cgd.c revision 1.91.2.1 1 /* $NetBSD: cgd.c,v 1.91.2.1 2015/04/06 15:18:08 skrll Exp $ */
2
3 /*-
4 * Copyright (c) 2002 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Roland C. Dowdeswell.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 * POSSIBILITY OF SUCH DAMAGE.
30 */
31
32 #include <sys/cdefs.h>
33 __KERNEL_RCSID(0, "$NetBSD: cgd.c,v 1.91.2.1 2015/04/06 15:18:08 skrll Exp $");
34
35 #include <sys/types.h>
36 #include <sys/param.h>
37 #include <sys/systm.h>
38 #include <sys/proc.h>
39 #include <sys/errno.h>
40 #include <sys/buf.h>
41 #include <sys/bufq.h>
42 #include <sys/malloc.h>
43 #include <sys/module.h>
44 #include <sys/pool.h>
45 #include <sys/ioctl.h>
46 #include <sys/device.h>
47 #include <sys/disk.h>
48 #include <sys/disklabel.h>
49 #include <sys/fcntl.h>
50 #include <sys/namei.h> /* for pathbuf */
51 #include <sys/vnode.h>
52 #include <sys/conf.h>
53 #include <sys/syslog.h>
54
55 #include <dev/dkvar.h>
56 #include <dev/cgdvar.h>
57
58 #include <miscfs/specfs/specdev.h> /* for v_rdev */
59
60 /* Entry Point Functions */
61
62 void cgdattach(int);
63
64 static dev_type_open(cgdopen);
65 static dev_type_close(cgdclose);
66 static dev_type_read(cgdread);
67 static dev_type_write(cgdwrite);
68 static dev_type_ioctl(cgdioctl);
69 static dev_type_strategy(cgdstrategy);
70 static dev_type_dump(cgddump);
71 static dev_type_size(cgdsize);
72
73 const struct bdevsw cgd_bdevsw = {
74 .d_open = cgdopen,
75 .d_close = cgdclose,
76 .d_strategy = cgdstrategy,
77 .d_ioctl = cgdioctl,
78 .d_dump = cgddump,
79 .d_psize = cgdsize,
80 .d_discard = nodiscard,
81 .d_flag = D_DISK
82 };
83
84 const struct cdevsw cgd_cdevsw = {
85 .d_open = cgdopen,
86 .d_close = cgdclose,
87 .d_read = cgdread,
88 .d_write = cgdwrite,
89 .d_ioctl = cgdioctl,
90 .d_stop = nostop,
91 .d_tty = notty,
92 .d_poll = nopoll,
93 .d_mmap = nommap,
94 .d_kqfilter = nokqfilter,
95 .d_discard = nodiscard,
96 .d_flag = D_DISK
97 };
98
99 static int cgd_match(device_t, cfdata_t, void *);
100 static void cgd_attach(device_t, device_t, void *);
101 static int cgd_detach(device_t, int);
102 static struct cgd_softc *cgd_spawn(int);
103 static int cgd_destroy(device_t);
104
105 /* Internal Functions */
106
107 static void cgdstart(struct dk_softc *);
108 static void cgdiodone(struct buf *);
109
110 static int cgd_ioctl_set(struct cgd_softc *, void *, struct lwp *);
111 static int cgd_ioctl_clr(struct cgd_softc *, struct lwp *);
112 static int cgd_ioctl_get(dev_t, void *, struct lwp *);
113 static int cgdinit(struct cgd_softc *, const char *, struct vnode *,
114 struct lwp *);
115 static void cgd_cipher(struct cgd_softc *, void *, void *,
116 size_t, daddr_t, size_t, int);
117
118 /* Pseudo-disk Interface */
119
120 static struct dk_intf the_dkintf = {
121 DKTYPE_CGD,
122 "cgd",
123 cgdopen,
124 cgdclose,
125 cgdstrategy,
126 cgdstart,
127 };
128 static struct dk_intf *di = &the_dkintf;
129
130 static struct dkdriver cgddkdriver = {
131 .d_strategy = cgdstrategy,
132 .d_minphys = minphys,
133 };
134
135 CFATTACH_DECL3_NEW(cgd, sizeof(struct cgd_softc),
136 cgd_match, cgd_attach, cgd_detach, NULL, NULL, NULL, DVF_DETACH_SHUTDOWN);
137 extern struct cfdriver cgd_cd;
138
139 /* DIAGNOSTIC and DEBUG definitions */
140
141 #if defined(CGDDEBUG) && !defined(DEBUG)
142 #define DEBUG
143 #endif
144
145 #ifdef DEBUG
146 int cgddebug = 0;
147
148 #define CGDB_FOLLOW 0x1
149 #define CGDB_IO 0x2
150 #define CGDB_CRYPTO 0x4
151
152 #define IFDEBUG(x,y) if (cgddebug & (x)) y
153 #define DPRINTF(x,y) IFDEBUG(x, printf y)
154 #define DPRINTF_FOLLOW(y) DPRINTF(CGDB_FOLLOW, y)
155
156 static void hexprint(const char *, void *, int);
157
158 #else
159 #define IFDEBUG(x,y)
160 #define DPRINTF(x,y)
161 #define DPRINTF_FOLLOW(y)
162 #endif
163
164 #ifdef DIAGNOSTIC
165 #define DIAGPANIC(x) panic x
166 #define DIAGCONDPANIC(x,y) if (x) panic y
167 #else
168 #define DIAGPANIC(x)
169 #define DIAGCONDPANIC(x,y)
170 #endif
171
172 /* Global variables */
173
174 /* Utility Functions */
175
176 #define CGDUNIT(x) DISKUNIT(x)
177 #define GETCGD_SOFTC(_cs, x) if (!((_cs) = getcgd_softc(x))) return ENXIO
178
179 /* The code */
180
181 static struct cgd_softc *
182 getcgd_softc(dev_t dev)
183 {
184 int unit = CGDUNIT(dev);
185 struct cgd_softc *sc;
186
187 DPRINTF_FOLLOW(("getcgd_softc(0x%"PRIx64"): unit = %d\n", dev, unit));
188
189 sc = device_lookup_private(&cgd_cd, unit);
190 if (sc == NULL)
191 sc = cgd_spawn(unit);
192 return sc;
193 }
194
195 static int
196 cgd_match(device_t self, cfdata_t cfdata, void *aux)
197 {
198
199 return 1;
200 }
201
202 static void
203 cgd_attach(device_t parent, device_t self, void *aux)
204 {
205 struct cgd_softc *sc = device_private(self);
206
207 mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_BIO);
208 dk_sc_init(&sc->sc_dksc, device_xname(self));
209 sc->sc_dksc.sc_dev = self;
210 disk_init(&sc->sc_dksc.sc_dkdev, sc->sc_dksc.sc_xname, &cgddkdriver);
211
212 if (!pmf_device_register(self, NULL, NULL))
213 aprint_error_dev(self, "unable to register power management hooks\n");
214 }
215
216
217 static int
218 cgd_detach(device_t self, int flags)
219 {
220 int ret;
221 const int pmask = 1 << RAW_PART;
222 struct cgd_softc *sc = device_private(self);
223 struct dk_softc *dksc = &sc->sc_dksc;
224
225 if (DK_BUSY(dksc, pmask))
226 return EBUSY;
227
228 if ((dksc->sc_flags & DKF_INITED) != 0 &&
229 (ret = cgd_ioctl_clr(sc, curlwp)) != 0)
230 return ret;
231
232 disk_destroy(&dksc->sc_dkdev);
233 mutex_destroy(&sc->sc_lock);
234
235 return 0;
236 }
237
238 void
239 cgdattach(int num)
240 {
241 int error;
242
243 error = config_cfattach_attach(cgd_cd.cd_name, &cgd_ca);
244 if (error != 0)
245 aprint_error("%s: unable to register cfattach\n",
246 cgd_cd.cd_name);
247 }
248
249 static struct cgd_softc *
250 cgd_spawn(int unit)
251 {
252 cfdata_t cf;
253
254 cf = malloc(sizeof(*cf), M_DEVBUF, M_WAITOK);
255 cf->cf_name = cgd_cd.cd_name;
256 cf->cf_atname = cgd_cd.cd_name;
257 cf->cf_unit = unit;
258 cf->cf_fstate = FSTATE_STAR;
259
260 return device_private(config_attach_pseudo(cf));
261 }
262
263 static int
264 cgd_destroy(device_t dev)
265 {
266 int error;
267 cfdata_t cf;
268
269 cf = device_cfdata(dev);
270 error = config_detach(dev, DETACH_QUIET);
271 if (error)
272 return error;
273 free(cf, M_DEVBUF);
274 return 0;
275 }
276
277 static int
278 cgdopen(dev_t dev, int flags, int fmt, struct lwp *l)
279 {
280 struct cgd_softc *cs;
281
282 DPRINTF_FOLLOW(("cgdopen(0x%"PRIx64", %d)\n", dev, flags));
283 GETCGD_SOFTC(cs, dev);
284 return dk_open(di, &cs->sc_dksc, dev, flags, fmt, l);
285 }
286
287 static int
288 cgdclose(dev_t dev, int flags, int fmt, struct lwp *l)
289 {
290 int error;
291 struct cgd_softc *cs;
292 struct dk_softc *dksc;
293
294 DPRINTF_FOLLOW(("cgdclose(0x%"PRIx64", %d)\n", dev, flags));
295 GETCGD_SOFTC(cs, dev);
296 dksc = &cs->sc_dksc;
297 if ((error = dk_close(di, dksc, dev, flags, fmt, l)) != 0)
298 return error;
299
300 if ((dksc->sc_flags & DKF_INITED) == 0) {
301 if ((error = cgd_destroy(cs->sc_dksc.sc_dev)) != 0) {
302 aprint_error_dev(dksc->sc_dev,
303 "unable to detach instance\n");
304 return error;
305 }
306 }
307 return 0;
308 }
309
310 static void
311 cgdstrategy(struct buf *bp)
312 {
313 struct cgd_softc *cs = getcgd_softc(bp->b_dev);
314
315 DPRINTF_FOLLOW(("cgdstrategy(%p): b_bcount = %ld\n", bp,
316 (long)bp->b_bcount));
317
318 /*
319 * Reject unaligned writes. We can encrypt and decrypt only
320 * complete disk sectors, and we let the ciphers require their
321 * buffers to be aligned to 32-bit boundaries.
322 */
323 if (bp->b_blkno < 0 ||
324 (bp->b_bcount % DEV_BSIZE) != 0 ||
325 ((uintptr_t)bp->b_data & 3) != 0) {
326 bp->b_error = EINVAL;
327 bp->b_resid = bp->b_bcount;
328 biodone(bp);
329 return;
330 }
331
332 /* XXXrcd: Should we test for (cs != NULL)? */
333 dk_strategy(di, &cs->sc_dksc, bp);
334 return;
335 }
336
337 static int
338 cgdsize(dev_t dev)
339 {
340 struct cgd_softc *cs = getcgd_softc(dev);
341
342 DPRINTF_FOLLOW(("cgdsize(0x%"PRIx64")\n", dev));
343 if (!cs)
344 return -1;
345 return dk_size(di, &cs->sc_dksc, dev);
346 }
347
348 /*
349 * cgd_{get,put}data are functions that deal with getting a buffer
350 * for the new encrypted data. We have a buffer per device so that
351 * we can ensure that we can always have a transaction in flight.
352 * We use this buffer first so that we have one less piece of
353 * malloc'ed data at any given point.
354 */
355
356 static void *
357 cgd_getdata(struct dk_softc *dksc, unsigned long size)
358 {
359 struct cgd_softc *cs = (struct cgd_softc *)dksc;
360 void * data = NULL;
361
362 mutex_enter(&cs->sc_lock);
363 if (cs->sc_data_used == 0) {
364 cs->sc_data_used = 1;
365 data = cs->sc_data;
366 }
367 mutex_exit(&cs->sc_lock);
368
369 if (data)
370 return data;
371
372 return malloc(size, M_DEVBUF, M_NOWAIT);
373 }
374
375 static void
376 cgd_putdata(struct dk_softc *dksc, void *data)
377 {
378 struct cgd_softc *cs = (struct cgd_softc *)dksc;
379
380 if (data == cs->sc_data) {
381 mutex_enter(&cs->sc_lock);
382 cs->sc_data_used = 0;
383 mutex_exit(&cs->sc_lock);
384 } else {
385 free(data, M_DEVBUF);
386 }
387 }
388
389 static void
390 cgdstart(struct dk_softc *dksc)
391 {
392 struct cgd_softc *cs = (struct cgd_softc *)dksc;
393 struct buf *bp, *nbp;
394 #ifdef DIAGNOSTIC
395 struct buf *qbp;
396 #endif
397 void * addr;
398 void * newaddr;
399 daddr_t bn;
400 struct vnode *vp;
401
402 while ((bp = bufq_peek(dksc->sc_bufq)) != NULL) {
403
404 DPRINTF_FOLLOW(("cgdstart(%p, %p)\n", dksc, bp));
405 disk_busy(&dksc->sc_dkdev);
406
407 bn = bp->b_rawblkno;
408
409 /*
410 * We attempt to allocate all of our resources up front, so that
411 * we can fail quickly if they are unavailable.
412 */
413 nbp = getiobuf(cs->sc_tvn, false);
414 if (nbp == NULL) {
415 disk_unbusy(&dksc->sc_dkdev, 0, (bp->b_flags & B_READ));
416 break;
417 }
418
419 /*
420 * If we are writing, then we need to encrypt the outgoing
421 * block into a new block of memory.
422 */
423 newaddr = addr = bp->b_data;
424 if ((bp->b_flags & B_READ) == 0) {
425 newaddr = cgd_getdata(dksc, bp->b_bcount);
426 if (!newaddr) {
427 putiobuf(nbp);
428 disk_unbusy(&dksc->sc_dkdev, 0, (bp->b_flags & B_READ));
429 break;
430 }
431 cgd_cipher(cs, newaddr, addr, bp->b_bcount, bn,
432 DEV_BSIZE, CGD_CIPHER_ENCRYPT);
433 }
434 /* we now have all needed resources to process this buf */
435 #ifdef DIAGNOSTIC
436 qbp = bufq_get(dksc->sc_bufq);
437 KASSERT(bp == qbp);
438 #else
439 (void)bufq_get(dksc->sc_bufq);
440 #endif
441 nbp->b_data = newaddr;
442 nbp->b_flags = bp->b_flags;
443 nbp->b_oflags = bp->b_oflags;
444 nbp->b_cflags = bp->b_cflags;
445 nbp->b_iodone = cgdiodone;
446 nbp->b_proc = bp->b_proc;
447 nbp->b_blkno = bn;
448 nbp->b_bcount = bp->b_bcount;
449 nbp->b_private = bp;
450
451 BIO_COPYPRIO(nbp, bp);
452
453 if ((nbp->b_flags & B_READ) == 0) {
454 vp = nbp->b_vp;
455 mutex_enter(vp->v_interlock);
456 vp->v_numoutput++;
457 mutex_exit(vp->v_interlock);
458 }
459 VOP_STRATEGY(cs->sc_tvn, nbp);
460 }
461 }
462
463 static void
464 cgdiodone(struct buf *nbp)
465 {
466 struct buf *obp = nbp->b_private;
467 struct cgd_softc *cs = getcgd_softc(obp->b_dev);
468 struct dk_softc *dksc = &cs->sc_dksc;
469 int s;
470
471 KDASSERT(cs);
472
473 DPRINTF_FOLLOW(("cgdiodone(%p)\n", nbp));
474 DPRINTF(CGDB_IO, ("cgdiodone: bp %p bcount %d resid %d\n",
475 obp, obp->b_bcount, obp->b_resid));
476 DPRINTF(CGDB_IO, (" dev 0x%"PRIx64", nbp %p bn %" PRId64 " addr %p bcnt %d\n",
477 nbp->b_dev, nbp, nbp->b_blkno, nbp->b_data,
478 nbp->b_bcount));
479 if (nbp->b_error != 0) {
480 obp->b_error = nbp->b_error;
481 DPRINTF(CGDB_IO, ("%s: error %d\n", dksc->sc_xname,
482 obp->b_error));
483 }
484
485 /* Perform the decryption if we are reading.
486 *
487 * Note: use the blocknumber from nbp, since it is what
488 * we used to encrypt the blocks.
489 */
490
491 if (nbp->b_flags & B_READ)
492 cgd_cipher(cs, obp->b_data, obp->b_data, obp->b_bcount,
493 nbp->b_blkno, DEV_BSIZE, CGD_CIPHER_DECRYPT);
494
495 /* If we allocated memory, free it now... */
496 if (nbp->b_data != obp->b_data)
497 cgd_putdata(dksc, nbp->b_data);
498
499 putiobuf(nbp);
500
501 /* Request is complete for whatever reason */
502 obp->b_resid = 0;
503 if (obp->b_error != 0)
504 obp->b_resid = obp->b_bcount;
505 s = splbio();
506 disk_unbusy(&dksc->sc_dkdev, obp->b_bcount - obp->b_resid,
507 (obp->b_flags & B_READ));
508 biodone(obp);
509 cgdstart(dksc);
510 splx(s);
511 }
512
513 /* XXX: we should probably put these into dksubr.c, mostly */
514 static int
515 cgdread(dev_t dev, struct uio *uio, int flags)
516 {
517 struct cgd_softc *cs;
518 struct dk_softc *dksc;
519
520 DPRINTF_FOLLOW(("cgdread(0x%llx, %p, %d)\n",
521 (unsigned long long)dev, uio, flags));
522 GETCGD_SOFTC(cs, dev);
523 dksc = &cs->sc_dksc;
524 if ((dksc->sc_flags & DKF_INITED) == 0)
525 return ENXIO;
526 return physio(cgdstrategy, NULL, dev, B_READ, minphys, uio);
527 }
528
529 /* XXX: we should probably put these into dksubr.c, mostly */
530 static int
531 cgdwrite(dev_t dev, struct uio *uio, int flags)
532 {
533 struct cgd_softc *cs;
534 struct dk_softc *dksc;
535
536 DPRINTF_FOLLOW(("cgdwrite(0x%"PRIx64", %p, %d)\n", dev, uio, flags));
537 GETCGD_SOFTC(cs, dev);
538 dksc = &cs->sc_dksc;
539 if ((dksc->sc_flags & DKF_INITED) == 0)
540 return ENXIO;
541 return physio(cgdstrategy, NULL, dev, B_WRITE, minphys, uio);
542 }
543
544 static int
545 cgdioctl(dev_t dev, u_long cmd, void *data, int flag, struct lwp *l)
546 {
547 struct cgd_softc *cs;
548 struct dk_softc *dksc;
549 int part = DISKPART(dev);
550 int pmask = 1 << part;
551
552 DPRINTF_FOLLOW(("cgdioctl(0x%"PRIx64", %ld, %p, %d, %p)\n",
553 dev, cmd, data, flag, l));
554
555 switch (cmd) {
556 case CGDIOCGET:
557 return cgd_ioctl_get(dev, data, l);
558 case CGDIOCSET:
559 case CGDIOCCLR:
560 if ((flag & FWRITE) == 0)
561 return EBADF;
562 /* FALLTHROUGH */
563 default:
564 GETCGD_SOFTC(cs, dev);
565 dksc = &cs->sc_dksc;
566 break;
567 }
568
569 switch (cmd) {
570 case CGDIOCSET:
571 if (dksc->sc_flags & DKF_INITED)
572 return EBUSY;
573 return cgd_ioctl_set(cs, data, l);
574 case CGDIOCCLR:
575 if (DK_BUSY(&cs->sc_dksc, pmask))
576 return EBUSY;
577 return cgd_ioctl_clr(cs, l);
578 case DIOCCACHESYNC:
579 /*
580 * XXX Do we really need to care about having a writable
581 * file descriptor here?
582 */
583 if ((flag & FWRITE) == 0)
584 return (EBADF);
585
586 /*
587 * We pass this call down to the underlying disk.
588 */
589 return VOP_IOCTL(cs->sc_tvn, cmd, data, flag, l->l_cred);
590 default:
591 return dk_ioctl(di, dksc, dev, cmd, data, flag, l);
592 case CGDIOCGET:
593 KASSERT(0);
594 return EINVAL;
595 }
596 }
597
598 static int
599 cgddump(dev_t dev, daddr_t blkno, void *va, size_t size)
600 {
601 struct cgd_softc *cs;
602
603 DPRINTF_FOLLOW(("cgddump(0x%"PRIx64", %" PRId64 ", %p, %lu)\n",
604 dev, blkno, va, (unsigned long)size));
605 GETCGD_SOFTC(cs, dev);
606 return dk_dump(di, &cs->sc_dksc, dev, blkno, va, size);
607 }
608
609 /*
610 * XXXrcd:
611 * for now we hardcode the maximum key length.
612 */
613 #define MAX_KEYSIZE 1024
614
615 static const struct {
616 const char *n;
617 int v;
618 int d;
619 } encblkno[] = {
620 { "encblkno", CGD_CIPHER_CBC_ENCBLKNO8, 1 },
621 { "encblkno8", CGD_CIPHER_CBC_ENCBLKNO8, 1 },
622 { "encblkno1", CGD_CIPHER_CBC_ENCBLKNO1, 8 },
623 };
624
625 /* ARGSUSED */
626 static int
627 cgd_ioctl_set(struct cgd_softc *cs, void *data, struct lwp *l)
628 {
629 struct cgd_ioctl *ci = data;
630 struct vnode *vp;
631 int ret;
632 size_t i;
633 size_t keybytes; /* key length in bytes */
634 const char *cp;
635 struct pathbuf *pb;
636 char *inbuf;
637 struct dk_softc *dksc = &cs->sc_dksc;
638
639 cp = ci->ci_disk;
640
641 ret = pathbuf_copyin(ci->ci_disk, &pb);
642 if (ret != 0) {
643 return ret;
644 }
645 ret = dk_lookup(pb, l, &vp);
646 pathbuf_destroy(pb);
647 if (ret != 0) {
648 return ret;
649 }
650
651 inbuf = malloc(MAX_KEYSIZE, M_TEMP, M_WAITOK);
652
653 if ((ret = cgdinit(cs, cp, vp, l)) != 0)
654 goto bail;
655
656 (void)memset(inbuf, 0, MAX_KEYSIZE);
657 ret = copyinstr(ci->ci_alg, inbuf, 256, NULL);
658 if (ret)
659 goto bail;
660 cs->sc_cfuncs = cryptfuncs_find(inbuf);
661 if (!cs->sc_cfuncs) {
662 ret = EINVAL;
663 goto bail;
664 }
665
666 (void)memset(inbuf, 0, MAX_KEYSIZE);
667 ret = copyinstr(ci->ci_ivmethod, inbuf, MAX_KEYSIZE, NULL);
668 if (ret)
669 goto bail;
670
671 for (i = 0; i < __arraycount(encblkno); i++)
672 if (strcmp(encblkno[i].n, inbuf) == 0)
673 break;
674
675 if (i == __arraycount(encblkno)) {
676 ret = EINVAL;
677 goto bail;
678 }
679
680 keybytes = ci->ci_keylen / 8 + 1;
681 if (keybytes > MAX_KEYSIZE) {
682 ret = EINVAL;
683 goto bail;
684 }
685
686 (void)memset(inbuf, 0, MAX_KEYSIZE);
687 ret = copyin(ci->ci_key, inbuf, keybytes);
688 if (ret)
689 goto bail;
690
691 cs->sc_cdata.cf_blocksize = ci->ci_blocksize;
692 cs->sc_cdata.cf_mode = encblkno[i].v;
693 cs->sc_cdata.cf_keylen = ci->ci_keylen;
694 cs->sc_cdata.cf_priv = cs->sc_cfuncs->cf_init(ci->ci_keylen, inbuf,
695 &cs->sc_cdata.cf_blocksize);
696 if (cs->sc_cdata.cf_blocksize > CGD_MAXBLOCKSIZE) {
697 log(LOG_WARNING, "cgd: Disallowed cipher with blocksize %zu > %u\n",
698 cs->sc_cdata.cf_blocksize, CGD_MAXBLOCKSIZE);
699 cs->sc_cdata.cf_priv = NULL;
700 }
701
702 /*
703 * The blocksize is supposed to be in bytes. Unfortunately originally
704 * it was expressed in bits. For compatibility we maintain encblkno
705 * and encblkno8.
706 */
707 cs->sc_cdata.cf_blocksize /= encblkno[i].d;
708 (void)memset(inbuf, 0, MAX_KEYSIZE);
709 if (!cs->sc_cdata.cf_priv) {
710 ret = EINVAL; /* XXX is this the right error? */
711 goto bail;
712 }
713 free(inbuf, M_TEMP);
714
715 bufq_alloc(&dksc->sc_bufq, "fcfs", 0);
716
717 cs->sc_data = malloc(MAXPHYS, M_DEVBUF, M_WAITOK);
718 cs->sc_data_used = 0;
719
720 dksc->sc_flags |= DKF_INITED;
721
722 disk_set_info(dksc->sc_dev, &dksc->sc_dkdev, NULL);
723
724 /* Attach the disk. */
725 disk_attach(&dksc->sc_dkdev);
726
727 /* Try and read the disklabel. */
728 dk_getdisklabel(di, dksc, 0 /* XXX ? (cause of PR 41704) */);
729
730 /* Discover wedges on this disk. */
731 dkwedge_discover(&dksc->sc_dkdev);
732
733 return 0;
734
735 bail:
736 free(inbuf, M_TEMP);
737 (void)vn_close(vp, FREAD|FWRITE, l->l_cred);
738 return ret;
739 }
740
741 /* ARGSUSED */
742 static int
743 cgd_ioctl_clr(struct cgd_softc *cs, struct lwp *l)
744 {
745 int s;
746 struct dk_softc *dksc = &cs->sc_dksc;
747
748 if ((dksc->sc_flags & DKF_INITED) == 0)
749 return ENXIO;
750
751 /* Delete all of our wedges. */
752 dkwedge_delall(&dksc->sc_dkdev);
753
754 /* Kill off any queued buffers. */
755 s = splbio();
756 bufq_drain(dksc->sc_bufq);
757 splx(s);
758 bufq_free(dksc->sc_bufq);
759
760 (void)vn_close(cs->sc_tvn, FREAD|FWRITE, l->l_cred);
761 cs->sc_cfuncs->cf_destroy(cs->sc_cdata.cf_priv);
762 free(cs->sc_tpath, M_DEVBUF);
763 free(cs->sc_data, M_DEVBUF);
764 cs->sc_data_used = 0;
765 dksc->sc_flags &= ~DKF_INITED;
766 disk_detach(&dksc->sc_dkdev);
767
768 return 0;
769 }
770
771 static int
772 cgd_ioctl_get(dev_t dev, void *data, struct lwp *l)
773 {
774 struct cgd_softc *cs = getcgd_softc(dev);
775 struct cgd_user *cgu;
776 int unit;
777 struct dk_softc *dksc = &cs->sc_dksc;
778
779 unit = CGDUNIT(dev);
780 cgu = (struct cgd_user *)data;
781
782 DPRINTF_FOLLOW(("cgd_ioctl_get(0x%"PRIx64", %d, %p, %p)\n",
783 dev, unit, data, l));
784
785 if (cgu->cgu_unit == -1)
786 cgu->cgu_unit = unit;
787
788 if (cgu->cgu_unit < 0)
789 return EINVAL; /* XXX: should this be ENXIO? */
790
791 cs = device_lookup_private(&cgd_cd, unit);
792 if (cs == NULL || (dksc->sc_flags & DKF_INITED) == 0) {
793 cgu->cgu_dev = 0;
794 cgu->cgu_alg[0] = '\0';
795 cgu->cgu_blocksize = 0;
796 cgu->cgu_mode = 0;
797 cgu->cgu_keylen = 0;
798 }
799 else {
800 cgu->cgu_dev = cs->sc_tdev;
801 strlcpy(cgu->cgu_alg, cs->sc_cfuncs->cf_name,
802 sizeof(cgu->cgu_alg));
803 cgu->cgu_blocksize = cs->sc_cdata.cf_blocksize;
804 cgu->cgu_mode = cs->sc_cdata.cf_mode;
805 cgu->cgu_keylen = cs->sc_cdata.cf_keylen;
806 }
807 return 0;
808 }
809
810 static int
811 cgdinit(struct cgd_softc *cs, const char *cpath, struct vnode *vp,
812 struct lwp *l)
813 {
814 struct disk_geom *dg;
815 int ret;
816 char *tmppath;
817 uint64_t psize;
818 unsigned secsize;
819 struct dk_softc *dksc = &cs->sc_dksc;
820
821 cs->sc_tvn = vp;
822 cs->sc_tpath = NULL;
823
824 tmppath = malloc(MAXPATHLEN, M_TEMP, M_WAITOK);
825 ret = copyinstr(cpath, tmppath, MAXPATHLEN, &cs->sc_tpathlen);
826 if (ret)
827 goto bail;
828 cs->sc_tpath = malloc(cs->sc_tpathlen, M_DEVBUF, M_WAITOK);
829 memcpy(cs->sc_tpath, tmppath, cs->sc_tpathlen);
830
831 cs->sc_tdev = vp->v_rdev;
832
833 if ((ret = getdisksize(vp, &psize, &secsize)) != 0)
834 goto bail;
835
836 if (psize == 0) {
837 ret = ENODEV;
838 goto bail;
839 }
840
841 /*
842 * XXX here we should probe the underlying device. If we
843 * are accessing a partition of type RAW_PART, then
844 * we should populate our initial geometry with the
845 * geometry that we discover from the device.
846 */
847 dg = &dksc->sc_dkdev.dk_geom;
848 memset(dg, 0, sizeof(*dg));
849 dg->dg_secperunit = psize;
850 // XXX: Inherit?
851 dg->dg_secsize = DEV_BSIZE;
852 dg->dg_ntracks = 1;
853 dg->dg_nsectors = 1024 * (1024 / dg->dg_secsize);
854 dg->dg_ncylinders = dg->dg_secperunit / dg->dg_nsectors;
855
856 bail:
857 free(tmppath, M_TEMP);
858 if (ret && cs->sc_tpath)
859 free(cs->sc_tpath, M_DEVBUF);
860 return ret;
861 }
862
863 /*
864 * Our generic cipher entry point. This takes care of the
865 * IV mode and passes off the work to the specific cipher.
866 * We implement here the IV method ``encrypted block
867 * number''.
868 *
869 * For the encryption case, we accomplish this by setting
870 * up a struct uio where the first iovec of the source is
871 * the blocknumber and the first iovec of the dest is a
872 * sink. We then call the cipher with an IV of zero, and
873 * the right thing happens.
874 *
875 * For the decryption case, we use the same basic mechanism
876 * for symmetry, but we encrypt the block number in the
877 * first iovec.
878 *
879 * We mainly do this to avoid requiring the definition of
880 * an ECB mode.
881 *
882 * XXXrcd: for now we rely on our own crypto framework defined
883 * in dev/cgd_crypto.c. This will change when we
884 * get a generic kernel crypto framework.
885 */
886
887 static void
888 blkno2blkno_buf(char *sbuf, daddr_t blkno)
889 {
890 int i;
891
892 /* Set up the blkno in blkno_buf, here we do not care much
893 * about the final layout of the information as long as we
894 * can guarantee that each sector will have a different IV
895 * and that the endianness of the machine will not affect
896 * the representation that we have chosen.
897 *
898 * We choose this representation, because it does not rely
899 * on the size of buf (which is the blocksize of the cipher),
900 * but allows daddr_t to grow without breaking existing
901 * disks.
902 *
903 * Note that blkno2blkno_buf does not take a size as input,
904 * and hence must be called on a pre-zeroed buffer of length
905 * greater than or equal to sizeof(daddr_t).
906 */
907 for (i=0; i < sizeof(daddr_t); i++) {
908 *sbuf++ = blkno & 0xff;
909 blkno >>= 8;
910 }
911 }
912
913 static void
914 cgd_cipher(struct cgd_softc *cs, void *dstv, void *srcv,
915 size_t len, daddr_t blkno, size_t secsize, int dir)
916 {
917 char *dst = dstv;
918 char *src = srcv;
919 cfunc_cipher *cipher = cs->sc_cfuncs->cf_cipher;
920 struct uio dstuio;
921 struct uio srcuio;
922 struct iovec dstiov[2];
923 struct iovec srciov[2];
924 size_t blocksize = cs->sc_cdata.cf_blocksize;
925 char sink[CGD_MAXBLOCKSIZE];
926 char zero_iv[CGD_MAXBLOCKSIZE];
927 char blkno_buf[CGD_MAXBLOCKSIZE];
928
929 DPRINTF_FOLLOW(("cgd_cipher() dir=%d\n", dir));
930
931 DIAGCONDPANIC(len % blocksize != 0,
932 ("cgd_cipher: len %% blocksize != 0"));
933
934 /* ensure that sizeof(daddr_t) <= blocksize (for encblkno IVing) */
935 DIAGCONDPANIC(sizeof(daddr_t) > blocksize,
936 ("cgd_cipher: sizeof(daddr_t) > blocksize"));
937
938 memset(zero_iv, 0x0, blocksize);
939
940 dstuio.uio_iov = dstiov;
941 dstuio.uio_iovcnt = 2;
942
943 srcuio.uio_iov = srciov;
944 srcuio.uio_iovcnt = 2;
945
946 dstiov[0].iov_base = sink;
947 dstiov[0].iov_len = blocksize;
948 srciov[0].iov_base = blkno_buf;
949 srciov[0].iov_len = blocksize;
950 dstiov[1].iov_len = secsize;
951 srciov[1].iov_len = secsize;
952
953 for (; len > 0; len -= secsize) {
954 dstiov[1].iov_base = dst;
955 srciov[1].iov_base = src;
956
957 memset(blkno_buf, 0x0, blocksize);
958 blkno2blkno_buf(blkno_buf, blkno);
959 if (dir == CGD_CIPHER_DECRYPT) {
960 dstuio.uio_iovcnt = 1;
961 srcuio.uio_iovcnt = 1;
962 IFDEBUG(CGDB_CRYPTO, hexprint("step 0: blkno_buf",
963 blkno_buf, blocksize));
964 cipher(cs->sc_cdata.cf_priv, &dstuio, &srcuio,
965 zero_iv, CGD_CIPHER_ENCRYPT);
966 memcpy(blkno_buf, sink, blocksize);
967 dstuio.uio_iovcnt = 2;
968 srcuio.uio_iovcnt = 2;
969 }
970
971 IFDEBUG(CGDB_CRYPTO, hexprint("step 1: blkno_buf",
972 blkno_buf, blocksize));
973 cipher(cs->sc_cdata.cf_priv, &dstuio, &srcuio, zero_iv, dir);
974 IFDEBUG(CGDB_CRYPTO, hexprint("step 2: sink",
975 sink, blocksize));
976
977 dst += secsize;
978 src += secsize;
979 blkno++;
980 }
981 }
982
983 #ifdef DEBUG
984 static void
985 hexprint(const char *start, void *buf, int len)
986 {
987 char *c = buf;
988
989 DIAGCONDPANIC(len < 0, ("hexprint: called with len < 0"));
990 printf("%s: len=%06d 0x", start, len);
991 while (len--)
992 printf("%02x", (unsigned char) *c++);
993 }
994 #endif
995
996 MODULE(MODULE_CLASS_DRIVER, cgd, "dk_subr");
997
998 #ifdef _MODULE
999 CFDRIVER_DECL(cgd, DV_DISK, NULL);
1000 #endif
1001
1002 static int
1003 cgd_modcmd(modcmd_t cmd, void *arg)
1004 {
1005 int error = 0;
1006
1007 #ifdef _MODULE
1008 devmajor_t bmajor = -1, cmajor = -1;
1009 #endif
1010
1011 switch (cmd) {
1012 case MODULE_CMD_INIT:
1013 #ifdef _MODULE
1014 error = config_cfdriver_attach(&cgd_cd);
1015 if (error)
1016 break;
1017
1018 error = config_cfattach_attach(cgd_cd.cd_name, &cgd_ca);
1019 if (error) {
1020 config_cfdriver_detach(&cgd_cd);
1021 aprint_error("%s: unable to register cfattach\n",
1022 cgd_cd.cd_name);
1023 break;
1024 }
1025
1026 error = devsw_attach("cgd", &cgd_bdevsw, &bmajor,
1027 &cgd_cdevsw, &cmajor);
1028 if (error) {
1029 config_cfattach_detach(cgd_cd.cd_name, &cgd_ca);
1030 config_cfdriver_detach(&cgd_cd);
1031 break;
1032 }
1033 #endif
1034 break;
1035
1036 case MODULE_CMD_FINI:
1037 #ifdef _MODULE
1038 error = config_cfattach_detach(cgd_cd.cd_name, &cgd_ca);
1039 if (error)
1040 break;
1041 config_cfdriver_detach(&cgd_cd);
1042 devsw_detach(&cgd_bdevsw, &cgd_cdevsw);
1043 #endif
1044 break;
1045
1046 case MODULE_CMD_STAT:
1047 return ENOTTY;
1048
1049 default:
1050 return ENOTTY;
1051 }
1052
1053 return error;
1054 }
1055