cryptosoft.c revision 1.19 1 1.19 tls /* $NetBSD: cryptosoft.c,v 1.19 2008/02/02 04:46:29 tls Exp $ */
2 1.1 jonathan /* $FreeBSD: src/sys/opencrypto/cryptosoft.c,v 1.2.2.1 2002/11/21 23:34:23 sam Exp $ */
3 1.1 jonathan /* $OpenBSD: cryptosoft.c,v 1.35 2002/04/26 08:43:50 deraadt Exp $ */
4 1.1 jonathan
5 1.1 jonathan /*
6 1.1 jonathan * The author of this code is Angelos D. Keromytis (angelos (at) cis.upenn.edu)
7 1.1 jonathan *
8 1.1 jonathan * This code was written by Angelos D. Keromytis in Athens, Greece, in
9 1.1 jonathan * February 2000. Network Security Technologies Inc. (NSTI) kindly
10 1.1 jonathan * supported the development of this code.
11 1.1 jonathan *
12 1.1 jonathan * Copyright (c) 2000, 2001 Angelos D. Keromytis
13 1.1 jonathan *
14 1.1 jonathan * Permission to use, copy, and modify this software with or without fee
15 1.1 jonathan * is hereby granted, provided that this entire notice is included in
16 1.1 jonathan * all source code copies of any software which is or includes a copy or
17 1.1 jonathan * modification of this software.
18 1.1 jonathan *
19 1.1 jonathan * THIS SOFTWARE IS BEING PROVIDED "AS IS", WITHOUT ANY EXPRESS OR
20 1.1 jonathan * IMPLIED WARRANTY. IN PARTICULAR, NONE OF THE AUTHORS MAKES ANY
21 1.1 jonathan * REPRESENTATION OR WARRANTY OF ANY KIND CONCERNING THE
22 1.1 jonathan * MERCHANTABILITY OF THIS SOFTWARE OR ITS FITNESS FOR ANY PARTICULAR
23 1.1 jonathan * PURPOSE.
24 1.1 jonathan */
25 1.1 jonathan
26 1.1 jonathan #include <sys/cdefs.h>
27 1.19 tls __KERNEL_RCSID(0, "$NetBSD: cryptosoft.c,v 1.19 2008/02/02 04:46:29 tls Exp $");
28 1.1 jonathan
29 1.1 jonathan #include <sys/param.h>
30 1.1 jonathan #include <sys/systm.h>
31 1.1 jonathan #include <sys/malloc.h>
32 1.1 jonathan #include <sys/mbuf.h>
33 1.1 jonathan #include <sys/sysctl.h>
34 1.1 jonathan #include <sys/errno.h>
35 1.5 jonathan
36 1.1 jonathan #include <opencrypto/cryptodev.h>
37 1.1 jonathan #include <opencrypto/cryptosoft.h>
38 1.1 jonathan #include <opencrypto/xform.h>
39 1.1 jonathan
40 1.10 thorpej #include <opencrypto/cryptosoft_xform.c>
41 1.1 jonathan
42 1.10 thorpej union authctx {
43 1.10 thorpej MD5_CTX md5ctx;
44 1.10 thorpej SHA1_CTX sha1ctx;
45 1.10 thorpej RMD160_CTX rmd160ctx;
46 1.10 thorpej SHA256_CTX sha256ctx;
47 1.10 thorpej SHA384_CTX sha384ctx;
48 1.10 thorpej SHA512_CTX sha512ctx;
49 1.1 jonathan };
50 1.1 jonathan
51 1.1 jonathan struct swcr_data **swcr_sessions = NULL;
52 1.1 jonathan u_int32_t swcr_sesnum = 0;
53 1.1 jonathan int32_t swcr_id = -1;
54 1.1 jonathan
55 1.1 jonathan #define COPYBACK(x, a, b, c, d) \
56 1.1 jonathan (x) == CRYPTO_BUF_MBUF ? m_copyback((struct mbuf *)a,b,c,d) \
57 1.1 jonathan : cuio_copyback((struct uio *)a,b,c,d)
58 1.1 jonathan #define COPYDATA(x, a, b, c, d) \
59 1.1 jonathan (x) == CRYPTO_BUF_MBUF ? m_copydata((struct mbuf *)a,b,c,d) \
60 1.1 jonathan : cuio_copydata((struct uio *)a,b,c,d)
61 1.1 jonathan
62 1.17 christos static int swcr_encdec(struct cryptodesc *, struct swcr_data *, void *, int);
63 1.17 christos static int swcr_compdec(struct cryptodesc *, struct swcr_data *, void *, int);
64 1.1 jonathan static int swcr_process(void *, struct cryptop *, int);
65 1.1 jonathan static int swcr_newsession(void *, u_int32_t *, struct cryptoini *);
66 1.1 jonathan static int swcr_freesession(void *, u_int64_t);
67 1.1 jonathan
68 1.1 jonathan /*
69 1.1 jonathan * Apply a symmetric encryption/decryption algorithm.
70 1.1 jonathan */
71 1.1 jonathan static int
72 1.17 christos swcr_encdec(struct cryptodesc *crd, struct swcr_data *sw, void *bufv,
73 1.1 jonathan int outtype)
74 1.1 jonathan {
75 1.17 christos char *buf = bufv;
76 1.1 jonathan unsigned char iv[EALG_MAX_BLOCK_LEN], blk[EALG_MAX_BLOCK_LEN], *idat;
77 1.1 jonathan unsigned char *ivp, piv[EALG_MAX_BLOCK_LEN];
78 1.10 thorpej const struct swcr_enc_xform *exf;
79 1.1 jonathan int i, k, j, blks;
80 1.1 jonathan int count, ind;
81 1.1 jonathan
82 1.1 jonathan exf = sw->sw_exf;
83 1.10 thorpej blks = exf->enc_xform->blocksize;
84 1.1 jonathan
85 1.1 jonathan /* Check for non-padded data */
86 1.1 jonathan if (crd->crd_len % blks)
87 1.1 jonathan return EINVAL;
88 1.1 jonathan
89 1.1 jonathan /* Initialize the IV */
90 1.1 jonathan if (crd->crd_flags & CRD_F_ENCRYPT) {
91 1.1 jonathan /* IV explicitly provided ? */
92 1.1 jonathan if (crd->crd_flags & CRD_F_IV_EXPLICIT)
93 1.1 jonathan bcopy(crd->crd_iv, iv, blks);
94 1.1 jonathan else {
95 1.1 jonathan /* Get random IV */
96 1.1 jonathan for (i = 0;
97 1.1 jonathan i + sizeof (u_int32_t) < EALG_MAX_BLOCK_LEN;
98 1.1 jonathan i += sizeof (u_int32_t)) {
99 1.1 jonathan u_int32_t temp = arc4random();
100 1.1 jonathan
101 1.1 jonathan bcopy(&temp, iv + i, sizeof(u_int32_t));
102 1.1 jonathan }
103 1.1 jonathan /*
104 1.1 jonathan * What if the block size is not a multiple
105 1.1 jonathan * of sizeof (u_int32_t), which is the size of
106 1.1 jonathan * what arc4random() returns ?
107 1.1 jonathan */
108 1.1 jonathan if (EALG_MAX_BLOCK_LEN % sizeof (u_int32_t) != 0) {
109 1.1 jonathan u_int32_t temp = arc4random();
110 1.1 jonathan
111 1.1 jonathan bcopy (&temp, iv + i,
112 1.1 jonathan EALG_MAX_BLOCK_LEN - i);
113 1.1 jonathan }
114 1.1 jonathan }
115 1.1 jonathan
116 1.1 jonathan /* Do we need to write the IV */
117 1.1 jonathan if (!(crd->crd_flags & CRD_F_IV_PRESENT)) {
118 1.1 jonathan COPYBACK(outtype, buf, crd->crd_inject, blks, iv);
119 1.1 jonathan }
120 1.1 jonathan
121 1.1 jonathan } else { /* Decryption */
122 1.1 jonathan /* IV explicitly provided ? */
123 1.1 jonathan if (crd->crd_flags & CRD_F_IV_EXPLICIT)
124 1.1 jonathan bcopy(crd->crd_iv, iv, blks);
125 1.1 jonathan else {
126 1.1 jonathan /* Get IV off buf */
127 1.1 jonathan COPYDATA(outtype, buf, crd->crd_inject, blks, iv);
128 1.1 jonathan }
129 1.1 jonathan }
130 1.1 jonathan
131 1.1 jonathan ivp = iv;
132 1.1 jonathan
133 1.1 jonathan if (outtype == CRYPTO_BUF_CONTIG) {
134 1.1 jonathan if (crd->crd_flags & CRD_F_ENCRYPT) {
135 1.1 jonathan for (i = crd->crd_skip;
136 1.1 jonathan i < crd->crd_skip + crd->crd_len; i += blks) {
137 1.1 jonathan /* XOR with the IV/previous block, as appropriate. */
138 1.1 jonathan if (i == crd->crd_skip)
139 1.1 jonathan for (k = 0; k < blks; k++)
140 1.1 jonathan buf[i + k] ^= ivp[k];
141 1.1 jonathan else
142 1.1 jonathan for (k = 0; k < blks; k++)
143 1.1 jonathan buf[i + k] ^= buf[i + k - blks];
144 1.1 jonathan exf->encrypt(sw->sw_kschedule, buf + i);
145 1.1 jonathan }
146 1.1 jonathan } else { /* Decrypt */
147 1.1 jonathan /*
148 1.1 jonathan * Start at the end, so we don't need to keep the encrypted
149 1.1 jonathan * block as the IV for the next block.
150 1.1 jonathan */
151 1.1 jonathan for (i = crd->crd_skip + crd->crd_len - blks;
152 1.1 jonathan i >= crd->crd_skip; i -= blks) {
153 1.1 jonathan exf->decrypt(sw->sw_kschedule, buf + i);
154 1.1 jonathan
155 1.1 jonathan /* XOR with the IV/previous block, as appropriate */
156 1.1 jonathan if (i == crd->crd_skip)
157 1.1 jonathan for (k = 0; k < blks; k++)
158 1.1 jonathan buf[i + k] ^= ivp[k];
159 1.1 jonathan else
160 1.1 jonathan for (k = 0; k < blks; k++)
161 1.1 jonathan buf[i + k] ^= buf[i + k - blks];
162 1.1 jonathan }
163 1.1 jonathan }
164 1.1 jonathan
165 1.1 jonathan return 0;
166 1.1 jonathan } else if (outtype == CRYPTO_BUF_MBUF) {
167 1.1 jonathan struct mbuf *m = (struct mbuf *) buf;
168 1.1 jonathan
169 1.1 jonathan /* Find beginning of data */
170 1.1 jonathan m = m_getptr(m, crd->crd_skip, &k);
171 1.1 jonathan if (m == NULL)
172 1.1 jonathan return EINVAL;
173 1.1 jonathan
174 1.1 jonathan i = crd->crd_len;
175 1.1 jonathan
176 1.1 jonathan while (i > 0) {
177 1.1 jonathan /*
178 1.1 jonathan * If there's insufficient data at the end of
179 1.1 jonathan * an mbuf, we have to do some copying.
180 1.1 jonathan */
181 1.1 jonathan if (m->m_len < k + blks && m->m_len != k) {
182 1.1 jonathan m_copydata(m, k, blks, blk);
183 1.1 jonathan
184 1.1 jonathan /* Actual encryption/decryption */
185 1.1 jonathan if (crd->crd_flags & CRD_F_ENCRYPT) {
186 1.1 jonathan /* XOR with previous block */
187 1.1 jonathan for (j = 0; j < blks; j++)
188 1.1 jonathan blk[j] ^= ivp[j];
189 1.1 jonathan
190 1.1 jonathan exf->encrypt(sw->sw_kschedule, blk);
191 1.1 jonathan
192 1.1 jonathan /*
193 1.1 jonathan * Keep encrypted block for XOR'ing
194 1.1 jonathan * with next block
195 1.1 jonathan */
196 1.1 jonathan bcopy(blk, iv, blks);
197 1.1 jonathan ivp = iv;
198 1.1 jonathan } else { /* decrypt */
199 1.1 jonathan /*
200 1.1 jonathan * Keep encrypted block for XOR'ing
201 1.1 jonathan * with next block
202 1.1 jonathan */
203 1.1 jonathan if (ivp == iv)
204 1.1 jonathan bcopy(blk, piv, blks);
205 1.1 jonathan else
206 1.1 jonathan bcopy(blk, iv, blks);
207 1.1 jonathan
208 1.1 jonathan exf->decrypt(sw->sw_kschedule, blk);
209 1.1 jonathan
210 1.1 jonathan /* XOR with previous block */
211 1.1 jonathan for (j = 0; j < blks; j++)
212 1.1 jonathan blk[j] ^= ivp[j];
213 1.1 jonathan
214 1.1 jonathan if (ivp == iv)
215 1.1 jonathan bcopy(piv, iv, blks);
216 1.1 jonathan else
217 1.1 jonathan ivp = iv;
218 1.1 jonathan }
219 1.1 jonathan
220 1.1 jonathan /* Copy back decrypted block */
221 1.1 jonathan m_copyback(m, k, blks, blk);
222 1.1 jonathan
223 1.1 jonathan /* Advance pointer */
224 1.1 jonathan m = m_getptr(m, k + blks, &k);
225 1.1 jonathan if (m == NULL)
226 1.1 jonathan return EINVAL;
227 1.1 jonathan
228 1.1 jonathan i -= blks;
229 1.1 jonathan
230 1.1 jonathan /* Could be done... */
231 1.1 jonathan if (i == 0)
232 1.1 jonathan break;
233 1.1 jonathan }
234 1.1 jonathan
235 1.1 jonathan /* Skip possibly empty mbufs */
236 1.1 jonathan if (k == m->m_len) {
237 1.1 jonathan for (m = m->m_next; m && m->m_len == 0;
238 1.1 jonathan m = m->m_next)
239 1.1 jonathan ;
240 1.1 jonathan k = 0;
241 1.1 jonathan }
242 1.1 jonathan
243 1.1 jonathan /* Sanity check */
244 1.1 jonathan if (m == NULL)
245 1.1 jonathan return EINVAL;
246 1.1 jonathan
247 1.1 jonathan /*
248 1.1 jonathan * Warning: idat may point to garbage here, but
249 1.1 jonathan * we only use it in the while() loop, only if
250 1.1 jonathan * there are indeed enough data.
251 1.1 jonathan */
252 1.1 jonathan idat = mtod(m, unsigned char *) + k;
253 1.1 jonathan
254 1.1 jonathan while (m->m_len >= k + blks && i > 0) {
255 1.1 jonathan if (crd->crd_flags & CRD_F_ENCRYPT) {
256 1.1 jonathan /* XOR with previous block/IV */
257 1.1 jonathan for (j = 0; j < blks; j++)
258 1.1 jonathan idat[j] ^= ivp[j];
259 1.1 jonathan
260 1.1 jonathan exf->encrypt(sw->sw_kschedule, idat);
261 1.1 jonathan ivp = idat;
262 1.1 jonathan } else { /* decrypt */
263 1.1 jonathan /*
264 1.1 jonathan * Keep encrypted block to be used
265 1.1 jonathan * in next block's processing.
266 1.1 jonathan */
267 1.1 jonathan if (ivp == iv)
268 1.1 jonathan bcopy(idat, piv, blks);
269 1.1 jonathan else
270 1.1 jonathan bcopy(idat, iv, blks);
271 1.1 jonathan
272 1.1 jonathan exf->decrypt(sw->sw_kschedule, idat);
273 1.1 jonathan
274 1.1 jonathan /* XOR with previous block/IV */
275 1.1 jonathan for (j = 0; j < blks; j++)
276 1.1 jonathan idat[j] ^= ivp[j];
277 1.1 jonathan
278 1.1 jonathan if (ivp == iv)
279 1.1 jonathan bcopy(piv, iv, blks);
280 1.1 jonathan else
281 1.1 jonathan ivp = iv;
282 1.1 jonathan }
283 1.1 jonathan
284 1.1 jonathan idat += blks;
285 1.1 jonathan k += blks;
286 1.1 jonathan i -= blks;
287 1.1 jonathan }
288 1.1 jonathan }
289 1.1 jonathan
290 1.1 jonathan return 0; /* Done with mbuf encryption/decryption */
291 1.1 jonathan } else if (outtype == CRYPTO_BUF_IOV) {
292 1.1 jonathan struct uio *uio = (struct uio *) buf;
293 1.1 jonathan
294 1.1 jonathan /* Find beginning of data */
295 1.1 jonathan count = crd->crd_skip;
296 1.1 jonathan ind = cuio_getptr(uio, count, &k);
297 1.1 jonathan if (ind == -1)
298 1.1 jonathan return EINVAL;
299 1.1 jonathan
300 1.1 jonathan i = crd->crd_len;
301 1.1 jonathan
302 1.1 jonathan while (i > 0) {
303 1.1 jonathan /*
304 1.1 jonathan * If there's insufficient data at the end,
305 1.1 jonathan * we have to do some copying.
306 1.1 jonathan */
307 1.1 jonathan if (uio->uio_iov[ind].iov_len < k + blks &&
308 1.1 jonathan uio->uio_iov[ind].iov_len != k) {
309 1.1 jonathan cuio_copydata(uio, k, blks, blk);
310 1.1 jonathan
311 1.1 jonathan /* Actual encryption/decryption */
312 1.1 jonathan if (crd->crd_flags & CRD_F_ENCRYPT) {
313 1.1 jonathan /* XOR with previous block */
314 1.1 jonathan for (j = 0; j < blks; j++)
315 1.1 jonathan blk[j] ^= ivp[j];
316 1.1 jonathan
317 1.1 jonathan exf->encrypt(sw->sw_kschedule, blk);
318 1.1 jonathan
319 1.1 jonathan /*
320 1.1 jonathan * Keep encrypted block for XOR'ing
321 1.1 jonathan * with next block
322 1.1 jonathan */
323 1.1 jonathan bcopy(blk, iv, blks);
324 1.1 jonathan ivp = iv;
325 1.1 jonathan } else { /* decrypt */
326 1.1 jonathan /*
327 1.1 jonathan * Keep encrypted block for XOR'ing
328 1.1 jonathan * with next block
329 1.1 jonathan */
330 1.1 jonathan if (ivp == iv)
331 1.1 jonathan bcopy(blk, piv, blks);
332 1.1 jonathan else
333 1.1 jonathan bcopy(blk, iv, blks);
334 1.1 jonathan
335 1.1 jonathan exf->decrypt(sw->sw_kschedule, blk);
336 1.1 jonathan
337 1.1 jonathan /* XOR with previous block */
338 1.1 jonathan for (j = 0; j < blks; j++)
339 1.1 jonathan blk[j] ^= ivp[j];
340 1.1 jonathan
341 1.1 jonathan if (ivp == iv)
342 1.1 jonathan bcopy(piv, iv, blks);
343 1.1 jonathan else
344 1.1 jonathan ivp = iv;
345 1.1 jonathan }
346 1.1 jonathan
347 1.1 jonathan /* Copy back decrypted block */
348 1.1 jonathan cuio_copyback(uio, k, blks, blk);
349 1.1 jonathan
350 1.1 jonathan count += blks;
351 1.1 jonathan
352 1.1 jonathan /* Advance pointer */
353 1.1 jonathan ind = cuio_getptr(uio, count, &k);
354 1.1 jonathan if (ind == -1)
355 1.1 jonathan return (EINVAL);
356 1.1 jonathan
357 1.1 jonathan i -= blks;
358 1.1 jonathan
359 1.1 jonathan /* Could be done... */
360 1.1 jonathan if (i == 0)
361 1.1 jonathan break;
362 1.1 jonathan }
363 1.1 jonathan
364 1.1 jonathan /*
365 1.1 jonathan * Warning: idat may point to garbage here, but
366 1.1 jonathan * we only use it in the while() loop, only if
367 1.1 jonathan * there are indeed enough data.
368 1.1 jonathan */
369 1.17 christos idat = ((char *)uio->uio_iov[ind].iov_base) + k;
370 1.1 jonathan
371 1.1 jonathan while (uio->uio_iov[ind].iov_len >= k + blks &&
372 1.1 jonathan i > 0) {
373 1.1 jonathan if (crd->crd_flags & CRD_F_ENCRYPT) {
374 1.1 jonathan /* XOR with previous block/IV */
375 1.1 jonathan for (j = 0; j < blks; j++)
376 1.1 jonathan idat[j] ^= ivp[j];
377 1.1 jonathan
378 1.1 jonathan exf->encrypt(sw->sw_kschedule, idat);
379 1.1 jonathan ivp = idat;
380 1.1 jonathan } else { /* decrypt */
381 1.1 jonathan /*
382 1.1 jonathan * Keep encrypted block to be used
383 1.1 jonathan * in next block's processing.
384 1.1 jonathan */
385 1.1 jonathan if (ivp == iv)
386 1.1 jonathan bcopy(idat, piv, blks);
387 1.1 jonathan else
388 1.1 jonathan bcopy(idat, iv, blks);
389 1.1 jonathan
390 1.1 jonathan exf->decrypt(sw->sw_kschedule, idat);
391 1.1 jonathan
392 1.1 jonathan /* XOR with previous block/IV */
393 1.1 jonathan for (j = 0; j < blks; j++)
394 1.1 jonathan idat[j] ^= ivp[j];
395 1.1 jonathan
396 1.1 jonathan if (ivp == iv)
397 1.1 jonathan bcopy(piv, iv, blks);
398 1.1 jonathan else
399 1.1 jonathan ivp = iv;
400 1.1 jonathan }
401 1.1 jonathan
402 1.1 jonathan idat += blks;
403 1.1 jonathan count += blks;
404 1.1 jonathan k += blks;
405 1.1 jonathan i -= blks;
406 1.1 jonathan }
407 1.1 jonathan }
408 1.1 jonathan return 0; /* Done with mbuf encryption/decryption */
409 1.1 jonathan }
410 1.1 jonathan
411 1.1 jonathan /* Unreachable */
412 1.1 jonathan return EINVAL;
413 1.1 jonathan }
414 1.1 jonathan
415 1.1 jonathan /*
416 1.1 jonathan * Compute keyed-hash authenticator.
417 1.1 jonathan */
418 1.16 daniel int
419 1.1 jonathan swcr_authcompute(struct cryptop *crp, struct cryptodesc *crd,
420 1.17 christos struct swcr_data *sw, void *buf, int outtype)
421 1.1 jonathan {
422 1.1 jonathan unsigned char aalg[AALG_MAX_RESULT_LEN];
423 1.10 thorpej const struct swcr_auth_hash *axf;
424 1.1 jonathan union authctx ctx;
425 1.1 jonathan int err;
426 1.1 jonathan
427 1.1 jonathan if (sw->sw_ictx == 0)
428 1.1 jonathan return EINVAL;
429 1.1 jonathan
430 1.1 jonathan axf = sw->sw_axf;
431 1.1 jonathan
432 1.10 thorpej bcopy(sw->sw_ictx, &ctx, axf->auth_hash->ctxsize);
433 1.1 jonathan
434 1.1 jonathan switch (outtype) {
435 1.1 jonathan case CRYPTO_BUF_CONTIG:
436 1.17 christos axf->Update(&ctx, (char *)buf + crd->crd_skip, crd->crd_len);
437 1.1 jonathan break;
438 1.1 jonathan case CRYPTO_BUF_MBUF:
439 1.1 jonathan err = m_apply((struct mbuf *) buf, crd->crd_skip, crd->crd_len,
440 1.17 christos (int (*)(void*, void *, unsigned int)) axf->Update,
441 1.17 christos (void *) &ctx);
442 1.1 jonathan if (err)
443 1.1 jonathan return err;
444 1.1 jonathan break;
445 1.1 jonathan case CRYPTO_BUF_IOV:
446 1.2 jonathan err = cuio_apply((struct uio *) buf, crd->crd_skip,
447 1.2 jonathan crd->crd_len,
448 1.17 christos (int (*)(void *, void *, unsigned int)) axf->Update,
449 1.17 christos (void *) &ctx);
450 1.2 jonathan if (err) {
451 1.2 jonathan return err;
452 1.2 jonathan }
453 1.2 jonathan break;
454 1.1 jonathan default:
455 1.1 jonathan return EINVAL;
456 1.1 jonathan }
457 1.1 jonathan
458 1.1 jonathan switch (sw->sw_alg) {
459 1.1 jonathan case CRYPTO_MD5_HMAC:
460 1.19 tls case CRYPTO_MD5_HMAC_96:
461 1.1 jonathan case CRYPTO_SHA1_HMAC:
462 1.19 tls case CRYPTO_SHA1_HMAC_96:
463 1.1 jonathan case CRYPTO_SHA2_HMAC:
464 1.1 jonathan case CRYPTO_RIPEMD160_HMAC:
465 1.19 tls case CRYPTO_RIPEMD160_HMAC_96:
466 1.1 jonathan if (sw->sw_octx == NULL)
467 1.1 jonathan return EINVAL;
468 1.1 jonathan
469 1.1 jonathan axf->Final(aalg, &ctx);
470 1.10 thorpej bcopy(sw->sw_octx, &ctx, axf->auth_hash->ctxsize);
471 1.10 thorpej axf->Update(&ctx, aalg, axf->auth_hash->hashsize);
472 1.1 jonathan axf->Final(aalg, &ctx);
473 1.1 jonathan break;
474 1.1 jonathan
475 1.1 jonathan case CRYPTO_MD5_KPDK:
476 1.1 jonathan case CRYPTO_SHA1_KPDK:
477 1.1 jonathan if (sw->sw_octx == NULL)
478 1.1 jonathan return EINVAL;
479 1.1 jonathan
480 1.1 jonathan axf->Update(&ctx, sw->sw_octx, sw->sw_klen);
481 1.1 jonathan axf->Final(aalg, &ctx);
482 1.1 jonathan break;
483 1.1 jonathan
484 1.1 jonathan case CRYPTO_NULL_HMAC:
485 1.1 jonathan case CRYPTO_MD5:
486 1.1 jonathan case CRYPTO_SHA1:
487 1.1 jonathan axf->Final(aalg, &ctx);
488 1.1 jonathan break;
489 1.1 jonathan }
490 1.1 jonathan
491 1.1 jonathan /* Inject the authentication data */
492 1.2 jonathan switch (outtype) {
493 1.2 jonathan case CRYPTO_BUF_CONTIG:
494 1.17 christos (void)memcpy((char *)buf + crd->crd_inject, aalg,
495 1.17 christos axf->auth_hash->authsize);
496 1.2 jonathan break;
497 1.2 jonathan case CRYPTO_BUF_MBUF:
498 1.1 jonathan m_copyback((struct mbuf *) buf, crd->crd_inject,
499 1.10 thorpej axf->auth_hash->authsize, aalg);
500 1.2 jonathan break;
501 1.2 jonathan case CRYPTO_BUF_IOV:
502 1.10 thorpej bcopy(aalg, crp->crp_mac, axf->auth_hash->authsize);
503 1.2 jonathan break;
504 1.2 jonathan default:
505 1.2 jonathan return EINVAL;
506 1.2 jonathan }
507 1.1 jonathan return 0;
508 1.1 jonathan }
509 1.1 jonathan
510 1.1 jonathan /*
511 1.1 jonathan * Apply a compression/decompression algorithm
512 1.1 jonathan */
513 1.1 jonathan static int
514 1.1 jonathan swcr_compdec(struct cryptodesc *crd, struct swcr_data *sw,
515 1.17 christos void *buf, int outtype)
516 1.1 jonathan {
517 1.1 jonathan u_int8_t *data, *out;
518 1.10 thorpej const struct swcr_comp_algo *cxf;
519 1.1 jonathan int adj;
520 1.1 jonathan u_int32_t result;
521 1.1 jonathan
522 1.1 jonathan cxf = sw->sw_cxf;
523 1.1 jonathan
524 1.1 jonathan /* We must handle the whole buffer of data in one time
525 1.1 jonathan * then if there is not all the data in the mbuf, we must
526 1.1 jonathan * copy in a buffer.
527 1.1 jonathan */
528 1.1 jonathan
529 1.12 christos data = malloc(crd->crd_len, M_CRYPTO_DATA, M_NOWAIT);
530 1.1 jonathan if (data == NULL)
531 1.1 jonathan return (EINVAL);
532 1.1 jonathan COPYDATA(outtype, buf, crd->crd_skip, crd->crd_len, data);
533 1.1 jonathan
534 1.1 jonathan if (crd->crd_flags & CRD_F_COMP)
535 1.1 jonathan result = cxf->compress(data, crd->crd_len, &out);
536 1.1 jonathan else
537 1.1 jonathan result = cxf->decompress(data, crd->crd_len, &out);
538 1.1 jonathan
539 1.1 jonathan FREE(data, M_CRYPTO_DATA);
540 1.1 jonathan if (result == 0)
541 1.1 jonathan return EINVAL;
542 1.1 jonathan
543 1.1 jonathan /* Copy back the (de)compressed data. m_copyback is
544 1.1 jonathan * extending the mbuf as necessary.
545 1.1 jonathan */
546 1.1 jonathan sw->sw_size = result;
547 1.1 jonathan /* Check the compressed size when doing compression */
548 1.1 jonathan if (crd->crd_flags & CRD_F_COMP) {
549 1.1 jonathan if (result > crd->crd_len) {
550 1.1 jonathan /* Compression was useless, we lost time */
551 1.1 jonathan FREE(out, M_CRYPTO_DATA);
552 1.1 jonathan return 0;
553 1.1 jonathan }
554 1.1 jonathan }
555 1.1 jonathan
556 1.1 jonathan COPYBACK(outtype, buf, crd->crd_skip, result, out);
557 1.1 jonathan if (result < crd->crd_len) {
558 1.1 jonathan adj = result - crd->crd_len;
559 1.1 jonathan if (outtype == CRYPTO_BUF_MBUF) {
560 1.1 jonathan adj = result - crd->crd_len;
561 1.1 jonathan m_adj((struct mbuf *)buf, adj);
562 1.1 jonathan } else {
563 1.1 jonathan struct uio *uio = (struct uio *)buf;
564 1.1 jonathan int ind;
565 1.1 jonathan
566 1.1 jonathan adj = crd->crd_len - result;
567 1.1 jonathan ind = uio->uio_iovcnt - 1;
568 1.1 jonathan
569 1.1 jonathan while (adj > 0 && ind >= 0) {
570 1.1 jonathan if (adj < uio->uio_iov[ind].iov_len) {
571 1.1 jonathan uio->uio_iov[ind].iov_len -= adj;
572 1.1 jonathan break;
573 1.1 jonathan }
574 1.1 jonathan
575 1.1 jonathan adj -= uio->uio_iov[ind].iov_len;
576 1.1 jonathan uio->uio_iov[ind].iov_len = 0;
577 1.1 jonathan ind--;
578 1.1 jonathan uio->uio_iovcnt--;
579 1.1 jonathan }
580 1.1 jonathan }
581 1.1 jonathan }
582 1.1 jonathan FREE(out, M_CRYPTO_DATA);
583 1.1 jonathan return 0;
584 1.1 jonathan }
585 1.1 jonathan
586 1.1 jonathan /*
587 1.1 jonathan * Generate a new software session.
588 1.1 jonathan */
589 1.1 jonathan static int
590 1.15 christos swcr_newsession(void *arg, u_int32_t *sid, struct cryptoini *cri)
591 1.1 jonathan {
592 1.1 jonathan struct swcr_data **swd;
593 1.10 thorpej const struct swcr_auth_hash *axf;
594 1.10 thorpej const struct swcr_enc_xform *txf;
595 1.10 thorpej const struct swcr_comp_algo *cxf;
596 1.1 jonathan u_int32_t i;
597 1.1 jonathan int k, error;
598 1.1 jonathan
599 1.1 jonathan if (sid == NULL || cri == NULL)
600 1.1 jonathan return EINVAL;
601 1.1 jonathan
602 1.1 jonathan if (swcr_sessions) {
603 1.1 jonathan for (i = 1; i < swcr_sesnum; i++)
604 1.1 jonathan if (swcr_sessions[i] == NULL)
605 1.1 jonathan break;
606 1.1 jonathan } else
607 1.1 jonathan i = 1; /* NB: to silence compiler warning */
608 1.1 jonathan
609 1.1 jonathan if (swcr_sessions == NULL || i == swcr_sesnum) {
610 1.1 jonathan if (swcr_sessions == NULL) {
611 1.1 jonathan i = 1; /* We leave swcr_sessions[0] empty */
612 1.1 jonathan swcr_sesnum = CRYPTO_SW_SESSIONS;
613 1.1 jonathan } else
614 1.1 jonathan swcr_sesnum *= 2;
615 1.1 jonathan
616 1.1 jonathan swd = malloc(swcr_sesnum * sizeof(struct swcr_data *),
617 1.1 jonathan M_CRYPTO_DATA, M_NOWAIT);
618 1.1 jonathan if (swd == NULL) {
619 1.1 jonathan /* Reset session number */
620 1.1 jonathan if (swcr_sesnum == CRYPTO_SW_SESSIONS)
621 1.1 jonathan swcr_sesnum = 0;
622 1.1 jonathan else
623 1.1 jonathan swcr_sesnum /= 2;
624 1.1 jonathan return ENOBUFS;
625 1.1 jonathan }
626 1.1 jonathan
627 1.1 jonathan bzero(swd, swcr_sesnum * sizeof(struct swcr_data *));
628 1.1 jonathan
629 1.1 jonathan /* Copy existing sessions */
630 1.1 jonathan if (swcr_sessions) {
631 1.1 jonathan bcopy(swcr_sessions, swd,
632 1.1 jonathan (swcr_sesnum / 2) * sizeof(struct swcr_data *));
633 1.1 jonathan free(swcr_sessions, M_CRYPTO_DATA);
634 1.1 jonathan }
635 1.1 jonathan
636 1.1 jonathan swcr_sessions = swd;
637 1.1 jonathan }
638 1.1 jonathan
639 1.1 jonathan swd = &swcr_sessions[i];
640 1.1 jonathan *sid = i;
641 1.1 jonathan
642 1.1 jonathan while (cri) {
643 1.13 dsl *swd = malloc(sizeof **swd, M_CRYPTO_DATA, M_NOWAIT);
644 1.1 jonathan if (*swd == NULL) {
645 1.1 jonathan swcr_freesession(NULL, i);
646 1.1 jonathan return ENOBUFS;
647 1.1 jonathan }
648 1.1 jonathan bzero(*swd, sizeof(struct swcr_data));
649 1.1 jonathan
650 1.1 jonathan switch (cri->cri_alg) {
651 1.1 jonathan case CRYPTO_DES_CBC:
652 1.10 thorpej txf = &swcr_enc_xform_des;
653 1.1 jonathan goto enccommon;
654 1.1 jonathan case CRYPTO_3DES_CBC:
655 1.10 thorpej txf = &swcr_enc_xform_3des;
656 1.1 jonathan goto enccommon;
657 1.1 jonathan case CRYPTO_BLF_CBC:
658 1.10 thorpej txf = &swcr_enc_xform_blf;
659 1.1 jonathan goto enccommon;
660 1.1 jonathan case CRYPTO_CAST_CBC:
661 1.10 thorpej txf = &swcr_enc_xform_cast5;
662 1.1 jonathan goto enccommon;
663 1.1 jonathan case CRYPTO_SKIPJACK_CBC:
664 1.10 thorpej txf = &swcr_enc_xform_skipjack;
665 1.1 jonathan goto enccommon;
666 1.1 jonathan case CRYPTO_RIJNDAEL128_CBC:
667 1.10 thorpej txf = &swcr_enc_xform_rijndael128;
668 1.1 jonathan goto enccommon;
669 1.1 jonathan case CRYPTO_NULL_CBC:
670 1.10 thorpej txf = &swcr_enc_xform_null;
671 1.1 jonathan goto enccommon;
672 1.1 jonathan enccommon:
673 1.1 jonathan error = txf->setkey(&((*swd)->sw_kschedule),
674 1.1 jonathan cri->cri_key, cri->cri_klen / 8);
675 1.1 jonathan if (error) {
676 1.1 jonathan swcr_freesession(NULL, i);
677 1.1 jonathan return error;
678 1.1 jonathan }
679 1.1 jonathan (*swd)->sw_exf = txf;
680 1.1 jonathan break;
681 1.1 jonathan
682 1.1 jonathan case CRYPTO_MD5_HMAC:
683 1.19 tls axf = &swcr_auth_hash_hmac_md5;
684 1.19 tls goto authcommon;
685 1.19 tls case CRYPTO_MD5_HMAC_96:
686 1.10 thorpej axf = &swcr_auth_hash_hmac_md5_96;
687 1.1 jonathan goto authcommon;
688 1.1 jonathan case CRYPTO_SHA1_HMAC:
689 1.19 tls axf = &swcr_auth_hash_hmac_sha1;
690 1.19 tls goto authcommon;
691 1.19 tls case CRYPTO_SHA1_HMAC_96:
692 1.10 thorpej axf = &swcr_auth_hash_hmac_sha1_96;
693 1.1 jonathan goto authcommon;
694 1.1 jonathan case CRYPTO_SHA2_HMAC:
695 1.1 jonathan if (cri->cri_klen == 256)
696 1.10 thorpej axf = &swcr_auth_hash_hmac_sha2_256;
697 1.1 jonathan else if (cri->cri_klen == 384)
698 1.10 thorpej axf = &swcr_auth_hash_hmac_sha2_384;
699 1.1 jonathan else if (cri->cri_klen == 512)
700 1.10 thorpej axf = &swcr_auth_hash_hmac_sha2_512;
701 1.1 jonathan else {
702 1.1 jonathan swcr_freesession(NULL, i);
703 1.1 jonathan return EINVAL;
704 1.1 jonathan }
705 1.1 jonathan goto authcommon;
706 1.1 jonathan case CRYPTO_NULL_HMAC:
707 1.10 thorpej axf = &swcr_auth_hash_null;
708 1.1 jonathan goto authcommon;
709 1.1 jonathan case CRYPTO_RIPEMD160_HMAC:
710 1.19 tls axf = &swcr_auth_hash_hmac_ripemd_160;
711 1.19 tls goto authcommon;
712 1.19 tls case CRYPTO_RIPEMD160_HMAC_96:
713 1.10 thorpej axf = &swcr_auth_hash_hmac_ripemd_160_96;
714 1.19 tls goto authcommon; /* leave this for safety */
715 1.1 jonathan authcommon:
716 1.10 thorpej (*swd)->sw_ictx = malloc(axf->auth_hash->ctxsize,
717 1.10 thorpej M_CRYPTO_DATA, M_NOWAIT);
718 1.1 jonathan if ((*swd)->sw_ictx == NULL) {
719 1.1 jonathan swcr_freesession(NULL, i);
720 1.1 jonathan return ENOBUFS;
721 1.1 jonathan }
722 1.1 jonathan
723 1.10 thorpej (*swd)->sw_octx = malloc(axf->auth_hash->ctxsize,
724 1.10 thorpej M_CRYPTO_DATA, M_NOWAIT);
725 1.1 jonathan if ((*swd)->sw_octx == NULL) {
726 1.1 jonathan swcr_freesession(NULL, i);
727 1.1 jonathan return ENOBUFS;
728 1.1 jonathan }
729 1.1 jonathan
730 1.1 jonathan for (k = 0; k < cri->cri_klen / 8; k++)
731 1.1 jonathan cri->cri_key[k] ^= HMAC_IPAD_VAL;
732 1.1 jonathan
733 1.1 jonathan axf->Init((*swd)->sw_ictx);
734 1.1 jonathan axf->Update((*swd)->sw_ictx, cri->cri_key,
735 1.1 jonathan cri->cri_klen / 8);
736 1.1 jonathan axf->Update((*swd)->sw_ictx, hmac_ipad_buffer,
737 1.1 jonathan HMAC_BLOCK_LEN - (cri->cri_klen / 8));
738 1.1 jonathan
739 1.1 jonathan for (k = 0; k < cri->cri_klen / 8; k++)
740 1.1 jonathan cri->cri_key[k] ^= (HMAC_IPAD_VAL ^ HMAC_OPAD_VAL);
741 1.1 jonathan
742 1.1 jonathan axf->Init((*swd)->sw_octx);
743 1.1 jonathan axf->Update((*swd)->sw_octx, cri->cri_key,
744 1.1 jonathan cri->cri_klen / 8);
745 1.1 jonathan axf->Update((*swd)->sw_octx, hmac_opad_buffer,
746 1.1 jonathan HMAC_BLOCK_LEN - (cri->cri_klen / 8));
747 1.1 jonathan
748 1.1 jonathan for (k = 0; k < cri->cri_klen / 8; k++)
749 1.1 jonathan cri->cri_key[k] ^= HMAC_OPAD_VAL;
750 1.1 jonathan (*swd)->sw_axf = axf;
751 1.1 jonathan break;
752 1.1 jonathan
753 1.1 jonathan case CRYPTO_MD5_KPDK:
754 1.10 thorpej axf = &swcr_auth_hash_key_md5;
755 1.1 jonathan goto auth2common;
756 1.1 jonathan
757 1.1 jonathan case CRYPTO_SHA1_KPDK:
758 1.10 thorpej axf = &swcr_auth_hash_key_sha1;
759 1.1 jonathan auth2common:
760 1.10 thorpej (*swd)->sw_ictx = malloc(axf->auth_hash->ctxsize,
761 1.10 thorpej M_CRYPTO_DATA, M_NOWAIT);
762 1.1 jonathan if ((*swd)->sw_ictx == NULL) {
763 1.1 jonathan swcr_freesession(NULL, i);
764 1.1 jonathan return ENOBUFS;
765 1.1 jonathan }
766 1.1 jonathan
767 1.1 jonathan /* Store the key so we can "append" it to the payload */
768 1.1 jonathan (*swd)->sw_octx = malloc(cri->cri_klen / 8, M_CRYPTO_DATA,
769 1.1 jonathan M_NOWAIT);
770 1.1 jonathan if ((*swd)->sw_octx == NULL) {
771 1.1 jonathan swcr_freesession(NULL, i);
772 1.1 jonathan return ENOBUFS;
773 1.1 jonathan }
774 1.1 jonathan
775 1.1 jonathan (*swd)->sw_klen = cri->cri_klen / 8;
776 1.1 jonathan bcopy(cri->cri_key, (*swd)->sw_octx, cri->cri_klen / 8);
777 1.1 jonathan axf->Init((*swd)->sw_ictx);
778 1.1 jonathan axf->Update((*swd)->sw_ictx, cri->cri_key,
779 1.1 jonathan cri->cri_klen / 8);
780 1.1 jonathan axf->Final(NULL, (*swd)->sw_ictx);
781 1.1 jonathan (*swd)->sw_axf = axf;
782 1.1 jonathan break;
783 1.1 jonathan
784 1.1 jonathan case CRYPTO_MD5:
785 1.10 thorpej axf = &swcr_auth_hash_md5;
786 1.1 jonathan goto auth3common;
787 1.1 jonathan
788 1.1 jonathan case CRYPTO_SHA1:
789 1.10 thorpej axf = &swcr_auth_hash_sha1;
790 1.1 jonathan auth3common:
791 1.10 thorpej (*swd)->sw_ictx = malloc(axf->auth_hash->ctxsize,
792 1.10 thorpej M_CRYPTO_DATA, M_NOWAIT);
793 1.1 jonathan if ((*swd)->sw_ictx == NULL) {
794 1.1 jonathan swcr_freesession(NULL, i);
795 1.1 jonathan return ENOBUFS;
796 1.1 jonathan }
797 1.1 jonathan
798 1.1 jonathan axf->Init((*swd)->sw_ictx);
799 1.1 jonathan (*swd)->sw_axf = axf;
800 1.1 jonathan break;
801 1.1 jonathan
802 1.1 jonathan case CRYPTO_DEFLATE_COMP:
803 1.10 thorpej cxf = &swcr_comp_algo_deflate;
804 1.1 jonathan (*swd)->sw_cxf = cxf;
805 1.1 jonathan break;
806 1.1 jonathan default:
807 1.1 jonathan swcr_freesession(NULL, i);
808 1.1 jonathan return EINVAL;
809 1.1 jonathan }
810 1.1 jonathan
811 1.1 jonathan (*swd)->sw_alg = cri->cri_alg;
812 1.1 jonathan cri = cri->cri_next;
813 1.1 jonathan swd = &((*swd)->sw_next);
814 1.1 jonathan }
815 1.1 jonathan return 0;
816 1.1 jonathan }
817 1.1 jonathan
818 1.1 jonathan /*
819 1.1 jonathan * Free a session.
820 1.1 jonathan */
821 1.1 jonathan static int
822 1.15 christos swcr_freesession(void *arg, u_int64_t tid)
823 1.1 jonathan {
824 1.1 jonathan struct swcr_data *swd;
825 1.10 thorpej const struct swcr_enc_xform *txf;
826 1.10 thorpej const struct swcr_auth_hash *axf;
827 1.10 thorpej const struct swcr_comp_algo *cxf;
828 1.1 jonathan u_int32_t sid = ((u_int32_t) tid) & 0xffffffff;
829 1.1 jonathan
830 1.1 jonathan if (sid > swcr_sesnum || swcr_sessions == NULL ||
831 1.1 jonathan swcr_sessions[sid] == NULL)
832 1.1 jonathan return EINVAL;
833 1.1 jonathan
834 1.1 jonathan /* Silently accept and return */
835 1.1 jonathan if (sid == 0)
836 1.1 jonathan return 0;
837 1.1 jonathan
838 1.1 jonathan while ((swd = swcr_sessions[sid]) != NULL) {
839 1.1 jonathan swcr_sessions[sid] = swd->sw_next;
840 1.1 jonathan
841 1.1 jonathan switch (swd->sw_alg) {
842 1.1 jonathan case CRYPTO_DES_CBC:
843 1.1 jonathan case CRYPTO_3DES_CBC:
844 1.1 jonathan case CRYPTO_BLF_CBC:
845 1.1 jonathan case CRYPTO_CAST_CBC:
846 1.1 jonathan case CRYPTO_SKIPJACK_CBC:
847 1.1 jonathan case CRYPTO_RIJNDAEL128_CBC:
848 1.1 jonathan case CRYPTO_NULL_CBC:
849 1.1 jonathan txf = swd->sw_exf;
850 1.1 jonathan
851 1.1 jonathan if (swd->sw_kschedule)
852 1.1 jonathan txf->zerokey(&(swd->sw_kschedule));
853 1.1 jonathan break;
854 1.1 jonathan
855 1.1 jonathan case CRYPTO_MD5_HMAC:
856 1.19 tls case CRYPTO_MD5_HMAC_96:
857 1.1 jonathan case CRYPTO_SHA1_HMAC:
858 1.19 tls case CRYPTO_SHA1_HMAC_96:
859 1.1 jonathan case CRYPTO_SHA2_HMAC:
860 1.1 jonathan case CRYPTO_RIPEMD160_HMAC:
861 1.19 tls case CRYPTO_RIPEMD160_HMAC_96:
862 1.1 jonathan case CRYPTO_NULL_HMAC:
863 1.1 jonathan axf = swd->sw_axf;
864 1.1 jonathan
865 1.1 jonathan if (swd->sw_ictx) {
866 1.10 thorpej bzero(swd->sw_ictx, axf->auth_hash->ctxsize);
867 1.1 jonathan free(swd->sw_ictx, M_CRYPTO_DATA);
868 1.1 jonathan }
869 1.1 jonathan if (swd->sw_octx) {
870 1.10 thorpej bzero(swd->sw_octx, axf->auth_hash->ctxsize);
871 1.1 jonathan free(swd->sw_octx, M_CRYPTO_DATA);
872 1.1 jonathan }
873 1.1 jonathan break;
874 1.1 jonathan
875 1.1 jonathan case CRYPTO_MD5_KPDK:
876 1.1 jonathan case CRYPTO_SHA1_KPDK:
877 1.1 jonathan axf = swd->sw_axf;
878 1.1 jonathan
879 1.1 jonathan if (swd->sw_ictx) {
880 1.10 thorpej bzero(swd->sw_ictx, axf->auth_hash->ctxsize);
881 1.1 jonathan free(swd->sw_ictx, M_CRYPTO_DATA);
882 1.1 jonathan }
883 1.1 jonathan if (swd->sw_octx) {
884 1.1 jonathan bzero(swd->sw_octx, swd->sw_klen);
885 1.1 jonathan free(swd->sw_octx, M_CRYPTO_DATA);
886 1.1 jonathan }
887 1.1 jonathan break;
888 1.1 jonathan
889 1.1 jonathan case CRYPTO_MD5:
890 1.1 jonathan case CRYPTO_SHA1:
891 1.1 jonathan axf = swd->sw_axf;
892 1.1 jonathan
893 1.1 jonathan if (swd->sw_ictx)
894 1.1 jonathan free(swd->sw_ictx, M_CRYPTO_DATA);
895 1.1 jonathan break;
896 1.1 jonathan
897 1.1 jonathan case CRYPTO_DEFLATE_COMP:
898 1.1 jonathan cxf = swd->sw_cxf;
899 1.1 jonathan break;
900 1.1 jonathan }
901 1.1 jonathan
902 1.1 jonathan FREE(swd, M_CRYPTO_DATA);
903 1.1 jonathan }
904 1.1 jonathan return 0;
905 1.1 jonathan }
906 1.1 jonathan
907 1.1 jonathan /*
908 1.1 jonathan * Process a software request.
909 1.1 jonathan */
910 1.1 jonathan static int
911 1.15 christos swcr_process(void *arg, struct cryptop *crp, int hint)
912 1.1 jonathan {
913 1.1 jonathan struct cryptodesc *crd;
914 1.1 jonathan struct swcr_data *sw;
915 1.1 jonathan u_int32_t lid;
916 1.1 jonathan int type;
917 1.1 jonathan
918 1.1 jonathan /* Sanity check */
919 1.1 jonathan if (crp == NULL)
920 1.1 jonathan return EINVAL;
921 1.1 jonathan
922 1.1 jonathan if (crp->crp_desc == NULL || crp->crp_buf == NULL) {
923 1.1 jonathan crp->crp_etype = EINVAL;
924 1.1 jonathan goto done;
925 1.1 jonathan }
926 1.1 jonathan
927 1.1 jonathan lid = crp->crp_sid & 0xffffffff;
928 1.1 jonathan if (lid >= swcr_sesnum || lid == 0 || swcr_sessions[lid] == NULL) {
929 1.1 jonathan crp->crp_etype = ENOENT;
930 1.1 jonathan goto done;
931 1.1 jonathan }
932 1.1 jonathan
933 1.1 jonathan if (crp->crp_flags & CRYPTO_F_IMBUF) {
934 1.1 jonathan type = CRYPTO_BUF_MBUF;
935 1.1 jonathan } else if (crp->crp_flags & CRYPTO_F_IOV) {
936 1.1 jonathan type = CRYPTO_BUF_IOV;
937 1.1 jonathan } else {
938 1.1 jonathan type = CRYPTO_BUF_CONTIG;
939 1.1 jonathan }
940 1.1 jonathan
941 1.1 jonathan /* Go through crypto descriptors, processing as we go */
942 1.1 jonathan for (crd = crp->crp_desc; crd; crd = crd->crd_next) {
943 1.1 jonathan /*
944 1.1 jonathan * Find the crypto context.
945 1.1 jonathan *
946 1.1 jonathan * XXX Note that the logic here prevents us from having
947 1.1 jonathan * XXX the same algorithm multiple times in a session
948 1.1 jonathan * XXX (or rather, we can but it won't give us the right
949 1.1 jonathan * XXX results). To do that, we'd need some way of differentiating
950 1.1 jonathan * XXX between the various instances of an algorithm (so we can
951 1.1 jonathan * XXX locate the correct crypto context).
952 1.1 jonathan */
953 1.1 jonathan for (sw = swcr_sessions[lid];
954 1.1 jonathan sw && sw->sw_alg != crd->crd_alg;
955 1.1 jonathan sw = sw->sw_next)
956 1.1 jonathan ;
957 1.1 jonathan
958 1.1 jonathan /* No such context ? */
959 1.1 jonathan if (sw == NULL) {
960 1.1 jonathan crp->crp_etype = EINVAL;
961 1.1 jonathan goto done;
962 1.1 jonathan }
963 1.1 jonathan
964 1.1 jonathan switch (sw->sw_alg) {
965 1.1 jonathan case CRYPTO_DES_CBC:
966 1.1 jonathan case CRYPTO_3DES_CBC:
967 1.1 jonathan case CRYPTO_BLF_CBC:
968 1.1 jonathan case CRYPTO_CAST_CBC:
969 1.1 jonathan case CRYPTO_SKIPJACK_CBC:
970 1.1 jonathan case CRYPTO_RIJNDAEL128_CBC:
971 1.1 jonathan if ((crp->crp_etype = swcr_encdec(crd, sw,
972 1.1 jonathan crp->crp_buf, type)) != 0)
973 1.1 jonathan goto done;
974 1.1 jonathan break;
975 1.1 jonathan case CRYPTO_NULL_CBC:
976 1.1 jonathan crp->crp_etype = 0;
977 1.1 jonathan break;
978 1.1 jonathan case CRYPTO_MD5_HMAC:
979 1.19 tls case CRYPTO_MD5_HMAC_96:
980 1.1 jonathan case CRYPTO_SHA1_HMAC:
981 1.19 tls case CRYPTO_SHA1_HMAC_96:
982 1.1 jonathan case CRYPTO_SHA2_HMAC:
983 1.1 jonathan case CRYPTO_RIPEMD160_HMAC:
984 1.19 tls case CRYPTO_RIPEMD160_HMAC_96:
985 1.1 jonathan case CRYPTO_NULL_HMAC:
986 1.1 jonathan case CRYPTO_MD5_KPDK:
987 1.1 jonathan case CRYPTO_SHA1_KPDK:
988 1.1 jonathan case CRYPTO_MD5:
989 1.1 jonathan case CRYPTO_SHA1:
990 1.1 jonathan if ((crp->crp_etype = swcr_authcompute(crp, crd, sw,
991 1.1 jonathan crp->crp_buf, type)) != 0)
992 1.1 jonathan goto done;
993 1.1 jonathan break;
994 1.1 jonathan
995 1.1 jonathan case CRYPTO_DEFLATE_COMP:
996 1.9 perry if ((crp->crp_etype = swcr_compdec(crd, sw,
997 1.1 jonathan crp->crp_buf, type)) != 0)
998 1.1 jonathan goto done;
999 1.1 jonathan else
1000 1.1 jonathan crp->crp_olen = (int)sw->sw_size;
1001 1.1 jonathan break;
1002 1.1 jonathan
1003 1.1 jonathan default:
1004 1.1 jonathan /* Unknown/unsupported algorithm */
1005 1.1 jonathan crp->crp_etype = EINVAL;
1006 1.1 jonathan goto done;
1007 1.1 jonathan }
1008 1.1 jonathan }
1009 1.1 jonathan
1010 1.1 jonathan done:
1011 1.1 jonathan crypto_done(crp);
1012 1.1 jonathan return 0;
1013 1.1 jonathan }
1014 1.1 jonathan
1015 1.10 thorpej static void
1016 1.1 jonathan swcr_init(void)
1017 1.1 jonathan {
1018 1.1 jonathan swcr_id = crypto_get_driverid(CRYPTOCAP_F_SOFTWARE);
1019 1.1 jonathan if (swcr_id < 0) {
1020 1.1 jonathan /* This should never happen */
1021 1.1 jonathan panic("Software crypto device cannot initialize!");
1022 1.1 jonathan }
1023 1.1 jonathan
1024 1.1 jonathan crypto_register(swcr_id, CRYPTO_DES_CBC,
1025 1.1 jonathan 0, 0, swcr_newsession, swcr_freesession, swcr_process, NULL);
1026 1.1 jonathan #define REGISTER(alg) \
1027 1.1 jonathan crypto_register(swcr_id, alg, 0, 0, NULL, NULL, NULL, NULL)
1028 1.1 jonathan
1029 1.1 jonathan REGISTER(CRYPTO_3DES_CBC);
1030 1.1 jonathan REGISTER(CRYPTO_BLF_CBC);
1031 1.1 jonathan REGISTER(CRYPTO_CAST_CBC);
1032 1.1 jonathan REGISTER(CRYPTO_SKIPJACK_CBC);
1033 1.1 jonathan REGISTER(CRYPTO_NULL_CBC);
1034 1.1 jonathan REGISTER(CRYPTO_MD5_HMAC);
1035 1.19 tls REGISTER(CRYPTO_MD5_HMAC_96);
1036 1.1 jonathan REGISTER(CRYPTO_SHA1_HMAC);
1037 1.19 tls REGISTER(CRYPTO_SHA1_HMAC_96);
1038 1.1 jonathan REGISTER(CRYPTO_SHA2_HMAC);
1039 1.1 jonathan REGISTER(CRYPTO_RIPEMD160_HMAC);
1040 1.19 tls REGISTER(CRYPTO_RIPEMD160_HMAC_96);
1041 1.1 jonathan REGISTER(CRYPTO_NULL_HMAC);
1042 1.1 jonathan REGISTER(CRYPTO_MD5_KPDK);
1043 1.1 jonathan REGISTER(CRYPTO_SHA1_KPDK);
1044 1.1 jonathan REGISTER(CRYPTO_MD5);
1045 1.1 jonathan REGISTER(CRYPTO_SHA1);
1046 1.1 jonathan REGISTER(CRYPTO_RIJNDAEL128_CBC);
1047 1.1 jonathan REGISTER(CRYPTO_DEFLATE_COMP);
1048 1.1 jonathan #undef REGISTER
1049 1.1 jonathan }
1050 1.1 jonathan
1051 1.10 thorpej
1052 1.10 thorpej /*
1053 1.10 thorpej * Pseudo-device init routine for software crypto.
1054 1.10 thorpej */
1055 1.11 thorpej void swcryptoattach(int);
1056 1.10 thorpej
1057 1.10 thorpej void
1058 1.15 christos swcryptoattach(int num)
1059 1.10 thorpej {
1060 1.10 thorpej
1061 1.10 thorpej swcr_init();
1062 1.10 thorpej }
1063