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62 * @(#)ip_icmp.c 8.2 (Berkeley) 1/4/94
65 #include <sys/param.h>
66 #include <sys/systm.h>
68 #include <sys/protosw.h>
69 #include <sys/socket.h>
71 #include <sys/kernel.h>
72 #include <sys/sysctl.h>
75 #include <net/route.h>
78 #include <netinet/in.h>
79 #include <netinet/in_systm.h>
80 #include <netinet/in_var.h>
81 #include <netinet/ip.h>
82 #include <netinet/ip_icmp.h>
83 #include <netinet/ip_var.h>
84 #include <netinet/icmp_var.h>
85 #include <netinet/tcp.h>
86 #include <netinet/tcp_fsm.h>
87 #include <netinet/tcp_seq.h>
88 #include <netinet/tcp_timer.h>
89 #include <netinet/tcp_var.h>
90 #include <netinet/tcpip.h>
93 #include <netinet6/ipsec.h>
94 #include <netkey/key.h>
97 #if defined(NFAITH) && NFAITH > 0
99 #include <net/if_types.h>
102 /* XXX This one should go in sys/mbuf.h. It is used to avoid that
103 * a firewall-generated packet loops forever through the firewall.
105 #ifndef M_SKIP_FIREWALL
106 #define M_SKIP_FIREWALL 0x4000
110 * ICMP routines: error generation, receive packet processing, and
111 * routines to turnaround packets back to the originator, and
112 * host table maintenance routines.
115 static struct icmpstat icmpstat
;
116 SYSCTL_STRUCT(_net_inet_icmp
, ICMPCTL_STATS
, stats
, CTLFLAG_RD
,
117 &icmpstat
, icmpstat
, "");
119 static int icmpmaskrepl
= 0;
120 SYSCTL_INT(_net_inet_icmp
, ICMPCTL_MASKREPL
, maskrepl
, CTLFLAG_RW
,
121 &icmpmaskrepl
, 0, "");
123 static int icmptimestamp
= 0;
124 SYSCTL_INT(_net_inet_icmp
, ICMPCTL_TIMESTAMP
, timestamp
, CTLFLAG_RW
,
125 &icmptimestamp
, 0, "");
127 static int drop_redirect
= 0;
128 SYSCTL_INT(_net_inet_icmp
, OID_AUTO
, drop_redirect
, CTLFLAG_RW
,
129 &drop_redirect
, 0, "");
131 static int log_redirect
= 0;
132 SYSCTL_INT(_net_inet_icmp
, OID_AUTO
, log_redirect
, CTLFLAG_RW
,
133 &log_redirect
, 0, "");
138 * ICMP error-response bandwidth limiting sysctl. If not enabled, sysctl
139 * variable content is -1 and read-only.
142 static int icmplim
= 250;
143 SYSCTL_INT(_net_inet_icmp
, ICMPCTL_ICMPLIM
, icmplim
, CTLFLAG_RW
,
147 static int icmplim
= -1;
148 SYSCTL_INT(_net_inet_icmp
, ICMPCTL_ICMPLIM
, icmplim
, CTLFLAG_RD
,
154 * ICMP broadcast echo sysctl
157 static int icmpbmcastecho
= 1;
158 SYSCTL_INT(_net_inet_icmp
, OID_AUTO
, bmcastecho
, CTLFLAG_RW
,
159 &icmpbmcastecho
, 0, "");
166 static void icmp_reflect(struct mbuf
*);
167 static void icmp_send(struct mbuf
*, struct mbuf
*);
168 static int ip_next_mtu(int, int);
170 extern struct protosw inetsw
[];
173 * Generate an error packet of type error
174 * in response to bad packet ip.
182 struct ifnet
*destifp
)
184 register struct ip
*oip
= mtod(n
, struct ip
*), *nip
;
185 register unsigned oiplen
= IP_VHL_HL(oip
->ip_vhl
) << 2;
186 register struct icmp
*icp
;
187 register struct mbuf
*m
;
192 printf("icmp_error(%p, %x, %d)\n", oip
, type
, code
);
194 if (type
!= ICMP_REDIRECT
)
195 icmpstat
.icps_error
++;
197 * Don't send error if not the first fragment of message.
198 * Don't error if the old packet protocol was ICMP
199 * error message, only known informational types.
201 if (oip
->ip_off
&~ (IP_MF
|IP_DF
))
203 if (oip
->ip_p
== IPPROTO_ICMP
&& type
!= ICMP_REDIRECT
&&
204 n
->m_len
>= oiplen
+ ICMP_MINLEN
&&
205 !ICMP_INFOTYPE(((struct icmp
*)((caddr_t
)oip
+ oiplen
))->icmp_type
)) {
206 icmpstat
.icps_oldicmp
++;
209 /* Don't send error in response to a multicast or broadcast packet */
210 if (n
->m_flags
& (M_BCAST
|M_MCAST
))
213 * First, formulate icmp message
215 m
= m_gethdr(M_DONTWAIT
, MT_HEADER
);
219 if (n
->m_flags
& M_SKIP_FIREWALL
) {
220 /* set M_SKIP_FIREWALL to skip firewall check, since we're called from firewall */
221 m
->m_flags
|= M_SKIP_FIREWALL
;
224 icmplen
= min(oiplen
+ 8, oip
->ip_len
);
225 if (icmplen
< sizeof(struct ip
)) {
226 printf("icmp_error: bad length\n");
230 m
->m_len
= icmplen
+ ICMP_MINLEN
;
231 MH_ALIGN(m
, m
->m_len
);
232 icp
= mtod(m
, struct icmp
*);
233 if ((u_int
)type
> ICMP_MAXTYPE
)
235 icmpstat
.icps_outhist
[type
]++;
236 icp
->icmp_type
= type
;
237 if (type
== ICMP_REDIRECT
)
238 icp
->icmp_gwaddr
.s_addr
= dest
;
242 * The following assignments assume an overlay with the
243 * zeroed icmp_void field.
245 if (type
== ICMP_PARAMPROB
) {
246 icp
->icmp_pptr
= code
;
248 } else if (type
== ICMP_UNREACH
&&
249 code
== ICMP_UNREACH_NEEDFRAG
&& destifp
) {
250 icp
->icmp_nextmtu
= htons(destifp
->if_mtu
);
254 icp
->icmp_code
= code
;
255 m_copydata(n
, 0, icmplen
, (caddr_t
)&icp
->icmp_ip
);
259 * Convert fields to network representation.
265 * Now, copy old ip header (without options)
266 * in front of icmp message.
268 if (m
->m_data
- sizeof(struct ip
) < m
->m_pktdat
)
270 m
->m_data
-= sizeof(struct ip
);
271 m
->m_len
+= sizeof(struct ip
);
272 m
->m_pkthdr
.len
= m
->m_len
;
273 m
->m_pkthdr
.rcvif
= n
->m_pkthdr
.rcvif
;
274 m
->m_pkthdr
.aux
= NULL
; /* for IPsec */
275 nip
= mtod(m
, struct ip
*);
276 bcopy((caddr_t
)oip
, (caddr_t
)nip
, sizeof(struct ip
));
277 nip
->ip_len
= m
->m_len
;
278 nip
->ip_vhl
= IP_VHL_BORING
;
279 nip
->ip_p
= IPPROTO_ICMP
;
287 static struct sockaddr_in icmpsrc
= { sizeof (struct sockaddr_in
), AF_INET
};
288 static struct sockaddr_in icmpdst
= { sizeof (struct sockaddr_in
), AF_INET
};
289 static struct sockaddr_in icmpgw
= { sizeof (struct sockaddr_in
), AF_INET
};
292 * Process a received ICMP message.
296 register struct mbuf
*m
;
299 register struct icmp
*icp
;
300 register struct ip
*ip
= mtod(m
, struct ip
*);
301 int icmplen
= ip
->ip_len
;
303 struct in_ifaddr
*ia
;
304 void (*ctlfunc
)(int, struct sockaddr
*, void *);
306 char ipv4str
[MAX_IPv4_STR_LEN
];
309 * Locate icmp structure in mbuf, and check
310 * that not corrupted and of at least minimum length.
314 char buf
[MAX_IPv4_STR_LEN
];
316 printf("icmp_input from %s to %s, len %d\n",
317 inet_ntop(AF_INET
, &ip
->ip_src
, buf
, sizeof(buf
)),
318 inet_ntop(AF_INET
, &ip
->ip_dst
, ipv4str
, sizeof(ipv4str
)),
322 if (icmplen
< ICMP_MINLEN
) {
323 icmpstat
.icps_tooshort
++;
326 i
= hlen
+ min(icmplen
, ICMP_ADVLENMIN
);
327 if (m
->m_len
< i
&& (m
= m_pullup(m
, i
)) == 0) {
328 icmpstat
.icps_tooshort
++;
331 ip
= mtod(m
, struct ip
*);
334 icp
= mtod(m
, struct icmp
*);
335 if (in_cksum(m
, icmplen
)) {
336 icmpstat
.icps_checksum
++;
342 #if defined(NFAITH) && 0 < NFAITH
343 if (m
->m_pkthdr
.rcvif
&& m
->m_pkthdr
.rcvif
->if_type
== IFT_FAITH
) {
345 * Deliver very specific ICMP type only.
347 switch (icp
->icmp_type
) {
359 printf("icmp_input, type %d code %d\n", icp
->icmp_type
,
364 * Message type specific processing.
366 if (icp
->icmp_type
> ICMP_MAXTYPE
)
368 icmpstat
.icps_inhist
[icp
->icmp_type
]++;
369 code
= icp
->icmp_code
;
370 switch (icp
->icmp_type
) {
374 case ICMP_UNREACH_NET
:
375 case ICMP_UNREACH_HOST
:
376 case ICMP_UNREACH_SRCFAIL
:
377 case ICMP_UNREACH_NET_UNKNOWN
:
378 case ICMP_UNREACH_HOST_UNKNOWN
:
379 case ICMP_UNREACH_ISOLATED
:
380 case ICMP_UNREACH_TOSNET
:
381 case ICMP_UNREACH_TOSHOST
:
382 case ICMP_UNREACH_HOST_PRECEDENCE
:
383 case ICMP_UNREACH_PRECEDENCE_CUTOFF
:
384 code
= PRC_UNREACH_NET
;
387 case ICMP_UNREACH_NEEDFRAG
:
392 * RFC 1122, Sections 3.2.2.1 and 4.2.3.9.
393 * Treat subcodes 2,3 as immediate RST
395 case ICMP_UNREACH_PROTOCOL
:
396 case ICMP_UNREACH_PORT
:
397 code
= PRC_UNREACH_PORT
;
400 case ICMP_UNREACH_NET_PROHIB
:
401 case ICMP_UNREACH_HOST_PROHIB
:
402 case ICMP_UNREACH_FILTER_PROHIB
:
403 code
= PRC_UNREACH_ADMIN_PROHIB
;
414 code
+= PRC_TIMXCEED_INTRANS
;
420 code
= PRC_PARAMPROB
;
423 case ICMP_SOURCEQUENCH
:
429 * Problem with datagram; advise higher level routines.
431 if (icmplen
< ICMP_ADVLENMIN
|| icmplen
< ICMP_ADVLEN(icp
) ||
432 IP_VHL_HL(icp
->icmp_ip
.ip_vhl
) < (sizeof(struct ip
) >> 2)) {
433 icmpstat
.icps_badlen
++;
436 NTOHS(icp
->icmp_ip
.ip_len
);
437 /* Discard ICMP's in response to multicast packets */
438 if (IN_MULTICAST(ntohl(icp
->icmp_ip
.ip_dst
.s_addr
)))
442 printf("deliver to protocol %d\n", icp
->icmp_ip
.ip_p
);
444 icmpsrc
.sin_addr
= icp
->icmp_ip
.ip_dst
;
448 * If we got a needfrag and there is a host route to the
449 * original destination, and the MTU is not locked, then
450 * set the MTU in the route to the suggested new value
451 * (if given) and then notify as usual. The ULPs will
452 * notice that the MTU has changed and adapt accordingly.
453 * If no new MTU was suggested, then we guess a new one
454 * less than the current value. If the new MTU is
455 * unreasonably small (defined by sysctl tcp_minmss), then
456 * we reset the MTU to the interface value and enable the
457 * lock bit, indicating that we are no longer doing MTU
460 if (code
== PRC_MSGSIZE
) {
464 rt
= rtalloc1((struct sockaddr
*)&icmpsrc
, 0,
465 RTF_CLONING
| RTF_PRCLONING
);
466 if (rt
&& (rt
->rt_flags
& RTF_HOST
)
467 && !(rt
->rt_rmx
.rmx_locks
& RTV_MTU
)) {
468 mtu
= ntohs(icp
->icmp_nextmtu
);
470 mtu
= ip_next_mtu(rt
->rt_rmx
.rmx_mtu
,
473 printf("MTU for %s reduced to %d\n",
474 inet_ntop(AF_INET
, &icmpsrc
.sin_addr
, ipv4str
,
478 if (mtu
< max(296, (tcp_minmss
+ sizeof(struct tcpiphdr
)))) {
479 /* rt->rt_rmx.rmx_mtu =
480 rt->rt_ifp->if_mtu; */
481 rt
->rt_rmx
.rmx_locks
|= RTV_MTU
;
482 } else if (rt
->rt_rmx
.rmx_mtu
> mtu
) {
483 rt
->rt_rmx
.rmx_mtu
= mtu
;
492 * XXX if the packet contains [IPv4 AH TCP], we can't make a
493 * notification to TCP layer.
495 ctlfunc
= ip_protox
[icp
->icmp_ip
.ip_p
]->pr_ctlinput
;
497 (*ctlfunc
)(code
, (struct sockaddr
*)&icmpsrc
,
498 (void *)&icp
->icmp_ip
);
502 icmpstat
.icps_badcode
++;
507 && (m
->m_flags
& (M_MCAST
| M_BCAST
)) != 0) {
508 icmpstat
.icps_bmcastecho
++;
511 icp
->icmp_type
= ICMP_ECHOREPLY
;
513 if (badport_bandlim(BANDLIM_ICMP_ECHO
) < 0)
521 if (icmptimestamp
== 0)
525 && (m
->m_flags
& (M_MCAST
| M_BCAST
)) != 0) {
526 icmpstat
.icps_bmcasttstamp
++;
529 if (icmplen
< ICMP_TSLEN
) {
530 icmpstat
.icps_badlen
++;
533 icp
->icmp_type
= ICMP_TSTAMPREPLY
;
534 icp
->icmp_rtime
= iptime();
535 icp
->icmp_ttime
= icp
->icmp_rtime
; /* bogus, do later! */
537 if (badport_bandlim(BANDLIM_ICMP_TSTAMP
) < 0)
544 #define satosin(sa) ((struct sockaddr_in *)(sa))
545 if (icmpmaskrepl
== 0)
548 * We are not able to respond with all ones broadcast
549 * unless we receive it over a point-to-point interface.
551 if (icmplen
< ICMP_MASKLEN
)
553 switch (ip
->ip_dst
.s_addr
) {
555 case INADDR_BROADCAST
:
557 icmpdst
.sin_addr
= ip
->ip_src
;
561 icmpdst
.sin_addr
= ip
->ip_dst
;
563 ia
= (struct in_ifaddr
*)ifaof_ifpforaddr(
564 (struct sockaddr
*)&icmpdst
, m
->m_pkthdr
.rcvif
);
567 if (ia
->ia_ifp
== 0) {
568 ifafree(&ia
->ia_ifa
);
572 icp
->icmp_type
= ICMP_MASKREPLY
;
573 icp
->icmp_mask
= ia
->ia_sockmask
.sin_addr
.s_addr
;
574 if (ip
->ip_src
.s_addr
== 0) {
575 if (ia
->ia_ifp
->if_flags
& IFF_BROADCAST
)
576 ip
->ip_src
= satosin(&ia
->ia_broadaddr
)->sin_addr
;
577 else if (ia
->ia_ifp
->if_flags
& IFF_POINTOPOINT
)
578 ip
->ip_src
= satosin(&ia
->ia_dstaddr
)->sin_addr
;
580 ifafree(&ia
->ia_ifa
);
582 ip
->ip_len
+= hlen
; /* since ip_input deducts this */
583 icmpstat
.icps_reflect
++;
584 icmpstat
.icps_outhist
[icp
->icmp_type
]++;
592 src
= ntohl(ip
->ip_src
.s_addr
);
593 dst
= ntohl(icp
->icmp_ip
.ip_dst
.s_addr
);
594 gw
= ntohl(icp
->icmp_gwaddr
.s_addr
);
595 printf("icmp redirect from %d.%d.%d.%d: "
596 "%d.%d.%d.%d => %d.%d.%d.%d\n",
597 (int)(src
>> 24), (int)((src
>> 16) & 0xff),
598 (int)((src
>> 8) & 0xff), (int)(src
& 0xff),
599 (int)(dst
>> 24), (int)((dst
>> 16) & 0xff),
600 (int)((dst
>> 8) & 0xff), (int)(dst
& 0xff),
601 (int)(gw
>> 24), (int)((gw
>> 16) & 0xff),
602 (int)((gw
>> 8) & 0xff), (int)(gw
& 0xff));
608 if (icmplen
< ICMP_ADVLENMIN
|| icmplen
< ICMP_ADVLEN(icp
) ||
609 IP_VHL_HL(icp
->icmp_ip
.ip_vhl
) < (sizeof(struct ip
) >> 2)) {
610 icmpstat
.icps_badlen
++;
614 * Short circuit routing redirects to force
615 * immediate change in the kernel's routing
616 * tables. The message is also handed to anyone
617 * listening on a raw socket (e.g. the routing
618 * daemon for use in updating its tables).
620 icmpgw
.sin_addr
= ip
->ip_src
;
621 icmpdst
.sin_addr
= icp
->icmp_gwaddr
;
624 char buf
[MAX_IPv4_STR_LEN
];
626 printf("redirect dst %s to %s\n",
627 inet_ntop(AF_INET
, &icp
->icmp_ip
.ip_dst
, buf
, sizeof(buf
)),
628 inet_ntop(AF_INET
, &icp
->icmp_gwaddr
, ipv4str
,
632 icmpsrc
.sin_addr
= icp
->icmp_ip
.ip_dst
;
633 rtredirect((struct sockaddr
*)&icmpsrc
,
634 (struct sockaddr
*)&icmpdst
,
635 (struct sockaddr
*)0, RTF_GATEWAY
| RTF_HOST
,
636 (struct sockaddr
*)&icmpgw
, (struct rtentry
**)0);
637 pfctlinput(PRC_REDIRECT_HOST
, (struct sockaddr
*)&icmpsrc
);
639 key_sa_routechange((struct sockaddr
*)&icmpsrc
);
644 * No kernel processing for the following;
645 * just fall through to send to raw listener.
648 case ICMP_ROUTERADVERT
:
649 case ICMP_ROUTERSOLICIT
:
650 case ICMP_TSTAMPREPLY
:
666 * Reflect the ip packet back to the source
672 register struct ip
*ip
= mtod(m
, struct ip
*);
673 register struct in_ifaddr
*ia
;
675 struct mbuf
*opts
= 0;
676 int optlen
= (IP_VHL_HL(ip
->ip_vhl
) << 2) - sizeof(struct ip
);
678 if (!in_canforward(ip
->ip_src
) &&
679 ((ntohl(ip
->ip_src
.s_addr
) & IN_CLASSA_NET
) !=
680 (IN_LOOPBACKNET
<< IN_CLASSA_NSHIFT
))) {
681 m_freem(m
); /* Bad return address */
682 goto done
; /* Ip_output() will check for broadcast */
685 ip
->ip_dst
= ip
->ip_src
;
687 * If the incoming packet was addressed directly to us,
688 * use dst as the src for the reply. Otherwise (broadcast
689 * or anonymous), use the address which corresponds
690 * to the incoming interface.
692 lck_mtx_lock(rt_mtx
);
693 for (ia
= in_ifaddrhead
.tqh_first
; ia
; ia
= ia
->ia_link
.tqe_next
) {
694 if (t
.s_addr
== IA_SIN(ia
)->sin_addr
.s_addr
)
696 if (ia
->ia_ifp
&& (ia
->ia_ifp
->if_flags
& IFF_BROADCAST
) &&
697 t
.s_addr
== satosin(&ia
->ia_broadaddr
)->sin_addr
.s_addr
)
702 icmpdst
.sin_addr
= t
;
703 if ((ia
== (struct in_ifaddr
*)0) && m
->m_pkthdr
.rcvif
)
704 ia
= (struct in_ifaddr
*)ifaof_ifpforaddr(
705 (struct sockaddr
*)&icmpdst
, m
->m_pkthdr
.rcvif
);
707 * The following happens if the packet was not addressed to us,
708 * and was received on an interface with no IP address.
710 if (ia
== (struct in_ifaddr
*)0) {
711 ia
= in_ifaddrhead
.tqh_first
;
712 if (ia
== (struct in_ifaddr
*)0) {/* no address yet, bail out */
714 lck_mtx_unlock(rt_mtx
);
719 lck_mtx_unlock(rt_mtx
);
720 t
= IA_SIN(ia
)->sin_addr
;
722 ip
->ip_ttl
= ip_defttl
;
723 ifafree(&ia
->ia_ifa
);
732 * Retrieve any source routing from the incoming packet;
733 * add on any record-route or timestamp options.
735 cp
= (u_char
*) (ip
+ 1);
736 if ((opts
= ip_srcroute()) == 0 &&
737 (opts
= m_gethdr(M_DONTWAIT
, MT_HEADER
))) {
738 opts
->m_len
= sizeof(struct in_addr
);
739 mtod(opts
, struct in_addr
*)->s_addr
= 0;
744 printf("icmp_reflect optlen %d rt %d => ",
745 optlen
, opts
->m_len
);
747 for (cnt
= optlen
; cnt
> 0; cnt
-= len
, cp
+= len
) {
748 opt
= cp
[IPOPT_OPTVAL
];
749 if (opt
== IPOPT_EOL
)
751 if (opt
== IPOPT_NOP
)
754 if (cnt
< IPOPT_OLEN
+ sizeof(*cp
))
756 len
= cp
[IPOPT_OLEN
];
757 if (len
< IPOPT_OLEN
+ sizeof(*cp
) ||
762 * Should check for overflow, but it "can't happen"
764 if (opt
== IPOPT_RR
|| opt
== IPOPT_TS
||
765 opt
== IPOPT_SECURITY
) {
767 mtod(opts
, caddr_t
) + opts
->m_len
, len
);
771 /* Terminate & pad, if necessary */
772 cnt
= opts
->m_len
% 4;
774 for (; cnt
< 4; cnt
++) {
775 *(mtod(opts
, caddr_t
) + opts
->m_len
) =
782 printf("%d\n", opts
->m_len
);
786 * Now strip out original options by copying rest of first
787 * mbuf's data back, and adjust the IP length.
789 ip
->ip_len
-= optlen
;
790 ip
->ip_vhl
= IP_VHL_BORING
;
792 if (m
->m_flags
& M_PKTHDR
)
793 m
->m_pkthdr
.len
-= optlen
;
794 optlen
+= sizeof(struct ip
);
795 bcopy((caddr_t
)ip
+ optlen
, (caddr_t
)(ip
+ 1),
796 (unsigned)(m
->m_len
- sizeof(struct ip
)));
798 m
->m_flags
&= ~(M_BCAST
|M_MCAST
);
806 * Send an icmp packet back to the ip level,
807 * after supplying a checksum.
811 register struct mbuf
*m
;
814 register struct ip
*ip
= mtod(m
, struct ip
*);
816 register struct icmp
*icp
;
818 char ipv4str
[MAX_IPv4_STR_LEN
];
820 hlen
= IP_VHL_HL(ip
->ip_vhl
) << 2;
823 icp
= mtod(m
, struct icmp
*);
825 icp
->icmp_cksum
= in_cksum(m
, ip
->ip_len
- hlen
);
828 m
->m_pkthdr
.rcvif
= 0;
829 m
->m_pkthdr
.aux
= NULL
;
830 m
->m_pkthdr
.csum_data
= 0;
831 m
->m_pkthdr
.csum_flags
= 0;
834 char buf
[MAX_IPv4_STR_LEN
];
836 printf("icmp_send dst %s src %s\n",
837 inet_ntop(AF_INET
, &ip
->ip_dst
, buf
, sizeof(buf
)),
838 inet_ntop(AF_INET
, &ip
->ip_src
, ipv4str
, sizeof(ipv4str
)));
841 bzero(&ro
, sizeof ro
);
842 (void) ip_output(m
, opts
, &ro
, 0, NULL
);
854 t
= (atv
.tv_sec
% (24*60*60)) * 1000 + atv
.tv_usec
/ 1000;
860 * Return the next larger or smaller MTU plateau (table from RFC 1191)
861 * given current value MTU. If DIR is less than zero, a larger plateau
862 * is returned; otherwise, a smaller value is returned.
865 ip_next_mtu(mtu
, dir
)
869 static int mtutab
[] = {
870 65535, 32000, 17914, 8166, 4352, 2002, 1492, 1006, 508, 296,
875 for (i
= 0; i
< (sizeof mtutab
) / (sizeof mtutab
[0]); i
++) {
876 if (mtu
>= mtutab
[i
])
884 return mtutab
[i
- 1];
887 if (mtutab
[i
] == 0) {
889 } else if(mtu
> mtutab
[i
]) {
892 return mtutab
[i
+ 1];
901 * badport_bandlim() - check for ICMP bandwidth limit
903 * Return 0 if it is ok to send an ICMP error response, -1 if we have
904 * hit our bandwidth limit and it is not ok.
906 * If icmplim is <= 0, the feature is disabled and 0 is returned.
908 * For now we separate the TCP and UDP subsystems w/ different 'which'
909 * values. We may eventually remove this separation (and simplify the
912 * Note that the printing of the error message is delayed so we can
913 * properly print the icmp error rate that the system was trying to do
914 * (i.e. 22000/100 pps, etc...). This can cause long delays in printing
915 * the 'final' error, but it doesn't make sense to solve the printing
916 * delay with more complex code.
920 badport_bandlim(int which
)
922 static struct timeval lticks
[BANDLIM_MAX
+ 1];
923 static int lpackets
[BANDLIM_MAX
+ 1];
927 const char *bandlimittype
[] = {
928 "Limiting icmp unreach response",
929 "Limiting icmp ping response",
930 "Limiting icmp tstamp response",
931 "Limiting closed port RST response",
932 "Limiting open port RST response"
936 * Return ok status if feature disabled or argument out of
940 if (icmplim
<= 0 || which
> BANDLIM_MAX
|| which
< 0)
943 getmicrouptime(&time
);
945 secs
= time
.tv_sec
- lticks
[which
].tv_sec
;
948 * reset stats when cumulative delta exceeds one second.
951 if ((secs
> 1) || (secs
== 1 && (lticks
[which
].tv_usec
> time
.tv_usec
))) {
952 if (lpackets
[which
] > icmplim
) {
953 printf("%s from %d to %d packets per second\n",
954 bandlimittype
[which
],
959 lticks
[which
].tv_sec
= time
.tv_sec
;
960 lticks
[which
].tv_usec
= time
.tv_usec
;
968 if (++lpackets
[which
] > icmplim
) {
979 * Non-privileged ICMP socket operations
980 * - send ICMP echo request
982 * - limited socket options
985 #include <netinet/ip_icmp.h>
986 #include <netinet/in_pcb.h>
988 extern struct domain inetdomain
;
989 extern u_long rip_sendspace
;
990 extern u_long rip_recvspace
;
991 extern struct inpcbinfo ripcbinfo
;
993 int rip_abort(struct socket
*);
994 int rip_bind(struct socket
*, struct sockaddr
*, struct proc
*);
995 int rip_connect(struct socket
*, struct sockaddr
*, struct proc
*);
996 int rip_detach(struct socket
*);
997 int rip_disconnect(struct socket
*);
998 int rip_shutdown(struct socket
*);
1000 __private_extern__
int icmp_dgram_send(struct socket
*so
, int flags
, struct mbuf
*m
, struct sockaddr
*nam
, struct mbuf
*control
, struct proc
*p
);
1001 __private_extern__
int icmp_dgram_attach(struct socket
*so
, int proto
, struct proc
*p
);
1002 __private_extern__
int icmp_dgram_ctloutput(struct socket
*so
, struct sockopt
*sopt
);
1004 __private_extern__
struct pr_usrreqs icmp_dgram_usrreqs
= {
1005 rip_abort
, pru_accept_notsupp
, icmp_dgram_attach
, rip_bind
, rip_connect
,
1006 pru_connect2_notsupp
, in_control
, rip_detach
, rip_disconnect
,
1007 pru_listen_notsupp
, in_setpeeraddr
, pru_rcvd_notsupp
,
1008 pru_rcvoob_notsupp
, icmp_dgram_send
, pru_sense_null
, rip_shutdown
,
1009 in_setsockaddr
, sosend
, soreceive
, pru_sopoll_notsupp
1012 /* Like rip_attach but without root privilege enforcement */
1013 __private_extern__
int
1014 icmp_dgram_attach(struct socket
*so
, int proto
, struct proc
*p
)
1019 inp
= sotoinpcb(so
);
1021 panic("icmp_dgram_attach");
1023 error
= soreserve(so
, rip_sendspace
, rip_recvspace
);
1027 error
= in_pcballoc(so
, &ripcbinfo
, p
);
1031 inp
= (struct inpcb
*)so
->so_pcb
;
1032 inp
->inp_vflag
|= INP_IPV4
;
1033 inp
->inp_ip_p
= IPPROTO_ICMP
;
1034 inp
->inp_ip_ttl
= ip_defttl
;
1039 * Raw IP socket option processing.
1041 __private_extern__
int
1042 icmp_dgram_ctloutput(struct socket
*so
, struct sockopt
*sopt
)
1044 struct inpcb
*inp
= sotoinpcb(so
);
1047 if (sopt
->sopt_level
!= IPPROTO_IP
)
1050 switch (sopt
->sopt_name
) {
1056 case IP_RECVRETOPTS
:
1057 case IP_RECVDSTADDR
:
1059 case IP_MULTICAST_IF
:
1060 case IP_MULTICAST_TTL
:
1061 case IP_MULTICAST_LOOP
:
1062 case IP_ADD_MEMBERSHIP
:
1063 case IP_DROP_MEMBERSHIP
:
1064 case IP_MULTICAST_VIF
:
1067 case IP_IPSEC_POLICY
:
1068 #if defined(NFAITH) && NFAITH > 0
1073 error
= rip_ctloutput(so
, sopt
);
1084 __private_extern__
int
1085 icmp_dgram_send(struct socket
*so
, int flags
, struct mbuf
*m
, struct sockaddr
*nam
,
1086 struct mbuf
*control
, struct proc
*p
)
1089 struct inpcb
*inp
= sotoinpcb(so
);
1092 struct in_ifaddr
*ia
= NULL
;
1095 if ((inp
->inp_flags
& INP_HDRINCL
) != 0) {
1097 * This is not raw IP, we liberal only for fields TOS, id and TTL
1099 ip
= mtod(m
, struct ip
*);
1101 hlen
= IP_VHL_HL(ip
->ip_vhl
) << 2;
1102 /* Some sanity checks */
1103 if (m
->m_pkthdr
.len
< hlen
+ ICMP_MINLEN
) {
1107 if (IP_VHL_V(ip
->ip_vhl
) != 4)
1109 if (hlen
< 20 || hlen
> 40 || ip
->ip_len
!= m
->m_pkthdr
.len
)
1111 /* Bogus fragments can tie up peer resources */
1112 if (ip
->ip_off
!= 0)
1114 /* Allow only ICMP even for user provided IP header */
1115 if (ip
->ip_p
!= IPPROTO_ICMP
)
1117 /* To prevent spoofing, specified source address must be one of ours */
1118 if (ip
->ip_src
.s_addr
!= INADDR_ANY
) {
1119 socket_unlock(so
, 0);
1120 lck_mtx_lock(rt_mtx
);
1121 if (TAILQ_EMPTY(&in_ifaddrhead
)) {
1122 lck_mtx_unlock(rt_mtx
);
1126 TAILQ_FOREACH(ia
, &in_ifaddrhead
, ia_link
) {
1127 if (IA_SIN(ia
)->sin_addr
.s_addr
== ip
->ip_src
.s_addr
) {
1128 lck_mtx_unlock(rt_mtx
);
1133 lck_mtx_unlock(rt_mtx
);
1138 /* Do not trust we got a valid checksum */
1141 icp
= (struct icmp
*)(((char *)m
->m_data
) + hlen
);
1142 icmplen
= m
->m_pkthdr
.len
- hlen
;
1144 if ((icmplen
= m
->m_pkthdr
.len
) < ICMP_MINLEN
) {
1147 icp
= mtod(m
, struct icmp
*);
1150 * Allow only to send request types with code 0
1152 if (icp
->icmp_code
!= 0)
1154 switch (icp
->icmp_type
) {
1168 return rip_send(so
, flags
, m
, nam
, control
, p
);
1174 #endif /* __APPLE__ */