1 1.18 msaitoh /* $NetBSD: ieee80211_crypto_tkip.c,v 1.18 2023/06/24 05:12:03 msaitoh Exp $ */ 2 1.14 maxv 3 1.14 maxv /* 4 1.1 dyoung * Copyright (c) 2002-2005 Sam Leffler, Errno Consulting 5 1.1 dyoung * All rights reserved. 6 1.1 dyoung * 7 1.1 dyoung * Redistribution and use in source and binary forms, with or without 8 1.1 dyoung * modification, are permitted provided that the following conditions 9 1.1 dyoung * are met: 10 1.1 dyoung * 1. Redistributions of source code must retain the above copyright 11 1.1 dyoung * notice, this list of conditions and the following disclaimer. 12 1.1 dyoung * 2. Redistributions in binary form must reproduce the above copyright 13 1.1 dyoung * notice, this list of conditions and the following disclaimer in the 14 1.1 dyoung * documentation and/or other materials provided with the distribution. 15 1.1 dyoung * 3. The name of the author may not be used to endorse or promote products 16 1.1 dyoung * derived from this software without specific prior written permission. 17 1.1 dyoung * 18 1.1 dyoung * Alternatively, this software may be distributed under the terms of the 19 1.1 dyoung * GNU General Public License ("GPL") version 2 as published by the Free 20 1.1 dyoung * Software Foundation. 21 1.1 dyoung * 22 1.1 dyoung * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 23 1.1 dyoung * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 24 1.1 dyoung * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 25 1.1 dyoung * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 26 1.1 dyoung * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 27 1.1 dyoung * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 28 1.1 dyoung * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 29 1.1 dyoung * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 30 1.1 dyoung * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 31 1.1 dyoung * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 32 1.1 dyoung */ 33 1.1 dyoung 34 1.1 dyoung #include <sys/cdefs.h> 35 1.2 dyoung #ifdef __FreeBSD__ 36 1.4 skrll __FBSDID("$FreeBSD: src/sys/net80211/ieee80211_crypto_tkip.c,v 1.10 2005/08/08 18:46:35 sam Exp $"); 37 1.2 dyoung #endif 38 1.2 dyoung #ifdef __NetBSD__ 39 1.18 msaitoh __KERNEL_RCSID(0, "$NetBSD: ieee80211_crypto_tkip.c,v 1.18 2023/06/24 05:12:03 msaitoh Exp $"); 40 1.2 dyoung #endif 41 1.1 dyoung 42 1.1 dyoung /* 43 1.1 dyoung * IEEE 802.11i TKIP crypto support. 44 1.1 dyoung * 45 1.1 dyoung * Part of this module is derived from similar code in the Host 46 1.1 dyoung * AP driver. The code is used with the consent of the author and 47 1.12 snj * its license is included below. 48 1.1 dyoung */ 49 1.1 dyoung #include <sys/param.h> 50 1.14 maxv #include <sys/systm.h> 51 1.14 maxv #include <sys/mbuf.h> 52 1.17 mlelstv #include <sys/kmem.h> 53 1.1 dyoung #include <sys/kernel.h> 54 1.1 dyoung #include <sys/endian.h> 55 1.1 dyoung 56 1.1 dyoung #include <sys/socket.h> 57 1.1 dyoung 58 1.1 dyoung #include <net/if.h> 59 1.5 christos #include <net/if_ether.h> 60 1.1 dyoung #include <net/if_media.h> 61 1.1 dyoung 62 1.1 dyoung #include <net80211/ieee80211_var.h> 63 1.1 dyoung 64 1.1 dyoung static void *tkip_attach(struct ieee80211com *, struct ieee80211_key *); 65 1.1 dyoung static void tkip_detach(struct ieee80211_key *); 66 1.1 dyoung static int tkip_setkey(struct ieee80211_key *); 67 1.1 dyoung static int tkip_encap(struct ieee80211_key *, struct mbuf *m, u_int8_t keyid); 68 1.3 dyoung static int tkip_enmic(struct ieee80211_key *, struct mbuf *, int); 69 1.3 dyoung static int tkip_decap(struct ieee80211_key *, struct mbuf *, int); 70 1.3 dyoung static int tkip_demic(struct ieee80211_key *, struct mbuf *, int); 71 1.1 dyoung 72 1.2 dyoung const struct ieee80211_cipher ieee80211_cipher_tkip = { 73 1.1 dyoung .ic_name = "TKIP", 74 1.1 dyoung .ic_cipher = IEEE80211_CIPHER_TKIP, 75 1.1 dyoung .ic_header = IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN + 76 1.1 dyoung IEEE80211_WEP_EXTIVLEN, 77 1.1 dyoung .ic_trailer = IEEE80211_WEP_CRCLEN, 78 1.1 dyoung .ic_miclen = IEEE80211_WEP_MICLEN, 79 1.1 dyoung .ic_attach = tkip_attach, 80 1.1 dyoung .ic_detach = tkip_detach, 81 1.1 dyoung .ic_setkey = tkip_setkey, 82 1.1 dyoung .ic_encap = tkip_encap, 83 1.1 dyoung .ic_decap = tkip_decap, 84 1.1 dyoung .ic_enmic = tkip_enmic, 85 1.1 dyoung .ic_demic = tkip_demic, 86 1.1 dyoung }; 87 1.1 dyoung 88 1.2 dyoung #define tkip ieee80211_cipher_tkip 89 1.2 dyoung 90 1.1 dyoung typedef uint8_t u8; 91 1.1 dyoung typedef uint16_t u16; 92 1.1 dyoung typedef uint32_t __u32; 93 1.1 dyoung typedef uint32_t u32; 94 1.1 dyoung 95 1.1 dyoung struct tkip_ctx { 96 1.1 dyoung struct ieee80211com *tc_ic; /* for diagnostics */ 97 1.1 dyoung 98 1.1 dyoung u16 tx_ttak[5]; 99 1.1 dyoung int tx_phase1_done; 100 1.1 dyoung u8 tx_rc4key[16]; /* XXX for test module; make locals? */ 101 1.1 dyoung 102 1.1 dyoung u16 rx_ttak[5]; 103 1.1 dyoung int rx_phase1_done; 104 1.1 dyoung u8 rx_rc4key[16]; /* XXX for test module; make locals? */ 105 1.1 dyoung uint64_t rx_rsc; /* held until MIC verified */ 106 1.1 dyoung }; 107 1.1 dyoung 108 1.1 dyoung static void michael_mic(struct tkip_ctx *, const u8 *key, 109 1.1 dyoung struct mbuf *m, u_int off, size_t data_len, 110 1.1 dyoung u8 mic[IEEE80211_WEP_MICLEN]); 111 1.1 dyoung static int tkip_encrypt(struct tkip_ctx *, struct ieee80211_key *, 112 1.1 dyoung struct mbuf *, int hdr_len); 113 1.1 dyoung static int tkip_decrypt(struct tkip_ctx *, struct ieee80211_key *, 114 1.1 dyoung struct mbuf *, int hdr_len); 115 1.1 dyoung 116 1.1 dyoung static void * 117 1.7 christos tkip_attach(struct ieee80211com *ic, struct ieee80211_key *k) 118 1.1 dyoung { 119 1.1 dyoung struct tkip_ctx *ctx; 120 1.1 dyoung 121 1.17 mlelstv ctx = kmem_intr_zalloc(sizeof(struct tkip_ctx), KM_NOSLEEP); 122 1.1 dyoung if (ctx == NULL) { 123 1.1 dyoung ic->ic_stats.is_crypto_nomem++; 124 1.1 dyoung return NULL; 125 1.1 dyoung } 126 1.1 dyoung 127 1.1 dyoung ctx->tc_ic = ic; 128 1.1 dyoung return ctx; 129 1.1 dyoung } 130 1.1 dyoung 131 1.1 dyoung static void 132 1.1 dyoung tkip_detach(struct ieee80211_key *k) 133 1.1 dyoung { 134 1.1 dyoung struct tkip_ctx *ctx = k->wk_private; 135 1.1 dyoung 136 1.17 mlelstv kmem_intr_free(ctx, sizeof(struct tkip_ctx)); 137 1.1 dyoung } 138 1.1 dyoung 139 1.1 dyoung static int 140 1.1 dyoung tkip_setkey(struct ieee80211_key *k) 141 1.1 dyoung { 142 1.1 dyoung struct tkip_ctx *ctx = k->wk_private; 143 1.1 dyoung 144 1.1 dyoung if (k->wk_keylen != (128/NBBY)) { 145 1.1 dyoung (void) ctx; /* XXX */ 146 1.1 dyoung IEEE80211_DPRINTF(ctx->tc_ic, IEEE80211_MSG_CRYPTO, 147 1.1 dyoung "%s: Invalid key length %u, expecting %u\n", 148 1.1 dyoung __func__, k->wk_keylen, 128/NBBY); 149 1.1 dyoung return 0; 150 1.1 dyoung } 151 1.1 dyoung k->wk_keytsc = 1; /* TSC starts at 1 */ 152 1.1 dyoung return 1; 153 1.1 dyoung } 154 1.1 dyoung 155 1.1 dyoung /* 156 1.1 dyoung * Add privacy headers and do any s/w encryption required. 157 1.1 dyoung */ 158 1.1 dyoung static int 159 1.1 dyoung tkip_encap(struct ieee80211_key *k, struct mbuf *m, u_int8_t keyid) 160 1.1 dyoung { 161 1.1 dyoung struct tkip_ctx *ctx = k->wk_private; 162 1.1 dyoung struct ieee80211com *ic = ctx->tc_ic; 163 1.1 dyoung u_int8_t *ivp; 164 1.1 dyoung int hdrlen; 165 1.1 dyoung 166 1.1 dyoung /* 167 1.1 dyoung * Handle TKIP counter measures requirement. 168 1.1 dyoung */ 169 1.1 dyoung if (ic->ic_flags & IEEE80211_F_COUNTERM) { 170 1.1 dyoung #ifdef IEEE80211_DEBUG 171 1.1 dyoung struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *); 172 1.1 dyoung #endif 173 1.1 dyoung 174 1.1 dyoung IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO, 175 1.1 dyoung "[%s] Discard frame due to countermeasures (%s)\n", 176 1.1 dyoung ether_sprintf(wh->i_addr2), __func__); 177 1.1 dyoung ic->ic_stats.is_crypto_tkipcm++; 178 1.1 dyoung return 0; 179 1.1 dyoung } 180 1.13 maxv 181 1.1 dyoung hdrlen = ieee80211_hdrspace(ic, mtod(m, void *)); 182 1.13 maxv ivp = mtod(m, u_int8_t *) + hdrlen; 183 1.1 dyoung 184 1.1 dyoung ivp[0] = k->wk_keytsc >> 8; /* TSC1 */ 185 1.1 dyoung ivp[1] = (ivp[0] | 0x20) & 0x7f; /* WEP seed */ 186 1.1 dyoung ivp[2] = k->wk_keytsc >> 0; /* TSC0 */ 187 1.1 dyoung ivp[3] = keyid | IEEE80211_WEP_EXTIV; /* KeyID | ExtID */ 188 1.1 dyoung ivp[4] = k->wk_keytsc >> 16; /* TSC2 */ 189 1.1 dyoung ivp[5] = k->wk_keytsc >> 24; /* TSC3 */ 190 1.1 dyoung ivp[6] = k->wk_keytsc >> 32; /* TSC4 */ 191 1.1 dyoung ivp[7] = k->wk_keytsc >> 40; /* TSC5 */ 192 1.1 dyoung 193 1.1 dyoung /* 194 1.18 msaitoh * Finally, do software encrypt if need. 195 1.1 dyoung */ 196 1.1 dyoung if (k->wk_flags & IEEE80211_KEY_SWCRYPT) { 197 1.1 dyoung if (!tkip_encrypt(ctx, k, m, hdrlen)) 198 1.1 dyoung return 0; 199 1.1 dyoung /* NB: tkip_encrypt handles wk_keytsc */ 200 1.1 dyoung } else 201 1.1 dyoung k->wk_keytsc++; 202 1.1 dyoung 203 1.1 dyoung return 1; 204 1.1 dyoung } 205 1.1 dyoung 206 1.1 dyoung /* 207 1.1 dyoung * Add MIC to the frame as needed. 208 1.1 dyoung */ 209 1.1 dyoung static int 210 1.3 dyoung tkip_enmic(struct ieee80211_key *k, struct mbuf *m, int force) 211 1.1 dyoung { 212 1.1 dyoung struct tkip_ctx *ctx = k->wk_private; 213 1.1 dyoung 214 1.3 dyoung if (force || (k->wk_flags & IEEE80211_KEY_SWMIC)) { 215 1.1 dyoung struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *); 216 1.1 dyoung struct ieee80211com *ic = ctx->tc_ic; 217 1.1 dyoung int hdrlen; 218 1.1 dyoung uint8_t mic[IEEE80211_WEP_MICLEN]; 219 1.1 dyoung 220 1.1 dyoung ic->ic_stats.is_crypto_tkipenmic++; 221 1.1 dyoung 222 1.1 dyoung hdrlen = ieee80211_hdrspace(ic, wh); 223 1.1 dyoung 224 1.1 dyoung michael_mic(ctx, k->wk_txmic, 225 1.1 dyoung m, hdrlen, m->m_pkthdr.len - hdrlen, mic); 226 1.1 dyoung return m_append(m, tkip.ic_miclen, mic); 227 1.1 dyoung } 228 1.1 dyoung return 1; 229 1.1 dyoung } 230 1.1 dyoung 231 1.1 dyoung static __inline uint64_t 232 1.1 dyoung READ_6(uint8_t b0, uint8_t b1, uint8_t b2, uint8_t b3, uint8_t b4, uint8_t b5) 233 1.1 dyoung { 234 1.16 kamil uint32_t iv32 = (b0 << 0) | (b1 << 8) | (b2 << 16) | ((u32)b3 << 24); 235 1.1 dyoung uint16_t iv16 = (b4 << 0) | (b5 << 8); 236 1.1 dyoung return (((uint64_t)iv16) << 32) | iv32; 237 1.1 dyoung } 238 1.1 dyoung 239 1.1 dyoung /* 240 1.1 dyoung * Validate and strip privacy headers (and trailer) for a 241 1.1 dyoung * received frame. If necessary, decrypt the frame using 242 1.1 dyoung * the specified key. 243 1.1 dyoung */ 244 1.1 dyoung static int 245 1.3 dyoung tkip_decap(struct ieee80211_key *k, struct mbuf *m, int hdrlen) 246 1.1 dyoung { 247 1.1 dyoung struct tkip_ctx *ctx = k->wk_private; 248 1.1 dyoung struct ieee80211com *ic = ctx->tc_ic; 249 1.1 dyoung struct ieee80211_frame *wh; 250 1.1 dyoung uint8_t *ivp; 251 1.1 dyoung 252 1.1 dyoung /* 253 1.1 dyoung * Header should have extended IV and sequence number; 254 1.1 dyoung * verify the former and validate the latter. 255 1.1 dyoung */ 256 1.1 dyoung wh = mtod(m, struct ieee80211_frame *); 257 1.1 dyoung ivp = mtod(m, uint8_t *) + hdrlen; 258 1.1 dyoung if ((ivp[IEEE80211_WEP_IVLEN] & IEEE80211_WEP_EXTIV) == 0) { 259 1.1 dyoung /* 260 1.1 dyoung * No extended IV; discard frame. 261 1.1 dyoung */ 262 1.1 dyoung IEEE80211_DPRINTF(ctx->tc_ic, IEEE80211_MSG_CRYPTO, 263 1.1 dyoung "[%s] missing ExtIV for TKIP cipher\n", 264 1.1 dyoung ether_sprintf(wh->i_addr2)); 265 1.1 dyoung ctx->tc_ic->ic_stats.is_rx_tkipformat++; 266 1.1 dyoung return 0; 267 1.1 dyoung } 268 1.1 dyoung /* 269 1.1 dyoung * Handle TKIP counter measures requirement. 270 1.1 dyoung */ 271 1.1 dyoung if (ic->ic_flags & IEEE80211_F_COUNTERM) { 272 1.1 dyoung IEEE80211_DPRINTF(ic, IEEE80211_MSG_CRYPTO, 273 1.1 dyoung "[%s] discard frame due to countermeasures (%s)\n", 274 1.1 dyoung ether_sprintf(wh->i_addr2), __func__); 275 1.1 dyoung ic->ic_stats.is_crypto_tkipcm++; 276 1.1 dyoung return 0; 277 1.1 dyoung } 278 1.1 dyoung 279 1.1 dyoung ctx->rx_rsc = READ_6(ivp[2], ivp[0], ivp[4], ivp[5], ivp[6], ivp[7]); 280 1.1 dyoung if (ctx->rx_rsc <= k->wk_keyrsc) { 281 1.1 dyoung /* 282 1.1 dyoung * Replay violation; notify upper layer. 283 1.1 dyoung */ 284 1.1 dyoung ieee80211_notify_replay_failure(ctx->tc_ic, wh, k, ctx->rx_rsc); 285 1.1 dyoung ctx->tc_ic->ic_stats.is_rx_tkipreplay++; 286 1.1 dyoung return 0; 287 1.1 dyoung } 288 1.1 dyoung /* 289 1.1 dyoung * NB: We can't update the rsc in the key until MIC is verified. 290 1.1 dyoung * 291 1.1 dyoung * We assume we are not preempted between doing the check above 292 1.1 dyoung * and updating wk_keyrsc when stripping the MIC in tkip_demic. 293 1.1 dyoung * Otherwise we might process another packet and discard it as 294 1.1 dyoung * a replay. 295 1.1 dyoung */ 296 1.1 dyoung 297 1.1 dyoung /* 298 1.1 dyoung * Check if the device handled the decrypt in hardware. 299 1.1 dyoung * If so we just strip the header; otherwise we need to 300 1.1 dyoung * handle the decrypt in software. 301 1.1 dyoung */ 302 1.1 dyoung if ((k->wk_flags & IEEE80211_KEY_SWCRYPT) && 303 1.1 dyoung !tkip_decrypt(ctx, k, m, hdrlen)) 304 1.1 dyoung return 0; 305 1.1 dyoung 306 1.1 dyoung /* 307 1.1 dyoung * Copy up 802.11 header and strip crypto bits. 308 1.1 dyoung */ 309 1.1 dyoung memmove(mtod(m, uint8_t *) + tkip.ic_header, mtod(m, void *), hdrlen); 310 1.1 dyoung m_adj(m, tkip.ic_header); 311 1.1 dyoung m_adj(m, -tkip.ic_trailer); 312 1.1 dyoung 313 1.1 dyoung return 1; 314 1.1 dyoung } 315 1.1 dyoung 316 1.1 dyoung /* 317 1.1 dyoung * Verify and strip MIC from the frame. 318 1.1 dyoung */ 319 1.1 dyoung static int 320 1.3 dyoung tkip_demic(struct ieee80211_key *k, struct mbuf *m, int force) 321 1.1 dyoung { 322 1.1 dyoung struct tkip_ctx *ctx = k->wk_private; 323 1.1 dyoung 324 1.3 dyoung if (force || (k->wk_flags & IEEE80211_KEY_SWMIC)) { 325 1.1 dyoung struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *); 326 1.3 dyoung struct ieee80211com *ic = ctx->tc_ic; 327 1.3 dyoung int hdrlen = ieee80211_hdrspace(ic, wh); 328 1.1 dyoung u8 mic[IEEE80211_WEP_MICLEN]; 329 1.1 dyoung u8 mic0[IEEE80211_WEP_MICLEN]; 330 1.1 dyoung 331 1.3 dyoung ic->ic_stats.is_crypto_tkipdemic++; 332 1.1 dyoung 333 1.14 maxv michael_mic(ctx, k->wk_rxmic, 334 1.1 dyoung m, hdrlen, m->m_pkthdr.len - (hdrlen + tkip.ic_miclen), 335 1.1 dyoung mic); 336 1.1 dyoung m_copydata(m, m->m_pkthdr.len - tkip.ic_miclen, 337 1.1 dyoung tkip.ic_miclen, mic0); 338 1.1 dyoung if (memcmp(mic, mic0, tkip.ic_miclen)) { 339 1.1 dyoung /* NB: 802.11 layer handles statistic and debug msg */ 340 1.4 skrll ieee80211_notify_michael_failure(ic, wh, 341 1.4 skrll k->wk_rxkeyix != IEEE80211_KEYIX_NONE ? 342 1.4 skrll k->wk_rxkeyix : k->wk_keyix); 343 1.1 dyoung return 0; 344 1.1 dyoung } 345 1.1 dyoung } 346 1.1 dyoung /* 347 1.1 dyoung * Strip MIC from the tail. 348 1.1 dyoung */ 349 1.1 dyoung m_adj(m, -tkip.ic_miclen); 350 1.1 dyoung 351 1.1 dyoung /* 352 1.1 dyoung * Ok to update rsc now that MIC has been verified. 353 1.1 dyoung */ 354 1.1 dyoung k->wk_keyrsc = ctx->rx_rsc; 355 1.1 dyoung 356 1.1 dyoung return 1; 357 1.1 dyoung } 358 1.1 dyoung 359 1.1 dyoung /* 360 1.1 dyoung * Host AP crypt: host-based TKIP encryption implementation for Host AP driver 361 1.1 dyoung * 362 1.1 dyoung * Copyright (c) 2003-2004, Jouni Malinen <jkmaline (at) cc.hut.fi> 363 1.1 dyoung * 364 1.1 dyoung * This program is free software; you can redistribute it and/or modify 365 1.1 dyoung * it under the terms of the GNU General Public License version 2 as 366 1.1 dyoung * published by the Free Software Foundation. See README and COPYING for 367 1.1 dyoung * more details. 368 1.1 dyoung * 369 1.1 dyoung * Alternatively, this software may be distributed under the terms of BSD 370 1.1 dyoung * license. 371 1.1 dyoung */ 372 1.1 dyoung 373 1.1 dyoung static const __u32 crc32_table[256] = { 374 1.1 dyoung 0x00000000L, 0x77073096L, 0xee0e612cL, 0x990951baL, 0x076dc419L, 375 1.1 dyoung 0x706af48fL, 0xe963a535L, 0x9e6495a3L, 0x0edb8832L, 0x79dcb8a4L, 376 1.1 dyoung 0xe0d5e91eL, 0x97d2d988L, 0x09b64c2bL, 0x7eb17cbdL, 0xe7b82d07L, 377 1.1 dyoung 0x90bf1d91L, 0x1db71064L, 0x6ab020f2L, 0xf3b97148L, 0x84be41deL, 378 1.1 dyoung 0x1adad47dL, 0x6ddde4ebL, 0xf4d4b551L, 0x83d385c7L, 0x136c9856L, 379 1.1 dyoung 0x646ba8c0L, 0xfd62f97aL, 0x8a65c9ecL, 0x14015c4fL, 0x63066cd9L, 380 1.1 dyoung 0xfa0f3d63L, 0x8d080df5L, 0x3b6e20c8L, 0x4c69105eL, 0xd56041e4L, 381 1.1 dyoung 0xa2677172L, 0x3c03e4d1L, 0x4b04d447L, 0xd20d85fdL, 0xa50ab56bL, 382 1.1 dyoung 0x35b5a8faL, 0x42b2986cL, 0xdbbbc9d6L, 0xacbcf940L, 0x32d86ce3L, 383 1.1 dyoung 0x45df5c75L, 0xdcd60dcfL, 0xabd13d59L, 0x26d930acL, 0x51de003aL, 384 1.1 dyoung 0xc8d75180L, 0xbfd06116L, 0x21b4f4b5L, 0x56b3c423L, 0xcfba9599L, 385 1.1 dyoung 0xb8bda50fL, 0x2802b89eL, 0x5f058808L, 0xc60cd9b2L, 0xb10be924L, 386 1.1 dyoung 0x2f6f7c87L, 0x58684c11L, 0xc1611dabL, 0xb6662d3dL, 0x76dc4190L, 387 1.1 dyoung 0x01db7106L, 0x98d220bcL, 0xefd5102aL, 0x71b18589L, 0x06b6b51fL, 388 1.1 dyoung 0x9fbfe4a5L, 0xe8b8d433L, 0x7807c9a2L, 0x0f00f934L, 0x9609a88eL, 389 1.1 dyoung 0xe10e9818L, 0x7f6a0dbbL, 0x086d3d2dL, 0x91646c97L, 0xe6635c01L, 390 1.1 dyoung 0x6b6b51f4L, 0x1c6c6162L, 0x856530d8L, 0xf262004eL, 0x6c0695edL, 391 1.1 dyoung 0x1b01a57bL, 0x8208f4c1L, 0xf50fc457L, 0x65b0d9c6L, 0x12b7e950L, 392 1.1 dyoung 0x8bbeb8eaL, 0xfcb9887cL, 0x62dd1ddfL, 0x15da2d49L, 0x8cd37cf3L, 393 1.1 dyoung 0xfbd44c65L, 0x4db26158L, 0x3ab551ceL, 0xa3bc0074L, 0xd4bb30e2L, 394 1.1 dyoung 0x4adfa541L, 0x3dd895d7L, 0xa4d1c46dL, 0xd3d6f4fbL, 0x4369e96aL, 395 1.1 dyoung 0x346ed9fcL, 0xad678846L, 0xda60b8d0L, 0x44042d73L, 0x33031de5L, 396 1.1 dyoung 0xaa0a4c5fL, 0xdd0d7cc9L, 0x5005713cL, 0x270241aaL, 0xbe0b1010L, 397 1.1 dyoung 0xc90c2086L, 0x5768b525L, 0x206f85b3L, 0xb966d409L, 0xce61e49fL, 398 1.1 dyoung 0x5edef90eL, 0x29d9c998L, 0xb0d09822L, 0xc7d7a8b4L, 0x59b33d17L, 399 1.1 dyoung 0x2eb40d81L, 0xb7bd5c3bL, 0xc0ba6cadL, 0xedb88320L, 0x9abfb3b6L, 400 1.1 dyoung 0x03b6e20cL, 0x74b1d29aL, 0xead54739L, 0x9dd277afL, 0x04db2615L, 401 1.1 dyoung 0x73dc1683L, 0xe3630b12L, 0x94643b84L, 0x0d6d6a3eL, 0x7a6a5aa8L, 402 1.1 dyoung 0xe40ecf0bL, 0x9309ff9dL, 0x0a00ae27L, 0x7d079eb1L, 0xf00f9344L, 403 1.1 dyoung 0x8708a3d2L, 0x1e01f268L, 0x6906c2feL, 0xf762575dL, 0x806567cbL, 404 1.1 dyoung 0x196c3671L, 0x6e6b06e7L, 0xfed41b76L, 0x89d32be0L, 0x10da7a5aL, 405 1.1 dyoung 0x67dd4accL, 0xf9b9df6fL, 0x8ebeeff9L, 0x17b7be43L, 0x60b08ed5L, 406 1.1 dyoung 0xd6d6a3e8L, 0xa1d1937eL, 0x38d8c2c4L, 0x4fdff252L, 0xd1bb67f1L, 407 1.1 dyoung 0xa6bc5767L, 0x3fb506ddL, 0x48b2364bL, 0xd80d2bdaL, 0xaf0a1b4cL, 408 1.1 dyoung 0x36034af6L, 0x41047a60L, 0xdf60efc3L, 0xa867df55L, 0x316e8eefL, 409 1.1 dyoung 0x4669be79L, 0xcb61b38cL, 0xbc66831aL, 0x256fd2a0L, 0x5268e236L, 410 1.1 dyoung 0xcc0c7795L, 0xbb0b4703L, 0x220216b9L, 0x5505262fL, 0xc5ba3bbeL, 411 1.1 dyoung 0xb2bd0b28L, 0x2bb45a92L, 0x5cb36a04L, 0xc2d7ffa7L, 0xb5d0cf31L, 412 1.1 dyoung 0x2cd99e8bL, 0x5bdeae1dL, 0x9b64c2b0L, 0xec63f226L, 0x756aa39cL, 413 1.1 dyoung 0x026d930aL, 0x9c0906a9L, 0xeb0e363fL, 0x72076785L, 0x05005713L, 414 1.1 dyoung 0x95bf4a82L, 0xe2b87a14L, 0x7bb12baeL, 0x0cb61b38L, 0x92d28e9bL, 415 1.1 dyoung 0xe5d5be0dL, 0x7cdcefb7L, 0x0bdbdf21L, 0x86d3d2d4L, 0xf1d4e242L, 416 1.1 dyoung 0x68ddb3f8L, 0x1fda836eL, 0x81be16cdL, 0xf6b9265bL, 0x6fb077e1L, 417 1.1 dyoung 0x18b74777L, 0x88085ae6L, 0xff0f6a70L, 0x66063bcaL, 0x11010b5cL, 418 1.1 dyoung 0x8f659effL, 0xf862ae69L, 0x616bffd3L, 0x166ccf45L, 0xa00ae278L, 419 1.1 dyoung 0xd70dd2eeL, 0x4e048354L, 0x3903b3c2L, 0xa7672661L, 0xd06016f7L, 420 1.1 dyoung 0x4969474dL, 0x3e6e77dbL, 0xaed16a4aL, 0xd9d65adcL, 0x40df0b66L, 421 1.1 dyoung 0x37d83bf0L, 0xa9bcae53L, 0xdebb9ec5L, 0x47b2cf7fL, 0x30b5ffe9L, 422 1.1 dyoung 0xbdbdf21cL, 0xcabac28aL, 0x53b39330L, 0x24b4a3a6L, 0xbad03605L, 423 1.1 dyoung 0xcdd70693L, 0x54de5729L, 0x23d967bfL, 0xb3667a2eL, 0xc4614ab8L, 424 1.1 dyoung 0x5d681b02L, 0x2a6f2b94L, 0xb40bbe37L, 0xc30c8ea1L, 0x5a05df1bL, 425 1.1 dyoung 0x2d02ef8dL 426 1.1 dyoung }; 427 1.1 dyoung 428 1.1 dyoung static __inline u16 RotR1(u16 val) 429 1.1 dyoung { 430 1.1 dyoung return (val >> 1) | (val << 15); 431 1.1 dyoung } 432 1.1 dyoung 433 1.1 dyoung static __inline u8 Lo8(u16 val) 434 1.1 dyoung { 435 1.1 dyoung return val & 0xff; 436 1.1 dyoung } 437 1.1 dyoung 438 1.1 dyoung static __inline u8 Hi8(u16 val) 439 1.1 dyoung { 440 1.1 dyoung return val >> 8; 441 1.1 dyoung } 442 1.1 dyoung 443 1.1 dyoung static __inline u16 Lo16(u32 val) 444 1.1 dyoung { 445 1.1 dyoung return val & 0xffff; 446 1.1 dyoung } 447 1.1 dyoung 448 1.1 dyoung static __inline u16 Hi16(u32 val) 449 1.1 dyoung { 450 1.1 dyoung return val >> 16; 451 1.1 dyoung } 452 1.1 dyoung 453 1.1 dyoung static __inline u16 Mk16(u8 hi, u8 lo) 454 1.1 dyoung { 455 1.1 dyoung return lo | (((u16) hi) << 8); 456 1.1 dyoung } 457 1.1 dyoung 458 1.1 dyoung static __inline u16 Mk16_le(const u16 *v) 459 1.1 dyoung { 460 1.1 dyoung return le16toh(*v); 461 1.1 dyoung } 462 1.1 dyoung 463 1.1 dyoung static const u16 Sbox[256] = { 464 1.1 dyoung 0xC6A5, 0xF884, 0xEE99, 0xF68D, 0xFF0D, 0xD6BD, 0xDEB1, 0x9154, 465 1.1 dyoung 0x6050, 0x0203, 0xCEA9, 0x567D, 0xE719, 0xB562, 0x4DE6, 0xEC9A, 466 1.1 dyoung 0x8F45, 0x1F9D, 0x8940, 0xFA87, 0xEF15, 0xB2EB, 0x8EC9, 0xFB0B, 467 1.1 dyoung 0x41EC, 0xB367, 0x5FFD, 0x45EA, 0x23BF, 0x53F7, 0xE496, 0x9B5B, 468 1.1 dyoung 0x75C2, 0xE11C, 0x3DAE, 0x4C6A, 0x6C5A, 0x7E41, 0xF502, 0x834F, 469 1.1 dyoung 0x685C, 0x51F4, 0xD134, 0xF908, 0xE293, 0xAB73, 0x6253, 0x2A3F, 470 1.1 dyoung 0x080C, 0x9552, 0x4665, 0x9D5E, 0x3028, 0x37A1, 0x0A0F, 0x2FB5, 471 1.1 dyoung 0x0E09, 0x2436, 0x1B9B, 0xDF3D, 0xCD26, 0x4E69, 0x7FCD, 0xEA9F, 472 1.1 dyoung 0x121B, 0x1D9E, 0x5874, 0x342E, 0x362D, 0xDCB2, 0xB4EE, 0x5BFB, 473 1.1 dyoung 0xA4F6, 0x764D, 0xB761, 0x7DCE, 0x527B, 0xDD3E, 0x5E71, 0x1397, 474 1.1 dyoung 0xA6F5, 0xB968, 0x0000, 0xC12C, 0x4060, 0xE31F, 0x79C8, 0xB6ED, 475 1.1 dyoung 0xD4BE, 0x8D46, 0x67D9, 0x724B, 0x94DE, 0x98D4, 0xB0E8, 0x854A, 476 1.1 dyoung 0xBB6B, 0xC52A, 0x4FE5, 0xED16, 0x86C5, 0x9AD7, 0x6655, 0x1194, 477 1.1 dyoung 0x8ACF, 0xE910, 0x0406, 0xFE81, 0xA0F0, 0x7844, 0x25BA, 0x4BE3, 478 1.1 dyoung 0xA2F3, 0x5DFE, 0x80C0, 0x058A, 0x3FAD, 0x21BC, 0x7048, 0xF104, 479 1.1 dyoung 0x63DF, 0x77C1, 0xAF75, 0x4263, 0x2030, 0xE51A, 0xFD0E, 0xBF6D, 480 1.1 dyoung 0x814C, 0x1814, 0x2635, 0xC32F, 0xBEE1, 0x35A2, 0x88CC, 0x2E39, 481 1.1 dyoung 0x9357, 0x55F2, 0xFC82, 0x7A47, 0xC8AC, 0xBAE7, 0x322B, 0xE695, 482 1.1 dyoung 0xC0A0, 0x1998, 0x9ED1, 0xA37F, 0x4466, 0x547E, 0x3BAB, 0x0B83, 483 1.1 dyoung 0x8CCA, 0xC729, 0x6BD3, 0x283C, 0xA779, 0xBCE2, 0x161D, 0xAD76, 484 1.1 dyoung 0xDB3B, 0x6456, 0x744E, 0x141E, 0x92DB, 0x0C0A, 0x486C, 0xB8E4, 485 1.1 dyoung 0x9F5D, 0xBD6E, 0x43EF, 0xC4A6, 0x39A8, 0x31A4, 0xD337, 0xF28B, 486 1.1 dyoung 0xD532, 0x8B43, 0x6E59, 0xDAB7, 0x018C, 0xB164, 0x9CD2, 0x49E0, 487 1.1 dyoung 0xD8B4, 0xACFA, 0xF307, 0xCF25, 0xCAAF, 0xF48E, 0x47E9, 0x1018, 488 1.1 dyoung 0x6FD5, 0xF088, 0x4A6F, 0x5C72, 0x3824, 0x57F1, 0x73C7, 0x9751, 489 1.1 dyoung 0xCB23, 0xA17C, 0xE89C, 0x3E21, 0x96DD, 0x61DC, 0x0D86, 0x0F85, 490 1.1 dyoung 0xE090, 0x7C42, 0x71C4, 0xCCAA, 0x90D8, 0x0605, 0xF701, 0x1C12, 491 1.1 dyoung 0xC2A3, 0x6A5F, 0xAEF9, 0x69D0, 0x1791, 0x9958, 0x3A27, 0x27B9, 492 1.1 dyoung 0xD938, 0xEB13, 0x2BB3, 0x2233, 0xD2BB, 0xA970, 0x0789, 0x33A7, 493 1.1 dyoung 0x2DB6, 0x3C22, 0x1592, 0xC920, 0x8749, 0xAAFF, 0x5078, 0xA57A, 494 1.1 dyoung 0x038F, 0x59F8, 0x0980, 0x1A17, 0x65DA, 0xD731, 0x84C6, 0xD0B8, 495 1.1 dyoung 0x82C3, 0x29B0, 0x5A77, 0x1E11, 0x7BCB, 0xA8FC, 0x6DD6, 0x2C3A, 496 1.1 dyoung }; 497 1.1 dyoung 498 1.1 dyoung static __inline u16 _S_(u16 v) 499 1.1 dyoung { 500 1.1 dyoung u16 t = Sbox[Hi8(v)]; 501 1.1 dyoung return Sbox[Lo8(v)] ^ ((t << 8) | (t >> 8)); 502 1.1 dyoung } 503 1.1 dyoung 504 1.1 dyoung #define PHASE1_LOOP_COUNT 8 505 1.1 dyoung 506 1.1 dyoung static void tkip_mixing_phase1(u16 *TTAK, const u8 *TK, const u8 *TA, u32 IV32) 507 1.1 dyoung { 508 1.1 dyoung int i, j; 509 1.1 dyoung 510 1.1 dyoung /* Initialize the 80-bit TTAK from TSC (IV32) and TA[0..5] */ 511 1.1 dyoung TTAK[0] = Lo16(IV32); 512 1.1 dyoung TTAK[1] = Hi16(IV32); 513 1.1 dyoung TTAK[2] = Mk16(TA[1], TA[0]); 514 1.1 dyoung TTAK[3] = Mk16(TA[3], TA[2]); 515 1.1 dyoung TTAK[4] = Mk16(TA[5], TA[4]); 516 1.1 dyoung 517 1.1 dyoung for (i = 0; i < PHASE1_LOOP_COUNT; i++) { 518 1.1 dyoung j = 2 * (i & 1); 519 1.1 dyoung TTAK[0] += _S_(TTAK[4] ^ Mk16(TK[1 + j], TK[0 + j])); 520 1.1 dyoung TTAK[1] += _S_(TTAK[0] ^ Mk16(TK[5 + j], TK[4 + j])); 521 1.1 dyoung TTAK[2] += _S_(TTAK[1] ^ Mk16(TK[9 + j], TK[8 + j])); 522 1.1 dyoung TTAK[3] += _S_(TTAK[2] ^ Mk16(TK[13 + j], TK[12 + j])); 523 1.1 dyoung TTAK[4] += _S_(TTAK[3] ^ Mk16(TK[1 + j], TK[0 + j])) + i; 524 1.1 dyoung } 525 1.1 dyoung } 526 1.1 dyoung 527 1.1 dyoung #ifndef _BYTE_ORDER 528 1.1 dyoung #error "Don't know native byte order" 529 1.1 dyoung #endif 530 1.1 dyoung 531 1.1 dyoung static void tkip_mixing_phase2(u8 *WEPSeed, const u8 *TK, const u16 *TTAK, 532 1.1 dyoung u16 IV16) 533 1.1 dyoung { 534 1.1 dyoung /* Make temporary area overlap WEP seed so that the final copy can be 535 1.1 dyoung * avoided on little endian hosts. */ 536 1.1 dyoung u16 *PPK = (u16 *) &WEPSeed[4]; 537 1.1 dyoung 538 1.1 dyoung /* Step 1 - make copy of TTAK and bring in TSC */ 539 1.1 dyoung PPK[0] = TTAK[0]; 540 1.1 dyoung PPK[1] = TTAK[1]; 541 1.1 dyoung PPK[2] = TTAK[2]; 542 1.1 dyoung PPK[3] = TTAK[3]; 543 1.1 dyoung PPK[4] = TTAK[4]; 544 1.1 dyoung PPK[5] = TTAK[4] + IV16; 545 1.1 dyoung 546 1.1 dyoung /* Step 2 - 96-bit bijective mixing using S-box */ 547 1.1 dyoung PPK[0] += _S_(PPK[5] ^ Mk16_le((const u16 *) &TK[0])); 548 1.1 dyoung PPK[1] += _S_(PPK[0] ^ Mk16_le((const u16 *) &TK[2])); 549 1.1 dyoung PPK[2] += _S_(PPK[1] ^ Mk16_le((const u16 *) &TK[4])); 550 1.1 dyoung PPK[3] += _S_(PPK[2] ^ Mk16_le((const u16 *) &TK[6])); 551 1.1 dyoung PPK[4] += _S_(PPK[3] ^ Mk16_le((const u16 *) &TK[8])); 552 1.1 dyoung PPK[5] += _S_(PPK[4] ^ Mk16_le((const u16 *) &TK[10])); 553 1.1 dyoung 554 1.1 dyoung PPK[0] += RotR1(PPK[5] ^ Mk16_le((const u16 *) &TK[12])); 555 1.1 dyoung PPK[1] += RotR1(PPK[0] ^ Mk16_le((const u16 *) &TK[14])); 556 1.1 dyoung PPK[2] += RotR1(PPK[1]); 557 1.1 dyoung PPK[3] += RotR1(PPK[2]); 558 1.1 dyoung PPK[4] += RotR1(PPK[3]); 559 1.1 dyoung PPK[5] += RotR1(PPK[4]); 560 1.1 dyoung 561 1.1 dyoung /* Step 3 - bring in last of TK bits, assign 24-bit WEP IV value 562 1.1 dyoung * WEPSeed[0..2] is transmitted as WEP IV */ 563 1.1 dyoung WEPSeed[0] = Hi8(IV16); 564 1.1 dyoung WEPSeed[1] = (Hi8(IV16) | 0x20) & 0x7F; 565 1.1 dyoung WEPSeed[2] = Lo8(IV16); 566 1.1 dyoung WEPSeed[3] = Lo8((PPK[5] ^ Mk16_le((const u16 *) &TK[0])) >> 1); 567 1.1 dyoung 568 1.1 dyoung #if _BYTE_ORDER == _BIG_ENDIAN 569 1.1 dyoung { 570 1.1 dyoung int i; 571 1.1 dyoung for (i = 0; i < 6; i++) 572 1.1 dyoung PPK[i] = (PPK[i] << 8) | (PPK[i] >> 8); 573 1.1 dyoung } 574 1.1 dyoung #endif 575 1.1 dyoung } 576 1.1 dyoung 577 1.1 dyoung static void 578 1.1 dyoung wep_encrypt(u8 *key, struct mbuf *m0, u_int off, size_t data_len, 579 1.1 dyoung uint8_t icv[IEEE80211_WEP_CRCLEN]) 580 1.1 dyoung { 581 1.1 dyoung u32 i, j, k, crc; 582 1.1 dyoung size_t buflen; 583 1.1 dyoung u8 S[256]; 584 1.1 dyoung u8 *pos; 585 1.1 dyoung struct mbuf *m; 586 1.1 dyoung #define S_SWAP(a,b) do { u8 t = S[a]; S[a] = S[b]; S[b] = t; } while(0) 587 1.1 dyoung 588 1.1 dyoung /* Setup RC4 state */ 589 1.1 dyoung for (i = 0; i < 256; i++) 590 1.1 dyoung S[i] = i; 591 1.1 dyoung j = 0; 592 1.1 dyoung for (i = 0; i < 256; i++) { 593 1.1 dyoung j = (j + S[i] + key[i & 0x0f]) & 0xff; 594 1.1 dyoung S_SWAP(i, j); 595 1.1 dyoung } 596 1.1 dyoung 597 1.1 dyoung /* Compute CRC32 over unencrypted data and apply RC4 to data */ 598 1.1 dyoung crc = ~0; 599 1.1 dyoung i = j = 0; 600 1.1 dyoung m = m0; 601 1.1 dyoung pos = mtod(m, uint8_t *) + off; 602 1.1 dyoung buflen = m->m_len - off; 603 1.1 dyoung for (;;) { 604 1.1 dyoung if (buflen > data_len) 605 1.1 dyoung buflen = data_len; 606 1.1 dyoung data_len -= buflen; 607 1.1 dyoung for (k = 0; k < buflen; k++) { 608 1.1 dyoung crc = crc32_table[(crc ^ *pos) & 0xff] ^ (crc >> 8); 609 1.1 dyoung i = (i + 1) & 0xff; 610 1.1 dyoung j = (j + S[i]) & 0xff; 611 1.1 dyoung S_SWAP(i, j); 612 1.1 dyoung *pos++ ^= S[(S[i] + S[j]) & 0xff]; 613 1.1 dyoung } 614 1.1 dyoung m = m->m_next; 615 1.1 dyoung if (m == NULL) { 616 1.2 dyoung IASSERT(data_len == 0, 617 1.1 dyoung ("out of buffers with data_len %zu\n", data_len)); 618 1.1 dyoung break; 619 1.1 dyoung } 620 1.1 dyoung pos = mtod(m, uint8_t *); 621 1.1 dyoung buflen = m->m_len; 622 1.1 dyoung } 623 1.1 dyoung crc = ~crc; 624 1.1 dyoung 625 1.1 dyoung /* Append little-endian CRC32 and encrypt it to produce ICV */ 626 1.1 dyoung icv[0] = crc; 627 1.1 dyoung icv[1] = crc >> 8; 628 1.1 dyoung icv[2] = crc >> 16; 629 1.1 dyoung icv[3] = crc >> 24; 630 1.1 dyoung for (k = 0; k < IEEE80211_WEP_CRCLEN; k++) { 631 1.1 dyoung i = (i + 1) & 0xff; 632 1.1 dyoung j = (j + S[i]) & 0xff; 633 1.1 dyoung S_SWAP(i, j); 634 1.1 dyoung icv[k] ^= S[(S[i] + S[j]) & 0xff]; 635 1.1 dyoung } 636 1.1 dyoung } 637 1.1 dyoung 638 1.1 dyoung static int 639 1.1 dyoung wep_decrypt(u8 *key, struct mbuf *m, u_int off, size_t data_len) 640 1.1 dyoung { 641 1.1 dyoung u32 i, j, k, crc; 642 1.1 dyoung u8 S[256]; 643 1.1 dyoung u8 *pos, icv[4]; 644 1.1 dyoung size_t buflen; 645 1.1 dyoung 646 1.1 dyoung /* Setup RC4 state */ 647 1.1 dyoung for (i = 0; i < 256; i++) 648 1.1 dyoung S[i] = i; 649 1.1 dyoung j = 0; 650 1.1 dyoung for (i = 0; i < 256; i++) { 651 1.1 dyoung j = (j + S[i] + key[i & 0x0f]) & 0xff; 652 1.1 dyoung S_SWAP(i, j); 653 1.1 dyoung } 654 1.1 dyoung 655 1.1 dyoung /* Apply RC4 to data and compute CRC32 over decrypted data */ 656 1.1 dyoung crc = ~0; 657 1.1 dyoung i = j = 0; 658 1.1 dyoung pos = mtod(m, uint8_t *) + off; 659 1.1 dyoung buflen = m->m_len - off; 660 1.1 dyoung for (;;) { 661 1.1 dyoung if (buflen > data_len) 662 1.1 dyoung buflen = data_len; 663 1.1 dyoung data_len -= buflen; 664 1.1 dyoung for (k = 0; k < buflen; k++) { 665 1.1 dyoung i = (i + 1) & 0xff; 666 1.1 dyoung j = (j + S[i]) & 0xff; 667 1.1 dyoung S_SWAP(i, j); 668 1.1 dyoung *pos ^= S[(S[i] + S[j]) & 0xff]; 669 1.1 dyoung crc = crc32_table[(crc ^ *pos) & 0xff] ^ (crc >> 8); 670 1.1 dyoung pos++; 671 1.1 dyoung } 672 1.1 dyoung m = m->m_next; 673 1.1 dyoung if (m == NULL) { 674 1.2 dyoung IASSERT(data_len == 0, 675 1.1 dyoung ("out of buffers with data_len %zu\n", data_len)); 676 1.1 dyoung break; 677 1.1 dyoung } 678 1.1 dyoung pos = mtod(m, uint8_t *); 679 1.1 dyoung buflen = m->m_len; 680 1.1 dyoung } 681 1.1 dyoung crc = ~crc; 682 1.1 dyoung 683 1.1 dyoung /* Encrypt little-endian CRC32 and verify that it matches with the 684 1.1 dyoung * received ICV */ 685 1.1 dyoung icv[0] = crc; 686 1.1 dyoung icv[1] = crc >> 8; 687 1.1 dyoung icv[2] = crc >> 16; 688 1.1 dyoung icv[3] = crc >> 24; 689 1.1 dyoung for (k = 0; k < 4; k++) { 690 1.1 dyoung i = (i + 1) & 0xff; 691 1.1 dyoung j = (j + S[i]) & 0xff; 692 1.1 dyoung S_SWAP(i, j); 693 1.1 dyoung if ((icv[k] ^ S[(S[i] + S[j]) & 0xff]) != *pos++) { 694 1.1 dyoung /* ICV mismatch - drop frame */ 695 1.1 dyoung return -1; 696 1.1 dyoung } 697 1.1 dyoung } 698 1.1 dyoung 699 1.1 dyoung return 0; 700 1.1 dyoung } 701 1.1 dyoung 702 1.1 dyoung 703 1.1 dyoung static __inline u32 rotl(u32 val, int bits) 704 1.1 dyoung { 705 1.1 dyoung return (val << bits) | (val >> (32 - bits)); 706 1.1 dyoung } 707 1.1 dyoung 708 1.1 dyoung 709 1.1 dyoung static __inline u32 rotr(u32 val, int bits) 710 1.1 dyoung { 711 1.1 dyoung return (val >> bits) | (val << (32 - bits)); 712 1.1 dyoung } 713 1.1 dyoung 714 1.1 dyoung 715 1.1 dyoung static __inline u32 xswap(u32 val) 716 1.1 dyoung { 717 1.1 dyoung return ((val & 0x00ff00ff) << 8) | ((val & 0xff00ff00) >> 8); 718 1.1 dyoung } 719 1.1 dyoung 720 1.1 dyoung 721 1.1 dyoung #define michael_block(l, r) \ 722 1.1 dyoung do { \ 723 1.1 dyoung r ^= rotl(l, 17); \ 724 1.1 dyoung l += r; \ 725 1.1 dyoung r ^= xswap(l); \ 726 1.1 dyoung l += r; \ 727 1.1 dyoung r ^= rotl(l, 3); \ 728 1.1 dyoung l += r; \ 729 1.1 dyoung r ^= rotr(l, 2); \ 730 1.1 dyoung l += r; \ 731 1.1 dyoung } while (0) 732 1.1 dyoung 733 1.1 dyoung 734 1.1 dyoung static __inline u32 get_le32_split(u8 b0, u8 b1, u8 b2, u8 b3) 735 1.1 dyoung { 736 1.16 kamil return b0 | (b1 << 8) | (b2 << 16) | ((u32)b3 << 24); 737 1.1 dyoung } 738 1.1 dyoung 739 1.1 dyoung static __inline u32 get_le32(const u8 *p) 740 1.1 dyoung { 741 1.1 dyoung return get_le32_split(p[0], p[1], p[2], p[3]); 742 1.1 dyoung } 743 1.1 dyoung 744 1.1 dyoung 745 1.1 dyoung static __inline void put_le32(u8 *p, u32 v) 746 1.1 dyoung { 747 1.1 dyoung p[0] = v; 748 1.1 dyoung p[1] = v >> 8; 749 1.1 dyoung p[2] = v >> 16; 750 1.1 dyoung p[3] = v >> 24; 751 1.1 dyoung } 752 1.1 dyoung 753 1.1 dyoung /* 754 1.1 dyoung * Craft pseudo header used to calculate the MIC. 755 1.1 dyoung */ 756 1.1 dyoung static void 757 1.1 dyoung michael_mic_hdr(const struct ieee80211_frame *wh0, uint8_t hdr[16]) 758 1.1 dyoung { 759 1.1 dyoung const struct ieee80211_frame_addr4 *wh = 760 1.1 dyoung (const struct ieee80211_frame_addr4 *) wh0; 761 1.1 dyoung 762 1.1 dyoung switch (wh->i_fc[1] & IEEE80211_FC1_DIR_MASK) { 763 1.1 dyoung case IEEE80211_FC1_DIR_NODS: 764 1.1 dyoung IEEE80211_ADDR_COPY(hdr, wh->i_addr1); /* DA */ 765 1.1 dyoung IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr2); 766 1.1 dyoung break; 767 1.1 dyoung case IEEE80211_FC1_DIR_TODS: 768 1.1 dyoung IEEE80211_ADDR_COPY(hdr, wh->i_addr3); /* DA */ 769 1.1 dyoung IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr2); 770 1.1 dyoung break; 771 1.1 dyoung case IEEE80211_FC1_DIR_FROMDS: 772 1.1 dyoung IEEE80211_ADDR_COPY(hdr, wh->i_addr1); /* DA */ 773 1.1 dyoung IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr3); 774 1.1 dyoung break; 775 1.1 dyoung case IEEE80211_FC1_DIR_DSTODS: 776 1.1 dyoung IEEE80211_ADDR_COPY(hdr, wh->i_addr3); /* DA */ 777 1.1 dyoung IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr4); 778 1.1 dyoung break; 779 1.1 dyoung } 780 1.1 dyoung 781 1.1 dyoung if (wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_QOS) { 782 1.1 dyoung const struct ieee80211_qosframe *qwh = 783 1.1 dyoung (const struct ieee80211_qosframe *) wh; 784 1.1 dyoung hdr[12] = qwh->i_qos[0] & IEEE80211_QOS_TID; 785 1.1 dyoung } else 786 1.1 dyoung hdr[12] = 0; 787 1.1 dyoung hdr[13] = hdr[14] = hdr[15] = 0; /* reserved */ 788 1.1 dyoung } 789 1.1 dyoung 790 1.1 dyoung static void 791 1.7 christos michael_mic(struct tkip_ctx *ctx, const u8 *key, 792 1.1 dyoung struct mbuf *m, u_int off, size_t data_len, 793 1.1 dyoung u8 mic[IEEE80211_WEP_MICLEN]) 794 1.1 dyoung { 795 1.1 dyoung uint8_t hdr[16]; 796 1.1 dyoung u32 l, r; 797 1.1 dyoung const uint8_t *data; 798 1.1 dyoung u_int space; 799 1.11 drochner uint8_t spill[4]; 800 1.11 drochner int nspill = 0; 801 1.1 dyoung 802 1.1 dyoung michael_mic_hdr(mtod(m, struct ieee80211_frame *), hdr); 803 1.1 dyoung 804 1.1 dyoung l = get_le32(key); 805 1.1 dyoung r = get_le32(key + 4); 806 1.1 dyoung 807 1.1 dyoung /* Michael MIC pseudo header: DA, SA, 3 x 0, Priority */ 808 1.1 dyoung l ^= get_le32(hdr); 809 1.1 dyoung michael_block(l, r); 810 1.1 dyoung l ^= get_le32(&hdr[4]); 811 1.1 dyoung michael_block(l, r); 812 1.1 dyoung l ^= get_le32(&hdr[8]); 813 1.1 dyoung michael_block(l, r); 814 1.1 dyoung l ^= get_le32(&hdr[12]); 815 1.1 dyoung michael_block(l, r); 816 1.1 dyoung 817 1.1 dyoung /* first buffer has special handling */ 818 1.1 dyoung data = mtod(m, const uint8_t *) + off; 819 1.1 dyoung space = m->m_len - off; 820 1.1 dyoung for (;;) { 821 1.1 dyoung if (space > data_len) 822 1.1 dyoung space = data_len; 823 1.11 drochner if (nspill) { 824 1.15 riastrad int n = uimin(4 - nspill, space); 825 1.11 drochner memcpy(spill + nspill, data, n); 826 1.11 drochner nspill += n; 827 1.11 drochner data += n; 828 1.11 drochner space -= n; 829 1.11 drochner data_len -= n; 830 1.11 drochner if (nspill == 4) { 831 1.11 drochner l ^= get_le32(spill); 832 1.11 drochner michael_block(l, r); 833 1.11 drochner nspill = 0; 834 1.11 drochner } else 835 1.11 drochner goto next; 836 1.11 drochner } 837 1.1 dyoung /* collect 32-bit blocks from current buffer */ 838 1.1 dyoung while (space >= sizeof(uint32_t)) { 839 1.1 dyoung l ^= get_le32(data); 840 1.1 dyoung michael_block(l, r); 841 1.8 drochner data += sizeof(uint32_t); 842 1.8 drochner space -= sizeof(uint32_t); 843 1.1 dyoung data_len -= sizeof(uint32_t); 844 1.1 dyoung } 845 1.11 drochner if (space) { 846 1.11 drochner memcpy(spill, data, space); 847 1.11 drochner nspill = space; 848 1.11 drochner data_len -= space; 849 1.11 drochner } 850 1.11 drochner next: 851 1.11 drochner if (!data_len) 852 1.11 drochner break; 853 1.11 drochner m = m->m_next; 854 1.11 drochner KASSERT(m); 855 1.9 drochner /* 856 1.11 drochner * Setup for next buffer. 857 1.9 drochner */ 858 1.11 drochner data = mtod(m, const uint8_t *); 859 1.11 drochner space = m->m_len; 860 1.1 dyoung } 861 1.1 dyoung /* Last block and padding (0x5a, 4..7 x 0) */ 862 1.11 drochner spill[nspill++] = 0x5a; 863 1.11 drochner for (; nspill < 4; nspill++) 864 1.11 drochner spill[nspill] = 0; 865 1.11 drochner l ^= get_le32(spill); 866 1.1 dyoung michael_block(l, r); 867 1.1 dyoung /* l ^= 0; */ 868 1.1 dyoung michael_block(l, r); 869 1.1 dyoung 870 1.1 dyoung put_le32(mic, l); 871 1.1 dyoung put_le32(mic + 4, r); 872 1.1 dyoung } 873 1.1 dyoung 874 1.1 dyoung static int 875 1.1 dyoung tkip_encrypt(struct tkip_ctx *ctx, struct ieee80211_key *key, 876 1.1 dyoung struct mbuf *m, int hdrlen) 877 1.1 dyoung { 878 1.1 dyoung struct ieee80211_frame *wh; 879 1.1 dyoung uint8_t icv[IEEE80211_WEP_CRCLEN]; 880 1.1 dyoung 881 1.1 dyoung ctx->tc_ic->ic_stats.is_crypto_tkip++; 882 1.1 dyoung 883 1.1 dyoung wh = mtod(m, struct ieee80211_frame *); 884 1.1 dyoung if (!ctx->tx_phase1_done) { 885 1.1 dyoung tkip_mixing_phase1(ctx->tx_ttak, key->wk_key, wh->i_addr2, 886 1.1 dyoung (u32)(key->wk_keytsc >> 16)); 887 1.1 dyoung ctx->tx_phase1_done = 1; 888 1.1 dyoung } 889 1.1 dyoung tkip_mixing_phase2(ctx->tx_rc4key, key->wk_key, ctx->tx_ttak, 890 1.14 maxv (u16)key->wk_keytsc); 891 1.1 dyoung 892 1.1 dyoung wep_encrypt(ctx->tx_rc4key, 893 1.1 dyoung m, hdrlen + tkip.ic_header, 894 1.1 dyoung m->m_pkthdr.len - (hdrlen + tkip.ic_header), 895 1.1 dyoung icv); 896 1.14 maxv 897 1.14 maxv if (!m_append(m, IEEE80211_WEP_CRCLEN, icv)) { 898 1.14 maxv return 0; 899 1.14 maxv } 900 1.1 dyoung 901 1.1 dyoung key->wk_keytsc++; 902 1.1 dyoung if ((u16)(key->wk_keytsc) == 0) 903 1.1 dyoung ctx->tx_phase1_done = 0; 904 1.14 maxv 905 1.1 dyoung return 1; 906 1.1 dyoung } 907 1.1 dyoung 908 1.1 dyoung static int 909 1.1 dyoung tkip_decrypt(struct tkip_ctx *ctx, struct ieee80211_key *key, 910 1.1 dyoung struct mbuf *m, int hdrlen) 911 1.1 dyoung { 912 1.1 dyoung struct ieee80211_frame *wh; 913 1.1 dyoung u32 iv32; 914 1.1 dyoung u16 iv16; 915 1.1 dyoung 916 1.1 dyoung ctx->tc_ic->ic_stats.is_crypto_tkip++; 917 1.1 dyoung 918 1.1 dyoung wh = mtod(m, struct ieee80211_frame *); 919 1.1 dyoung /* NB: tkip_decap already verified header and left seq in rx_rsc */ 920 1.1 dyoung iv16 = (u16) ctx->rx_rsc; 921 1.1 dyoung iv32 = (u32) (ctx->rx_rsc >> 16); 922 1.1 dyoung 923 1.1 dyoung if (iv32 != (u32)(key->wk_keyrsc >> 16) || !ctx->rx_phase1_done) { 924 1.1 dyoung tkip_mixing_phase1(ctx->rx_ttak, key->wk_key, 925 1.1 dyoung wh->i_addr2, iv32); 926 1.1 dyoung ctx->rx_phase1_done = 1; 927 1.1 dyoung } 928 1.1 dyoung tkip_mixing_phase2(ctx->rx_rc4key, key->wk_key, ctx->rx_ttak, iv16); 929 1.1 dyoung 930 1.1 dyoung /* NB: m is unstripped; deduct headers + ICV to get payload */ 931 1.14 maxv if (wep_decrypt(ctx->rx_rc4key, m, hdrlen + tkip.ic_header, 932 1.14 maxv m->m_pkthdr.len - (hdrlen + tkip.ic_header + tkip.ic_trailer))) { 933 1.1 dyoung if (iv32 != (u32)(key->wk_keyrsc >> 16)) { 934 1.1 dyoung /* Previously cached Phase1 result was already lost, so 935 1.1 dyoung * it needs to be recalculated for the next packet. */ 936 1.1 dyoung ctx->rx_phase1_done = 0; 937 1.1 dyoung } 938 1.1 dyoung IEEE80211_DPRINTF(ctx->tc_ic, IEEE80211_MSG_CRYPTO, 939 1.1 dyoung "[%s] TKIP ICV mismatch on decrypt\n", 940 1.1 dyoung ether_sprintf(wh->i_addr2)); 941 1.1 dyoung ctx->tc_ic->ic_stats.is_rx_tkipicv++; 942 1.1 dyoung return 0; 943 1.1 dyoung } 944 1.14 maxv 945 1.1 dyoung return 1; 946 1.1 dyoung } 947 1.4 skrll 948 1.4 skrll IEEE80211_CRYPTO_SETUP(tkip_register) 949 1.4 skrll { 950 1.4 skrll ieee80211_crypto_register(&tkip); 951 1.4 skrll } 952