2 * Copyright (c) 2010-2013 Apple Inc. All rights reserved.
4 * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
6 * This file contains Original Code and/or Modifications of Original Code
7 * as defined in and that are subject to the Apple Public Source License
8 * Version 2.0 (the 'License'). You may not use this file except in
9 * compliance with the License. The rights granted to you under the License
10 * may not be used to create, or enable the creation or redistribution of,
11 * unlawful or unlicensed copies of an Apple operating system, or to
12 * circumvent, violate, or enable the circumvention or violation of, any
13 * terms of an Apple operating system software license agreement.
15 * Please obtain a copy of the License at
16 * http://www.opensource.apple.com/apsl/ and read it before using this file.
18 * The Original Code and all software distributed under the License are
19 * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
20 * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
21 * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
22 * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
23 * Please see the License for the specific language governing rights and
24 * limitations under the License.
26 * @APPLE_OSREFERENCE_LICENSE_HEADER_END@
29 * Copyright (c) 2007-2009 Bruce Simpson.
30 * Copyright (c) 2005 Robert N. M. Watson.
31 * All rights reserved.
33 * Redistribution and use in source and binary forms, with or without
34 * modification, are permitted provided that the following conditions
36 * 1. Redistributions of source code must retain the above copyright
37 * notice, this list of conditions and the following disclaimer.
38 * 2. Redistributions in binary form must reproduce the above copyright
39 * notice, this list of conditions and the following disclaimer in the
40 * documentation and/or other materials provided with the distribution.
41 * 3. The name of the author may not be used to endorse or promote
42 * products derived from this software without specific prior written
45 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
46 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
47 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
48 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
49 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
50 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
51 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
52 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
53 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
54 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
59 * IPv4 multicast socket, group, and socket option processing module.
62 #include <sys/cdefs.h>
64 #include <sys/param.h>
65 #include <sys/systm.h>
66 #include <sys/kernel.h>
67 #include <sys/malloc.h>
69 #include <sys/protosw.h>
70 #include <sys/socket.h>
71 #include <sys/socketvar.h>
72 #include <sys/protosw.h>
73 #include <sys/sysctl.h>
75 #include <sys/mcache.h>
77 #include <kern/zalloc.h>
79 #include <pexpert/pexpert.h>
82 #include <net/if_dl.h>
83 #include <net/route.h>
85 #include <netinet/in.h>
86 #include <netinet/in_systm.h>
87 #include <netinet/in_pcb.h>
88 #include <netinet/in_var.h>
89 #include <netinet/ip_var.h>
90 #include <netinet/igmp_var.h>
92 #ifndef __SOCKUNION_DECLARED
94 struct sockaddr_storage ss
;
96 struct sockaddr_dl sdl
;
97 struct sockaddr_in sin
;
99 typedef union sockunion sockunion_t
;
100 #define __SOCKUNION_DECLARED
101 #endif /* __SOCKUNION_DECLARED */
104 * Functions with non-static linkage defined in this file should be
105 * declared in in_var.h:
116 * XXX: Both carp and pf need to use the legacy (*,G) KPIs in_addmulti()
119 static void imf_commit(struct in_mfilter
*);
120 static int imf_get_source(struct in_mfilter
*imf
,
121 const struct sockaddr_in
*psin
,
122 struct in_msource
**);
123 static struct in_msource
*
124 imf_graft(struct in_mfilter
*, const uint8_t,
125 const struct sockaddr_in
*);
126 static int imf_prune(struct in_mfilter
*, const struct sockaddr_in
*);
127 static void imf_rollback(struct in_mfilter
*);
128 static void imf_reap(struct in_mfilter
*);
129 static int imo_grow(struct ip_moptions
*, size_t);
130 static size_t imo_match_group(const struct ip_moptions
*,
131 const struct ifnet
*, const struct sockaddr
*);
132 static struct in_msource
*
133 imo_match_source(const struct ip_moptions
*, const size_t,
134 const struct sockaddr
*);
135 static void ims_merge(struct ip_msource
*ims
,
136 const struct in_msource
*lims
, const int rollback
);
137 static int in_getmulti(struct ifnet
*, const struct in_addr
*,
139 static int in_joingroup(struct ifnet
*, const struct in_addr
*,
140 struct in_mfilter
*, struct in_multi
**);
141 static int inm_get_source(struct in_multi
*inm
, const in_addr_t haddr
,
142 const int noalloc
, struct ip_msource
**pims
);
143 static int inm_is_ifp_detached(const struct in_multi
*);
144 static int inm_merge(struct in_multi
*, /*const*/ struct in_mfilter
*);
145 static void inm_reap(struct in_multi
*);
146 static struct ip_moptions
*
147 inp_findmoptions(struct inpcb
*);
148 static int inp_get_source_filters(struct inpcb
*, struct sockopt
*);
149 static struct ifnet
*
150 inp_lookup_mcast_ifp(const struct inpcb
*,
151 const struct sockaddr_in
*, const struct in_addr
);
152 static int inp_block_unblock_source(struct inpcb
*, struct sockopt
*);
153 static int inp_set_multicast_if(struct inpcb
*, struct sockopt
*);
154 static int inp_set_source_filters(struct inpcb
*, struct sockopt
*);
155 static int sysctl_ip_mcast_filters SYSCTL_HANDLER_ARGS
;
156 static struct ifnet
* ip_multicast_if(struct in_addr
*, unsigned int *);
157 static __inline__
int ip_msource_cmp(const struct ip_msource
*,
158 const struct ip_msource
*);
160 SYSCTL_NODE(_net_inet_ip
, OID_AUTO
, mcast
, CTLFLAG_RW
| CTLFLAG_LOCKED
, 0, "IPv4 multicast");
162 static u_long in_mcast_maxgrpsrc
= IP_MAX_GROUP_SRC_FILTER
;
163 SYSCTL_LONG(_net_inet_ip_mcast
, OID_AUTO
, maxgrpsrc
,
164 CTLFLAG_RW
| CTLFLAG_LOCKED
, &in_mcast_maxgrpsrc
, "Max source filters per group");
166 static u_long in_mcast_maxsocksrc
= IP_MAX_SOCK_SRC_FILTER
;
167 SYSCTL_LONG(_net_inet_ip_mcast
, OID_AUTO
, maxsocksrc
,
168 CTLFLAG_RW
| CTLFLAG_LOCKED
, &in_mcast_maxsocksrc
,
169 "Max source filters per socket");
171 int in_mcast_loop
= IP_DEFAULT_MULTICAST_LOOP
;
172 SYSCTL_INT(_net_inet_ip_mcast
, OID_AUTO
, loop
, CTLFLAG_RW
| CTLFLAG_LOCKED
,
173 &in_mcast_loop
, 0, "Loopback multicast datagrams by default");
175 SYSCTL_NODE(_net_inet_ip_mcast
, OID_AUTO
, filters
,
176 CTLFLAG_RD
| CTLFLAG_LOCKED
, sysctl_ip_mcast_filters
,
177 "Per-interface stack-wide source filters");
179 RB_GENERATE_PREV(ip_msource_tree
, ip_msource
, ims_link
, ip_msource_cmp
);
181 #define INM_TRACE_HIST_SIZE 32 /* size of trace history */
184 __private_extern__
unsigned int inm_trace_hist_size
= INM_TRACE_HIST_SIZE
;
186 struct in_multi_dbg
{
187 struct in_multi inm
; /* in_multi */
188 u_int16_t inm_refhold_cnt
; /* # of ref */
189 u_int16_t inm_refrele_cnt
; /* # of rele */
191 * Circular lists of inm_addref and inm_remref callers.
193 ctrace_t inm_refhold
[INM_TRACE_HIST_SIZE
];
194 ctrace_t inm_refrele
[INM_TRACE_HIST_SIZE
];
198 TAILQ_ENTRY(in_multi_dbg
) inm_trash_link
;
201 /* List of trash in_multi entries protected by inm_trash_lock */
202 static TAILQ_HEAD(, in_multi_dbg
) inm_trash_head
;
203 static decl_lck_mtx_data(, inm_trash_lock
);
205 #define INM_ZONE_MAX 64 /* maximum elements in zone */
206 #define INM_ZONE_NAME "in_multi" /* zone name */
209 static unsigned int inm_debug
= 1; /* debugging (enabled) */
211 static unsigned int inm_debug
; /* debugging (disabled) */
213 static unsigned int inm_size
; /* size of zone element */
214 static struct zone
*inm_zone
; /* zone for in_multi */
216 #define IPMS_ZONE_MAX 64 /* maximum elements in zone */
217 #define IPMS_ZONE_NAME "ip_msource" /* zone name */
219 static unsigned int ipms_size
; /* size of zone element */
220 static struct zone
*ipms_zone
; /* zone for ip_msource */
222 #define INMS_ZONE_MAX 64 /* maximum elements in zone */
223 #define INMS_ZONE_NAME "in_msource" /* zone name */
225 static unsigned int inms_size
; /* size of zone element */
226 static struct zone
*inms_zone
; /* zone for in_msource */
228 /* Lock group and attribute for in_multihead_lock lock */
229 static lck_attr_t
*in_multihead_lock_attr
;
230 static lck_grp_t
*in_multihead_lock_grp
;
231 static lck_grp_attr_t
*in_multihead_lock_grp_attr
;
233 static decl_lck_rw_data(, in_multihead_lock
);
234 struct in_multihead in_multihead
;
236 static struct in_multi
*in_multi_alloc(int);
237 static void in_multi_free(struct in_multi
*);
238 static void in_multi_attach(struct in_multi
*);
239 static void inm_trace(struct in_multi
*, int);
241 static struct ip_msource
*ipms_alloc(int);
242 static void ipms_free(struct ip_msource
*);
243 static struct in_msource
*inms_alloc(int);
244 static void inms_free(struct in_msource
*);
247 ip_msource_cmp(const struct ip_msource
*a
, const struct ip_msource
*b
)
250 if (a
->ims_haddr
< b
->ims_haddr
)
252 if (a
->ims_haddr
== b
->ims_haddr
)
258 * Inline function which wraps assertions for a valid ifp.
260 static __inline__
int
261 inm_is_ifp_detached(const struct in_multi
*inm
)
263 VERIFY(inm
->inm_ifma
!= NULL
);
264 VERIFY(inm
->inm_ifp
== inm
->inm_ifma
->ifma_ifp
);
266 return (!ifnet_is_attached(inm
->inm_ifp
, 0));
270 * Initialize an in_mfilter structure to a known state at t0, t1
271 * with an empty source filter list.
273 static __inline__
void
274 imf_init(struct in_mfilter
*imf
, const int st0
, const int st1
)
276 memset(imf
, 0, sizeof(struct in_mfilter
));
277 RB_INIT(&imf
->imf_sources
);
278 imf
->imf_st
[0] = st0
;
279 imf
->imf_st
[1] = st1
;
283 * Resize the ip_moptions vector to the next power-of-two minus 1.
286 imo_grow(struct ip_moptions
*imo
, size_t newmax
)
288 struct in_multi
**nmships
;
289 struct in_multi
**omships
;
290 struct in_mfilter
*nmfilters
;
291 struct in_mfilter
*omfilters
;
295 IMO_LOCK_ASSERT_HELD(imo
);
299 omships
= imo
->imo_membership
;
300 omfilters
= imo
->imo_mfilters
;
301 oldmax
= imo
->imo_max_memberships
;
303 newmax
= ((oldmax
+ 1) * 2) - 1;
305 if (newmax
> IP_MAX_MEMBERSHIPS
)
306 return (ETOOMANYREFS
);
308 if ((nmships
= (struct in_multi
**)_REALLOC(omships
,
309 sizeof (struct in_multi
*) * newmax
, M_IPMOPTS
,
310 M_WAITOK
| M_ZERO
)) == NULL
)
313 imo
->imo_membership
= nmships
;
315 if ((nmfilters
= (struct in_mfilter
*)_REALLOC(omfilters
,
316 sizeof (struct in_mfilter
) * newmax
, M_INMFILTER
,
317 M_WAITOK
| M_ZERO
)) == NULL
)
320 imo
->imo_mfilters
= nmfilters
;
322 /* Initialize newly allocated source filter heads. */
323 for (idx
= oldmax
; idx
< newmax
; idx
++)
324 imf_init(&nmfilters
[idx
], MCAST_UNDEFINED
, MCAST_EXCLUDE
);
326 imo
->imo_max_memberships
= newmax
;
332 * Find an IPv4 multicast group entry for this ip_moptions instance
333 * which matches the specified group, and optionally an interface.
334 * Return its index into the array, or -1 if not found.
337 imo_match_group(const struct ip_moptions
*imo
, const struct ifnet
*ifp
,
338 const struct sockaddr
*group
)
340 const struct sockaddr_in
*gsin
;
341 struct in_multi
*pinm
;
345 IMO_LOCK_ASSERT_HELD(__DECONST(struct ip_moptions
*, imo
));
347 gsin
= (struct sockaddr_in
*)(uintptr_t)(size_t)group
;
349 /* The imo_membership array may be lazy allocated. */
350 if (imo
->imo_membership
== NULL
|| imo
->imo_num_memberships
== 0)
353 nmships
= imo
->imo_num_memberships
;
354 for (idx
= 0; idx
< nmships
; idx
++) {
355 pinm
= imo
->imo_membership
[idx
];
359 if ((ifp
== NULL
|| (pinm
->inm_ifp
== ifp
)) &&
360 in_hosteq(pinm
->inm_addr
, gsin
->sin_addr
)) {
373 * Find an IPv4 multicast source entry for this imo which matches
374 * the given group index for this socket, and source address.
376 * NOTE: This does not check if the entry is in-mode, merely if
377 * it exists, which may not be the desired behaviour.
379 static struct in_msource
*
380 imo_match_source(const struct ip_moptions
*imo
, const size_t gidx
,
381 const struct sockaddr
*src
)
383 struct ip_msource find
;
384 struct in_mfilter
*imf
;
385 struct ip_msource
*ims
;
386 const sockunion_t
*psa
;
388 IMO_LOCK_ASSERT_HELD(__DECONST(struct ip_moptions
*, imo
));
390 VERIFY(src
->sa_family
== AF_INET
);
391 VERIFY(gidx
!= (size_t)-1 && gidx
< imo
->imo_num_memberships
);
393 /* The imo_mfilters array may be lazy allocated. */
394 if (imo
->imo_mfilters
== NULL
)
396 imf
= &imo
->imo_mfilters
[gidx
];
398 /* Source trees are keyed in host byte order. */
399 psa
= (sockunion_t
*)(uintptr_t)(size_t)src
;
400 find
.ims_haddr
= ntohl(psa
->sin
.sin_addr
.s_addr
);
401 ims
= RB_FIND(ip_msource_tree
, &imf
->imf_sources
, &find
);
403 return ((struct in_msource
*)ims
);
407 * Perform filtering for multicast datagrams on a socket by group and source.
409 * Returns 0 if a datagram should be allowed through, or various error codes
410 * if the socket was not a member of the group, or the source was muted, etc.
413 imo_multi_filter(const struct ip_moptions
*imo
, const struct ifnet
*ifp
,
414 const struct sockaddr
*group
, const struct sockaddr
*src
)
417 struct in_msource
*ims
;
420 IMO_LOCK_ASSERT_HELD(__DECONST(struct ip_moptions
*, imo
));
423 gidx
= imo_match_group(imo
, ifp
, group
);
424 if (gidx
== (size_t)-1)
425 return (MCAST_NOTGMEMBER
);
428 * Check if the source was included in an (S,G) join.
429 * Allow reception on exclusive memberships by default,
430 * reject reception on inclusive memberships by default.
431 * Exclude source only if an in-mode exclude filter exists.
432 * Include source only if an in-mode include filter exists.
433 * NOTE: We are comparing group state here at IGMP t1 (now)
434 * with socket-layer t0 (since last downcall).
436 mode
= imo
->imo_mfilters
[gidx
].imf_st
[1];
437 ims
= imo_match_source(imo
, gidx
, src
);
439 if ((ims
== NULL
&& mode
== MCAST_INCLUDE
) ||
440 (ims
!= NULL
&& ims
->imsl_st
[0] != mode
)) {
441 return (MCAST_NOTSMEMBER
);
448 imo_clone(struct inpcb
*from_inp
, struct inpcb
*to_inp
)
451 struct ip_moptions
*from
;
452 struct ip_moptions
*to
;
454 from
= inp_findmoptions(from_inp
);
458 to
= inp_findmoptions(to_inp
);
467 to
->imo_multicast_ifp
= from
->imo_multicast_ifp
;
468 to
->imo_multicast_vif
= from
->imo_multicast_vif
;
469 to
->imo_multicast_ttl
= from
->imo_multicast_ttl
;
470 to
->imo_multicast_loop
= from
->imo_multicast_loop
;
473 * We're cloning, so drop any existing memberships and source
474 * filters on the destination ip_moptions.
476 for (i
= 0; i
< to
->imo_num_memberships
; ++i
) {
477 struct in_mfilter
*imf
;
479 imf
= to
->imo_mfilters
? &to
->imo_mfilters
[i
] : NULL
;
483 (void) in_leavegroup(to
->imo_membership
[i
], imf
);
488 INM_REMREF(to
->imo_membership
[i
]);
489 to
->imo_membership
[i
] = NULL
;
491 to
->imo_num_memberships
= 0;
493 VERIFY(to
->imo_max_memberships
!= 0 && from
->imo_max_memberships
!= 0);
494 if (to
->imo_max_memberships
< from
->imo_max_memberships
) {
496 * Ensure source and destination ip_moptions memberships
497 * and source filters arrays are at least equal in size.
499 err
= imo_grow(to
, from
->imo_max_memberships
);
503 VERIFY(to
->imo_max_memberships
>= from
->imo_max_memberships
);
506 * Source filtering doesn't apply to OpenTransport socket,
507 * so simply hold additional reference count per membership.
509 for (i
= 0; i
< from
->imo_num_memberships
; i
++) {
510 to
->imo_membership
[i
] =
511 in_addmulti(&from
->imo_membership
[i
]->inm_addr
,
512 from
->imo_membership
[i
]->inm_ifp
);
513 if (to
->imo_membership
[i
] == NULL
)
515 to
->imo_num_memberships
++;
517 VERIFY(to
->imo_num_memberships
== from
->imo_num_memberships
);
529 * Find and return a reference to an in_multi record for (ifp, group),
530 * and bump its reference count.
531 * If one does not exist, try to allocate it, and update link-layer multicast
532 * filters on ifp to listen for group.
533 * Return 0 if successful, otherwise return an appropriate error code.
536 in_getmulti(struct ifnet
*ifp
, const struct in_addr
*group
,
537 struct in_multi
**pinm
)
539 struct sockaddr_in gsin
;
540 struct ifmultiaddr
*ifma
;
541 struct in_multi
*inm
;
544 in_multihead_lock_shared();
545 IN_LOOKUP_MULTI(group
, ifp
, inm
);
548 VERIFY(inm
->inm_reqcnt
>= 1);
550 VERIFY(inm
->inm_reqcnt
!= 0);
553 in_multihead_lock_done();
555 * We already joined this group; return the inm
556 * with a refcount held (via lookup) for caller.
560 in_multihead_lock_done();
562 bzero(&gsin
, sizeof(gsin
));
563 gsin
.sin_family
= AF_INET
;
564 gsin
.sin_len
= sizeof(struct sockaddr_in
);
565 gsin
.sin_addr
= *group
;
568 * Check if a link-layer group is already associated
569 * with this network-layer group on the given ifnet.
571 error
= if_addmulti(ifp
, (struct sockaddr
*)&gsin
, &ifma
);
576 * See comments in inm_remref() for access to ifma_protospec.
578 in_multihead_lock_exclusive();
580 if ((inm
= ifma
->ifma_protospec
) != NULL
) {
581 VERIFY(ifma
->ifma_addr
!= NULL
);
582 VERIFY(ifma
->ifma_addr
->sa_family
== AF_INET
);
583 INM_ADDREF(inm
); /* for caller */
586 VERIFY(inm
->inm_ifma
== ifma
);
587 VERIFY(inm
->inm_ifp
== ifp
);
588 VERIFY(in_hosteq(inm
->inm_addr
, *group
));
589 if (inm
->inm_debug
& IFD_ATTACHED
) {
590 VERIFY(inm
->inm_reqcnt
>= 1);
592 VERIFY(inm
->inm_reqcnt
!= 0);
595 in_multihead_lock_done();
598 * We lost the race with another thread doing
599 * in_getmulti(); since this group has already
600 * been joined; return the inm with a refcount
606 * We lost the race with another thread doing in_delmulti();
607 * the inm referring to the ifma has been detached, thus we
608 * reattach it back to the in_multihead list and return the
609 * inm with a refcount held for the caller.
611 in_multi_attach(inm
);
612 VERIFY((inm
->inm_debug
&
613 (IFD_ATTACHED
| IFD_TRASHED
)) == IFD_ATTACHED
);
616 in_multihead_lock_done();
623 * A new in_multi record is needed; allocate and initialize it.
624 * We DO NOT perform an IGMP join as the in_ layer may need to
625 * push an initial source list down to IGMP to support SSM.
627 * The initial source filter state is INCLUDE, {} as per the RFC.
629 inm
= in_multi_alloc(M_WAITOK
);
631 in_multihead_lock_done();
636 inm
->inm_addr
= *group
;
638 inm
->inm_igi
= IGMP_IFINFO(ifp
);
639 VERIFY(inm
->inm_igi
!= NULL
);
640 IGI_ADDREF(inm
->inm_igi
);
641 inm
->inm_ifma
= ifma
; /* keep refcount from if_addmulti() */
642 inm
->inm_state
= IGMP_NOT_MEMBER
;
644 * Pending state-changes per group are subject to a bounds check.
646 inm
->inm_scq
.ifq_maxlen
= IGMP_MAX_STATE_CHANGES
;
647 inm
->inm_st
[0].iss_fmode
= MCAST_UNDEFINED
;
648 inm
->inm_st
[1].iss_fmode
= MCAST_UNDEFINED
;
649 RB_INIT(&inm
->inm_srcs
);
651 in_multi_attach(inm
);
652 VERIFY((inm
->inm_debug
& (IFD_ATTACHED
| IFD_TRASHED
)) == IFD_ATTACHED
);
653 INM_ADDREF_LOCKED(inm
); /* for caller */
657 VERIFY(ifma
->ifma_protospec
== NULL
);
658 ifma
->ifma_protospec
= inm
;
660 in_multihead_lock_done();
666 * Clear recorded source entries for a group.
667 * Used by the IGMP code.
668 * FIXME: Should reap.
671 inm_clear_recorded(struct in_multi
*inm
)
673 struct ip_msource
*ims
;
675 INM_LOCK_ASSERT_HELD(inm
);
677 RB_FOREACH(ims
, ip_msource_tree
, &inm
->inm_srcs
) {
680 --inm
->inm_st
[1].iss_rec
;
683 VERIFY(inm
->inm_st
[1].iss_rec
== 0);
687 * Record a source as pending for a Source-Group IGMPv3 query.
688 * This lives here as it modifies the shared tree.
690 * inm is the group descriptor.
691 * naddr is the address of the source to record in network-byte order.
693 * If the net.inet.igmp.sgalloc sysctl is non-zero, we will
694 * lazy-allocate a source node in response to an SG query.
695 * Otherwise, no allocation is performed. This saves some memory
696 * with the trade-off that the source will not be reported to the
697 * router if joined in the window between the query response and
698 * the group actually being joined on the local host.
700 * Return 0 if the source didn't exist or was already marked as recorded.
701 * Return 1 if the source was marked as recorded by this function.
702 * Return <0 if any error occured (negated errno code).
705 inm_record_source(struct in_multi
*inm
, const in_addr_t naddr
)
707 struct ip_msource find
;
708 struct ip_msource
*ims
, *nims
;
710 INM_LOCK_ASSERT_HELD(inm
);
712 find
.ims_haddr
= ntohl(naddr
);
713 ims
= RB_FIND(ip_msource_tree
, &inm
->inm_srcs
, &find
);
714 if (ims
&& ims
->ims_stp
)
717 if (inm
->inm_nsrc
== in_mcast_maxgrpsrc
)
719 nims
= ipms_alloc(M_WAITOK
);
722 nims
->ims_haddr
= find
.ims_haddr
;
723 RB_INSERT(ip_msource_tree
, &inm
->inm_srcs
, nims
);
729 * Mark the source as recorded and update the recorded
733 ++inm
->inm_st
[1].iss_rec
;
739 * Return a pointer to an in_msource owned by an in_mfilter,
740 * given its source address.
741 * Lazy-allocate if needed. If this is a new entry its filter state is
744 * imf is the filter set being modified.
745 * haddr is the source address in *host* byte-order.
747 * Caller is expected to be holding imo_lock.
750 imf_get_source(struct in_mfilter
*imf
, const struct sockaddr_in
*psin
,
751 struct in_msource
**plims
)
753 struct ip_msource find
;
754 struct ip_msource
*ims
;
755 struct in_msource
*lims
;
762 /* key is host byte order */
763 find
.ims_haddr
= ntohl(psin
->sin_addr
.s_addr
);
764 ims
= RB_FIND(ip_msource_tree
, &imf
->imf_sources
, &find
);
765 lims
= (struct in_msource
*)ims
;
767 if (imf
->imf_nsrc
== in_mcast_maxsocksrc
)
769 lims
= inms_alloc(M_WAITOK
);
772 lims
->ims_haddr
= find
.ims_haddr
;
773 lims
->imsl_st
[0] = MCAST_UNDEFINED
;
774 RB_INSERT(ip_msource_tree
, &imf
->imf_sources
,
775 (struct ip_msource
*)lims
);
785 * Graft a source entry into an existing socket-layer filter set,
786 * maintaining any required invariants and checking allocations.
788 * The source is marked as being in the new filter mode at t1.
790 * Return the pointer to the new node, otherwise return NULL.
792 * Caller is expected to be holding imo_lock.
794 static struct in_msource
*
795 imf_graft(struct in_mfilter
*imf
, const uint8_t st1
,
796 const struct sockaddr_in
*psin
)
798 struct in_msource
*lims
;
800 lims
= inms_alloc(M_WAITOK
);
803 lims
->ims_haddr
= ntohl(psin
->sin_addr
.s_addr
);
804 lims
->imsl_st
[0] = MCAST_UNDEFINED
;
805 lims
->imsl_st
[1] = st1
;
806 RB_INSERT(ip_msource_tree
, &imf
->imf_sources
,
807 (struct ip_msource
*)lims
);
814 * Prune a source entry from an existing socket-layer filter set,
815 * maintaining any required invariants and checking allocations.
817 * The source is marked as being left at t1, it is not freed.
819 * Return 0 if no error occurred, otherwise return an errno value.
821 * Caller is expected to be holding imo_lock.
824 imf_prune(struct in_mfilter
*imf
, const struct sockaddr_in
*psin
)
826 struct ip_msource find
;
827 struct ip_msource
*ims
;
828 struct in_msource
*lims
;
830 /* key is host byte order */
831 find
.ims_haddr
= ntohl(psin
->sin_addr
.s_addr
);
832 ims
= RB_FIND(ip_msource_tree
, &imf
->imf_sources
, &find
);
835 lims
= (struct in_msource
*)ims
;
836 lims
->imsl_st
[1] = MCAST_UNDEFINED
;
841 * Revert socket-layer filter set deltas at t1 to t0 state.
843 * Caller is expected to be holding imo_lock.
846 imf_rollback(struct in_mfilter
*imf
)
848 struct ip_msource
*ims
, *tims
;
849 struct in_msource
*lims
;
851 RB_FOREACH_SAFE(ims
, ip_msource_tree
, &imf
->imf_sources
, tims
) {
852 lims
= (struct in_msource
*)ims
;
853 if (lims
->imsl_st
[0] == lims
->imsl_st
[1]) {
854 /* no change at t1 */
856 } else if (lims
->imsl_st
[0] != MCAST_UNDEFINED
) {
857 /* revert change to existing source at t1 */
858 lims
->imsl_st
[1] = lims
->imsl_st
[0];
860 /* revert source added t1 */
861 IGMP_PRINTF(("%s: free inms 0x%llx\n", __func__
,
862 (uint64_t)VM_KERNEL_ADDRPERM(lims
)));
863 RB_REMOVE(ip_msource_tree
, &imf
->imf_sources
, ims
);
868 imf
->imf_st
[1] = imf
->imf_st
[0];
872 * Mark socket-layer filter set as INCLUDE {} at t1.
874 * Caller is expected to be holding imo_lock.
877 imf_leave(struct in_mfilter
*imf
)
879 struct ip_msource
*ims
;
880 struct in_msource
*lims
;
882 RB_FOREACH(ims
, ip_msource_tree
, &imf
->imf_sources
) {
883 lims
= (struct in_msource
*)ims
;
884 lims
->imsl_st
[1] = MCAST_UNDEFINED
;
886 imf
->imf_st
[1] = MCAST_INCLUDE
;
890 * Mark socket-layer filter set deltas as committed.
892 * Caller is expected to be holding imo_lock.
895 imf_commit(struct in_mfilter
*imf
)
897 struct ip_msource
*ims
;
898 struct in_msource
*lims
;
900 RB_FOREACH(ims
, ip_msource_tree
, &imf
->imf_sources
) {
901 lims
= (struct in_msource
*)ims
;
902 lims
->imsl_st
[0] = lims
->imsl_st
[1];
904 imf
->imf_st
[0] = imf
->imf_st
[1];
908 * Reap unreferenced sources from socket-layer filter set.
910 * Caller is expected to be holding imo_lock.
913 imf_reap(struct in_mfilter
*imf
)
915 struct ip_msource
*ims
, *tims
;
916 struct in_msource
*lims
;
918 RB_FOREACH_SAFE(ims
, ip_msource_tree
, &imf
->imf_sources
, tims
) {
919 lims
= (struct in_msource
*)ims
;
920 if ((lims
->imsl_st
[0] == MCAST_UNDEFINED
) &&
921 (lims
->imsl_st
[1] == MCAST_UNDEFINED
)) {
922 IGMP_PRINTF(("%s: free inms 0x%llx\n", __func__
,
923 (uint64_t)VM_KERNEL_ADDRPERM(lims
)));
924 RB_REMOVE(ip_msource_tree
, &imf
->imf_sources
, ims
);
932 * Purge socket-layer filter set.
934 * Caller is expected to be holding imo_lock.
937 imf_purge(struct in_mfilter
*imf
)
939 struct ip_msource
*ims
, *tims
;
940 struct in_msource
*lims
;
942 RB_FOREACH_SAFE(ims
, ip_msource_tree
, &imf
->imf_sources
, tims
) {
943 lims
= (struct in_msource
*)ims
;
944 IGMP_PRINTF(("%s: free inms 0x%llx\n", __func__
,
945 (uint64_t)VM_KERNEL_ADDRPERM(lims
)));
946 RB_REMOVE(ip_msource_tree
, &imf
->imf_sources
, ims
);
950 imf
->imf_st
[0] = imf
->imf_st
[1] = MCAST_UNDEFINED
;
951 VERIFY(RB_EMPTY(&imf
->imf_sources
));
955 * Look up a source filter entry for a multicast group.
957 * inm is the group descriptor to work with.
958 * haddr is the host-byte-order IPv4 address to look up.
959 * noalloc may be non-zero to suppress allocation of sources.
960 * *pims will be set to the address of the retrieved or allocated source.
962 * Return 0 if successful, otherwise return a non-zero error code.
965 inm_get_source(struct in_multi
*inm
, const in_addr_t haddr
,
966 const int noalloc
, struct ip_msource
**pims
)
968 struct ip_msource find
;
969 struct ip_msource
*ims
, *nims
;
972 char buf
[MAX_IPv4_STR_LEN
];
974 INM_LOCK_ASSERT_HELD(inm
);
976 find
.ims_haddr
= haddr
;
977 ims
= RB_FIND(ip_msource_tree
, &inm
->inm_srcs
, &find
);
978 if (ims
== NULL
&& !noalloc
) {
979 if (inm
->inm_nsrc
== in_mcast_maxgrpsrc
)
981 nims
= ipms_alloc(M_WAITOK
);
984 nims
->ims_haddr
= haddr
;
985 RB_INSERT(ip_msource_tree
, &inm
->inm_srcs
, nims
);
989 ia
.s_addr
= htonl(haddr
);
990 inet_ntop(AF_INET
, &ia
, buf
, sizeof(buf
));
991 IGMP_PRINTF(("%s: allocated %s as 0x%llx\n", __func__
,
992 buf
, (uint64_t)VM_KERNEL_ADDRPERM(ims
)));
1001 * Helper function to derive the filter mode on a source entry
1002 * from its internal counters. Predicates are:
1003 * A source is only excluded if all listeners exclude it.
1004 * A source is only included if no listeners exclude it,
1005 * and at least one listener includes it.
1006 * May be used by ifmcstat(8).
1009 ims_get_mode(const struct in_multi
*inm
, const struct ip_msource
*ims
,
1012 INM_LOCK_ASSERT_HELD(__DECONST(struct in_multi
*, inm
));
1015 if (inm
->inm_st
[t
].iss_ex
> 0 &&
1016 inm
->inm_st
[t
].iss_ex
== ims
->ims_st
[t
].ex
)
1017 return (MCAST_EXCLUDE
);
1018 else if (ims
->ims_st
[t
].in
> 0 && ims
->ims_st
[t
].ex
== 0)
1019 return (MCAST_INCLUDE
);
1020 return (MCAST_UNDEFINED
);
1024 * Merge socket-layer source into IGMP-layer source.
1025 * If rollback is non-zero, perform the inverse of the merge.
1028 ims_merge(struct ip_msource
*ims
, const struct in_msource
*lims
,
1031 int n
= rollback
? -1 : 1;
1035 ia
.s_addr
= htonl(ims
->ims_haddr
);
1038 if (lims
->imsl_st
[0] == MCAST_EXCLUDE
) {
1039 IGMP_INET_PRINTF(ia
,
1040 ("%s: t1 ex -= %d on %s\n",
1041 __func__
, n
, _igmp_inet_buf
));
1042 ims
->ims_st
[1].ex
-= n
;
1043 } else if (lims
->imsl_st
[0] == MCAST_INCLUDE
) {
1044 IGMP_INET_PRINTF(ia
,
1045 ("%s: t1 in -= %d on %s\n",
1046 __func__
, n
, _igmp_inet_buf
));
1047 ims
->ims_st
[1].in
-= n
;
1050 if (lims
->imsl_st
[1] == MCAST_EXCLUDE
) {
1051 IGMP_INET_PRINTF(ia
,
1052 ("%s: t1 ex += %d on %s\n",
1053 __func__
, n
, _igmp_inet_buf
));
1054 ims
->ims_st
[1].ex
+= n
;
1055 } else if (lims
->imsl_st
[1] == MCAST_INCLUDE
) {
1056 IGMP_INET_PRINTF(ia
,
1057 ("%s: t1 in += %d on %s\n",
1058 __func__
, n
, _igmp_inet_buf
));
1059 ims
->ims_st
[1].in
+= n
;
1064 * Atomically update the global in_multi state, when a membership's
1065 * filter list is being updated in any way.
1067 * imf is the per-inpcb-membership group filter pointer.
1068 * A fake imf may be passed for in-kernel consumers.
1070 * XXX This is a candidate for a set-symmetric-difference style loop
1071 * which would eliminate the repeated lookup from root of ims nodes,
1072 * as they share the same key space.
1074 * If any error occurred this function will back out of refcounts
1075 * and return a non-zero value.
1078 inm_merge(struct in_multi
*inm
, /*const*/ struct in_mfilter
*imf
)
1080 struct ip_msource
*ims
, *nims
;
1081 struct in_msource
*lims
;
1082 int schanged
, error
;
1085 INM_LOCK_ASSERT_HELD(inm
);
1092 * Update the source filters first, as this may fail.
1093 * Maintain count of in-mode filters at t0, t1. These are
1094 * used to work out if we transition into ASM mode or not.
1095 * Maintain a count of source filters whose state was
1096 * actually modified by this operation.
1098 RB_FOREACH(ims
, ip_msource_tree
, &imf
->imf_sources
) {
1099 lims
= (struct in_msource
*)ims
;
1100 if (lims
->imsl_st
[0] == imf
->imf_st
[0]) nsrc0
++;
1101 if (lims
->imsl_st
[1] == imf
->imf_st
[1]) nsrc1
++;
1102 if (lims
->imsl_st
[0] == lims
->imsl_st
[1]) continue;
1103 error
= inm_get_source(inm
, lims
->ims_haddr
, 0, &nims
);
1107 ims_merge(nims
, lims
, 0);
1110 struct ip_msource
*bims
;
1112 RB_FOREACH_REVERSE_FROM(ims
, ip_msource_tree
, nims
) {
1113 lims
= (struct in_msource
*)ims
;
1114 if (lims
->imsl_st
[0] == lims
->imsl_st
[1])
1116 (void) inm_get_source(inm
, lims
->ims_haddr
, 1, &bims
);
1119 ims_merge(bims
, lims
, 1);
1124 IGMP_PRINTF(("%s: imf filters in-mode: %d at t0, %d at t1\n",
1125 __func__
, nsrc0
, nsrc1
));
1127 /* Handle transition between INCLUDE {n} and INCLUDE {} on socket. */
1128 if (imf
->imf_st
[0] == imf
->imf_st
[1] &&
1129 imf
->imf_st
[1] == MCAST_INCLUDE
) {
1131 IGMP_PRINTF(("%s: --in on inm at t1\n", __func__
));
1132 --inm
->inm_st
[1].iss_in
;
1136 /* Handle filter mode transition on socket. */
1137 if (imf
->imf_st
[0] != imf
->imf_st
[1]) {
1138 IGMP_PRINTF(("%s: imf transition %d to %d\n",
1139 __func__
, imf
->imf_st
[0], imf
->imf_st
[1]));
1141 if (imf
->imf_st
[0] == MCAST_EXCLUDE
) {
1142 IGMP_PRINTF(("%s: --ex on inm at t1\n", __func__
));
1143 --inm
->inm_st
[1].iss_ex
;
1144 } else if (imf
->imf_st
[0] == MCAST_INCLUDE
) {
1145 IGMP_PRINTF(("%s: --in on inm at t1\n", __func__
));
1146 --inm
->inm_st
[1].iss_in
;
1149 if (imf
->imf_st
[1] == MCAST_EXCLUDE
) {
1150 IGMP_PRINTF(("%s: ex++ on inm at t1\n", __func__
));
1151 inm
->inm_st
[1].iss_ex
++;
1152 } else if (imf
->imf_st
[1] == MCAST_INCLUDE
&& nsrc1
> 0) {
1153 IGMP_PRINTF(("%s: in++ on inm at t1\n", __func__
));
1154 inm
->inm_st
[1].iss_in
++;
1159 * Track inm filter state in terms of listener counts.
1160 * If there are any exclusive listeners, stack-wide
1161 * membership is exclusive.
1162 * Otherwise, if only inclusive listeners, stack-wide is inclusive.
1163 * If no listeners remain, state is undefined at t1,
1164 * and the IGMP lifecycle for this group should finish.
1166 if (inm
->inm_st
[1].iss_ex
> 0) {
1167 IGMP_PRINTF(("%s: transition to EX\n", __func__
));
1168 inm
->inm_st
[1].iss_fmode
= MCAST_EXCLUDE
;
1169 } else if (inm
->inm_st
[1].iss_in
> 0) {
1170 IGMP_PRINTF(("%s: transition to IN\n", __func__
));
1171 inm
->inm_st
[1].iss_fmode
= MCAST_INCLUDE
;
1173 IGMP_PRINTF(("%s: transition to UNDEF\n", __func__
));
1174 inm
->inm_st
[1].iss_fmode
= MCAST_UNDEFINED
;
1177 /* Decrement ASM listener count on transition out of ASM mode. */
1178 if (imf
->imf_st
[0] == MCAST_EXCLUDE
&& nsrc0
== 0) {
1179 if ((imf
->imf_st
[1] != MCAST_EXCLUDE
) ||
1180 (imf
->imf_st
[1] == MCAST_EXCLUDE
&& nsrc1
> 0)) {
1181 IGMP_PRINTF(("%s: --asm on inm at t1\n", __func__
));
1182 --inm
->inm_st
[1].iss_asm
;
1186 /* Increment ASM listener count on transition to ASM mode. */
1187 if (imf
->imf_st
[1] == MCAST_EXCLUDE
&& nsrc1
== 0) {
1188 IGMP_PRINTF(("%s: asm++ on inm at t1\n", __func__
));
1189 inm
->inm_st
[1].iss_asm
++;
1192 IGMP_PRINTF(("%s: merged imf 0x%llx to inm 0x%llx\n", __func__
,
1193 (uint64_t)VM_KERNEL_ADDRPERM(imf
),
1194 (uint64_t)VM_KERNEL_ADDRPERM(inm
)));
1199 IGMP_PRINTF(("%s: sources changed; reaping\n", __func__
));
1206 * Mark an in_multi's filter set deltas as committed.
1207 * Called by IGMP after a state change has been enqueued.
1210 inm_commit(struct in_multi
*inm
)
1212 struct ip_msource
*ims
;
1214 INM_LOCK_ASSERT_HELD(inm
);
1216 IGMP_PRINTF(("%s: commit inm 0x%llx\n", __func__
,
1217 (uint64_t)VM_KERNEL_ADDRPERM(inm
)));
1218 IGMP_PRINTF(("%s: pre commit:\n", __func__
));
1221 RB_FOREACH(ims
, ip_msource_tree
, &inm
->inm_srcs
) {
1222 ims
->ims_st
[0] = ims
->ims_st
[1];
1224 inm
->inm_st
[0] = inm
->inm_st
[1];
1228 * Reap unreferenced nodes from an in_multi's filter set.
1231 inm_reap(struct in_multi
*inm
)
1233 struct ip_msource
*ims
, *tims
;
1235 INM_LOCK_ASSERT_HELD(inm
);
1237 RB_FOREACH_SAFE(ims
, ip_msource_tree
, &inm
->inm_srcs
, tims
) {
1238 if (ims
->ims_st
[0].ex
> 0 || ims
->ims_st
[0].in
> 0 ||
1239 ims
->ims_st
[1].ex
> 0 || ims
->ims_st
[1].in
> 0 ||
1242 IGMP_PRINTF(("%s: free ims 0x%llx\n", __func__
,
1243 (uint64_t)VM_KERNEL_ADDRPERM(ims
)));
1244 RB_REMOVE(ip_msource_tree
, &inm
->inm_srcs
, ims
);
1251 * Purge all source nodes from an in_multi's filter set.
1254 inm_purge(struct in_multi
*inm
)
1256 struct ip_msource
*ims
, *tims
;
1258 INM_LOCK_ASSERT_HELD(inm
);
1260 RB_FOREACH_SAFE(ims
, ip_msource_tree
, &inm
->inm_srcs
, tims
) {
1261 IGMP_PRINTF(("%s: free ims 0x%llx\n", __func__
,
1262 (uint64_t)VM_KERNEL_ADDRPERM(ims
)));
1263 RB_REMOVE(ip_msource_tree
, &inm
->inm_srcs
, ims
);
1270 * Join a multicast group; real entry point.
1272 * Only preserves atomicity at inm level.
1273 * NOTE: imf argument cannot be const due to sys/tree.h limitations.
1275 * If the IGMP downcall fails, the group is not joined, and an error
1279 in_joingroup(struct ifnet
*ifp
, const struct in_addr
*gina
,
1280 /*const*/ struct in_mfilter
*imf
, struct in_multi
**pinm
)
1282 struct in_mfilter timf
;
1283 struct in_multi
*inm
= NULL
;
1285 struct igmp_tparams itp
;
1287 IGMP_INET_PRINTF(*gina
, ("%s: join %s on 0x%llx(%s))\n", __func__
,
1288 _igmp_inet_buf
, (uint64_t)VM_KERNEL_ADDRPERM(ifp
), if_name(ifp
)));
1290 bzero(&itp
, sizeof (itp
));
1294 * If no imf was specified (i.e. kernel consumer),
1295 * fake one up and assume it is an ASM join.
1298 imf_init(&timf
, MCAST_UNDEFINED
, MCAST_EXCLUDE
);
1302 error
= in_getmulti(ifp
, gina
, &inm
);
1304 IGMP_PRINTF(("%s: in_getmulti() failure\n", __func__
));
1308 IGMP_PRINTF(("%s: merge inm state\n", __func__
));
1311 error
= inm_merge(inm
, imf
);
1313 IGMP_PRINTF(("%s: failed to merge inm state\n", __func__
));
1314 goto out_inm_release
;
1317 IGMP_PRINTF(("%s: doing igmp downcall\n", __func__
));
1318 error
= igmp_change_state(inm
, &itp
);
1320 IGMP_PRINTF(("%s: failed to update source\n", __func__
));
1322 goto out_inm_release
;
1327 IGMP_PRINTF(("%s: dropping ref on 0x%llx\n", __func__
,
1328 (uint64_t)VM_KERNEL_ADDRPERM(inm
)));
1333 *pinm
= inm
; /* keep refcount from in_getmulti() */
1336 /* schedule timer now that we've dropped the lock(s) */
1337 igmp_set_timeout(&itp
);
1343 * Leave a multicast group; real entry point.
1344 * All source filters will be expunged.
1346 * Only preserves atomicity at inm level.
1348 * Note: This is not the same as inm_release(*) as this function also
1349 * makes a state change downcall into IGMP.
1352 in_leavegroup(struct in_multi
*inm
, /*const*/ struct in_mfilter
*imf
)
1354 struct in_mfilter timf
;
1356 struct igmp_tparams itp
;
1358 bzero(&itp
, sizeof (itp
));
1361 INM_LOCK_ASSERT_NOTHELD(inm
);
1363 in_multihead_lock_exclusive();
1366 IGMP_INET_PRINTF(inm
->inm_addr
,
1367 ("%s: leave inm 0x%llx, %s/%s%d, imf 0x%llx\n", __func__
,
1368 (uint64_t)VM_KERNEL_ADDRPERM(inm
), _igmp_inet_buf
,
1369 (inm_is_ifp_detached(inm
) ? "null" : inm
->inm_ifp
->if_name
),
1370 inm
->inm_ifp
->if_unit
, (uint64_t)VM_KERNEL_ADDRPERM(imf
)));
1373 * If no imf was specified (i.e. kernel consumer),
1374 * fake one up and assume it is an ASM join.
1377 imf_init(&timf
, MCAST_EXCLUDE
, MCAST_UNDEFINED
);
1382 * Begin state merge transaction at IGMP layer.
1384 * As this particular invocation should not cause any memory
1385 * to be allocated, and there is no opportunity to roll back
1386 * the transaction, it MUST NOT fail.
1388 IGMP_PRINTF(("%s: merge inm state\n", __func__
));
1390 error
= inm_merge(inm
, imf
);
1391 KASSERT(error
== 0, ("%s: failed to merge inm state\n", __func__
));
1393 IGMP_PRINTF(("%s: doing igmp downcall\n", __func__
));
1394 error
= igmp_change_state(inm
, &itp
);
1397 IGMP_PRINTF(("%s: failed igmp downcall\n", __func__
));
1399 lastref
= in_multi_detach(inm
);
1400 VERIFY(!lastref
|| (!(inm
->inm_debug
& IFD_ATTACHED
) &&
1401 inm
->inm_reqcnt
== 0));
1403 in_multihead_lock_done();
1406 INM_REMREF(inm
); /* for in_multihead list */
1408 /* schedule timer now that we've dropped the lock(s) */
1409 igmp_set_timeout(&itp
);
1415 * Join an IPv4 multicast group in (*,G) exclusive mode.
1416 * The group must be a 224.0.0.0/24 link-scope group.
1417 * This KPI is for legacy kernel consumers only.
1420 in_addmulti(struct in_addr
*ap
, struct ifnet
*ifp
)
1422 struct in_multi
*pinm
= NULL
;
1425 KASSERT(IN_LOCAL_GROUP(ntohl(ap
->s_addr
)),
1426 ("%s: %s not in 224.0.0.0/24\n", __func__
, inet_ntoa(*ap
)));
1428 error
= in_joingroup(ifp
, ap
, NULL
, &pinm
);
1429 VERIFY(pinm
!= NULL
|| error
!= 0);
1435 * Leave an IPv4 multicast group, assumed to be in exclusive (*,G) mode.
1436 * This KPI is for legacy kernel consumers only.
1439 in_delmulti(struct in_multi
*inm
)
1442 (void) in_leavegroup(inm
, NULL
);
1446 * Block or unblock an ASM multicast source on an inpcb.
1447 * This implements the delta-based API described in RFC 3678.
1449 * The delta-based API applies only to exclusive-mode memberships.
1450 * An IGMP downcall will be performed.
1452 * Return 0 if successful, otherwise return an appropriate error code.
1455 inp_block_unblock_source(struct inpcb
*inp
, struct sockopt
*sopt
)
1457 struct group_source_req gsr
;
1458 sockunion_t
*gsa
, *ssa
;
1460 struct in_mfilter
*imf
;
1461 struct ip_moptions
*imo
;
1462 struct in_msource
*ims
;
1463 struct in_multi
*inm
;
1467 unsigned int ifindex
= 0;
1468 struct igmp_tparams itp
;
1470 bzero(&itp
, sizeof (itp
));
1475 memset(&gsr
, 0, sizeof(struct group_source_req
));
1476 gsa
= (sockunion_t
*)&gsr
.gsr_group
;
1477 ssa
= (sockunion_t
*)&gsr
.gsr_source
;
1479 switch (sopt
->sopt_name
) {
1480 case IP_BLOCK_SOURCE
:
1481 case IP_UNBLOCK_SOURCE
: {
1482 struct ip_mreq_source mreqs
;
1484 error
= sooptcopyin(sopt
, &mreqs
,
1485 sizeof(struct ip_mreq_source
),
1486 sizeof(struct ip_mreq_source
));
1490 gsa
->sin
.sin_family
= AF_INET
;
1491 gsa
->sin
.sin_len
= sizeof(struct sockaddr_in
);
1492 gsa
->sin
.sin_addr
= mreqs
.imr_multiaddr
;
1494 ssa
->sin
.sin_family
= AF_INET
;
1495 ssa
->sin
.sin_len
= sizeof(struct sockaddr_in
);
1496 ssa
->sin
.sin_addr
= mreqs
.imr_sourceaddr
;
1498 if (!in_nullhost(mreqs
.imr_interface
))
1499 ifp
= ip_multicast_if(&mreqs
.imr_interface
, &ifindex
);
1501 if (sopt
->sopt_name
== IP_BLOCK_SOURCE
)
1504 IGMP_INET_PRINTF(mreqs
.imr_interface
,
1505 ("%s: imr_interface = %s, ifp = 0x%llx\n", __func__
,
1506 _igmp_inet_buf
, (uint64_t)VM_KERNEL_ADDRPERM(ifp
)));
1510 case MCAST_BLOCK_SOURCE
:
1511 case MCAST_UNBLOCK_SOURCE
:
1512 error
= sooptcopyin(sopt
, &gsr
,
1513 sizeof(struct group_source_req
),
1514 sizeof(struct group_source_req
));
1518 if (gsa
->sin
.sin_family
!= AF_INET
||
1519 gsa
->sin
.sin_len
!= sizeof(struct sockaddr_in
))
1522 if (ssa
->sin
.sin_family
!= AF_INET
||
1523 ssa
->sin
.sin_len
!= sizeof(struct sockaddr_in
))
1526 ifnet_head_lock_shared();
1527 if (gsr
.gsr_interface
== 0 ||
1528 (u_int
)if_index
< gsr
.gsr_interface
) {
1530 return (EADDRNOTAVAIL
);
1533 ifp
= ifindex2ifnet
[gsr
.gsr_interface
];
1537 return (EADDRNOTAVAIL
);
1539 if (sopt
->sopt_name
== MCAST_BLOCK_SOURCE
)
1544 IGMP_PRINTF(("%s: unknown sopt_name %d\n",
1545 __func__
, sopt
->sopt_name
));
1546 return (EOPNOTSUPP
);
1550 if (!IN_MULTICAST(ntohl(gsa
->sin
.sin_addr
.s_addr
)))
1554 * Check if we are actually a member of this group.
1556 imo
= inp_findmoptions(inp
);
1561 idx
= imo_match_group(imo
, ifp
, &gsa
->sa
);
1562 if (idx
== (size_t)-1 || imo
->imo_mfilters
== NULL
) {
1563 error
= EADDRNOTAVAIL
;
1564 goto out_imo_locked
;
1567 VERIFY(imo
->imo_mfilters
!= NULL
);
1568 imf
= &imo
->imo_mfilters
[idx
];
1569 inm
= imo
->imo_membership
[idx
];
1572 * Attempting to use the delta-based API on an
1573 * non exclusive-mode membership is an error.
1575 fmode
= imf
->imf_st
[0];
1576 if (fmode
!= MCAST_EXCLUDE
) {
1578 goto out_imo_locked
;
1582 * Deal with error cases up-front:
1583 * Asked to block, but already blocked; or
1584 * Asked to unblock, but nothing to unblock.
1585 * If adding a new block entry, allocate it.
1587 ims
= imo_match_source(imo
, idx
, &ssa
->sa
);
1588 if ((ims
!= NULL
&& doblock
) || (ims
== NULL
&& !doblock
)) {
1589 IGMP_INET_PRINTF(ssa
->sin
.sin_addr
,
1590 ("%s: source %s %spresent\n", __func__
,
1591 _igmp_inet_buf
, doblock
? "" : "not "));
1592 error
= EADDRNOTAVAIL
;
1593 goto out_imo_locked
;
1597 * Begin state merge transaction at socket layer.
1600 IGMP_PRINTF(("%s: %s source\n", __func__
, "block"));
1601 ims
= imf_graft(imf
, fmode
, &ssa
->sin
);
1605 IGMP_PRINTF(("%s: %s source\n", __func__
, "allow"));
1606 error
= imf_prune(imf
, &ssa
->sin
);
1610 IGMP_PRINTF(("%s: merge imf state failed\n", __func__
));
1611 goto out_imf_rollback
;
1615 * Begin state merge transaction at IGMP layer.
1618 IGMP_PRINTF(("%s: merge inm state\n", __func__
));
1619 error
= inm_merge(inm
, imf
);
1621 IGMP_PRINTF(("%s: failed to merge inm state\n", __func__
));
1623 goto out_imf_rollback
;
1626 IGMP_PRINTF(("%s: doing igmp downcall\n", __func__
));
1627 error
= igmp_change_state(inm
, &itp
);
1631 IGMP_PRINTF(("%s: failed igmp downcall\n", __func__
));
1644 IMO_REMREF(imo
); /* from inp_findmoptions() */
1646 /* schedule timer now that we've dropped the lock(s) */
1647 igmp_set_timeout(&itp
);
1653 * Given an inpcb, return its multicast options structure pointer.
1655 * Caller is responsible for locking the inpcb, and releasing the
1656 * extra reference held on the imo, upon a successful return.
1658 static struct ip_moptions
*
1659 inp_findmoptions(struct inpcb
*inp
)
1661 struct ip_moptions
*imo
;
1662 struct in_multi
**immp
;
1663 struct in_mfilter
*imfp
;
1666 if ((imo
= inp
->inp_moptions
) != NULL
) {
1667 IMO_ADDREF(imo
); /* for caller */
1671 imo
= ip_allocmoptions(M_WAITOK
);
1675 immp
= _MALLOC(sizeof (*immp
) * IP_MIN_MEMBERSHIPS
, M_IPMOPTS
,
1682 imfp
= _MALLOC(sizeof (struct in_mfilter
) * IP_MIN_MEMBERSHIPS
,
1683 M_INMFILTER
, M_WAITOK
| M_ZERO
);
1685 _FREE(immp
, M_IPMOPTS
);
1690 imo
->imo_multicast_ifp
= NULL
;
1691 imo
->imo_multicast_addr
.s_addr
= INADDR_ANY
;
1692 imo
->imo_multicast_vif
= -1;
1693 imo
->imo_multicast_ttl
= IP_DEFAULT_MULTICAST_TTL
;
1694 imo
->imo_multicast_loop
= in_mcast_loop
;
1695 imo
->imo_num_memberships
= 0;
1696 imo
->imo_max_memberships
= IP_MIN_MEMBERSHIPS
;
1697 imo
->imo_membership
= immp
;
1699 /* Initialize per-group source filters. */
1700 for (idx
= 0; idx
< IP_MIN_MEMBERSHIPS
; idx
++)
1701 imf_init(&imfp
[idx
], MCAST_UNDEFINED
, MCAST_EXCLUDE
);
1703 imo
->imo_mfilters
= imfp
;
1704 inp
->inp_moptions
= imo
; /* keep reference from ip_allocmoptions() */
1705 IMO_ADDREF(imo
); /* for caller */
1710 * Atomically get source filters on a socket for an IPv4 multicast group.
1713 inp_get_source_filters(struct inpcb
*inp
, struct sockopt
*sopt
)
1715 struct __msfilterreq64 msfr
, msfr64
;
1716 struct __msfilterreq32 msfr32
;
1719 struct ip_moptions
*imo
;
1720 struct in_mfilter
*imf
;
1721 struct ip_msource
*ims
;
1722 struct in_msource
*lims
;
1723 struct sockaddr_in
*psin
;
1724 struct sockaddr_storage
*ptss
;
1725 struct sockaddr_storage
*tss
;
1727 size_t idx
, nsrcs
, ncsrcs
;
1728 user_addr_t tmp_ptr
;
1730 imo
= inp
->inp_moptions
;
1731 VERIFY(imo
!= NULL
);
1733 if (IS_64BIT_PROCESS(current_proc())) {
1734 error
= sooptcopyin(sopt
, &msfr64
,
1735 sizeof(struct __msfilterreq64
),
1736 sizeof(struct __msfilterreq64
));
1739 /* we never use msfr.msfr_srcs; */
1740 memcpy(&msfr
, &msfr64
, sizeof(msfr64
));
1742 error
= sooptcopyin(sopt
, &msfr32
,
1743 sizeof(struct __msfilterreq32
),
1744 sizeof(struct __msfilterreq32
));
1747 /* we never use msfr.msfr_srcs; */
1748 memcpy(&msfr
, &msfr32
, sizeof(msfr32
));
1751 ifnet_head_lock_shared();
1752 if (msfr
.msfr_ifindex
== 0 || (u_int
)if_index
< msfr
.msfr_ifindex
) {
1754 return (EADDRNOTAVAIL
);
1757 ifp
= ifindex2ifnet
[msfr
.msfr_ifindex
];
1761 return (EADDRNOTAVAIL
);
1763 if ((size_t) msfr
.msfr_nsrcs
>
1764 UINT32_MAX
/ sizeof(struct sockaddr_storage
))
1765 msfr
.msfr_nsrcs
= UINT32_MAX
/ sizeof(struct sockaddr_storage
);
1767 if (msfr
.msfr_nsrcs
> in_mcast_maxsocksrc
)
1768 msfr
.msfr_nsrcs
= in_mcast_maxsocksrc
;
1772 * Lookup group on the socket.
1774 gsa
= (sockunion_t
*)&msfr
.msfr_group
;
1775 idx
= imo_match_group(imo
, ifp
, &gsa
->sa
);
1776 if (idx
== (size_t)-1 || imo
->imo_mfilters
== NULL
) {
1778 return (EADDRNOTAVAIL
);
1780 imf
= &imo
->imo_mfilters
[idx
];
1783 * Ignore memberships which are in limbo.
1785 if (imf
->imf_st
[1] == MCAST_UNDEFINED
) {
1789 msfr
.msfr_fmode
= imf
->imf_st
[1];
1792 * If the user specified a buffer, copy out the source filter
1793 * entries to userland gracefully.
1794 * We only copy out the number of entries which userland
1795 * has asked for, but we always tell userland how big the
1796 * buffer really needs to be.
1799 if (IS_64BIT_PROCESS(current_proc()))
1800 tmp_ptr
= msfr64
.msfr_srcs
;
1802 tmp_ptr
= CAST_USER_ADDR_T(msfr32
.msfr_srcs
);
1805 if (tmp_ptr
!= USER_ADDR_NULL
&& msfr
.msfr_nsrcs
> 0) {
1806 tss
= _MALLOC((size_t) msfr
.msfr_nsrcs
* sizeof(*tss
),
1807 M_TEMP
, M_WAITOK
| M_ZERO
);
1815 * Count number of sources in-mode at t0.
1816 * If buffer space exists and remains, copy out source entries.
1818 nsrcs
= msfr
.msfr_nsrcs
;
1821 RB_FOREACH(ims
, ip_msource_tree
, &imf
->imf_sources
) {
1822 lims
= (struct in_msource
*)ims
;
1823 if (lims
->imsl_st
[0] == MCAST_UNDEFINED
||
1824 lims
->imsl_st
[0] != imf
->imf_st
[0])
1826 if (tss
!= NULL
&& nsrcs
> 0) {
1827 psin
= (struct sockaddr_in
*)ptss
;
1828 psin
->sin_family
= AF_INET
;
1829 psin
->sin_len
= sizeof(struct sockaddr_in
);
1830 psin
->sin_addr
.s_addr
= htonl(lims
->ims_haddr
);
1841 error
= copyout(tss
, tmp_ptr
, ncsrcs
* sizeof(*tss
));
1847 msfr
.msfr_nsrcs
= ncsrcs
;
1848 if (IS_64BIT_PROCESS(current_proc())) {
1849 msfr64
.msfr_ifindex
= msfr
.msfr_ifindex
;
1850 msfr64
.msfr_fmode
= msfr
.msfr_fmode
;
1851 msfr64
.msfr_nsrcs
= msfr
.msfr_nsrcs
;
1852 memcpy(&msfr64
.msfr_group
, &msfr
.msfr_group
,
1853 sizeof(struct sockaddr_storage
));
1854 error
= sooptcopyout(sopt
, &msfr64
,
1855 sizeof(struct __msfilterreq64
));
1857 msfr32
.msfr_ifindex
= msfr
.msfr_ifindex
;
1858 msfr32
.msfr_fmode
= msfr
.msfr_fmode
;
1859 msfr32
.msfr_nsrcs
= msfr
.msfr_nsrcs
;
1860 memcpy(&msfr32
.msfr_group
, &msfr
.msfr_group
,
1861 sizeof(struct sockaddr_storage
));
1862 error
= sooptcopyout(sopt
, &msfr32
,
1863 sizeof(struct __msfilterreq32
));
1870 * Return the IP multicast options in response to user getsockopt().
1873 inp_getmoptions(struct inpcb
*inp
, struct sockopt
*sopt
)
1875 struct ip_mreqn mreqn
;
1876 struct ip_moptions
*imo
;
1878 struct in_ifaddr
*ia
;
1880 unsigned int ifindex
;
1883 imo
= inp
->inp_moptions
;
1885 * If socket is neither of type SOCK_RAW or SOCK_DGRAM,
1886 * or is a divert socket, reject it.
1888 if (SOCK_PROTO(inp
->inp_socket
) == IPPROTO_DIVERT
||
1889 (SOCK_TYPE(inp
->inp_socket
) != SOCK_RAW
&&
1890 SOCK_TYPE(inp
->inp_socket
) != SOCK_DGRAM
)) {
1891 return (EOPNOTSUPP
);
1895 switch (sopt
->sopt_name
) {
1896 case IP_MULTICAST_IF
:
1897 memset(&mreqn
, 0, sizeof(struct ip_mreqn
));
1900 ifp
= imo
->imo_multicast_ifp
;
1901 if (!in_nullhost(imo
->imo_multicast_addr
)) {
1902 mreqn
.imr_address
= imo
->imo_multicast_addr
;
1903 } else if (ifp
!= NULL
) {
1904 mreqn
.imr_ifindex
= ifp
->if_index
;
1907 IFA_LOCK_SPIN(&ia
->ia_ifa
);
1909 IA_SIN(ia
)->sin_addr
;
1910 IFA_UNLOCK(&ia
->ia_ifa
);
1911 IFA_REMREF(&ia
->ia_ifa
);
1916 if (sopt
->sopt_valsize
== sizeof(struct ip_mreqn
)) {
1917 error
= sooptcopyout(sopt
, &mreqn
,
1918 sizeof(struct ip_mreqn
));
1920 error
= sooptcopyout(sopt
, &mreqn
.imr_address
,
1921 sizeof(struct in_addr
));
1925 case IP_MULTICAST_IFINDEX
:
1928 if (imo
== NULL
|| imo
->imo_multicast_ifp
== NULL
) {
1931 ifindex
= imo
->imo_multicast_ifp
->if_index
;
1935 error
= sooptcopyout(sopt
, &ifindex
, sizeof (ifindex
));
1938 case IP_MULTICAST_TTL
:
1940 optval
= coptval
= IP_DEFAULT_MULTICAST_TTL
;
1943 optval
= coptval
= imo
->imo_multicast_ttl
;
1946 if (sopt
->sopt_valsize
== sizeof(u_char
))
1947 error
= sooptcopyout(sopt
, &coptval
, sizeof(u_char
));
1949 error
= sooptcopyout(sopt
, &optval
, sizeof(int));
1952 case IP_MULTICAST_LOOP
:
1954 optval
= coptval
= IP_DEFAULT_MULTICAST_LOOP
;
1957 optval
= coptval
= imo
->imo_multicast_loop
;
1960 if (sopt
->sopt_valsize
== sizeof(u_char
))
1961 error
= sooptcopyout(sopt
, &coptval
, sizeof(u_char
));
1963 error
= sooptcopyout(sopt
, &optval
, sizeof(int));
1968 error
= EADDRNOTAVAIL
;
1970 error
= inp_get_source_filters(inp
, sopt
);
1975 error
= ENOPROTOOPT
;
1983 * Look up the ifnet to use for a multicast group membership,
1984 * given the IPv4 address of an interface, and the IPv4 group address.
1986 * This routine exists to support legacy multicast applications
1987 * which do not understand that multicast memberships are scoped to
1988 * specific physical links in the networking stack, or which need
1989 * to join link-scope groups before IPv4 addresses are configured.
1991 * If inp is non-NULL and is bound to an interface, use this socket's
1992 * inp_boundif for any required routing table lookup.
1994 * If the route lookup fails, attempt to use the first non-loopback
1995 * interface with multicast capability in the system as a
1996 * last resort. The legacy IPv4 ASM API requires that we do
1997 * this in order to allow groups to be joined when the routing
1998 * table has not yet been populated during boot.
2000 * Returns NULL if no ifp could be found.
2003 static struct ifnet
*
2004 inp_lookup_mcast_ifp(const struct inpcb
*inp
,
2005 const struct sockaddr_in
*gsin
, const struct in_addr ina
)
2008 unsigned int ifindex
= 0;
2010 VERIFY(gsin
->sin_family
== AF_INET
);
2011 VERIFY(IN_MULTICAST(ntohl(gsin
->sin_addr
.s_addr
)));
2014 if (!in_nullhost(ina
)) {
2015 struct in_addr new_ina
;
2016 memcpy(&new_ina
, &ina
, sizeof(struct in_addr
));
2017 ifp
= ip_multicast_if(&new_ina
, &ifindex
);
2020 unsigned int ifscope
= IFSCOPE_NONE
;
2022 if (inp
!= NULL
&& (inp
->inp_flags
& INP_BOUND_IF
))
2023 ifscope
= inp
->inp_boundifp
->if_index
;
2025 bzero(&ro
, sizeof (ro
));
2026 memcpy(&ro
.ro_dst
, gsin
, sizeof(struct sockaddr_in
));
2027 rtalloc_scoped_ign(&ro
, 0, ifscope
);
2028 if (ro
.ro_rt
!= NULL
) {
2029 ifp
= ro
.ro_rt
->rt_ifp
;
2030 VERIFY(ifp
!= NULL
);
2032 struct in_ifaddr
*ia
;
2036 lck_rw_lock_shared(in_ifaddr_rwlock
);
2037 TAILQ_FOREACH(ia
, &in_ifaddrhead
, ia_link
) {
2038 IFA_LOCK_SPIN(&ia
->ia_ifa
);
2040 IFA_UNLOCK(&ia
->ia_ifa
);
2041 if (!(mifp
->if_flags
& IFF_LOOPBACK
) &&
2042 (mifp
->if_flags
& IFF_MULTICAST
)) {
2047 lck_rw_done(in_ifaddr_rwlock
);
2056 * Join an IPv4 multicast group, possibly with a source.
2058 * NB: sopt->sopt_val might point to the kernel address space. This means that
2059 * we were called by the IPv6 stack due to the presence of an IPv6 v4 mapped
2060 * address. In this scenario, sopt_p points to kernproc and sooptcopyin() will
2061 * just issue an in-kernel memcpy.
2064 inp_join_group(struct inpcb
*inp
, struct sockopt
*sopt
)
2066 struct group_source_req gsr
;
2067 sockunion_t
*gsa
, *ssa
;
2069 struct in_mfilter
*imf
;
2070 struct ip_moptions
*imo
;
2071 struct in_multi
*inm
= NULL
;
2072 struct in_msource
*lims
;
2075 struct igmp_tparams itp
;
2077 bzero(&itp
, sizeof (itp
));
2083 memset(&gsr
, 0, sizeof(struct group_source_req
));
2084 gsa
= (sockunion_t
*)&gsr
.gsr_group
;
2085 gsa
->ss
.ss_family
= AF_UNSPEC
;
2086 ssa
= (sockunion_t
*)&gsr
.gsr_source
;
2087 ssa
->ss
.ss_family
= AF_UNSPEC
;
2089 switch (sopt
->sopt_name
) {
2090 case IP_ADD_MEMBERSHIP
:
2091 case IP_ADD_SOURCE_MEMBERSHIP
: {
2092 struct ip_mreq_source mreqs
;
2094 if (sopt
->sopt_name
== IP_ADD_MEMBERSHIP
) {
2095 error
= sooptcopyin(sopt
, &mreqs
,
2096 sizeof(struct ip_mreq
),
2097 sizeof(struct ip_mreq
));
2099 * Do argument switcharoo from ip_mreq into
2100 * ip_mreq_source to avoid using two instances.
2102 mreqs
.imr_interface
= mreqs
.imr_sourceaddr
;
2103 mreqs
.imr_sourceaddr
.s_addr
= INADDR_ANY
;
2104 } else if (sopt
->sopt_name
== IP_ADD_SOURCE_MEMBERSHIP
) {
2105 error
= sooptcopyin(sopt
, &mreqs
,
2106 sizeof(struct ip_mreq_source
),
2107 sizeof(struct ip_mreq_source
));
2110 IGMP_PRINTF(("%s: error copyin IP_ADD_MEMBERSHIP/"
2111 "IP_ADD_SOURCE_MEMBERSHIP %d err=%d\n",
2112 __func__
, sopt
->sopt_name
, error
));
2116 gsa
->sin
.sin_family
= AF_INET
;
2117 gsa
->sin
.sin_len
= sizeof(struct sockaddr_in
);
2118 gsa
->sin
.sin_addr
= mreqs
.imr_multiaddr
;
2120 if (sopt
->sopt_name
== IP_ADD_SOURCE_MEMBERSHIP
) {
2121 ssa
->sin
.sin_family
= AF_INET
;
2122 ssa
->sin
.sin_len
= sizeof(struct sockaddr_in
);
2123 ssa
->sin
.sin_addr
= mreqs
.imr_sourceaddr
;
2126 if (!IN_MULTICAST(ntohl(gsa
->sin
.sin_addr
.s_addr
)))
2129 ifp
= inp_lookup_mcast_ifp(inp
, &gsa
->sin
,
2130 mreqs
.imr_interface
);
2131 IGMP_INET_PRINTF(mreqs
.imr_interface
,
2132 ("%s: imr_interface = %s, ifp = 0x%llx\n", __func__
,
2133 _igmp_inet_buf
, (uint64_t)VM_KERNEL_ADDRPERM(ifp
)));
2137 case MCAST_JOIN_GROUP
:
2138 case MCAST_JOIN_SOURCE_GROUP
:
2139 if (sopt
->sopt_name
== MCAST_JOIN_GROUP
) {
2140 error
= sooptcopyin(sopt
, &gsr
,
2141 sizeof(struct group_req
),
2142 sizeof(struct group_req
));
2143 } else if (sopt
->sopt_name
== MCAST_JOIN_SOURCE_GROUP
) {
2144 error
= sooptcopyin(sopt
, &gsr
,
2145 sizeof(struct group_source_req
),
2146 sizeof(struct group_source_req
));
2151 if (gsa
->sin
.sin_family
!= AF_INET
||
2152 gsa
->sin
.sin_len
!= sizeof(struct sockaddr_in
))
2156 * Overwrite the port field if present, as the sockaddr
2157 * being copied in may be matched with a binary comparison.
2159 gsa
->sin
.sin_port
= 0;
2160 if (sopt
->sopt_name
== MCAST_JOIN_SOURCE_GROUP
) {
2161 if (ssa
->sin
.sin_family
!= AF_INET
||
2162 ssa
->sin
.sin_len
!= sizeof(struct sockaddr_in
))
2164 ssa
->sin
.sin_port
= 0;
2167 if (!IN_MULTICAST(ntohl(gsa
->sin
.sin_addr
.s_addr
)))
2170 ifnet_head_lock_shared();
2171 if (gsr
.gsr_interface
== 0 ||
2172 (u_int
)if_index
< gsr
.gsr_interface
) {
2174 return (EADDRNOTAVAIL
);
2176 ifp
= ifindex2ifnet
[gsr
.gsr_interface
];
2182 IGMP_PRINTF(("%s: unknown sopt_name %d\n",
2183 __func__
, sopt
->sopt_name
));
2184 return (EOPNOTSUPP
);
2188 if (ifp
== NULL
|| (ifp
->if_flags
& IFF_MULTICAST
) == 0)
2189 return (EADDRNOTAVAIL
);
2191 imo
= inp_findmoptions(inp
);
2196 idx
= imo_match_group(imo
, ifp
, &gsa
->sa
);
2197 if (idx
== (size_t)-1) {
2200 inm
= imo
->imo_membership
[idx
];
2201 imf
= &imo
->imo_mfilters
[idx
];
2202 if (ssa
->ss
.ss_family
!= AF_UNSPEC
) {
2204 * MCAST_JOIN_SOURCE_GROUP on an exclusive membership
2205 * is an error. On an existing inclusive membership,
2206 * it just adds the source to the filter list.
2208 if (imf
->imf_st
[1] != MCAST_INCLUDE
) {
2210 goto out_imo_locked
;
2213 * Throw out duplicates.
2215 * XXX FIXME: This makes a naive assumption that
2216 * even if entries exist for *ssa in this imf,
2217 * they will be rejected as dupes, even if they
2218 * are not valid in the current mode (in-mode).
2220 * in_msource is transactioned just as for anything
2221 * else in SSM -- but note naive use of inm_graft()
2222 * below for allocating new filter entries.
2224 * This is only an issue if someone mixes the
2225 * full-state SSM API with the delta-based API,
2226 * which is discouraged in the relevant RFCs.
2228 lims
= imo_match_source(imo
, idx
, &ssa
->sa
);
2229 if (lims
!= NULL
/*&&
2230 lims->imsl_st[1] == MCAST_INCLUDE*/) {
2231 error
= EADDRNOTAVAIL
;
2232 goto out_imo_locked
;
2236 * MCAST_JOIN_GROUP on an existing exclusive
2237 * membership is an error; return EADDRINUSE
2238 * to preserve 4.4BSD API idempotence, and
2239 * avoid tedious detour to code below.
2240 * NOTE: This is bending RFC 3678 a bit.
2242 * On an existing inclusive membership, this is also
2243 * an error; if you want to change filter mode,
2244 * you must use the userland API setsourcefilter().
2245 * XXX We don't reject this for imf in UNDEFINED
2246 * state at t1, because allocation of a filter
2247 * is atomic with allocation of a membership.
2250 /* See comments above for EADDRINUSE */
2251 if (imf
->imf_st
[1] == MCAST_EXCLUDE
)
2253 goto out_imo_locked
;
2258 * Begin state merge transaction at socket layer.
2262 if (imo
->imo_num_memberships
== imo
->imo_max_memberships
) {
2263 error
= imo_grow(imo
, 0);
2265 goto out_imo_locked
;
2268 * Allocate the new slot upfront so we can deal with
2269 * grafting the new source filter in same code path
2270 * as for join-source on existing membership.
2272 idx
= imo
->imo_num_memberships
;
2273 imo
->imo_membership
[idx
] = NULL
;
2274 imo
->imo_num_memberships
++;
2275 VERIFY(imo
->imo_mfilters
!= NULL
);
2276 imf
= &imo
->imo_mfilters
[idx
];
2277 VERIFY(RB_EMPTY(&imf
->imf_sources
));
2281 * Graft new source into filter list for this inpcb's
2282 * membership of the group. The in_multi may not have
2283 * been allocated yet if this is a new membership, however,
2284 * the in_mfilter slot will be allocated and must be initialized.
2286 if (ssa
->ss
.ss_family
!= AF_UNSPEC
) {
2287 /* Membership starts in IN mode */
2289 IGMP_PRINTF(("%s: new join w/source\n", __func__
));
2290 imf_init(imf
, MCAST_UNDEFINED
, MCAST_INCLUDE
);
2292 IGMP_PRINTF(("%s: %s source\n", __func__
, "allow"));
2294 lims
= imf_graft(imf
, MCAST_INCLUDE
, &ssa
->sin
);
2296 IGMP_PRINTF(("%s: merge imf state failed\n",
2302 /* No address specified; Membership starts in EX mode */
2304 IGMP_PRINTF(("%s: new join w/o source\n", __func__
));
2305 imf_init(imf
, MCAST_UNDEFINED
, MCAST_EXCLUDE
);
2310 * Begin state merge transaction at IGMP layer.
2314 VERIFY(inm
== NULL
);
2315 error
= in_joingroup(ifp
, &gsa
->sin
.sin_addr
, imf
, &inm
);
2316 VERIFY(inm
!= NULL
|| error
!= 0);
2319 imo
->imo_membership
[idx
] = inm
; /* from in_joingroup() */
2321 IGMP_PRINTF(("%s: merge inm state\n", __func__
));
2323 error
= inm_merge(inm
, imf
);
2325 IGMP_PRINTF(("%s: failed to merge inm state\n",
2328 goto out_imf_rollback
;
2330 IGMP_PRINTF(("%s: doing igmp downcall\n", __func__
));
2331 error
= igmp_change_state(inm
, &itp
);
2334 IGMP_PRINTF(("%s: failed igmp downcall\n",
2336 goto out_imf_rollback
;
2352 if (error
&& is_new
) {
2353 VERIFY(inm
== NULL
);
2354 imo
->imo_membership
[idx
] = NULL
;
2355 --imo
->imo_num_memberships
;
2360 IMO_REMREF(imo
); /* from inp_findmoptions() */
2362 /* schedule timer now that we've dropped the lock(s) */
2363 igmp_set_timeout(&itp
);
2369 * Leave an IPv4 multicast group on an inpcb, possibly with a source.
2371 * NB: sopt->sopt_val might point to the kernel address space. Refer to the
2372 * block comment on top of inp_join_group() for more information.
2375 inp_leave_group(struct inpcb
*inp
, struct sockopt
*sopt
)
2377 struct group_source_req gsr
;
2378 struct ip_mreq_source mreqs
;
2379 sockunion_t
*gsa
, *ssa
;
2381 struct in_mfilter
*imf
;
2382 struct ip_moptions
*imo
;
2383 struct in_msource
*ims
;
2384 struct in_multi
*inm
= NULL
;
2386 int error
, is_final
;
2387 unsigned int ifindex
= 0;
2388 struct igmp_tparams itp
;
2390 bzero(&itp
, sizeof (itp
));
2395 memset(&gsr
, 0, sizeof(struct group_source_req
));
2396 gsa
= (sockunion_t
*)&gsr
.gsr_group
;
2397 gsa
->ss
.ss_family
= AF_UNSPEC
;
2398 ssa
= (sockunion_t
*)&gsr
.gsr_source
;
2399 ssa
->ss
.ss_family
= AF_UNSPEC
;
2401 switch (sopt
->sopt_name
) {
2402 case IP_DROP_MEMBERSHIP
:
2403 case IP_DROP_SOURCE_MEMBERSHIP
:
2404 if (sopt
->sopt_name
== IP_DROP_MEMBERSHIP
) {
2405 error
= sooptcopyin(sopt
, &mreqs
,
2406 sizeof(struct ip_mreq
),
2407 sizeof(struct ip_mreq
));
2409 * Swap interface and sourceaddr arguments,
2410 * as ip_mreq and ip_mreq_source are laid
2413 mreqs
.imr_interface
= mreqs
.imr_sourceaddr
;
2414 mreqs
.imr_sourceaddr
.s_addr
= INADDR_ANY
;
2415 } else if (sopt
->sopt_name
== IP_DROP_SOURCE_MEMBERSHIP
) {
2416 error
= sooptcopyin(sopt
, &mreqs
,
2417 sizeof(struct ip_mreq_source
),
2418 sizeof(struct ip_mreq_source
));
2423 gsa
->sin
.sin_family
= AF_INET
;
2424 gsa
->sin
.sin_len
= sizeof(struct sockaddr_in
);
2425 gsa
->sin
.sin_addr
= mreqs
.imr_multiaddr
;
2427 if (sopt
->sopt_name
== IP_DROP_SOURCE_MEMBERSHIP
) {
2428 ssa
->sin
.sin_family
= AF_INET
;
2429 ssa
->sin
.sin_len
= sizeof(struct sockaddr_in
);
2430 ssa
->sin
.sin_addr
= mreqs
.imr_sourceaddr
;
2433 * Attempt to look up hinted ifp from interface address.
2434 * Fallthrough with null ifp iff lookup fails, to
2435 * preserve 4.4BSD mcast API idempotence.
2436 * XXX NOTE WELL: The RFC 3678 API is preferred because
2437 * using an IPv4 address as a key is racy.
2439 if (!in_nullhost(mreqs
.imr_interface
))
2440 ifp
= ip_multicast_if(&mreqs
.imr_interface
, &ifindex
);
2442 IGMP_INET_PRINTF(mreqs
.imr_interface
,
2443 ("%s: imr_interface = %s, ifp = 0x%llx\n", __func__
,
2444 _igmp_inet_buf
, (uint64_t)VM_KERNEL_ADDRPERM(ifp
)));
2448 case MCAST_LEAVE_GROUP
:
2449 case MCAST_LEAVE_SOURCE_GROUP
:
2450 if (sopt
->sopt_name
== MCAST_LEAVE_GROUP
) {
2451 error
= sooptcopyin(sopt
, &gsr
,
2452 sizeof(struct group_req
),
2453 sizeof(struct group_req
));
2454 } else if (sopt
->sopt_name
== MCAST_LEAVE_SOURCE_GROUP
) {
2455 error
= sooptcopyin(sopt
, &gsr
,
2456 sizeof(struct group_source_req
),
2457 sizeof(struct group_source_req
));
2462 if (gsa
->sin
.sin_family
!= AF_INET
||
2463 gsa
->sin
.sin_len
!= sizeof(struct sockaddr_in
))
2466 if (sopt
->sopt_name
== MCAST_LEAVE_SOURCE_GROUP
) {
2467 if (ssa
->sin
.sin_family
!= AF_INET
||
2468 ssa
->sin
.sin_len
!= sizeof(struct sockaddr_in
))
2472 ifnet_head_lock_shared();
2473 if (gsr
.gsr_interface
== 0 ||
2474 (u_int
)if_index
< gsr
.gsr_interface
) {
2476 return (EADDRNOTAVAIL
);
2479 ifp
= ifindex2ifnet
[gsr
.gsr_interface
];
2484 IGMP_PRINTF(("%s: unknown sopt_name %d\n",
2485 __func__
, sopt
->sopt_name
));
2486 return (EOPNOTSUPP
);
2490 if (!IN_MULTICAST(ntohl(gsa
->sin
.sin_addr
.s_addr
)))
2494 * Find the membership in the membership array.
2496 imo
= inp_findmoptions(inp
);
2501 idx
= imo_match_group(imo
, ifp
, &gsa
->sa
);
2502 if (idx
== (size_t)-1) {
2503 error
= EADDRNOTAVAIL
;
2506 inm
= imo
->imo_membership
[idx
];
2507 imf
= &imo
->imo_mfilters
[idx
];
2509 if (ssa
->ss
.ss_family
!= AF_UNSPEC
) {
2510 IGMP_PRINTF(("%s: opt=%d is_final=0\n", __func__
,
2516 * Begin state merge transaction at socket layer.
2520 * If we were instructed only to leave a given source, do so.
2521 * MCAST_LEAVE_SOURCE_GROUP is only valid for inclusive memberships.
2526 if (imf
->imf_st
[0] == MCAST_EXCLUDE
) {
2527 error
= EADDRNOTAVAIL
;
2530 ims
= imo_match_source(imo
, idx
, &ssa
->sa
);
2532 IGMP_INET_PRINTF(ssa
->sin
.sin_addr
,
2533 ("%s: source %s %spresent\n", __func__
,
2534 _igmp_inet_buf
, "not "));
2535 error
= EADDRNOTAVAIL
;
2538 IGMP_PRINTF(("%s: %s source\n", __func__
, "block"));
2539 error
= imf_prune(imf
, &ssa
->sin
);
2541 IGMP_PRINTF(("%s: merge imf state failed\n",
2548 * Begin state merge transaction at IGMP layer.
2553 * Give up the multicast address record to which
2554 * the membership points. Reference held in imo
2555 * will be released below.
2557 (void) in_leavegroup(inm
, imf
);
2559 IGMP_PRINTF(("%s: merge inm state\n", __func__
));
2561 error
= inm_merge(inm
, imf
);
2563 IGMP_PRINTF(("%s: failed to merge inm state\n",
2566 goto out_imf_rollback
;
2569 IGMP_PRINTF(("%s: doing igmp downcall\n", __func__
));
2570 error
= igmp_change_state(inm
, &itp
);
2572 IGMP_PRINTF(("%s: failed igmp downcall\n", __func__
));
2586 /* Remove the gap in the membership and filter array. */
2587 VERIFY(inm
== imo
->imo_membership
[idx
]);
2588 imo
->imo_membership
[idx
] = NULL
;
2590 for (++idx
; idx
< imo
->imo_num_memberships
; ++idx
) {
2591 imo
->imo_membership
[idx
-1] = imo
->imo_membership
[idx
];
2592 imo
->imo_mfilters
[idx
-1] = imo
->imo_mfilters
[idx
];
2594 imo
->imo_num_memberships
--;
2599 IMO_REMREF(imo
); /* from inp_findmoptions() */
2601 /* schedule timer now that we've dropped the lock(s) */
2602 igmp_set_timeout(&itp
);
2608 * Select the interface for transmitting IPv4 multicast datagrams.
2610 * Either an instance of struct in_addr or an instance of struct ip_mreqn
2611 * may be passed to this socket option. An address of INADDR_ANY or an
2612 * interface index of 0 is used to remove a previous selection.
2613 * When no interface is selected, one is chosen for every send.
2616 inp_set_multicast_if(struct inpcb
*inp
, struct sockopt
*sopt
)
2618 struct in_addr addr
;
2619 struct ip_mreqn mreqn
;
2621 struct ip_moptions
*imo
;
2623 unsigned int ifindex
= 0;
2625 if (sopt
->sopt_valsize
== sizeof(struct ip_mreqn
)) {
2627 * An interface index was specified using the
2628 * Linux-derived ip_mreqn structure.
2630 error
= sooptcopyin(sopt
, &mreqn
, sizeof(struct ip_mreqn
),
2631 sizeof(struct ip_mreqn
));
2635 ifnet_head_lock_shared();
2636 if (mreqn
.imr_ifindex
< 0 || if_index
< mreqn
.imr_ifindex
) {
2641 if (mreqn
.imr_ifindex
== 0) {
2644 ifp
= ifindex2ifnet
[mreqn
.imr_ifindex
];
2647 return (EADDRNOTAVAIL
);
2653 * An interface was specified by IPv4 address.
2654 * This is the traditional BSD usage.
2656 error
= sooptcopyin(sopt
, &addr
, sizeof(struct in_addr
),
2657 sizeof(struct in_addr
));
2660 if (in_nullhost(addr
)) {
2663 ifp
= ip_multicast_if(&addr
, &ifindex
);
2665 IGMP_INET_PRINTF(addr
,
2666 ("%s: can't find ifp for addr=%s\n",
2667 __func__
, _igmp_inet_buf
));
2668 return (EADDRNOTAVAIL
);
2673 IGMP_PRINTF(("%s: ifp = 0x%llx, addr = %s\n", __func__
,
2674 (uint64_t)VM_KERNEL_ADDRPERM(ifp
), inet_ntoa(addr
)));
2678 /* Reject interfaces which do not support multicast. */
2679 if (ifp
!= NULL
&& (ifp
->if_flags
& IFF_MULTICAST
) == 0)
2680 return (EOPNOTSUPP
);
2682 imo
= inp_findmoptions(inp
);
2687 imo
->imo_multicast_ifp
= ifp
;
2689 imo
->imo_multicast_addr
= addr
;
2691 imo
->imo_multicast_addr
.s_addr
= INADDR_ANY
;
2693 IMO_REMREF(imo
); /* from inp_findmoptions() */
2699 * Atomically set source filters on a socket for an IPv4 multicast group.
2702 inp_set_source_filters(struct inpcb
*inp
, struct sockopt
*sopt
)
2704 struct __msfilterreq64 msfr
, msfr64
;
2705 struct __msfilterreq32 msfr32
;
2708 struct in_mfilter
*imf
;
2709 struct ip_moptions
*imo
;
2710 struct in_multi
*inm
;
2713 user_addr_t tmp_ptr
;
2714 struct igmp_tparams itp
;
2716 bzero(&itp
, sizeof (itp
));
2718 if (IS_64BIT_PROCESS(current_proc())) {
2719 error
= sooptcopyin(sopt
, &msfr64
,
2720 sizeof(struct __msfilterreq64
),
2721 sizeof(struct __msfilterreq64
));
2724 /* we never use msfr.msfr_srcs; */
2725 memcpy(&msfr
, &msfr64
, sizeof(msfr64
));
2727 error
= sooptcopyin(sopt
, &msfr32
,
2728 sizeof(struct __msfilterreq32
),
2729 sizeof(struct __msfilterreq32
));
2732 /* we never use msfr.msfr_srcs; */
2733 memcpy(&msfr
, &msfr32
, sizeof(msfr32
));
2736 if ((size_t) msfr
.msfr_nsrcs
>
2737 UINT32_MAX
/ sizeof(struct sockaddr_storage
))
2738 msfr
.msfr_nsrcs
= UINT32_MAX
/ sizeof(struct sockaddr_storage
);
2740 if (msfr
.msfr_nsrcs
> in_mcast_maxsocksrc
)
2743 if ((msfr
.msfr_fmode
!= MCAST_EXCLUDE
&&
2744 msfr
.msfr_fmode
!= MCAST_INCLUDE
))
2747 if (msfr
.msfr_group
.ss_family
!= AF_INET
||
2748 msfr
.msfr_group
.ss_len
!= sizeof(struct sockaddr_in
))
2751 gsa
= (sockunion_t
*)&msfr
.msfr_group
;
2752 if (!IN_MULTICAST(ntohl(gsa
->sin
.sin_addr
.s_addr
)))
2755 gsa
->sin
.sin_port
= 0; /* ignore port */
2757 ifnet_head_lock_shared();
2758 if (msfr
.msfr_ifindex
== 0 || (u_int
)if_index
< msfr
.msfr_ifindex
) {
2760 return (EADDRNOTAVAIL
);
2763 ifp
= ifindex2ifnet
[msfr
.msfr_ifindex
];
2766 return (EADDRNOTAVAIL
);
2769 * Check if this socket is a member of this group.
2771 imo
= inp_findmoptions(inp
);
2776 idx
= imo_match_group(imo
, ifp
, &gsa
->sa
);
2777 if (idx
== (size_t)-1 || imo
->imo_mfilters
== NULL
) {
2778 error
= EADDRNOTAVAIL
;
2779 goto out_imo_locked
;
2781 inm
= imo
->imo_membership
[idx
];
2782 imf
= &imo
->imo_mfilters
[idx
];
2785 * Begin state merge transaction at socket layer.
2788 imf
->imf_st
[1] = msfr
.msfr_fmode
;
2791 * Apply any new source filters, if present.
2792 * Make a copy of the user-space source vector so
2793 * that we may copy them with a single copyin. This
2794 * allows us to deal with page faults up-front.
2796 if (msfr
.msfr_nsrcs
> 0) {
2797 struct in_msource
*lims
;
2798 struct sockaddr_in
*psin
;
2799 struct sockaddr_storage
*kss
, *pkss
;
2802 if (IS_64BIT_PROCESS(current_proc()))
2803 tmp_ptr
= msfr64
.msfr_srcs
;
2805 tmp_ptr
= CAST_USER_ADDR_T(msfr32
.msfr_srcs
);
2807 IGMP_PRINTF(("%s: loading %lu source list entries\n",
2808 __func__
, (unsigned long)msfr
.msfr_nsrcs
));
2809 kss
= _MALLOC((size_t) msfr
.msfr_nsrcs
* sizeof(*kss
),
2813 goto out_imo_locked
;
2815 error
= copyin(tmp_ptr
, kss
,
2816 (size_t) msfr
.msfr_nsrcs
* sizeof(*kss
));
2819 goto out_imo_locked
;
2823 * Mark all source filters as UNDEFINED at t1.
2824 * Restore new group filter mode, as imf_leave()
2825 * will set it to INCLUDE.
2828 imf
->imf_st
[1] = msfr
.msfr_fmode
;
2831 * Update socket layer filters at t1, lazy-allocating
2832 * new entries. This saves a bunch of memory at the
2833 * cost of one RB_FIND() per source entry; duplicate
2834 * entries in the msfr_nsrcs vector are ignored.
2835 * If we encounter an error, rollback transaction.
2837 * XXX This too could be replaced with a set-symmetric
2838 * difference like loop to avoid walking from root
2839 * every time, as the key space is common.
2841 for (i
= 0, pkss
= kss
; (u_int
)i
< msfr
.msfr_nsrcs
;
2843 psin
= (struct sockaddr_in
*)pkss
;
2844 if (psin
->sin_family
!= AF_INET
) {
2845 error
= EAFNOSUPPORT
;
2848 if (psin
->sin_len
!= sizeof(struct sockaddr_in
)) {
2852 error
= imf_get_source(imf
, psin
, &lims
);
2855 lims
->imsl_st
[1] = imf
->imf_st
[1];
2861 goto out_imf_rollback
;
2864 * Begin state merge transaction at IGMP layer.
2867 IGMP_PRINTF(("%s: merge inm state\n", __func__
));
2868 error
= inm_merge(inm
, imf
);
2870 IGMP_PRINTF(("%s: failed to merge inm state\n", __func__
));
2872 goto out_imf_rollback
;
2875 IGMP_PRINTF(("%s: doing igmp downcall\n", __func__
));
2876 error
= igmp_change_state(inm
, &itp
);
2880 IGMP_PRINTF(("%s: failed igmp downcall\n", __func__
));
2893 IMO_REMREF(imo
); /* from inp_findmoptions() */
2895 /* schedule timer now that we've dropped the lock(s) */
2896 igmp_set_timeout(&itp
);
2902 * Set the IP multicast options in response to user setsockopt().
2904 * Many of the socket options handled in this function duplicate the
2905 * functionality of socket options in the regular unicast API. However,
2906 * it is not possible to merge the duplicate code, because the idempotence
2907 * of the IPv4 multicast part of the BSD Sockets API must be preserved;
2908 * the effects of these options must be treated as separate and distinct.
2911 inp_setmoptions(struct inpcb
*inp
, struct sockopt
*sopt
)
2913 struct ip_moptions
*imo
;
2915 unsigned int ifindex
;
2921 * If socket is neither of type SOCK_RAW or SOCK_DGRAM,
2922 * or is a divert socket, reject it.
2924 if (SOCK_PROTO(inp
->inp_socket
) == IPPROTO_DIVERT
||
2925 (SOCK_TYPE(inp
->inp_socket
) != SOCK_RAW
&&
2926 SOCK_TYPE(inp
->inp_socket
) != SOCK_DGRAM
))
2927 return (EOPNOTSUPP
);
2929 switch (sopt
->sopt_name
) {
2930 case IP_MULTICAST_IF
:
2931 error
= inp_set_multicast_if(inp
, sopt
);
2934 case IP_MULTICAST_IFINDEX
:
2936 * Select the interface for outgoing multicast packets.
2938 error
= sooptcopyin(sopt
, &ifindex
, sizeof (ifindex
),
2943 imo
= inp_findmoptions(inp
);
2949 * Index 0 is used to remove a previous selection.
2950 * When no interface is selected, a default one is
2951 * chosen every time a multicast packet is sent.
2955 imo
->imo_multicast_ifp
= NULL
;
2957 IMO_REMREF(imo
); /* from inp_findmoptions() */
2961 ifnet_head_lock_shared();
2962 /* Don't need to check is ifindex is < 0 since it's unsigned */
2963 if ((unsigned int)if_index
< ifindex
) {
2965 IMO_REMREF(imo
); /* from inp_findmoptions() */
2966 error
= ENXIO
; /* per IPV6_MULTICAST_IF */
2969 ifp
= ifindex2ifnet
[ifindex
];
2972 /* If it's detached or isn't a multicast interface, bail out */
2973 if (ifp
== NULL
|| !(ifp
->if_flags
& IFF_MULTICAST
)) {
2974 IMO_REMREF(imo
); /* from inp_findmoptions() */
2975 error
= EADDRNOTAVAIL
;
2979 imo
->imo_multicast_ifp
= ifp
;
2981 * Clear out any remnants of past IP_MULTICAST_IF. The addr
2982 * isn't really used anywhere in the kernel; we could have
2983 * iterated thru the addresses of the interface and pick one
2984 * here, but that is redundant since ip_getmoptions() already
2985 * takes care of that for INADDR_ANY.
2987 imo
->imo_multicast_addr
.s_addr
= INADDR_ANY
;
2989 IMO_REMREF(imo
); /* from inp_findmoptions() */
2992 case IP_MULTICAST_TTL
: {
2996 * Set the IP time-to-live for outgoing multicast packets.
2997 * The original multicast API required a char argument,
2998 * which is inconsistent with the rest of the socket API.
2999 * We allow either a char or an int.
3001 if (sopt
->sopt_valsize
== sizeof(u_char
)) {
3002 error
= sooptcopyin(sopt
, &ttl
, sizeof(u_char
),
3009 error
= sooptcopyin(sopt
, &ittl
, sizeof(u_int
),
3019 imo
= inp_findmoptions(inp
);
3025 imo
->imo_multicast_ttl
= ttl
;
3027 IMO_REMREF(imo
); /* from inp_findmoptions() */
3031 case IP_MULTICAST_LOOP
: {
3035 * Set the loopback flag for outgoing multicast packets.
3036 * Must be zero or one. The original multicast API required a
3037 * char argument, which is inconsistent with the rest
3038 * of the socket API. We allow either a char or an int.
3040 if (sopt
->sopt_valsize
== sizeof(u_char
)) {
3041 error
= sooptcopyin(sopt
, &loop
, sizeof(u_char
),
3048 error
= sooptcopyin(sopt
, &iloop
, sizeof(u_int
),
3052 loop
= (u_char
)iloop
;
3054 imo
= inp_findmoptions(inp
);
3060 imo
->imo_multicast_loop
= !!loop
;
3062 IMO_REMREF(imo
); /* from inp_findmoptions() */
3066 case IP_ADD_MEMBERSHIP
:
3067 case IP_ADD_SOURCE_MEMBERSHIP
:
3068 case MCAST_JOIN_GROUP
:
3069 case MCAST_JOIN_SOURCE_GROUP
:
3070 error
= inp_join_group(inp
, sopt
);
3073 case IP_DROP_MEMBERSHIP
:
3074 case IP_DROP_SOURCE_MEMBERSHIP
:
3075 case MCAST_LEAVE_GROUP
:
3076 case MCAST_LEAVE_SOURCE_GROUP
:
3077 error
= inp_leave_group(inp
, sopt
);
3080 case IP_BLOCK_SOURCE
:
3081 case IP_UNBLOCK_SOURCE
:
3082 case MCAST_BLOCK_SOURCE
:
3083 case MCAST_UNBLOCK_SOURCE
:
3084 error
= inp_block_unblock_source(inp
, sopt
);
3088 error
= inp_set_source_filters(inp
, sopt
);
3100 * Expose IGMP's multicast filter mode and source list(s) to userland,
3101 * keyed by (ifindex, group).
3102 * The filter mode is written out as a uint32_t, followed by
3103 * 0..n of struct in_addr.
3104 * For use by ifmcstat(8).
3107 sysctl_ip_mcast_filters SYSCTL_HANDLER_ARGS
3109 #pragma unused(oidp)
3111 struct in_addr src
, group
;
3113 struct in_multi
*inm
;
3114 struct in_multistep step
;
3115 struct ip_msource
*ims
;
3119 uint32_t fmode
, ifindex
;
3122 namelen
= (u_int
)arg2
;
3124 if (req
->newptr
!= USER_ADDR_NULL
)
3131 ifnet_head_lock_shared();
3132 if (ifindex
<= 0 || ifindex
> (u_int
)if_index
) {
3133 IGMP_PRINTF(("%s: ifindex %u out of range\n",
3134 __func__
, ifindex
));
3139 group
.s_addr
= name
[1];
3140 if (!IN_MULTICAST(ntohl(group
.s_addr
))) {
3141 IGMP_INET_PRINTF(group
,
3142 ("%s: group %s is not multicast\n",
3143 __func__
, _igmp_inet_buf
));
3148 ifp
= ifindex2ifnet
[ifindex
];
3151 IGMP_PRINTF(("%s: no ifp for ifindex %u\n", __func__
, ifindex
));
3155 in_multihead_lock_shared();
3156 IN_FIRST_MULTI(step
, inm
);
3157 while (inm
!= NULL
) {
3159 if (inm
->inm_ifp
!= ifp
)
3162 if (!in_hosteq(inm
->inm_addr
, group
))
3165 fmode
= inm
->inm_st
[1].iss_fmode
;
3166 retval
= SYSCTL_OUT(req
, &fmode
, sizeof(uint32_t));
3171 RB_FOREACH(ims
, ip_msource_tree
, &inm
->inm_srcs
) {
3174 ina
.s_addr
= htonl(ims
->ims_haddr
);
3175 IGMP_INET_PRINTF(ina
,
3176 ("%s: visit node %s\n", __func__
, _igmp_inet_buf
));
3179 * Only copy-out sources which are in-mode.
3181 if (fmode
!= ims_get_mode(inm
, ims
, 1)) {
3182 IGMP_PRINTF(("%s: skip non-in-mode\n",
3184 continue; /* process next source */
3186 src
.s_addr
= htonl(ims
->ims_haddr
);
3187 retval
= SYSCTL_OUT(req
, &src
, sizeof(struct in_addr
));
3189 break; /* process next inm */
3193 IN_NEXT_MULTI(step
, inm
);
3195 in_multihead_lock_done();
3202 * The whole multicast option thing needs to be re-thought.
3203 * Several of these options are equally applicable to non-multicast
3204 * transmission, and one (IP_MULTICAST_TTL) totally duplicates a
3205 * standard option (IP_TTL).
3208 * following RFC1724 section 3.3, 0.0.0.0/8 is interpreted as interface index.
3210 static struct ifnet
*
3211 ip_multicast_if(struct in_addr
*a
, unsigned int *ifindexp
)
3213 unsigned int ifindex
;
3216 if (ifindexp
!= NULL
)
3218 if (ntohl(a
->s_addr
) >> 24 == 0) {
3219 ifindex
= ntohl(a
->s_addr
) & 0xffffff;
3220 ifnet_head_lock_shared();
3221 /* Don't need to check is ifindex is < 0 since it's unsigned */
3222 if ((unsigned int)if_index
< ifindex
) {
3226 ifp
= ifindex2ifnet
[ifindex
];
3228 if (ifp
!= NULL
&& ifindexp
!= NULL
)
3229 *ifindexp
= ifindex
;
3231 INADDR_TO_IFP(*a
, ifp
);
3239 PE_parse_boot_argn("ifa_debug", &inm_debug
, sizeof (inm_debug
));
3241 /* Setup lock group and attribute for in_multihead */
3242 in_multihead_lock_grp_attr
= lck_grp_attr_alloc_init();
3243 in_multihead_lock_grp
= lck_grp_alloc_init("in_multihead",
3244 in_multihead_lock_grp_attr
);
3245 in_multihead_lock_attr
= lck_attr_alloc_init();
3246 lck_rw_init(&in_multihead_lock
, in_multihead_lock_grp
,
3247 in_multihead_lock_attr
);
3249 lck_mtx_init(&inm_trash_lock
, in_multihead_lock_grp
,
3250 in_multihead_lock_attr
);
3251 TAILQ_INIT(&inm_trash_head
);
3253 inm_size
= (inm_debug
== 0) ? sizeof (struct in_multi
) :
3254 sizeof (struct in_multi_dbg
);
3255 inm_zone
= zinit(inm_size
, INM_ZONE_MAX
* inm_size
,
3257 if (inm_zone
== NULL
) {
3258 panic("%s: failed allocating %s", __func__
, INM_ZONE_NAME
);
3261 zone_change(inm_zone
, Z_EXPAND
, TRUE
);
3263 ipms_size
= sizeof (struct ip_msource
);
3264 ipms_zone
= zinit(ipms_size
, IPMS_ZONE_MAX
* ipms_size
,
3266 if (ipms_zone
== NULL
) {
3267 panic("%s: failed allocating %s", __func__
, IPMS_ZONE_NAME
);
3270 zone_change(ipms_zone
, Z_EXPAND
, TRUE
);
3272 inms_size
= sizeof (struct in_msource
);
3273 inms_zone
= zinit(inms_size
, INMS_ZONE_MAX
* inms_size
,
3275 if (inms_zone
== NULL
) {
3276 panic("%s: failed allocating %s", __func__
, INMS_ZONE_NAME
);
3279 zone_change(inms_zone
, Z_EXPAND
, TRUE
);
3282 static struct in_multi
*
3283 in_multi_alloc(int how
)
3285 struct in_multi
*inm
;
3287 inm
= (how
== M_WAITOK
) ? zalloc(inm_zone
) : zalloc_noblock(inm_zone
);
3289 bzero(inm
, inm_size
);
3290 lck_mtx_init(&inm
->inm_lock
, in_multihead_lock_grp
,
3291 in_multihead_lock_attr
);
3292 inm
->inm_debug
|= IFD_ALLOC
;
3293 if (inm_debug
!= 0) {
3294 inm
->inm_debug
|= IFD_DEBUG
;
3295 inm
->inm_trace
= inm_trace
;
3302 in_multi_free(struct in_multi
*inm
)
3305 if (inm
->inm_debug
& IFD_ATTACHED
) {
3306 panic("%s: attached inm=%p is being freed", __func__
, inm
);
3308 } else if (inm
->inm_ifma
!= NULL
) {
3309 panic("%s: ifma not NULL for inm=%p", __func__
, inm
);
3311 } else if (!(inm
->inm_debug
& IFD_ALLOC
)) {
3312 panic("%s: inm %p cannot be freed", __func__
, inm
);
3314 } else if (inm
->inm_refcount
!= 0) {
3315 panic("%s: non-zero refcount inm=%p", __func__
, inm
);
3317 } else if (inm
->inm_reqcnt
!= 0) {
3318 panic("%s: non-zero reqcnt inm=%p", __func__
, inm
);
3322 /* Free any pending IGMPv3 state-change records */
3323 IF_DRAIN(&inm
->inm_scq
);
3325 inm
->inm_debug
&= ~IFD_ALLOC
;
3326 if ((inm
->inm_debug
& (IFD_DEBUG
| IFD_TRASHED
)) ==
3327 (IFD_DEBUG
| IFD_TRASHED
)) {
3328 lck_mtx_lock(&inm_trash_lock
);
3329 TAILQ_REMOVE(&inm_trash_head
, (struct in_multi_dbg
*)inm
,
3331 lck_mtx_unlock(&inm_trash_lock
);
3332 inm
->inm_debug
&= ~IFD_TRASHED
;
3336 lck_mtx_destroy(&inm
->inm_lock
, in_multihead_lock_grp
);
3337 zfree(inm_zone
, inm
);
3341 in_multi_attach(struct in_multi
*inm
)
3343 in_multihead_lock_assert(LCK_RW_ASSERT_EXCLUSIVE
);
3344 INM_LOCK_ASSERT_HELD(inm
);
3346 if (inm
->inm_debug
& IFD_ATTACHED
) {
3347 panic("%s: Attempt to attach an already attached inm=%p",
3350 } else if (inm
->inm_debug
& IFD_TRASHED
) {
3351 panic("%s: Attempt to reattach a detached inm=%p",
3357 VERIFY(inm
->inm_reqcnt
== 1);
3358 INM_ADDREF_LOCKED(inm
);
3359 inm
->inm_debug
|= IFD_ATTACHED
;
3361 * Reattach case: If debugging is enabled, take it
3362 * out of the trash list and clear IFD_TRASHED.
3364 if ((inm
->inm_debug
& (IFD_DEBUG
| IFD_TRASHED
)) ==
3365 (IFD_DEBUG
| IFD_TRASHED
)) {
3366 /* Become a regular mutex, just in case */
3367 INM_CONVERT_LOCK(inm
);
3368 lck_mtx_lock(&inm_trash_lock
);
3369 TAILQ_REMOVE(&inm_trash_head
, (struct in_multi_dbg
*)inm
,
3371 lck_mtx_unlock(&inm_trash_lock
);
3372 inm
->inm_debug
&= ~IFD_TRASHED
;
3375 LIST_INSERT_HEAD(&in_multihead
, inm
, inm_link
);
3379 in_multi_detach(struct in_multi
*inm
)
3381 in_multihead_lock_assert(LCK_RW_ASSERT_EXCLUSIVE
);
3382 INM_LOCK_ASSERT_HELD(inm
);
3384 if (inm
->inm_reqcnt
== 0) {
3385 panic("%s: inm=%p negative reqcnt", __func__
, inm
);
3390 if (inm
->inm_reqcnt
> 0)
3393 if (!(inm
->inm_debug
& IFD_ATTACHED
)) {
3394 panic("%s: Attempt to detach an unattached record inm=%p",
3397 } else if (inm
->inm_debug
& IFD_TRASHED
) {
3398 panic("%s: inm %p is already in trash list", __func__
, inm
);
3403 * NOTE: Caller calls IFMA_REMREF
3405 inm
->inm_debug
&= ~IFD_ATTACHED
;
3406 LIST_REMOVE(inm
, inm_link
);
3408 if (inm
->inm_debug
& IFD_DEBUG
) {
3409 /* Become a regular mutex, just in case */
3410 INM_CONVERT_LOCK(inm
);
3411 lck_mtx_lock(&inm_trash_lock
);
3412 TAILQ_INSERT_TAIL(&inm_trash_head
,
3413 (struct in_multi_dbg
*)inm
, inm_trash_link
);
3414 lck_mtx_unlock(&inm_trash_lock
);
3415 inm
->inm_debug
|= IFD_TRASHED
;
3422 inm_addref(struct in_multi
*inm
, int locked
)
3427 INM_LOCK_ASSERT_HELD(inm
);
3429 if (++inm
->inm_refcount
== 0) {
3430 panic("%s: inm=%p wraparound refcnt", __func__
, inm
);
3432 } else if (inm
->inm_trace
!= NULL
) {
3433 (*inm
->inm_trace
)(inm
, TRUE
);
3440 inm_remref(struct in_multi
*inm
, int locked
)
3442 struct ifmultiaddr
*ifma
;
3443 struct igmp_ifinfo
*igi
;
3448 INM_LOCK_ASSERT_HELD(inm
);
3450 if (inm
->inm_refcount
== 0 || (inm
->inm_refcount
== 1 && locked
)) {
3451 panic("%s: inm=%p negative/missing refcnt", __func__
, inm
);
3453 } else if (inm
->inm_trace
!= NULL
) {
3454 (*inm
->inm_trace
)(inm
, FALSE
);
3457 --inm
->inm_refcount
;
3458 if (inm
->inm_refcount
> 0) {
3465 * Synchronization with in_getmulti(). In the event the inm has been
3466 * detached, the underlying ifma would still be in the if_multiaddrs
3467 * list, and thus can be looked up via if_addmulti(). At that point,
3468 * the only way to find this inm is via ifma_protospec. To avoid
3469 * race conditions between the last inm_remref() of that inm and its
3470 * use via ifma_protospec, in_multihead lock is used for serialization.
3471 * In order to avoid violating the lock order, we must drop inm_lock
3472 * before acquiring in_multihead lock. To prevent the inm from being
3473 * freed prematurely, we hold an extra reference.
3475 ++inm
->inm_refcount
;
3477 in_multihead_lock_shared();
3479 --inm
->inm_refcount
;
3480 if (inm
->inm_refcount
> 0) {
3481 /* We've lost the race, so abort since inm is still in use */
3483 in_multihead_lock_done();
3484 /* If it was locked, return it as such */
3490 ifma
= inm
->inm_ifma
;
3491 inm
->inm_ifma
= NULL
;
3492 inm
->inm_ifp
= NULL
;
3494 inm
->inm_igi
= NULL
;
3496 IFMA_LOCK_SPIN(ifma
);
3497 ifma
->ifma_protospec
= NULL
;
3499 in_multihead_lock_done();
3502 if_delmulti_ifma(ifma
);
3503 /* Release reference held to the underlying ifmultiaddr */
3511 inm_trace(struct in_multi
*inm
, int refhold
)
3513 struct in_multi_dbg
*inm_dbg
= (struct in_multi_dbg
*)inm
;
3518 if (!(inm
->inm_debug
& IFD_DEBUG
)) {
3519 panic("%s: inm %p has no debug structure", __func__
, inm
);
3523 cnt
= &inm_dbg
->inm_refhold_cnt
;
3524 tr
= inm_dbg
->inm_refhold
;
3526 cnt
= &inm_dbg
->inm_refrele_cnt
;
3527 tr
= inm_dbg
->inm_refrele
;
3530 idx
= atomic_add_16_ov(cnt
, 1) % INM_TRACE_HIST_SIZE
;
3531 ctrace_record(&tr
[idx
]);
3535 in_multihead_lock_exclusive(void)
3537 lck_rw_lock_exclusive(&in_multihead_lock
);
3541 in_multihead_lock_shared(void)
3543 lck_rw_lock_shared(&in_multihead_lock
);
3547 in_multihead_lock_assert(int what
)
3549 lck_rw_assert(&in_multihead_lock
, what
);
3553 in_multihead_lock_done(void)
3555 lck_rw_done(&in_multihead_lock
);
3558 static struct ip_msource
*
3561 struct ip_msource
*ims
;
3563 ims
= (how
== M_WAITOK
) ? zalloc(ipms_zone
) : zalloc_noblock(ipms_zone
);
3565 bzero(ims
, ipms_size
);
3571 ipms_free(struct ip_msource
*ims
)
3573 zfree(ipms_zone
, ims
);
3576 static struct in_msource
*
3579 struct in_msource
*inms
;
3581 inms
= (how
== M_WAITOK
) ? zalloc(inms_zone
) :
3582 zalloc_noblock(inms_zone
);
3584 bzero(inms
, inms_size
);
3590 inms_free(struct in_msource
*inms
)
3592 zfree(inms_zone
, inms
);
3597 static const char *inm_modestrs
[] = { "un\n", "in", "ex" };
3600 inm_mode_str(const int mode
)
3602 if (mode
>= MCAST_UNDEFINED
&& mode
<= MCAST_EXCLUDE
)
3603 return (inm_modestrs
[mode
]);
3607 static const char *inm_statestrs
[] = {
3616 "sg-query-pending\n",
3621 inm_state_str(const int state
)
3623 if (state
>= IGMP_NOT_MEMBER
&& state
<= IGMP_LEAVING_MEMBER
)
3624 return (inm_statestrs
[state
]);
3629 * Dump an in_multi structure to the console.
3632 inm_print(const struct in_multi
*inm
)
3635 char buf
[MAX_IPv4_STR_LEN
];
3637 INM_LOCK_ASSERT_HELD(__DECONST(struct in_multi
*, inm
));
3639 if (igmp_debug
== 0)
3642 inet_ntop(AF_INET
, &inm
->inm_addr
, buf
, sizeof(buf
));
3643 printf("%s: --- begin inm 0x%llx ---\n", __func__
,
3644 (uint64_t)VM_KERNEL_ADDRPERM(inm
));
3645 printf("addr %s ifp 0x%llx(%s) ifma 0x%llx\n",
3647 (uint64_t)VM_KERNEL_ADDRPERM(inm
->inm_ifp
),
3648 if_name(inm
->inm_ifp
),
3649 (uint64_t)VM_KERNEL_ADDRPERM(inm
->inm_ifma
));
3650 printf("timer %u state %s refcount %u scq.len %u\n",
3652 inm_state_str(inm
->inm_state
),
3654 inm
->inm_scq
.ifq_len
);
3655 printf("igi 0x%llx nsrc %lu sctimer %u scrv %u\n",
3656 (uint64_t)VM_KERNEL_ADDRPERM(inm
->inm_igi
),
3660 for (t
= 0; t
< 2; t
++) {
3661 printf("t%d: fmode %s asm %u ex %u in %u rec %u\n", t
,
3662 inm_mode_str(inm
->inm_st
[t
].iss_fmode
),
3663 inm
->inm_st
[t
].iss_asm
,
3664 inm
->inm_st
[t
].iss_ex
,
3665 inm
->inm_st
[t
].iss_in
,
3666 inm
->inm_st
[t
].iss_rec
);
3668 printf("%s: --- end inm 0x%llx ---\n", __func__
,
3669 (uint64_t)VM_KERNEL_ADDRPERM(inm
));
3675 inm_print(__unused
const struct in_multi
*inm
)