fd.c revision 1.32 1 /* $NetBSD: fd.c,v 1.32 2000/02/07 20:16:50 thorpej Exp $ */
2
3 /*
4 * Copyright (c) 1995 Leo Weppelman.
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. All advertising materials mentioning features or use of this software
16 * must display the following acknowledgement:
17 * This product includes software developed by Leo Weppelman.
18 * 4. The name of the author may not be used to endorse or promote products
19 * derived from this software without specific prior written permission
20 *
21 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
22 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
23 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
24 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
25 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
26 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
27 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
28 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
29 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
30 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31 */
32
33 /*
34 * This file contains a driver for the Floppy Disk Controller (FDC)
35 * on the Atari TT. It uses the WD 1772 chip, modified for steprates.
36 *
37 * The ST floppy disk controller shares the access to the DMA circuitry
38 * with other devices. For this reason the floppy disk controller makes
39 * use of some special DMA accessing code.
40 *
41 * Interrupts from the FDC are in fact DMA interrupts which get their
42 * first level handling in 'dma.c' . If the floppy driver is currently
43 * using DMA the interrupt is signalled to 'fdcint'.
44 *
45 * TODO:
46 * - Test it with 2 drives (I don't have them)
47 * - Test it with an HD-drive (Don't have that either)
48 * - Finish ioctl's
49 */
50
51 #include <sys/param.h>
52 #include <sys/systm.h>
53 #include <sys/kernel.h>
54 #include <sys/malloc.h>
55 #include <sys/buf.h>
56 #include <sys/proc.h>
57 #include <sys/device.h>
58 #include <sys/ioctl.h>
59 #include <sys/fcntl.h>
60 #include <sys/conf.h>
61 #include <sys/disklabel.h>
62 #include <sys/disk.h>
63 #include <sys/dkbad.h>
64 #include <atari/atari/device.h>
65 #include <atari/atari/stalloc.h>
66 #include <machine/disklabel.h>
67 #include <machine/iomap.h>
68 #include <machine/mfp.h>
69 #include <machine/dma.h>
70 #include <machine/video.h>
71 #include <machine/cpu.h>
72 #include <atari/dev/ym2149reg.h>
73 #include <atari/dev/fdreg.h>
74
75 /*
76 * Be verbose for debugging
77 */
78 /*#define FLP_DEBUG 1 */
79
80 #define FDC_MAX_DMA_AD 0x1000000 /* No DMA possible beyond */
81
82 /* Parameters for the disk drive. */
83 #define SECTOR_SIZE 512 /* physical sector size in bytes */
84 #define NR_DRIVES 2 /* maximum number of drives */
85 #define NR_TYPES 3 /* number of diskette/drive combinations*/
86 #define MAX_ERRORS 10 /* how often to try rd/wt before quitting*/
87 #define STEP_DELAY 6000 /* 6ms (6000us) delay after stepping */
88
89
90 #define INV_TRK 32000 /* Should fit in unsigned short */
91 #define INV_PART NR_TYPES
92
93 /*
94 * Driver states
95 */
96 #define FLP_IDLE 0x00 /* floppy is idle */
97 #define FLP_MON 0x01 /* idle with motor on */
98 #define FLP_STAT 0x02 /* determine floppy status */
99 #define FLP_XFER 0x04 /* read/write data from floppy */
100
101 /*
102 * Timer delay's
103 */
104 #define FLP_MONDELAY (3 * hz) /* motor-on delay */
105 #define FLP_XFERDELAY (2 * hz) /* timeout on transfer */
106
107 /*
108 * The density codes
109 */
110 #define FLP_DD 0 /* Double density */
111 #define FLP_HD 1 /* High density */
112
113
114 #define b_block b_resid /* FIXME: this is not the place */
115
116 /*
117 * Global data for all physical floppy devices
118 */
119 static short selected = 0; /* drive/head currently selected*/
120 static short motoron = 0; /* motor is spinning */
121 static short nopens = 0; /* Number of opens executed */
122
123 static short fd_state = FLP_IDLE; /* Current driver state */
124 static int lock_stat= 0; /* dma locking status */
125 static short fd_cmd = 0; /* command being executed */
126 static char *fd_error= NULL; /* error from fd_xfer_ok() */
127
128 /*
129 * Private per device data
130 */
131 struct fd_softc {
132 struct device sc_dv; /* generic device info */
133 struct disk dkdev; /* generic disk info */
134 struct buf_queue bufq; /* queue of buf's */
135 int unit; /* unit for atari controlling hw*/
136 int nheads; /* number of heads in use */
137 int nsectors; /* number of sectors/track */
138 int density; /* density code */
139 int nblocks; /* number of blocks on disk */
140 int curtrk; /* track head positioned on */
141 short flags; /* misc flags */
142 short part; /* Current open partition */
143 int sector; /* logical sector for I/O */
144 caddr_t io_data; /* KVA for data transfer */
145 int io_bytes; /* bytes left for I/O */
146 int io_dir; /* B_READ/B_WRITE */
147 int errcnt; /* current error count */
148 u_char *bounceb; /* Bounce buffer */
149
150 };
151
152 /*
153 * Flags in fd_softc:
154 */
155 #define FLPF_NOTRESP 0x001 /* Unit not responding */
156 #define FLPF_ISOPEN 0x002 /* Unit is open */
157 #define FLPF_SPARE 0x004 /* Not used */
158 #define FLPF_HAVELAB 0x008 /* We have a valid label */
159 #define FLPF_BOUNCE 0x010 /* Now using the bounce buffer */
160 #define FLPF_WRTPROT 0x020 /* Unit is write-protected */
161 #define FLPF_EMPTY 0x040 /* Unit is empty */
162 #define FLPF_INOPEN 0x080 /* Currently being opened */
163 #define FLPF_GETSTAT 0x100 /* Getting unit status */
164
165 struct fd_types {
166 int nheads; /* Heads in use */
167 int nsectors; /* sectors per track */
168 int nblocks; /* number of blocks */
169 int density; /* density code */
170 const char *descr; /* type description */
171 } fdtypes[NR_TYPES] = {
172 { 1, 9, 720 , FLP_DD , "360KB" }, /* 360 Kb */
173 { 2, 9, 1440 , FLP_DD , "720KB" }, /* 720 Kb */
174 { 2, 18, 2880 , FLP_HD , "1.44MB" }, /* 1.44 Mb */
175 };
176
177 #define FLP_TYPE_360 0 /* XXX: Please keep these in */
178 #define FLP_TYPE_720 1 /* sync with the numbering in */
179 #define FLP_TYPE_144 2 /* 'fdtypes' right above! */
180
181 /*
182 * This is set only once at attach time. The value is determined by reading
183 * the configuration switches and is one of the FLP_TYPE_*'s.
184 * This is simular to the way Atari handles the _FLP cookie.
185 */
186 static short def_type = 0; /* Reflects config-switches */
187
188 #define FLP_DEFTYPE 1 /* 720Kb, reasonable default */
189 #define FLP_TYPE(dev) ( DISKPART(dev) == 0 ? def_type : DISKPART(dev) - 1 )
190
191 typedef void (*FPV) __P((void *));
192
193 /*
194 * {b,c}devsw[] function prototypes
195 */
196 dev_type_open(fdopen);
197 dev_type_close(fdclose);
198 dev_type_read(fdread);
199 dev_type_write(fdwrite);
200 dev_type_ioctl(fdioctl);
201 dev_type_size(fdsize);
202 dev_type_dump(fddump);
203
204 /*
205 * Private drive functions....
206 */
207 static void fdstart __P((struct fd_softc *));
208 static void fddone __P((struct fd_softc *));
209 static void fdstatus __P((struct fd_softc *));
210 static void fd_xfer __P((struct fd_softc *));
211 static void fdcint __P((struct fd_softc *));
212 static int fd_xfer_ok __P((struct fd_softc *));
213 static void fdmotoroff __P((struct fd_softc *));
214 static void fdminphys __P((struct buf *));
215 static void fdtestdrv __P((struct fd_softc *));
216 static void fdgetdefaultlabel __P((struct fd_softc *, struct disklabel *,
217 int));
218 static int fdgetdisklabel __P((struct fd_softc *, dev_t));
219 static int fdselect __P((int, int, int));
220 static void fddeselect __P((void));
221 static void fdmoff __P((struct fd_softc *));
222 u_char read_fdreg __P((u_short));
223 void write_fdreg __P((u_short, u_short));
224 u_char read_dmastat __P((void));
225
226 extern __inline__ u_char read_fdreg(u_short regno)
227 {
228 DMA->dma_mode = regno;
229 return(DMA->dma_data);
230 }
231
232 extern __inline__ void write_fdreg(u_short regno, u_short val)
233 {
234 DMA->dma_mode = regno;
235 DMA->dma_data = val;
236 }
237
238 extern __inline__ u_char read_dmastat(void)
239 {
240 DMA->dma_mode = FDC_CS | DMA_SCREG;
241 return(DMA->dma_stat);
242 }
243
244 /*
245 * Config switch stuff. Used only for the floppy type for now. That's
246 * why it's here...
247 * XXX: If needed in more places, it should be moved to it's own include file.
248 * Note: This location _must_ be read as an u_short. Failure to do so
249 * will return garbage!
250 */
251 static u_short rd_cfg_switch __P((void));
252 static u_short rd_cfg_switch(void)
253 {
254 return(*((u_short*)AD_CFG_SWITCH));
255 }
256
257 /*
258 * Switch definitions.
259 * Note: ON reads as a zero bit!
260 */
261 #define CFG_SWITCH_NOHD 0x4000
262
263 /*
264 * Autoconfig stuff....
265 */
266 extern struct cfdriver fd_cd;
267
268 static int fdcmatch __P((struct device *, struct cfdata *, void *));
269 static int fdcprint __P((void *, const char *));
270 static void fdcattach __P((struct device *, struct device *, void *));
271
272 struct cfattach fdc_ca = {
273 sizeof(struct device), fdcmatch, fdcattach
274 };
275
276 static int
277 fdcmatch(pdp, cfp, auxp)
278 struct device *pdp;
279 struct cfdata *cfp;
280 void *auxp;
281 {
282 if(strcmp("fdc", auxp) || cfp->cf_unit != 0)
283 return(0);
284 return(1);
285 }
286
287 static void
288 fdcattach(pdp, dp, auxp)
289 struct device *pdp, *dp;
290 void *auxp;
291 {
292 struct fd_softc fdsoftc;
293 int i, nfound, first_found;
294
295 nfound = first_found = 0;
296 printf("\n");
297 fddeselect();
298 for(i = 0; i < NR_DRIVES; i++) {
299
300 /*
301 * Test if unit is present
302 */
303 fdsoftc.unit = i;
304 fdsoftc.flags = 0;
305 st_dmagrab((dma_farg)fdcint, (dma_farg)fdtestdrv, &fdsoftc,
306 &lock_stat, 0);
307 st_dmafree(&fdsoftc, &lock_stat);
308
309 if(!(fdsoftc.flags & FLPF_NOTRESP)) {
310 if(!nfound)
311 first_found = i;
312 nfound++;
313 config_found(dp, (void*)i, fdcprint);
314 }
315 }
316
317 if(nfound) {
318
319 /*
320 * Make sure motor will be turned of when a floppy is
321 * inserted in the first selected drive.
322 */
323 fdselect(first_found, 0, FLP_DD);
324 fd_state = FLP_MON;
325 timeout((FPV)fdmotoroff, (void*)getsoftc(fd_cd,first_found), 0);
326
327 /*
328 * enable disk related interrupts
329 */
330 MFP->mf_ierb |= IB_DINT;
331 MFP->mf_iprb = (u_int8_t)~IB_DINT;
332 MFP->mf_imrb |= IB_DINT;
333 }
334 }
335
336 static int
337 fdcprint(auxp, pnp)
338 void *auxp;
339 const char *pnp;
340 {
341 if (pnp != NULL)
342 printf("fd%d at %s:", (int)auxp, pnp);
343
344 return(UNCONF);
345 }
346
347 static int fdmatch __P((struct device *, struct cfdata *, void *));
348 static void fdattach __P((struct device *, struct device *, void *));
349
350 void fdstrategy __P((struct buf *));
351 struct dkdriver fddkdriver = { fdstrategy };
352
353 struct cfattach fd_ca = {
354 sizeof(struct fd_softc), fdmatch, fdattach
355 };
356
357 extern struct cfdriver fd_cd;
358
359 static int
360 fdmatch(pdp, cfp, auxp)
361 struct device *pdp;
362 struct cfdata *cfp;
363 void *auxp;
364 {
365 return(1);
366 }
367
368 static void
369 fdattach(pdp, dp, auxp)
370 struct device *pdp, *dp;
371 void *auxp;
372 {
373 struct fd_softc *sc;
374 struct fd_types *type;
375 u_short swtch;
376
377 sc = (struct fd_softc *)dp;
378
379 /*
380 * Find out if an Ajax chip might be installed. Set the default
381 * floppy type accordingly.
382 */
383 swtch = rd_cfg_switch();
384 def_type = (swtch & CFG_SWITCH_NOHD) ? FLP_TYPE_720 : FLP_TYPE_144;
385 type = &fdtypes[def_type];
386
387 printf(": %s %d cyl, %d head, %d sec\n", type->descr,
388 type->nblocks / (type->nsectors * type->nheads), type->nheads,
389 type->nsectors);
390
391 /*
392 * Initialize and attach the disk structure.
393 */
394 sc->dkdev.dk_name = sc->sc_dv.dv_xname;
395 sc->dkdev.dk_driver = &fddkdriver;
396 disk_attach(&sc->dkdev);
397 }
398
399 int
400 fdioctl(dev, cmd, addr, flag, p)
401 dev_t dev;
402 u_long cmd;
403 int flag;
404 caddr_t addr;
405 struct proc *p;
406 {
407 struct fd_softc *sc;
408
409 sc = getsoftc(fd_cd, DISKUNIT(dev));
410
411 if((sc->flags & FLPF_HAVELAB) == 0)
412 return(EBADF);
413
414 switch(cmd) {
415 case DIOCSBAD:
416 return(EINVAL);
417 case DIOCGDINFO:
418 *(struct disklabel *)addr = *(sc->dkdev.dk_label);
419 return(0);
420 case DIOCGPART:
421 ((struct partinfo *)addr)->disklab =
422 sc->dkdev.dk_label;
423 ((struct partinfo *)addr)->part =
424 &sc->dkdev.dk_label->d_partitions[RAW_PART];
425 return(0);
426 #ifdef notyet /* XXX LWP */
427 case DIOCSRETRIES:
428 case DIOCSSTEP:
429 case DIOCSDINFO:
430 case DIOCWDINFO:
431 case DIOCWLABEL:
432 break;
433 #endif /* notyet */
434 case DIOCGDEFLABEL:
435 fdgetdefaultlabel(sc, (struct disklabel *)addr,
436 RAW_PART);
437 return(0);
438 }
439 return(ENOTTY);
440 }
441
442 /*
443 * Open the device. If this is the first open on both the floppy devices,
444 * intialize the controller.
445 * Note that partition info on the floppy device is used to distinguise
446 * between 780Kb and 360Kb floppy's.
447 * partition 0: 360Kb
448 * partition 1: 780Kb
449 */
450 int
451 fdopen(dev, flags, devtype, proc)
452 dev_t dev;
453 int flags, devtype;
454 struct proc *proc;
455 {
456 struct fd_softc *sc;
457 int sps;
458
459 #ifdef FLP_DEBUG
460 printf("fdopen dev=0x%x\n", dev);
461 #endif
462
463 if(FLP_TYPE(dev) >= NR_TYPES)
464 return(ENXIO);
465
466 if((sc = getsoftc(fd_cd, DISKUNIT(dev))) == NULL)
467 return(ENXIO);
468
469 /*
470 * If no floppy currently open, reset the controller and select
471 * floppy type.
472 */
473 if(!nopens) {
474
475 #ifdef FLP_DEBUG
476 printf("fdopen device not yet open\n");
477 #endif
478 nopens++;
479 write_fdreg(FDC_CS, IRUPT);
480 delay(40);
481 }
482
483 /*
484 * Sleep while other process is opening the device
485 */
486 sps = splbio();
487 while(sc->flags & FLPF_INOPEN)
488 tsleep((caddr_t)sc, PRIBIO, "fdopen", 0);
489 splx(sps);
490
491 if(!(sc->flags & FLPF_ISOPEN)) {
492 /*
493 * Initialise some driver values.
494 */
495 int type;
496 void *addr;
497
498 type = FLP_TYPE(dev);
499
500 BUFQ_INIT(&sc->bufq);
501 sc->unit = DISKUNIT(dev);
502 sc->part = RAW_PART;
503 sc->nheads = fdtypes[type].nheads;
504 sc->nsectors = fdtypes[type].nsectors;
505 sc->nblocks = fdtypes[type].nblocks;
506 sc->density = fdtypes[type].density;
507 sc->curtrk = INV_TRK;
508 sc->sector = 0;
509 sc->errcnt = 0;
510 sc->bounceb = (u_char*)alloc_stmem(SECTOR_SIZE, &addr);
511 if(sc->bounceb == NULL)
512 return(ENOMEM); /* XXX */
513
514 /*
515 * Go get write protect + loaded status
516 */
517 sc->flags |= FLPF_INOPEN|FLPF_GETSTAT;
518 sps = splbio();
519 st_dmagrab((dma_farg)fdcint, (dma_farg)fdstatus, sc,
520 &lock_stat, 0);
521 while(sc->flags & FLPF_GETSTAT)
522 tsleep((caddr_t)sc, PRIBIO, "fdopen", 0);
523 splx(sps);
524 wakeup((caddr_t)sc);
525
526 if((sc->flags & FLPF_WRTPROT) && (flags & FWRITE)) {
527 sc->flags = 0;
528 return(EPERM);
529 }
530 if(sc->flags & FLPF_EMPTY) {
531 sc->flags = 0;
532 return(ENXIO);
533 }
534 sc->flags &= ~(FLPF_INOPEN|FLPF_GETSTAT);
535 sc->flags |= FLPF_ISOPEN;
536 }
537 else {
538 /*
539 * Multiply opens are granted when accessing the same type of
540 * floppy (eq. the same partition).
541 */
542 if(sc->density != fdtypes[DISKPART(dev)].density)
543 return(ENXIO); /* XXX temporarely out of business */
544 }
545 fdgetdisklabel(sc, dev);
546 #ifdef FLP_DEBUG
547 printf("fdopen open succeeded on type %d\n", sc->part);
548 #endif
549 return (0);
550 }
551
552 int
553 fdclose(dev, flags, devtype, proc)
554 dev_t dev;
555 int flags, devtype;
556 struct proc *proc;
557 {
558 struct fd_softc *sc;
559
560 sc = getsoftc(fd_cd, DISKUNIT(dev));
561 free_stmem(sc->bounceb);
562 sc->flags = 0;
563 nopens--;
564
565 #ifdef FLP_DEBUG
566 printf("Closed floppy device -- nopens: %d\n", nopens);
567 #endif
568 return(0);
569 }
570
571 void
572 fdstrategy(bp)
573 struct buf *bp;
574 {
575 struct fd_softc *sc;
576 struct disklabel *lp;
577 int sps, sz;
578
579 sc = getsoftc(fd_cd, DISKUNIT(bp->b_dev));
580
581 #ifdef FLP_DEBUG
582 printf("fdstrategy: %p, b_bcount: %ld\n", bp, bp->b_bcount);
583 #endif
584
585 /*
586 * check for valid partition and bounds
587 */
588 lp = sc->dkdev.dk_label;
589 if ((sc->flags & FLPF_HAVELAB) == 0) {
590 bp->b_error = EIO;
591 goto bad;
592 }
593 if (bp->b_blkno < 0 || (bp->b_bcount % SECTOR_SIZE)) {
594 bp->b_error = EINVAL;
595 goto bad;
596 }
597 if (bp->b_bcount == 0)
598 goto done;
599
600 sz = howmany(bp->b_bcount, SECTOR_SIZE);
601
602 if (bp->b_blkno + sz > sc->nblocks) {
603 sz = sc->nblocks - bp->b_blkno;
604 if (sz == 0) /* Exactly at EndOfDisk */
605 goto done;
606 if (sz < 0) { /* Past EndOfDisk */
607 bp->b_error = EINVAL;
608 goto bad;
609 }
610 /* Trucate it */
611 if (bp->b_flags & B_RAW)
612 bp->b_bcount = sz << DEV_BSHIFT;
613 else bp->b_bcount = sz * lp->d_secsize;
614 }
615
616 /* No partition translation. */
617 bp->b_rawblkno = bp->b_blkno;
618
619 /*
620 * queue the buf and kick the low level code
621 */
622 sps = splbio();
623 disksort_blkno(&sc->bufq, bp); /* XXX disksort_cylinder */
624 if (!lock_stat) {
625 if (fd_state & FLP_MON)
626 untimeout((FPV)fdmotoroff, (void*)sc);
627 fd_state = FLP_IDLE;
628 st_dmagrab((dma_farg)fdcint, (dma_farg)fdstart, sc,
629 &lock_stat, 0);
630 }
631 splx(sps);
632
633 return;
634 bad:
635 bp->b_flags |= B_ERROR;
636 done:
637 bp->b_resid = bp->b_bcount;
638 biodone(bp);
639 }
640
641 /*
642 * no dumps to floppy disks thank you.
643 */
644 int
645 fddump(dev, blkno, va, size)
646 dev_t dev;
647 daddr_t blkno;
648 caddr_t va;
649 size_t size;
650 {
651 return(ENXIO);
652 }
653
654 /*
655 * no dumps to floppy disks thank you.
656 */
657 int
658 fdsize(dev)
659 dev_t dev;
660 {
661 return(-1);
662 }
663
664 int
665 fdread(dev, uio, flags)
666 dev_t dev;
667 struct uio *uio;
668 int flags;
669 {
670 return(physio(fdstrategy, NULL, dev, B_READ, fdminphys, uio));
671 }
672
673 int
674 fdwrite(dev, uio, flags)
675 dev_t dev;
676 struct uio *uio;
677 int flags;
678 {
679 return(physio(fdstrategy, NULL, dev, B_WRITE, fdminphys, uio));
680 }
681
682 /*
683 * Called through DMA-dispatcher, get status.
684 */
685 static void
686 fdstatus(sc)
687 struct fd_softc *sc;
688 {
689 #ifdef FLP_DEBUG
690 printf("fdstatus\n");
691 #endif
692 sc->errcnt = 0;
693 fd_state = FLP_STAT;
694 fd_xfer(sc);
695 }
696
697 /*
698 * Called through the dma-dispatcher. So we know we are the only ones
699 * messing with the floppy-controler.
700 * Initialize some fields in the fdsoftc for the state-machine and get
701 * it going.
702 */
703 static void
704 fdstart(sc)
705 struct fd_softc *sc;
706 {
707 struct buf *bp;
708
709 bp = BUFQ_FIRST(&sc->bufq);
710 sc->sector = bp->b_blkno; /* Start sector for I/O */
711 sc->io_data = bp->b_data; /* KVA base for I/O */
712 sc->io_bytes = bp->b_bcount; /* Transfer size in bytes */
713 sc->io_dir = bp->b_flags & B_READ;/* Direction of transfer */
714 sc->errcnt = 0; /* No errors yet */
715 fd_state = FLP_XFER; /* Yes, we're going to transfer */
716
717 /* Instrumentation. */
718 disk_busy(&sc->dkdev);
719
720 fd_xfer(sc);
721 }
722
723 /*
724 * The current transaction is finished (for good or bad). Let go of
725 * the the dma-resources. Call biodone() to finish the transaction.
726 * Find a new transaction to work on.
727 */
728 static void
729 fddone(sc)
730 register struct fd_softc *sc;
731 {
732 struct buf *bp, *dp;
733 struct fd_softc *sc1;
734 int i, sps;
735
736 /*
737 * Give others a chance to use the dma.
738 */
739 st_dmafree(sc, &lock_stat);
740
741
742 if(fd_state != FLP_STAT) {
743 /*
744 * Finish current transaction.
745 */
746 sps = splbio();
747 bp = BUFQ_FIRST(&sc->bufq);
748 if (bp == NULL)
749 panic("fddone");
750 BUFQ_REMOVE(&sc->bufq, bp);
751 splx(sps);
752
753 #ifdef FLP_DEBUG
754 printf("fddone: unit: %d, buf: %p, resid: %d\n",sc->unit,bp,
755 sc->io_bytes);
756 #endif
757 bp->b_resid = sc->io_bytes;
758
759 disk_unbusy(&sc->dkdev, (bp->b_bcount - bp->b_resid));
760
761 biodone(bp);
762 }
763 fd_state = FLP_MON;
764
765 if(lock_stat)
766 return; /* XXX Is this possible? */
767
768 /*
769 * Find a new transaction on round-robin basis.
770 */
771 for(i = sc->unit + 1; ;i++) {
772 if(i >= fd_cd.cd_ndevs)
773 i = 0;
774 if((sc1 = fd_cd.cd_devs[i]) == NULL)
775 continue;
776 if (BUFQ_FIRST(&sc1->bufq) != NULL)
777 break;
778 if(i == sc->unit) {
779 timeout((FPV)fdmotoroff, (void*)sc, FLP_MONDELAY);
780 #ifdef FLP_DEBUG
781 printf("fddone: Nothing to do\n");
782 #endif
783 return; /* No work */
784 }
785 }
786 fd_state = FLP_IDLE;
787 #ifdef FLP_DEBUG
788 printf("fddone: Staring job on unit %d\n", sc1->unit);
789 #endif
790 st_dmagrab((dma_farg)fdcint, (dma_farg)fdstart, sc1, &lock_stat, 0);
791 }
792
793 static int
794 fdselect(drive, head, dense)
795 int drive, head, dense;
796 {
797 int i, spinning;
798 #ifdef FLP_DEBUG
799 printf("fdselect: drive=%d, head=%d, dense=%d\n", drive, head, dense);
800 #endif
801 i = ((drive == 1) ? PA_FLOP1 : PA_FLOP0) | head;
802 spinning = motoron;
803 motoron = 1;
804
805 switch(dense) {
806 case FLP_DD:
807 DMA->dma_drvmode = 0;
808 break;
809 case FLP_HD:
810 DMA->dma_drvmode = (FDC_HDSET|FDC_HDSIG);
811 break;
812 default:
813 panic("fdselect: unknown density code\n");
814 }
815 if(i != selected) {
816 selected = i;
817 ym2149_fd_select((i ^ PA_FDSEL));
818 }
819 return(spinning);
820 }
821
822 static void
823 fddeselect()
824 {
825 ym2149_fd_select(PA_FDSEL);
826 motoron = selected = 0;
827 DMA->dma_drvmode = 0;
828 }
829
830 /****************************************************************************
831 * The following functions assume to be running as a result of a *
832 * disk-interrupt (e.q. spl = splbio). *
833 * They form the finit-state machine, the actual driver. *
834 * *
835 * fdstart()/ --> fd_xfer() -> activate hardware *
836 * fdopen() ^ *
837 * | *
838 * +-- not ready -<------------+ *
839 * | *
840 * fdmotoroff()/ --> fdcint() -> fd_xfer_ok() ---+ *
841 * h/w interrupt | *
842 * \|/ *
843 * finished ---> fdone() *
844 * *
845 ****************************************************************************/
846 static void
847 fd_xfer(sc)
848 struct fd_softc *sc;
849 {
850 register int head;
851 register int track, sector, hbit;
852 u_long phys_addr;
853
854 head = track = 0;
855 switch(fd_state) {
856 case FLP_XFER:
857 /*
858 * Calculate head/track values
859 */
860 track = sc->sector / sc->nsectors;
861 head = track % sc->nheads;
862 track = track / sc->nheads;
863 #ifdef FLP_DEBUG
864 printf("fd_xfer: sector:%d,head:%d,track:%d\n", sc->sector,head,
865 track);
866 #endif
867 break;
868
869 case FLP_STAT:
870 /*
871 * FLP_STAT only wants to recalibrate
872 */
873 sc->curtrk = INV_TRK;
874 break;
875 default:
876 panic("fd_xfer: wrong state (0x%x)", fd_state);
877 }
878
879 /*
880 * Select the drive.
881 */
882 hbit = fdselect(sc->unit, head, sc->density) ? HBIT : 0;
883
884 if(sc->curtrk == INV_TRK) {
885 /*
886 * Recalibrate, since we lost track of head positioning.
887 * The floppy disk controller has no way of determining its
888 * absolute arm position (track). Instead, it steps the
889 * arm a track at a time and keeps track of where it
890 * thinks it is (in software). However, after a SEEK, the
891 * hardware reads information from the diskette telling
892 * where the arm actually is. If the arm is in the wrong place,
893 * a recalibration is done, which forces the arm to track 0.
894 * This way the controller can get back into sync with reality.
895 */
896 fd_cmd = RESTORE;
897 write_fdreg(FDC_CS, RESTORE|VBIT|hbit);
898 timeout((FPV)fdmotoroff, (void*)sc, FLP_XFERDELAY);
899
900 #ifdef FLP_DEBUG
901 printf("fd_xfer:Recalibrating drive %d\n", sc->unit);
902 #endif
903 return;
904 }
905
906 write_fdreg(FDC_TR, sc->curtrk);
907
908 /*
909 * Issue a SEEK command on the indicated drive unless the arm is
910 * already positioned on the correct track.
911 */
912 if(track != sc->curtrk) {
913 sc->curtrk = track; /* be optimistic */
914 write_fdreg(FDC_DR, track);
915 write_fdreg(FDC_CS, SEEK|RATE6|VBIT|hbit);
916 timeout((FPV)fdmotoroff, (void*)sc, FLP_XFERDELAY);
917 fd_cmd = SEEK;
918 #ifdef FLP_DEBUG
919 printf("fd_xfer:Seek to track %d on drive %d\n",track,sc->unit);
920 #endif
921 return;
922 }
923
924 /*
925 * The drive is now on the proper track. Read or write 1 block.
926 */
927 sector = sc->sector % sc->nsectors;
928 sector++; /* start numbering at 1 */
929
930 write_fdreg(FDC_SR, sector);
931
932 phys_addr = (u_long)kvtop(sc->io_data);
933 if(phys_addr >= FDC_MAX_DMA_AD) {
934 /*
935 * We _must_ bounce this address
936 */
937 phys_addr = (u_long)kvtop(sc->bounceb);
938 if(sc->io_dir == B_WRITE)
939 bcopy(sc->io_data, sc->bounceb, SECTOR_SIZE);
940 sc->flags |= FLPF_BOUNCE;
941 }
942 st_dmaaddr_set((caddr_t)phys_addr); /* DMA address setup */
943
944 #ifdef FLP_DEBUG
945 printf("fd_xfer:Start io (io_addr:%lx)\n", (u_long)kvtop(sc->io_data));
946 #endif
947
948 if(sc->io_dir == B_READ) {
949 /* Issue the command */
950 st_dmacomm(DMA_FDC | DMA_SCREG, 1);
951 write_fdreg(FDC_CS, F_READ|hbit);
952 fd_cmd = F_READ;
953 }
954 else {
955 /* Issue the command */
956 st_dmacomm(DMA_WRBIT | DMA_FDC | DMA_SCREG, 1);
957 write_fdreg(DMA_WRBIT | FDC_CS, F_WRITE|hbit|EBIT|PBIT);
958 fd_cmd = F_WRITE;
959 }
960 timeout((FPV)fdmotoroff, (void*)sc, FLP_XFERDELAY);
961 }
962
963 /* return values of fd_xfer_ok(): */
964 #define X_OK 0
965 #define X_AGAIN 1
966 #define X_ERROR 2
967 #define X_FAIL 3
968
969 /*
970 * Hardware interrupt function.
971 */
972 static void
973 fdcint(sc)
974 struct fd_softc *sc;
975 {
976 struct buf *bp;
977
978 #ifdef FLP_DEBUG
979 printf("fdcint: unit = %d\n", sc->unit);
980 #endif
981
982 /*
983 * Cancel timeout (we made it, didn't we)
984 */
985 untimeout((FPV)fdmotoroff, (void*)sc);
986
987 switch(fd_xfer_ok(sc)) {
988 case X_ERROR :
989 if(++(sc->errcnt) < MAX_ERRORS) {
990 /*
991 * Command failed but still retries left.
992 */
993 break;
994 }
995 /* FALL THROUGH */
996 case X_FAIL :
997 /*
998 * Non recoverable error. Fall back to motor-on
999 * idle-state.
1000 */
1001 if(fd_error != NULL) {
1002 printf("Floppy error: %s\n", fd_error);
1003 fd_error = NULL;
1004 }
1005
1006 if(fd_state == FLP_STAT) {
1007 sc->flags |= FLPF_EMPTY;
1008 sc->flags &= ~FLPF_GETSTAT;
1009 wakeup((caddr_t)sc);
1010 fddone(sc);
1011 return;
1012 }
1013
1014 bp = BUFQ_FIRST(&sc->bufq);
1015
1016 bp->b_error = EIO;
1017 bp->b_flags |= B_ERROR;
1018 fd_state = FLP_MON;
1019
1020 break;
1021 case X_AGAIN:
1022 /*
1023 * Start next part of state machine.
1024 */
1025 break;
1026 case X_OK:
1027 /*
1028 * Command ok and finished. Reset error-counter.
1029 * If there are no more bytes to transfer fall back
1030 * to motor-on idle state.
1031 */
1032 sc->errcnt = 0;
1033
1034 if(fd_state == FLP_STAT) {
1035 sc->flags &= ~FLPF_GETSTAT;
1036 wakeup((caddr_t)sc);
1037 fddone(sc);
1038 return;
1039 }
1040
1041 if((sc->flags & FLPF_BOUNCE) && (sc->io_dir == B_READ))
1042 bcopy(sc->bounceb, sc->io_data, SECTOR_SIZE);
1043 sc->flags &= ~FLPF_BOUNCE;
1044
1045 sc->sector++;
1046 sc->io_data += SECTOR_SIZE;
1047 sc->io_bytes -= SECTOR_SIZE;
1048 if(sc->io_bytes <= 0)
1049 fd_state = FLP_MON;
1050 }
1051 if(fd_state == FLP_MON)
1052 fddone(sc);
1053 else fd_xfer(sc);
1054 }
1055
1056 /*
1057 * Determine status of last command. Should only be called through
1058 * 'fdcint()'.
1059 * Returns:
1060 * X_ERROR : Error on command; might succeed next time.
1061 * X_FAIL : Error on command; will never succeed.
1062 * X_AGAIN : Part of a command succeeded, call 'fd_xfer()' to complete.
1063 * X_OK : Command succeeded and is complete.
1064 *
1065 * This function only affects sc->curtrk.
1066 */
1067 static int
1068 fd_xfer_ok(sc)
1069 register struct fd_softc *sc;
1070 {
1071 register int status;
1072
1073 #ifdef FLP_DEBUG
1074 printf("fd_xfer_ok: cmd: 0x%x, state: 0x%x\n", fd_cmd, fd_state);
1075 #endif
1076 switch(fd_cmd) {
1077 case IRUPT:
1078 /*
1079 * Timeout. Force a recalibrate before we try again.
1080 */
1081 status = read_fdreg(FDC_CS);
1082
1083 fd_error = "Timeout";
1084 sc->curtrk = INV_TRK;
1085 return(X_ERROR);
1086 case F_READ:
1087 /*
1088 * Test for DMA error
1089 */
1090 status = read_dmastat();
1091 if(!(status & DMAOK)) {
1092 fd_error = "Dma error";
1093 return(X_ERROR);
1094 }
1095 /*
1096 * Get controller status and check for errors.
1097 */
1098 status = read_fdreg(FDC_CS);
1099 if(status & (RNF | CRCERR | LD_T00)) {
1100 fd_error = "Read error";
1101 if(status & RNF)
1102 sc->curtrk = INV_TRK;
1103 return(X_ERROR);
1104 }
1105 break;
1106 case F_WRITE:
1107 /*
1108 * Test for DMA error
1109 */
1110 status = read_dmastat();
1111 if(!(status & DMAOK)) {
1112 fd_error = "Dma error";
1113 return(X_ERROR);
1114 }
1115 /*
1116 * Get controller status and check for errors.
1117 */
1118 status = read_fdreg(FDC_CS);
1119 if(status & WRI_PRO) {
1120 fd_error = "Write protected";
1121 return(X_FAIL);
1122 }
1123 if(status & (RNF | CRCERR | LD_T00)) {
1124 fd_error = "Write error";
1125 sc->curtrk = INV_TRK;
1126 return(X_ERROR);
1127 }
1128 break;
1129 case SEEK:
1130 status = read_fdreg(FDC_CS);
1131 if(status & (RNF | CRCERR)) {
1132 fd_error = "Seek error";
1133 sc->curtrk = INV_TRK;
1134 return(X_ERROR);
1135 }
1136 return(X_AGAIN);
1137 case RESTORE:
1138 /*
1139 * Determine if the recalibration succeeded.
1140 */
1141 status = read_fdreg(FDC_CS);
1142 if(status & RNF) {
1143 fd_error = "Recalibrate error";
1144 /* reset controller */
1145 write_fdreg(FDC_CS, IRUPT);
1146 sc->curtrk = INV_TRK;
1147 return(X_ERROR);
1148 }
1149 sc->curtrk = 0;
1150 if(fd_state == FLP_STAT) {
1151 if(status & WRI_PRO)
1152 sc->flags |= FLPF_WRTPROT;
1153 break;
1154 }
1155 return(X_AGAIN);
1156 default:
1157 fd_error = "Driver error: fd_xfer_ok : Unknown state";
1158 return(X_FAIL);
1159 }
1160 return(X_OK);
1161 }
1162
1163 /*
1164 * All timeouts will call this function.
1165 */
1166 static void
1167 fdmotoroff(sc)
1168 struct fd_softc *sc;
1169 {
1170 int sps;
1171
1172 /*
1173 * Get at harware interrupt level
1174 */
1175 sps = splbio();
1176
1177 #if FLP_DEBUG
1178 printf("fdmotoroff, state = 0x%x\n", fd_state);
1179 #endif
1180
1181 switch(fd_state) {
1182 case FLP_STAT :
1183 case FLP_XFER :
1184 /*
1185 * Timeout during a transfer; cancel transaction
1186 * set command to 'IRUPT'.
1187 * A drive-interrupt is simulated to trigger the state
1188 * machine.
1189 */
1190 /*
1191 * Cancel current transaction
1192 */
1193 fd_cmd = IRUPT;
1194 write_fdreg(FDC_CS, IRUPT);
1195 delay(20);
1196 (void)read_fdreg(FDC_CS);
1197 write_fdreg(FDC_CS, RESTORE);
1198 break;
1199
1200 case FLP_MON :
1201 /*
1202 * Turn motor off.
1203 */
1204 if(selected) {
1205 int tmp;
1206
1207 st_dmagrab((dma_farg)fdcint, (dma_farg)fdmoff,
1208 sc, &tmp, 0);
1209 }
1210 else fd_state = FLP_IDLE;
1211 break;
1212 }
1213 splx(sps);
1214 }
1215
1216 /*
1217 * min byte count to whats left of the track in question
1218 */
1219 static void
1220 fdminphys(bp)
1221 struct buf *bp;
1222 {
1223 struct fd_softc *sc;
1224 int sec, toff, tsz;
1225
1226 if((sc = getsoftc(fd_cd, DISKUNIT(bp->b_dev))) == NULL)
1227 panic("fdminphys: couldn't get softc");
1228
1229 sec = bp->b_blkno % (sc->nsectors * sc->nheads);
1230 toff = sec * SECTOR_SIZE;
1231 tsz = sc->nsectors * sc->nheads * SECTOR_SIZE;
1232
1233 #ifdef FLP_DEBUG
1234 printf("fdminphys: before %ld", bp->b_bcount);
1235 #endif
1236
1237 bp->b_bcount = min(bp->b_bcount, tsz - toff);
1238
1239 #ifdef FLP_DEBUG
1240 printf(" after %ld\n", bp->b_bcount);
1241 #endif
1242
1243 minphys(bp);
1244 }
1245
1246 /*
1247 * Called from fdmotoroff to turn the motor actually off....
1248 * This can't be done in fdmotoroff itself, because exclusive access to the
1249 * DMA controller is needed to read the FDC-status register. The function
1250 * 'fdmoff()' always runs as the result of a 'dmagrab()'.
1251 * We need to test the status-register because we want to be sure that the
1252 * drive motor is really off before deselecting the drive. The FDC only
1253 * turns off the drive motor after having seen 10 index-pulses. You only
1254 * get index-pulses when a drive is selected....This means that if the
1255 * drive is deselected when the motor is still spinning, it will continue
1256 * to spin _even_ when you insert a floppy later on...
1257 */
1258 static void
1259 fdmoff(fdsoftc)
1260 struct fd_softc *fdsoftc;
1261 {
1262 int tmp;
1263
1264 if ((fd_state == FLP_MON) && selected) {
1265 tmp = read_fdreg(FDC_CS);
1266 if (!(tmp & MOTORON)) {
1267 fddeselect();
1268 fd_state = FLP_IDLE;
1269 }
1270 else timeout((FPV)fdmotoroff, (void*)fdsoftc, 10*FLP_MONDELAY);
1271 }
1272 st_dmafree(fdsoftc, &tmp);
1273 }
1274
1275 /*
1276 * Used to find out wich drives are actually connected. We do this by issueing
1277 * is 'RESTORE' command and check if the 'track-0' bit is set. This also works
1278 * if the drive is present but no floppy is inserted.
1279 */
1280 static void
1281 fdtestdrv(fdsoftc)
1282 struct fd_softc *fdsoftc;
1283 {
1284 int status;
1285
1286 /*
1287 * Select the right unit and head.
1288 */
1289 fdselect(fdsoftc->unit, 0, FLP_DD);
1290
1291 write_fdreg(FDC_CS, RESTORE|HBIT);
1292
1293 /*
1294 * Wait for about 2 seconds.
1295 */
1296 delay(2000000);
1297
1298 status = read_fdreg(FDC_CS);
1299 if(status & (RNF|BUSY)) {
1300 write_fdreg(FDC_CS, IRUPT); /* reset controller */
1301 delay(40);
1302 }
1303
1304 if(!(status & LD_T00))
1305 fdsoftc->flags |= FLPF_NOTRESP;
1306
1307 fddeselect();
1308 }
1309
1310 static void
1311 fdgetdefaultlabel(sc, lp, part)
1312 struct fd_softc *sc;
1313 struct disklabel *lp;
1314 int part;
1315 {
1316
1317 bzero(lp, sizeof(struct disklabel));
1318
1319 lp->d_secsize = SECTOR_SIZE;
1320 lp->d_ntracks = sc->nheads;
1321 lp->d_nsectors = sc->nsectors;
1322 lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
1323 lp->d_ncylinders = sc->nblocks / lp->d_secpercyl;
1324 lp->d_secperunit = sc->nblocks;
1325
1326 lp->d_type = DTYPE_FLOPPY;
1327 lp->d_rpm = 300; /* good guess I suppose. */
1328 lp->d_interleave = 1; /* FIXME: is this OK? */
1329 lp->d_bbsize = 0;
1330 lp->d_sbsize = 0;
1331 lp->d_npartitions = part + 1;
1332 lp->d_trkseek = STEP_DELAY;
1333 lp->d_magic = DISKMAGIC;
1334 lp->d_magic2 = DISKMAGIC;
1335 lp->d_checksum = dkcksum(lp);
1336 lp->d_partitions[part].p_size = lp->d_secperunit;
1337 lp->d_partitions[part].p_fstype = FS_UNUSED;
1338 lp->d_partitions[part].p_fsize = 1024;
1339 lp->d_partitions[part].p_frag = 8;
1340 }
1341
1342 /*
1343 * Build disk label. For now we only create a label from what we know
1344 * from 'sc'.
1345 */
1346 static int
1347 fdgetdisklabel(sc, dev)
1348 struct fd_softc *sc;
1349 dev_t dev;
1350 {
1351 struct disklabel *lp;
1352 int part;
1353
1354 /*
1355 * If we already got one, get out.
1356 */
1357 if(sc->flags & FLPF_HAVELAB)
1358 return(0);
1359
1360 #ifdef FLP_DEBUG
1361 printf("fdgetdisklabel()\n");
1362 #endif
1363
1364 part = RAW_PART;
1365 lp = sc->dkdev.dk_label;
1366 fdgetdefaultlabel(sc, lp, part);
1367 sc->flags |= FLPF_HAVELAB;
1368
1369 return(0);
1370 }
1371