Home | History | Annotate | Line # | Download | only in net
if_ether.h revision 1.61
      1  1.61   msaitoh /*	$NetBSD: if_ether.h,v 1.61 2012/10/31 10:17:34 msaitoh Exp $	*/
      2   1.2        is 
      3   1.2        is /*
      4   1.2        is  * Copyright (c) 1982, 1986, 1993
      5   1.2        is  *	The Regents of the University of California.  All rights reserved.
      6   1.2        is  *
      7   1.2        is  * Redistribution and use in source and binary forms, with or without
      8   1.2        is  * modification, are permitted provided that the following conditions
      9   1.2        is  * are met:
     10   1.2        is  * 1. Redistributions of source code must retain the above copyright
     11   1.2        is  *    notice, this list of conditions and the following disclaimer.
     12   1.2        is  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.2        is  *    notice, this list of conditions and the following disclaimer in the
     14   1.2        is  *    documentation and/or other materials provided with the distribution.
     15  1.34       agc  * 3. Neither the name of the University nor the names of its contributors
     16   1.2        is  *    may be used to endorse or promote products derived from this software
     17   1.2        is  *    without specific prior written permission.
     18   1.2        is  *
     19   1.2        is  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     20   1.2        is  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     21   1.2        is  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     22   1.2        is  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     23   1.2        is  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     24   1.2        is  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     25   1.2        is  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     26   1.2        is  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     27   1.2        is  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     28   1.2        is  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     29   1.2        is  * SUCH DAMAGE.
     30   1.2        is  *
     31   1.2        is  *	@(#)if_ether.h	8.1 (Berkeley) 6/10/93
     32   1.2        is  */
     33   1.2        is 
     34   1.4     perry #ifndef _NET_IF_ETHER_H_
     35   1.4     perry #define _NET_IF_ETHER_H_
     36   1.4     perry 
     37  1.29      matt #ifdef _KERNEL
     38  1.33      tron #ifdef _KERNEL_OPT
     39  1.31    martin #include "opt_mbuftrace.h"
     40  1.32      tron #endif
     41  1.29      matt #include <sys/mbuf.h>
     42  1.29      matt #endif
     43  1.29      matt 
     44  1.59  dholland #ifndef _STANDALONE
     45  1.59  dholland #include <net/if.h>
     46  1.59  dholland #endif
     47  1.59  dholland 
     48   1.2        is /*
     49   1.7   thorpej  * Some basic Ethernet constants.
     50   1.7   thorpej  */
     51   1.7   thorpej #define	ETHER_ADDR_LEN	6	/* length of an Ethernet address */
     52   1.7   thorpej #define	ETHER_TYPE_LEN	2	/* length of the Ethernet type field */
     53   1.7   thorpej #define	ETHER_CRC_LEN	4	/* length of the Ethernet CRC */
     54   1.7   thorpej #define	ETHER_HDR_LEN	((ETHER_ADDR_LEN * 2) + ETHER_TYPE_LEN)
     55   1.7   thorpej #define	ETHER_MIN_LEN	64	/* minimum frame length, including CRC */
     56   1.7   thorpej #define	ETHER_MAX_LEN	1518	/* maximum frame length, including CRC */
     57  1.24   thorpej #define	ETHER_MAX_LEN_JUMBO 9018 /* maximum jumbo frame len, including CRC */
     58   1.7   thorpej 
     59   1.7   thorpej /*
     60  1.19   thorpej  * Some Ethernet extensions.
     61  1.19   thorpej  */
     62  1.19   thorpej #define	ETHER_VLAN_ENCAP_LEN 4	/* length of 802.1Q VLAN encapsulation */
     63  1.52  christos #define	ETHER_PPPOE_ENCAP_LEN 8	/* length of PPPoE encapsulation */
     64  1.19   thorpej 
     65  1.19   thorpej /*
     66   1.2        is  * Ethernet address - 6 octets
     67   1.2        is  * this is only used by the ethers(3) functions.
     68   1.2        is  */
     69   1.2        is struct ether_addr {
     70  1.49      matt 	uint8_t ether_addr_octet[ETHER_ADDR_LEN];
     71  1.47     perry } __packed;
     72   1.2        is 
     73   1.2        is /*
     74   1.2        is  * Structure of a 10Mb/s Ethernet header.
     75   1.2        is  */
     76  1.49      matt struct ether_header {
     77  1.49      matt 	uint8_t  ether_dhost[ETHER_ADDR_LEN];
     78  1.49      matt 	uint8_t  ether_shost[ETHER_ADDR_LEN];
     79  1.49      matt 	uint16_t ether_type;
     80  1.47     perry } __packed;
     81   1.2        is 
     82   1.2        is #include <net/ethertypes.h>
     83   1.2        is 
     84   1.2        is #define	ETHER_IS_MULTICAST(addr) (*(addr) & 0x01) /* is address mcast/bcast? */
     85  1.51    dyoung #define	ETHER_IS_LOCAL(addr) (*(addr) & 0x02) /* is address local? */
     86   1.2        is 
     87  1.24   thorpej #define	ETHERMTU_JUMBO	(ETHER_MAX_LEN_JUMBO - ETHER_HDR_LEN - ETHER_CRC_LEN)
     88   1.7   thorpej #define	ETHERMTU	(ETHER_MAX_LEN - ETHER_HDR_LEN - ETHER_CRC_LEN)
     89   1.7   thorpej #define	ETHERMIN	(ETHER_MIN_LEN - ETHER_HDR_LEN - ETHER_CRC_LEN)
     90   1.2        is 
     91  1.14   thorpej /*
     92  1.19   thorpej  * Compute the maximum frame size based on ethertype (i.e. possible
     93  1.19   thorpej  * encapsulation) and whether or not an FCS is present.
     94  1.19   thorpej  */
     95  1.25   thorpej #define	ETHER_MAX_FRAME(ifp, etype, hasfcs)				\
     96  1.25   thorpej 	((ifp)->if_mtu + ETHER_HDR_LEN +				\
     97  1.19   thorpej 	 ((hasfcs) ? ETHER_CRC_LEN : 0) +				\
     98  1.52  christos 	 (((etype) == ETHERTYPE_VLAN) ? ETHER_VLAN_ENCAP_LEN : 0) +	\
     99  1.52  christos 	 (((etype) == ETHERTYPE_PPPOE) ? ETHER_PPPOE_ENCAP_LEN : 0))
    100  1.19   thorpej 
    101  1.19   thorpej /*
    102  1.14   thorpej  * Ethernet CRC32 polynomials (big- and little-endian verions).
    103  1.14   thorpej  */
    104  1.14   thorpej #define	ETHER_CRC_POLY_LE	0xedb88320
    105  1.14   thorpej #define	ETHER_CRC_POLY_BE	0x04c11db6
    106  1.14   thorpej 
    107   1.8  drochner #ifndef _STANDALONE
    108  1.10   thorpej 
    109  1.10   thorpej /*
    110  1.10   thorpej  * Ethernet-specific mbuf flags.
    111  1.10   thorpej  */
    112  1.30    bouyer #define	M_HASFCS	M_LINK0	/* FCS included at end of frame */
    113  1.30    bouyer #define	M_PROMISC	M_LINK1	/* this packet is not for us */
    114   1.8  drochner 
    115   1.2        is #ifdef _KERNEL
    116   1.2        is /*
    117   1.2        is  * Macro to map an IP multicast address to an Ethernet multicast address.
    118   1.2        is  * The high-order 25 bits of the Ethernet address are statically assigned,
    119   1.2        is  * and the low-order 23 bits are taken from the low end of the IP address.
    120   1.2        is  */
    121   1.2        is #define ETHER_MAP_IP_MULTICAST(ipaddr, enaddr)				\
    122  1.44    dyoung 	/* const struct in_addr *ipaddr; */				\
    123  1.49      matt 	/* uint8_t enaddr[ETHER_ADDR_LEN]; */				\
    124  1.44    dyoung do {									\
    125   1.2        is 	(enaddr)[0] = 0x01;						\
    126   1.2        is 	(enaddr)[1] = 0x00;						\
    127   1.2        is 	(enaddr)[2] = 0x5e;						\
    128  1.49      matt 	(enaddr)[3] = ((const uint8_t *)ipaddr)[1] & 0x7f;		\
    129  1.49      matt 	(enaddr)[4] = ((const uint8_t *)ipaddr)[2];			\
    130  1.49      matt 	(enaddr)[5] = ((const uint8_t *)ipaddr)[3];			\
    131  1.44    dyoung } while (/*CONSTCOND*/0)
    132   1.9    itojun /*
    133   1.9    itojun  * Macro to map an IP6 multicast address to an Ethernet multicast address.
    134   1.9    itojun  * The high-order 16 bits of the Ethernet address are statically assigned,
    135   1.9    itojun  * and the low-order 32 bits are taken from the low end of the IP6 address.
    136   1.9    itojun  */
    137   1.9    itojun #define ETHER_MAP_IPV6_MULTICAST(ip6addr, enaddr)			\
    138   1.9    itojun 	/* struct in6_addr *ip6addr; */					\
    139  1.49      matt 	/* uint8_t enaddr[ETHER_ADDR_LEN]; */				\
    140   1.9    itojun {                                                                       \
    141   1.9    itojun 	(enaddr)[0] = 0x33;						\
    142   1.9    itojun 	(enaddr)[1] = 0x33;						\
    143  1.44    dyoung 	(enaddr)[2] = ((const uint8_t *)ip6addr)[12];			\
    144  1.44    dyoung 	(enaddr)[3] = ((const uint8_t *)ip6addr)[13];			\
    145  1.44    dyoung 	(enaddr)[4] = ((const uint8_t *)ip6addr)[14];			\
    146  1.44    dyoung 	(enaddr)[5] = ((const uint8_t *)ip6addr)[15];			\
    147   1.2        is }
    148   1.2        is #endif
    149   1.2        is 
    150  1.48    dyoung struct mii_data;
    151  1.48    dyoung 
    152  1.54    dyoung struct ethercom;
    153  1.54    dyoung 
    154  1.54    dyoung typedef int (*ether_cb_t)(struct ethercom *);
    155  1.54    dyoung 
    156   1.2        is /*
    157   1.2        is  * Structure shared between the ethernet driver modules and
    158   1.2        is  * the multicast list code.  For example, each ec_softc or il_softc
    159   1.2        is  * begins with this structure.
    160   1.2        is  */
    161  1.50       rtr struct ethercom {
    162  1.29      matt 	struct	ifnet ec_if;			/* network-visible interface */
    163  1.19   thorpej 	LIST_HEAD(, ether_multi) ec_multiaddrs;	/* list of ether multicast
    164  1.19   thorpej 						   addrs */
    165  1.29      matt 	int	ec_multicnt;			/* length of ec_multiaddrs
    166  1.19   thorpej 						   list */
    167  1.29      matt 	int	ec_capabilities;		/* capabilities, provided by
    168  1.19   thorpej 						   driver */
    169  1.29      matt 	int	ec_capenable;			/* tells hardware which
    170  1.19   thorpej 						   capabilities to enable */
    171  1.19   thorpej 
    172  1.29      matt 	int	ec_nvlans;			/* # VLANs on this interface */
    173  1.48    dyoung 	/* The device handle for the MII bus child device. */
    174  1.48    dyoung 	struct mii_data				*ec_mii;
    175  1.54    dyoung 	/* Called after a change to ec_if.if_flags.  Returns
    176  1.54    dyoung 	 * ENETRESET if the device should be reinitialized with
    177  1.54    dyoung 	 * ec_if.if_init, 0 on success, not 0 on failure.
    178  1.54    dyoung 	 */
    179  1.54    dyoung 	ether_cb_t				ec_ifflags_cb;
    180  1.29      matt #ifdef MBUFTRACE
    181  1.29      matt 	struct	mowner ec_rx_mowner;		/* mbufs received */
    182  1.29      matt 	struct	mowner ec_tx_mowner;		/* mbufs transmitted */
    183  1.29      matt #endif
    184   1.2        is };
    185  1.19   thorpej 
    186  1.19   thorpej #define	ETHERCAP_VLAN_MTU	0x00000001	/* VLAN-compatible MTU */
    187  1.21    bouyer #define	ETHERCAP_VLAN_HWTAGGING	0x00000002	/* hardware VLAN tag support */
    188  1.24   thorpej #define	ETHERCAP_JUMBO_MTU	0x00000004	/* 9000 byte MTU supported */
    189   1.2        is 
    190  1.61   msaitoh #define	ECCAPBITS		\
    191  1.61   msaitoh 	"\020"			\
    192  1.61   msaitoh 	"\1VLAN_MTU"		\
    193  1.61   msaitoh 	"\2VLAN_HWTAGGING"	\
    194  1.61   msaitoh 	"\3JUMBO_MTU"
    195  1.61   msaitoh 
    196  1.61   msaitoh /* ioctl() for Ethernet capabilities */
    197  1.61   msaitoh struct eccapreq {
    198  1.61   msaitoh 	char		eccr_name[IFNAMSIZ];	/* if name, e.g. "en0" */
    199  1.61   msaitoh 	int		eccr_capabilities;	/* supported capabiliites */
    200  1.61   msaitoh 	int		eccr_capenable;		/* capabilities enabled */
    201  1.61   msaitoh };
    202  1.61   msaitoh 
    203   1.2        is #ifdef	_KERNEL
    204  1.36      yamt extern const uint8_t etherbroadcastaddr[ETHER_ADDR_LEN];
    205  1.39      yamt extern const uint8_t ethermulticastaddr_slowprotocols[ETHER_ADDR_LEN];
    206  1.36      yamt extern const uint8_t ether_ipmulticast_min[ETHER_ADDR_LEN];
    207  1.36      yamt extern const uint8_t ether_ipmulticast_max[ETHER_ADDR_LEN];
    208   1.2        is 
    209  1.54    dyoung void	ether_set_ifflags_cb(struct ethercom *, ether_cb_t);
    210  1.45  christos int	ether_ioctl(struct ifnet *, u_long, void *);
    211  1.46    dyoung int	ether_addmulti(const struct sockaddr *, struct ethercom *);
    212  1.46    dyoung int	ether_delmulti(const struct sockaddr *, struct ethercom *);
    213  1.49      matt int	ether_multiaddr(const struct sockaddr *, uint8_t[], uint8_t[]);
    214  1.60   msaitoh void    ether_input(struct ifnet *, struct mbuf *);
    215   1.2        is #endif /* _KERNEL */
    216   1.2        is 
    217   1.2        is /*
    218   1.2        is  * Ethernet multicast address structure.  There is one of these for each
    219   1.2        is  * multicast address or range of multicast addresses that we are supposed
    220   1.2        is  * to listen to on a particular interface.  They are kept in a linked list,
    221   1.5        is  * rooted in the interface's ethercom structure.
    222   1.2        is  */
    223   1.2        is struct ether_multi {
    224  1.49      matt 	uint8_t enm_addrlo[ETHER_ADDR_LEN]; /* low  or only address of range */
    225  1.49      matt 	uint8_t enm_addrhi[ETHER_ADDR_LEN]; /* high or only address of range */
    226   1.2        is 	u_int	 enm_refcount;		/* no. claims to this addr/range */
    227   1.2        is 	LIST_ENTRY(ether_multi) enm_list;
    228   1.2        is };
    229   1.2        is 
    230   1.2        is /*
    231   1.2        is  * Structure used by macros below to remember position when stepping through
    232   1.2        is  * all of the ether_multi records.
    233   1.2        is  */
    234   1.2        is struct ether_multistep {
    235   1.2        is 	struct ether_multi  *e_enm;
    236   1.2        is };
    237   1.2        is 
    238   1.2        is /*
    239   1.2        is  * Macro for looking up the ether_multi record for a given range of Ethernet
    240   1.2        is  * multicast addresses connected to a given ethercom structure.  If no matching
    241   1.2        is  * record is found, "enm" returns NULL.
    242   1.2        is  */
    243   1.2        is #define ETHER_LOOKUP_MULTI(addrlo, addrhi, ec, enm)			\
    244  1.49      matt 	/* uint8_t addrlo[ETHER_ADDR_LEN]; */				\
    245  1.49      matt 	/* uint8_t addrhi[ETHER_ADDR_LEN]; */				\
    246   1.2        is 	/* struct ethercom *ec; */					\
    247   1.2        is 	/* struct ether_multi *enm; */					\
    248   1.2        is {									\
    249  1.26      matt 	for ((enm) = LIST_FIRST(&(ec)->ec_multiaddrs);			\
    250   1.2        is 	    (enm) != NULL &&						\
    251  1.56    cegger 	    (memcmp((enm)->enm_addrlo, (addrlo), ETHER_ADDR_LEN) != 0 ||	\
    252  1.56    cegger 	     memcmp((enm)->enm_addrhi, (addrhi), ETHER_ADDR_LEN) != 0);	\
    253  1.26      matt 		(enm) = LIST_NEXT((enm), enm_list));			\
    254   1.2        is }
    255   1.2        is 
    256   1.2        is /*
    257   1.2        is  * Macro to step through all of the ether_multi records, one at a time.
    258   1.2        is  * The current position is remembered in "step", which the caller must
    259   1.2        is  * provide.  ETHER_FIRST_MULTI(), below, must be called to initialize "step"
    260   1.2        is  * and get the first record.  Both macros return a NULL "enm" when there
    261   1.2        is  * are no remaining records.
    262   1.2        is  */
    263   1.2        is #define ETHER_NEXT_MULTI(step, enm) \
    264   1.2        is 	/* struct ether_multistep step; */  \
    265   1.2        is 	/* struct ether_multi *enm; */  \
    266   1.2        is { \
    267   1.2        is 	if (((enm) = (step).e_enm) != NULL) \
    268  1.26      matt 		(step).e_enm = LIST_NEXT((enm), enm_list); \
    269   1.2        is }
    270   1.2        is 
    271   1.2        is #define ETHER_FIRST_MULTI(step, ec, enm) \
    272   1.2        is 	/* struct ether_multistep step; */ \
    273   1.2        is 	/* struct ethercom *ec; */ \
    274   1.2        is 	/* struct ether_multi *enm; */ \
    275   1.2        is { \
    276  1.26      matt 	(step).e_enm = LIST_FIRST(&(ec)->ec_multiaddrs); \
    277   1.2        is 	ETHER_NEXT_MULTI((step), (enm)); \
    278   1.2        is }
    279   1.2        is 
    280  1.38  jdolecek #ifdef _KERNEL
    281  1.38  jdolecek 
    282  1.37  jdolecek /*
    283  1.37  jdolecek  * Ethernet 802.1Q VLAN structures.
    284  1.37  jdolecek  */
    285  1.37  jdolecek 
    286  1.37  jdolecek /* add VLAN tag to input/received packet */
    287  1.53       dsl static inline int vlan_input_tag(struct ifnet *, struct mbuf *, u_int);
    288  1.53       dsl static inline int
    289  1.53       dsl vlan_input_tag(struct ifnet *ifp, struct mbuf *m, u_int vlanid)
    290  1.53       dsl {
    291  1.53       dsl 	struct m_tag *mtag;
    292  1.53       dsl 	mtag = m_tag_get(PACKET_TAG_VLAN, sizeof(u_int), M_NOWAIT);
    293  1.53       dsl 	if (mtag == NULL) {
    294  1.53       dsl 		ifp->if_ierrors++;
    295  1.53       dsl 		printf("%s: unable to allocate VLAN tag\n", ifp->if_xname);
    296  1.53       dsl 		m_freem(m);
    297  1.53       dsl 		return 1;
    298  1.53       dsl 	}
    299  1.53       dsl 	*(u_int *)(mtag + 1) = vlanid;
    300  1.53       dsl 	m_tag_prepend(m, mtag);
    301  1.53       dsl 	return 0;
    302  1.53       dsl }
    303  1.53       dsl 
    304  1.53       dsl #define VLAN_INPUT_TAG(ifp, m, vlanid, _errcase)		\
    305  1.53       dsl     if (vlan_input_tag(ifp, m, vlanid) != 0) {	 		\
    306  1.53       dsl 	_errcase;						\
    307  1.53       dsl     }
    308  1.37  jdolecek 
    309  1.37  jdolecek /* extract VLAN tag from output/trasmit packet */
    310  1.37  jdolecek #define VLAN_OUTPUT_TAG(ec, m0)			\
    311  1.53       dsl 	(VLAN_ATTACHED(ec) ? m_tag_find((m0), PACKET_TAG_VLAN, NULL) : NULL)
    312  1.37  jdolecek 
    313  1.37  jdolecek /* extract VLAN ID value from a VLAN tag */
    314  1.37  jdolecek #define VLAN_TAG_VALUE(mtag)	\
    315  1.37  jdolecek 	((*(u_int *)(mtag + 1)) & 4095)
    316  1.37  jdolecek 
    317  1.37  jdolecek /* test if any VLAN is configured for this interface */
    318  1.41  jdolecek #define VLAN_ATTACHED(ec)	((ec)->ec_nvlans > 0)
    319  1.37  jdolecek 
    320  1.49      matt void	ether_ifattach(struct ifnet *, const uint8_t *);
    321  1.22   thorpej void	ether_ifdetach(struct ifnet *);
    322  1.48    dyoung int	ether_mediachange(struct ifnet *);
    323  1.48    dyoung void	ether_mediastatus(struct ifnet *, struct ifmediareq *);
    324  1.22   thorpej 
    325  1.49      matt char	*ether_sprintf(const uint8_t *);
    326  1.49      matt char	*ether_snprintf(char *, size_t, const uint8_t *);
    327  1.22   thorpej 
    328  1.49      matt uint32_t ether_crc32_le(const uint8_t *, size_t);
    329  1.49      matt uint32_t ether_crc32_be(const uint8_t *, size_t);
    330  1.23   thorpej 
    331  1.58  christos int	ether_aton_r(u_char *, size_t, const char *);
    332  1.14   thorpej #else
    333   1.2        is /*
    334   1.2        is  * Prototype ethers(3) functions.
    335   1.2        is  */
    336   1.2        is #include <sys/cdefs.h>
    337   1.2        is __BEGIN_DECLS
    338  1.55       dsl char *	ether_ntoa(const struct ether_addr *);
    339   1.2        is struct ether_addr *
    340  1.55       dsl 	ether_aton(const char *);
    341  1.55       dsl int	ether_ntohost(char *, const struct ether_addr *);
    342  1.55       dsl int	ether_hostton(const char *, struct ether_addr *);
    343  1.55       dsl int	ether_line(const char *, struct ether_addr *, char *);
    344   1.2        is __END_DECLS
    345   1.2        is #endif
    346   1.8  drochner 
    347   1.8  drochner #endif /* _STANDALONE */
    348   1.4     perry 
    349  1.40      elad #endif /* !_NET_IF_ETHER_H_ */
    350