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ieee80211_crypto_ccmp.c revision 1.14.2.3
      1  1.14.2.3  christos /*	$NetBSD: ieee80211_crypto_ccmp.c,v 1.14.2.3 2019/06/10 22:09:46 christos Exp $	*/
      2  1.14.2.2      phil 
      3  1.14.2.1      phil /*-
      4  1.14.2.1      phil  * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
      5  1.14.2.1      phil  *
      6  1.14.2.1      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  1.14.2.3  christos #ifdef __NetBSD__
     32  1.14.2.3  christos __KERNEL_RCSID(0, "$NetBSD: ieee80211_crypto_ccmp.c,v 1.14.2.3 2019/06/10 22:09:46 christos Exp $");
     33  1.14.2.2      phil #endif
     34       1.1    dyoung 
     35       1.1    dyoung /*
     36       1.1    dyoung  * IEEE 802.11i AES-CCMP 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  1.14.2.1      phil  * it's license is included below.
     41       1.1    dyoung  */
     42  1.14.2.3  christos #ifdef _KERNEL_OPT
     43  1.14.2.1      phil #include "opt_wlan.h"
     44  1.14.2.3  christos #endif
     45  1.14.2.1      phil 
     46       1.1    dyoung #include <sys/param.h>
     47  1.14.2.1      phil #include <sys/systm.h>
     48  1.14.2.1      phil #include <sys/mbuf.h>
     49       1.1    dyoung #include <sys/malloc.h>
     50       1.1    dyoung #include <sys/kernel.h>
     51  1.14.2.1      phil #include <sys/module.h>
     52       1.1    dyoung 
     53       1.1    dyoung #include <sys/socket.h>
     54       1.1    dyoung 
     55       1.1    dyoung #include <net/if.h>
     56       1.1    dyoung #include <net/if_media.h>
     57  1.14.2.2      phil #if __FreeBSD__
     58  1.14.2.1      phil #include <net/ethernet.h>
     59  1.14.2.2      phil #endif
     60  1.14.2.2      phil #ifdef __NetBSD__
     61  1.14.2.2      phil #include <net/route.h>
     62  1.14.2.2      phil #endif
     63       1.1    dyoung 
     64       1.1    dyoung #include <net80211/ieee80211_var.h>
     65       1.1    dyoung 
     66       1.1    dyoung #include <crypto/rijndael/rijndael.h>
     67       1.1    dyoung 
     68  1.14.2.2      phil #ifdef __NetBSD__
     69  1.14.2.2      phil #undef  KASSERT
     70  1.14.2.2      phil #define KASSERT(__cond, __complaint) FBSDKASSERT(__cond, __complaint)
     71  1.14.2.2      phil #endif
     72  1.14.2.2      phil 
     73       1.1    dyoung #define AES_BLOCK_LEN 16
     74       1.1    dyoung 
     75       1.1    dyoung struct ccmp_ctx {
     76  1.14.2.1      phil 	struct ieee80211vap *cc_vap;	/* for diagnostics+statistics */
     77  1.14.2.1      phil 	struct ieee80211com *cc_ic;
     78  1.14.2.1      phil 	rijndael_ctx	     cc_aes;
     79       1.1    dyoung };
     80       1.1    dyoung 
     81  1.14.2.1      phil static	void *ccmp_attach(struct ieee80211vap *, struct ieee80211_key *);
     82       1.1    dyoung static	void ccmp_detach(struct ieee80211_key *);
     83       1.1    dyoung static	int ccmp_setkey(struct ieee80211_key *);
     84  1.14.2.1      phil static	void ccmp_setiv(struct ieee80211_key *, uint8_t *);
     85  1.14.2.1      phil static	int ccmp_encap(struct ieee80211_key *, struct mbuf *);
     86       1.3    dyoung static	int ccmp_decap(struct ieee80211_key *, struct mbuf *, int);
     87       1.3    dyoung static	int ccmp_enmic(struct ieee80211_key *, struct mbuf *, int);
     88       1.3    dyoung static	int ccmp_demic(struct ieee80211_key *, struct mbuf *, int);
     89       1.1    dyoung 
     90  1.14.2.1      phil static const struct ieee80211_cipher ccmp = {
     91       1.1    dyoung 	.ic_name	= "AES-CCM",
     92       1.1    dyoung 	.ic_cipher	= IEEE80211_CIPHER_AES_CCM,
     93       1.1    dyoung 	.ic_header	= IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN +
     94       1.1    dyoung 			  IEEE80211_WEP_EXTIVLEN,
     95       1.1    dyoung 	.ic_trailer	= IEEE80211_WEP_MICLEN,
     96       1.1    dyoung 	.ic_miclen	= 0,
     97       1.1    dyoung 	.ic_attach	= ccmp_attach,
     98       1.1    dyoung 	.ic_detach	= ccmp_detach,
     99       1.1    dyoung 	.ic_setkey	= ccmp_setkey,
    100  1.14.2.1      phil 	.ic_setiv	= ccmp_setiv,
    101       1.1    dyoung 	.ic_encap	= ccmp_encap,
    102       1.1    dyoung 	.ic_decap	= ccmp_decap,
    103       1.1    dyoung 	.ic_enmic	= ccmp_enmic,
    104       1.1    dyoung 	.ic_demic	= ccmp_demic,
    105       1.1    dyoung };
    106       1.1    dyoung 
    107       1.1    dyoung static	int ccmp_encrypt(struct ieee80211_key *, struct mbuf *, int hdrlen);
    108       1.1    dyoung static	int ccmp_decrypt(struct ieee80211_key *, u_int64_t pn,
    109       1.1    dyoung 		struct mbuf *, int hdrlen);
    110       1.1    dyoung 
    111  1.14.2.1      phil /* number of references from net80211 layer */
    112  1.14.2.1      phil static	int nrefs = 0;
    113  1.14.2.1      phil 
    114       1.1    dyoung static void *
    115  1.14.2.1      phil ccmp_attach(struct ieee80211vap *vap, struct ieee80211_key *k)
    116       1.1    dyoung {
    117       1.1    dyoung 	struct ccmp_ctx *ctx;
    118       1.1    dyoung 
    119  1.14.2.1      phil 	ctx = (struct ccmp_ctx *) IEEE80211_MALLOC(sizeof(struct ccmp_ctx),
    120  1.14.2.1      phil 		M_80211_CRYPTO, IEEE80211_M_NOWAIT | IEEE80211_M_ZERO);
    121       1.1    dyoung 	if (ctx == NULL) {
    122  1.14.2.1      phil 		vap->iv_stats.is_crypto_nomem++;
    123       1.1    dyoung 		return NULL;
    124       1.1    dyoung 	}
    125  1.14.2.1      phil 	ctx->cc_vap = vap;
    126  1.14.2.1      phil 	ctx->cc_ic = vap->iv_ic;
    127  1.14.2.1      phil 	nrefs++;			/* NB: we assume caller locking */
    128       1.1    dyoung 	return ctx;
    129       1.1    dyoung }
    130       1.1    dyoung 
    131       1.1    dyoung static void
    132       1.1    dyoung ccmp_detach(struct ieee80211_key *k)
    133       1.1    dyoung {
    134       1.1    dyoung 	struct ccmp_ctx *ctx = k->wk_private;
    135       1.1    dyoung 
    136  1.14.2.1      phil 	IEEE80211_FREE(ctx, M_80211_CRYPTO);
    137  1.14.2.1      phil 	KASSERT(nrefs > 0, ("imbalanced attach/detach"));
    138  1.14.2.1      phil 	nrefs--;			/* NB: we assume caller locking */
    139       1.1    dyoung }
    140       1.1    dyoung 
    141       1.1    dyoung static int
    142       1.1    dyoung ccmp_setkey(struct ieee80211_key *k)
    143       1.1    dyoung {
    144       1.1    dyoung 	struct ccmp_ctx *ctx = k->wk_private;
    145       1.1    dyoung 
    146       1.1    dyoung 	if (k->wk_keylen != (128/NBBY)) {
    147  1.14.2.1      phil 		IEEE80211_DPRINTF(ctx->cc_vap, IEEE80211_MSG_CRYPTO,
    148       1.1    dyoung 			"%s: Invalid key length %u, expecting %u\n",
    149       1.1    dyoung 			__func__, k->wk_keylen, 128/NBBY);
    150       1.1    dyoung 		return 0;
    151       1.1    dyoung 	}
    152  1.14.2.1      phil 	if (k->wk_flags & IEEE80211_KEY_SWENCRYPT)
    153       1.1    dyoung 		rijndael_set_key(&ctx->cc_aes, k->wk_key, k->wk_keylen*NBBY);
    154       1.1    dyoung 	return 1;
    155       1.1    dyoung }
    156       1.1    dyoung 
    157  1.14.2.1      phil static void
    158  1.14.2.1      phil ccmp_setiv(struct ieee80211_key *k, uint8_t *ivp)
    159       1.1    dyoung {
    160       1.1    dyoung 	struct ccmp_ctx *ctx = k->wk_private;
    161  1.14.2.1      phil 	struct ieee80211vap *vap = ctx->cc_vap;
    162  1.14.2.1      phil 	uint8_t keyid;
    163       1.1    dyoung 
    164  1.14.2.1      phil 	keyid = ieee80211_crypto_get_keyid(vap, k) << 6;
    165       1.1    dyoung 
    166  1.14.2.1      phil 	k->wk_keytsc++;
    167       1.1    dyoung 	ivp[0] = k->wk_keytsc >> 0;		/* PN0 */
    168       1.1    dyoung 	ivp[1] = k->wk_keytsc >> 8;		/* PN1 */
    169       1.1    dyoung 	ivp[2] = 0;				/* Reserved */
    170       1.1    dyoung 	ivp[3] = keyid | IEEE80211_WEP_EXTIV;	/* KeyID | ExtID */
    171       1.1    dyoung 	ivp[4] = k->wk_keytsc >> 16;		/* PN2 */
    172       1.1    dyoung 	ivp[5] = k->wk_keytsc >> 24;		/* PN3 */
    173       1.1    dyoung 	ivp[6] = k->wk_keytsc >> 32;		/* PN4 */
    174       1.1    dyoung 	ivp[7] = k->wk_keytsc >> 40;		/* PN5 */
    175  1.14.2.1      phil }
    176  1.14.2.1      phil 
    177  1.14.2.1      phil /*
    178  1.14.2.1      phil  * Add privacy headers appropriate for the specified key.
    179  1.14.2.1      phil  */
    180  1.14.2.1      phil static int
    181  1.14.2.1      phil ccmp_encap(struct ieee80211_key *k, struct mbuf *m)
    182  1.14.2.1      phil {
    183  1.14.2.1      phil 	const struct ieee80211_frame *wh;
    184  1.14.2.1      phil 	struct ccmp_ctx *ctx = k->wk_private;
    185  1.14.2.1      phil 	struct ieee80211com *ic = ctx->cc_ic;
    186  1.14.2.1      phil 	uint8_t *ivp;
    187  1.14.2.1      phil 	int hdrlen;
    188  1.14.2.1      phil 	int is_mgmt;
    189  1.14.2.1      phil 
    190  1.14.2.1      phil 	hdrlen = ieee80211_hdrspace(ic, mtod(m, void *));
    191  1.14.2.1      phil 	wh = mtod(m, const struct ieee80211_frame *);
    192  1.14.2.1      phil 	is_mgmt = IEEE80211_IS_MGMT(wh);
    193       1.1    dyoung 
    194       1.1    dyoung 	/*
    195  1.14.2.1      phil 	 * Check to see if we need to insert IV/MIC.
    196  1.14.2.1      phil 	 *
    197  1.14.2.1      phil 	 * Some offload devices don't require the IV to be inserted
    198  1.14.2.1      phil 	 * as part of the hardware encryption.
    199       1.1    dyoung 	 */
    200  1.14.2.1      phil 	if (is_mgmt && (k->wk_flags & IEEE80211_KEY_NOIVMGT))
    201  1.14.2.1      phil 		return 1;
    202  1.14.2.1      phil 	if ((! is_mgmt) && (k->wk_flags & IEEE80211_KEY_NOIV))
    203  1.14.2.1      phil 		return 1;
    204  1.14.2.1      phil 
    205  1.14.2.1      phil 	/*
    206  1.14.2.1      phil 	 * Copy down 802.11 header and add the IV, KeyID, and ExtIV.
    207  1.14.2.1      phil 	 */
    208  1.14.2.1      phil 	M_PREPEND(m, ccmp.ic_header, M_NOWAIT);
    209  1.14.2.1      phil 	if (m == NULL)
    210  1.14.2.1      phil 		return 0;
    211  1.14.2.1      phil 	ivp = mtod(m, uint8_t *);
    212  1.14.2.1      phil 	ovbcopy(ivp + ccmp.ic_header, ivp, hdrlen);
    213  1.14.2.1      phil 	ivp += hdrlen;
    214  1.14.2.1      phil 
    215  1.14.2.1      phil 	ccmp_setiv(k, ivp);
    216  1.14.2.1      phil 
    217  1.14.2.1      phil 	/*
    218  1.14.2.1      phil 	 * Finally, do software encrypt if needed.
    219  1.14.2.1      phil 	 */
    220  1.14.2.1      phil 	if ((k->wk_flags & IEEE80211_KEY_SWENCRYPT) &&
    221       1.1    dyoung 	    !ccmp_encrypt(k, m, hdrlen))
    222       1.1    dyoung 		return 0;
    223       1.1    dyoung 
    224       1.1    dyoung 	return 1;
    225       1.1    dyoung }
    226       1.1    dyoung 
    227       1.1    dyoung /*
    228       1.1    dyoung  * Add MIC to the frame as needed.
    229       1.1    dyoung  */
    230       1.1    dyoung static int
    231  1.14.2.1      phil ccmp_enmic(struct ieee80211_key *k, struct mbuf *m, int force)
    232       1.1    dyoung {
    233       1.1    dyoung 
    234       1.1    dyoung 	return 1;
    235       1.1    dyoung }
    236       1.1    dyoung 
    237       1.1    dyoung static __inline uint64_t
    238       1.1    dyoung READ_6(uint8_t b0, uint8_t b1, uint8_t b2, uint8_t b3, uint8_t b4, uint8_t b5)
    239       1.1    dyoung {
    240       1.1    dyoung 	uint32_t iv32 = (b0 << 0) | (b1 << 8) | (b2 << 16) | (b3 << 24);
    241       1.1    dyoung 	uint16_t iv16 = (b4 << 0) | (b5 << 8);
    242       1.1    dyoung 	return (((uint64_t)iv16) << 32) | iv32;
    243       1.1    dyoung }
    244       1.1    dyoung 
    245       1.1    dyoung /*
    246       1.1    dyoung  * Validate and strip privacy headers (and trailer) for a
    247       1.1    dyoung  * received frame. The specified key should be correct but
    248       1.1    dyoung  * is also verified.
    249       1.1    dyoung  */
    250       1.1    dyoung static int
    251       1.3    dyoung ccmp_decap(struct ieee80211_key *k, struct mbuf *m, int hdrlen)
    252       1.1    dyoung {
    253  1.14.2.1      phil 	const struct ieee80211_rx_stats *rxs;
    254       1.1    dyoung 	struct ccmp_ctx *ctx = k->wk_private;
    255  1.14.2.1      phil 	struct ieee80211vap *vap = ctx->cc_vap;
    256       1.1    dyoung 	struct ieee80211_frame *wh;
    257  1.14.2.1      phil 	uint8_t *ivp, tid;
    258       1.1    dyoung 	uint64_t pn;
    259       1.1    dyoung 
    260  1.14.2.1      phil 	rxs = ieee80211_get_rx_params_ptr(m);
    261  1.14.2.1      phil 
    262  1.14.2.1      phil 	if ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_IV_STRIP))
    263  1.14.2.1      phil 		goto finish;
    264  1.14.2.1      phil 
    265       1.1    dyoung 	/*
    266       1.1    dyoung 	 * Header should have extended IV and sequence number;
    267       1.1    dyoung 	 * verify the former and validate the latter.
    268       1.1    dyoung 	 */
    269       1.1    dyoung 	wh = mtod(m, struct ieee80211_frame *);
    270       1.1    dyoung 	ivp = mtod(m, uint8_t *) + hdrlen;
    271       1.1    dyoung 	if ((ivp[IEEE80211_WEP_IVLEN] & IEEE80211_WEP_EXTIV) == 0) {
    272       1.1    dyoung 		/*
    273       1.1    dyoung 		 * No extended IV; discard frame.
    274       1.1    dyoung 		 */
    275  1.14.2.1      phil 		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO, wh->i_addr2,
    276  1.14.2.1      phil 			"%s", "missing ExtIV for AES-CCM cipher");
    277  1.14.2.1      phil 		vap->iv_stats.is_rx_ccmpformat++;
    278       1.1    dyoung 		return 0;
    279       1.1    dyoung 	}
    280  1.14.2.1      phil 	tid = ieee80211_gettid(wh);
    281       1.1    dyoung 	pn = READ_6(ivp[0], ivp[1], ivp[4], ivp[5], ivp[6], ivp[7]);
    282  1.14.2.1      phil 	if (pn <= k->wk_keyrsc[tid] &&
    283  1.14.2.1      phil 	    (k->wk_flags & IEEE80211_KEY_NOREPLAY) == 0) {
    284       1.1    dyoung 		/*
    285       1.1    dyoung 		 * Replay violation.
    286       1.1    dyoung 		 */
    287  1.14.2.1      phil 		ieee80211_notify_replay_failure(vap, wh, k, pn, tid);
    288  1.14.2.1      phil 		vap->iv_stats.is_rx_ccmpreplay++;
    289       1.1    dyoung 		return 0;
    290       1.1    dyoung 	}
    291       1.1    dyoung 
    292       1.1    dyoung 	/*
    293       1.1    dyoung 	 * Check if the device handled the decrypt in hardware.
    294       1.1    dyoung 	 * If so we just strip the header; otherwise we need to
    295       1.1    dyoung 	 * handle the decrypt in software.  Note that for the
    296       1.1    dyoung 	 * latter we leave the header in place for use in the
    297       1.1    dyoung 	 * decryption work.
    298       1.1    dyoung 	 */
    299  1.14.2.1      phil 	if ((k->wk_flags & IEEE80211_KEY_SWDECRYPT) &&
    300       1.1    dyoung 	    !ccmp_decrypt(k, pn, m, hdrlen))
    301       1.1    dyoung 		return 0;
    302       1.1    dyoung 
    303  1.14.2.1      phil finish:
    304       1.1    dyoung 	/*
    305       1.1    dyoung 	 * Copy up 802.11 header and strip crypto bits.
    306       1.1    dyoung 	 */
    307  1.14.2.1      phil 	if (! ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_IV_STRIP))) {
    308  1.14.2.1      phil 		ovbcopy(mtod(m, void *), mtod(m, uint8_t *) + ccmp.ic_header,
    309  1.14.2.1      phil 		    hdrlen);
    310  1.14.2.1      phil 		m_adj(m, ccmp.ic_header);
    311  1.14.2.1      phil 	}
    312  1.14.2.1      phil 
    313  1.14.2.1      phil 	/*
    314  1.14.2.1      phil 	 * XXX TODO: see if MMIC_STRIP also covers CCMP MIC trailer.
    315  1.14.2.1      phil 	 */
    316  1.14.2.1      phil 	if (! ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_MMIC_STRIP)))
    317  1.14.2.1      phil 		m_adj(m, -ccmp.ic_trailer);
    318       1.1    dyoung 
    319       1.1    dyoung 	/*
    320       1.1    dyoung 	 * Ok to update rsc now.
    321       1.1    dyoung 	 */
    322  1.14.2.1      phil 	if (! ((rxs != NULL) && (rxs->c_pktflags & IEEE80211_RX_F_IV_STRIP))) {
    323  1.14.2.1      phil 		k->wk_keyrsc[tid] = pn;
    324  1.14.2.1      phil 	}
    325       1.1    dyoung 
    326       1.1    dyoung 	return 1;
    327       1.1    dyoung }
    328       1.1    dyoung 
    329       1.1    dyoung /*
    330       1.1    dyoung  * Verify and strip MIC from the frame.
    331       1.1    dyoung  */
    332       1.1    dyoung static int
    333      1.13      maxv ccmp_demic(struct ieee80211_key *k, struct mbuf *m, int force)
    334       1.1    dyoung {
    335       1.1    dyoung 	return 1;
    336       1.1    dyoung }
    337       1.1    dyoung 
    338       1.1    dyoung static __inline void
    339       1.1    dyoung xor_block(uint8_t *b, const uint8_t *a, size_t len)
    340       1.1    dyoung {
    341       1.1    dyoung 	int i;
    342       1.1    dyoung 	for (i = 0; i < len; i++)
    343       1.1    dyoung 		b[i] ^= a[i];
    344       1.1    dyoung }
    345       1.1    dyoung 
    346       1.1    dyoung /*
    347       1.1    dyoung  * Host AP crypt: host-based CCMP encryption implementation for Host AP driver
    348       1.1    dyoung  *
    349       1.1    dyoung  * Copyright (c) 2003-2004, Jouni Malinen <jkmaline (at) cc.hut.fi>
    350       1.1    dyoung  *
    351       1.1    dyoung  * This program is free software; you can redistribute it and/or modify
    352       1.1    dyoung  * it under the terms of the GNU General Public License version 2 as
    353       1.1    dyoung  * published by the Free Software Foundation. See README and COPYING for
    354       1.1    dyoung  * more details.
    355       1.1    dyoung  *
    356       1.1    dyoung  * Alternatively, this software may be distributed under the terms of BSD
    357       1.1    dyoung  * license.
    358       1.1    dyoung  */
    359       1.1    dyoung 
    360       1.1    dyoung static void
    361       1.1    dyoung ccmp_init_blocks(rijndael_ctx *ctx, struct ieee80211_frame *wh,
    362       1.1    dyoung 	u_int64_t pn, size_t dlen,
    363       1.1    dyoung 	uint8_t b0[AES_BLOCK_LEN], uint8_t aad[2 * AES_BLOCK_LEN],
    364       1.1    dyoung 	uint8_t auth[AES_BLOCK_LEN], uint8_t s0[AES_BLOCK_LEN])
    365       1.1    dyoung {
    366  1.14.2.1      phil #define	IS_QOS_DATA(wh)	IEEE80211_QOS_HAS_SEQ(wh)
    367       1.1    dyoung 
    368       1.1    dyoung 	/* CCM Initial Block:
    369       1.1    dyoung 	 * Flag (Include authentication header, M=3 (8-octet MIC),
    370       1.1    dyoung 	 *       L=1 (2-octet Dlen))
    371       1.1    dyoung 	 * Nonce: 0x00 | A2 | PN
    372       1.1    dyoung 	 * Dlen */
    373       1.1    dyoung 	b0[0] = 0x59;
    374       1.1    dyoung 	/* NB: b0[1] set below */
    375       1.1    dyoung 	IEEE80211_ADDR_COPY(b0 + 2, wh->i_addr2);
    376       1.1    dyoung 	b0[8] = pn >> 40;
    377       1.1    dyoung 	b0[9] = pn >> 32;
    378       1.1    dyoung 	b0[10] = pn >> 24;
    379       1.1    dyoung 	b0[11] = pn >> 16;
    380       1.1    dyoung 	b0[12] = pn >> 8;
    381       1.1    dyoung 	b0[13] = pn >> 0;
    382       1.1    dyoung 	b0[14] = (dlen >> 8) & 0xff;
    383       1.1    dyoung 	b0[15] = dlen & 0xff;
    384       1.1    dyoung 
    385       1.1    dyoung 	/* AAD:
    386       1.1    dyoung 	 * FC with bits 4..6 and 11..13 masked to zero; 14 is always one
    387       1.1    dyoung 	 * A1 | A2 | A3
    388       1.1    dyoung 	 * SC with bits 4..15 (seq#) masked to zero
    389       1.1    dyoung 	 * A4 (if present)
    390       1.1    dyoung 	 * QC (if present)
    391       1.1    dyoung 	 */
    392       1.1    dyoung 	aad[0] = 0;	/* AAD length >> 8 */
    393       1.1    dyoung 	/* NB: aad[1] set below */
    394       1.1    dyoung 	aad[2] = wh->i_fc[0] & 0x8f;	/* XXX magic #s */
    395       1.1    dyoung 	aad[3] = wh->i_fc[1] & 0xc7;	/* XXX magic #s */
    396       1.1    dyoung 	/* NB: we know 3 addresses are contiguous */
    397       1.1    dyoung 	memcpy(aad + 4, wh->i_addr1, 3 * IEEE80211_ADDR_LEN);
    398       1.1    dyoung 	aad[22] = wh->i_seq[0] & IEEE80211_SEQ_FRAG_MASK;
    399       1.1    dyoung 	aad[23] = 0; /* all bits masked */
    400       1.1    dyoung 	/*
    401       1.1    dyoung 	 * Construct variable-length portion of AAD based
    402       1.1    dyoung 	 * on whether this is a 4-address frame/QOS frame.
    403       1.1    dyoung 	 * We always zero-pad to 32 bytes before running it
    404       1.1    dyoung 	 * through the cipher.
    405       1.1    dyoung 	 *
    406       1.1    dyoung 	 * We also fill in the priority bits of the CCM
    407       1.1    dyoung 	 * initial block as we know whether or not we have
    408       1.1    dyoung 	 * a QOS frame.
    409       1.1    dyoung 	 */
    410  1.14.2.1      phil 	if (IEEE80211_IS_DSTODS(wh)) {
    411       1.1    dyoung 		IEEE80211_ADDR_COPY(aad + 24,
    412       1.1    dyoung 			((struct ieee80211_frame_addr4 *)wh)->i_addr4);
    413       1.1    dyoung 		if (IS_QOS_DATA(wh)) {
    414       1.1    dyoung 			struct ieee80211_qosframe_addr4 *qwh4 =
    415       1.1    dyoung 				(struct ieee80211_qosframe_addr4 *) wh;
    416       1.1    dyoung 			aad[30] = qwh4->i_qos[0] & 0x0f;/* just priority bits */
    417       1.1    dyoung 			aad[31] = 0;
    418       1.1    dyoung 			b0[1] = aad[30];
    419       1.1    dyoung 			aad[1] = 22 + IEEE80211_ADDR_LEN + 2;
    420       1.1    dyoung 		} else {
    421  1.14.2.1      phil 			*(uint16_t *)&aad[30] = 0;
    422       1.1    dyoung 			b0[1] = 0;
    423       1.1    dyoung 			aad[1] = 22 + IEEE80211_ADDR_LEN;
    424       1.1    dyoung 		}
    425       1.1    dyoung 	} else {
    426       1.1    dyoung 		if (IS_QOS_DATA(wh)) {
    427       1.1    dyoung 			struct ieee80211_qosframe *qwh =
    428       1.1    dyoung 				(struct ieee80211_qosframe*) wh;
    429       1.1    dyoung 			aad[24] = qwh->i_qos[0] & 0x0f;	/* just priority bits */
    430       1.1    dyoung 			aad[25] = 0;
    431       1.1    dyoung 			b0[1] = aad[24];
    432       1.1    dyoung 			aad[1] = 22 + 2;
    433       1.1    dyoung 		} else {
    434  1.14.2.1      phil 			*(uint16_t *)&aad[24] = 0;
    435       1.1    dyoung 			b0[1] = 0;
    436       1.1    dyoung 			aad[1] = 22;
    437       1.1    dyoung 		}
    438  1.14.2.1      phil 		*(uint16_t *)&aad[26] = 0;
    439  1.14.2.1      phil 		*(uint32_t *)&aad[28] = 0;
    440       1.1    dyoung 	}
    441       1.1    dyoung 
    442       1.1    dyoung 	/* Start with the first block and AAD */
    443       1.1    dyoung 	rijndael_encrypt(ctx, b0, auth);
    444       1.1    dyoung 	xor_block(auth, aad, AES_BLOCK_LEN);
    445       1.1    dyoung 	rijndael_encrypt(ctx, auth, auth);
    446       1.1    dyoung 	xor_block(auth, &aad[AES_BLOCK_LEN], AES_BLOCK_LEN);
    447       1.1    dyoung 	rijndael_encrypt(ctx, auth, auth);
    448       1.1    dyoung 	b0[0] &= 0x07;
    449       1.1    dyoung 	b0[14] = b0[15] = 0;
    450       1.1    dyoung 	rijndael_encrypt(ctx, b0, s0);
    451       1.1    dyoung #undef	IS_QOS_DATA
    452       1.1    dyoung }
    453       1.1    dyoung 
    454       1.1    dyoung #define	CCMP_ENCRYPT(_i, _b, _b0, _pos, _e, _len) do {	\
    455       1.1    dyoung 	/* Authentication */				\
    456       1.1    dyoung 	xor_block(_b, _pos, _len);			\
    457       1.1    dyoung 	rijndael_encrypt(&ctx->cc_aes, _b, _b);		\
    458       1.1    dyoung 	/* Encryption, with counter */			\
    459       1.1    dyoung 	_b0[14] = (_i >> 8) & 0xff;			\
    460       1.1    dyoung 	_b0[15] = _i & 0xff;				\
    461       1.1    dyoung 	rijndael_encrypt(&ctx->cc_aes, _b0, _e);	\
    462       1.1    dyoung 	xor_block(_pos, _e, _len);			\
    463       1.1    dyoung } while (0)
    464       1.1    dyoung 
    465       1.1    dyoung static int
    466       1.1    dyoung ccmp_encrypt(struct ieee80211_key *key, struct mbuf *m0, int hdrlen)
    467       1.1    dyoung {
    468       1.1    dyoung 	struct ccmp_ctx *ctx = key->wk_private;
    469       1.1    dyoung 	struct ieee80211_frame *wh;
    470       1.1    dyoung 	struct mbuf *m = m0;
    471       1.3    dyoung 	int data_len, i, space;
    472       1.1    dyoung 	uint8_t aad[2 * AES_BLOCK_LEN], b0[AES_BLOCK_LEN], b[AES_BLOCK_LEN],
    473       1.1    dyoung 		e[AES_BLOCK_LEN], s0[AES_BLOCK_LEN];
    474       1.1    dyoung 	uint8_t *pos;
    475       1.1    dyoung 
    476  1.14.2.1      phil 	ctx->cc_vap->iv_stats.is_crypto_ccmp++;
    477       1.1    dyoung 
    478       1.1    dyoung 	wh = mtod(m, struct ieee80211_frame *);
    479       1.1    dyoung 	data_len = m->m_pkthdr.len - (hdrlen + ccmp.ic_header);
    480       1.1    dyoung 	ccmp_init_blocks(&ctx->cc_aes, wh, key->wk_keytsc,
    481       1.1    dyoung 		data_len, b0, aad, b, s0);
    482       1.1    dyoung 
    483       1.1    dyoung 	i = 1;
    484       1.1    dyoung 	pos = mtod(m, uint8_t *) + hdrlen + ccmp.ic_header;
    485       1.1    dyoung 	/* NB: assumes header is entirely in first mbuf */
    486       1.1    dyoung 	space = m->m_len - (hdrlen + ccmp.ic_header);
    487       1.1    dyoung 	for (;;) {
    488       1.1    dyoung 		if (space > data_len)
    489       1.1    dyoung 			space = data_len;
    490       1.1    dyoung 		/*
    491       1.1    dyoung 		 * Do full blocks.
    492       1.1    dyoung 		 */
    493       1.1    dyoung 		while (space >= AES_BLOCK_LEN) {
    494       1.1    dyoung 			CCMP_ENCRYPT(i, b, b0, pos, e, AES_BLOCK_LEN);
    495       1.1    dyoung 			pos += AES_BLOCK_LEN, space -= AES_BLOCK_LEN;
    496       1.1    dyoung 			data_len -= AES_BLOCK_LEN;
    497       1.1    dyoung 			i++;
    498       1.1    dyoung 		}
    499       1.1    dyoung 		if (data_len <= 0)		/* no more data */
    500       1.1    dyoung 			break;
    501       1.1    dyoung 		m = m->m_next;
    502       1.1    dyoung 		if (m == NULL) {		/* last buffer */
    503       1.1    dyoung 			if (space != 0) {
    504       1.1    dyoung 				/*
    505       1.1    dyoung 				 * Short last block.
    506       1.1    dyoung 				 */
    507       1.1    dyoung 				CCMP_ENCRYPT(i, b, b0, pos, e, space);
    508       1.1    dyoung 			}
    509       1.1    dyoung 			break;
    510       1.1    dyoung 		}
    511       1.1    dyoung 		if (space != 0) {
    512       1.1    dyoung 			uint8_t *pos_next;
    513       1.3    dyoung 			int space_next;
    514       1.3    dyoung 			int len, dl, sp;
    515       1.3    dyoung 			struct mbuf *n;
    516       1.1    dyoung 
    517       1.1    dyoung 			/*
    518       1.3    dyoung 			 * Block straddles one or more mbufs, gather data
    519       1.3    dyoung 			 * into the block buffer b, apply the cipher, then
    520       1.3    dyoung 			 * scatter the results back into the mbuf chain.
    521       1.3    dyoung 			 * The buffer will automatically get space bytes
    522       1.3    dyoung 			 * of data at offset 0 copied in+out by the
    523       1.3    dyoung 			 * CCMP_ENCRYPT request so we must take care of
    524       1.3    dyoung 			 * the remaining data.
    525       1.1    dyoung 			 */
    526       1.3    dyoung 			n = m;
    527       1.3    dyoung 			dl = data_len;
    528       1.3    dyoung 			sp = space;
    529       1.3    dyoung 			for (;;) {
    530       1.3    dyoung 				pos_next = mtod(n, uint8_t *);
    531  1.14.2.3  christos 				len = uimin(dl, AES_BLOCK_LEN);
    532       1.3    dyoung 				space_next = len > sp ? len - sp : 0;
    533       1.3    dyoung 				if (n->m_len >= space_next) {
    534       1.3    dyoung 					/*
    535       1.3    dyoung 					 * This mbuf has enough data; just grab
    536       1.3    dyoung 					 * what we need and stop.
    537       1.3    dyoung 					 */
    538       1.3    dyoung 					xor_block(b+sp, pos_next, space_next);
    539       1.3    dyoung 					break;
    540       1.3    dyoung 				}
    541       1.3    dyoung 				/*
    542       1.3    dyoung 				 * This mbuf's contents are insufficient,
    543  1.14.2.1      phil 				 * take 'em all and prepare to advance to
    544       1.3    dyoung 				 * the next mbuf.
    545       1.3    dyoung 				 */
    546       1.3    dyoung 				xor_block(b+sp, pos_next, n->m_len);
    547       1.3    dyoung 				sp += n->m_len, dl -= n->m_len;
    548       1.3    dyoung 				n = n->m_next;
    549       1.3    dyoung 				if (n == NULL)
    550       1.3    dyoung 					break;
    551       1.3    dyoung 			}
    552       1.1    dyoung 
    553       1.1    dyoung 			CCMP_ENCRYPT(i, b, b0, pos, e, space);
    554       1.3    dyoung 
    555       1.3    dyoung 			/* NB: just like above, but scatter data to mbufs */
    556       1.3    dyoung 			dl = data_len;
    557       1.3    dyoung 			sp = space;
    558       1.3    dyoung 			for (;;) {
    559       1.3    dyoung 				pos_next = mtod(m, uint8_t *);
    560  1.14.2.3  christos 				len = uimin(dl, AES_BLOCK_LEN);
    561       1.3    dyoung 				space_next = len > sp ? len - sp : 0;
    562       1.3    dyoung 				if (m->m_len >= space_next) {
    563       1.3    dyoung 					xor_block(pos_next, e+sp, space_next);
    564       1.3    dyoung 					break;
    565       1.3    dyoung 				}
    566       1.3    dyoung 				xor_block(pos_next, e+sp, m->m_len);
    567       1.3    dyoung 				sp += m->m_len, dl -= m->m_len;
    568       1.3    dyoung 				m = m->m_next;
    569       1.3    dyoung 				if (m == NULL)
    570       1.3    dyoung 					goto done;
    571       1.3    dyoung 			}
    572       1.3    dyoung 			/*
    573       1.3    dyoung 			 * Do bookkeeping.  m now points to the last mbuf
    574       1.3    dyoung 			 * we grabbed data from.  We know we consumed a
    575       1.3    dyoung 			 * full block of data as otherwise we'd have hit
    576       1.3    dyoung 			 * the end of the mbuf chain, so deduct from data_len.
    577       1.3    dyoung 			 * Otherwise advance the block number (i) and setup
    578       1.3    dyoung 			 * pos+space to reflect contents of the new mbuf.
    579       1.3    dyoung 			 */
    580       1.3    dyoung 			data_len -= AES_BLOCK_LEN;
    581       1.1    dyoung 			i++;
    582       1.1    dyoung 			pos = pos_next + space_next;
    583       1.1    dyoung 			space = m->m_len - space_next;
    584       1.1    dyoung 		} else {
    585       1.1    dyoung 			/*
    586       1.1    dyoung 			 * Setup for next buffer.
    587       1.1    dyoung 			 */
    588       1.1    dyoung 			pos = mtod(m, uint8_t *);
    589       1.1    dyoung 			space = m->m_len;
    590       1.1    dyoung 		}
    591       1.1    dyoung 	}
    592       1.3    dyoung done:
    593       1.1    dyoung 	/* tack on MIC */
    594       1.1    dyoung 	xor_block(b, s0, ccmp.ic_trailer);
    595       1.1    dyoung 	return m_append(m0, ccmp.ic_trailer, b);
    596       1.1    dyoung }
    597       1.1    dyoung #undef CCMP_ENCRYPT
    598       1.1    dyoung 
    599       1.1    dyoung #define	CCMP_DECRYPT(_i, _b, _b0, _pos, _a, _len) do {	\
    600       1.1    dyoung 	/* Decrypt, with counter */			\
    601       1.1    dyoung 	_b0[14] = (_i >> 8) & 0xff;			\
    602       1.1    dyoung 	_b0[15] = _i & 0xff;				\
    603       1.1    dyoung 	rijndael_encrypt(&ctx->cc_aes, _b0, _b);	\
    604       1.1    dyoung 	xor_block(_pos, _b, _len);			\
    605       1.1    dyoung 	/* Authentication */				\
    606       1.1    dyoung 	xor_block(_a, _pos, _len);			\
    607       1.1    dyoung 	rijndael_encrypt(&ctx->cc_aes, _a, _a);		\
    608       1.1    dyoung } while (0)
    609       1.1    dyoung 
    610       1.1    dyoung static int
    611  1.14.2.1      phil ccmp_decrypt(struct ieee80211_key *key, u_int64_t pn, struct mbuf *m, int hdrlen)
    612       1.1    dyoung {
    613       1.1    dyoung 	struct ccmp_ctx *ctx = key->wk_private;
    614  1.14.2.1      phil 	struct ieee80211vap *vap = ctx->cc_vap;
    615       1.1    dyoung 	struct ieee80211_frame *wh;
    616       1.1    dyoung 	uint8_t aad[2 * AES_BLOCK_LEN];
    617       1.1    dyoung 	uint8_t b0[AES_BLOCK_LEN], b[AES_BLOCK_LEN], a[AES_BLOCK_LEN];
    618       1.1    dyoung 	uint8_t mic[AES_BLOCK_LEN];
    619       1.1    dyoung 	size_t data_len;
    620       1.1    dyoung 	int i;
    621       1.1    dyoung 	uint8_t *pos;
    622       1.1    dyoung 	u_int space;
    623       1.1    dyoung 
    624  1.14.2.1      phil 	ctx->cc_vap->iv_stats.is_crypto_ccmp++;
    625       1.1    dyoung 
    626       1.1    dyoung 	wh = mtod(m, struct ieee80211_frame *);
    627       1.1    dyoung 	data_len = m->m_pkthdr.len - (hdrlen + ccmp.ic_header + ccmp.ic_trailer);
    628       1.1    dyoung 	ccmp_init_blocks(&ctx->cc_aes, wh, pn, data_len, b0, aad, a, b);
    629       1.1    dyoung 	m_copydata(m, m->m_pkthdr.len - ccmp.ic_trailer, ccmp.ic_trailer, mic);
    630       1.1    dyoung 	xor_block(mic, b, ccmp.ic_trailer);
    631       1.1    dyoung 
    632       1.1    dyoung 	i = 1;
    633       1.1    dyoung 	pos = mtod(m, uint8_t *) + hdrlen + ccmp.ic_header;
    634       1.1    dyoung 	space = m->m_len - (hdrlen + ccmp.ic_header);
    635       1.1    dyoung 	for (;;) {
    636       1.1    dyoung 		if (space > data_len)
    637       1.1    dyoung 			space = data_len;
    638       1.1    dyoung 		while (space >= AES_BLOCK_LEN) {
    639       1.1    dyoung 			CCMP_DECRYPT(i, b, b0, pos, a, AES_BLOCK_LEN);
    640       1.1    dyoung 			pos += AES_BLOCK_LEN, space -= AES_BLOCK_LEN;
    641       1.1    dyoung 			data_len -= AES_BLOCK_LEN;
    642       1.1    dyoung 			i++;
    643       1.1    dyoung 		}
    644       1.1    dyoung 		if (data_len <= 0)		/* no more data */
    645       1.1    dyoung 			break;
    646       1.1    dyoung 		m = m->m_next;
    647       1.1    dyoung 		if (m == NULL) {		/* last buffer */
    648       1.1    dyoung 			if (space != 0)		/* short last block */
    649       1.1    dyoung 				CCMP_DECRYPT(i, b, b0, pos, a, space);
    650       1.1    dyoung 			break;
    651       1.1    dyoung 		}
    652       1.1    dyoung 		if (space != 0) {
    653       1.1    dyoung 			uint8_t *pos_next;
    654       1.1    dyoung 			u_int space_next;
    655       1.1    dyoung 			u_int len;
    656       1.1    dyoung 
    657       1.1    dyoung 			/*
    658       1.1    dyoung 			 * Block straddles buffers, split references.  We
    659       1.3    dyoung 			 * do not handle splits that require >2 buffers
    660       1.3    dyoung 			 * since rx'd frames are never badly fragmented
    661       1.3    dyoung 			 * because drivers typically recv in clusters.
    662       1.1    dyoung 			 */
    663       1.1    dyoung 			pos_next = mtod(m, uint8_t *);
    664  1.14.2.3  christos 			len = uimin(data_len, AES_BLOCK_LEN);
    665       1.1    dyoung 			space_next = len > space ? len - space : 0;
    666  1.14.2.1      phil 			KASSERT(m->m_len >= space_next,
    667       1.1    dyoung 				("not enough data in following buffer, "
    668       1.1    dyoung 				"m_len %u need %u\n", m->m_len, space_next));
    669       1.1    dyoung 
    670       1.1    dyoung 			xor_block(b+space, pos_next, space_next);
    671       1.1    dyoung 			CCMP_DECRYPT(i, b, b0, pos, a, space);
    672       1.1    dyoung 			xor_block(pos_next, b+space, space_next);
    673       1.1    dyoung 			data_len -= len;
    674       1.1    dyoung 			i++;
    675       1.1    dyoung 
    676       1.1    dyoung 			pos = pos_next + space_next;
    677       1.1    dyoung 			space = m->m_len - space_next;
    678       1.1    dyoung 		} else {
    679       1.1    dyoung 			/*
    680       1.1    dyoung 			 * Setup for next buffer.
    681       1.1    dyoung 			 */
    682       1.1    dyoung 			pos = mtod(m, uint8_t *);
    683       1.1    dyoung 			space = m->m_len;
    684       1.1    dyoung 		}
    685       1.1    dyoung 	}
    686       1.1    dyoung 	if (memcmp(mic, a, ccmp.ic_trailer) != 0) {
    687  1.14.2.1      phil 		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO, wh->i_addr2,
    688  1.14.2.1      phil 		    "%s", "AES-CCM decrypt failed; MIC mismatch");
    689  1.14.2.1      phil 		vap->iv_stats.is_rx_ccmpmic++;
    690       1.1    dyoung 		return 0;
    691       1.1    dyoung 	}
    692       1.1    dyoung 	return 1;
    693       1.1    dyoung }
    694       1.1    dyoung #undef CCMP_DECRYPT
    695       1.4     skrll 
    696  1.14.2.1      phil /*
    697  1.14.2.1      phil  * Module glue.
    698  1.14.2.1      phil  */
    699  1.14.2.1      phil IEEE80211_CRYPTO_MODULE(ccmp, 1);
    700