cgd.c revision 1.33 1 /* $NetBSD: cgd.c,v 1.33 2006/01/04 10:13:05 yamt 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 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <sys/cdefs.h>
40 __KERNEL_RCSID(0, "$NetBSD: cgd.c,v 1.33 2006/01/04 10:13:05 yamt Exp $");
41
42 #include <sys/types.h>
43 #include <sys/param.h>
44 #include <sys/systm.h>
45 #include <sys/proc.h>
46 #include <sys/errno.h>
47 #include <sys/buf.h>
48 #include <sys/bufq.h>
49 #include <sys/malloc.h>
50 #include <sys/pool.h>
51 #include <sys/ioctl.h>
52 #include <sys/device.h>
53 #include <sys/disk.h>
54 #include <sys/disklabel.h>
55 #include <sys/fcntl.h>
56 #include <sys/vnode.h>
57 #include <sys/lock.h>
58 #include <sys/conf.h>
59
60 #include <dev/dkvar.h>
61 #include <dev/cgdvar.h>
62
63 /* Entry Point Functions */
64
65 void cgdattach(int);
66
67 static dev_type_open(cgdopen);
68 static dev_type_close(cgdclose);
69 static dev_type_read(cgdread);
70 static dev_type_write(cgdwrite);
71 static dev_type_ioctl(cgdioctl);
72 static dev_type_strategy(cgdstrategy);
73 static dev_type_dump(cgddump);
74 static dev_type_size(cgdsize);
75
76 const struct bdevsw cgd_bdevsw = {
77 cgdopen, cgdclose, cgdstrategy, cgdioctl,
78 cgddump, cgdsize, D_DISK
79 };
80
81 const struct cdevsw cgd_cdevsw = {
82 cgdopen, cgdclose, cgdread, cgdwrite, cgdioctl,
83 nostop, notty, nopoll, nommap, nokqfilter, D_DISK
84 };
85
86 /* Internal Functions */
87
88 static int cgdstart(struct dk_softc *, struct buf *);
89 static void cgdiodone(struct buf *);
90
91 static int cgd_ioctl_set(struct cgd_softc *, void *, struct lwp *);
92 static int cgd_ioctl_clr(struct cgd_softc *, void *, struct lwp *);
93 static int cgdinit(struct cgd_softc *, const char *, struct vnode *,
94 struct lwp *);
95 static void cgd_cipher(struct cgd_softc *, caddr_t, caddr_t,
96 size_t, daddr_t, size_t, int);
97
98 /* Pseudo-disk Interface */
99
100 static struct dk_intf the_dkintf = {
101 DTYPE_CGD,
102 "cgd",
103 cgdopen,
104 cgdclose,
105 cgdstrategy,
106 cgdstart,
107 };
108 static struct dk_intf *di = &the_dkintf;
109
110 static struct dkdriver cgddkdriver = {
111 .d_strategy = cgdstrategy,
112 .d_minphys = minphys,
113 };
114
115 /* DIAGNOSTIC and DEBUG definitions */
116
117 #if defined(CGDDEBUG) && !defined(DEBUG)
118 #define DEBUG
119 #endif
120
121 #ifdef DEBUG
122 int cgddebug = 0;
123
124 #define CGDB_FOLLOW 0x1
125 #define CGDB_IO 0x2
126 #define CGDB_CRYPTO 0x4
127
128 #define IFDEBUG(x,y) if (cgddebug & (x)) y
129 #define DPRINTF(x,y) IFDEBUG(x, printf y)
130 #define DPRINTF_FOLLOW(y) DPRINTF(CGDB_FOLLOW, y)
131
132 static void hexprint(const char *, void *, int);
133
134 #else
135 #define IFDEBUG(x,y)
136 #define DPRINTF(x,y)
137 #define DPRINTF_FOLLOW(y)
138 #endif
139
140 #ifdef DIAGNOSTIC
141 #define DIAGPANIC(x) panic x
142 #define DIAGCONDPANIC(x,y) if (x) panic y
143 #else
144 #define DIAGPANIC(x)
145 #define DIAGCONDPANIC(x,y)
146 #endif
147
148 /* Global variables */
149
150 struct cgd_softc *cgd_softc;
151 int numcgd = 0;
152
153 /* Utility Functions */
154
155 #define CGDUNIT(x) DISKUNIT(x)
156 #define GETCGD_SOFTC(_cs, x) if (!((_cs) = getcgd_softc(x))) return ENXIO
157
158 static struct cgd_softc *
159 getcgd_softc(dev_t dev)
160 {
161 int unit = CGDUNIT(dev);
162
163 DPRINTF_FOLLOW(("getcgd_softc(0x%x): unit = %d\n", dev, unit));
164 if (unit >= numcgd)
165 return NULL;
166 return &cgd_softc[unit];
167 }
168
169 /* The code */
170
171 static void
172 cgdsoftc_init(struct cgd_softc *cs, int num)
173 {
174 char sbuf[DK_XNAME_SIZE];
175
176 memset(cs, 0x0, sizeof(*cs));
177 snprintf(sbuf, DK_XNAME_SIZE, "cgd%d", num);
178 simple_lock_init(&cs->sc_slock);
179 dk_sc_init(&cs->sc_dksc, cs, sbuf);
180 cs->sc_dksc.sc_dkdev.dk_driver = &cgddkdriver;
181 pseudo_disk_init(&cs->sc_dksc.sc_dkdev);
182 }
183
184 void
185 cgdattach(int num)
186 {
187 int i;
188
189 DPRINTF_FOLLOW(("cgdattach(%d)\n", num));
190 if (num <= 0) {
191 DIAGPANIC(("cgdattach: count <= 0"));
192 return;
193 }
194
195 cgd_softc = (void *)malloc(num * sizeof(*cgd_softc), M_DEVBUF, M_NOWAIT);
196 if (!cgd_softc) {
197 printf("WARNING: unable to malloc(9) memory for crypt disks\n");
198 DIAGPANIC(("cgdattach: cannot malloc(9) enough memory"));
199 return;
200 }
201
202 numcgd = num;
203 for (i=0; i<num; i++)
204 cgdsoftc_init(&cgd_softc[i], i);
205 }
206
207 static int
208 cgdopen(dev_t dev, int flags, int fmt, struct lwp *l)
209 {
210 struct cgd_softc *cs;
211
212 DPRINTF_FOLLOW(("cgdopen(%d, %d)\n", dev, flags));
213 GETCGD_SOFTC(cs, dev);
214 return dk_open(di, &cs->sc_dksc, dev, flags, fmt, l);
215 }
216
217 static int
218 cgdclose(dev_t dev, int flags, int fmt, struct lwp *l)
219 {
220 struct cgd_softc *cs;
221
222 DPRINTF_FOLLOW(("cgdclose(%d, %d)\n", dev, flags));
223 GETCGD_SOFTC(cs, dev);
224 return dk_close(di, &cs->sc_dksc, dev, flags, fmt, l);
225 }
226
227 static void
228 cgdstrategy(struct buf *bp)
229 {
230 struct cgd_softc *cs = getcgd_softc(bp->b_dev);
231
232 DPRINTF_FOLLOW(("cgdstrategy(%p): b_bcount = %ld\n", bp,
233 (long)bp->b_bcount));
234 /* XXXrcd: Should we test for (cs != NULL)? */
235 dk_strategy(di, &cs->sc_dksc, bp);
236 return;
237 }
238
239 static int
240 cgdsize(dev_t dev)
241 {
242 struct cgd_softc *cs = getcgd_softc(dev);
243
244 DPRINTF_FOLLOW(("cgdsize(%d)\n", dev));
245 if (!cs)
246 return -1;
247 return dk_size(di, &cs->sc_dksc, dev);
248 }
249
250 /*
251 * cgd_{get,put}data are functions that deal with getting a buffer
252 * for the new encrypted data. We have a buffer per device so that
253 * we can ensure that we can always have a transaction in flight.
254 * We use this buffer first so that we have one less piece of
255 * malloc'ed data at any given point.
256 */
257
258 static void *
259 cgd_getdata(struct dk_softc *dksc, unsigned long size)
260 {
261 struct cgd_softc *cs =dksc->sc_osc;
262 caddr_t data = NULL;
263
264 simple_lock(&cs->sc_slock);
265 if (cs->sc_data_used == 0) {
266 cs->sc_data_used = 1;
267 data = cs->sc_data;
268 }
269 simple_unlock(&cs->sc_slock);
270
271 if (data)
272 return data;
273
274 return malloc(size, M_DEVBUF, M_NOWAIT);
275 }
276
277 static void
278 cgd_putdata(struct dk_softc *dksc, caddr_t data)
279 {
280 struct cgd_softc *cs =dksc->sc_osc;
281
282 if (data == cs->sc_data) {
283 simple_lock(&cs->sc_slock);
284 cs->sc_data_used = 0;
285 simple_unlock(&cs->sc_slock);
286 } else {
287 free(data, M_DEVBUF);
288 }
289 }
290
291 static int
292 cgdstart(struct dk_softc *dksc, struct buf *bp)
293 {
294 struct cgd_softc *cs = dksc->sc_osc;
295 struct buf *nbp;
296 caddr_t addr;
297 caddr_t newaddr;
298 daddr_t bn;
299 int s;
300
301 DPRINTF_FOLLOW(("cgdstart(%p, %p)\n", dksc, bp));
302 disk_busy(&dksc->sc_dkdev); /* XXX: put in dksubr.c */
303
304 bn = bp->b_rawblkno;
305
306 /*
307 * We attempt to allocate all of our resources up front, so that
308 * we can fail quickly if they are unavailable.
309 */
310
311 nbp = getiobuf_nowait();
312 if (nbp == NULL) {
313 disk_unbusy(&dksc->sc_dkdev, 0, (bp->b_flags & B_READ));
314 return -1;
315 }
316
317 /*
318 * If we are writing, then we need to encrypt the outgoing
319 * block into a new block of memory. If we fail, then we
320 * return an error and let the dksubr framework deal with it.
321 */
322 newaddr = addr = bp->b_data;
323 if ((bp->b_flags & B_READ) == 0) {
324 newaddr = cgd_getdata(dksc, bp->b_bcount);
325 if (!newaddr) {
326 putiobuf(nbp);
327 disk_unbusy(&dksc->sc_dkdev, 0, (bp->b_flags & B_READ));
328 return -1;
329 }
330 cgd_cipher(cs, newaddr, addr, bp->b_bcount, bn,
331 DEV_BSIZE, CGD_CIPHER_ENCRYPT);
332 }
333
334 nbp->b_data = newaddr;
335 nbp->b_flags = bp->b_flags | B_CALL;
336 nbp->b_iodone = cgdiodone;
337 nbp->b_proc = bp->b_proc;
338 nbp->b_blkno = bn;
339 nbp->b_vp = cs->sc_tvn;
340 nbp->b_bcount = bp->b_bcount;
341 nbp->b_private = bp;
342
343 BIO_COPYPRIO(nbp, bp);
344
345 if ((nbp->b_flags & B_READ) == 0) {
346 V_INCR_NUMOUTPUT(nbp->b_vp);
347 }
348 VOP_STRATEGY(cs->sc_tvn, nbp);
349 return 0;
350 }
351
352 /* expected to be called at splbio() */
353 static void
354 cgdiodone(struct buf *nbp)
355 {
356 struct buf *obp = nbp->b_private;
357 struct cgd_softc *cs = getcgd_softc(obp->b_dev);
358 struct dk_softc *dksc = &cs->sc_dksc;
359
360 KDASSERT(cs);
361
362 DPRINTF_FOLLOW(("cgdiodone(%p)\n", nbp));
363 DPRINTF(CGDB_IO, ("cgdiodone: bp %p bcount %d resid %d\n",
364 obp, obp->b_bcount, obp->b_resid));
365 DPRINTF(CGDB_IO, (" dev 0x%x, nbp %p bn %" PRId64 " addr %p bcnt %d\n",
366 nbp->b_dev, nbp, nbp->b_blkno, nbp->b_data,
367 nbp->b_bcount));
368 if (nbp->b_flags & B_ERROR) {
369 obp->b_flags |= B_ERROR;
370 obp->b_error = nbp->b_error ? nbp->b_error : EIO;
371
372 printf("%s: error %d\n", dksc->sc_xname, obp->b_error);
373 }
374
375 /* Perform the decryption if we are reading.
376 *
377 * Note: use the blocknumber from nbp, since it is what
378 * we used to encrypt the blocks.
379 */
380
381 if (nbp->b_flags & B_READ)
382 cgd_cipher(cs, obp->b_data, obp->b_data, obp->b_bcount,
383 nbp->b_blkno, DEV_BSIZE, CGD_CIPHER_DECRYPT);
384
385 /* If we allocated memory, free it now... */
386 if (nbp->b_data != obp->b_data)
387 cgd_putdata(dksc, nbp->b_data);
388
389 putiobuf(nbp);
390
391 /* Request is complete for whatever reason */
392 obp->b_resid = 0;
393 if (obp->b_flags & B_ERROR)
394 obp->b_resid = obp->b_bcount;
395 disk_unbusy(&dksc->sc_dkdev, obp->b_bcount - obp->b_resid,
396 (obp->b_flags & B_READ));
397 biodone(obp);
398 dk_iodone(di, dksc);
399 }
400
401 /* XXX: we should probably put these into dksubr.c, mostly */
402 static int
403 cgdread(dev_t dev, struct uio *uio, int flags)
404 {
405 struct cgd_softc *cs;
406 struct dk_softc *dksc;
407
408 DPRINTF_FOLLOW(("cgdread(%d, %p, %d)\n", dev, uio, flags));
409 GETCGD_SOFTC(cs, dev);
410 dksc = &cs->sc_dksc;
411 if ((dksc->sc_flags & DKF_INITED) == 0)
412 return ENXIO;
413 return physio(cgdstrategy, NULL, dev, B_READ, minphys, uio);
414 }
415
416 /* XXX: we should probably put these into dksubr.c, mostly */
417 static int
418 cgdwrite(dev_t dev, struct uio *uio, int flags)
419 {
420 struct cgd_softc *cs;
421 struct dk_softc *dksc;
422
423 DPRINTF_FOLLOW(("cgdwrite(%d, %p, %d)\n", dev, uio, flags));
424 GETCGD_SOFTC(cs, dev);
425 dksc = &cs->sc_dksc;
426 if ((dksc->sc_flags & DKF_INITED) == 0)
427 return ENXIO;
428 return physio(cgdstrategy, NULL, dev, B_WRITE, minphys, uio);
429 }
430
431 static int
432 cgdioctl(dev_t dev, u_long cmd, caddr_t data, int flag, struct lwp *l)
433 {
434 struct cgd_softc *cs;
435 struct dk_softc *dksc;
436 struct disk *dk;
437 int ret;
438 int part = DISKPART(dev);
439 int pmask = 1 << part;
440
441 DPRINTF_FOLLOW(("cgdioctl(%d, %ld, %p, %d, %p)\n",
442 dev, cmd, data, flag, l));
443 GETCGD_SOFTC(cs, dev);
444 dksc = &cs->sc_dksc;
445 dk = &dksc->sc_dkdev;
446 switch (cmd) {
447 case CGDIOCSET:
448 case CGDIOCCLR:
449 if ((flag & FWRITE) == 0)
450 return EBADF;
451 }
452
453 switch (cmd) {
454 case CGDIOCSET:
455 if (dksc->sc_flags & DKF_INITED)
456 ret = EBUSY;
457 else
458 ret = cgd_ioctl_set(cs, data, l);
459 break;
460 case CGDIOCCLR:
461 if (!(dksc->sc_flags & DKF_INITED)) {
462 ret = ENXIO;
463 break;
464 }
465 if (DK_BUSY(&cs->sc_dksc, pmask)) {
466 ret = EBUSY;
467 break;
468 }
469 ret = cgd_ioctl_clr(cs, data, l);
470 break;
471 default:
472 ret = dk_ioctl(di, dksc, dev, cmd, data, flag, l);
473 break;
474 }
475
476 return ret;
477 }
478
479 static int
480 cgddump(dev_t dev, daddr_t blkno, caddr_t va, size_t size)
481 {
482 struct cgd_softc *cs;
483
484 DPRINTF_FOLLOW(("cgddump(%d, %" PRId64 ", %p, %lu)\n", dev, blkno, va,
485 (unsigned long)size));
486 GETCGD_SOFTC(cs, dev);
487 return dk_dump(di, &cs->sc_dksc, dev, blkno, va, size);
488 }
489
490 /*
491 * XXXrcd:
492 * for now we hardcode the maximum key length.
493 */
494 #define MAX_KEYSIZE 1024
495
496 /* ARGSUSED */
497 static int
498 cgd_ioctl_set(struct cgd_softc *cs, void *data, struct lwp *l)
499 {
500 struct cgd_ioctl *ci = data;
501 struct vnode *vp;
502 int ret;
503 int keybytes; /* key length in bytes */
504 const char *cp;
505 char inbuf[MAX_KEYSIZE];
506
507 cp = ci->ci_disk;
508 if ((ret = dk_lookup(cp, l, &vp)) != 0)
509 return ret;
510
511 if ((ret = cgdinit(cs, cp, vp, l)) != 0)
512 goto bail;
513
514 memset(inbuf, 0x0, sizeof(inbuf));
515 ret = copyinstr(ci->ci_alg, inbuf, 256, NULL);
516 if (ret)
517 goto bail;
518 cs->sc_cfuncs = cryptfuncs_find(inbuf);
519 if (!cs->sc_cfuncs) {
520 ret = EINVAL;
521 goto bail;
522 }
523
524 /* right now we only support encblkno, so hard-code it */
525 memset(inbuf, 0x0, sizeof(inbuf));
526 ret = copyinstr(ci->ci_ivmethod, inbuf, sizeof(inbuf), NULL);
527 if (ret)
528 goto bail;
529 if (strcmp("encblkno", inbuf)) {
530 ret = EINVAL;
531 goto bail;
532 }
533
534 keybytes = ci->ci_keylen / 8 + 1;
535 if (keybytes > MAX_KEYSIZE) {
536 ret = EINVAL;
537 goto bail;
538 }
539 memset(inbuf, 0x0, sizeof(inbuf));
540 ret = copyin(ci->ci_key, inbuf, keybytes);
541 if (ret)
542 goto bail;
543
544 cs->sc_cdata.cf_blocksize = ci->ci_blocksize;
545 cs->sc_cdata.cf_mode = CGD_CIPHER_CBC_ENCBLKNO;
546 cs->sc_cdata.cf_priv = cs->sc_cfuncs->cf_init(ci->ci_keylen, inbuf,
547 &cs->sc_cdata.cf_blocksize);
548 memset(inbuf, 0x0, sizeof(inbuf));
549 if (!cs->sc_cdata.cf_priv) {
550 printf("cgd: unable to initialize cipher\n");
551 ret = EINVAL; /* XXX is this the right error? */
552 goto bail;
553 }
554
555 bufq_alloc(&cs->sc_dksc.sc_bufq, "fcfs", 0);
556
557 cs->sc_data = malloc(MAXPHYS, M_DEVBUF, M_WAITOK);
558 cs->sc_data_used = 0;
559
560 cs->sc_dksc.sc_flags |= DKF_INITED;
561
562 /* Attach the disk. */
563 pseudo_disk_attach(&cs->sc_dksc.sc_dkdev);
564
565 /* Try and read the disklabel. */
566 dk_getdisklabel(di, &cs->sc_dksc, 0 /* XXX ? */);
567
568 /* Discover wedges on this disk. */
569 dkwedge_discover(&cs->sc_dksc.sc_dkdev);
570
571 return 0;
572
573 bail:
574 (void)vn_close(vp, FREAD|FWRITE, l->l_proc->p_ucred, l);
575 return ret;
576 }
577
578 /* ARGSUSED */
579 static int
580 cgd_ioctl_clr(struct cgd_softc *cs, void *data, struct lwp *l)
581 {
582 int s;
583
584 /* Delete all of our wedges. */
585 dkwedge_delall(&cs->sc_dksc.sc_dkdev);
586
587 /* Kill off any queued buffers. */
588 s = splbio();
589 bufq_drain(cs->sc_dksc.sc_bufq);
590 splx(s);
591 bufq_free(cs->sc_dksc.sc_bufq);
592
593 (void)vn_close(cs->sc_tvn, FREAD|FWRITE, l->l_proc->p_ucred, l);
594 cs->sc_cfuncs->cf_destroy(cs->sc_cdata.cf_priv);
595 free(cs->sc_tpath, M_DEVBUF);
596 free(cs->sc_data, M_DEVBUF);
597 cs->sc_data_used = 0;
598 cs->sc_dksc.sc_flags &= ~DKF_INITED;
599 pseudo_disk_detach(&cs->sc_dksc.sc_dkdev);
600
601 return 0;
602 }
603
604 static int
605 cgdinit(struct cgd_softc *cs, const char *cpath, struct vnode *vp,
606 struct lwp *l)
607 {
608 struct dk_geom *pdg;
609 struct partinfo dpart;
610 struct vattr va;
611 size_t size;
612 int maxsecsize = 0;
613 int ret;
614 char tmppath[MAXPATHLEN];
615
616 cs->sc_dksc.sc_size = 0;
617 cs->sc_tvn = vp;
618
619 memset(tmppath, 0x0, sizeof(tmppath));
620 ret = copyinstr(cpath, tmppath, MAXPATHLEN, &cs->sc_tpathlen);
621 if (ret)
622 goto bail;
623 cs->sc_tpath = malloc(cs->sc_tpathlen, M_DEVBUF, M_WAITOK);
624 memcpy(cs->sc_tpath, tmppath, cs->sc_tpathlen);
625
626 if ((ret = VOP_GETATTR(vp, &va, l->l_proc->p_ucred, l)) != 0)
627 goto bail;
628
629 cs->sc_tdev = va.va_rdev;
630
631 ret = VOP_IOCTL(vp, DIOCGPART, &dpart, FREAD, l->l_proc->p_ucred, l);
632 if (ret)
633 goto bail;
634
635 maxsecsize =
636 ((dpart.disklab->d_secsize > maxsecsize) ?
637 dpart.disklab->d_secsize : maxsecsize);
638 size = dpart.part->p_size;
639
640 if (!size) {
641 ret = ENODEV;
642 goto bail;
643 }
644
645 cs->sc_dksc.sc_size = size;
646
647 /*
648 * XXX here we should probe the underlying device. If we
649 * are accessing a partition of type RAW_PART, then
650 * we should populate our initial geometry with the
651 * geometry that we discover from the device.
652 */
653 pdg = &cs->sc_dksc.sc_geom;
654 pdg->pdg_secsize = DEV_BSIZE;
655 pdg->pdg_ntracks = 1;
656 pdg->pdg_nsectors = 1024 * (1024 / pdg->pdg_secsize);
657 pdg->pdg_ncylinders = cs->sc_dksc.sc_size / pdg->pdg_nsectors;
658
659 bail:
660 if (ret && cs->sc_tpath)
661 free(cs->sc_tpath, M_DEVBUF);
662 return ret;
663 }
664
665 /*
666 * Our generic cipher entry point. This takes care of the
667 * IV mode and passes off the work to the specific cipher.
668 * We implement here the IV method ``encrypted block
669 * number''.
670 *
671 * For the encryption case, we accomplish this by setting
672 * up a struct uio where the first iovec of the source is
673 * the blocknumber and the first iovec of the dest is a
674 * sink. We then call the cipher with an IV of zero, and
675 * the right thing happens.
676 *
677 * For the decryption case, we use the same basic mechanism
678 * for symmetry, but we encrypt the block number in the
679 * first iovec.
680 *
681 * We mainly do this to avoid requiring the definition of
682 * an ECB mode.
683 *
684 * XXXrcd: for now we rely on our own crypto framework defined
685 * in dev/cgd_crypto.c. This will change when we
686 * get a generic kernel crypto framework.
687 */
688
689 static void
690 blkno2blkno_buf(char *sbuf, daddr_t blkno)
691 {
692 int i;
693
694 /* Set up the blkno in blkno_buf, here we do not care much
695 * about the final layout of the information as long as we
696 * can guarantee that each sector will have a different IV
697 * and that the endianness of the machine will not affect
698 * the representation that we have chosen.
699 *
700 * We choose this representation, because it does not rely
701 * on the size of buf (which is the blocksize of the cipher),
702 * but allows daddr_t to grow without breaking existing
703 * disks.
704 *
705 * Note that blkno2blkno_buf does not take a size as input,
706 * and hence must be called on a pre-zeroed buffer of length
707 * greater than or equal to sizeof(daddr_t).
708 */
709 for (i=0; i < sizeof(daddr_t); i++) {
710 *sbuf++ = blkno & 0xff;
711 blkno >>= 8;
712 }
713 }
714
715 static void
716 cgd_cipher(struct cgd_softc *cs, caddr_t dst, caddr_t src,
717 size_t len, daddr_t blkno, size_t secsize, int dir)
718 {
719 cfunc_cipher *cipher = cs->sc_cfuncs->cf_cipher;
720 struct uio dstuio;
721 struct uio srcuio;
722 struct iovec dstiov[2];
723 struct iovec srciov[2];
724 int blocksize = cs->sc_cdata.cf_blocksize;
725 char sink[blocksize];
726 char zero_iv[blocksize];
727 char blkno_buf[blocksize];
728
729 DPRINTF_FOLLOW(("cgd_cipher() dir=%d\n", dir));
730
731 DIAGCONDPANIC(len % blocksize != 0,
732 ("cgd_cipher: len %% blocksize != 0"));
733
734 /* ensure that sizeof(daddr_t) <= blocksize (for encblkno IVing) */
735 DIAGCONDPANIC(sizeof(daddr_t) > blocksize,
736 ("cgd_cipher: sizeof(daddr_t) > blocksize"));
737
738 memset(zero_iv, 0x0, sizeof(zero_iv));
739
740 dstuio.uio_iov = dstiov;
741 dstuio.uio_iovcnt = 2;
742
743 srcuio.uio_iov = srciov;
744 srcuio.uio_iovcnt = 2;
745
746 dstiov[0].iov_base = sink;
747 dstiov[0].iov_len = blocksize;
748 srciov[0].iov_base = blkno_buf;
749 srciov[0].iov_len = blocksize;
750 dstiov[1].iov_len = secsize;
751 srciov[1].iov_len = secsize;
752
753 for (; len > 0; len -= secsize) {
754 dstiov[1].iov_base = dst;
755 srciov[1].iov_base = src;
756
757 memset(blkno_buf, 0x0, sizeof(blkno_buf));
758 blkno2blkno_buf(blkno_buf, blkno);
759 if (dir == CGD_CIPHER_DECRYPT) {
760 dstuio.uio_iovcnt = 1;
761 srcuio.uio_iovcnt = 1;
762 IFDEBUG(CGDB_CRYPTO, hexprint("step 0: blkno_buf",
763 blkno_buf, sizeof(blkno_buf)));
764 cipher(cs->sc_cdata.cf_priv, &dstuio, &srcuio,
765 zero_iv, CGD_CIPHER_ENCRYPT);
766 memcpy(blkno_buf, sink, blocksize);
767 dstuio.uio_iovcnt = 2;
768 srcuio.uio_iovcnt = 2;
769 }
770
771 IFDEBUG(CGDB_CRYPTO, hexprint("step 1: blkno_buf",
772 blkno_buf, sizeof(blkno_buf)));
773 cipher(cs->sc_cdata.cf_priv, &dstuio, &srcuio, zero_iv, dir);
774 IFDEBUG(CGDB_CRYPTO, hexprint("step 2: sink",
775 sink, sizeof(sink)));
776
777 dst += secsize;
778 src += secsize;
779 blkno++;
780 }
781 }
782
783 #ifdef DEBUG
784 static void
785 hexprint(const char *start, void *buf, int len)
786 {
787 char *c = buf;
788
789 DIAGCONDPANIC(len < 0, ("hexprint: called with len < 0"));
790 printf("%s: len=%06d 0x", start, len);
791 while (len--)
792 printf("%02x", (unsigned) *c++);
793 }
794 #endif
795