xref: /netbsd-src/sys/opencrypto/cryptodev.c (revision 267197ec1eebfcb9810ea27a89625b6ddf68e3e7)
1 /*	$NetBSD: cryptodev.c,v 1.34 2008/02/04 14:46:27 tls Exp $ */
2 /*	$FreeBSD: src/sys/opencrypto/cryptodev.c,v 1.4.2.4 2003/06/03 00:09:02 sam Exp $	*/
3 /*	$OpenBSD: cryptodev.c,v 1.53 2002/07/10 22:21:30 mickey Exp $	*/
4 
5 /*
6  * Copyright (c) 2001 Theo de Raadt
7  *
8  * Redistribution and use in source and binary forms, with or without
9  * modification, are permitted provided that the following conditions
10  * are met:
11  *
12  * 1. Redistributions of source code must retain the above copyright
13  *   notice, this list of conditions and the following disclaimer.
14  * 2. Redistributions in binary form must reproduce the above copyright
15  *   notice, this list of conditions and the following disclaimer in the
16  *   documentation and/or other materials provided with the distribution.
17  * 3. The name of the author may not be used to endorse or promote products
18  *   derived from this software without specific prior written permission.
19  *
20  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
21  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
22  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
23  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
24  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
25  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
26  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
27  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
28  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
29  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
30  *
31  * Effort sponsored in part by the Defense Advanced Research Projects
32  * Agency (DARPA) and Air Force Research Laboratory, Air Force
33  * Materiel Command, USAF, under agreement number F30602-01-2-0537.
34  *
35  */
36 
37 #include <sys/cdefs.h>
38 __KERNEL_RCSID(0, "$NetBSD: cryptodev.c,v 1.34 2008/02/04 14:46:27 tls Exp $");
39 
40 #include <sys/param.h>
41 #include <sys/systm.h>
42 #include <sys/malloc.h>
43 #include <sys/mbuf.h>
44 #include <sys/pool.h>
45 #include <sys/sysctl.h>
46 #include <sys/file.h>
47 #include <sys/filedesc.h>
48 #include <sys/errno.h>
49 #include <sys/md5.h>
50 #include <sys/sha1.h>
51 #include <sys/conf.h>
52 #include <sys/device.h>
53 #include <sys/kauth.h>
54 
55 #include "opt_ocf.h"
56 #include <opencrypto/cryptodev.h>
57 #include <opencrypto/xform.h>
58 
59 struct csession {
60 	TAILQ_ENTRY(csession) next;
61 	u_int64_t	sid;
62 	u_int32_t	ses;
63 
64 	u_int32_t	cipher;
65 	struct enc_xform *txform;
66 	u_int32_t	mac;
67 	struct auth_hash *thash;
68 
69 	void *		key;
70 	int		keylen;
71 	u_char		tmp_iv[EALG_MAX_BLOCK_LEN];
72 
73 	void *		mackey;
74 	int		mackeylen;
75 	u_char		tmp_mac[CRYPTO_MAX_MAC_LEN];
76 
77 	struct iovec	iovec[1];	/* user requests never have more */
78 	struct uio	uio;
79 	int		error;
80 };
81 
82 struct fcrypt {
83 	TAILQ_HEAD(csessionlist, csession) csessions;
84 	int		sesn;
85 };
86 
87 /* For our fixed-size allocations */
88 struct pool fcrpl;
89 struct pool csepl;
90 
91 /* Declaration of master device (fd-cloning/ctxt-allocating) entrypoints */
92 static int	cryptoopen(dev_t dev, int flag, int mode, struct lwp *l);
93 static int	cryptoread(dev_t dev, struct uio *uio, int ioflag);
94 static int	cryptowrite(dev_t dev, struct uio *uio, int ioflag);
95 static int	cryptoselect(dev_t dev, int rw, struct lwp *l);
96 
97 /* Declaration of cloned-device (per-ctxt) entrypoints */
98 static int	cryptof_read(struct file *, off_t *, struct uio *, kauth_cred_t, int);
99 static int	cryptof_write(struct file *, off_t *, struct uio *, kauth_cred_t, int);
100 static int	cryptof_ioctl(struct file *, u_long, void*, struct lwp *l);
101 static int	cryptof_close(struct file *, struct lwp *);
102 
103 static const struct fileops cryptofops = {
104     cryptof_read,
105     cryptof_write,
106     cryptof_ioctl,
107     fnullop_fcntl,
108     fnullop_poll,
109     fbadop_stat,
110     cryptof_close,
111     fnullop_kqfilter
112 };
113 
114 static struct	csession *csefind(struct fcrypt *, u_int);
115 static int	csedelete(struct fcrypt *, struct csession *);
116 static struct	csession *cseadd(struct fcrypt *, struct csession *);
117 static struct	csession *csecreate(struct fcrypt *, u_int64_t, void *, u_int64_t,
118     void *, u_int64_t, u_int32_t, u_int32_t, struct enc_xform *,
119     struct auth_hash *);
120 static int	csefree(struct csession *);
121 
122 static int	cryptodev_op(struct csession *, struct crypt_op *, struct lwp *);
123 static int	cryptodev_key(struct crypt_kop *);
124 int	cryptodev_dokey(struct crypt_kop *kop, struct crparam kvp[]);
125 
126 static int	cryptodev_cb(void *);
127 static int	cryptodevkey_cb(void *);
128 
129 /*
130  * sysctl-able control variables for /dev/crypto now defined in crypto.c:
131  * crypto_usercrypto, crypto_userasmcrypto, crypto_devallowsoft.
132  */
133 
134 /* ARGSUSED */
135 int
136 cryptof_read(struct file *fp, off_t *poff,
137     struct uio *uio, kauth_cred_t cred, int flags)
138 {
139 	return (EIO);
140 }
141 
142 /* ARGSUSED */
143 int
144 cryptof_write(struct file *fp, off_t *poff,
145     struct uio *uio, kauth_cred_t cred, int flags)
146 {
147 	return (EIO);
148 }
149 
150 /* ARGSUSED */
151 int
152 cryptof_ioctl(struct file *fp, u_long cmd, void* data, struct lwp *l)
153 {
154 	struct cryptoini cria, crie;
155 	struct fcrypt *fcr = (struct fcrypt *)fp->f_data;
156 	struct csession *cse;
157 	struct session_op *sop;
158 	struct crypt_op *cop;
159 	struct enc_xform *txform = NULL;
160 	struct auth_hash *thash = NULL;
161 	u_int64_t sid;
162 	u_int32_t ses;
163 	int error = 0;
164 
165 	/* backwards compatibility */
166         struct file *criofp;
167 	struct fcrypt *criofcr;
168 	int criofd;
169 
170         switch (cmd) {
171         case CRIOGET:   /* XXX deprecated, remove after 5.0 */
172                 if ((error = falloc(l, &criofp, &criofd)) != 0)
173                         return error;
174                 criofcr = pool_get(&fcrpl, PR_WAITOK);
175 		mutex_spin_enter(&crypto_mtx);
176                 TAILQ_INIT(&criofcr->csessions);
177                 /*
178                  * Don't ever return session 0, to allow detection of
179                  * failed creation attempts with multi-create ioctl.
180                  */
181                 criofcr->sesn = 1;
182 		mutex_spin_exit(&crypto_mtx);
183                 (void)fdclone(l, criofp, criofd, (FREAD|FWRITE),
184 			      &cryptofops, criofcr);
185                 *(u_int32_t *)data = criofd;
186 		return error;
187                 break;
188 	case CIOCGSESSION:
189 		sop = (struct session_op *)data;
190 		switch (sop->cipher) {
191 		case 0:
192 			break;
193 		case CRYPTO_DES_CBC:
194 			txform = &enc_xform_des;
195 			break;
196 		case CRYPTO_3DES_CBC:
197 			txform = &enc_xform_3des;
198 			break;
199 		case CRYPTO_BLF_CBC:
200 			txform = &enc_xform_blf;
201 			break;
202 		case CRYPTO_CAST_CBC:
203 			txform = &enc_xform_cast5;
204 			break;
205 		case CRYPTO_SKIPJACK_CBC:
206 			txform = &enc_xform_skipjack;
207 			break;
208 		case CRYPTO_AES_CBC:
209 			txform = &enc_xform_rijndael128;
210 			break;
211 		case CRYPTO_NULL_CBC:
212 			txform = &enc_xform_null;
213 			break;
214 		case CRYPTO_ARC4:
215 			txform = &enc_xform_arc4;
216 			break;
217 		default:
218 			DPRINTF(("Invalid cipher %d\n", sop->cipher));
219 			return (EINVAL);
220 		}
221 
222 		switch (sop->mac) {
223 		case 0:
224 			break;
225 		case CRYPTO_MD5_HMAC:
226 			thash = &auth_hash_hmac_md5;
227 			break;
228 		case CRYPTO_SHA1_HMAC:
229 			thash = &auth_hash_hmac_sha1;
230 			break;
231 		case CRYPTO_MD5_HMAC_96:
232 			thash = &auth_hash_hmac_md5_96;
233 			break;
234 		case CRYPTO_SHA1_HMAC_96:
235 			thash = &auth_hash_hmac_sha1_96;
236 			break;
237 		case CRYPTO_SHA2_HMAC:
238 			if (sop->mackeylen == auth_hash_hmac_sha2_256.keysize)
239 				thash = &auth_hash_hmac_sha2_256;
240 			else if (sop->mackeylen == auth_hash_hmac_sha2_384.keysize)
241 				thash = &auth_hash_hmac_sha2_384;
242 			else if (sop->mackeylen == auth_hash_hmac_sha2_512.keysize)
243 				thash = &auth_hash_hmac_sha2_512;
244 			else {
245 				DPRINTF(("Invalid mackeylen %d\n",
246 				    sop->mackeylen));
247 				return (EINVAL);
248 			}
249 			break;
250 		case CRYPTO_RIPEMD160_HMAC:
251 			thash = &auth_hash_hmac_ripemd_160_96;
252 			break;
253 		case CRYPTO_MD5:
254 			thash = &auth_hash_md5;
255 			break;
256 		case CRYPTO_SHA1:
257 			thash = &auth_hash_sha1;
258 			break;
259 		case CRYPTO_NULL_HMAC:
260 			thash = &auth_hash_null;
261 			break;
262 		default:
263 			DPRINTF(("Invalid mac %d\n", sop->mac));
264 			return (EINVAL);
265 		}
266 
267 		bzero(&crie, sizeof(crie));
268 		bzero(&cria, sizeof(cria));
269 
270 		if (txform) {
271 			crie.cri_alg = txform->type;
272 			crie.cri_klen = sop->keylen * 8;
273 			if (sop->keylen > txform->maxkey ||
274 			    sop->keylen < txform->minkey) {
275 				DPRINTF(("keylen %d not in [%d,%d]\n",
276 				    sop->keylen, txform->minkey,
277 				    txform->maxkey));
278 				error = EINVAL;
279 				goto bail;
280 			}
281 
282 			crie.cri_key = malloc(crie.cri_klen / 8, M_XDATA,
283 			    M_WAITOK);
284 			if ((error = copyin(sop->key, crie.cri_key,
285 			    crie.cri_klen / 8)))
286 				goto bail;
287 			if (thash)
288 				crie.cri_next = &cria;
289 		}
290 
291 		if (thash) {
292 			cria.cri_alg = thash->type;
293 			cria.cri_klen = sop->mackeylen * 8;
294 			if (sop->mackeylen != thash->keysize) {
295 				DPRINTF(("mackeylen %d != keysize %d\n",
296 				    sop->mackeylen, thash->keysize));
297 				error = EINVAL;
298 				goto bail;
299 			}
300 
301 			if (cria.cri_klen) {
302 				cria.cri_key = malloc(cria.cri_klen / 8,
303 				    M_XDATA, M_WAITOK);
304 				if ((error = copyin(sop->mackey, cria.cri_key,
305 				    cria.cri_klen / 8)))
306 					goto bail;
307 			}
308 		}
309 		/* crypto_newsession requires that we hold the mutex. */
310 		mutex_spin_enter(&crypto_mtx);
311 		error = crypto_newsession(&sid, (txform ? &crie : &cria),
312 			    crypto_devallowsoft);
313 		if (!error) {
314 			cse = csecreate(fcr, sid, crie.cri_key, crie.cri_klen,
315 			    cria.cri_key, cria.cri_klen, sop->cipher, sop->mac,
316 			    txform, thash);
317 			if (cse != NULL) {
318 				sop->ses = cse->ses;
319 			} else {
320 				DPRINTF(("csecreate failed\n"));
321 				crypto_freesession(sid);
322 				error = EINVAL;
323 			}
324 		} else {
325 		  	DPRINTF(("SIOCSESSION violates kernel parameters %d\n",
326 			    error));
327 		}
328 		mutex_spin_exit(&crypto_mtx);
329 bail:
330 		if (error) {
331 			if (crie.cri_key)
332 				FREE(crie.cri_key, M_XDATA);
333 			if (cria.cri_key)
334 				FREE(cria.cri_key, M_XDATA);
335 		}
336 		break;
337 	case CIOCFSESSION:
338 		mutex_spin_enter(&crypto_mtx);
339 		ses = *(u_int32_t *)data;
340 		cse = csefind(fcr, ses);
341 		if (cse == NULL)
342 			return (EINVAL);
343 		csedelete(fcr, cse);
344 		error = csefree(cse);
345 		mutex_spin_exit(&crypto_mtx);
346 		break;
347 	case CIOCCRYPT:
348 		mutex_spin_enter(&crypto_mtx);
349 		cop = (struct crypt_op *)data;
350 		cse = csefind(fcr, cop->ses);
351 		mutex_spin_exit(&crypto_mtx);
352 		if (cse == NULL) {
353 			DPRINTF(("csefind failed\n"));
354 			return (EINVAL);
355 		}
356 		error = cryptodev_op(cse, cop, l);
357 		DPRINTF(("cryptodev_op error = %d\n", error));
358 		break;
359 	case CIOCKEY:
360 		error = cryptodev_key((struct crypt_kop *)data);
361 		DPRINTF(("cryptodev_key error = %d\n", error));
362 		break;
363 	case CIOCASYMFEAT:
364 		error = crypto_getfeat((int *)data);
365 		break;
366 	default:
367 		DPRINTF(("invalid ioctl cmd %ld\n", cmd));
368 		error = EINVAL;
369 	}
370 	return (error);
371 }
372 
373 static int
374 cryptodev_op(struct csession *cse, struct crypt_op *cop, struct lwp *l)
375 {
376 	struct cryptop *crp = NULL;
377 	struct cryptodesc *crde = NULL, *crda = NULL;
378 	int error;
379 
380 	if (cop->len > 256*1024-4)
381 		return (E2BIG);
382 
383 	if (cse->txform) {
384 		if (cop->len == 0 || (cop->len % cse->txform->blocksize) != 0)
385 			return (EINVAL);
386 	}
387 
388 	bzero(&cse->uio, sizeof(cse->uio));
389 	cse->uio.uio_iovcnt = 1;
390 	cse->uio.uio_resid = 0;
391 	cse->uio.uio_rw = UIO_WRITE;
392 	cse->uio.uio_iov = cse->iovec;
393 	UIO_SETUP_SYSSPACE(&cse->uio);
394 	memset(&cse->iovec, 0, sizeof(cse->iovec));
395 	cse->uio.uio_iov[0].iov_len = cop->len;
396 	cse->uio.uio_iov[0].iov_base = malloc(cop->len, M_XDATA, M_WAITOK);
397 	cse->uio.uio_resid = cse->uio.uio_iov[0].iov_len;
398 
399 	crp = crypto_getreq((cse->txform != NULL) + (cse->thash != NULL));
400 	if (crp == NULL) {
401 		error = ENOMEM;
402 		goto bail;
403 	}
404 
405 	if (cse->thash) {
406 		crda = crp->crp_desc;
407 		if (cse->txform)
408 			crde = crda->crd_next;
409 	} else {
410 		if (cse->txform)
411 			crde = crp->crp_desc;
412 		else {
413 			error = EINVAL;
414 			goto bail;
415 		}
416 	}
417 
418 	if ((error = copyin(cop->src, cse->uio.uio_iov[0].iov_base, cop->len)))
419 		goto bail;
420 
421 	if (crda) {
422 		crda->crd_skip = 0;
423 		crda->crd_len = cop->len;
424 		crda->crd_inject = 0;	/* ??? */
425 
426 		crda->crd_alg = cse->mac;
427 		crda->crd_key = cse->mackey;
428 		crda->crd_klen = cse->mackeylen * 8;
429 	}
430 
431 	if (crde) {
432 		if (cop->op == COP_ENCRYPT)
433 			crde->crd_flags |= CRD_F_ENCRYPT;
434 		else
435 			crde->crd_flags &= ~CRD_F_ENCRYPT;
436 		crde->crd_len = cop->len;
437 		crde->crd_inject = 0;
438 
439 		crde->crd_alg = cse->cipher;
440 		crde->crd_key = cse->key;
441 		crde->crd_klen = cse->keylen * 8;
442 	}
443 
444 	crp->crp_ilen = cop->len;
445 	crp->crp_flags = CRYPTO_F_IOV | CRYPTO_F_CBIMM
446 		       | (cop->flags & COP_F_BATCH);
447 	crp->crp_buf = (void *)&cse->uio;
448 	crp->crp_callback = (int (*) (struct cryptop *)) cryptodev_cb;
449 	crp->crp_sid = cse->sid;
450 	crp->crp_opaque = (void *)cse;
451 
452 	if (cop->iv) {
453 		if (crde == NULL) {
454 			error = EINVAL;
455 			goto bail;
456 		}
457 		if (cse->cipher == CRYPTO_ARC4) { /* XXX use flag? */
458 			error = EINVAL;
459 			goto bail;
460 		}
461 		if ((error = copyin(cop->iv, cse->tmp_iv, cse->txform->blocksize)))
462 			goto bail;
463 		bcopy(cse->tmp_iv, crde->crd_iv, cse->txform->blocksize);
464 		crde->crd_flags |= CRD_F_IV_EXPLICIT | CRD_F_IV_PRESENT;
465 		crde->crd_skip = 0;
466 	} else if (crde) {
467 		if (cse->cipher == CRYPTO_ARC4) { /* XXX use flag? */
468 			crde->crd_skip = 0;
469 		} else {
470 			crde->crd_flags |= CRD_F_IV_PRESENT;
471 			crde->crd_skip = cse->txform->blocksize;
472 			crde->crd_len -= cse->txform->blocksize;
473 		}
474 	}
475 
476 	if (cop->mac) {
477 		if (crda == NULL) {
478 			error = EINVAL;
479 			goto bail;
480 		}
481 		crp->crp_mac=cse->tmp_mac;
482 	}
483 
484 	/*
485 	 * XXX there was a comment here which said that we went to
486 	 * XXX splcrypto() but needed to only if CRYPTO_F_CBIMM,
487 	 * XXX disabled on NetBSD since 1.6O due to a race condition.
488 	 * XXX But crypto_dispatch went to splcrypto() itself!  (And
489 	 * XXX now takes the crypto_mtx mutex itself).  We do, however,
490 	 * XXX need to hold the mutex across the call to cv_wait().
491 	 * XXX     (should we arrange for crypto_dispatch to return to
492 	 * XXX      us with it held?  it seems quite ugly to do so.)
493 	 */
494 	error = crypto_dispatch(crp);
495 	mutex_spin_enter(&crypto_mtx);
496 	if (error != 0) {
497 		DPRINTF(("cryptodev_op: not waiting, error.\n"));
498 		mutex_spin_exit(&crypto_mtx);
499 		goto bail;
500 	}
501 	while (!(crp->crp_flags & CRYPTO_F_DONE)) {
502 		DPRINTF(("cryptodev_op: sleeping on cv %08x for crp %08x\n", \
503 			(uint32_t)&crp->crp_cv, (uint32_t)crp));
504 		cv_wait(&crp->crp_cv, &crypto_mtx);	/* XXX cv_wait_sig? */
505 	}
506 	if (crp->crp_flags & CRYPTO_F_ONRETQ) {
507 		DPRINTF(("cryptodev_op: DONE, not woken by cryptoret.\n"));
508 		(void)crypto_ret_q_remove(crp);
509 	}
510 	mutex_spin_exit(&crypto_mtx);
511 
512 	if (crp->crp_etype != 0) {
513 		DPRINTF(("cryptodev_op: crp_etype %d\n", crp->crp_etype));
514 		error = crp->crp_etype;
515 		goto bail;
516 	}
517 
518 	if (cse->error) {
519 		DPRINTF(("cryptodev_op: cse->error %d\n", cse->error));
520 		error = cse->error;
521 		goto bail;
522 	}
523 
524 	if (cop->dst &&
525 	    (error = copyout(cse->uio.uio_iov[0].iov_base, cop->dst, cop->len))) {
526 		DPRINTF(("cryptodev_op: copyout error %d\n", error));
527 		goto bail;
528 	}
529 
530 	if (cop->mac &&
531 	    (error = copyout(crp->crp_mac, cop->mac, cse->thash->authsize))) {
532 		DPRINTF(("cryptodev_op: mac copyout error %d\n", error));
533 		goto bail;
534 	}
535 
536 bail:
537 	if (crp)
538 		crypto_freereq(crp);
539 	if (cse->uio.uio_iov[0].iov_base)
540 		free(cse->uio.uio_iov[0].iov_base, M_XDATA);
541 
542 	return (error);
543 }
544 
545 static int
546 cryptodev_cb(void *op)
547 {
548 	struct cryptop *crp = (struct cryptop *) op;
549 	struct csession *cse = (struct csession *)crp->crp_opaque;
550 	int error = 0;
551 
552 	mutex_spin_enter(&crypto_mtx);
553 	cse->error = crp->crp_etype;
554 	if (crp->crp_etype == EAGAIN) {
555 		/* always drop mutex to call dispatch routine */
556 		mutex_spin_exit(&crypto_mtx);
557 		error = crypto_dispatch(crp);
558 		mutex_spin_enter(&crypto_mtx);
559 	}
560 	if (error != 0 || (crp->crp_flags & CRYPTO_F_DONE)) {
561 		cv_signal(&crp->crp_cv);
562 	}
563 	mutex_spin_exit(&crypto_mtx);
564 	return (0);
565 }
566 
567 static int
568 cryptodevkey_cb(void *op)
569 {
570 	struct cryptkop *krp = (struct cryptkop *) op;
571 
572 	mutex_spin_enter(&crypto_mtx);
573 	cv_signal(&krp->krp_cv);
574 	mutex_spin_exit(&crypto_mtx);
575 	return (0);
576 }
577 
578 static int
579 cryptodev_key(struct crypt_kop *kop)
580 {
581 	struct cryptkop *krp = NULL;
582 	int error = EINVAL;
583 	int in, out, size, i;
584 
585 	if (kop->crk_iparams + kop->crk_oparams > CRK_MAXPARAM) {
586 		return (EFBIG);
587 	}
588 
589 	in = kop->crk_iparams;
590 	out = kop->crk_oparams;
591 	switch (kop->crk_op) {
592 	case CRK_MOD_EXP:
593 		if (in == 3 && out == 1)
594 			break;
595 		return (EINVAL);
596 	case CRK_MOD_EXP_CRT:
597 		if (in == 6 && out == 1)
598 			break;
599 		return (EINVAL);
600 	case CRK_DSA_SIGN:
601 		if (in == 5 && out == 2)
602 			break;
603 		return (EINVAL);
604 	case CRK_DSA_VERIFY:
605 		if (in == 7 && out == 0)
606 			break;
607 		return (EINVAL);
608 	case CRK_DH_COMPUTE_KEY:
609 		if (in == 3 && out == 1)
610 			break;
611 		return (EINVAL);
612 	case CRK_MOD_ADD:
613 		if (in == 3 && out == 1)
614 			break;
615 		return (EINVAL);
616 	case CRK_MOD_ADDINV:
617 		if (in == 2 && out == 1)
618 			break;
619 		return (EINVAL);
620 	case CRK_MOD_SUB:
621 		if (in == 3 && out == 1)
622 			break;
623 		return (EINVAL);
624 	case CRK_MOD_MULT:
625 		if (in == 3 && out == 1)
626 			break;
627 		return (EINVAL);
628 	case CRK_MOD_MULTINV:
629 		if (in == 2 && out == 1)
630 			break;
631 		return (EINVAL);
632 	case CRK_MOD:
633 		if (in == 2 && out == 1)
634 			break;
635 		return (EINVAL);
636 	default:
637 		return (EINVAL);
638 	}
639 
640 	krp = pool_get(&cryptkop_pool, PR_WAITOK);
641 	if (!krp)
642 		return (ENOMEM);
643 	bzero(krp, sizeof *krp);
644 	cv_init(&krp->krp_cv, "crykdev");
645 	krp->krp_op = kop->crk_op;
646 	krp->krp_status = kop->crk_status;
647 	krp->krp_iparams = kop->crk_iparams;
648 	krp->krp_oparams = kop->crk_oparams;
649 	krp->krp_status = 0;
650 	krp->krp_callback = (int (*) (struct cryptkop *)) cryptodevkey_cb;
651 
652 	for (i = 0; i < CRK_MAXPARAM; i++)
653 		krp->krp_param[i].crp_nbits = kop->crk_param[i].crp_nbits;
654 	for (i = 0; i < krp->krp_iparams + krp->krp_oparams; i++) {
655 		size = (krp->krp_param[i].crp_nbits + 7) / 8;
656 		if (size == 0)
657 			continue;
658 		krp->krp_param[i].crp_p = malloc(size, M_XDATA, M_WAITOK);
659 		if (i >= krp->krp_iparams)
660 			continue;
661 		error = copyin(kop->crk_param[i].crp_p, krp->krp_param[i].crp_p, size);
662 		if (error)
663 			goto fail;
664 	}
665 
666 	error = crypto_kdispatch(krp);
667 	if (error != 0) {
668 		goto fail;
669 	}
670 
671 	mutex_spin_enter(&crypto_mtx);
672 	while (!(krp->krp_flags & CRYPTO_F_DONE)) {
673 		cv_wait(&krp->krp_cv, &crypto_mtx);	/* XXX cv_wait_sig? */
674 	}
675 	if (krp->krp_flags & CRYPTO_F_ONRETQ) {
676 		DPRINTF(("cryptodev_key: DONE early, not via cryptoret.\n"));
677 		(void)crypto_ret_kq_remove(krp);
678 	}
679 	mutex_spin_exit(&crypto_mtx);
680 
681 	if (krp->krp_status != 0) {
682 		DPRINTF(("cryptodev_key: krp->krp_status 0x%08x\n", krp->krp_status));
683 		error = krp->krp_status;
684 		goto fail;
685 	}
686 
687 	for (i = krp->krp_iparams; i < krp->krp_iparams + krp->krp_oparams; i++) {
688 		size = (krp->krp_param[i].crp_nbits + 7) / 8;
689 		if (size == 0)
690 			continue;
691 		error = copyout(krp->krp_param[i].crp_p, kop->crk_param[i].crp_p, size);
692 		if (error) {
693 			DPRINTF(("cryptodev_key: copyout oparam %d failed, error=%d\n", i-krp->krp_iparams, error));
694 			goto fail;
695 		}
696 	}
697 
698 fail:
699 	if (krp) {
700 		kop->crk_status = krp->krp_status;
701 		for (i = 0; i < CRK_MAXPARAM; i++) {
702 			if (krp->krp_param[i].crp_p)
703 				FREE(krp->krp_param[i].crp_p, M_XDATA);
704 		}
705 		pool_put(&cryptkop_pool, krp);
706 	}
707 	DPRINTF(("cryptodev_key: error=0x%08x\n", error));
708 	return (error);
709 }
710 
711 /* ARGSUSED */
712 static int
713 cryptof_close(struct file *fp, struct lwp *l)
714 {
715 	struct fcrypt *fcr = (struct fcrypt *)fp->f_data;
716 	struct csession *cse;
717 
718 	mutex_spin_enter(&crypto_mtx);
719 	while ((cse = TAILQ_FIRST(&fcr->csessions))) {
720 		TAILQ_REMOVE(&fcr->csessions, cse, next);
721 		(void)csefree(cse);
722 	}
723 	pool_put(&fcrpl, fcr);
724 
725 	fp->f_data = NULL;
726 	mutex_spin_exit(&crypto_mtx);
727 
728 	return 0;
729 }
730 
731 /* csefind: call with crypto_mtx held. */
732 static struct csession *
733 csefind(struct fcrypt *fcr, u_int ses)
734 {
735 	struct csession *cse, *ret = NULL;
736 
737 	KASSERT(mutex_owned(&crypto_mtx));
738 	TAILQ_FOREACH(cse, &fcr->csessions, next)
739 		if (cse->ses == ses)
740 			ret = cse;
741 	return (ret);
742 }
743 
744 /* csedelete: call with crypto_mtx held. */
745 static int
746 csedelete(struct fcrypt *fcr, struct csession *cse_del)
747 {
748 	struct csession *cse;
749 	int ret = 0;
750 
751 	KASSERT(mutex_owned(&crypto_mtx));
752 	TAILQ_FOREACH(cse, &fcr->csessions, next) {
753 		if (cse == cse_del) {
754 			TAILQ_REMOVE(&fcr->csessions, cse, next);
755 			ret = 1;
756 		}
757 	}
758 	return (ret);
759 }
760 
761 /* cseadd: call with crypto_mtx held. */
762 static struct csession *
763 cseadd(struct fcrypt *fcr, struct csession *cse)
764 {
765 	KASSERT(mutex_owned(&crypto_mtx));
766 	/* don't let session ID wrap! */
767 	if (fcr->sesn + 1 == 0) return NULL;
768 	TAILQ_INSERT_TAIL(&fcr->csessions, cse, next);
769 	cse->ses = fcr->sesn++;
770 	return (cse);
771 }
772 
773 /* csecreate: call with crypto_mtx held. */
774 static struct csession *
775 csecreate(struct fcrypt *fcr, u_int64_t sid, void *key, u_int64_t keylen,
776     void *mackey, u_int64_t mackeylen, u_int32_t cipher, u_int32_t mac,
777     struct enc_xform *txform, struct auth_hash *thash)
778 {
779 	struct csession *cse;
780 
781 	KASSERT(mutex_owned(&crypto_mtx));
782 	cse = pool_get(&csepl, PR_NOWAIT);
783 	if (cse == NULL)
784 		return NULL;
785 	cse->key = key;
786 	cse->keylen = keylen/8;
787 	cse->mackey = mackey;
788 	cse->mackeylen = mackeylen/8;
789 	cse->sid = sid;
790 	cse->cipher = cipher;
791 	cse->mac = mac;
792 	cse->txform = txform;
793 	cse->thash = thash;
794 	cse->error = 0;
795 	if (cseadd(fcr, cse))
796 		return (cse);
797 	else {
798 		pool_put(&csepl, cse);
799 		return NULL;
800 	}
801 }
802 
803 /* csefree: call with crypto_mtx held. */
804 static int
805 csefree(struct csession *cse)
806 {
807 	int error;
808 
809 	KASSERT(mutex_owned(&crypto_mtx));
810 	error = crypto_freesession(cse->sid);
811 	if (cse->key)
812 		FREE(cse->key, M_XDATA);
813 	if (cse->mackey)
814 		FREE(cse->mackey, M_XDATA);
815 	pool_put(&csepl, cse);
816 	return (error);
817 }
818 
819 static int
820 cryptoopen(dev_t dev, int flag, int mode,
821     struct lwp *l)
822 {
823 	struct file *fp;
824         struct fcrypt *fcr;
825         int fd, error;
826 
827 	if (crypto_usercrypto == 0)
828 		return (ENXIO);
829 
830 	if ((error = falloc(l, &fp, &fd)) != 0)
831 		return error;
832 
833 	fcr = pool_get(&fcrpl, PR_WAITOK);
834 	mutex_spin_enter(&crypto_mtx);
835 	TAILQ_INIT(&fcr->csessions);
836 	/*
837 	 * Don't ever return session 0, to allow detection of
838 	 * failed creation attempts with multi-create ioctl.
839 	 */
840 	fcr->sesn = 1;
841 	mutex_spin_exit(&crypto_mtx);
842 	return fdclone(l, fp, fd, flag, &cryptofops, fcr);
843 }
844 
845 static int
846 cryptoread(dev_t dev, struct uio *uio, int ioflag)
847 {
848 	return (EIO);
849 }
850 
851 static int
852 cryptowrite(dev_t dev, struct uio *uio, int ioflag)
853 {
854 	return (EIO);
855 }
856 
857 int
858 cryptoselect(dev_t dev, int rw, struct lwp *l)
859 {
860 	return (0);
861 }
862 
863 /*static*/
864 struct cdevsw crypto_cdevsw = {
865 	/* open */	cryptoopen,
866 	/* close */	noclose,
867 	/* read */	cryptoread,
868 	/* write */	cryptowrite,
869 	/* ioctl */	noioctl,
870 	/* ttstop?*/	nostop,
871 	/* ??*/		notty,
872 	/* poll */	cryptoselect /*nopoll*/,
873 	/* mmap */	nommap,
874 	/* kqfilter */	nokqfilter,
875 	/* type */	D_OTHER,
876 };
877 
878 /*
879  * Pseudo-device initialization routine for /dev/crypto
880  */
881 void	cryptoattach(int);
882 
883 void
884 cryptoattach(int num)
885 {
886 	pool_init(&fcrpl, sizeof(struct fcrypt), 0, 0, 0, "fcrpl",
887 		  NULL, IPL_NET);	/* XXX IPL_NET ("splcrypto") */
888 	pool_init(&csepl, sizeof(struct csession), 0, 0, 0, "csepl",
889 		  NULL, IPL_NET);	/* XXX IPL_NET ("splcrypto") */
890 
891 	/*
892 	 * Preallocate space for 64 users, with 5 sessions each.
893 	 * (consider that a TLS protocol session requires at least
894 	 * 3DES, MD5, and SHA1 (both hashes are used in the PRF) for
895 	 * the negotiation, plus HMAC_SHA1 for the actual SSL records,
896 	 * consuming one session here for each algorithm.
897 	 */
898 	pool_prime(&fcrpl, 64);
899 	pool_prime(&csepl, 64 * 5);
900 }
901