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ipsec_mbuf.c revision 1.21.2.2
      1  1.21.2.2  pgoyette /*	$NetBSD: ipsec_mbuf.c,v 1.21.2.2 2018/04/22 07:20:28 pgoyette Exp $	*/
      2      1.20      maxv 
      3      1.20      maxv /*
      4       1.4   thorpej  * Copyright (c) 2002, 2003 Sam Leffler, Errno Consulting
      5       1.4   thorpej  * All rights reserved.
      6       1.4   thorpej  *
      7       1.4   thorpej  * Redistribution and use in source and binary forms, with or without
      8       1.4   thorpej  * modification, are permitted provided that the following conditions
      9       1.4   thorpej  * are met:
     10       1.4   thorpej  * 1. Redistributions of source code must retain the above copyright
     11       1.4   thorpej  *    notice, this list of conditions and the following disclaimer.
     12       1.4   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     13       1.4   thorpej  *    notice, this list of conditions and the following disclaimer in the
     14       1.4   thorpej  *    documentation and/or other materials provided with the distribution.
     15       1.4   thorpej  *
     16       1.4   thorpej  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     17       1.4   thorpej  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     18       1.4   thorpej  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     19       1.4   thorpej  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     20       1.4   thorpej  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     21       1.4   thorpej  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     22       1.4   thorpej  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     23       1.4   thorpej  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     24       1.4   thorpej  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     25       1.4   thorpej  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     26       1.4   thorpej  * SUCH DAMAGE.
     27       1.4   thorpej  *
     28  1.21.2.2  pgoyette  * $FreeBSD: sys/netipsec/ipsec_mbuf.c,v 1.5.2.2 2003/03/28 20:32:53 sam Exp $
     29       1.4   thorpej  */
     30       1.1  jonathan 
     31       1.1  jonathan #include <sys/cdefs.h>
     32  1.21.2.2  pgoyette __KERNEL_RCSID(0, "$NetBSD: ipsec_mbuf.c,v 1.21.2.2 2018/04/22 07:20:28 pgoyette Exp $");
     33       1.1  jonathan 
     34       1.1  jonathan /*
     35       1.1  jonathan  * IPsec-specific mbuf routines.
     36       1.1  jonathan  */
     37       1.1  jonathan 
     38       1.1  jonathan #include <sys/param.h>
     39       1.1  jonathan #include <sys/systm.h>
     40       1.1  jonathan #include <sys/mbuf.h>
     41       1.1  jonathan 
     42       1.1  jonathan #include <netipsec/ipsec.h>
     43       1.5  jonathan #include <netipsec/ipsec_var.h>
     44      1.11   thorpej #include <netipsec/ipsec_private.h>
     45       1.1  jonathan 
     46       1.1  jonathan /*
     47       1.1  jonathan  * Create a writable copy of the mbuf chain.  While doing this
     48       1.1  jonathan  * we compact the chain with a goal of producing a chain with
     49       1.1  jonathan  * at most two mbufs.  The second mbuf in this chain is likely
     50       1.1  jonathan  * to be a cluster.  The primary purpose of this work is to create
     51       1.1  jonathan  * a writable packet for encryption, compression, etc.  The
     52       1.1  jonathan  * secondary goal is to linearize the data so the data can be
     53       1.1  jonathan  * passed to crypto hardware in the most efficient manner possible.
     54       1.1  jonathan  */
     55       1.1  jonathan struct mbuf *
     56       1.1  jonathan m_clone(struct mbuf *m0)
     57       1.1  jonathan {
     58       1.1  jonathan 	struct mbuf *m, *mprev;
     59       1.1  jonathan 	struct mbuf *n, *mfirst, *mlast;
     60       1.1  jonathan 	int len, off;
     61       1.1  jonathan 
     62      1.14     ozaki 	KASSERT(m0 != NULL);
     63       1.1  jonathan 
     64       1.1  jonathan 	mprev = NULL;
     65       1.1  jonathan 	for (m = m0; m != NULL; m = mprev->m_next) {
     66       1.1  jonathan 		/*
     67       1.1  jonathan 		 * Regular mbufs are ignored unless there's a cluster
     68       1.1  jonathan 		 * in front of it that we can use to coalesce.  We do
     69       1.1  jonathan 		 * the latter mainly so later clusters can be coalesced
     70       1.1  jonathan 		 * also w/o having to handle them specially (i.e. convert
     71       1.1  jonathan 		 * mbuf+cluster -> cluster).  This optimization is heavily
     72       1.1  jonathan 		 * influenced by the assumption that we're running over
     73       1.1  jonathan 		 * Ethernet where MCLBYTES is large enough that the max
     74       1.1  jonathan 		 * packet size will permit lots of coalescing into a
     75       1.1  jonathan 		 * single cluster.  This in turn permits efficient
     76       1.1  jonathan 		 * crypto operations, especially when using hardware.
     77       1.1  jonathan 		 */
     78       1.1  jonathan 		if ((m->m_flags & M_EXT) == 0) {
     79       1.1  jonathan 			if (mprev && (mprev->m_flags & M_EXT) &&
     80       1.1  jonathan 			    m->m_len <= M_TRAILINGSPACE(mprev)) {
     81       1.1  jonathan 				/* XXX: this ignores mbuf types */
     82       1.9  degroote 				memcpy(mtod(mprev, char *) + mprev->m_len,
     83       1.9  degroote 				       mtod(m, char *), m->m_len);
     84       1.1  jonathan 				mprev->m_len += m->m_len;
     85       1.1  jonathan 				mprev->m_next = m->m_next;	/* unlink from chain */
     86       1.1  jonathan 				m_free(m);			/* reclaim mbuf */
     87      1.11   thorpej 				IPSEC_STATINC(IPSEC_STAT_MBCOALESCED);
     88       1.1  jonathan 			} else {
     89       1.1  jonathan 				mprev = m;
     90       1.1  jonathan 			}
     91       1.1  jonathan 			continue;
     92       1.1  jonathan 		}
     93  1.21.2.2  pgoyette 
     94       1.1  jonathan 		/*
     95  1.21.2.2  pgoyette 		 * Writable mbufs are left alone (for now).
     96       1.1  jonathan 		 */
     97       1.1  jonathan 		if (M_EXT_WRITABLE(m)) {
     98       1.1  jonathan 			mprev = m;
     99       1.1  jonathan 			continue;
    100       1.1  jonathan 		}
    101       1.1  jonathan 
    102       1.1  jonathan 		/*
    103       1.1  jonathan 		 * Not writable, replace with a copy or coalesce with
    104       1.1  jonathan 		 * the previous mbuf if possible (since we have to copy
    105       1.1  jonathan 		 * it anyway, we try to reduce the number of mbufs and
    106       1.1  jonathan 		 * clusters so that future work is easier).
    107       1.1  jonathan 		 */
    108      1.14     ozaki 		KASSERTMSG(m->m_flags & M_EXT, "m_flags 0x%x", m->m_flags);
    109       1.1  jonathan 		/* NB: we only coalesce into a cluster or larger */
    110       1.1  jonathan 		if (mprev != NULL && (mprev->m_flags & M_EXT) &&
    111       1.1  jonathan 		    m->m_len <= M_TRAILINGSPACE(mprev)) {
    112       1.1  jonathan 			/* XXX: this ignores mbuf types */
    113       1.9  degroote 			memcpy(mtod(mprev, char *) + mprev->m_len,
    114       1.9  degroote 			       mtod(m, char *), m->m_len);
    115       1.1  jonathan 			mprev->m_len += m->m_len;
    116       1.1  jonathan 			mprev->m_next = m->m_next;	/* unlink from chain */
    117       1.1  jonathan 			m_free(m);			/* reclaim mbuf */
    118      1.11   thorpej 			IPSEC_STATINC(IPSEC_STAT_CLCOALESCED);
    119       1.1  jonathan 			continue;
    120       1.1  jonathan 		}
    121       1.1  jonathan 
    122       1.1  jonathan 		/*
    123       1.1  jonathan 		 * Allocate new space to hold the copy...
    124       1.1  jonathan 		 */
    125       1.1  jonathan 		if (mprev == NULL && (m->m_flags & M_PKTHDR)) {
    126       1.1  jonathan 			/*
    127       1.1  jonathan 			 * NB: if a packet header is present we must
    128       1.1  jonathan 			 * allocate the mbuf separately from any cluster
    129       1.1  jonathan 			 * because M_MOVE_PKTHDR will smash the data
    130       1.1  jonathan 			 * pointer and drop the M_EXT marker.
    131       1.1  jonathan 			 */
    132       1.1  jonathan 			MGETHDR(n, M_DONTWAIT, m->m_type);
    133       1.1  jonathan 			if (n == NULL) {
    134       1.1  jonathan 				m_freem(m0);
    135  1.21.2.2  pgoyette 				return NULL;
    136       1.1  jonathan 			}
    137       1.1  jonathan 			M_MOVE_PKTHDR(n, m);
    138       1.1  jonathan 			MCLGET(n, M_DONTWAIT);
    139       1.1  jonathan 			if ((n->m_flags & M_EXT) == 0) {
    140       1.1  jonathan 				m_free(n);
    141       1.1  jonathan 				m_freem(m0);
    142  1.21.2.2  pgoyette 				return NULL;
    143       1.1  jonathan 			}
    144       1.1  jonathan 		} else {
    145       1.1  jonathan 			n = m_getcl(M_DONTWAIT, m->m_type, m->m_flags);
    146       1.1  jonathan 			if (n == NULL) {
    147       1.1  jonathan 				m_freem(m0);
    148  1.21.2.2  pgoyette 				return NULL;
    149       1.1  jonathan 			}
    150       1.1  jonathan 		}
    151  1.21.2.2  pgoyette 
    152       1.1  jonathan 		/*
    153       1.1  jonathan 		 * ... and copy the data.  We deal with jumbo mbufs
    154       1.1  jonathan 		 * (i.e. m_len > MCLBYTES) by splitting them into
    155       1.1  jonathan 		 * clusters.  We could just malloc a buffer and make
    156       1.1  jonathan 		 * it external but too many device drivers don't know
    157       1.1  jonathan 		 * how to break up the non-contiguous memory when
    158       1.1  jonathan 		 * doing DMA.
    159       1.1  jonathan 		 */
    160       1.1  jonathan 		len = m->m_len;
    161       1.1  jonathan 		off = 0;
    162       1.1  jonathan 		mfirst = n;
    163       1.1  jonathan 		mlast = NULL;
    164       1.1  jonathan 		for (;;) {
    165       1.1  jonathan 			int cc = min(len, MCLBYTES);
    166       1.9  degroote 			memcpy(mtod(n, char *), mtod(m, char *) + off, cc);
    167       1.1  jonathan 			n->m_len = cc;
    168       1.1  jonathan 			if (mlast != NULL)
    169       1.1  jonathan 				mlast->m_next = n;
    170       1.6     perry 			mlast = n;
    171      1.11   thorpej 			IPSEC_STATINC(IPSEC_STAT_CLCOPIED);
    172       1.1  jonathan 
    173       1.1  jonathan 			len -= cc;
    174       1.1  jonathan 			if (len <= 0)
    175       1.1  jonathan 				break;
    176       1.1  jonathan 			off += cc;
    177       1.1  jonathan 
    178       1.1  jonathan 			n = m_getcl(M_DONTWAIT, m->m_type, m->m_flags);
    179       1.1  jonathan 			if (n == NULL) {
    180       1.1  jonathan 				m_freem(mfirst);
    181       1.1  jonathan 				m_freem(m0);
    182  1.21.2.2  pgoyette 				return NULL;
    183       1.1  jonathan 			}
    184       1.1  jonathan 		}
    185       1.6     perry 		n->m_next = m->m_next;
    186       1.1  jonathan 		if (mprev == NULL)
    187       1.1  jonathan 			m0 = mfirst;		/* new head of chain */
    188       1.1  jonathan 		else
    189       1.1  jonathan 			mprev->m_next = mfirst;	/* replace old mbuf */
    190       1.1  jonathan 		m_free(m);			/* release old mbuf */
    191       1.1  jonathan 		mprev = mfirst;
    192       1.1  jonathan 	}
    193  1.21.2.2  pgoyette 
    194  1.21.2.2  pgoyette 	return m0;
    195       1.1  jonathan }
    196       1.1  jonathan 
    197       1.1  jonathan /*
    198       1.1  jonathan  * Make space for a new header of length hlen at skip bytes
    199       1.1  jonathan  * into the packet.  When doing this we allocate new mbufs only
    200       1.1  jonathan  * when absolutely necessary.  The mbuf where the new header
    201       1.1  jonathan  * is to go is returned together with an offset into the mbuf.
    202       1.1  jonathan  * If NULL is returned then the mbuf chain may have been modified;
    203       1.1  jonathan  * the caller is assumed to always free the chain.
    204       1.1  jonathan  */
    205       1.1  jonathan struct mbuf *
    206       1.1  jonathan m_makespace(struct mbuf *m0, int skip, int hlen, int *off)
    207       1.1  jonathan {
    208       1.1  jonathan 	struct mbuf *m;
    209       1.1  jonathan 	unsigned remain;
    210       1.1  jonathan 
    211      1.14     ozaki 	KASSERT(m0 != NULL);
    212  1.21.2.1  pgoyette 	KASSERT(m0->m_flags & M_PKTHDR);
    213      1.14     ozaki 	KASSERTMSG(hlen < MHLEN, "hlen too big: %u", hlen);
    214       1.1  jonathan 
    215       1.1  jonathan 	for (m = m0; m && skip > m->m_len; m = m->m_next)
    216       1.1  jonathan 		skip -= m->m_len;
    217       1.1  jonathan 	if (m == NULL)
    218  1.21.2.2  pgoyette 		return NULL;
    219  1.21.2.2  pgoyette 
    220       1.1  jonathan 	/*
    221       1.1  jonathan 	 * At this point skip is the offset into the mbuf m
    222       1.1  jonathan 	 * where the new header should be placed.  Figure out
    223       1.1  jonathan 	 * if there's space to insert the new header.  If so,
    224      1.20      maxv 	 * and copying the remainder makes sense then do so.
    225       1.1  jonathan 	 * Otherwise insert a new mbuf in the chain, splitting
    226       1.1  jonathan 	 * the contents of m as needed.
    227       1.1  jonathan 	 */
    228       1.1  jonathan 	remain = m->m_len - skip;		/* data to move */
    229       1.1  jonathan 	if (hlen > M_TRAILINGSPACE(m)) {
    230      1.10     seanb 		struct mbuf *n0, *n, **np;
    231      1.10     seanb 		int todo, len, done, alloc;
    232      1.10     seanb 
    233      1.10     seanb 		n0 = NULL;
    234      1.10     seanb 		np = &n0;
    235      1.10     seanb 		alloc = 0;
    236      1.10     seanb 		done = 0;
    237      1.10     seanb 		todo = remain;
    238      1.10     seanb 		while (todo > 0) {
    239      1.10     seanb 			if (todo > MHLEN) {
    240      1.10     seanb 				n = m_getcl(M_DONTWAIT, m->m_type, 0);
    241      1.10     seanb 				len = MCLBYTES;
    242      1.20      maxv 			} else {
    243      1.10     seanb 				n = m_get(M_DONTWAIT, m->m_type);
    244      1.10     seanb 				len = MHLEN;
    245      1.10     seanb 			}
    246      1.10     seanb 			if (n == NULL) {
    247      1.10     seanb 				m_freem(n0);
    248      1.10     seanb 				return NULL;
    249      1.10     seanb 			}
    250      1.10     seanb 			*np = n;
    251      1.10     seanb 			np = &n->m_next;
    252      1.10     seanb 			alloc++;
    253      1.10     seanb 			len = min(todo, len);
    254      1.10     seanb 			memcpy(n->m_data, mtod(m, char *) + skip + done, len);
    255      1.10     seanb 			n->m_len = len;
    256      1.10     seanb 			done += len;
    257      1.10     seanb 			todo -= len;
    258      1.10     seanb 		}
    259       1.1  jonathan 
    260       1.1  jonathan 		if (hlen <= M_TRAILINGSPACE(m) + remain) {
    261       1.1  jonathan 			m->m_len = skip + hlen;
    262       1.1  jonathan 			*off = skip;
    263      1.10     seanb 			if (n0 != NULL) {
    264      1.10     seanb 				*np = m->m_next;
    265      1.10     seanb 				m->m_next = n0;
    266      1.10     seanb 			}
    267      1.20      maxv 		} else {
    268      1.10     seanb 			n = m_get(M_DONTWAIT, m->m_type);
    269      1.10     seanb 			if (n == NULL) {
    270      1.10     seanb 				m_freem(n0);
    271      1.10     seanb 				return NULL;
    272       1.1  jonathan 			}
    273      1.10     seanb 			alloc++;
    274      1.10     seanb 
    275      1.10     seanb 			if ((n->m_next = n0) == NULL)
    276      1.10     seanb 				np = &n->m_next;
    277      1.10     seanb 			n0 = n;
    278      1.10     seanb 
    279      1.10     seanb 			*np = m->m_next;
    280      1.10     seanb 			m->m_next = n0;
    281      1.10     seanb 
    282      1.10     seanb 			n->m_len = hlen;
    283      1.10     seanb 			m->m_len = skip;
    284      1.10     seanb 
    285       1.1  jonathan 			m = n;			/* header is at front ... */
    286       1.1  jonathan 			*off = 0;		/* ... of new mbuf */
    287       1.1  jonathan 		}
    288      1.10     seanb 
    289      1.11   thorpej 		IPSEC_STATADD(IPSEC_STAT_MBINSERTED, alloc);
    290       1.1  jonathan 	} else {
    291       1.1  jonathan 		/*
    292       1.1  jonathan 		 * Copy the remainder to the back of the mbuf
    293       1.1  jonathan 		 * so there's space to write the new header.
    294       1.1  jonathan 		 */
    295       1.1  jonathan 		/* XXX can this be memcpy? does it handle overlap? */
    296      1.17      maxv 		memmove(mtod(m, char *) + skip + hlen,
    297      1.17      maxv 			mtod(m, char *) + skip, remain);
    298       1.1  jonathan 		m->m_len += hlen;
    299       1.1  jonathan 		*off = skip;
    300       1.1  jonathan 	}
    301  1.21.2.2  pgoyette 
    302       1.1  jonathan 	m0->m_pkthdr.len += hlen;		/* adjust packet length */
    303       1.1  jonathan 	return m;
    304       1.1  jonathan }
    305       1.1  jonathan 
    306       1.1  jonathan /*
    307       1.1  jonathan  * m_pad(m, n) pads <m> with <n> bytes at the end. The packet header
    308       1.1  jonathan  * length is updated, and a pointer to the first byte of the padding
    309       1.1  jonathan  * (which is guaranteed to be all in one mbuf) is returned.
    310       1.1  jonathan  */
    311       1.8  christos void *
    312       1.1  jonathan m_pad(struct mbuf *m, int n)
    313       1.1  jonathan {
    314       1.1  jonathan 	register struct mbuf *m0, *m1;
    315       1.1  jonathan 	register int len, pad;
    316       1.8  christos 	void *retval;
    317       1.1  jonathan 
    318      1.21      maxv 	if (__predict_false(n > MLEN)) {
    319      1.21      maxv 		panic("%s: %d > MLEN", __func__, n);
    320       1.1  jonathan 	}
    321  1.21.2.1  pgoyette 	KASSERT(m->m_flags & M_PKTHDR);
    322       1.1  jonathan 
    323       1.1  jonathan 	len = m->m_pkthdr.len;
    324       1.1  jonathan 	pad = n;
    325       1.1  jonathan 	m0 = m;
    326       1.1  jonathan 
    327       1.1  jonathan 	while (m0->m_len < len) {
    328      1.14     ozaki 		KASSERTMSG(m0->m_next != NULL,
    329      1.21      maxv 		    "m0 null, len %u m_len %u", len, m0->m_len);
    330       1.1  jonathan 		len -= m0->m_len;
    331       1.1  jonathan 		m0 = m0->m_next;
    332       1.1  jonathan 	}
    333       1.1  jonathan 
    334       1.1  jonathan 	if (m0->m_len != len) {
    335      1.16     ozaki 		IPSECLOG(LOG_DEBUG,
    336      1.16     ozaki 		    "length mismatch (should be %d instead of %d)\n",
    337      1.16     ozaki 		    m->m_pkthdr.len, m->m_pkthdr.len + m0->m_len - len);
    338       1.1  jonathan 		m_freem(m);
    339       1.1  jonathan 		return NULL;
    340       1.1  jonathan 	}
    341       1.1  jonathan 
    342       1.1  jonathan 	/* Check for zero-length trailing mbufs, and find the last one. */
    343       1.1  jonathan 	for (m1 = m0; m1->m_next; m1 = m1->m_next) {
    344       1.1  jonathan 		if (m1->m_next->m_len != 0) {
    345      1.16     ozaki 			IPSECLOG(LOG_DEBUG,
    346      1.16     ozaki 			    "length mismatch (should be %d instead of %d)\n",
    347       1.1  jonathan 			    m->m_pkthdr.len,
    348      1.16     ozaki 			    m->m_pkthdr.len + m1->m_next->m_len);
    349       1.1  jonathan 			m_freem(m);
    350       1.1  jonathan 			return NULL;
    351       1.1  jonathan 		}
    352       1.1  jonathan 
    353       1.1  jonathan 		m0 = m1->m_next;
    354       1.1  jonathan 	}
    355       1.1  jonathan 
    356       1.1  jonathan 	if (pad > M_TRAILINGSPACE(m0)) {
    357       1.1  jonathan 		/* Add an mbuf to the chain. */
    358       1.1  jonathan 		MGET(m1, M_DONTWAIT, MT_DATA);
    359      1.21      maxv 		if (m1 == NULL) {
    360      1.21      maxv 			m_freem(m);
    361      1.16     ozaki 			IPSECLOG(LOG_DEBUG, "unable to get extra mbuf\n");
    362       1.1  jonathan 			return NULL;
    363       1.1  jonathan 		}
    364       1.1  jonathan 
    365       1.1  jonathan 		m0->m_next = m1;
    366       1.1  jonathan 		m0 = m1;
    367       1.1  jonathan 		m0->m_len = 0;
    368       1.1  jonathan 	}
    369       1.1  jonathan 
    370       1.1  jonathan 	retval = m0->m_data + m0->m_len;
    371       1.1  jonathan 	m0->m_len += pad;
    372       1.1  jonathan 	m->m_pkthdr.len += pad;
    373       1.1  jonathan 
    374       1.1  jonathan 	return retval;
    375       1.1  jonathan }
    376       1.1  jonathan 
    377       1.1  jonathan /*
    378       1.1  jonathan  * Remove hlen data at offset skip in the packet.  This is used by
    379       1.1  jonathan  * the protocols strip protocol headers and associated data (e.g. IV,
    380       1.1  jonathan  * authenticator) on input.
    381       1.1  jonathan  */
    382       1.1  jonathan int
    383       1.1  jonathan m_striphdr(struct mbuf *m, int skip, int hlen)
    384       1.1  jonathan {
    385       1.1  jonathan 	struct mbuf *m1;
    386       1.1  jonathan 	int roff;
    387       1.1  jonathan 
    388  1.21.2.1  pgoyette 	KASSERT(m->m_flags & M_PKTHDR);
    389  1.21.2.1  pgoyette 
    390       1.1  jonathan 	/* Find beginning of header */
    391       1.1  jonathan 	m1 = m_getptr(m, skip, &roff);
    392       1.1  jonathan 	if (m1 == NULL)
    393  1.21.2.2  pgoyette 		return EINVAL;
    394       1.1  jonathan 
    395       1.1  jonathan 	/* Remove the header and associated data from the mbuf. */
    396       1.1  jonathan 	if (roff == 0) {
    397       1.1  jonathan 		/* The header was at the beginning of the mbuf */
    398      1.11   thorpej 		IPSEC_STATINC(IPSEC_STAT_INPUT_FRONT);
    399       1.1  jonathan 		m_adj(m1, hlen);
    400  1.21.2.2  pgoyette 		if (m1 != m)
    401       1.1  jonathan 			m->m_pkthdr.len -= hlen;
    402       1.1  jonathan 	} else if (roff + hlen >= m1->m_len) {
    403       1.1  jonathan 		struct mbuf *mo;
    404  1.21.2.2  pgoyette 		int adjlen;
    405       1.1  jonathan 
    406       1.1  jonathan 		/*
    407       1.1  jonathan 		 * Part or all of the header is at the end of this mbuf,
    408       1.1  jonathan 		 * so first let's remove the remainder of the header from
    409       1.1  jonathan 		 * the beginning of the remainder of the mbuf chain, if any.
    410       1.1  jonathan 		 */
    411      1.11   thorpej 		IPSEC_STATINC(IPSEC_STAT_INPUT_END);
    412       1.1  jonathan 		if (roff + hlen > m1->m_len) {
    413  1.21.2.2  pgoyette 			adjlen = roff + hlen - m1->m_len;
    414  1.21.2.2  pgoyette 
    415       1.1  jonathan 			/* Adjust the next mbuf by the remainder */
    416  1.21.2.2  pgoyette 			m_adj(m1->m_next, adjlen);
    417       1.1  jonathan 
    418       1.1  jonathan 			/* The second mbuf is guaranteed not to have a pkthdr... */
    419  1.21.2.2  pgoyette 			m->m_pkthdr.len -= adjlen;
    420       1.1  jonathan 		}
    421       1.1  jonathan 
    422       1.1  jonathan 		/* Now, let's unlink the mbuf chain for a second...*/
    423       1.1  jonathan 		mo = m1->m_next;
    424       1.1  jonathan 		m1->m_next = NULL;
    425       1.1  jonathan 
    426       1.1  jonathan 		/* ...and trim the end of the first part of the chain...sick */
    427  1.21.2.2  pgoyette 		adjlen = m1->m_len - roff;
    428  1.21.2.2  pgoyette 		m_adj(m1, -adjlen);
    429  1.21.2.2  pgoyette 		if (m1 != m)
    430  1.21.2.2  pgoyette 			m->m_pkthdr.len -= adjlen;
    431       1.1  jonathan 
    432       1.1  jonathan 		/* Finally, let's relink */
    433       1.1  jonathan 		m1->m_next = mo;
    434       1.1  jonathan 	} else {
    435       1.1  jonathan 		/*
    436       1.1  jonathan 		 * The header lies in the "middle" of the mbuf; copy
    437       1.1  jonathan 		 * the remainder of the mbuf down over the header.
    438       1.1  jonathan 		 */
    439      1.11   thorpej 		IPSEC_STATINC(IPSEC_STAT_INPUT_MIDDLE);
    440      1.17      maxv 		memmove(mtod(m1, u_char *) + roff,
    441      1.17      maxv 		      mtod(m1, u_char *) + roff + hlen,
    442       1.1  jonathan 		      m1->m_len - (roff + hlen));
    443       1.1  jonathan 		m1->m_len -= hlen;
    444       1.1  jonathan 		m->m_pkthdr.len -= hlen;
    445       1.1  jonathan 	}
    446  1.21.2.2  pgoyette 
    447  1.21.2.2  pgoyette 	return 0;
    448       1.1  jonathan }
    449