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npf_inet.c revision 1.42
      1  1.42      maxv /*	$NetBSD: npf_inet.c,v 1.42 2018/03/17 10:21:09 maxv Exp $	*/
      2   1.1     rmind 
      3   1.1     rmind /*-
      4  1.29     rmind  * Copyright (c) 2009-2014 The NetBSD Foundation, Inc.
      5   1.1     rmind  * All rights reserved.
      6   1.1     rmind  *
      7   1.1     rmind  * This material is based upon work partially supported by The
      8   1.1     rmind  * NetBSD Foundation under a contract with Mindaugas Rasiukevicius.
      9   1.1     rmind  *
     10   1.1     rmind  * Redistribution and use in source and binary forms, with or without
     11   1.1     rmind  * modification, are permitted provided that the following conditions
     12   1.1     rmind  * are met:
     13   1.1     rmind  * 1. Redistributions of source code must retain the above copyright
     14   1.1     rmind  *    notice, this list of conditions and the following disclaimer.
     15   1.1     rmind  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1     rmind  *    notice, this list of conditions and the following disclaimer in the
     17   1.1     rmind  *    documentation and/or other materials provided with the distribution.
     18   1.1     rmind  *
     19   1.1     rmind  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.1     rmind  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.1     rmind  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.1     rmind  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.1     rmind  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.1     rmind  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.1     rmind  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.1     rmind  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.1     rmind  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.1     rmind  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.1     rmind  * POSSIBILITY OF SUCH DAMAGE.
     30   1.1     rmind  */
     31   1.1     rmind 
     32   1.1     rmind /*
     33  1.22     rmind  * Various protocol related helper routines.
     34  1.12     rmind  *
     35  1.12     rmind  * This layer manipulates npf_cache_t structure i.e. caches requested headers
     36  1.12     rmind  * and stores which information was cached in the information bit field.
     37  1.12     rmind  * It is also responsibility of this layer to update or invalidate the cache
     38  1.12     rmind  * on rewrites (e.g. by translation routines).
     39   1.1     rmind  */
     40   1.1     rmind 
     41  1.36  christos #ifdef _KERNEL
     42   1.1     rmind #include <sys/cdefs.h>
     43  1.42      maxv __KERNEL_RCSID(0, "$NetBSD: npf_inet.c,v 1.42 2018/03/17 10:21:09 maxv Exp $");
     44   1.1     rmind 
     45   1.1     rmind #include <sys/param.h>
     46  1.11     rmind #include <sys/types.h>
     47   1.1     rmind 
     48   1.4     rmind #include <net/pfil.h>
     49   1.4     rmind #include <net/if.h>
     50   1.4     rmind #include <net/ethertypes.h>
     51   1.4     rmind #include <net/if_ether.h>
     52   1.4     rmind 
     53   1.1     rmind #include <netinet/in_systm.h>
     54   1.1     rmind #include <netinet/in.h>
     55  1.33   mlelstv #include <netinet6/in6_var.h>
     56   1.1     rmind #include <netinet/ip.h>
     57   1.4     rmind #include <netinet/ip6.h>
     58   1.1     rmind #include <netinet/tcp.h>
     59   1.1     rmind #include <netinet/udp.h>
     60   1.1     rmind #include <netinet/ip_icmp.h>
     61  1.36  christos #endif
     62   1.1     rmind 
     63   1.1     rmind #include "npf_impl.h"
     64   1.1     rmind 
     65   1.1     rmind /*
     66  1.27     rmind  * npf_fixup{16,32}_cksum: incremental update of the Internet checksum.
     67   1.1     rmind  */
     68   1.1     rmind 
     69   1.1     rmind uint16_t
     70   1.1     rmind npf_fixup16_cksum(uint16_t cksum, uint16_t odatum, uint16_t ndatum)
     71   1.1     rmind {
     72   1.1     rmind 	uint32_t sum;
     73   1.1     rmind 
     74   1.1     rmind 	/*
     75   1.1     rmind 	 * RFC 1624:
     76   1.1     rmind 	 *	HC' = ~(~HC + ~m + m')
     77  1.27     rmind 	 *
     78  1.27     rmind 	 * Note: 1's complement sum is endian-independent (RFC 1071, page 2).
     79   1.1     rmind 	 */
     80  1.27     rmind 	sum = ~cksum & 0xffff;
     81  1.27     rmind 	sum += (~odatum & 0xffff) + ndatum;
     82   1.1     rmind 	sum = (sum >> 16) + (sum & 0xffff);
     83   1.1     rmind 	sum += (sum >> 16);
     84   1.1     rmind 
     85  1.27     rmind 	return ~sum & 0xffff;
     86   1.1     rmind }
     87   1.1     rmind 
     88   1.1     rmind uint16_t
     89   1.1     rmind npf_fixup32_cksum(uint16_t cksum, uint32_t odatum, uint32_t ndatum)
     90   1.1     rmind {
     91  1.27     rmind 	uint32_t sum;
     92  1.27     rmind 
     93  1.27     rmind 	/*
     94  1.27     rmind 	 * Checksum 32-bit datum as as two 16-bit.  Note, the first
     95  1.27     rmind 	 * 32->16 bit reduction is not necessary.
     96  1.27     rmind 	 */
     97  1.27     rmind 	sum = ~cksum & 0xffff;
     98  1.27     rmind 	sum += (~odatum & 0xffff) + (ndatum & 0xffff);
     99   1.1     rmind 
    100  1.27     rmind 	sum += (~odatum >> 16) + (ndatum >> 16);
    101  1.27     rmind 	sum = (sum >> 16) + (sum & 0xffff);
    102  1.27     rmind 	sum += (sum >> 16);
    103  1.27     rmind 	return ~sum & 0xffff;
    104   1.1     rmind }
    105   1.1     rmind 
    106   1.1     rmind /*
    107   1.4     rmind  * npf_addr_cksum: calculate checksum of the address, either IPv4 or IPv6.
    108   1.4     rmind  */
    109   1.4     rmind uint16_t
    110  1.19     rmind npf_addr_cksum(uint16_t cksum, int sz, const npf_addr_t *oaddr,
    111  1.19     rmind     const npf_addr_t *naddr)
    112   1.4     rmind {
    113  1.19     rmind 	const uint32_t *oip32 = (const uint32_t *)oaddr;
    114  1.19     rmind 	const uint32_t *nip32 = (const uint32_t *)naddr;
    115   1.4     rmind 
    116   1.4     rmind 	KASSERT(sz % sizeof(uint32_t) == 0);
    117   1.4     rmind 	do {
    118   1.4     rmind 		cksum = npf_fixup32_cksum(cksum, *oip32++, *nip32++);
    119   1.4     rmind 		sz -= sizeof(uint32_t);
    120   1.4     rmind 	} while (sz);
    121   1.4     rmind 
    122   1.4     rmind 	return cksum;
    123   1.4     rmind }
    124   1.4     rmind 
    125   1.4     rmind /*
    126  1.26     rmind  * npf_addr_sum: provide IP addresses as a XORed 32-bit integer.
    127   1.4     rmind  * Note: used for hash function.
    128   1.1     rmind  */
    129   1.4     rmind uint32_t
    130  1.26     rmind npf_addr_mix(const int sz, const npf_addr_t *a1, const npf_addr_t *a2)
    131   1.1     rmind {
    132   1.4     rmind 	uint32_t mix = 0;
    133   1.1     rmind 
    134   1.5     rmind 	KASSERT(sz > 0 && a1 != NULL && a2 != NULL);
    135   1.5     rmind 
    136  1.26     rmind 	for (int i = 0; i < (sz >> 2); i++) {
    137  1.36  christos 		mix ^= a1->word32[i];
    138  1.36  christos 		mix ^= a2->word32[i];
    139   1.4     rmind 	}
    140   1.4     rmind 	return mix;
    141   1.4     rmind }
    142   1.1     rmind 
    143  1.13     rmind /*
    144  1.13     rmind  * npf_addr_mask: apply the mask to a given address and store the result.
    145  1.13     rmind  */
    146  1.13     rmind void
    147  1.13     rmind npf_addr_mask(const npf_addr_t *addr, const npf_netmask_t mask,
    148  1.13     rmind     const int alen, npf_addr_t *out)
    149  1.12     rmind {
    150  1.13     rmind 	const int nwords = alen >> 2;
    151  1.12     rmind 	uint_fast8_t length = mask;
    152  1.12     rmind 
    153  1.12     rmind 	/* Note: maximum length is 32 for IPv4 and 128 for IPv6. */
    154  1.12     rmind 	KASSERT(length <= NPF_MAX_NETMASK);
    155  1.12     rmind 
    156  1.13     rmind 	for (int i = 0; i < nwords; i++) {
    157  1.13     rmind 		uint32_t wordmask;
    158  1.13     rmind 
    159  1.12     rmind 		if (length >= 32) {
    160  1.13     rmind 			wordmask = htonl(0xffffffff);
    161  1.12     rmind 			length -= 32;
    162  1.13     rmind 		} else if (length) {
    163  1.13     rmind 			wordmask = htonl(0xffffffff << (32 - length));
    164  1.13     rmind 			length = 0;
    165  1.12     rmind 		} else {
    166  1.13     rmind 			wordmask = 0;
    167  1.12     rmind 		}
    168  1.36  christos 		out->word32[i] = addr->word32[i] & wordmask;
    169  1.12     rmind 	}
    170  1.12     rmind }
    171  1.12     rmind 
    172  1.12     rmind /*
    173  1.12     rmind  * npf_addr_cmp: compare two addresses, either IPv4 or IPv6.
    174  1.12     rmind  *
    175  1.13     rmind  * => Return 0 if equal and negative/positive if less/greater accordingly.
    176  1.12     rmind  * => Ignore the mask, if NPF_NO_NETMASK is specified.
    177  1.12     rmind  */
    178  1.12     rmind int
    179  1.12     rmind npf_addr_cmp(const npf_addr_t *addr1, const npf_netmask_t mask1,
    180  1.13     rmind     const npf_addr_t *addr2, const npf_netmask_t mask2, const int alen)
    181  1.12     rmind {
    182  1.13     rmind 	npf_addr_t realaddr1, realaddr2;
    183  1.12     rmind 
    184  1.12     rmind 	if (mask1 != NPF_NO_NETMASK) {
    185  1.13     rmind 		npf_addr_mask(addr1, mask1, alen, &realaddr1);
    186  1.13     rmind 		addr1 = &realaddr1;
    187  1.12     rmind 	}
    188  1.12     rmind 	if (mask2 != NPF_NO_NETMASK) {
    189  1.13     rmind 		npf_addr_mask(addr2, mask2, alen, &realaddr2);
    190  1.13     rmind 		addr2 = &realaddr2;
    191  1.12     rmind 	}
    192  1.13     rmind 	return memcmp(addr1, addr2, alen);
    193  1.12     rmind }
    194  1.12     rmind 
    195   1.4     rmind /*
    196   1.4     rmind  * npf_tcpsaw: helper to fetch SEQ, ACK, WIN and return TCP data length.
    197  1.12     rmind  *
    198  1.12     rmind  * => Returns all values in host byte-order.
    199   1.4     rmind  */
    200   1.4     rmind int
    201  1.12     rmind npf_tcpsaw(const npf_cache_t *npc, tcp_seq *seq, tcp_seq *ack, uint32_t *win)
    202   1.4     rmind {
    203  1.19     rmind 	const struct tcphdr *th = npc->npc_l4.tcp;
    204   1.8     rmind 	u_int thlen;
    205   1.1     rmind 
    206   1.7    zoltan 	KASSERT(npf_iscached(npc, NPC_TCP));
    207   1.1     rmind 
    208   1.4     rmind 	*seq = ntohl(th->th_seq);
    209   1.4     rmind 	*ack = ntohl(th->th_ack);
    210   1.4     rmind 	*win = (uint32_t)ntohs(th->th_win);
    211   1.8     rmind 	thlen = th->th_off << 2;
    212   1.1     rmind 
    213   1.7    zoltan 	if (npf_iscached(npc, NPC_IP4)) {
    214  1.19     rmind 		const struct ip *ip = npc->npc_ip.v4;
    215  1.21     rmind 		return ntohs(ip->ip_len) - npc->npc_hlen - thlen;
    216  1.12     rmind 	} else if (npf_iscached(npc, NPC_IP6)) {
    217  1.19     rmind 		const struct ip6_hdr *ip6 = npc->npc_ip.v6;
    218  1.42      maxv 		return ntohs(ip6->ip6_plen) -
    219  1.42      maxv 		    (npc->npc_hlen - sizeof(*ip6)) - thlen;
    220   1.7    zoltan 	}
    221   1.7    zoltan 	return 0;
    222   1.1     rmind }
    223   1.1     rmind 
    224   1.1     rmind /*
    225   1.4     rmind  * npf_fetch_tcpopts: parse and return TCP options.
    226   1.1     rmind  */
    227   1.1     rmind bool
    228  1.32     rmind npf_fetch_tcpopts(npf_cache_t *npc, uint16_t *mss, int *wscale)
    229   1.1     rmind {
    230  1.32     rmind 	nbuf_t *nbuf = npc->npc_nbuf;
    231  1.19     rmind 	const struct tcphdr *th = npc->npc_l4.tcp;
    232   1.4     rmind 	int topts_len, step;
    233  1.39      maxv 	uint8_t *nptr;
    234   1.4     rmind 	uint8_t val;
    235  1.19     rmind 	bool ok;
    236   1.4     rmind 
    237   1.7    zoltan 	KASSERT(npf_iscached(npc, NPC_IP46));
    238   1.7    zoltan 	KASSERT(npf_iscached(npc, NPC_TCP));
    239  1.10     rmind 
    240   1.4     rmind 	/* Determine if there are any TCP options, get their length. */
    241   1.4     rmind 	topts_len = (th->th_off << 2) - sizeof(struct tcphdr);
    242   1.4     rmind 	if (topts_len <= 0) {
    243   1.4     rmind 		/* No options. */
    244   1.1     rmind 		return false;
    245   1.4     rmind 	}
    246   1.4     rmind 	KASSERT(topts_len <= MAX_TCPOPTLEN);
    247   1.1     rmind 
    248   1.4     rmind 	/* First step: IP and TCP header up to options. */
    249  1.21     rmind 	step = npc->npc_hlen + sizeof(struct tcphdr);
    250  1.19     rmind 	nbuf_reset(nbuf);
    251   1.4     rmind next:
    252  1.19     rmind 	if ((nptr = nbuf_advance(nbuf, step, 1)) == NULL) {
    253  1.19     rmind 		ok = false;
    254  1.19     rmind 		goto done;
    255   1.4     rmind 	}
    256  1.39      maxv 	val = *nptr;
    257  1.12     rmind 
    258   1.4     rmind 	switch (val) {
    259   1.4     rmind 	case TCPOPT_EOL:
    260   1.4     rmind 		/* Done. */
    261  1.19     rmind 		ok = true;
    262  1.19     rmind 		goto done;
    263   1.4     rmind 	case TCPOPT_NOP:
    264   1.4     rmind 		topts_len--;
    265   1.4     rmind 		step = 1;
    266   1.4     rmind 		break;
    267   1.4     rmind 	case TCPOPT_MAXSEG:
    268  1.39      maxv 		if ((nptr = nbuf_ensure_contig(nbuf, TCPOLEN_MAXSEG)) == NULL) {
    269  1.19     rmind 			ok = false;
    270  1.19     rmind 			goto done;
    271   1.4     rmind 		}
    272   1.4     rmind 		if (mss) {
    273  1.19     rmind 			if (*mss) {
    274  1.39      maxv 				memcpy(nptr + 2, mss, sizeof(uint16_t));
    275  1.19     rmind 			} else {
    276  1.39      maxv 				memcpy(mss, nptr + 2, sizeof(uint16_t));
    277  1.19     rmind 			}
    278   1.4     rmind 		}
    279   1.4     rmind 		topts_len -= TCPOLEN_MAXSEG;
    280  1.39      maxv 		step = TCPOLEN_MAXSEG;
    281   1.4     rmind 		break;
    282   1.4     rmind 	case TCPOPT_WINDOW:
    283  1.10     rmind 		/* TCP Window Scaling (RFC 1323). */
    284  1.39      maxv 		if ((nptr = nbuf_ensure_contig(nbuf, TCPOLEN_WINDOW)) == NULL) {
    285  1.19     rmind 			ok = false;
    286  1.19     rmind 			goto done;
    287   1.4     rmind 		}
    288  1.39      maxv 		val = *(nptr + 2);
    289   1.4     rmind 		*wscale = (val > TCP_MAX_WINSHIFT) ? TCP_MAX_WINSHIFT : val;
    290   1.4     rmind 		topts_len -= TCPOLEN_WINDOW;
    291  1.39      maxv 		step = TCPOLEN_WINDOW;
    292   1.4     rmind 		break;
    293   1.4     rmind 	default:
    294  1.39      maxv 		if ((nptr = nbuf_ensure_contig(nbuf, 2)) == NULL) {
    295  1.19     rmind 			ok = false;
    296  1.19     rmind 			goto done;
    297   1.4     rmind 		}
    298  1.39      maxv 		val = *(nptr + 1);
    299  1.16     rmind 		if (val < 2 || val > topts_len) {
    300  1.19     rmind 			ok = false;
    301  1.19     rmind 			goto done;
    302   1.4     rmind 		}
    303   1.4     rmind 		topts_len -= val;
    304  1.39      maxv 		step = val;
    305   1.4     rmind 	}
    306  1.12     rmind 
    307   1.6     rmind 	/* Any options left? */
    308   1.4     rmind 	if (__predict_true(topts_len > 0)) {
    309   1.4     rmind 		goto next;
    310   1.4     rmind 	}
    311  1.19     rmind 	ok = true;
    312  1.19     rmind done:
    313  1.19     rmind 	if (nbuf_flag_p(nbuf, NBUF_DATAREF_RESET)) {
    314  1.32     rmind 		npf_recache(npc);
    315  1.19     rmind 	}
    316  1.19     rmind 	return ok;
    317   1.1     rmind }
    318   1.1     rmind 
    319  1.19     rmind static int
    320  1.19     rmind npf_cache_ip(npf_cache_t *npc, nbuf_t *nbuf)
    321   1.1     rmind {
    322  1.19     rmind 	const void *nptr = nbuf_dataptr(nbuf);
    323  1.19     rmind 	const uint8_t ver = *(const uint8_t *)nptr;
    324  1.19     rmind 	int flags = 0;
    325  1.12     rmind 
    326   1.4     rmind 	switch (ver >> 4) {
    327  1.12     rmind 	case IPVERSION: {
    328  1.19     rmind 		struct ip *ip;
    329  1.12     rmind 
    330  1.19     rmind 		ip = nbuf_ensure_contig(nbuf, sizeof(struct ip));
    331  1.19     rmind 		if (ip == NULL) {
    332  1.38      maxv 			return NPC_FMTERR;
    333   1.4     rmind 		}
    334  1.12     rmind 
    335   1.4     rmind 		/* Check header length and fragment offset. */
    336  1.10     rmind 		if ((u_int)(ip->ip_hl << 2) < sizeof(struct ip)) {
    337  1.38      maxv 			return NPC_FMTERR;
    338   1.4     rmind 		}
    339   1.4     rmind 		if (ip->ip_off & ~htons(IP_DF | IP_RF)) {
    340   1.4     rmind 			/* Note fragmentation. */
    341  1.19     rmind 			flags |= NPC_IPFRAG;
    342   1.4     rmind 		}
    343  1.12     rmind 
    344   1.4     rmind 		/* Cache: layer 3 - IPv4. */
    345  1.14     rmind 		npc->npc_alen = sizeof(struct in_addr);
    346  1.28     rmind 		npc->npc_ips[NPF_SRC] = (npf_addr_t *)&ip->ip_src;
    347  1.28     rmind 		npc->npc_ips[NPF_DST] = (npf_addr_t *)&ip->ip_dst;
    348   1.7    zoltan 		npc->npc_hlen = ip->ip_hl << 2;
    349  1.19     rmind 		npc->npc_proto = ip->ip_p;
    350  1.19     rmind 
    351  1.19     rmind 		npc->npc_ip.v4 = ip;
    352  1.19     rmind 		flags |= NPC_IP4;
    353   1.4     rmind 		break;
    354  1.12     rmind 	}
    355   1.4     rmind 
    356  1.12     rmind 	case (IPV6_VERSION >> 4): {
    357  1.19     rmind 		struct ip6_hdr *ip6;
    358  1.19     rmind 		struct ip6_ext *ip6e;
    359  1.37  christos 		struct ip6_frag *ip6f;
    360  1.19     rmind 		size_t off, hlen;
    361  1.38      maxv 		int frag_present;
    362  1.19     rmind 
    363  1.19     rmind 		ip6 = nbuf_ensure_contig(nbuf, sizeof(struct ip6_hdr));
    364  1.19     rmind 		if (ip6 == NULL) {
    365  1.38      maxv 			return NPC_FMTERR;
    366   1.7    zoltan 		}
    367  1.19     rmind 
    368  1.19     rmind 		/* Set initial next-protocol value. */
    369  1.19     rmind 		hlen = sizeof(struct ip6_hdr);
    370  1.19     rmind 		npc->npc_proto = ip6->ip6_nxt;
    371  1.13     rmind 		npc->npc_hlen = hlen;
    372   1.7    zoltan 
    373  1.38      maxv 		frag_present = 0;
    374  1.38      maxv 
    375  1.12     rmind 		/*
    376  1.19     rmind 		 * Advance by the length of the current header.
    377  1.12     rmind 		 */
    378  1.19     rmind 		off = nbuf_offset(nbuf);
    379  1.38      maxv 		while ((ip6e = nbuf_advance(nbuf, hlen, sizeof(*ip6e))) != NULL) {
    380  1.13     rmind 			/*
    381  1.13     rmind 			 * Determine whether we are going to continue.
    382  1.13     rmind 			 */
    383  1.19     rmind 			switch (npc->npc_proto) {
    384  1.13     rmind 			case IPPROTO_HOPOPTS:
    385   1.7    zoltan 			case IPPROTO_DSTOPTS:
    386   1.7    zoltan 			case IPPROTO_ROUTING:
    387  1.19     rmind 				hlen = (ip6e->ip6e_len + 1) << 3;
    388   1.7    zoltan 				break;
    389   1.7    zoltan 			case IPPROTO_FRAGMENT:
    390  1.38      maxv 				if (frag_present++)
    391  1.38      maxv 					return NPC_FMTERR;
    392  1.37  christos 				ip6f = nbuf_ensure_contig(nbuf, sizeof(*ip6f));
    393  1.37  christos 				if (ip6f == NULL)
    394  1.38      maxv 					return NPC_FMTERR;
    395  1.38      maxv 
    396  1.41      maxv 				/* RFC6946: Skip dummy fragments. */
    397  1.41      maxv 				if (!ntohs(ip6f->ip6f_offlg & IP6F_OFF_MASK) &&
    398  1.41      maxv 				    !(ip6f->ip6f_offlg & IP6F_MORE_FRAG)) {
    399  1.41      maxv 					hlen = sizeof(struct ip6_frag);
    400  1.41      maxv 					break;
    401  1.41      maxv 				}
    402  1.41      maxv 
    403  1.40      maxv 				hlen = 0;
    404  1.40      maxv 				flags |= NPC_IPFRAG;
    405  1.37  christos 
    406   1.7    zoltan 				break;
    407   1.7    zoltan 			case IPPROTO_AH:
    408  1.19     rmind 				hlen = (ip6e->ip6e_len + 2) << 2;
    409   1.7    zoltan 				break;
    410   1.7    zoltan 			default:
    411  1.13     rmind 				hlen = 0;
    412  1.13     rmind 				break;
    413  1.13     rmind 			}
    414  1.13     rmind 
    415  1.13     rmind 			if (!hlen) {
    416   1.7    zoltan 				break;
    417   1.7    zoltan 			}
    418  1.19     rmind 			npc->npc_proto = ip6e->ip6e_nxt;
    419  1.13     rmind 			npc->npc_hlen += hlen;
    420  1.13     rmind 		}
    421   1.7    zoltan 
    422  1.23     rmind 		/*
    423  1.23     rmind 		 * Re-fetch the header pointers (nbufs might have been
    424  1.23     rmind 		 * reallocated).  Restore the original offset (if any).
    425  1.23     rmind 		 */
    426  1.19     rmind 		nbuf_reset(nbuf);
    427  1.23     rmind 		ip6 = nbuf_dataptr(nbuf);
    428  1.19     rmind 		if (off) {
    429  1.19     rmind 			nbuf_advance(nbuf, off, 0);
    430  1.19     rmind 		}
    431  1.19     rmind 
    432  1.12     rmind 		/* Cache: layer 3 - IPv6. */
    433  1.14     rmind 		npc->npc_alen = sizeof(struct in6_addr);
    434  1.28     rmind 		npc->npc_ips[NPF_SRC] = (npf_addr_t *)&ip6->ip6_src;
    435  1.28     rmind 		npc->npc_ips[NPF_DST]= (npf_addr_t *)&ip6->ip6_dst;
    436  1.19     rmind 
    437  1.19     rmind 		npc->npc_ip.v6 = ip6;
    438  1.19     rmind 		flags |= NPC_IP6;
    439   1.7    zoltan 		break;
    440  1.12     rmind 	}
    441   1.4     rmind 	default:
    442  1.19     rmind 		break;
    443   1.4     rmind 	}
    444  1.19     rmind 	return flags;
    445   1.1     rmind }
    446   1.1     rmind 
    447   1.1     rmind /*
    448   1.4     rmind  * npf_cache_all: general routine to cache all relevant IP (v4 or v6)
    449  1.12     rmind  * and TCP, UDP or ICMP headers.
    450  1.19     rmind  *
    451  1.19     rmind  * => nbuf offset shall be set accordingly.
    452   1.1     rmind  */
    453  1.10     rmind int
    454  1.32     rmind npf_cache_all(npf_cache_t *npc)
    455   1.1     rmind {
    456  1.32     rmind 	nbuf_t *nbuf = npc->npc_nbuf;
    457  1.19     rmind 	int flags, l4flags;
    458  1.19     rmind 	u_int hlen;
    459  1.19     rmind 
    460  1.19     rmind 	/*
    461  1.19     rmind 	 * This routine is a main point where the references are cached,
    462  1.19     rmind 	 * therefore clear the flag as we reset.
    463  1.19     rmind 	 */
    464  1.19     rmind again:
    465  1.19     rmind 	nbuf_unset_flag(nbuf, NBUF_DATAREF_RESET);
    466   1.1     rmind 
    467  1.19     rmind 	/*
    468  1.19     rmind 	 * First, cache the L3 header (IPv4 or IPv6).  If IP packet is
    469  1.19     rmind 	 * fragmented, then we cannot look into L4.
    470  1.19     rmind 	 */
    471  1.19     rmind 	flags = npf_cache_ip(npc, nbuf);
    472  1.38      maxv 	if ((flags & NPC_IP46) == 0 || (flags & NPC_IPFRAG) != 0 ||
    473  1.38      maxv 	    (flags & NPC_FMTERR) != 0) {
    474  1.23     rmind 		nbuf_unset_flag(nbuf, NBUF_DATAREF_RESET);
    475  1.19     rmind 		npc->npc_info |= flags;
    476  1.19     rmind 		return flags;
    477   1.1     rmind 	}
    478  1.19     rmind 	hlen = npc->npc_hlen;
    479  1.19     rmind 
    480  1.19     rmind 	switch (npc->npc_proto) {
    481   1.1     rmind 	case IPPROTO_TCP:
    482  1.19     rmind 		/* Cache: layer 4 - TCP. */
    483  1.19     rmind 		npc->npc_l4.tcp = nbuf_advance(nbuf, hlen,
    484  1.19     rmind 		    sizeof(struct tcphdr));
    485  1.19     rmind 		l4flags = NPC_LAYER4 | NPC_TCP;
    486  1.10     rmind 		break;
    487   1.1     rmind 	case IPPROTO_UDP:
    488  1.19     rmind 		/* Cache: layer 4 - UDP. */
    489  1.19     rmind 		npc->npc_l4.udp = nbuf_advance(nbuf, hlen,
    490  1.19     rmind 		    sizeof(struct udphdr));
    491  1.19     rmind 		l4flags = NPC_LAYER4 | NPC_UDP;
    492  1.10     rmind 		break;
    493   1.1     rmind 	case IPPROTO_ICMP:
    494  1.19     rmind 		/* Cache: layer 4 - ICMPv4. */
    495  1.19     rmind 		npc->npc_l4.icmp = nbuf_advance(nbuf, hlen,
    496  1.19     rmind 		    offsetof(struct icmp, icmp_void));
    497  1.19     rmind 		l4flags = NPC_LAYER4 | NPC_ICMP;
    498  1.19     rmind 		break;
    499  1.15       spz 	case IPPROTO_ICMPV6:
    500  1.19     rmind 		/* Cache: layer 4 - ICMPv6. */
    501  1.19     rmind 		npc->npc_l4.icmp6 = nbuf_advance(nbuf, hlen,
    502  1.19     rmind 		    offsetof(struct icmp6_hdr, icmp6_data32));
    503  1.19     rmind 		l4flags = NPC_LAYER4 | NPC_ICMP;
    504  1.19     rmind 		break;
    505  1.19     rmind 	default:
    506  1.19     rmind 		l4flags = 0;
    507  1.10     rmind 		break;
    508   1.1     rmind 	}
    509  1.19     rmind 
    510  1.19     rmind 	if (nbuf_flag_p(nbuf, NBUF_DATAREF_RESET)) {
    511  1.19     rmind 		goto again;
    512  1.19     rmind 	}
    513  1.19     rmind 
    514  1.19     rmind 	/* Add the L4 flags if nbuf_advance() succeeded. */
    515  1.19     rmind 	if (l4flags && npc->npc_l4.hdr) {
    516  1.19     rmind 		flags |= l4flags;
    517  1.19     rmind 	}
    518  1.19     rmind 	npc->npc_info |= flags;
    519  1.19     rmind 	return flags;
    520  1.19     rmind }
    521  1.19     rmind 
    522  1.19     rmind void
    523  1.32     rmind npf_recache(npf_cache_t *npc)
    524  1.19     rmind {
    525  1.32     rmind 	nbuf_t *nbuf = npc->npc_nbuf;
    526  1.24    martin 	const int mflags __diagused = npc->npc_info & (NPC_IP46 | NPC_LAYER4);
    527  1.25       mrg 	int flags __diagused;
    528  1.19     rmind 
    529  1.19     rmind 	nbuf_reset(nbuf);
    530  1.19     rmind 	npc->npc_info = 0;
    531  1.32     rmind 	flags = npf_cache_all(npc);
    532  1.32     rmind 
    533  1.19     rmind 	KASSERT((flags & mflags) == mflags);
    534  1.19     rmind 	KASSERT(nbuf_flag_p(nbuf, NBUF_DATAREF_RESET) == 0);
    535   1.1     rmind }
    536   1.1     rmind 
    537   1.1     rmind /*
    538  1.19     rmind  * npf_rwrip: rewrite required IP address.
    539   1.4     rmind  */
    540   1.4     rmind bool
    541  1.28     rmind npf_rwrip(const npf_cache_t *npc, u_int which, const npf_addr_t *addr)
    542   1.4     rmind {
    543   1.4     rmind 	KASSERT(npf_iscached(npc, NPC_IP46));
    544  1.28     rmind 	KASSERT(which == NPF_SRC || which == NPF_DST);
    545   1.4     rmind 
    546  1.28     rmind 	memcpy(npc->npc_ips[which], addr, npc->npc_alen);
    547   1.4     rmind 	return true;
    548   1.4     rmind }
    549   1.4     rmind 
    550   1.4     rmind /*
    551  1.19     rmind  * npf_rwrport: rewrite required TCP/UDP port.
    552   1.1     rmind  */
    553   1.1     rmind bool
    554  1.28     rmind npf_rwrport(const npf_cache_t *npc, u_int which, const in_port_t port)
    555   1.1     rmind {
    556  1.21     rmind 	const int proto = npc->npc_proto;
    557   1.4     rmind 	in_port_t *oport;
    558   1.1     rmind 
    559   1.4     rmind 	KASSERT(npf_iscached(npc, NPC_TCP) || npf_iscached(npc, NPC_UDP));
    560   1.1     rmind 	KASSERT(proto == IPPROTO_TCP || proto == IPPROTO_UDP);
    561  1.28     rmind 	KASSERT(which == NPF_SRC || which == NPF_DST);
    562   1.1     rmind 
    563  1.19     rmind 	/* Get the offset and store the port in it. */
    564   1.4     rmind 	if (proto == IPPROTO_TCP) {
    565  1.19     rmind 		struct tcphdr *th = npc->npc_l4.tcp;
    566  1.28     rmind 		oport = (which == NPF_SRC) ? &th->th_sport : &th->th_dport;
    567   1.1     rmind 	} else {
    568  1.19     rmind 		struct udphdr *uh = npc->npc_l4.udp;
    569  1.28     rmind 		oport = (which == NPF_SRC) ? &uh->uh_sport : &uh->uh_dport;
    570   1.1     rmind 	}
    571  1.19     rmind 	memcpy(oport, &port, sizeof(in_port_t));
    572   1.1     rmind 	return true;
    573   1.1     rmind }
    574   1.1     rmind 
    575   1.1     rmind /*
    576  1.19     rmind  * npf_rwrcksum: rewrite IPv4 and/or TCP/UDP checksum.
    577   1.1     rmind  */
    578   1.1     rmind bool
    579  1.28     rmind npf_rwrcksum(const npf_cache_t *npc, u_int which,
    580  1.19     rmind     const npf_addr_t *addr, const in_port_t port)
    581   1.1     rmind {
    582  1.28     rmind 	const npf_addr_t *oaddr = npc->npc_ips[which];
    583  1.21     rmind 	const int proto = npc->npc_proto;
    584  1.19     rmind 	const int alen = npc->npc_alen;
    585  1.18     rmind 	uint16_t *ocksum;
    586  1.18     rmind 	in_port_t oport;
    587  1.18     rmind 
    588  1.19     rmind 	KASSERT(npf_iscached(npc, NPC_LAYER4));
    589  1.28     rmind 	KASSERT(which == NPF_SRC || which == NPF_DST);
    590  1.18     rmind 
    591   1.4     rmind 	if (npf_iscached(npc, NPC_IP4)) {
    592  1.19     rmind 		struct ip *ip = npc->npc_ip.v4;
    593  1.19     rmind 		uint16_t ipsum = ip->ip_sum;
    594   1.4     rmind 
    595  1.19     rmind 		/* Recalculate IPv4 checksum and rewrite. */
    596  1.19     rmind 		ip->ip_sum = npf_addr_cksum(ipsum, alen, oaddr, addr);
    597   1.4     rmind 	} else {
    598   1.4     rmind 		/* No checksum for IPv6. */
    599   1.4     rmind 		KASSERT(npf_iscached(npc, NPC_IP6));
    600   1.4     rmind 	}
    601   1.4     rmind 
    602  1.18     rmind 	/* Nothing else to do for ICMP. */
    603  1.30     rmind 	if (proto == IPPROTO_ICMP || proto == IPPROTO_ICMPV6) {
    604   1.4     rmind 		return true;
    605   1.4     rmind 	}
    606   1.7    zoltan 	KASSERT(npf_iscached(npc, NPC_TCP) || npf_iscached(npc, NPC_UDP));
    607   1.4     rmind 
    608  1.18     rmind 	/*
    609  1.18     rmind 	 * Calculate TCP/UDP checksum:
    610  1.18     rmind 	 * - Skip if UDP and the current checksum is zero.
    611  1.18     rmind 	 * - Fixup the IP address change.
    612  1.18     rmind 	 * - Fixup the port change, if required (non-zero).
    613  1.18     rmind 	 */
    614   1.4     rmind 	if (proto == IPPROTO_TCP) {
    615  1.19     rmind 		struct tcphdr *th = npc->npc_l4.tcp;
    616   1.4     rmind 
    617  1.18     rmind 		ocksum = &th->th_sum;
    618  1.28     rmind 		oport = (which == NPF_SRC) ? th->th_sport : th->th_dport;
    619   1.4     rmind 	} else {
    620  1.19     rmind 		struct udphdr *uh = npc->npc_l4.udp;
    621   1.4     rmind 
    622   1.4     rmind 		KASSERT(proto == IPPROTO_UDP);
    623  1.18     rmind 		ocksum = &uh->uh_sum;
    624  1.18     rmind 		if (*ocksum == 0) {
    625   1.4     rmind 			/* No need to update. */
    626   1.4     rmind 			return true;
    627   1.4     rmind 		}
    628  1.28     rmind 		oport = (which == NPF_SRC) ? uh->uh_sport : uh->uh_dport;
    629  1.18     rmind 	}
    630  1.18     rmind 
    631  1.19     rmind 	uint16_t cksum = npf_addr_cksum(*ocksum, alen, oaddr, addr);
    632  1.18     rmind 	if (port) {
    633  1.18     rmind 		cksum = npf_fixup16_cksum(cksum, oport, port);
    634   1.4     rmind 	}
    635   1.1     rmind 
    636  1.19     rmind 	/* Rewrite TCP/UDP checksum. */
    637  1.19     rmind 	memcpy(ocksum, &cksum, sizeof(uint16_t));
    638   1.4     rmind 	return true;
    639   1.4     rmind }
    640   1.4     rmind 
    641  1.29     rmind /*
    642  1.30     rmind  * npf_napt_rwr: perform address and/or port translation.
    643  1.30     rmind  */
    644  1.30     rmind int
    645  1.30     rmind npf_napt_rwr(const npf_cache_t *npc, u_int which,
    646  1.30     rmind     const npf_addr_t *addr, const in_addr_t port)
    647  1.30     rmind {
    648  1.30     rmind 	const unsigned proto = npc->npc_proto;
    649  1.30     rmind 
    650  1.30     rmind 	/*
    651  1.30     rmind 	 * Rewrite IP and/or TCP/UDP checksums first, since we need the
    652  1.30     rmind 	 * current (old) address/port for the calculations.  Then perform
    653  1.30     rmind 	 * the address translation i.e. rewrite source or destination.
    654  1.30     rmind 	 */
    655  1.30     rmind 	if (!npf_rwrcksum(npc, which, addr, port)) {
    656  1.30     rmind 		return EINVAL;
    657  1.30     rmind 	}
    658  1.30     rmind 	if (!npf_rwrip(npc, which, addr)) {
    659  1.30     rmind 		return EINVAL;
    660  1.30     rmind 	}
    661  1.30     rmind 	if (port == 0) {
    662  1.30     rmind 		/* Done. */
    663  1.30     rmind 		return 0;
    664  1.30     rmind 	}
    665  1.30     rmind 
    666  1.30     rmind 	switch (proto) {
    667  1.30     rmind 	case IPPROTO_TCP:
    668  1.30     rmind 	case IPPROTO_UDP:
    669  1.30     rmind 		/* Rewrite source/destination port. */
    670  1.30     rmind 		if (!npf_rwrport(npc, which, port)) {
    671  1.30     rmind 			return EINVAL;
    672  1.30     rmind 		}
    673  1.30     rmind 		break;
    674  1.30     rmind 	case IPPROTO_ICMP:
    675  1.30     rmind 	case IPPROTO_ICMPV6:
    676  1.30     rmind 		KASSERT(npf_iscached(npc, NPC_ICMP));
    677  1.30     rmind 		/* Nothing. */
    678  1.30     rmind 		break;
    679  1.30     rmind 	default:
    680  1.30     rmind 		return ENOTSUP;
    681  1.30     rmind 	}
    682  1.30     rmind 	return 0;
    683  1.30     rmind }
    684  1.30     rmind 
    685  1.30     rmind /*
    686  1.29     rmind  * IPv6-to-IPv6 Network Prefix Translation (NPTv6), as per RFC 6296.
    687  1.29     rmind  */
    688  1.29     rmind 
    689  1.29     rmind int
    690  1.29     rmind npf_npt66_rwr(const npf_cache_t *npc, u_int which, const npf_addr_t *pref,
    691  1.29     rmind     npf_netmask_t len, uint16_t adj)
    692  1.29     rmind {
    693  1.29     rmind 	npf_addr_t *addr = npc->npc_ips[which];
    694  1.29     rmind 	unsigned remnant, word, preflen = len >> 4;
    695  1.29     rmind 	uint32_t sum;
    696  1.29     rmind 
    697  1.29     rmind 	KASSERT(which == NPF_SRC || which == NPF_DST);
    698  1.29     rmind 
    699  1.29     rmind 	if (!npf_iscached(npc, NPC_IP6)) {
    700  1.29     rmind 		return EINVAL;
    701  1.29     rmind 	}
    702  1.29     rmind 	if (len <= 48) {
    703  1.29     rmind 		/*
    704  1.29     rmind 		 * The word to adjust.  Cannot translate the 0xffff
    705  1.29     rmind 		 * subnet if /48 or shorter.
    706  1.29     rmind 		 */
    707  1.29     rmind 		word = 3;
    708  1.36  christos 		if (addr->word16[word] == 0xffff) {
    709  1.29     rmind 			return EINVAL;
    710  1.29     rmind 		}
    711  1.29     rmind 	} else {
    712  1.29     rmind 		/*
    713  1.29     rmind 		 * Also, all 0s or 1s in the host part are disallowed for
    714  1.29     rmind 		 * longer than /48 prefixes.
    715  1.29     rmind 		 */
    716  1.36  christos 		if ((addr->word32[2] == 0 && addr->word32[3] == 0) ||
    717  1.36  christos 		    (addr->word32[2] == ~0U && addr->word32[3] == ~0U))
    718  1.29     rmind 			return EINVAL;
    719  1.29     rmind 
    720  1.29     rmind 		/* Determine the 16-bit word to adjust. */
    721  1.29     rmind 		for (word = 4; word < 8; word++)
    722  1.36  christos 			if (addr->word16[word] != 0xffff)
    723  1.29     rmind 				break;
    724  1.29     rmind 	}
    725  1.29     rmind 
    726  1.29     rmind 	/* Rewrite the prefix. */
    727  1.29     rmind 	for (unsigned i = 0; i < preflen; i++) {
    728  1.36  christos 		addr->word16[i] = pref->word16[i];
    729  1.29     rmind 	}
    730  1.29     rmind 
    731  1.29     rmind 	/*
    732  1.29     rmind 	 * If prefix length is within a 16-bit word (not dividable by 16),
    733  1.29     rmind 	 * then prepare a mask, determine the word and adjust it.
    734  1.29     rmind 	 */
    735  1.29     rmind 	if ((remnant = len - (preflen << 4)) != 0) {
    736  1.29     rmind 		const uint16_t wordmask = (1U << remnant) - 1;
    737  1.29     rmind 		const unsigned i = preflen;
    738  1.29     rmind 
    739  1.36  christos 		addr->word16[i] = (pref->word16[i] & wordmask) |
    740  1.36  christos 		    (addr->word16[i] & ~wordmask);
    741  1.29     rmind 	}
    742  1.29     rmind 
    743  1.29     rmind 	/*
    744  1.29     rmind 	 * Performing 1's complement sum/difference.
    745  1.29     rmind 	 */
    746  1.36  christos 	sum = addr->word16[word] + adj;
    747  1.29     rmind 	while (sum >> 16) {
    748  1.29     rmind 		sum = (sum >> 16) + (sum & 0xffff);
    749  1.29     rmind 	}
    750  1.29     rmind 	if (sum == 0xffff) {
    751  1.29     rmind 		/* RFC 1071. */
    752  1.29     rmind 		sum = 0x0000;
    753  1.29     rmind 	}
    754  1.36  christos 	addr->word16[word] = sum;
    755  1.29     rmind 	return 0;
    756  1.29     rmind }
    757  1.29     rmind 
    758  1.13     rmind #if defined(DDB) || defined(_NPF_TESTING)
    759  1.13     rmind 
    760  1.31     rmind const char *
    761  1.31     rmind npf_addr_dump(const npf_addr_t *addr, int alen)
    762  1.13     rmind {
    763  1.31     rmind 	if (alen == sizeof(struct in_addr)) {
    764  1.31     rmind 		struct in_addr ip;
    765  1.31     rmind 		memcpy(&ip, addr, alen);
    766  1.31     rmind 		return inet_ntoa(ip);
    767  1.31     rmind 	}
    768  1.36  christos 	return "[IPv6]";
    769  1.13     rmind }
    770  1.13     rmind 
    771  1.13     rmind #endif
    772