fd.c revision 1.39 1 /* $NetBSD: fd.c,v 1.39 1997/10/11 16:13:19 mhitch Exp $ */
2
3 /*
4 * Copyright (c) 1994 Christian E. Hopps
5 * Copyright (c) 1996 Ezra Story
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. All advertising materials mentioning features or use of this software
17 * must display the following acknowledgement:
18 * This product includes software developed by Christian E. Hopps.
19 * This product includes software developed by Ezra Story.
20 * 4. The name of the author may not be used to endorse or promote products
21 * derived from this software without specific prior written permission
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 */
34 #include <sys/param.h>
35 #include <sys/systm.h>
36 #include <sys/kernel.h>
37 #include <sys/malloc.h>
38 #include <sys/buf.h>
39 #include <sys/device.h>
40 #include <sys/ioctl.h>
41 #include <sys/fcntl.h>
42 #include <sys/disklabel.h>
43 #include <sys/disk.h>
44 #include <sys/dkbad.h>
45 #include <sys/proc.h>
46 #include <machine/cpu.h>
47 #include <amiga/amiga/device.h>
48 #include <amiga/amiga/custom.h>
49 #include <amiga/amiga/cia.h>
50 #include <amiga/amiga/cc.h>
51
52 #include <sys/conf.h>
53 #include <machine/conf.h>
54
55 #include "locators.h"
56
57 enum fdc_bits { FDB_CHANGED = 2, FDB_PROTECT, FDB_CYLZERO, FDB_READY };
58 /*
59 * partitions in fd represent different format floppies
60 * partition a is 0 etc..
61 */
62 enum fd_parttypes {
63 FDAMIGAPART = 0,
64 FDMSDOSPART,
65 FDMAXPARTS
66 };
67
68 #define FDBBSIZE (8192)
69 #define FDSBSIZE (8192)
70
71 #define b_cylin b_resid
72 #define FDUNIT(dev) DISKUNIT(dev)
73 #define FDPART(dev) DISKPART(dev)
74 #define FDMAKEDEV(m, u, p) MAKEDISKDEV((m), (u), (p))
75
76 /* that's nice, but we don't want to always use this as an amiga drive
77 bunghole :-) */
78 #define FDNHEADS (2) /* amiga drives always have 2 heads */
79 #define FDSECSIZE (512) /* amiga drives always have 512 byte sectors */
80 #define FDSECLWORDS (128)
81
82 #define FDSETTLEDELAY (18000) /* usec delay after seeking after switch dir */
83 #define FDSTEPDELAY (3500) /* usec delay after steping */
84 #define FDPRESIDEDELAY (1000) /* usec delay before writing can occur */
85 #define FDWRITEDELAY (1300) /* usec delay after write */
86
87 #define FDSTEPOUT (1) /* decrease track step */
88 #define FDSTEPIN (0) /* increase track step */
89
90 #define FDCUNITMASK (0x78) /* mask for all units (bits 6-3) */
91
92 #define FDRETRIES (2) /* default number of retries */
93 #define FDMAXUNITS (4) /* maximum number of supported units */
94
95 #define DISKLEN_READ (0) /* fake mask for reading */
96 #define DISKLEN_WRITE (1 << 14) /* bit for writing */
97 #define DISKLEN_DMAEN (1 << 15) /* dma go */
98 #define DMABUFSZ ((DISKLEN_WRITE - 1) * 2) /* largest dma possible */
99
100 #define FDMFMSYNC (0x4489)
101 #define FDMFMID (0x5554)
102 #define FDMFMDATA (0x5545)
103 #define FDMFMGAP1 (0x9254)
104 #define FDMFMGAP2 (0xAAAA)
105 #define FDMFMGAP3 (0x9254)
106 #define CRC16POLY (0x1021) /* (x^16) + x^12 + x^5 + x^0 */
107
108 /*
109 * Msdos-type MFM encode/decode
110 */
111 static u_char msdecode[128];
112 static u_char msencode[16] =
113 {
114 0x2a, 0x29, 0x24, 0x25, 0x12, 0x11, 0x14, 0x15,
115 0x4a, 0x49, 0x44, 0x45, 0x52, 0x51, 0x54, 0x55
116 };
117 static u_short mscrctab[256];
118
119 /*
120 5554 aaaa aaaa aaa5 2aa4 4452 aa51
121 00 00 03 02 ac 0d
122 */
123
124 /*
125 * floppy device type
126 */
127 struct fdtype {
128 u_int driveid; /* drive identification (from drive) */
129 u_int ncylinders; /* number of cylinders on drive */
130 u_int amiga_nsectors; /* number of sectors per amiga track */
131 u_int msdos_nsectors; /* number of sectors per msdos track */
132 u_int nreadw; /* number of words (short) read per track */
133 u_int nwritew; /* number of words (short) written per track */
134 u_int gap; /* track gap size in long words */
135 u_int precomp[2]; /* 1st and 2nd precomp values */
136 char *desc; /* description of drive type (useq) */
137 };
138
139 /*
140 * floppy disk device data
141 */
142 struct fd_softc {
143 struct device sc_dv; /* generic device info; must come first */
144 struct disk dkdev; /* generic disk info */
145 struct buf bufq; /* queue of buf's */
146 struct fdtype *type;
147 void *cachep; /* cached track data (write through) */
148 int cachetrk; /* cahced track -1 for none */
149 int hwunit; /* unit for amiga controlling hw */
150 int unitmask; /* mask for cia select deslect */
151 int pstepdir; /* previous step direction */
152 int curcyl; /* current curcyl head positioned on */
153 int flags; /* misc flags */
154 int wlabel;
155 int stepdelay; /* useq to delay after seek user setable */
156 int nsectors; /* number of sectors per track */
157 int openpart; /* which partition [ab] == [12] is open */
158 short retries; /* number of times to retry failed io */
159 short retried; /* number of times current io retried */
160 int bytespersec; /* number of bytes per sector */
161 };
162
163 /* fd_softc->flags */
164 #define FDF_MOTORON (0x01) /* motor is running */
165 #define FDF_MOTOROFF (0x02) /* motor is waiting to be turned off */
166 #define FDF_WMOTOROFF (0x04) /* unit wants a wakeup after off */
167 #define FDF_DIRTY (0x08) /* track cache needs write */
168 #define FDF_WRITEWAIT (0x10) /* need to head select delay on next setpos */
169 #define FDF_HAVELABEL (0x20) /* label is valid */
170 #define FDF_JUSTFLUSH (0x40) /* don't bother caching track. */
171 #define FDF_NOTRACK0 (0x80) /* was not able to recalibrate drive */
172
173 int fdc_wantwakeup;
174 int fdc_side;
175 void *fdc_dmap;
176 struct fd_softc *fdc_indma;
177 int fdc_dmalen;
178 int fdc_dmawrite;
179
180 struct fdcargs {
181 struct fdtype *type;
182 int unit;
183 };
184
185 int fdcmatch __P((struct device *, struct cfdata *, void *));
186 void fdcattach __P((struct device *, struct device *, void *));
187 int fdcprint __P((void *, const char *));
188 int fdmatch __P((struct device *, struct cfdata *, void *));
189 void fdattach __P((struct device *, struct device *, void *));
190
191 void fdintr __P((int));
192 void fdidxintr __P((void));
193 void fdstrategy __P((struct buf *));
194 int fdloaddisk __P((struct fd_softc *));
195 void fdgetdefaultlabel __P((struct fd_softc *, struct disklabel *, int));
196 int fdgetdisklabel __P((struct fd_softc *, dev_t));
197 int fdsetdisklabel __P((struct fd_softc *, struct disklabel *));
198 int fdputdisklabel __P((struct fd_softc *, dev_t));
199 struct fdtype * fdcgetfdtype __P((int));
200 void fdmotoroff __P((void *));
201 void fdsetpos __P((struct fd_softc *, int, int));
202 void fdselunit __P((struct fd_softc *));
203 void fdstart __P((struct fd_softc *));
204 void fdcont __P((struct fd_softc *));
205 void fddmastart __P((struct fd_softc *, int));
206 void fdcalibrate __P((void *));
207 void fddmadone __P((struct fd_softc *, int));
208 void fddone __P((struct fd_softc *));
209 void fdfindwork __P((int));
210 void fdminphys __P((struct buf *));
211 void fdcachetoraw __P((struct fd_softc *));
212 void amcachetoraw __P((struct fd_softc *));
213 int amrawtocache __P((struct fd_softc *));
214 u_long *fdfindsync __P((u_long *, u_long *));
215 int fdrawtocache __P((struct fd_softc *));
216 void mscachetoraw __P((struct fd_softc *));
217 int msrawtocache __P((struct fd_softc *));
218 u_long *mfmblkencode __P((u_long *, u_long *, u_long *, int));
219 u_long *mfmblkdecode __P((u_long *, u_long *, u_long *, int));
220 u_short *msblkdecode __P((u_short *, u_char *, int));
221 u_short *msblkencode __P((u_short *, u_char *, int, u_short *));
222
223 struct dkdriver fddkdriver = { fdstrategy };
224
225 /*
226 * read size is (nsectors + 1) * mfm secsize + gap bytes + 2 shorts
227 * write size is nsectors * mfm secsize + gap bytes + 3 shorts
228 * the extra shorts are to deal with a dma hw bug in the controller
229 * they are probably too much (I belive the bug is 1 short on write and
230 * 3 bits on read) but there is no need to be cheap here.
231 */
232 #define MAXTRKSZ (22 * FDSECSIZE)
233 struct fdtype fdtype[] = {
234 { 0x00000000, 80, 11, 9, 7358, 6815, 414, { 80, 161 }, "3.5dd" },
235 { 0x55555555, 40, 11, 9, 7358, 6815, 414, { 80, 161 }, "5.25dd" },
236 { 0xAAAAAAAA, 80, 22, 18, 14716, 13630, 828, { 80, 161 }, "3.5hd" }
237 };
238 int nfdtype = sizeof(fdtype) / sizeof(*fdtype);
239
240 struct cfattach fd_ca = {
241 sizeof(struct fd_softc), fdmatch, fdattach
242 };
243
244 struct cfdriver fd_cd = {
245 NULL, "fd", DV_DISK, NULL, 0
246 };
247
248 struct cfattach fdc_ca = {
249 sizeof(struct device), fdcmatch, fdcattach
250 };
251
252 struct cfdriver fdc_cd = {
253 NULL, "fdc", DV_DULL, NULL, 0
254 };
255
256 /*
257 * all hw access through macros, this helps to hide the active low
258 * properties
259 */
260
261 #define FDUNITMASK(unit) (1 << (3 + (unit)))
262
263 /*
264 * select units using mask
265 */
266 #define FDSELECT(um) do { ciab.prb &= ~(um); } while (0)
267
268 /*
269 * deselect units using mask
270 */
271 #define FDDESELECT(um) do { ciab.prb |= (um); delay(1); } while (0)
272
273 /*
274 * test hw condition bits
275 */
276 #define FDTESTC(bit) ((ciaa.pra & (1 << (bit))) == 0)
277
278 /*
279 * set motor for select units, true motor on else off
280 */
281 #define FDSETMOTOR(on) do { \
282 if (on) ciab.prb &= ~CIAB_PRB_MTR; else ciab.prb |= CIAB_PRB_MTR; \
283 } while (0)
284
285 /*
286 * set head for select units
287 */
288 #define FDSETHEAD(head) do { \
289 if (head) ciab.prb &= ~CIAB_PRB_SIDE; else ciab.prb |= CIAB_PRB_SIDE; \
290 delay(1); } while (0)
291
292 /*
293 * select direction, true towards spindle else outwards
294 */
295 #define FDSETDIR(in) do { \
296 if (in) ciab.prb &= ~CIAB_PRB_DIR; else ciab.prb |= CIAB_PRB_DIR; \
297 delay(1); } while (0)
298
299 /*
300 * step the selected units
301 */
302 #define FDSTEP do { \
303 ciab.prb &= ~CIAB_PRB_STEP; ciab.prb |= CIAB_PRB_STEP; \
304 } while (0)
305
306 #define FDDMASTART(len, towrite) do { \
307 int dmasz = (len) | ((towrite) ? DISKLEN_WRITE : 0) | DISKLEN_DMAEN; \
308 custom.dsklen = dmasz; custom.dsklen = dmasz; } while (0)
309
310 #define FDDMASTOP do { custom.dsklen = 0; } while (0)
311
312
313 int
314 fdcmatch(pdp, cfp, auxp)
315 struct device *pdp;
316 struct cfdata *cfp;
317 void *auxp;
318 {
319
320 if (matchname("fdc", auxp) == 0 || cfp->cf_unit != 0)
321 return(0);
322 if ((fdc_dmap = alloc_chipmem(DMABUFSZ)) == NULL) {
323 printf("fdc: unable to allocate dma buffer\n");
324 return(0);
325 }
326 return(1);
327 }
328
329 void
330 fdcattach(pdp, dp, auxp)
331 struct device *pdp, *dp;
332 void *auxp;
333 {
334 struct fdcargs args;
335
336 printf(": dmabuf pa 0x%x", kvtop(fdc_dmap));
337 printf(": dmabuf ka %p\n", fdc_dmap);
338 args.unit = 0;
339 args.type = fdcgetfdtype(args.unit);
340
341 fdc_side = -1;
342 config_found(dp, &args, fdcprint);
343 for (args.unit++; args.unit < FDMAXUNITS; args.unit++) {
344 if ((args.type = fdcgetfdtype(args.unit)) == NULL)
345 continue;
346 config_found(dp, &args, fdcprint);
347 }
348 }
349
350 int
351 fdcprint(auxp, pnp)
352 void *auxp;
353 const char *pnp;
354 {
355 struct fdcargs *fcp;
356
357 fcp = auxp;
358 if (pnp)
359 printf("fd%d at %s unit %d:", fcp->unit, pnp,
360 fcp->type->driveid);
361 return(UNCONF);
362 }
363
364 /*ARGSUSED*/
365 int
366 fdmatch(pdp, cfp, auxp)
367 struct device *pdp;
368 struct cfdata *cfp;
369 void *auxp;
370 {
371
372 #define cf_unit cf_loc[FDCCF_UNIT]
373 struct fdcargs *fdap;
374
375 fdap = auxp;
376 if (cfp->cf_unit == fdap->unit || cfp->cf_unit == FDCCF_UNIT_DEFAULT)
377 return(1);
378 return(0);
379 #undef cf_unit
380 }
381
382 void
383 fdattach(pdp, dp, auxp)
384 struct device *pdp, *dp;
385 void *auxp;
386 {
387 struct fdcargs *ap;
388 struct fd_softc *sc;
389 int i;
390
391 ap = auxp;
392 sc = (struct fd_softc *)dp;
393
394 sc->curcyl = sc->cachetrk = -1;
395 sc->openpart = -1;
396 sc->type = ap->type;
397 sc->hwunit = ap->unit;
398 sc->unitmask = 1 << (3 + ap->unit);
399 sc->retries = FDRETRIES;
400 sc->stepdelay = FDSTEPDELAY;
401 sc->bytespersec = 512;
402 printf(" unit %d: %s %d cyl, %d head, %d sec [%d sec], 512 bytes/sec\n",
403 sc->hwunit, sc->type->desc, sc->type->ncylinders, FDNHEADS,
404 sc->type->amiga_nsectors, sc->type->msdos_nsectors);
405
406 /*
407 * Initialize and attach the disk structure.
408 */
409 sc->dkdev.dk_name = sc->sc_dv.dv_xname;
410 sc->dkdev.dk_driver = &fddkdriver;
411 disk_attach(&sc->dkdev);
412
413 /*
414 * calibrate the drive
415 */
416 fdsetpos(sc, 0, 0);
417 fdsetpos(sc, sc->type->ncylinders, 0);
418 fdsetpos(sc, 0, 0);
419 fdmotoroff(sc);
420
421 /*
422 * precalc msdos MFM and CRC
423 */
424 for (i = 0; i < 128; i++)
425 msdecode[i] = 0xff;
426 for (i = 0; i < 16; i++)
427 msdecode[msencode[i]] = i;
428 for (i = 0; i < 256; i++) {
429 mscrctab[i] = (0x1021 * (i & 0xf0)) ^ (0x1021 * (i & 0x0f)) ^
430 (0x1021 * (i >> 4));
431 }
432
433 /*
434 * enable disk related interrupts
435 */
436 custom.dmacon = DMAF_SETCLR | DMAF_MASTER | DMAF_DISK;
437 custom.intena = INTF_SETCLR | INTF_DSKBLK;
438 ciab.icr = CIA_ICR_FLG;
439 }
440
441 /*ARGSUSED*/
442 int
443 fdopen(dev, flags, devtype, p)
444 dev_t dev;
445 int flags, devtype;
446 struct proc *p;
447 {
448 struct fd_softc *sc;
449 int wasopen, fwork, error, s;
450
451 error = 0;
452
453 if (FDPART(dev) >= FDMAXPARTS)
454 return(ENXIO);
455
456 if ((sc = getsoftc(fd_cd, FDUNIT(dev))) == NULL)
457 return(ENXIO);
458 if (sc->flags & FDF_NOTRACK0)
459 return(ENXIO);
460 if (sc->cachep == NULL)
461 sc->cachep = malloc(MAXTRKSZ, M_DEVBUF, M_WAITOK);
462
463 s = splbio();
464 /*
465 * if we are sleeping in fdclose(); waiting for a chance to
466 * shut the motor off, do a sleep here also.
467 */
468 while (sc->flags & FDF_WMOTOROFF)
469 tsleep(fdmotoroff, PRIBIO, "fdopen", 0);
470
471 fwork = 0;
472 /*
473 * if not open let user open request type, otherwise
474 * ensure they are trying to open same type.
475 */
476 if (sc->openpart == FDPART(dev))
477 wasopen = 1;
478 else if (sc->openpart == -1) {
479 sc->openpart = FDPART(dev);
480 wasopen = 0;
481 } else {
482 wasopen = 1;
483 error = EPERM;
484 goto done;
485 }
486
487 /*
488 * wait for current io to complete if any
489 */
490 if (fdc_indma) {
491 fwork = 1;
492 fdc_wantwakeup++;
493 tsleep(fdopen, PRIBIO, "fdopen", 0);
494 }
495 if ((error = fdloaddisk(sc)) != 0)
496 goto done;
497 if ((error = fdgetdisklabel(sc, dev)) != 0)
498 goto done;
499 #ifdef FDDEBUG
500 printf(" open successful\n");
501 #endif
502 done:
503 /*
504 * if we requested that fddone()->fdfindwork() wake us, allow it to
505 * complete its job now
506 */
507 if (fwork)
508 fdfindwork(FDUNIT(dev));
509 splx(s);
510
511 /*
512 * if we were not open and we marked us so reverse that.
513 */
514 if (error && wasopen == 0)
515 sc->openpart = -1;
516 return(error);
517 }
518
519 /*ARGSUSED*/
520 int
521 fdclose(dev, flags, devtype, p)
522 dev_t dev;
523 int flags, devtype;
524 struct proc *p;
525 {
526 struct fd_softc *sc;
527 int s;
528
529 #ifdef FDDEBUG
530 printf("fdclose()\n");
531 #endif
532 sc = getsoftc(fd_cd, FDUNIT(dev));
533 s = splbio();
534 if (sc->flags & FDF_MOTORON) {
535 sc->flags |= FDF_WMOTOROFF;
536 tsleep(fdmotoroff, PRIBIO, "fdclose", 0);
537 sc->flags &= ~FDF_WMOTOROFF;
538 wakeup(fdmotoroff);
539 }
540 sc->openpart = -1;
541 splx(s);
542 return(0);
543 }
544
545 int
546 fdioctl(dev, cmd, addr, flag, p)
547 dev_t dev;
548 u_long cmd;
549 caddr_t addr;
550 int flag;
551 struct proc *p;
552 {
553 struct fd_softc *sc;
554 int error, wlab;
555
556 sc = getsoftc(fd_cd, FDUNIT(dev));
557
558 if ((sc->flags & FDF_HAVELABEL) == 0)
559 return(EBADF);
560
561 switch (cmd) {
562 case DIOCSBAD:
563 return(EINVAL);
564 case DIOCSRETRIES:
565 if (*(int *)addr < 0)
566 return(EINVAL);
567 sc->retries = *(int *)addr;
568 return(0);
569 case DIOCSSTEP:
570 if (*(int *)addr < FDSTEPDELAY)
571 return(EINVAL);
572 sc->dkdev.dk_label->d_trkseek = sc->stepdelay = *(int *)addr;
573 return(0);
574 case DIOCGDINFO:
575 *(struct disklabel *)addr = *(sc->dkdev.dk_label);
576 return(0);
577 case DIOCGPART:
578 ((struct partinfo *)addr)->disklab = sc->dkdev.dk_label;
579 ((struct partinfo *)addr)->part =
580 &sc->dkdev.dk_label->d_partitions[FDPART(dev)];
581 return(0);
582 case DIOCSDINFO:
583 if ((flag & FWRITE) == 0)
584 return(EBADF);
585 return(fdsetdisklabel(sc, (struct disklabel *)addr));
586 case DIOCWDINFO:
587 if ((flag & FWRITE) == 0)
588 return(EBADF);
589 if ((error = fdsetdisklabel(sc, (struct disklabel *)addr)) != 0)
590 return(error);
591 wlab = sc->wlabel;
592 sc->wlabel = 1;
593 error = fdputdisklabel(sc, dev);
594 sc->wlabel = wlab;
595 return(error);
596 case DIOCWLABEL:
597 if ((flag & FWRITE) == 0)
598 return(EBADF);
599 sc->wlabel = *(int *)addr;
600 return(0);
601 case DIOCGDEFLABEL:
602 fdgetdefaultlabel(sc, (struct disklabel *)addr, FDPART(dev));
603 return(0);
604 default:
605 return(ENOTTY);
606 }
607 }
608
609 /*
610 * no dumps to floppy disks thank you.
611 */
612 int
613 fdsize(dev)
614 dev_t dev;
615 {
616 return(-1);
617 }
618
619 int
620 fdread(dev, uio, flags)
621 dev_t dev;
622 struct uio *uio;
623 int flags;
624 {
625 return (physio(fdstrategy, NULL, dev, B_READ, fdminphys, uio));
626 }
627
628 int
629 fdwrite(dev, uio, flags)
630 dev_t dev;
631 struct uio *uio;
632 int flags;
633 {
634 return (physio(fdstrategy, NULL, dev, B_WRITE, fdminphys, uio));
635 }
636
637
638 void
639 fdintr(flag)
640 int flag;
641 {
642 int s;
643
644 s = splbio();
645 if (fdc_indma)
646 fddmadone(fdc_indma, 0);
647 splx(s);
648 }
649
650 void
651 fdidxintr()
652 {
653 if (fdc_indma && fdc_dmalen) {
654 /*
655 * turn off intr and start actual dma
656 */
657 ciab.icr = CIA_ICR_FLG;
658 FDDMASTART(fdc_dmalen, fdc_dmawrite);
659 fdc_dmalen = 0;
660 }
661 }
662
663 void
664 fdstrategy(bp)
665 struct buf *bp;
666 {
667 struct disklabel *lp;
668 struct fd_softc *sc;
669 struct buf *dp;
670 int unit, part, s;
671
672 unit = FDUNIT(bp->b_dev);
673 part = FDPART(bp->b_dev);
674 sc = getsoftc(fd_cd, unit);
675
676 #ifdef FDDEBUG
677 printf("fdstrategy: 0x%x\n", bp);
678 #endif
679 /*
680 * check for valid partition and bounds
681 */
682 lp = sc->dkdev.dk_label;
683 if ((sc->flags & FDF_HAVELABEL) == 0) {
684 bp->b_error = EIO;
685 goto bad;
686 }
687 if (bounds_check_with_label(bp, lp, sc->wlabel) <= 0)
688 goto done;
689
690 /*
691 * trans count of zero or bounds check indicates io is done
692 * we are done.
693 */
694 if (bp->b_bcount == 0)
695 goto done;
696
697 /*
698 * queue the buf and kick the low level code
699 */
700 s = splbio();
701 dp = &sc->bufq;
702 disksort(dp, bp);
703 fdstart(sc);
704 splx(s);
705 return;
706 bad:
707 bp->b_flags |= B_ERROR;
708 done:
709 bp->b_resid = bp->b_bcount;
710 biodone(bp);
711 }
712
713 /*
714 * make sure disk is loaded and label is up-to-date.
715 */
716 int
717 fdloaddisk(sc)
718 struct fd_softc *sc;
719 {
720 /*
721 * if diskchange is low step drive to 0 then up one then to zero.
722 */
723 fdselunit(sc); /* make sure the unit is selected */
724 if (FDTESTC(FDB_CHANGED)) {
725 fdsetpos(sc, 0, 0);
726 sc->cachetrk = -1; /* invalidate the cache */
727 sc->flags &= ~FDF_HAVELABEL;
728 fdsetpos(sc, FDNHEADS, 0);
729 fdsetpos(sc, 0, 0);
730 if (FDTESTC(FDB_CHANGED)) {
731 fdmotoroff(sc);
732 FDDESELECT(sc->unitmask);
733 return(ENXIO);
734 }
735 }
736 FDDESELECT(sc->unitmask);
737 fdmotoroff(sc);
738 sc->type = fdcgetfdtype(sc->hwunit);
739 if (sc->type == NULL)
740 return(ENXIO);
741 if (sc->openpart == FDMSDOSPART)
742 sc->nsectors = sc->type->msdos_nsectors;
743 else
744 sc->nsectors = sc->type->amiga_nsectors;
745 return(0);
746 }
747
748 void
749 fdgetdefaultlabel(sc, lp, part)
750 struct fd_softc *sc;
751 struct disklabel *lp;
752 int part; /* XXX ick */
753 {
754
755 bzero(lp, sizeof(struct disklabel));
756 lp->d_secsize = FDSECSIZE;
757 lp->d_ntracks = FDNHEADS;
758 lp->d_ncylinders = sc->type->ncylinders;
759 lp->d_nsectors = sc->nsectors;
760 lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
761 lp->d_type = DTYPE_FLOPPY;
762 lp->d_secperunit = lp->d_secpercyl * lp->d_ncylinders;
763 lp->d_rpm = 300; /* good guess I suppose. */
764 lp->d_interleave = 1; /* should change when adding msdos */
765 sc->stepdelay = lp->d_trkseek = FDSTEPDELAY;
766 lp->d_bbsize = 0;
767 lp->d_sbsize = 0;
768 lp->d_partitions[part].p_size = lp->d_secperunit;
769 lp->d_partitions[part].p_fstype = FS_UNUSED;
770 lp->d_partitions[part].p_fsize = 1024;
771 lp->d_partitions[part].p_frag = 8;
772 lp->d_partitions[part].p_cpg = 2; /* adosfs: reserved blocks */
773 lp->d_npartitions = part + 1;
774 lp->d_magic = lp->d_magic2 = DISKMAGIC;
775 lp->d_checksum = dkcksum(lp);
776 }
777
778 /*
779 * read disk label, if present otherwise create one
780 * return a new label if raw part and none found, otherwise err.
781 */
782 int
783 fdgetdisklabel(sc, dev)
784 struct fd_softc *sc;
785 dev_t dev;
786 {
787 struct disklabel *lp, *dlp;
788 struct cpu_disklabel *clp;
789 struct buf *bp;
790 int error, part;
791
792 if (sc->flags & FDF_HAVELABEL &&
793 sc->dkdev.dk_label->d_npartitions == (FDPART(dev) + 1))
794 return(0);
795 #ifdef FDDEBUG
796 printf("fdgetdisklabel()\n");
797 #endif
798 part = FDPART(dev);
799 lp = sc->dkdev.dk_label;
800 clp = sc->dkdev.dk_cpulabel;
801 bzero(lp, sizeof(struct disklabel));
802 bzero(clp, sizeof(struct cpu_disklabel));
803
804 lp->d_secsize = FDSECSIZE;
805 lp->d_ntracks = FDNHEADS;
806 lp->d_ncylinders = sc->type->ncylinders;
807 lp->d_nsectors = sc->nsectors;
808 lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
809 lp->d_secperunit = lp->d_secpercyl * lp->d_ncylinders;
810 lp->d_npartitions = part + 1;
811 lp->d_partitions[part].p_size = lp->d_secperunit;
812 lp->d_partitions[part].p_fstype = FS_UNUSED;
813 lp->d_partitions[part].p_fsize = 1024;
814 lp->d_partitions[part].p_frag = 8;
815 lp->d_partitions[part].p_cpg = 2; /* for adosfs: reserved blks */
816
817 sc->flags |= FDF_HAVELABEL;
818
819 bp = (void *)geteblk((int)lp->d_secsize);
820 bp->b_dev = dev;
821 bp->b_blkno = 0;
822 bp->b_cylin = 0;
823 bp->b_bcount = FDSECSIZE;
824 bp->b_flags = B_BUSY | B_READ;
825 fdstrategy(bp);
826 if ((error = biowait(bp)) != 0)
827 goto nolabel;
828 dlp = (struct disklabel *)(bp->b_data + LABELOFFSET);
829 if (dlp->d_magic != DISKMAGIC || dlp->d_magic2 != DISKMAGIC ||
830 dkcksum(dlp)) {
831 error = EINVAL;
832 goto nolabel;
833 }
834 bcopy(dlp, lp, sizeof(struct disklabel));
835 if (lp->d_trkseek > FDSTEPDELAY)
836 sc->stepdelay = lp->d_trkseek;
837 brelse(bp);
838 return(0);
839 nolabel:
840 fdgetdefaultlabel(sc, lp, part);
841 brelse(bp);
842 return(0);
843 }
844
845 /*
846 * set the incore copy of this units disklabel
847 */
848 int
849 fdsetdisklabel(sc, lp)
850 struct fd_softc *sc;
851 struct disklabel *lp;
852 {
853 struct disklabel *clp;
854 struct partition *pp;
855
856 /*
857 * must have at least opened raw unit to fetch the
858 * raw_part stuff.
859 */
860 if ((sc->flags & FDF_HAVELABEL) == 0)
861 return(EINVAL);
862 clp = sc->dkdev.dk_label;
863 /*
864 * make sure things check out and we only have one valid
865 * partition
866 */
867 #ifdef FDDEBUG
868 printf("fdsetdisklabel\n");
869 #endif
870 if (lp->d_secsize != FDSECSIZE ||
871 lp->d_nsectors != clp->d_nsectors ||
872 lp->d_ntracks != FDNHEADS ||
873 lp->d_ncylinders != clp->d_ncylinders ||
874 lp->d_secpercyl != clp->d_secpercyl ||
875 lp->d_secperunit != clp->d_secperunit ||
876 lp->d_magic != DISKMAGIC ||
877 lp->d_magic2 != DISKMAGIC ||
878 lp->d_npartitions == 0 ||
879 lp->d_npartitions > FDMAXPARTS ||
880 (lp->d_partitions[0].p_offset && lp->d_partitions[1].p_offset) ||
881 dkcksum(lp))
882 return(EINVAL);
883 /*
884 * if any partitions are present make sure they
885 * represent the currently open type
886 */
887 if ((pp = &lp->d_partitions[0])->p_size) {
888 if ((pp = &lp->d_partitions[1])->p_size == 0)
889 goto done;
890 else if (sc->openpart != 1)
891 return(EINVAL);
892 } else if (sc->openpart != 0)
893 return(EINVAL);
894 /*
895 * make sure selected partition is within bounds
896 * XXX on the second check, its to handle a bug in
897 * XXX the cluster routines as they require mutliples
898 * XXX of CLBYTES currently
899 */
900 if ((pp->p_offset + pp->p_size >= lp->d_secperunit) ||
901 (pp->p_frag * pp->p_fsize % CLBYTES))
902 return(EINVAL);
903 done:
904 bcopy(lp, clp, sizeof(struct disklabel));
905 return(0);
906 }
907
908 /*
909 * write out the incore copy of this units disklabel
910 */
911 int
912 fdputdisklabel(sc, dev)
913 struct fd_softc *sc;
914 dev_t dev;
915 {
916 struct disklabel *lp, *dlp;
917 struct buf *bp;
918 int error;
919
920 if ((sc->flags & FDF_HAVELABEL) == 0)
921 return(EBADF);
922 #ifdef FDDEBUG
923 printf("fdputdisklabel\n");
924 #endif
925 /*
926 * get buf and read in sector 0
927 */
928 lp = sc->dkdev.dk_label;
929 bp = (void *)geteblk((int)lp->d_secsize);
930 bp->b_dev = FDMAKEDEV(major(dev), FDUNIT(dev), RAW_PART);
931 bp->b_blkno = 0;
932 bp->b_cylin = 0;
933 bp->b_bcount = FDSECSIZE;
934 bp->b_flags = B_BUSY | B_READ;
935 fdstrategy(bp);
936 if ((error = biowait(bp)) != 0)
937 goto done;
938 /*
939 * copy disklabel to buf and write it out syncronous
940 */
941 dlp = (struct disklabel *)(bp->b_data + LABELOFFSET);
942 bcopy(lp, dlp, sizeof(struct disklabel));
943 bp->b_blkno = 0;
944 bp->b_cylin = 0;
945 bp->b_flags = B_WRITE;
946 fdstrategy(bp);
947 error = biowait(bp);
948 done:
949 brelse(bp);
950 return(error);
951 }
952
953 /*
954 * figure out drive type or NULL if none.
955 */
956 struct fdtype *
957 fdcgetfdtype(unit)
958 int unit;
959 {
960 struct fdtype *ftp;
961 u_long id, idb;
962 int cnt, umask;
963
964 id = 0;
965 umask = 1 << (3 + unit);
966
967 FDDESELECT(FDCUNITMASK);
968
969 FDSETMOTOR(1);
970 delay(1);
971 FDSELECT(umask);
972 delay(1);
973 FDDESELECT(umask);
974
975 FDSETMOTOR(0);
976 delay(1);
977 FDSELECT(umask);
978 delay(1);
979 FDDESELECT(umask);
980
981 for (idb = 0x80000000; idb; idb >>= 1) {
982 FDSELECT(umask);
983 delay(1);
984 if (FDTESTC(FDB_READY) == 0)
985 id |= idb;
986 FDDESELECT(umask);
987 delay(1);
988 }
989 #ifdef FDDEBUG
990 printf("fdcgettype unit %d id 0x%lx\n", unit, id);
991 #endif
992
993 for (cnt = 0, ftp = fdtype; cnt < nfdtype; ftp++, cnt++)
994 if (ftp->driveid == id)
995 return(ftp);
996 /*
997 * 3.5dd's at unit 0 do not always return id.
998 */
999 if (unit == 0)
1000 return(fdtype);
1001 return(NULL);
1002 }
1003
1004 /*
1005 * turn motor off if possible otherwise mark as needed and will be done
1006 * later.
1007 */
1008 void
1009 fdmotoroff(arg)
1010 void *arg;
1011 {
1012 struct fd_softc *sc;
1013 int s;
1014
1015 sc = arg;
1016 s = splbio();
1017
1018 #ifdef FDDEBUG
1019 printf("fdmotoroff: unit %d\n", sc->hwunit);
1020 #endif
1021 if ((sc->flags & FDF_MOTORON) == 0)
1022 goto done;
1023 /*
1024 * if we have a timeout on a dma operation let fddmadone()
1025 * deal with it.
1026 */
1027 if (fdc_indma == sc) {
1028 fddmadone(sc, 1);
1029 goto done;
1030 }
1031 #ifdef FDDEBUG
1032 printf(" motor was on, turning off\n");
1033 #endif
1034
1035 /*
1036 * flush cache if needed
1037 */
1038 if (sc->flags & FDF_DIRTY) {
1039 sc->flags |= FDF_JUSTFLUSH | FDF_MOTOROFF;
1040 #ifdef FDDEBUG
1041 printf(" flushing dirty buffer first\n");
1042 #endif
1043 /*
1044 * if dma'ing done for now, fddone() will call us again
1045 */
1046 if (fdc_indma)
1047 goto done;
1048 fddmastart(sc, sc->cachetrk);
1049 goto done;
1050 }
1051
1052 /*
1053 * if controller is busy just schedule us to be called back
1054 */
1055 if (fdc_indma) {
1056 /*
1057 * someone else has the controller now
1058 * just set flag and let fddone() call us again.
1059 */
1060 sc->flags |= FDF_MOTOROFF;
1061 goto done;
1062 }
1063
1064 #ifdef FDDEBUG
1065 printf(" hw turning unit off\n");
1066 #endif
1067
1068 sc->flags &= ~(FDF_MOTORON | FDF_MOTOROFF);
1069 FDDESELECT(FDCUNITMASK);
1070 FDSETMOTOR(0);
1071 delay(1);
1072 FDSELECT(sc->unitmask);
1073 delay(4);
1074 FDDESELECT(sc->unitmask);
1075 delay(1);
1076 if (sc->flags & FDF_WMOTOROFF)
1077 wakeup(fdmotoroff);
1078 done:
1079 splx(s);
1080 }
1081
1082 /*
1083 * select drive seek to track exit with motor on.
1084 * fdsetpos(x, 0, 0) does calibrates the drive.
1085 */
1086 void
1087 fdsetpos(sc, trk, towrite)
1088 struct fd_softc *sc;
1089 int trk, towrite;
1090 {
1091 int nstep, sdir, ondly, ncyl, nside;
1092
1093 FDDESELECT(FDCUNITMASK);
1094 FDSETMOTOR(1);
1095 delay(1);
1096 FDSELECT(sc->unitmask);
1097 delay(1);
1098 if ((sc->flags & FDF_MOTORON) == 0) {
1099 ondly = 0;
1100 while (FDTESTC(FDB_READY) == 0) {
1101 delay(1000);
1102 if (++ondly >= 1000)
1103 break;
1104 }
1105 }
1106 sc->flags |= FDF_MOTORON;
1107
1108 ncyl = trk / FDNHEADS;
1109 nside = trk % FDNHEADS;
1110
1111 if (sc->curcyl == ncyl && fdc_side == nside)
1112 return;
1113
1114 if (towrite)
1115 sc->flags |= FDF_WRITEWAIT;
1116
1117 #ifdef FDDEBUG
1118 printf("fdsetpos: cyl %d head %d towrite %d\n", trk / FDNHEADS,
1119 trk % FDNHEADS, towrite);
1120 #endif
1121 nstep = ncyl - sc->curcyl;
1122 if (nstep) {
1123 /*
1124 * figure direction
1125 */
1126 if (nstep > 0 && ncyl != 0) {
1127 sdir = FDSTEPIN;
1128 FDSETDIR(1);
1129 } else {
1130 nstep = -nstep;
1131 sdir = FDSTEPOUT;
1132 FDSETDIR(0);
1133 }
1134 if (ncyl == 0) {
1135 /*
1136 * either just want cylinder 0 or doing
1137 * a calibrate.
1138 */
1139 nstep = 256;
1140 while (FDTESTC(FDB_CYLZERO) == 0 && nstep--) {
1141 FDSTEP;
1142 delay(sc->stepdelay);
1143 }
1144 if (nstep < 0)
1145 sc->flags |= FDF_NOTRACK0;
1146 } else {
1147 /*
1148 * step the needed amount amount.
1149 */
1150 while (nstep--) {
1151 FDSTEP;
1152 delay(sc->stepdelay);
1153 }
1154 }
1155 /*
1156 * if switched directions
1157 * allow drive to settle.
1158 */
1159 if (sc->pstepdir != sdir)
1160 delay(FDSETTLEDELAY);
1161 sc->pstepdir = sdir;
1162 sc->curcyl = ncyl;
1163 }
1164 if (nside == fdc_side)
1165 return;
1166 /*
1167 * select side
1168 */
1169 fdc_side = nside;
1170 FDSETHEAD(nside);
1171 delay(FDPRESIDEDELAY);
1172 }
1173
1174 void
1175 fdselunit(sc)
1176 struct fd_softc *sc;
1177 {
1178 FDDESELECT(FDCUNITMASK); /* deselect all */
1179 FDSETMOTOR(sc->flags & FDF_MOTORON); /* set motor to unit's state */
1180 delay(1);
1181 FDSELECT(sc->unitmask); /* select unit */
1182 delay(1);
1183 }
1184
1185 /*
1186 * process next buf on device queue.
1187 * normall sequence of events:
1188 * fdstart() -> fddmastart();
1189 * fdidxintr();
1190 * fdintr() -> fddmadone() -> fddone();
1191 * if the track is in the cache then fdstart() will short-circuit
1192 * to fddone() else if the track cache is dirty it will flush. If
1193 * the buf is not an entire track it will cache the requested track.
1194 */
1195 void
1196 fdstart(sc)
1197 struct fd_softc *sc;
1198 {
1199 int trk, error, write;
1200 struct buf *bp, *dp;
1201 int changed;
1202
1203 #ifdef FDDEBUG
1204 printf("fdstart: unit %d\n", sc->hwunit);
1205 #endif
1206
1207 /*
1208 * if dma'ing just return. we must have been called from fdstartegy.
1209 */
1210 if (fdc_indma)
1211 return;
1212
1213 /*
1214 * get next buf if there.
1215 */
1216 dp = &sc->bufq;
1217 if ((bp = dp->b_actf) == NULL) {
1218 #ifdef FDDEBUG
1219 printf(" nothing to do\n");
1220 #endif
1221 return;
1222 }
1223
1224 /*
1225 * Mark us as busy now, in case fddone() gets called in one
1226 * of the cases below.
1227 */
1228 disk_busy(&sc->dkdev);
1229
1230 /*
1231 * make sure same disk is loaded
1232 */
1233 fdselunit(sc);
1234 changed = FDTESTC(FDB_CHANGED);
1235 FDDESELECT(sc->unitmask);
1236 if (changed) {
1237 /*
1238 * disk missing, invalidate all future io on
1239 * this unit until re-open()'ed also invalidate
1240 * all current io
1241 */
1242 printf("fdstart: disk changed\n");
1243 #ifdef FDDEBUG
1244 printf(" disk was removed invalidating all io\n");
1245 #endif
1246 sc->flags &= ~FDF_HAVELABEL;
1247 for (;;) {
1248 bp->b_flags |= B_ERROR;
1249 bp->b_error = EIO;
1250 if (bp->b_actf == NULL)
1251 break;
1252 biodone(bp);
1253 bp = bp->b_actf;
1254 }
1255 /*
1256 * do fddone() on last buf to allow other units to start.
1257 */
1258 dp->b_actf = bp;
1259 fddone(sc);
1260 return;
1261 }
1262
1263 /*
1264 * we have a valid buf, setup our local version
1265 * we use this count to allow reading over multiple tracks.
1266 * into a single buffer
1267 */
1268 dp->b_bcount = bp->b_bcount;
1269 dp->b_blkno = bp->b_blkno;
1270 dp->b_data = bp->b_data;
1271 dp->b_flags = bp->b_flags;
1272 dp->b_resid = 0;
1273
1274 if (bp->b_flags & B_READ)
1275 write = 0;
1276 else if (FDTESTC(FDB_PROTECT) == 0)
1277 write = 1;
1278 else {
1279 error = EPERM;
1280 goto bad;
1281 }
1282
1283 /*
1284 * figure trk given blkno
1285 */
1286 trk = bp->b_blkno / sc->nsectors;
1287
1288 /*
1289 * check to see if same as currently cached track
1290 * if so we need to do no dma read.
1291 */
1292 if (trk == sc->cachetrk) {
1293 fddone(sc);
1294 return;
1295 }
1296
1297 /*
1298 * if we will be overwriting the entire cache, don't bother to
1299 * fetch it.
1300 */
1301 if (bp->b_bcount == (sc->nsectors * FDSECSIZE) && write &&
1302 bp->b_blkno % sc->nsectors == 0) {
1303 if (sc->flags & FDF_DIRTY)
1304 sc->flags |= FDF_JUSTFLUSH;
1305 else {
1306 sc->cachetrk = trk;
1307 fddone(sc);
1308 return;
1309 }
1310 }
1311
1312 /*
1313 * start dma read of `trk'
1314 */
1315 fddmastart(sc, trk);
1316 return;
1317 bad:
1318 bp->b_flags |= B_ERROR;
1319 bp->b_error = error;
1320 fddone(sc);
1321 }
1322
1323 /*
1324 * continue a started operation on next track. always begin at
1325 * sector 0 on the next track.
1326 */
1327 void
1328 fdcont(sc)
1329 struct fd_softc *sc;
1330 {
1331 struct buf *dp, *bp;
1332 int trk, write;
1333
1334 dp = &sc->bufq;
1335 bp = dp->b_actf;
1336 dp->b_data += (dp->b_bcount - bp->b_resid);
1337 dp->b_blkno += (dp->b_bcount - bp->b_resid) / FDSECSIZE;
1338 dp->b_bcount = bp->b_resid;
1339
1340 /*
1341 * figure trk given blkno
1342 */
1343 trk = dp->b_blkno / sc->nsectors;
1344 #ifdef DEBUG
1345 if (trk != sc->cachetrk + 1 || dp->b_blkno % sc->nsectors != 0)
1346 panic("fdcont: confused");
1347 #endif
1348 if (dp->b_flags & B_READ)
1349 write = 0;
1350 else
1351 write = 1;
1352 /*
1353 * if we will be overwriting the entire cache, don't bother to
1354 * fetch it.
1355 */
1356 if (dp->b_bcount == (sc->nsectors * FDSECSIZE) && write) {
1357 if (sc->flags & FDF_DIRTY)
1358 sc->flags |= FDF_JUSTFLUSH;
1359 else {
1360 sc->cachetrk = trk;
1361 fddone(sc);
1362 return;
1363 }
1364 }
1365 /*
1366 * start dma read of `trk'
1367 */
1368 fddmastart(sc, trk);
1369 return;
1370 }
1371
1372 void
1373 fddmastart(sc, trk)
1374 struct fd_softc *sc;
1375 int trk;
1376 {
1377 int adkmask, ndmaw, write, dmatrk;
1378
1379 #ifdef FDDEBUG
1380 printf("fddmastart: unit %d cyl %d head %d", sc->hwunit,
1381 trk / FDNHEADS, trk % FDNHEADS);
1382 #endif
1383 /*
1384 * flush the cached track if dirty else read requested track.
1385 */
1386 if (sc->flags & FDF_DIRTY) {
1387 fdcachetoraw(sc);
1388 ndmaw = sc->type->nwritew;
1389 dmatrk = sc->cachetrk;
1390 write = 1;
1391 } else {
1392 ndmaw = sc->type->nreadw;
1393 dmatrk = trk;
1394 write = 0;
1395 }
1396
1397 #ifdef FDDEBUG
1398 printf(" %s", write ? " flushing cache\n" : " loading cache\n");
1399 #endif
1400 sc->cachetrk = trk;
1401 fdc_indma = sc;
1402 fdsetpos(sc, dmatrk, write);
1403
1404 /*
1405 * setup dma stuff
1406 */
1407 if (write == 0) {
1408 custom.adkcon = ADKF_MSBSYNC;
1409 custom.adkcon = ADKF_SETCLR | ADKF_WORDSYNC | ADKF_FAST;
1410 custom.dsksync = FDMFMSYNC;
1411 } else {
1412 custom.adkcon = ADKF_PRECOMP1 | ADKF_PRECOMP0 | ADKF_WORDSYNC |
1413 ADKF_MSBSYNC;
1414 adkmask = ADKF_SETCLR | ADKF_FAST | ADKF_MFMPREC;
1415 if (dmatrk >= sc->type->precomp[0])
1416 adkmask |= ADKF_PRECOMP0;
1417 if (dmatrk >= sc->type->precomp[1])
1418 adkmask |= ADKF_PRECOMP1;
1419 custom.adkcon = adkmask;
1420 }
1421 custom.dskpt = (u_char *)kvtop(fdc_dmap);
1422
1423 /*
1424 * If writing an MSDOS track, activate disk index pulse
1425 * interrupt, dma will be started in the intr routine fdidxintr()
1426 * Otherwise, start the DMA here.
1427 */
1428 if (write && sc->openpart == FDMSDOSPART) {
1429 fdc_dmalen = ndmaw;
1430 fdc_dmawrite = write;
1431 ciab.icr = CIA_ICR_IR_SC | CIA_ICR_FLG;
1432 } else {
1433 FDDMASTART(ndmaw, write);
1434 fdc_dmalen = 0;
1435 }
1436
1437 #ifdef FDDEBUG
1438 printf(" dma started\n");
1439 #endif
1440 }
1441
1442 /*
1443 * recalibrate the drive
1444 */
1445 void
1446 fdcalibrate(arg)
1447 void *arg;
1448 {
1449 struct fd_softc *sc;
1450 static int loopcnt;
1451
1452 sc = arg;
1453
1454 if (loopcnt == 0) {
1455 /*
1456 * seek cyl 0
1457 */
1458 fdc_indma = sc;
1459 sc->stepdelay += 900;
1460 if (sc->cachetrk > 1)
1461 fdsetpos(sc, sc->cachetrk % FDNHEADS, 0);
1462 sc->stepdelay -= 900;
1463 }
1464 if (loopcnt++ & 1)
1465 fdsetpos(sc, sc->cachetrk, 0);
1466 else
1467 fdsetpos(sc, sc->cachetrk + FDNHEADS, 0);
1468 /*
1469 * trk++, trk, trk++, trk, trk++, trk, trk++, trk and dma
1470 */
1471 if (loopcnt < 8)
1472 timeout(fdcalibrate, sc, hz / 8);
1473 else {
1474 loopcnt = 0;
1475 fdc_indma = NULL;
1476 timeout(fdmotoroff, sc, 3 * hz / 2);
1477 fddmastart(sc, sc->cachetrk);
1478 }
1479 }
1480
1481 void
1482 fddmadone(sc, timeo)
1483 struct fd_softc *sc;
1484 int timeo;
1485 {
1486 #ifdef FDDEBUG
1487 printf("fddmadone: unit %d, timeo %d\n", sc->hwunit, timeo);
1488 #endif
1489 fdc_indma = NULL;
1490 untimeout(fdmotoroff, sc);
1491 FDDMASTOP;
1492
1493 /*
1494 * guarantee the drive has been at current head and cyl
1495 * for at least FDWRITEDELAY after a write.
1496 */
1497 if (sc->flags & FDF_WRITEWAIT) {
1498 delay(FDWRITEDELAY);
1499 sc->flags &= ~FDF_WRITEWAIT;
1500 }
1501
1502 if ((sc->flags & FDF_MOTOROFF) == 0) {
1503 /*
1504 * motor runs for 1.5 seconds after last dma
1505 */
1506 timeout(fdmotoroff, sc, 3 * hz / 2);
1507 }
1508 if (sc->flags & FDF_DIRTY) {
1509 /*
1510 * if buffer dirty, the last dma cleaned it
1511 */
1512 sc->flags &= ~FDF_DIRTY;
1513 if (timeo)
1514 printf("%s: write of track cache timed out.\n",
1515 sc->sc_dv.dv_xname);
1516 if (sc->flags & FDF_JUSTFLUSH) {
1517 sc->flags &= ~FDF_JUSTFLUSH;
1518 /*
1519 * we are done dma'ing
1520 */
1521 fddone(sc);
1522 return;
1523 }
1524 /*
1525 * load the cache
1526 */
1527 fddmastart(sc, sc->cachetrk);
1528 return;
1529 }
1530 #ifdef FDDEBUG
1531 else if (sc->flags & FDF_MOTOROFF)
1532 panic("fddmadone: FDF_MOTOROFF with no FDF_DIRTY");
1533 #endif
1534
1535 /*
1536 * cache loaded decode it into cache buffer
1537 */
1538 if (timeo == 0 && fdrawtocache(sc) == 0)
1539 sc->retried = 0;
1540 else {
1541 #ifdef FDDEBUG
1542 if (timeo)
1543 printf("%s: fddmadone: cache load timed out.\n",
1544 sc->sc_dv.dv_xname);
1545 #endif
1546 if (sc->retried >= sc->retries) {
1547 sc->retried = 0;
1548 sc->cachetrk = -1;
1549 } else {
1550 sc->retried++;
1551 /*
1552 * this will be restarted at end of calibrate loop.
1553 */
1554 untimeout(fdmotoroff, sc);
1555 fdcalibrate(sc);
1556 return;
1557 }
1558 }
1559 fddone(sc);
1560 }
1561
1562 void
1563 fddone(sc)
1564 struct fd_softc *sc;
1565 {
1566 struct buf *dp, *bp;
1567 char *data;
1568 int sz;
1569
1570 #ifdef FDDEBUG
1571 printf("fddone: unit %d\n", sc->hwunit);
1572 #endif
1573 /*
1574 * check to see if unit is just flushing the cache,
1575 * that is we have no io queued.
1576 */
1577 if (sc->flags & FDF_MOTOROFF)
1578 goto nobuf;
1579
1580 dp = &sc->bufq;
1581 if ((bp = dp->b_actf) == NULL)
1582 panic ("fddone");
1583 /*
1584 * check for an error that may have occured
1585 * while getting the track.
1586 */
1587 if (sc->cachetrk == -1) {
1588 sc->retried = 0;
1589 bp->b_flags |= B_ERROR;
1590 bp->b_error = EIO;
1591 } else if ((bp->b_flags & B_ERROR) == 0) {
1592 data = sc->cachep;
1593 /*
1594 * get offset of data in track cache and limit
1595 * the copy size to not exceed the cache's end.
1596 */
1597 data += (dp->b_blkno % sc->nsectors) * FDSECSIZE;
1598 sz = sc->nsectors - dp->b_blkno % sc->nsectors;
1599 sz *= FDSECSIZE;
1600 sz = min(dp->b_bcount, sz);
1601 if (bp->b_flags & B_READ)
1602 bcopy(data, dp->b_data, sz);
1603 else {
1604 bcopy(dp->b_data, data, sz);
1605 sc->flags |= FDF_DIRTY;
1606 }
1607 bp->b_resid = dp->b_bcount - sz;
1608 if (bp->b_resid == 0) {
1609 bp->b_error = 0;
1610 } else {
1611 /*
1612 * not done yet need to read next track
1613 */
1614 fdcont(sc);
1615 return;
1616 }
1617 }
1618 /*
1619 * remove from queue.
1620 */
1621 dp->b_actf = bp->b_actf;
1622
1623 disk_unbusy(&sc->dkdev, (bp->b_bcount - bp->b_resid));
1624
1625 biodone(bp);
1626 nobuf:
1627 fdfindwork(sc->sc_dv.dv_unit);
1628 }
1629
1630 void
1631 fdfindwork(unit)
1632 int unit;
1633 {
1634 struct fd_softc *ssc, *sc;
1635 int i, last;
1636
1637 /*
1638 * first see if we have any fdopen()'s waiting
1639 */
1640 if (fdc_wantwakeup) {
1641 wakeup(fdopen);
1642 fdc_wantwakeup--;
1643 return;
1644 }
1645
1646 /*
1647 * start next available unit, linear search from the next unit
1648 * wrapping and finally this unit.
1649 */
1650 last = 0;
1651 ssc = NULL;
1652 for (i = unit + 1; last == 0; i++) {
1653 if (i == unit)
1654 last = 1;
1655 if (i >= fd_cd.cd_ndevs) {
1656 i = -1;
1657 continue;
1658 }
1659 if ((sc = fd_cd.cd_devs[i]) == NULL)
1660 continue;
1661
1662 /*
1663 * if unit has requested to be turned off
1664 * and it has no buf's queued do it now
1665 */
1666 if (sc->flags & FDF_MOTOROFF) {
1667 if (sc->bufq.b_actf == NULL)
1668 fdmotoroff(sc);
1669 else {
1670 /*
1671 * we gained a buf request while
1672 * we waited, forget the motoroff
1673 */
1674 sc->flags &= ~FDF_MOTOROFF;
1675 }
1676 /*
1677 * if we now have dma unit must have needed
1678 * flushing, quit
1679 */
1680 if (fdc_indma)
1681 return;
1682 }
1683 /*
1684 * if we have no start unit and the current unit has
1685 * io waiting choose this unit to start.
1686 */
1687 if (ssc == NULL && sc->bufq.b_actf)
1688 ssc = sc;
1689 }
1690 if (ssc)
1691 fdstart(ssc);
1692 }
1693
1694 /*
1695 * min byte count to whats left of the track in question
1696 */
1697 void
1698 fdminphys(bp)
1699 struct buf *bp;
1700 {
1701 struct fd_softc *sc;
1702 int trk, sec, toff, tsz;
1703
1704 if ((sc = getsoftc(fd_cd, FDUNIT(bp->b_dev))) == NULL)
1705 panic("fdminphys: couldn't get softc");
1706
1707 trk = bp->b_blkno / sc->nsectors;
1708 sec = bp->b_blkno % sc->nsectors;
1709
1710 toff = sec * FDSECSIZE;
1711 tsz = sc->nsectors * FDSECSIZE;
1712 #ifdef FDDEBUG
1713 printf("fdminphys: before %d", bp->b_bcount);
1714 #endif
1715 bp->b_bcount = min(bp->b_bcount, tsz - toff);
1716 #ifdef FDDEBUG
1717 printf(" after %d\n", bp->b_bcount);
1718 #endif
1719 minphys(bp);
1720 }
1721
1722 /*
1723 * encode the track cache into raw MFM ready for dma
1724 * when we go to multiple disk formats, this will call type dependent
1725 * functions
1726 */
1727 void fdcachetoraw(sc)
1728 struct fd_softc *sc;
1729 {
1730 if (sc->openpart == FDMSDOSPART)
1731 mscachetoraw(sc);
1732 else
1733 amcachetoraw(sc);
1734 }
1735
1736 /*
1737 * decode raw MFM from dma into units track cache.
1738 * when we go to multiple disk formats, this will call type dependent
1739 * functions
1740 */
1741 int
1742 fdrawtocache(sc)
1743 struct fd_softc *sc;
1744 {
1745
1746 if (sc->openpart == FDMSDOSPART)
1747 return(msrawtocache(sc));
1748 else
1749 return(amrawtocache(sc));
1750 }
1751
1752 void
1753 amcachetoraw(sc)
1754 struct fd_softc *sc;
1755 {
1756 static u_long mfmnull[4];
1757 u_long *rp, *crp, *dp, hcksum, dcksum, info, zero;
1758 int sec, i;
1759
1760 rp = fdc_dmap;
1761
1762 /*
1763 * not yet one sector (- 1 long) gap.
1764 * for now use previous drivers values
1765 */
1766 for (i = 0; i < sc->type->gap; i++)
1767 *rp++ = 0xaaaaaaaa;
1768 /*
1769 * process sectors
1770 */
1771 dp = sc->cachep;
1772 zero = 0;
1773 info = 0xff000000 | (sc->cachetrk << 16) | sc->nsectors;
1774 for (sec = 0; sec < sc->nsectors; sec++, info += (1 << 8) - 1) {
1775 hcksum = dcksum = 0;
1776 /*
1777 * sector format
1778 * offset description
1779 *-----------------------------------
1780 * 0 null
1781 * 1 sync
1782 * oddbits evenbits
1783 *----------------------
1784 * 2 3 [0xff]b [trk]b [sec]b [togap]b
1785 * 4-7 8-11 null
1786 * 12 13 header cksum [2-11]
1787 * 14 15 data cksum [16-271]
1788 * 16-143 144-271 data
1789 */
1790 *rp = 0xaaaaaaaa;
1791 if (*(rp - 1) & 0x1)
1792 *rp &= 0x7fffffff; /* clock bit correction */
1793 rp++;
1794 *rp++ = (FDMFMSYNC << 16) | FDMFMSYNC;
1795 rp = mfmblkencode(&info, rp, &hcksum, 1);
1796 rp = mfmblkencode(mfmnull, rp, &hcksum, 4);
1797 rp = mfmblkencode(&hcksum, rp, NULL, 1);
1798
1799 crp = rp;
1800 rp = mfmblkencode(dp, rp + 2, &dcksum, FDSECLWORDS);
1801 dp += FDSECLWORDS;
1802 crp = mfmblkencode(&dcksum, crp, NULL, 1);
1803 if (*(crp - 1) & 0x1)
1804 *crp &= 0x7fffffff; /* clock bit correction */
1805 else if ((*crp & 0x40000000) == 0)
1806 *crp |= 0x80000000;
1807 }
1808 *rp = 0xaaa80000;
1809 if (*(rp - 1) & 0x1)
1810 *rp &= 0x7fffffff;
1811 }
1812
1813 u_long *
1814 fdfindsync(rp, ep)
1815 u_long *rp, *ep;
1816 {
1817 u_short *sp;
1818
1819 sp = (u_short *)rp;
1820 while ((u_long *)sp < ep && *sp != FDMFMSYNC)
1821 sp++;
1822 while ((u_long *)sp < ep && *sp == FDMFMSYNC)
1823 sp++;
1824 if ((u_long *)sp < ep)
1825 return((u_long *)sp);
1826 return(NULL);
1827 }
1828
1829 int
1830 amrawtocache(sc)
1831 struct fd_softc *sc;
1832 {
1833 u_long mfmnull[4];
1834 u_long *dp, *rp, *erp, *crp, *srp, hcksum, dcksum, info, cktmp;
1835 int cnt, doagain;
1836
1837 doagain = 1;
1838 srp = rp = fdc_dmap;
1839 erp = (u_long *)((u_short *)rp + sc->type->nreadw);
1840 cnt = 0;
1841 again:
1842 if (doagain == 0 || (rp = srp = fdfindsync(srp, erp)) == NULL) {
1843 #ifdef DIAGNOSTIC
1844 printf("%s: corrupted track (%d) data.\n",
1845 sc->sc_dv.dv_xname, sc->cachetrk);
1846 #endif
1847 return(-1);
1848 }
1849
1850 /*
1851 * process sectors
1852 */
1853 for (; cnt < sc->nsectors; cnt++) {
1854 hcksum = dcksum = 0;
1855 rp = mfmblkdecode(rp, &info, &hcksum, 1);
1856 rp = mfmblkdecode(rp, mfmnull, &hcksum, 4);
1857 rp = mfmblkdecode(rp, &cktmp, NULL, 1);
1858 if (cktmp != hcksum) {
1859 #ifdef FDDEBUG
1860 printf(" info 0x%x hchksum 0x%x trkhcksum 0x%x\n",
1861 info, hcksum, cktmp);
1862 #endif
1863 goto again;
1864 }
1865 if (((info >> 16) & 0xff) != sc->cachetrk) {
1866 #ifdef DEBUG
1867 printf("%s: incorrect track found: 0x%lx %d\n",
1868 sc->sc_dv.dv_xname, info, sc->cachetrk);
1869 #endif
1870 goto again;
1871 }
1872 #ifdef FDDEBUG
1873 printf(" info 0x%x\n", info);
1874 #endif
1875
1876 rp = mfmblkdecode(rp, &cktmp, NULL, 1);
1877 dp = sc->cachep;
1878 dp += FDSECLWORDS * ((info >> 8) & 0xff);
1879 crp = mfmblkdecode(rp, dp, &dcksum, FDSECLWORDS);
1880 if (cktmp != dcksum) {
1881 #ifdef FDDEBUG
1882 printf(" info 0x%x dchksum 0x%x trkdcksum 0x%x\n",
1883 info, dcksum, cktmp);
1884 #endif
1885 goto again;
1886 }
1887
1888 /*
1889 * if we are at gap then we can no longer be sure
1890 * of correct sync marks
1891 */
1892 if ((info && 0xff) == 1)
1893 doagain = 1;
1894 else
1895 doagain = 0;
1896 srp = rp = fdfindsync(crp, erp);
1897 }
1898 return(0);
1899 }
1900
1901 void
1902 mscachetoraw(sc)
1903 struct fd_softc *sc;
1904 {
1905 u_short *rp, *erp, crc;
1906 u_char *cp, tb[5];
1907 int sec, i;
1908
1909 rp = (u_short *)fdc_dmap;
1910 erp = rp + sc->type->nwritew;
1911 cp = sc->cachep;
1912
1913 /*
1914 * initial track filler (828 * GAP1)
1915 */
1916 for (i = 0; i < sc->type->gap; i++) {
1917 *rp++ = FDMFMGAP1;
1918 *rp++ = FDMFMGAP1;
1919 }
1920
1921 for (sec = 0; sec < sc->nsectors; sec++) {
1922
1923 /*
1924 * leading sector gap
1925 * (12 * GAP2) + (3 * SYNC)
1926 */
1927 for (i = 0; i < 12; i++)
1928 *rp++ = FDMFMGAP2;
1929 *rp++ = FDMFMSYNC;
1930 *rp++ = FDMFMSYNC;
1931 *rp++ = FDMFMSYNC;
1932
1933 /*
1934 * sector information
1935 * (ID) + track + side + sector + sector size + CRC16
1936 */
1937 *rp++ = FDMFMID;
1938 tb[0] = sc->cachetrk / FDNHEADS;
1939 tb[1] = sc->cachetrk % FDNHEADS;
1940 tb[2] = sec + 1;
1941 i = sc->bytespersec;
1942 tb[3] = i < 256 ? 0 : (i < 512 ? 1 : (i < 1024 ? 2 : 3));
1943 rp = msblkencode(rp, tb, 4, &crc);
1944 tb[0] = crc >> 8;
1945 tb[1] = crc & 0xff;
1946 tb[2] = 0x4e; /* GAP1 decoded */
1947 rp = msblkencode(rp, tb, 3, 0);
1948
1949 /*
1950 * sector info/data gap
1951 * (22 * GAP1) + (12 * GAP2) + (3 * SYNC)
1952 */
1953 for (i = 0; i < 21; i++)
1954 *rp++ = FDMFMGAP1;
1955 for (i = 0; i < 12; i++)
1956 *rp++ = FDMFMGAP2;
1957 *rp++ = FDMFMSYNC;
1958 *rp++ = FDMFMSYNC;
1959 *rp++ = FDMFMSYNC;
1960
1961 /*
1962 * sector data
1963 * (DATA) + ...data... + CRC16
1964 */
1965 *rp++ = FDMFMDATA;
1966 rp = msblkencode(rp, cp, sc->bytespersec, &crc);
1967 cp += sc->bytespersec;
1968 tb[0] = crc >> 8;
1969 tb[1] = crc & 0xff;
1970 tb[2] = 0x4e; /* GAP3 decoded */
1971 rp = msblkencode(rp, tb, 3, 0);
1972
1973 /*
1974 * trailing sector gap
1975 * (80 * GAP3)
1976 */
1977 for (i = 0; i < 79; i++)
1978 *rp++ = FDMFMGAP3;
1979 }
1980
1981 /*
1982 * fill rest of track with GAP3
1983 */
1984 while (rp != erp)
1985 *rp++ = FDMFMGAP3;
1986
1987 }
1988
1989 int
1990 msrawtocache(sc)
1991 struct fd_softc *sc;
1992 {
1993 u_short *rp, *srp, *erp;
1994 u_char tb[5], *cp;
1995 int ct, sec, retry;
1996
1997 srp = rp = (u_short *)fdc_dmap;
1998 erp = rp + sc->type->nreadw;
1999 cp = sc->cachep;
2000
2001 for (ct = 0; ct < sc->nsectors; ct++) {
2002 retry = 1;
2003 do {
2004 /*
2005 * skip leading gap to sync
2006 */
2007 if ((rp = (u_short *)fdfindsync((u_long *)rp, (u_long *)erp)) == NULL) {
2008 #ifdef DIAGNOSTIC
2009 printf("%s: corrupted track (%d) data.\n",
2010 sc->sc_dv.dv_xname, sc->cachetrk);
2011 #endif
2012 return(-1);
2013 }
2014
2015 /*
2016 * Grab sector info
2017 */
2018 if (*rp++ != FDMFMID)
2019 continue;
2020 rp = msblkdecode(rp, tb, 4);
2021 #ifdef FDDEBUG
2022 printf("sector id: sector %d, track %d, side %d,"
2023 "bps %d\n", tb[2], tb[0], tb[1], 128 << tb[3]);
2024 #endif
2025 if ((tb[0] * FDNHEADS + tb[1]) != sc->cachetrk ||
2026 tb[2] > sc->nsectors)
2027 continue;
2028
2029 sec = tb[2];
2030 sc->bytespersec = 128 << tb[3];
2031 rp += 2; /* skip CRC-16 */
2032
2033 /*
2034 * skip gap and read in data
2035 */
2036 if ((rp = (u_short *)fdfindsync((u_long *)rp, (u_long *)erp)) == NULL)
2037 return(-1);
2038 if (*rp++ != FDMFMDATA)
2039 continue;
2040 rp = msblkdecode(rp, cp + ((sec-1) * sc->bytespersec),
2041 sc->bytespersec);
2042 rp += 2; /* skip CRC-16 */
2043
2044 retry = 0;
2045 } while (retry);
2046 }
2047 return(0);
2048 }
2049
2050 /*
2051 * encode len longwords of `dp' data in amiga mfm block format (`rp')
2052 * this format specified that the odd bits are at current pos and even
2053 * bits at len + current pos
2054 */
2055 u_long *
2056 mfmblkencode(dp, rp, cp, len)
2057 u_long *dp, *rp, *cp;
2058 int len;
2059 {
2060 u_long *sdp, *edp, d, dtmp, correct;
2061
2062 sdp = dp;
2063 edp = dp + len;
2064
2065 if (*(rp - 1) & 0x1)
2066 correct = 1;
2067 else
2068 correct = 0;
2069 /*
2070 * do odd bits
2071 */
2072 while (dp < edp) {
2073 d = (*dp >> 1) & 0x55555555; /* remove clock bits */
2074 dtmp = d ^ 0x55555555;
2075 d |= ((dtmp >> 1) | 0x80000000) & (dtmp << 1);
2076 /*
2077 * correct upper clock bit if needed
2078 */
2079 if (correct)
2080 d &= 0x7fffffff;
2081 if (d & 0x1)
2082 correct = 1;
2083 else
2084 correct = 0;
2085 /*
2086 * do checksums and store in raw buffer
2087 */
2088 if (cp)
2089 *cp ^= d;
2090 *rp++ = d;
2091 dp++;
2092 }
2093 /*
2094 * do even bits
2095 */
2096 dp = sdp;
2097 while (dp < edp) {
2098 d = *dp & 0x55555555; /* remove clock bits */
2099 dtmp = d ^ 0x55555555;
2100 d |= ((dtmp >> 1) | 0x80000000) & (dtmp << 1);
2101 /*
2102 * correct upper clock bit if needed
2103 */
2104 if (correct)
2105 d &= 0x7fffffff;
2106 if (d & 0x1)
2107 correct = 1;
2108 else
2109 correct = 0;
2110 /*
2111 * do checksums and store in raw buffer
2112 */
2113 if (cp)
2114 *cp ^= d;
2115 *rp++ = d;
2116 dp++;
2117 }
2118 if (cp)
2119 *cp &= 0x55555555;
2120 return(rp);
2121 }
2122
2123 /*
2124 * decode len longwords of `dp' data in amiga mfm block format (`rp')
2125 * this format specified that the odd bits are at current pos and even
2126 * bits at len + current pos
2127 */
2128 u_long *
2129 mfmblkdecode(rp, dp, cp, len)
2130 u_long *rp, *dp, *cp;
2131 int len;
2132 {
2133 u_long o, e;
2134 int cnt;
2135
2136 cnt = len;
2137 while (cnt--) {
2138 o = *rp;
2139 e = *(rp + len);
2140 if (cp) {
2141 *cp ^= o;
2142 *cp ^= e;
2143 }
2144 o &= 0x55555555;
2145 e &= 0x55555555;
2146 *dp++ = (o << 1) | e;
2147 rp++;
2148 }
2149 if (cp)
2150 *cp &= 0x55555555;
2151 return(rp + len);
2152 }
2153
2154 /*
2155 * decode len words in standard MFM format to len bytes
2156 * of data.
2157 */
2158 u_short *
2159 msblkdecode(rp, cp, len)
2160 u_short *rp;
2161 u_char *cp;
2162 int len;
2163 {
2164 while (len--) {
2165 *cp++ = msdecode[*rp & 0x7f] |
2166 (msdecode[(*rp >> 8) & 0x7f] << 4);
2167 rp++;
2168 }
2169
2170 return(rp);
2171 }
2172
2173 /*
2174 * encode len bytes of data into len words in standard MFM format.
2175 * If a pointer is supplied for crc, calculate the CRC-16 of the data
2176 * as well.
2177 */
2178 u_short *
2179 msblkencode(rp, cp, len, crc)
2180 u_short *rp;
2181 u_char *cp;
2182 int len;
2183 u_short *crc;
2184 {
2185 u_short td;
2186 u_short mycrc;
2187
2188 /* preload crc for header (4 bytes)
2189 * or data (anything else)
2190 */
2191 mycrc = (len == 4) ? 0xb230 : 0xe295;
2192
2193 while (len--) {
2194 td = (msencode[*cp >> 4] << 8) | msencode[*cp & 0x0f];
2195
2196 /* Check for zeros in top bit of encode and bottom
2197 * bit of previous encode. if so, slap a one in betweem
2198 * them.
2199 */
2200 if ((td & 0x140) == 0)
2201 td |= 0x80;
2202 if ((td & 0x4000) == 0 && (rp[-1] & 1) == 0)
2203 td |= 0x8000;
2204
2205 *rp++ = td;
2206
2207 /*
2208 * calc crc if requested
2209 */
2210 if (crc)
2211 mycrc = (mycrc << 8) ^ mscrctab[*cp ^ (mycrc >> 8)];
2212
2213 cp++;
2214 }
2215
2216 if (crc)
2217 *crc = mycrc;
2218
2219 return(rp);
2220 }
2221
2222 int
2223 fddump(dev, blkno, va, size)
2224 dev_t dev;
2225 daddr_t blkno;
2226 caddr_t va;
2227 size_t size;
2228 {
2229 return (EINVAL);
2230 }
2231