if_ether.h revision 1.64 1 1.64 ozaki /* $NetBSD: if_ether.h,v 1.64 2014/07/28 14:24:48 ozaki-r 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 1.62 pooka #define ETHERCAP_MASK 0x00000007
190 1.2 is
191 1.61 msaitoh #define ECCAPBITS \
192 1.61 msaitoh "\020" \
193 1.61 msaitoh "\1VLAN_MTU" \
194 1.61 msaitoh "\2VLAN_HWTAGGING" \
195 1.61 msaitoh "\3JUMBO_MTU"
196 1.61 msaitoh
197 1.61 msaitoh /* ioctl() for Ethernet capabilities */
198 1.61 msaitoh struct eccapreq {
199 1.61 msaitoh char eccr_name[IFNAMSIZ]; /* if name, e.g. "en0" */
200 1.61 msaitoh int eccr_capabilities; /* supported capabiliites */
201 1.61 msaitoh int eccr_capenable; /* capabilities enabled */
202 1.61 msaitoh };
203 1.61 msaitoh
204 1.2 is #ifdef _KERNEL
205 1.36 yamt extern const uint8_t etherbroadcastaddr[ETHER_ADDR_LEN];
206 1.39 yamt extern const uint8_t ethermulticastaddr_slowprotocols[ETHER_ADDR_LEN];
207 1.36 yamt extern const uint8_t ether_ipmulticast_min[ETHER_ADDR_LEN];
208 1.36 yamt extern const uint8_t ether_ipmulticast_max[ETHER_ADDR_LEN];
209 1.2 is
210 1.54 dyoung void ether_set_ifflags_cb(struct ethercom *, ether_cb_t);
211 1.45 christos int ether_ioctl(struct ifnet *, u_long, void *);
212 1.46 dyoung int ether_addmulti(const struct sockaddr *, struct ethercom *);
213 1.46 dyoung int ether_delmulti(const struct sockaddr *, struct ethercom *);
214 1.49 matt int ether_multiaddr(const struct sockaddr *, uint8_t[], uint8_t[]);
215 1.60 msaitoh void ether_input(struct ifnet *, struct mbuf *);
216 1.2 is #endif /* _KERNEL */
217 1.2 is
218 1.2 is /*
219 1.2 is * Ethernet multicast address structure. There is one of these for each
220 1.2 is * multicast address or range of multicast addresses that we are supposed
221 1.2 is * to listen to on a particular interface. They are kept in a linked list,
222 1.5 is * rooted in the interface's ethercom structure.
223 1.2 is */
224 1.2 is struct ether_multi {
225 1.49 matt uint8_t enm_addrlo[ETHER_ADDR_LEN]; /* low or only address of range */
226 1.49 matt uint8_t enm_addrhi[ETHER_ADDR_LEN]; /* high or only address of range */
227 1.2 is u_int enm_refcount; /* no. claims to this addr/range */
228 1.2 is LIST_ENTRY(ether_multi) enm_list;
229 1.2 is };
230 1.2 is
231 1.63 joerg struct ether_multi_sysctl {
232 1.63 joerg u_int enm_refcount;
233 1.63 joerg uint8_t enm_addrlo[ETHER_ADDR_LEN];
234 1.63 joerg uint8_t enm_addrhi[ETHER_ADDR_LEN];
235 1.63 joerg };
236 1.63 joerg
237 1.2 is /*
238 1.2 is * Structure used by macros below to remember position when stepping through
239 1.2 is * all of the ether_multi records.
240 1.2 is */
241 1.2 is struct ether_multistep {
242 1.2 is struct ether_multi *e_enm;
243 1.2 is };
244 1.2 is
245 1.2 is /*
246 1.2 is * Macro for looking up the ether_multi record for a given range of Ethernet
247 1.2 is * multicast addresses connected to a given ethercom structure. If no matching
248 1.2 is * record is found, "enm" returns NULL.
249 1.2 is */
250 1.2 is #define ETHER_LOOKUP_MULTI(addrlo, addrhi, ec, enm) \
251 1.49 matt /* uint8_t addrlo[ETHER_ADDR_LEN]; */ \
252 1.49 matt /* uint8_t addrhi[ETHER_ADDR_LEN]; */ \
253 1.2 is /* struct ethercom *ec; */ \
254 1.2 is /* struct ether_multi *enm; */ \
255 1.2 is { \
256 1.26 matt for ((enm) = LIST_FIRST(&(ec)->ec_multiaddrs); \
257 1.2 is (enm) != NULL && \
258 1.56 cegger (memcmp((enm)->enm_addrlo, (addrlo), ETHER_ADDR_LEN) != 0 || \
259 1.56 cegger memcmp((enm)->enm_addrhi, (addrhi), ETHER_ADDR_LEN) != 0); \
260 1.26 matt (enm) = LIST_NEXT((enm), enm_list)); \
261 1.2 is }
262 1.2 is
263 1.2 is /*
264 1.2 is * Macro to step through all of the ether_multi records, one at a time.
265 1.2 is * The current position is remembered in "step", which the caller must
266 1.2 is * provide. ETHER_FIRST_MULTI(), below, must be called to initialize "step"
267 1.2 is * and get the first record. Both macros return a NULL "enm" when there
268 1.2 is * are no remaining records.
269 1.2 is */
270 1.2 is #define ETHER_NEXT_MULTI(step, enm) \
271 1.2 is /* struct ether_multistep step; */ \
272 1.2 is /* struct ether_multi *enm; */ \
273 1.2 is { \
274 1.2 is if (((enm) = (step).e_enm) != NULL) \
275 1.26 matt (step).e_enm = LIST_NEXT((enm), enm_list); \
276 1.2 is }
277 1.2 is
278 1.2 is #define ETHER_FIRST_MULTI(step, ec, enm) \
279 1.2 is /* struct ether_multistep step; */ \
280 1.2 is /* struct ethercom *ec; */ \
281 1.2 is /* struct ether_multi *enm; */ \
282 1.2 is { \
283 1.26 matt (step).e_enm = LIST_FIRST(&(ec)->ec_multiaddrs); \
284 1.2 is ETHER_NEXT_MULTI((step), (enm)); \
285 1.2 is }
286 1.2 is
287 1.38 jdolecek #ifdef _KERNEL
288 1.38 jdolecek
289 1.37 jdolecek /*
290 1.37 jdolecek * Ethernet 802.1Q VLAN structures.
291 1.37 jdolecek */
292 1.37 jdolecek
293 1.37 jdolecek /* add VLAN tag to input/received packet */
294 1.53 dsl static inline int vlan_input_tag(struct ifnet *, struct mbuf *, u_int);
295 1.53 dsl static inline int
296 1.53 dsl vlan_input_tag(struct ifnet *ifp, struct mbuf *m, u_int vlanid)
297 1.53 dsl {
298 1.53 dsl struct m_tag *mtag;
299 1.53 dsl mtag = m_tag_get(PACKET_TAG_VLAN, sizeof(u_int), M_NOWAIT);
300 1.53 dsl if (mtag == NULL) {
301 1.53 dsl ifp->if_ierrors++;
302 1.53 dsl printf("%s: unable to allocate VLAN tag\n", ifp->if_xname);
303 1.53 dsl m_freem(m);
304 1.53 dsl return 1;
305 1.53 dsl }
306 1.53 dsl *(u_int *)(mtag + 1) = vlanid;
307 1.53 dsl m_tag_prepend(m, mtag);
308 1.53 dsl return 0;
309 1.53 dsl }
310 1.53 dsl
311 1.53 dsl #define VLAN_INPUT_TAG(ifp, m, vlanid, _errcase) \
312 1.53 dsl if (vlan_input_tag(ifp, m, vlanid) != 0) { \
313 1.53 dsl _errcase; \
314 1.53 dsl }
315 1.37 jdolecek
316 1.37 jdolecek /* extract VLAN tag from output/trasmit packet */
317 1.37 jdolecek #define VLAN_OUTPUT_TAG(ec, m0) \
318 1.53 dsl (VLAN_ATTACHED(ec) ? m_tag_find((m0), PACKET_TAG_VLAN, NULL) : NULL)
319 1.37 jdolecek
320 1.37 jdolecek /* extract VLAN ID value from a VLAN tag */
321 1.37 jdolecek #define VLAN_TAG_VALUE(mtag) \
322 1.37 jdolecek ((*(u_int *)(mtag + 1)) & 4095)
323 1.37 jdolecek
324 1.37 jdolecek /* test if any VLAN is configured for this interface */
325 1.41 jdolecek #define VLAN_ATTACHED(ec) ((ec)->ec_nvlans > 0)
326 1.37 jdolecek
327 1.64 ozaki void etherinit(void);
328 1.49 matt void ether_ifattach(struct ifnet *, const uint8_t *);
329 1.22 thorpej void ether_ifdetach(struct ifnet *);
330 1.48 dyoung int ether_mediachange(struct ifnet *);
331 1.48 dyoung void ether_mediastatus(struct ifnet *, struct ifmediareq *);
332 1.22 thorpej
333 1.49 matt char *ether_sprintf(const uint8_t *);
334 1.49 matt char *ether_snprintf(char *, size_t, const uint8_t *);
335 1.22 thorpej
336 1.49 matt uint32_t ether_crc32_le(const uint8_t *, size_t);
337 1.49 matt uint32_t ether_crc32_be(const uint8_t *, size_t);
338 1.23 thorpej
339 1.58 christos int ether_aton_r(u_char *, size_t, const char *);
340 1.14 thorpej #else
341 1.2 is /*
342 1.2 is * Prototype ethers(3) functions.
343 1.2 is */
344 1.2 is #include <sys/cdefs.h>
345 1.2 is __BEGIN_DECLS
346 1.55 dsl char * ether_ntoa(const struct ether_addr *);
347 1.2 is struct ether_addr *
348 1.55 dsl ether_aton(const char *);
349 1.55 dsl int ether_ntohost(char *, const struct ether_addr *);
350 1.55 dsl int ether_hostton(const char *, struct ether_addr *);
351 1.55 dsl int ether_line(const char *, struct ether_addr *, char *);
352 1.2 is __END_DECLS
353 1.2 is #endif
354 1.8 drochner
355 1.8 drochner #endif /* _STANDALONE */
356 1.4 perry
357 1.40 elad #endif /* !_NET_IF_ETHER_H_ */
358