1/*-
2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 *
4 * Copyright (c) 2020 Alexander V. Chernikov
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
9 * 1. Redistributions of source code must retain the above copyright
10 *    notice, this list of conditions and the following disclaimer.
11 * 2. Redistributions in binary form must reproduce the above copyright
12 *    notice, this list of conditions and the following disclaimer in the
13 *    documentation and/or other materials provided with the distribution.
14 *
15 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
16 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
17 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
19 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
20 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
21 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
22 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
23 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25 * SUCH DAMAGE.
26 */
27
28#include <sys/cdefs.h>
29__FBSDID("$FreeBSD$");
30#include "opt_inet.h"
31#include "opt_route.h"
32
33#include <sys/param.h>
34#include <sys/systm.h>
35#include <sys/lock.h>
36#include <sys/rwlock.h>
37#include <sys/malloc.h>
38#include <sys/socket.h>
39#include <sys/sysctl.h>
40#include <sys/kernel.h>
41#include <sys/epoch.h>
42
43#include <net/if.h>
44#include <net/if_var.h>
45#include <net/if_dl.h>
46#include <net/route.h>
47#include <net/route/route_ctl.h>
48#include <net/route/route_var.h>
49#include <net/route/nhop_utils.h>
50#include <net/route/nhop.h>
51#include <net/route/nhop_var.h>
52#include <net/vnet.h>
53
54/*
55 * This file contains core functionality for the nexthop ("nhop") route subsystem.
56 * The business logic needed to create nexhop objects is implemented here.
57 *
58 * Nexthops in the original sense are the objects containing all the necessary
59 * information to forward the packet to the selected destination.
60 * In particular, nexthop is defined by a combination of
61 *  ifp, ifa, aifp, mtu, gw addr(if set), nh_type, nh_family, mask of rt_flags and
62 *    NHF_DEFAULT
63 *
64 * Additionally, each nexthop gets assigned its unique index (nexthop index).
65 * It serves two purposes: first one is to ease the ability of userland programs to
66 *  reference nexthops by their index. The second one allows lookup algorithms to
67 *  to store index instead of pointer (2 bytes vs 8) as a lookup result.
68 * All nexthops are stored in the resizable hash table.
69 *
70 * Basically, this file revolves around supporting 3 functions:
71 * 1) nhop_create_from_info / nhop_create_from_nhop, which contains all
72 *  business logic on filling the nexthop fields based on the provided request.
73 * 2) nhop_get(), which gets a usable referenced nexthops.
74 *
75 * Conventions:
76 * 1) non-exported functions start with verb
77 * 2) exported function starts with the subsystem prefix: "nhop"
78 */
79
80static int dump_nhop_entry(struct rib_head *rh, struct nhop_object *nh, struct sysctl_req *w);
81
82static struct nhop_priv *alloc_nhop_structure(void);
83static int get_nhop(struct rib_head *rnh, struct rt_addrinfo *info,
84    struct nhop_priv **pnh_priv);
85static int finalize_nhop(struct nh_control *ctl, struct rt_addrinfo *info,
86    struct nhop_priv *nh_priv);
87static struct ifnet *get_aifp(const struct nhop_object *nh, int reference);
88static void fill_sdl_from_ifp(struct sockaddr_dl_short *sdl, const struct ifnet *ifp);
89
90static void destroy_nhop_epoch(epoch_context_t ctx);
91static void destroy_nhop(struct nhop_priv *nh_priv);
92
93static void print_nhop(const char *prefix, const struct nhop_object *nh);
94
95_Static_assert(__offsetof(struct nhop_object, nh_ifp) == 32,
96    "nhop_object: wrong nh_ifp offset");
97_Static_assert(sizeof(struct nhop_object) <= 128,
98    "nhop_object: size exceeds 128 bytes");
99
100static uma_zone_t nhops_zone;	/* Global zone for each and every nexthop */
101
102#define	NHOP_OBJECT_ALIGNED_SIZE	roundup2(sizeof(struct nhop_object), \
103							2 * CACHE_LINE_SIZE)
104#define	NHOP_PRIV_ALIGNED_SIZE		roundup2(sizeof(struct nhop_priv), \
105							2 * CACHE_LINE_SIZE)
106void
107nhops_init(void)
108{
109
110	nhops_zone = uma_zcreate("routing nhops",
111	    NHOP_OBJECT_ALIGNED_SIZE + NHOP_PRIV_ALIGNED_SIZE,
112	    NULL, NULL, NULL, NULL, UMA_ALIGN_PTR, 0);
113}
114
115/*
116 * Fetches the interface of source address used by the route.
117 * In all cases except interface-address-route it would be the
118 * same as the transmit interfaces.
119 * However, for the interface address this function will return
120 * this interface ifp instead of loopback. This is needed to support
121 * link-local IPv6 loopback communications.
122 *
123 * If @reference is non-zero, found ifp is referenced.
124 *
125 * Returns found ifp.
126 */
127static struct ifnet *
128get_aifp(const struct nhop_object *nh, int reference)
129{
130	struct ifnet *aifp = NULL;
131
132	/*
133	 * Adjust the "outgoing" interface.  If we're going to loop
134	 * the packet back to ourselves, the ifp would be the loopback
135	 * interface. However, we'd rather know the interface associated
136	 * to the destination address (which should probably be one of
137	 * our own addresses).
138	 */
139	if ((nh->nh_ifp->if_flags & IFF_LOOPBACK) &&
140			nh->gw_sa.sa_family == AF_LINK) {
141		if (reference)
142			aifp = ifnet_byindex_ref(nh->gwl_sa.sdl_index);
143		else
144			aifp = ifnet_byindex(nh->gwl_sa.sdl_index);
145		if (aifp == NULL) {
146			DPRINTF("unable to get aifp for %s index %d",
147				if_name(nh->nh_ifp), nh->gwl_sa.sdl_index);
148		}
149	}
150
151	if (aifp == NULL) {
152		aifp = nh->nh_ifp;
153		if (reference)
154			if_ref(aifp);
155	}
156
157	return (aifp);
158}
159
160int
161cmp_priv(const struct nhop_priv *_one, const struct nhop_priv *_two)
162{
163
164	if (memcmp(_one->nh, _two->nh, NHOP_END_CMP) != 0)
165		return (0);
166
167	if (memcmp(_one, _two, NH_PRIV_END_CMP) != 0)
168		return (0);
169
170	return (1);
171}
172
173/*
174 * Conditionally sets @nh mtu data based on the @info data.
175 */
176static void
177set_nhop_mtu_from_info(struct nhop_object *nh, const struct rt_addrinfo *info)
178{
179
180	if (info->rti_mflags & RTV_MTU) {
181		if (info->rti_rmx->rmx_mtu != 0) {
182			/*
183			 * MTU was explicitly provided by user.
184			 * Keep it.
185			 */
186
187			nh->nh_priv->rt_flags |= RTF_FIXEDMTU;
188		} else {
189			/*
190			 * User explicitly sets MTU to 0.
191			 * Assume rollback to default.
192			 */
193			nh->nh_priv->rt_flags &= ~RTF_FIXEDMTU;
194		}
195		nh->nh_mtu = info->rti_rmx->rmx_mtu;
196	}
197}
198
199/*
200 * Fills in shorted link-level sockadd version suitable to be stored inside the
201 *  nexthop gateway buffer.
202 */
203static void
204fill_sdl_from_ifp(struct sockaddr_dl_short *sdl, const struct ifnet *ifp)
205{
206
207	bzero(sdl, sizeof(struct sockaddr_dl_short));
208	sdl->sdl_family = AF_LINK;
209	sdl->sdl_len = sizeof(struct sockaddr_dl_short);
210	sdl->sdl_index = ifp->if_index;
211	sdl->sdl_type = ifp->if_type;
212}
213
214static int
215set_nhop_gw_from_info(struct nhop_object *nh, struct rt_addrinfo *info)
216{
217	struct sockaddr *gw;
218
219	gw = info->rti_info[RTAX_GATEWAY];
220	KASSERT(gw != NULL, ("gw is NULL"));
221
222	if ((gw->sa_family == AF_LINK) && !(info->rti_flags & RTF_GATEWAY)) {
223
224		/*
225		 * Interface route with interface specified by the interface
226		 * index in sockadd_dl structure. It is used in the IPv6 loopback
227		 * output code, where we need to preserve the original interface
228		 * to maintain proper scoping.
229		 * Despite the fact that nexthop code stores original interface
230		 * in the separate field (nh_aifp, see below), write AF_LINK
231		 * compatible sa with shorter total length.
232		 */
233		struct sockaddr_dl *sdl = (struct sockaddr_dl *)gw;
234		struct ifnet *ifp = ifnet_byindex(sdl->sdl_index);
235		if (ifp == NULL) {
236			DPRINTF("invalid ifindex %d", sdl->sdl_index);
237			return (EINVAL);
238		}
239		fill_sdl_from_ifp(&nh->gwl_sa, ifp);
240	} else {
241
242		/*
243		 * Multiple options here:
244		 *
245		 * 1) RTF_GATEWAY with IPv4/IPv6 gateway data
246		 * 2) Interface route with IPv4/IPv6 address of the
247		 *   matching interface. Some routing daemons do that
248		 *   instead of specifying ifindex in AF_LINK.
249		 *
250		 * In both cases, save the original nexthop to make the callers
251		 *   happy.
252		 */
253		if (gw->sa_len > sizeof(struct sockaddr_in6)) {
254			DPRINTF("nhop SA size too big: AF %d len %u",
255			    gw->sa_family, gw->sa_len);
256			return (ENOMEM);
257		}
258		memcpy(&nh->gw_sa, gw, gw->sa_len);
259	}
260	return (0);
261}
262
263static uint16_t
264convert_rt_to_nh_flags(int rt_flags)
265{
266	uint16_t res;
267
268	res = (rt_flags & RTF_REJECT) ? NHF_REJECT : 0;
269	res |= (rt_flags & RTF_HOST) ? NHF_HOST : 0;
270	res |= (rt_flags & RTF_BLACKHOLE) ? NHF_BLACKHOLE : 0;
271	res |= (rt_flags & (RTF_DYNAMIC|RTF_MODIFIED)) ? NHF_REDIRECT : 0;
272	res |= (rt_flags & RTF_BROADCAST) ? NHF_BROADCAST : 0;
273	res |= (rt_flags & RTF_GATEWAY) ? NHF_GATEWAY : 0;
274
275	return (res);
276}
277
278static int
279fill_nhop_from_info(struct nhop_priv *nh_priv, struct rt_addrinfo *info)
280{
281	int error, rt_flags;
282	struct nhop_object *nh;
283
284	nh = nh_priv->nh;
285
286	rt_flags = info->rti_flags & NHOP_RT_FLAG_MASK;
287
288	nh->nh_priv->rt_flags = rt_flags;
289	nh_priv->nh_family = info->rti_info[RTAX_DST]->sa_family;
290	nh_priv->nh_type = 0; // hook responsibility to set nhop type
291
292	nh->nh_flags = convert_rt_to_nh_flags(rt_flags);
293	set_nhop_mtu_from_info(nh, info);
294	if ((error = set_nhop_gw_from_info(nh, info)) != 0)
295		return (error);
296
297	nh->nh_ifp = info->rti_ifa->ifa_ifp;
298	nh->nh_ifa = info->rti_ifa;
299	/* depends on the gateway */
300	nh->nh_aifp = get_aifp(nh, 0);
301
302	/*
303	 * Note some of the remaining data is set by the
304	 * per-address-family pre-add hook.
305	 */
306
307	return (0);
308}
309
310/*
311 * Creates a new nexthop based on the information in @info.
312 *
313 * Returns:
314 * 0 on success, filling @nh_ret with the desired nexthop object ptr
315 * errno otherwise
316 */
317int
318nhop_create_from_info(struct rib_head *rnh, struct rt_addrinfo *info,
319    struct nhop_object **nh_ret)
320{
321	struct nhop_priv *nh_priv;
322	int error;
323
324	NET_EPOCH_ASSERT();
325
326	if (info->rti_info[RTAX_GATEWAY] == NULL)
327		return (EINVAL);
328
329	nh_priv = alloc_nhop_structure();
330
331	error = fill_nhop_from_info(nh_priv, info);
332	if (error != 0) {
333		uma_zfree(nhops_zone, nh_priv->nh);
334		return (error);
335	}
336
337	error = get_nhop(rnh, info, &nh_priv);
338	if (error == 0)
339		*nh_ret = nh_priv->nh;
340
341	return (error);
342}
343
344/*
345 * Gets linked nhop using the provided @pnh_priv nexhop data.
346 * If linked nhop is found, returns it, freeing the provided one.
347 * If there is no such nexthop, attaches the remaining data to the
348 *  provided nexthop and links it.
349 *
350 * Returns 0 on success, storing referenced nexthop in @pnh_priv.
351 * Otherwise, errno is returned.
352 */
353static int
354get_nhop(struct rib_head *rnh, struct rt_addrinfo *info,
355    struct nhop_priv **pnh_priv)
356{
357	const struct sockaddr *dst, *gateway, *netmask;
358	struct nhop_priv *nh_priv, *tmp_priv;
359	int error;
360
361	nh_priv = *pnh_priv;
362
363	/* Give the protocols chance to augment the request data */
364	dst = info->rti_info[RTAX_DST];
365	netmask = info->rti_info[RTAX_NETMASK];
366	gateway = info->rti_info[RTAX_GATEWAY];
367
368	error = rnh->rnh_preadd(rnh->rib_fibnum, dst, netmask, nh_priv->nh);
369	if (error != 0) {
370		uma_zfree(nhops_zone, nh_priv->nh);
371		return (error);
372	}
373
374	tmp_priv = find_nhop(rnh->nh_control, nh_priv);
375	if (tmp_priv != NULL) {
376		uma_zfree(nhops_zone, nh_priv->nh);
377		*pnh_priv = tmp_priv;
378		return (0);
379	}
380
381	/*
382	 * Existing nexthop not found, need to create new one.
383	 * Note: multiple simultaneous get_nhop() requests
384	 *  can result in multiple equal nexhops existing in the
385	 *  nexthop table. This is not a not a problem until the
386	 *  relative number of such nexthops is significant, which
387	 *  is extremely unlikely.
388	 */
389
390	error = finalize_nhop(rnh->nh_control, info, nh_priv);
391	if (error != 0)
392		return (error);
393
394	return (0);
395}
396
397/*
398 * Update @nh with data supplied in @info.
399 * This is a helper function to support route changes.
400 *
401 * It limits the changes that can be done to the route to the following:
402 * 1) all combination of gateway changes (gw, interface, blackhole/reject)
403 * 2) route flags (FLAG[123],STATIC,BLACKHOLE,REJECT)
404 * 3) route MTU
405 *
406 * Returns:
407 * 0 on success
408 */
409static int
410alter_nhop_from_info(struct nhop_object *nh, struct rt_addrinfo *info)
411{
412	struct sockaddr *info_gw;
413	int error;
414
415	/* Update MTU if set in the request*/
416	set_nhop_mtu_from_info(nh, info);
417
418	/* XXX: allow only one of BLACKHOLE,REJECT,GATEWAY */
419
420	/* Allow some flags (FLAG1,STATIC,BLACKHOLE,REJECT) to be toggled on change. */
421	nh->nh_priv->rt_flags &= ~RTF_FMASK;
422	nh->nh_priv->rt_flags |= info->rti_flags & RTF_FMASK;
423
424	/* Consider gateway change */
425	info_gw = info->rti_info[RTAX_GATEWAY];
426	if (info_gw != NULL) {
427		error = set_nhop_gw_from_info(nh, info);
428		if (error != 0)
429			return (error);
430		/* Update RTF_GATEWAY flag status */
431		nh->nh_priv->rt_flags &= ~RTF_GATEWAY;
432		nh->nh_priv->rt_flags |= (RTF_GATEWAY & info->rti_flags);
433	}
434	/* Update datapath flags */
435	nh->nh_flags = convert_rt_to_nh_flags(nh->nh_priv->rt_flags);
436
437	if (info->rti_ifa != NULL)
438		nh->nh_ifa = info->rti_ifa;
439	if (info->rti_ifp != NULL)
440		nh->nh_ifp = info->rti_ifp;
441	nh->nh_aifp = get_aifp(nh, 0);
442
443	return (0);
444}
445
446/*
447 * Creates new nexthop based on @nh_orig and augmentation data from @info.
448 * Helper function used in the route changes, please see
449 *   alter_nhop_from_info() comments for more details.
450 *
451 * Returns:
452 * 0 on success, filling @nh_ret with the desired nexthop object
453 * errno otherwise
454 */
455int
456nhop_create_from_nhop(struct rib_head *rnh, const struct nhop_object *nh_orig,
457    struct rt_addrinfo *info, struct nhop_object **pnh)
458{
459	struct nhop_priv *nh_priv;
460	struct nhop_object *nh;
461	int error;
462
463	NET_EPOCH_ASSERT();
464
465	nh_priv = alloc_nhop_structure();
466	nh = nh_priv->nh;
467
468	/* Start with copying data from original nexthop */
469	nh_priv->nh_family = nh_orig->nh_priv->nh_family;
470	nh_priv->rt_flags = nh_orig->nh_priv->rt_flags;
471	nh_priv->nh_type = nh_orig->nh_priv->nh_type;
472
473	nh->nh_ifp = nh_orig->nh_ifp;
474	nh->nh_ifa = nh_orig->nh_ifa;
475	nh->nh_aifp = nh_orig->nh_aifp;
476	nh->nh_mtu = nh_orig->nh_mtu;
477	nh->nh_flags = nh_orig->nh_flags;
478	memcpy(&nh->gw_sa, &nh_orig->gw_sa, nh_orig->gw_sa.sa_len);
479
480	error = alter_nhop_from_info(nh, info);
481	if (error != 0) {
482		uma_zfree(nhops_zone, nh_priv->nh);
483		return (error);
484	}
485
486	error = get_nhop(rnh, info, &nh_priv);
487	if (error == 0)
488		*pnh = nh_priv->nh;
489
490	return (error);
491}
492
493/*
494 * Allocates memory for public/private nexthop structures.
495 *
496 * Returns pointer to nhop_priv or NULL.
497 */
498static struct nhop_priv *
499alloc_nhop_structure()
500{
501	struct nhop_object *nh;
502	struct nhop_priv *nh_priv;
503
504	nh = (struct nhop_object *)uma_zalloc(nhops_zone, M_NOWAIT | M_ZERO);
505	if (nh == NULL)
506		return (NULL);
507	nh_priv = (struct nhop_priv *)((char *)nh + NHOP_OBJECT_ALIGNED_SIZE);
508
509	nh->nh_priv = nh_priv;
510	nh_priv->nh = nh;
511
512	return (nh_priv);
513}
514
515/*
516 * Alocates/references the remaining bits of nexthop data and links
517 *  it to the hash table.
518 * Returns 0 if successful,
519 *  errno otherwise. @nh_priv is freed in case of error.
520 */
521static int
522finalize_nhop(struct nh_control *ctl, struct rt_addrinfo *info,
523    struct nhop_priv *nh_priv)
524{
525	struct nhop_object *nh;
526
527	nh = nh_priv->nh;
528
529	/* Allocate per-cpu packet counter */
530	nh->nh_pksent = counter_u64_alloc(M_NOWAIT);
531	if (nh->nh_pksent == NULL) {
532		uma_zfree(nhops_zone, nh);
533		RTSTAT_INC(rts_nh_alloc_failure);
534		DPRINTF("nh_alloc_finalize failed");
535		return (ENOMEM);
536	}
537
538	/* Save vnet to ease destruction */
539	nh_priv->nh_vnet = curvnet;
540
541	/* Reference external objects and calculate (referenced) ifa */
542	if_ref(nh->nh_ifp);
543	ifa_ref(nh->nh_ifa);
544	nh->nh_aifp = get_aifp(nh, 1);
545	DPRINTF("AIFP: %p nh_ifp %p", nh->nh_aifp, nh->nh_ifp);
546
547	refcount_init(&nh_priv->nh_refcnt, 1);
548
549	/* Please see nhop_free() comments on the initial value */
550	refcount_init(&nh_priv->nh_linked, 2);
551
552	print_nhop("FINALIZE", nh);
553
554	if (link_nhop(ctl, nh_priv) == 0) {
555		/*
556		 * Adding nexthop to the datastructures
557		 *  failed. Call destructor w/o waiting for
558		 *  the epoch end, as nexthop is not used
559		 *  and return.
560		 */
561		DPRINTF("link_nhop failed!");
562		destroy_nhop(nh_priv);
563
564		return (ENOBUFS);
565	}
566
567	return (0);
568}
569
570static void
571print_nhop_sa(char *buf, size_t buflen, const struct sockaddr *sa)
572{
573
574	if (sa->sa_family == AF_INET) {
575		const struct sockaddr_in *sin4;
576		sin4 = (const struct sockaddr_in *)sa;
577		inet_ntop(AF_INET, &sin4->sin_addr, buf, buflen);
578	} else if (sa->sa_family == AF_INET6) {
579		const struct sockaddr_in6 *sin6;
580		sin6 = (const struct sockaddr_in6 *)sa;
581		inet_ntop(AF_INET6, &sin6->sin6_addr, buf, buflen);
582	} else if (sa->sa_family == AF_LINK) {
583		const struct sockaddr_dl *sdl;
584		sdl = (const struct sockaddr_dl *)sa;
585		snprintf(buf, buflen, "if#%d", sdl->sdl_index);
586	} else
587		snprintf(buf, buflen, "af:%d", sa->sa_family);
588}
589
590static void
591print_nhop(const char *prefix, const struct nhop_object *nh)
592{
593	char src_buf[INET6_ADDRSTRLEN], addr_buf[INET6_ADDRSTRLEN];
594
595	print_nhop_sa(src_buf, sizeof(src_buf), nh->nh_ifa->ifa_addr);
596	print_nhop_sa(addr_buf, sizeof(addr_buf), &nh->gw_sa);
597
598	DPRINTF("%s nhop priv %p: AF %d ifp %p %s addr %s src %p %s aifp %p %s mtu %d nh_flags %X",
599	    prefix, nh->nh_priv, nh->nh_priv->nh_family, nh->nh_ifp,
600	    if_name(nh->nh_ifp), addr_buf, nh->nh_ifa, src_buf, nh->nh_aifp,
601	    if_name(nh->nh_aifp), nh->nh_mtu, nh->nh_flags);
602}
603
604static void
605destroy_nhop(struct nhop_priv *nh_priv)
606{
607	struct nhop_object *nh;
608
609	nh = nh_priv->nh;
610
611	print_nhop("DEL", nh);
612
613	if_rele(nh->nh_ifp);
614	if_rele(nh->nh_aifp);
615	ifa_free(nh->nh_ifa);
616	counter_u64_free(nh->nh_pksent);
617
618	uma_zfree(nhops_zone, nh);
619}
620
621/*
622 * Epoch callback indicating nhop is safe to destroy
623 */
624static void
625destroy_nhop_epoch(epoch_context_t ctx)
626{
627	struct nhop_priv *nh_priv;
628
629	nh_priv = __containerof(ctx, struct nhop_priv, nh_epoch_ctx);
630
631	destroy_nhop(nh_priv);
632}
633
634void
635nhop_ref_object(struct nhop_object *nh)
636{
637	u_int old;
638
639	old = refcount_acquire(&nh->nh_priv->nh_refcnt);
640	KASSERT(old > 0, ("%s: nhop object %p has 0 refs", __func__, nh));
641}
642
643int
644nhop_try_ref_object(struct nhop_object *nh)
645{
646
647	return (refcount_acquire_if_not_zero(&nh->nh_priv->nh_refcnt));
648}
649
650void
651nhop_free(struct nhop_object *nh)
652{
653	struct nh_control *ctl;
654	struct nhop_priv *nh_priv = nh->nh_priv;
655	struct epoch_tracker et;
656
657	if (!refcount_release(&nh_priv->nh_refcnt))
658		return;
659
660	/*
661	 * There are only 2 places, where nh_linked can be decreased:
662	 *  rib destroy (nhops_destroy_rib) and this function.
663	 * nh_link can never be increased.
664	 *
665	 * Hence, use initial value of 2 to make use of
666	 *  refcount_release_if_not_last().
667	 *
668	 * There can be two scenarious when calling this function:
669	 *
670	 * 1) nh_linked value is 2. This means that either
671	 *  nhops_destroy_rib() has not been called OR it is running,
672	 *  but we are guaranteed that nh_control won't be freed in
673	 *  this epoch. Hence, nexthop can be safely unlinked.
674	 *
675	 * 2) nh_linked value is 1. In that case, nhops_destroy_rib()
676	 *  has been called and nhop unlink can be skipped.
677	 */
678
679	NET_EPOCH_ENTER(et);
680	if (refcount_release_if_not_last(&nh_priv->nh_linked)) {
681		ctl = nh_priv->nh_control;
682		if (unlink_nhop(ctl, nh_priv) == NULL) {
683			/* Do not try to reclaim */
684			DPRINTF("Failed to unlink nexhop %p", nh_priv);
685			NET_EPOCH_EXIT(et);
686			return;
687		}
688	}
689	NET_EPOCH_EXIT(et);
690
691	epoch_call(net_epoch_preempt, destroy_nhop_epoch,
692	    &nh_priv->nh_epoch_ctx);
693}
694
695void
696nhop_ref_any(struct nhop_object *nh)
697{
698#ifdef ROUTE_MPATH
699	if (!NH_IS_NHGRP(nh))
700		nhop_ref_object(nh);
701	else
702		nhgrp_ref_object((struct nhgrp_object *)nh);
703#else
704	nhop_ref_object(nh);
705#endif
706}
707
708void
709nhop_free_any(struct nhop_object *nh)
710{
711
712#ifdef ROUTE_MPATH
713	if (!NH_IS_NHGRP(nh))
714		nhop_free(nh);
715	else
716		nhgrp_free((struct nhgrp_object *)nh);
717#else
718	nhop_free(nh);
719#endif
720}
721
722/* Helper functions */
723
724uint32_t
725nhop_get_idx(const struct nhop_object *nh)
726{
727
728	return (nh->nh_priv->nh_idx);
729}
730
731enum nhop_type
732nhop_get_type(const struct nhop_object *nh)
733{
734
735	return (nh->nh_priv->nh_type);
736}
737
738void
739nhop_set_type(struct nhop_object *nh, enum nhop_type nh_type)
740{
741
742	nh->nh_priv->nh_type = nh_type;
743}
744
745int
746nhop_get_rtflags(const struct nhop_object *nh)
747{
748
749	return (nh->nh_priv->rt_flags);
750}
751
752void
753nhop_set_rtflags(struct nhop_object *nh, int rt_flags)
754{
755
756	nh->nh_priv->rt_flags = rt_flags;
757}
758
759struct vnet *
760nhop_get_vnet(const struct nhop_object *nh)
761{
762
763	return (nh->nh_priv->nh_vnet);
764}
765
766struct nhop_object *
767nhop_select_func(struct nhop_object *nh, uint32_t flowid)
768{
769
770	return (nhop_select(nh, flowid));
771}
772
773void
774nhops_update_ifmtu(struct rib_head *rh, struct ifnet *ifp, uint32_t mtu)
775{
776	struct nh_control *ctl;
777	struct nhop_priv *nh_priv;
778	struct nhop_object *nh;
779
780	ctl = rh->nh_control;
781
782	NHOPS_WLOCK(ctl);
783	CHT_SLIST_FOREACH(&ctl->nh_head, nhops, nh_priv) {
784		nh = nh_priv->nh;
785		if (nh->nh_ifp == ifp) {
786			if ((nh_priv->rt_flags & RTF_FIXEDMTU) == 0 ||
787			    nh->nh_mtu > mtu) {
788				/* Update MTU directly */
789				nh->nh_mtu = mtu;
790			}
791		}
792	} CHT_SLIST_FOREACH_END;
793	NHOPS_WUNLOCK(ctl);
794
795}
796
797/*
798 * Dumps a single entry to sysctl buffer.
799 *
800 * Layout:
801 *  rt_msghdr - generic RTM header to allow users to skip non-understood messages
802 *  nhop_external - nexhop description structure (with length)
803 *  nhop_addrs - structure encapsulating GW/SRC sockaddrs
804 */
805static int
806dump_nhop_entry(struct rib_head *rh, struct nhop_object *nh, struct sysctl_req *w)
807{
808	struct {
809		struct rt_msghdr	rtm;
810		struct nhop_external	nhe;
811		struct nhop_addrs	na;
812	} arpc;
813	struct nhop_external *pnhe;
814	struct sockaddr *gw_sa, *src_sa;
815	struct sockaddr_storage ss;
816	size_t addrs_len;
817	int error;
818
819	//DPRINTF("Dumping: head %p nh %p flags %X req %p\n", rh, nh, nh->nh_flags, w);
820
821	memset(&arpc, 0, sizeof(arpc));
822
823	arpc.rtm.rtm_msglen = sizeof(arpc);
824	arpc.rtm.rtm_version = RTM_VERSION;
825	arpc.rtm.rtm_type = RTM_GET;
826	//arpc.rtm.rtm_flags = RTF_UP;
827	arpc.rtm.rtm_flags = nh->nh_priv->rt_flags;
828
829	/* nhop_external */
830	pnhe = &arpc.nhe;
831	pnhe->nh_len = sizeof(struct nhop_external);
832	pnhe->nh_idx = nh->nh_priv->nh_idx;
833	pnhe->nh_fib = rh->rib_fibnum;
834	pnhe->ifindex = nh->nh_ifp->if_index;
835	pnhe->aifindex = nh->nh_aifp->if_index;
836	pnhe->nh_family = nh->nh_priv->nh_family;
837	pnhe->nh_type = nh->nh_priv->nh_type;
838	pnhe->nh_mtu = nh->nh_mtu;
839	pnhe->nh_flags = nh->nh_flags;
840
841	memcpy(pnhe->nh_prepend, nh->nh_prepend, sizeof(nh->nh_prepend));
842	pnhe->prepend_len = nh->nh_prepend_len;
843	pnhe->nh_refcount = nh->nh_priv->nh_refcnt;
844	pnhe->nh_pksent = counter_u64_fetch(nh->nh_pksent);
845
846	/* sockaddr container */
847	addrs_len = sizeof(struct nhop_addrs);
848	arpc.na.gw_sa_off = addrs_len;
849	gw_sa = (struct sockaddr *)&nh->gw4_sa;
850	addrs_len += gw_sa->sa_len;
851
852	src_sa = nh->nh_ifa->ifa_addr;
853	if (src_sa->sa_family == AF_LINK) {
854		/* Shorten structure */
855		memset(&ss, 0, sizeof(struct sockaddr_storage));
856		fill_sdl_from_ifp((struct sockaddr_dl_short *)&ss,
857		    nh->nh_ifa->ifa_ifp);
858		src_sa = (struct sockaddr *)&ss;
859	}
860	arpc.na.src_sa_off = addrs_len;
861	addrs_len += src_sa->sa_len;
862
863	/* Write total container length */
864	arpc.na.na_len = addrs_len;
865
866	arpc.rtm.rtm_msglen += arpc.na.na_len - sizeof(struct nhop_addrs);
867
868	error = SYSCTL_OUT(w, &arpc, sizeof(arpc));
869	if (error == 0)
870		error = SYSCTL_OUT(w, gw_sa, gw_sa->sa_len);
871	if (error == 0)
872		error = SYSCTL_OUT(w, src_sa, src_sa->sa_len);
873
874	return (error);
875}
876
877uint32_t
878nhops_get_count(struct rib_head *rh)
879{
880	struct nh_control *ctl;
881	uint32_t count;
882
883	ctl = rh->nh_control;
884
885	NHOPS_RLOCK(ctl);
886	count = ctl->nh_head.items_count;
887	NHOPS_RUNLOCK(ctl);
888
889	return (count);
890}
891
892int
893nhops_dump_sysctl(struct rib_head *rh, struct sysctl_req *w)
894{
895	struct nh_control *ctl;
896	struct nhop_priv *nh_priv;
897	int error;
898
899	ctl = rh->nh_control;
900
901	NHOPS_RLOCK(ctl);
902	DPRINTF("NHDUMP: count=%u", ctl->nh_head.items_count);
903	CHT_SLIST_FOREACH(&ctl->nh_head, nhops, nh_priv) {
904		error = dump_nhop_entry(rh, nh_priv->nh, w);
905		if (error != 0) {
906			NHOPS_RUNLOCK(ctl);
907			return (error);
908		}
909	} CHT_SLIST_FOREACH_END;
910	NHOPS_RUNLOCK(ctl);
911
912	return (0);
913}
914