cgd_crypto.c revision 1.14 1 1.14 alnsn /* $NetBSD: cgd_crypto.c,v 1.14 2016/12/11 00:20:49 alnsn Exp $ */
2 1.1 elric
3 1.1 elric /*-
4 1.1 elric * Copyright (c) 2002 The NetBSD Foundation, Inc.
5 1.1 elric * All rights reserved.
6 1.1 elric *
7 1.1 elric * This code is derived from software contributed to The NetBSD Foundation
8 1.1 elric * by Roland C. Dowdeswell.
9 1.1 elric *
10 1.1 elric * Redistribution and use in source and binary forms, with or without
11 1.1 elric * modification, are permitted provided that the following conditions
12 1.1 elric * are met:
13 1.1 elric * 1. Redistributions of source code must retain the above copyright
14 1.1 elric * notice, this list of conditions and the following disclaimer.
15 1.1 elric * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 elric * notice, this list of conditions and the following disclaimer in the
17 1.1 elric * documentation and/or other materials provided with the distribution.
18 1.1 elric *
19 1.1 elric * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 elric * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 elric * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 elric * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 elric * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 elric * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 elric * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 elric * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 elric * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 elric * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 elric * POSSIBILITY OF SUCH DAMAGE.
30 1.1 elric */
31 1.1 elric
32 1.1 elric /*
33 1.1 elric * Crypto Framework For cgd.c
34 1.1 elric *
35 1.1 elric * This framework is temporary and awaits a more complete
36 1.1 elric * kernel wide crypto implementation.
37 1.1 elric */
38 1.1 elric
39 1.1 elric #include <sys/cdefs.h>
40 1.14 alnsn __KERNEL_RCSID(0, "$NetBSD: cgd_crypto.c,v 1.14 2016/12/11 00:20:49 alnsn Exp $");
41 1.1 elric
42 1.1 elric #include <sys/param.h>
43 1.1 elric #include <sys/systm.h>
44 1.1 elric #include <sys/malloc.h>
45 1.1 elric
46 1.1 elric #include <dev/cgd_crypto.h>
47 1.1 elric
48 1.11 christos #include <crypto/rijndael/rijndael-api-fst.h>
49 1.11 christos #include <crypto/des/des.h>
50 1.11 christos #include <crypto/blowfish/blowfish.h>
51 1.11 christos
52 1.1 elric #ifdef DIAGNOSTIC
53 1.6 christos #define DIAGPANIC(x) panic x
54 1.1 elric #else
55 1.1 elric #define DIAGPANIC(x)
56 1.1 elric #endif
57 1.1 elric
58 1.1 elric /*
59 1.1 elric * The general framework provides only one generic function.
60 1.1 elric * It takes the name of an algorith and returns a struct cryptfuncs *
61 1.1 elric * for it. It is up to the initialisation routines of the algorithm
62 1.1 elric * to check key size and block size.
63 1.1 elric */
64 1.1 elric
65 1.14 alnsn static cfunc_init cgd_cipher_aes_cbc_init;
66 1.14 alnsn static cfunc_destroy cgd_cipher_aes_cbc_destroy;
67 1.14 alnsn static cfunc_cipher cgd_cipher_aes_cbc;
68 1.14 alnsn static cfunc_cipher_prep cgd_cipher_aes_cbc_prep;
69 1.14 alnsn
70 1.14 alnsn static cfunc_init cgd_cipher_aes_xts_init;
71 1.14 alnsn static cfunc_destroy cgd_cipher_aes_xts_destroy;
72 1.14 alnsn static cfunc_cipher cgd_cipher_aes_xts;
73 1.14 alnsn static cfunc_cipher_prep cgd_cipher_aes_xts_prep;
74 1.14 alnsn
75 1.14 alnsn static cfunc_init cgd_cipher_3des_init;
76 1.14 alnsn static cfunc_destroy cgd_cipher_3des_destroy;
77 1.14 alnsn static cfunc_cipher cgd_cipher_3des_cbc;
78 1.14 alnsn static cfunc_cipher_prep cgd_cipher_3des_cbc_prep;
79 1.14 alnsn
80 1.14 alnsn static cfunc_init cgd_cipher_bf_init;
81 1.14 alnsn static cfunc_destroy cgd_cipher_bf_destroy;
82 1.14 alnsn static cfunc_cipher cgd_cipher_bf_cbc;
83 1.14 alnsn static cfunc_cipher_prep cgd_cipher_bf_cbc_prep;
84 1.11 christos
85 1.11 christos static const struct cryptfuncs cf[] = {
86 1.11 christos {
87 1.14 alnsn .cf_name = "aes-xts",
88 1.14 alnsn .cf_init = cgd_cipher_aes_xts_init,
89 1.14 alnsn .cf_destroy = cgd_cipher_aes_xts_destroy,
90 1.14 alnsn .cf_cipher = cgd_cipher_aes_xts,
91 1.14 alnsn .cf_cipher_prep = cgd_cipher_aes_xts_prep,
92 1.14 alnsn },
93 1.14 alnsn {
94 1.11 christos .cf_name = "aes-cbc",
95 1.14 alnsn .cf_init = cgd_cipher_aes_cbc_init,
96 1.14 alnsn .cf_destroy = cgd_cipher_aes_cbc_destroy,
97 1.11 christos .cf_cipher = cgd_cipher_aes_cbc,
98 1.14 alnsn .cf_cipher_prep = cgd_cipher_aes_cbc_prep,
99 1.11 christos },
100 1.11 christos {
101 1.11 christos .cf_name = "3des-cbc",
102 1.11 christos .cf_init = cgd_cipher_3des_init,
103 1.11 christos .cf_destroy = cgd_cipher_3des_destroy,
104 1.11 christos .cf_cipher = cgd_cipher_3des_cbc,
105 1.14 alnsn .cf_cipher_prep = cgd_cipher_3des_cbc_prep,
106 1.11 christos },
107 1.11 christos {
108 1.11 christos .cf_name = "blowfish-cbc",
109 1.11 christos .cf_init = cgd_cipher_bf_init,
110 1.11 christos .cf_destroy = cgd_cipher_bf_destroy,
111 1.11 christos .cf_cipher = cgd_cipher_bf_cbc,
112 1.14 alnsn .cf_cipher_prep = cgd_cipher_bf_cbc_prep,
113 1.11 christos },
114 1.11 christos };
115 1.11 christos const struct cryptfuncs *
116 1.6 christos cryptfuncs_find(const char *alg)
117 1.1 elric {
118 1.1 elric
119 1.11 christos for (size_t i = 0; i < __arraycount(cf); i++)
120 1.11 christos if (strcmp(cf[i].cf_name, alg) == 0)
121 1.11 christos return &cf[i];
122 1.11 christos
123 1.1 elric return NULL;
124 1.1 elric }
125 1.1 elric
126 1.7 cbiere typedef void (*cipher_func)(void *, void *, const void *, size_t);
127 1.1 elric
128 1.11 christos static void
129 1.14 alnsn cgd_cipher_uio(void *privdata, cipher_func cipher,
130 1.1 elric struct uio *dstuio, struct uio *srcuio);
131 1.1 elric
132 1.1 elric /*
133 1.14 alnsn * cgd_cipher_uio takes a simple cbc or xts cipher and iterates
134 1.1 elric * it over two struct uio's. It presumes that the cipher function
135 1.1 elric * that is passed to it keeps the IV state between calls.
136 1.1 elric *
137 1.1 elric * We assume that the caller has ensured that each segment is evenly
138 1.1 elric * divisible by the block size, which for the cgd is a valid assumption.
139 1.1 elric * If we were to make this code more generic, we might need to take care
140 1.1 elric * of this case, either by issuing an error or copying the data.
141 1.1 elric */
142 1.1 elric
143 1.11 christos static void
144 1.14 alnsn cgd_cipher_uio(void *privdata, cipher_func cipher,
145 1.6 christos struct uio *dstuio, struct uio *srcuio)
146 1.1 elric {
147 1.13 riastrad const struct iovec *dst;
148 1.13 riastrad const struct iovec *src;
149 1.1 elric int dstnum;
150 1.1 elric int dstoff = 0;
151 1.1 elric int srcnum;
152 1.1 elric int srcoff = 0;
153 1.1 elric
154 1.1 elric dst = dstuio->uio_iov;
155 1.1 elric dstnum = dstuio->uio_iovcnt;
156 1.1 elric src = srcuio->uio_iov;
157 1.1 elric srcnum = srcuio->uio_iovcnt;
158 1.1 elric for (;;) {
159 1.1 elric int l = MIN(dst->iov_len - dstoff, src->iov_len - srcoff);
160 1.1 elric u_int8_t *d = (u_int8_t *)dst->iov_base + dstoff;
161 1.13 riastrad const u_int8_t *s = (const u_int8_t *)src->iov_base + srcoff;
162 1.1 elric
163 1.1 elric cipher(privdata, d, s, l);
164 1.1 elric
165 1.1 elric dstoff += l;
166 1.1 elric srcoff += l;
167 1.1 elric /*
168 1.1 elric * We assume that {dst,src} == {dst,src}->iov_len,
169 1.1 elric * because it should not be possible for it not to be.
170 1.1 elric */
171 1.1 elric if (dstoff == dst->iov_len) {
172 1.1 elric dstoff = 0;
173 1.1 elric dstnum--;
174 1.1 elric dst++;
175 1.1 elric }
176 1.1 elric if (srcoff == src->iov_len) {
177 1.1 elric srcoff = 0;
178 1.1 elric srcnum--;
179 1.1 elric src++;
180 1.1 elric }
181 1.1 elric if (!srcnum || !dstnum)
182 1.1 elric break;
183 1.1 elric }
184 1.1 elric }
185 1.1 elric
186 1.1 elric /*
187 1.1 elric * AES Framework
188 1.1 elric */
189 1.1 elric
190 1.1 elric /*
191 1.1 elric * NOTE: we do not store the blocksize in here, because it is not
192 1.1 elric * variable [yet], we hardcode the blocksize to 16 (128 bits).
193 1.1 elric */
194 1.1 elric
195 1.1 elric struct aes_privdata {
196 1.1 elric keyInstance ap_enckey;
197 1.1 elric keyInstance ap_deckey;
198 1.1 elric };
199 1.1 elric
200 1.1 elric struct aes_encdata {
201 1.1 elric keyInstance *ae_key; /* key for this direction */
202 1.1 elric u_int8_t ae_iv[16]; /* Initialization Vector */
203 1.1 elric };
204 1.1 elric
205 1.11 christos static void *
206 1.14 alnsn cgd_cipher_aes_cbc_init(size_t keylen, const void *key, size_t *blocksize)
207 1.1 elric {
208 1.1 elric struct aes_privdata *ap;
209 1.1 elric
210 1.1 elric if (!blocksize)
211 1.1 elric return NULL;
212 1.1 elric if (keylen != 128 && keylen != 192 && keylen != 256)
213 1.1 elric return NULL;
214 1.6 christos if (*blocksize == (size_t)-1)
215 1.1 elric *blocksize = 128;
216 1.1 elric if (*blocksize != 128)
217 1.1 elric return NULL;
218 1.1 elric ap = malloc(sizeof(*ap), M_DEVBUF, 0);
219 1.1 elric if (!ap)
220 1.1 elric return NULL;
221 1.1 elric rijndael_makeKey(&ap->ap_enckey, DIR_ENCRYPT, keylen, key);
222 1.1 elric rijndael_makeKey(&ap->ap_deckey, DIR_DECRYPT, keylen, key);
223 1.6 christos return ap;
224 1.1 elric }
225 1.1 elric
226 1.11 christos static void
227 1.14 alnsn cgd_cipher_aes_cbc_destroy(void *data)
228 1.1 elric {
229 1.6 christos struct aes_privdata *apd = data;
230 1.1 elric
231 1.12 riastrad explicit_memset(apd, 0, sizeof(*apd));
232 1.1 elric free(apd, M_DEVBUF);
233 1.1 elric }
234 1.1 elric
235 1.11 christos static void
236 1.14 alnsn cgd_cipher_aes_cbc_prep(void *privdata, char *iv,
237 1.14 alnsn const char *blkno_buf, size_t blocksize, int dir)
238 1.14 alnsn {
239 1.14 alnsn struct aes_privdata *apd = privdata;
240 1.14 alnsn cipherInstance cipher;
241 1.14 alnsn int cipher_ok __diagused;
242 1.14 alnsn
243 1.14 alnsn cipher_ok = rijndael_cipherInit(&cipher, MODE_CBC, NULL);
244 1.14 alnsn KASSERT(cipher_ok > 0);
245 1.14 alnsn rijndael_blockEncrypt(&cipher, &apd->ap_enckey,
246 1.14 alnsn blkno_buf, blocksize * 8, iv);
247 1.14 alnsn if (blocksize > 16)
248 1.14 alnsn (void)memmove(iv, iv + blocksize - 16, 16);
249 1.14 alnsn }
250 1.14 alnsn
251 1.14 alnsn static void
252 1.7 cbiere aes_cbc_enc_int(void *privdata, void *dst, const void *src, size_t len)
253 1.1 elric {
254 1.6 christos struct aes_encdata *ae = privdata;
255 1.1 elric cipherInstance cipher;
256 1.14 alnsn int cipher_ok __diagused;
257 1.1 elric
258 1.14 alnsn cipher_ok = rijndael_cipherInit(&cipher, MODE_CBC, ae->ae_iv);
259 1.14 alnsn KASSERT(cipher_ok > 0);
260 1.1 elric rijndael_blockEncrypt(&cipher, ae->ae_key, src, len * 8, dst);
261 1.6 christos (void)memcpy(ae->ae_iv, (u_int8_t *)dst + (len - 16), 16);
262 1.1 elric }
263 1.1 elric
264 1.11 christos static void
265 1.7 cbiere aes_cbc_dec_int(void *privdata, void *dst, const void *src, size_t len)
266 1.1 elric {
267 1.6 christos struct aes_encdata *ae = privdata;
268 1.1 elric cipherInstance cipher;
269 1.14 alnsn int cipher_ok __diagused;
270 1.1 elric
271 1.14 alnsn cipher_ok = rijndael_cipherInit(&cipher, MODE_CBC, ae->ae_iv);
272 1.14 alnsn KASSERT(cipher_ok > 0);
273 1.1 elric rijndael_blockDecrypt(&cipher, ae->ae_key, src, len * 8, dst);
274 1.7 cbiere (void)memcpy(ae->ae_iv, (const u_int8_t *)src + (len - 16), 16);
275 1.1 elric }
276 1.1 elric
277 1.11 christos static void
278 1.6 christos cgd_cipher_aes_cbc(void *privdata, struct uio *dstuio,
279 1.13 riastrad struct uio *srcuio, const void *iv, int dir)
280 1.1 elric {
281 1.6 christos struct aes_privdata *apd = privdata;
282 1.1 elric struct aes_encdata encd;
283 1.1 elric
284 1.6 christos (void)memcpy(encd.ae_iv, iv, 16);
285 1.1 elric switch (dir) {
286 1.1 elric case CGD_CIPHER_ENCRYPT:
287 1.1 elric encd.ae_key = &apd->ap_enckey;
288 1.14 alnsn cgd_cipher_uio(&encd, aes_cbc_enc_int, dstuio, srcuio);
289 1.1 elric break;
290 1.1 elric case CGD_CIPHER_DECRYPT:
291 1.1 elric encd.ae_key = &apd->ap_deckey;
292 1.14 alnsn cgd_cipher_uio(&encd, aes_cbc_dec_int, dstuio, srcuio);
293 1.14 alnsn break;
294 1.14 alnsn default:
295 1.14 alnsn DIAGPANIC(("%s: unrecognised direction %d", __func__, dir));
296 1.14 alnsn }
297 1.14 alnsn }
298 1.14 alnsn
299 1.14 alnsn static void *
300 1.14 alnsn cgd_cipher_aes_xts_init(size_t keylen, const void *xtskey, size_t *blocksize)
301 1.14 alnsn {
302 1.14 alnsn struct aes_privdata *ap;
303 1.14 alnsn const char *key, *key2; /* XTS key is made of two AES keys. */
304 1.14 alnsn
305 1.14 alnsn if (!blocksize)
306 1.14 alnsn return NULL;
307 1.14 alnsn if (keylen != 256 && keylen != 512)
308 1.14 alnsn return NULL;
309 1.14 alnsn if (*blocksize == (size_t)-1)
310 1.14 alnsn *blocksize = 128;
311 1.14 alnsn if (*blocksize != 128)
312 1.14 alnsn return NULL;
313 1.14 alnsn ap = malloc(2 * sizeof(*ap), M_DEVBUF, 0);
314 1.14 alnsn if (!ap)
315 1.14 alnsn return NULL;
316 1.14 alnsn
317 1.14 alnsn keylen /= 2;
318 1.14 alnsn key = xtskey;
319 1.14 alnsn key2 = key + keylen / CHAR_BIT;
320 1.14 alnsn
321 1.14 alnsn rijndael_makeKey(&ap[0].ap_enckey, DIR_ENCRYPT, keylen, key);
322 1.14 alnsn rijndael_makeKey(&ap[0].ap_deckey, DIR_DECRYPT, keylen, key);
323 1.14 alnsn rijndael_makeKey(&ap[1].ap_enckey, DIR_ENCRYPT, keylen, key2);
324 1.14 alnsn
325 1.14 alnsn return ap;
326 1.14 alnsn }
327 1.14 alnsn
328 1.14 alnsn static void
329 1.14 alnsn cgd_cipher_aes_xts_destroy(void *data)
330 1.14 alnsn {
331 1.14 alnsn struct aes_privdata *apd = data;
332 1.14 alnsn
333 1.14 alnsn explicit_memset(apd, 0, 2 * sizeof(*apd));
334 1.14 alnsn free(apd, M_DEVBUF);
335 1.14 alnsn }
336 1.14 alnsn
337 1.14 alnsn static void
338 1.14 alnsn cgd_cipher_aes_xts_prep(void *privdata, char *iv,
339 1.14 alnsn const char *blkno_buf, size_t blocksize, int dir)
340 1.14 alnsn {
341 1.14 alnsn struct aes_privdata *apd = privdata;
342 1.14 alnsn cipherInstance cipher;
343 1.14 alnsn int cipher_ok __diagused;
344 1.14 alnsn
345 1.14 alnsn cipher_ok = rijndael_cipherInit(&cipher, MODE_ECB, NULL);
346 1.14 alnsn KASSERT(cipher_ok > 0);
347 1.14 alnsn rijndael_blockEncrypt(&cipher, &apd[1].ap_enckey,
348 1.14 alnsn blkno_buf, blocksize * 8, iv);
349 1.14 alnsn }
350 1.14 alnsn
351 1.14 alnsn static void
352 1.14 alnsn aes_xts_enc_int(void *privdata, void *dst, const void *src, size_t len)
353 1.14 alnsn {
354 1.14 alnsn struct aes_encdata *ae = privdata;
355 1.14 alnsn cipherInstance cipher;
356 1.14 alnsn int cipher_ok __diagused;
357 1.14 alnsn
358 1.14 alnsn cipher_ok = rijndael_cipherInit(&cipher, MODE_XTS, ae->ae_iv);
359 1.14 alnsn KASSERT(cipher_ok > 0);
360 1.14 alnsn rijndael_blockEncrypt(&cipher, ae->ae_key, src, len * 8, dst);
361 1.14 alnsn (void)memcpy(ae->ae_iv, cipher.IV, 16);
362 1.14 alnsn }
363 1.14 alnsn
364 1.14 alnsn static void
365 1.14 alnsn aes_xts_dec_int(void *privdata, void *dst, const void *src, size_t len)
366 1.14 alnsn {
367 1.14 alnsn struct aes_encdata *ae = privdata;
368 1.14 alnsn cipherInstance cipher;
369 1.14 alnsn int cipher_ok __diagused;
370 1.14 alnsn
371 1.14 alnsn cipher_ok = rijndael_cipherInit(&cipher, MODE_XTS, ae->ae_iv);
372 1.14 alnsn KASSERT(cipher_ok > 0);
373 1.14 alnsn rijndael_blockDecrypt(&cipher, ae->ae_key, src, len * 8, dst);
374 1.14 alnsn (void)memcpy(ae->ae_iv, cipher.IV, 16);
375 1.14 alnsn }
376 1.14 alnsn
377 1.14 alnsn static void
378 1.14 alnsn cgd_cipher_aes_xts(void *privdata, struct uio *dstuio,
379 1.14 alnsn struct uio *srcuio, const void *iv, int dir)
380 1.14 alnsn {
381 1.14 alnsn struct aes_privdata *apd = privdata;
382 1.14 alnsn struct aes_encdata encd;
383 1.14 alnsn
384 1.14 alnsn (void)memcpy(encd.ae_iv, iv, 16);
385 1.14 alnsn switch (dir) {
386 1.14 alnsn case CGD_CIPHER_ENCRYPT:
387 1.14 alnsn encd.ae_key = &apd->ap_enckey;
388 1.14 alnsn cgd_cipher_uio(&encd, aes_xts_enc_int, dstuio, srcuio);
389 1.14 alnsn break;
390 1.14 alnsn case CGD_CIPHER_DECRYPT:
391 1.14 alnsn encd.ae_key = &apd->ap_deckey;
392 1.14 alnsn cgd_cipher_uio(&encd, aes_xts_dec_int, dstuio, srcuio);
393 1.1 elric break;
394 1.1 elric default:
395 1.8 perry DIAGPANIC(("%s: unrecognised direction %d", __func__, dir));
396 1.1 elric }
397 1.1 elric }
398 1.1 elric
399 1.1 elric /*
400 1.1 elric * 3DES Framework
401 1.1 elric */
402 1.1 elric
403 1.1 elric struct c3des_privdata {
404 1.1 elric des_key_schedule cp_key1;
405 1.1 elric des_key_schedule cp_key2;
406 1.1 elric des_key_schedule cp_key3;
407 1.1 elric };
408 1.1 elric
409 1.1 elric struct c3des_encdata {
410 1.1 elric des_key_schedule *ce_key1;
411 1.1 elric des_key_schedule *ce_key2;
412 1.1 elric des_key_schedule *ce_key3;
413 1.1 elric u_int8_t ce_iv[8];
414 1.1 elric };
415 1.1 elric
416 1.11 christos static void *
417 1.7 cbiere cgd_cipher_3des_init(size_t keylen, const void *key, size_t *blocksize)
418 1.1 elric {
419 1.1 elric struct c3des_privdata *cp;
420 1.1 elric int error = 0;
421 1.7 cbiere des_cblock *block;
422 1.1 elric
423 1.1 elric if (!blocksize)
424 1.1 elric return NULL;
425 1.6 christos if (*blocksize == (size_t)-1)
426 1.1 elric *blocksize = 64;
427 1.1 elric if (keylen != (DES_KEY_SZ * 3 * 8) || *blocksize != 64)
428 1.1 elric return NULL;
429 1.1 elric cp = malloc(sizeof(*cp), M_DEVBUF, 0);
430 1.1 elric if (!cp)
431 1.1 elric return NULL;
432 1.7 cbiere block = __UNCONST(key);
433 1.7 cbiere error = des_key_sched(block, cp->cp_key1);
434 1.7 cbiere error |= des_key_sched(block + 1, cp->cp_key2);
435 1.7 cbiere error |= des_key_sched(block + 2, cp->cp_key3);
436 1.1 elric if (error) {
437 1.12 riastrad explicit_memset(cp, 0, sizeof(*cp));
438 1.1 elric free(cp, M_DEVBUF);
439 1.1 elric return NULL;
440 1.1 elric }
441 1.6 christos return cp;
442 1.1 elric }
443 1.1 elric
444 1.11 christos static void
445 1.6 christos cgd_cipher_3des_destroy(void *data)
446 1.1 elric {
447 1.6 christos struct c3des_privdata *cp = data;
448 1.1 elric
449 1.12 riastrad explicit_memset(cp, 0, sizeof(*cp));
450 1.1 elric free(cp, M_DEVBUF);
451 1.1 elric }
452 1.1 elric
453 1.1 elric static void
454 1.14 alnsn cgd_cipher_3des_cbc_prep(void *privdata, char *iv,
455 1.14 alnsn const char *blkno_buf, size_t blocksize, int dir)
456 1.14 alnsn {
457 1.14 alnsn struct c3des_privdata *cp = privdata;
458 1.14 alnsn char zero_iv[8];
459 1.14 alnsn
460 1.14 alnsn memset(zero_iv, 0, sizeof(zero_iv));
461 1.14 alnsn des_ede3_cbc_encrypt(blkno_buf, iv, blocksize,
462 1.14 alnsn cp->cp_key1, cp->cp_key2, cp->cp_key3, (des_cblock *)zero_iv, 1);
463 1.14 alnsn if (blocksize > 8)
464 1.14 alnsn (void)memmove(iv, iv + blocksize - 8, 8);
465 1.14 alnsn }
466 1.14 alnsn
467 1.14 alnsn static void
468 1.7 cbiere c3des_cbc_enc_int(void *privdata, void *dst, const void *src, size_t len)
469 1.1 elric {
470 1.6 christos struct c3des_encdata *ce = privdata;
471 1.1 elric
472 1.1 elric des_ede3_cbc_encrypt(src, dst, len, *ce->ce_key1, *ce->ce_key2,
473 1.1 elric *ce->ce_key3, (des_cblock *)ce->ce_iv, 1);
474 1.7 cbiere (void)memcpy(ce->ce_iv, (const u_int8_t *)dst + (len - 8), 8);
475 1.1 elric }
476 1.1 elric
477 1.1 elric static void
478 1.7 cbiere c3des_cbc_dec_int(void *privdata, void *dst, const void *src, size_t len)
479 1.1 elric {
480 1.6 christos struct c3des_encdata *ce = privdata;
481 1.1 elric
482 1.1 elric des_ede3_cbc_encrypt(src, dst, len, *ce->ce_key1, *ce->ce_key2,
483 1.1 elric *ce->ce_key3, (des_cblock *)ce->ce_iv, 0);
484 1.7 cbiere (void)memcpy(ce->ce_iv, (const u_int8_t *)src + (len - 8), 8);
485 1.1 elric }
486 1.1 elric
487 1.11 christos static void
488 1.6 christos cgd_cipher_3des_cbc(void *privdata, struct uio *dstuio,
489 1.13 riastrad struct uio *srcuio, const void *iv, int dir)
490 1.1 elric {
491 1.6 christos struct c3des_privdata *cp = privdata;
492 1.1 elric struct c3des_encdata ce;
493 1.1 elric
494 1.6 christos (void)memcpy(ce.ce_iv, iv, 8);
495 1.1 elric ce.ce_key1 = &cp->cp_key1;
496 1.1 elric ce.ce_key2 = &cp->cp_key2;
497 1.1 elric ce.ce_key3 = &cp->cp_key3;
498 1.1 elric switch (dir) {
499 1.1 elric case CGD_CIPHER_ENCRYPT:
500 1.14 alnsn cgd_cipher_uio(&ce, c3des_cbc_enc_int, dstuio, srcuio);
501 1.1 elric break;
502 1.1 elric case CGD_CIPHER_DECRYPT:
503 1.14 alnsn cgd_cipher_uio(&ce, c3des_cbc_dec_int, dstuio, srcuio);
504 1.1 elric break;
505 1.1 elric default:
506 1.8 perry DIAGPANIC(("%s: unrecognised direction %d", __func__, dir));
507 1.1 elric }
508 1.1 elric }
509 1.1 elric
510 1.1 elric /*
511 1.1 elric * Blowfish Framework
512 1.1 elric */
513 1.1 elric
514 1.1 elric struct bf_privdata {
515 1.1 elric BF_KEY bp_key;
516 1.1 elric };
517 1.1 elric
518 1.1 elric struct bf_encdata {
519 1.1 elric BF_KEY *be_key;
520 1.1 elric u_int8_t be_iv[8];
521 1.1 elric };
522 1.1 elric
523 1.11 christos static void *
524 1.7 cbiere cgd_cipher_bf_init(size_t keylen, const void *key, size_t *blocksize)
525 1.1 elric {
526 1.1 elric struct bf_privdata *bp;
527 1.1 elric
528 1.1 elric if (!blocksize)
529 1.1 elric return NULL;
530 1.3 dan if (keylen < 40 || keylen > 448 || (keylen % 8 != 0))
531 1.1 elric return NULL;
532 1.6 christos if (*blocksize == (size_t)-1)
533 1.1 elric *blocksize = 64;
534 1.1 elric if (*blocksize != 64)
535 1.1 elric return NULL;
536 1.1 elric bp = malloc(sizeof(*bp), M_DEVBUF, 0);
537 1.1 elric if (!bp)
538 1.1 elric return NULL;
539 1.3 dan BF_set_key(&bp->bp_key, keylen / 8, key);
540 1.6 christos return bp;
541 1.1 elric }
542 1.1 elric
543 1.11 christos static void
544 1.6 christos cgd_cipher_bf_destroy(void *data)
545 1.1 elric {
546 1.6 christos struct bf_privdata *bp = data;
547 1.1 elric
548 1.12 riastrad explicit_memset(bp, 0, sizeof(*bp));
549 1.1 elric free(bp, M_DEVBUF);
550 1.1 elric }
551 1.1 elric
552 1.11 christos static void
553 1.14 alnsn cgd_cipher_bf_cbc_prep(void *privdata, char *iv,
554 1.14 alnsn const char *blkno_buf, size_t blocksize, int dir)
555 1.14 alnsn {
556 1.14 alnsn struct bf_privdata *bp = privdata;
557 1.14 alnsn char zero_iv[8];
558 1.14 alnsn
559 1.14 alnsn memset(zero_iv, 0, sizeof(zero_iv));
560 1.14 alnsn BF_cbc_encrypt(blkno_buf, iv, blocksize, &bp->bp_key, zero_iv, 1);
561 1.14 alnsn if (blocksize > 8)
562 1.14 alnsn (void)memmove(iv, iv + blocksize - 8, 8);
563 1.14 alnsn }
564 1.14 alnsn
565 1.14 alnsn static void
566 1.7 cbiere bf_cbc_enc_int(void *privdata, void *dst, const void *src, size_t len)
567 1.1 elric {
568 1.6 christos struct bf_encdata *be = privdata;
569 1.1 elric
570 1.1 elric BF_cbc_encrypt(src, dst, len, be->be_key, be->be_iv, 1);
571 1.6 christos (void)memcpy(be->be_iv, (u_int8_t *)dst + (len - 8), 8);
572 1.1 elric }
573 1.1 elric
574 1.11 christos static void
575 1.7 cbiere bf_cbc_dec_int(void *privdata, void *dst, const void *src, size_t len)
576 1.1 elric {
577 1.6 christos struct bf_encdata *be = privdata;
578 1.1 elric
579 1.1 elric BF_cbc_encrypt(src, dst, len, be->be_key, be->be_iv, 0);
580 1.7 cbiere (void)memcpy(be->be_iv, (const u_int8_t *)src + (len - 8), 8);
581 1.1 elric }
582 1.1 elric
583 1.11 christos static void
584 1.6 christos cgd_cipher_bf_cbc(void *privdata, struct uio *dstuio,
585 1.13 riastrad struct uio *srcuio, const void *iv, int dir)
586 1.1 elric {
587 1.6 christos struct bf_privdata *bp = privdata;
588 1.1 elric struct bf_encdata be;
589 1.1 elric
590 1.6 christos (void)memcpy(be.be_iv, iv, 8);
591 1.1 elric be.be_key = &bp->bp_key;
592 1.1 elric switch (dir) {
593 1.1 elric case CGD_CIPHER_ENCRYPT:
594 1.14 alnsn cgd_cipher_uio(&be, bf_cbc_enc_int, dstuio, srcuio);
595 1.1 elric break;
596 1.1 elric case CGD_CIPHER_DECRYPT:
597 1.14 alnsn cgd_cipher_uio(&be, bf_cbc_dec_int, dstuio, srcuio);
598 1.1 elric break;
599 1.1 elric default:
600 1.8 perry DIAGPANIC(("%s: unrecognised direction %d", __func__, dir));
601 1.1 elric }
602 1.1 elric
603 1.1 elric }
604