fd.c revision 1.19 1 1.19 jonathan /* $NetBSD: fd.c,v 1.19 1998/07/04 22:18:46 jonathan Exp $ */
2 1.1 oki
3 1.1 oki /*-
4 1.1 oki * Copyright (c) 1993, 1994, 1995 Charles Hannum.
5 1.1 oki * Copyright (c) 1990 The Regents of the University of California.
6 1.1 oki * All rights reserved.
7 1.1 oki *
8 1.1 oki * This code is derived from software contributed to Berkeley by
9 1.1 oki * Don Ahn.
10 1.1 oki *
11 1.1 oki * Redistribution and use in source and binary forms, with or without
12 1.1 oki * modification, are permitted provided that the following conditions
13 1.1 oki * are met:
14 1.1 oki * 1. Redistributions of source code must retain the above copyright
15 1.1 oki * notice, this list of conditions and the following disclaimer.
16 1.1 oki * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 oki * notice, this list of conditions and the following disclaimer in the
18 1.1 oki * documentation and/or other materials provided with the distribution.
19 1.1 oki * 3. All advertising materials mentioning features or use of this software
20 1.1 oki * must display the following acknowledgement:
21 1.1 oki * This product includes software developed by the University of
22 1.1 oki * California, Berkeley and its contributors.
23 1.1 oki * 4. Neither the name of the University nor the names of its contributors
24 1.1 oki * may be used to endorse or promote products derived from this software
25 1.1 oki * without specific prior written permission.
26 1.1 oki *
27 1.1 oki * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
28 1.1 oki * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
29 1.1 oki * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
30 1.1 oki * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
31 1.1 oki * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
32 1.1 oki * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
33 1.1 oki * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
34 1.1 oki * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
35 1.1 oki * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
36 1.1 oki * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
37 1.1 oki * SUCH DAMAGE.
38 1.1 oki *
39 1.1 oki * @(#)fd.c 7.4 (Berkeley) 5/25/91
40 1.1 oki */
41 1.19 jonathan
42 1.19 jonathan #include "opt_ddb.h"
43 1.1 oki
44 1.1 oki #include <sys/param.h>
45 1.1 oki #include <sys/systm.h>
46 1.1 oki #include <sys/kernel.h>
47 1.1 oki #include <sys/conf.h>
48 1.1 oki #include <sys/file.h>
49 1.1 oki #include <sys/stat.h>
50 1.1 oki #include <sys/ioctl.h>
51 1.1 oki #include <sys/malloc.h>
52 1.1 oki #include <sys/device.h>
53 1.1 oki #include <sys/disklabel.h>
54 1.1 oki #include <sys/dkstat.h>
55 1.1 oki #include <sys/disk.h>
56 1.1 oki #include <sys/buf.h>
57 1.1 oki #include <sys/uio.h>
58 1.1 oki #include <sys/syslog.h>
59 1.1 oki #include <sys/queue.h>
60 1.1 oki
61 1.1 oki #include <machine/cpu.h>
62 1.1 oki
63 1.1 oki #include <x68k/x68k/iodevice.h>
64 1.1 oki #include <x68k/dev/dmavar.h>
65 1.1 oki #include <x68k/dev/fdreg.h>
66 1.1 oki #include <x68k/dev/opmreg.h>
67 1.1 oki
68 1.12 jtk #include "locators.h"
69 1.12 jtk
70 1.1 oki #define infdc (IODEVbase->io_fdc)
71 1.1 oki
72 1.1 oki #ifdef DEBUG
73 1.8 christos #define DPRINTF(x) if (fddebug) printf x
74 1.1 oki int fddebug = 0;
75 1.1 oki #else
76 1.1 oki #define DPRINTF(x)
77 1.1 oki #endif
78 1.1 oki
79 1.1 oki #define FDUNIT(dev) (minor(dev) / 8)
80 1.1 oki #define FDTYPE(dev) (minor(dev) % 8)
81 1.1 oki
82 1.1 oki #define b_cylin b_resid
83 1.1 oki
84 1.1 oki enum fdc_state {
85 1.1 oki DEVIDLE = 0,
86 1.1 oki MOTORWAIT,
87 1.1 oki DOSEEK,
88 1.1 oki SEEKWAIT,
89 1.1 oki SEEKTIMEDOUT,
90 1.1 oki SEEKCOMPLETE,
91 1.1 oki DOIO,
92 1.1 oki IOCOMPLETE,
93 1.1 oki IOTIMEDOUT,
94 1.1 oki DORESET,
95 1.1 oki RESETCOMPLETE,
96 1.1 oki RESETTIMEDOUT,
97 1.1 oki DORECAL,
98 1.1 oki RECALWAIT,
99 1.1 oki RECALTIMEDOUT,
100 1.1 oki RECALCOMPLETE,
101 1.1 oki DOCOPY,
102 1.1 oki DOIOHALF,
103 1.1 oki COPYCOMPLETE,
104 1.1 oki };
105 1.1 oki
106 1.1 oki /* software state, per controller */
107 1.1 oki struct fdc_softc {
108 1.1 oki struct device sc_dev; /* boilerplate */
109 1.1 oki u_char sc_flags;
110 1.1 oki
111 1.1 oki struct fd_softc *sc_fd[4]; /* pointers to children */
112 1.1 oki TAILQ_HEAD(drivehead, fd_softc) sc_drives;
113 1.1 oki enum fdc_state sc_state;
114 1.1 oki int sc_errors; /* number of retries so far */
115 1.1 oki u_char sc_status[7]; /* copy of registers */
116 1.1 oki } fdc_softc;
117 1.1 oki
118 1.14 oki bdev_decl(fd);
119 1.14 oki cdev_decl(fd);
120 1.14 oki
121 1.13 oki int fdcintr __P((void));
122 1.13 oki void fdcreset __P((void));
123 1.1 oki
124 1.1 oki /* controller driver configuration */
125 1.1 oki int fdcprobe __P((struct device *, void *, void *));
126 1.1 oki void fdcattach __P((struct device *, struct device *, void *));
127 1.13 oki int fdprint __P((void *, const char *));
128 1.1 oki
129 1.1 oki struct cfattach fdc_ca = {
130 1.1 oki sizeof(struct fdc_softc), fdcprobe, fdcattach
131 1.1 oki };
132 1.18 msaitoh
133 1.18 msaitoh extern struct cfdriver fdc_cd;
134 1.1 oki
135 1.1 oki /*
136 1.1 oki * Floppies come in various flavors, e.g., 1.2MB vs 1.44MB; here is how
137 1.1 oki * we tell them apart.
138 1.1 oki */
139 1.1 oki struct fd_type {
140 1.1 oki int sectrac; /* sectors per track */
141 1.1 oki int heads; /* number of heads */
142 1.1 oki int seccyl; /* sectors per cylinder */
143 1.1 oki int secsize; /* size code for sectors */
144 1.1 oki int datalen; /* data len when secsize = 0 */
145 1.1 oki int steprate; /* step rate and head unload time */
146 1.1 oki int gap1; /* gap len between sectors */
147 1.1 oki int gap2; /* formatting gap */
148 1.1 oki int tracks; /* total num of tracks */
149 1.1 oki int size; /* size of disk in sectors */
150 1.1 oki int step; /* steps per cylinder */
151 1.1 oki int rate; /* transfer speed code */
152 1.1 oki char *name;
153 1.1 oki };
154 1.1 oki
155 1.1 oki /* The order of entries in the following table is important -- BEWARE! */
156 1.1 oki struct fd_type fd_types[] = {
157 1.1 oki { 8,2,16,3,0xff,0xdf,0x35,0x74,77,1232,1,FDC_500KBPS, "1.2MB/[1024bytes/sector]" }, /* 1.2 MB japanese format */
158 1.1 oki { 18,2,36,2,0xff,0xcf,0x1b,0x6c,80,2880,1,FDC_500KBPS,"1.44MB" }, /* 1.44MB diskette */
159 1.1 oki { 15,2,30,2,0xff,0xdf,0x1b,0x54,80,2400,1,FDC_500KBPS, "1.2MB" }, /* 1.2 MB AT-diskettes */
160 1.1 oki { 9,2,18,2,0xff,0xdf,0x23,0x50,40, 720,2,FDC_300KBPS, "360KB/AT" }, /* 360kB in 1.2MB drive */
161 1.1 oki { 9,2,18,2,0xff,0xdf,0x2a,0x50,40, 720,1,FDC_250KBPS, "360KB/PC" }, /* 360kB PC diskettes */
162 1.1 oki { 9,2,18,2,0xff,0xdf,0x2a,0x50,80,1440,1,FDC_250KBPS, "720KB" }, /* 3.5" 720kB diskette */
163 1.1 oki { 9,2,18,2,0xff,0xdf,0x23,0x50,80,1440,1,FDC_300KBPS, "720KB/x" }, /* 720kB in 1.2MB drive */
164 1.1 oki { 9,2,18,2,0xff,0xdf,0x2a,0x50,40, 720,2,FDC_250KBPS, "360KB/x" }, /* 360kB in 720kB drive */
165 1.1 oki };
166 1.1 oki
167 1.1 oki /* software state, per disk (with up to 4 disks per ctlr) */
168 1.1 oki struct fd_softc {
169 1.1 oki struct device sc_dev;
170 1.1 oki struct disk sc_dk;
171 1.1 oki
172 1.1 oki struct fd_type *sc_deftype; /* default type descriptor */
173 1.1 oki struct fd_type *sc_type; /* current type descriptor */
174 1.1 oki
175 1.1 oki daddr_t sc_blkno; /* starting block number */
176 1.1 oki int sc_bcount; /* byte count left */
177 1.1 oki int sc_skip; /* bytes already transferred */
178 1.1 oki int sc_nblks; /* number of blocks currently tranferring */
179 1.1 oki int sc_nbytes; /* number of bytes currently tranferring */
180 1.1 oki
181 1.1 oki int sc_drive; /* physical unit number */
182 1.1 oki int sc_flags;
183 1.1 oki #define FD_BOPEN 0x01 /* it's open */
184 1.1 oki #define FD_COPEN 0x02 /* it's open */
185 1.1 oki #define FD_OPEN (FD_BOPEN|FD_COPEN) /* it's open */
186 1.1 oki #define FD_MOTOR 0x04 /* motor should be on */
187 1.1 oki #define FD_MOTOR_WAIT 0x08 /* motor coming up */
188 1.1 oki #define FD_ALIVE 0x10 /* alive */
189 1.1 oki int sc_cylin; /* where we think the head is */
190 1.1 oki
191 1.1 oki TAILQ_ENTRY(fd_softc) sc_drivechain;
192 1.1 oki int sc_ops; /* I/O ops since last switch */
193 1.1 oki struct buf sc_q; /* head of buf chain */
194 1.1 oki u_char *sc_copybuf; /* for secsize >=3 */
195 1.1 oki u_char sc_part; /* for secsize >=3 */
196 1.1 oki #define SEC_P10 0x02 /* first part */
197 1.1 oki #define SEC_P01 0x01 /* second part */
198 1.1 oki #define SEC_P11 0x03 /* both part */
199 1.1 oki };
200 1.1 oki
201 1.1 oki /* floppy driver configuration */
202 1.1 oki int fdprobe __P((struct device *, void *, void *));
203 1.1 oki void fdattach __P((struct device *, struct device *, void *));
204 1.1 oki
205 1.1 oki struct cfattach fd_ca = {
206 1.1 oki sizeof(struct fd_softc), fdprobe, fdattach
207 1.1 oki };
208 1.1 oki
209 1.15 thorpej extern struct cfdriver fd_cd;
210 1.1 oki
211 1.13 oki void fdstrategy __P((struct buf *));
212 1.1 oki void fdstart __P((struct fd_softc *fd));
213 1.1 oki
214 1.1 oki struct dkdriver fddkdriver = { fdstrategy };
215 1.1 oki
216 1.1 oki void fd_set_motor __P((struct fdc_softc *fdc, int reset));
217 1.1 oki void fd_motor_off __P((void *arg));
218 1.1 oki void fd_motor_on __P((void *arg));
219 1.1 oki int fdcresult __P((struct fdc_softc *fdc));
220 1.1 oki int out_fdc __P((u_char x));
221 1.1 oki void fdcstart __P((struct fdc_softc *fdc));
222 1.1 oki void fdcstatus __P((struct device *dv, int n, char *s));
223 1.1 oki void fdctimeout __P((void *arg));
224 1.1 oki void fdcpseudointr __P((void *arg));
225 1.1 oki void fdcretry __P((struct fdc_softc *fdc));
226 1.1 oki void fdfinish __P((struct fd_softc *fd, struct buf *bp));
227 1.13 oki __inline struct fd_type *fd_dev_to_type __P((struct fd_softc *, dev_t));
228 1.13 oki static int fdcpoll __P((struct fdc_softc *));
229 1.1 oki static int fdgetdisklabel __P((struct fd_softc *, dev_t));
230 1.1 oki static void fd_do_eject __P((int));
231 1.13 oki
232 1.4 oki void fd_mountroot_hook __P((struct device *));
233 1.1 oki
234 1.14 oki /* dma transfer routines */
235 1.14 oki __inline static void fdc_dmastart __P((int, caddr_t, int));
236 1.14 oki void fdcdmaintr __P((void));
237 1.14 oki void fdcdmaerrintr __P((void));
238 1.14 oki
239 1.1 oki #define FDDI_EN 0x02
240 1.1 oki #define FDCI_EN 0x04
241 1.1 oki #define FDD_INT 0x40
242 1.1 oki #define FDC_INT 0x80
243 1.1 oki
244 1.1 oki #define DMA_BRD 0x01
245 1.1 oki #define DMA_BWR 0x02
246 1.1 oki
247 1.1 oki #define DRQ 0
248 1.1 oki
249 1.1 oki static u_char *fdc_dmabuf;
250 1.1 oki
251 1.13 oki __inline static void
252 1.1 oki fdc_dmastart(read, addr, count)
253 1.1 oki int read;
254 1.1 oki caddr_t addr;
255 1.1 oki int count;
256 1.1 oki {
257 1.1 oki volatile struct dmac *dmac = &IODEVbase->io_dma[DRQ];
258 1.1 oki
259 1.2 oki DPRINTF(("fdc_dmastart: (%s, addr = %p, count = %d\n",
260 1.1 oki read ? "read" : "write", addr, count));
261 1.1 oki if (dmarangecheck((vm_offset_t)addr, count)) {
262 1.1 oki dma_bouncebytes[DRQ] = count;
263 1.1 oki dma_dataaddr[DRQ] = addr;
264 1.1 oki if (!(read)) {
265 1.1 oki bcopy(addr, dma_bouncebuf[DRQ], count);
266 1.1 oki dma_bounced[DRQ] = DMA_BWR;
267 1.1 oki } else {
268 1.1 oki dma_bounced[DRQ] = DMA_BRD;
269 1.1 oki }
270 1.1 oki addr = dma_bouncebuf[DRQ];
271 1.1 oki } else {
272 1.1 oki dma_bounced[DRQ] = 0;
273 1.1 oki }
274 1.1 oki
275 1.1 oki dmac->csr = 0xff;
276 1.1 oki dmac->ocr = read ? 0xb2 : 0x32;
277 1.1 oki dmac->mtc = (unsigned short)count;
278 1.1 oki asm("nop");
279 1.1 oki asm("nop");
280 1.1 oki dmac->mar = (unsigned long)kvtop(addr);
281 1.13 oki #if defined(M68040) || defined(M68060)
282 1.1 oki /*
283 1.1 oki * Push back dirty cache lines
284 1.1 oki */
285 1.1 oki if (mmutype == MMU_68040)
286 1.1 oki DCFP(kvtop(addr));
287 1.1 oki #endif
288 1.1 oki dmac->ccr = 0x88;
289 1.1 oki }
290 1.1 oki
291 1.1 oki void
292 1.1 oki fdcdmaintr()
293 1.1 oki {
294 1.1 oki volatile struct dmac *dmac = &IODEVbase->io_dma[DRQ];
295 1.1 oki dmac->csr = 0xff;
296 1.1 oki PCIA(); /* XXX? by oki */
297 1.1 oki if (dma_bounced[DRQ] == DMA_BRD) {
298 1.1 oki bcopy(dma_bouncebuf[DRQ], dma_dataaddr[DRQ], dma_bouncebytes[DRQ]);
299 1.1 oki }
300 1.1 oki dma_bounced[DRQ] = 0;
301 1.1 oki }
302 1.1 oki
303 1.1 oki void
304 1.1 oki fdcdmaerrintr()
305 1.1 oki {
306 1.1 oki volatile struct dmac *dmac = &IODEVbase->io_dma[DRQ];
307 1.8 christos printf("fdcdmaerrintr: csr=%x, cer=%x\n", dmac->csr, dmac->cer);
308 1.1 oki dmac->csr = 0xff;
309 1.1 oki }
310 1.1 oki
311 1.1 oki int
312 1.1 oki fdcprobe(parent, match, aux)
313 1.1 oki struct device *parent;
314 1.1 oki void *match, *aux;
315 1.1 oki {
316 1.1 oki if (strcmp("fdc", aux) != 0)
317 1.1 oki return 0;
318 1.1 oki return 1;
319 1.1 oki }
320 1.1 oki
321 1.1 oki /*
322 1.1 oki * Arguments passed between fdcattach and fdprobe.
323 1.1 oki */
324 1.1 oki struct fdc_attach_args {
325 1.1 oki int fa_drive;
326 1.1 oki struct fd_type *fa_deftype;
327 1.1 oki };
328 1.1 oki
329 1.1 oki /*
330 1.1 oki * Print the location of a disk drive (called just before attaching the
331 1.1 oki * the drive). If `fdc' is not NULL, the drive was found but was not
332 1.1 oki * in the system config file; print the drive name as well.
333 1.1 oki * Return QUIET (config_find ignores this if the device was configured) to
334 1.1 oki * avoid printing `fdN not configured' messages.
335 1.1 oki */
336 1.1 oki int
337 1.1 oki fdprint(aux, fdc)
338 1.1 oki void *aux;
339 1.6 cgd const char *fdc;
340 1.1 oki {
341 1.1 oki register struct fdc_attach_args *fa = aux;
342 1.1 oki
343 1.1 oki if (!fdc)
344 1.8 christos printf(" drive %d", fa->fa_drive);
345 1.1 oki return QUIET;
346 1.1 oki }
347 1.1 oki
348 1.1 oki void
349 1.1 oki fdcattach(parent, self, aux)
350 1.1 oki struct device *parent, *self;
351 1.1 oki void *aux;
352 1.1 oki {
353 1.1 oki struct fdc_softc *fdc = (void *)self;
354 1.1 oki volatile struct dmac *dmac = &IODEVbase->io_dma[DRQ];
355 1.1 oki struct fdc_attach_args fa;
356 1.1 oki
357 1.1 oki fdc->sc_state = DEVIDLE;
358 1.1 oki TAILQ_INIT(&fdc->sc_drives);
359 1.1 oki
360 1.1 oki fdc->sc_flags = 0;
361 1.1 oki
362 1.1 oki /* reset */
363 1.1 oki ioctlr.intr &= (~FDDI_EN);
364 1.1 oki ioctlr.intr |= FDCI_EN;
365 1.1 oki fdcresult(fdc);
366 1.1 oki fdcreset();
367 1.1 oki
368 1.1 oki /* Initialize DMAC channel */
369 1.1 oki dmac->dcr = 0x80;
370 1.1 oki dmac->scr = 0x04;
371 1.1 oki dmac->csr = 0xff;
372 1.1 oki dmac->cpr = 0x00;
373 1.3 oki dmac->dar = (unsigned long) kvtop((void *)&infdc.data);
374 1.1 oki dmac->mfc = 0x05;
375 1.1 oki dmac->dfc = 0x05;
376 1.1 oki dmac->bfc = 0x05;
377 1.1 oki dmac->niv = 0x64;
378 1.1 oki dmac->eiv = 0x65;
379 1.1 oki
380 1.8 christos printf(": uPD72065 FDC\n");
381 1.1 oki out_fdc(NE7CMD_SPECIFY);/* specify command */
382 1.1 oki out_fdc(0xd0);
383 1.1 oki out_fdc(0x10);
384 1.1 oki
385 1.1 oki fdc_dmabuf = (u_char *)malloc(NBPG, M_DEVBUF, M_WAITOK);
386 1.1 oki if (fdc_dmabuf == 0)
387 1.13 oki printf("fdcattach: WARNING!! malloc() failed.\n");
388 1.1 oki dma_bouncebuf[DRQ] = fdc_dmabuf;
389 1.1 oki
390 1.1 oki /* physical limit: four drives per controller. */
391 1.1 oki for (fa.fa_drive = 0; fa.fa_drive < 4; fa.fa_drive++) {
392 1.1 oki (void)config_found(self, (void *)&fa, fdprint);
393 1.1 oki }
394 1.1 oki }
395 1.1 oki
396 1.1 oki void
397 1.1 oki fdcreset()
398 1.1 oki {
399 1.1 oki infdc.stat = FDC_RESET;
400 1.1 oki }
401 1.1 oki
402 1.1 oki static int
403 1.1 oki fdcpoll(fdc)
404 1.1 oki struct fdc_softc *fdc;
405 1.1 oki {
406 1.1 oki int i = 25000;
407 1.1 oki while (--i > 0) {
408 1.1 oki if ((ioctlr.intr & 0x80)) {
409 1.1 oki out_fdc(NE7CMD_SENSEI);
410 1.1 oki fdcresult(fdc);
411 1.1 oki break;
412 1.1 oki }
413 1.1 oki DELAY(100);
414 1.1 oki }
415 1.1 oki return i;
416 1.1 oki }
417 1.1 oki
418 1.1 oki int
419 1.1 oki fdprobe(parent, match, aux)
420 1.1 oki struct device *parent;
421 1.1 oki void *match, *aux;
422 1.1 oki {
423 1.1 oki struct fdc_softc *fdc = (void *)parent;
424 1.1 oki struct cfdata *cf = match;
425 1.1 oki struct fd_type *type;
426 1.1 oki int drive = cf->cf_unit;
427 1.1 oki int n;
428 1.1 oki int found = 0;
429 1.1 oki int i;
430 1.1 oki
431 1.12 jtk if (cf->cf_loc[FDCCF_UNIT] != FDCCF_UNIT_DEFAULT &&
432 1.12 jtk cf->cf_loc[FDCCF_UNIT] != drive)
433 1.1 oki return 0;
434 1.1 oki
435 1.1 oki type = &fd_types[0]; /* XXX 1.2MB */
436 1.1 oki
437 1.1 oki ioctlr.intr &= (~FDCI_EN);
438 1.1 oki
439 1.1 oki /* select drive and turn on motor */
440 1.1 oki infdc.select = 0x80 | (type->rate << 4)| drive;
441 1.1 oki fdc_force_ready(FDCRDY);
442 1.1 oki fdcpoll(fdc);
443 1.1 oki
444 1.1 oki retry:
445 1.1 oki out_fdc(NE7CMD_RECAL);
446 1.1 oki out_fdc(drive);
447 1.1 oki
448 1.1 oki i = 25000;
449 1.1 oki while (--i > 0) {
450 1.1 oki if ((ioctlr.intr & 0x80)) {
451 1.1 oki out_fdc(NE7CMD_SENSEI);
452 1.1 oki n = fdcresult(fdc);
453 1.1 oki break;
454 1.1 oki }
455 1.1 oki DELAY(100);
456 1.1 oki }
457 1.1 oki
458 1.1 oki #ifdef FDDEBUG
459 1.1 oki {
460 1.1 oki int i;
461 1.8 christos printf("fdprobe: status");
462 1.1 oki for (i = 0; i < n; i++)
463 1.8 christos printf(" %x", fdc->sc_status[i]);
464 1.8 christos printf("\n");
465 1.1 oki }
466 1.1 oki #endif
467 1.1 oki
468 1.1 oki if (n == 2) {
469 1.1 oki if ((fdc->sc_status[0] & 0xf0) == 0x20) {
470 1.1 oki found = 1;
471 1.1 oki } else if ((fdc->sc_status[0] & 0xf0) == 0xc0) {
472 1.1 oki goto retry;
473 1.1 oki }
474 1.1 oki }
475 1.1 oki
476 1.1 oki /* turn off motor */
477 1.1 oki infdc.select = (type->rate << 4)| drive;
478 1.1 oki fdc_force_ready(FDCSTBY);
479 1.1 oki if (!found) {
480 1.1 oki ioctlr.intr |= FDCI_EN;
481 1.1 oki return 0;
482 1.1 oki }
483 1.1 oki
484 1.1 oki return 1;
485 1.1 oki }
486 1.1 oki
487 1.1 oki void
488 1.1 oki fdattach(parent, self, aux)
489 1.1 oki struct device *parent;
490 1.1 oki struct device *self;
491 1.1 oki void *aux;
492 1.1 oki {
493 1.1 oki struct fdc_softc *fdc = (void *)parent;
494 1.1 oki register struct fd_softc *fd = (void *)self;
495 1.1 oki struct fdc_attach_args *fa = aux;
496 1.1 oki int drive = fa->fa_drive;
497 1.1 oki struct fd_type *type = &fd_types[0]; /* XXX 1.2MB */
498 1.1 oki
499 1.1 oki fd->sc_flags = 0;
500 1.1 oki
501 1.1 oki ioctlr.intr |= FDCI_EN;
502 1.1 oki
503 1.1 oki if (type)
504 1.8 christos printf(": %s %d cyl, %d head, %d sec\n", type->name,
505 1.1 oki type->tracks, type->heads, type->sectrac);
506 1.1 oki else
507 1.8 christos printf(": density unknown\n");
508 1.1 oki
509 1.1 oki fd->sc_cylin = -1;
510 1.1 oki fd->sc_drive = drive;
511 1.1 oki fd->sc_deftype = type;
512 1.1 oki fdc->sc_fd[drive] = fd;
513 1.1 oki
514 1.1 oki fd->sc_copybuf = (u_char *)malloc(NBPG, M_DEVBUF, M_WAITOK);
515 1.1 oki if (fd->sc_copybuf == 0)
516 1.8 christos printf("fdprobe: WARNING!! malloc() failed.\n");
517 1.1 oki fd->sc_flags |= FD_ALIVE;
518 1.1 oki
519 1.1 oki /*
520 1.1 oki * Initialize and attach the disk structure.
521 1.1 oki */
522 1.1 oki fd->sc_dk.dk_name = fd->sc_dev.dv_xname;
523 1.1 oki fd->sc_dk.dk_driver = &fddkdriver;
524 1.1 oki disk_attach(&fd->sc_dk);
525 1.4 oki
526 1.4 oki /*
527 1.4 oki * Establish a mountroot_hook anyway in case we booted
528 1.4 oki * with RB_ASKNAME and get selected as the boot device.
529 1.4 oki */
530 1.9 thorpej mountroothook_establish(fd_mountroot_hook, &fd->sc_dev);
531 1.1 oki }
532 1.1 oki
533 1.13 oki __inline struct fd_type *
534 1.1 oki fd_dev_to_type(fd, dev)
535 1.1 oki struct fd_softc *fd;
536 1.1 oki dev_t dev;
537 1.1 oki {
538 1.1 oki int type = FDTYPE(dev);
539 1.1 oki
540 1.1 oki if (type > (sizeof(fd_types) / sizeof(fd_types[0])))
541 1.1 oki return NULL;
542 1.1 oki return &fd_types[type];
543 1.1 oki }
544 1.1 oki
545 1.1 oki void
546 1.1 oki fdstrategy(bp)
547 1.1 oki register struct buf *bp; /* IO operation to perform */
548 1.1 oki {
549 1.1 oki struct fd_softc *fd;
550 1.1 oki int unit = FDUNIT(bp->b_dev);
551 1.1 oki int sz;
552 1.1 oki int s;
553 1.1 oki
554 1.1 oki if (unit >= fd_cd.cd_ndevs ||
555 1.1 oki (fd = fd_cd.cd_devs[unit]) == 0 ||
556 1.1 oki bp->b_blkno < 0 ||
557 1.1 oki (bp->b_bcount % FDC_BSIZE) != 0) {
558 1.1 oki #ifdef FDDEBUG
559 1.8 christos printf("fdstrategy: unit=%d, blkno=%d, bcount=%d\n", unit,
560 1.1 oki bp->b_blkno, bp->b_bcount);
561 1.1 oki #endif
562 1.1 oki bp->b_error = EINVAL;
563 1.1 oki goto bad;
564 1.1 oki }
565 1.1 oki
566 1.1 oki /* If it's a null transfer, return immediately. */
567 1.1 oki if (bp->b_bcount == 0)
568 1.1 oki goto done;
569 1.1 oki
570 1.1 oki sz = howmany(bp->b_bcount, FDC_BSIZE);
571 1.1 oki
572 1.1 oki if (bp->b_blkno + sz > (fd->sc_type->size << (fd->sc_type->secsize - 2))) {
573 1.1 oki sz = (fd->sc_type->size << (fd->sc_type->secsize - 2)) - bp->b_blkno;
574 1.1 oki if (sz == 0) {
575 1.1 oki /* If exactly at end of disk, return EOF. */
576 1.1 oki bp->b_resid = bp->b_bcount;
577 1.1 oki goto done;
578 1.1 oki }
579 1.1 oki if (sz < 0) {
580 1.1 oki /* If past end of disk, return EINVAL. */
581 1.1 oki bp->b_error = EINVAL;
582 1.1 oki goto bad;
583 1.1 oki }
584 1.1 oki /* Otherwise, truncate request. */
585 1.1 oki bp->b_bcount = sz << DEV_BSHIFT;
586 1.1 oki }
587 1.1 oki
588 1.1 oki bp->b_cylin = bp->b_blkno / (FDC_BSIZE / DEV_BSIZE)
589 1.1 oki / (fd->sc_type->seccyl * (1 << (fd->sc_type->secsize - 2)));
590 1.1 oki
591 1.2 oki DPRINTF(("fdstrategy: %s b_blkno %d b_bcount %ld cylin %ld\n",
592 1.1 oki bp->b_flags & B_READ ? "read" : "write",
593 1.1 oki bp->b_blkno, bp->b_bcount, bp->b_cylin));
594 1.1 oki /* Queue transfer on drive, activate drive and controller if idle. */
595 1.1 oki s = splbio();
596 1.1 oki disksort(&fd->sc_q, bp);
597 1.1 oki untimeout(fd_motor_off, fd); /* a good idea */
598 1.1 oki if (!fd->sc_q.b_active)
599 1.1 oki fdstart(fd);
600 1.1 oki #ifdef DIAGNOSTIC
601 1.1 oki else {
602 1.1 oki struct fdc_softc *fdc = fdc_cd.cd_devs[0]; /* XXX */
603 1.1 oki if (fdc->sc_state == DEVIDLE) {
604 1.8 christos printf("fdstrategy: controller inactive\n");
605 1.1 oki fdcstart(fdc);
606 1.1 oki }
607 1.1 oki }
608 1.1 oki #endif
609 1.1 oki splx(s);
610 1.1 oki return;
611 1.1 oki
612 1.1 oki bad:
613 1.1 oki bp->b_flags |= B_ERROR;
614 1.1 oki done:
615 1.1 oki /* Toss transfer; we're done early. */
616 1.1 oki biodone(bp);
617 1.1 oki }
618 1.1 oki
619 1.1 oki void
620 1.1 oki fdstart(fd)
621 1.1 oki struct fd_softc *fd;
622 1.1 oki {
623 1.1 oki struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
624 1.1 oki int active = fdc->sc_drives.tqh_first != 0;
625 1.1 oki
626 1.1 oki /* Link into controller queue. */
627 1.1 oki fd->sc_q.b_active = 1;
628 1.1 oki TAILQ_INSERT_TAIL(&fdc->sc_drives, fd, sc_drivechain);
629 1.1 oki
630 1.1 oki /* If controller not already active, start it. */
631 1.1 oki if (!active)
632 1.1 oki fdcstart(fdc);
633 1.1 oki }
634 1.1 oki
635 1.1 oki void
636 1.1 oki fdfinish(fd, bp)
637 1.1 oki struct fd_softc *fd;
638 1.1 oki struct buf *bp;
639 1.1 oki {
640 1.1 oki struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
641 1.1 oki
642 1.1 oki /*
643 1.1 oki * Move this drive to the end of the queue to give others a `fair'
644 1.1 oki * chance. We only force a switch if N operations are completed while
645 1.1 oki * another drive is waiting to be serviced, since there is a long motor
646 1.1 oki * startup delay whenever we switch.
647 1.1 oki */
648 1.1 oki if (fd->sc_drivechain.tqe_next && ++fd->sc_ops >= 8) {
649 1.1 oki fd->sc_ops = 0;
650 1.1 oki TAILQ_REMOVE(&fdc->sc_drives, fd, sc_drivechain);
651 1.1 oki if (bp->b_actf) {
652 1.1 oki TAILQ_INSERT_TAIL(&fdc->sc_drives, fd, sc_drivechain);
653 1.1 oki } else
654 1.1 oki fd->sc_q.b_active = 0;
655 1.1 oki }
656 1.1 oki bp->b_resid = fd->sc_bcount;
657 1.1 oki fd->sc_skip = 0;
658 1.1 oki fd->sc_q.b_actf = bp->b_actf;
659 1.1 oki biodone(bp);
660 1.1 oki /* turn off motor 5s from now */
661 1.1 oki timeout(fd_motor_off, fd, 5 * hz);
662 1.1 oki fdc->sc_state = DEVIDLE;
663 1.1 oki }
664 1.1 oki
665 1.1 oki int
666 1.14 oki fdread(dev, uio, flags)
667 1.1 oki dev_t dev;
668 1.1 oki struct uio *uio;
669 1.14 oki int flags;
670 1.1 oki {
671 1.1 oki
672 1.1 oki return (physio(fdstrategy, NULL, dev, B_READ, minphys, uio));
673 1.1 oki }
674 1.1 oki
675 1.1 oki int
676 1.14 oki fdwrite(dev, uio, flags)
677 1.1 oki dev_t dev;
678 1.1 oki struct uio *uio;
679 1.14 oki int flags;
680 1.1 oki {
681 1.1 oki
682 1.1 oki return (physio(fdstrategy, NULL, dev, B_WRITE, minphys, uio));
683 1.1 oki }
684 1.1 oki
685 1.1 oki void
686 1.1 oki fd_set_motor(fdc, reset)
687 1.1 oki struct fdc_softc *fdc;
688 1.1 oki int reset;
689 1.1 oki {
690 1.1 oki struct fd_softc *fd;
691 1.1 oki int n;
692 1.1 oki
693 1.1 oki DPRINTF(("fd_set_motor:\n"));
694 1.1 oki for (n = 0; n < 4; n++)
695 1.1 oki if ((fd = fdc->sc_fd[n]) && (fd->sc_flags & FD_MOTOR)) {
696 1.1 oki infdc.select = 0x80 | (fd->sc_type->rate << 4)| n;
697 1.1 oki }
698 1.1 oki }
699 1.1 oki
700 1.1 oki void
701 1.1 oki fd_motor_off(arg)
702 1.1 oki void *arg;
703 1.1 oki {
704 1.1 oki struct fd_softc *fd = arg;
705 1.1 oki int s;
706 1.1 oki
707 1.1 oki DPRINTF(("fd_motor_off:\n"));
708 1.1 oki
709 1.1 oki s = splbio();
710 1.1 oki fd->sc_flags &= ~(FD_MOTOR | FD_MOTOR_WAIT);
711 1.1 oki infdc.select = (fd->sc_type->rate << 4) | fd->sc_drive;
712 1.1 oki #if 0
713 1.1 oki fd_set_motor((struct fdc_softc *)&fdc_softc[0], 0); /* XXX */
714 1.1 oki #endif
715 1.1 oki splx(s);
716 1.1 oki }
717 1.1 oki
718 1.1 oki void
719 1.1 oki fd_motor_on(arg)
720 1.1 oki void *arg;
721 1.1 oki {
722 1.1 oki struct fd_softc *fd = arg;
723 1.1 oki struct fdc_softc *fdc = (void *)fd->sc_dev.dv_parent;
724 1.1 oki int s;
725 1.1 oki
726 1.1 oki DPRINTF(("fd_motor_on:\n"));
727 1.1 oki
728 1.1 oki s = splbio();
729 1.1 oki fd->sc_flags &= ~FD_MOTOR_WAIT;
730 1.1 oki if ((fdc->sc_drives.tqh_first == fd) && (fdc->sc_state == MOTORWAIT))
731 1.1 oki (void) fdcintr();
732 1.1 oki splx(s);
733 1.1 oki }
734 1.1 oki
735 1.1 oki int
736 1.1 oki fdcresult(fdc)
737 1.1 oki struct fdc_softc *fdc;
738 1.1 oki {
739 1.1 oki u_char i;
740 1.1 oki int j = 100000,
741 1.1 oki n = 0;
742 1.1 oki
743 1.1 oki for (; j; j--) {
744 1.1 oki
745 1.1 oki i = infdc.stat & (NE7_DIO | NE7_RQM | NE7_CB);
746 1.1 oki
747 1.1 oki
748 1.1 oki if (i == NE7_RQM)
749 1.1 oki return n;
750 1.1 oki if (i == (NE7_DIO | NE7_RQM | NE7_CB)) {
751 1.1 oki if (n >= sizeof(fdc->sc_status)) {
752 1.1 oki log(LOG_ERR, "fdcresult: overrun\n");
753 1.1 oki return -1;
754 1.1 oki }
755 1.1 oki fdc->sc_status[n++] = infdc.data;
756 1.1 oki }
757 1.1 oki }
758 1.1 oki log(LOG_ERR, "fdcresult: timeout\n");
759 1.1 oki return -1;
760 1.1 oki }
761 1.1 oki
762 1.1 oki int
763 1.1 oki out_fdc(x)
764 1.1 oki u_char x;
765 1.1 oki {
766 1.1 oki int i = 100000;
767 1.1 oki
768 1.1 oki while ((infdc.stat & NE7_DIO) && i-- > 0);
769 1.1 oki if (i <= 0)
770 1.1 oki return -1;
771 1.1 oki while ((infdc.stat & NE7_RQM) == 0 && i-- > 0);
772 1.1 oki if (i <= 0)
773 1.1 oki return -1;
774 1.1 oki
775 1.1 oki infdc.data = x;
776 1.1 oki
777 1.1 oki return 0;
778 1.1 oki }
779 1.1 oki
780 1.1 oki int
781 1.14 oki fdopen(dev, flags, mode, p)
782 1.1 oki dev_t dev;
783 1.14 oki int flags, mode;
784 1.14 oki struct proc *p;
785 1.1 oki {
786 1.1 oki int unit;
787 1.1 oki struct fd_softc *fd;
788 1.1 oki struct fd_type *type;
789 1.1 oki
790 1.1 oki unit = FDUNIT(dev);
791 1.1 oki if (unit >= fd_cd.cd_ndevs)
792 1.1 oki return ENXIO;
793 1.1 oki fd = fd_cd.cd_devs[unit];
794 1.1 oki if (fd == 0)
795 1.1 oki return ENXIO;
796 1.1 oki type = fd_dev_to_type(fd, dev);
797 1.1 oki if (type == NULL)
798 1.1 oki return ENXIO;
799 1.1 oki
800 1.1 oki if ((fd->sc_flags & FD_OPEN) != 0 &&
801 1.1 oki fd->sc_type != type)
802 1.1 oki return EBUSY;
803 1.1 oki
804 1.1 oki if ((fd->sc_flags & FD_OPEN) == 0) {
805 1.1 oki /* Lock eject button */
806 1.1 oki infdc.drvstat = 0x40 | ( 1 << unit);
807 1.1 oki infdc.drvstat = 0x40;
808 1.1 oki }
809 1.1 oki
810 1.1 oki fd->sc_type = type;
811 1.1 oki fd->sc_cylin = -1;
812 1.1 oki
813 1.14 oki switch (mode) {
814 1.1 oki case S_IFCHR:
815 1.1 oki fd->sc_flags |= FD_COPEN;
816 1.1 oki break;
817 1.1 oki case S_IFBLK:
818 1.1 oki fd->sc_flags |= FD_BOPEN;
819 1.1 oki break;
820 1.1 oki }
821 1.1 oki
822 1.1 oki fdgetdisklabel(fd, dev);
823 1.1 oki
824 1.1 oki return 0;
825 1.1 oki }
826 1.1 oki
827 1.1 oki int
828 1.14 oki fdclose(dev, flags, mode, p)
829 1.1 oki dev_t dev;
830 1.14 oki int flags, mode;
831 1.14 oki struct proc *p;
832 1.1 oki {
833 1.1 oki int unit = FDUNIT(dev);
834 1.1 oki struct fd_softc *fd = fd_cd.cd_devs[FDUNIT(dev)];
835 1.1 oki
836 1.1 oki DPRINTF(("fdclose %d\n", unit));
837 1.1 oki
838 1.14 oki switch (mode) {
839 1.1 oki case S_IFCHR:
840 1.1 oki fd->sc_flags &= ~FD_COPEN;
841 1.1 oki break;
842 1.1 oki case S_IFBLK:
843 1.1 oki fd->sc_flags &= ~FD_BOPEN;
844 1.1 oki break;
845 1.1 oki }
846 1.1 oki
847 1.1 oki if ((fd->sc_flags & FD_OPEN) == 0) {
848 1.1 oki infdc.drvstat = ( 1 << unit);
849 1.1 oki infdc.drvstat = 0x00;
850 1.1 oki }
851 1.1 oki return 0;
852 1.1 oki }
853 1.1 oki
854 1.1 oki void
855 1.1 oki fdcstart(fdc)
856 1.1 oki struct fdc_softc *fdc;
857 1.1 oki {
858 1.1 oki
859 1.1 oki #ifdef DIAGNOSTIC
860 1.1 oki /* only got here if controller's drive queue was inactive; should
861 1.1 oki be in idle state */
862 1.1 oki if (fdc->sc_state != DEVIDLE) {
863 1.8 christos printf("fdcstart: not idle\n");
864 1.1 oki return;
865 1.1 oki }
866 1.1 oki #endif
867 1.1 oki (void) fdcintr();
868 1.1 oki }
869 1.1 oki
870 1.1 oki void
871 1.1 oki fdcstatus(dv, n, s)
872 1.1 oki struct device *dv;
873 1.1 oki int n;
874 1.1 oki char *s;
875 1.1 oki {
876 1.1 oki struct fdc_softc *fdc = (void *)dv->dv_parent;
877 1.10 oki char bits[64];
878 1.1 oki
879 1.1 oki if (n == 0) {
880 1.1 oki out_fdc(NE7CMD_SENSEI);
881 1.1 oki (void) fdcresult(fdc);
882 1.1 oki n = 2;
883 1.1 oki }
884 1.1 oki
885 1.8 christos printf("%s: %s: state %d", dv->dv_xname, s, fdc->sc_state);
886 1.1 oki
887 1.1 oki switch (n) {
888 1.1 oki case 0:
889 1.8 christos printf("\n");
890 1.1 oki break;
891 1.1 oki case 2:
892 1.10 oki printf(" (st0 %s cyl %d)\n",
893 1.10 oki bitmask_snprintf(fdc->sc_status[0], NE7_ST0BITS,
894 1.10 oki bits, sizeof(bits)), fdc->sc_status[1]);
895 1.1 oki break;
896 1.1 oki case 7:
897 1.10 oki printf(" (st0 %s", bitmask_snprintf(fdc->sc_status[0],
898 1.10 oki NE7_ST0BITS, bits, sizeof(bits)));
899 1.10 oki printf(" st1 %s", bitmask_snprintf(fdc->sc_status[1],
900 1.10 oki NE7_ST1BITS, bits, sizeof(bits)));
901 1.10 oki printf(" st2 %s", bitmask_snprintf(fdc->sc_status[2],
902 1.10 oki NE7_ST2BITS, bits, sizeof(bits)));
903 1.10 oki printf(" cyl %d head %d sec %d)\n",
904 1.1 oki fdc->sc_status[3], fdc->sc_status[4], fdc->sc_status[5]);
905 1.1 oki break;
906 1.1 oki #ifdef DIAGNOSTIC
907 1.1 oki default:
908 1.8 christos printf(" fdcstatus: weird size: %d\n", n);
909 1.1 oki break;
910 1.1 oki #endif
911 1.1 oki }
912 1.1 oki }
913 1.1 oki
914 1.1 oki void
915 1.1 oki fdctimeout(arg)
916 1.1 oki void *arg;
917 1.1 oki {
918 1.1 oki struct fdc_softc *fdc = arg;
919 1.1 oki struct fd_softc *fd = fdc->sc_drives.tqh_first;
920 1.1 oki int s;
921 1.1 oki
922 1.1 oki s = splbio();
923 1.1 oki fdcstatus(&fd->sc_dev, 0, "timeout");
924 1.1 oki
925 1.1 oki if (fd->sc_q.b_actf)
926 1.1 oki fdc->sc_state++;
927 1.1 oki else
928 1.1 oki fdc->sc_state = DEVIDLE;
929 1.1 oki
930 1.1 oki (void) fdcintr();
931 1.1 oki splx(s);
932 1.1 oki }
933 1.1 oki
934 1.1 oki void
935 1.1 oki fdcpseudointr(arg)
936 1.1 oki void *arg;
937 1.1 oki {
938 1.1 oki int s;
939 1.1 oki
940 1.1 oki /* just ensure it has the right spl */
941 1.1 oki s = splbio();
942 1.1 oki (void) fdcintr();
943 1.1 oki splx(s);
944 1.1 oki }
945 1.1 oki
946 1.1 oki int
947 1.1 oki fdcintr()
948 1.1 oki {
949 1.1 oki struct fdc_softc *fdc = fdc_cd.cd_devs[0]; /* XXX */
950 1.1 oki #define st0 fdc->sc_status[0]
951 1.1 oki #define cyl fdc->sc_status[1]
952 1.1 oki struct fd_softc *fd;
953 1.1 oki struct buf *bp;
954 1.1 oki int read, head, sec, pos, i, sectrac, nblks;
955 1.1 oki int tmp;
956 1.1 oki struct fd_type *type;
957 1.1 oki
958 1.1 oki loop:
959 1.1 oki fd = fdc->sc_drives.tqh_first;
960 1.1 oki if (fd == NULL) {
961 1.1 oki DPRINTF(("fdcintr: set DEVIDLE\n"));
962 1.1 oki if (fdc->sc_state == DEVIDLE) {
963 1.1 oki if ((ioctlr.intr & 0x80)) {
964 1.1 oki out_fdc(NE7CMD_SENSEI);
965 1.1 oki if ((tmp = fdcresult(fdc)) != 2 || (st0 & 0xf8) != 0x20) {
966 1.1 oki goto loop;
967 1.1 oki }
968 1.1 oki }
969 1.1 oki }
970 1.1 oki /* no drives waiting; end */
971 1.1 oki fdc->sc_state = DEVIDLE;
972 1.1 oki return 1;
973 1.1 oki }
974 1.1 oki
975 1.1 oki /* Is there a transfer to this drive? If not, deactivate drive. */
976 1.1 oki bp = fd->sc_q.b_actf;
977 1.1 oki if (bp == NULL) {
978 1.1 oki fd->sc_ops = 0;
979 1.1 oki TAILQ_REMOVE(&fdc->sc_drives, fd, sc_drivechain);
980 1.1 oki fd->sc_q.b_active = 0;
981 1.1 oki goto loop;
982 1.1 oki }
983 1.1 oki
984 1.1 oki switch (fdc->sc_state) {
985 1.1 oki case DEVIDLE:
986 1.1 oki DPRINTF(("fdcintr: in DEVIDLE\n"));
987 1.1 oki fdc->sc_errors = 0;
988 1.1 oki fd->sc_skip = 0;
989 1.1 oki fd->sc_bcount = bp->b_bcount;
990 1.1 oki fd->sc_blkno = bp->b_blkno / (FDC_BSIZE / DEV_BSIZE);
991 1.1 oki untimeout(fd_motor_off, fd);
992 1.1 oki if ((fd->sc_flags & FD_MOTOR_WAIT) != 0) {
993 1.1 oki fdc->sc_state = MOTORWAIT;
994 1.1 oki return 1;
995 1.1 oki }
996 1.1 oki if ((fd->sc_flags & FD_MOTOR) == 0) {
997 1.5 oki /* Turn on the motor */
998 1.5 oki /* being careful about other drives. */
999 1.5 oki for (i = 0; i < 4; i++) {
1000 1.5 oki struct fd_softc *ofd = fdc->sc_fd[i];
1001 1.5 oki if (ofd && ofd->sc_flags & FD_MOTOR) {
1002 1.5 oki untimeout(fd_motor_off, ofd);
1003 1.5 oki ofd->sc_flags &= ~(FD_MOTOR | FD_MOTOR_WAIT);
1004 1.5 oki break;
1005 1.5 oki }
1006 1.1 oki }
1007 1.1 oki fd->sc_flags |= FD_MOTOR | FD_MOTOR_WAIT;
1008 1.1 oki fd_set_motor(fdc, 0);
1009 1.1 oki fdc->sc_state = MOTORWAIT;
1010 1.1 oki /* allow .5s for motor to stabilize */
1011 1.1 oki timeout(fd_motor_on, fd, hz / 2);
1012 1.1 oki return 1;
1013 1.1 oki }
1014 1.1 oki /* Make sure the right drive is selected. */
1015 1.1 oki fd_set_motor(fdc, 0);
1016 1.1 oki
1017 1.1 oki /* fall through */
1018 1.1 oki case DOSEEK:
1019 1.1 oki doseek:
1020 1.1 oki DPRINTF(("fdcintr: in DOSEEK\n"));
1021 1.1 oki if (fd->sc_cylin == bp->b_cylin)
1022 1.1 oki goto doio;
1023 1.1 oki
1024 1.1 oki out_fdc(NE7CMD_SPECIFY);/* specify command */
1025 1.1 oki out_fdc(0xd0); /* XXX const */
1026 1.1 oki out_fdc(0x10);
1027 1.1 oki
1028 1.1 oki out_fdc(NE7CMD_SEEK); /* seek function */
1029 1.1 oki out_fdc(fd->sc_drive); /* drive number */
1030 1.1 oki out_fdc(bp->b_cylin * fd->sc_type->step);
1031 1.1 oki
1032 1.1 oki fd->sc_cylin = -1;
1033 1.1 oki fdc->sc_state = SEEKWAIT;
1034 1.1 oki
1035 1.1 oki fd->sc_dk.dk_seek++;
1036 1.1 oki disk_busy(&fd->sc_dk);
1037 1.1 oki
1038 1.1 oki timeout(fdctimeout, fdc, 4 * hz);
1039 1.1 oki return 1;
1040 1.1 oki
1041 1.1 oki case DOIO:
1042 1.1 oki doio:
1043 1.1 oki DPRINTF(("fdcintr: DOIO: "));
1044 1.1 oki type = fd->sc_type;
1045 1.1 oki sectrac = type->sectrac;
1046 1.1 oki pos = fd->sc_blkno % (sectrac * (1 << (type->secsize - 2)));
1047 1.1 oki sec = pos / (1 << (type->secsize - 2));
1048 1.1 oki if (type->secsize == 2) {
1049 1.1 oki fd->sc_part = SEC_P11;
1050 1.1 oki nblks = (sectrac - sec) << (type->secsize - 2);
1051 1.1 oki nblks = min(nblks, fd->sc_bcount / FDC_BSIZE);
1052 1.1 oki DPRINTF(("nblks(0)"));
1053 1.1 oki } else if ((fd->sc_blkno % 2) == 0) {
1054 1.1 oki if (fd->sc_bcount & 0x00000200) {
1055 1.1 oki if (fd->sc_bcount == FDC_BSIZE) {
1056 1.1 oki fd->sc_part = SEC_P10;
1057 1.1 oki nblks = 1;
1058 1.1 oki DPRINTF(("nblks(1)"));
1059 1.1 oki } else {
1060 1.1 oki fd->sc_part = SEC_P11;
1061 1.1 oki nblks = (sectrac - sec) * 2;
1062 1.1 oki nblks = min(nblks, fd->sc_bcount
1063 1.1 oki / FDC_BSIZE - 1);
1064 1.1 oki DPRINTF(("nblks(2)"));
1065 1.1 oki }
1066 1.1 oki } else {
1067 1.1 oki fd->sc_part = SEC_P11;
1068 1.1 oki nblks = (sectrac - sec)
1069 1.1 oki << (type->secsize - 2);
1070 1.1 oki nblks = min(nblks, fd->sc_bcount / FDC_BSIZE);
1071 1.1 oki DPRINTF(("nblks(3)"));
1072 1.1 oki }
1073 1.1 oki } else {
1074 1.1 oki fd->sc_part = SEC_P01;
1075 1.1 oki nblks = 1;
1076 1.1 oki DPRINTF(("nblks(4)"));
1077 1.1 oki }
1078 1.1 oki nblks = min(nblks, FDC_MAXIOSIZE / FDC_BSIZE);
1079 1.1 oki DPRINTF((" %d\n", nblks));
1080 1.1 oki fd->sc_nblks = nblks;
1081 1.1 oki fd->sc_nbytes = nblks * FDC_BSIZE;
1082 1.1 oki head = (fd->sc_blkno
1083 1.1 oki % (type->seccyl * (1 << (type->secsize - 2))))
1084 1.1 oki / (type->sectrac * (1 << (type->secsize - 2)));
1085 1.1 oki
1086 1.1 oki #ifdef DIAGNOSTIC
1087 1.1 oki {int block;
1088 1.1 oki block = ((fd->sc_cylin * type->heads + head) * type->sectrac
1089 1.1 oki + sec) * (1 << (type->secsize - 2));
1090 1.1 oki block += (fd->sc_part == SEC_P01) ? 1 : 0;
1091 1.1 oki if (block != fd->sc_blkno) {
1092 1.8 christos printf("C H R N: %d %d %d %d\n", fd->sc_cylin, head, sec, type->secsize);
1093 1.8 christos printf("fdcintr: doio: block %d != blkno %d\n", block, fd->sc_blkno);
1094 1.1 oki #ifdef DDB
1095 1.1 oki Debugger();
1096 1.1 oki #endif
1097 1.1 oki }}
1098 1.1 oki #endif
1099 1.1 oki read = bp->b_flags & B_READ;
1100 1.1 oki DPRINTF(("fdcintr: %s drive %d track %d head %d sec %d nblks %d, skip %d\n",
1101 1.1 oki read ? "read" : "write", fd->sc_drive, fd->sc_cylin,
1102 1.1 oki head, sec, nblks, fd->sc_skip));
1103 1.1 oki DPRINTF(("C H R N: %d %d %d %d\n", fd->sc_cylin, head, sec,
1104 1.1 oki type->secsize));
1105 1.1 oki
1106 1.1 oki if (fd->sc_part != SEC_P11)
1107 1.1 oki goto docopy;
1108 1.1 oki
1109 1.1 oki fdc_dmastart(read, bp->b_data + fd->sc_skip, fd->sc_nbytes);
1110 1.1 oki if (read)
1111 1.1 oki out_fdc(NE7CMD_READ); /* READ */
1112 1.1 oki else
1113 1.1 oki out_fdc(NE7CMD_WRITE); /* WRITE */
1114 1.1 oki out_fdc((head << 2) | fd->sc_drive);
1115 1.1 oki out_fdc(bp->b_cylin); /* cylinder */
1116 1.1 oki out_fdc(head);
1117 1.1 oki out_fdc(sec + 1); /* sector +1 */
1118 1.1 oki out_fdc(type->secsize); /* sector size */
1119 1.1 oki out_fdc(type->sectrac); /* sectors/track */
1120 1.1 oki out_fdc(type->gap1); /* gap1 size */
1121 1.1 oki out_fdc(type->datalen); /* data length */
1122 1.1 oki fdc->sc_state = IOCOMPLETE;
1123 1.1 oki
1124 1.1 oki disk_busy(&fd->sc_dk);
1125 1.1 oki
1126 1.1 oki /* allow 2 seconds for operation */
1127 1.1 oki timeout(fdctimeout, fdc, 2 * hz);
1128 1.1 oki return 1; /* will return later */
1129 1.1 oki
1130 1.1 oki case DOCOPY:
1131 1.1 oki docopy:
1132 1.1 oki DPRINTF(("fdcintr: DOCOPY:\n"));
1133 1.1 oki fdc_dmastart(B_READ, fd->sc_copybuf, 1024);
1134 1.1 oki out_fdc(NE7CMD_READ); /* READ */
1135 1.1 oki out_fdc((head << 2) | fd->sc_drive);
1136 1.1 oki out_fdc(bp->b_cylin); /* cylinder */
1137 1.1 oki out_fdc(head);
1138 1.1 oki out_fdc(sec + 1); /* sector +1 */
1139 1.1 oki out_fdc(type->secsize); /* sector size */
1140 1.1 oki out_fdc(type->sectrac); /* sectors/track */
1141 1.1 oki out_fdc(type->gap1); /* gap1 size */
1142 1.1 oki out_fdc(type->datalen); /* data length */
1143 1.1 oki fdc->sc_state = COPYCOMPLETE;
1144 1.1 oki /* allow 2 seconds for operation */
1145 1.1 oki timeout(fdctimeout, fdc, 2 * hz);
1146 1.1 oki return 1; /* will return later */
1147 1.1 oki
1148 1.1 oki case DOIOHALF:
1149 1.1 oki doiohalf:
1150 1.1 oki DPRINTF((" DOIOHALF:\n"));
1151 1.1 oki
1152 1.1 oki #ifdef DIAGNOSTIC
1153 1.1 oki type = fd->sc_type;
1154 1.1 oki sectrac = type->sectrac;
1155 1.1 oki pos = fd->sc_blkno % (sectrac * (1 << (type->secsize - 2)));
1156 1.1 oki sec = pos / (1 << (type->secsize - 2));
1157 1.1 oki head = (fd->sc_blkno
1158 1.1 oki % (type->seccyl * (1 << (type->secsize - 2))))
1159 1.1 oki / (type->sectrac * (1 << (type->secsize - 2)));
1160 1.1 oki {int block;
1161 1.1 oki block = ((fd->sc_cylin * type->heads + head) * type->sectrac + sec)
1162 1.1 oki * (1 << (type->secsize - 2));
1163 1.1 oki block += (fd->sc_part == SEC_P01) ? 1 : 0;
1164 1.1 oki if (block != fd->sc_blkno) {
1165 1.8 christos printf("fdcintr: block %d != blkno %d\n", block, fd->sc_blkno);
1166 1.1 oki #ifdef DDB
1167 1.1 oki Debugger();
1168 1.1 oki #endif
1169 1.1 oki }}
1170 1.1 oki #endif
1171 1.1 oki if (read = bp->b_flags & B_READ) {
1172 1.1 oki bcopy(fd->sc_copybuf
1173 1.1 oki + (fd->sc_part & SEC_P01 ? FDC_BSIZE : 0),
1174 1.1 oki bp->b_data + fd->sc_skip,
1175 1.1 oki FDC_BSIZE);
1176 1.1 oki fdc->sc_state = IOCOMPLETE;
1177 1.1 oki goto iocomplete2;
1178 1.1 oki } else {
1179 1.1 oki bcopy(bp->b_data + fd->sc_skip,
1180 1.1 oki fd->sc_copybuf
1181 1.1 oki + (fd->sc_part & SEC_P01 ? FDC_BSIZE : 0),
1182 1.1 oki FDC_BSIZE);
1183 1.1 oki fdc_dmastart(read, fd->sc_copybuf, 1024);
1184 1.1 oki }
1185 1.1 oki out_fdc(NE7CMD_WRITE); /* WRITE */
1186 1.1 oki out_fdc((head << 2) | fd->sc_drive);
1187 1.1 oki out_fdc(bp->b_cylin); /* cylinder */
1188 1.1 oki out_fdc(head);
1189 1.1 oki out_fdc(sec + 1); /* sector +1 */
1190 1.1 oki out_fdc(fd->sc_type->secsize); /* sector size */
1191 1.1 oki out_fdc(sectrac); /* sectors/track */
1192 1.1 oki out_fdc(fd->sc_type->gap1); /* gap1 size */
1193 1.1 oki out_fdc(fd->sc_type->datalen); /* data length */
1194 1.1 oki fdc->sc_state = IOCOMPLETE;
1195 1.1 oki /* allow 2 seconds for operation */
1196 1.1 oki timeout(fdctimeout, fdc, 2 * hz);
1197 1.1 oki return 1; /* will return later */
1198 1.1 oki
1199 1.1 oki case SEEKWAIT:
1200 1.1 oki untimeout(fdctimeout, fdc);
1201 1.1 oki fdc->sc_state = SEEKCOMPLETE;
1202 1.1 oki /* allow 1/50 second for heads to settle */
1203 1.1 oki /* timeout(fdcpseudointr, fdc, hz / 50);*/
1204 1.1 oki return 1;
1205 1.1 oki
1206 1.1 oki case SEEKCOMPLETE:
1207 1.1 oki /* Make sure seek really happened */
1208 1.1 oki DPRINTF(("fdcintr: SEEKCOMPLETE: FDC status = %x\n",
1209 1.1 oki infdc.stat));
1210 1.1 oki out_fdc(NE7CMD_SENSEI);
1211 1.1 oki tmp = fdcresult(fdc);
1212 1.1 oki if ((st0 & 0xf8) == 0xc0) {
1213 1.1 oki DPRINTF(("fdcintr: first seek!\n"));
1214 1.1 oki fdc->sc_state = DORECAL;
1215 1.1 oki goto loop;
1216 1.1 oki } else if (tmp != 2 || (st0 & 0xf8) != 0x20 || cyl != bp->b_cylin) {
1217 1.1 oki #ifdef FDDEBUG
1218 1.1 oki fdcstatus(&fd->sc_dev, 2, "seek failed");
1219 1.1 oki #endif
1220 1.1 oki fdcretry(fdc);
1221 1.1 oki goto loop;
1222 1.1 oki }
1223 1.1 oki fd->sc_cylin = bp->b_cylin;
1224 1.1 oki goto doio;
1225 1.1 oki
1226 1.1 oki case IOTIMEDOUT:
1227 1.1 oki #if 0
1228 1.1 oki isa_dmaabort(fdc->sc_drq);
1229 1.1 oki #endif
1230 1.1 oki case SEEKTIMEDOUT:
1231 1.1 oki case RECALTIMEDOUT:
1232 1.1 oki case RESETTIMEDOUT:
1233 1.1 oki fdcretry(fdc);
1234 1.1 oki goto loop;
1235 1.1 oki
1236 1.1 oki case IOCOMPLETE: /* IO DONE, post-analyze */
1237 1.1 oki untimeout(fdctimeout, fdc);
1238 1.1 oki DPRINTF(("fdcintr: in IOCOMPLETE\n"));
1239 1.1 oki if ((tmp = fdcresult(fdc)) != 7 || (st0 & 0xf8) != 0) {
1240 1.8 christos printf("fdcintr: resnum=%d, st0=%x\n", tmp, st0);
1241 1.1 oki #if 0
1242 1.1 oki isa_dmaabort(fdc->sc_drq);
1243 1.1 oki #endif
1244 1.1 oki fdcstatus(&fd->sc_dev, 7, bp->b_flags & B_READ ?
1245 1.1 oki "read failed" : "write failed");
1246 1.8 christos printf("blkno %d nblks %d\n",
1247 1.1 oki fd->sc_blkno, fd->sc_nblks);
1248 1.1 oki fdcretry(fdc);
1249 1.1 oki goto loop;
1250 1.1 oki }
1251 1.1 oki #if 0
1252 1.1 oki isa_dmadone(bp->b_flags & B_READ, bp->b_data + fd->sc_skip,
1253 1.1 oki nblks * FDC_BSIZE, fdc->sc_drq);
1254 1.1 oki #endif
1255 1.1 oki iocomplete2:
1256 1.1 oki if (fdc->sc_errors) {
1257 1.1 oki diskerr(bp, "fd", "soft error", LOG_PRINTF,
1258 1.1 oki fd->sc_skip / FDC_BSIZE, (struct disklabel *)NULL);
1259 1.8 christos printf("\n");
1260 1.1 oki fdc->sc_errors = 0;
1261 1.1 oki }
1262 1.1 oki fd->sc_blkno += fd->sc_nblks;
1263 1.1 oki fd->sc_skip += fd->sc_nbytes;
1264 1.1 oki fd->sc_bcount -= fd->sc_nbytes;
1265 1.1 oki DPRINTF(("fd->sc_bcount = %d\n", fd->sc_bcount));
1266 1.1 oki if (fd->sc_bcount > 0) {
1267 1.1 oki bp->b_cylin = fd->sc_blkno
1268 1.1 oki / (fd->sc_type->seccyl
1269 1.1 oki * (1 << (fd->sc_type->secsize - 2)));
1270 1.1 oki goto doseek;
1271 1.1 oki }
1272 1.1 oki fdfinish(fd, bp);
1273 1.1 oki goto loop;
1274 1.1 oki
1275 1.1 oki case COPYCOMPLETE: /* IO DONE, post-analyze */
1276 1.1 oki DPRINTF(("fdcintr: COPYCOMPLETE:"));
1277 1.1 oki untimeout(fdctimeout, fdc);
1278 1.1 oki if ((tmp = fdcresult(fdc)) != 7 || (st0 & 0xf8) != 0) {
1279 1.8 christos printf("fdcintr: resnum=%d, st0=%x\n", tmp, st0);
1280 1.1 oki #if 0
1281 1.1 oki isa_dmaabort(fdc->sc_drq);
1282 1.1 oki #endif
1283 1.1 oki fdcstatus(&fd->sc_dev, 7, bp->b_flags & B_READ ?
1284 1.1 oki "read failed" : "write failed");
1285 1.8 christos printf("blkno %d nblks %d\n",
1286 1.1 oki fd->sc_blkno, fd->sc_nblks);
1287 1.1 oki fdcretry(fdc);
1288 1.1 oki goto loop;
1289 1.1 oki }
1290 1.1 oki goto doiohalf;
1291 1.1 oki
1292 1.1 oki case DORESET:
1293 1.1 oki DPRINTF(("fdcintr: in DORESET\n"));
1294 1.1 oki /* try a reset, keep motor on */
1295 1.1 oki fd_set_motor(fdc, 1);
1296 1.1 oki DELAY(100);
1297 1.1 oki fd_set_motor(fdc, 0);
1298 1.1 oki fdc->sc_state = RESETCOMPLETE;
1299 1.1 oki timeout(fdctimeout, fdc, hz / 2);
1300 1.1 oki return 1; /* will return later */
1301 1.1 oki
1302 1.1 oki case RESETCOMPLETE:
1303 1.1 oki DPRINTF(("fdcintr: in RESETCOMPLETE\n"));
1304 1.1 oki untimeout(fdctimeout, fdc);
1305 1.1 oki /* clear the controller output buffer */
1306 1.1 oki for (i = 0; i < 4; i++) {
1307 1.1 oki out_fdc(NE7CMD_SENSEI);
1308 1.1 oki (void) fdcresult(fdc);
1309 1.1 oki }
1310 1.1 oki
1311 1.1 oki /* fall through */
1312 1.1 oki case DORECAL:
1313 1.1 oki DPRINTF(("fdcintr: in DORECAL\n"));
1314 1.1 oki out_fdc(NE7CMD_RECAL); /* recalibrate function */
1315 1.1 oki out_fdc(fd->sc_drive);
1316 1.1 oki fdc->sc_state = RECALWAIT;
1317 1.1 oki timeout(fdctimeout, fdc, 5 * hz);
1318 1.1 oki return 1; /* will return later */
1319 1.1 oki
1320 1.1 oki case RECALWAIT:
1321 1.1 oki DPRINTF(("fdcintr: in RECALWAIT\n"));
1322 1.1 oki untimeout(fdctimeout, fdc);
1323 1.1 oki fdc->sc_state = RECALCOMPLETE;
1324 1.1 oki /* allow 1/30 second for heads to settle */
1325 1.1 oki /* timeout(fdcpseudointr, fdc, hz / 30);*/
1326 1.1 oki return 1; /* will return later */
1327 1.1 oki
1328 1.1 oki case RECALCOMPLETE:
1329 1.1 oki DPRINTF(("fdcintr: in RECALCOMPLETE\n"));
1330 1.1 oki out_fdc(NE7CMD_SENSEI);
1331 1.1 oki tmp = fdcresult(fdc);
1332 1.1 oki if ((st0 & 0xf8) == 0xc0) {
1333 1.1 oki DPRINTF(("fdcintr: first seek!\n"));
1334 1.1 oki fdc->sc_state = DORECAL;
1335 1.1 oki goto loop;
1336 1.1 oki } else if (tmp != 2 || (st0 & 0xf8) != 0x20 || cyl != 0) {
1337 1.1 oki #ifdef FDDEBUG
1338 1.1 oki fdcstatus(&fd->sc_dev, 2, "recalibrate failed");
1339 1.1 oki #endif
1340 1.1 oki fdcretry(fdc);
1341 1.1 oki goto loop;
1342 1.1 oki }
1343 1.1 oki fd->sc_cylin = 0;
1344 1.1 oki goto doseek;
1345 1.1 oki
1346 1.1 oki case MOTORWAIT:
1347 1.1 oki if (fd->sc_flags & FD_MOTOR_WAIT)
1348 1.1 oki return 1; /* time's not up yet */
1349 1.1 oki goto doseek;
1350 1.1 oki
1351 1.1 oki default:
1352 1.1 oki fdcstatus(&fd->sc_dev, 0, "stray interrupt");
1353 1.1 oki return 1;
1354 1.1 oki }
1355 1.1 oki #ifdef DIAGNOSTIC
1356 1.1 oki panic("fdcintr: impossible");
1357 1.1 oki #endif
1358 1.1 oki #undef st0
1359 1.1 oki #undef cyl
1360 1.1 oki }
1361 1.1 oki
1362 1.1 oki void
1363 1.1 oki fdcretry(fdc)
1364 1.1 oki struct fdc_softc *fdc;
1365 1.1 oki {
1366 1.1 oki struct fd_softc *fd;
1367 1.1 oki struct buf *bp;
1368 1.11 oki char bits[64];
1369 1.1 oki
1370 1.1 oki DPRINTF(("fdcretry:\n"));
1371 1.1 oki fd = fdc->sc_drives.tqh_first;
1372 1.1 oki bp = fd->sc_q.b_actf;
1373 1.1 oki
1374 1.1 oki switch (fdc->sc_errors) {
1375 1.1 oki case 0:
1376 1.1 oki /* try again */
1377 1.1 oki fdc->sc_state = SEEKCOMPLETE;
1378 1.1 oki break;
1379 1.1 oki
1380 1.1 oki case 1: case 2: case 3:
1381 1.1 oki /* didn't work; try recalibrating */
1382 1.1 oki fdc->sc_state = DORECAL;
1383 1.1 oki break;
1384 1.1 oki
1385 1.1 oki case 4:
1386 1.1 oki /* still no go; reset the bastard */
1387 1.1 oki fdc->sc_state = DORESET;
1388 1.1 oki break;
1389 1.1 oki
1390 1.1 oki default:
1391 1.1 oki diskerr(bp, "fd", "hard error", LOG_PRINTF,
1392 1.1 oki fd->sc_skip, (struct disklabel *)NULL);
1393 1.10 oki printf(" (st0 %s", bitmask_snprintf(fdc->sc_status[0],
1394 1.10 oki NE7_ST0BITS, bits,
1395 1.10 oki sizeof(bits)));
1396 1.10 oki printf(" st1 %s", bitmask_snprintf(fdc->sc_status[1],
1397 1.10 oki NE7_ST1BITS, bits,
1398 1.10 oki sizeof(bits)));
1399 1.10 oki printf(" st2 %s", bitmask_snprintf(fdc->sc_status[2],
1400 1.10 oki NE7_ST2BITS, bits,
1401 1.10 oki sizeof(bits)));
1402 1.10 oki printf(" cyl %d head %d sec %d)\n",
1403 1.10 oki fdc->sc_status[3],
1404 1.10 oki fdc->sc_status[4],
1405 1.10 oki fdc->sc_status[5]);
1406 1.1 oki
1407 1.1 oki bp->b_flags |= B_ERROR;
1408 1.1 oki bp->b_error = EIO;
1409 1.1 oki fdfinish(fd, bp);
1410 1.1 oki }
1411 1.1 oki fdc->sc_errors++;
1412 1.1 oki }
1413 1.1 oki
1414 1.1 oki int
1415 1.1 oki fdsize(dev)
1416 1.1 oki dev_t dev;
1417 1.1 oki {
1418 1.1 oki
1419 1.1 oki /* Swapping to floppies would not make sense. */
1420 1.1 oki return -1;
1421 1.1 oki }
1422 1.1 oki
1423 1.1 oki int
1424 1.1 oki fddump(dev, blkno, va, size)
1425 1.1 oki dev_t dev;
1426 1.1 oki daddr_t blkno;
1427 1.1 oki caddr_t va;
1428 1.1 oki size_t size;
1429 1.1 oki {
1430 1.1 oki
1431 1.1 oki /* Not implemented. */
1432 1.1 oki return ENXIO;
1433 1.1 oki }
1434 1.1 oki
1435 1.1 oki int
1436 1.14 oki fdioctl(dev, cmd, addr, flag, p)
1437 1.1 oki dev_t dev;
1438 1.1 oki u_long cmd;
1439 1.1 oki caddr_t addr;
1440 1.1 oki int flag;
1441 1.14 oki struct proc *p;
1442 1.1 oki {
1443 1.1 oki struct fd_softc *fd = fd_cd.cd_devs[FDUNIT(dev)];
1444 1.1 oki int unit = FDUNIT(dev);
1445 1.1 oki struct disklabel buffer;
1446 1.1 oki int error;
1447 1.1 oki
1448 1.1 oki DPRINTF(("fdioctl:\n"));
1449 1.1 oki switch (cmd) {
1450 1.1 oki case DIOCGDINFO:
1451 1.1 oki #if 1
1452 1.1 oki *(struct disklabel *)addr = *(fd->sc_dk.dk_label);
1453 1.1 oki return(0);
1454 1.1 oki #else
1455 1.1 oki bzero(&buffer, sizeof(buffer));
1456 1.1 oki
1457 1.1 oki buffer.d_secpercyl = fd->sc_type->seccyl;
1458 1.1 oki buffer.d_type = DTYPE_FLOPPY;
1459 1.1 oki buffer.d_secsize = 128 << fd->sc_type->secsize;
1460 1.1 oki
1461 1.1 oki if (readdisklabel(dev, fdstrategy, &buffer, NULL) != NULL)
1462 1.1 oki return EINVAL;
1463 1.1 oki
1464 1.1 oki *(struct disklabel *)addr = buffer;
1465 1.1 oki return 0;
1466 1.1 oki #endif
1467 1.1 oki
1468 1.1 oki case DIOCGPART:
1469 1.1 oki ((struct partinfo *)addr)->disklab = fd->sc_dk.dk_label;
1470 1.1 oki ((struct partinfo *)addr)->part =
1471 1.1 oki &fd->sc_dk.dk_label->d_partitions[DISKPART(dev)];
1472 1.1 oki return(0);
1473 1.1 oki
1474 1.1 oki case DIOCWLABEL:
1475 1.1 oki if ((flag & FWRITE) == 0)
1476 1.1 oki return EBADF;
1477 1.1 oki /* XXX do something */
1478 1.1 oki return 0;
1479 1.1 oki
1480 1.1 oki case DIOCWDINFO:
1481 1.1 oki if ((flag & FWRITE) == 0)
1482 1.1 oki return EBADF;
1483 1.1 oki
1484 1.1 oki error = setdisklabel(&buffer, (struct disklabel *)addr, 0, NULL);
1485 1.1 oki if (error)
1486 1.1 oki return error;
1487 1.1 oki
1488 1.1 oki error = writedisklabel(dev, fdstrategy, &buffer, NULL);
1489 1.1 oki return error;
1490 1.1 oki
1491 1.1 oki case DIOCLOCK:
1492 1.1 oki /*
1493 1.1 oki * Nothing to do here, really.
1494 1.1 oki */
1495 1.1 oki return 0; /* XXX */
1496 1.1 oki
1497 1.1 oki case DIOCEJECT:
1498 1.1 oki fd_do_eject(unit);
1499 1.1 oki return 0;
1500 1.1 oki
1501 1.1 oki default:
1502 1.1 oki return ENOTTY;
1503 1.1 oki }
1504 1.1 oki
1505 1.1 oki #ifdef DIAGNOSTIC
1506 1.1 oki panic("fdioctl: impossible");
1507 1.1 oki #endif
1508 1.1 oki }
1509 1.1 oki
1510 1.1 oki void
1511 1.1 oki fd_do_eject(unit)
1512 1.1 oki int unit;
1513 1.1 oki {
1514 1.1 oki infdc.drvstat = 0x20 | ( 1 << unit);
1515 1.1 oki DELAY(1); /* XXX */
1516 1.1 oki infdc.drvstat = 0x20;
1517 1.1 oki }
1518 1.1 oki
1519 1.1 oki /*
1520 1.1 oki * Build disk label. For now we only create a label from what we know
1521 1.1 oki * from 'sc'.
1522 1.1 oki */
1523 1.1 oki static int
1524 1.1 oki fdgetdisklabel(sc, dev)
1525 1.1 oki struct fd_softc *sc;
1526 1.1 oki dev_t dev;
1527 1.1 oki {
1528 1.1 oki struct disklabel *lp;
1529 1.1 oki int part;
1530 1.1 oki
1531 1.1 oki #ifdef FDDEBUG
1532 1.8 christos printf("fdgetdisklabel()\n");
1533 1.1 oki #endif
1534 1.1 oki
1535 1.1 oki part = DISKPART(dev);
1536 1.1 oki lp = sc->sc_dk.dk_label;
1537 1.1 oki bzero(lp, sizeof(struct disklabel));
1538 1.1 oki
1539 1.1 oki lp->d_secsize = 128 << sc->sc_type->secsize;
1540 1.1 oki lp->d_ntracks = sc->sc_type->heads;
1541 1.1 oki lp->d_nsectors = sc->sc_type->sectrac;
1542 1.1 oki lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
1543 1.1 oki lp->d_ncylinders = sc->sc_type->size / lp->d_secpercyl;
1544 1.1 oki lp->d_secperunit = sc->sc_type->size;
1545 1.1 oki
1546 1.1 oki lp->d_type = DTYPE_FLOPPY;
1547 1.1 oki lp->d_rpm = 300; /* XXX */
1548 1.1 oki lp->d_interleave = 1; /* FIXME: is this OK? */
1549 1.1 oki lp->d_bbsize = 0;
1550 1.1 oki lp->d_sbsize = 0;
1551 1.1 oki lp->d_npartitions = part + 1;
1552 1.1 oki #define STEP_DELAY 6000 /* 6ms (6000us) delay after stepping */
1553 1.1 oki lp->d_trkseek = STEP_DELAY; /* XXX */
1554 1.1 oki lp->d_magic = DISKMAGIC;
1555 1.1 oki lp->d_magic2 = DISKMAGIC;
1556 1.1 oki lp->d_checksum = dkcksum(lp);
1557 1.1 oki lp->d_partitions[part].p_size = lp->d_secperunit;
1558 1.1 oki lp->d_partitions[part].p_fstype = FS_UNUSED;
1559 1.1 oki lp->d_partitions[part].p_fsize = 1024;
1560 1.1 oki lp->d_partitions[part].p_frag = 8;
1561 1.1 oki
1562 1.1 oki return(0);
1563 1.1 oki }
1564 1.1 oki
1565 1.14 oki /*
1566 1.14 oki * Mountroot hook: prompt the user to enter the root file system
1567 1.14 oki * floppy.
1568 1.14 oki */
1569 1.4 oki void
1570 1.4 oki fd_mountroot_hook(dev)
1571 1.4 oki struct device *dev;
1572 1.4 oki {
1573 1.4 oki int c;
1574 1.4 oki
1575 1.4 oki fd_do_eject(dev->dv_unit);
1576 1.8 christos printf("Insert filesystem floppy and press return.");
1577 1.4 oki for (;;) {
1578 1.4 oki c = cngetc();
1579 1.4 oki if ((c == '\r') || (c == '\n')) {
1580 1.8 christos printf("\n");
1581 1.14 oki break;
1582 1.4 oki }
1583 1.4 oki }
1584 1.4 oki }
1585