hdc9224.c revision 1.6 1 /* $NetBSD: hdc9224.c,v 1.6 1997/03/15 16:32:22 ragge Exp $ */
2 /*
3 * Copyright (c) 1996 Ludd, University of Lule}, Sweden.
4 * All rights reserved.
5 *
6 * This code is derived from software contributed to Ludd by Bertram Barth.
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 at Ludd, University of
19 * Lule}, Sweden and its contributors.
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
35 /*
36 * with much help from (in alphabetical order):
37 * Jeremy
38 * Roger Ivie
39 * Rick Macklem
40 * Mike Young
41 */
42
43 /* #define DEBUG /* */
44 /* #define TRACE /* */
45 static int haveLock = 0;
46 static int keepLock = 0;
47
48 #define F_READ 11
49 #define F_WRITE 12
50
51 #define trace(x)
52 #define debug(x)
53
54 #include "hdc.h"
55 #if NHDC > 0
56
57 #include <sys/param.h>
58 #include <sys/systm.h>
59 #include <sys/kernel.h>
60 #include <sys/conf.h>
61 #include <sys/file.h>
62 #include <sys/stat.h>
63 #include <sys/ioctl.h>
64 #include <sys/buf.h>
65 #include <sys/proc.h>
66 #include <sys/user.h>
67 #include <sys/map.h>
68 #include <sys/device.h>
69 #include <sys/dkstat.h>
70 #include <sys/disklabel.h>
71 #include <sys/disk.h>
72 #include <sys/syslog.h>
73 #include <sys/reboot.h>
74
75 #include <machine/pte.h>
76 #include <machine/sid.h>
77 #include <machine/cpu.h>
78 #include <machine/uvax.h>
79 #include <machine/ka410.h>
80 #include <machine/vsbus.h>
81 #include <machine/rpb.h>
82
83 #include <vax/vsa/hdc9224.h>
84
85
86 /*
87 * some definitions
88 */
89 #define CTLRNAME "hdc"
90 #define UNITNAME "rd"
91 #define HDC_PRI LOG_INFO
92
93 /* Bits in minor device */
94 #define HDCUNIT(dev) DISKUNIT(dev)
95 #define HDCPART(dev) DISKPART(dev)
96 #define HDCCTLR(dev) 0
97 #define HDCLABELDEV(dev) (MAKEDISKDEV(major(dev),HDCUNIT(dev),RAW_PART))
98
99 #define MAX_WAIT (1000*1000) /* # of loop-instructions in seconds */
100
101
102 /*
103 * on-disk geometry block
104 */
105 #define _aP __attribute__ ((packed)) /* force byte-alignment */
106 struct rdgeom {
107 char mbz[10]; /* 10 bytes of zero */
108 long xbn_count _aP; /* number of XBNs */
109 long dbn_count _aP; /* number of DBNs */
110 long lbn_count _aP; /* number of LBNs (Logical-Block-Numbers) */
111 long rbn_count _aP; /* number of RBNs (Replacement-Block-Numbers) */
112 short nspt; /* number of sectors per track */
113 short ntracks; /* number of tracks */
114 short ncylinders; /* number of cylinders */
115 short precomp; /* first cylinder for write precompensation */
116 short reduced; /* first cylinder for reduced write current */
117 short seek_rate; /* seek rate or zero for buffered seeks */
118 short crc_eec; /* 0 if CRC is being used or 1 if ECC is being used */
119 short rct; /* "replacement control table" (RCT) */
120 short rct_ncopies; /* number of copies of the RCT */
121 long media_id _aP; /* media identifier */
122 short interleave; /* sector-to-sector interleave */
123 short headskew; /* head-to-head skew */
124 short cylskew; /* cylinder-to-cylinder skew */
125 short gap0_size; /* size of GAP 0 in the MFM format */
126 short gap1_size; /* size of GAP 1 in the MFM format */
127 short gap2_size; /* size of GAP 2 in the MFM format */
128 short gap3_size; /* size of GAP 3 in the MFM format */
129 short sync_value; /* sync value used to start a track when formatting */
130 char reserved[32]; /* reserved for use by the RQDX1/2/3 formatter */
131 short serial_number; /* serial number */
132 #if 0 /* we don't need these 412 useless bytes ... */
133 char fill[412-2]; /* Filler bytes to the end of the block */
134 short checksum; /* checksum over the XBN */
135 #endif
136 };
137
138 /*
139 * Software status
140 */
141 struct rdsoftc {
142 struct device sc_dev; /* must be here! (pseudo-OOP:) */
143 struct disk sc_dk; /* disklabel etc. */
144 struct rdgeom sc_xbn; /* on-disk geometry information */
145 struct rdparams {
146 u_short cylinders; /* number of cylinders */
147 u_char heads; /* number of heads (tracks) */
148 u_char sectors; /* number of sectors/track */
149 u_long diskblks; /* number of sectors/disk */
150 u_long disklbns; /* number of available sectors */
151 u_long blksize; /* number of bytes/sector */
152 u_long diskbytes; /* number of bytes/disk */
153 char diskname[8];
154 } sc_param;
155 int sc_drive; /* physical unit number */
156 int sc_flags;
157 int sc_state;
158 int sc_mode;
159 };
160
161 struct hdcsoftc {
162 struct device sc_dev; /* must be here (pseudo-OOP:) */
163 struct hdc9224_DKCreg *sc_dkc; /* I/O address of the controller */
164 struct hdc9224_UDCreg sc_creg; /* (command) registers to be written */
165 struct hdc9224_UDCreg sc_sreg; /* (status) registers being read */
166 struct confargs *sc_cfargs; /* remember args being probed with */
167 char *sc_dmabase; /* */
168 long sc_dmasize; /* */
169 long sc_ioaddr; /* unmapped I/O address */
170 long sc_ivec; /* interrupt vector address */
171 short sc_ibit; /* bit-value in interrupt register */
172 short sc_status; /* copy of status register */
173 short sc_state;
174 short sc_flags;
175 short sc_errors;
176 };
177
178 /*
179 * Device definition for (new) autoconfiguration.
180 */
181 int hdcmatch __P((struct device *parent, void *cfdata, void *aux));
182 void hdcattach __P((struct device *parent, struct device *self, void *aux));
183 int hdcprint __P((void *aux, const char *name));
184
185 struct cfdriver hdc_cd = {
186 NULL, "hdc", DV_DULL
187 };
188 struct cfattach hdc_ca = {
189 sizeof(struct hdcsoftc), hdcmatch, hdcattach
190 };
191
192 int rdmatch __P((struct device *parent, void *cfdata, void *aux));
193 void rdattach __P((struct device *parent, struct device *self, void *aux));
194 int rdprint __P((void *aux, const char *name));
195 void rdstrategy __P((struct buf *bp));
196
197 struct cfdriver rd_cd = {
198 NULL, "rd", DV_DISK
199 };
200 struct cfattach rd_ca = {
201 sizeof(struct rdsoftc), rdmatch, rdattach
202 };
203
204 struct dkdriver rddkdriver = { rdstrategy };
205
206 /*
207 * prototypes for (almost) all the internal routines
208 */
209 int hdc_reset __P((struct hdcsoftc *sc));
210 int hdc_select __P((struct hdcsoftc *sc, int drive));
211 int hdc_command __P((struct hdcsoftc *sc, int cmd));
212
213 int hdc_getdata __P((struct hdcsoftc *hdc, struct rdsoftc *rd, int drive));
214 int hdc_getlabel __P((struct hdcsoftc *hdc, struct rdsoftc *rd, int drive));
215
216 void rdgetlabel __P((struct rdsoftc *sc));
217
218 /*
219 * new-config's hdcmatch() is similiar to old-config's hdcprobe(),
220 * thus we probe for the existence of the controller and reset it.
221 * NB: we can't initialize the controller yet, since space for hdcsoftc
222 * is not yet allocated. Thus we do this in hdcattach()...
223 */
224 int
225 hdcmatch(parent, match, aux)
226 struct device *parent;
227 void *match, *aux;
228 {
229 struct cfdata *cf = match;
230 struct confargs *ca = aux;
231
232 trace(("hdcmatch(0x%x, %d, %s)\n", parent, cf->cf_unit, ca->ca_name));
233
234 if (strcmp(ca->ca_name, "hdc") &&
235 strcmp(ca->ca_name, "hdc9224") &&
236 strcmp(ca->ca_name, "HDC9224"))
237 return (0);
238
239 /*
240 * only(?) VS2000/KA410 has exactly one HDC9224 controller
241 */
242 if (vax_boardtype != VAX_BTYP_410) {
243 printf ("unexpected boardtype 0x%x in hdcmatch()\n",
244 vax_boardtype);
245 return (0);
246 }
247 if (cf->cf_unit != 0)
248 return (0);
249
250 return (1);
251 }
252
253 struct hdc_attach_args {
254 int ha_drive;
255 };
256
257 int
258 rdprint(aux, name)
259 void *aux;
260 const char *name;
261 {
262 struct hdc_attach_args *ha = aux;
263
264 trace(("rdprint(%d, %s)\n", ha->ha_drive, name));
265
266 if (!name)
267 printf (" drive %d", ha->ha_drive);
268 return (QUIET);
269 }
270
271 /*
272 * hdc_attach() probes for all possible devices
273 */
274 void
275 hdcattach(parent, self, aux)
276 struct device *parent, *self;
277 void *aux;
278 {
279 struct hdcsoftc *sc = (void*)self;
280 struct confargs *ca = aux;
281 struct hdc_attach_args ha;
282
283 trace(("hdcattach(0x%x, 0x%x, %s)\n", parent, self, ca->ca_name));
284
285 printf ("\n");
286 /*
287 * first reset/initialize the controller
288 */
289 sc->sc_cfargs = ca;
290
291 sc->sc_ioaddr = ca->ca_ioaddr;
292 sc->sc_dkc = (void*)uvax_phys2virt(sc->sc_ioaddr);
293 sc->sc_ibit = ca->ca_intbit;
294 sc->sc_ivec = ca->ca_intvec;
295 sc->sc_status = 0;
296 sc->sc_state = 0;
297 sc->sc_flags = 0;
298 sc->sc_errors = 0;
299
300 sc->sc_dkc = (void*)uvax_phys2virt(KA410_DKC_BASE);
301 sc->sc_dmabase = (void*)uvax_phys2virt(KA410_DMA_BASE);
302 sc->sc_dmasize = KA410_DMA_SIZE;
303
304 if (hdc_reset(sc) != 0) {
305 delay(500*1000); /* wait .5 seconds */
306 if (hdc_reset(sc) != 0)
307 printf ("problems with hdc_reset()...\n");
308 }
309
310 /*
311 * now probe for all possible disks
312 */
313 for (ha.ha_drive=0; ha.ha_drive<3; ha.ha_drive++)
314 (void)config_found(self, (void*)&ha, rdprint);
315
316 #ifdef notyet
317 /*
318 * now that probing is done, we can register and enable interrupts
319 */
320 vsbus_intr_register(XXX);
321 vsbus_intr_enable(XXX);
322 #endif
323 }
324
325 /*
326 * rdmatch() probes for the existence of a RD-type disk/floppy
327 */
328 int
329 rdmatch(parent, match, aux)
330 struct device *parent;
331 void *match, *aux;
332 {
333 struct hdcsoftc *hdc = (void*)parent;
334 struct cfdata *cf = match;
335 struct hdc_attach_args *ha = aux;
336 int drive = ha->ha_drive;
337 int res;
338
339 trace(("rdmatch(%d, %d)\n", cf->cf_unit, drive));
340
341 if (cf->cf_unit != ha->ha_drive)
342 return (0);
343
344 switch (drive) {
345 case 0:
346 case 1:
347 case 2:
348 res = hdc_select(hdc, drive);
349 break;
350 default:
351 printf ("rdmatch: invalid unit-number %d\n", drive);
352 return (0);
353 }
354
355 debug (("cstat: %x dstat: %x\n", hdc->sc_sreg.udc_cstat,
356 hdc->sc_sreg.udc_dstat));
357 if (drive == 1)
358 return (0); /* XXX */
359
360 return (1);
361 }
362
363 void
364 rdattach(parent, self, aux)
365 struct device *parent, *self;
366 void *aux;
367 {
368 struct hdcsoftc *hdc = (void*)parent;
369 struct rdsoftc *rd = (void*)self;
370 struct hdc_attach_args *ha = aux;
371 struct rdparams *rp = &rd->sc_param;
372
373 trace(("rdattach(%d)\n", ha->ha_drive));
374
375 rd->sc_drive = ha->ha_drive;
376 /*
377 * Initialize and attach the disk structure.
378 */
379 rd->sc_dk.dk_driver = &rddkdriver;
380 rd->sc_dk.dk_name = rd->sc_dev.dv_xname;
381 disk_attach(&rd->sc_dk);
382 /*
383 * if it's not a floppy then evaluate the on-disk geometry.
384 * if neccessary correct the label...
385 */
386 printf("\n%s: ", rd->sc_dev.dv_xname);
387 if (rd->sc_drive == 2) {
388 printf("floppy (RX33)\n");
389 }
390 else {
391 hdc_getdata(hdc, rd, rd->sc_drive);
392 printf("%s, %d MB, %d LBN, %d cyl, %d head, %d sect/track\n",
393 rp->diskname, rp->diskblks/2048, rp->disklbns,
394 rp->cylinders, rp->heads, rp->sectors);
395 }
396 /*
397 * Know where we booted from.
398 */
399 if ((B_TYPE(bootdev) == BDEV_RD) && (rd->sc_drive == B_UNIT(bootdev)))
400 booted_from = self;
401 }
402
403 /*
404 * Read/write routine for a buffer. For now we poll the controller,
405 * thus this routine waits for the transfer to complete.
406 */
407 void
408 rdstrategy(bp)
409 struct buf *bp;
410 {
411 struct rdsoftc *rd = rd_cd.cd_devs[HDCUNIT(bp->b_dev)];
412 struct hdcsoftc *hdc = (void *)rd->sc_dev.dv_parent;
413 struct partition *p;
414 int blkno, i, s;
415
416 trace (("rdstrategy(#%d/%d)\n", bp->b_blkno, bp->b_bcount));
417
418 /* XXX should make some checks... */
419
420 /*
421 * If it's a null transfer, return immediatly
422 */
423 if (bp->b_bcount == 0)
424 goto done;
425
426 /*
427 * what follows now should not be here but in rdstart...
428 */
429 /*------------------------------*/
430 blkno = bp->b_blkno / (rd->sc_dk.dk_label->d_secsize / DEV_BSIZE);
431 p = &rd->sc_dk.dk_label->d_partitions[HDCPART(bp->b_dev)];
432 blkno += p->p_offset;
433
434 /* nblks = howmany(bp->b_bcount, sd->sc_dk.dk_label->d_secsize); */
435
436 if (hdc_strategy(hdc, rd, HDCUNIT(bp->b_dev),
437 ((bp->b_flags & B_READ) ? F_READ : F_WRITE),
438 blkno, bp->b_bcount, bp->b_data) == 0)
439 goto done;
440 /*------------------------------*/
441 bad:
442 bp->b_flags |= B_ERROR;
443 done:
444 /*
445 * Correctly set the buf to indicate a completed xfer
446 */
447 bp->b_resid = 0; /* ??? bertram */
448 biodone(bp);
449 }
450
451 int
452 hdc_strategy(hdc, rd, unit, func, dblk, size, buf)
453 struct hdcsoftc *hdc;
454 struct rdsoftc *rd;
455 int unit;
456 int func;
457 int dblk;
458 int size;
459 char *buf;
460 {
461 struct hdc9224_UDCreg *p = &hdc->sc_creg;
462 struct disklabel *lp = rd->sc_dk.dk_label;
463 int sect, head, cyl;
464 int scount;
465 int cmd, res = 0;
466
467 trace (("hdc_strategy(%d, %d, %d, %d, 0x%x)\n",
468 unit, func, dblk, size, buf));
469
470 hdc_select(hdc, unit); /* select drive right now */
471
472 if (unit != 2 && dblk == -1) { /* read the on-disk geometry */
473
474 p->udc_dma7 = 0;
475 p->udc_dma15 = 0;
476 p->udc_dma23 = 0;
477
478 p->udc_dsect = 0;
479 p->udc_dhead = 0;
480 p->udc_dcyl = 0;
481
482 p->udc_scnt = size/512;
483 p->udc_rtcnt = 0xF0;
484 p->udc_mode = 0xC0;
485 p->udc_term = 0xB4;
486
487 vsbus_lockDMA(hdc->sc_cfargs); /* bertram XXX */
488 haveLock = 1;
489 keepLock = 1;
490
491 #ifdef PARANOID
492 bzero (hdc->sc_dmabase, size); /* clear disk buffer */
493 #endif
494 cmd = 0x5C | 0x03; /* bypass bad sectors */
495 cmd = 0x5C | 0x01; /* terminate if bad sector */
496
497 res = hdc_command (hdc, cmd);
498 /* hold the locking ! */
499 bcopy (hdc->sc_dmabase, buf, size); /* copy to buf */
500 /* now release the locking */
501
502 vsbus_unlockDMA(hdc->sc_cfargs);
503 haveLock = 0;
504 keepLock = 0;
505
506 return (res);
507 }
508
509 scount = size / 512;
510 while (scount) {
511 /*
512 * prepare drive/operation parameter
513 */
514 cyl = dblk / lp->d_secpercyl;
515 sect = dblk % lp->d_secpercyl;
516 head = sect / lp->d_nsectors;
517 sect = sect % lp->d_nsectors;
518 if (unit == 2)
519 sect++;
520 else
521 cyl++; /* first cylinder is reserved */
522
523 size = 512 * min(scount, lp->d_nsectors - sect);
524
525 debug (("hdc_strategy: block #%d ==> s/t/c=%d/%d/%d (%d/%d)\n",
526 dblk, sect, head, cyl, scount, size));
527
528 /*
529 * now initialize the register values ...
530 */
531 p->udc_dma7 = 0;
532 p->udc_dma15 = 0;
533 p->udc_dma23 = 0;
534
535 p->udc_dsect = sect;
536 head |= (cyl >> 4) & 0x70;
537 p->udc_dhead = head;
538 p->udc_dcyl = cyl;
539
540 p->udc_scnt = size/512;
541
542 if (unit == 2) { /* floppy */
543 p->udc_rtcnt = 0xF2;
544 p->udc_mode = 0x81; /* RX33 with RX50 media */
545 p->udc_mode = 0x82; /* RX33 with RX33 media */
546 p->udc_term = 0xB4;
547 } else { /* disk */
548 p->udc_rtcnt = 0xF0;
549 p->udc_mode = 0xC0;
550 p->udc_term = 0xB4;
551 }
552
553 vsbus_lockDMA(hdc->sc_cfargs);
554 haveLock = 1;
555 keepLock = 1;
556
557 if (func == F_WRITE) {
558 bcopy (buf, hdc->sc_dmabase, size); /* copy from buf */
559 cmd = 0xA0 | (unit==2 ? 1 : 0);
560 res = hdc_command (hdc, cmd);
561 }
562 else {
563 #ifdef PARANOID
564 bzero (hdc->sc_dmabase, size); /* clear disk buffer */
565 #endif
566 cmd = 0x5C | 0x03; /* bypass bad sectors */
567 cmd = 0x5C | 0x01; /* terminate if bad sector */
568 res = hdc_command (hdc, cmd);
569 bcopy (hdc->sc_dmabase, buf, size); /* copy to buf */
570 }
571
572 vsbus_unlockDMA(hdc->sc_cfargs);
573 haveLock = 0;
574 keepLock = 0;
575
576 scount -= size/512;
577 dblk += size/512;
578 buf += size;
579 }
580
581 if (unit != 2) /* deselect drive, if not floppy */
582 hdc_command (hdc, DKC_CMD_DRDESELECT);
583
584 return 0;
585 }
586
587 char hdc_iobuf[17*512]; /* we won't need more */
588
589 #ifdef DEBUG
590 /*
591 * display the contents of the on-disk geometry structure
592 */
593 int
594 hdc_printgeom(p)
595 struct rdgeom *p;
596 {
597 char dname[8];
598 hdc_mid2str(p->media_id, dname);
599
600 printf ("**DiskData** XBNs: %d, DBNs: %d, LBNs: %d, RBNs: %d\n",
601 p->xbn_count, p->dbn_count, p->lbn_count, p->rbn_count);
602 printf ("sec/track: %d, tracks: %d, cyl: %d, precomp/reduced: %d/%d\n",
603 p->nspt, p->ntracks, p->ncylinders, p->precomp, p->reduced);
604 printf ("seek-rate: %d, crc/eec: %s, RCT: %d, RCT-copies: %d\n",
605 p->seek_rate, p->crc_eec?"EEC":"CRC", p->rct, p->rct_ncopies);
606 printf ("media-ID: %s, interleave: %d, headskew: %d, cylskew: %d\n",
607 dname, p->interleave, p->headskew, p->cylskew);
608 printf ("gap0: %d, gap1: %d, gap2: %d, gap3: %d, sync-value: %d\n",
609 p->gap0_size, p->gap1_size, p->gap2_size, p->gap3_size,
610 p->sync_value);
611 }
612 #endif
613
614 /*
615 * Convert media_id to string/name (encoding is documented in mscp.h)
616 */
617 int
618 hdc_mid2str(media_id, name)
619 long media_id;
620 char *name;
621 {
622 struct { /* For RD32 this struct holds: */
623 u_long mt:7; /* number in name: 0x20 == 32 */
624 u_long a2:5; /* ' ' encoded as 0x0 */
625 u_long a1:5; /* 'D' encoded with base '@' */
626 u_long a0:5; /* 'R' encoded with base '@' */
627 u_long d1:5; /* 'U' encoded with base '@' */
628 u_long d0:5; /* 'D' encoded with base '@' */
629 } *p = (void*)&media_id;
630
631 #define MIDCHR(x) (x ? x + '@' : ' ')
632
633 sprintf (name, "%c%c%d", MIDCHR(p->a0), MIDCHR(p->a1), p->mt);
634 }
635
636 int
637 hdc_getdata(hdc, rd, unit)
638 struct hdcsoftc *hdc;
639 struct rdsoftc *rd;
640 int unit;
641 {
642 struct disklabel *lp = rd->sc_dk.dk_label;
643 struct rdparams *rp = &rd->sc_param;
644 int res;
645
646 trace (("hdc_getdata(%d)\n", unit));
647
648 bzero(rd->sc_dk.dk_label, sizeof(struct disklabel));
649 bzero(rd->sc_dk.dk_cpulabel, sizeof(struct cpu_disklabel));
650
651 if (unit == 2) {
652 lp->d_secsize = DEV_BSIZE;
653 lp->d_ntracks = 2;
654 lp->d_nsectors = 15;
655 lp->d_ncylinders = 80;
656 lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
657
658 return (0);
659 }
660
661 res = hdc_strategy(hdc, rd, unit, F_READ, -1, 4096, hdc_iobuf);
662 bcopy (hdc_iobuf, &rd->sc_xbn, sizeof(struct rdgeom));
663 #ifdef DEBUG
664 hdc_printgeom(&rd->sc_xbn);
665 #endif
666 lp->d_secsize = DEV_BSIZE;
667 lp->d_ntracks = rd->sc_xbn.ntracks;
668 lp->d_nsectors = rd->sc_xbn.nspt;
669 lp->d_ncylinders = rd->sc_xbn.ncylinders;
670 lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
671
672 rp->cylinders = rd->sc_xbn.ncylinders;
673 rp->heads = rd->sc_xbn.ntracks;
674 rp->sectors = rd->sc_xbn.nspt;
675 rp->diskblks = rp->cylinders * rp->heads * rp->sectors;
676 rp->disklbns = rd->sc_xbn.lbn_count;
677 rp->blksize = DEV_BSIZE;
678 rp->diskbytes = rp->disklbns * rp->blksize;
679 hdc_mid2str(rd->sc_xbn.media_id, rp->diskname);
680
681 return (0);
682 }
683
684 int
685 hdc_getlabel(hdc, rd, unit)
686 struct hdcsoftc *hdc;
687 struct rdsoftc *rd;
688 int unit;
689 {
690 struct disklabel *lp = rd->sc_dk.dk_label;
691 struct disklabel *xp = (void*)(hdc_iobuf + 64);
692 int res;
693
694 trace (("hdc_getlabel(%d)\n", unit));
695
696 #define LBL_CHECK(x) if (xp->x != lp->x) { \
697 printf ("%d-->%d\n", xp->x, lp->x); \
698 xp->x = lp->x; \
699 }
700 res = hdc_strategy(hdc, rd, unit, F_READ, 0, DEV_BSIZE, hdc_iobuf);
701 LBL_CHECK(d_secsize);
702 LBL_CHECK(d_ntracks);
703 LBL_CHECK(d_nsectors);
704 LBL_CHECK(d_ncylinders);
705 LBL_CHECK(d_secpercyl);
706 bcopy(xp, lp, sizeof(struct disklabel));
707
708 return (0);
709 }
710
711 /*
712 * Return the size of a partition, if known, or -1 if not.
713 */
714 hdcsize(dev)
715 dev_t dev;
716 {
717 int unit = HDCUNIT(dev);
718 int part = HDCPART(dev);
719 struct rdsoftc *rd = rd_cd.cd_devs[unit];
720 int size;
721
722 trace (("hdcsize(%x == %d/%d)\n", dev, unit, part));
723
724 if (hdcopen(dev, 0, S_IFBLK) != 0)
725 return (-1);
726 #if 0
727 if (rd->sc_dk.dk_label->d_partitions[part].p_fstype != FS_SWAP)
728 size = -1;
729 else
730 #endif
731 size = rd->sc_dk.dk_label->d_partitions[part].p_size;
732 if (hdcclose(dev, 0, S_IFBLK) != 0)
733 return (-1);
734 debug (("hdcsize: size=%d\n", size));
735 return (size);
736 }
737
738 /*
739 *
740 */
741 int
742 hdcopen (dev, flag, fmt)
743 dev_t dev;
744 int flag;
745 int fmt;
746 {
747 int unit = HDCUNIT(dev);
748 int part = HDCPART(dev);
749 struct hdcsoftc *hdc;
750 struct rdsoftc *rd;
751 int res, error;
752
753 trace (("hdcopen(0x%x = %d/%d)\n", dev, unit, part));
754
755 if (unit >= rd_cd.cd_ndevs) {
756 printf ("hdcopen: invalid unit %d\n", unit);
757 return ENXIO;
758 }
759 rd = rd_cd.cd_devs[unit];
760 if (!rd) {
761 printf("hdcopen: null-pointer in rdsoftc.\n");
762 return (ENXIO);
763 }
764 hdc = (void *)rd->sc_dev.dv_parent;
765
766 /* XXX here's much more to do! XXX */
767
768 hdc_getdata (hdc, rd, unit);
769 hdc_getlabel (hdc, rd, unit);
770
771 return (0);
772 }
773
774 /*
775 *
776 */
777 int
778 hdcclose (dev, flag)
779 dev_t dev;
780 int flag;
781 {
782 trace (("hdcclose()\n"));
783 return (0);
784 }
785
786 /*
787 *
788 */
789 void
790 hdcstrategy(bp)
791 register struct buf *bp;
792 {
793 trace (("hdcstrategy()\n"));
794 rdstrategy(bp);
795 debug (("hdcstrategy done.\n"));
796 }
797
798 /*
799 *
800 */
801 int
802 hdcioctl(dev, cmd, data, flag, p)
803 dev_t dev;
804 int cmd;
805 caddr_t data; /* aka: addr */
806 int flag;
807 struct proc *p;
808 {
809 struct rdsoftc *rd = rd_cd.cd_devs[HDCUNIT(dev)];
810 struct hdcsoftc *hdc = (void *)rd->sc_dev.dv_parent;
811 int error;
812
813 trace (("hdcioctl(%x, %x)\n", dev, cmd));
814
815 /*
816 * If the device is not valid.. abandon ship
817 */
818 /* XXX */
819
820 switch (cmd) {
821 case DIOCGDINFO:
822 *(struct disklabel *)data = *(rd->sc_dk.dk_label);
823 return (0);
824
825 case DIOCGPART:
826 ((struct partinfo *)data)->disklab = rd->sc_dk.dk_label;
827 ((struct partinfo *)data)->part =
828 &rd->sc_dk.dk_label->d_partitions[HDCPART(dev)];
829 return (0);
830
831 case DIOCWDINFO:
832 case DIOCSDINFO:
833 /* XXX
834 if ((flag & FWRITE) == 0)
835 return EBADF;
836
837 if ((error = sdlock(sd)) != 0)
838 return error;
839 sd->flags |= SDF_LABELLING;
840 */
841 error = setdisklabel(rd->sc_dk.dk_label,
842 (struct disklabel *)data, 0, rd->sc_dk.dk_cpulabel);
843 if (error == 0) {
844 if (cmd == DIOCWDINFO)
845 error = writedisklabel(HDCLABELDEV(dev),
846 rdstrategy, rd->sc_dk.dk_label,
847 rd->sc_dk.dk_cpulabel);
848 }
849 /* XXX
850 sd->flags &= ~SDF_LABELLING;
851 sdunlock(sd);
852 */
853 return (error);
854
855 case DIOCWLABEL:
856 if ((flag & FWRITE) == 0)
857 return (EBADF);
858 /* XXX
859 if (*(int *)data)
860 sd->flags |= SDF_WLABEL;
861 else
862 sd->flags &= ~SDF_WLABEL;
863 */
864 return (0);
865
866 default:
867 if (HDCPART(dev) != RAW_PART)
868 return ENOTTY;
869 printf ("IOCTL %x not implemented.\n", cmd);
870 return (-1);
871 }
872 }
873
874 /*
875 *
876 */
877 int
878 hdcintr()
879 {
880 trace (("hdcintr()\n"));
881 }
882
883 /*
884 *
885 */
886 int
887 hdcread (dev, uio)
888 dev_t dev;
889 struct uio *uio;
890 {
891 trace (("hdcread()\n"));
892 return (physio (hdcstrategy, NULL, dev, B_READ, minphys, uio));
893 }
894
895 /*
896 *
897 */
898 int
899 hdcwrite (dev, uio)
900 dev_t dev;
901 struct uio *uio;
902 {
903 trace (("hdcwrite()\n"));
904 return (physio (hdcstrategy, NULL, dev, B_WRITE, minphys, uio));
905 }
906
907 /*
908 *
909 */
910 int
911 hdcdump(dev)
912 dev_t dev;
913 {
914 trace (("hdcdump (%x)\n", dev));
915 }
916
917 /*
918 * we have to wait 0.7 usec between two accesses to any of the
919 * dkc-registers, on a VS2000 with 1 MIPS, this is roughly one
920 * instruction. Thus the loop-overhead will be enough...
921 */
922 void
923 hdc_readregs(sc)
924 struct hdcsoftc *sc;
925 {
926 int i;
927 char *p;
928
929 trace(("hdc_readregs()\n"));
930
931 sc->sc_dkc->dkc_cmd = 0x40; /* set internal counter to zero */
932 p = (void*)&sc->sc_sreg;
933 for (i=0; i<10; i++)
934 *p++ = sc->sc_dkc->dkc_reg; /* dkc_reg auto-increments */
935 }
936
937 void
938 hdc_writeregs(sc)
939 struct hdcsoftc *sc;
940 {
941 int i;
942 char *p;
943
944 trace(("hdc_writeregs()\n"));
945
946 sc->sc_dkc->dkc_cmd = 0x40; /* set internal counter to zero */
947 p = (void*)&sc->sc_creg;
948 for (i=0; i<10; i++)
949 sc->sc_dkc->dkc_reg = *p++; /* dkc_reg auto-increments */
950 }
951
952 /*
953 * hdc_command() issues a command and polls the intreq-register
954 * to find when command has completed
955 */
956 int
957 hdc_command(sc, cmd)
958 struct hdcsoftc *sc;
959 int cmd;
960 {
961 volatile u_char *intreq = (void*)uvax_phys2virt(KA410_INTREQ);
962 volatile u_char *intclr = (void*)uvax_phys2virt(KA410_INTCLR);
963 volatile u_char *intmsk = (void*)uvax_phys2virt(KA410_INTMSK);
964 int i, c;
965
966 trace (("hdc_command(%x)\n", cmd));
967 debug (("intr-state: %x %x %x\n", *intreq, *intclr, *intmsk));
968
969 if (!haveLock) {
970 vsbus_lockDMA(sc->sc_cfargs);
971 haveLock = 1;
972 }
973
974 hdc_writeregs(sc); /* write the prepared registers */
975 *intclr = INTR_DC; /* clear any old interrupt */
976 sc->sc_dkc->dkc_cmd = cmd; /* issue the command */
977 for (i=0; i<MAX_WAIT; i++) {
978 if ((c = *intreq) & INTR_DC)
979 break;
980 }
981 if ((c & INTR_DC) == 0) {
982 printf ("hdc_command: timeout in command 0x%x\n", cmd);
983 }
984 hdc_readregs(sc); /* read the status registers */
985 sc->sc_status = sc->sc_dkc->dkc_stat;
986
987 if (!keepLock) {
988 vsbus_unlockDMA(sc->sc_cfargs);
989 haveLock = 0;
990 }
991
992 if (sc->sc_status != DKC_ST_DONE|DKC_TC_SUCCESS) {
993 printf ("command 0x%x completed with status 0x%x\n",
994 cmd, sc->sc_status);
995 return (-1);
996 }
997 return (0);
998 }
999
1000 /*
1001 * writing zero into the command-register will reset the controller.
1002 * This will not interrupt data-transfer commands!
1003 * Also no interrupt is generated, thus we don't use hdc_command()
1004 */
1005 int
1006 hdc_reset(sc)
1007 struct hdcsoftc *sc;
1008 {
1009 trace (("hdc_reset()\n"));
1010
1011 sc->sc_dkc->dkc_cmd = DKC_CMD_RESET; /* issue RESET command */
1012 hdc_readregs(sc); /* read the status registers */
1013 sc->sc_status = sc->sc_dkc->dkc_stat;
1014 if (sc->sc_status != DKC_ST_DONE|DKC_TC_SUCCESS) {
1015 printf ("RESET command completed with status 0x%x\n",
1016 sc->sc_status);
1017 return (-1);
1018 }
1019 return (0);
1020 }
1021
1022 int
1023 hdc_rxselect(sc, unit)
1024 struct hdcsoftc *sc;
1025 int unit;
1026 {
1027 register struct hdc9224_UDCreg *p = &sc->sc_creg;
1028 register struct hdc9224_UDCreg *q = &sc->sc_sreg;
1029 int error;
1030
1031 /*
1032 * bring command-regs in some known-to-work state and
1033 * select the drive with the DRIVE SELECT command.
1034 */
1035 p->udc_dma7 = 0;
1036 p->udc_dma15 = 0;
1037 p->udc_dma23 = 0;
1038 p->udc_dsect = 1; /* sectors are numbered 1..15 !!! */
1039 p->udc_dhead = 0;
1040 p->udc_dcyl = 0;
1041 p->udc_scnt = 0;
1042
1043 p->udc_rtcnt = UDC_RC_RX33READ;
1044 p->udc_mode = UDC_MD_RX33;
1045 p->udc_term = UDC_TC_FDD;
1046
1047 /*
1048 * this is ...
1049 */
1050 error = hdc_command (sc, DKC_CMD_DRSEL_RX33 | unit);
1051
1052 if ((error != 0) || (q->udc_dstat & UDC_DS_READY == 0)) {
1053 printf("\nfloppy-drive not ready (new floppy inserted?)\n\n");
1054 p->udc_rtcnt &= ~UDC_RC_INVRDY; /* clear INVRDY-flag */
1055 error = hdc_command(sc, DKC_CMD_DRSEL_RX33 | unit);
1056 if ((error != 0) || (q->udc_dstat & UDC_DS_READY == 0)) {
1057 printf("diskette not ready(1): %x/%x\n", error, q->udc_dstat);
1058 printf("floppy-drive offline?\n");
1059 return (-1);
1060 }
1061
1062 if (q->udc_dstat & UDC_DS_TRK00) /* if track-0 */
1063 error = hdc_command(sc, DKC_CMD_STEPIN_FDD); /* step inwards */
1064 else /* else */
1065 error = hdc_command(sc, DKC_CMD_STEPOUT_FDD); /* step outwards */
1066
1067 if ((error != 0) || (q->udc_dstat & UDC_DS_READY == 1)) {
1068 printf("diskette not ready(2): %x/%x\n", error, q->udc_dstat);
1069 printf("No floppy inserted or drive offline\n");
1070 /* return (-1); */
1071 }
1072
1073 p->udc_rtcnt |= UDC_RC_INVRDY;
1074 error = hdc_command(sc, DKC_CMD_DRSEL_RX33 | unit);
1075 if ((error != 0) || (q->udc_dstat & UDC_DS_READY == 0)) {
1076 printf("diskette not ready(3): %x/%x\n", error, q->udc_dstat);
1077 printf("no floppy inserted or floppy-door open\n");
1078 return(-1);
1079 }
1080 printf("floppy-drive reselected.\n");
1081 }
1082 if (error)
1083 error = hdc_command (sc, DKC_CMD_DRSEL_RX33 | unit);
1084
1085 return (error);
1086 }
1087
1088 int
1089 hdc_rdselect(sc, unit)
1090 struct hdcsoftc *sc;
1091 int unit;
1092 {
1093 register struct hdc9224_UDCreg *p = &sc->sc_creg;
1094 register struct hdc9224_UDCreg *q = &sc->sc_sreg;
1095 int error;
1096
1097 /*
1098 * bring "creg" in some known-to-work state and
1099 * select the drive with the DRIVE SELECT command.
1100 */
1101 p->udc_dma7 = 0;
1102 p->udc_dma15 = 0;
1103 p->udc_dma23 = 0;
1104 p->udc_dsect = 0; /* sectors are numbered 0..16 */
1105 p->udc_dhead = 0;
1106 p->udc_dcyl = 0;
1107 p->udc_scnt = 0;
1108
1109 p->udc_rtcnt = UDC_RC_HDD_READ;
1110 p->udc_mode = UDC_MD_HDD;
1111 p->udc_term = UDC_TC_HDD;
1112
1113 error = hdc_command (sc, DKC_CMD_DRSEL_HDD | unit);
1114 if (error)
1115 error = hdc_command (sc, DKC_CMD_DRSEL_HDD | unit);
1116
1117 return (error);
1118 }
1119
1120 /*
1121 * bring command-regs into some known-to-work state and select
1122 * the drive with the DRIVE SELECT command.
1123 */
1124 int
1125 hdc_select(sc, unit)
1126 struct hdcsoftc *sc;
1127 int unit;
1128 {
1129 int error;
1130
1131 trace (("hdc_select(%x,%d)\n", sc, unit));
1132
1133 switch (unit) {
1134 case 0:
1135 case 1:
1136 error = hdc_rdselect(sc, unit);
1137 break;
1138 case 2:
1139 error = hdc_rxselect(sc, unit);
1140 /* bertram: delay ??? XXX */
1141 break;
1142 default:
1143 printf("invalid unit %d in hdc_select()\n", unit);
1144 error = -1;
1145 }
1146
1147 return (error);
1148 }
1149 #endif /* NHDC > 0 */
1150