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ieee80211_crypto_tkip.c revision 1.14.4.2
      1  1.14.4.2      phil /*	$NetBSD: ieee80211_crypto_tkip.c,v 1.14.4.2 2018/07/12 16:35:34 phil Exp $ */
      2  1.14.4.2      phil 
      3  1.14.4.1      phil /*-
      4  1.14.4.1      phil  * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
      5  1.14.4.1      phil  *
      6  1.14.4.1      phil  * Copyright (c) 2002-2008 Sam Leffler, Errno Consulting
      7       1.1    dyoung  * All rights reserved.
      8       1.1    dyoung  *
      9       1.1    dyoung  * Redistribution and use in source and binary forms, with or without
     10       1.1    dyoung  * modification, are permitted provided that the following conditions
     11       1.1    dyoung  * are met:
     12       1.1    dyoung  * 1. Redistributions of source code must retain the above copyright
     13       1.1    dyoung  *    notice, this list of conditions and the following disclaimer.
     14       1.1    dyoung  * 2. Redistributions in binary form must reproduce the above copyright
     15       1.1    dyoung  *    notice, this list of conditions and the following disclaimer in the
     16       1.1    dyoung  *    documentation and/or other materials provided with the distribution.
     17       1.1    dyoung  *
     18       1.1    dyoung  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     19       1.1    dyoung  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     20       1.1    dyoung  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     21       1.1    dyoung  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     22       1.1    dyoung  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     23       1.1    dyoung  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     24       1.1    dyoung  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     25       1.1    dyoung  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     26       1.1    dyoung  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     27       1.1    dyoung  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     28       1.1    dyoung  */
     29       1.1    dyoung 
     30       1.1    dyoung #include <sys/cdefs.h>
     31  1.14.4.2      phil #if __FreeBSD__
     32  1.14.4.1      phil __FBSDID("$FreeBSD$");
     33  1.14.4.2      phil #endif
     34       1.1    dyoung 
     35       1.1    dyoung /*
     36       1.1    dyoung  * IEEE 802.11i TKIP crypto support.
     37       1.1    dyoung  *
     38       1.1    dyoung  * Part of this module is derived from similar code in the Host
     39       1.1    dyoung  * AP driver. The code is used with the consent of the author and
     40  1.14.4.1      phil  * it's license is included below.
     41       1.1    dyoung  */
     42  1.14.4.1      phil #include "opt_wlan.h"
     43  1.14.4.1      phil 
     44       1.1    dyoung #include <sys/param.h>
     45  1.14.4.1      phil #include <sys/systm.h>
     46  1.14.4.1      phil #include <sys/mbuf.h>
     47       1.1    dyoung #include <sys/malloc.h>
     48       1.1    dyoung #include <sys/kernel.h>
     49  1.14.4.1      phil #include <sys/module.h>
     50       1.1    dyoung #include <sys/endian.h>
     51       1.1    dyoung 
     52       1.1    dyoung #include <sys/socket.h>
     53       1.1    dyoung 
     54       1.1    dyoung #include <net/if.h>
     55       1.1    dyoung #include <net/if_media.h>
     56  1.14.4.2      phil #if __FreeBSD__
     57  1.14.4.1      phil #include <net/ethernet.h>
     58  1.14.4.2      phil #endif
     59  1.14.4.2      phil #ifdef __NetBSD__
     60  1.14.4.2      phil #include <net/route.h>
     61  1.14.4.2      phil #endif
     62       1.1    dyoung 
     63       1.1    dyoung #include <net80211/ieee80211_var.h>
     64       1.1    dyoung 
     65  1.14.4.2      phil #ifdef __NetBSD__
     66  1.14.4.2      phil #undef  KASSERT
     67  1.14.4.2      phil #define KASSERT(__cond, __complaint) FBSDKASSERT(__cond, __complaint)
     68  1.14.4.2      phil #endif
     69  1.14.4.2      phil 
     70  1.14.4.1      phil static	void *tkip_attach(struct ieee80211vap *, struct ieee80211_key *);
     71       1.1    dyoung static	void tkip_detach(struct ieee80211_key *);
     72       1.1    dyoung static	int tkip_setkey(struct ieee80211_key *);
     73  1.14.4.1      phil static	void tkip_setiv(struct ieee80211_key *, uint8_t *);
     74  1.14.4.1      phil static	int tkip_encap(struct ieee80211_key *, struct mbuf *);
     75       1.3    dyoung static	int tkip_enmic(struct ieee80211_key *, struct mbuf *, int);
     76       1.3    dyoung static	int tkip_decap(struct ieee80211_key *, struct mbuf *, int);
     77       1.3    dyoung static	int tkip_demic(struct ieee80211_key *, struct mbuf *, int);
     78       1.1    dyoung 
     79  1.14.4.1      phil static const struct ieee80211_cipher tkip  = {
     80       1.1    dyoung 	.ic_name	= "TKIP",
     81       1.1    dyoung 	.ic_cipher	= IEEE80211_CIPHER_TKIP,
     82       1.1    dyoung 	.ic_header	= IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN +
     83       1.1    dyoung 			  IEEE80211_WEP_EXTIVLEN,
     84       1.1    dyoung 	.ic_trailer	= IEEE80211_WEP_CRCLEN,
     85       1.1    dyoung 	.ic_miclen	= IEEE80211_WEP_MICLEN,
     86       1.1    dyoung 	.ic_attach	= tkip_attach,
     87       1.1    dyoung 	.ic_detach	= tkip_detach,
     88       1.1    dyoung 	.ic_setkey	= tkip_setkey,
     89  1.14.4.1      phil 	.ic_setiv	= tkip_setiv,
     90       1.1    dyoung 	.ic_encap	= tkip_encap,
     91       1.1    dyoung 	.ic_decap	= tkip_decap,
     92       1.1    dyoung 	.ic_enmic	= tkip_enmic,
     93       1.1    dyoung 	.ic_demic	= tkip_demic,
     94       1.1    dyoung };
     95       1.1    dyoung 
     96       1.1    dyoung typedef	uint8_t u8;
     97       1.1    dyoung typedef	uint16_t u16;
     98       1.1    dyoung typedef	uint32_t __u32;
     99       1.1    dyoung typedef	uint32_t u32;
    100       1.1    dyoung 
    101       1.1    dyoung struct tkip_ctx {
    102  1.14.4.1      phil 	struct ieee80211vap *tc_vap;	/* for diagnostics+statistics */
    103       1.1    dyoung 
    104       1.1    dyoung 	u16	tx_ttak[5];
    105       1.1    dyoung 	u8	tx_rc4key[16];		/* XXX for test module; make locals? */
    106       1.1    dyoung 
    107       1.1    dyoung 	u16	rx_ttak[5];
    108       1.1    dyoung 	int	rx_phase1_done;
    109       1.1    dyoung 	u8	rx_rc4key[16];		/* XXX for test module; make locals? */
    110       1.1    dyoung 	uint64_t rx_rsc;		/* held until MIC verified */
    111       1.1    dyoung };
    112       1.1    dyoung 
    113       1.1    dyoung static	void michael_mic(struct tkip_ctx *, const u8 *key,
    114       1.1    dyoung 		struct mbuf *m, u_int off, size_t data_len,
    115       1.1    dyoung 		u8 mic[IEEE80211_WEP_MICLEN]);
    116       1.1    dyoung static	int tkip_encrypt(struct tkip_ctx *, struct ieee80211_key *,
    117       1.1    dyoung 		struct mbuf *, int hdr_len);
    118       1.1    dyoung static	int tkip_decrypt(struct tkip_ctx *, struct ieee80211_key *,
    119       1.1    dyoung 		struct mbuf *, int hdr_len);
    120       1.1    dyoung 
    121  1.14.4.1      phil /* number of references from net80211 layer */
    122  1.14.4.1      phil static	int nrefs = 0;
    123  1.14.4.1      phil 
    124       1.1    dyoung static void *
    125  1.14.4.1      phil tkip_attach(struct ieee80211vap *vap, struct ieee80211_key *k)
    126       1.1    dyoung {
    127       1.1    dyoung 	struct tkip_ctx *ctx;
    128       1.1    dyoung 
    129  1.14.4.1      phil 	ctx = (struct tkip_ctx *) IEEE80211_MALLOC(sizeof(struct tkip_ctx),
    130  1.14.4.1      phil 		M_80211_CRYPTO, IEEE80211_M_NOWAIT | IEEE80211_M_ZERO);
    131       1.1    dyoung 	if (ctx == NULL) {
    132  1.14.4.1      phil 		vap->iv_stats.is_crypto_nomem++;
    133       1.1    dyoung 		return NULL;
    134       1.1    dyoung 	}
    135       1.1    dyoung 
    136  1.14.4.1      phil 	ctx->tc_vap = vap;
    137  1.14.4.1      phil 	nrefs++;			/* NB: we assume caller locking */
    138       1.1    dyoung 	return ctx;
    139       1.1    dyoung }
    140       1.1    dyoung 
    141       1.1    dyoung static void
    142       1.1    dyoung tkip_detach(struct ieee80211_key *k)
    143       1.1    dyoung {
    144       1.1    dyoung 	struct tkip_ctx *ctx = k->wk_private;
    145       1.1    dyoung 
    146  1.14.4.1      phil 	IEEE80211_FREE(ctx, M_80211_CRYPTO);
    147  1.14.4.1      phil 	KASSERT(nrefs > 0, ("imbalanced attach/detach"));
    148  1.14.4.1      phil 	nrefs--;			/* NB: we assume caller locking */
    149       1.1    dyoung }
    150       1.1    dyoung 
    151       1.1    dyoung static int
    152       1.1    dyoung tkip_setkey(struct ieee80211_key *k)
    153       1.1    dyoung {
    154       1.1    dyoung 	struct tkip_ctx *ctx = k->wk_private;
    155       1.1    dyoung 
    156       1.1    dyoung 	if (k->wk_keylen != (128/NBBY)) {
    157       1.1    dyoung 		(void) ctx;		/* XXX */
    158  1.14.4.1      phil 		IEEE80211_DPRINTF(ctx->tc_vap, IEEE80211_MSG_CRYPTO,
    159       1.1    dyoung 			"%s: Invalid key length %u, expecting %u\n",
    160       1.1    dyoung 			__func__, k->wk_keylen, 128/NBBY);
    161       1.1    dyoung 		return 0;
    162       1.1    dyoung 	}
    163  1.14.4.1      phil 	ctx->rx_phase1_done = 0;
    164       1.1    dyoung 	return 1;
    165       1.1    dyoung }
    166       1.1    dyoung 
    167  1.14.4.1      phil static void
    168  1.14.4.1      phil tkip_setiv(struct ieee80211_key *k, uint8_t *ivp)
    169  1.14.4.1      phil {
    170  1.14.4.1      phil 	struct tkip_ctx *ctx = k->wk_private;
    171  1.14.4.1      phil 	struct ieee80211vap *vap = ctx->tc_vap;
    172  1.14.4.1      phil 	uint8_t keyid;
    173  1.14.4.1      phil 
    174  1.14.4.1      phil 	keyid = ieee80211_crypto_get_keyid(vap, k) << 6;
    175  1.14.4.1      phil 
    176  1.14.4.1      phil 	k->wk_keytsc++;
    177  1.14.4.1      phil 	ivp[0] = k->wk_keytsc >> 8;		/* TSC1 */
    178  1.14.4.1      phil 	ivp[1] = (ivp[0] | 0x20) & 0x7f;	/* WEP seed */
    179  1.14.4.1      phil 	ivp[2] = k->wk_keytsc >> 0;		/* TSC0 */
    180  1.14.4.1      phil 	ivp[3] = keyid | IEEE80211_WEP_EXTIV;	/* KeyID | ExtID */
    181  1.14.4.1      phil 	ivp[4] = k->wk_keytsc >> 16;		/* TSC2 */
    182  1.14.4.1      phil 	ivp[5] = k->wk_keytsc >> 24;		/* TSC3 */
    183  1.14.4.1      phil 	ivp[6] = k->wk_keytsc >> 32;		/* TSC4 */
    184  1.14.4.1      phil 	ivp[7] = k->wk_keytsc >> 40;		/* TSC5 */
    185  1.14.4.1      phil }
    186  1.14.4.1      phil 
    187       1.1    dyoung /*
    188       1.1    dyoung  * Add privacy headers and do any s/w encryption required.
    189       1.1    dyoung  */
    190       1.1    dyoung static int
    191  1.14.4.1      phil tkip_encap(struct ieee80211_key *k, struct mbuf *m)
    192       1.1    dyoung {
    193       1.1    dyoung 	struct tkip_ctx *ctx = k->wk_private;
    194  1.14.4.1      phil 	struct ieee80211vap *vap = ctx->tc_vap;
    195  1.14.4.1      phil 	struct ieee80211com *ic = vap->iv_ic;
    196  1.14.4.1      phil 	struct ieee80211_frame *wh;
    197  1.14.4.1      phil 	uint8_t *ivp;
    198       1.1    dyoung 	int hdrlen;
    199  1.14.4.1      phil 	int is_mgmt;
    200  1.14.4.1      phil 
    201  1.14.4.1      phil 	wh = mtod(m, struct ieee80211_frame *);
    202  1.14.4.1      phil 	is_mgmt = IEEE80211_IS_MGMT(wh);
    203       1.1    dyoung 
    204       1.1    dyoung 	/*
    205       1.1    dyoung 	 * Handle TKIP counter measures requirement.
    206       1.1    dyoung 	 */
    207  1.14.4.1      phil 	if (vap->iv_flags & IEEE80211_F_COUNTERM) {
    208       1.1    dyoung #ifdef IEEE80211_DEBUG
    209       1.1    dyoung 		struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *);
    210       1.1    dyoung #endif
    211       1.1    dyoung 
    212  1.14.4.1      phil 		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO, wh->i_addr2,
    213  1.14.4.1      phil 		    "discard frame due to countermeasures (%s)", __func__);
    214  1.14.4.1      phil 		vap->iv_stats.is_crypto_tkipcm++;
    215       1.1    dyoung 		return 0;
    216       1.1    dyoung 	}
    217      1.13      maxv 
    218  1.14.4.1      phil 	/*
    219  1.14.4.1      phil 	 * Check to see whether IV needs to be included.
    220  1.14.4.1      phil 	 */
    221  1.14.4.1      phil 	if (is_mgmt && (k->wk_flags & IEEE80211_KEY_NOIVMGT))
    222  1.14.4.1      phil 		return 1;
    223  1.14.4.1      phil 	if ((! is_mgmt) && (k->wk_flags & IEEE80211_KEY_NOIV))
    224  1.14.4.1      phil 		return 1;
    225  1.14.4.1      phil 
    226  1.14.4.1      phil 
    227       1.1    dyoung 	hdrlen = ieee80211_hdrspace(ic, mtod(m, void *));
    228       1.1    dyoung 
    229  1.14.4.1      phil 	/*
    230  1.14.4.1      phil 	 * Copy down 802.11 header and add the IV, KeyID, and ExtIV.
    231  1.14.4.1      phil 	 */
    232  1.14.4.1      phil 	M_PREPEND(m, tkip.ic_header, M_NOWAIT);
    233  1.14.4.1      phil 	if (m == NULL)
    234  1.14.4.1      phil 		return 0;
    235  1.14.4.1      phil 	ivp = mtod(m, uint8_t *);
    236  1.14.4.1      phil 	memmove(ivp, ivp + tkip.ic_header, hdrlen);
    237  1.14.4.1      phil 	ivp += hdrlen;
    238  1.14.4.1      phil 
    239  1.14.4.1      phil 	tkip_setiv(k, ivp);
    240       1.1    dyoung 
    241       1.1    dyoung 	/*
    242  1.14.4.1      phil 	 * Finally, do software encrypt if needed.
    243       1.1    dyoung 	 */
    244  1.14.4.1      phil 	if ((k->wk_flags & IEEE80211_KEY_SWENCRYPT) &&
    245  1.14.4.1      phil 	    !tkip_encrypt(ctx, k, m, hdrlen))
    246  1.14.4.1      phil 		return 0;
    247       1.1    dyoung 
    248       1.1    dyoung 	return 1;
    249       1.1    dyoung }
    250       1.1    dyoung 
    251       1.1    dyoung /*
    252       1.1    dyoung  * Add MIC to the frame as needed.
    253       1.1    dyoung  */
    254       1.1    dyoung static int
    255       1.3    dyoung tkip_enmic(struct ieee80211_key *k, struct mbuf *m, int force)
    256       1.1    dyoung {
    257       1.1    dyoung 	struct tkip_ctx *ctx = k->wk_private;
    258  1.14.4.1      phil 	struct ieee80211_frame *wh;
    259  1.14.4.1      phil 	int is_mgmt;
    260  1.14.4.1      phil 
    261  1.14.4.1      phil 	wh = mtod(m, struct ieee80211_frame *);
    262  1.14.4.1      phil 	is_mgmt = IEEE80211_IS_MGMT(wh);
    263  1.14.4.1      phil 
    264  1.14.4.1      phil 	/*
    265  1.14.4.1      phil 	 * Check to see whether MIC needs to be included.
    266  1.14.4.1      phil 	 */
    267  1.14.4.1      phil 	if (is_mgmt && (k->wk_flags & IEEE80211_KEY_NOMICMGT))
    268  1.14.4.1      phil 		return 1;
    269  1.14.4.1      phil 	if ((! is_mgmt) && (k->wk_flags & IEEE80211_KEY_NOMIC))
    270  1.14.4.1      phil 		return 1;
    271       1.1    dyoung 
    272  1.14.4.1      phil 	if (force || (k->wk_flags & IEEE80211_KEY_SWENMIC)) {
    273  1.14.4.2      phil #if __FreeBSD__
    274       1.1    dyoung 		struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *);
    275  1.14.4.2      phil #elif __NetBSD__
    276  1.14.4.2      phil 		wh = mtod(m, struct ieee80211_frame *);
    277  1.14.4.2      phil #endif
    278  1.14.4.1      phil 		struct ieee80211vap *vap = ctx->tc_vap;
    279  1.14.4.1      phil 		struct ieee80211com *ic = vap->iv_ic;
    280       1.1    dyoung 		int hdrlen;
    281       1.1    dyoung 		uint8_t mic[IEEE80211_WEP_MICLEN];
    282       1.1    dyoung 
    283  1.14.4.1      phil 		vap->iv_stats.is_crypto_tkipenmic++;
    284       1.1    dyoung 
    285       1.1    dyoung 		hdrlen = ieee80211_hdrspace(ic, wh);
    286       1.1    dyoung 
    287       1.1    dyoung 		michael_mic(ctx, k->wk_txmic,
    288       1.1    dyoung 			m, hdrlen, m->m_pkthdr.len - hdrlen, mic);
    289       1.1    dyoung 		return m_append(m, tkip.ic_miclen, mic);
    290       1.1    dyoung 	}
    291       1.1    dyoung 	return 1;
    292       1.1    dyoung }
    293       1.1    dyoung 
    294       1.1    dyoung static __inline uint64_t
    295       1.1    dyoung READ_6(uint8_t b0, uint8_t b1, uint8_t b2, uint8_t b3, uint8_t b4, uint8_t b5)
    296       1.1    dyoung {
    297       1.1    dyoung 	uint32_t iv32 = (b0 << 0) | (b1 << 8) | (b2 << 16) | (b3 << 24);
    298       1.1    dyoung 	uint16_t iv16 = (b4 << 0) | (b5 << 8);
    299       1.1    dyoung 	return (((uint64_t)iv16) << 32) | iv32;
    300       1.1    dyoung }
    301       1.1    dyoung 
    302       1.1    dyoung /*
    303       1.1    dyoung  * Validate and strip privacy headers (and trailer) for a
    304       1.1    dyoung  * received frame.  If necessary, decrypt the frame using
    305       1.1    dyoung  * the specified key.
    306       1.1    dyoung  */
    307       1.1    dyoung static int
    308       1.3    dyoung tkip_decap(struct ieee80211_key *k, struct mbuf *m, int hdrlen)
    309       1.1    dyoung {
    310  1.14.4.1      phil 	const struct ieee80211_rx_stats *rxs;
    311       1.1    dyoung 	struct tkip_ctx *ctx = k->wk_private;
    312  1.14.4.1      phil 	struct ieee80211vap *vap = ctx->tc_vap;
    313       1.1    dyoung 	struct ieee80211_frame *wh;
    314  1.14.4.1      phil 	uint8_t *ivp, tid;
    315  1.14.4.1      phil 
    316  1.14.4.1      phil 	rxs = ieee80211_get_rx_params_ptr(m);
    317  1.14.4.1      phil 
    318  1.14.4.1      phil 	/*
    319  1.14.4.1      phil 	 * If IV has been stripped, we skip most of the below.
    320  1.14.4.1      phil 	 */
    321  1.14.4.1      phil 	if ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_IV_STRIP))
    322  1.14.4.1      phil 		goto finish;
    323       1.1    dyoung 
    324       1.1    dyoung 	/*
    325       1.1    dyoung 	 * Header should have extended IV and sequence number;
    326       1.1    dyoung 	 * verify the former and validate the latter.
    327       1.1    dyoung 	 */
    328       1.1    dyoung 	wh = mtod(m, struct ieee80211_frame *);
    329       1.1    dyoung 	ivp = mtod(m, uint8_t *) + hdrlen;
    330       1.1    dyoung 	if ((ivp[IEEE80211_WEP_IVLEN] & IEEE80211_WEP_EXTIV) == 0) {
    331       1.1    dyoung 		/*
    332       1.1    dyoung 		 * No extended IV; discard frame.
    333       1.1    dyoung 		 */
    334  1.14.4.1      phil 		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO, wh->i_addr2,
    335  1.14.4.1      phil 		    "%s", "missing ExtIV for TKIP cipher");
    336  1.14.4.1      phil 		vap->iv_stats.is_rx_tkipformat++;
    337       1.1    dyoung 		return 0;
    338       1.1    dyoung 	}
    339       1.1    dyoung 	/*
    340       1.1    dyoung 	 * Handle TKIP counter measures requirement.
    341       1.1    dyoung 	 */
    342  1.14.4.1      phil 	if (vap->iv_flags & IEEE80211_F_COUNTERM) {
    343  1.14.4.1      phil 		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO, wh->i_addr2,
    344  1.14.4.1      phil 		    "discard frame due to countermeasures (%s)", __func__);
    345  1.14.4.1      phil 		vap->iv_stats.is_crypto_tkipcm++;
    346       1.1    dyoung 		return 0;
    347       1.1    dyoung 	}
    348       1.1    dyoung 
    349  1.14.4.1      phil 	tid = ieee80211_gettid(wh);
    350       1.1    dyoung 	ctx->rx_rsc = READ_6(ivp[2], ivp[0], ivp[4], ivp[5], ivp[6], ivp[7]);
    351  1.14.4.1      phil 	if (ctx->rx_rsc <= k->wk_keyrsc[tid] &&
    352  1.14.4.1      phil 	    (k->wk_flags & IEEE80211_KEY_NOREPLAY) == 0) {
    353       1.1    dyoung 		/*
    354       1.1    dyoung 		 * Replay violation; notify upper layer.
    355       1.1    dyoung 		 */
    356  1.14.4.1      phil 		ieee80211_notify_replay_failure(vap, wh, k, ctx->rx_rsc, tid);
    357  1.14.4.1      phil 		vap->iv_stats.is_rx_tkipreplay++;
    358       1.1    dyoung 		return 0;
    359       1.1    dyoung 	}
    360       1.1    dyoung 	/*
    361       1.1    dyoung 	 * NB: We can't update the rsc in the key until MIC is verified.
    362       1.1    dyoung 	 *
    363       1.1    dyoung 	 * We assume we are not preempted between doing the check above
    364       1.1    dyoung 	 * and updating wk_keyrsc when stripping the MIC in tkip_demic.
    365       1.1    dyoung 	 * Otherwise we might process another packet and discard it as
    366       1.1    dyoung 	 * a replay.
    367       1.1    dyoung 	 */
    368       1.1    dyoung 
    369       1.1    dyoung 	/*
    370       1.1    dyoung 	 * Check if the device handled the decrypt in hardware.
    371       1.1    dyoung 	 * If so we just strip the header; otherwise we need to
    372       1.1    dyoung 	 * handle the decrypt in software.
    373       1.1    dyoung 	 */
    374  1.14.4.1      phil 	if ((k->wk_flags & IEEE80211_KEY_SWDECRYPT) &&
    375       1.1    dyoung 	    !tkip_decrypt(ctx, k, m, hdrlen))
    376       1.1    dyoung 		return 0;
    377       1.1    dyoung 
    378  1.14.4.1      phil finish:
    379  1.14.4.1      phil 
    380       1.1    dyoung 	/*
    381  1.14.4.1      phil 	 * Copy up 802.11 header and strip crypto bits - but only if we
    382  1.14.4.1      phil 	 * are required to.
    383  1.14.4.1      phil 	 */
    384  1.14.4.1      phil 	if (! ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_IV_STRIP))) {
    385  1.14.4.1      phil 		memmove(mtod(m, uint8_t *) + tkip.ic_header, mtod(m, void *),
    386  1.14.4.1      phil 		    hdrlen);
    387  1.14.4.1      phil 		m_adj(m, tkip.ic_header);
    388  1.14.4.1      phil 	}
    389  1.14.4.1      phil 
    390  1.14.4.1      phil 	/*
    391  1.14.4.1      phil 	 * XXX TODO: do we need an option to potentially not strip the
    392  1.14.4.1      phil 	 * WEP trailer?  Does "MMIC_STRIP" also mean this? Or?
    393       1.1    dyoung 	 */
    394       1.1    dyoung 	m_adj(m, -tkip.ic_trailer);
    395       1.1    dyoung 
    396       1.1    dyoung 	return 1;
    397       1.1    dyoung }
    398       1.1    dyoung 
    399       1.1    dyoung /*
    400       1.1    dyoung  * Verify and strip MIC from the frame.
    401       1.1    dyoung  */
    402       1.1    dyoung static int
    403       1.3    dyoung tkip_demic(struct ieee80211_key *k, struct mbuf *m, int force)
    404       1.1    dyoung {
    405  1.14.4.1      phil 	const struct ieee80211_rx_stats *rxs;
    406       1.1    dyoung 	struct tkip_ctx *ctx = k->wk_private;
    407  1.14.4.1      phil 	struct ieee80211_frame *wh;
    408  1.14.4.1      phil 	uint8_t tid;
    409       1.1    dyoung 
    410  1.14.4.1      phil 	wh = mtod(m, struct ieee80211_frame *);
    411  1.14.4.1      phil 	rxs = ieee80211_get_rx_params_ptr(m);
    412  1.14.4.1      phil 
    413  1.14.4.1      phil 	/*
    414  1.14.4.1      phil 	 * If we are told about a MIC failure from the driver,
    415  1.14.4.1      phil 	 * directly notify as a michael failure to the upper
    416  1.14.4.1      phil 	 * layers.
    417  1.14.4.1      phil 	 */
    418  1.14.4.1      phil 	if ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_FAIL_MIC)) {
    419  1.14.4.1      phil 		struct ieee80211vap *vap = ctx->tc_vap;
    420  1.14.4.1      phil 		ieee80211_notify_michael_failure(vap, wh,
    421  1.14.4.1      phil 		    k->wk_rxkeyix != IEEE80211_KEYIX_NONE ?
    422  1.14.4.1      phil 		    k->wk_rxkeyix : k->wk_keyix);
    423  1.14.4.1      phil 		return 0;
    424  1.14.4.1      phil 	}
    425  1.14.4.1      phil 
    426  1.14.4.1      phil 	/*
    427  1.14.4.1      phil 	 * If IV has been stripped, we skip most of the below.
    428  1.14.4.1      phil 	 */
    429  1.14.4.1      phil 	if ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_MMIC_STRIP))
    430  1.14.4.1      phil 		goto finish;
    431  1.14.4.1      phil 
    432  1.14.4.1      phil 	if ((k->wk_flags & IEEE80211_KEY_SWDEMIC) || force) {
    433  1.14.4.1      phil 		struct ieee80211vap *vap = ctx->tc_vap;
    434  1.14.4.1      phil 		int hdrlen = ieee80211_hdrspace(vap->iv_ic, wh);
    435       1.1    dyoung 		u8 mic[IEEE80211_WEP_MICLEN];
    436       1.1    dyoung 		u8 mic0[IEEE80211_WEP_MICLEN];
    437       1.1    dyoung 
    438  1.14.4.1      phil 		vap->iv_stats.is_crypto_tkipdemic++;
    439       1.1    dyoung 
    440  1.14.4.1      phil 		michael_mic(ctx, k->wk_rxmic,
    441       1.1    dyoung 			m, hdrlen, m->m_pkthdr.len - (hdrlen + tkip.ic_miclen),
    442       1.1    dyoung 			mic);
    443       1.1    dyoung 		m_copydata(m, m->m_pkthdr.len - tkip.ic_miclen,
    444       1.1    dyoung 			tkip.ic_miclen, mic0);
    445       1.1    dyoung 		if (memcmp(mic, mic0, tkip.ic_miclen)) {
    446       1.1    dyoung 			/* NB: 802.11 layer handles statistic and debug msg */
    447  1.14.4.1      phil 			ieee80211_notify_michael_failure(vap, wh,
    448       1.4     skrll 				k->wk_rxkeyix != IEEE80211_KEYIX_NONE ?
    449       1.4     skrll 					k->wk_rxkeyix : k->wk_keyix);
    450       1.1    dyoung 			return 0;
    451       1.1    dyoung 		}
    452       1.1    dyoung 	}
    453       1.1    dyoung 	/*
    454       1.1    dyoung 	 * Strip MIC from the tail.
    455       1.1    dyoung 	 */
    456       1.1    dyoung 	m_adj(m, -tkip.ic_miclen);
    457       1.1    dyoung 
    458       1.1    dyoung 	/*
    459       1.1    dyoung 	 * Ok to update rsc now that MIC has been verified.
    460       1.1    dyoung 	 */
    461  1.14.4.1      phil 	tid = ieee80211_gettid(wh);
    462  1.14.4.1      phil 	k->wk_keyrsc[tid] = ctx->rx_rsc;
    463       1.1    dyoung 
    464  1.14.4.1      phil finish:
    465       1.1    dyoung 	return 1;
    466       1.1    dyoung }
    467       1.1    dyoung 
    468       1.1    dyoung /*
    469       1.1    dyoung  * Host AP crypt: host-based TKIP encryption implementation for Host AP driver
    470       1.1    dyoung  *
    471       1.1    dyoung  * Copyright (c) 2003-2004, Jouni Malinen <jkmaline (at) cc.hut.fi>
    472       1.1    dyoung  *
    473       1.1    dyoung  * This program is free software; you can redistribute it and/or modify
    474       1.1    dyoung  * it under the terms of the GNU General Public License version 2 as
    475       1.1    dyoung  * published by the Free Software Foundation. See README and COPYING for
    476       1.1    dyoung  * more details.
    477       1.1    dyoung  *
    478       1.1    dyoung  * Alternatively, this software may be distributed under the terms of BSD
    479       1.1    dyoung  * license.
    480       1.1    dyoung  */
    481       1.1    dyoung 
    482       1.1    dyoung static const __u32 crc32_table[256] = {
    483       1.1    dyoung 	0x00000000L, 0x77073096L, 0xee0e612cL, 0x990951baL, 0x076dc419L,
    484       1.1    dyoung 	0x706af48fL, 0xe963a535L, 0x9e6495a3L, 0x0edb8832L, 0x79dcb8a4L,
    485       1.1    dyoung 	0xe0d5e91eL, 0x97d2d988L, 0x09b64c2bL, 0x7eb17cbdL, 0xe7b82d07L,
    486       1.1    dyoung 	0x90bf1d91L, 0x1db71064L, 0x6ab020f2L, 0xf3b97148L, 0x84be41deL,
    487       1.1    dyoung 	0x1adad47dL, 0x6ddde4ebL, 0xf4d4b551L, 0x83d385c7L, 0x136c9856L,
    488       1.1    dyoung 	0x646ba8c0L, 0xfd62f97aL, 0x8a65c9ecL, 0x14015c4fL, 0x63066cd9L,
    489       1.1    dyoung 	0xfa0f3d63L, 0x8d080df5L, 0x3b6e20c8L, 0x4c69105eL, 0xd56041e4L,
    490       1.1    dyoung 	0xa2677172L, 0x3c03e4d1L, 0x4b04d447L, 0xd20d85fdL, 0xa50ab56bL,
    491       1.1    dyoung 	0x35b5a8faL, 0x42b2986cL, 0xdbbbc9d6L, 0xacbcf940L, 0x32d86ce3L,
    492       1.1    dyoung 	0x45df5c75L, 0xdcd60dcfL, 0xabd13d59L, 0x26d930acL, 0x51de003aL,
    493       1.1    dyoung 	0xc8d75180L, 0xbfd06116L, 0x21b4f4b5L, 0x56b3c423L, 0xcfba9599L,
    494       1.1    dyoung 	0xb8bda50fL, 0x2802b89eL, 0x5f058808L, 0xc60cd9b2L, 0xb10be924L,
    495       1.1    dyoung 	0x2f6f7c87L, 0x58684c11L, 0xc1611dabL, 0xb6662d3dL, 0x76dc4190L,
    496       1.1    dyoung 	0x01db7106L, 0x98d220bcL, 0xefd5102aL, 0x71b18589L, 0x06b6b51fL,
    497       1.1    dyoung 	0x9fbfe4a5L, 0xe8b8d433L, 0x7807c9a2L, 0x0f00f934L, 0x9609a88eL,
    498       1.1    dyoung 	0xe10e9818L, 0x7f6a0dbbL, 0x086d3d2dL, 0x91646c97L, 0xe6635c01L,
    499       1.1    dyoung 	0x6b6b51f4L, 0x1c6c6162L, 0x856530d8L, 0xf262004eL, 0x6c0695edL,
    500       1.1    dyoung 	0x1b01a57bL, 0x8208f4c1L, 0xf50fc457L, 0x65b0d9c6L, 0x12b7e950L,
    501       1.1    dyoung 	0x8bbeb8eaL, 0xfcb9887cL, 0x62dd1ddfL, 0x15da2d49L, 0x8cd37cf3L,
    502       1.1    dyoung 	0xfbd44c65L, 0x4db26158L, 0x3ab551ceL, 0xa3bc0074L, 0xd4bb30e2L,
    503       1.1    dyoung 	0x4adfa541L, 0x3dd895d7L, 0xa4d1c46dL, 0xd3d6f4fbL, 0x4369e96aL,
    504       1.1    dyoung 	0x346ed9fcL, 0xad678846L, 0xda60b8d0L, 0x44042d73L, 0x33031de5L,
    505       1.1    dyoung 	0xaa0a4c5fL, 0xdd0d7cc9L, 0x5005713cL, 0x270241aaL, 0xbe0b1010L,
    506       1.1    dyoung 	0xc90c2086L, 0x5768b525L, 0x206f85b3L, 0xb966d409L, 0xce61e49fL,
    507       1.1    dyoung 	0x5edef90eL, 0x29d9c998L, 0xb0d09822L, 0xc7d7a8b4L, 0x59b33d17L,
    508       1.1    dyoung 	0x2eb40d81L, 0xb7bd5c3bL, 0xc0ba6cadL, 0xedb88320L, 0x9abfb3b6L,
    509       1.1    dyoung 	0x03b6e20cL, 0x74b1d29aL, 0xead54739L, 0x9dd277afL, 0x04db2615L,
    510       1.1    dyoung 	0x73dc1683L, 0xe3630b12L, 0x94643b84L, 0x0d6d6a3eL, 0x7a6a5aa8L,
    511       1.1    dyoung 	0xe40ecf0bL, 0x9309ff9dL, 0x0a00ae27L, 0x7d079eb1L, 0xf00f9344L,
    512       1.1    dyoung 	0x8708a3d2L, 0x1e01f268L, 0x6906c2feL, 0xf762575dL, 0x806567cbL,
    513       1.1    dyoung 	0x196c3671L, 0x6e6b06e7L, 0xfed41b76L, 0x89d32be0L, 0x10da7a5aL,
    514       1.1    dyoung 	0x67dd4accL, 0xf9b9df6fL, 0x8ebeeff9L, 0x17b7be43L, 0x60b08ed5L,
    515       1.1    dyoung 	0xd6d6a3e8L, 0xa1d1937eL, 0x38d8c2c4L, 0x4fdff252L, 0xd1bb67f1L,
    516       1.1    dyoung 	0xa6bc5767L, 0x3fb506ddL, 0x48b2364bL, 0xd80d2bdaL, 0xaf0a1b4cL,
    517       1.1    dyoung 	0x36034af6L, 0x41047a60L, 0xdf60efc3L, 0xa867df55L, 0x316e8eefL,
    518       1.1    dyoung 	0x4669be79L, 0xcb61b38cL, 0xbc66831aL, 0x256fd2a0L, 0x5268e236L,
    519       1.1    dyoung 	0xcc0c7795L, 0xbb0b4703L, 0x220216b9L, 0x5505262fL, 0xc5ba3bbeL,
    520       1.1    dyoung 	0xb2bd0b28L, 0x2bb45a92L, 0x5cb36a04L, 0xc2d7ffa7L, 0xb5d0cf31L,
    521       1.1    dyoung 	0x2cd99e8bL, 0x5bdeae1dL, 0x9b64c2b0L, 0xec63f226L, 0x756aa39cL,
    522       1.1    dyoung 	0x026d930aL, 0x9c0906a9L, 0xeb0e363fL, 0x72076785L, 0x05005713L,
    523       1.1    dyoung 	0x95bf4a82L, 0xe2b87a14L, 0x7bb12baeL, 0x0cb61b38L, 0x92d28e9bL,
    524       1.1    dyoung 	0xe5d5be0dL, 0x7cdcefb7L, 0x0bdbdf21L, 0x86d3d2d4L, 0xf1d4e242L,
    525       1.1    dyoung 	0x68ddb3f8L, 0x1fda836eL, 0x81be16cdL, 0xf6b9265bL, 0x6fb077e1L,
    526       1.1    dyoung 	0x18b74777L, 0x88085ae6L, 0xff0f6a70L, 0x66063bcaL, 0x11010b5cL,
    527       1.1    dyoung 	0x8f659effL, 0xf862ae69L, 0x616bffd3L, 0x166ccf45L, 0xa00ae278L,
    528       1.1    dyoung 	0xd70dd2eeL, 0x4e048354L, 0x3903b3c2L, 0xa7672661L, 0xd06016f7L,
    529       1.1    dyoung 	0x4969474dL, 0x3e6e77dbL, 0xaed16a4aL, 0xd9d65adcL, 0x40df0b66L,
    530       1.1    dyoung 	0x37d83bf0L, 0xa9bcae53L, 0xdebb9ec5L, 0x47b2cf7fL, 0x30b5ffe9L,
    531       1.1    dyoung 	0xbdbdf21cL, 0xcabac28aL, 0x53b39330L, 0x24b4a3a6L, 0xbad03605L,
    532       1.1    dyoung 	0xcdd70693L, 0x54de5729L, 0x23d967bfL, 0xb3667a2eL, 0xc4614ab8L,
    533       1.1    dyoung 	0x5d681b02L, 0x2a6f2b94L, 0xb40bbe37L, 0xc30c8ea1L, 0x5a05df1bL,
    534       1.1    dyoung 	0x2d02ef8dL
    535       1.1    dyoung };
    536       1.1    dyoung 
    537       1.1    dyoung static __inline u16 RotR1(u16 val)
    538       1.1    dyoung {
    539       1.1    dyoung 	return (val >> 1) | (val << 15);
    540       1.1    dyoung }
    541       1.1    dyoung 
    542       1.1    dyoung static __inline u8 Lo8(u16 val)
    543       1.1    dyoung {
    544       1.1    dyoung 	return val & 0xff;
    545       1.1    dyoung }
    546       1.1    dyoung 
    547       1.1    dyoung static __inline u8 Hi8(u16 val)
    548       1.1    dyoung {
    549       1.1    dyoung 	return val >> 8;
    550       1.1    dyoung }
    551       1.1    dyoung 
    552       1.1    dyoung static __inline u16 Lo16(u32 val)
    553       1.1    dyoung {
    554       1.1    dyoung 	return val & 0xffff;
    555       1.1    dyoung }
    556       1.1    dyoung 
    557       1.1    dyoung static __inline u16 Hi16(u32 val)
    558       1.1    dyoung {
    559       1.1    dyoung 	return val >> 16;
    560       1.1    dyoung }
    561       1.1    dyoung 
    562       1.1    dyoung static __inline u16 Mk16(u8 hi, u8 lo)
    563       1.1    dyoung {
    564       1.1    dyoung 	return lo | (((u16) hi) << 8);
    565       1.1    dyoung }
    566       1.1    dyoung 
    567       1.1    dyoung static __inline u16 Mk16_le(const u16 *v)
    568       1.1    dyoung {
    569       1.1    dyoung 	return le16toh(*v);
    570       1.1    dyoung }
    571       1.1    dyoung 
    572       1.1    dyoung static const u16 Sbox[256] = {
    573       1.1    dyoung 	0xC6A5, 0xF884, 0xEE99, 0xF68D, 0xFF0D, 0xD6BD, 0xDEB1, 0x9154,
    574       1.1    dyoung 	0x6050, 0x0203, 0xCEA9, 0x567D, 0xE719, 0xB562, 0x4DE6, 0xEC9A,
    575       1.1    dyoung 	0x8F45, 0x1F9D, 0x8940, 0xFA87, 0xEF15, 0xB2EB, 0x8EC9, 0xFB0B,
    576       1.1    dyoung 	0x41EC, 0xB367, 0x5FFD, 0x45EA, 0x23BF, 0x53F7, 0xE496, 0x9B5B,
    577       1.1    dyoung 	0x75C2, 0xE11C, 0x3DAE, 0x4C6A, 0x6C5A, 0x7E41, 0xF502, 0x834F,
    578       1.1    dyoung 	0x685C, 0x51F4, 0xD134, 0xF908, 0xE293, 0xAB73, 0x6253, 0x2A3F,
    579       1.1    dyoung 	0x080C, 0x9552, 0x4665, 0x9D5E, 0x3028, 0x37A1, 0x0A0F, 0x2FB5,
    580       1.1    dyoung 	0x0E09, 0x2436, 0x1B9B, 0xDF3D, 0xCD26, 0x4E69, 0x7FCD, 0xEA9F,
    581       1.1    dyoung 	0x121B, 0x1D9E, 0x5874, 0x342E, 0x362D, 0xDCB2, 0xB4EE, 0x5BFB,
    582       1.1    dyoung 	0xA4F6, 0x764D, 0xB761, 0x7DCE, 0x527B, 0xDD3E, 0x5E71, 0x1397,
    583       1.1    dyoung 	0xA6F5, 0xB968, 0x0000, 0xC12C, 0x4060, 0xE31F, 0x79C8, 0xB6ED,
    584       1.1    dyoung 	0xD4BE, 0x8D46, 0x67D9, 0x724B, 0x94DE, 0x98D4, 0xB0E8, 0x854A,
    585       1.1    dyoung 	0xBB6B, 0xC52A, 0x4FE5, 0xED16, 0x86C5, 0x9AD7, 0x6655, 0x1194,
    586       1.1    dyoung 	0x8ACF, 0xE910, 0x0406, 0xFE81, 0xA0F0, 0x7844, 0x25BA, 0x4BE3,
    587       1.1    dyoung 	0xA2F3, 0x5DFE, 0x80C0, 0x058A, 0x3FAD, 0x21BC, 0x7048, 0xF104,
    588       1.1    dyoung 	0x63DF, 0x77C1, 0xAF75, 0x4263, 0x2030, 0xE51A, 0xFD0E, 0xBF6D,
    589       1.1    dyoung 	0x814C, 0x1814, 0x2635, 0xC32F, 0xBEE1, 0x35A2, 0x88CC, 0x2E39,
    590       1.1    dyoung 	0x9357, 0x55F2, 0xFC82, 0x7A47, 0xC8AC, 0xBAE7, 0x322B, 0xE695,
    591       1.1    dyoung 	0xC0A0, 0x1998, 0x9ED1, 0xA37F, 0x4466, 0x547E, 0x3BAB, 0x0B83,
    592       1.1    dyoung 	0x8CCA, 0xC729, 0x6BD3, 0x283C, 0xA779, 0xBCE2, 0x161D, 0xAD76,
    593       1.1    dyoung 	0xDB3B, 0x6456, 0x744E, 0x141E, 0x92DB, 0x0C0A, 0x486C, 0xB8E4,
    594       1.1    dyoung 	0x9F5D, 0xBD6E, 0x43EF, 0xC4A6, 0x39A8, 0x31A4, 0xD337, 0xF28B,
    595       1.1    dyoung 	0xD532, 0x8B43, 0x6E59, 0xDAB7, 0x018C, 0xB164, 0x9CD2, 0x49E0,
    596       1.1    dyoung 	0xD8B4, 0xACFA, 0xF307, 0xCF25, 0xCAAF, 0xF48E, 0x47E9, 0x1018,
    597       1.1    dyoung 	0x6FD5, 0xF088, 0x4A6F, 0x5C72, 0x3824, 0x57F1, 0x73C7, 0x9751,
    598       1.1    dyoung 	0xCB23, 0xA17C, 0xE89C, 0x3E21, 0x96DD, 0x61DC, 0x0D86, 0x0F85,
    599       1.1    dyoung 	0xE090, 0x7C42, 0x71C4, 0xCCAA, 0x90D8, 0x0605, 0xF701, 0x1C12,
    600       1.1    dyoung 	0xC2A3, 0x6A5F, 0xAEF9, 0x69D0, 0x1791, 0x9958, 0x3A27, 0x27B9,
    601       1.1    dyoung 	0xD938, 0xEB13, 0x2BB3, 0x2233, 0xD2BB, 0xA970, 0x0789, 0x33A7,
    602       1.1    dyoung 	0x2DB6, 0x3C22, 0x1592, 0xC920, 0x8749, 0xAAFF, 0x5078, 0xA57A,
    603       1.1    dyoung 	0x038F, 0x59F8, 0x0980, 0x1A17, 0x65DA, 0xD731, 0x84C6, 0xD0B8,
    604       1.1    dyoung 	0x82C3, 0x29B0, 0x5A77, 0x1E11, 0x7BCB, 0xA8FC, 0x6DD6, 0x2C3A,
    605       1.1    dyoung };
    606       1.1    dyoung 
    607       1.1    dyoung static __inline u16 _S_(u16 v)
    608       1.1    dyoung {
    609       1.1    dyoung 	u16 t = Sbox[Hi8(v)];
    610       1.1    dyoung 	return Sbox[Lo8(v)] ^ ((t << 8) | (t >> 8));
    611       1.1    dyoung }
    612       1.1    dyoung 
    613       1.1    dyoung #define PHASE1_LOOP_COUNT 8
    614       1.1    dyoung 
    615       1.1    dyoung static void tkip_mixing_phase1(u16 *TTAK, const u8 *TK, const u8 *TA, u32 IV32)
    616       1.1    dyoung {
    617       1.1    dyoung 	int i, j;
    618       1.1    dyoung 
    619       1.1    dyoung 	/* Initialize the 80-bit TTAK from TSC (IV32) and TA[0..5] */
    620       1.1    dyoung 	TTAK[0] = Lo16(IV32);
    621       1.1    dyoung 	TTAK[1] = Hi16(IV32);
    622       1.1    dyoung 	TTAK[2] = Mk16(TA[1], TA[0]);
    623       1.1    dyoung 	TTAK[3] = Mk16(TA[3], TA[2]);
    624       1.1    dyoung 	TTAK[4] = Mk16(TA[5], TA[4]);
    625       1.1    dyoung 
    626       1.1    dyoung 	for (i = 0; i < PHASE1_LOOP_COUNT; i++) {
    627       1.1    dyoung 		j = 2 * (i & 1);
    628       1.1    dyoung 		TTAK[0] += _S_(TTAK[4] ^ Mk16(TK[1 + j], TK[0 + j]));
    629       1.1    dyoung 		TTAK[1] += _S_(TTAK[0] ^ Mk16(TK[5 + j], TK[4 + j]));
    630       1.1    dyoung 		TTAK[2] += _S_(TTAK[1] ^ Mk16(TK[9 + j], TK[8 + j]));
    631       1.1    dyoung 		TTAK[3] += _S_(TTAK[2] ^ Mk16(TK[13 + j], TK[12 + j]));
    632       1.1    dyoung 		TTAK[4] += _S_(TTAK[3] ^ Mk16(TK[1 + j], TK[0 + j])) + i;
    633       1.1    dyoung 	}
    634       1.1    dyoung }
    635       1.1    dyoung 
    636       1.1    dyoung #ifndef _BYTE_ORDER
    637       1.1    dyoung #error "Don't know native byte order"
    638       1.1    dyoung #endif
    639       1.1    dyoung 
    640       1.1    dyoung static void tkip_mixing_phase2(u8 *WEPSeed, const u8 *TK, const u16 *TTAK,
    641       1.1    dyoung 			       u16 IV16)
    642       1.1    dyoung {
    643       1.1    dyoung 	/* Make temporary area overlap WEP seed so that the final copy can be
    644       1.1    dyoung 	 * avoided on little endian hosts. */
    645       1.1    dyoung 	u16 *PPK = (u16 *) &WEPSeed[4];
    646       1.1    dyoung 
    647       1.1    dyoung 	/* Step 1 - make copy of TTAK and bring in TSC */
    648       1.1    dyoung 	PPK[0] = TTAK[0];
    649       1.1    dyoung 	PPK[1] = TTAK[1];
    650       1.1    dyoung 	PPK[2] = TTAK[2];
    651       1.1    dyoung 	PPK[3] = TTAK[3];
    652       1.1    dyoung 	PPK[4] = TTAK[4];
    653       1.1    dyoung 	PPK[5] = TTAK[4] + IV16;
    654       1.1    dyoung 
    655       1.1    dyoung 	/* Step 2 - 96-bit bijective mixing using S-box */
    656       1.1    dyoung 	PPK[0] += _S_(PPK[5] ^ Mk16_le((const u16 *) &TK[0]));
    657       1.1    dyoung 	PPK[1] += _S_(PPK[0] ^ Mk16_le((const u16 *) &TK[2]));
    658       1.1    dyoung 	PPK[2] += _S_(PPK[1] ^ Mk16_le((const u16 *) &TK[4]));
    659       1.1    dyoung 	PPK[3] += _S_(PPK[2] ^ Mk16_le((const u16 *) &TK[6]));
    660       1.1    dyoung 	PPK[4] += _S_(PPK[3] ^ Mk16_le((const u16 *) &TK[8]));
    661       1.1    dyoung 	PPK[5] += _S_(PPK[4] ^ Mk16_le((const u16 *) &TK[10]));
    662       1.1    dyoung 
    663       1.1    dyoung 	PPK[0] += RotR1(PPK[5] ^ Mk16_le((const u16 *) &TK[12]));
    664       1.1    dyoung 	PPK[1] += RotR1(PPK[0] ^ Mk16_le((const u16 *) &TK[14]));
    665       1.1    dyoung 	PPK[2] += RotR1(PPK[1]);
    666       1.1    dyoung 	PPK[3] += RotR1(PPK[2]);
    667       1.1    dyoung 	PPK[4] += RotR1(PPK[3]);
    668       1.1    dyoung 	PPK[5] += RotR1(PPK[4]);
    669       1.1    dyoung 
    670       1.1    dyoung 	/* Step 3 - bring in last of TK bits, assign 24-bit WEP IV value
    671       1.1    dyoung 	 * WEPSeed[0..2] is transmitted as WEP IV */
    672       1.1    dyoung 	WEPSeed[0] = Hi8(IV16);
    673       1.1    dyoung 	WEPSeed[1] = (Hi8(IV16) | 0x20) & 0x7F;
    674       1.1    dyoung 	WEPSeed[2] = Lo8(IV16);
    675       1.1    dyoung 	WEPSeed[3] = Lo8((PPK[5] ^ Mk16_le((const u16 *) &TK[0])) >> 1);
    676       1.1    dyoung 
    677       1.1    dyoung #if _BYTE_ORDER == _BIG_ENDIAN
    678       1.1    dyoung 	{
    679       1.1    dyoung 		int i;
    680       1.1    dyoung 		for (i = 0; i < 6; i++)
    681       1.1    dyoung 			PPK[i] = (PPK[i] << 8) | (PPK[i] >> 8);
    682       1.1    dyoung 	}
    683       1.1    dyoung #endif
    684       1.1    dyoung }
    685       1.1    dyoung 
    686       1.1    dyoung static void
    687       1.1    dyoung wep_encrypt(u8 *key, struct mbuf *m0, u_int off, size_t data_len,
    688       1.1    dyoung 	uint8_t icv[IEEE80211_WEP_CRCLEN])
    689       1.1    dyoung {
    690       1.1    dyoung 	u32 i, j, k, crc;
    691       1.1    dyoung 	size_t buflen;
    692       1.1    dyoung 	u8 S[256];
    693       1.1    dyoung 	u8 *pos;
    694       1.1    dyoung 	struct mbuf *m;
    695       1.1    dyoung #define S_SWAP(a,b) do { u8 t = S[a]; S[a] = S[b]; S[b] = t; } while(0)
    696       1.1    dyoung 
    697       1.1    dyoung 	/* Setup RC4 state */
    698       1.1    dyoung 	for (i = 0; i < 256; i++)
    699       1.1    dyoung 		S[i] = i;
    700       1.1    dyoung 	j = 0;
    701       1.1    dyoung 	for (i = 0; i < 256; i++) {
    702       1.1    dyoung 		j = (j + S[i] + key[i & 0x0f]) & 0xff;
    703       1.1    dyoung 		S_SWAP(i, j);
    704       1.1    dyoung 	}
    705       1.1    dyoung 
    706       1.1    dyoung 	/* Compute CRC32 over unencrypted data and apply RC4 to data */
    707       1.1    dyoung 	crc = ~0;
    708       1.1    dyoung 	i = j = 0;
    709       1.1    dyoung 	m = m0;
    710       1.1    dyoung 	pos = mtod(m, uint8_t *) + off;
    711       1.1    dyoung 	buflen = m->m_len - off;
    712       1.1    dyoung 	for (;;) {
    713       1.1    dyoung 		if (buflen > data_len)
    714       1.1    dyoung 			buflen = data_len;
    715       1.1    dyoung 		data_len -= buflen;
    716       1.1    dyoung 		for (k = 0; k < buflen; k++) {
    717       1.1    dyoung 			crc = crc32_table[(crc ^ *pos) & 0xff] ^ (crc >> 8);
    718       1.1    dyoung 			i = (i + 1) & 0xff;
    719       1.1    dyoung 			j = (j + S[i]) & 0xff;
    720       1.1    dyoung 			S_SWAP(i, j);
    721       1.1    dyoung 			*pos++ ^= S[(S[i] + S[j]) & 0xff];
    722       1.1    dyoung 		}
    723       1.1    dyoung 		m = m->m_next;
    724       1.1    dyoung 		if (m == NULL) {
    725  1.14.4.1      phil 			KASSERT(data_len == 0,
    726       1.1    dyoung 			    ("out of buffers with data_len %zu\n", data_len));
    727       1.1    dyoung 			break;
    728       1.1    dyoung 		}
    729       1.1    dyoung 		pos = mtod(m, uint8_t *);
    730       1.1    dyoung 		buflen = m->m_len;
    731       1.1    dyoung 	}
    732       1.1    dyoung 	crc = ~crc;
    733       1.1    dyoung 
    734       1.1    dyoung 	/* Append little-endian CRC32 and encrypt it to produce ICV */
    735       1.1    dyoung 	icv[0] = crc;
    736       1.1    dyoung 	icv[1] = crc >> 8;
    737       1.1    dyoung 	icv[2] = crc >> 16;
    738       1.1    dyoung 	icv[3] = crc >> 24;
    739       1.1    dyoung 	for (k = 0; k < IEEE80211_WEP_CRCLEN; k++) {
    740       1.1    dyoung 		i = (i + 1) & 0xff;
    741       1.1    dyoung 		j = (j + S[i]) & 0xff;
    742       1.1    dyoung 		S_SWAP(i, j);
    743       1.1    dyoung 		icv[k] ^= S[(S[i] + S[j]) & 0xff];
    744       1.1    dyoung 	}
    745       1.1    dyoung }
    746       1.1    dyoung 
    747       1.1    dyoung static int
    748       1.1    dyoung wep_decrypt(u8 *key, struct mbuf *m, u_int off, size_t data_len)
    749       1.1    dyoung {
    750       1.1    dyoung 	u32 i, j, k, crc;
    751       1.1    dyoung 	u8 S[256];
    752       1.1    dyoung 	u8 *pos, icv[4];
    753       1.1    dyoung 	size_t buflen;
    754       1.1    dyoung 
    755       1.1    dyoung 	/* Setup RC4 state */
    756       1.1    dyoung 	for (i = 0; i < 256; i++)
    757       1.1    dyoung 		S[i] = i;
    758       1.1    dyoung 	j = 0;
    759       1.1    dyoung 	for (i = 0; i < 256; i++) {
    760       1.1    dyoung 		j = (j + S[i] + key[i & 0x0f]) & 0xff;
    761       1.1    dyoung 		S_SWAP(i, j);
    762       1.1    dyoung 	}
    763       1.1    dyoung 
    764       1.1    dyoung 	/* Apply RC4 to data and compute CRC32 over decrypted data */
    765       1.1    dyoung 	crc = ~0;
    766       1.1    dyoung 	i = j = 0;
    767       1.1    dyoung 	pos = mtod(m, uint8_t *) + off;
    768       1.1    dyoung 	buflen = m->m_len - off;
    769       1.1    dyoung 	for (;;) {
    770       1.1    dyoung 		if (buflen > data_len)
    771       1.1    dyoung 			buflen = data_len;
    772       1.1    dyoung 		data_len -= buflen;
    773       1.1    dyoung 		for (k = 0; k < buflen; k++) {
    774       1.1    dyoung 			i = (i + 1) & 0xff;
    775       1.1    dyoung 			j = (j + S[i]) & 0xff;
    776       1.1    dyoung 			S_SWAP(i, j);
    777       1.1    dyoung 			*pos ^= S[(S[i] + S[j]) & 0xff];
    778       1.1    dyoung 			crc = crc32_table[(crc ^ *pos) & 0xff] ^ (crc >> 8);
    779       1.1    dyoung 			pos++;
    780       1.1    dyoung 		}
    781       1.1    dyoung 		m = m->m_next;
    782       1.1    dyoung 		if (m == NULL) {
    783  1.14.4.1      phil 			KASSERT(data_len == 0,
    784       1.1    dyoung 			    ("out of buffers with data_len %zu\n", data_len));
    785       1.1    dyoung 			break;
    786       1.1    dyoung 		}
    787       1.1    dyoung 		pos = mtod(m, uint8_t *);
    788       1.1    dyoung 		buflen = m->m_len;
    789       1.1    dyoung 	}
    790       1.1    dyoung 	crc = ~crc;
    791       1.1    dyoung 
    792       1.1    dyoung 	/* Encrypt little-endian CRC32 and verify that it matches with the
    793       1.1    dyoung 	 * received ICV */
    794       1.1    dyoung 	icv[0] = crc;
    795       1.1    dyoung 	icv[1] = crc >> 8;
    796       1.1    dyoung 	icv[2] = crc >> 16;
    797       1.1    dyoung 	icv[3] = crc >> 24;
    798       1.1    dyoung 	for (k = 0; k < 4; k++) {
    799       1.1    dyoung 		i = (i + 1) & 0xff;
    800       1.1    dyoung 		j = (j + S[i]) & 0xff;
    801       1.1    dyoung 		S_SWAP(i, j);
    802       1.1    dyoung 		if ((icv[k] ^ S[(S[i] + S[j]) & 0xff]) != *pos++) {
    803       1.1    dyoung 			/* ICV mismatch - drop frame */
    804       1.1    dyoung 			return -1;
    805       1.1    dyoung 		}
    806       1.1    dyoung 	}
    807       1.1    dyoung 
    808       1.1    dyoung 	return 0;
    809       1.1    dyoung }
    810       1.1    dyoung 
    811       1.1    dyoung 
    812       1.1    dyoung static __inline u32 rotl(u32 val, int bits)
    813       1.1    dyoung {
    814       1.1    dyoung 	return (val << bits) | (val >> (32 - bits));
    815       1.1    dyoung }
    816       1.1    dyoung 
    817       1.1    dyoung 
    818       1.1    dyoung static __inline u32 rotr(u32 val, int bits)
    819       1.1    dyoung {
    820       1.1    dyoung 	return (val >> bits) | (val << (32 - bits));
    821       1.1    dyoung }
    822       1.1    dyoung 
    823       1.1    dyoung 
    824       1.1    dyoung static __inline u32 xswap(u32 val)
    825       1.1    dyoung {
    826       1.1    dyoung 	return ((val & 0x00ff00ff) << 8) | ((val & 0xff00ff00) >> 8);
    827       1.1    dyoung }
    828       1.1    dyoung 
    829       1.1    dyoung 
    830       1.1    dyoung #define michael_block(l, r)	\
    831       1.1    dyoung do {				\
    832       1.1    dyoung 	r ^= rotl(l, 17);	\
    833       1.1    dyoung 	l += r;			\
    834       1.1    dyoung 	r ^= xswap(l);		\
    835       1.1    dyoung 	l += r;			\
    836       1.1    dyoung 	r ^= rotl(l, 3);	\
    837       1.1    dyoung 	l += r;			\
    838       1.1    dyoung 	r ^= rotr(l, 2);	\
    839       1.1    dyoung 	l += r;			\
    840       1.1    dyoung } while (0)
    841       1.1    dyoung 
    842       1.1    dyoung 
    843       1.1    dyoung static __inline u32 get_le32_split(u8 b0, u8 b1, u8 b2, u8 b3)
    844       1.1    dyoung {
    845       1.1    dyoung 	return b0 | (b1 << 8) | (b2 << 16) | (b3 << 24);
    846       1.1    dyoung }
    847       1.1    dyoung 
    848       1.1    dyoung static __inline u32 get_le32(const u8 *p)
    849       1.1    dyoung {
    850       1.1    dyoung 	return get_le32_split(p[0], p[1], p[2], p[3]);
    851       1.1    dyoung }
    852       1.1    dyoung 
    853       1.1    dyoung 
    854       1.1    dyoung static __inline void put_le32(u8 *p, u32 v)
    855       1.1    dyoung {
    856       1.1    dyoung 	p[0] = v;
    857       1.1    dyoung 	p[1] = v >> 8;
    858       1.1    dyoung 	p[2] = v >> 16;
    859       1.1    dyoung 	p[3] = v >> 24;
    860       1.1    dyoung }
    861       1.1    dyoung 
    862       1.1    dyoung /*
    863       1.1    dyoung  * Craft pseudo header used to calculate the MIC.
    864       1.1    dyoung  */
    865       1.1    dyoung static void
    866       1.1    dyoung michael_mic_hdr(const struct ieee80211_frame *wh0, uint8_t hdr[16])
    867       1.1    dyoung {
    868       1.1    dyoung 	const struct ieee80211_frame_addr4 *wh =
    869       1.1    dyoung 		(const struct ieee80211_frame_addr4 *) wh0;
    870       1.1    dyoung 
    871       1.1    dyoung 	switch (wh->i_fc[1] & IEEE80211_FC1_DIR_MASK) {
    872       1.1    dyoung 	case IEEE80211_FC1_DIR_NODS:
    873       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr, wh->i_addr1); /* DA */
    874       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr2);
    875       1.1    dyoung 		break;
    876       1.1    dyoung 	case IEEE80211_FC1_DIR_TODS:
    877       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr, wh->i_addr3); /* DA */
    878       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr2);
    879       1.1    dyoung 		break;
    880       1.1    dyoung 	case IEEE80211_FC1_DIR_FROMDS:
    881       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr, wh->i_addr1); /* DA */
    882       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr3);
    883       1.1    dyoung 		break;
    884       1.1    dyoung 	case IEEE80211_FC1_DIR_DSTODS:
    885       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr, wh->i_addr3); /* DA */
    886       1.1    dyoung 		IEEE80211_ADDR_COPY(hdr + IEEE80211_ADDR_LEN, wh->i_addr4);
    887       1.1    dyoung 		break;
    888       1.1    dyoung 	}
    889       1.1    dyoung 
    890       1.1    dyoung 	if (wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_QOS) {
    891       1.1    dyoung 		const struct ieee80211_qosframe *qwh =
    892       1.1    dyoung 			(const struct ieee80211_qosframe *) wh;
    893       1.1    dyoung 		hdr[12] = qwh->i_qos[0] & IEEE80211_QOS_TID;
    894       1.1    dyoung 	} else
    895       1.1    dyoung 		hdr[12] = 0;
    896       1.1    dyoung 	hdr[13] = hdr[14] = hdr[15] = 0; /* reserved */
    897       1.1    dyoung }
    898       1.1    dyoung 
    899       1.1    dyoung static void
    900       1.7  christos michael_mic(struct tkip_ctx *ctx, const u8 *key,
    901       1.1    dyoung 	struct mbuf *m, u_int off, size_t data_len,
    902       1.1    dyoung 	u8 mic[IEEE80211_WEP_MICLEN])
    903       1.1    dyoung {
    904       1.1    dyoung 	uint8_t hdr[16];
    905       1.1    dyoung 	u32 l, r;
    906       1.1    dyoung 	const uint8_t *data;
    907       1.1    dyoung 	u_int space;
    908       1.1    dyoung 
    909       1.1    dyoung 	michael_mic_hdr(mtod(m, struct ieee80211_frame *), hdr);
    910       1.1    dyoung 
    911       1.1    dyoung 	l = get_le32(key);
    912       1.1    dyoung 	r = get_le32(key + 4);
    913       1.1    dyoung 
    914       1.1    dyoung 	/* Michael MIC pseudo header: DA, SA, 3 x 0, Priority */
    915       1.1    dyoung 	l ^= get_le32(hdr);
    916       1.1    dyoung 	michael_block(l, r);
    917       1.1    dyoung 	l ^= get_le32(&hdr[4]);
    918       1.1    dyoung 	michael_block(l, r);
    919       1.1    dyoung 	l ^= get_le32(&hdr[8]);
    920       1.1    dyoung 	michael_block(l, r);
    921       1.1    dyoung 	l ^= get_le32(&hdr[12]);
    922       1.1    dyoung 	michael_block(l, r);
    923       1.1    dyoung 
    924       1.1    dyoung 	/* first buffer has special handling */
    925       1.1    dyoung 	data = mtod(m, const uint8_t *) + off;
    926       1.1    dyoung 	space = m->m_len - off;
    927       1.1    dyoung 	for (;;) {
    928       1.1    dyoung 		if (space > data_len)
    929       1.1    dyoung 			space = data_len;
    930       1.1    dyoung 		/* collect 32-bit blocks from current buffer */
    931       1.1    dyoung 		while (space >= sizeof(uint32_t)) {
    932       1.1    dyoung 			l ^= get_le32(data);
    933       1.1    dyoung 			michael_block(l, r);
    934  1.14.4.1      phil 			data += sizeof(uint32_t), space -= sizeof(uint32_t);
    935       1.1    dyoung 			data_len -= sizeof(uint32_t);
    936       1.1    dyoung 		}
    937       1.9  drochner 		/*
    938  1.14.4.1      phil 		 * NB: when space is zero we make one more trip around
    939  1.14.4.1      phil 		 * the loop to advance to the next mbuf where there is
    940  1.14.4.1      phil 		 * data.  This handles the case where there are 4*n
    941  1.14.4.1      phil 		 * bytes in an mbuf followed by <4 bytes in a later mbuf.
    942  1.14.4.1      phil 		 * By making an extra trip we'll drop out of the loop
    943  1.14.4.1      phil 		 * with m pointing at the mbuf with 3 bytes and space
    944  1.14.4.1      phil 		 * set as required by the remainder handling below.
    945       1.9  drochner 		 */
    946  1.14.4.1      phil 		if (data_len == 0 ||
    947  1.14.4.1      phil 		    (data_len < sizeof(uint32_t) && space != 0))
    948  1.14.4.1      phil 			break;
    949  1.14.4.1      phil 		m = m->m_next;
    950  1.14.4.1      phil 		if (m == NULL) {
    951  1.14.4.1      phil 			KASSERT(0, ("out of data, data_len %zu\n", data_len));
    952  1.14.4.1      phil 			break;
    953  1.14.4.1      phil 		}
    954  1.14.4.1      phil 		if (space != 0) {
    955  1.14.4.1      phil 			const uint8_t *data_next;
    956  1.14.4.1      phil 			/*
    957  1.14.4.1      phil 			 * Block straddles buffers, split references.
    958  1.14.4.1      phil 			 */
    959  1.14.4.1      phil 			data_next = mtod(m, const uint8_t *);
    960  1.14.4.1      phil 			KASSERT(m->m_len >= sizeof(uint32_t) - space,
    961  1.14.4.1      phil 				("not enough data in following buffer, "
    962  1.14.4.1      phil 				"m_len %u need %zu\n", m->m_len,
    963  1.14.4.1      phil 				sizeof(uint32_t) - space));
    964  1.14.4.1      phil 			switch (space) {
    965  1.14.4.1      phil 			case 1:
    966  1.14.4.1      phil 				l ^= get_le32_split(data[0], data_next[0],
    967  1.14.4.1      phil 					data_next[1], data_next[2]);
    968  1.14.4.1      phil 				data = data_next + 3;
    969  1.14.4.1      phil 				space = m->m_len - 3;
    970  1.14.4.1      phil 				break;
    971  1.14.4.1      phil 			case 2:
    972  1.14.4.1      phil 				l ^= get_le32_split(data[0], data[1],
    973  1.14.4.1      phil 					data_next[0], data_next[1]);
    974  1.14.4.1      phil 				data = data_next + 2;
    975  1.14.4.1      phil 				space = m->m_len - 2;
    976  1.14.4.1      phil 				break;
    977  1.14.4.1      phil 			case 3:
    978  1.14.4.1      phil 				l ^= get_le32_split(data[0], data[1],
    979  1.14.4.1      phil 					data[2], data_next[0]);
    980  1.14.4.1      phil 				data = data_next + 1;
    981  1.14.4.1      phil 				space = m->m_len - 1;
    982  1.14.4.1      phil 				break;
    983  1.14.4.1      phil 			}
    984  1.14.4.1      phil 			michael_block(l, r);
    985  1.14.4.1      phil 			data_len -= sizeof(uint32_t);
    986  1.14.4.1      phil 		} else {
    987  1.14.4.1      phil 			/*
    988  1.14.4.1      phil 			 * Setup for next buffer.
    989  1.14.4.1      phil 			 */
    990  1.14.4.1      phil 			data = mtod(m, const uint8_t *);
    991  1.14.4.1      phil 			space = m->m_len;
    992  1.14.4.1      phil 		}
    993       1.1    dyoung 	}
    994  1.14.4.1      phil 	/*
    995  1.14.4.1      phil 	 * Catch degenerate cases like mbuf[4*n+1 bytes] followed by
    996  1.14.4.1      phil 	 * mbuf[2 bytes].  I don't believe these should happen; if they
    997  1.14.4.1      phil 	 * do then we'll need more involved logic.
    998  1.14.4.1      phil 	 */
    999  1.14.4.1      phil 	KASSERT(data_len <= space,
   1000  1.14.4.1      phil 	    ("not enough data, data_len %zu space %u\n", data_len, space));
   1001  1.14.4.1      phil 
   1002       1.1    dyoung 	/* Last block and padding (0x5a, 4..7 x 0) */
   1003  1.14.4.1      phil 	switch (data_len) {
   1004  1.14.4.1      phil 	case 0:
   1005  1.14.4.1      phil 		l ^= get_le32_split(0x5a, 0, 0, 0);
   1006  1.14.4.1      phil 		break;
   1007  1.14.4.1      phil 	case 1:
   1008  1.14.4.1      phil 		l ^= get_le32_split(data[0], 0x5a, 0, 0);
   1009  1.14.4.1      phil 		break;
   1010  1.14.4.1      phil 	case 2:
   1011  1.14.4.1      phil 		l ^= get_le32_split(data[0], data[1], 0x5a, 0);
   1012  1.14.4.1      phil 		break;
   1013  1.14.4.1      phil 	case 3:
   1014  1.14.4.1      phil 		l ^= get_le32_split(data[0], data[1], data[2], 0x5a);
   1015  1.14.4.1      phil 		break;
   1016  1.14.4.1      phil 	}
   1017       1.1    dyoung 	michael_block(l, r);
   1018       1.1    dyoung 	/* l ^= 0; */
   1019       1.1    dyoung 	michael_block(l, r);
   1020       1.1    dyoung 
   1021       1.1    dyoung 	put_le32(mic, l);
   1022       1.1    dyoung 	put_le32(mic + 4, r);
   1023       1.1    dyoung }
   1024       1.1    dyoung 
   1025       1.1    dyoung static int
   1026       1.1    dyoung tkip_encrypt(struct tkip_ctx *ctx, struct ieee80211_key *key,
   1027       1.1    dyoung 	struct mbuf *m, int hdrlen)
   1028       1.1    dyoung {
   1029       1.1    dyoung 	struct ieee80211_frame *wh;
   1030       1.1    dyoung 	uint8_t icv[IEEE80211_WEP_CRCLEN];
   1031       1.1    dyoung 
   1032  1.14.4.1      phil 	ctx->tc_vap->iv_stats.is_crypto_tkip++;
   1033       1.1    dyoung 
   1034       1.1    dyoung 	wh = mtod(m, struct ieee80211_frame *);
   1035  1.14.4.1      phil 	if ((u16)(key->wk_keytsc) == 0 || key->wk_keytsc == 1) {
   1036       1.1    dyoung 		tkip_mixing_phase1(ctx->tx_ttak, key->wk_key, wh->i_addr2,
   1037       1.1    dyoung 				   (u32)(key->wk_keytsc >> 16));
   1038       1.1    dyoung 	}
   1039       1.1    dyoung 	tkip_mixing_phase2(ctx->tx_rc4key, key->wk_key, ctx->tx_ttak,
   1040  1.14.4.1      phil 		(u16) key->wk_keytsc);
   1041       1.1    dyoung 
   1042       1.1    dyoung 	wep_encrypt(ctx->tx_rc4key,
   1043       1.1    dyoung 		m, hdrlen + tkip.ic_header,
   1044       1.1    dyoung 		m->m_pkthdr.len - (hdrlen + tkip.ic_header),
   1045       1.1    dyoung 		icv);
   1046  1.14.4.1      phil 	(void) m_append(m, IEEE80211_WEP_CRCLEN, icv);	/* XXX check return */
   1047      1.14      maxv 
   1048       1.1    dyoung 	return 1;
   1049       1.1    dyoung }
   1050       1.1    dyoung 
   1051       1.1    dyoung static int
   1052       1.1    dyoung tkip_decrypt(struct tkip_ctx *ctx, struct ieee80211_key *key,
   1053       1.1    dyoung 	struct mbuf *m, int hdrlen)
   1054       1.1    dyoung {
   1055       1.1    dyoung 	struct ieee80211_frame *wh;
   1056  1.14.4.1      phil 	struct ieee80211vap *vap = ctx->tc_vap;
   1057       1.1    dyoung 	u32 iv32;
   1058       1.1    dyoung 	u16 iv16;
   1059  1.14.4.1      phil 	u8 tid;
   1060       1.1    dyoung 
   1061  1.14.4.1      phil 	vap->iv_stats.is_crypto_tkip++;
   1062       1.1    dyoung 
   1063       1.1    dyoung 	wh = mtod(m, struct ieee80211_frame *);
   1064       1.1    dyoung 	/* NB: tkip_decap already verified header and left seq in rx_rsc */
   1065       1.1    dyoung 	iv16 = (u16) ctx->rx_rsc;
   1066       1.1    dyoung 	iv32 = (u32) (ctx->rx_rsc >> 16);
   1067       1.1    dyoung 
   1068  1.14.4.1      phil 	tid = ieee80211_gettid(wh);
   1069  1.14.4.1      phil 	if (iv32 != (u32)(key->wk_keyrsc[tid] >> 16) || !ctx->rx_phase1_done) {
   1070       1.1    dyoung 		tkip_mixing_phase1(ctx->rx_ttak, key->wk_key,
   1071       1.1    dyoung 			wh->i_addr2, iv32);
   1072       1.1    dyoung 		ctx->rx_phase1_done = 1;
   1073       1.1    dyoung 	}
   1074       1.1    dyoung 	tkip_mixing_phase2(ctx->rx_rc4key, key->wk_key, ctx->rx_ttak, iv16);
   1075       1.1    dyoung 
   1076       1.1    dyoung 	/* NB: m is unstripped; deduct headers + ICV to get payload */
   1077  1.14.4.1      phil 	if (wep_decrypt(ctx->rx_rc4key,
   1078  1.14.4.1      phil 		m, hdrlen + tkip.ic_header,
   1079  1.14.4.1      phil 	        m->m_pkthdr.len - (hdrlen + tkip.ic_header + tkip.ic_trailer))) {
   1080  1.14.4.1      phil 		if (iv32 != (u32)(key->wk_keyrsc[tid] >> 16)) {
   1081       1.1    dyoung 			/* Previously cached Phase1 result was already lost, so
   1082       1.1    dyoung 			 * it needs to be recalculated for the next packet. */
   1083       1.1    dyoung 			ctx->rx_phase1_done = 0;
   1084       1.1    dyoung 		}
   1085  1.14.4.1      phil 		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO, wh->i_addr2,
   1086  1.14.4.1      phil 		    "%s", "TKIP ICV mismatch on decrypt");
   1087  1.14.4.1      phil 		vap->iv_stats.is_rx_tkipicv++;
   1088       1.1    dyoung 		return 0;
   1089       1.1    dyoung 	}
   1090       1.1    dyoung 	return 1;
   1091       1.1    dyoung }
   1092       1.4     skrll 
   1093  1.14.4.1      phil /*
   1094  1.14.4.1      phil  * Module glue.
   1095  1.14.4.1      phil  */
   1096  1.14.4.1      phil IEEE80211_CRYPTO_MODULE(tkip, 1);
   1097