route.c revision 1.196 1 1.196 ozaki /* $NetBSD: route.c,v 1.196 2017/06/22 09:56:48 ozaki-r Exp $ */
2 1.18 kml
3 1.18 kml /*-
4 1.106 ad * Copyright (c) 1998, 2008 The NetBSD Foundation, Inc.
5 1.18 kml * All rights reserved.
6 1.18 kml *
7 1.18 kml * This code is derived from software contributed to The NetBSD Foundation
8 1.18 kml * by Kevin M. Lahey of the Numerical Aerospace Simulation Facility,
9 1.18 kml * NASA Ames Research Center.
10 1.18 kml *
11 1.18 kml * Redistribution and use in source and binary forms, with or without
12 1.18 kml * modification, are permitted provided that the following conditions
13 1.18 kml * are met:
14 1.18 kml * 1. Redistributions of source code must retain the above copyright
15 1.18 kml * notice, this list of conditions and the following disclaimer.
16 1.18 kml * 2. Redistributions in binary form must reproduce the above copyright
17 1.18 kml * notice, this list of conditions and the following disclaimer in the
18 1.18 kml * documentation and/or other materials provided with the distribution.
19 1.18 kml *
20 1.18 kml * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.18 kml * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.18 kml * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.18 kml * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.18 kml * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.18 kml * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.18 kml * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.18 kml * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.18 kml * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.18 kml * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.18 kml * POSSIBILITY OF SUCH DAMAGE.
31 1.18 kml */
32 1.11 cgd
33 1.1 cgd /*
34 1.25 itojun * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
35 1.25 itojun * All rights reserved.
36 1.65 perry *
37 1.25 itojun * Redistribution and use in source and binary forms, with or without
38 1.25 itojun * modification, are permitted provided that the following conditions
39 1.25 itojun * are met:
40 1.25 itojun * 1. Redistributions of source code must retain the above copyright
41 1.25 itojun * notice, this list of conditions and the following disclaimer.
42 1.25 itojun * 2. Redistributions in binary form must reproduce the above copyright
43 1.25 itojun * notice, this list of conditions and the following disclaimer in the
44 1.25 itojun * documentation and/or other materials provided with the distribution.
45 1.25 itojun * 3. Neither the name of the project nor the names of its contributors
46 1.25 itojun * may be used to endorse or promote products derived from this software
47 1.25 itojun * without specific prior written permission.
48 1.65 perry *
49 1.25 itojun * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
50 1.25 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
51 1.25 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
52 1.25 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
53 1.25 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
54 1.25 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
55 1.25 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
56 1.25 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
57 1.25 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
58 1.25 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
59 1.25 itojun * SUCH DAMAGE.
60 1.25 itojun */
61 1.25 itojun
62 1.25 itojun /*
63 1.10 mycroft * Copyright (c) 1980, 1986, 1991, 1993
64 1.10 mycroft * The Regents of the University of California. All rights reserved.
65 1.1 cgd *
66 1.1 cgd * Redistribution and use in source and binary forms, with or without
67 1.1 cgd * modification, are permitted provided that the following conditions
68 1.1 cgd * are met:
69 1.1 cgd * 1. Redistributions of source code must retain the above copyright
70 1.1 cgd * notice, this list of conditions and the following disclaimer.
71 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
72 1.1 cgd * notice, this list of conditions and the following disclaimer in the
73 1.1 cgd * documentation and/or other materials provided with the distribution.
74 1.58 agc * 3. Neither the name of the University nor the names of its contributors
75 1.1 cgd * may be used to endorse or promote products derived from this software
76 1.1 cgd * without specific prior written permission.
77 1.1 cgd *
78 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
79 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
80 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
81 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
82 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
83 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
84 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
85 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
86 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
87 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
88 1.1 cgd * SUCH DAMAGE.
89 1.1 cgd *
90 1.17 christos * @(#)route.c 8.3 (Berkeley) 1/9/95
91 1.1 cgd */
92 1.50 lukem
93 1.149 pooka #ifdef _KERNEL_OPT
94 1.136 roy #include "opt_inet.h"
95 1.90 dyoung #include "opt_route.h"
96 1.175 ozaki #include "opt_net_mpsafe.h"
97 1.149 pooka #endif
98 1.90 dyoung
99 1.50 lukem #include <sys/cdefs.h>
100 1.196 ozaki __KERNEL_RCSID(0, "$NetBSD: route.c,v 1.196 2017/06/22 09:56:48 ozaki-r Exp $");
101 1.2 cgd
102 1.5 mycroft #include <sys/param.h>
103 1.140 ozaki #ifdef RTFLUSH_DEBUG
104 1.90 dyoung #include <sys/sysctl.h>
105 1.140 ozaki #endif
106 1.5 mycroft #include <sys/systm.h>
107 1.35 thorpej #include <sys/callout.h>
108 1.5 mycroft #include <sys/proc.h>
109 1.5 mycroft #include <sys/mbuf.h>
110 1.5 mycroft #include <sys/socket.h>
111 1.5 mycroft #include <sys/socketvar.h>
112 1.5 mycroft #include <sys/domain.h>
113 1.18 kml #include <sys/kernel.h>
114 1.5 mycroft #include <sys/ioctl.h>
115 1.22 thorpej #include <sys/pool.h>
116 1.119 elad #include <sys/kauth.h>
117 1.170 ozaki #include <sys/workqueue.h>
118 1.182 ozaki #include <sys/syslog.h>
119 1.183 ozaki #include <sys/rwlock.h>
120 1.183 ozaki #include <sys/mutex.h>
121 1.183 ozaki #include <sys/cpu.h>
122 1.1 cgd
123 1.5 mycroft #include <net/if.h>
124 1.114 dyoung #include <net/if_dl.h>
125 1.5 mycroft #include <net/route.h>
126 1.196 ozaki #if defined(INET) || defined(INET6)
127 1.196 ozaki #include <net/if_llatbl.h>
128 1.196 ozaki #endif
129 1.1 cgd
130 1.5 mycroft #include <netinet/in.h>
131 1.5 mycroft #include <netinet/in_var.h>
132 1.1 cgd
133 1.90 dyoung #ifdef RTFLUSH_DEBUG
134 1.90 dyoung #define rtcache_debug() __predict_false(_rtcache_debug)
135 1.90 dyoung #else /* RTFLUSH_DEBUG */
136 1.90 dyoung #define rtcache_debug() 0
137 1.90 dyoung #endif /* RTFLUSH_DEBUG */
138 1.5 mycroft
139 1.183 ozaki #ifdef RT_DEBUG
140 1.183 ozaki #define RT_REFCNT_TRACE(rt) printf("%s:%d: rt=%p refcnt=%d\n", \
141 1.183 ozaki __func__, __LINE__, (rt), (rt)->rt_refcnt)
142 1.183 ozaki #else
143 1.183 ozaki #define RT_REFCNT_TRACE(rt) do {} while (0)
144 1.183 ozaki #endif
145 1.183 ozaki
146 1.183 ozaki #ifdef DEBUG
147 1.183 ozaki #define dlog(level, fmt, args...) log(level, fmt, ##args)
148 1.183 ozaki #else
149 1.183 ozaki #define dlog(level, fmt, args...) do {} while (0)
150 1.183 ozaki #endif
151 1.183 ozaki
152 1.155 ozaki struct rtstat rtstat;
153 1.1 cgd
154 1.155 ozaki static int rttrash; /* routes not in table but not freed */
155 1.1 cgd
156 1.155 ozaki static struct pool rtentry_pool;
157 1.155 ozaki static struct pool rttimer_pool;
158 1.22 thorpej
159 1.155 ozaki static struct callout rt_timer_ch; /* callout for rt_timer_timer() */
160 1.177 ozaki static struct workqueue *rt_timer_wq;
161 1.177 ozaki static struct work rt_timer_wk;
162 1.177 ozaki
163 1.177 ozaki static void rt_timer_init(void);
164 1.181 ozaki static void rt_timer_queue_remove_all(struct rttimer_queue *);
165 1.178 ozaki static void rt_timer_remove_all(struct rtentry *);
166 1.177 ozaki static void rt_timer_timer(void *);
167 1.35 thorpej
168 1.183 ozaki /*
169 1.183 ozaki * Locking notes:
170 1.183 ozaki * - The routing table is protected by a global rwlock
171 1.183 ozaki * - API: RT_RLOCK and friends
172 1.183 ozaki * - rtcaches are protected by a global rwlock
173 1.183 ozaki * - API: RTCACHE_RLOCK and friends
174 1.183 ozaki * - References to a rtentry is managed by reference counting and psref
175 1.183 ozaki * - Reference couting is used for temporal reference when a rtentry
176 1.183 ozaki * is fetched from the routing table
177 1.183 ozaki * - psref is used for temporal reference when a rtentry is fetched
178 1.183 ozaki * from a rtcache
179 1.183 ozaki * - struct route (rtcache) has struct psref, so we cannot obtain
180 1.183 ozaki * a reference twice on the same struct route
181 1.183 ozaki * - Befere destroying or updating a rtentry, we have to wait for
182 1.183 ozaki * all references left (see below for details)
183 1.183 ozaki * - APIs
184 1.183 ozaki * - An obtained rtentry via rtalloc1 or rtrequest* must be
185 1.183 ozaki * unreferenced by rt_unref
186 1.183 ozaki * - An obtained rtentry via rtcache_* must be unreferenced by
187 1.183 ozaki * rtcache_unref
188 1.183 ozaki * - TODO: once we get a lockless routing table, we should use only
189 1.183 ozaki * psref for rtentries
190 1.183 ozaki * - rtentry destruction
191 1.183 ozaki * - A rtentry is destroyed (freed) only when we call rtrequest(RTM_DELETE)
192 1.183 ozaki * - If a caller of rtrequest grabs a reference of a rtentry, the caller
193 1.183 ozaki * has a responsibility to destroy the rtentry by itself by calling
194 1.183 ozaki * rt_free
195 1.183 ozaki * - If not, rtrequest itself does that
196 1.183 ozaki * - If rt_free is called in softint, the actual destruction routine is
197 1.183 ozaki * deferred to a workqueue
198 1.183 ozaki * - rtentry update
199 1.183 ozaki * - When updating a rtentry, RTF_UPDATING flag is set
200 1.183 ozaki * - If a rtentry is set RTF_UPDATING, fetching the rtentry from
201 1.183 ozaki * the routing table or a rtcache results in either of the following
202 1.183 ozaki * cases:
203 1.183 ozaki * - if the caller runs in softint, the caller fails to fetch
204 1.183 ozaki * - otherwise, the caller waits for the update completed and retries
205 1.183 ozaki * to fetch (probably succeed to fetch for the second time)
206 1.183 ozaki */
207 1.183 ozaki
208 1.183 ozaki /*
209 1.183 ozaki * Global locks for the routing table and rtcaches.
210 1.183 ozaki * Locking order: rtcache_lock => rt_lock
211 1.183 ozaki */
212 1.183 ozaki static krwlock_t rt_lock __cacheline_aligned;
213 1.183 ozaki #ifdef NET_MPSAFE
214 1.183 ozaki #define RT_RLOCK() rw_enter(&rt_lock, RW_READER)
215 1.183 ozaki #define RT_WLOCK() rw_enter(&rt_lock, RW_WRITER)
216 1.183 ozaki #define RT_UNLOCK() rw_exit(&rt_lock)
217 1.183 ozaki #define RT_LOCKED() rw_lock_held(&rt_lock)
218 1.183 ozaki #define RT_ASSERT_WLOCK() KASSERT(rw_write_held(&rt_lock))
219 1.183 ozaki #else
220 1.183 ozaki #define RT_RLOCK() do {} while (0)
221 1.183 ozaki #define RT_WLOCK() do {} while (0)
222 1.183 ozaki #define RT_UNLOCK() do {} while (0)
223 1.183 ozaki #define RT_LOCKED() false
224 1.183 ozaki #define RT_ASSERT_WLOCK() do {} while (0)
225 1.183 ozaki #endif
226 1.183 ozaki
227 1.183 ozaki static krwlock_t rtcache_lock __cacheline_aligned;
228 1.183 ozaki #ifdef NET_MPSAFE
229 1.183 ozaki #define RTCACHE_RLOCK() rw_enter(&rtcache_lock, RW_READER)
230 1.183 ozaki #define RTCACHE_WLOCK() rw_enter(&rtcache_lock, RW_WRITER)
231 1.183 ozaki #define RTCACHE_UNLOCK() rw_exit(&rtcache_lock)
232 1.183 ozaki #define RTCACHE_ASSERT_WLOCK() KASSERT(rw_write_held(&rtcache_lock))
233 1.183 ozaki #define RTCACHE_WLOCKED() rw_write_held(&rtcache_lock)
234 1.183 ozaki #else
235 1.183 ozaki #define RTCACHE_RLOCK() do {} while (0)
236 1.183 ozaki #define RTCACHE_WLOCK() do {} while (0)
237 1.183 ozaki #define RTCACHE_UNLOCK() do {} while (0)
238 1.183 ozaki #define RTCACHE_ASSERT_WLOCK() do {} while (0)
239 1.183 ozaki #define RTCACHE_WLOCKED() false
240 1.183 ozaki #endif
241 1.183 ozaki
242 1.183 ozaki /*
243 1.183 ozaki * mutex and cv that are used to wait for references to a rtentry left
244 1.183 ozaki * before updating the rtentry.
245 1.183 ozaki */
246 1.183 ozaki static struct {
247 1.183 ozaki kmutex_t lock;
248 1.183 ozaki kcondvar_t cv;
249 1.183 ozaki bool ongoing;
250 1.183 ozaki const struct lwp *lwp;
251 1.183 ozaki } rt_update_global __cacheline_aligned;
252 1.183 ozaki
253 1.183 ozaki /*
254 1.183 ozaki * A workqueue and stuff that are used to defer the destruction routine
255 1.183 ozaki * of rtentries.
256 1.183 ozaki */
257 1.183 ozaki static struct {
258 1.183 ozaki struct workqueue *wq;
259 1.183 ozaki struct work wk;
260 1.183 ozaki kmutex_t lock;
261 1.183 ozaki struct rtentry *queue[10];
262 1.183 ozaki } rt_free_global __cacheline_aligned;
263 1.183 ozaki
264 1.183 ozaki /* psref for rtentry */
265 1.183 ozaki static struct psref_class *rt_psref_class __read_mostly;
266 1.183 ozaki
267 1.90 dyoung #ifdef RTFLUSH_DEBUG
268 1.90 dyoung static int _rtcache_debug = 0;
269 1.90 dyoung #endif /* RTFLUSH_DEBUG */
270 1.90 dyoung
271 1.119 elad static kauth_listener_t route_listener;
272 1.119 elad
273 1.60 matt static int rtdeletemsg(struct rtentry *);
274 1.144 ozaki static void rtflushall(int);
275 1.40 itojun
276 1.141 ozaki static void rt_maskedcopy(const struct sockaddr *,
277 1.141 ozaki struct sockaddr *, const struct sockaddr *);
278 1.141 ozaki
279 1.144 ozaki static void rtcache_clear(struct route *);
280 1.168 ozaki static void rtcache_clear_rtentry(int, struct rtentry *);
281 1.144 ozaki static void rtcache_invalidate(struct dom_rtlist *);
282 1.144 ozaki
283 1.183 ozaki static void rt_ref(struct rtentry *);
284 1.183 ozaki
285 1.183 ozaki static struct rtentry *
286 1.195 ozaki rtalloc1_locked(const struct sockaddr *, int, bool, bool);
287 1.183 ozaki static struct rtentry *
288 1.183 ozaki rtcache_validate_locked(struct route *);
289 1.183 ozaki static void rtcache_free_locked(struct route *);
290 1.183 ozaki static int rtcache_setdst_locked(struct route *, const struct sockaddr *);
291 1.183 ozaki
292 1.183 ozaki static void rtcache_ref(struct rtentry *, struct route *);
293 1.183 ozaki
294 1.188 ozaki #ifdef NET_MPSAFE
295 1.183 ozaki static void rt_update_wait(void);
296 1.188 ozaki #endif
297 1.183 ozaki
298 1.183 ozaki static bool rt_wait_ok(void);
299 1.183 ozaki static void rt_wait_refcnt(const char *, struct rtentry *, int);
300 1.183 ozaki static void rt_wait_psref(struct rtentry *);
301 1.183 ozaki
302 1.162 ozaki #ifdef DDB
303 1.162 ozaki static void db_print_sa(const struct sockaddr *);
304 1.162 ozaki static void db_print_ifa(struct ifaddr *);
305 1.162 ozaki static int db_show_rtentry(struct rtentry *, void *);
306 1.162 ozaki #endif
307 1.162 ozaki
308 1.90 dyoung #ifdef RTFLUSH_DEBUG
309 1.118 pooka static void sysctl_net_rtcache_setup(struct sysctllog **);
310 1.118 pooka static void
311 1.118 pooka sysctl_net_rtcache_setup(struct sysctllog **clog)
312 1.90 dyoung {
313 1.90 dyoung const struct sysctlnode *rnode;
314 1.90 dyoung
315 1.90 dyoung if (sysctl_createv(clog, 0, NULL, &rnode, CTLFLAG_PERMANENT,
316 1.90 dyoung CTLTYPE_NODE,
317 1.90 dyoung "rtcache", SYSCTL_DESCR("Route cache related settings"),
318 1.128 pooka NULL, 0, NULL, 0, CTL_NET, CTL_CREATE, CTL_EOL) != 0)
319 1.90 dyoung return;
320 1.90 dyoung if (sysctl_createv(clog, 0, &rnode, &rnode,
321 1.90 dyoung CTLFLAG_PERMANENT|CTLFLAG_READWRITE, CTLTYPE_INT,
322 1.90 dyoung "debug", SYSCTL_DESCR("Debug route caches"),
323 1.90 dyoung NULL, 0, &_rtcache_debug, 0, CTL_CREATE, CTL_EOL) != 0)
324 1.90 dyoung return;
325 1.90 dyoung }
326 1.90 dyoung #endif /* RTFLUSH_DEBUG */
327 1.90 dyoung
328 1.144 ozaki static inline void
329 1.144 ozaki rt_destroy(struct rtentry *rt)
330 1.144 ozaki {
331 1.144 ozaki if (rt->_rt_key != NULL)
332 1.144 ozaki sockaddr_free(rt->_rt_key);
333 1.144 ozaki if (rt->rt_gateway != NULL)
334 1.144 ozaki sockaddr_free(rt->rt_gateway);
335 1.144 ozaki if (rt_gettag(rt) != NULL)
336 1.144 ozaki sockaddr_free(rt_gettag(rt));
337 1.144 ozaki rt->_rt_key = rt->rt_gateway = rt->rt_tag = NULL;
338 1.144 ozaki }
339 1.144 ozaki
340 1.144 ozaki static inline const struct sockaddr *
341 1.144 ozaki rt_setkey(struct rtentry *rt, const struct sockaddr *key, int flags)
342 1.144 ozaki {
343 1.144 ozaki if (rt->_rt_key == key)
344 1.144 ozaki goto out;
345 1.144 ozaki
346 1.144 ozaki if (rt->_rt_key != NULL)
347 1.144 ozaki sockaddr_free(rt->_rt_key);
348 1.144 ozaki rt->_rt_key = sockaddr_dup(key, flags);
349 1.144 ozaki out:
350 1.144 ozaki rt->rt_nodes->rn_key = (const char *)rt->_rt_key;
351 1.144 ozaki return rt->_rt_key;
352 1.144 ozaki }
353 1.144 ozaki
354 1.81 joerg struct ifaddr *
355 1.81 joerg rt_get_ifa(struct rtentry *rt)
356 1.81 joerg {
357 1.81 joerg struct ifaddr *ifa;
358 1.81 joerg
359 1.81 joerg if ((ifa = rt->rt_ifa) == NULL)
360 1.81 joerg return ifa;
361 1.81 joerg else if (ifa->ifa_getifa == NULL)
362 1.81 joerg return ifa;
363 1.81 joerg #if 0
364 1.81 joerg else if (ifa->ifa_seqno != NULL && *ifa->ifa_seqno == rt->rt_ifa_seqno)
365 1.81 joerg return ifa;
366 1.81 joerg #endif
367 1.81 joerg else {
368 1.94 dyoung ifa = (*ifa->ifa_getifa)(ifa, rt_getkey(rt));
369 1.145 roy if (ifa == NULL)
370 1.145 roy return NULL;
371 1.81 joerg rt_replace_ifa(rt, ifa);
372 1.81 joerg return ifa;
373 1.81 joerg }
374 1.81 joerg }
375 1.81 joerg
376 1.80 joerg static void
377 1.80 joerg rt_set_ifa1(struct rtentry *rt, struct ifaddr *ifa)
378 1.80 joerg {
379 1.80 joerg rt->rt_ifa = ifa;
380 1.80 joerg if (ifa->ifa_seqno != NULL)
381 1.80 joerg rt->rt_ifa_seqno = *ifa->ifa_seqno;
382 1.80 joerg }
383 1.80 joerg
384 1.116 roy /*
385 1.116 roy * Is this route the connected route for the ifa?
386 1.116 roy */
387 1.116 roy static int
388 1.116 roy rt_ifa_connected(const struct rtentry *rt, const struct ifaddr *ifa)
389 1.116 roy {
390 1.116 roy const struct sockaddr *key, *dst, *odst;
391 1.116 roy struct sockaddr_storage maskeddst;
392 1.116 roy
393 1.116 roy key = rt_getkey(rt);
394 1.116 roy dst = rt->rt_flags & RTF_HOST ? ifa->ifa_dstaddr : ifa->ifa_addr;
395 1.116 roy if (dst == NULL ||
396 1.116 roy dst->sa_family != key->sa_family ||
397 1.116 roy dst->sa_len != key->sa_len)
398 1.116 roy return 0;
399 1.116 roy if ((rt->rt_flags & RTF_HOST) == 0 && ifa->ifa_netmask) {
400 1.116 roy odst = dst;
401 1.116 roy dst = (struct sockaddr *)&maskeddst;
402 1.116 roy rt_maskedcopy(odst, (struct sockaddr *)&maskeddst,
403 1.116 roy ifa->ifa_netmask);
404 1.116 roy }
405 1.116 roy return (memcmp(dst, key, dst->sa_len) == 0);
406 1.116 roy }
407 1.116 roy
408 1.80 joerg void
409 1.80 joerg rt_replace_ifa(struct rtentry *rt, struct ifaddr *ifa)
410 1.80 joerg {
411 1.116 roy if (rt->rt_ifa &&
412 1.116 roy rt->rt_ifa != ifa &&
413 1.116 roy rt->rt_ifa->ifa_flags & IFA_ROUTE &&
414 1.116 roy rt_ifa_connected(rt, rt->rt_ifa))
415 1.116 roy {
416 1.116 roy RT_DPRINTF("rt->_rt_key = %p, ifa = %p, "
417 1.116 roy "replace deleted IFA_ROUTE\n",
418 1.116 roy (void *)rt->_rt_key, (void *)rt->rt_ifa);
419 1.116 roy rt->rt_ifa->ifa_flags &= ~IFA_ROUTE;
420 1.116 roy if (rt_ifa_connected(rt, ifa)) {
421 1.116 roy RT_DPRINTF("rt->_rt_key = %p, ifa = %p, "
422 1.116 roy "replace added IFA_ROUTE\n",
423 1.116 roy (void *)rt->_rt_key, (void *)ifa);
424 1.116 roy ifa->ifa_flags |= IFA_ROUTE;
425 1.116 roy }
426 1.116 roy }
427 1.116 roy
428 1.133 rmind ifaref(ifa);
429 1.133 rmind ifafree(rt->rt_ifa);
430 1.80 joerg rt_set_ifa1(rt, ifa);
431 1.80 joerg }
432 1.80 joerg
433 1.80 joerg static void
434 1.80 joerg rt_set_ifa(struct rtentry *rt, struct ifaddr *ifa)
435 1.80 joerg {
436 1.133 rmind ifaref(ifa);
437 1.80 joerg rt_set_ifa1(rt, ifa);
438 1.80 joerg }
439 1.80 joerg
440 1.119 elad static int
441 1.119 elad route_listener_cb(kauth_cred_t cred, kauth_action_t action, void *cookie,
442 1.119 elad void *arg0, void *arg1, void *arg2, void *arg3)
443 1.119 elad {
444 1.119 elad struct rt_msghdr *rtm;
445 1.119 elad int result;
446 1.119 elad
447 1.119 elad result = KAUTH_RESULT_DEFER;
448 1.119 elad rtm = arg1;
449 1.119 elad
450 1.120 elad if (action != KAUTH_NETWORK_ROUTE)
451 1.120 elad return result;
452 1.120 elad
453 1.119 elad if (rtm->rtm_type == RTM_GET)
454 1.119 elad result = KAUTH_RESULT_ALLOW;
455 1.119 elad
456 1.119 elad return result;
457 1.119 elad }
458 1.119 elad
459 1.183 ozaki static void rt_free_work(struct work *, void *);
460 1.183 ozaki
461 1.9 mycroft void
462 1.124 matt rt_init(void)
463 1.1 cgd {
464 1.183 ozaki int error;
465 1.22 thorpej
466 1.118 pooka #ifdef RTFLUSH_DEBUG
467 1.118 pooka sysctl_net_rtcache_setup(NULL);
468 1.118 pooka #endif
469 1.118 pooka
470 1.183 ozaki mutex_init(&rt_free_global.lock, MUTEX_DEFAULT, IPL_SOFTNET);
471 1.183 ozaki rt_psref_class = psref_class_create("rtentry", IPL_SOFTNET);
472 1.183 ozaki
473 1.183 ozaki error = workqueue_create(&rt_free_global.wq, "rt_free",
474 1.183 ozaki rt_free_work, NULL, PRI_SOFTNET, IPL_SOFTNET, WQ_MPSAFE);
475 1.183 ozaki if (error)
476 1.183 ozaki panic("%s: workqueue_create failed (%d)\n", __func__, error);
477 1.183 ozaki
478 1.183 ozaki mutex_init(&rt_update_global.lock, MUTEX_DEFAULT, IPL_SOFTNET);
479 1.183 ozaki cv_init(&rt_update_global.cv, "rt_update");
480 1.183 ozaki
481 1.113 pooka pool_init(&rtentry_pool, sizeof(struct rtentry), 0, 0, 0, "rtentpl",
482 1.113 pooka NULL, IPL_SOFTNET);
483 1.113 pooka pool_init(&rttimer_pool, sizeof(struct rttimer), 0, 0, 0, "rttmrpl",
484 1.113 pooka NULL, IPL_SOFTNET);
485 1.113 pooka
486 1.10 mycroft rn_init(); /* initialize all zeroes, all ones, mask table */
487 1.125 dyoung rtbl_init();
488 1.119 elad
489 1.119 elad route_listener = kauth_listen_scope(KAUTH_SCOPE_NETWORK,
490 1.119 elad route_listener_cb, NULL);
491 1.1 cgd }
492 1.1 cgd
493 1.144 ozaki static void
494 1.82 dyoung rtflushall(int family)
495 1.82 dyoung {
496 1.90 dyoung struct domain *dom;
497 1.90 dyoung
498 1.90 dyoung if (rtcache_debug())
499 1.90 dyoung printf("%s: enter\n", __func__);
500 1.90 dyoung
501 1.90 dyoung if ((dom = pffinddomain(family)) == NULL)
502 1.90 dyoung return;
503 1.82 dyoung
504 1.183 ozaki RTCACHE_WLOCK();
505 1.105 dyoung rtcache_invalidate(&dom->dom_rtcache);
506 1.183 ozaki RTCACHE_UNLOCK();
507 1.82 dyoung }
508 1.82 dyoung
509 1.131 rmind static void
510 1.82 dyoung rtcache(struct route *ro)
511 1.82 dyoung {
512 1.90 dyoung struct domain *dom;
513 1.82 dyoung
514 1.183 ozaki RTCACHE_ASSERT_WLOCK();
515 1.183 ozaki
516 1.114 dyoung rtcache_invariants(ro);
517 1.99 dyoung KASSERT(ro->_ro_rt != NULL);
518 1.105 dyoung KASSERT(ro->ro_invalid == false);
519 1.90 dyoung KASSERT(rtcache_getdst(ro) != NULL);
520 1.82 dyoung
521 1.90 dyoung if ((dom = pffinddomain(rtcache_getdst(ro)->sa_family)) == NULL)
522 1.90 dyoung return;
523 1.90 dyoung
524 1.90 dyoung LIST_INSERT_HEAD(&dom->dom_rtcache, ro, ro_rtcache_next);
525 1.114 dyoung rtcache_invariants(ro);
526 1.82 dyoung }
527 1.82 dyoung
528 1.158 ozaki #ifdef RT_DEBUG
529 1.158 ozaki static void
530 1.158 ozaki dump_rt(const struct rtentry *rt)
531 1.158 ozaki {
532 1.158 ozaki char buf[512];
533 1.158 ozaki
534 1.158 ozaki aprint_normal("rt: ");
535 1.158 ozaki aprint_normal("p=%p ", rt);
536 1.158 ozaki if (rt->_rt_key == NULL) {
537 1.158 ozaki aprint_normal("dst=(NULL) ");
538 1.158 ozaki } else {
539 1.158 ozaki sockaddr_format(rt->_rt_key, buf, sizeof(buf));
540 1.158 ozaki aprint_normal("dst=%s ", buf);
541 1.158 ozaki }
542 1.158 ozaki if (rt->rt_gateway == NULL) {
543 1.158 ozaki aprint_normal("gw=(NULL) ");
544 1.158 ozaki } else {
545 1.158 ozaki sockaddr_format(rt->_rt_key, buf, sizeof(buf));
546 1.158 ozaki aprint_normal("gw=%s ", buf);
547 1.158 ozaki }
548 1.158 ozaki aprint_normal("flags=%x ", rt->rt_flags);
549 1.158 ozaki if (rt->rt_ifp == NULL) {
550 1.158 ozaki aprint_normal("if=(NULL) ");
551 1.158 ozaki } else {
552 1.158 ozaki aprint_normal("if=%s ", rt->rt_ifp->if_xname);
553 1.158 ozaki }
554 1.158 ozaki aprint_normal("\n");
555 1.158 ozaki }
556 1.158 ozaki #endif /* RT_DEBUG */
557 1.158 ozaki
558 1.1 cgd /*
559 1.146 ozaki * Packet routing routines. If success, refcnt of a returned rtentry
560 1.146 ozaki * will be incremented. The caller has to rtfree it by itself.
561 1.1 cgd */
562 1.1 cgd struct rtentry *
563 1.195 ozaki rtalloc1_locked(const struct sockaddr *dst, int report, bool wait_ok,
564 1.195 ozaki bool wlock)
565 1.1 cgd {
566 1.158 ozaki rtbl_t *rtbl;
567 1.36 augustss struct rtentry *rt;
568 1.159 christos int s;
569 1.1 cgd
570 1.188 ozaki #ifdef NET_MPSAFE
571 1.183 ozaki retry:
572 1.188 ozaki #endif
573 1.159 christos s = splsoftnet();
574 1.158 ozaki rtbl = rt_gettable(dst->sa_family);
575 1.159 christos if (rtbl == NULL)
576 1.158 ozaki goto miss;
577 1.158 ozaki
578 1.158 ozaki rt = rt_matchaddr(rtbl, dst);
579 1.159 christos if (rt == NULL)
580 1.158 ozaki goto miss;
581 1.159 christos
582 1.183 ozaki if (!ISSET(rt->rt_flags, RTF_UP))
583 1.183 ozaki goto miss;
584 1.183 ozaki
585 1.188 ozaki #ifdef NET_MPSAFE
586 1.183 ozaki if (ISSET(rt->rt_flags, RTF_UPDATING) &&
587 1.183 ozaki /* XXX updater should be always able to acquire */
588 1.183 ozaki curlwp != rt_update_global.lwp) {
589 1.183 ozaki bool need_lock = false;
590 1.183 ozaki if (!wait_ok || !rt_wait_ok())
591 1.183 ozaki goto miss;
592 1.183 ozaki RT_UNLOCK();
593 1.183 ozaki splx(s);
594 1.183 ozaki
595 1.183 ozaki /* XXX need more proper solution */
596 1.183 ozaki if (RTCACHE_WLOCKED()) {
597 1.183 ozaki RTCACHE_UNLOCK();
598 1.183 ozaki need_lock = true;
599 1.183 ozaki }
600 1.183 ozaki
601 1.183 ozaki /* We can wait until the update is complete */
602 1.183 ozaki rt_update_wait();
603 1.183 ozaki
604 1.183 ozaki if (need_lock)
605 1.183 ozaki RTCACHE_WLOCK();
606 1.195 ozaki if (wlock)
607 1.195 ozaki RT_WLOCK();
608 1.195 ozaki else
609 1.195 ozaki RT_RLOCK();
610 1.183 ozaki goto retry;
611 1.183 ozaki }
612 1.188 ozaki #endif /* NET_MPSAFE */
613 1.183 ozaki
614 1.183 ozaki rt_ref(rt);
615 1.183 ozaki RT_REFCNT_TRACE(rt);
616 1.158 ozaki
617 1.159 christos splx(s);
618 1.159 christos return rt;
619 1.158 ozaki miss:
620 1.159 christos rtstat.rts_unreach++;
621 1.158 ozaki if (report) {
622 1.159 christos struct rt_addrinfo info;
623 1.159 christos
624 1.160 christos memset(&info, 0, sizeof(info));
625 1.158 ozaki info.rti_info[RTAX_DST] = dst;
626 1.159 christos rt_missmsg(RTM_MISS, &info, 0, 0);
627 1.1 cgd }
628 1.1 cgd splx(s);
629 1.159 christos return NULL;
630 1.1 cgd }
631 1.1 cgd
632 1.183 ozaki struct rtentry *
633 1.183 ozaki rtalloc1(const struct sockaddr *dst, int report)
634 1.183 ozaki {
635 1.183 ozaki struct rtentry *rt;
636 1.183 ozaki
637 1.183 ozaki RT_RLOCK();
638 1.195 ozaki rt = rtalloc1_locked(dst, report, true, false);
639 1.183 ozaki RT_UNLOCK();
640 1.183 ozaki
641 1.183 ozaki return rt;
642 1.183 ozaki }
643 1.183 ozaki
644 1.151 ozaki static void
645 1.183 ozaki rt_ref(struct rtentry *rt)
646 1.183 ozaki {
647 1.183 ozaki
648 1.183 ozaki KASSERT(rt->rt_refcnt >= 0);
649 1.183 ozaki atomic_inc_uint(&rt->rt_refcnt);
650 1.183 ozaki }
651 1.183 ozaki
652 1.183 ozaki void
653 1.183 ozaki rt_unref(struct rtentry *rt)
654 1.183 ozaki {
655 1.183 ozaki
656 1.183 ozaki KASSERT(rt != NULL);
657 1.183 ozaki KASSERTMSG(rt->rt_refcnt > 0, "refcnt=%d", rt->rt_refcnt);
658 1.183 ozaki
659 1.183 ozaki atomic_dec_uint(&rt->rt_refcnt);
660 1.183 ozaki if (!ISSET(rt->rt_flags, RTF_UP) || ISSET(rt->rt_flags, RTF_UPDATING)) {
661 1.183 ozaki mutex_enter(&rt_free_global.lock);
662 1.183 ozaki cv_broadcast(&rt->rt_cv);
663 1.183 ozaki mutex_exit(&rt_free_global.lock);
664 1.183 ozaki }
665 1.183 ozaki }
666 1.183 ozaki
667 1.183 ozaki static bool
668 1.183 ozaki rt_wait_ok(void)
669 1.151 ozaki {
670 1.151 ozaki
671 1.183 ozaki KASSERT(!cpu_intr_p());
672 1.183 ozaki return !cpu_softintr_p();
673 1.183 ozaki }
674 1.151 ozaki
675 1.183 ozaki void
676 1.183 ozaki rt_wait_refcnt(const char *title, struct rtentry *rt, int cnt)
677 1.183 ozaki {
678 1.183 ozaki mutex_enter(&rt_free_global.lock);
679 1.183 ozaki while (rt->rt_refcnt > cnt) {
680 1.183 ozaki dlog(LOG_DEBUG, "%s: %s waiting (refcnt=%d)\n",
681 1.183 ozaki __func__, title, rt->rt_refcnt);
682 1.183 ozaki cv_wait(&rt->rt_cv, &rt_free_global.lock);
683 1.183 ozaki dlog(LOG_DEBUG, "%s: %s waited (refcnt=%d)\n",
684 1.183 ozaki __func__, title, rt->rt_refcnt);
685 1.183 ozaki }
686 1.183 ozaki mutex_exit(&rt_free_global.lock);
687 1.151 ozaki }
688 1.151 ozaki
689 1.9 mycroft void
690 1.183 ozaki rt_wait_psref(struct rtentry *rt)
691 1.183 ozaki {
692 1.183 ozaki
693 1.183 ozaki psref_target_destroy(&rt->rt_psref, rt_psref_class);
694 1.183 ozaki psref_target_init(&rt->rt_psref, rt_psref_class);
695 1.183 ozaki }
696 1.183 ozaki
697 1.183 ozaki static void
698 1.183 ozaki _rt_free(struct rtentry *rt)
699 1.1 cgd {
700 1.36 augustss struct ifaddr *ifa;
701 1.10 mycroft
702 1.183 ozaki /*
703 1.183 ozaki * Need to avoid a deadlock on rt_wait_refcnt of update
704 1.183 ozaki * and a conflict on psref_target_destroy of update.
705 1.183 ozaki */
706 1.188 ozaki #ifdef NET_MPSAFE
707 1.183 ozaki rt_update_wait();
708 1.188 ozaki #endif
709 1.183 ozaki
710 1.183 ozaki RT_REFCNT_TRACE(rt);
711 1.183 ozaki KASSERTMSG(rt->rt_refcnt >= 0, "refcnt=%d", rt->rt_refcnt);
712 1.183 ozaki rt_wait_refcnt("free", rt, 0);
713 1.185 ozaki #ifdef NET_MPSAFE
714 1.183 ozaki psref_target_destroy(&rt->rt_psref, rt_psref_class);
715 1.185 ozaki #endif
716 1.183 ozaki
717 1.183 ozaki rt_assert_inactive(rt);
718 1.183 ozaki rttrash--;
719 1.183 ozaki ifa = rt->rt_ifa;
720 1.183 ozaki rt->rt_ifa = NULL;
721 1.183 ozaki ifafree(ifa);
722 1.183 ozaki rt->rt_ifp = NULL;
723 1.183 ozaki cv_destroy(&rt->rt_cv);
724 1.183 ozaki rt_destroy(rt);
725 1.183 ozaki pool_put(&rtentry_pool, rt);
726 1.183 ozaki }
727 1.183 ozaki
728 1.183 ozaki static void
729 1.183 ozaki rt_free_work(struct work *wk, void *arg)
730 1.183 ozaki {
731 1.183 ozaki int i;
732 1.183 ozaki struct rtentry *rt;
733 1.183 ozaki
734 1.183 ozaki restart:
735 1.183 ozaki mutex_enter(&rt_free_global.lock);
736 1.183 ozaki for (i = 0; i < sizeof(rt_free_global.queue); i++) {
737 1.183 ozaki if (rt_free_global.queue[i] == NULL)
738 1.183 ozaki continue;
739 1.183 ozaki rt = rt_free_global.queue[i];
740 1.183 ozaki rt_free_global.queue[i] = NULL;
741 1.183 ozaki mutex_exit(&rt_free_global.lock);
742 1.183 ozaki
743 1.183 ozaki atomic_dec_uint(&rt->rt_refcnt);
744 1.183 ozaki _rt_free(rt);
745 1.183 ozaki goto restart;
746 1.183 ozaki }
747 1.183 ozaki mutex_exit(&rt_free_global.lock);
748 1.183 ozaki }
749 1.183 ozaki
750 1.183 ozaki void
751 1.183 ozaki rt_free(struct rtentry *rt)
752 1.183 ozaki {
753 1.183 ozaki
754 1.132 rmind KASSERT(rt->rt_refcnt > 0);
755 1.183 ozaki if (!rt_wait_ok()) {
756 1.183 ozaki int i;
757 1.183 ozaki mutex_enter(&rt_free_global.lock);
758 1.183 ozaki for (i = 0; i < sizeof(rt_free_global.queue); i++) {
759 1.183 ozaki if (rt_free_global.queue[i] == NULL) {
760 1.183 ozaki rt_free_global.queue[i] = rt;
761 1.183 ozaki break;
762 1.183 ozaki }
763 1.183 ozaki }
764 1.183 ozaki KASSERT(i < sizeof(rt_free_global.queue));
765 1.183 ozaki rt_ref(rt);
766 1.183 ozaki mutex_exit(&rt_free_global.lock);
767 1.183 ozaki workqueue_enqueue(rt_free_global.wq, &rt_free_global.wk, NULL);
768 1.183 ozaki } else {
769 1.183 ozaki atomic_dec_uint(&rt->rt_refcnt);
770 1.183 ozaki _rt_free(rt);
771 1.183 ozaki }
772 1.183 ozaki }
773 1.183 ozaki
774 1.188 ozaki #ifdef NET_MPSAFE
775 1.183 ozaki static void
776 1.183 ozaki rt_update_wait(void)
777 1.183 ozaki {
778 1.132 rmind
779 1.183 ozaki mutex_enter(&rt_update_global.lock);
780 1.183 ozaki while (rt_update_global.ongoing) {
781 1.183 ozaki dlog(LOG_DEBUG, "%s: waiting lwp=%p\n", __func__, curlwp);
782 1.183 ozaki cv_wait(&rt_update_global.cv, &rt_update_global.lock);
783 1.183 ozaki dlog(LOG_DEBUG, "%s: waited lwp=%p\n", __func__, curlwp);
784 1.1 cgd }
785 1.183 ozaki mutex_exit(&rt_update_global.lock);
786 1.183 ozaki }
787 1.188 ozaki #endif
788 1.183 ozaki
789 1.183 ozaki int
790 1.183 ozaki rt_update_prepare(struct rtentry *rt)
791 1.183 ozaki {
792 1.183 ozaki
793 1.183 ozaki dlog(LOG_DEBUG, "%s: updating rt=%p lwp=%p\n", __func__, rt, curlwp);
794 1.183 ozaki
795 1.183 ozaki RTCACHE_WLOCK();
796 1.183 ozaki RT_WLOCK();
797 1.183 ozaki /* If the entry is being destroyed, don't proceed the update. */
798 1.183 ozaki if (!ISSET(rt->rt_flags, RTF_UP)) {
799 1.183 ozaki RT_UNLOCK();
800 1.183 ozaki RTCACHE_UNLOCK();
801 1.183 ozaki return -1;
802 1.183 ozaki }
803 1.183 ozaki rt->rt_flags |= RTF_UPDATING;
804 1.183 ozaki RT_UNLOCK();
805 1.183 ozaki RTCACHE_UNLOCK();
806 1.183 ozaki
807 1.183 ozaki mutex_enter(&rt_update_global.lock);
808 1.183 ozaki while (rt_update_global.ongoing) {
809 1.183 ozaki dlog(LOG_DEBUG, "%s: waiting ongoing updating rt=%p lwp=%p\n",
810 1.183 ozaki __func__, rt, curlwp);
811 1.183 ozaki cv_wait(&rt_update_global.cv, &rt_update_global.lock);
812 1.183 ozaki dlog(LOG_DEBUG, "%s: waited ongoing updating rt=%p lwp=%p\n",
813 1.183 ozaki __func__, rt, curlwp);
814 1.183 ozaki }
815 1.183 ozaki rt_update_global.ongoing = true;
816 1.183 ozaki /* XXX need it to avoid rt_update_wait by updater itself. */
817 1.183 ozaki rt_update_global.lwp = curlwp;
818 1.183 ozaki mutex_exit(&rt_update_global.lock);
819 1.183 ozaki
820 1.183 ozaki rt_wait_refcnt("update", rt, 1);
821 1.183 ozaki rt_wait_psref(rt);
822 1.183 ozaki
823 1.183 ozaki return 0;
824 1.183 ozaki }
825 1.183 ozaki
826 1.183 ozaki void
827 1.183 ozaki rt_update_finish(struct rtentry *rt)
828 1.183 ozaki {
829 1.183 ozaki
830 1.183 ozaki RTCACHE_WLOCK();
831 1.183 ozaki RT_WLOCK();
832 1.183 ozaki rt->rt_flags &= ~RTF_UPDATING;
833 1.183 ozaki RT_UNLOCK();
834 1.183 ozaki RTCACHE_UNLOCK();
835 1.183 ozaki
836 1.183 ozaki mutex_enter(&rt_update_global.lock);
837 1.183 ozaki rt_update_global.ongoing = false;
838 1.183 ozaki rt_update_global.lwp = NULL;
839 1.183 ozaki cv_broadcast(&rt_update_global.cv);
840 1.183 ozaki mutex_exit(&rt_update_global.lock);
841 1.183 ozaki
842 1.183 ozaki dlog(LOG_DEBUG, "%s: updated rt=%p lwp=%p\n", __func__, rt, curlwp);
843 1.1 cgd }
844 1.1 cgd
845 1.1 cgd /*
846 1.1 cgd * Force a routing table entry to the specified
847 1.1 cgd * destination to go through the given gateway.
848 1.1 cgd * Normally called as a result of a routing redirect
849 1.1 cgd * message from the network layer.
850 1.1 cgd *
851 1.13 mycroft * N.B.: must be called at splsoftnet
852 1.1 cgd */
853 1.14 christos void
854 1.60 matt rtredirect(const struct sockaddr *dst, const struct sockaddr *gateway,
855 1.60 matt const struct sockaddr *netmask, int flags, const struct sockaddr *src,
856 1.60 matt struct rtentry **rtp)
857 1.1 cgd {
858 1.36 augustss struct rtentry *rt;
859 1.1 cgd int error = 0;
860 1.121 dyoung uint64_t *stat = NULL;
861 1.10 mycroft struct rt_addrinfo info;
862 1.10 mycroft struct ifaddr *ifa;
863 1.173 ozaki struct psref psref;
864 1.1 cgd
865 1.1 cgd /* verify the gateway is directly reachable */
866 1.173 ozaki if ((ifa = ifa_ifwithnet_psref(gateway, &psref)) == NULL) {
867 1.1 cgd error = ENETUNREACH;
868 1.8 cgd goto out;
869 1.1 cgd }
870 1.1 cgd rt = rtalloc1(dst, 0);
871 1.1 cgd /*
872 1.1 cgd * If the redirect isn't from our current router for this dst,
873 1.1 cgd * it's either old or wrong. If it redirects us to ourselves,
874 1.1 cgd * we have a routing loop, perhaps as a result of an interface
875 1.1 cgd * going down recently.
876 1.1 cgd */
877 1.10 mycroft if (!(flags & RTF_DONE) && rt &&
878 1.115 yamt (sockaddr_cmp(src, rt->rt_gateway) != 0 || rt->rt_ifa != ifa))
879 1.1 cgd error = EINVAL;
880 1.173 ozaki else {
881 1.173 ozaki int s = pserialize_read_enter();
882 1.173 ozaki struct ifaddr *_ifa;
883 1.173 ozaki
884 1.173 ozaki _ifa = ifa_ifwithaddr(gateway);
885 1.173 ozaki if (_ifa != NULL)
886 1.173 ozaki error = EHOSTUNREACH;
887 1.173 ozaki pserialize_read_exit(s);
888 1.173 ozaki }
889 1.1 cgd if (error)
890 1.1 cgd goto done;
891 1.1 cgd /*
892 1.1 cgd * Create a new entry if we just got back a wildcard entry
893 1.33 soren * or the lookup failed. This is necessary for hosts
894 1.1 cgd * which use routing redirects generated by smart gateways
895 1.1 cgd * to dynamically build the routing tables.
896 1.1 cgd */
897 1.95 dyoung if (rt == NULL || (rt_mask(rt) && rt_mask(rt)->sa_len < 2))
898 1.1 cgd goto create;
899 1.1 cgd /*
900 1.1 cgd * Don't listen to the redirect if it's
901 1.65 perry * for a route to an interface.
902 1.1 cgd */
903 1.1 cgd if (rt->rt_flags & RTF_GATEWAY) {
904 1.1 cgd if (((rt->rt_flags & RTF_HOST) == 0) && (flags & RTF_HOST)) {
905 1.1 cgd /*
906 1.1 cgd * Changing from route to net => route to host.
907 1.1 cgd * Create new route, rather than smashing route to net.
908 1.1 cgd */
909 1.1 cgd create:
910 1.95 dyoung if (rt != NULL)
911 1.183 ozaki rt_unref(rt);
912 1.1 cgd flags |= RTF_GATEWAY | RTF_DYNAMIC;
913 1.122 kefren memset(&info, 0, sizeof(info));
914 1.39 itojun info.rti_info[RTAX_DST] = dst;
915 1.39 itojun info.rti_info[RTAX_GATEWAY] = gateway;
916 1.39 itojun info.rti_info[RTAX_NETMASK] = netmask;
917 1.39 itojun info.rti_ifa = ifa;
918 1.39 itojun info.rti_flags = flags;
919 1.39 itojun rt = NULL;
920 1.39 itojun error = rtrequest1(RTM_ADD, &info, &rt);
921 1.39 itojun if (rt != NULL)
922 1.39 itojun flags = rt->rt_flags;
923 1.1 cgd stat = &rtstat.rts_dynamic;
924 1.1 cgd } else {
925 1.1 cgd /*
926 1.1 cgd * Smash the current notion of the gateway to
927 1.1 cgd * this destination. Should check about netmask!!!
928 1.1 cgd */
929 1.190 ozaki #ifdef NET_MPSAFE
930 1.190 ozaki KASSERT(!cpu_softintr_p());
931 1.190 ozaki
932 1.190 ozaki error = rt_update_prepare(rt);
933 1.164 ozaki if (error == 0) {
934 1.190 ozaki #endif
935 1.190 ozaki error = rt_setgate(rt, gateway);
936 1.190 ozaki if (error == 0) {
937 1.190 ozaki rt->rt_flags |= RTF_MODIFIED;
938 1.190 ozaki flags |= RTF_MODIFIED;
939 1.190 ozaki }
940 1.190 ozaki #ifdef NET_MPSAFE
941 1.190 ozaki rt_update_finish(rt);
942 1.190 ozaki } else {
943 1.190 ozaki /*
944 1.190 ozaki * If error != 0, the rtentry is being
945 1.190 ozaki * destroyed, so doing nothing doesn't
946 1.190 ozaki * matter.
947 1.190 ozaki */
948 1.164 ozaki }
949 1.190 ozaki #endif
950 1.10 mycroft stat = &rtstat.rts_newgateway;
951 1.1 cgd }
952 1.1 cgd } else
953 1.1 cgd error = EHOSTUNREACH;
954 1.1 cgd done:
955 1.1 cgd if (rt) {
956 1.95 dyoung if (rtp != NULL && !error)
957 1.1 cgd *rtp = rt;
958 1.1 cgd else
959 1.183 ozaki rt_unref(rt);
960 1.1 cgd }
961 1.8 cgd out:
962 1.1 cgd if (error)
963 1.1 cgd rtstat.rts_badredirect++;
964 1.8 cgd else if (stat != NULL)
965 1.8 cgd (*stat)++;
966 1.95 dyoung memset(&info, 0, sizeof(info));
967 1.10 mycroft info.rti_info[RTAX_DST] = dst;
968 1.10 mycroft info.rti_info[RTAX_GATEWAY] = gateway;
969 1.10 mycroft info.rti_info[RTAX_NETMASK] = netmask;
970 1.10 mycroft info.rti_info[RTAX_AUTHOR] = src;
971 1.10 mycroft rt_missmsg(RTM_REDIRECT, &info, flags, error);
972 1.173 ozaki ifa_release(ifa, &psref);
973 1.1 cgd }
974 1.1 cgd
975 1.1 cgd /*
976 1.146 ozaki * Delete a route and generate a message.
977 1.146 ozaki * It doesn't free a passed rt.
978 1.40 itojun */
979 1.40 itojun static int
980 1.60 matt rtdeletemsg(struct rtentry *rt)
981 1.40 itojun {
982 1.40 itojun int error;
983 1.40 itojun struct rt_addrinfo info;
984 1.180 ozaki struct rtentry *retrt;
985 1.40 itojun
986 1.40 itojun /*
987 1.40 itojun * Request the new route so that the entry is not actually
988 1.40 itojun * deleted. That will allow the information being reported to
989 1.40 itojun * be accurate (and consistent with route_output()).
990 1.40 itojun */
991 1.95 dyoung memset(&info, 0, sizeof(info));
992 1.94 dyoung info.rti_info[RTAX_DST] = rt_getkey(rt);
993 1.40 itojun info.rti_info[RTAX_NETMASK] = rt_mask(rt);
994 1.40 itojun info.rti_info[RTAX_GATEWAY] = rt->rt_gateway;
995 1.40 itojun info.rti_flags = rt->rt_flags;
996 1.180 ozaki error = rtrequest1(RTM_DELETE, &info, &retrt);
997 1.40 itojun
998 1.40 itojun rt_missmsg(RTM_DELETE, &info, info.rti_flags, error);
999 1.40 itojun
1000 1.95 dyoung return error;
1001 1.40 itojun }
1002 1.40 itojun
1003 1.1 cgd struct ifaddr *
1004 1.173 ozaki ifa_ifwithroute_psref(int flags, const struct sockaddr *dst,
1005 1.173 ozaki const struct sockaddr *gateway, struct psref *psref)
1006 1.1 cgd {
1007 1.173 ozaki struct ifaddr *ifa = NULL;
1008 1.173 ozaki
1009 1.1 cgd if ((flags & RTF_GATEWAY) == 0) {
1010 1.1 cgd /*
1011 1.1 cgd * If we are adding a route to an interface,
1012 1.1 cgd * and the interface is a pt to pt link
1013 1.1 cgd * we should search for the destination
1014 1.1 cgd * as our clue to the interface. Otherwise
1015 1.1 cgd * we can use the local address.
1016 1.1 cgd */
1017 1.127 christos if ((flags & RTF_HOST) && gateway->sa_family != AF_LINK)
1018 1.173 ozaki ifa = ifa_ifwithdstaddr_psref(dst, psref);
1019 1.68 christos if (ifa == NULL)
1020 1.173 ozaki ifa = ifa_ifwithaddr_psref(gateway, psref);
1021 1.1 cgd } else {
1022 1.1 cgd /*
1023 1.1 cgd * If we are adding a route to a remote net
1024 1.1 cgd * or host, the gateway may still be on the
1025 1.1 cgd * other end of a pt to pt link.
1026 1.1 cgd */
1027 1.173 ozaki ifa = ifa_ifwithdstaddr_psref(gateway, psref);
1028 1.1 cgd }
1029 1.68 christos if (ifa == NULL)
1030 1.173 ozaki ifa = ifa_ifwithnet_psref(gateway, psref);
1031 1.68 christos if (ifa == NULL) {
1032 1.173 ozaki int s;
1033 1.173 ozaki struct rtentry *rt;
1034 1.173 ozaki
1035 1.189 ozaki /* XXX we cannot call rtalloc1 if holding the rt lock */
1036 1.189 ozaki if (RT_LOCKED())
1037 1.195 ozaki rt = rtalloc1_locked(gateway, 0, true, true);
1038 1.189 ozaki else
1039 1.194 ozaki rt = rtalloc1(gateway, 0);
1040 1.68 christos if (rt == NULL)
1041 1.68 christos return NULL;
1042 1.194 ozaki if (rt->rt_flags & RTF_GATEWAY) {
1043 1.194 ozaki rt_unref(rt);
1044 1.194 ozaki return NULL;
1045 1.194 ozaki }
1046 1.173 ozaki /*
1047 1.173 ozaki * Just in case. May not need to do this workaround.
1048 1.173 ozaki * Revisit when working on rtentry MP-ification.
1049 1.173 ozaki */
1050 1.173 ozaki s = pserialize_read_enter();
1051 1.173 ozaki IFADDR_READER_FOREACH(ifa, rt->rt_ifp) {
1052 1.173 ozaki if (ifa == rt->rt_ifa)
1053 1.173 ozaki break;
1054 1.173 ozaki }
1055 1.173 ozaki if (ifa != NULL)
1056 1.173 ozaki ifa_acquire(ifa, psref);
1057 1.173 ozaki pserialize_read_exit(s);
1058 1.183 ozaki rt_unref(rt);
1059 1.146 ozaki if (ifa == NULL)
1060 1.68 christos return NULL;
1061 1.1 cgd }
1062 1.1 cgd if (ifa->ifa_addr->sa_family != dst->sa_family) {
1063 1.173 ozaki struct ifaddr *nifa;
1064 1.173 ozaki int s;
1065 1.173 ozaki
1066 1.173 ozaki s = pserialize_read_enter();
1067 1.173 ozaki nifa = ifaof_ifpforaddr(dst, ifa->ifa_ifp);
1068 1.173 ozaki if (nifa != NULL) {
1069 1.173 ozaki ifa_release(ifa, psref);
1070 1.173 ozaki ifa_acquire(nifa, psref);
1071 1.173 ozaki ifa = nifa;
1072 1.173 ozaki }
1073 1.173 ozaki pserialize_read_exit(s);
1074 1.1 cgd }
1075 1.95 dyoung return ifa;
1076 1.1 cgd }
1077 1.1 cgd
1078 1.146 ozaki /*
1079 1.146 ozaki * If it suceeds and ret_nrt isn't NULL, refcnt of ret_nrt is incremented.
1080 1.146 ozaki * The caller has to rtfree it by itself.
1081 1.146 ozaki */
1082 1.9 mycroft int
1083 1.60 matt rtrequest(int req, const struct sockaddr *dst, const struct sockaddr *gateway,
1084 1.60 matt const struct sockaddr *netmask, int flags, struct rtentry **ret_nrt)
1085 1.1 cgd {
1086 1.39 itojun struct rt_addrinfo info;
1087 1.39 itojun
1088 1.44 thorpej memset(&info, 0, sizeof(info));
1089 1.39 itojun info.rti_flags = flags;
1090 1.39 itojun info.rti_info[RTAX_DST] = dst;
1091 1.39 itojun info.rti_info[RTAX_GATEWAY] = gateway;
1092 1.39 itojun info.rti_info[RTAX_NETMASK] = netmask;
1093 1.39 itojun return rtrequest1(req, &info, ret_nrt);
1094 1.39 itojun }
1095 1.39 itojun
1096 1.146 ozaki /*
1097 1.146 ozaki * It's a utility function to add/remove a route to/from the routing table
1098 1.146 ozaki * and tell user processes the addition/removal on success.
1099 1.146 ozaki */
1100 1.146 ozaki int
1101 1.146 ozaki rtrequest_newmsg(const int req, const struct sockaddr *dst,
1102 1.146 ozaki const struct sockaddr *gateway, const struct sockaddr *netmask,
1103 1.146 ozaki const int flags)
1104 1.146 ozaki {
1105 1.146 ozaki int error;
1106 1.146 ozaki struct rtentry *ret_nrt = NULL;
1107 1.146 ozaki
1108 1.146 ozaki KASSERT(req == RTM_ADD || req == RTM_DELETE);
1109 1.146 ozaki
1110 1.146 ozaki error = rtrequest(req, dst, gateway, netmask, flags, &ret_nrt);
1111 1.146 ozaki if (error != 0)
1112 1.146 ozaki return error;
1113 1.146 ozaki
1114 1.146 ozaki KASSERT(ret_nrt != NULL);
1115 1.146 ozaki
1116 1.146 ozaki rt_newmsg(req, ret_nrt); /* tell user process */
1117 1.183 ozaki if (req == RTM_DELETE)
1118 1.183 ozaki rt_free(ret_nrt);
1119 1.183 ozaki else
1120 1.183 ozaki rt_unref(ret_nrt);
1121 1.146 ozaki
1122 1.146 ozaki return 0;
1123 1.146 ozaki }
1124 1.146 ozaki
1125 1.173 ozaki struct ifnet *
1126 1.173 ozaki rt_getifp(struct rt_addrinfo *info, struct psref *psref)
1127 1.39 itojun {
1128 1.68 christos const struct sockaddr *ifpaddr = info->rti_info[RTAX_IFP];
1129 1.39 itojun
1130 1.173 ozaki if (info->rti_ifp != NULL)
1131 1.173 ozaki return NULL;
1132 1.39 itojun /*
1133 1.39 itojun * ifp may be specified by sockaddr_dl when protocol address
1134 1.39 itojun * is ambiguous
1135 1.39 itojun */
1136 1.173 ozaki if (ifpaddr != NULL && ifpaddr->sa_family == AF_LINK) {
1137 1.173 ozaki struct ifaddr *ifa;
1138 1.173 ozaki int s = pserialize_read_enter();
1139 1.173 ozaki
1140 1.173 ozaki ifa = ifa_ifwithnet(ifpaddr);
1141 1.173 ozaki if (ifa != NULL)
1142 1.173 ozaki info->rti_ifp = if_get_byindex(ifa->ifa_ifp->if_index,
1143 1.173 ozaki psref);
1144 1.173 ozaki pserialize_read_exit(s);
1145 1.39 itojun }
1146 1.173 ozaki
1147 1.173 ozaki return info->rti_ifp;
1148 1.173 ozaki }
1149 1.173 ozaki
1150 1.173 ozaki struct ifaddr *
1151 1.173 ozaki rt_getifa(struct rt_addrinfo *info, struct psref *psref)
1152 1.173 ozaki {
1153 1.174 ozaki struct ifaddr *ifa = NULL;
1154 1.173 ozaki const struct sockaddr *dst = info->rti_info[RTAX_DST];
1155 1.173 ozaki const struct sockaddr *gateway = info->rti_info[RTAX_GATEWAY];
1156 1.173 ozaki const struct sockaddr *ifaaddr = info->rti_info[RTAX_IFA];
1157 1.173 ozaki int flags = info->rti_flags;
1158 1.173 ozaki const struct sockaddr *sa;
1159 1.173 ozaki
1160 1.173 ozaki if (info->rti_ifa == NULL && ifaaddr != NULL) {
1161 1.173 ozaki ifa = ifa_ifwithaddr_psref(ifaaddr, psref);
1162 1.173 ozaki if (ifa != NULL)
1163 1.173 ozaki goto got;
1164 1.173 ozaki }
1165 1.173 ozaki
1166 1.173 ozaki sa = ifaaddr != NULL ? ifaaddr :
1167 1.173 ozaki (gateway != NULL ? gateway : dst);
1168 1.173 ozaki if (sa != NULL && info->rti_ifp != NULL)
1169 1.173 ozaki ifa = ifaof_ifpforaddr_psref(sa, info->rti_ifp, psref);
1170 1.173 ozaki else if (dst != NULL && gateway != NULL)
1171 1.173 ozaki ifa = ifa_ifwithroute_psref(flags, dst, gateway, psref);
1172 1.173 ozaki else if (sa != NULL)
1173 1.173 ozaki ifa = ifa_ifwithroute_psref(flags, sa, sa, psref);
1174 1.173 ozaki if (ifa == NULL)
1175 1.173 ozaki return NULL;
1176 1.173 ozaki got:
1177 1.145 roy if (ifa->ifa_getifa != NULL) {
1178 1.191 ozaki /* FIXME ifa_getifa is NOMPSAFE */
1179 1.173 ozaki ifa = (*ifa->ifa_getifa)(ifa, dst);
1180 1.145 roy if (ifa == NULL)
1181 1.173 ozaki return NULL;
1182 1.173 ozaki ifa_acquire(ifa, psref);
1183 1.145 roy }
1184 1.173 ozaki info->rti_ifa = ifa;
1185 1.74 dyoung if (info->rti_ifp == NULL)
1186 1.74 dyoung info->rti_ifp = ifa->ifa_ifp;
1187 1.173 ozaki return ifa;
1188 1.39 itojun }
1189 1.39 itojun
1190 1.146 ozaki /*
1191 1.146 ozaki * If it suceeds and ret_nrt isn't NULL, refcnt of ret_nrt is incremented.
1192 1.146 ozaki * The caller has to rtfree it by itself.
1193 1.146 ozaki */
1194 1.39 itojun int
1195 1.60 matt rtrequest1(int req, struct rt_addrinfo *info, struct rtentry **ret_nrt)
1196 1.39 itojun {
1197 1.173 ozaki int s = splsoftnet(), ss;
1198 1.125 dyoung int error = 0, rc;
1199 1.158 ozaki struct rtentry *rt;
1200 1.125 dyoung rtbl_t *rtbl;
1201 1.193 ozaki struct ifaddr *ifa = NULL;
1202 1.94 dyoung struct sockaddr_storage maskeddst;
1203 1.68 christos const struct sockaddr *dst = info->rti_info[RTAX_DST];
1204 1.68 christos const struct sockaddr *gateway = info->rti_info[RTAX_GATEWAY];
1205 1.68 christos const struct sockaddr *netmask = info->rti_info[RTAX_NETMASK];
1206 1.68 christos int flags = info->rti_flags;
1207 1.173 ozaki struct psref psref_ifp, psref_ifa;
1208 1.173 ozaki int bound = 0;
1209 1.173 ozaki struct ifnet *ifp = NULL;
1210 1.173 ozaki bool need_to_release_ifa = true;
1211 1.183 ozaki bool need_unlock = true;
1212 1.1 cgd #define senderr(x) { error = x ; goto bad; }
1213 1.1 cgd
1214 1.183 ozaki RT_WLOCK();
1215 1.183 ozaki
1216 1.173 ozaki bound = curlwp_bind();
1217 1.125 dyoung if ((rtbl = rt_gettable(dst->sa_family)) == NULL)
1218 1.1 cgd senderr(ESRCH);
1219 1.1 cgd if (flags & RTF_HOST)
1220 1.68 christos netmask = NULL;
1221 1.1 cgd switch (req) {
1222 1.1 cgd case RTM_DELETE:
1223 1.63 christos if (netmask) {
1224 1.94 dyoung rt_maskedcopy(dst, (struct sockaddr *)&maskeddst,
1225 1.94 dyoung netmask);
1226 1.94 dyoung dst = (struct sockaddr *)&maskeddst;
1227 1.63 christos }
1228 1.125 dyoung if ((rt = rt_lookup(rtbl, dst, netmask)) == NULL)
1229 1.41 itojun senderr(ESRCH);
1230 1.125 dyoung if ((rt = rt_deladdr(rtbl, dst, netmask)) == NULL)
1231 1.1 cgd senderr(ESRCH);
1232 1.28 erh rt->rt_flags &= ~RTF_UP;
1233 1.116 roy if ((ifa = rt->rt_ifa)) {
1234 1.116 roy if (ifa->ifa_flags & IFA_ROUTE &&
1235 1.116 roy rt_ifa_connected(rt, ifa)) {
1236 1.116 roy RT_DPRINTF("rt->_rt_key = %p, ifa = %p, "
1237 1.116 roy "deleted IFA_ROUTE\n",
1238 1.116 roy (void *)rt->_rt_key, (void *)ifa);
1239 1.116 roy ifa->ifa_flags &= ~IFA_ROUTE;
1240 1.116 roy }
1241 1.116 roy if (ifa->ifa_rtrequest)
1242 1.116 roy ifa->ifa_rtrequest(RTM_DELETE, rt, info);
1243 1.173 ozaki ifa = NULL;
1244 1.116 roy }
1245 1.1 cgd rttrash++;
1246 1.146 ozaki if (ret_nrt) {
1247 1.10 mycroft *ret_nrt = rt;
1248 1.183 ozaki rt_ref(rt);
1249 1.183 ozaki RT_REFCNT_TRACE(rt);
1250 1.183 ozaki }
1251 1.183 ozaki RT_UNLOCK();
1252 1.183 ozaki need_unlock = false;
1253 1.183 ozaki rt_timer_remove_all(rt);
1254 1.183 ozaki rtcache_clear_rtentry(dst->sa_family, rt);
1255 1.196 ozaki #if defined(INET) || defined(INET6)
1256 1.196 ozaki if (netmask != NULL)
1257 1.196 ozaki lltable_prefix_free(dst->sa_family, dst, netmask, 0);
1258 1.196 ozaki #endif
1259 1.183 ozaki if (ret_nrt == NULL) {
1260 1.146 ozaki /* Adjust the refcount */
1261 1.183 ozaki rt_ref(rt);
1262 1.183 ozaki RT_REFCNT_TRACE(rt);
1263 1.183 ozaki rt_free(rt);
1264 1.10 mycroft }
1265 1.1 cgd break;
1266 1.1 cgd
1267 1.1 cgd case RTM_ADD:
1268 1.173 ozaki if (info->rti_ifa == NULL) {
1269 1.173 ozaki ifp = rt_getifp(info, &psref_ifp);
1270 1.173 ozaki ifa = rt_getifa(info, &psref_ifa);
1271 1.173 ozaki if (ifa == NULL)
1272 1.173 ozaki senderr(ENETUNREACH);
1273 1.173 ozaki } else {
1274 1.173 ozaki /* Caller should have a reference of ifa */
1275 1.173 ozaki ifa = info->rti_ifa;
1276 1.173 ozaki need_to_release_ifa = false;
1277 1.173 ozaki }
1278 1.22 thorpej rt = pool_get(&rtentry_pool, PR_NOWAIT);
1279 1.68 christos if (rt == NULL)
1280 1.1 cgd senderr(ENOBUFS);
1281 1.109 dyoung memset(rt, 0, sizeof(*rt));
1282 1.10 mycroft rt->rt_flags = RTF_UP | flags;
1283 1.18 kml LIST_INIT(&rt->rt_timer);
1284 1.163 ozaki
1285 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1286 1.1 cgd if (netmask) {
1287 1.94 dyoung rt_maskedcopy(dst, (struct sockaddr *)&maskeddst,
1288 1.94 dyoung netmask);
1289 1.96 dyoung rt_setkey(rt, (struct sockaddr *)&maskeddst, M_NOWAIT);
1290 1.94 dyoung } else {
1291 1.96 dyoung rt_setkey(rt, dst, M_NOWAIT);
1292 1.94 dyoung }
1293 1.163 ozaki RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1294 1.163 ozaki if (rt_getkey(rt) == NULL ||
1295 1.163 ozaki rt_setgate(rt, gateway) != 0) {
1296 1.163 ozaki pool_put(&rtentry_pool, rt);
1297 1.163 ozaki senderr(ENOBUFS);
1298 1.163 ozaki }
1299 1.163 ozaki
1300 1.74 dyoung rt_set_ifa(rt, ifa);
1301 1.164 ozaki if (info->rti_info[RTAX_TAG] != NULL) {
1302 1.164 ozaki const struct sockaddr *tag;
1303 1.164 ozaki tag = rt_settag(rt, info->rti_info[RTAX_TAG]);
1304 1.164 ozaki if (tag == NULL)
1305 1.164 ozaki senderr(ENOBUFS);
1306 1.164 ozaki }
1307 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1308 1.173 ozaki
1309 1.173 ozaki ss = pserialize_read_enter();
1310 1.173 ozaki if (info->rti_info[RTAX_IFP] != NULL) {
1311 1.193 ozaki struct ifaddr *ifa2;
1312 1.173 ozaki ifa2 = ifa_ifwithnet(info->rti_info[RTAX_IFP]);
1313 1.173 ozaki if (ifa2 != NULL)
1314 1.173 ozaki rt->rt_ifp = ifa2->ifa_ifp;
1315 1.173 ozaki else
1316 1.173 ozaki rt->rt_ifp = ifa->ifa_ifp;
1317 1.173 ozaki } else
1318 1.122 kefren rt->rt_ifp = ifa->ifa_ifp;
1319 1.173 ozaki pserialize_read_exit(ss);
1320 1.183 ozaki cv_init(&rt->rt_cv, "rtentry");
1321 1.183 ozaki psref_target_init(&rt->rt_psref, rt_psref_class);
1322 1.173 ozaki
1323 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1324 1.125 dyoung rc = rt_addaddr(rtbl, rt, netmask);
1325 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1326 1.125 dyoung if (rc != 0) {
1327 1.173 ozaki ifafree(ifa); /* for rt_set_ifa above */
1328 1.183 ozaki cv_destroy(&rt->rt_cv);
1329 1.94 dyoung rt_destroy(rt);
1330 1.40 itojun pool_put(&rtentry_pool, rt);
1331 1.125 dyoung senderr(rc);
1332 1.27 matt }
1333 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1334 1.1 cgd if (ifa->ifa_rtrequest)
1335 1.39 itojun ifa->ifa_rtrequest(req, rt, info);
1336 1.173 ozaki if (need_to_release_ifa)
1337 1.173 ozaki ifa_release(ifa, &psref_ifa);
1338 1.173 ozaki ifa = NULL;
1339 1.173 ozaki if_put(ifp, &psref_ifp);
1340 1.173 ozaki ifp = NULL;
1341 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1342 1.1 cgd if (ret_nrt) {
1343 1.1 cgd *ret_nrt = rt;
1344 1.183 ozaki rt_ref(rt);
1345 1.183 ozaki RT_REFCNT_TRACE(rt);
1346 1.41 itojun }
1347 1.183 ozaki RT_UNLOCK();
1348 1.183 ozaki need_unlock = false;
1349 1.82 dyoung rtflushall(dst->sa_family);
1350 1.1 cgd break;
1351 1.92 dyoung case RTM_GET:
1352 1.94 dyoung if (netmask != NULL) {
1353 1.94 dyoung rt_maskedcopy(dst, (struct sockaddr *)&maskeddst,
1354 1.94 dyoung netmask);
1355 1.94 dyoung dst = (struct sockaddr *)&maskeddst;
1356 1.94 dyoung }
1357 1.125 dyoung if ((rt = rt_lookup(rtbl, dst, netmask)) == NULL)
1358 1.92 dyoung senderr(ESRCH);
1359 1.92 dyoung if (ret_nrt != NULL) {
1360 1.92 dyoung *ret_nrt = rt;
1361 1.183 ozaki rt_ref(rt);
1362 1.183 ozaki RT_REFCNT_TRACE(rt);
1363 1.92 dyoung }
1364 1.92 dyoung break;
1365 1.1 cgd }
1366 1.1 cgd bad:
1367 1.173 ozaki if (need_to_release_ifa)
1368 1.173 ozaki ifa_release(ifa, &psref_ifa);
1369 1.173 ozaki if_put(ifp, &psref_ifp);
1370 1.173 ozaki curlwp_bindx(bound);
1371 1.183 ozaki if (need_unlock)
1372 1.183 ozaki RT_UNLOCK();
1373 1.1 cgd splx(s);
1374 1.95 dyoung return error;
1375 1.1 cgd }
1376 1.1 cgd
1377 1.10 mycroft int
1378 1.94 dyoung rt_setgate(struct rtentry *rt, const struct sockaddr *gate)
1379 1.10 mycroft {
1380 1.176 ozaki struct sockaddr *new, *old;
1381 1.94 dyoung
1382 1.94 dyoung KASSERT(rt->_rt_key != NULL);
1383 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1384 1.94 dyoung
1385 1.176 ozaki new = sockaddr_dup(gate, M_ZERO | M_NOWAIT);
1386 1.176 ozaki if (new == NULL)
1387 1.94 dyoung return ENOMEM;
1388 1.176 ozaki
1389 1.176 ozaki old = rt->rt_gateway;
1390 1.176 ozaki rt->rt_gateway = new;
1391 1.176 ozaki if (old != NULL)
1392 1.176 ozaki sockaddr_free(old);
1393 1.176 ozaki
1394 1.94 dyoung KASSERT(rt->_rt_key != NULL);
1395 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1396 1.94 dyoung
1397 1.10 mycroft if (rt->rt_flags & RTF_GATEWAY) {
1398 1.183 ozaki struct rtentry *gwrt;
1399 1.183 ozaki
1400 1.183 ozaki /* XXX we cannot call rtalloc1 if holding the rt lock */
1401 1.183 ozaki if (RT_LOCKED())
1402 1.195 ozaki gwrt = rtalloc1_locked(gate, 1, false, true);
1403 1.183 ozaki else
1404 1.183 ozaki gwrt = rtalloc1(gate, 1);
1405 1.27 matt /*
1406 1.27 matt * If we switched gateways, grab the MTU from the new
1407 1.47 itojun * gateway route if the current MTU, if the current MTU is
1408 1.47 itojun * greater than the MTU of gateway.
1409 1.47 itojun * Note that, if the MTU of gateway is 0, we will reset the
1410 1.47 itojun * MTU of the route to run PMTUD again from scratch. XXX
1411 1.27 matt */
1412 1.166 ozaki if (gwrt != NULL) {
1413 1.166 ozaki KASSERT(gwrt->_rt_key != NULL);
1414 1.166 ozaki RT_DPRINTF("gwrt->_rt_key = %p\n", gwrt->_rt_key);
1415 1.166 ozaki if ((rt->rt_rmx.rmx_locks & RTV_MTU) == 0 &&
1416 1.166 ozaki rt->rt_rmx.rmx_mtu &&
1417 1.166 ozaki rt->rt_rmx.rmx_mtu > gwrt->rt_rmx.rmx_mtu) {
1418 1.166 ozaki rt->rt_rmx.rmx_mtu = gwrt->rt_rmx.rmx_mtu;
1419 1.166 ozaki }
1420 1.183 ozaki rt_unref(gwrt);
1421 1.27 matt }
1422 1.10 mycroft }
1423 1.94 dyoung KASSERT(rt->_rt_key != NULL);
1424 1.110 dyoung RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
1425 1.10 mycroft return 0;
1426 1.10 mycroft }
1427 1.10 mycroft
1428 1.141 ozaki static void
1429 1.60 matt rt_maskedcopy(const struct sockaddr *src, struct sockaddr *dst,
1430 1.60 matt const struct sockaddr *netmask)
1431 1.1 cgd {
1432 1.94 dyoung const char *netmaskp = &netmask->sa_data[0],
1433 1.94 dyoung *srcp = &src->sa_data[0];
1434 1.94 dyoung char *dstp = &dst->sa_data[0];
1435 1.126 christos const char *maskend = (char *)dst + MIN(netmask->sa_len, src->sa_len);
1436 1.126 christos const char *srcend = (char *)dst + src->sa_len;
1437 1.94 dyoung
1438 1.94 dyoung dst->sa_len = src->sa_len;
1439 1.94 dyoung dst->sa_family = src->sa_family;
1440 1.94 dyoung
1441 1.94 dyoung while (dstp < maskend)
1442 1.94 dyoung *dstp++ = *srcp++ & *netmaskp++;
1443 1.94 dyoung if (dstp < srcend)
1444 1.94 dyoung memset(dstp, 0, (size_t)(srcend - dstp));
1445 1.1 cgd }
1446 1.10 mycroft
1447 1.1 cgd /*
1448 1.135 roy * Inform the routing socket of a route change.
1449 1.135 roy */
1450 1.135 roy void
1451 1.154 ozaki rt_newmsg(const int cmd, const struct rtentry *rt)
1452 1.135 roy {
1453 1.135 roy struct rt_addrinfo info;
1454 1.135 roy
1455 1.135 roy memset((void *)&info, 0, sizeof(info));
1456 1.135 roy info.rti_info[RTAX_DST] = rt_getkey(rt);
1457 1.135 roy info.rti_info[RTAX_GATEWAY] = rt->rt_gateway;
1458 1.135 roy info.rti_info[RTAX_NETMASK] = rt_mask(rt);
1459 1.135 roy if (rt->rt_ifp) {
1460 1.135 roy info.rti_info[RTAX_IFP] = rt->rt_ifp->if_dl->ifa_addr;
1461 1.135 roy info.rti_info[RTAX_IFA] = rt->rt_ifa->ifa_addr;
1462 1.135 roy }
1463 1.135 roy
1464 1.135 roy rt_missmsg(cmd, &info, rt->rt_flags, 0);
1465 1.135 roy }
1466 1.135 roy
1467 1.135 roy /*
1468 1.29 sommerfe * Set up or tear down a routing table entry, normally
1469 1.1 cgd * for an interface.
1470 1.1 cgd */
1471 1.9 mycroft int
1472 1.60 matt rtinit(struct ifaddr *ifa, int cmd, int flags)
1473 1.1 cgd {
1474 1.36 augustss struct rtentry *rt;
1475 1.36 augustss struct sockaddr *dst, *odst;
1476 1.94 dyoung struct sockaddr_storage maskeddst;
1477 1.68 christos struct rtentry *nrt = NULL;
1478 1.1 cgd int error;
1479 1.39 itojun struct rt_addrinfo info;
1480 1.1 cgd
1481 1.1 cgd dst = flags & RTF_HOST ? ifa->ifa_dstaddr : ifa->ifa_addr;
1482 1.1 cgd if (cmd == RTM_DELETE) {
1483 1.1 cgd if ((flags & RTF_HOST) == 0 && ifa->ifa_netmask) {
1484 1.29 sommerfe /* Delete subnet route for this interface */
1485 1.29 sommerfe odst = dst;
1486 1.94 dyoung dst = (struct sockaddr *)&maskeddst;
1487 1.29 sommerfe rt_maskedcopy(odst, dst, ifa->ifa_netmask);
1488 1.1 cgd }
1489 1.14 christos if ((rt = rtalloc1(dst, 0)) != NULL) {
1490 1.146 ozaki if (rt->rt_ifa != ifa) {
1491 1.183 ozaki rt_unref(rt);
1492 1.85 dyoung return (flags & RTF_HOST) ? EHOSTUNREACH
1493 1.85 dyoung : ENETUNREACH;
1494 1.146 ozaki }
1495 1.183 ozaki rt_unref(rt);
1496 1.1 cgd }
1497 1.1 cgd }
1498 1.44 thorpej memset(&info, 0, sizeof(info));
1499 1.39 itojun info.rti_ifa = ifa;
1500 1.39 itojun info.rti_flags = flags | ifa->ifa_flags;
1501 1.39 itojun info.rti_info[RTAX_DST] = dst;
1502 1.39 itojun info.rti_info[RTAX_GATEWAY] = ifa->ifa_addr;
1503 1.158 ozaki
1504 1.39 itojun /*
1505 1.39 itojun * XXX here, it seems that we are assuming that ifa_netmask is NULL
1506 1.39 itojun * for RTF_HOST. bsdi4 passes NULL explicitly (via intermediate
1507 1.39 itojun * variable) when RTF_HOST is 1. still not sure if i can safely
1508 1.39 itojun * change it to meet bsdi4 behavior.
1509 1.39 itojun */
1510 1.114 dyoung if (cmd != RTM_LLINFO_UPD)
1511 1.114 dyoung info.rti_info[RTAX_NETMASK] = ifa->ifa_netmask;
1512 1.114 dyoung error = rtrequest1((cmd == RTM_LLINFO_UPD) ? RTM_GET : cmd, &info,
1513 1.114 dyoung &nrt);
1514 1.153 ozaki if (error != 0)
1515 1.146 ozaki return error;
1516 1.146 ozaki
1517 1.153 ozaki rt = nrt;
1518 1.183 ozaki RT_REFCNT_TRACE(rt);
1519 1.146 ozaki switch (cmd) {
1520 1.114 dyoung case RTM_DELETE:
1521 1.146 ozaki rt_newmsg(cmd, rt);
1522 1.183 ozaki rt_free(rt);
1523 1.114 dyoung break;
1524 1.114 dyoung case RTM_LLINFO_UPD:
1525 1.114 dyoung if (cmd == RTM_LLINFO_UPD && ifa->ifa_rtrequest != NULL)
1526 1.114 dyoung ifa->ifa_rtrequest(RTM_LLINFO_UPD, rt, &info);
1527 1.146 ozaki rt_newmsg(RTM_CHANGE, rt);
1528 1.183 ozaki rt_unref(rt);
1529 1.114 dyoung break;
1530 1.114 dyoung case RTM_ADD:
1531 1.183 ozaki /*
1532 1.183 ozaki * XXX it looks just reverting rt_ifa replaced by ifa_rtrequest
1533 1.183 ozaki * called via rtrequest1. Can we just prevent the replacement
1534 1.183 ozaki * somehow and remove the following code? And also doesn't
1535 1.183 ozaki * calling ifa_rtrequest(RTM_ADD) replace rt_ifa again?
1536 1.183 ozaki */
1537 1.10 mycroft if (rt->rt_ifa != ifa) {
1538 1.17 christos printf("rtinit: wrong ifa (%p) was (%p)\n", ifa,
1539 1.17 christos rt->rt_ifa);
1540 1.192 ozaki #ifdef NET_MPSAFE
1541 1.192 ozaki KASSERT(!cpu_softintr_p());
1542 1.192 ozaki
1543 1.192 ozaki error = rt_update_prepare(rt);
1544 1.192 ozaki if (error == 0) {
1545 1.192 ozaki #endif
1546 1.192 ozaki if (rt->rt_ifa->ifa_rtrequest != NULL) {
1547 1.192 ozaki rt->rt_ifa->ifa_rtrequest(RTM_DELETE,
1548 1.192 ozaki rt, &info);
1549 1.192 ozaki }
1550 1.192 ozaki rt_replace_ifa(rt, ifa);
1551 1.192 ozaki rt->rt_ifp = ifa->ifa_ifp;
1552 1.192 ozaki if (ifa->ifa_rtrequest != NULL)
1553 1.192 ozaki ifa->ifa_rtrequest(RTM_ADD, rt, &info);
1554 1.192 ozaki #ifdef NET_MPSAFE
1555 1.192 ozaki rt_update_finish(rt);
1556 1.192 ozaki } else {
1557 1.192 ozaki /*
1558 1.192 ozaki * If error != 0, the rtentry is being
1559 1.192 ozaki * destroyed, so doing nothing doesn't
1560 1.192 ozaki * matter.
1561 1.192 ozaki */
1562 1.114 dyoung }
1563 1.192 ozaki #endif
1564 1.10 mycroft }
1565 1.146 ozaki rt_newmsg(cmd, rt);
1566 1.183 ozaki rt_unref(rt);
1567 1.183 ozaki RT_REFCNT_TRACE(rt);
1568 1.114 dyoung break;
1569 1.1 cgd }
1570 1.85 dyoung return error;
1571 1.18 kml }
1572 1.18 kml
1573 1.136 roy /*
1574 1.136 roy * Create a local route entry for the address.
1575 1.136 roy * Announce the addition of the address and the route to the routing socket.
1576 1.136 roy */
1577 1.136 roy int
1578 1.136 roy rt_ifa_addlocal(struct ifaddr *ifa)
1579 1.136 roy {
1580 1.136 roy struct rtentry *rt;
1581 1.136 roy int e;
1582 1.136 roy
1583 1.136 roy /* If there is no loopback entry, allocate one. */
1584 1.136 roy rt = rtalloc1(ifa->ifa_addr, 0);
1585 1.158 ozaki #ifdef RT_DEBUG
1586 1.158 ozaki if (rt != NULL)
1587 1.158 ozaki dump_rt(rt);
1588 1.158 ozaki #endif
1589 1.136 roy if (rt == NULL || (rt->rt_flags & RTF_HOST) == 0 ||
1590 1.136 roy (rt->rt_ifp->if_flags & IFF_LOOPBACK) == 0)
1591 1.152 roy {
1592 1.152 roy struct rt_addrinfo info;
1593 1.152 roy struct rtentry *nrt;
1594 1.152 roy
1595 1.152 roy memset(&info, 0, sizeof(info));
1596 1.152 roy info.rti_flags = RTF_HOST | RTF_LOCAL;
1597 1.152 roy if (!(ifa->ifa_ifp->if_flags & (IFF_LOOPBACK|IFF_POINTOPOINT)))
1598 1.158 ozaki info.rti_flags |= RTF_LLDATA;
1599 1.152 roy info.rti_info[RTAX_DST] = ifa->ifa_addr;
1600 1.152 roy info.rti_info[RTAX_GATEWAY] =
1601 1.152 roy (const struct sockaddr *)ifa->ifa_ifp->if_sadl;
1602 1.152 roy info.rti_ifa = ifa;
1603 1.152 roy nrt = NULL;
1604 1.152 roy e = rtrequest1(RTM_ADD, &info, &nrt);
1605 1.152 roy if (nrt && ifa != nrt->rt_ifa)
1606 1.152 roy rt_replace_ifa(nrt, ifa);
1607 1.152 roy rt_newaddrmsg(RTM_ADD, ifa, e, nrt);
1608 1.158 ozaki if (nrt != NULL) {
1609 1.158 ozaki #ifdef RT_DEBUG
1610 1.158 ozaki dump_rt(nrt);
1611 1.158 ozaki #endif
1612 1.183 ozaki rt_unref(nrt);
1613 1.183 ozaki RT_REFCNT_TRACE(nrt);
1614 1.158 ozaki }
1615 1.152 roy } else {
1616 1.136 roy e = 0;
1617 1.136 roy rt_newaddrmsg(RTM_NEWADDR, ifa, 0, NULL);
1618 1.136 roy }
1619 1.136 roy if (rt != NULL)
1620 1.183 ozaki rt_unref(rt);
1621 1.136 roy return e;
1622 1.136 roy }
1623 1.136 roy
1624 1.136 roy /*
1625 1.136 roy * Remove the local route entry for the address.
1626 1.136 roy * Announce the removal of the address and the route to the routing socket.
1627 1.136 roy */
1628 1.136 roy int
1629 1.136 roy rt_ifa_remlocal(struct ifaddr *ifa, struct ifaddr *alt_ifa)
1630 1.136 roy {
1631 1.136 roy struct rtentry *rt;
1632 1.136 roy int e = 0;
1633 1.136 roy
1634 1.136 roy rt = rtalloc1(ifa->ifa_addr, 0);
1635 1.136 roy
1636 1.136 roy /*
1637 1.136 roy * Before deleting, check if a corresponding loopbacked
1638 1.136 roy * host route surely exists. With this check, we can avoid
1639 1.136 roy * deleting an interface direct route whose destination is
1640 1.136 roy * the same as the address being removed. This can happen
1641 1.136 roy * when removing a subnet-router anycast address on an
1642 1.136 roy * interface attached to a shared medium.
1643 1.136 roy */
1644 1.136 roy if (rt != NULL &&
1645 1.136 roy (rt->rt_flags & RTF_HOST) &&
1646 1.136 roy (rt->rt_ifp->if_flags & IFF_LOOPBACK))
1647 1.136 roy {
1648 1.136 roy /* If we cannot replace the route's ifaddr with the equivalent
1649 1.136 roy * ifaddr of another interface, I believe it is safest to
1650 1.136 roy * delete the route.
1651 1.136 roy */
1652 1.152 roy if (alt_ifa == NULL) {
1653 1.152 roy e = rtdeletemsg(rt);
1654 1.183 ozaki if (e == 0) {
1655 1.183 ozaki rt_unref(rt);
1656 1.183 ozaki rt_free(rt);
1657 1.183 ozaki rt = NULL;
1658 1.183 ozaki }
1659 1.152 roy rt_newaddrmsg(RTM_DELADDR, ifa, 0, NULL);
1660 1.152 roy } else {
1661 1.136 roy rt_replace_ifa(rt, alt_ifa);
1662 1.136 roy rt_newmsg(RTM_CHANGE, rt);
1663 1.136 roy }
1664 1.136 roy } else
1665 1.136 roy rt_newaddrmsg(RTM_DELADDR, ifa, 0, NULL);
1666 1.136 roy if (rt != NULL)
1667 1.183 ozaki rt_unref(rt);
1668 1.136 roy return e;
1669 1.136 roy }
1670 1.136 roy
1671 1.18 kml /*
1672 1.18 kml * Route timer routines. These routes allow functions to be called
1673 1.18 kml * for various routes at any time. This is useful in supporting
1674 1.18 kml * path MTU discovery and redirect route deletion.
1675 1.18 kml *
1676 1.18 kml * This is similar to some BSDI internal functions, but it provides
1677 1.18 kml * for multiple queues for efficiency's sake...
1678 1.18 kml */
1679 1.18 kml
1680 1.18 kml LIST_HEAD(, rttimer_queue) rttimer_queue_head;
1681 1.18 kml static int rt_init_done = 0;
1682 1.18 kml
1683 1.65 perry /*
1684 1.18 kml * Some subtle order problems with domain initialization mean that
1685 1.18 kml * we cannot count on this being run from rt_init before various
1686 1.18 kml * protocol initializations are done. Therefore, we make sure
1687 1.18 kml * that this is run when the first queue is added...
1688 1.18 kml */
1689 1.18 kml
1690 1.170 ozaki static void rt_timer_work(struct work *, void *);
1691 1.170 ozaki
1692 1.177 ozaki static void
1693 1.60 matt rt_timer_init(void)
1694 1.18 kml {
1695 1.170 ozaki int error;
1696 1.170 ozaki
1697 1.18 kml assert(rt_init_done == 0);
1698 1.18 kml
1699 1.183 ozaki /* XXX should be in rt_init */
1700 1.183 ozaki rw_init(&rt_lock);
1701 1.183 ozaki rw_init(&rtcache_lock);
1702 1.183 ozaki
1703 1.18 kml LIST_INIT(&rttimer_queue_head);
1704 1.172 martin callout_init(&rt_timer_ch, CALLOUT_MPSAFE);
1705 1.170 ozaki error = workqueue_create(&rt_timer_wq, "rt_timer",
1706 1.170 ozaki rt_timer_work, NULL, PRI_SOFTNET, IPL_SOFTNET, WQ_MPSAFE);
1707 1.170 ozaki if (error)
1708 1.170 ozaki panic("%s: workqueue_create failed (%d)\n", __func__, error);
1709 1.172 martin callout_reset(&rt_timer_ch, hz, rt_timer_timer, NULL);
1710 1.18 kml rt_init_done = 1;
1711 1.18 kml }
1712 1.18 kml
1713 1.18 kml struct rttimer_queue *
1714 1.60 matt rt_timer_queue_create(u_int timeout)
1715 1.18 kml {
1716 1.18 kml struct rttimer_queue *rtq;
1717 1.18 kml
1718 1.18 kml if (rt_init_done == 0)
1719 1.18 kml rt_timer_init();
1720 1.18 kml
1721 1.18 kml R_Malloc(rtq, struct rttimer_queue *, sizeof *rtq);
1722 1.18 kml if (rtq == NULL)
1723 1.85 dyoung return NULL;
1724 1.109 dyoung memset(rtq, 0, sizeof(*rtq));
1725 1.18 kml
1726 1.18 kml rtq->rtq_timeout = timeout;
1727 1.24 thorpej TAILQ_INIT(&rtq->rtq_head);
1728 1.183 ozaki RT_WLOCK();
1729 1.18 kml LIST_INSERT_HEAD(&rttimer_queue_head, rtq, rtq_link);
1730 1.183 ozaki RT_UNLOCK();
1731 1.18 kml
1732 1.85 dyoung return rtq;
1733 1.18 kml }
1734 1.18 kml
1735 1.18 kml void
1736 1.60 matt rt_timer_queue_change(struct rttimer_queue *rtq, long timeout)
1737 1.18 kml {
1738 1.24 thorpej
1739 1.18 kml rtq->rtq_timeout = timeout;
1740 1.18 kml }
1741 1.18 kml
1742 1.177 ozaki static void
1743 1.181 ozaki rt_timer_queue_remove_all(struct rttimer_queue *rtq)
1744 1.18 kml {
1745 1.24 thorpej struct rttimer *r;
1746 1.18 kml
1747 1.183 ozaki RT_ASSERT_WLOCK();
1748 1.183 ozaki
1749 1.24 thorpej while ((r = TAILQ_FIRST(&rtq->rtq_head)) != NULL) {
1750 1.18 kml LIST_REMOVE(r, rtt_link);
1751 1.24 thorpej TAILQ_REMOVE(&rtq->rtq_head, r, rtt_next);
1752 1.183 ozaki rt_ref(r->rtt_rt); /* XXX */
1753 1.183 ozaki RT_REFCNT_TRACE(r->rtt_rt);
1754 1.183 ozaki RT_UNLOCK();
1755 1.181 ozaki (*r->rtt_func)(r->rtt_rt, r);
1756 1.22 thorpej pool_put(&rttimer_pool, r);
1757 1.183 ozaki RT_WLOCK();
1758 1.37 itojun if (rtq->rtq_count > 0)
1759 1.37 itojun rtq->rtq_count--;
1760 1.37 itojun else
1761 1.55 itojun printf("rt_timer_queue_remove_all: "
1762 1.55 itojun "rtq_count reached 0\n");
1763 1.18 kml }
1764 1.55 itojun }
1765 1.55 itojun
1766 1.55 itojun void
1767 1.181 ozaki rt_timer_queue_destroy(struct rttimer_queue *rtq)
1768 1.55 itojun {
1769 1.55 itojun
1770 1.183 ozaki RT_WLOCK();
1771 1.181 ozaki rt_timer_queue_remove_all(rtq);
1772 1.18 kml LIST_REMOVE(rtq, rtq_link);
1773 1.183 ozaki RT_UNLOCK();
1774 1.22 thorpej
1775 1.22 thorpej /*
1776 1.22 thorpej * Caller is responsible for freeing the rttimer_queue structure.
1777 1.22 thorpej */
1778 1.18 kml }
1779 1.18 kml
1780 1.37 itojun unsigned long
1781 1.60 matt rt_timer_count(struct rttimer_queue *rtq)
1782 1.37 itojun {
1783 1.37 itojun return rtq->rtq_count;
1784 1.37 itojun }
1785 1.37 itojun
1786 1.177 ozaki static void
1787 1.178 ozaki rt_timer_remove_all(struct rtentry *rt)
1788 1.18 kml {
1789 1.24 thorpej struct rttimer *r;
1790 1.18 kml
1791 1.183 ozaki RT_WLOCK();
1792 1.24 thorpej while ((r = LIST_FIRST(&rt->rt_timer)) != NULL) {
1793 1.18 kml LIST_REMOVE(r, rtt_link);
1794 1.24 thorpej TAILQ_REMOVE(&r->rtt_queue->rtq_head, r, rtt_next);
1795 1.37 itojun if (r->rtt_queue->rtq_count > 0)
1796 1.37 itojun r->rtt_queue->rtq_count--;
1797 1.37 itojun else
1798 1.37 itojun printf("rt_timer_remove_all: rtq_count reached 0\n");
1799 1.38 itojun pool_put(&rttimer_pool, r);
1800 1.18 kml }
1801 1.183 ozaki RT_UNLOCK();
1802 1.18 kml }
1803 1.18 kml
1804 1.65 perry int
1805 1.60 matt rt_timer_add(struct rtentry *rt,
1806 1.60 matt void (*func)(struct rtentry *, struct rttimer *),
1807 1.60 matt struct rttimer_queue *queue)
1808 1.18 kml {
1809 1.24 thorpej struct rttimer *r;
1810 1.18 kml
1811 1.156 ozaki KASSERT(func != NULL);
1812 1.183 ozaki RT_WLOCK();
1813 1.24 thorpej /*
1814 1.24 thorpej * If there's already a timer with this action, destroy it before
1815 1.24 thorpej * we add a new one.
1816 1.24 thorpej */
1817 1.85 dyoung LIST_FOREACH(r, &rt->rt_timer, rtt_link) {
1818 1.85 dyoung if (r->rtt_func == func)
1819 1.85 dyoung break;
1820 1.85 dyoung }
1821 1.85 dyoung if (r != NULL) {
1822 1.85 dyoung LIST_REMOVE(r, rtt_link);
1823 1.85 dyoung TAILQ_REMOVE(&r->rtt_queue->rtq_head, r, rtt_next);
1824 1.85 dyoung if (r->rtt_queue->rtq_count > 0)
1825 1.85 dyoung r->rtt_queue->rtq_count--;
1826 1.85 dyoung else
1827 1.85 dyoung printf("rt_timer_add: rtq_count reached 0\n");
1828 1.85 dyoung } else {
1829 1.85 dyoung r = pool_get(&rttimer_pool, PR_NOWAIT);
1830 1.183 ozaki if (r == NULL) {
1831 1.183 ozaki RT_UNLOCK();
1832 1.85 dyoung return ENOBUFS;
1833 1.183 ozaki }
1834 1.18 kml }
1835 1.18 kml
1836 1.85 dyoung memset(r, 0, sizeof(*r));
1837 1.24 thorpej
1838 1.24 thorpej r->rtt_rt = rt;
1839 1.70 kardel r->rtt_time = time_uptime;
1840 1.24 thorpej r->rtt_func = func;
1841 1.24 thorpej r->rtt_queue = queue;
1842 1.24 thorpej LIST_INSERT_HEAD(&rt->rt_timer, r, rtt_link);
1843 1.24 thorpej TAILQ_INSERT_TAIL(&queue->rtq_head, r, rtt_next);
1844 1.37 itojun r->rtt_queue->rtq_count++;
1845 1.65 perry
1846 1.183 ozaki RT_UNLOCK();
1847 1.183 ozaki
1848 1.95 dyoung return 0;
1849 1.18 kml }
1850 1.18 kml
1851 1.170 ozaki static void
1852 1.170 ozaki rt_timer_work(struct work *wk, void *arg)
1853 1.18 kml {
1854 1.24 thorpej struct rttimer_queue *rtq;
1855 1.24 thorpej struct rttimer *r;
1856 1.21 kml
1857 1.183 ozaki RT_WLOCK();
1858 1.85 dyoung LIST_FOREACH(rtq, &rttimer_queue_head, rtq_link) {
1859 1.24 thorpej while ((r = TAILQ_FIRST(&rtq->rtq_head)) != NULL &&
1860 1.70 kardel (r->rtt_time + rtq->rtq_timeout) < time_uptime) {
1861 1.24 thorpej LIST_REMOVE(r, rtt_link);
1862 1.24 thorpej TAILQ_REMOVE(&rtq->rtq_head, r, rtt_next);
1863 1.183 ozaki rt_ref(r->rtt_rt); /* XXX */
1864 1.183 ozaki RT_REFCNT_TRACE(r->rtt_rt);
1865 1.183 ozaki RT_UNLOCK();
1866 1.156 ozaki (*r->rtt_func)(r->rtt_rt, r);
1867 1.24 thorpej pool_put(&rttimer_pool, r);
1868 1.183 ozaki RT_WLOCK();
1869 1.37 itojun if (rtq->rtq_count > 0)
1870 1.37 itojun rtq->rtq_count--;
1871 1.37 itojun else
1872 1.37 itojun printf("rt_timer_timer: rtq_count reached 0\n");
1873 1.18 kml }
1874 1.18 kml }
1875 1.183 ozaki RT_UNLOCK();
1876 1.18 kml
1877 1.35 thorpej callout_reset(&rt_timer_ch, hz, rt_timer_timer, NULL);
1878 1.1 cgd }
1879 1.83 joerg
1880 1.177 ozaki static void
1881 1.170 ozaki rt_timer_timer(void *arg)
1882 1.170 ozaki {
1883 1.170 ozaki
1884 1.170 ozaki workqueue_enqueue(rt_timer_wq, &rt_timer_wk, NULL);
1885 1.170 ozaki }
1886 1.170 ozaki
1887 1.102 dyoung static struct rtentry *
1888 1.84 joerg _rtcache_init(struct route *ro, int flag)
1889 1.84 joerg {
1890 1.183 ozaki struct rtentry *rt;
1891 1.183 ozaki
1892 1.114 dyoung rtcache_invariants(ro);
1893 1.99 dyoung KASSERT(ro->_ro_rt == NULL);
1894 1.183 ozaki RTCACHE_ASSERT_WLOCK();
1895 1.84 joerg
1896 1.90 dyoung if (rtcache_getdst(ro) == NULL)
1897 1.102 dyoung return NULL;
1898 1.105 dyoung ro->ro_invalid = false;
1899 1.183 ozaki rt = rtalloc1(rtcache_getdst(ro), flag);
1900 1.183 ozaki if (rt != NULL && ISSET(rt->rt_flags, RTF_UP)) {
1901 1.183 ozaki ro->_ro_rt = rt;
1902 1.183 ozaki KASSERT(!ISSET(rt->rt_flags, RTF_UPDATING));
1903 1.183 ozaki rtcache_ref(rt, ro);
1904 1.183 ozaki rt_unref(rt);
1905 1.105 dyoung rtcache(ro);
1906 1.183 ozaki } else if (rt != NULL)
1907 1.183 ozaki rt_unref(rt);
1908 1.103 dyoung
1909 1.114 dyoung rtcache_invariants(ro);
1910 1.102 dyoung return ro->_ro_rt;
1911 1.84 joerg }
1912 1.84 joerg
1913 1.102 dyoung struct rtentry *
1914 1.83 joerg rtcache_init(struct route *ro)
1915 1.83 joerg {
1916 1.183 ozaki struct rtentry *rt;
1917 1.183 ozaki RTCACHE_WLOCK();
1918 1.183 ozaki rt = _rtcache_init(ro, 1);
1919 1.183 ozaki RTCACHE_UNLOCK();
1920 1.183 ozaki return rt;
1921 1.83 joerg }
1922 1.83 joerg
1923 1.102 dyoung struct rtentry *
1924 1.83 joerg rtcache_init_noclone(struct route *ro)
1925 1.83 joerg {
1926 1.183 ozaki struct rtentry *rt;
1927 1.183 ozaki RTCACHE_WLOCK();
1928 1.183 ozaki rt = _rtcache_init(ro, 0);
1929 1.183 ozaki RTCACHE_UNLOCK();
1930 1.183 ozaki return rt;
1931 1.83 joerg }
1932 1.90 dyoung
1933 1.102 dyoung struct rtentry *
1934 1.90 dyoung rtcache_update(struct route *ro, int clone)
1935 1.90 dyoung {
1936 1.183 ozaki struct rtentry *rt;
1937 1.183 ozaki RTCACHE_WLOCK();
1938 1.90 dyoung rtcache_clear(ro);
1939 1.183 ozaki rt = _rtcache_init(ro, clone);
1940 1.183 ozaki RTCACHE_UNLOCK();
1941 1.183 ozaki return rt;
1942 1.90 dyoung }
1943 1.83 joerg
1944 1.83 joerg void
1945 1.183 ozaki rtcache_copy(struct route *new_ro, struct route *old_ro)
1946 1.83 joerg {
1947 1.103 dyoung struct rtentry *rt;
1948 1.183 ozaki int ret;
1949 1.103 dyoung
1950 1.103 dyoung KASSERT(new_ro != old_ro);
1951 1.114 dyoung rtcache_invariants(new_ro);
1952 1.114 dyoung rtcache_invariants(old_ro);
1953 1.103 dyoung
1954 1.183 ozaki rt = rtcache_validate(old_ro);
1955 1.103 dyoung
1956 1.183 ozaki if (rtcache_getdst(old_ro) == NULL)
1957 1.183 ozaki goto out;
1958 1.183 ozaki ret = rtcache_setdst(new_ro, rtcache_getdst(old_ro));
1959 1.183 ozaki if (ret != 0)
1960 1.183 ozaki goto out;
1961 1.103 dyoung
1962 1.183 ozaki RTCACHE_WLOCK();
1963 1.105 dyoung new_ro->ro_invalid = false;
1964 1.103 dyoung if ((new_ro->_ro_rt = rt) != NULL)
1965 1.86 dyoung rtcache(new_ro);
1966 1.114 dyoung rtcache_invariants(new_ro);
1967 1.183 ozaki RTCACHE_UNLOCK();
1968 1.183 ozaki out:
1969 1.183 ozaki rtcache_unref(rt, old_ro);
1970 1.183 ozaki return;
1971 1.83 joerg }
1972 1.83 joerg
1973 1.105 dyoung static struct dom_rtlist invalid_routes = LIST_HEAD_INITIALIZER(dom_rtlist);
1974 1.105 dyoung
1975 1.184 ozaki #if defined(RT_DEBUG) && defined(NET_MPSAFE)
1976 1.183 ozaki static void
1977 1.183 ozaki rtcache_trace(const char *func, struct rtentry *rt, struct route *ro)
1978 1.183 ozaki {
1979 1.183 ozaki char dst[64];
1980 1.183 ozaki
1981 1.183 ozaki sockaddr_format(ro->ro_sa, dst, 64);
1982 1.183 ozaki printf("trace: %s:\tdst=%s cpu=%d lwp=%p psref=%p target=%p\n", func, dst,
1983 1.183 ozaki cpu_index(curcpu()), curlwp, &ro->ro_psref, &rt->rt_psref);
1984 1.183 ozaki }
1985 1.183 ozaki #define RTCACHE_PSREF_TRACE(rt, ro) rtcache_trace(__func__, (rt), (ro))
1986 1.183 ozaki #else
1987 1.183 ozaki #define RTCACHE_PSREF_TRACE(rt, ro) do {} while (0)
1988 1.183 ozaki #endif
1989 1.183 ozaki
1990 1.183 ozaki static void
1991 1.183 ozaki rtcache_ref(struct rtentry *rt, struct route *ro)
1992 1.183 ozaki {
1993 1.183 ozaki
1994 1.183 ozaki KASSERT(rt != NULL);
1995 1.183 ozaki
1996 1.183 ozaki #ifdef NET_MPSAFE
1997 1.183 ozaki RTCACHE_PSREF_TRACE(rt, ro);
1998 1.183 ozaki ro->ro_bound = curlwp_bind();
1999 1.183 ozaki psref_acquire(&ro->ro_psref, &rt->rt_psref, rt_psref_class);
2000 1.183 ozaki #endif
2001 1.183 ozaki }
2002 1.183 ozaki
2003 1.183 ozaki void
2004 1.183 ozaki rtcache_unref(struct rtentry *rt, struct route *ro)
2005 1.183 ozaki {
2006 1.183 ozaki
2007 1.183 ozaki if (rt == NULL)
2008 1.183 ozaki return;
2009 1.183 ozaki
2010 1.183 ozaki #ifdef NET_MPSAFE
2011 1.183 ozaki psref_release(&ro->ro_psref, &rt->rt_psref, rt_psref_class);
2012 1.183 ozaki curlwp_bindx(ro->ro_bound);
2013 1.183 ozaki RTCACHE_PSREF_TRACE(rt, ro);
2014 1.183 ozaki #endif
2015 1.183 ozaki }
2016 1.183 ozaki
2017 1.183 ozaki static struct rtentry *
2018 1.183 ozaki rtcache_validate_locked(struct route *ro)
2019 1.183 ozaki {
2020 1.183 ozaki struct rtentry *rt = NULL;
2021 1.183 ozaki
2022 1.188 ozaki #ifdef NET_MPSAFE
2023 1.183 ozaki retry:
2024 1.188 ozaki #endif
2025 1.183 ozaki rt = ro->_ro_rt;
2026 1.183 ozaki rtcache_invariants(ro);
2027 1.183 ozaki
2028 1.183 ozaki if (ro->ro_invalid) {
2029 1.183 ozaki rt = NULL;
2030 1.183 ozaki goto out;
2031 1.183 ozaki }
2032 1.183 ozaki
2033 1.183 ozaki RT_RLOCK();
2034 1.183 ozaki if (rt != NULL && (rt->rt_flags & RTF_UP) != 0 && rt->rt_ifp != NULL) {
2035 1.188 ozaki #ifdef NET_MPSAFE
2036 1.183 ozaki if (ISSET(rt->rt_flags, RTF_UPDATING)) {
2037 1.183 ozaki if (rt_wait_ok()) {
2038 1.183 ozaki RT_UNLOCK();
2039 1.183 ozaki RTCACHE_UNLOCK();
2040 1.183 ozaki /* We can wait until the update is complete */
2041 1.183 ozaki rt_update_wait();
2042 1.183 ozaki RTCACHE_RLOCK();
2043 1.183 ozaki goto retry;
2044 1.183 ozaki } else {
2045 1.183 ozaki rt = NULL;
2046 1.183 ozaki }
2047 1.183 ozaki } else
2048 1.188 ozaki #endif
2049 1.183 ozaki rtcache_ref(rt, ro);
2050 1.183 ozaki } else
2051 1.183 ozaki rt = NULL;
2052 1.183 ozaki RT_UNLOCK();
2053 1.183 ozaki out:
2054 1.183 ozaki return rt;
2055 1.183 ozaki }
2056 1.183 ozaki
2057 1.183 ozaki struct rtentry *
2058 1.183 ozaki rtcache_validate(struct route *ro)
2059 1.183 ozaki {
2060 1.183 ozaki struct rtentry *rt;
2061 1.183 ozaki
2062 1.183 ozaki RTCACHE_RLOCK();
2063 1.183 ozaki rt = rtcache_validate_locked(ro);
2064 1.183 ozaki RTCACHE_UNLOCK();
2065 1.183 ozaki return rt;
2066 1.183 ozaki }
2067 1.183 ozaki
2068 1.144 ozaki static void
2069 1.105 dyoung rtcache_invalidate(struct dom_rtlist *rtlist)
2070 1.83 joerg {
2071 1.105 dyoung struct route *ro;
2072 1.99 dyoung
2073 1.183 ozaki RTCACHE_ASSERT_WLOCK();
2074 1.183 ozaki
2075 1.105 dyoung while ((ro = LIST_FIRST(rtlist)) != NULL) {
2076 1.114 dyoung rtcache_invariants(ro);
2077 1.105 dyoung KASSERT(ro->_ro_rt != NULL);
2078 1.105 dyoung ro->ro_invalid = true;
2079 1.99 dyoung LIST_REMOVE(ro, ro_rtcache_next);
2080 1.105 dyoung LIST_INSERT_HEAD(&invalid_routes, ro, ro_rtcache_next);
2081 1.114 dyoung rtcache_invariants(ro);
2082 1.84 joerg }
2083 1.105 dyoung }
2084 1.105 dyoung
2085 1.144 ozaki static void
2086 1.168 ozaki rtcache_clear_rtentry(int family, struct rtentry *rt)
2087 1.168 ozaki {
2088 1.168 ozaki struct domain *dom;
2089 1.171 hannken struct route *ro, *nro;
2090 1.168 ozaki
2091 1.168 ozaki if ((dom = pffinddomain(family)) == NULL)
2092 1.168 ozaki return;
2093 1.168 ozaki
2094 1.183 ozaki RTCACHE_WLOCK();
2095 1.171 hannken LIST_FOREACH_SAFE(ro, &dom->dom_rtcache, ro_rtcache_next, nro) {
2096 1.168 ozaki if (ro->_ro_rt == rt)
2097 1.168 ozaki rtcache_clear(ro);
2098 1.168 ozaki }
2099 1.183 ozaki RTCACHE_UNLOCK();
2100 1.168 ozaki }
2101 1.168 ozaki
2102 1.168 ozaki static void
2103 1.105 dyoung rtcache_clear(struct route *ro)
2104 1.105 dyoung {
2105 1.183 ozaki
2106 1.183 ozaki RTCACHE_ASSERT_WLOCK();
2107 1.183 ozaki
2108 1.114 dyoung rtcache_invariants(ro);
2109 1.105 dyoung if (ro->_ro_rt == NULL)
2110 1.105 dyoung return;
2111 1.105 dyoung
2112 1.105 dyoung LIST_REMOVE(ro, ro_rtcache_next);
2113 1.105 dyoung
2114 1.105 dyoung ro->_ro_rt = NULL;
2115 1.114 dyoung ro->ro_invalid = false;
2116 1.114 dyoung rtcache_invariants(ro);
2117 1.83 joerg }
2118 1.83 joerg
2119 1.90 dyoung struct rtentry *
2120 1.183 ozaki rtcache_lookup2(struct route *ro, const struct sockaddr *dst,
2121 1.183 ozaki int clone, int *hitp)
2122 1.90 dyoung {
2123 1.90 dyoung const struct sockaddr *odst;
2124 1.104 dyoung struct rtentry *rt = NULL;
2125 1.90 dyoung
2126 1.183 ozaki RTCACHE_RLOCK();
2127 1.90 dyoung odst = rtcache_getdst(ro);
2128 1.183 ozaki if (odst == NULL) {
2129 1.183 ozaki RTCACHE_UNLOCK();
2130 1.183 ozaki RTCACHE_WLOCK();
2131 1.138 ozaki goto miss;
2132 1.183 ozaki }
2133 1.90 dyoung
2134 1.138 ozaki if (sockaddr_cmp(odst, dst) != 0) {
2135 1.183 ozaki RTCACHE_UNLOCK();
2136 1.183 ozaki RTCACHE_WLOCK();
2137 1.183 ozaki rtcache_free_locked(ro);
2138 1.138 ozaki goto miss;
2139 1.138 ozaki }
2140 1.138 ozaki
2141 1.183 ozaki rt = rtcache_validate_locked(ro);
2142 1.138 ozaki if (rt == NULL) {
2143 1.183 ozaki RTCACHE_UNLOCK();
2144 1.183 ozaki RTCACHE_WLOCK();
2145 1.91 dyoung rtcache_clear(ro);
2146 1.138 ozaki goto miss;
2147 1.138 ozaki }
2148 1.138 ozaki
2149 1.138 ozaki rtcache_invariants(ro);
2150 1.90 dyoung
2151 1.183 ozaki RTCACHE_UNLOCK();
2152 1.183 ozaki if (hitp != NULL)
2153 1.183 ozaki *hitp = 1;
2154 1.138 ozaki return rt;
2155 1.138 ozaki miss:
2156 1.183 ozaki if (hitp != NULL)
2157 1.183 ozaki *hitp = 0;
2158 1.183 ozaki if (rtcache_setdst_locked(ro, dst) == 0)
2159 1.138 ozaki rt = _rtcache_init(ro, clone);
2160 1.90 dyoung
2161 1.114 dyoung rtcache_invariants(ro);
2162 1.114 dyoung
2163 1.183 ozaki RTCACHE_UNLOCK();
2164 1.104 dyoung return rt;
2165 1.90 dyoung }
2166 1.90 dyoung
2167 1.183 ozaki static void
2168 1.183 ozaki rtcache_free_locked(struct route *ro)
2169 1.86 dyoung {
2170 1.183 ozaki
2171 1.183 ozaki RTCACHE_ASSERT_WLOCK();
2172 1.86 dyoung rtcache_clear(ro);
2173 1.86 dyoung if (ro->ro_sa != NULL) {
2174 1.86 dyoung sockaddr_free(ro->ro_sa);
2175 1.86 dyoung ro->ro_sa = NULL;
2176 1.86 dyoung }
2177 1.114 dyoung rtcache_invariants(ro);
2178 1.86 dyoung }
2179 1.86 dyoung
2180 1.183 ozaki void
2181 1.183 ozaki rtcache_free(struct route *ro)
2182 1.183 ozaki {
2183 1.183 ozaki
2184 1.183 ozaki RTCACHE_WLOCK();
2185 1.183 ozaki rtcache_free_locked(ro);
2186 1.183 ozaki RTCACHE_UNLOCK();
2187 1.183 ozaki }
2188 1.183 ozaki
2189 1.183 ozaki static int
2190 1.183 ozaki rtcache_setdst_locked(struct route *ro, const struct sockaddr *sa)
2191 1.83 joerg {
2192 1.90 dyoung KASSERT(sa != NULL);
2193 1.90 dyoung
2194 1.183 ozaki RTCACHE_ASSERT_WLOCK();
2195 1.183 ozaki
2196 1.114 dyoung rtcache_invariants(ro);
2197 1.142 ozaki if (ro->ro_sa != NULL) {
2198 1.142 ozaki if (ro->ro_sa->sa_family == sa->sa_family) {
2199 1.142 ozaki rtcache_clear(ro);
2200 1.142 ozaki sockaddr_copy(ro->ro_sa, ro->ro_sa->sa_len, sa);
2201 1.143 ozaki rtcache_invariants(ro);
2202 1.143 ozaki return 0;
2203 1.114 dyoung }
2204 1.143 ozaki /* free ro_sa, wrong family */
2205 1.183 ozaki rtcache_free_locked(ro);
2206 1.142 ozaki }
2207 1.90 dyoung
2208 1.107 dyoung KASSERT(ro->_ro_rt == NULL);
2209 1.107 dyoung
2210 1.134 christos if ((ro->ro_sa = sockaddr_dup(sa, M_ZERO | M_NOWAIT)) == NULL) {
2211 1.114 dyoung rtcache_invariants(ro);
2212 1.90 dyoung return ENOMEM;
2213 1.107 dyoung }
2214 1.114 dyoung rtcache_invariants(ro);
2215 1.90 dyoung return 0;
2216 1.83 joerg }
2217 1.92 dyoung
2218 1.183 ozaki int
2219 1.183 ozaki rtcache_setdst(struct route *ro, const struct sockaddr *sa)
2220 1.183 ozaki {
2221 1.183 ozaki int error;
2222 1.183 ozaki
2223 1.183 ozaki RTCACHE_WLOCK();
2224 1.183 ozaki error = rtcache_setdst_locked(ro, sa);
2225 1.183 ozaki RTCACHE_UNLOCK();
2226 1.183 ozaki
2227 1.183 ozaki return error;
2228 1.183 ozaki }
2229 1.183 ozaki
2230 1.123 kefren const struct sockaddr *
2231 1.123 kefren rt_settag(struct rtentry *rt, const struct sockaddr *tag)
2232 1.123 kefren {
2233 1.123 kefren if (rt->rt_tag != tag) {
2234 1.123 kefren if (rt->rt_tag != NULL)
2235 1.123 kefren sockaddr_free(rt->rt_tag);
2236 1.134 christos rt->rt_tag = sockaddr_dup(tag, M_ZERO | M_NOWAIT);
2237 1.123 kefren }
2238 1.169 msaitoh return rt->rt_tag;
2239 1.123 kefren }
2240 1.123 kefren
2241 1.123 kefren struct sockaddr *
2242 1.167 ozaki rt_gettag(const struct rtentry *rt)
2243 1.123 kefren {
2244 1.123 kefren return rt->rt_tag;
2245 1.123 kefren }
2246 1.162 ozaki
2247 1.165 ozaki int
2248 1.167 ozaki rt_check_reject_route(const struct rtentry *rt, const struct ifnet *ifp)
2249 1.165 ozaki {
2250 1.165 ozaki
2251 1.165 ozaki if ((rt->rt_flags & RTF_REJECT) != 0) {
2252 1.165 ozaki /* Mimic looutput */
2253 1.165 ozaki if (ifp->if_flags & IFF_LOOPBACK)
2254 1.165 ozaki return (rt->rt_flags & RTF_HOST) ?
2255 1.165 ozaki EHOSTUNREACH : ENETUNREACH;
2256 1.165 ozaki else if (rt->rt_rmx.rmx_expire == 0 ||
2257 1.165 ozaki time_uptime < rt->rt_rmx.rmx_expire)
2258 1.165 ozaki return (rt->rt_flags & RTF_GATEWAY) ?
2259 1.165 ozaki EHOSTUNREACH : EHOSTDOWN;
2260 1.165 ozaki }
2261 1.165 ozaki
2262 1.165 ozaki return 0;
2263 1.165 ozaki }
2264 1.165 ozaki
2265 1.182 ozaki void
2266 1.182 ozaki rt_delete_matched_entries(sa_family_t family, int (*f)(struct rtentry *, void *),
2267 1.182 ozaki void *v)
2268 1.182 ozaki {
2269 1.182 ozaki
2270 1.182 ozaki for (;;) {
2271 1.182 ozaki int s;
2272 1.182 ozaki int error;
2273 1.182 ozaki struct rtentry *rt, *retrt = NULL;
2274 1.182 ozaki
2275 1.183 ozaki RT_RLOCK();
2276 1.182 ozaki s = splsoftnet();
2277 1.182 ozaki rt = rtbl_search_matched_entry(family, f, v);
2278 1.182 ozaki if (rt == NULL) {
2279 1.182 ozaki splx(s);
2280 1.183 ozaki RT_UNLOCK();
2281 1.182 ozaki return;
2282 1.182 ozaki }
2283 1.182 ozaki rt->rt_refcnt++;
2284 1.182 ozaki splx(s);
2285 1.183 ozaki RT_UNLOCK();
2286 1.182 ozaki
2287 1.182 ozaki error = rtrequest(RTM_DELETE, rt_getkey(rt), rt->rt_gateway,
2288 1.182 ozaki rt_mask(rt), rt->rt_flags, &retrt);
2289 1.182 ozaki if (error == 0) {
2290 1.182 ozaki KASSERT(retrt == rt);
2291 1.182 ozaki KASSERT((retrt->rt_flags & RTF_UP) == 0);
2292 1.182 ozaki retrt->rt_ifp = NULL;
2293 1.183 ozaki rt_unref(rt);
2294 1.183 ozaki rt_free(retrt);
2295 1.182 ozaki } else if (error == ESRCH) {
2296 1.182 ozaki /* Someone deleted the entry already. */
2297 1.183 ozaki rt_unref(rt);
2298 1.182 ozaki } else {
2299 1.182 ozaki log(LOG_ERR, "%s: unable to delete rtentry @ %p, "
2300 1.182 ozaki "error = %d\n", rt->rt_ifp->if_xname, rt, error);
2301 1.182 ozaki /* XXX how to treat this case? */
2302 1.182 ozaki }
2303 1.182 ozaki }
2304 1.182 ozaki }
2305 1.182 ozaki
2306 1.183 ozaki int
2307 1.183 ozaki rt_walktree(sa_family_t family, int (*f)(struct rtentry *, void *), void *v)
2308 1.183 ozaki {
2309 1.183 ozaki int error;
2310 1.183 ozaki
2311 1.183 ozaki RT_RLOCK();
2312 1.183 ozaki error = rtbl_walktree(family, f, v);
2313 1.183 ozaki RT_UNLOCK();
2314 1.183 ozaki
2315 1.183 ozaki return error;
2316 1.183 ozaki }
2317 1.183 ozaki
2318 1.162 ozaki #ifdef DDB
2319 1.162 ozaki
2320 1.162 ozaki #include <machine/db_machdep.h>
2321 1.162 ozaki #include <ddb/db_interface.h>
2322 1.162 ozaki #include <ddb/db_output.h>
2323 1.162 ozaki
2324 1.162 ozaki #define rt_expire rt_rmx.rmx_expire
2325 1.162 ozaki
2326 1.162 ozaki static void
2327 1.162 ozaki db_print_sa(const struct sockaddr *sa)
2328 1.162 ozaki {
2329 1.162 ozaki int len;
2330 1.162 ozaki const u_char *p;
2331 1.162 ozaki
2332 1.162 ozaki if (sa == NULL) {
2333 1.162 ozaki db_printf("[NULL]");
2334 1.162 ozaki return;
2335 1.162 ozaki }
2336 1.162 ozaki
2337 1.162 ozaki p = (const u_char *)sa;
2338 1.162 ozaki len = sa->sa_len;
2339 1.162 ozaki db_printf("[");
2340 1.162 ozaki while (len > 0) {
2341 1.162 ozaki db_printf("%d", *p);
2342 1.162 ozaki p++; len--;
2343 1.162 ozaki if (len) db_printf(",");
2344 1.162 ozaki }
2345 1.162 ozaki db_printf("]\n");
2346 1.162 ozaki }
2347 1.162 ozaki
2348 1.162 ozaki static void
2349 1.162 ozaki db_print_ifa(struct ifaddr *ifa)
2350 1.162 ozaki {
2351 1.162 ozaki if (ifa == NULL)
2352 1.162 ozaki return;
2353 1.162 ozaki db_printf(" ifa_addr=");
2354 1.162 ozaki db_print_sa(ifa->ifa_addr);
2355 1.162 ozaki db_printf(" ifa_dsta=");
2356 1.162 ozaki db_print_sa(ifa->ifa_dstaddr);
2357 1.162 ozaki db_printf(" ifa_mask=");
2358 1.162 ozaki db_print_sa(ifa->ifa_netmask);
2359 1.162 ozaki db_printf(" flags=0x%x,refcnt=%d,metric=%d\n",
2360 1.162 ozaki ifa->ifa_flags,
2361 1.162 ozaki ifa->ifa_refcnt,
2362 1.162 ozaki ifa->ifa_metric);
2363 1.162 ozaki }
2364 1.162 ozaki
2365 1.162 ozaki /*
2366 1.162 ozaki * Function to pass to rt_walktree().
2367 1.162 ozaki * Return non-zero error to abort walk.
2368 1.162 ozaki */
2369 1.162 ozaki static int
2370 1.162 ozaki db_show_rtentry(struct rtentry *rt, void *w)
2371 1.162 ozaki {
2372 1.162 ozaki db_printf("rtentry=%p", rt);
2373 1.162 ozaki
2374 1.162 ozaki db_printf(" flags=0x%x refcnt=%d use=%"PRId64" expire=%"PRId64"\n",
2375 1.162 ozaki rt->rt_flags, rt->rt_refcnt,
2376 1.162 ozaki rt->rt_use, (uint64_t)rt->rt_expire);
2377 1.162 ozaki
2378 1.162 ozaki db_printf(" key="); db_print_sa(rt_getkey(rt));
2379 1.162 ozaki db_printf(" mask="); db_print_sa(rt_mask(rt));
2380 1.162 ozaki db_printf(" gw="); db_print_sa(rt->rt_gateway);
2381 1.162 ozaki
2382 1.162 ozaki db_printf(" ifp=%p ", rt->rt_ifp);
2383 1.162 ozaki if (rt->rt_ifp)
2384 1.162 ozaki db_printf("(%s)", rt->rt_ifp->if_xname);
2385 1.162 ozaki else
2386 1.162 ozaki db_printf("(NULL)");
2387 1.162 ozaki
2388 1.162 ozaki db_printf(" ifa=%p\n", rt->rt_ifa);
2389 1.162 ozaki db_print_ifa(rt->rt_ifa);
2390 1.162 ozaki
2391 1.162 ozaki db_printf(" gwroute=%p llinfo=%p\n",
2392 1.162 ozaki rt->rt_gwroute, rt->rt_llinfo);
2393 1.162 ozaki
2394 1.162 ozaki return 0;
2395 1.162 ozaki }
2396 1.162 ozaki
2397 1.162 ozaki /*
2398 1.162 ozaki * Function to print all the route trees.
2399 1.162 ozaki * Use this from ddb: "show routes"
2400 1.162 ozaki */
2401 1.162 ozaki void
2402 1.162 ozaki db_show_routes(db_expr_t addr, bool have_addr,
2403 1.162 ozaki db_expr_t count, const char *modif)
2404 1.162 ozaki {
2405 1.162 ozaki rt_walktree(AF_INET, db_show_rtentry, NULL);
2406 1.162 ozaki }
2407 1.162 ozaki #endif
2408