHEINFO)
1147 return addr->a_cacheinfo.aci_prefered;
1148 else
1149 return 0xFFFFFFFFU;
1150 }
1151
rtnl_addr_set_preferred_lifetime(struct rtnl_addr * addr,uint32_t lifetime)1152 void rtnl_addr_set_preferred_lifetime(struct rtnl_addr *addr, uint32_t lifetime)
1153 {
1154 addr->a_cacheinfo.aci_prefered = lifetime;
1155 addr->ce_mask |= ADDR_ATTR_CACHEINFO;
1156 }
1157
rtnl_addr_get_create_time(struct rtnl_addr * addr)1158 uint32_t rtnl_addr_get_create_time(struct rtnl_addr *addr)
1159 {
1160 return addr->a_cacheinfo.aci_cstamp;
1161 }
1162
rtnl_addr_get_last_update_time(struct rtnl_addr * addr)1163 uint32_t rtnl_addr_get_last_update_time(struct rtnl_addr *addr)
1164 {
1165 return addr->a_cacheinfo.aci_tstamp;
1166 }
1167
1168 /** @} */
1169
1170 /**
1171 * @name Flags Translations
1172 * @{
1173 */
1174
1175 static const struct trans_tbl addr_flags[] = {
1176 __ADD(IFA_F_SECONDARY, secondary),
1177 __ADD(IFA_F_NODAD, nodad),
1178 __ADD(IFA_F_OPTIMISTIC, optimistic),
1179 __ADD(IFA_F_DADFAILED, dadfailed),
1180 __ADD(IFA_F_HOMEADDRESS, homeaddress),
1181 __ADD(IFA_F_DEPRECATED, deprecated),
1182 __ADD(IFA_F_TENTATIVE, tentative),
1183 __ADD(IFA_F_PERMANENT, permanent),
1184 __ADD(IFA_F_MANAGETEMPADDR, mngtmpaddr),
1185 __ADD(IFA_F_NOPREFIXROUTE, noprefixroute),
1186 };
1187
rtnl_addr_flags2str(int flags,char * buf,size_t size)1188 char *rtnl_addr_flags2str(int flags, char *buf, size_t size)
1189 {
1190 return __flags2str(flags, buf, size, addr_flags,
1191 ARRAY_SIZE(addr_flags));
1192 }
1193
rtnl_addr_str2flags(const char * name)1194 int rtnl_addr_str2flags(const char *name)
1195 {
1196 return __str2flags(name, addr_flags, ARRAY_SIZE(addr_flags));
1197 }
1198
1199 /** @} */
1200
1201 static struct nl_object_ops addr_obj_ops = {
1202 .oo_name = "route/addr",
1203 .oo_size = sizeof(struct rtnl_addr),
1204 .oo_constructor = addr_constructor,
1205 .oo_free_data = addr_free_data,
1206 .oo_clone = addr_clone,
1207 .oo_dump = {
1208 [NL_DUMP_LINE] = addr_dump_line,
1209 [NL_DUMP_DETAILS] = addr_dump_details,
1210 [NL_DUMP_STATS] = addr_dump_stats,
1211 },
1212 .oo_compare = addr_compare,
1213 .oo_attrs2str = addr_attrs2str,
1214 .oo_id_attrs_get = addr_id_attrs_get,
1215 .oo_id_attrs = (ADDR_ATTR_FAMILY | ADDR_ATTR_IFINDEX |
1216 ADDR_ATTR_LOCAL | ADDR_ATTR_PREFIXLEN),
1217 };
1218
1219 static struct nl_af_group addr_groups[] = {
1220 { AF_INET, RTNLGRP_IPV4_IFADDR },
1221 { AF_INET6, RTNLGRP_IPV6_IFADDR },
1222 { END_OF_GROUP_LIST },
1223 };
1224
1225 static struct nl_cache_ops rtnl_addr_ops = {
1226 .co_name = "route/addr",
1227 .co_hdrsize = sizeof(struct ifaddrmsg),
1228 .co_msgtypes = {
1229 { RTM_NEWADDR, NL_ACT_NEW, "new" },
1230 { RTM_DELADDR, NL_ACT_DEL, "del" },
1231 { RTM_GETADDR, NL_ACT_GET, "get" },
1232 END_OF_MSGTYPES_LIST,
1233 },
1234 .co_protocol = NETLINK_ROUTE,
1235 .co_groups = addr_groups,
1236 .co_request_update = addr_request_update,
1237 .co_msg_parser = addr_msg_parser,
1238 .co_obj_ops = &addr_obj_ops,
1239 };
1240
addr_init(void)1241 static void _nl_init addr_init(void)
1242 {
1243 nl_cache_mngt_register(&rtnl_addr_ops);
1244 }
1245
addr_exit(void)1246 static void _nl_exit addr_exit(void)
1247 {
1248 nl_cache_mngt_unregister(&rtnl_addr_ops);
1249 }
1250
1251 /** @} */
1252