ieee80211_crypto.c revision 1.5.4.7 1 1.5.4.7 christos /* $NetBSD: ieee80211_crypto.c,v 1.5.4.7 2005/12/11 10:29:22 christos Exp $ */
2 1.5.4.2 skrll /*-
3 1.5.4.2 skrll * Copyright (c) 2001 Atsushi Onoe
4 1.5.4.6 skrll * Copyright (c) 2002-2005 Sam Leffler, Errno Consulting
5 1.5.4.2 skrll * All rights reserved.
6 1.5.4.2 skrll *
7 1.5.4.2 skrll * Redistribution and use in source and binary forms, with or without
8 1.5.4.2 skrll * modification, are permitted provided that the following conditions
9 1.5.4.2 skrll * are met:
10 1.5.4.2 skrll * 1. Redistributions of source code must retain the above copyright
11 1.5.4.2 skrll * notice, this list of conditions and the following disclaimer.
12 1.5.4.2 skrll * 2. Redistributions in binary form must reproduce the above copyright
13 1.5.4.2 skrll * notice, this list of conditions and the following disclaimer in the
14 1.5.4.2 skrll * documentation and/or other materials provided with the distribution.
15 1.5.4.2 skrll * 3. The name of the author may not be used to endorse or promote products
16 1.5.4.2 skrll * derived from this software without specific prior written permission.
17 1.5.4.2 skrll *
18 1.5.4.2 skrll * Alternatively, this software may be distributed under the terms of the
19 1.5.4.2 skrll * GNU General Public License ("GPL") version 2 as published by the Free
20 1.5.4.2 skrll * Software Foundation.
21 1.5.4.2 skrll *
22 1.5.4.2 skrll * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
23 1.5.4.2 skrll * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
24 1.5.4.2 skrll * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
25 1.5.4.2 skrll * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
26 1.5.4.2 skrll * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
27 1.5.4.2 skrll * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
28 1.5.4.2 skrll * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
29 1.5.4.2 skrll * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
30 1.5.4.2 skrll * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
31 1.5.4.2 skrll * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
32 1.5.4.2 skrll */
33 1.5.4.2 skrll
34 1.5.4.2 skrll #include <sys/cdefs.h>
35 1.5.4.2 skrll #ifdef __FreeBSD__
36 1.5.4.7 christos __FBSDID("$FreeBSD: src/sys/net80211/ieee80211_crypto.c,v 1.12 2005/08/08 18:46:35 sam Exp $");
37 1.5.4.7 christos #endif
38 1.5.4.7 christos #ifdef __NetBSD__
39 1.5.4.7 christos __KERNEL_RCSID(0, "$NetBSD: ieee80211_crypto.c,v 1.5.4.7 2005/12/11 10:29:22 christos Exp $");
40 1.5.4.2 skrll #endif
41 1.5.4.2 skrll
42 1.5.4.2 skrll #include "opt_inet.h"
43 1.5.4.2 skrll
44 1.5.4.6 skrll /*
45 1.5.4.6 skrll * IEEE 802.11 generic crypto support.
46 1.5.4.6 skrll */
47 1.5.4.2 skrll #include <sys/param.h>
48 1.5.4.6 skrll #include <sys/mbuf.h>
49 1.5.4.6 skrll
50 1.5.4.2 skrll #include <sys/socket.h>
51 1.5.4.2 skrll #include <sys/sockio.h>
52 1.5.4.2 skrll #include <sys/endian.h>
53 1.5.4.2 skrll #include <sys/errno.h>
54 1.5.4.2 skrll #include <sys/proc.h>
55 1.5.4.2 skrll #include <sys/sysctl.h>
56 1.5.4.2 skrll
57 1.5.4.2 skrll #include <net/if.h>
58 1.5.4.2 skrll #include <net/if_media.h>
59 1.5.4.2 skrll #include <net/if_arp.h>
60 1.5.4.2 skrll #include <net/if_ether.h>
61 1.5.4.2 skrll #include <net/if_llc.h>
62 1.5.4.2 skrll
63 1.5.4.6 skrll #include <net80211/ieee80211_netbsd.h>
64 1.5.4.2 skrll #include <net80211/ieee80211_var.h>
65 1.5.4.2 skrll
66 1.5.4.6 skrll /*
67 1.5.4.6 skrll * Table of registered cipher modules.
68 1.5.4.6 skrll */
69 1.5.4.6 skrll static const struct ieee80211_cipher *ciphers[IEEE80211_CIPHER_MAX];
70 1.5.4.2 skrll
71 1.5.4.2 skrll #ifdef INET
72 1.5.4.6 skrll #include <netinet/in.h>
73 1.5.4.2 skrll #include <net/if_ether.h>
74 1.5.4.2 skrll #endif
75 1.5.4.2 skrll
76 1.5.4.6 skrll #include <crypto/arc4/arc4.h> /* XXX unneeded? */
77 1.5.4.6 skrll static int _ieee80211_crypto_delkey(struct ieee80211com *,
78 1.5.4.6 skrll struct ieee80211_key *);
79 1.5.4.2 skrll
80 1.5.4.6 skrll /*
81 1.5.4.6 skrll * Default "null" key management routines.
82 1.5.4.6 skrll */
83 1.5.4.6 skrll static int
84 1.5.4.7 christos null_key_alloc(struct ieee80211com *ic, const struct ieee80211_key *k,
85 1.5.4.7 christos ieee80211_keyix *keyix, ieee80211_keyix *rxkeyix)
86 1.5.4.6 skrll {
87 1.5.4.6 skrll if (!(&ic->ic_nw_keys[0] <= k &&
88 1.5.4.6 skrll k < &ic->ic_nw_keys[IEEE80211_WEP_NKID])) {
89 1.5.4.6 skrll /*
90 1.5.4.6 skrll * Not in the global key table, the driver should handle this
91 1.5.4.6 skrll * by allocating a slot in the h/w key table/cache. In
92 1.5.4.6 skrll * lieu of that return key slot 0 for any unicast key
93 1.5.4.6 skrll * request. We disallow the request if this is a group key.
94 1.5.4.6 skrll * This default policy does the right thing for legacy hardware
95 1.5.4.6 skrll * with a 4 key table. It also handles devices that pass
96 1.5.4.6 skrll * packets through untouched when marked with the WEP bit
97 1.5.4.6 skrll * and key index 0.
98 1.5.4.6 skrll */
99 1.5.4.7 christos if (k->wk_flags & IEEE80211_KEY_GROUP)
100 1.5.4.7 christos return 0;
101 1.5.4.7 christos *keyix = 0; /* NB: use key index 0 for ucast key */
102 1.5.4.7 christos } else {
103 1.5.4.7 christos *keyix = k - ic->ic_nw_keys;
104 1.5.4.6 skrll }
105 1.5.4.7 christos *rxkeyix = IEEE80211_KEYIX_NONE; /* XXX maybe *keyix? */
106 1.5.4.7 christos return 1;
107 1.5.4.6 skrll }
108 1.5.4.6 skrll static int
109 1.5.4.6 skrll null_key_delete(struct ieee80211com *ic, const struct ieee80211_key *k)
110 1.5.4.6 skrll {
111 1.5.4.6 skrll return 1;
112 1.5.4.6 skrll }
113 1.5.4.6 skrll static int
114 1.5.4.6 skrll null_key_set(struct ieee80211com *ic, const struct ieee80211_key *k,
115 1.5.4.6 skrll const u_int8_t mac[IEEE80211_ADDR_LEN])
116 1.5.4.6 skrll {
117 1.5.4.6 skrll return 1;
118 1.5.4.6 skrll }
119 1.5.4.6 skrll static void null_key_update(struct ieee80211com *ic) {}
120 1.5.4.2 skrll
121 1.5.4.6 skrll /*
122 1.5.4.6 skrll * Write-arounds for common operations.
123 1.5.4.6 skrll */
124 1.5.4.6 skrll static __inline void
125 1.5.4.6 skrll cipher_detach(struct ieee80211_key *key)
126 1.5.4.6 skrll {
127 1.5.4.6 skrll key->wk_cipher->ic_detach(key);
128 1.5.4.6 skrll }
129 1.5.4.6 skrll
130 1.5.4.6 skrll static __inline void *
131 1.5.4.6 skrll cipher_attach(struct ieee80211com *ic, struct ieee80211_key *key)
132 1.5.4.6 skrll {
133 1.5.4.6 skrll return key->wk_cipher->ic_attach(ic, key);
134 1.5.4.6 skrll }
135 1.5.4.6 skrll
136 1.5.4.6 skrll /*
137 1.5.4.6 skrll * Wrappers for driver key management methods.
138 1.5.4.6 skrll */
139 1.5.4.6 skrll static __inline int
140 1.5.4.6 skrll dev_key_alloc(struct ieee80211com *ic,
141 1.5.4.7 christos const struct ieee80211_key *key,
142 1.5.4.7 christos ieee80211_keyix *keyix, ieee80211_keyix *rxkeyix)
143 1.5.4.6 skrll {
144 1.5.4.7 christos return ic->ic_crypto.cs_key_alloc(ic, key, keyix, rxkeyix);
145 1.5.4.6 skrll }
146 1.5.4.6 skrll
147 1.5.4.6 skrll static __inline int
148 1.5.4.6 skrll dev_key_delete(struct ieee80211com *ic,
149 1.5.4.6 skrll const struct ieee80211_key *key)
150 1.5.4.6 skrll {
151 1.5.4.6 skrll return ic->ic_crypto.cs_key_delete(ic, key);
152 1.5.4.6 skrll }
153 1.5.4.6 skrll
154 1.5.4.6 skrll static __inline int
155 1.5.4.6 skrll dev_key_set(struct ieee80211com *ic, const struct ieee80211_key *key,
156 1.5.4.6 skrll const u_int8_t mac[IEEE80211_ADDR_LEN])
157 1.5.4.6 skrll {
158 1.5.4.6 skrll return ic->ic_crypto.cs_key_set(ic, key, mac);
159 1.5.4.6 skrll }
160 1.5.4.6 skrll
161 1.5.4.6 skrll /*
162 1.5.4.6 skrll * Setup crypto support.
163 1.5.4.6 skrll */
164 1.5.4.2 skrll void
165 1.5.4.6 skrll ieee80211_crypto_attach(struct ieee80211com *ic)
166 1.5.4.2 skrll {
167 1.5.4.6 skrll struct ieee80211_crypto_state *cs = &ic->ic_crypto;
168 1.5.4.6 skrll int i;
169 1.5.4.2 skrll
170 1.5.4.6 skrll /* NB: we assume everything is pre-zero'd */
171 1.5.4.6 skrll cs->cs_def_txkey = IEEE80211_KEYIX_NONE;
172 1.5.4.7 christos cs->cs_max_keyix = IEEE80211_WEP_NKID;
173 1.5.4.6 skrll ciphers[IEEE80211_CIPHER_NONE] = &ieee80211_cipher_none;
174 1.5.4.6 skrll for (i = 0; i < IEEE80211_WEP_NKID; i++)
175 1.5.4.6 skrll ieee80211_crypto_resetkey(ic, &cs->cs_nw_keys[i],
176 1.5.4.6 skrll IEEE80211_KEYIX_NONE);
177 1.5.4.2 skrll /*
178 1.5.4.6 skrll * Initialize the driver key support routines to noop entries.
179 1.5.4.6 skrll * This is useful especially for the cipher test modules.
180 1.5.4.2 skrll */
181 1.5.4.6 skrll cs->cs_key_alloc = null_key_alloc;
182 1.5.4.6 skrll cs->cs_key_set = null_key_set;
183 1.5.4.6 skrll cs->cs_key_delete = null_key_delete;
184 1.5.4.6 skrll cs->cs_key_update_begin = null_key_update;
185 1.5.4.6 skrll cs->cs_key_update_end = null_key_update;
186 1.5.4.2 skrll }
187 1.5.4.2 skrll
188 1.5.4.6 skrll /*
189 1.5.4.6 skrll * Teardown crypto support.
190 1.5.4.6 skrll */
191 1.5.4.2 skrll void
192 1.5.4.6 skrll ieee80211_crypto_detach(struct ieee80211com *ic)
193 1.5.4.2 skrll {
194 1.5.4.6 skrll ieee80211_crypto_delglobalkeys(ic);
195 1.5.4.6 skrll }
196 1.5.4.2 skrll
197 1.5.4.6 skrll /*
198 1.5.4.6 skrll * Register a crypto cipher module.
199 1.5.4.6 skrll */
200 1.5.4.6 skrll void
201 1.5.4.6 skrll ieee80211_crypto_register(const struct ieee80211_cipher *cip)
202 1.5.4.6 skrll {
203 1.5.4.6 skrll if (cip->ic_cipher >= IEEE80211_CIPHER_MAX) {
204 1.5.4.6 skrll printf("%s: cipher %s has an invalid cipher index %u\n",
205 1.5.4.6 skrll __func__, cip->ic_name, cip->ic_cipher);
206 1.5.4.6 skrll return;
207 1.5.4.6 skrll }
208 1.5.4.6 skrll if (ciphers[cip->ic_cipher] != NULL && ciphers[cip->ic_cipher] != cip) {
209 1.5.4.6 skrll printf("%s: cipher %s registered with a different template\n",
210 1.5.4.6 skrll __func__, cip->ic_name);
211 1.5.4.6 skrll return;
212 1.5.4.2 skrll }
213 1.5.4.6 skrll ciphers[cip->ic_cipher] = cip;
214 1.5.4.2 skrll }
215 1.5.4.2 skrll
216 1.5.4.6 skrll /*
217 1.5.4.6 skrll * Unregister a crypto cipher module.
218 1.5.4.6 skrll */
219 1.5.4.6 skrll void
220 1.5.4.6 skrll ieee80211_crypto_unregister(const struct ieee80211_cipher *cip)
221 1.5.4.2 skrll {
222 1.5.4.6 skrll if (cip->ic_cipher >= IEEE80211_CIPHER_MAX) {
223 1.5.4.6 skrll printf("%s: cipher %s has an invalid cipher index %u\n",
224 1.5.4.6 skrll __func__, cip->ic_name, cip->ic_cipher);
225 1.5.4.6 skrll return;
226 1.5.4.2 skrll }
227 1.5.4.6 skrll if (ciphers[cip->ic_cipher] != NULL && ciphers[cip->ic_cipher] != cip) {
228 1.5.4.6 skrll printf("%s: cipher %s registered with a different template\n",
229 1.5.4.6 skrll __func__, cip->ic_name);
230 1.5.4.6 skrll return;
231 1.5.4.2 skrll }
232 1.5.4.6 skrll /* NB: don't complain about not being registered */
233 1.5.4.6 skrll /* XXX disallow if references */
234 1.5.4.6 skrll ciphers[cip->ic_cipher] = NULL;
235 1.5.4.6 skrll }
236 1.5.4.6 skrll
237 1.5.4.6 skrll int
238 1.5.4.6 skrll ieee80211_crypto_available(u_int cipher)
239 1.5.4.6 skrll {
240 1.5.4.6 skrll return cipher < IEEE80211_CIPHER_MAX && ciphers[cipher] != NULL;
241 1.5.4.6 skrll }
242 1.5.4.6 skrll
243 1.5.4.6 skrll /* XXX well-known names! */
244 1.5.4.6 skrll static const char *cipher_modnames[] = {
245 1.5.4.6 skrll "wlan_wep", /* IEEE80211_CIPHER_WEP */
246 1.5.4.6 skrll "wlan_tkip", /* IEEE80211_CIPHER_TKIP */
247 1.5.4.6 skrll "wlan_aes_ocb", /* IEEE80211_CIPHER_AES_OCB */
248 1.5.4.6 skrll "wlan_ccmp", /* IEEE80211_CIPHER_AES_CCM */
249 1.5.4.6 skrll "wlan_ckip", /* IEEE80211_CIPHER_CKIP */
250 1.5.4.6 skrll };
251 1.5.4.6 skrll
252 1.5.4.6 skrll /*
253 1.5.4.6 skrll * Establish a relationship between the specified key and cipher
254 1.5.4.6 skrll * and, if necessary, allocate a hardware index from the driver.
255 1.5.4.6 skrll * Note that when a fixed key index is required it must be specified
256 1.5.4.6 skrll * and we blindly assign it w/o consulting the driver (XXX).
257 1.5.4.6 skrll *
258 1.5.4.6 skrll * This must be the first call applied to a key; all the other key
259 1.5.4.6 skrll * routines assume wk_cipher is setup.
260 1.5.4.6 skrll *
261 1.5.4.6 skrll * Locking must be handled by the caller using:
262 1.5.4.6 skrll * ieee80211_key_update_begin(ic);
263 1.5.4.6 skrll * ieee80211_key_update_end(ic);
264 1.5.4.6 skrll */
265 1.5.4.6 skrll int
266 1.5.4.6 skrll ieee80211_crypto_newkey(struct ieee80211com *ic,
267 1.5.4.6 skrll int cipher, int flags, struct ieee80211_key *key)
268 1.5.4.6 skrll {
269 1.5.4.6 skrll #define N(a) (sizeof(a) / sizeof(a[0]))
270 1.5.4.6 skrll const struct ieee80211_cipher *cip;
271 1.5.4.7 christos ieee80211_keyix keyix, rxkeyix;
272 1.5.4.6 skrll void *keyctx;
273 1.5.4.6 skrll int oflags;
274 1.5.4.6 skrll
275 1.5.4.6 skrll /*
276 1.5.4.6 skrll * Validate cipher and set reference to cipher routines.
277 1.5.4.6 skrll */
278 1.5.4.6 skrll if (cipher >= IEEE80211_CIPHER_MAX) {
279 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
280 1.5.4.6 skrll "%s: invalid cipher %u\n", __func__, cipher);
281 1.5.4.6 skrll ic->ic_stats.is_crypto_badcipher++;
282 1.5.4.6 skrll return 0;
283 1.5.4.2 skrll }
284 1.5.4.6 skrll cip = ciphers[cipher];
285 1.5.4.6 skrll if (cip == NULL) {
286 1.5.4.2 skrll /*
287 1.5.4.6 skrll * Auto-load cipher module if we have a well-known name
288 1.5.4.6 skrll * for it. It might be better to use string names rather
289 1.5.4.6 skrll * than numbers and craft a module name based on the cipher
290 1.5.4.6 skrll * name; e.g. wlan_cipher_<cipher-name>.
291 1.5.4.2 skrll */
292 1.5.4.6 skrll if (cipher < N(cipher_modnames)) {
293 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
294 1.5.4.6 skrll "%s: unregistered cipher %u, load module %s\n",
295 1.5.4.6 skrll __func__, cipher, cipher_modnames[cipher]);
296 1.5.4.6 skrll ieee80211_load_module(cipher_modnames[cipher]);
297 1.5.4.6 skrll /*
298 1.5.4.6 skrll * If cipher module loaded it should immediately
299 1.5.4.6 skrll * call ieee80211_crypto_register which will fill
300 1.5.4.6 skrll * in the entry in the ciphers array.
301 1.5.4.6 skrll */
302 1.5.4.6 skrll cip = ciphers[cipher];
303 1.5.4.2 skrll }
304 1.5.4.6 skrll if (cip == NULL) {
305 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
306 1.5.4.6 skrll "%s: unable to load cipher %u, module %s\n",
307 1.5.4.6 skrll __func__, cipher,
308 1.5.4.6 skrll cipher < N(cipher_modnames) ?
309 1.5.4.6 skrll cipher_modnames[cipher] : "<unknown>");
310 1.5.4.6 skrll ic->ic_stats.is_crypto_nocipher++;
311 1.5.4.6 skrll return 0;
312 1.5.4.2 skrll }
313 1.5.4.6 skrll }
314 1.5.4.6 skrll
315 1.5.4.6 skrll oflags = key->wk_flags;
316 1.5.4.6 skrll flags &= IEEE80211_KEY_COMMON;
317 1.5.4.6 skrll /*
318 1.5.4.6 skrll * If the hardware does not support the cipher then
319 1.5.4.6 skrll * fallback to a host-based implementation.
320 1.5.4.6 skrll */
321 1.5.4.6 skrll if ((ic->ic_caps & (1<<cipher)) == 0) {
322 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
323 1.5.4.6 skrll "%s: no h/w support for cipher %s, falling back to s/w\n",
324 1.5.4.6 skrll __func__, cip->ic_name);
325 1.5.4.6 skrll flags |= IEEE80211_KEY_SWCRYPT;
326 1.5.4.6 skrll }
327 1.5.4.6 skrll /*
328 1.5.4.6 skrll * Hardware TKIP with software MIC is an important
329 1.5.4.6 skrll * combination; we handle it by flagging each key,
330 1.5.4.6 skrll * the cipher modules honor it.
331 1.5.4.6 skrll */
332 1.5.4.6 skrll if (cipher == IEEE80211_CIPHER_TKIP &&
333 1.5.4.6 skrll (ic->ic_caps & IEEE80211_C_TKIPMIC) == 0) {
334 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
335 1.5.4.6 skrll "%s: no h/w support for TKIP MIC, falling back to s/w\n",
336 1.5.4.6 skrll __func__);
337 1.5.4.6 skrll flags |= IEEE80211_KEY_SWMIC;
338 1.5.4.6 skrll }
339 1.5.4.6 skrll
340 1.5.4.6 skrll /*
341 1.5.4.6 skrll * Bind cipher to key instance. Note we do this
342 1.5.4.6 skrll * after checking the device capabilities so the
343 1.5.4.6 skrll * cipher module can optimize space usage based on
344 1.5.4.6 skrll * whether or not it needs to do the cipher work.
345 1.5.4.6 skrll */
346 1.5.4.6 skrll if (key->wk_cipher != cip || key->wk_flags != flags) {
347 1.5.4.6 skrll again:
348 1.5.4.6 skrll /*
349 1.5.4.6 skrll * Fillin the flags so cipher modules can see s/w
350 1.5.4.6 skrll * crypto requirements and potentially allocate
351 1.5.4.6 skrll * different state and/or attach different method
352 1.5.4.6 skrll * pointers.
353 1.5.4.6 skrll *
354 1.5.4.6 skrll * XXX this is not right when s/w crypto fallback
355 1.5.4.6 skrll * fails and we try to restore previous state.
356 1.5.4.6 skrll */
357 1.5.4.6 skrll key->wk_flags = flags;
358 1.5.4.6 skrll keyctx = cip->ic_attach(ic, key);
359 1.5.4.6 skrll if (keyctx == NULL) {
360 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
361 1.5.4.6 skrll "%s: unable to attach cipher %s\n",
362 1.5.4.6 skrll __func__, cip->ic_name);
363 1.5.4.6 skrll key->wk_flags = oflags; /* restore old flags */
364 1.5.4.6 skrll ic->ic_stats.is_crypto_attachfail++;
365 1.5.4.6 skrll return 0;
366 1.5.4.2 skrll }
367 1.5.4.6 skrll cipher_detach(key);
368 1.5.4.6 skrll key->wk_cipher = cip; /* XXX refcnt? */
369 1.5.4.6 skrll key->wk_private = keyctx;
370 1.5.4.6 skrll }
371 1.5.4.6 skrll /*
372 1.5.4.6 skrll * Commit to requested usage so driver can see the flags.
373 1.5.4.6 skrll */
374 1.5.4.6 skrll key->wk_flags = flags;
375 1.5.4.6 skrll
376 1.5.4.6 skrll /*
377 1.5.4.6 skrll * Ask the driver for a key index if we don't have one.
378 1.5.4.6 skrll * Note that entries in the global key table always have
379 1.5.4.6 skrll * an index; this means it's safe to call this routine
380 1.5.4.6 skrll * for these entries just to setup the reference to the
381 1.5.4.6 skrll * cipher template. Note also that when using software
382 1.5.4.6 skrll * crypto we also call the driver to give us a key index.
383 1.5.4.6 skrll */
384 1.5.4.6 skrll if (key->wk_keyix == IEEE80211_KEYIX_NONE) {
385 1.5.4.7 christos if (!dev_key_alloc(ic, key, &keyix, &rxkeyix)) {
386 1.5.4.6 skrll /*
387 1.5.4.6 skrll * Driver has no room; fallback to doing crypto
388 1.5.4.6 skrll * in the host. We change the flags and start the
389 1.5.4.6 skrll * procedure over. If we get back here then there's
390 1.5.4.6 skrll * no hope and we bail. Note that this can leave
391 1.5.4.6 skrll * the key in a inconsistent state if the caller
392 1.5.4.6 skrll * continues to use it.
393 1.5.4.6 skrll */
394 1.5.4.6 skrll if ((key->wk_flags & IEEE80211_KEY_SWCRYPT) == 0) {
395 1.5.4.6 skrll ic->ic_stats.is_crypto_swfallback++;
396 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
397 1.5.4.6 skrll "%s: no h/w resources for cipher %s, "
398 1.5.4.6 skrll "falling back to s/w\n", __func__,
399 1.5.4.6 skrll cip->ic_name);
400 1.5.4.6 skrll oflags = key->wk_flags;
401 1.5.4.6 skrll flags |= IEEE80211_KEY_SWCRYPT;
402 1.5.4.6 skrll if (cipher == IEEE80211_CIPHER_TKIP)
403 1.5.4.6 skrll flags |= IEEE80211_KEY_SWMIC;
404 1.5.4.6 skrll goto again;
405 1.5.4.2 skrll }
406 1.5.4.6 skrll ic->ic_stats.is_crypto_keyfail++;
407 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
408 1.5.4.6 skrll "%s: unable to setup cipher %s\n",
409 1.5.4.6 skrll __func__, cip->ic_name);
410 1.5.4.6 skrll return 0;
411 1.5.4.2 skrll }
412 1.5.4.7 christos key->wk_keyix = keyix;
413 1.5.4.7 christos key->wk_rxkeyix = rxkeyix;
414 1.5.4.6 skrll }
415 1.5.4.6 skrll return 1;
416 1.5.4.6 skrll #undef N
417 1.5.4.6 skrll }
418 1.5.4.6 skrll
419 1.5.4.6 skrll /*
420 1.5.4.6 skrll * Remove the key (no locking, for internal use).
421 1.5.4.6 skrll */
422 1.5.4.6 skrll static int
423 1.5.4.6 skrll _ieee80211_crypto_delkey(struct ieee80211com *ic, struct ieee80211_key *key)
424 1.5.4.6 skrll {
425 1.5.4.7 christos ieee80211_keyix keyix;
426 1.5.4.6 skrll
427 1.5.4.6 skrll IASSERT(key->wk_cipher != NULL, ("No cipher!"));
428 1.5.4.6 skrll
429 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
430 1.5.4.6 skrll "%s: %s keyix %u flags 0x%x rsc %ju tsc %ju len %u\n",
431 1.5.4.6 skrll __func__, key->wk_cipher->ic_name,
432 1.5.4.6 skrll key->wk_keyix, key->wk_flags,
433 1.5.4.6 skrll key->wk_keyrsc, key->wk_keytsc, key->wk_keylen);
434 1.5.4.6 skrll
435 1.5.4.6 skrll keyix = key->wk_keyix;
436 1.5.4.6 skrll if (keyix != IEEE80211_KEYIX_NONE) {
437 1.5.4.6 skrll /*
438 1.5.4.6 skrll * Remove hardware entry.
439 1.5.4.6 skrll */
440 1.5.4.6 skrll /* XXX key cache */
441 1.5.4.6 skrll if (!dev_key_delete(ic, key)) {
442 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
443 1.5.4.6 skrll "%s: driver did not delete key index %u\n",
444 1.5.4.6 skrll __func__, keyix);
445 1.5.4.6 skrll ic->ic_stats.is_crypto_delkey++;
446 1.5.4.6 skrll /* XXX recovery? */
447 1.5.4.2 skrll }
448 1.5.4.2 skrll }
449 1.5.4.6 skrll cipher_detach(key);
450 1.5.4.6 skrll memset(key, 0, sizeof(*key));
451 1.5.4.6 skrll ieee80211_crypto_resetkey(ic, key, IEEE80211_KEYIX_NONE);
452 1.5.4.6 skrll return 1;
453 1.5.4.6 skrll }
454 1.5.4.2 skrll
455 1.5.4.6 skrll /*
456 1.5.4.6 skrll * Remove the specified key.
457 1.5.4.6 skrll */
458 1.5.4.6 skrll int
459 1.5.4.6 skrll ieee80211_crypto_delkey(struct ieee80211com *ic, struct ieee80211_key *key)
460 1.5.4.6 skrll {
461 1.5.4.6 skrll int status;
462 1.5.4.6 skrll
463 1.5.4.6 skrll ieee80211_key_update_begin(ic);
464 1.5.4.6 skrll status = _ieee80211_crypto_delkey(ic, key);
465 1.5.4.6 skrll ieee80211_key_update_end(ic);
466 1.5.4.6 skrll return status;
467 1.5.4.2 skrll }
468 1.5.4.2 skrll
469 1.5.4.2 skrll /*
470 1.5.4.6 skrll * Clear the global key table.
471 1.5.4.2 skrll */
472 1.5.4.6 skrll void
473 1.5.4.6 skrll ieee80211_crypto_delglobalkeys(struct ieee80211com *ic)
474 1.5.4.6 skrll {
475 1.5.4.6 skrll int i;
476 1.5.4.2 skrll
477 1.5.4.6 skrll ieee80211_key_update_begin(ic);
478 1.5.4.6 skrll for (i = 0; i < IEEE80211_WEP_NKID; i++)
479 1.5.4.6 skrll (void) _ieee80211_crypto_delkey(ic, &ic->ic_nw_keys[i]);
480 1.5.4.6 skrll ieee80211_key_update_end(ic);
481 1.5.4.6 skrll }
482 1.5.4.2 skrll
483 1.5.4.6 skrll /*
484 1.5.4.6 skrll * Set the contents of the specified key.
485 1.5.4.6 skrll *
486 1.5.4.6 skrll * Locking must be handled by the caller using:
487 1.5.4.6 skrll * ieee80211_key_update_begin(ic);
488 1.5.4.6 skrll * ieee80211_key_update_end(ic);
489 1.5.4.6 skrll */
490 1.5.4.6 skrll int
491 1.5.4.6 skrll ieee80211_crypto_setkey(struct ieee80211com *ic, struct ieee80211_key *key,
492 1.5.4.6 skrll const u_int8_t macaddr[IEEE80211_ADDR_LEN])
493 1.5.4.6 skrll {
494 1.5.4.6 skrll const struct ieee80211_cipher *cip = key->wk_cipher;
495 1.5.4.6 skrll
496 1.5.4.6 skrll IASSERT(cip != NULL, ("No cipher!"));
497 1.5.4.6 skrll
498 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
499 1.5.4.6 skrll "%s: %s keyix %u flags 0x%x mac %s rsc %ju tsc %ju len %u\n",
500 1.5.4.6 skrll __func__, cip->ic_name, key->wk_keyix,
501 1.5.4.6 skrll key->wk_flags, ether_sprintf(macaddr),
502 1.5.4.6 skrll key->wk_keyrsc, key->wk_keytsc, key->wk_keylen);
503 1.5.4.6 skrll
504 1.5.4.6 skrll /*
505 1.5.4.6 skrll * Give cipher a chance to validate key contents.
506 1.5.4.6 skrll * XXX should happen before modifying state.
507 1.5.4.6 skrll */
508 1.5.4.6 skrll if (!cip->ic_setkey(key)) {
509 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
510 1.5.4.6 skrll "%s: cipher %s rejected key index %u len %u flags 0x%x\n",
511 1.5.4.6 skrll __func__, cip->ic_name, key->wk_keyix,
512 1.5.4.6 skrll key->wk_keylen, key->wk_flags);
513 1.5.4.6 skrll ic->ic_stats.is_crypto_setkey_cipher++;
514 1.5.4.6 skrll return 0;
515 1.5.4.2 skrll }
516 1.5.4.6 skrll if (key->wk_keyix == IEEE80211_KEYIX_NONE) {
517 1.5.4.6 skrll /* XXX nothing allocated, should not happen */
518 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
519 1.5.4.6 skrll "%s: no key index; should not happen!\n", __func__);
520 1.5.4.6 skrll ic->ic_stats.is_crypto_setkey_nokey++;
521 1.5.4.6 skrll return 0;
522 1.5.4.6 skrll }
523 1.5.4.6 skrll return dev_key_set(ic, key, macaddr);
524 1.5.4.2 skrll }
525 1.5.4.2 skrll
526 1.5.4.2 skrll /*
527 1.5.4.6 skrll * Add privacy headers appropriate for the specified key.
528 1.5.4.2 skrll */
529 1.5.4.6 skrll struct ieee80211_key *
530 1.5.4.6 skrll ieee80211_crypto_encap(struct ieee80211com *ic,
531 1.5.4.6 skrll struct ieee80211_node *ni, struct mbuf *m)
532 1.5.4.6 skrll {
533 1.5.4.6 skrll struct ieee80211_key *k;
534 1.5.4.6 skrll struct ieee80211_frame *wh;
535 1.5.4.6 skrll const struct ieee80211_cipher *cip;
536 1.5.4.6 skrll u_int8_t keyid;
537 1.5.4.6 skrll
538 1.5.4.6 skrll /*
539 1.5.4.6 skrll * Multicast traffic always uses the multicast key.
540 1.5.4.6 skrll * Otherwise if a unicast key is set we use that and
541 1.5.4.6 skrll * it is always key index 0. When no unicast key is
542 1.5.4.6 skrll * set we fall back to the default transmit key.
543 1.5.4.6 skrll */
544 1.5.4.6 skrll wh = mtod(m, struct ieee80211_frame *);
545 1.5.4.6 skrll if (IEEE80211_IS_MULTICAST(wh->i_addr1) ||
546 1.5.4.6 skrll ni->ni_ucastkey.wk_cipher == &ieee80211_cipher_none) {
547 1.5.4.6 skrll if (ic->ic_def_txkey == IEEE80211_KEYIX_NONE) {
548 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
549 1.5.4.6 skrll "[%s] no default transmit key (%s) deftxkey %u\n",
550 1.5.4.6 skrll ether_sprintf(wh->i_addr1), __func__,
551 1.5.4.6 skrll ic->ic_def_txkey);
552 1.5.4.6 skrll ic->ic_stats.is_tx_nodefkey++;
553 1.5.4.7 christos return NULL;
554 1.5.4.6 skrll }
555 1.5.4.6 skrll keyid = ic->ic_def_txkey;
556 1.5.4.6 skrll k = &ic->ic_nw_keys[ic->ic_def_txkey];
557 1.5.4.6 skrll } else {
558 1.5.4.6 skrll keyid = 0;
559 1.5.4.6 skrll k = &ni->ni_ucastkey;
560 1.5.4.6 skrll }
561 1.5.4.6 skrll cip = k->wk_cipher;
562 1.5.4.7 christos return (cip->ic_encap(k, m, keyid<<6) ? k : NULL);
563 1.5.4.6 skrll }
564 1.5.4.2 skrll
565 1.5.4.6 skrll /*
566 1.5.4.6 skrll * Validate and strip privacy headers (and trailer) for a
567 1.5.4.6 skrll * received frame that has the WEP/Privacy bit set.
568 1.5.4.6 skrll */
569 1.5.4.6 skrll struct ieee80211_key *
570 1.5.4.6 skrll ieee80211_crypto_decap(struct ieee80211com *ic,
571 1.5.4.6 skrll struct ieee80211_node *ni, struct mbuf *m, int hdrlen)
572 1.5.4.2 skrll {
573 1.5.4.6 skrll #define IEEE80211_WEP_HDRLEN (IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN)
574 1.5.4.6 skrll #define IEEE80211_WEP_MINLEN \
575 1.5.4.7 christos (sizeof(struct ieee80211_frame) + \
576 1.5.4.6 skrll IEEE80211_WEP_HDRLEN + IEEE80211_WEP_CRCLEN)
577 1.5.4.6 skrll struct ieee80211_key *k;
578 1.5.4.6 skrll struct ieee80211_frame *wh;
579 1.5.4.6 skrll const struct ieee80211_cipher *cip;
580 1.5.4.6 skrll const u_int8_t *ivp;
581 1.5.4.6 skrll u_int8_t keyid;
582 1.5.4.6 skrll
583 1.5.4.6 skrll /* NB: this minimum size data frame could be bigger */
584 1.5.4.6 skrll if (m->m_pkthdr.len < IEEE80211_WEP_MINLEN) {
585 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_ANY,
586 1.5.4.6 skrll "%s: WEP data frame too short, len %u\n",
587 1.5.4.6 skrll __func__, m->m_pkthdr.len);
588 1.5.4.6 skrll ic->ic_stats.is_rx_tooshort++; /* XXX need unique stat? */
589 1.5.4.6 skrll return NULL;
590 1.5.4.6 skrll }
591 1.5.4.6 skrll
592 1.5.4.6 skrll /*
593 1.5.4.6 skrll * Locate the key. If unicast and there is no unicast
594 1.5.4.6 skrll * key then we fall back to the key id in the header.
595 1.5.4.6 skrll * This assumes unicast keys are only configured when
596 1.5.4.6 skrll * the key id in the header is meaningless (typically 0).
597 1.5.4.6 skrll */
598 1.5.4.6 skrll wh = mtod(m, struct ieee80211_frame *);
599 1.5.4.6 skrll ivp = mtod(m, const u_int8_t *) + hdrlen; /* XXX contig */
600 1.5.4.6 skrll keyid = ivp[IEEE80211_WEP_IVLEN];
601 1.5.4.6 skrll if (IEEE80211_IS_MULTICAST(wh->i_addr1) ||
602 1.5.4.6 skrll ni->ni_ucastkey.wk_cipher == &ieee80211_cipher_none)
603 1.5.4.6 skrll k = &ic->ic_nw_keys[keyid >> 6];
604 1.5.4.6 skrll else
605 1.5.4.6 skrll k = &ni->ni_ucastkey;
606 1.5.4.6 skrll
607 1.5.4.6 skrll /*
608 1.5.4.6 skrll * Insure crypto header is contiguous for all decap work.
609 1.5.4.6 skrll */
610 1.5.4.6 skrll cip = k->wk_cipher;
611 1.5.4.6 skrll if (m->m_len < hdrlen + cip->ic_header &&
612 1.5.4.6 skrll (m = m_pullup(m, hdrlen + cip->ic_header)) == NULL) {
613 1.5.4.6 skrll IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO,
614 1.5.4.6 skrll "[%s] unable to pullup %s header\n",
615 1.5.4.6 skrll ether_sprintf(wh->i_addr2), cip->ic_name);
616 1.5.4.6 skrll ic->ic_stats.is_rx_wepfail++; /* XXX */
617 1.5.4.6 skrll return 0;
618 1.5.4.6 skrll }
619 1.5.4.2 skrll
620 1.5.4.6 skrll return (cip->ic_decap(k, m, hdrlen) ? k : NULL);
621 1.5.4.6 skrll #undef IEEE80211_WEP_MINLEN
622 1.5.4.6 skrll #undef IEEE80211_WEP_HDRLEN
623 1.5.4.2 skrll }
624