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ip_input.c revision 1.9
      1  1.1      cgd /*
      2  1.1      cgd  * Copyright (c) 1982, 1986, 1988 Regents of the University of California.
      3  1.1      cgd  * All rights reserved.
      4  1.1      cgd  *
      5  1.1      cgd  * Redistribution and use in source and binary forms, with or without
      6  1.1      cgd  * modification, are permitted provided that the following conditions
      7  1.1      cgd  * are met:
      8  1.1      cgd  * 1. Redistributions of source code must retain the above copyright
      9  1.1      cgd  *    notice, this list of conditions and the following disclaimer.
     10  1.1      cgd  * 2. Redistributions in binary form must reproduce the above copyright
     11  1.1      cgd  *    notice, this list of conditions and the following disclaimer in the
     12  1.1      cgd  *    documentation and/or other materials provided with the distribution.
     13  1.1      cgd  * 3. All advertising materials mentioning features or use of this software
     14  1.1      cgd  *    must display the following acknowledgement:
     15  1.1      cgd  *	This product includes software developed by the University of
     16  1.1      cgd  *	California, Berkeley and its contributors.
     17  1.1      cgd  * 4. Neither the name of the University nor the names of its contributors
     18  1.1      cgd  *    may be used to endorse or promote products derived from this software
     19  1.1      cgd  *    without specific prior written permission.
     20  1.1      cgd  *
     21  1.1      cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     22  1.1      cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     23  1.1      cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     24  1.1      cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     25  1.1      cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     26  1.1      cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     27  1.1      cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     28  1.1      cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     29  1.1      cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     30  1.1      cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     31  1.1      cgd  * SUCH DAMAGE.
     32  1.1      cgd  *
     33  1.3      cgd  *	from: @(#)ip_input.c	7.19 (Berkeley) 5/25/91
     34  1.9  mycroft  *	$Id: ip_input.c,v 1.9 1994/01/10 20:14:19 mycroft Exp $
     35  1.1      cgd  */
     36  1.1      cgd 
     37  1.5  mycroft #include <sys/param.h>
     38  1.5  mycroft #include <sys/systm.h>
     39  1.5  mycroft #include <sys/malloc.h>
     40  1.5  mycroft #include <sys/mbuf.h>
     41  1.5  mycroft #include <sys/domain.h>
     42  1.5  mycroft #include <sys/protosw.h>
     43  1.5  mycroft #include <sys/socket.h>
     44  1.5  mycroft #include <sys/errno.h>
     45  1.5  mycroft #include <sys/time.h>
     46  1.5  mycroft #include <sys/kernel.h>
     47  1.1      cgd 
     48  1.5  mycroft #include <net/if.h>
     49  1.5  mycroft #include <net/route.h>
     50  1.1      cgd 
     51  1.5  mycroft #include <netinet/in.h>
     52  1.5  mycroft #include <netinet/in_systm.h>
     53  1.5  mycroft #include <netinet/ip.h>
     54  1.5  mycroft #include <netinet/in_pcb.h>
     55  1.5  mycroft #include <netinet/in_var.h>
     56  1.5  mycroft #include <netinet/ip_var.h>
     57  1.5  mycroft #include <netinet/ip_icmp.h>
     58  1.8  mycroft #include <netinet/ip_mroute.h>
     59  1.1      cgd 
     60  1.1      cgd #ifndef	IPFORWARDING
     61  1.1      cgd #ifdef GATEWAY
     62  1.1      cgd #define	IPFORWARDING	1	/* forward IP packets not for us */
     63  1.1      cgd #else /* GATEWAY */
     64  1.1      cgd #define	IPFORWARDING	0	/* don't forward IP packets not for us */
     65  1.1      cgd #endif /* GATEWAY */
     66  1.1      cgd #endif /* IPFORWARDING */
     67  1.1      cgd #ifndef	IPSENDREDIRECTS
     68  1.1      cgd #define	IPSENDREDIRECTS	1
     69  1.1      cgd #endif
     70  1.1      cgd int	ipforwarding = IPFORWARDING;
     71  1.1      cgd int	ipsendredirects = IPSENDREDIRECTS;
     72  1.1      cgd #ifdef DIAGNOSTIC
     73  1.1      cgd int	ipprintfs = 0;
     74  1.1      cgd #endif
     75  1.1      cgd 
     76  1.1      cgd extern	struct domain inetdomain;
     77  1.1      cgd extern	struct protosw inetsw[];
     78  1.1      cgd u_char	ip_protox[IPPROTO_MAX];
     79  1.1      cgd int	ipqmaxlen = IFQ_MAXLEN;
     80  1.1      cgd struct	in_ifaddr *in_ifaddr;			/* first inet address */
     81  1.1      cgd 
     82  1.1      cgd /*
     83  1.1      cgd  * We need to save the IP options in case a protocol wants to respond
     84  1.1      cgd  * to an incoming packet over the same route if the packet got here
     85  1.1      cgd  * using IP source routing.  This allows connection establishment and
     86  1.1      cgd  * maintenance when the remote end is on a network that is not known
     87  1.1      cgd  * to us.
     88  1.1      cgd  */
     89  1.1      cgd int	ip_nhops = 0;
     90  1.1      cgd static	struct ip_srcrt {
     91  1.1      cgd 	struct	in_addr dst;			/* final destination */
     92  1.1      cgd 	char	nop;				/* one NOP to align */
     93  1.1      cgd 	char	srcopt[IPOPT_OFFSET + 1];	/* OPTVAL, OLEN and OFFSET */
     94  1.1      cgd 	struct	in_addr route[MAX_IPOPTLEN/sizeof(struct in_addr)];
     95  1.1      cgd } ip_srcrt;
     96  1.1      cgd 
     97  1.1      cgd #ifdef GATEWAY
     98  1.1      cgd extern	int if_index;
     99  1.1      cgd u_long	*ip_ifmatrix;
    100  1.1      cgd #endif
    101  1.1      cgd 
    102  1.8  mycroft static void	ip_forward __P((struct mbuf *, int));
    103  1.8  mycroft static void	save_rte __P((u_char *, struct in_addr));
    104  1.8  mycroft 
    105  1.1      cgd /*
    106  1.1      cgd  * IP initialization: fill in IP protocol switch table.
    107  1.1      cgd  * All protocols not implemented in kernel go to raw IP protocol handler.
    108  1.1      cgd  */
    109  1.8  mycroft void
    110  1.1      cgd ip_init()
    111  1.1      cgd {
    112  1.1      cgd 	register struct protosw *pr;
    113  1.1      cgd 	register int i;
    114  1.1      cgd 
    115  1.1      cgd 	pr = pffindproto(PF_INET, IPPROTO_RAW, SOCK_RAW);
    116  1.1      cgd 	if (pr == 0)
    117  1.1      cgd 		panic("ip_init");
    118  1.1      cgd 	for (i = 0; i < IPPROTO_MAX; i++)
    119  1.1      cgd 		ip_protox[i] = pr - inetsw;
    120  1.1      cgd 	for (pr = inetdomain.dom_protosw;
    121  1.1      cgd 	    pr < inetdomain.dom_protoswNPROTOSW; pr++)
    122  1.1      cgd 		if (pr->pr_domain->dom_family == PF_INET &&
    123  1.1      cgd 		    pr->pr_protocol && pr->pr_protocol != IPPROTO_RAW)
    124  1.1      cgd 			ip_protox[pr->pr_protocol] = pr - inetsw;
    125  1.1      cgd 	ipq.next = ipq.prev = &ipq;
    126  1.1      cgd 	ip_id = time.tv_sec & 0xffff;
    127  1.1      cgd 	ipintrq.ifq_maxlen = ipqmaxlen;
    128  1.1      cgd #ifdef GATEWAY
    129  1.1      cgd 	i = (if_index + 1) * (if_index + 1) * sizeof (u_long);
    130  1.1      cgd 	if ((ip_ifmatrix = (u_long *) malloc(i, M_RTABLE, M_WAITOK)) == 0)
    131  1.1      cgd 		panic("no memory for ip_ifmatrix");
    132  1.1      cgd #endif
    133  1.1      cgd }
    134  1.1      cgd 
    135  1.1      cgd struct	ip *ip_reass();
    136  1.1      cgd struct	sockaddr_in ipaddr = { sizeof(ipaddr), AF_INET };
    137  1.1      cgd struct	route ipforward_rt;
    138  1.1      cgd 
    139  1.1      cgd /*
    140  1.1      cgd  * Ip input routine.  Checksum and byte swap header.  If fragmented
    141  1.1      cgd  * try to reassemble.  Process options.  Pass to next level.
    142  1.1      cgd  */
    143  1.8  mycroft void
    144  1.1      cgd ipintr()
    145  1.1      cgd {
    146  1.1      cgd 	register struct ip *ip;
    147  1.1      cgd 	register struct mbuf *m;
    148  1.1      cgd 	register struct ipq *fp;
    149  1.1      cgd 	register struct in_ifaddr *ia;
    150  1.1      cgd 	int hlen, s;
    151  1.2      cgd #ifdef PARANOID
    152  1.2      cgd 	static int busy = 0;
    153  1.1      cgd 
    154  1.2      cgd 	if (busy)
    155  1.2      cgd 		panic("ipintr: called recursively\n");
    156  1.2      cgd 	++busy;
    157  1.2      cgd #endif
    158  1.1      cgd next:
    159  1.1      cgd 	/*
    160  1.1      cgd 	 * Get next datagram off input queue and get IP header
    161  1.1      cgd 	 * in first mbuf.
    162  1.1      cgd 	 */
    163  1.1      cgd 	s = splimp();
    164  1.1      cgd 	IF_DEQUEUE(&ipintrq, m);
    165  1.1      cgd 	splx(s);
    166  1.2      cgd 	if (m == 0) {
    167  1.2      cgd #ifdef PARANOID
    168  1.2      cgd 		--busy;
    169  1.2      cgd #endif
    170  1.1      cgd 		return;
    171  1.2      cgd 	}
    172  1.1      cgd #ifdef	DIAGNOSTIC
    173  1.1      cgd 	if ((m->m_flags & M_PKTHDR) == 0)
    174  1.1      cgd 		panic("ipintr no HDR");
    175  1.1      cgd #endif
    176  1.1      cgd 	/*
    177  1.1      cgd 	 * If no IP addresses have been set yet but the interfaces
    178  1.1      cgd 	 * are receiving, can't do anything with incoming packets yet.
    179  1.1      cgd 	 */
    180  1.1      cgd 	if (in_ifaddr == NULL)
    181  1.1      cgd 		goto bad;
    182  1.1      cgd 	ipstat.ips_total++;
    183  1.1      cgd 	if (m->m_len < sizeof (struct ip) &&
    184  1.1      cgd 	    (m = m_pullup(m, sizeof (struct ip))) == 0) {
    185  1.1      cgd 		ipstat.ips_toosmall++;
    186  1.1      cgd 		goto next;
    187  1.1      cgd 	}
    188  1.1      cgd 	ip = mtod(m, struct ip *);
    189  1.1      cgd 	hlen = ip->ip_hl << 2;
    190  1.1      cgd 	if (hlen < sizeof(struct ip)) {	/* minimum header length */
    191  1.1      cgd 		ipstat.ips_badhlen++;
    192  1.1      cgd 		goto bad;
    193  1.1      cgd 	}
    194  1.1      cgd 	if (hlen > m->m_len) {
    195  1.1      cgd 		if ((m = m_pullup(m, hlen)) == 0) {
    196  1.1      cgd 			ipstat.ips_badhlen++;
    197  1.1      cgd 			goto next;
    198  1.1      cgd 		}
    199  1.1      cgd 		ip = mtod(m, struct ip *);
    200  1.1      cgd 	}
    201  1.1      cgd 	if (ip->ip_sum = in_cksum(m, hlen)) {
    202  1.1      cgd 		ipstat.ips_badsum++;
    203  1.1      cgd 		goto bad;
    204  1.1      cgd 	}
    205  1.1      cgd 
    206  1.1      cgd 	/*
    207  1.1      cgd 	 * Convert fields to host representation.
    208  1.1      cgd 	 */
    209  1.1      cgd 	NTOHS(ip->ip_len);
    210  1.1      cgd 	if (ip->ip_len < hlen) {
    211  1.1      cgd 		ipstat.ips_badlen++;
    212  1.1      cgd 		goto bad;
    213  1.1      cgd 	}
    214  1.1      cgd 	NTOHS(ip->ip_id);
    215  1.1      cgd 	NTOHS(ip->ip_off);
    216  1.1      cgd 
    217  1.1      cgd 	/*
    218  1.1      cgd 	 * Check that the amount of data in the buffers
    219  1.1      cgd 	 * is as at least much as the IP header would have us expect.
    220  1.1      cgd 	 * Trim mbufs if longer than we expect.
    221  1.1      cgd 	 * Drop packet if shorter than we expect.
    222  1.1      cgd 	 */
    223  1.1      cgd 	if (m->m_pkthdr.len < ip->ip_len) {
    224  1.1      cgd 		ipstat.ips_tooshort++;
    225  1.1      cgd 		goto bad;
    226  1.1      cgd 	}
    227  1.1      cgd 	if (m->m_pkthdr.len > ip->ip_len) {
    228  1.1      cgd 		if (m->m_len == m->m_pkthdr.len) {
    229  1.1      cgd 			m->m_len = ip->ip_len;
    230  1.1      cgd 			m->m_pkthdr.len = ip->ip_len;
    231  1.1      cgd 		} else
    232  1.1      cgd 			m_adj(m, ip->ip_len - m->m_pkthdr.len);
    233  1.1      cgd 	}
    234  1.1      cgd 
    235  1.1      cgd 	/*
    236  1.1      cgd 	 * Process options and, if not destined for us,
    237  1.1      cgd 	 * ship it on.  ip_dooptions returns 1 when an
    238  1.1      cgd 	 * error was detected (causing an icmp message
    239  1.1      cgd 	 * to be sent and the original packet to be freed).
    240  1.1      cgd 	 */
    241  1.1      cgd 	ip_nhops = 0;		/* for source routed packets */
    242  1.1      cgd 	if (hlen > sizeof (struct ip) && ip_dooptions(m))
    243  1.1      cgd 		goto next;
    244  1.1      cgd 
    245  1.1      cgd 	/*
    246  1.1      cgd 	 * Check our list of addresses, to see if the packet is for us.
    247  1.1      cgd 	 */
    248  1.1      cgd 	for (ia = in_ifaddr; ia; ia = ia->ia_next) {
    249  1.1      cgd #define	satosin(sa)	((struct sockaddr_in *)(sa))
    250  1.1      cgd 
    251  1.1      cgd 		if (IA_SIN(ia)->sin_addr.s_addr == ip->ip_dst.s_addr)
    252  1.1      cgd 			goto ours;
    253  1.1      cgd 		if (
    254  1.1      cgd #ifdef	DIRECTED_BROADCAST
    255  1.1      cgd 		    ia->ia_ifp == m->m_pkthdr.rcvif &&
    256  1.1      cgd #endif
    257  1.1      cgd 		    (ia->ia_ifp->if_flags & IFF_BROADCAST)) {
    258  1.1      cgd 			u_long t;
    259  1.1      cgd 
    260  1.1      cgd 			if (satosin(&ia->ia_broadaddr)->sin_addr.s_addr ==
    261  1.1      cgd 			    ip->ip_dst.s_addr)
    262  1.1      cgd 				goto ours;
    263  1.1      cgd 			if (ip->ip_dst.s_addr == ia->ia_netbroadcast.s_addr)
    264  1.1      cgd 				goto ours;
    265  1.1      cgd 			/*
    266  1.1      cgd 			 * Look for all-0's host part (old broadcast addr),
    267  1.1      cgd 			 * either for subnet or net.
    268  1.1      cgd 			 */
    269  1.1      cgd 			t = ntohl(ip->ip_dst.s_addr);
    270  1.1      cgd 			if (t == ia->ia_subnet)
    271  1.1      cgd 				goto ours;
    272  1.1      cgd 			if (t == ia->ia_net)
    273  1.1      cgd 				goto ours;
    274  1.1      cgd 		}
    275  1.1      cgd 	}
    276  1.4  hpeyerl #ifdef MULTICAST
    277  1.4  hpeyerl 	if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr))) {
    278  1.4  hpeyerl 		struct in_multi *inm;
    279  1.4  hpeyerl #ifdef MROUTING
    280  1.4  hpeyerl 		extern struct socket *ip_mrouter;
    281  1.4  hpeyerl 
    282  1.4  hpeyerl 		if (ip_mrouter) {
    283  1.4  hpeyerl 			/*
    284  1.4  hpeyerl 			 * If we are acting as a multicast router, all
    285  1.4  hpeyerl 			 * incoming multicast packets are passed to the
    286  1.4  hpeyerl 			 * kernel-level multicast forwarding function.
    287  1.4  hpeyerl 			 * The packet is returned (relatively) intact; if
    288  1.4  hpeyerl 			 * ip_mforward() returns a non-zero value, the packet
    289  1.4  hpeyerl 			 * must be discarded, else it may be accepted below.
    290  1.4  hpeyerl 			 *
    291  1.4  hpeyerl 			 * (The IP ident field is put in the same byte order
    292  1.4  hpeyerl 			 * as expected when ip_mforward() is called from
    293  1.4  hpeyerl 			 * ip_output().)
    294  1.4  hpeyerl 			 */
    295  1.4  hpeyerl 			ip->ip_id = htons(ip->ip_id);
    296  1.4  hpeyerl 			if (ip_mforward(ip, m->m_pkthdr.rcvif, m) != 0) {
    297  1.4  hpeyerl 				m_freem(m);
    298  1.4  hpeyerl 				goto next;
    299  1.4  hpeyerl 			}
    300  1.4  hpeyerl 			ip->ip_id = ntohs(ip->ip_id);
    301  1.4  hpeyerl 
    302  1.4  hpeyerl 			/*
    303  1.4  hpeyerl 			 * The process-level routing demon needs to receive
    304  1.4  hpeyerl 			 * all multicast IGMP packets, whether or not this
    305  1.4  hpeyerl 			 * host belongs to their destination groups.
    306  1.4  hpeyerl 			 */
    307  1.4  hpeyerl 			if (ip->ip_p == IPPROTO_IGMP)
    308  1.4  hpeyerl 				goto ours;
    309  1.4  hpeyerl 		}
    310  1.4  hpeyerl #endif
    311  1.4  hpeyerl 		/*
    312  1.4  hpeyerl 		 * See if we belong to the destination multicast group on the
    313  1.4  hpeyerl 		 * arrival interface.
    314  1.4  hpeyerl 		 */
    315  1.4  hpeyerl 		IN_LOOKUP_MULTI(ip->ip_dst, m->m_pkthdr.rcvif, inm);
    316  1.4  hpeyerl 		if (inm == NULL) {
    317  1.4  hpeyerl 			m_freem(m);
    318  1.4  hpeyerl 			goto next;
    319  1.4  hpeyerl 		}
    320  1.4  hpeyerl 		goto ours;
    321  1.4  hpeyerl 	}
    322  1.4  hpeyerl #endif
    323  1.1      cgd 	if (ip->ip_dst.s_addr == (u_long)INADDR_BROADCAST)
    324  1.1      cgd 		goto ours;
    325  1.1      cgd 	if (ip->ip_dst.s_addr == INADDR_ANY)
    326  1.1      cgd 		goto ours;
    327  1.1      cgd 
    328  1.1      cgd 	/*
    329  1.1      cgd 	 * Not for us; forward if possible and desirable.
    330  1.1      cgd 	 */
    331  1.1      cgd 	if (ipforwarding == 0) {
    332  1.1      cgd 		ipstat.ips_cantforward++;
    333  1.1      cgd 		m_freem(m);
    334  1.1      cgd 	} else
    335  1.1      cgd 		ip_forward(m, 0);
    336  1.1      cgd 	goto next;
    337  1.1      cgd 
    338  1.1      cgd ours:
    339  1.1      cgd 	/*
    340  1.1      cgd 	 * If offset or IP_MF are set, must reassemble.
    341  1.1      cgd 	 * Otherwise, nothing need be done.
    342  1.1      cgd 	 * (We could look in the reassembly queue to see
    343  1.1      cgd 	 * if the packet was previously fragmented,
    344  1.1      cgd 	 * but it's not worth the time; just let them time out.)
    345  1.1      cgd 	 */
    346  1.1      cgd 	if (ip->ip_off &~ IP_DF) {
    347  1.1      cgd 		if (m->m_flags & M_EXT) {		/* XXX */
    348  1.1      cgd 			if ((m = m_pullup(m, sizeof (struct ip))) == 0) {
    349  1.1      cgd 				ipstat.ips_toosmall++;
    350  1.1      cgd 				goto next;
    351  1.1      cgd 			}
    352  1.1      cgd 			ip = mtod(m, struct ip *);
    353  1.1      cgd 		}
    354  1.1      cgd 		/*
    355  1.1      cgd 		 * Look for queue of fragments
    356  1.1      cgd 		 * of this datagram.
    357  1.1      cgd 		 */
    358  1.1      cgd 		for (fp = ipq.next; fp != &ipq; fp = fp->next)
    359  1.1      cgd 			if (ip->ip_id == fp->ipq_id &&
    360  1.1      cgd 			    ip->ip_src.s_addr == fp->ipq_src.s_addr &&
    361  1.1      cgd 			    ip->ip_dst.s_addr == fp->ipq_dst.s_addr &&
    362  1.1      cgd 			    ip->ip_p == fp->ipq_p)
    363  1.1      cgd 				goto found;
    364  1.1      cgd 		fp = 0;
    365  1.1      cgd found:
    366  1.1      cgd 
    367  1.1      cgd 		/*
    368  1.1      cgd 		 * Adjust ip_len to not reflect header,
    369  1.1      cgd 		 * set ip_mff if more fragments are expected,
    370  1.1      cgd 		 * convert offset of this to bytes.
    371  1.1      cgd 		 */
    372  1.1      cgd 		ip->ip_len -= hlen;
    373  1.1      cgd 		((struct ipasfrag *)ip)->ipf_mff = 0;
    374  1.1      cgd 		if (ip->ip_off & IP_MF)
    375  1.1      cgd 			((struct ipasfrag *)ip)->ipf_mff = 1;
    376  1.1      cgd 		ip->ip_off <<= 3;
    377  1.1      cgd 
    378  1.1      cgd 		/*
    379  1.1      cgd 		 * If datagram marked as having more fragments
    380  1.1      cgd 		 * or if this is not the first fragment,
    381  1.1      cgd 		 * attempt reassembly; if it succeeds, proceed.
    382  1.1      cgd 		 */
    383  1.1      cgd 		if (((struct ipasfrag *)ip)->ipf_mff || ip->ip_off) {
    384  1.1      cgd 			ipstat.ips_fragments++;
    385  1.1      cgd 			ip = ip_reass((struct ipasfrag *)ip, fp);
    386  1.1      cgd 			if (ip == 0)
    387  1.1      cgd 				goto next;
    388  1.1      cgd 			else
    389  1.1      cgd 				ipstat.ips_reassembled++;
    390  1.1      cgd 			m = dtom(ip);
    391  1.1      cgd 		} else
    392  1.1      cgd 			if (fp)
    393  1.1      cgd 				ip_freef(fp);
    394  1.1      cgd 	} else
    395  1.1      cgd 		ip->ip_len -= hlen;
    396  1.1      cgd 
    397  1.1      cgd 	/*
    398  1.1      cgd 	 * Switch out to protocol's input routine.
    399  1.1      cgd 	 */
    400  1.1      cgd 	ipstat.ips_delivered++;
    401  1.1      cgd 	(*inetsw[ip_protox[ip->ip_p]].pr_input)(m, hlen);
    402  1.1      cgd 	goto next;
    403  1.1      cgd bad:
    404  1.1      cgd 	m_freem(m);
    405  1.1      cgd 	goto next;
    406  1.1      cgd }
    407  1.1      cgd 
    408  1.1      cgd /*
    409  1.1      cgd  * Take incoming datagram fragment and try to
    410  1.1      cgd  * reassemble it into whole datagram.  If a chain for
    411  1.1      cgd  * reassembly of this datagram already exists, then it
    412  1.1      cgd  * is given as fp; otherwise have to make a chain.
    413  1.1      cgd  */
    414  1.1      cgd struct ip *
    415  1.1      cgd ip_reass(ip, fp)
    416  1.1      cgd 	register struct ipasfrag *ip;
    417  1.1      cgd 	register struct ipq *fp;
    418  1.1      cgd {
    419  1.1      cgd 	register struct mbuf *m = dtom(ip);
    420  1.1      cgd 	register struct ipasfrag *q;
    421  1.1      cgd 	struct mbuf *t;
    422  1.1      cgd 	int hlen = ip->ip_hl << 2;
    423  1.1      cgd 	int i, next;
    424  1.1      cgd 
    425  1.1      cgd 	/*
    426  1.1      cgd 	 * Presence of header sizes in mbufs
    427  1.1      cgd 	 * would confuse code below.
    428  1.1      cgd 	 */
    429  1.1      cgd 	m->m_data += hlen;
    430  1.1      cgd 	m->m_len -= hlen;
    431  1.1      cgd 
    432  1.1      cgd 	/*
    433  1.1      cgd 	 * If first fragment to arrive, create a reassembly queue.
    434  1.1      cgd 	 */
    435  1.1      cgd 	if (fp == 0) {
    436  1.1      cgd 		if ((t = m_get(M_DONTWAIT, MT_FTABLE)) == NULL)
    437  1.1      cgd 			goto dropfrag;
    438  1.1      cgd 		fp = mtod(t, struct ipq *);
    439  1.1      cgd 		insque(fp, &ipq);
    440  1.1      cgd 		fp->ipq_ttl = IPFRAGTTL;
    441  1.1      cgd 		fp->ipq_p = ip->ip_p;
    442  1.1      cgd 		fp->ipq_id = ip->ip_id;
    443  1.1      cgd 		fp->ipq_next = fp->ipq_prev = (struct ipasfrag *)fp;
    444  1.1      cgd 		fp->ipq_src = ((struct ip *)ip)->ip_src;
    445  1.1      cgd 		fp->ipq_dst = ((struct ip *)ip)->ip_dst;
    446  1.1      cgd 		q = (struct ipasfrag *)fp;
    447  1.1      cgd 		goto insert;
    448  1.1      cgd 	}
    449  1.1      cgd 
    450  1.1      cgd 	/*
    451  1.1      cgd 	 * Find a segment which begins after this one does.
    452  1.1      cgd 	 */
    453  1.1      cgd 	for (q = fp->ipq_next; q != (struct ipasfrag *)fp; q = q->ipf_next)
    454  1.1      cgd 		if (q->ip_off > ip->ip_off)
    455  1.1      cgd 			break;
    456  1.1      cgd 
    457  1.1      cgd 	/*
    458  1.1      cgd 	 * If there is a preceding segment, it may provide some of
    459  1.1      cgd 	 * our data already.  If so, drop the data from the incoming
    460  1.1      cgd 	 * segment.  If it provides all of our data, drop us.
    461  1.1      cgd 	 */
    462  1.1      cgd 	if (q->ipf_prev != (struct ipasfrag *)fp) {
    463  1.1      cgd 		i = q->ipf_prev->ip_off + q->ipf_prev->ip_len - ip->ip_off;
    464  1.1      cgd 		if (i > 0) {
    465  1.1      cgd 			if (i >= ip->ip_len)
    466  1.1      cgd 				goto dropfrag;
    467  1.1      cgd 			m_adj(dtom(ip), i);
    468  1.1      cgd 			ip->ip_off += i;
    469  1.1      cgd 			ip->ip_len -= i;
    470  1.1      cgd 		}
    471  1.1      cgd 	}
    472  1.1      cgd 
    473  1.1      cgd 	/*
    474  1.1      cgd 	 * While we overlap succeeding segments trim them or,
    475  1.1      cgd 	 * if they are completely covered, dequeue them.
    476  1.1      cgd 	 */
    477  1.1      cgd 	while (q != (struct ipasfrag *)fp && ip->ip_off + ip->ip_len > q->ip_off) {
    478  1.1      cgd 		i = (ip->ip_off + ip->ip_len) - q->ip_off;
    479  1.1      cgd 		if (i < q->ip_len) {
    480  1.1      cgd 			q->ip_len -= i;
    481  1.1      cgd 			q->ip_off += i;
    482  1.1      cgd 			m_adj(dtom(q), i);
    483  1.1      cgd 			break;
    484  1.1      cgd 		}
    485  1.1      cgd 		q = q->ipf_next;
    486  1.1      cgd 		m_freem(dtom(q->ipf_prev));
    487  1.1      cgd 		ip_deq(q->ipf_prev);
    488  1.1      cgd 	}
    489  1.1      cgd 
    490  1.1      cgd insert:
    491  1.1      cgd 	/*
    492  1.1      cgd 	 * Stick new segment in its place;
    493  1.1      cgd 	 * check for complete reassembly.
    494  1.1      cgd 	 */
    495  1.1      cgd 	ip_enq(ip, q->ipf_prev);
    496  1.1      cgd 	next = 0;
    497  1.1      cgd 	for (q = fp->ipq_next; q != (struct ipasfrag *)fp; q = q->ipf_next) {
    498  1.1      cgd 		if (q->ip_off != next)
    499  1.1      cgd 			return (0);
    500  1.1      cgd 		next += q->ip_len;
    501  1.1      cgd 	}
    502  1.1      cgd 	if (q->ipf_prev->ipf_mff)
    503  1.1      cgd 		return (0);
    504  1.1      cgd 
    505  1.1      cgd 	/*
    506  1.1      cgd 	 * Reassembly is complete; concatenate fragments.
    507  1.1      cgd 	 */
    508  1.1      cgd 	q = fp->ipq_next;
    509  1.1      cgd 	m = dtom(q);
    510  1.1      cgd 	t = m->m_next;
    511  1.1      cgd 	m->m_next = 0;
    512  1.1      cgd 	m_cat(m, t);
    513  1.1      cgd 	q = q->ipf_next;
    514  1.1      cgd 	while (q != (struct ipasfrag *)fp) {
    515  1.1      cgd 		t = dtom(q);
    516  1.1      cgd 		q = q->ipf_next;
    517  1.1      cgd 		m_cat(m, t);
    518  1.1      cgd 	}
    519  1.1      cgd 
    520  1.1      cgd 	/*
    521  1.1      cgd 	 * Create header for new ip packet by
    522  1.1      cgd 	 * modifying header of first packet;
    523  1.1      cgd 	 * dequeue and discard fragment reassembly header.
    524  1.1      cgd 	 * Make header visible.
    525  1.1      cgd 	 */
    526  1.1      cgd 	ip = fp->ipq_next;
    527  1.1      cgd 	ip->ip_len = next;
    528  1.1      cgd 	((struct ip *)ip)->ip_src = fp->ipq_src;
    529  1.1      cgd 	((struct ip *)ip)->ip_dst = fp->ipq_dst;
    530  1.1      cgd 	remque(fp);
    531  1.1      cgd 	(void) m_free(dtom(fp));
    532  1.1      cgd 	m = dtom(ip);
    533  1.1      cgd 	m->m_len += (ip->ip_hl << 2);
    534  1.1      cgd 	m->m_data -= (ip->ip_hl << 2);
    535  1.1      cgd 	/* some debugging cruft by sklower, below, will go away soon */
    536  1.1      cgd 	if (m->m_flags & M_PKTHDR) { /* XXX this should be done elsewhere */
    537  1.1      cgd 		register int plen = 0;
    538  1.1      cgd 		for (t = m; m; m = m->m_next)
    539  1.1      cgd 			plen += m->m_len;
    540  1.1      cgd 		t->m_pkthdr.len = plen;
    541  1.1      cgd 	}
    542  1.1      cgd 	return ((struct ip *)ip);
    543  1.1      cgd 
    544  1.1      cgd dropfrag:
    545  1.1      cgd 	ipstat.ips_fragdropped++;
    546  1.1      cgd 	m_freem(m);
    547  1.1      cgd 	return (0);
    548  1.1      cgd }
    549  1.1      cgd 
    550  1.1      cgd /*
    551  1.1      cgd  * Free a fragment reassembly header and all
    552  1.1      cgd  * associated datagrams.
    553  1.1      cgd  */
    554  1.8  mycroft void
    555  1.1      cgd ip_freef(fp)
    556  1.1      cgd 	struct ipq *fp;
    557  1.1      cgd {
    558  1.1      cgd 	register struct ipasfrag *q, *p;
    559  1.1      cgd 
    560  1.1      cgd 	for (q = fp->ipq_next; q != (struct ipasfrag *)fp; q = p) {
    561  1.1      cgd 		p = q->ipf_next;
    562  1.1      cgd 		ip_deq(q);
    563  1.1      cgd 		m_freem(dtom(q));
    564  1.1      cgd 	}
    565  1.1      cgd 	remque(fp);
    566  1.1      cgd 	(void) m_free(dtom(fp));
    567  1.1      cgd }
    568  1.1      cgd 
    569  1.1      cgd /*
    570  1.1      cgd  * Put an ip fragment on a reassembly chain.
    571  1.1      cgd  * Like insque, but pointers in middle of structure.
    572  1.1      cgd  */
    573  1.8  mycroft void
    574  1.1      cgd ip_enq(p, prev)
    575  1.1      cgd 	register struct ipasfrag *p, *prev;
    576  1.1      cgd {
    577  1.1      cgd 
    578  1.1      cgd 	p->ipf_prev = prev;
    579  1.1      cgd 	p->ipf_next = prev->ipf_next;
    580  1.1      cgd 	prev->ipf_next->ipf_prev = p;
    581  1.1      cgd 	prev->ipf_next = p;
    582  1.1      cgd }
    583  1.1      cgd 
    584  1.1      cgd /*
    585  1.1      cgd  * To ip_enq as remque is to insque.
    586  1.1      cgd  */
    587  1.8  mycroft void
    588  1.1      cgd ip_deq(p)
    589  1.1      cgd 	register struct ipasfrag *p;
    590  1.1      cgd {
    591  1.1      cgd 
    592  1.1      cgd 	p->ipf_prev->ipf_next = p->ipf_next;
    593  1.1      cgd 	p->ipf_next->ipf_prev = p->ipf_prev;
    594  1.1      cgd }
    595  1.1      cgd 
    596  1.1      cgd /*
    597  1.1      cgd  * IP timer processing;
    598  1.1      cgd  * if a timer expires on a reassembly
    599  1.1      cgd  * queue, discard it.
    600  1.1      cgd  */
    601  1.8  mycroft void
    602  1.1      cgd ip_slowtimo()
    603  1.1      cgd {
    604  1.1      cgd 	register struct ipq *fp;
    605  1.1      cgd 	int s = splnet();
    606  1.1      cgd 
    607  1.1      cgd 	fp = ipq.next;
    608  1.1      cgd 	if (fp == 0) {
    609  1.1      cgd 		splx(s);
    610  1.1      cgd 		return;
    611  1.1      cgd 	}
    612  1.1      cgd 	while (fp != &ipq) {
    613  1.1      cgd 		--fp->ipq_ttl;
    614  1.1      cgd 		fp = fp->next;
    615  1.1      cgd 		if (fp->prev->ipq_ttl == 0) {
    616  1.1      cgd 			ipstat.ips_fragtimeout++;
    617  1.1      cgd 			ip_freef(fp->prev);
    618  1.1      cgd 		}
    619  1.1      cgd 	}
    620  1.1      cgd 	splx(s);
    621  1.1      cgd }
    622  1.1      cgd 
    623  1.1      cgd /*
    624  1.1      cgd  * Drain off all datagram fragments.
    625  1.1      cgd  */
    626  1.8  mycroft void
    627  1.1      cgd ip_drain()
    628  1.1      cgd {
    629  1.1      cgd 
    630  1.1      cgd 	while (ipq.next != &ipq) {
    631  1.1      cgd 		ipstat.ips_fragdropped++;
    632  1.1      cgd 		ip_freef(ipq.next);
    633  1.1      cgd 	}
    634  1.1      cgd }
    635  1.1      cgd 
    636  1.1      cgd extern struct in_ifaddr *ifptoia();
    637  1.1      cgd struct in_ifaddr *ip_rtaddr();
    638  1.1      cgd 
    639  1.1      cgd /*
    640  1.1      cgd  * Do option processing on a datagram,
    641  1.1      cgd  * possibly discarding it if bad options are encountered,
    642  1.1      cgd  * or forwarding it if source-routed.
    643  1.1      cgd  * Returns 1 if packet has been forwarded/freed,
    644  1.1      cgd  * 0 if the packet should be processed further.
    645  1.1      cgd  */
    646  1.8  mycroft int
    647  1.1      cgd ip_dooptions(m)
    648  1.1      cgd 	struct mbuf *m;
    649  1.1      cgd {
    650  1.1      cgd 	register struct ip *ip = mtod(m, struct ip *);
    651  1.1      cgd 	register u_char *cp;
    652  1.1      cgd 	register struct ip_timestamp *ipt;
    653  1.1      cgd 	register struct in_ifaddr *ia;
    654  1.1      cgd 	int opt, optlen, cnt, off, code, type = ICMP_PARAMPROB, forward = 0;
    655  1.1      cgd 	struct in_addr *sin;
    656  1.1      cgd 	n_time ntime;
    657  1.1      cgd 
    658  1.1      cgd 	cp = (u_char *)(ip + 1);
    659  1.1      cgd 	cnt = (ip->ip_hl << 2) - sizeof (struct ip);
    660  1.1      cgd 	for (; cnt > 0; cnt -= optlen, cp += optlen) {
    661  1.1      cgd 		opt = cp[IPOPT_OPTVAL];
    662  1.1      cgd 		if (opt == IPOPT_EOL)
    663  1.1      cgd 			break;
    664  1.1      cgd 		if (opt == IPOPT_NOP)
    665  1.1      cgd 			optlen = 1;
    666  1.1      cgd 		else {
    667  1.1      cgd 			optlen = cp[IPOPT_OLEN];
    668  1.1      cgd 			if (optlen <= 0 || optlen > cnt) {
    669  1.1      cgd 				code = &cp[IPOPT_OLEN] - (u_char *)ip;
    670  1.1      cgd 				goto bad;
    671  1.1      cgd 			}
    672  1.1      cgd 		}
    673  1.1      cgd 		switch (opt) {
    674  1.1      cgd 
    675  1.1      cgd 		default:
    676  1.1      cgd 			break;
    677  1.1      cgd 
    678  1.1      cgd 		/*
    679  1.1      cgd 		 * Source routing with record.
    680  1.1      cgd 		 * Find interface with current destination address.
    681  1.1      cgd 		 * If none on this machine then drop if strictly routed,
    682  1.1      cgd 		 * or do nothing if loosely routed.
    683  1.1      cgd 		 * Record interface address and bring up next address
    684  1.1      cgd 		 * component.  If strictly routed make sure next
    685  1.1      cgd 		 * address is on directly accessible net.
    686  1.1      cgd 		 */
    687  1.1      cgd 		case IPOPT_LSRR:
    688  1.1      cgd 		case IPOPT_SSRR:
    689  1.1      cgd 			if ((off = cp[IPOPT_OFFSET]) < IPOPT_MINOFF) {
    690  1.1      cgd 				code = &cp[IPOPT_OFFSET] - (u_char *)ip;
    691  1.1      cgd 				goto bad;
    692  1.1      cgd 			}
    693  1.1      cgd 			ipaddr.sin_addr = ip->ip_dst;
    694  1.1      cgd 			ia = (struct in_ifaddr *)
    695  1.1      cgd 				ifa_ifwithaddr((struct sockaddr *)&ipaddr);
    696  1.1      cgd 			if (ia == 0) {
    697  1.1      cgd 				if (opt == IPOPT_SSRR) {
    698  1.1      cgd 					type = ICMP_UNREACH;
    699  1.1      cgd 					code = ICMP_UNREACH_SRCFAIL;
    700  1.1      cgd 					goto bad;
    701  1.1      cgd 				}
    702  1.1      cgd 				/*
    703  1.1      cgd 				 * Loose routing, and not at next destination
    704  1.1      cgd 				 * yet; nothing to do except forward.
    705  1.1      cgd 				 */
    706  1.1      cgd 				break;
    707  1.1      cgd 			}
    708  1.1      cgd 			off--;			/* 0 origin */
    709  1.1      cgd 			if (off > optlen - sizeof(struct in_addr)) {
    710  1.1      cgd 				/*
    711  1.1      cgd 				 * End of source route.  Should be for us.
    712  1.1      cgd 				 */
    713  1.1      cgd 				save_rte(cp, ip->ip_src);
    714  1.1      cgd 				break;
    715  1.1      cgd 			}
    716  1.1      cgd 			/*
    717  1.1      cgd 			 * locate outgoing interface
    718  1.1      cgd 			 */
    719  1.1      cgd 			bcopy((caddr_t)(cp + off), (caddr_t)&ipaddr.sin_addr,
    720  1.1      cgd 			    sizeof(ipaddr.sin_addr));
    721  1.1      cgd 			if (opt == IPOPT_SSRR) {
    722  1.1      cgd #define	INA	struct in_ifaddr *
    723  1.1      cgd #define	SA	struct sockaddr *
    724  1.1      cgd 			    if ((ia = (INA)ifa_ifwithdstaddr((SA)&ipaddr)) == 0)
    725  1.1      cgd 				ia = in_iaonnetof(in_netof(ipaddr.sin_addr));
    726  1.1      cgd 			} else
    727  1.1      cgd 				ia = ip_rtaddr(ipaddr.sin_addr);
    728  1.1      cgd 			if (ia == 0) {
    729  1.1      cgd 				type = ICMP_UNREACH;
    730  1.1      cgd 				code = ICMP_UNREACH_SRCFAIL;
    731  1.1      cgd 				goto bad;
    732  1.1      cgd 			}
    733  1.1      cgd 			ip->ip_dst = ipaddr.sin_addr;
    734  1.1      cgd 			bcopy((caddr_t)&(IA_SIN(ia)->sin_addr),
    735  1.1      cgd 			    (caddr_t)(cp + off), sizeof(struct in_addr));
    736  1.1      cgd 			cp[IPOPT_OFFSET] += sizeof(struct in_addr);
    737  1.1      cgd 			forward = 1;
    738  1.1      cgd 			break;
    739  1.1      cgd 
    740  1.1      cgd 		case IPOPT_RR:
    741  1.1      cgd 			if ((off = cp[IPOPT_OFFSET]) < IPOPT_MINOFF) {
    742  1.1      cgd 				code = &cp[IPOPT_OFFSET] - (u_char *)ip;
    743  1.1      cgd 				goto bad;
    744  1.1      cgd 			}
    745  1.1      cgd 			/*
    746  1.1      cgd 			 * If no space remains, ignore.
    747  1.1      cgd 			 */
    748  1.1      cgd 			off--;			/* 0 origin */
    749  1.1      cgd 			if (off > optlen - sizeof(struct in_addr))
    750  1.1      cgd 				break;
    751  1.1      cgd 			bcopy((caddr_t)(&ip->ip_dst), (caddr_t)&ipaddr.sin_addr,
    752  1.1      cgd 			    sizeof(ipaddr.sin_addr));
    753  1.1      cgd 			/*
    754  1.1      cgd 			 * locate outgoing interface; if we're the destination,
    755  1.1      cgd 			 * use the incoming interface (should be same).
    756  1.1      cgd 			 */
    757  1.1      cgd 			if ((ia = (INA)ifa_ifwithaddr((SA)&ipaddr)) == 0 &&
    758  1.1      cgd 			    (ia = ip_rtaddr(ipaddr.sin_addr)) == 0) {
    759  1.1      cgd 				type = ICMP_UNREACH;
    760  1.1      cgd 				code = ICMP_UNREACH_HOST;
    761  1.1      cgd 				goto bad;
    762  1.1      cgd 			}
    763  1.1      cgd 			bcopy((caddr_t)&(IA_SIN(ia)->sin_addr),
    764  1.1      cgd 			    (caddr_t)(cp + off), sizeof(struct in_addr));
    765  1.1      cgd 			cp[IPOPT_OFFSET] += sizeof(struct in_addr);
    766  1.1      cgd 			break;
    767  1.1      cgd 
    768  1.1      cgd 		case IPOPT_TS:
    769  1.1      cgd 			code = cp - (u_char *)ip;
    770  1.1      cgd 			ipt = (struct ip_timestamp *)cp;
    771  1.1      cgd 			if (ipt->ipt_len < 5)
    772  1.1      cgd 				goto bad;
    773  1.1      cgd 			if (ipt->ipt_ptr > ipt->ipt_len - sizeof (long)) {
    774  1.1      cgd 				if (++ipt->ipt_oflw == 0)
    775  1.1      cgd 					goto bad;
    776  1.1      cgd 				break;
    777  1.1      cgd 			}
    778  1.1      cgd 			sin = (struct in_addr *)(cp + ipt->ipt_ptr - 1);
    779  1.1      cgd 			switch (ipt->ipt_flg) {
    780  1.1      cgd 
    781  1.1      cgd 			case IPOPT_TS_TSONLY:
    782  1.1      cgd 				break;
    783  1.1      cgd 
    784  1.1      cgd 			case IPOPT_TS_TSANDADDR:
    785  1.1      cgd 				if (ipt->ipt_ptr + sizeof(n_time) +
    786  1.1      cgd 				    sizeof(struct in_addr) > ipt->ipt_len)
    787  1.1      cgd 					goto bad;
    788  1.1      cgd 				ia = ifptoia(m->m_pkthdr.rcvif);
    789  1.1      cgd 				bcopy((caddr_t)&IA_SIN(ia)->sin_addr,
    790  1.1      cgd 				    (caddr_t)sin, sizeof(struct in_addr));
    791  1.1      cgd 				ipt->ipt_ptr += sizeof(struct in_addr);
    792  1.1      cgd 				break;
    793  1.1      cgd 
    794  1.1      cgd 			case IPOPT_TS_PRESPEC:
    795  1.1      cgd 				if (ipt->ipt_ptr + sizeof(n_time) +
    796  1.1      cgd 				    sizeof(struct in_addr) > ipt->ipt_len)
    797  1.1      cgd 					goto bad;
    798  1.1      cgd 				bcopy((caddr_t)sin, (caddr_t)&ipaddr.sin_addr,
    799  1.1      cgd 				    sizeof(struct in_addr));
    800  1.1      cgd 				if (ifa_ifwithaddr((SA)&ipaddr) == 0)
    801  1.1      cgd 					continue;
    802  1.1      cgd 				ipt->ipt_ptr += sizeof(struct in_addr);
    803  1.1      cgd 				break;
    804  1.1      cgd 
    805  1.1      cgd 			default:
    806  1.1      cgd 				goto bad;
    807  1.1      cgd 			}
    808  1.1      cgd 			ntime = iptime();
    809  1.1      cgd 			bcopy((caddr_t)&ntime, (caddr_t)cp + ipt->ipt_ptr - 1,
    810  1.1      cgd 			    sizeof(n_time));
    811  1.1      cgd 			ipt->ipt_ptr += sizeof(n_time);
    812  1.1      cgd 		}
    813  1.1      cgd 	}
    814  1.1      cgd 	if (forward) {
    815  1.1      cgd 		ip_forward(m, 1);
    816  1.1      cgd 		return (1);
    817  1.1      cgd 	} else
    818  1.1      cgd 		return (0);
    819  1.1      cgd bad:
    820  1.7  mycroft     {
    821  1.7  mycroft 	register struct in_addr foo = {};
    822  1.7  mycroft 	icmp_error(m, type, code, foo);
    823  1.7  mycroft     }
    824  1.1      cgd 	return (1);
    825  1.1      cgd }
    826  1.1      cgd 
    827  1.1      cgd /*
    828  1.1      cgd  * Given address of next destination (final or next hop),
    829  1.1      cgd  * return internet address info of interface to be used to get there.
    830  1.1      cgd  */
    831  1.1      cgd struct in_ifaddr *
    832  1.1      cgd ip_rtaddr(dst)
    833  1.1      cgd 	 struct in_addr dst;
    834  1.1      cgd {
    835  1.1      cgd 	register struct sockaddr_in *sin;
    836  1.1      cgd 
    837  1.1      cgd 	sin = (struct sockaddr_in *) &ipforward_rt.ro_dst;
    838  1.1      cgd 
    839  1.1      cgd 	if (ipforward_rt.ro_rt == 0 || dst.s_addr != sin->sin_addr.s_addr) {
    840  1.1      cgd 		if (ipforward_rt.ro_rt) {
    841  1.1      cgd 			RTFREE(ipforward_rt.ro_rt);
    842  1.1      cgd 			ipforward_rt.ro_rt = 0;
    843  1.1      cgd 		}
    844  1.1      cgd 		sin->sin_family = AF_INET;
    845  1.1      cgd 		sin->sin_len = sizeof(*sin);
    846  1.1      cgd 		sin->sin_addr = dst;
    847  1.1      cgd 
    848  1.1      cgd 		rtalloc(&ipforward_rt);
    849  1.1      cgd 	}
    850  1.1      cgd 	if (ipforward_rt.ro_rt == 0)
    851  1.1      cgd 		return ((struct in_ifaddr *)0);
    852  1.1      cgd 	return ((struct in_ifaddr *) ipforward_rt.ro_rt->rt_ifa);
    853  1.1      cgd }
    854  1.1      cgd 
    855  1.1      cgd /*
    856  1.1      cgd  * Save incoming source route for use in replies,
    857  1.1      cgd  * to be picked up later by ip_srcroute if the receiver is interested.
    858  1.1      cgd  */
    859  1.8  mycroft static void
    860  1.1      cgd save_rte(option, dst)
    861  1.1      cgd 	u_char *option;
    862  1.1      cgd 	struct in_addr dst;
    863  1.1      cgd {
    864  1.1      cgd 	unsigned olen;
    865  1.1      cgd 
    866  1.1      cgd 	olen = option[IPOPT_OLEN];
    867  1.1      cgd #ifdef DIAGNOSTIC
    868  1.1      cgd 	if (ipprintfs)
    869  1.1      cgd 		printf("save_rte: olen %d\n", olen);
    870  1.1      cgd #endif
    871  1.1      cgd 	if (olen > sizeof(ip_srcrt) - (1 + sizeof(dst)))
    872  1.1      cgd 		return;
    873  1.1      cgd 	bcopy((caddr_t)option, (caddr_t)ip_srcrt.srcopt, olen);
    874  1.1      cgd 	ip_nhops = (olen - IPOPT_OFFSET - 1) / sizeof(struct in_addr);
    875  1.1      cgd 	ip_srcrt.dst = dst;
    876  1.1      cgd }
    877  1.1      cgd 
    878  1.1      cgd /*
    879  1.1      cgd  * Retrieve incoming source route for use in replies,
    880  1.1      cgd  * in the same form used by setsockopt.
    881  1.1      cgd  * The first hop is placed before the options, will be removed later.
    882  1.1      cgd  */
    883  1.1      cgd struct mbuf *
    884  1.1      cgd ip_srcroute()
    885  1.1      cgd {
    886  1.1      cgd 	register struct in_addr *p, *q;
    887  1.1      cgd 	register struct mbuf *m;
    888  1.1      cgd 
    889  1.1      cgd 	if (ip_nhops == 0)
    890  1.1      cgd 		return ((struct mbuf *)0);
    891  1.1      cgd 	m = m_get(M_DONTWAIT, MT_SOOPTS);
    892  1.1      cgd 	if (m == 0)
    893  1.1      cgd 		return ((struct mbuf *)0);
    894  1.1      cgd 
    895  1.6  mycroft #define	OPTSIZ	(sizeof(ip_srcrt.nop) + sizeof(ip_srcrt.srcopt))
    896  1.1      cgd 
    897  1.1      cgd 	/* length is (nhops+1)*sizeof(addr) + sizeof(nop + srcrt header) */
    898  1.1      cgd 	m->m_len = ip_nhops * sizeof(struct in_addr) + sizeof(struct in_addr) +
    899  1.1      cgd 	    OPTSIZ;
    900  1.1      cgd #ifdef DIAGNOSTIC
    901  1.1      cgd 	if (ipprintfs)
    902  1.1      cgd 		printf("ip_srcroute: nhops %d mlen %d", ip_nhops, m->m_len);
    903  1.1      cgd #endif
    904  1.1      cgd 
    905  1.1      cgd 	/*
    906  1.1      cgd 	 * First save first hop for return route
    907  1.1      cgd 	 */
    908  1.1      cgd 	p = &ip_srcrt.route[ip_nhops - 1];
    909  1.1      cgd 	*(mtod(m, struct in_addr *)) = *p--;
    910  1.1      cgd #ifdef DIAGNOSTIC
    911  1.1      cgd 	if (ipprintfs)
    912  1.1      cgd 		printf(" hops %lx", ntohl(mtod(m, struct in_addr *)->s_addr));
    913  1.1      cgd #endif
    914  1.1      cgd 
    915  1.1      cgd 	/*
    916  1.1      cgd 	 * Copy option fields and padding (nop) to mbuf.
    917  1.1      cgd 	 */
    918  1.1      cgd 	ip_srcrt.nop = IPOPT_NOP;
    919  1.1      cgd 	ip_srcrt.srcopt[IPOPT_OFFSET] = IPOPT_MINOFF;
    920  1.1      cgd 	bcopy((caddr_t)&ip_srcrt.nop,
    921  1.1      cgd 	    mtod(m, caddr_t) + sizeof(struct in_addr), OPTSIZ);
    922  1.1      cgd 	q = (struct in_addr *)(mtod(m, caddr_t) +
    923  1.1      cgd 	    sizeof(struct in_addr) + OPTSIZ);
    924  1.1      cgd #undef OPTSIZ
    925  1.1      cgd 	/*
    926  1.1      cgd 	 * Record return path as an IP source route,
    927  1.1      cgd 	 * reversing the path (pointers are now aligned).
    928  1.1      cgd 	 */
    929  1.1      cgd 	while (p >= ip_srcrt.route) {
    930  1.1      cgd #ifdef DIAGNOSTIC
    931  1.1      cgd 		if (ipprintfs)
    932  1.1      cgd 			printf(" %lx", ntohl(q->s_addr));
    933  1.1      cgd #endif
    934  1.1      cgd 		*q++ = *p--;
    935  1.1      cgd 	}
    936  1.1      cgd 	/*
    937  1.1      cgd 	 * Last hop goes to final destination.
    938  1.1      cgd 	 */
    939  1.1      cgd 	*q = ip_srcrt.dst;
    940  1.1      cgd #ifdef DIAGNOSTIC
    941  1.1      cgd 	if (ipprintfs)
    942  1.1      cgd 		printf(" %lx\n", ntohl(q->s_addr));
    943  1.1      cgd #endif
    944  1.1      cgd 	return (m);
    945  1.1      cgd }
    946  1.1      cgd 
    947  1.1      cgd /*
    948  1.1      cgd  * Strip out IP options, at higher
    949  1.1      cgd  * level protocol in the kernel.
    950  1.1      cgd  * Second argument is buffer to which options
    951  1.1      cgd  * will be moved, and return value is their length.
    952  1.1      cgd  * XXX should be deleted; last arg currently ignored.
    953  1.1      cgd  */
    954  1.8  mycroft void
    955  1.1      cgd ip_stripoptions(m, mopt)
    956  1.1      cgd 	register struct mbuf *m;
    957  1.1      cgd 	struct mbuf *mopt;
    958  1.1      cgd {
    959  1.1      cgd 	register int i;
    960  1.1      cgd 	struct ip *ip = mtod(m, struct ip *);
    961  1.1      cgd 	register caddr_t opts;
    962  1.1      cgd 	int olen;
    963  1.1      cgd 
    964  1.1      cgd 	olen = (ip->ip_hl<<2) - sizeof (struct ip);
    965  1.1      cgd 	opts = (caddr_t)(ip + 1);
    966  1.1      cgd 	i = m->m_len - (sizeof (struct ip) + olen);
    967  1.1      cgd 	bcopy(opts  + olen, opts, (unsigned)i);
    968  1.1      cgd 	m->m_len -= olen;
    969  1.1      cgd 	if (m->m_flags & M_PKTHDR)
    970  1.1      cgd 		m->m_pkthdr.len -= olen;
    971  1.1      cgd 	ip->ip_hl = sizeof(struct ip) >> 2;
    972  1.1      cgd }
    973  1.1      cgd 
    974  1.1      cgd u_char inetctlerrmap[PRC_NCMDS] = {
    975  1.1      cgd 	0,		0,		0,		0,
    976  1.1      cgd 	0,		EMSGSIZE,	EHOSTDOWN,	EHOSTUNREACH,
    977  1.1      cgd 	EHOSTUNREACH,	EHOSTUNREACH,	ECONNREFUSED,	ECONNREFUSED,
    978  1.1      cgd 	EMSGSIZE,	EHOSTUNREACH,	0,		0,
    979  1.1      cgd 	0,		0,		0,		0,
    980  1.1      cgd 	ENOPROTOOPT
    981  1.1      cgd };
    982  1.1      cgd 
    983  1.1      cgd /*
    984  1.1      cgd  * Forward a packet.  If some error occurs return the sender
    985  1.1      cgd  * an icmp packet.  Note we can't always generate a meaningful
    986  1.1      cgd  * icmp message because icmp doesn't have a large enough repertoire
    987  1.1      cgd  * of codes and types.
    988  1.1      cgd  *
    989  1.1      cgd  * If not forwarding, just drop the packet.  This could be confusing
    990  1.1      cgd  * if ipforwarding was zero but some routing protocol was advancing
    991  1.1      cgd  * us as a gateway to somewhere.  However, we must let the routing
    992  1.1      cgd  * protocol deal with that.
    993  1.1      cgd  *
    994  1.1      cgd  * The srcrt parameter indicates whether the packet is being forwarded
    995  1.1      cgd  * via a source route.
    996  1.1      cgd  */
    997  1.8  mycroft static void
    998  1.1      cgd ip_forward(m, srcrt)
    999  1.1      cgd 	struct mbuf *m;
   1000  1.1      cgd 	int srcrt;
   1001  1.1      cgd {
   1002  1.1      cgd 	register struct ip *ip = mtod(m, struct ip *);
   1003  1.1      cgd 	register struct sockaddr_in *sin;
   1004  1.1      cgd 	register struct rtentry *rt;
   1005  1.1      cgd 	int error, type = 0, code;
   1006  1.1      cgd 	struct mbuf *mcopy;
   1007  1.1      cgd 	struct in_addr dest;
   1008  1.1      cgd 
   1009  1.1      cgd 	dest.s_addr = 0;
   1010  1.1      cgd #ifdef DIAGNOSTIC
   1011  1.1      cgd 	if (ipprintfs)
   1012  1.1      cgd 		printf("forward: src %x dst %x ttl %x\n", ip->ip_src,
   1013  1.1      cgd 			ip->ip_dst, ip->ip_ttl);
   1014  1.1      cgd #endif
   1015  1.1      cgd 	if (m->m_flags & M_BCAST || in_canforward(ip->ip_dst) == 0) {
   1016  1.1      cgd 		ipstat.ips_cantforward++;
   1017  1.1      cgd 		m_freem(m);
   1018  1.1      cgd 		return;
   1019  1.1      cgd 	}
   1020  1.1      cgd 	HTONS(ip->ip_id);
   1021  1.1      cgd 	if (ip->ip_ttl <= IPTTLDEC) {
   1022  1.1      cgd 		icmp_error(m, ICMP_TIMXCEED, ICMP_TIMXCEED_INTRANS, dest);
   1023  1.1      cgd 		return;
   1024  1.1      cgd 	}
   1025  1.1      cgd 	ip->ip_ttl -= IPTTLDEC;
   1026  1.1      cgd 
   1027  1.1      cgd 	sin = (struct sockaddr_in *)&ipforward_rt.ro_dst;
   1028  1.1      cgd 	if ((rt = ipforward_rt.ro_rt) == 0 ||
   1029  1.1      cgd 	    ip->ip_dst.s_addr != sin->sin_addr.s_addr) {
   1030  1.1      cgd 		if (ipforward_rt.ro_rt) {
   1031  1.1      cgd 			RTFREE(ipforward_rt.ro_rt);
   1032  1.1      cgd 			ipforward_rt.ro_rt = 0;
   1033  1.1      cgd 		}
   1034  1.1      cgd 		sin->sin_family = AF_INET;
   1035  1.1      cgd 		sin->sin_len = sizeof(*sin);
   1036  1.1      cgd 		sin->sin_addr = ip->ip_dst;
   1037  1.1      cgd 
   1038  1.1      cgd 		rtalloc(&ipforward_rt);
   1039  1.1      cgd 		if (ipforward_rt.ro_rt == 0) {
   1040  1.1      cgd 			icmp_error(m, ICMP_UNREACH, ICMP_UNREACH_HOST, dest);
   1041  1.1      cgd 			return;
   1042  1.1      cgd 		}
   1043  1.1      cgd 		rt = ipforward_rt.ro_rt;
   1044  1.1      cgd 	}
   1045  1.1      cgd 
   1046  1.1      cgd 	/*
   1047  1.1      cgd 	 * Save at most 64 bytes of the packet in case
   1048  1.1      cgd 	 * we need to generate an ICMP message to the src.
   1049  1.1      cgd 	 */
   1050  1.1      cgd 	mcopy = m_copy(m, 0, imin((int)ip->ip_len, 64));
   1051  1.1      cgd 
   1052  1.1      cgd #ifdef GATEWAY
   1053  1.1      cgd 	ip_ifmatrix[rt->rt_ifp->if_index +
   1054  1.1      cgd 	     if_index * m->m_pkthdr.rcvif->if_index]++;
   1055  1.1      cgd #endif
   1056  1.1      cgd 	/*
   1057  1.1      cgd 	 * If forwarding packet using same interface that it came in on,
   1058  1.1      cgd 	 * perhaps should send a redirect to sender to shortcut a hop.
   1059  1.1      cgd 	 * Only send redirect if source is sending directly to us,
   1060  1.1      cgd 	 * and if packet was not source routed (or has any options).
   1061  1.1      cgd 	 * Also, don't send redirect if forwarding using a default route
   1062  1.1      cgd 	 * or a route modified by a redirect.
   1063  1.1      cgd 	 */
   1064  1.1      cgd #define	satosin(sa)	((struct sockaddr_in *)(sa))
   1065  1.1      cgd 	if (rt->rt_ifp == m->m_pkthdr.rcvif &&
   1066  1.1      cgd 	    (rt->rt_flags & (RTF_DYNAMIC|RTF_MODIFIED)) == 0 &&
   1067  1.1      cgd 	    satosin(rt_key(rt))->sin_addr.s_addr != 0 &&
   1068  1.1      cgd 	    ipsendredirects && !srcrt) {
   1069  1.1      cgd 		struct in_ifaddr *ia;
   1070  1.1      cgd 		u_long src = ntohl(ip->ip_src.s_addr);
   1071  1.1      cgd 		u_long dst = ntohl(ip->ip_dst.s_addr);
   1072  1.1      cgd 
   1073  1.1      cgd 		if ((ia = ifptoia(m->m_pkthdr.rcvif)) &&
   1074  1.1      cgd 		   (src & ia->ia_subnetmask) == ia->ia_subnet) {
   1075  1.1      cgd 		    if (rt->rt_flags & RTF_GATEWAY)
   1076  1.1      cgd 			dest = satosin(rt->rt_gateway)->sin_addr;
   1077  1.1      cgd 		    else
   1078  1.1      cgd 			dest = ip->ip_dst;
   1079  1.1      cgd 		    /*
   1080  1.1      cgd 		     * If the destination is reached by a route to host,
   1081  1.1      cgd 		     * is on a subnet of a local net, or is directly
   1082  1.1      cgd 		     * on the attached net (!), use host redirect.
   1083  1.1      cgd 		     * (We may be the correct first hop for other subnets.)
   1084  1.1      cgd 		     */
   1085  1.1      cgd #define	RTA(rt)	((struct in_ifaddr *)(rt->rt_ifa))
   1086  1.1      cgd 		    type = ICMP_REDIRECT;
   1087  1.1      cgd 		    if ((rt->rt_flags & RTF_HOST) ||
   1088  1.1      cgd 		        (rt->rt_flags & RTF_GATEWAY) == 0)
   1089  1.1      cgd 			    code = ICMP_REDIRECT_HOST;
   1090  1.1      cgd 		    else if (RTA(rt)->ia_subnetmask != RTA(rt)->ia_netmask &&
   1091  1.1      cgd 		        (dst & RTA(rt)->ia_netmask) ==  RTA(rt)->ia_net)
   1092  1.1      cgd 			    code = ICMP_REDIRECT_HOST;
   1093  1.1      cgd 		    else
   1094  1.1      cgd 			    code = ICMP_REDIRECT_NET;
   1095  1.1      cgd #ifdef DIAGNOSTIC
   1096  1.1      cgd 		    if (ipprintfs)
   1097  1.1      cgd 		        printf("redirect (%d) to %x\n", code, dest.s_addr);
   1098  1.1      cgd #endif
   1099  1.1      cgd 		}
   1100  1.1      cgd 	}
   1101  1.1      cgd 
   1102  1.9  mycroft 	error = ip_output(m, NULL, &ipforward_rt, IP_FORWARDING
   1103  1.9  mycroft #ifdef DIRECTED_BROADCAST
   1104  1.9  mycroft 	    | IP_ALLOWBROADCAST
   1105  1.9  mycroft #endif
   1106  1.9  mycroft 	    , NULL);
   1107  1.1      cgd 	if (error)
   1108  1.1      cgd 		ipstat.ips_cantforward++;
   1109  1.1      cgd 	else {
   1110  1.1      cgd 		ipstat.ips_forward++;
   1111  1.1      cgd 		if (type)
   1112  1.1      cgd 			ipstat.ips_redirectsent++;
   1113  1.1      cgd 		else {
   1114  1.1      cgd 			if (mcopy)
   1115  1.1      cgd 				m_freem(mcopy);
   1116  1.1      cgd 			return;
   1117  1.1      cgd 		}
   1118  1.1      cgd 	}
   1119  1.1      cgd 	if (mcopy == NULL)
   1120  1.1      cgd 		return;
   1121  1.1      cgd 	switch (error) {
   1122  1.1      cgd 
   1123  1.1      cgd 	case 0:				/* forwarded, but need redirect */
   1124  1.1      cgd 		/* type, code set above */
   1125  1.1      cgd 		break;
   1126  1.1      cgd 
   1127  1.1      cgd 	case ENETUNREACH:		/* shouldn't happen, checked above */
   1128  1.1      cgd 	case EHOSTUNREACH:
   1129  1.1      cgd 	case ENETDOWN:
   1130  1.1      cgd 	case EHOSTDOWN:
   1131  1.1      cgd 	default:
   1132  1.1      cgd 		type = ICMP_UNREACH;
   1133  1.1      cgd 		code = ICMP_UNREACH_HOST;
   1134  1.1      cgd 		break;
   1135  1.1      cgd 
   1136  1.1      cgd 	case EMSGSIZE:
   1137  1.1      cgd 		type = ICMP_UNREACH;
   1138  1.1      cgd 		code = ICMP_UNREACH_NEEDFRAG;
   1139  1.1      cgd 		ipstat.ips_cantfrag++;
   1140  1.1      cgd 		break;
   1141  1.1      cgd 
   1142  1.1      cgd 	case ENOBUFS:
   1143  1.1      cgd 		type = ICMP_SOURCEQUENCH;
   1144  1.1      cgd 		code = 0;
   1145  1.1      cgd 		break;
   1146  1.1      cgd 	}
   1147  1.1      cgd 	icmp_error(mcopy, type, code, dest);
   1148  1.1      cgd }
   1149