cryptodev.c revision 1.103 1 /* $NetBSD: cryptodev.c,v 1.103 2020/01/16 15:29:24 christos 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) 2008 The NetBSD Foundation, Inc.
7 * All rights reserved.
8 *
9 * This code is derived from software contributed to The NetBSD Foundation
10 * by Coyote Point Systems, Inc.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 *
21 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
22 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
23 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
24 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
25 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
26 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
27 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
28 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
29 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
31 * POSSIBILITY OF SUCH DAMAGE.
32 */
33
34 /*
35 * Copyright (c) 2001 Theo de Raadt
36 *
37 * Redistribution and use in source and binary forms, with or without
38 * modification, are permitted provided that the following conditions
39 * are met:
40 *
41 * 1. Redistributions of source code must retain the above copyright
42 * notice, this list of conditions and the following disclaimer.
43 * 2. Redistributions in binary form must reproduce the above copyright
44 * notice, this list of conditions and the following disclaimer in the
45 * documentation and/or other materials provided with the distribution.
46 * 3. The name of the author may not be used to endorse or promote products
47 * derived from this software without specific prior written permission.
48 *
49 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
50 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
51 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
52 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
53 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
54 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
55 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
56 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
57 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
58 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
59 *
60 * Effort sponsored in part by the Defense Advanced Research Projects
61 * Agency (DARPA) and Air Force Research Laboratory, Air Force
62 * Materiel Command, USAF, under agreement number F30602-01-2-0537.
63 *
64 */
65
66 #include <sys/cdefs.h>
67 __KERNEL_RCSID(0, "$NetBSD: cryptodev.c,v 1.103 2020/01/16 15:29:24 christos Exp $");
68
69 #include <sys/param.h>
70 #include <sys/systm.h>
71 #include <sys/kmem.h>
72 #include <sys/malloc.h>
73 #include <sys/mbuf.h>
74 #include <sys/pool.h>
75 #include <sys/sysctl.h>
76 #include <sys/file.h>
77 #include <sys/filedesc.h>
78 #include <sys/errno.h>
79 #include <sys/md5.h>
80 #include <sys/sha1.h>
81 #include <sys/conf.h>
82 #include <sys/device.h>
83 #include <sys/kauth.h>
84 #include <sys/select.h>
85 #include <sys/poll.h>
86 #include <sys/atomic.h>
87 #include <sys/stat.h>
88 #include <sys/module.h>
89 #include <sys/compat_stub.h>
90
91 #ifdef _KERNEL_OPT
92 #include "opt_ocf.h"
93 #include "opt_compat_netbsd.h"
94 #endif
95
96 #include <opencrypto/cryptodev.h>
97 #include <opencrypto/ocryptodev.h>
98 #include <opencrypto/cryptodev_internal.h>
99 #include <opencrypto/xform.h>
100
101 #include "ioconf.h"
102
103 kmutex_t cryptodev_mtx;
104
105 struct csession {
106 TAILQ_ENTRY(csession) next;
107 u_int64_t sid;
108 u_int32_t ses;
109
110 u_int32_t cipher; /* note: shares name space in crd_alg */
111 const struct enc_xform *txform;
112 u_int32_t mac; /* note: shares name space in crd_alg */
113 const struct auth_hash *thash;
114 u_int32_t comp_alg; /* note: shares name space in crd_alg */
115 const struct comp_algo *tcomp;
116
117 void * key;
118 int keylen;
119 u_char tmp_iv[EALG_MAX_BLOCK_LEN];
120
121 void * mackey;
122 int mackeylen;
123 u_char tmp_mac[CRYPTO_MAX_MAC_LEN];
124
125 struct iovec iovec[1]; /* user requests never have more */
126 struct uio uio;
127 int error;
128 };
129
130 struct fcrypt {
131 TAILQ_HEAD(csessionlist, csession) csessions;
132 TAILQ_HEAD(crprethead, cryptop) crp_ret_mq;
133 TAILQ_HEAD(krprethead, cryptkop) crp_ret_mkq;
134 int sesn;
135 struct selinfo sinfo;
136 u_int32_t requestid;
137 struct timespec atime;
138 struct timespec mtime;
139 struct timespec btime;
140 };
141
142 /* For our fixed-size allocations */
143 static struct pool fcrpl;
144 static struct pool csepl;
145
146 /* Declaration of master device (fd-cloning/ctxt-allocating) entrypoints */
147 static int cryptoopen(dev_t dev, int flag, int mode, struct lwp *l);
148 static int cryptoread(dev_t dev, struct uio *uio, int ioflag);
149 static int cryptowrite(dev_t dev, struct uio *uio, int ioflag);
150 static int cryptoselect(dev_t dev, int rw, struct lwp *l);
151
152 static int crypto_refcount = 0; /* Prevent detaching while in use */
153
154 /* Declaration of cloned-device (per-ctxt) entrypoints */
155 static int cryptof_read(struct file *, off_t *, struct uio *,
156 kauth_cred_t, int);
157 static int cryptof_write(struct file *, off_t *, struct uio *,
158 kauth_cred_t, int);
159 static int cryptof_ioctl(struct file *, u_long, void *);
160 static int cryptof_close(struct file *);
161 static int cryptof_poll(struct file *, int);
162 static int cryptof_stat(struct file *, struct stat *);
163
164 static const struct fileops cryptofops = {
165 .fo_name = "cryptof",
166 .fo_read = cryptof_read,
167 .fo_write = cryptof_write,
168 .fo_ioctl = cryptof_ioctl,
169 .fo_fcntl = fnullop_fcntl,
170 .fo_poll = cryptof_poll,
171 .fo_stat = cryptof_stat,
172 .fo_close = cryptof_close,
173 .fo_kqfilter = fnullop_kqfilter,
174 .fo_restart = fnullop_restart,
175 };
176
177 struct csession *cryptodev_csefind(struct fcrypt *, u_int);
178 static struct csession *csefind(struct fcrypt *, u_int);
179 static int csedelete(struct fcrypt *, struct csession *);
180 static struct csession *cseadd(struct fcrypt *, struct csession *);
181 static struct csession *csecreate(struct fcrypt *, u_int64_t, void *,
182 u_int64_t, void *, u_int64_t, u_int32_t, u_int32_t, u_int32_t,
183 const struct enc_xform *, const struct auth_hash *,
184 const struct comp_algo *);
185 static int csefree(struct csession *);
186
187 static int cryptodev_key(struct crypt_kop *);
188 static int cryptodev_mkey(struct fcrypt *, struct crypt_n_kop *, int);
189 static int cryptodev_msessionfin(struct fcrypt *, int, u_int32_t *);
190
191 static int cryptodev_cb(void *);
192 static int cryptodevkey_cb(void *);
193
194 static int cryptodev_mcb(void *);
195 static int cryptodevkey_mcb(void *);
196
197 static int cryptodev_getmstatus(struct fcrypt *, struct crypt_result *,
198 int);
199 static int cryptodev_getstatus(struct fcrypt *, struct crypt_result *);
200
201 /*
202 * sysctl-able control variables for /dev/crypto now defined in crypto.c:
203 * crypto_usercrypto, crypto_userasmcrypto, crypto_devallowsoft.
204 */
205
206 /* ARGSUSED */
207 int
208 cryptof_read(file_t *fp, off_t *poff,
209 struct uio *uio, kauth_cred_t cred, int flags)
210 {
211 return EIO;
212 }
213
214 /* ARGSUSED */
215 int
216 cryptof_write(file_t *fp, off_t *poff,
217 struct uio *uio, kauth_cred_t cred, int flags)
218 {
219 return EIO;
220 }
221
222 /* ARGSUSED */
223 int
224 cryptof_ioctl(struct file *fp, u_long cmd, void *data)
225 {
226 struct fcrypt *fcr = fp->f_fcrypt;
227 struct csession *cse;
228 struct session_op *sop;
229 struct session_n_op *snop;
230 struct crypt_op *cop;
231 struct crypt_mop *mop;
232 struct crypt_mkop *mkop;
233 struct crypt_n_op *cnop;
234 struct crypt_n_kop *knop;
235 struct crypt_sgop *sgop;
236 struct crypt_sfop *sfop;
237 struct cryptret *crypt_ret;
238 struct crypt_result *crypt_res;
239 u_int32_t ses;
240 u_int32_t *sesid;
241 int error = 0;
242 size_t count;
243
244 /* backwards compatibility */
245 file_t *criofp;
246 struct fcrypt *criofcr;
247 int criofd;
248
249 mutex_enter(&cryptodev_mtx);
250 getnanotime(&fcr->atime);
251 mutex_exit(&cryptodev_mtx);
252
253 switch (cmd) {
254 case CRIOGET: /* XXX deprecated, remove after 5.0 */
255 if ((error = fd_allocfile(&criofp, &criofd)) != 0)
256 return error;
257 criofcr = pool_get(&fcrpl, PR_WAITOK);
258 mutex_enter(&cryptodev_mtx);
259 TAILQ_INIT(&criofcr->csessions);
260 TAILQ_INIT(&criofcr->crp_ret_mq);
261 TAILQ_INIT(&criofcr->crp_ret_mkq);
262 selinit(&criofcr->sinfo);
263
264 /*
265 * Don't ever return session 0, to allow detection of
266 * failed creation attempts with multi-create ioctl.
267 */
268 criofcr->sesn = 1;
269 criofcr->requestid = 1;
270 crypto_refcount++;
271 mutex_exit(&cryptodev_mtx);
272 (void)fd_clone(criofp, criofd, (FREAD|FWRITE),
273 &cryptofops, criofcr);
274 *(u_int32_t *)data = criofd;
275 return error;
276 break;
277 case CIOCGSESSION:
278 sop = (struct session_op *)data;
279 error = cryptodev_session(fcr, sop);
280 break;
281 case CIOCNGSESSION:
282 sgop = (struct crypt_sgop *)data;
283 if (sgop->count <= 0
284 || SIZE_MAX / sizeof(struct session_n_op) <= sgop->count) {
285 error = EINVAL;
286 break;
287 }
288 snop = kmem_alloc((sgop->count *
289 sizeof(struct session_n_op)), KM_SLEEP);
290 error = copyin(sgop->sessions, snop, sgop->count *
291 sizeof(struct session_n_op));
292 if (error) {
293 goto mbail;
294 }
295
296 mutex_enter(&cryptodev_mtx);
297 fcr->mtime = fcr->atime;
298 mutex_exit(&cryptodev_mtx);
299 error = cryptodev_msession(fcr, snop, sgop->count);
300 if (error) {
301 goto mbail;
302 }
303
304 error = copyout(snop, sgop->sessions, sgop->count *
305 sizeof(struct session_n_op));
306 mbail:
307 kmem_free(snop, sgop->count * sizeof(struct session_n_op));
308 break;
309 case CIOCFSESSION:
310 mutex_enter(&cryptodev_mtx);
311 fcr->mtime = fcr->atime;
312 ses = *(u_int32_t *)data;
313 cse = csefind(fcr, ses);
314 if (cse == NULL) {
315 mutex_exit(&cryptodev_mtx);
316 return EINVAL;
317 }
318 csedelete(fcr, cse);
319 mutex_exit(&cryptodev_mtx);
320 error = csefree(cse);
321 break;
322 case CIOCNFSESSION:
323 mutex_enter(&cryptodev_mtx);
324 fcr->mtime = fcr->atime;
325 mutex_exit(&cryptodev_mtx);
326 sfop = (struct crypt_sfop *)data;
327 if (sfop->count <= 0
328 || SIZE_MAX / sizeof(u_int32_t) <= sfop->count) {
329 error = EINVAL;
330 break;
331 }
332 sesid = kmem_alloc((sfop->count * sizeof(u_int32_t)),
333 KM_SLEEP);
334 error = copyin(sfop->sesid, sesid,
335 (sfop->count * sizeof(u_int32_t)));
336 if (!error) {
337 error = cryptodev_msessionfin(fcr, sfop->count, sesid);
338 }
339 kmem_free(sesid, (sfop->count * sizeof(u_int32_t)));
340 break;
341 case CIOCCRYPT:
342 mutex_enter(&cryptodev_mtx);
343 fcr->mtime = fcr->atime;
344 cop = (struct crypt_op *)data;
345 cse = csefind(fcr, cop->ses);
346 mutex_exit(&cryptodev_mtx);
347 if (cse == NULL) {
348 DPRINTF("csefind failed\n");
349 return EINVAL;
350 }
351 error = cryptodev_op(cse, cop, curlwp);
352 DPRINTF("cryptodev_op error = %d\n", error);
353 break;
354 case CIOCNCRYPTM:
355 mutex_enter(&cryptodev_mtx);
356 fcr->mtime = fcr->atime;
357 mutex_exit(&cryptodev_mtx);
358 mop = (struct crypt_mop *)data;
359 if (mop->count <= 0
360 || SIZE_MAX / sizeof(struct crypt_n_op) <= mop->count) {
361 error = EINVAL;
362 break;
363 }
364 cnop = kmem_alloc((mop->count * sizeof(struct crypt_n_op)),
365 KM_SLEEP);
366 error = copyin(mop->reqs, cnop,
367 (mop->count * sizeof(struct crypt_n_op)));
368 if(!error) {
369 error = cryptodev_mop(fcr, cnop, mop->count, curlwp);
370 if (!error) {
371 error = copyout(cnop, mop->reqs,
372 (mop->count * sizeof(struct crypt_n_op)));
373 }
374 }
375 kmem_free(cnop, (mop->count * sizeof(struct crypt_n_op)));
376 break;
377 case CIOCKEY:
378 error = cryptodev_key((struct crypt_kop *)data);
379 DPRINTF("cryptodev_key error = %d\n", error);
380 break;
381 case CIOCNFKEYM:
382 mutex_enter(&cryptodev_mtx);
383 fcr->mtime = fcr->atime;
384 mutex_exit(&cryptodev_mtx);
385 mkop = (struct crypt_mkop *)data;
386 if (mkop->count <= 0
387 || SIZE_MAX / sizeof(struct crypt_n_kop) <= mkop->count) {
388 error = EINVAL;
389 break;
390 }
391 knop = kmem_alloc((mkop->count * sizeof(struct crypt_n_kop)),
392 KM_SLEEP);
393 error = copyin(mkop->reqs, knop,
394 (mkop->count * sizeof(struct crypt_n_kop)));
395 if (!error) {
396 error = cryptodev_mkey(fcr, knop, mkop->count);
397 if (!error)
398 error = copyout(knop, mkop->reqs,
399 (mkop->count * sizeof(struct crypt_n_kop)));
400 }
401 kmem_free(knop, (mkop->count * sizeof(struct crypt_n_kop)));
402 break;
403 case CIOCASYMFEAT:
404 error = crypto_getfeat((int *)data);
405 break;
406 case CIOCNCRYPTRETM:
407 mutex_enter(&cryptodev_mtx);
408 fcr->mtime = fcr->atime;
409 mutex_exit(&cryptodev_mtx);
410 crypt_ret = (struct cryptret *)data;
411 count = crypt_ret->count;
412 if (count <= 0
413 || SIZE_MAX / sizeof(struct crypt_result) <= count) {
414 error = EINVAL;
415 break;
416 }
417 crypt_res = kmem_alloc((count * sizeof(struct crypt_result)),
418 KM_SLEEP);
419 error = copyin(crypt_ret->results, crypt_res,
420 (count * sizeof(struct crypt_result)));
421 if (error)
422 goto reterr;
423 crypt_ret->count = cryptodev_getmstatus(fcr, crypt_res,
424 crypt_ret->count);
425 /* sanity check count */
426 if (crypt_ret->count > count) {
427 printf("%s.%d: error returned count %zd > original "
428 " count %zd\n",
429 __FILE__, __LINE__, crypt_ret->count, count);
430 crypt_ret->count = count;
431
432 }
433 error = copyout(crypt_res, crypt_ret->results,
434 (crypt_ret->count * sizeof(struct crypt_result)));
435 reterr:
436 kmem_free(crypt_res, (count * sizeof(struct crypt_result)));
437 break;
438 case CIOCNCRYPTRET:
439 error = cryptodev_getstatus(fcr, (struct crypt_result *)data);
440 break;
441 default:
442 /* Check for backward compatible commands */
443
444 MODULE_HOOK_CALL(ocryptof_50_hook, (fp, cmd, data),
445 enosys(), error);
446 if (error == ENOSYS)
447 error = EINVAL;
448 return error;
449 }
450 return error;
451 }
452
453 int
454 cryptodev_op(struct csession *cse, struct crypt_op *cop, struct lwp *l)
455 {
456 struct cryptop *crp = NULL;
457 struct cryptodesc *crde = NULL, *crda = NULL, *crdc = NULL;
458 int error;
459 int iov_len = cop->len;
460 int flags=0;
461 int dst_len; /* copyout size */
462
463 if (cop->len > 256*1024-4)
464 return E2BIG;
465
466 if (cse->txform) {
467 if (cop->len < cse->txform->blocksize
468 + (cop->iv ? 0 : cse->txform->ivsize) ||
469 (cop->len - (cop->iv ? 0 : cse->txform->ivsize))
470 % cse->txform->blocksize != 0)
471 return EINVAL;
472 }
473
474 DPRINTF("cryptodev_op[%u]: iov_len %d\n",
475 CRYPTO_SESID2LID(cse->sid), iov_len);
476 if ((cse->tcomp) && cop->dst_len) {
477 if (iov_len < cop->dst_len) {
478 /* Need larger iov to deal with decompress */
479 iov_len = cop->dst_len;
480 }
481 DPRINTF("cryptodev_op: iov_len -> %d for decompress\n", iov_len);
482 }
483
484 (void)memset(&cse->uio, 0, sizeof(cse->uio));
485 cse->uio.uio_iovcnt = 1;
486 cse->uio.uio_resid = 0;
487 cse->uio.uio_rw = UIO_WRITE;
488 cse->uio.uio_iov = cse->iovec;
489 UIO_SETUP_SYSSPACE(&cse->uio);
490 memset(&cse->iovec, 0, sizeof(cse->iovec));
491
492 /* the iov needs to be big enough to handle the uncompressed
493 * data.... */
494 cse->uio.uio_iov[0].iov_len = iov_len;
495 if (iov_len > 0)
496 cse->uio.uio_iov[0].iov_base = kmem_alloc(iov_len, KM_SLEEP);
497 cse->uio.uio_resid = cse->uio.uio_iov[0].iov_len;
498 DPRINTF("lid[%u]: uio.iov_base %p malloced %d bytes\n",
499 CRYPTO_SESID2LID(cse->sid),
500 cse->uio.uio_iov[0].iov_base, iov_len);
501
502 crp = crypto_getreq((cse->tcomp != NULL) + (cse->txform != NULL) + (cse->thash != NULL));
503 if (crp == NULL) {
504 error = ENOMEM;
505 goto bail;
506 }
507 DPRINTF("lid[%u]: crp %p\n", CRYPTO_SESID2LID(cse->sid), crp);
508
509 /* crds are always ordered tcomp, thash, then txform */
510 /* with optional missing links */
511
512 /* XXX: If we're going to compress then hash or encrypt, we need
513 * to be able to pass on the new size of the data.
514 */
515
516 if (cse->tcomp) {
517 crdc = crp->crp_desc;
518 }
519
520 if (cse->thash) {
521 crda = crdc ? crdc->crd_next : crp->crp_desc;
522 if (cse->txform && crda)
523 crde = crda->crd_next;
524 } else {
525 if (cse->txform) {
526 crde = crdc ? crdc->crd_next : crp->crp_desc;
527 } else if (!cse->tcomp) {
528 error = EINVAL;
529 goto bail;
530 }
531 }
532
533 DPRINTF("ocf[%u]: iov_len %zu, cop->len %u\n",
534 CRYPTO_SESID2LID(cse->sid),
535 cse->uio.uio_iov[0].iov_len,
536 cop->len);
537
538 if ((error = copyin(cop->src, cse->uio.uio_iov[0].iov_base, cop->len)))
539 {
540 printf("copyin failed %s %d \n", (char *)cop->src, error);
541 goto bail;
542 }
543
544 if (crdc) {
545 switch (cop->op) {
546 case COP_COMP:
547 crdc->crd_flags |= CRD_F_COMP;
548 break;
549 case COP_DECOMP:
550 crdc->crd_flags &= ~CRD_F_COMP;
551 break;
552 default:
553 break;
554 }
555 /* more data to follow? */
556 if (cop->flags & COP_F_MORE) {
557 flags |= CRYPTO_F_MORE;
558 }
559 crdc->crd_len = cop->len;
560 crdc->crd_inject = 0;
561
562 crdc->crd_alg = cse->comp_alg;
563 crdc->crd_key = NULL;
564 crdc->crd_klen = 0;
565 DPRINTF("lid[%u]: crdc setup for comp_alg %d.\n",
566 CRYPTO_SESID2LID(cse->sid), crdc->crd_alg);
567 }
568
569 if (crda) {
570 crda->crd_skip = 0;
571 crda->crd_len = cop->len;
572 crda->crd_inject = 0; /* ??? */
573
574 crda->crd_alg = cse->mac;
575 crda->crd_key = cse->mackey;
576 crda->crd_klen = cse->mackeylen * 8;
577 DPRINTF("crda setup for mac %d.\n", crda->crd_alg);
578 }
579
580 if (crde) {
581 switch (cop->op) {
582 case COP_ENCRYPT:
583 crde->crd_flags |= CRD_F_ENCRYPT;
584 break;
585 case COP_DECRYPT:
586 crde->crd_flags &= ~CRD_F_ENCRYPT;
587 break;
588 default:
589 break;
590 }
591 crde->crd_len = cop->len;
592 crde->crd_inject = 0;
593
594 if (cse->cipher == CRYPTO_AES_GCM_16 && crda)
595 crda->crd_len = 0;
596 else if (cse->cipher == CRYPTO_AES_GMAC)
597 crde->crd_len = 0;
598
599 crde->crd_alg = cse->cipher;
600 crde->crd_key = cse->key;
601 crde->crd_klen = cse->keylen * 8;
602 DPRINTF("crde setup for cipher %d.\n", crde->crd_alg);
603 }
604
605
606 crp->crp_ilen = cop->len;
607 /*
608 * The request is flagged as CRYPTO_F_USER as long as it is running
609 * in the user IOCTL thread. However, whether the request completes
610 * immediately or belatedly is depends on the used encryption driver.
611 */
612 crp->crp_flags = CRYPTO_F_IOV | (cop->flags & COP_F_BATCH) | CRYPTO_F_USER |
613 flags;
614 crp->crp_buf = (void *)&cse->uio;
615 crp->crp_callback = (int (*) (struct cryptop *)) cryptodev_cb;
616 crp->crp_sid = cse->sid;
617 crp->crp_opaque = (void *)cse;
618
619 if (cop->iv) {
620 if (crde == NULL) {
621 error = EINVAL;
622 goto bail;
623 }
624 if (cse->txform->ivsize == 0) {
625 error = EINVAL;
626 goto bail;
627 }
628 if ((error = copyin(cop->iv, cse->tmp_iv,
629 cse->txform->ivsize)))
630 goto bail;
631 (void)memcpy(crde->crd_iv, cse->tmp_iv, cse->txform->ivsize);
632 crde->crd_flags |= CRD_F_IV_EXPLICIT | CRD_F_IV_PRESENT;
633 crde->crd_skip = 0;
634 } else if (crde) {
635 if (cse->txform->ivsize == 0) {
636 crde->crd_skip = 0;
637 } else {
638 if (!(crde->crd_flags & CRD_F_ENCRYPT))
639 crde->crd_flags |= CRD_F_IV_PRESENT;
640 crde->crd_skip = cse->txform->ivsize;
641 crde->crd_len -= cse->txform->ivsize;
642 }
643 }
644
645 if (cop->mac) {
646 if (crda == NULL) {
647 error = EINVAL;
648 goto bail;
649 }
650 crp->crp_mac=cse->tmp_mac;
651 }
652
653 cv_init(&crp->crp_cv, "crydev");
654
655 /*
656 * XXX there was a comment here which said that we went to
657 * XXX splcrypto() but needed to only if CRYPTO_F_CBIMM,
658 * XXX disabled on NetBSD since 1.6O due to a race condition.
659 * XXX But crypto_dispatch went to splcrypto() itself! (And
660 * XXX now takes the cryptodev_mtx mutex itself). We do, however,
661 * XXX need to hold the mutex across the call to cv_wait().
662 * XXX (should we arrange for crypto_dispatch to return to
663 * XXX us with it held? it seems quite ugly to do so.)
664 */
665 #ifdef notyet
666 eagain:
667 #endif
668 error = crypto_dispatch(crp);
669 mutex_enter(&cryptodev_mtx);
670
671 /*
672 * Don't touch crp before returned by any error or received
673 * cv_signal(&crp->crp_cv). It is required to restructure locks.
674 */
675
676 switch (error) {
677 #ifdef notyet /* don't loop forever -- but EAGAIN not possible here yet */
678 case EAGAIN:
679 mutex_exit(&cryptodev_mtx);
680 goto eagain;
681 break;
682 #endif
683 case 0:
684 break;
685 default:
686 DPRINTF("not waiting, error.\n");
687 mutex_exit(&cryptodev_mtx);
688 cv_destroy(&crp->crp_cv);
689 goto bail;
690 }
691
692 while (!(crp->crp_devflags & CRYPTODEV_F_RET)) {
693 DPRINTF("cse->sid[%d]: sleeping on cv %p for crp %p\n",
694 (uint32_t)cse->sid, &crp->crp_cv, crp);
695 cv_wait(&crp->crp_cv, &cryptodev_mtx); /* XXX cv_wait_sig? */
696 }
697 mutex_exit(&cryptodev_mtx);
698 cv_destroy(&crp->crp_cv);
699
700 if (crp->crp_etype != 0) {
701 DPRINTF("crp_etype %d\n", crp->crp_etype);
702 error = crp->crp_etype;
703 goto bail;
704 }
705
706 if (cse->error) {
707 DPRINTF("cse->error %d\n", cse->error);
708 error = cse->error;
709 goto bail;
710 }
711
712 dst_len = crp->crp_ilen;
713 /* let the user know how much data was returned */
714 if (crp->crp_olen) {
715 if (crp->crp_olen > (cop->dst_len ? cop->dst_len : cop->len)) {
716 error = ENOSPC;
717 goto bail;
718 }
719 dst_len = cop->dst_len = crp->crp_olen;
720 }
721
722 if (cop->dst) {
723 DPRINTF("copyout %d bytes to %p\n", dst_len, cop->dst);
724 }
725 if (cop->dst &&
726 (error = copyout(cse->uio.uio_iov[0].iov_base, cop->dst, dst_len)))
727 {
728 DPRINTF("copyout error %d\n", error);
729 goto bail;
730 }
731
732 if (cop->mac &&
733 (error = copyout(crp->crp_mac, cop->mac, cse->thash->authsize))) {
734 DPRINTF("mac copyout error %d\n", error);
735 goto bail;
736 }
737
738
739 bail:
740 if (crp) {
741 crypto_freereq(crp);
742 }
743 if (cse->uio.uio_iov[0].iov_base) {
744 kmem_free(cse->uio.uio_iov[0].iov_base,iov_len);
745 }
746
747 return error;
748 }
749
750 static int
751 cryptodev_cb(void *op)
752 {
753 struct cryptop *crp = (struct cryptop *) op;
754 struct csession *cse = (struct csession *)crp->crp_opaque;
755 int error = 0;
756
757 mutex_enter(&cryptodev_mtx);
758 cse->error = crp->crp_etype;
759 if (crp->crp_etype == EAGAIN) {
760 /* always drop mutex to call dispatch routine */
761 mutex_exit(&cryptodev_mtx);
762 error = crypto_dispatch(crp);
763 mutex_enter(&cryptodev_mtx);
764 }
765 if (error != 0 || (crp->crp_flags & CRYPTO_F_DONE)) {
766 crp->crp_devflags |= CRYPTODEV_F_RET;
767 cv_signal(&crp->crp_cv);
768 }
769 mutex_exit(&cryptodev_mtx);
770 return 0;
771 }
772
773 static int
774 cryptodev_mcb(void *op)
775 {
776 struct cryptop *crp = (struct cryptop *) op;
777 struct csession *cse = (struct csession *)crp->crp_opaque;
778 int error=0;
779
780 mutex_enter(&cryptodev_mtx);
781 cse->error = crp->crp_etype;
782 if (crp->crp_etype == EAGAIN) {
783 mutex_exit(&cryptodev_mtx);
784 error = crypto_dispatch(crp);
785 mutex_enter(&cryptodev_mtx);
786 }
787 if (error != 0 || (crp->crp_flags & CRYPTO_F_DONE)) {
788 cv_signal(&crp->crp_cv);
789 }
790
791 TAILQ_INSERT_TAIL(&crp->fcrp->crp_ret_mq, crp, crp_next);
792 selnotify(&crp->fcrp->sinfo, 0, 0);
793 mutex_exit(&cryptodev_mtx);
794 return 0;
795 }
796
797 static int
798 cryptodevkey_cb(void *op)
799 {
800 struct cryptkop *krp = op;
801
802 mutex_enter(&cryptodev_mtx);
803 krp->krp_devflags |= CRYPTODEV_F_RET;
804 cv_signal(&krp->krp_cv);
805 mutex_exit(&cryptodev_mtx);
806 return 0;
807 }
808
809 static int
810 cryptodevkey_mcb(void *op)
811 {
812 struct cryptkop *krp = op;
813
814 mutex_enter(&cryptodev_mtx);
815 cv_signal(&krp->krp_cv);
816 TAILQ_INSERT_TAIL(&krp->fcrp->crp_ret_mkq, krp, krp_next);
817 selnotify(&krp->fcrp->sinfo, 0, 0);
818 mutex_exit(&cryptodev_mtx);
819 return 0;
820 }
821
822 static int
823 cryptodev_key(struct crypt_kop *kop)
824 {
825 struct cryptkop *krp = NULL;
826 int error = EINVAL;
827 int in, out, size, i;
828
829 if (kop->crk_iparams + kop->crk_oparams > CRK_MAXPARAM)
830 return EFBIG;
831
832 in = kop->crk_iparams;
833 out = kop->crk_oparams;
834 switch (kop->crk_op) {
835 case CRK_MOD_EXP:
836 if (in == 3 && out == 1)
837 break;
838 return EINVAL;
839 case CRK_MOD_EXP_CRT:
840 if (in == 6 && out == 1)
841 break;
842 return EINVAL;
843 case CRK_DSA_SIGN:
844 if (in == 5 && out == 2)
845 break;
846 return EINVAL;
847 case CRK_DSA_VERIFY:
848 if (in == 7 && out == 0)
849 break;
850 return EINVAL;
851 case CRK_DH_COMPUTE_KEY:
852 if (in == 3 && out == 1)
853 break;
854 return EINVAL;
855 case CRK_MOD_ADD:
856 if (in == 3 && out == 1)
857 break;
858 return EINVAL;
859 case CRK_MOD_ADDINV:
860 if (in == 2 && out == 1)
861 break;
862 return EINVAL;
863 case CRK_MOD_SUB:
864 if (in == 3 && out == 1)
865 break;
866 return EINVAL;
867 case CRK_MOD_MULT:
868 if (in == 3 && out == 1)
869 break;
870 return EINVAL;
871 case CRK_MOD_MULTINV:
872 if (in == 2 && out == 1)
873 break;
874 return EINVAL;
875 case CRK_MOD:
876 if (in == 2 && out == 1)
877 break;
878 return EINVAL;
879 default:
880 return EINVAL;
881 }
882
883 krp = crypto_kgetreq(1, PR_WAITOK);
884 if (krp == NULL) {
885 /* limited by opencrypto.crypto_ret_kq.maxlen */
886 return ENOMEM;
887 }
888 (void)memset(krp, 0, sizeof *krp);
889 cv_init(&krp->krp_cv, "crykdev");
890 krp->krp_op = kop->crk_op;
891 krp->krp_status = kop->crk_status;
892 krp->krp_iparams = kop->crk_iparams;
893 krp->krp_oparams = kop->crk_oparams;
894 krp->krp_status = 0;
895 krp->krp_callback = (int (*) (struct cryptkop *)) cryptodevkey_cb;
896
897 for (i = 0; i < CRK_MAXPARAM; i++)
898 krp->krp_param[i].crp_nbits = kop->crk_param[i].crp_nbits;
899 for (i = 0; i < krp->krp_iparams + krp->krp_oparams; i++) {
900 size = (krp->krp_param[i].crp_nbits + 7) / 8;
901 if (size == 0)
902 continue;
903 krp->krp_param[i].crp_p = kmem_alloc(size, KM_SLEEP);
904 if (i >= krp->krp_iparams)
905 continue;
906 error = copyin(kop->crk_param[i].crp_p,
907 krp->krp_param[i].crp_p, size);
908 if (error)
909 goto fail;
910 }
911
912 error = crypto_kdispatch(krp);
913 if (error != 0) {
914 goto fail;
915 }
916
917 mutex_enter(&cryptodev_mtx);
918 while (!(krp->krp_devflags & CRYPTODEV_F_RET)) {
919 cv_wait(&krp->krp_cv, &cryptodev_mtx); /* XXX cv_wait_sig? */
920 }
921 mutex_exit(&cryptodev_mtx);
922
923 if (krp->krp_status != 0) {
924 DPRINTF("krp->krp_status 0x%08x\n", krp->krp_status);
925 error = krp->krp_status;
926 goto fail;
927 }
928
929 for (i = krp->krp_iparams; i < krp->krp_iparams + krp->krp_oparams;
930 i++) {
931 size = (krp->krp_param[i].crp_nbits + 7) / 8;
932 if (size == 0)
933 continue;
934 error = copyout(krp->krp_param[i].crp_p,
935 kop->crk_param[i].crp_p, size);
936 if (error) {
937 DPRINTF("copyout oparam %d failed, "
938 "error=%d\n", i-krp->krp_iparams, error);
939 goto fail;
940 }
941 }
942
943 fail:
944 kop->crk_status = krp->krp_status;
945 for (i = 0; i < CRK_MAXPARAM; i++) {
946 struct crparam *kp = &(krp->krp_param[i]);
947 if (krp->krp_param[i].crp_p) {
948 size = (kp->crp_nbits + 7) / 8;
949 KASSERT(size > 0);
950 (void)memset(kp->crp_p, 0, size);
951 kmem_free(kp->crp_p, size);
952 }
953 }
954 cv_destroy(&krp->krp_cv);
955 crypto_kfreereq(krp);
956 DPRINTF("error=0x%08x\n", error);
957 return error;
958 }
959
960 /* ARGSUSED */
961 static int
962 cryptof_close(struct file *fp)
963 {
964 struct fcrypt *fcr = fp->f_fcrypt;
965 struct csession *cse;
966
967 mutex_enter(&cryptodev_mtx);
968 while ((cse = TAILQ_FIRST(&fcr->csessions))) {
969 TAILQ_REMOVE(&fcr->csessions, cse, next);
970 mutex_exit(&cryptodev_mtx);
971 (void)csefree(cse);
972 mutex_enter(&cryptodev_mtx);
973 }
974 seldestroy(&fcr->sinfo);
975 fp->f_fcrypt = NULL;
976 crypto_refcount--;
977 mutex_exit(&cryptodev_mtx);
978
979 pool_put(&fcrpl, fcr);
980 return 0;
981 }
982
983 /* needed for compatibility module */
984 struct csession *cryptodev_csefind(struct fcrypt *fcr, u_int ses)
985 {
986 return csefind(fcr, ses);
987 }
988
989 /* csefind: call with cryptodev_mtx held. */
990 static struct csession *
991 csefind(struct fcrypt *fcr, u_int ses)
992 {
993 struct csession *cse, *cnext, *ret = NULL;
994
995 KASSERT(mutex_owned(&cryptodev_mtx));
996 TAILQ_FOREACH_SAFE(cse, &fcr->csessions, next, cnext)
997 if (cse->ses == ses)
998 ret = cse;
999
1000 return ret;
1001 }
1002
1003 /* csedelete: call with cryptodev_mtx held. */
1004 static int
1005 csedelete(struct fcrypt *fcr, struct csession *cse_del)
1006 {
1007 struct csession *cse, *cnext;
1008 int ret = 0;
1009
1010 KASSERT(mutex_owned(&cryptodev_mtx));
1011 TAILQ_FOREACH_SAFE(cse, &fcr->csessions, next, cnext) {
1012 if (cse == cse_del) {
1013 TAILQ_REMOVE(&fcr->csessions, cse, next);
1014 ret = 1;
1015 }
1016 }
1017 return ret;
1018 }
1019
1020 static struct csession *
1021 cseadd(struct fcrypt *fcr, struct csession *cse)
1022 {
1023 mutex_enter(&cryptodev_mtx);
1024 /* don't let session ID wrap! */
1025 if (fcr->sesn + 1 == 0) return NULL;
1026 TAILQ_INSERT_TAIL(&fcr->csessions, cse, next);
1027 cse->ses = fcr->sesn++;
1028 mutex_exit(&cryptodev_mtx);
1029 return cse;
1030 }
1031
1032 static struct csession *
1033 csecreate(struct fcrypt *fcr, u_int64_t sid, void *key, u_int64_t keylen,
1034 void *mackey, u_int64_t mackeylen, u_int32_t cipher, u_int32_t mac,
1035 u_int32_t comp_alg, const struct enc_xform *txform,
1036 const struct auth_hash *thash, const struct comp_algo *tcomp)
1037 {
1038 struct csession *cse;
1039
1040 cse = pool_get(&csepl, PR_NOWAIT);
1041 if (cse == NULL)
1042 return NULL;
1043 cse->key = key;
1044 cse->keylen = keylen/8;
1045 cse->mackey = mackey;
1046 cse->mackeylen = mackeylen/8;
1047 cse->sid = sid;
1048 cse->cipher = cipher;
1049 cse->mac = mac;
1050 cse->comp_alg = comp_alg;
1051 cse->txform = txform;
1052 cse->thash = thash;
1053 cse->tcomp = tcomp;
1054 cse->error = 0;
1055 if (cseadd(fcr, cse))
1056 return cse;
1057 else {
1058 pool_put(&csepl, cse);
1059 return NULL;
1060 }
1061 }
1062
1063 /* csefree: call with cryptodev_mtx held. */
1064 static int
1065 csefree(struct csession *cse)
1066 {
1067 int error;
1068
1069 error = crypto_freesession(cse->sid);
1070 if (cse->key)
1071 free(cse->key, M_XDATA);
1072 if (cse->mackey)
1073 free(cse->mackey, M_XDATA);
1074 pool_put(&csepl, cse);
1075 return error;
1076 }
1077
1078 static int
1079 cryptoopen(dev_t dev, int flag, int mode,
1080 struct lwp *l)
1081 {
1082 file_t *fp;
1083 struct fcrypt *fcr;
1084 int fd, error;
1085
1086 if (crypto_usercrypto == 0)
1087 return ENXIO;
1088
1089 if ((error = fd_allocfile(&fp, &fd)) != 0)
1090 return error;
1091
1092 fcr = pool_get(&fcrpl, PR_WAITOK);
1093 getnanotime(&fcr->btime);
1094 fcr->atime = fcr->mtime = fcr->btime;
1095 mutex_enter(&cryptodev_mtx);
1096 TAILQ_INIT(&fcr->csessions);
1097 TAILQ_INIT(&fcr->crp_ret_mq);
1098 TAILQ_INIT(&fcr->crp_ret_mkq);
1099 selinit(&fcr->sinfo);
1100 /*
1101 * Don't ever return session 0, to allow detection of
1102 * failed creation attempts with multi-create ioctl.
1103 */
1104 fcr->sesn = 1;
1105 fcr->requestid = 1;
1106 crypto_refcount++;
1107 mutex_exit(&cryptodev_mtx);
1108 return fd_clone(fp, fd, flag, &cryptofops, fcr);
1109 }
1110
1111 static int
1112 cryptoread(dev_t dev, struct uio *uio, int ioflag)
1113 {
1114 return EIO;
1115 }
1116
1117 static int
1118 cryptowrite(dev_t dev, struct uio *uio, int ioflag)
1119 {
1120 return EIO;
1121 }
1122
1123 int
1124 cryptoselect(dev_t dev, int rw, struct lwp *l)
1125 {
1126 return 0;
1127 }
1128
1129 /*static*/
1130 struct cdevsw crypto_cdevsw = {
1131 .d_open = cryptoopen,
1132 .d_close = noclose,
1133 .d_read = cryptoread,
1134 .d_write = cryptowrite,
1135 .d_ioctl = noioctl,
1136 .d_stop = nostop,
1137 .d_tty = notty,
1138 .d_poll = cryptoselect /*nopoll*/,
1139 .d_mmap = nommap,
1140 .d_kqfilter = nokqfilter,
1141 .d_discard = nodiscard,
1142 .d_flag = D_OTHER
1143 };
1144
1145 int
1146 cryptodev_mop(struct fcrypt *fcr,
1147 struct crypt_n_op * cnop,
1148 int count, struct lwp *l)
1149 {
1150 struct cryptop *crp = NULL;
1151 struct cryptodesc *crde = NULL, *crda = NULL, *crdc = NULL;
1152 int req, error=0;
1153 struct csession *cse;
1154 int flags=0;
1155 int iov_len;
1156
1157 for (req = 0; req < count; req++) {
1158 mutex_enter(&cryptodev_mtx);
1159 cse = csefind(fcr, cnop[req].ses);
1160 if (cse == NULL) {
1161 DPRINTF("csefind failed\n");
1162 cnop[req].status = EINVAL;
1163 mutex_exit(&cryptodev_mtx);
1164 continue;
1165 }
1166 mutex_exit(&cryptodev_mtx);
1167
1168 if (cnop[req].len > 256*1024-4) {
1169 DPRINTF("length failed\n");
1170 cnop[req].status = EINVAL;
1171 continue;
1172 }
1173 if (cse->txform) {
1174 if (cnop[req].len < cse->txform->blocksize -
1175 (cnop[req].iv ? 0 : cse->txform->ivsize) ||
1176 (cnop[req].len -
1177 (cnop[req].iv ? 0 : cse->txform->ivsize))
1178 % cse->txform->blocksize) {
1179 cnop[req].status = EINVAL;
1180 continue;
1181 }
1182 }
1183
1184 /* sanitize */
1185 if (cnop[req].len <= 0) {
1186 cnop[req].status = ENOMEM;
1187 goto bail;
1188 }
1189
1190 crp = crypto_getreq((cse->txform != NULL) +
1191 (cse->thash != NULL) +
1192 (cse->tcomp != NULL));
1193 if (crp == NULL) {
1194 cnop[req].status = ENOMEM;
1195 goto bail;
1196 }
1197
1198 iov_len = cnop[req].len;
1199 /* got a compression/decompression max size? */
1200 if ((cse->tcomp) && cnop[req].dst_len) {
1201 if (iov_len < cnop[req].dst_len) {
1202 /* Need larger iov to deal with decompress */
1203 iov_len = cnop[req].dst_len;
1204 }
1205 DPRINTF("iov_len -> %d for decompress\n", iov_len);
1206 }
1207
1208 (void)memset(&crp->uio, 0, sizeof(crp->uio));
1209 crp->uio.uio_iovcnt = 1;
1210 crp->uio.uio_resid = 0;
1211 crp->uio.uio_rw = UIO_WRITE;
1212 crp->uio.uio_iov = crp->iovec;
1213 UIO_SETUP_SYSSPACE(&crp->uio);
1214 memset(&crp->iovec, 0, sizeof(crp->iovec));
1215 crp->uio.uio_iov[0].iov_len = iov_len;
1216 DPRINTF("kmem_alloc(%d) for iov \n", iov_len);
1217 crp->uio.uio_iov[0].iov_base = kmem_alloc(iov_len, KM_SLEEP);
1218 crp->uio.uio_resid = crp->uio.uio_iov[0].iov_len;
1219
1220 if (cse->tcomp) {
1221 crdc = crp->crp_desc;
1222 }
1223
1224 if (cse->thash) {
1225 crda = crdc ? crdc->crd_next : crp->crp_desc;
1226 if (cse->txform && crda)
1227 crde = crda->crd_next;
1228 } else {
1229 if (cse->txform) {
1230 crde = crdc ? crdc->crd_next : crp->crp_desc;
1231 } else if (!cse->tcomp) {
1232 error = EINVAL;
1233 goto bail;
1234 }
1235 }
1236
1237 if ((copyin(cnop[req].src,
1238 crp->uio.uio_iov[0].iov_base, cnop[req].len))) {
1239 cnop[req].status = EINVAL;
1240 goto bail;
1241 }
1242
1243 if (crdc) {
1244 switch (cnop[req].op) {
1245 case COP_COMP:
1246 crdc->crd_flags |= CRD_F_COMP;
1247 break;
1248 case COP_DECOMP:
1249 crdc->crd_flags &= ~CRD_F_COMP;
1250 break;
1251 default:
1252 break;
1253 }
1254 /* more data to follow? */
1255 if (cnop[req].flags & COP_F_MORE) {
1256 flags |= CRYPTO_F_MORE;
1257 }
1258 crdc->crd_len = cnop[req].len;
1259 crdc->crd_inject = 0;
1260
1261 crdc->crd_alg = cse->comp_alg;
1262 crdc->crd_key = NULL;
1263 crdc->crd_klen = 0;
1264 DPRINTF("cse->sid[%d]: crdc setup for comp_alg %d"
1265 " len %d.\n",
1266 (uint32_t)cse->sid, crdc->crd_alg,
1267 crdc->crd_len);
1268 }
1269
1270 if (crda) {
1271 crda->crd_skip = 0;
1272 crda->crd_len = cnop[req].len;
1273 crda->crd_inject = 0; /* ??? */
1274
1275 crda->crd_alg = cse->mac;
1276 crda->crd_key = cse->mackey;
1277 crda->crd_klen = cse->mackeylen * 8;
1278 }
1279
1280 if (crde) {
1281 if (cnop[req].op == COP_ENCRYPT)
1282 crde->crd_flags |= CRD_F_ENCRYPT;
1283 else
1284 crde->crd_flags &= ~CRD_F_ENCRYPT;
1285 crde->crd_len = cnop[req].len;
1286 crde->crd_inject = 0;
1287
1288 crde->crd_alg = cse->cipher;
1289 #ifdef notyet /* XXX must notify h/w driver new key, drain */
1290 if(cnop[req].key && cnop[req].keylen) {
1291 crde->crd_key = malloc(cnop[req].keylen,
1292 M_XDATA, M_WAITOK);
1293 if((error = copyin(cnop[req].key,
1294 crde->crd_key, cnop[req].keylen))) {
1295 cnop[req].status = EINVAL;
1296 goto bail;
1297 }
1298 crde->crd_klen = cnop[req].keylen * 8;
1299 } else { ... }
1300 #endif
1301 crde->crd_key = cse->key;
1302 crde->crd_klen = cse->keylen * 8;
1303 }
1304
1305 crp->crp_ilen = cnop[req].len;
1306 crp->crp_flags = CRYPTO_F_IOV | CRYPTO_F_CBIMM |
1307 (cnop[req].flags & COP_F_BATCH) | flags;
1308 crp->crp_buf = (void *)&crp->uio;
1309 crp->crp_callback = (int (*) (struct cryptop *)) cryptodev_mcb;
1310 crp->crp_sid = cse->sid;
1311 crp->crp_opaque = (void *)cse;
1312 crp->fcrp = fcr;
1313 crp->dst = cnop[req].dst;
1314 crp->len = cnop[req].len; /* input len, iov may be larger */
1315 crp->mac = cnop[req].mac;
1316 DPRINTF("iov_base %p dst %p len %d mac %p\n",
1317 crp->uio.uio_iov[0].iov_base, crp->dst, crp->len,
1318 crp->mac);
1319
1320 if (cnop[req].iv) {
1321 if (crde == NULL) {
1322 cnop[req].status = EINVAL;
1323 goto bail;
1324 }
1325 if (cse->cipher == CRYPTO_ARC4) { /* XXX use flag? */
1326 cnop[req].status = EINVAL;
1327 goto bail;
1328 }
1329 if ((error = copyin(cnop[req].iv, crp->tmp_iv,
1330 cse->txform->ivsize))) {
1331 cnop[req].status = EINVAL;
1332 goto bail;
1333 }
1334 (void)memcpy(crde->crd_iv, crp->tmp_iv,
1335 cse->txform->ivsize);
1336 crde->crd_flags |= CRD_F_IV_EXPLICIT | CRD_F_IV_PRESENT;
1337 crde->crd_skip = 0;
1338 } else if (crde) {
1339 if (cse->cipher == CRYPTO_ARC4) { /* XXX use flag? */
1340 crde->crd_skip = 0;
1341 } else {
1342 if (!(crde->crd_flags & CRD_F_ENCRYPT))
1343 crde->crd_flags |= CRD_F_IV_PRESENT;
1344 crde->crd_skip = cse->txform->ivsize;
1345 crde->crd_len -= cse->txform->ivsize;
1346 }
1347 }
1348
1349 if (cnop[req].mac) {
1350 if (crda == NULL) {
1351 cnop[req].status = EINVAL;
1352 goto bail;
1353 }
1354 crp->crp_mac=cse->tmp_mac;
1355 }
1356 cnop[req].reqid = atomic_inc_32_nv(&(fcr->requestid));
1357 crp->crp_reqid = cnop[req].reqid;
1358 crp->crp_usropaque = cnop[req].opaque;
1359 cv_init(&crp->crp_cv, "crydev");
1360 #ifdef notyet
1361 eagain:
1362 #endif
1363 cnop[req].status = crypto_dispatch(crp);
1364 mutex_enter(&cryptodev_mtx); /* XXX why mutex? */
1365
1366 switch (cnop[req].status) {
1367 #ifdef notyet /* don't loop forever -- but EAGAIN not possible here yet */
1368 case EAGAIN:
1369 mutex_exit(&cryptodev_mtx);
1370 goto eagain;
1371 break;
1372 #endif
1373 case 0:
1374 break;
1375 default:
1376 DPRINTF("not waiting, error.\n");
1377 mutex_exit(&cryptodev_mtx);
1378 cv_destroy(&crp->crp_cv);
1379 goto bail;
1380 }
1381
1382 mutex_exit(&cryptodev_mtx);
1383 cv_destroy(&crp->crp_cv);
1384 bail:
1385 if (cnop[req].status) {
1386 if (crp) {
1387 if (crp->uio.uio_iov[0].iov_base) {
1388 kmem_free(crp->uio.uio_iov[0].iov_base,
1389 crp->uio.uio_iov[0].iov_len);
1390 }
1391 crypto_freereq(crp);
1392 }
1393 error = 0;
1394 }
1395 }
1396 return error;
1397 }
1398
1399 static int
1400 cryptodev_mkey(struct fcrypt *fcr, struct crypt_n_kop *kop, int count)
1401 {
1402 struct cryptkop *krp = NULL;
1403 int error = EINVAL;
1404 int in, out, size, i, req;
1405
1406 for (req = 0; req < count; req++) {
1407 if (kop[req].crk_iparams + kop[req].crk_oparams > CRK_MAXPARAM)
1408 return EFBIG;
1409
1410 in = kop[req].crk_iparams;
1411 out = kop[req].crk_oparams;
1412 switch (kop[req].crk_op) {
1413 case CRK_MOD_EXP:
1414 if (in == 3 && out == 1)
1415 break;
1416 kop[req].crk_status = EINVAL;
1417 continue;
1418 case CRK_MOD_EXP_CRT:
1419 if (in == 6 && out == 1)
1420 break;
1421 kop[req].crk_status = EINVAL;
1422 continue;
1423 case CRK_DSA_SIGN:
1424 if (in == 5 && out == 2)
1425 break;
1426 kop[req].crk_status = EINVAL;
1427 continue;
1428 case CRK_DSA_VERIFY:
1429 if (in == 7 && out == 0)
1430 break;
1431 kop[req].crk_status = EINVAL;
1432 continue;
1433 case CRK_DH_COMPUTE_KEY:
1434 if (in == 3 && out == 1)
1435 break;
1436 kop[req].crk_status = EINVAL;
1437 continue;
1438 case CRK_MOD_ADD:
1439 if (in == 3 && out == 1)
1440 break;
1441 kop[req].crk_status = EINVAL;
1442 continue;
1443 case CRK_MOD_ADDINV:
1444 if (in == 2 && out == 1)
1445 break;
1446 kop[req].crk_status = EINVAL;
1447 continue;
1448 case CRK_MOD_SUB:
1449 if (in == 3 && out == 1)
1450 break;
1451 kop[req].crk_status = EINVAL;
1452 continue;
1453 case CRK_MOD_MULT:
1454 if (in == 3 && out == 1)
1455 break;
1456 kop[req].crk_status = EINVAL;
1457 continue;
1458 case CRK_MOD_MULTINV:
1459 if (in == 2 && out == 1)
1460 break;
1461 kop[req].crk_status = EINVAL;
1462 continue;
1463 case CRK_MOD:
1464 if (in == 2 && out == 1)
1465 break;
1466 kop[req].crk_status = EINVAL;
1467 continue;
1468 default:
1469 kop[req].crk_status = EINVAL;
1470 continue;
1471 }
1472
1473 krp = crypto_kgetreq(1, PR_WAITOK);
1474 if (krp == NULL) {
1475 /* limited by opencrypto.crypto_ret_kq.maxlen */
1476 continue;
1477 }
1478 (void)memset(krp, 0, sizeof *krp);
1479 cv_init(&krp->krp_cv, "crykdev");
1480 krp->krp_op = kop[req].crk_op;
1481 krp->krp_status = kop[req].crk_status;
1482 krp->krp_iparams = kop[req].crk_iparams;
1483 krp->krp_oparams = kop[req].crk_oparams;
1484 krp->krp_status = 0;
1485 krp->krp_callback =
1486 (int (*) (struct cryptkop *)) cryptodevkey_mcb;
1487 (void)memcpy(krp->crk_param, kop[req].crk_param,
1488 sizeof(kop[req].crk_param));
1489
1490 krp->krp_flags = CRYPTO_F_CBIMM;
1491
1492 for (i = 0; i < CRK_MAXPARAM; i++)
1493 krp->krp_param[i].crp_nbits =
1494 kop[req].crk_param[i].crp_nbits;
1495 for (i = 0; i < krp->krp_iparams + krp->krp_oparams; i++) {
1496 size = (krp->krp_param[i].crp_nbits + 7) / 8;
1497 if (size == 0)
1498 continue;
1499 krp->krp_param[i].crp_p =
1500 kmem_alloc(size, KM_SLEEP);
1501 if (i >= krp->krp_iparams)
1502 continue;
1503 kop[req].crk_status =
1504 copyin(kop[req].crk_param[i].crp_p,
1505 krp->krp_param[i].crp_p, size);
1506 if (kop[req].crk_status)
1507 goto fail;
1508 }
1509 krp->fcrp = fcr;
1510
1511 kop[req].crk_reqid = atomic_inc_32_nv(&(fcr->requestid));
1512 krp->krp_reqid = kop[req].crk_reqid;
1513 krp->krp_usropaque = kop[req].crk_opaque;
1514
1515 kop[req].crk_status = crypto_kdispatch(krp);
1516 if (kop[req].crk_status != 0) {
1517 goto fail;
1518 }
1519
1520 fail:
1521 if(kop[req].crk_status) {
1522 if (krp) {
1523 kop[req].crk_status = krp->krp_status;
1524 for (i = 0; i < CRK_MAXPARAM; i++) {
1525 struct crparam *kp =
1526 &(krp->krp_param[i]);
1527 if (kp->crp_p) {
1528 size = (kp->crp_nbits + 7) / 8;
1529 KASSERT(size > 0);
1530 memset(kp->crp_p, 0, size);
1531 kmem_free(kp->crp_p, size);
1532 }
1533 }
1534 cv_destroy(&krp->krp_cv);
1535 crypto_kfreereq(krp);
1536 }
1537 }
1538 error = 0;
1539 }
1540 DPRINTF("error=0x%08x\n", error);
1541 return error;
1542 }
1543
1544 int
1545 cryptodev_session(struct fcrypt *fcr, struct session_op *sop)
1546 {
1547 struct cryptoini cria, crie;
1548 struct cryptoini cric; /* compressor */
1549 struct cryptoini *crihead = NULL;
1550 const struct enc_xform *txform = NULL;
1551 const struct auth_hash *thash = NULL;
1552 const struct comp_algo *tcomp = NULL;
1553 struct csession *cse;
1554 u_int64_t sid;
1555 int error = 0;
1556
1557 DPRINTF("cipher=%d, mac=%d\n", sop->cipher, sop->mac);
1558
1559 /* XXX there must be a way to not embed the list of xforms here */
1560 switch (sop->cipher) {
1561 case 0:
1562 break;
1563 case CRYPTO_DES_CBC:
1564 txform = &enc_xform_des;
1565 break;
1566 case CRYPTO_3DES_CBC:
1567 txform = &enc_xform_3des;
1568 break;
1569 case CRYPTO_BLF_CBC:
1570 txform = &enc_xform_blf;
1571 break;
1572 case CRYPTO_CAST_CBC:
1573 txform = &enc_xform_cast5;
1574 break;
1575 case CRYPTO_SKIPJACK_CBC:
1576 txform = &enc_xform_skipjack;
1577 break;
1578 case CRYPTO_AES_CBC:
1579 txform = &enc_xform_rijndael128;
1580 break;
1581 case CRYPTO_CAMELLIA_CBC:
1582 txform = &enc_xform_camellia;
1583 break;
1584 case CRYPTO_AES_CTR:
1585 txform = &enc_xform_aes_ctr;
1586 break;
1587 case CRYPTO_AES_GCM_16:
1588 txform = &enc_xform_aes_gcm;
1589 break;
1590 case CRYPTO_AES_GMAC:
1591 txform = &enc_xform_aes_gmac;
1592 break;
1593 case CRYPTO_NULL_CBC:
1594 txform = &enc_xform_null;
1595 break;
1596 case CRYPTO_ARC4:
1597 txform = &enc_xform_arc4;
1598 break;
1599 default:
1600 DPRINTF("Invalid cipher %d\n", sop->cipher);
1601 return EINVAL;
1602 }
1603
1604 switch (sop->comp_alg) {
1605 case 0:
1606 break;
1607 case CRYPTO_DEFLATE_COMP:
1608 tcomp = &comp_algo_deflate;
1609 break;
1610 case CRYPTO_GZIP_COMP:
1611 tcomp = &comp_algo_gzip;
1612 DPRINTF("tcomp for GZIP\n");
1613 break;
1614 default:
1615 DPRINTF("Invalid compression alg %d\n", sop->comp_alg);
1616 return EINVAL;
1617 }
1618
1619 switch (sop->mac) {
1620 case 0:
1621 break;
1622 case CRYPTO_MD5_HMAC:
1623 thash = &auth_hash_hmac_md5;
1624 break;
1625 case CRYPTO_SHA1_HMAC:
1626 thash = &auth_hash_hmac_sha1;
1627 break;
1628 case CRYPTO_MD5_HMAC_96:
1629 thash = &auth_hash_hmac_md5_96;
1630 break;
1631 case CRYPTO_SHA1_HMAC_96:
1632 thash = &auth_hash_hmac_sha1_96;
1633 break;
1634 case CRYPTO_SHA2_HMAC:
1635 /* XXX switching on key length seems questionable */
1636 if (sop->mackeylen == auth_hash_hmac_sha2_256.keysize) {
1637 thash = &auth_hash_hmac_sha2_256;
1638 } else if (sop->mackeylen == auth_hash_hmac_sha2_384.keysize) {
1639 thash = &auth_hash_hmac_sha2_384;
1640 } else if (sop->mackeylen == auth_hash_hmac_sha2_512.keysize) {
1641 thash = &auth_hash_hmac_sha2_512;
1642 } else {
1643 DPRINTF("Invalid mackeylen %d\n", sop->mackeylen);
1644 return EINVAL;
1645 }
1646 break;
1647 case CRYPTO_SHA2_384_HMAC:
1648 thash = &auth_hash_hmac_sha2_384;
1649 break;
1650 case CRYPTO_SHA2_512_HMAC:
1651 thash = &auth_hash_hmac_sha2_512;
1652 break;
1653 case CRYPTO_RIPEMD160_HMAC:
1654 thash = &auth_hash_hmac_ripemd_160;
1655 break;
1656 case CRYPTO_RIPEMD160_HMAC_96:
1657 thash = &auth_hash_hmac_ripemd_160_96;
1658 break;
1659 case CRYPTO_MD5:
1660 thash = &auth_hash_md5;
1661 break;
1662 case CRYPTO_SHA1:
1663 thash = &auth_hash_sha1;
1664 break;
1665 case CRYPTO_AES_XCBC_MAC_96:
1666 thash = &auth_hash_aes_xcbc_mac_96;
1667 break;
1668 case CRYPTO_AES_128_GMAC:
1669 thash = &auth_hash_gmac_aes_128;
1670 break;
1671 case CRYPTO_AES_192_GMAC:
1672 thash = &auth_hash_gmac_aes_192;
1673 break;
1674 case CRYPTO_AES_256_GMAC:
1675 thash = &auth_hash_gmac_aes_256;
1676 break;
1677 case CRYPTO_NULL_HMAC:
1678 thash = &auth_hash_null;
1679 break;
1680 default:
1681 DPRINTF("Invalid mac %d\n", sop->mac);
1682 return EINVAL;
1683 }
1684
1685 memset(&crie, 0, sizeof(crie));
1686 memset(&cria, 0, sizeof(cria));
1687 memset(&cric, 0, sizeof(cric));
1688
1689 if (tcomp) {
1690 cric.cri_alg = tcomp->type;
1691 cric.cri_klen = 0;
1692 DPRINTF("tcomp->type = %d\n", tcomp->type);
1693
1694 crihead = &cric;
1695 if (txform) {
1696 cric.cri_next = &crie;
1697 } else if (thash) {
1698 cric.cri_next = &cria;
1699 }
1700 }
1701
1702 if (txform) {
1703 crie.cri_alg = txform->type;
1704 crie.cri_klen = sop->keylen * 8;
1705 if (sop->keylen > txform->maxkey ||
1706 sop->keylen < txform->minkey) {
1707 DPRINTF("keylen %d not in [%d,%d]\n",
1708 sop->keylen, txform->minkey, txform->maxkey);
1709 error = EINVAL;
1710 goto bail;
1711 }
1712
1713 crie.cri_key = malloc(crie.cri_klen / 8, M_XDATA, M_WAITOK);
1714 if ((error = copyin(sop->key, crie.cri_key, crie.cri_klen / 8)))
1715 goto bail;
1716 if (!crihead) {
1717 crihead = &crie;
1718 }
1719 if (thash)
1720 crie.cri_next = &cria;
1721 }
1722
1723 if (thash) {
1724 cria.cri_alg = thash->type;
1725 cria.cri_klen = sop->mackeylen * 8;
1726 if (sop->mackeylen != thash->keysize) {
1727 DPRINTF("mackeylen %d != keysize %d\n",
1728 sop->mackeylen, thash->keysize);
1729 error = EINVAL;
1730 goto bail;
1731 }
1732 if (cria.cri_klen) {
1733 cria.cri_key = malloc(cria.cri_klen / 8, M_XDATA,
1734 M_WAITOK);
1735 if ((error = copyin(sop->mackey, cria.cri_key,
1736 cria.cri_klen / 8))) {
1737 goto bail;
1738 }
1739 }
1740 if (!crihead) {
1741 crihead = &cria;
1742 }
1743 }
1744
1745 error = crypto_newsession(&sid, crihead, crypto_devallowsoft);
1746 if (!error) {
1747 DPRINTF("got session %d\n", (uint32_t)sid);
1748 cse = csecreate(fcr, sid, crie.cri_key, crie.cri_klen,
1749 cria.cri_key, cria.cri_klen, (txform ? sop->cipher : 0), sop->mac,
1750 (tcomp ? sop->comp_alg : 0), txform, thash, tcomp);
1751 if (cse != NULL) {
1752 sop->ses = cse->ses;
1753 } else {
1754 DPRINTF("csecreate failed\n");
1755 crypto_freesession(sid);
1756 error = EINVAL;
1757 }
1758 } else {
1759 DPRINTF("SIOCSESSION violates kernel parameters %d\n", error);
1760 }
1761 bail:
1762 if (error) {
1763 if (crie.cri_key) {
1764 memset(crie.cri_key, 0, crie.cri_klen / 8);
1765 free(crie.cri_key, M_XDATA);
1766 }
1767 if (cria.cri_key) {
1768 memset(cria.cri_key, 0, cria.cri_klen / 8);
1769 free(cria.cri_key, M_XDATA);
1770 }
1771 }
1772 return error;
1773 }
1774
1775 int
1776 cryptodev_msession(struct fcrypt *fcr, struct session_n_op *sn_ops,
1777 int count)
1778 {
1779 int i;
1780
1781 for (i = 0; i < count; i++, sn_ops++) {
1782 struct session_op s_op;
1783 s_op.cipher = sn_ops->cipher;
1784 s_op.mac = sn_ops->mac;
1785 s_op.comp_alg = sn_ops->comp_alg;
1786 s_op.keylen = sn_ops->keylen;
1787 s_op.key = sn_ops->key;
1788 s_op.mackeylen = sn_ops->mackeylen;
1789 s_op.mackey = sn_ops->mackey;
1790 s_op.ses = ~0;
1791
1792 sn_ops->status = cryptodev_session(fcr, &s_op);
1793
1794 sn_ops->ses = s_op.ses;
1795 }
1796
1797 return 0;
1798 }
1799
1800 static int
1801 cryptodev_msessionfin(struct fcrypt *fcr, int count, u_int32_t *sesid)
1802 {
1803 struct csession *cse;
1804 int req, error = 0;
1805
1806 mutex_enter(&cryptodev_mtx);
1807 for(req = 0; req < count; req++) {
1808 cse = csefind(fcr, sesid[req]);
1809 if (cse == NULL)
1810 continue;
1811 csedelete(fcr, cse);
1812 mutex_exit(&cryptodev_mtx);
1813 error = csefree(cse);
1814 mutex_enter(&cryptodev_mtx);
1815 }
1816 mutex_exit(&cryptodev_mtx);
1817 return error;
1818 }
1819
1820 /*
1821 * collect as many completed requests as are availble, or count completed
1822 * requests whichever is less.
1823 * return the number of requests.
1824 */
1825 static int
1826 cryptodev_getmstatus(struct fcrypt *fcr, struct crypt_result *crypt_res,
1827 int count)
1828 {
1829 struct cryptop *crp = NULL;
1830 struct cryptkop *krp = NULL;
1831 struct csession *cse;
1832 int i, size, req = 0;
1833 int completed=0;
1834
1835 /* On queue so nobody else can grab them
1836 * and copyout can be delayed-- no locking */
1837 TAILQ_HEAD(, cryptop) crp_delfree_q =
1838 TAILQ_HEAD_INITIALIZER(crp_delfree_q);
1839 TAILQ_HEAD(, cryptkop) krp_delfree_q =
1840 TAILQ_HEAD_INITIALIZER(krp_delfree_q);
1841
1842 /* at this point we do not know which response user is requesting for
1843 * (symmetric or asymmetric) so we copyout one from each i.e if the
1844 * count is 2 then 1 from symmetric and 1 from asymmetric queue and
1845 * if 3 then 2 symmetric and 1 asymmetric and so on */
1846
1847 /* pull off a list of requests while protected from changes */
1848 mutex_enter(&cryptodev_mtx);
1849 while (req < count) {
1850 crp = TAILQ_FIRST(&fcr->crp_ret_mq);
1851 if (crp) {
1852 TAILQ_REMOVE(&fcr->crp_ret_mq, crp, crp_next);
1853 TAILQ_INSERT_TAIL(&crp_delfree_q, crp, crp_next);
1854 cse = (struct csession *)crp->crp_opaque;
1855
1856 /* see if the session is still valid */
1857 cse = csefind(fcr, cse->ses);
1858 if (cse != NULL) {
1859 crypt_res[req].status = 0;
1860 } else {
1861 DPRINTF("csefind failed\n");
1862 crypt_res[req].status = EINVAL;
1863 }
1864 req++;
1865 }
1866 if(req < count) {
1867 crypt_res[req].status = 0;
1868 krp = TAILQ_FIRST(&fcr->crp_ret_mkq);
1869 if (krp) {
1870 TAILQ_REMOVE(&fcr->crp_ret_mkq, krp, krp_next);
1871 TAILQ_INSERT_TAIL(&krp_delfree_q, krp, krp_next);
1872 req++;
1873 }
1874 }
1875 }
1876 mutex_exit(&cryptodev_mtx);
1877
1878 /* now do all the work outside the mutex */
1879 for(req=0; req < count ;) {
1880 crp = TAILQ_FIRST(&crp_delfree_q);
1881 if (crp) {
1882 if (crypt_res[req].status != 0) {
1883 /* csefind failed during collection */
1884 goto bail;
1885 }
1886 cse = (struct csession *)crp->crp_opaque;
1887 crypt_res[req].reqid = crp->crp_reqid;
1888 crypt_res[req].opaque = crp->crp_usropaque;
1889 completed++;
1890
1891 if (crp->crp_etype != 0) {
1892 crypt_res[req].status = crp->crp_etype;
1893 goto bail;
1894 }
1895
1896 if (cse->error) {
1897 crypt_res[req].status = cse->error;
1898 goto bail;
1899 }
1900
1901 if (crp->dst && (crypt_res[req].status =
1902 copyout(crp->uio.uio_iov[0].iov_base, crp->dst,
1903 crp->len)))
1904 goto bail;
1905
1906 if (crp->mac && (crypt_res[req].status =
1907 copyout(crp->crp_mac, crp->mac,
1908 cse->thash->authsize)))
1909 goto bail;
1910
1911 bail:
1912 TAILQ_REMOVE(&crp_delfree_q, crp, crp_next);
1913 kmem_free(crp->uio.uio_iov[0].iov_base,
1914 crp->uio.uio_iov[0].iov_len);
1915 crypto_freereq(crp);
1916 req++;
1917 }
1918
1919 if (req < count) {
1920 krp = TAILQ_FIRST(&krp_delfree_q);
1921 if (krp) {
1922 crypt_res[req].reqid = krp->krp_reqid;
1923 crypt_res[req].opaque = krp->krp_usropaque;
1924 completed++;
1925 if (krp->krp_status != 0) {
1926 DPRINTF("krp->krp_status 0x%08x\n",
1927 krp->krp_status);
1928 crypt_res[req].status = krp->krp_status;
1929 goto fail;
1930 }
1931
1932 for (i = krp->krp_iparams; i < krp->krp_iparams
1933 + krp->krp_oparams; i++) {
1934 size = (krp->krp_param[i].crp_nbits
1935 + 7) / 8;
1936 if (size == 0)
1937 continue;
1938 crypt_res[req].status = copyout
1939 (krp->krp_param[i].crp_p,
1940 krp->crk_param[i].crp_p, size);
1941 if (crypt_res[req].status) {
1942 DPRINTF("copyout oparam %d failed, "
1943 "error=%d\n",
1944 i - krp->krp_iparams,
1945 crypt_res[req].status);
1946 goto fail;
1947 }
1948 }
1949 fail:
1950 TAILQ_REMOVE(&krp_delfree_q, krp, krp_next);
1951 /* not sure what to do for this */
1952 /* kop[req].crk_status = krp->krp_status; */
1953 for (i = 0; i < CRK_MAXPARAM; i++) {
1954 struct crparam *kp = &(krp->krp_param[i]);
1955 if (kp->crp_p) {
1956 size = (kp->crp_nbits + 7) / 8;
1957 KASSERT(size > 0);
1958 (void)memset(kp->crp_p, 0, size);
1959 kmem_free(kp->crp_p, size);
1960 }
1961 }
1962 cv_destroy(&krp->krp_cv);
1963 crypto_kfreereq(krp);
1964 req++;
1965 }
1966 }
1967 }
1968
1969 return completed;
1970 }
1971
1972 static int
1973 cryptodev_getstatus (struct fcrypt *fcr, struct crypt_result *crypt_res)
1974 {
1975 struct cryptop *crp = NULL, *cnext;
1976 struct cryptkop *krp = NULL, *knext;
1977 struct csession *cse;
1978 int i, size, req = 0;
1979
1980 mutex_enter(&cryptodev_mtx);
1981 /* Here we dont know for which request the user is requesting the
1982 * response so checking in both the queues */
1983 TAILQ_FOREACH_SAFE(crp, &fcr->crp_ret_mq, crp_next, cnext) {
1984 if(crp && (crp->crp_reqid == crypt_res->reqid)) {
1985 cse = (struct csession *)crp->crp_opaque;
1986 crypt_res->opaque = crp->crp_usropaque;
1987 cse = csefind(fcr, cse->ses);
1988 if (cse == NULL) {
1989 DPRINTF("csefind failed\n");
1990 crypt_res->status = EINVAL;
1991 goto bail;
1992 }
1993
1994 if (crp->crp_etype != 0) {
1995 crypt_res->status = crp->crp_etype;
1996 goto bail;
1997 }
1998
1999 if (cse->error) {
2000 crypt_res->status = cse->error;
2001 goto bail;
2002 }
2003
2004 if (crp->dst && (crypt_res->status =
2005 copyout(crp->uio.uio_iov[0].iov_base,
2006 crp->dst, crp->len)))
2007 goto bail;
2008
2009 if (crp->mac && (crypt_res->status =
2010 copyout(crp->crp_mac, crp->mac,
2011 cse->thash->authsize)))
2012 goto bail;
2013 bail:
2014 TAILQ_REMOVE(&fcr->crp_ret_mq, crp, crp_next);
2015
2016 mutex_exit(&cryptodev_mtx);
2017 crypto_freereq(crp);
2018 return 0;
2019 }
2020 }
2021
2022 TAILQ_FOREACH_SAFE(krp, &fcr->crp_ret_mkq, krp_next, knext) {
2023 if(krp && (krp->krp_reqid == crypt_res->reqid)) {
2024 crypt_res[req].opaque = krp->krp_usropaque;
2025 if (krp->krp_status != 0) {
2026 DPRINTF("krp->krp_status 0x%08x\n",
2027 krp->krp_status);
2028 crypt_res[req].status = krp->krp_status;
2029 goto fail;
2030 }
2031
2032 for (i = krp->krp_iparams; i < krp->krp_iparams +
2033 krp->krp_oparams; i++) {
2034 size = (krp->krp_param[i].crp_nbits + 7) / 8;
2035 if (size == 0)
2036 continue;
2037 crypt_res[req].status = copyout(
2038 krp->krp_param[i].crp_p,
2039 krp->crk_param[i].crp_p, size);
2040 if (crypt_res[req].status) {
2041 DPRINTF("copyout oparam "
2042 "%d failed, error=%d\n",
2043 i - krp->krp_iparams,
2044 crypt_res[req].status);
2045 goto fail;
2046 }
2047 }
2048 fail:
2049 TAILQ_REMOVE(&fcr->crp_ret_mkq, krp, krp_next);
2050 mutex_exit(&cryptodev_mtx);
2051 /* not sure what to do for this */
2052 /* kop[req].crk_status = krp->krp_status; */
2053 for (i = 0; i < CRK_MAXPARAM; i++) {
2054 struct crparam *kp = &(krp->krp_param[i]);
2055 if (kp->crp_p) {
2056 size = (kp->crp_nbits + 7) / 8;
2057 KASSERT(size > 0);
2058 memset(kp->crp_p, 0, size);
2059 kmem_free(kp->crp_p, size);
2060 }
2061 }
2062 cv_destroy(&krp->krp_cv);
2063 crypto_kfreereq(krp);
2064 return 0;
2065 }
2066 }
2067 mutex_exit(&cryptodev_mtx);
2068 return EINPROGRESS;
2069 }
2070
2071 static int
2072 cryptof_stat(struct file *fp, struct stat *st)
2073 {
2074 struct fcrypt *fcr = fp->f_fcrypt;
2075
2076 (void)memset(st, 0, sizeof(*st));
2077
2078 mutex_enter(&cryptodev_mtx);
2079 st->st_dev = makedev(cdevsw_lookup_major(&crypto_cdevsw), fcr->sesn);
2080 st->st_atimespec = fcr->atime;
2081 st->st_mtimespec = fcr->mtime;
2082 st->st_ctimespec = st->st_birthtimespec = fcr->btime;
2083 st->st_uid = kauth_cred_geteuid(fp->f_cred);
2084 st->st_gid = kauth_cred_getegid(fp->f_cred);
2085 mutex_exit(&cryptodev_mtx);
2086
2087 return 0;
2088 }
2089
2090 static int
2091 cryptof_poll(struct file *fp, int events)
2092 {
2093 struct fcrypt *fcr = fp->f_fcrypt;
2094 int revents = 0;
2095
2096 if (!(events & (POLLIN | POLLRDNORM))) {
2097 /* only support read and POLLIN */
2098 return 0;
2099 }
2100
2101 mutex_enter(&cryptodev_mtx);
2102 if (TAILQ_EMPTY(&fcr->crp_ret_mq) && TAILQ_EMPTY(&fcr->crp_ret_mkq)) {
2103 /* no completed requests pending, save the poll for later */
2104 selrecord(curlwp, &fcr->sinfo);
2105 } else {
2106 /* let the app(s) know that there are completed requests */
2107 revents = events & (POLLIN | POLLRDNORM);
2108 }
2109 mutex_exit(&cryptodev_mtx);
2110
2111 return revents;
2112 }
2113
2114 /*
2115 * Pseudo-device initialization routine for /dev/crypto
2116 */
2117 void
2118 cryptoattach(int num)
2119 {
2120 int error;
2121
2122 crypto_init();
2123
2124 mutex_init(&cryptodev_mtx, MUTEX_DEFAULT, IPL_NONE);
2125
2126 pool_init(&fcrpl, sizeof(struct fcrypt), 0, 0, 0, "fcrpl",
2127 NULL, IPL_NET); /* XXX IPL_NET ("splcrypto") */
2128 pool_init(&csepl, sizeof(struct csession), 0, 0, 0, "csepl",
2129 NULL, IPL_NET); /* XXX IPL_NET ("splcrypto") */
2130
2131 /*
2132 * Preallocate space for 64 users, with 5 sessions each.
2133 * (consider that a TLS protocol session requires at least
2134 * 3DES, MD5, and SHA1 (both hashes are used in the PRF) for
2135 * the negotiation, plus HMAC_SHA1 for the actual SSL records,
2136 * consuming one session here for each algorithm.
2137 */
2138 if ((error = pool_prime(&fcrpl, 64)) != 0 ||
2139 (error = pool_prime(&csepl, 64 * 5)) != 0)
2140 panic("%s: can't prime pool: %d", __func__, error);
2141 }
2142
2143 void crypto_attach(device_t, device_t, void *);
2144
2145 void
2146 crypto_attach(device_t parent, device_t self, void * opaque)
2147 {
2148
2149 cryptoattach(0);
2150 }
2151
2152 int crypto_detach(device_t, int);
2153
2154 int
2155 crypto_detach(device_t self, int num)
2156 {
2157
2158 pool_destroy(&fcrpl);
2159 pool_destroy(&csepl);
2160
2161 mutex_destroy(&cryptodev_mtx);
2162
2163 return 0;
2164 }
2165
2166 int crypto_match(device_t, cfdata_t, void *);
2167
2168 int
2169 crypto_match(device_t parent, cfdata_t data, void *opaque)
2170 {
2171
2172 return 1;
2173 }
2174
2175 MODULE(MODULE_CLASS_DRIVER, crypto, "opencrypto");
2176
2177 CFDRIVER_DECL(crypto, DV_DULL, NULL);
2178
2179 CFATTACH_DECL2_NEW(crypto, 0, crypto_match, crypto_attach, crypto_detach,
2180 NULL, NULL, NULL);
2181
2182 #ifdef _MODULE
2183 static int cryptoloc[] = { -1, -1 };
2184
2185 static struct cfdata crypto_cfdata[] = {
2186 {
2187 .cf_name = "crypto",
2188 .cf_atname = "crypto",
2189 .cf_unit = 0,
2190 .cf_fstate = 0,
2191 .cf_loc = cryptoloc,
2192 .cf_flags = 0,
2193 .cf_pspec = NULL,
2194 },
2195 { NULL, NULL, 0, 0, NULL, 0, NULL }
2196 };
2197 #endif
2198
2199 static int
2200 crypto_modcmd(modcmd_t cmd, void *arg)
2201 {
2202 int error = 0;
2203 #ifdef _MODULE
2204 devmajor_t cmajor = NODEVMAJOR, bmajor = NODEVMAJOR;
2205 #endif
2206
2207 switch (cmd) {
2208 case MODULE_CMD_INIT:
2209 #ifdef _MODULE
2210
2211 error = config_cfdriver_attach(&crypto_cd);
2212 if (error) {
2213 return error;
2214 }
2215
2216 error = config_cfattach_attach(crypto_cd.cd_name, &crypto_ca);
2217 if (error) {
2218 config_cfdriver_detach(&crypto_cd);
2219 aprint_error("%s: unable to register cfattach\n",
2220 crypto_cd.cd_name);
2221
2222 return error;
2223 }
2224
2225 error = config_cfdata_attach(crypto_cfdata, 1);
2226 if (error) {
2227 config_cfattach_detach(crypto_cd.cd_name, &crypto_ca);
2228 config_cfdriver_detach(&crypto_cd);
2229 aprint_error("%s: unable to register cfdata\n",
2230 crypto_cd.cd_name);
2231
2232 return error;
2233 }
2234
2235 error = devsw_attach(crypto_cd.cd_name, NULL, &bmajor,
2236 &crypto_cdevsw, &cmajor);
2237 if (error) {
2238 error = config_cfdata_detach(crypto_cfdata);
2239 if (error) {
2240 return error;
2241 }
2242 config_cfattach_detach(crypto_cd.cd_name, &crypto_ca);
2243 config_cfdriver_detach(&crypto_cd);
2244 aprint_error("%s: unable to register devsw\n",
2245 crypto_cd.cd_name);
2246
2247 return error;
2248 }
2249
2250 (void)config_attach_pseudo(crypto_cfdata);
2251 #endif
2252
2253 return error;
2254 case MODULE_CMD_FINI:
2255 #ifdef _MODULE
2256 if (crypto_refcount != 0)
2257 return EBUSY;
2258 error = config_cfdata_detach(crypto_cfdata);
2259 if (error) {
2260 return error;
2261 }
2262
2263 config_cfattach_detach(crypto_cd.cd_name, &crypto_ca);
2264 config_cfdriver_detach(&crypto_cd);
2265 devsw_detach(NULL, &crypto_cdevsw);
2266 #endif
2267
2268 return error;
2269 #ifdef _MODULE
2270 case MODULE_CMD_AUTOUNLOAD:
2271 #if 0 /*
2272 * XXX Completely disable auto-unload for now, since there is still
2273 * XXX a (small) window where in-module ref-counting doesn't help
2274 */
2275 if (crypto_refcount != 0)
2276 #endif
2277 return EBUSY;
2278 /* FALLTHROUGH */
2279 #endif
2280 default:
2281 return ENOTTY;
2282 }
2283 }
2284