hdfd.c revision 1.41 1 1.41 agc /* $NetBSD: hdfd.c,v 1.41 2003/08/07 16:26:59 agc Exp $ */
2 1.41 agc
3 1.41 agc /*-
4 1.41 agc * Copyright (c) 1990 The Regents of the University of California.
5 1.41 agc * All rights reserved.
6 1.41 agc *
7 1.41 agc * This code is derived from software contributed to Berkeley by
8 1.41 agc * Don Ahn.
9 1.41 agc *
10 1.41 agc * Redistribution and use in source and binary forms, with or without
11 1.41 agc * modification, are permitted provided that the following conditions
12 1.41 agc * are met:
13 1.41 agc * 1. Redistributions of source code must retain the above copyright
14 1.41 agc * notice, this list of conditions and the following disclaimer.
15 1.41 agc * 2. Redistributions in binary form must reproduce the above copyright
16 1.41 agc * notice, this list of conditions and the following disclaimer in the
17 1.41 agc * documentation and/or other materials provided with the distribution.
18 1.41 agc * 3. Neither the name of the University nor the names of its contributors
19 1.41 agc * may be used to endorse or promote products derived from this software
20 1.41 agc * without specific prior written permission.
21 1.41 agc *
22 1.41 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 1.41 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 1.41 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 1.41 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 1.41 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 1.41 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 1.41 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 1.41 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 1.41 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 1.41 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32 1.41 agc * SUCH DAMAGE.
33 1.41 agc *
34 1.41 agc * @(#)fd.c 7.4 (Berkeley) 5/25/91
35 1.41 agc */
36 1.1 leo
37 1.1 leo /*-
38 1.1 leo * Copyright (c) 1996 Leo Weppelman
39 1.1 leo * Copyright (c) 1993, 1994, 1995, 1996
40 1.1 leo * Charles M. Hannum. All rights reserved.
41 1.1 leo *
42 1.1 leo * This code is derived from software contributed to Berkeley by
43 1.1 leo * Don Ahn.
44 1.1 leo *
45 1.1 leo * Redistribution and use in source and binary forms, with or without
46 1.1 leo * modification, are permitted provided that the following conditions
47 1.1 leo * are met:
48 1.1 leo * 1. Redistributions of source code must retain the above copyright
49 1.1 leo * notice, this list of conditions and the following disclaimer.
50 1.1 leo * 2. Redistributions in binary form must reproduce the above copyright
51 1.1 leo * notice, this list of conditions and the following disclaimer in the
52 1.1 leo * documentation and/or other materials provided with the distribution.
53 1.1 leo * 3. All advertising materials mentioning features or use of this software
54 1.1 leo * must display the following acknowledgement:
55 1.1 leo * This product includes software developed by the University of
56 1.1 leo * California, Berkeley and its contributors.
57 1.1 leo * 4. Neither the name of the University nor the names of its contributors
58 1.1 leo * may be used to endorse or promote products derived from this software
59 1.1 leo * without specific prior written permission.
60 1.1 leo *
61 1.1 leo * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
62 1.1 leo * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
63 1.1 leo * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
64 1.1 leo * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
65 1.1 leo * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
66 1.1 leo * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
67 1.1 leo * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
68 1.1 leo * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
69 1.1 leo * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
70 1.1 leo * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
71 1.1 leo * SUCH DAMAGE.
72 1.1 leo *
73 1.1 leo * @(#)fd.c 7.4 (Berkeley) 5/25/91
74 1.1 leo */
75 1.1 leo
76 1.3 leo /*
77 1.3 leo * Floppy formatting facilities merged from FreeBSD fd.c driver:
78 1.3 leo * Id: fd.c,v 1.53 1995/03/12 22:40:56 joerg Exp
79 1.3 leo * which carries the same copyright/redistribution notice as shown above with
80 1.3 leo * the addition of the following statement before the "Redistribution and
81 1.3 leo * use ..." clause:
82 1.3 leo *
83 1.3 leo * Copyright (c) 1993, 1994 by
84 1.3 leo * jc (at) irbs.UUCP (John Capo)
85 1.3 leo * vak (at) zebub.msk.su (Serge Vakulenko)
86 1.3 leo * ache (at) astral.msk.su (Andrew A. Chernov)
87 1.3 leo *
88 1.3 leo * Copyright (c) 1993, 1994, 1995 by
89 1.3 leo * joerg_wunsch (at) uriah.sax.de (Joerg Wunsch)
90 1.3 leo * dufault (at) hda.com (Peter Dufault)
91 1.3 leo */
92 1.40 lukem
93 1.40 lukem #include <sys/cdefs.h>
94 1.41 agc __KERNEL_RCSID(0, "$NetBSD: hdfd.c,v 1.41 2003/08/07 16:26:59 agc Exp $");
95 1.11 jonathan
96 1.11 jonathan #include "opt_ddb.h"
97 1.3 leo
98 1.1 leo #include <sys/param.h>
99 1.1 leo #include <sys/systm.h>
100 1.20 thorpej #include <sys/callout.h>
101 1.1 leo #include <sys/kernel.h>
102 1.1 leo #include <sys/file.h>
103 1.1 leo #include <sys/ioctl.h>
104 1.1 leo #include <sys/device.h>
105 1.1 leo #include <sys/disklabel.h>
106 1.1 leo #include <sys/disk.h>
107 1.1 leo #include <sys/buf.h>
108 1.3 leo #include <sys/malloc.h>
109 1.1 leo #include <sys/uio.h>
110 1.1 leo #include <sys/syslog.h>
111 1.1 leo #include <sys/queue.h>
112 1.3 leo #include <sys/proc.h>
113 1.3 leo #include <sys/fdio.h>
114 1.1 leo #include <sys/conf.h>
115 1.1 leo #include <sys/device.h>
116 1.23 leo
117 1.23 leo #include <uvm/uvm_extern.h>
118 1.1 leo
119 1.1 leo #include <machine/cpu.h>
120 1.1 leo #include <machine/bus.h>
121 1.1 leo #include <machine/iomap.h>
122 1.1 leo #include <machine/mfp.h>
123 1.1 leo
124 1.1 leo #include <atari/dev/hdfdreg.h>
125 1.6 leo #include <atari/atari/intr.h>
126 1.1 leo #include <atari/atari/device.h>
127 1.1 leo
128 1.8 jtk #include "locators.h"
129 1.8 jtk
130 1.1 leo /*
131 1.1 leo * {b,c}devsw[] function prototypes
132 1.1 leo */
133 1.1 leo dev_type_open(fdopen);
134 1.1 leo dev_type_close(fdclose);
135 1.1 leo dev_type_read(fdread);
136 1.1 leo dev_type_write(fdwrite);
137 1.1 leo dev_type_ioctl(fdioctl);
138 1.31 gehenna dev_type_strategy(fdstrategy);
139 1.1 leo
140 1.1 leo volatile u_char *fdio_addr;
141 1.1 leo
142 1.1 leo #define wrt_fdc_reg(reg, val) { fdio_addr[reg] = val; }
143 1.1 leo #define rd_fdc_reg(reg) ( fdio_addr[reg] )
144 1.1 leo
145 1.1 leo #define fdc_ienable() MFP2->mf_ierb |= IB_DCHG;
146 1.1 leo
147 1.1 leo /*
148 1.38 wiz * Interface to the pseudo-DMA handler
149 1.1 leo */
150 1.1 leo void fddma_intr(void);
151 1.1 leo caddr_t fddmaaddr = NULL;
152 1.1 leo int fddmalen = 0;
153 1.1 leo
154 1.6 leo extern void mfp_hdfd_nf __P((void)), mfp_hdfd_fifo __P((void));
155 1.6 leo
156 1.1 leo /*
157 1.1 leo * Argument to fdcintr.....
158 1.1 leo */
159 1.1 leo static void *intr_arg = NULL; /* XXX: arg. to intr_establish() */
160 1.1 leo
161 1.1 leo
162 1.6 leo
163 1.1 leo #define FDUNIT(dev) (minor(dev) / 8)
164 1.1 leo #define FDTYPE(dev) (minor(dev) % 8)
165 1.1 leo
166 1.3 leo /* XXX misuse a flag to identify format operation */
167 1.3 leo #define B_FORMAT B_XXX
168 1.3 leo
169 1.1 leo enum fdc_state {
170 1.1 leo DEVIDLE = 0,
171 1.1 leo MOTORWAIT,
172 1.1 leo DOSEEK,
173 1.1 leo SEEKWAIT,
174 1.1 leo SEEKTIMEDOUT,
175 1.1 leo SEEKCOMPLETE,
176 1.1 leo DOIO,
177 1.1 leo IOCOMPLETE,
178 1.1 leo IOTIMEDOUT,
179 1.1 leo DORESET,
180 1.1 leo RESETCOMPLETE,
181 1.1 leo RESETTIMEDOUT,
182 1.1 leo DORECAL,
183 1.1 leo RECALWAIT,
184 1.1 leo RECALTIMEDOUT,
185 1.1 leo RECALCOMPLETE,
186 1.1 leo };
187 1.1 leo
188 1.1 leo /* software state, per controller */
189 1.1 leo struct fdc_softc {
190 1.1 leo struct device sc_dev; /* boilerplate */
191 1.20 thorpej
192 1.20 thorpej struct callout sc_timo_ch; /* timeout callout */
193 1.20 thorpej struct callout sc_intr_ch; /* pseudo-intr callout */
194 1.20 thorpej
195 1.1 leo struct fd_softc *sc_fd[4]; /* pointers to children */
196 1.1 leo TAILQ_HEAD(drivehead, fd_softc) sc_drives;
197 1.1 leo enum fdc_state sc_state;
198 1.1 leo int sc_errors; /* number of retries so far */
199 1.1 leo int sc_overruns; /* number of overruns so far */
200 1.1 leo u_char sc_status[7]; /* copy of registers */
201 1.1 leo };
202 1.1 leo
203 1.1 leo /* controller driver configuration */
204 1.5 leo int fdcprobe __P((struct device *, struct cfdata *, void *));
205 1.1 leo int fdprint __P((void *, const char *));
206 1.1 leo void fdcattach __P((struct device *, struct device *, void *));
207 1.1 leo
208 1.33 thorpej CFATTACH_DECL(fdc, sizeof(struct fdc_softc),
209 1.33 thorpej fdcprobe, fdcattach, NULL, NULL);
210 1.1 leo
211 1.1 leo /*
212 1.1 leo * Floppies come in various flavors, e.g., 1.2MB vs 1.44MB; here is how
213 1.1 leo * we tell them apart.
214 1.1 leo */
215 1.1 leo struct fd_type {
216 1.1 leo int sectrac; /* sectors per track */
217 1.1 leo int heads; /* number of heads */
218 1.1 leo int seccyl; /* sectors per cylinder */
219 1.1 leo int secsize; /* size code for sectors */
220 1.1 leo int datalen; /* data len when secsize = 0 */
221 1.1 leo int steprate; /* step rate and head unload time */
222 1.1 leo int gap1; /* gap len between sectors */
223 1.1 leo int gap2; /* formatting gap */
224 1.1 leo int tracks; /* total num of tracks */
225 1.1 leo int size; /* size of disk in sectors */
226 1.1 leo int step; /* steps per cylinder */
227 1.1 leo int rate; /* transfer speed code */
228 1.3 leo u_char fillbyte; /* format fill byte */
229 1.3 leo u_char interleave; /* interleave factor (formatting) */
230 1.1 leo char *name;
231 1.1 leo };
232 1.1 leo
233 1.1 leo /*
234 1.1 leo * The order of entries in the following table is important -- BEWARE!
235 1.1 leo * The order of the types is the same as for the TT/Falcon....
236 1.1 leo */
237 1.1 leo struct fd_type fd_types[] = {
238 1.1 leo /* 360kB in 720kB drive */
239 1.3 leo { 9,2,18,2,0xff,0xdf,0x2a,0x50,40, 720,2,FDC_125KBPS,0xf6,1,"360KB" },
240 1.1 leo /* 3.5" 720kB diskette */
241 1.3 leo { 9,2,18,2,0xff,0xdf,0x2a,0x50,80,1440,1,FDC_125KBPS,0xf6,1,"720KB" },
242 1.1 leo /* 1.44MB diskette */
243 1.3 leo { 18,2,36,2,0xff,0xcf,0x1b,0x6c,80,2880,1,FDC_250KBPS,0xf6,1,"1.44MB" },
244 1.1 leo };
245 1.1 leo
246 1.1 leo /* software state, per disk (with up to 4 disks per ctlr) */
247 1.1 leo struct fd_softc {
248 1.1 leo struct device sc_dev;
249 1.1 leo struct disk sc_dk;
250 1.1 leo
251 1.1 leo struct fd_type *sc_deftype; /* default type descriptor */
252 1.1 leo struct fd_type *sc_type; /* current type descriptor */
253 1.1 leo
254 1.22 thorpej struct callout sc_motoron_ch;
255 1.22 thorpej struct callout sc_motoroff_ch;
256 1.20 thorpej
257 1.1 leo daddr_t sc_blkno; /* starting block number */
258 1.1 leo int sc_bcount; /* byte count left */
259 1.3 leo int sc_opts; /* user-set options */
260 1.1 leo int sc_skip; /* bytes already transferred */
261 1.28 wiz int sc_nblks; /* #blocks currently transferring */
262 1.28 wiz int sc_nbytes; /* #bytes currently transferring */
263 1.1 leo
264 1.1 leo int sc_drive; /* physical unit number */
265 1.1 leo int sc_flags;
266 1.1 leo #define FD_OPEN 0x01 /* it's open */
267 1.1 leo #define FD_MOTOR 0x02 /* motor should be on */
268 1.1 leo #define FD_MOTOR_WAIT 0x04 /* motor coming up */
269 1.27 leo #define FD_HAVELAB 0x08 /* got a disklabel */
270 1.1 leo int sc_cylin; /* where we think the head is */
271 1.1 leo
272 1.1 leo void *sc_sdhook; /* saved shutdown hook for drive. */
273 1.1 leo
274 1.1 leo TAILQ_ENTRY(fd_softc) sc_drivechain;
275 1.1 leo int sc_ops; /* I/O ops since last switch */
276 1.30 hannken struct bufq_state sc_q; /* pending I/O requests */
277 1.18 thorpej int sc_active; /* number of active I/O operations */
278 1.1 leo };
279 1.1 leo
280 1.1 leo /* floppy driver configuration */
281 1.5 leo int fdprobe __P((struct device *, struct cfdata *, void *));
282 1.1 leo void fdattach __P((struct device *, struct device *, void *));
283 1.1 leo
284 1.33 thorpej CFATTACH_DECL(hdfd, sizeof(struct fd_softc),
285 1.33 thorpej fdprobe, fdattach, NULL, NULL);
286 1.1 leo
287 1.9 thorpej extern struct cfdriver hdfd_cd;
288 1.1 leo
289 1.31 gehenna const struct bdevsw fd_bdevsw = {
290 1.31 gehenna fdopen, fdclose, fdstrategy, fdioctl, nodump, nosize, D_DISK
291 1.31 gehenna };
292 1.31 gehenna
293 1.31 gehenna const struct cdevsw fd_cdevsw = {
294 1.31 gehenna fdopen, fdclose, fdread, fdwrite, fdioctl,
295 1.34 jdolecek nostop, notty, nopoll, nommap, nokqfilter, D_DISK
296 1.31 gehenna };
297 1.31 gehenna
298 1.1 leo void fdstart __P((struct fd_softc *));
299 1.1 leo
300 1.1 leo struct dkdriver fddkdriver = { fdstrategy };
301 1.1 leo
302 1.1 leo void fd_set_motor __P((struct fdc_softc *fdc, int reset));
303 1.1 leo void fd_motor_off __P((void *arg));
304 1.1 leo void fd_motor_on __P((void *arg));
305 1.1 leo int fdcresult __P((struct fdc_softc *fdc));
306 1.1 leo int out_fdc __P((u_char x));
307 1.4 leo void fdc_ctrl_intr __P((struct clockframe));
308 1.1 leo void fdcstart __P((struct fdc_softc *fdc));
309 1.1 leo void fdcstatus __P((struct device *dv, int n, char *s));
310 1.1 leo void fdctimeout __P((void *arg));
311 1.1 leo void fdcpseudointr __P((void *arg));
312 1.1 leo int fdcintr __P((void *));
313 1.1 leo void fdcretry __P((struct fdc_softc *fdc));
314 1.1 leo void fdfinish __P((struct fd_softc *fd, struct buf *bp));
315 1.3 leo int fdformat __P((dev_t, struct ne7_fd_formb *, struct proc *));
316 1.3 leo
317 1.14 leo static void fdgetdisklabel __P((struct fd_softc *, dev_t));
318 1.14 leo static void fdgetdefaultlabel __P((struct fd_softc *, struct disklabel *,
319 1.14 leo int));
320 1.14 leo
321 1.1 leo __inline struct fd_type *fd_dev_to_type __P((struct fd_softc *, dev_t));
322 1.1 leo
323 1.1 leo int
324 1.5 leo fdcprobe(parent, cfp, aux)
325 1.5 leo struct device *parent;
326 1.5 leo struct cfdata *cfp;
327 1.5 leo void *aux;
328 1.1 leo {
329 1.21 leo static int fdc_matched = 0;
330 1.10 leo bus_space_tag_t mb_tag;
331 1.1 leo
332 1.21 leo /* Match only once */
333 1.21 leo if(strcmp("fdc", aux) || fdc_matched)
334 1.1 leo return(0);
335 1.1 leo
336 1.1 leo if (!atari_realconfig)
337 1.1 leo return 0;
338 1.1 leo
339 1.10 leo if ((mb_tag = mb_alloc_bus_space_tag()) == NULL)
340 1.10 leo return 0;
341 1.10 leo
342 1.17 leo if (bus_space_map(mb_tag, FD_IOBASE, FD_IOSIZE, 0,
343 1.17 leo (caddr_t*)&fdio_addr)) {
344 1.1 leo printf("fdcprobe: cannot map io-area\n");
345 1.10 leo mb_free_bus_space_tag(mb_tag);
346 1.1 leo return (0);
347 1.1 leo }
348 1.1 leo
349 1.1 leo #ifdef FD_DEBUG
350 1.1 leo printf("fdcprobe: I/O mapping done va: %p\n", fdio_addr);
351 1.1 leo #endif
352 1.1 leo
353 1.1 leo /* reset */
354 1.1 leo wrt_fdc_reg(fdout, 0);
355 1.1 leo delay(100);
356 1.1 leo wrt_fdc_reg(fdout, FDO_FRST);
357 1.1 leo
358 1.1 leo /* see if it can handle a command */
359 1.1 leo if (out_fdc(NE7CMD_SPECIFY) < 0)
360 1.1 leo goto out;
361 1.1 leo out_fdc(0xdf);
362 1.1 leo out_fdc(7);
363 1.1 leo
364 1.21 leo fdc_matched = 1;
365 1.1 leo
366 1.1 leo out:
367 1.21 leo if (fdc_matched == 0) {
368 1.17 leo bus_space_unmap(mb_tag, (caddr_t)fdio_addr, FD_IOSIZE);
369 1.10 leo mb_free_bus_space_tag(mb_tag);
370 1.10 leo }
371 1.1 leo
372 1.21 leo return fdc_matched;
373 1.1 leo }
374 1.1 leo
375 1.1 leo /*
376 1.1 leo * Arguments passed between fdcattach and fdprobe.
377 1.1 leo */
378 1.1 leo struct fdc_attach_args {
379 1.1 leo int fa_drive;
380 1.1 leo struct fd_type *fa_deftype;
381 1.1 leo };
382 1.1 leo
383 1.1 leo /*
384 1.1 leo * Print the location of a disk drive (called just before attaching the
385 1.1 leo * the drive). If `fdc' is not NULL, the drive was found but was not
386 1.1 leo * in the system config file; print the drive name as well.
387 1.1 leo * Return QUIET (config_find ignores this if the device was configured) to
388 1.1 leo * avoid printing `fdN not configured' messages.
389 1.1 leo */
390 1.1 leo int
391 1.1 leo fdprint(aux, fdc)
392 1.1 leo void *aux;
393 1.1 leo const char *fdc;
394 1.1 leo {
395 1.1 leo register struct fdc_attach_args *fa = aux;
396 1.1 leo
397 1.1 leo if (!fdc)
398 1.36 thorpej aprint_normal(" drive %d", fa->fa_drive);
399 1.1 leo return QUIET;
400 1.1 leo }
401 1.1 leo
402 1.1 leo void
403 1.1 leo fdcattach(parent, self, aux)
404 1.1 leo struct device *parent, *self;
405 1.1 leo void *aux;
406 1.1 leo {
407 1.1 leo struct fdc_softc *fdc = (void *)self;
408 1.1 leo struct fdc_attach_args fa;
409 1.1 leo int has_fifo;
410 1.1 leo
411 1.1 leo has_fifo = 0;
412 1.1 leo
413 1.1 leo fdc->sc_state = DEVIDLE;
414 1.1 leo TAILQ_INIT(&fdc->sc_drives);
415 1.1 leo
416 1.1 leo out_fdc(NE7CMD_CONFIGURE);
417 1.1 leo if (out_fdc(0) == 0) {
418 1.1 leo out_fdc(0x1a); /* No polling, fifo depth = 10 */
419 1.1 leo out_fdc(0);
420 1.1 leo
421 1.1 leo /* Retain configuration across resets */
422 1.1 leo out_fdc(NE7CMD_LOCK);
423 1.1 leo (void)fdcresult(fdc);
424 1.1 leo has_fifo = 1;
425 1.1 leo }
426 1.1 leo else {
427 1.1 leo (void)rd_fdc_reg(fddata);
428 1.1 leo printf(": no fifo");
429 1.1 leo }
430 1.1 leo
431 1.1 leo printf("\n");
432 1.1 leo
433 1.20 thorpej callout_init(&fdc->sc_timo_ch);
434 1.20 thorpej callout_init(&fdc->sc_intr_ch);
435 1.20 thorpej
436 1.6 leo if (intr_establish(22, USER_VEC|FAST_VEC, 0,
437 1.6 leo (hw_ifun_t)(has_fifo ? mfp_hdfd_fifo : mfp_hdfd_nf),
438 1.6 leo NULL) == NULL) {
439 1.6 leo printf("fdcattach: Can't establish interrupt\n");
440 1.6 leo return;
441 1.1 leo }
442 1.1 leo
443 1.1 leo /*
444 1.1 leo * Setup the interrupt logic.
445 1.1 leo */
446 1.15 leo MFP2->mf_iprb = (u_int8_t)~IB_DCHG;
447 1.1 leo MFP2->mf_imrb |= IB_DCHG;
448 1.1 leo MFP2->mf_aer |= 0x10; /* fdc int low->high */
449 1.1 leo
450 1.1 leo /* physical limit: four drives per controller. */
451 1.1 leo for (fa.fa_drive = 0; fa.fa_drive < 4; fa.fa_drive++) {
452 1.1 leo /*
453 1.1 leo * XXX: Choose something sensible as a default...
454 1.1 leo */
455 1.1 leo fa.fa_deftype = &fd_types[2]; /* 1.44MB */
456 1.1 leo (void)config_found(self, (void *)&fa, fdprint);
457 1.1 leo }
458 1.1 leo }
459 1.1 leo
460 1.1 leo int
461 1.5 leo fdprobe(parent, cfp, aux)
462 1.5 leo struct device *parent;
463 1.5 leo struct cfdata *cfp;
464 1.5 leo void *aux;
465 1.1 leo {
466 1.1 leo struct fdc_softc *fdc = (void *)parent;
467 1.1 leo struct fdc_attach_args *fa = aux;
468 1.1 leo int drive = fa->fa_drive;
469 1.1 leo int n;
470 1.1 leo
471 1.8 jtk if (cfp->cf_loc[FDCCF_UNIT] != FDCCF_UNIT_DEFAULT &&
472 1.8 jtk cfp->cf_loc[FDCCF_UNIT] != drive)
473 1.1 leo return 0;
474 1.1 leo /*
475 1.1 leo * XXX
476 1.1 leo * This is to work around some odd interactions between this driver
477 1.1 leo * and SMC Ethernet cards.
478 1.1 leo */
479 1.8 jtk if (cfp->cf_loc[FDCCF_UNIT] == FDCCF_UNIT_DEFAULT && drive >= 2)
480 1.1 leo return 0;
481 1.1 leo
482 1.1 leo /* select drive and turn on motor */
483 1.1 leo wrt_fdc_reg(fdout, drive | FDO_FRST | FDO_MOEN(drive));
484 1.1 leo
485 1.1 leo /* wait for motor to spin up */
486 1.1 leo delay(250000);
487 1.1 leo out_fdc(NE7CMD_RECAL);
488 1.1 leo out_fdc(drive);
489 1.1 leo
490 1.1 leo /* wait for recalibrate */
491 1.1 leo delay(2000000);
492 1.1 leo out_fdc(NE7CMD_SENSEI);
493 1.1 leo n = fdcresult(fdc);
494 1.1 leo
495 1.1 leo #ifdef FD_DEBUG
496 1.1 leo {
497 1.1 leo int i;
498 1.1 leo printf("fdprobe: status");
499 1.1 leo for (i = 0; i < n; i++)
500 1.1 leo printf(" %x", fdc->sc_status[i]);
501 1.1 leo printf("\n");
502 1.1 leo }
503 1.1 leo #endif
504 1.1 leo intr_arg = (void*)fdc;
505 1.1 leo if (n != 2 || (fdc->sc_status[0] & 0xf8) != 0x20)
506 1.1 leo return 0;
507 1.1 leo /* turn off motor */
508 1.1 leo wrt_fdc_reg(fdout, FDO_FRST);
509 1.1 leo
510 1.1 leo return 1;
511 1.1 leo }
512 1.1 leo
513 1.1 leo /*
514 1.1 leo * Controller is working, and drive responded. Attach it.
515 1.1 leo */
516 1.1 leo void
517 1.1 leo fdattach(parent, self, aux)
518 1.1 leo struct device *parent, *self;
519 1.1 leo void *aux;
520 1.1 leo {
521 1.1 leo struct fdc_softc *fdc = (void *)parent;
522 1.1 leo struct fd_softc *fd = (void *)self;
523 1.1 leo struct fdc_attach_args *fa = aux;
524 1.1 leo struct fd_type *type = fa->fa_deftype;
525 1.1 leo int drive = fa->fa_drive;
526 1.1 leo
527 1.22 thorpej callout_init(&fd->sc_motoron_ch);
528 1.22 thorpej callout_init(&fd->sc_motoroff_ch);
529 1.20 thorpej
530 1.1 leo /* XXX Allow `flags' to override device type? */
531 1.1 leo
532 1.1 leo if (type)
533 1.1 leo printf(": %s %d cyl, %d head, %d sec\n", type->name,
534 1.1 leo type->tracks, type->heads, type->sectrac);
535 1.1 leo else
536 1.1 leo printf(": density unknown\n");
537 1.1 leo
538 1.30 hannken bufq_alloc(&fd->sc_q, BUFQ_DISKSORT|BUFQ_SORT_CYLINDER);
539 1.1 leo fd->sc_cylin = -1;
540 1.1 leo fd->sc_drive = drive;
541 1.1 leo fd->sc_deftype = type;
542 1.1 leo fdc->sc_fd[drive] = fd;
543 1.1 leo
544 1.1 leo /*
545 1.1 leo * Initialize and attach the disk structure.
546 1.1 leo */
547 1.1 leo fd->sc_dk.dk_name = fd->sc_dev.dv_xname;
548 1.1 leo fd->sc_dk.dk_driver = &fddkdriver;
549 1.1 leo disk_attach(&fd->sc_dk);
550 1.1 leo
551 1.1 leo /* Needed to power off if the motor is on when we halt. */
552 1.1 leo fd->sc_sdhook = shutdownhook_establish(fd_motor_off, fd);
553 1.1 leo }
554 1.1 leo
555 1.1 leo /*
556 1.1 leo * This is called from the assembly part of the interrupt handler
557 1.1 leo * when it is clear that the interrupt was not related to shoving
558 1.1 leo * data.
559 1.1 leo */
560 1.1 leo void
561 1.1 leo fdc_ctrl_intr(frame)
562 1.4 leo struct clockframe frame;
563 1.1 leo {
564 1.1 leo int s;
565 1.1 leo
566 1.1 leo /*
567 1.1 leo * Disable further interrupts. The fdcintr() routine
568 1.29 wiz * explicitly enables them when needed.
569 1.1 leo */
570 1.1 leo MFP2->mf_ierb &= ~IB_DCHG;
571 1.1 leo
572 1.1 leo /*
573 1.38 wiz * Set fddmalen to zero so no pseudo-DMA transfers will
574 1.1 leo * occur.
575 1.1 leo */
576 1.1 leo fddmalen = 0;
577 1.1 leo
578 1.4 leo if (!BASEPRI(frame.cf_sr)) {
579 1.1 leo /*
580 1.1 leo * We don't want to stay on ipl6.....
581 1.1 leo */
582 1.1 leo add_sicallback((si_farg)fdcpseudointr, intr_arg, 0);
583 1.1 leo }
584 1.1 leo else {
585 1.1 leo s = splbio();
586 1.1 leo (void) fdcintr(intr_arg);
587 1.1 leo splx(s);
588 1.1 leo }
589 1.1 leo }
590 1.1 leo
591 1.1 leo __inline struct fd_type *
592 1.1 leo fd_dev_to_type(fd, dev)
593 1.1 leo struct fd_softc *fd;
594 1.1 leo dev_t dev;
595 1.1 leo {
596 1.1 leo int type = FDTYPE(dev);
597 1.1 leo
598 1.1 leo if (type > (sizeof(fd_types) / sizeof(fd_types[0])))
599 1.1 leo return NULL;
600 1.1 leo return type ? &fd_types[type - 1] : fd->sc_deftype;
601 1.1 leo }
602 1.1 leo
603 1.1 leo void
604 1.1 leo fdstrategy(bp)
605 1.1 leo register struct buf *bp; /* IO operation to perform */
606 1.1 leo {
607 1.1 leo struct fd_softc *fd = hdfd_cd.cd_devs[FDUNIT(bp->b_dev)];
608 1.1 leo int sz;
609 1.1 leo int s;
610 1.1 leo
611 1.1 leo /* Valid unit, controller, and request? */
612 1.1 leo if (bp->b_blkno < 0 ||
613 1.3 leo ((bp->b_bcount % FDC_BSIZE) != 0 &&
614 1.3 leo (bp->b_flags & B_FORMAT) == 0)) {
615 1.1 leo bp->b_error = EINVAL;
616 1.1 leo goto bad;
617 1.1 leo }
618 1.1 leo
619 1.1 leo /* If it's a null transfer, return immediately. */
620 1.1 leo if (bp->b_bcount == 0)
621 1.1 leo goto done;
622 1.1 leo
623 1.1 leo sz = howmany(bp->b_bcount, FDC_BSIZE);
624 1.1 leo
625 1.1 leo if (bp->b_blkno + sz > fd->sc_type->size) {
626 1.1 leo sz = fd->sc_type->size - bp->b_blkno;
627 1.1 leo if (sz == 0) {
628 1.1 leo /* If exactly at end of disk, return EOF. */
629 1.1 leo goto done;
630 1.1 leo }
631 1.1 leo if (sz < 0) {
632 1.1 leo /* If past end of disk, return EINVAL. */
633 1.1 leo bp->b_error = EINVAL;
634 1.1 leo goto bad;
635 1.1 leo }
636 1.1 leo /* Otherwise, truncate request. */
637 1.1 leo bp->b_bcount = sz << DEV_BSHIFT;
638 1.1 leo }
639 1.1 leo
640 1.19 thorpej bp->b_rawblkno = bp->b_blkno;
641 1.18 thorpej bp->b_cylinder = bp->b_blkno / (FDC_BSIZE/DEV_BSIZE) / fd->sc_type->seccyl;
642 1.1 leo
643 1.1 leo #ifdef FD_DEBUG
644 1.37 thomas printf("fdstrategy: b_blkno %d b_bcount %ld blkno %qd cylin %ld sz"
645 1.1 leo " %d\n", bp->b_blkno, bp->b_bcount, (long)fd->sc_blkno,
646 1.18 thorpej bp->b_cylinder, sz);
647 1.1 leo #endif
648 1.1 leo
649 1.1 leo /* Queue transfer on drive, activate drive and controller if idle. */
650 1.1 leo s = splbio();
651 1.30 hannken BUFQ_PUT(&fd->sc_q, bp);
652 1.22 thorpej callout_stop(&fd->sc_motoroff_ch); /* a good idea */
653 1.18 thorpej if (fd->sc_active == 0)
654 1.1 leo fdstart(fd);
655 1.1 leo #ifdef DIAGNOSTIC
656 1.1 leo else {
657 1.1 leo struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
658 1.1 leo if (fdc->sc_state == DEVIDLE) {
659 1.1 leo printf("fdstrategy: controller inactive\n");
660 1.1 leo fdcstart(fdc);
661 1.1 leo }
662 1.1 leo }
663 1.1 leo #endif
664 1.1 leo splx(s);
665 1.1 leo return;
666 1.1 leo
667 1.1 leo bad:
668 1.1 leo bp->b_flags |= B_ERROR;
669 1.1 leo done:
670 1.1 leo /* Toss transfer; we're done early. */
671 1.1 leo bp->b_resid = bp->b_bcount;
672 1.1 leo biodone(bp);
673 1.1 leo }
674 1.1 leo
675 1.1 leo void
676 1.1 leo fdstart(fd)
677 1.1 leo struct fd_softc *fd;
678 1.1 leo {
679 1.1 leo struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
680 1.1 leo int active = fdc->sc_drives.tqh_first != 0;
681 1.1 leo
682 1.1 leo /* Link into controller queue. */
683 1.18 thorpej fd->sc_active = 1;
684 1.1 leo TAILQ_INSERT_TAIL(&fdc->sc_drives, fd, sc_drivechain);
685 1.1 leo
686 1.1 leo /* If controller not already active, start it. */
687 1.1 leo if (!active)
688 1.1 leo fdcstart(fdc);
689 1.1 leo }
690 1.1 leo
691 1.1 leo void
692 1.1 leo fdfinish(fd, bp)
693 1.1 leo struct fd_softc *fd;
694 1.1 leo struct buf *bp;
695 1.1 leo {
696 1.1 leo struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
697 1.1 leo
698 1.1 leo /*
699 1.1 leo * Move this drive to the end of the queue to give others a `fair'
700 1.1 leo * chance. We only force a switch if N operations are completed while
701 1.1 leo * another drive is waiting to be serviced, since there is a long motor
702 1.1 leo * startup delay whenever we switch.
703 1.1 leo */
704 1.30 hannken (void)BUFQ_GET(&fd->sc_q);
705 1.1 leo if (fd->sc_drivechain.tqe_next && ++fd->sc_ops >= 8) {
706 1.1 leo fd->sc_ops = 0;
707 1.1 leo TAILQ_REMOVE(&fdc->sc_drives, fd, sc_drivechain);
708 1.30 hannken if (BUFQ_PEEK(&fd->sc_q) != NULL)
709 1.1 leo TAILQ_INSERT_TAIL(&fdc->sc_drives, fd, sc_drivechain);
710 1.18 thorpej else
711 1.18 thorpej fd->sc_active = 0;
712 1.1 leo }
713 1.1 leo bp->b_resid = fd->sc_bcount;
714 1.1 leo fd->sc_skip = 0;
715 1.1 leo
716 1.1 leo biodone(bp);
717 1.1 leo /* turn off motor 5s from now */
718 1.22 thorpej callout_reset(&fd->sc_motoroff_ch, 5 * hz, fd_motor_off, fd);
719 1.1 leo fdc->sc_state = DEVIDLE;
720 1.1 leo }
721 1.1 leo
722 1.1 leo int
723 1.1 leo fdread(dev, uio, flags)
724 1.1 leo dev_t dev;
725 1.1 leo struct uio *uio;
726 1.1 leo int flags;
727 1.1 leo {
728 1.1 leo return (physio(fdstrategy, NULL, dev, B_READ, minphys, uio));
729 1.1 leo }
730 1.1 leo
731 1.1 leo int
732 1.1 leo fdwrite(dev, uio, flags)
733 1.1 leo dev_t dev;
734 1.1 leo struct uio *uio;
735 1.1 leo int flags;
736 1.1 leo {
737 1.1 leo return (physio(fdstrategy, NULL, dev, B_WRITE, minphys, uio));
738 1.1 leo }
739 1.1 leo
740 1.1 leo void
741 1.1 leo fd_set_motor(fdc, reset)
742 1.1 leo struct fdc_softc *fdc;
743 1.1 leo int reset;
744 1.1 leo {
745 1.1 leo struct fd_softc *fd;
746 1.1 leo u_char status;
747 1.1 leo int n;
748 1.1 leo
749 1.1 leo if ((fd = fdc->sc_drives.tqh_first) != NULL)
750 1.1 leo status = fd->sc_drive;
751 1.1 leo else
752 1.1 leo status = 0;
753 1.1 leo if (!reset)
754 1.1 leo status |= FDO_FRST | FDO_FDMAEN;
755 1.1 leo for (n = 0; n < 4; n++)
756 1.1 leo if ((fd = fdc->sc_fd[n]) && (fd->sc_flags & FD_MOTOR))
757 1.1 leo status |= FDO_MOEN(n);
758 1.1 leo wrt_fdc_reg(fdout, status);
759 1.1 leo }
760 1.1 leo
761 1.1 leo void
762 1.1 leo fd_motor_off(arg)
763 1.1 leo void *arg;
764 1.1 leo {
765 1.1 leo struct fd_softc *fd = arg;
766 1.1 leo int s;
767 1.1 leo
768 1.1 leo s = splbio();
769 1.1 leo fd->sc_flags &= ~(FD_MOTOR | FD_MOTOR_WAIT);
770 1.1 leo fd_set_motor((struct fdc_softc *)fd->sc_dev.dv_parent, 0);
771 1.1 leo splx(s);
772 1.1 leo }
773 1.1 leo
774 1.1 leo void
775 1.1 leo fd_motor_on(arg)
776 1.1 leo void *arg;
777 1.1 leo {
778 1.1 leo struct fd_softc *fd = arg;
779 1.1 leo struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
780 1.1 leo int s;
781 1.1 leo
782 1.1 leo s = splbio();
783 1.1 leo fd->sc_flags &= ~FD_MOTOR_WAIT;
784 1.1 leo if ((fdc->sc_drives.tqh_first == fd) && (fdc->sc_state == MOTORWAIT))
785 1.1 leo (void) fdcintr(fdc);
786 1.1 leo splx(s);
787 1.1 leo }
788 1.1 leo
789 1.1 leo int
790 1.1 leo fdcresult(fdc)
791 1.1 leo struct fdc_softc *fdc;
792 1.1 leo {
793 1.1 leo u_char i;
794 1.1 leo int j = 100000,
795 1.1 leo n = 0;
796 1.1 leo
797 1.1 leo for (; j; j--) {
798 1.1 leo i = rd_fdc_reg(fdsts) & (NE7_DIO | NE7_RQM | NE7_CB);
799 1.1 leo if (i == NE7_RQM)
800 1.1 leo return n;
801 1.1 leo if (i == (NE7_DIO | NE7_RQM | NE7_CB)) {
802 1.1 leo if (n >= sizeof(fdc->sc_status)) {
803 1.1 leo log(LOG_ERR, "fdcresult: overrun\n");
804 1.1 leo return -1;
805 1.1 leo }
806 1.1 leo fdc->sc_status[n++] = rd_fdc_reg(fddata);
807 1.1 leo }
808 1.3 leo else delay(10);
809 1.1 leo }
810 1.1 leo log(LOG_ERR, "fdcresult: timeout\n");
811 1.1 leo return -1;
812 1.1 leo }
813 1.1 leo
814 1.1 leo int
815 1.1 leo out_fdc(x)
816 1.1 leo u_char x;
817 1.1 leo {
818 1.1 leo int i = 100000;
819 1.1 leo
820 1.3 leo while (((rd_fdc_reg(fdsts) & (NE7_DIO|NE7_RQM)) != NE7_RQM) && i-- > 0)
821 1.3 leo delay(1);
822 1.1 leo if (i <= 0)
823 1.1 leo return -1;
824 1.1 leo wrt_fdc_reg(fddata, x);
825 1.1 leo return 0;
826 1.1 leo }
827 1.1 leo
828 1.1 leo int
829 1.1 leo fdopen(dev, flags, mode, p)
830 1.1 leo dev_t dev;
831 1.1 leo int flags;
832 1.1 leo int mode;
833 1.1 leo struct proc *p;
834 1.1 leo {
835 1.1 leo int unit;
836 1.1 leo struct fd_softc *fd;
837 1.1 leo struct fd_type *type;
838 1.1 leo
839 1.1 leo unit = FDUNIT(dev);
840 1.1 leo if (unit >= hdfd_cd.cd_ndevs)
841 1.1 leo return ENXIO;
842 1.1 leo fd = hdfd_cd.cd_devs[unit];
843 1.1 leo if (fd == 0)
844 1.1 leo return ENXIO;
845 1.1 leo type = fd_dev_to_type(fd, dev);
846 1.1 leo if (type == NULL)
847 1.1 leo return ENXIO;
848 1.1 leo
849 1.1 leo if ((fd->sc_flags & FD_OPEN) != 0 &&
850 1.1 leo fd->sc_type != type)
851 1.1 leo return EBUSY;
852 1.1 leo
853 1.1 leo fd->sc_type = type;
854 1.1 leo fd->sc_cylin = -1;
855 1.1 leo fd->sc_flags |= FD_OPEN;
856 1.27 leo fdgetdisklabel(fd, dev);
857 1.1 leo
858 1.1 leo return 0;
859 1.1 leo }
860 1.1 leo
861 1.1 leo int
862 1.1 leo fdclose(dev, flags, mode, p)
863 1.1 leo dev_t dev;
864 1.1 leo int flags;
865 1.1 leo int mode;
866 1.1 leo struct proc *p;
867 1.1 leo {
868 1.1 leo struct fd_softc *fd = hdfd_cd.cd_devs[FDUNIT(dev)];
869 1.1 leo
870 1.27 leo fd->sc_flags &= ~(FD_OPEN|FD_HAVELAB);
871 1.3 leo fd->sc_opts &= ~(FDOPT_NORETRY|FDOPT_SILENT);
872 1.1 leo return 0;
873 1.1 leo }
874 1.1 leo
875 1.1 leo void
876 1.1 leo fdcstart(fdc)
877 1.1 leo struct fdc_softc *fdc;
878 1.1 leo {
879 1.1 leo
880 1.1 leo #ifdef DIAGNOSTIC
881 1.1 leo /* only got here if controller's drive queue was inactive; should
882 1.1 leo be in idle state */
883 1.1 leo if (fdc->sc_state != DEVIDLE) {
884 1.1 leo printf("fdcstart: not idle\n");
885 1.1 leo return;
886 1.1 leo }
887 1.1 leo #endif
888 1.1 leo (void) fdcintr(fdc);
889 1.1 leo }
890 1.1 leo
891 1.1 leo void
892 1.1 leo fdcstatus(dv, n, s)
893 1.1 leo struct device *dv;
894 1.1 leo int n;
895 1.1 leo char *s;
896 1.1 leo {
897 1.1 leo struct fdc_softc *fdc = (void *)dv->dv_parent;
898 1.2 thorpej char bits[64];
899 1.1 leo
900 1.1 leo if (n == 0) {
901 1.1 leo out_fdc(NE7CMD_SENSEI);
902 1.1 leo (void) fdcresult(fdc);
903 1.1 leo n = 2;
904 1.1 leo }
905 1.1 leo
906 1.1 leo printf("%s: %s", dv->dv_xname, s);
907 1.1 leo
908 1.1 leo switch (n) {
909 1.1 leo case 0:
910 1.1 leo printf("\n");
911 1.1 leo break;
912 1.1 leo case 2:
913 1.2 thorpej printf(" (st0 %s cyl %d)\n",
914 1.2 thorpej bitmask_snprintf(fdc->sc_status[0], NE7_ST0BITS,
915 1.2 thorpej bits, sizeof(bits)), fdc->sc_status[1]);
916 1.1 leo break;
917 1.1 leo case 7:
918 1.2 thorpej printf(" (st0 %s", bitmask_snprintf(fdc->sc_status[0],
919 1.2 thorpej NE7_ST0BITS, bits, sizeof(bits)));
920 1.2 thorpej printf(" st1 %s", bitmask_snprintf(fdc->sc_status[1],
921 1.2 thorpej NE7_ST1BITS, bits, sizeof(bits)));
922 1.2 thorpej printf(" st2 %s", bitmask_snprintf(fdc->sc_status[2],
923 1.2 thorpej NE7_ST2BITS, bits, sizeof(bits)));
924 1.2 thorpej printf(" cyl %d head %d sec %d)\n",
925 1.1 leo fdc->sc_status[3], fdc->sc_status[4], fdc->sc_status[5]);
926 1.1 leo break;
927 1.1 leo #ifdef DIAGNOSTIC
928 1.1 leo default:
929 1.1 leo printf("\nfdcstatus: weird size");
930 1.1 leo break;
931 1.1 leo #endif
932 1.1 leo }
933 1.1 leo }
934 1.1 leo
935 1.1 leo void
936 1.1 leo fdctimeout(arg)
937 1.1 leo void *arg;
938 1.1 leo {
939 1.1 leo struct fdc_softc *fdc = arg;
940 1.1 leo struct fd_softc *fd = fdc->sc_drives.tqh_first;
941 1.1 leo int s;
942 1.1 leo
943 1.1 leo s = splbio();
944 1.1 leo fdcstatus(&fd->sc_dev, 0, "timeout");
945 1.1 leo
946 1.30 hannken if (BUFQ_PEEK(&fd->sc_q) != NULL)
947 1.1 leo fdc->sc_state++;
948 1.1 leo else
949 1.1 leo fdc->sc_state = DEVIDLE;
950 1.1 leo
951 1.1 leo (void) fdcintr(fdc);
952 1.1 leo splx(s);
953 1.1 leo }
954 1.1 leo
955 1.1 leo void
956 1.1 leo fdcpseudointr(arg)
957 1.1 leo void *arg;
958 1.1 leo {
959 1.1 leo int s;
960 1.1 leo
961 1.1 leo /* Just ensure it has the right spl. */
962 1.1 leo s = splbio();
963 1.1 leo (void) fdcintr(arg);
964 1.1 leo splx(s);
965 1.1 leo }
966 1.1 leo
967 1.1 leo int
968 1.1 leo fdcintr(arg)
969 1.1 leo void *arg;
970 1.1 leo {
971 1.3 leo struct fdc_softc *fdc = arg;
972 1.1 leo #define st0 fdc->sc_status[0]
973 1.1 leo #define st1 fdc->sc_status[1]
974 1.1 leo #define cyl fdc->sc_status[1]
975 1.3 leo
976 1.3 leo struct fd_softc *fd;
977 1.3 leo struct buf *bp;
978 1.3 leo int read, head, sec, i, nblks;
979 1.3 leo struct fd_type *type;
980 1.3 leo struct ne7_fd_formb *finfo = NULL;
981 1.1 leo
982 1.1 leo loop:
983 1.1 leo /* Is there a drive for the controller to do a transfer with? */
984 1.1 leo fd = fdc->sc_drives.tqh_first;
985 1.1 leo if (fd == NULL) {
986 1.1 leo fdc->sc_state = DEVIDLE;
987 1.1 leo return 1;
988 1.1 leo }
989 1.1 leo
990 1.1 leo /* Is there a transfer to this drive? If not, deactivate drive. */
991 1.30 hannken bp = BUFQ_PEEK(&fd->sc_q);
992 1.1 leo if (bp == NULL) {
993 1.1 leo fd->sc_ops = 0;
994 1.1 leo TAILQ_REMOVE(&fdc->sc_drives, fd, sc_drivechain);
995 1.18 thorpej fd->sc_active = 0;
996 1.1 leo goto loop;
997 1.1 leo }
998 1.1 leo
999 1.3 leo if (bp->b_flags & B_FORMAT)
1000 1.3 leo finfo = (struct ne7_fd_formb *)bp->b_data;
1001 1.3 leo
1002 1.1 leo switch (fdc->sc_state) {
1003 1.1 leo case DEVIDLE:
1004 1.1 leo fdc->sc_errors = 0;
1005 1.1 leo fdc->sc_overruns = 0;
1006 1.1 leo fd->sc_skip = 0;
1007 1.1 leo fd->sc_bcount = bp->b_bcount;
1008 1.1 leo fd->sc_blkno = bp->b_blkno / (FDC_BSIZE / DEV_BSIZE);
1009 1.22 thorpej callout_stop(&fd->sc_motoroff_ch);
1010 1.1 leo if ((fd->sc_flags & FD_MOTOR_WAIT) != 0) {
1011 1.1 leo fdc->sc_state = MOTORWAIT;
1012 1.1 leo return 1;
1013 1.1 leo }
1014 1.1 leo if ((fd->sc_flags & FD_MOTOR) == 0) {
1015 1.1 leo /* Turn on the motor, being careful about pairing. */
1016 1.1 leo struct fd_softc *ofd = fdc->sc_fd[fd->sc_drive ^ 1];
1017 1.1 leo if (ofd && ofd->sc_flags & FD_MOTOR) {
1018 1.22 thorpej callout_stop(&ofd->sc_motoroff_ch);
1019 1.1 leo ofd->sc_flags &= ~(FD_MOTOR | FD_MOTOR_WAIT);
1020 1.1 leo }
1021 1.1 leo fd->sc_flags |= FD_MOTOR | FD_MOTOR_WAIT;
1022 1.1 leo fd_set_motor(fdc, 0);
1023 1.1 leo fdc->sc_state = MOTORWAIT;
1024 1.1 leo /* Allow .25s for motor to stabilize. */
1025 1.22 thorpej callout_reset(&fd->sc_motoron_ch, hz / 4,
1026 1.20 thorpej fd_motor_on, fd);
1027 1.1 leo return 1;
1028 1.1 leo }
1029 1.1 leo /* Make sure the right drive is selected. */
1030 1.1 leo fd_set_motor(fdc, 0);
1031 1.1 leo
1032 1.1 leo /* fall through */
1033 1.1 leo case DOSEEK:
1034 1.1 leo doseek:
1035 1.18 thorpej if (fd->sc_cylin == bp->b_cylinder)
1036 1.1 leo goto doio;
1037 1.1 leo
1038 1.1 leo out_fdc(NE7CMD_SPECIFY);/* specify command */
1039 1.1 leo out_fdc(fd->sc_type->steprate);
1040 1.38 wiz out_fdc(0x7); /* XXX head load time == 6ms - non-DMA */
1041 1.1 leo
1042 1.1 leo fdc_ienable();
1043 1.1 leo
1044 1.1 leo out_fdc(NE7CMD_SEEK); /* seek function */
1045 1.1 leo out_fdc(fd->sc_drive); /* drive number */
1046 1.18 thorpej out_fdc(bp->b_cylinder * fd->sc_type->step);
1047 1.1 leo
1048 1.1 leo fd->sc_cylin = -1;
1049 1.1 leo fdc->sc_state = SEEKWAIT;
1050 1.1 leo
1051 1.1 leo fd->sc_dk.dk_seek++;
1052 1.1 leo disk_busy(&fd->sc_dk);
1053 1.1 leo
1054 1.20 thorpej callout_reset(&fdc->sc_timo_ch, 4 * hz, fdctimeout, fdc);
1055 1.1 leo return 1;
1056 1.1 leo
1057 1.1 leo case DOIO:
1058 1.1 leo doio:
1059 1.3 leo if (finfo)
1060 1.3 leo fd->sc_skip = (char *)&(finfo->fd_formb_cylno(0)) -
1061 1.3 leo (char *)finfo;
1062 1.3 leo
1063 1.1 leo type = fd->sc_type;
1064 1.1 leo sec = fd->sc_blkno % type->seccyl;
1065 1.1 leo head = sec / type->sectrac;
1066 1.1 leo sec -= head * type->sectrac;
1067 1.1 leo nblks = type->sectrac - sec;
1068 1.1 leo nblks = min(nblks, fd->sc_bcount / FDC_BSIZE);
1069 1.1 leo nblks = min(nblks, FDC_MAXIOSIZE / FDC_BSIZE);
1070 1.1 leo fd->sc_nblks = nblks;
1071 1.3 leo fd->sc_nbytes = finfo ? bp->b_bcount : nblks * FDC_BSIZE;
1072 1.1 leo #ifdef DIAGNOSTIC
1073 1.1 leo {
1074 1.1 leo int block;
1075 1.1 leo
1076 1.1 leo block = (fd->sc_cylin * type->heads + head)
1077 1.1 leo * type->sectrac + sec;
1078 1.1 leo if (block != fd->sc_blkno) {
1079 1.37 thomas printf("fdcintr: block %d != blkno %qd\n",
1080 1.1 leo block, fd->sc_blkno);
1081 1.1 leo #ifdef DDB
1082 1.1 leo Debugger();
1083 1.1 leo #endif
1084 1.1 leo }
1085 1.1 leo }
1086 1.1 leo #endif
1087 1.1 leo read = bp->b_flags & B_READ ? 1 : 0;
1088 1.1 leo
1089 1.1 leo /*
1090 1.38 wiz * Setup pseudo-DMA address & count
1091 1.1 leo */
1092 1.1 leo fddmaaddr = bp->b_data + fd->sc_skip;
1093 1.1 leo fddmalen = fd->sc_nbytes;
1094 1.1 leo
1095 1.1 leo wrt_fdc_reg(fdctl, type->rate);
1096 1.1 leo #ifdef FD_DEBUG
1097 1.1 leo printf("fdcintr: %s drive %d track %d head %d sec %d"
1098 1.1 leo " nblks %d\n", read ? "read" : "write",
1099 1.1 leo fd->sc_drive, fd->sc_cylin, head, sec, nblks);
1100 1.1 leo #endif
1101 1.1 leo fdc_ienable();
1102 1.1 leo
1103 1.3 leo if (finfo) {
1104 1.3 leo /* formatting */
1105 1.3 leo if (out_fdc(NE7CMD_FORMAT) < 0) {
1106 1.3 leo fdc->sc_errors = 4;
1107 1.3 leo fdcretry(fdc);
1108 1.3 leo goto loop;
1109 1.3 leo }
1110 1.3 leo out_fdc((head << 2) | fd->sc_drive);
1111 1.3 leo out_fdc(finfo->fd_formb_secshift);
1112 1.3 leo out_fdc(finfo->fd_formb_nsecs);
1113 1.3 leo out_fdc(finfo->fd_formb_gaplen);
1114 1.3 leo out_fdc(finfo->fd_formb_fillbyte);
1115 1.3 leo } else {
1116 1.3 leo if (read)
1117 1.3 leo out_fdc(NE7CMD_READ); /* READ */
1118 1.3 leo else
1119 1.3 leo out_fdc(NE7CMD_WRITE); /* WRITE */
1120 1.3 leo out_fdc((head << 2) | fd->sc_drive);
1121 1.3 leo out_fdc(fd->sc_cylin); /* track */
1122 1.3 leo out_fdc(head); /* head */
1123 1.3 leo out_fdc(sec + 1); /* sector +1 */
1124 1.3 leo out_fdc(type->secsize); /* sector size */
1125 1.3 leo out_fdc(sec + nblks); /* last sectors */
1126 1.3 leo out_fdc(type->gap1); /* gap1 size */
1127 1.3 leo out_fdc(type->datalen); /* data length */
1128 1.3 leo }
1129 1.1 leo fdc->sc_state = IOCOMPLETE;
1130 1.1 leo
1131 1.1 leo disk_busy(&fd->sc_dk);
1132 1.1 leo
1133 1.1 leo /* allow 2 seconds for operation */
1134 1.20 thorpej callout_reset(&fdc->sc_timo_ch, 2 * hz, fdctimeout, fdc);
1135 1.1 leo return 1; /* will return later */
1136 1.1 leo
1137 1.1 leo case SEEKWAIT:
1138 1.20 thorpej callout_stop(&fdc->sc_timo_ch);
1139 1.1 leo fdc->sc_state = SEEKCOMPLETE;
1140 1.1 leo /* allow 1/50 second for heads to settle */
1141 1.20 thorpej callout_reset(&fdc->sc_intr_ch, hz / 50, fdcpseudointr, fdc);
1142 1.1 leo return 1;
1143 1.1 leo
1144 1.1 leo case SEEKCOMPLETE:
1145 1.35 mrg /* no data on seek */
1146 1.35 mrg disk_unbusy(&fd->sc_dk, 0, 0);
1147 1.1 leo
1148 1.1 leo /* Make sure seek really happened. */
1149 1.1 leo out_fdc(NE7CMD_SENSEI);
1150 1.1 leo if (fdcresult(fdc) != 2 || (st0 & 0xf8) != 0x20 ||
1151 1.18 thorpej cyl != bp->b_cylinder * fd->sc_type->step) {
1152 1.1 leo #ifdef FD_DEBUG
1153 1.1 leo fdcstatus(&fd->sc_dev, 2, "seek failed");
1154 1.1 leo #endif
1155 1.1 leo fdcretry(fdc);
1156 1.1 leo goto loop;
1157 1.1 leo }
1158 1.18 thorpej fd->sc_cylin = bp->b_cylinder;
1159 1.1 leo goto doio;
1160 1.1 leo
1161 1.1 leo case IOTIMEDOUT:
1162 1.1 leo case SEEKTIMEDOUT:
1163 1.1 leo case RECALTIMEDOUT:
1164 1.1 leo case RESETTIMEDOUT:
1165 1.1 leo fdcretry(fdc);
1166 1.1 leo goto loop;
1167 1.1 leo
1168 1.1 leo case IOCOMPLETE: /* IO DONE, post-analyze */
1169 1.20 thorpej callout_stop(&fdc->sc_timo_ch);
1170 1.1 leo
1171 1.35 mrg disk_unbusy(&fd->sc_dk, (bp->b_bcount - bp->b_resid),
1172 1.35 mrg (bp->b_flags & B_READ));
1173 1.1 leo
1174 1.1 leo if (fdcresult(fdc) != 7 || (st1 & 0x37) != 0) {
1175 1.1 leo /*
1176 1.1 leo * As the damn chip doesn't seem to have a FIFO,
1177 1.1 leo * accept a few overruns as a fact of life *sigh*
1178 1.1 leo */
1179 1.1 leo if ((st1 & 0x10) && (++fdc->sc_overruns < 4)) {
1180 1.1 leo fdc->sc_state = DOSEEK;
1181 1.1 leo goto loop;
1182 1.1 leo }
1183 1.1 leo #ifdef FD_DEBUG
1184 1.1 leo fdcstatus(&fd->sc_dev, 7, bp->b_flags & B_READ ?
1185 1.1 leo "read failed" : "write failed");
1186 1.37 thomas printf("blkno %qd nblks %d\n",
1187 1.1 leo fd->sc_blkno, fd->sc_nblks);
1188 1.1 leo #endif
1189 1.1 leo fdcretry(fdc);
1190 1.1 leo goto loop;
1191 1.1 leo }
1192 1.1 leo if (fdc->sc_errors) {
1193 1.1 leo diskerr(bp, "fd", "soft error", LOG_PRINTF,
1194 1.1 leo fd->sc_skip / FDC_BSIZE, (struct disklabel *)NULL);
1195 1.1 leo printf("\n");
1196 1.1 leo fdc->sc_errors = 0;
1197 1.1 leo }
1198 1.1 leo fdc->sc_overruns = 0;
1199 1.1 leo fd->sc_blkno += fd->sc_nblks;
1200 1.1 leo fd->sc_skip += fd->sc_nbytes;
1201 1.1 leo fd->sc_bcount -= fd->sc_nbytes;
1202 1.3 leo if (!finfo && fd->sc_bcount > 0) {
1203 1.18 thorpej bp->b_cylinder = fd->sc_blkno / fd->sc_type->seccyl;
1204 1.1 leo goto doseek;
1205 1.1 leo }
1206 1.1 leo fdfinish(fd, bp);
1207 1.1 leo goto loop;
1208 1.1 leo
1209 1.1 leo case DORESET:
1210 1.1 leo /* try a reset, keep motor on */
1211 1.1 leo fd_set_motor(fdc, 1);
1212 1.1 leo delay(100);
1213 1.1 leo fd_set_motor(fdc, 0);
1214 1.1 leo fdc->sc_state = RESETCOMPLETE;
1215 1.20 thorpej callout_reset(&fdc->sc_timo_ch, hz / 2, fdctimeout, fdc);
1216 1.1 leo return 1; /* will return later */
1217 1.1 leo
1218 1.1 leo case RESETCOMPLETE:
1219 1.20 thorpej callout_stop(&fdc->sc_timo_ch);
1220 1.1 leo /* clear the controller output buffer */
1221 1.1 leo for (i = 0; i < 4; i++) {
1222 1.1 leo out_fdc(NE7CMD_SENSEI);
1223 1.1 leo (void) fdcresult(fdc);
1224 1.1 leo }
1225 1.1 leo
1226 1.1 leo /* fall through */
1227 1.1 leo case DORECAL:
1228 1.1 leo fdc_ienable();
1229 1.1 leo
1230 1.1 leo out_fdc(NE7CMD_RECAL); /* recalibrate function */
1231 1.1 leo out_fdc(fd->sc_drive);
1232 1.1 leo fdc->sc_state = RECALWAIT;
1233 1.20 thorpej callout_reset(&fdc->sc_timo_ch, 5 * hz, fdctimeout, fdc);
1234 1.1 leo return 1; /* will return later */
1235 1.1 leo
1236 1.1 leo case RECALWAIT:
1237 1.20 thorpej callout_stop(&fdc->sc_timo_ch);
1238 1.1 leo fdc->sc_state = RECALCOMPLETE;
1239 1.1 leo /* allow 1/30 second for heads to settle */
1240 1.20 thorpej callout_reset(&fdc->sc_intr_ch, hz / 30, fdcpseudointr, fdc);
1241 1.1 leo return 1; /* will return later */
1242 1.1 leo
1243 1.1 leo case RECALCOMPLETE:
1244 1.1 leo out_fdc(NE7CMD_SENSEI);
1245 1.1 leo if (fdcresult(fdc) != 2 || (st0 & 0xf8) != 0x20 || cyl != 0) {
1246 1.1 leo #ifdef FD_DEBUG
1247 1.1 leo fdcstatus(&fd->sc_dev, 2, "recalibrate failed");
1248 1.1 leo #endif
1249 1.1 leo fdcretry(fdc);
1250 1.1 leo goto loop;
1251 1.1 leo }
1252 1.1 leo fd->sc_cylin = 0;
1253 1.1 leo goto doseek;
1254 1.1 leo
1255 1.1 leo case MOTORWAIT:
1256 1.1 leo if (fd->sc_flags & FD_MOTOR_WAIT)
1257 1.1 leo return 1; /* time's not up yet */
1258 1.1 leo goto doseek;
1259 1.1 leo
1260 1.1 leo default:
1261 1.1 leo fdcstatus(&fd->sc_dev, 0, "stray interrupt");
1262 1.1 leo return 1;
1263 1.1 leo }
1264 1.1 leo #ifdef DIAGNOSTIC
1265 1.1 leo panic("fdcintr: impossible");
1266 1.1 leo #endif
1267 1.1 leo #undef st0
1268 1.1 leo #undef st1
1269 1.1 leo #undef cyl
1270 1.1 leo }
1271 1.1 leo
1272 1.1 leo void
1273 1.1 leo fdcretry(fdc)
1274 1.1 leo struct fdc_softc *fdc;
1275 1.1 leo {
1276 1.2 thorpej char bits[64];
1277 1.1 leo struct fd_softc *fd;
1278 1.1 leo struct buf *bp;
1279 1.1 leo
1280 1.1 leo fd = fdc->sc_drives.tqh_first;
1281 1.30 hannken bp = BUFQ_PEEK(&fd->sc_q);
1282 1.1 leo
1283 1.3 leo if (fd->sc_opts & FDOPT_NORETRY)
1284 1.3 leo goto fail;
1285 1.3 leo
1286 1.1 leo switch (fdc->sc_errors) {
1287 1.1 leo case 0:
1288 1.1 leo /* try again */
1289 1.1 leo fdc->sc_state = DOSEEK;
1290 1.1 leo break;
1291 1.1 leo
1292 1.1 leo case 1: case 2: case 3:
1293 1.1 leo /* didn't work; try recalibrating */
1294 1.1 leo fdc->sc_state = DORECAL;
1295 1.1 leo break;
1296 1.1 leo
1297 1.1 leo case 4:
1298 1.1 leo /* still no go; reset the bastard */
1299 1.1 leo fdc->sc_state = DORESET;
1300 1.1 leo break;
1301 1.1 leo
1302 1.1 leo default:
1303 1.3 leo fail:
1304 1.3 leo if ((fd->sc_opts & FDOPT_SILENT) == 0) {
1305 1.3 leo diskerr(bp, "fd", "hard error", LOG_PRINTF,
1306 1.3 leo fd->sc_skip / FDC_BSIZE,
1307 1.3 leo (struct disklabel *)NULL);
1308 1.3 leo
1309 1.3 leo printf(" (st0 %s",
1310 1.3 leo bitmask_snprintf(fdc->sc_status[0],
1311 1.3 leo NE7_ST0BITS, bits,
1312 1.3 leo sizeof(bits)));
1313 1.3 leo printf(" st1 %s",
1314 1.3 leo bitmask_snprintf(fdc->sc_status[1],
1315 1.3 leo NE7_ST1BITS, bits,
1316 1.3 leo sizeof(bits)));
1317 1.3 leo printf(" st2 %s",
1318 1.3 leo bitmask_snprintf(fdc->sc_status[2],
1319 1.3 leo NE7_ST2BITS, bits,
1320 1.3 leo sizeof(bits)));
1321 1.3 leo printf(" cyl %d head %d sec %d)\n",
1322 1.3 leo fdc->sc_status[3],
1323 1.3 leo fdc->sc_status[4],
1324 1.3 leo fdc->sc_status[5]);
1325 1.3 leo }
1326 1.1 leo bp->b_flags |= B_ERROR;
1327 1.1 leo bp->b_error = EIO;
1328 1.1 leo fdfinish(fd, bp);
1329 1.1 leo }
1330 1.1 leo fdc->sc_errors++;
1331 1.1 leo }
1332 1.1 leo
1333 1.1 leo int
1334 1.1 leo fdioctl(dev, cmd, addr, flag, p)
1335 1.1 leo dev_t dev;
1336 1.1 leo u_long cmd;
1337 1.1 leo caddr_t addr;
1338 1.1 leo int flag;
1339 1.1 leo struct proc *p;
1340 1.1 leo {
1341 1.1 leo struct fd_softc *fd;
1342 1.1 leo struct disklabel buffer;
1343 1.3 leo int error;
1344 1.3 leo struct fdformat_parms *form_parms;
1345 1.3 leo struct fdformat_cmd *form_cmd;
1346 1.26 nathanw struct ne7_fd_formb *fd_formb;
1347 1.3 leo unsigned int scratch;
1348 1.3 leo int il[FD_MAX_NSEC + 1];
1349 1.3 leo register int i, j;
1350 1.1 leo
1351 1.1 leo fd = hdfd_cd.cd_devs[FDUNIT(dev)];
1352 1.1 leo
1353 1.1 leo switch (cmd) {
1354 1.1 leo case DIOCGDINFO:
1355 1.14 leo fdgetdisklabel(fd, dev);
1356 1.14 leo *(struct disklabel *)addr = *(fd->sc_dk.dk_label);
1357 1.14 leo return 0;
1358 1.1 leo
1359 1.14 leo case DIOCGPART:
1360 1.14 leo fdgetdisklabel(fd, dev);
1361 1.14 leo ((struct partinfo *)addr)->disklab = fd->sc_dk.dk_label;
1362 1.14 leo ((struct partinfo *)addr)->part =
1363 1.14 leo &fd->sc_dk.dk_label->d_partitions[RAW_PART];
1364 1.14 leo return(0);
1365 1.1 leo
1366 1.1 leo case DIOCWLABEL:
1367 1.1 leo if ((flag & FWRITE) == 0)
1368 1.1 leo return EBADF;
1369 1.1 leo /* XXX do something */
1370 1.1 leo return 0;
1371 1.1 leo
1372 1.16 leo case DIOCSDINFO:
1373 1.1 leo case DIOCWDINFO:
1374 1.1 leo if ((flag & FWRITE) == 0)
1375 1.16 leo return EBADF;
1376 1.1 leo
1377 1.27 leo fd->sc_flags &= ~FD_HAVELAB; /* Invalid */
1378 1.3 leo error = setdisklabel(&buffer, (struct disklabel *)addr, 0,NULL);
1379 1.1 leo if (error)
1380 1.16 leo return error;
1381 1.1 leo
1382 1.16 leo if (cmd == DIOCWDINFO)
1383 1.16 leo error = writedisklabel(dev, fdstrategy, &buffer, NULL);
1384 1.1 leo return error;
1385 1.1 leo
1386 1.3 leo case FDIOCGETFORMAT:
1387 1.3 leo form_parms = (struct fdformat_parms *)addr;
1388 1.3 leo form_parms->fdformat_version = FDFORMAT_VERSION;
1389 1.3 leo form_parms->nbps = 128 * (1 << fd->sc_type->secsize);
1390 1.3 leo form_parms->ncyl = fd->sc_type->tracks;
1391 1.3 leo form_parms->nspt = fd->sc_type->sectrac;
1392 1.3 leo form_parms->ntrk = fd->sc_type->heads;
1393 1.3 leo form_parms->stepspercyl = fd->sc_type->step;
1394 1.3 leo form_parms->gaplen = fd->sc_type->gap2;
1395 1.3 leo form_parms->fillbyte = fd->sc_type->fillbyte;
1396 1.3 leo form_parms->interleave = fd->sc_type->interleave;
1397 1.3 leo switch (fd->sc_type->rate) {
1398 1.3 leo case FDC_500KBPS:
1399 1.3 leo form_parms->xfer_rate = 500 * 1024;
1400 1.3 leo break;
1401 1.3 leo case FDC_300KBPS:
1402 1.3 leo form_parms->xfer_rate = 300 * 1024;
1403 1.3 leo break;
1404 1.3 leo case FDC_250KBPS:
1405 1.3 leo form_parms->xfer_rate = 250 * 1024;
1406 1.3 leo break;
1407 1.7 leo case FDC_125KBPS:
1408 1.7 leo form_parms->xfer_rate = 125 * 1024;
1409 1.7 leo break;
1410 1.3 leo default:
1411 1.3 leo return EINVAL;
1412 1.3 leo }
1413 1.3 leo return 0;
1414 1.3 leo
1415 1.3 leo case FDIOCSETFORMAT:
1416 1.3 leo if((flag & FWRITE) == 0)
1417 1.3 leo return EBADF; /* must be opened for writing */
1418 1.3 leo form_parms = (struct fdformat_parms *)addr;
1419 1.3 leo if (form_parms->fdformat_version != FDFORMAT_VERSION)
1420 1.3 leo return EINVAL; /* wrong version of formatting prog */
1421 1.3 leo
1422 1.3 leo scratch = form_parms->nbps >> 7;
1423 1.3 leo if ((form_parms->nbps & 0x7f) || ffs(scratch) == 0 ||
1424 1.3 leo scratch & ~(1 << (ffs(scratch)-1)))
1425 1.3 leo /* not a power-of-two multiple of 128 */
1426 1.3 leo return EINVAL;
1427 1.3 leo
1428 1.3 leo switch (form_parms->xfer_rate) {
1429 1.3 leo case 500 * 1024:
1430 1.3 leo fd->sc_type->rate = FDC_500KBPS;
1431 1.3 leo break;
1432 1.3 leo case 300 * 1024:
1433 1.3 leo fd->sc_type->rate = FDC_300KBPS;
1434 1.3 leo break;
1435 1.3 leo case 250 * 1024:
1436 1.3 leo fd->sc_type->rate = FDC_250KBPS;
1437 1.7 leo break;
1438 1.7 leo case 125 * 1024:
1439 1.7 leo fd->sc_type->rate = FDC_125KBPS;
1440 1.3 leo break;
1441 1.3 leo default:
1442 1.3 leo return EINVAL;
1443 1.3 leo }
1444 1.3 leo
1445 1.3 leo if (form_parms->nspt > FD_MAX_NSEC ||
1446 1.3 leo form_parms->fillbyte > 0xff ||
1447 1.3 leo form_parms->interleave > 0xff)
1448 1.3 leo return EINVAL;
1449 1.3 leo fd->sc_type->sectrac = form_parms->nspt;
1450 1.3 leo if (form_parms->ntrk != 2 && form_parms->ntrk != 1)
1451 1.3 leo return EINVAL;
1452 1.3 leo fd->sc_type->heads = form_parms->ntrk;
1453 1.3 leo fd->sc_type->seccyl = form_parms->nspt * form_parms->ntrk;
1454 1.3 leo fd->sc_type->secsize = ffs(scratch)-1;
1455 1.3 leo fd->sc_type->gap2 = form_parms->gaplen;
1456 1.3 leo fd->sc_type->tracks = form_parms->ncyl;
1457 1.3 leo fd->sc_type->size = fd->sc_type->seccyl * form_parms->ncyl *
1458 1.3 leo form_parms->nbps / DEV_BSIZE;
1459 1.3 leo fd->sc_type->step = form_parms->stepspercyl;
1460 1.3 leo fd->sc_type->fillbyte = form_parms->fillbyte;
1461 1.3 leo fd->sc_type->interleave = form_parms->interleave;
1462 1.3 leo return 0;
1463 1.3 leo
1464 1.3 leo case FDIOCFORMAT_TRACK:
1465 1.3 leo if((flag & FWRITE) == 0)
1466 1.3 leo return EBADF; /* must be opened for writing */
1467 1.3 leo form_cmd = (struct fdformat_cmd *)addr;
1468 1.3 leo if (form_cmd->formatcmd_version != FDFORMAT_VERSION)
1469 1.3 leo return EINVAL; /* wrong version of formatting prog */
1470 1.3 leo
1471 1.3 leo if (form_cmd->head >= fd->sc_type->heads ||
1472 1.3 leo form_cmd->cylinder >= fd->sc_type->tracks) {
1473 1.3 leo return EINVAL;
1474 1.3 leo }
1475 1.3 leo
1476 1.26 nathanw fd_formb = malloc(sizeof(struct ne7_fd_formb),
1477 1.26 nathanw M_TEMP, M_NOWAIT);
1478 1.26 nathanw if (fd_formb == 0)
1479 1.26 nathanw return ENOMEM;
1480 1.26 nathanw
1481 1.26 nathanw fd_formb->head = form_cmd->head;
1482 1.26 nathanw fd_formb->cyl = form_cmd->cylinder;
1483 1.26 nathanw fd_formb->transfer_rate = fd->sc_type->rate;
1484 1.26 nathanw fd_formb->fd_formb_secshift = fd->sc_type->secsize;
1485 1.26 nathanw fd_formb->fd_formb_nsecs = fd->sc_type->sectrac;
1486 1.26 nathanw fd_formb->fd_formb_gaplen = fd->sc_type->gap2;
1487 1.26 nathanw fd_formb->fd_formb_fillbyte = fd->sc_type->fillbyte;
1488 1.3 leo
1489 1.3 leo bzero(il,sizeof il);
1490 1.26 nathanw for (j = 0, i = 1; i <= fd_formb->fd_formb_nsecs; i++) {
1491 1.26 nathanw while (il[(j%fd_formb->fd_formb_nsecs)+1])
1492 1.3 leo j++;
1493 1.26 nathanw il[(j%fd_formb->fd_formb_nsecs)+1] = i;
1494 1.3 leo j += fd->sc_type->interleave;
1495 1.3 leo }
1496 1.26 nathanw for (i = 0; i < fd_formb->fd_formb_nsecs; i++) {
1497 1.26 nathanw fd_formb->fd_formb_cylno(i) = form_cmd->cylinder;
1498 1.26 nathanw fd_formb->fd_formb_headno(i) = form_cmd->head;
1499 1.26 nathanw fd_formb->fd_formb_secno(i) = il[i+1];
1500 1.26 nathanw fd_formb->fd_formb_secsize(i) = fd->sc_type->secsize;
1501 1.3 leo }
1502 1.26 nathanw
1503 1.26 nathanw error = fdformat(dev, fd_formb, p);
1504 1.26 nathanw free(fd_formb, M_TEMP);
1505 1.26 nathanw return error;
1506 1.26 nathanw
1507 1.3 leo case FDIOCGETOPTS: /* get drive options */
1508 1.3 leo *(int *)addr = fd->sc_opts;
1509 1.3 leo return 0;
1510 1.3 leo
1511 1.3 leo case FDIOCSETOPTS: /* set drive options */
1512 1.3 leo fd->sc_opts = *(int *)addr;
1513 1.3 leo return 0;
1514 1.3 leo
1515 1.3 leo
1516 1.1 leo default:
1517 1.1 leo return ENOTTY;
1518 1.1 leo }
1519 1.1 leo
1520 1.1 leo #ifdef DIAGNOSTIC
1521 1.1 leo panic("fdioctl: impossible");
1522 1.1 leo #endif
1523 1.3 leo }
1524 1.3 leo
1525 1.3 leo int
1526 1.3 leo fdformat(dev, finfo, p)
1527 1.3 leo dev_t dev;
1528 1.3 leo struct ne7_fd_formb *finfo;
1529 1.3 leo struct proc *p;
1530 1.3 leo {
1531 1.3 leo int rv = 0, s;
1532 1.3 leo struct fd_softc *fd = hdfd_cd.cd_devs[FDUNIT(dev)];
1533 1.3 leo struct fd_type *type = fd->sc_type;
1534 1.3 leo struct buf *bp;
1535 1.3 leo
1536 1.3 leo /* set up a buffer header for fdstrategy() */
1537 1.3 leo bp = (struct buf *)malloc(sizeof(struct buf), M_TEMP, M_NOWAIT);
1538 1.3 leo if(bp == 0)
1539 1.3 leo return ENOBUFS;
1540 1.3 leo bzero((void *)bp, sizeof(struct buf));
1541 1.3 leo bp->b_flags = B_BUSY | B_PHYS | B_FORMAT;
1542 1.3 leo bp->b_proc = p;
1543 1.3 leo bp->b_dev = dev;
1544 1.3 leo
1545 1.3 leo /*
1546 1.3 leo * calculate a fake blkno, so fdstrategy() would initiate a
1547 1.3 leo * seek to the requested cylinder
1548 1.3 leo */
1549 1.3 leo bp->b_blkno = (finfo->cyl * (type->sectrac * type->heads)
1550 1.3 leo + finfo->head * type->sectrac) * FDC_BSIZE / DEV_BSIZE;
1551 1.3 leo
1552 1.3 leo bp->b_bcount = sizeof(struct fd_idfield_data) * finfo->fd_formb_nsecs;
1553 1.3 leo bp->b_data = (caddr_t)finfo;
1554 1.3 leo
1555 1.3 leo #ifdef DEBUG
1556 1.12 leo printf("fdformat: blkno %x count %lx\n", bp->b_blkno, bp->b_bcount);
1557 1.3 leo #endif
1558 1.3 leo
1559 1.3 leo /* now do the format */
1560 1.3 leo fdstrategy(bp);
1561 1.3 leo
1562 1.3 leo /* ...and wait for it to complete */
1563 1.3 leo s = splbio();
1564 1.3 leo while(!(bp->b_flags & B_DONE)) {
1565 1.3 leo rv = tsleep((caddr_t)bp, PRIBIO, "fdform", 20 * hz);
1566 1.3 leo if (rv == EWOULDBLOCK)
1567 1.3 leo break;
1568 1.3 leo }
1569 1.3 leo splx(s);
1570 1.3 leo
1571 1.3 leo if (rv == EWOULDBLOCK) {
1572 1.3 leo /* timed out */
1573 1.3 leo rv = EIO;
1574 1.3 leo biodone(bp);
1575 1.3 leo }
1576 1.3 leo if(bp->b_flags & B_ERROR) {
1577 1.3 leo rv = bp->b_error;
1578 1.3 leo }
1579 1.3 leo free(bp, M_TEMP);
1580 1.3 leo return rv;
1581 1.14 leo }
1582 1.14 leo
1583 1.14 leo
1584 1.14 leo /*
1585 1.14 leo * Obtain a disklabel. Either a real one from the disk or, if there
1586 1.14 leo * is none, a fake one.
1587 1.14 leo */
1588 1.14 leo static void
1589 1.14 leo fdgetdisklabel(fd, dev)
1590 1.14 leo struct fd_softc *fd;
1591 1.14 leo dev_t dev;
1592 1.14 leo {
1593 1.14 leo struct disklabel *lp;
1594 1.14 leo struct cpu_disklabel cpulab;
1595 1.14 leo
1596 1.27 leo if (fd->sc_flags & FD_HAVELAB)
1597 1.27 leo return; /* Already got one */
1598 1.27 leo
1599 1.14 leo lp = fd->sc_dk.dk_label;
1600 1.14 leo
1601 1.14 leo bzero(lp, sizeof(*lp));
1602 1.14 leo bzero(&cpulab, sizeof(cpulab));
1603 1.14 leo
1604 1.14 leo lp->d_secpercyl = fd->sc_type->seccyl;
1605 1.14 leo lp->d_type = DTYPE_FLOPPY;
1606 1.14 leo lp->d_secsize = FDC_BSIZE;
1607 1.14 leo lp->d_secperunit = fd->sc_type->size;
1608 1.14 leo
1609 1.14 leo /*
1610 1.14 leo * If there is no label on the disk: fake one
1611 1.14 leo */
1612 1.14 leo if (readdisklabel(dev, fdstrategy, lp, &cpulab) != NULL)
1613 1.14 leo fdgetdefaultlabel(fd, lp, RAW_PART);
1614 1.27 leo fd->sc_flags |= FD_HAVELAB;
1615 1.14 leo
1616 1.14 leo if ((FDC_BSIZE * fd->sc_type->size)
1617 1.14 leo < (lp->d_secsize * lp->d_secperunit)) {
1618 1.14 leo /*
1619 1.14 leo * XXX: Ignore these fields. If you drop a vnddisk
1620 1.14 leo * on more than one floppy, you'll get disturbing
1621 1.14 leo * sounds!
1622 1.14 leo */
1623 1.14 leo lp->d_secpercyl = fd->sc_type->seccyl;
1624 1.14 leo lp->d_type = DTYPE_FLOPPY;
1625 1.14 leo lp->d_secsize = FDC_BSIZE;
1626 1.14 leo lp->d_secperunit = fd->sc_type->size;
1627 1.14 leo }
1628 1.14 leo }
1629 1.14 leo
1630 1.14 leo /*
1631 1.14 leo * Build defaultdisk label. For now we only create a label from what we
1632 1.14 leo * know from 'sc'.
1633 1.14 leo */
1634 1.14 leo static void
1635 1.14 leo fdgetdefaultlabel(fd, lp, part)
1636 1.14 leo struct fd_softc *fd;
1637 1.14 leo struct disklabel *lp;
1638 1.14 leo int part;
1639 1.14 leo {
1640 1.14 leo bzero(lp, sizeof(struct disklabel));
1641 1.14 leo
1642 1.14 leo lp->d_secsize = 128 * (1 << fd->sc_type->secsize);
1643 1.14 leo lp->d_ntracks = fd->sc_type->heads;
1644 1.14 leo lp->d_nsectors = fd->sc_type->sectrac;
1645 1.14 leo lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
1646 1.14 leo lp->d_ncylinders = fd->sc_type->size / lp->d_secpercyl;
1647 1.14 leo lp->d_secperunit = fd->sc_type->size;
1648 1.14 leo
1649 1.14 leo lp->d_type = DTYPE_FLOPPY;
1650 1.14 leo lp->d_rpm = 300; /* good guess I suppose. */
1651 1.14 leo lp->d_interleave = 1; /* FIXME: is this OK? */
1652 1.14 leo lp->d_bbsize = 0;
1653 1.14 leo lp->d_sbsize = 0;
1654 1.14 leo lp->d_npartitions = part + 1;
1655 1.14 leo lp->d_trkseek = 6000; /* Who cares... */
1656 1.14 leo lp->d_magic = DISKMAGIC;
1657 1.14 leo lp->d_magic2 = DISKMAGIC;
1658 1.14 leo lp->d_checksum = dkcksum(lp);
1659 1.14 leo lp->d_partitions[part].p_size = lp->d_secperunit;
1660 1.14 leo lp->d_partitions[part].p_fstype = FS_UNUSED;
1661 1.14 leo lp->d_partitions[part].p_fsize = 1024;
1662 1.14 leo lp->d_partitions[part].p_frag = 8;
1663 1.1 leo }
1664