xy.c revision 1.14 1 1.14 pk /* $NetBSD: xy.c,v 1.14 1997/06/18 20:47:42 pk Exp $ */
2 1.1 gwr
3 1.1 gwr /*
4 1.1 gwr *
5 1.1 gwr * Copyright (c) 1995 Charles D. Cranor
6 1.1 gwr * All rights reserved.
7 1.1 gwr *
8 1.1 gwr * Redistribution and use in source and binary forms, with or without
9 1.1 gwr * modification, are permitted provided that the following conditions
10 1.1 gwr * are met:
11 1.1 gwr * 1. Redistributions of source code must retain the above copyright
12 1.1 gwr * notice, this list of conditions and the following disclaimer.
13 1.1 gwr * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 gwr * notice, this list of conditions and the following disclaimer in the
15 1.1 gwr * documentation and/or other materials provided with the distribution.
16 1.1 gwr * 3. All advertising materials mentioning features or use of this software
17 1.1 gwr * must display the following acknowledgement:
18 1.1 gwr * This product includes software developed by Charles D. Cranor.
19 1.1 gwr * 4. The name of the author may not be used to endorse or promote products
20 1.1 gwr * derived from this software without specific prior written permission.
21 1.1 gwr *
22 1.1 gwr * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
23 1.1 gwr * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
24 1.1 gwr * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
25 1.1 gwr * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
26 1.1 gwr * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
27 1.1 gwr * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
28 1.1 gwr * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
29 1.1 gwr * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
30 1.1 gwr * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
31 1.1 gwr * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
32 1.1 gwr */
33 1.1 gwr
34 1.1 gwr /*
35 1.1 gwr *
36 1.1 gwr * x y . c x y l o g i c s 4 5 0 / 4 5 1 s m d d r i v e r
37 1.1 gwr *
38 1.1 gwr * author: Chuck Cranor <chuck (at) ccrc.wustl.edu>
39 1.14 pk * id: $NetBSD: xy.c,v 1.14 1997/06/18 20:47:42 pk Exp $
40 1.1 gwr * started: 14-Sep-95
41 1.1 gwr * references: [1] Xylogics Model 753 User's Manual
42 1.1 gwr * part number: 166-753-001, Revision B, May 21, 1988.
43 1.1 gwr * "Your Partner For Performance"
44 1.1 gwr * [2] other NetBSD disk device drivers
45 1.1 gwr * [3] Xylogics Model 450 User's Manual
46 1.1 gwr * part number: 166-017-001, Revision B, 1983.
47 1.1 gwr * [4] Addendum to Xylogics Model 450 Disk Controller User's
48 1.1 gwr * Manual, Jan. 1985.
49 1.1 gwr * [5] The 451 Controller, Rev. B3, September 2, 1986.
50 1.1 gwr * [6] David Jones <dej (at) achilles.net>'s unfinished 450/451 driver
51 1.1 gwr *
52 1.1 gwr */
53 1.1 gwr
54 1.1 gwr #undef XYC_DEBUG /* full debug */
55 1.1 gwr #undef XYC_DIAG /* extra sanity checks */
56 1.1 gwr #if defined(DIAGNOSTIC) && !defined(XYC_DIAG)
57 1.1 gwr #define XYC_DIAG /* link in with master DIAG option */
58 1.1 gwr #endif
59 1.1 gwr
60 1.1 gwr #include <sys/param.h>
61 1.1 gwr #include <sys/proc.h>
62 1.1 gwr #include <sys/systm.h>
63 1.1 gwr #include <sys/kernel.h>
64 1.1 gwr #include <sys/file.h>
65 1.1 gwr #include <sys/stat.h>
66 1.1 gwr #include <sys/ioctl.h>
67 1.1 gwr #include <sys/buf.h>
68 1.1 gwr #include <sys/uio.h>
69 1.1 gwr #include <sys/malloc.h>
70 1.1 gwr #include <sys/device.h>
71 1.1 gwr #include <sys/disklabel.h>
72 1.1 gwr #include <sys/disk.h>
73 1.1 gwr #include <sys/syslog.h>
74 1.1 gwr #include <sys/dkbad.h>
75 1.13 gwr #include <sys/conf.h>
76 1.13 gwr
77 1.1 gwr #include <vm/vm.h>
78 1.1 gwr #include <vm/vm_kern.h>
79 1.1 gwr
80 1.1 gwr #include <machine/autoconf.h>
81 1.1 gwr #include <machine/sun_disklabel.h>
82 1.1 gwr #include <machine/dvma.h>
83 1.1 gwr
84 1.1 gwr #include <sun3/dev/xyreg.h>
85 1.1 gwr #include <sun3/dev/xyvar.h>
86 1.1 gwr #include <sun3/dev/xio.h>
87 1.1 gwr
88 1.1 gwr /*
89 1.1 gwr * macros
90 1.1 gwr */
91 1.1 gwr
92 1.1 gwr /*
93 1.1 gwr * XYC_GO: start iopb ADDR (DVMA addr in a u_long) on XYC
94 1.1 gwr */
95 1.1 gwr #define XYC_GO(XYC, ADDR) { \
96 1.1 gwr (XYC)->xyc_addr_lo = ((ADDR) & 0xff); \
97 1.1 gwr (ADDR) = ((ADDR) >> 8); \
98 1.1 gwr (XYC)->xyc_addr_hi = ((ADDR) & 0xff); \
99 1.1 gwr (ADDR) = ((ADDR) >> 8); \
100 1.1 gwr (XYC)->xyc_reloc_lo = ((ADDR) & 0xff); \
101 1.1 gwr (ADDR) = ((ADDR) >> 8); \
102 1.1 gwr (XYC)->xyc_reloc_hi = (ADDR); \
103 1.7 chuck (XYC)->xyc_csr = XYC_GBSY; /* go! */ \
104 1.1 gwr }
105 1.1 gwr
106 1.1 gwr /*
107 1.1 gwr * XYC_DONE: don't need IORQ, get error code and free (done after xyc_cmd)
108 1.1 gwr */
109 1.1 gwr
110 1.1 gwr #define XYC_DONE(SC,ER) { \
111 1.1 gwr if ((ER) == XY_ERR_AOK) { \
112 1.1 gwr (ER) = (SC)->ciorq->errno; \
113 1.1 gwr (SC)->ciorq->mode = XY_SUB_FREE; \
114 1.1 gwr wakeup((SC)->ciorq); \
115 1.1 gwr } \
116 1.1 gwr }
117 1.1 gwr
118 1.1 gwr /*
119 1.1 gwr * XYC_ADVANCE: advance iorq's pointers by a number of sectors
120 1.1 gwr */
121 1.1 gwr
122 1.1 gwr #define XYC_ADVANCE(IORQ, N) { \
123 1.1 gwr if (N) { \
124 1.1 gwr (IORQ)->sectcnt -= (N); \
125 1.1 gwr (IORQ)->blockno += (N); \
126 1.1 gwr (IORQ)->dbuf += ((N)*XYFM_BPS); \
127 1.1 gwr } \
128 1.1 gwr }
129 1.1 gwr
130 1.1 gwr /*
131 1.1 gwr * note - addresses you can sleep on:
132 1.1 gwr * [1] & of xy_softc's "state" (waiting for a chance to attach a drive)
133 1.1 gwr * [2] & an iorq (waiting for an XY_SUB_WAIT iorq to finish)
134 1.1 gwr */
135 1.1 gwr
136 1.1 gwr
137 1.1 gwr /*
138 1.1 gwr * function prototypes
139 1.1 gwr * "xyc_*" functions are internal, all others are external interfaces
140 1.1 gwr */
141 1.1 gwr
142 1.1 gwr /* internals */
143 1.1 gwr struct xy_iopb *xyc_chain __P((struct xyc_softc *, struct xy_iorq *));
144 1.1 gwr int xyc_cmd __P((struct xyc_softc *, int, int, int, int, int, char *, int));
145 1.1 gwr char *xyc_e2str __P((int));
146 1.1 gwr int xyc_entoact __P((int));
147 1.1 gwr int xyc_error __P((struct xyc_softc *, struct xy_iorq *,
148 1.1 gwr struct xy_iopb *, int));
149 1.1 gwr int xyc_ioctlcmd __P((struct xy_softc *, dev_t dev, struct xd_iocmd *));
150 1.1 gwr void xyc_perror __P((struct xy_iorq *, struct xy_iopb *, int));
151 1.1 gwr int xyc_piodriver __P((struct xyc_softc *, struct xy_iorq *));
152 1.1 gwr int xyc_remove_iorq __P((struct xyc_softc *));
153 1.1 gwr int xyc_reset __P((struct xyc_softc *, int, struct xy_iorq *, int,
154 1.1 gwr struct xy_softc *));
155 1.1 gwr inline void xyc_rqinit __P((struct xy_iorq *, struct xyc_softc *,
156 1.1 gwr struct xy_softc *, int, u_long, int,
157 1.1 gwr caddr_t, struct buf *));
158 1.1 gwr void xyc_rqtopb __P((struct xy_iorq *, struct xy_iopb *, int, int));
159 1.1 gwr int xyc_start __P((struct xyc_softc *, struct xy_iorq *));
160 1.1 gwr int xyc_startbuf __P((struct xyc_softc *, struct xy_softc *, struct buf *));
161 1.1 gwr int xyc_submit_iorq __P((struct xyc_softc *, struct xy_iorq *, int));
162 1.1 gwr void xyc_tick __P((void *));
163 1.1 gwr int xyc_unbusy __P((struct xyc *, int));
164 1.1 gwr int xyc_xyreset __P((struct xyc_softc *, struct xy_softc *));
165 1.1 gwr
166 1.1 gwr /* machine interrupt hook */
167 1.1 gwr int xycintr __P((void *));
168 1.1 gwr
169 1.13 gwr /* bdevsw, cdevsw */
170 1.13 gwr bdev_decl(xy);
171 1.13 gwr cdev_decl(xy);
172 1.1 gwr
173 1.1 gwr /* autoconf */
174 1.12 gwr int xycmatch __P((struct device *, struct cfdata *, void *));
175 1.1 gwr void xycattach __P((struct device *, struct device *, void *));
176 1.12 gwr int xymatch __P((struct device *, struct cfdata *, void *));
177 1.1 gwr void xyattach __P((struct device *, struct device *, void *));
178 1.13 gwr int xyc_print __P((void *, char *name));
179 1.1 gwr
180 1.1 gwr static void xydummystrat __P((struct buf *));
181 1.1 gwr int xygetdisklabel __P((struct xy_softc *, void *));
182 1.1 gwr
183 1.1 gwr /*
184 1.1 gwr * cfdrivers: device driver interface to autoconfig
185 1.1 gwr */
186 1.1 gwr
187 1.9 thorpej struct cfattach xyc_ca = {
188 1.9 thorpej sizeof(struct xyc_softc), xycmatch, xycattach
189 1.1 gwr };
190 1.1 gwr
191 1.9 thorpej struct cfdriver xyc_cd = {
192 1.9 thorpej NULL, "xyc", DV_DULL
193 1.9 thorpej };
194 1.9 thorpej
195 1.9 thorpej struct cfattach xy_ca = {
196 1.9 thorpej sizeof(struct xy_softc), xymatch, xyattach
197 1.9 thorpej };
198 1.9 thorpej
199 1.9 thorpej struct cfdriver xy_cd = {
200 1.9 thorpej NULL, "xy", DV_DISK
201 1.1 gwr };
202 1.1 gwr
203 1.1 gwr struct xyc_attach_args { /* this is the "aux" args to xyattach */
204 1.1 gwr int driveno; /* unit number */
205 1.1 gwr char *dvmabuf; /* scratch buffer for reading disk label */
206 1.1 gwr int fullmode; /* submit mode */
207 1.1 gwr int booting; /* are we booting or not? */
208 1.1 gwr };
209 1.1 gwr
210 1.1 gwr /*
211 1.1 gwr * dkdriver
212 1.1 gwr */
213 1.1 gwr
214 1.1 gwr struct dkdriver xydkdriver = { xystrategy };
215 1.1 gwr
216 1.1 gwr /*
217 1.1 gwr * start: disk label fix code (XXX)
218 1.1 gwr */
219 1.1 gwr
220 1.1 gwr static void *xy_labeldata;
221 1.1 gwr
222 1.1 gwr static void
223 1.1 gwr xydummystrat(bp)
224 1.1 gwr struct buf *bp;
225 1.1 gwr {
226 1.1 gwr if (bp->b_bcount != XYFM_BPS)
227 1.1 gwr panic("xydummystrat");
228 1.1 gwr bcopy(xy_labeldata, bp->b_un.b_addr, XYFM_BPS);
229 1.1 gwr bp->b_flags |= B_DONE;
230 1.1 gwr bp->b_flags &= ~B_BUSY;
231 1.1 gwr }
232 1.1 gwr
233 1.1 gwr int
234 1.1 gwr xygetdisklabel(xy, b)
235 1.1 gwr struct xy_softc *xy;
236 1.1 gwr void *b;
237 1.1 gwr {
238 1.1 gwr char *err;
239 1.1 gwr struct sun_disklabel *sdl;
240 1.1 gwr
241 1.1 gwr /* We already have the label data in `b'; setup for dummy strategy */
242 1.1 gwr xy_labeldata = b;
243 1.1 gwr
244 1.1 gwr /* Required parameter for readdisklabel() */
245 1.2 thorpej xy->sc_dk.dk_label->d_secsize = XYFM_BPS;
246 1.1 gwr
247 1.1 gwr err = readdisklabel(MAKEDISKDEV(0, xy->sc_dev.dv_unit, RAW_PART),
248 1.1 gwr xydummystrat,
249 1.2 thorpej xy->sc_dk.dk_label, xy->sc_dk.dk_cpulabel);
250 1.1 gwr if (err) {
251 1.11 christos printf("%s: %s\n", xy->sc_dev.dv_xname, err);
252 1.1 gwr return(XY_ERR_FAIL);
253 1.1 gwr }
254 1.1 gwr
255 1.1 gwr /* Ok, we have the label; fill in `pcyl' if there's SunOS magic */
256 1.2 thorpej sdl = (struct sun_disklabel *)xy->sc_dk.dk_cpulabel->cd_block;
257 1.1 gwr if (sdl->sl_magic == SUN_DKMAGIC)
258 1.1 gwr xy->pcyl = sdl->sl_pcyl;
259 1.1 gwr else {
260 1.11 christos printf("%s: WARNING: no `pcyl' in disk label.\n",
261 1.1 gwr xy->sc_dev.dv_xname);
262 1.2 thorpej xy->pcyl = xy->sc_dk.dk_label->d_ncylinders +
263 1.2 thorpej xy->sc_dk.dk_label->d_acylinders;
264 1.11 christos printf("%s: WARNING: guessing pcyl=%d (ncyl+acyl)\n",
265 1.1 gwr xy->sc_dev.dv_xname, xy->pcyl);
266 1.1 gwr }
267 1.1 gwr
268 1.2 thorpej xy->ncyl = xy->sc_dk.dk_label->d_ncylinders;
269 1.2 thorpej xy->acyl = xy->sc_dk.dk_label->d_acylinders;
270 1.2 thorpej xy->nhead = xy->sc_dk.dk_label->d_ntracks;
271 1.2 thorpej xy->nsect = xy->sc_dk.dk_label->d_nsectors;
272 1.1 gwr xy->sectpercyl = xy->nhead * xy->nsect;
273 1.2 thorpej xy->sc_dk.dk_label->d_secsize = XYFM_BPS; /* not handled by
274 1.1 gwr * sun->bsd */
275 1.1 gwr return(XY_ERR_AOK);
276 1.1 gwr }
277 1.1 gwr
278 1.1 gwr /*
279 1.1 gwr * end: disk label fix code (XXX)
280 1.1 gwr */
281 1.1 gwr
282 1.1 gwr /*
283 1.1 gwr * a u t o c o n f i g f u n c t i o n s
284 1.1 gwr */
285 1.1 gwr
286 1.1 gwr /*
287 1.1 gwr * xycmatch: determine if xyc is present or not. we do a
288 1.1 gwr * soft reset to detect the xyc.
289 1.1 gwr */
290 1.1 gwr
291 1.12 gwr int xycmatch(parent, cf, aux)
292 1.1 gwr struct device *parent;
293 1.12 gwr struct cfdata *cf;
294 1.12 gwr void *aux;
295 1.1 gwr {
296 1.1 gwr struct confargs *ca = aux;
297 1.1 gwr int x;
298 1.1 gwr
299 1.1 gwr if (ca->ca_bustype != BUS_VME16)
300 1.1 gwr return (0);
301 1.1 gwr
302 1.1 gwr /* Default interrupt priority always splbio==2 */
303 1.1 gwr if (ca->ca_intpri == -1)
304 1.1 gwr ca->ca_intpri = 2;
305 1.1 gwr
306 1.1 gwr x = bus_peek(ca->ca_bustype, ca->ca_paddr + 5, 1);
307 1.1 gwr if (x == -1)
308 1.1 gwr return (0);
309 1.1 gwr
310 1.1 gwr return (1);
311 1.1 gwr }
312 1.1 gwr
313 1.1 gwr /*
314 1.1 gwr * xycattach: attach controller
315 1.1 gwr */
316 1.1 gwr void
317 1.1 gwr xycattach(parent, self, aux)
318 1.1 gwr struct device *parent, *self;
319 1.1 gwr void *aux;
320 1.1 gwr
321 1.1 gwr {
322 1.1 gwr struct xyc_softc *xyc = (void *) self;
323 1.1 gwr struct confargs *ca = aux;
324 1.1 gwr struct xyc_attach_args xa;
325 1.1 gwr int lcv, err, pri, res, pbsz;
326 1.1 gwr void *tmp, *tmp2;
327 1.1 gwr u_long ultmp;
328 1.1 gwr
329 1.1 gwr /* get addressing and intr level stuff from autoconfig and load it
330 1.1 gwr * into our xyc_softc. */
331 1.1 gwr
332 1.1 gwr xyc->xyc = (struct xyc *)
333 1.1 gwr bus_mapin(ca->ca_bustype, ca->ca_paddr, sizeof(struct xyc));
334 1.1 gwr xyc->ipl = ca->ca_intpri;
335 1.1 gwr xyc->vector = ca->ca_intvec;
336 1.1 gwr xyc->no_ols = 0; /* XXX should be from config */
337 1.1 gwr
338 1.1 gwr for (lcv = 0; lcv < XYC_MAXDEV; lcv++)
339 1.1 gwr xyc->sc_drives[lcv] = (struct xy_softc *) 0;
340 1.1 gwr
341 1.1 gwr /*
342 1.1 gwr * allocate and zero buffers
343 1.1 gwr * check boundaries of the KVA's ... all IOPBs must reside in
344 1.1 gwr * the same 64K region.
345 1.1 gwr */
346 1.1 gwr
347 1.1 gwr pbsz = XYC_MAXIOPB * sizeof(struct xy_iopb);
348 1.1 gwr tmp = tmp2 = (struct xy_iopb *) dvma_malloc(pbsz); /* KVA */
349 1.1 gwr ultmp = (u_long) tmp;
350 1.1 gwr if ((ultmp & 0xffff0000) != ((ultmp + pbsz) & 0xffff0000)) {
351 1.1 gwr tmp = (struct xy_iopb *) dvma_malloc(pbsz); /* retry! */
352 1.1 gwr dvma_free(tmp2, pbsz);
353 1.1 gwr ultmp = (u_long) tmp;
354 1.1 gwr if ((ultmp & 0xffff0000) != ((ultmp + pbsz) & 0xffff0000)) {
355 1.11 christos printf("%s: can't alloc IOPB mem in 64K\n",
356 1.1 gwr xyc->sc_dev.dv_xname);
357 1.1 gwr return;
358 1.1 gwr }
359 1.1 gwr }
360 1.4 gwr bzero(tmp, pbsz);
361 1.1 gwr xyc->iopbase = tmp;
362 1.1 gwr xyc->dvmaiopb = (struct xy_iopb *)
363 1.1 gwr dvma_kvtopa((long) xyc->iopbase, BUS_VME16);
364 1.1 gwr xyc->reqs = (struct xy_iorq *)
365 1.1 gwr malloc(XYC_MAXIOPB * sizeof(struct xy_iorq), M_DEVBUF, M_NOWAIT);
366 1.1 gwr if (xyc->reqs == NULL)
367 1.1 gwr panic("xyc malloc");
368 1.7 chuck bzero(xyc->reqs, XYC_MAXIOPB * sizeof(struct xy_iorq));
369 1.1 gwr
370 1.1 gwr /*
371 1.1 gwr * init iorq to iopb pointers, and non-zero fields in the
372 1.1 gwr * iopb which never change.
373 1.1 gwr */
374 1.1 gwr
375 1.1 gwr for (lcv = 0; lcv < XYC_MAXIOPB; lcv++) {
376 1.1 gwr xyc->xy_chain[lcv] = NULL;
377 1.1 gwr xyc->reqs[lcv].iopb = &xyc->iopbase[lcv];
378 1.1 gwr xyc->iopbase[lcv].asr = 1; /* always the same */
379 1.1 gwr xyc->iopbase[lcv].eef = 1; /* always the same */
380 1.1 gwr xyc->iopbase[lcv].ecm = XY_ECM; /* always the same */
381 1.1 gwr xyc->iopbase[lcv].aud = 1; /* always the same */
382 1.1 gwr xyc->iopbase[lcv].relo = 1; /* always the same */
383 1.1 gwr xyc->iopbase[lcv].thro = XY_THRO;/* always the same */
384 1.1 gwr }
385 1.1 gwr xyc->ciorq = &xyc->reqs[XYC_CTLIOPB]; /* short hand name */
386 1.1 gwr xyc->ciopb = &xyc->iopbase[XYC_CTLIOPB]; /* short hand name */
387 1.1 gwr xyc->xy_hand = 0;
388 1.1 gwr
389 1.1 gwr /* read controller parameters and insure we have a 450/451 */
390 1.1 gwr
391 1.1 gwr err = xyc_cmd(xyc, XYCMD_ST, 0, 0, 0, 0, 0, XY_SUB_POLL);
392 1.1 gwr res = xyc->ciopb->ctyp;
393 1.1 gwr XYC_DONE(xyc, err);
394 1.1 gwr if (res != XYCT_450) {
395 1.1 gwr if (err)
396 1.11 christos printf(": %s: ", xyc_e2str(err));
397 1.11 christos printf(": doesn't identify as a 450/451\n");
398 1.1 gwr return;
399 1.1 gwr }
400 1.11 christos printf(": Xylogics 450/451");
401 1.1 gwr if (xyc->no_ols)
402 1.11 christos printf(" [OLS disabled]"); /* 450 doesn't overlap seek right */
403 1.11 christos printf("\n");
404 1.1 gwr if (err) {
405 1.11 christos printf("%s: error: %s\n", xyc->sc_dev.dv_xname,
406 1.1 gwr xyc_e2str(err));
407 1.1 gwr return;
408 1.1 gwr }
409 1.1 gwr if ((xyc->xyc->xyc_csr & XYC_ADRM) == 0) {
410 1.11 christos printf("%s: 24 bit addressing turned off\n",
411 1.1 gwr xyc->sc_dev.dv_xname);
412 1.11 christos printf("please set hardware jumpers JM1-JM2=in, JM3-JM4=out\n");
413 1.11 christos printf("to enable 24 bit mode and this driver\n");
414 1.1 gwr return;
415 1.1 gwr }
416 1.1 gwr
417 1.1 gwr /* link in interrupt with higher level software */
418 1.1 gwr isr_add_vectored(xycintr, (void *)xyc,
419 1.1 gwr ca->ca_intpri, ca->ca_intvec);
420 1.1 gwr evcnt_attach(&xyc->sc_dev, "intr", &xyc->sc_intrcnt);
421 1.1 gwr
422 1.1 gwr /* now we must look for disks using autoconfig */
423 1.1 gwr xa.dvmabuf = (char *) dvma_malloc(XYFM_BPS);
424 1.1 gwr xa.fullmode = XY_SUB_POLL;
425 1.1 gwr xa.booting = 1;
426 1.1 gwr
427 1.1 gwr for (xa.driveno = 0; xa.driveno < XYC_MAXDEV; xa.driveno++)
428 1.13 gwr (void) config_found(self, (void *) &xa, xyc_print);
429 1.1 gwr
430 1.1 gwr dvma_free(xa.dvmabuf, XYFM_BPS);
431 1.1 gwr
432 1.1 gwr /* start the watchdog clock */
433 1.1 gwr timeout(xyc_tick, xyc, XYC_TICKCNT);
434 1.13 gwr }
435 1.13 gwr
436 1.13 gwr int
437 1.13 gwr xyc_print(aux, name)
438 1.13 gwr void *aux;
439 1.13 gwr char *name;
440 1.13 gwr {
441 1.13 gwr struct xyc_attach_args *xa = aux;
442 1.13 gwr
443 1.13 gwr if (name != NULL)
444 1.13 gwr printf("%s: ", name);
445 1.13 gwr
446 1.13 gwr if (xa->driveno != -1)
447 1.13 gwr printf(" drive %d", xa->driveno);
448 1.13 gwr
449 1.13 gwr return UNCONF;
450 1.1 gwr }
451 1.1 gwr
452 1.1 gwr /*
453 1.1 gwr * xymatch: probe for disk.
454 1.1 gwr *
455 1.1 gwr * note: we almost always say disk is present. this allows us to
456 1.1 gwr * spin up and configure a disk after the system is booted (we can
457 1.1 gwr * call xyattach!).
458 1.1 gwr */
459 1.1 gwr int
460 1.12 gwr xymatch(parent, cf, aux)
461 1.1 gwr struct device *parent;
462 1.12 gwr struct cfdata *cf;
463 1.12 gwr void *aux;
464 1.1 gwr
465 1.1 gwr {
466 1.1 gwr struct xyc_softc *xyc = (void *) parent;
467 1.1 gwr struct xyc_attach_args *xa = aux;
468 1.1 gwr
469 1.1 gwr /* looking for autoconf wildcard or exact match */
470 1.1 gwr
471 1.1 gwr if (cf->cf_loc[0] != -1 && cf->cf_loc[0] != xa->driveno)
472 1.1 gwr return 0;
473 1.1 gwr
474 1.1 gwr return 1;
475 1.1 gwr
476 1.1 gwr }
477 1.1 gwr
478 1.1 gwr /*
479 1.1 gwr * xyattach: attach a disk. this can be called from autoconf and also
480 1.1 gwr * from xyopen/xystrategy.
481 1.1 gwr */
482 1.1 gwr void
483 1.1 gwr xyattach(parent, self, aux)
484 1.1 gwr struct device *parent, *self;
485 1.1 gwr void *aux;
486 1.1 gwr
487 1.1 gwr {
488 1.1 gwr struct xy_softc *xy = (void *) self, *oxy;
489 1.1 gwr struct xyc_softc *xyc = (void *) parent;
490 1.1 gwr struct xyc_attach_args *xa = aux;
491 1.1 gwr int res, err, spt, mb, blk, lcv, fmode, s, newstate;
492 1.1 gwr struct dkbad *dkb;
493 1.1 gwr struct bootpath *bp;
494 1.1 gwr
495 1.2 thorpej /*
496 1.2 thorpej * Always re-initialize the disk structure. We want statistics
497 1.2 thorpej * to start with a clean slate.
498 1.2 thorpej */
499 1.2 thorpej bzero(&xy->sc_dk, sizeof(xy->sc_dk));
500 1.2 thorpej xy->sc_dk.dk_driver = &xydkdriver;
501 1.2 thorpej xy->sc_dk.dk_name = xy->sc_dev.dv_xname;
502 1.2 thorpej
503 1.1 gwr /* if booting, init the xy_softc */
504 1.1 gwr
505 1.1 gwr if (xa->booting) {
506 1.1 gwr xy->state = XY_DRIVE_UNKNOWN; /* to start */
507 1.1 gwr xy->flags = 0;
508 1.1 gwr xy->parent = xyc;
509 1.1 gwr
510 1.1 gwr /* init queue of waiting bufs */
511 1.1 gwr
512 1.1 gwr xy->xyq.b_active = 0;
513 1.1 gwr xy->xyq.b_actf = 0;
514 1.1 gwr xy->xyq.b_actb = &xy->xyq.b_actf; /* XXX b_actb: not used? */
515 1.1 gwr
516 1.1 gwr xy->xyrq = &xyc->reqs[xa->driveno];
517 1.1 gwr
518 1.1 gwr }
519 1.1 gwr xy->xy_drive = xa->driveno;
520 1.1 gwr fmode = xa->fullmode;
521 1.1 gwr xyc->sc_drives[xa->driveno] = xy;
522 1.1 gwr
523 1.1 gwr /* if not booting, make sure we are the only process in the attach for
524 1.1 gwr * this drive. if locked out, sleep on it. */
525 1.1 gwr
526 1.1 gwr if (!xa->booting) {
527 1.1 gwr s = splbio();
528 1.1 gwr while (xy->state == XY_DRIVE_ATTACHING) {
529 1.1 gwr if (tsleep(&xy->state, PRIBIO, "xyattach", 0)) {
530 1.1 gwr splx(s);
531 1.1 gwr return;
532 1.1 gwr }
533 1.1 gwr }
534 1.11 christos printf("%s at %s",
535 1.1 gwr xy->sc_dev.dv_xname, xy->parent->sc_dev.dv_xname);
536 1.1 gwr }
537 1.1 gwr /* we now have control */
538 1.1 gwr
539 1.1 gwr xy->state = XY_DRIVE_ATTACHING;
540 1.1 gwr newstate = XY_DRIVE_UNKNOWN;
541 1.1 gwr
542 1.1 gwr /* first try and reset the drive */
543 1.1 gwr
544 1.1 gwr err = xyc_cmd(xyc, XYCMD_RST, 0, xy->xy_drive, 0, 0, 0, fmode);
545 1.1 gwr XYC_DONE(xyc, err);
546 1.1 gwr if (err == XY_ERR_DNRY) {
547 1.11 christos printf(" drive %d: off-line\n", xa->driveno);
548 1.1 gwr goto done;
549 1.1 gwr }
550 1.1 gwr if (err) {
551 1.11 christos printf(": ERROR 0x%02x (%s)\n", err, xyc_e2str(err));
552 1.1 gwr goto done;
553 1.1 gwr }
554 1.11 christos printf(" drive %d: ready", xa->driveno);
555 1.1 gwr
556 1.1 gwr /*
557 1.1 gwr * now set drive parameters (to semi-bogus values) so we can read the
558 1.1 gwr * disk label.
559 1.1 gwr */
560 1.1 gwr xy->pcyl = xy->ncyl = 1;
561 1.1 gwr xy->acyl = 0;
562 1.1 gwr xy->nhead = 1;
563 1.1 gwr xy->nsect = 1;
564 1.1 gwr xy->sectpercyl = 1;
565 1.1 gwr for (lcv = 0; lcv < 126; lcv++) /* init empty bad144 table */
566 1.1 gwr xy->dkb.bt_bad[lcv].bt_cyl =
567 1.1 gwr xy->dkb.bt_bad[lcv].bt_trksec = 0xffff;
568 1.1 gwr
569 1.1 gwr /* read disk label */
570 1.1 gwr for (xy->drive_type = 0 ; xy->drive_type <= XYC_MAXDT ;
571 1.1 gwr xy->drive_type++) {
572 1.1 gwr err = xyc_cmd(xyc, XYCMD_RD, 0, xy->xy_drive, 0, 1,
573 1.1 gwr xa->dvmabuf, fmode);
574 1.1 gwr XYC_DONE(xyc, err);
575 1.1 gwr if (err == XY_ERR_AOK) break;
576 1.1 gwr }
577 1.1 gwr
578 1.1 gwr if (err != XY_ERR_AOK) {
579 1.11 christos printf("\n%s: reading disk label failed: %s\n",
580 1.1 gwr xy->sc_dev.dv_xname, xyc_e2str(err));
581 1.1 gwr goto done;
582 1.1 gwr }
583 1.11 christos printf(" (drive type %d)\n", xy->drive_type);
584 1.1 gwr
585 1.1 gwr newstate = XY_DRIVE_NOLABEL;
586 1.1 gwr
587 1.1 gwr xy->hw_spt = spt = 0; /* XXX needed ? */
588 1.3 chuck /* Attach the disk: must be before getdisklabel to malloc label */
589 1.3 chuck disk_attach(&xy->sc_dk);
590 1.3 chuck
591 1.1 gwr if (xygetdisklabel(xy, xa->dvmabuf) != XY_ERR_AOK)
592 1.1 gwr goto done;
593 1.1 gwr
594 1.1 gwr /* inform the user of what is up */
595 1.11 christos printf("%s: <%s>, pcyl %d\n", xy->sc_dev.dv_xname,
596 1.1 gwr xa->dvmabuf, xy->pcyl);
597 1.1 gwr mb = xy->ncyl * (xy->nhead * xy->nsect) / (1048576 / XYFM_BPS);
598 1.11 christos printf("%s: %dMB, %d cyl, %d head, %d sec, %d bytes/sec\n",
599 1.1 gwr xy->sc_dev.dv_xname, mb, xy->ncyl, xy->nhead, xy->nsect,
600 1.1 gwr XYFM_BPS);
601 1.1 gwr
602 1.1 gwr /*
603 1.1 gwr * 450/451 stupidity: the drive type is encoded into the format
604 1.1 gwr * of the disk. the drive type in the IOPB must match the drive
605 1.1 gwr * type in the format, or you will not be able to do I/O to the
606 1.1 gwr * disk (you get header not found errors). if you have two drives
607 1.1 gwr * of different sizes that have the same drive type in their
608 1.1 gwr * formatting then you are out of luck.
609 1.1 gwr *
610 1.1 gwr * this problem was corrected in the 753/7053.
611 1.1 gwr */
612 1.1 gwr
613 1.1 gwr for (lcv = 0 ; lcv < XYC_MAXDEV ; lcv++) {
614 1.1 gwr oxy = xyc->sc_drives[lcv];
615 1.1 gwr if (oxy == NULL || oxy == xy) continue;
616 1.1 gwr if (oxy->drive_type != xy->drive_type) continue;
617 1.1 gwr if (xy->nsect != oxy->nsect || xy->pcyl != oxy->pcyl ||
618 1.1 gwr xy->nhead != oxy->nhead) {
619 1.11 christos printf("%s: %s and %s must be the same size!\n",
620 1.1 gwr xyc->sc_dev.dv_xname, xy->sc_dev.dv_xname,
621 1.1 gwr oxy->sc_dev.dv_xname);
622 1.1 gwr panic("xy drive size mismatch");
623 1.1 gwr }
624 1.1 gwr }
625 1.1 gwr
626 1.1 gwr
627 1.1 gwr /* now set the real drive parameters! */
628 1.1 gwr
629 1.1 gwr blk = (xy->nsect - 1) +
630 1.1 gwr ((xy->nhead - 1) * xy->nsect) +
631 1.1 gwr ((xy->pcyl - 1) * xy->nsect * xy->nhead);
632 1.1 gwr err = xyc_cmd(xyc, XYCMD_SDS, 0, xy->xy_drive, blk, 0, 0, fmode);
633 1.1 gwr XYC_DONE(xyc, err);
634 1.1 gwr if (err) {
635 1.11 christos printf("%s: write drive size failed: %s\n",
636 1.1 gwr xy->sc_dev.dv_xname, xyc_e2str(err));
637 1.1 gwr goto done;
638 1.1 gwr }
639 1.1 gwr newstate = XY_DRIVE_ONLINE;
640 1.1 gwr
641 1.1 gwr /*
642 1.1 gwr * read bad144 table. this table resides on the first sector of the
643 1.1 gwr * last track of the disk (i.e. second cyl of "acyl" area).
644 1.1 gwr */
645 1.1 gwr
646 1.1 gwr blk = (xy->ncyl + xy->acyl - 1) * (xy->nhead * xy->nsect) +
647 1.1 gwr /* last cyl */
648 1.1 gwr (xy->nhead - 1) * xy->nsect; /* last head */
649 1.1 gwr err = xyc_cmd(xyc, XYCMD_RD, 0, xy->xy_drive, blk, 1,
650 1.1 gwr xa->dvmabuf, fmode);
651 1.1 gwr XYC_DONE(xyc, err);
652 1.1 gwr if (err) {
653 1.11 christos printf("%s: reading bad144 failed: %s\n",
654 1.1 gwr xy->sc_dev.dv_xname, xyc_e2str(err));
655 1.1 gwr goto done;
656 1.1 gwr }
657 1.1 gwr
658 1.1 gwr /* check dkbad for sanity */
659 1.1 gwr dkb = (struct dkbad *) xa->dvmabuf;
660 1.1 gwr for (lcv = 0; lcv < 126; lcv++) {
661 1.1 gwr if ((dkb->bt_bad[lcv].bt_cyl == 0xffff ||
662 1.1 gwr dkb->bt_bad[lcv].bt_cyl == 0) &&
663 1.1 gwr dkb->bt_bad[lcv].bt_trksec == 0xffff)
664 1.1 gwr continue; /* blank */
665 1.1 gwr if (dkb->bt_bad[lcv].bt_cyl >= xy->ncyl)
666 1.1 gwr break;
667 1.1 gwr if ((dkb->bt_bad[lcv].bt_trksec >> 8) >= xy->nhead)
668 1.1 gwr break;
669 1.1 gwr if ((dkb->bt_bad[lcv].bt_trksec & 0xff) >= xy->nsect)
670 1.1 gwr break;
671 1.1 gwr }
672 1.1 gwr if (lcv != 126) {
673 1.11 christos printf("%s: warning: invalid bad144 sector!\n",
674 1.1 gwr xy->sc_dev.dv_xname);
675 1.1 gwr } else {
676 1.1 gwr bcopy(xa->dvmabuf, &xy->dkb, XYFM_BPS);
677 1.1 gwr }
678 1.1 gwr
679 1.2 thorpej dk_establish(&xy->sc_dk, &xy->sc_dev); /* XXX */
680 1.1 gwr
681 1.1 gwr done:
682 1.1 gwr xy->state = newstate;
683 1.1 gwr if (!xa->booting) {
684 1.1 gwr wakeup(&xy->state);
685 1.1 gwr splx(s);
686 1.1 gwr }
687 1.1 gwr }
688 1.1 gwr
689 1.1 gwr /*
690 1.1 gwr * end of autoconfig functions
691 1.1 gwr */
692 1.1 gwr
693 1.1 gwr /*
694 1.1 gwr * { b , c } d e v s w f u n c t i o n s
695 1.1 gwr */
696 1.1 gwr
697 1.1 gwr /*
698 1.1 gwr * xyclose: close device
699 1.1 gwr */
700 1.1 gwr int
701 1.1 gwr xyclose(dev, flag, fmt)
702 1.1 gwr dev_t dev;
703 1.1 gwr int flag, fmt;
704 1.1 gwr
705 1.1 gwr {
706 1.9 thorpej struct xy_softc *xy = xy_cd.cd_devs[DISKUNIT(dev)];
707 1.1 gwr int part = DISKPART(dev);
708 1.1 gwr
709 1.1 gwr /* clear mask bits */
710 1.1 gwr
711 1.1 gwr switch (fmt) {
712 1.1 gwr case S_IFCHR:
713 1.1 gwr xy->sc_dk.dk_copenmask &= ~(1 << part);
714 1.1 gwr break;
715 1.1 gwr case S_IFBLK:
716 1.1 gwr xy->sc_dk.dk_bopenmask &= ~(1 << part);
717 1.1 gwr break;
718 1.1 gwr }
719 1.1 gwr xy->sc_dk.dk_openmask = xy->sc_dk.dk_copenmask | xy->sc_dk.dk_bopenmask;
720 1.1 gwr
721 1.1 gwr return 0;
722 1.1 gwr }
723 1.1 gwr
724 1.1 gwr /*
725 1.1 gwr * xydump: crash dump system
726 1.1 gwr */
727 1.1 gwr int
728 1.1 gwr xydump(dev)
729 1.1 gwr dev_t dev;
730 1.1 gwr
731 1.1 gwr {
732 1.1 gwr int unit, part;
733 1.1 gwr struct xy_softc *xy;
734 1.1 gwr
735 1.1 gwr unit = DISKUNIT(dev);
736 1.9 thorpej if (unit >= xy_cd.cd_ndevs)
737 1.1 gwr return ENXIO;
738 1.1 gwr part = DISKPART(dev);
739 1.1 gwr
740 1.9 thorpej xy = xy_cd.cd_devs[unit];
741 1.1 gwr
742 1.11 christos printf("%s%c: crash dump not supported (yet)\n", xy->sc_dev.dv_xname,
743 1.1 gwr 'a' + part);
744 1.1 gwr
745 1.1 gwr return ENXIO;
746 1.1 gwr
747 1.1 gwr /* outline: globals: "dumplo" == sector number of partition to start
748 1.1 gwr * dump at (convert to physical sector with partition table)
749 1.1 gwr * "dumpsize" == size of dump in clicks "physmem" == size of physical
750 1.1 gwr * memory (clicks, ctob() to get bytes) (normal case: dumpsize ==
751 1.1 gwr * physmem)
752 1.1 gwr *
753 1.1 gwr * dump a copy of physical memory to the dump device starting at sector
754 1.1 gwr * "dumplo" in the swap partition (make sure > 0). map in pages as
755 1.1 gwr * we go. use polled I/O.
756 1.1 gwr *
757 1.1 gwr * XXX how to handle NON_CONTIG? */
758 1.1 gwr
759 1.1 gwr }
760 1.1 gwr
761 1.1 gwr /*
762 1.1 gwr * xyioctl: ioctls on XY drives. based on ioctl's of other netbsd disks.
763 1.1 gwr */
764 1.1 gwr int
765 1.1 gwr xyioctl(dev, command, addr, flag, p)
766 1.1 gwr dev_t dev;
767 1.1 gwr u_long command;
768 1.1 gwr caddr_t addr;
769 1.1 gwr int flag;
770 1.1 gwr struct proc *p;
771 1.1 gwr
772 1.1 gwr {
773 1.1 gwr struct xy_softc *xy;
774 1.1 gwr struct xd_iocmd *xio;
775 1.1 gwr int error, s, unit;
776 1.1 gwr
777 1.1 gwr unit = DISKUNIT(dev);
778 1.1 gwr
779 1.9 thorpej if (unit >= xy_cd.cd_ndevs || (xy = xy_cd.cd_devs[unit]) == NULL)
780 1.1 gwr return (ENXIO);
781 1.1 gwr
782 1.1 gwr /* switch on ioctl type */
783 1.1 gwr
784 1.1 gwr switch (command) {
785 1.1 gwr case DIOCSBAD: /* set bad144 info */
786 1.1 gwr if ((flag & FWRITE) == 0)
787 1.1 gwr return EBADF;
788 1.1 gwr s = splbio();
789 1.1 gwr bcopy(addr, &xy->dkb, sizeof(xy->dkb));
790 1.1 gwr splx(s);
791 1.1 gwr return 0;
792 1.1 gwr
793 1.1 gwr case DIOCGDINFO: /* get disk label */
794 1.2 thorpej bcopy(xy->sc_dk.dk_label, addr, sizeof(struct disklabel));
795 1.1 gwr return 0;
796 1.1 gwr
797 1.1 gwr case DIOCGPART: /* get partition info */
798 1.2 thorpej ((struct partinfo *) addr)->disklab = xy->sc_dk.dk_label;
799 1.1 gwr ((struct partinfo *) addr)->part =
800 1.2 thorpej &xy->sc_dk.dk_label->d_partitions[DISKPART(dev)];
801 1.1 gwr return 0;
802 1.1 gwr
803 1.1 gwr case DIOCSDINFO: /* set disk label */
804 1.1 gwr if ((flag & FWRITE) == 0)
805 1.1 gwr return EBADF;
806 1.2 thorpej error = setdisklabel(xy->sc_dk.dk_label,
807 1.1 gwr (struct disklabel *) addr, /* xy->sc_dk.dk_openmask : */ 0,
808 1.2 thorpej xy->sc_dk.dk_cpulabel);
809 1.1 gwr if (error == 0) {
810 1.1 gwr if (xy->state == XY_DRIVE_NOLABEL)
811 1.1 gwr xy->state = XY_DRIVE_ONLINE;
812 1.1 gwr }
813 1.1 gwr return error;
814 1.1 gwr
815 1.1 gwr case DIOCWLABEL: /* change write status of disk label */
816 1.1 gwr if ((flag & FWRITE) == 0)
817 1.1 gwr return EBADF;
818 1.1 gwr if (*(int *) addr)
819 1.1 gwr xy->flags |= XY_WLABEL;
820 1.1 gwr else
821 1.1 gwr xy->flags &= ~XY_WLABEL;
822 1.1 gwr return 0;
823 1.1 gwr
824 1.1 gwr case DIOCWDINFO: /* write disk label */
825 1.1 gwr if ((flag & FWRITE) == 0)
826 1.1 gwr return EBADF;
827 1.2 thorpej error = setdisklabel(xy->sc_dk.dk_label,
828 1.1 gwr (struct disklabel *) addr, /* xy->sc_dk.dk_openmask : */ 0,
829 1.2 thorpej xy->sc_dk.dk_cpulabel);
830 1.1 gwr if (error == 0) {
831 1.1 gwr if (xy->state == XY_DRIVE_NOLABEL)
832 1.1 gwr xy->state = XY_DRIVE_ONLINE;
833 1.1 gwr
834 1.1 gwr /* Simulate opening partition 0 so write succeeds. */
835 1.1 gwr xy->sc_dk.dk_openmask |= (1 << 0);
836 1.1 gwr error = writedisklabel(MAKEDISKDEV(major(dev), DISKUNIT(dev), RAW_PART),
837 1.2 thorpej xystrategy, xy->sc_dk.dk_label,
838 1.2 thorpej xy->sc_dk.dk_cpulabel);
839 1.1 gwr xy->sc_dk.dk_openmask =
840 1.1 gwr xy->sc_dk.dk_copenmask | xy->sc_dk.dk_bopenmask;
841 1.1 gwr }
842 1.1 gwr return error;
843 1.1 gwr
844 1.1 gwr case DIOSXDCMD:
845 1.1 gwr xio = (struct xd_iocmd *) addr;
846 1.1 gwr if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
847 1.1 gwr return (error);
848 1.1 gwr return (xyc_ioctlcmd(xy, dev, xio));
849 1.1 gwr
850 1.1 gwr default:
851 1.1 gwr return ENOTTY;
852 1.1 gwr }
853 1.1 gwr }
854 1.1 gwr
855 1.1 gwr /*
856 1.1 gwr * xyopen: open drive
857 1.1 gwr */
858 1.1 gwr
859 1.1 gwr int
860 1.1 gwr xyopen(dev, flag, fmt)
861 1.1 gwr dev_t dev;
862 1.1 gwr int flag, fmt;
863 1.1 gwr
864 1.1 gwr {
865 1.1 gwr int unit, part;
866 1.1 gwr struct xy_softc *xy;
867 1.1 gwr struct xyc_attach_args xa;
868 1.1 gwr
869 1.1 gwr /* first, could it be a valid target? */
870 1.1 gwr
871 1.1 gwr unit = DISKUNIT(dev);
872 1.9 thorpej if (unit >= xy_cd.cd_ndevs || (xy = xy_cd.cd_devs[unit]) == NULL)
873 1.1 gwr return (ENXIO);
874 1.1 gwr part = DISKPART(dev);
875 1.1 gwr
876 1.1 gwr /* do we need to attach the drive? */
877 1.1 gwr
878 1.1 gwr if (xy->state == XY_DRIVE_UNKNOWN) {
879 1.1 gwr xa.driveno = xy->xy_drive;
880 1.1 gwr xa.dvmabuf = (char *) dvma_malloc(XYFM_BPS);
881 1.1 gwr xa.fullmode = XY_SUB_WAIT;
882 1.1 gwr xa.booting = 0;
883 1.1 gwr xyattach((struct device *) xy->parent,
884 1.1 gwr (struct device *) xy, &xa);
885 1.1 gwr dvma_free(xa.dvmabuf, XYFM_BPS);
886 1.1 gwr if (xy->state == XY_DRIVE_UNKNOWN) {
887 1.1 gwr return (EIO);
888 1.1 gwr }
889 1.1 gwr }
890 1.1 gwr /* check for partition */
891 1.1 gwr
892 1.1 gwr if (part != RAW_PART &&
893 1.2 thorpej (part >= xy->sc_dk.dk_label->d_npartitions ||
894 1.2 thorpej xy->sc_dk.dk_label->d_partitions[part].p_fstype == FS_UNUSED)) {
895 1.1 gwr return (ENXIO);
896 1.1 gwr }
897 1.1 gwr /* set open masks */
898 1.1 gwr
899 1.1 gwr switch (fmt) {
900 1.1 gwr case S_IFCHR:
901 1.1 gwr xy->sc_dk.dk_copenmask |= (1 << part);
902 1.1 gwr break;
903 1.1 gwr case S_IFBLK:
904 1.1 gwr xy->sc_dk.dk_bopenmask |= (1 << part);
905 1.1 gwr break;
906 1.1 gwr }
907 1.1 gwr xy->sc_dk.dk_openmask = xy->sc_dk.dk_copenmask | xy->sc_dk.dk_bopenmask;
908 1.1 gwr
909 1.1 gwr return 0;
910 1.1 gwr }
911 1.1 gwr
912 1.1 gwr int
913 1.1 gwr xyread(dev, uio)
914 1.1 gwr dev_t dev;
915 1.1 gwr struct uio *uio;
916 1.1 gwr {
917 1.1 gwr
918 1.1 gwr return (physio(xystrategy, NULL, dev, B_READ, minphys, uio));
919 1.1 gwr }
920 1.1 gwr
921 1.1 gwr int
922 1.1 gwr xywrite(dev, uio)
923 1.1 gwr dev_t dev;
924 1.1 gwr struct uio *uio;
925 1.1 gwr {
926 1.1 gwr
927 1.1 gwr return (physio(xystrategy, NULL, dev, B_WRITE, minphys, uio));
928 1.1 gwr }
929 1.1 gwr
930 1.1 gwr
931 1.1 gwr /*
932 1.1 gwr * xysize: return size of a partition for a dump
933 1.1 gwr */
934 1.1 gwr
935 1.14 pk int
936 1.1 gwr xysize(dev)
937 1.1 gwr dev_t dev;
938 1.1 gwr
939 1.1 gwr {
940 1.1 gwr struct xy_softc *xysc;
941 1.14 pk int unit, part, size, omask;
942 1.1 gwr
943 1.14 pk /* valid unit? */
944 1.14 pk unit = DISKUNIT(dev);
945 1.14 pk if (unit >= xy_cd.cd_ndevs || (xysc = xy_cd.cd_devs[unit]) == NULL)
946 1.14 pk return (-1);
947 1.1 gwr
948 1.14 pk part = DISKPART(dev);
949 1.14 pk omask = xysc->sc_dk.dk_openmask & (1 << part);
950 1.14 pk
951 1.14 pk if (omask == 0 && xyopen(dev, 0, S_IFBLK) != 0)
952 1.1 gwr return (-1);
953 1.1 gwr
954 1.1 gwr /* do it */
955 1.2 thorpej if (xysc->sc_dk.dk_label->d_partitions[part].p_fstype != FS_SWAP)
956 1.1 gwr size = -1; /* only give valid size for swap partitions */
957 1.1 gwr else
958 1.2 thorpej size = xysc->sc_dk.dk_label->d_partitions[part].p_size;
959 1.14 pk if (omask == 0 && xyclose(dev, 0, S_IFBLK) != 0)
960 1.14 pk return (-1);
961 1.14 pk return (size);
962 1.1 gwr }
963 1.1 gwr
964 1.1 gwr /*
965 1.1 gwr * xystrategy: buffering system interface to xy.
966 1.1 gwr */
967 1.1 gwr
968 1.1 gwr void
969 1.1 gwr xystrategy(bp)
970 1.1 gwr struct buf *bp;
971 1.1 gwr
972 1.1 gwr {
973 1.1 gwr struct xy_softc *xy;
974 1.1 gwr struct xyc_softc *parent;
975 1.1 gwr struct buf *wq;
976 1.1 gwr int s, unit;
977 1.1 gwr struct xyc_attach_args xa;
978 1.1 gwr
979 1.1 gwr unit = DISKUNIT(bp->b_dev);
980 1.1 gwr
981 1.1 gwr /* check for live device */
982 1.1 gwr
983 1.9 thorpej if (unit >= xy_cd.cd_ndevs || (xy = xy_cd.cd_devs[unit]) == 0 ||
984 1.1 gwr bp->b_blkno < 0 ||
985 1.2 thorpej (bp->b_bcount % xy->sc_dk.dk_label->d_secsize) != 0) {
986 1.1 gwr bp->b_error = EINVAL;
987 1.1 gwr goto bad;
988 1.1 gwr }
989 1.1 gwr /* do we need to attach the drive? */
990 1.1 gwr
991 1.1 gwr if (xy->state == XY_DRIVE_UNKNOWN) {
992 1.1 gwr xa.driveno = xy->xy_drive;
993 1.1 gwr xa.dvmabuf = (char *) dvma_malloc(XYFM_BPS);
994 1.1 gwr xa.fullmode = XY_SUB_WAIT;
995 1.1 gwr xa.booting = 0;
996 1.1 gwr xyattach((struct device *)xy->parent, (struct device *)xy, &xa);
997 1.1 gwr dvma_free(xa.dvmabuf, XYFM_BPS);
998 1.1 gwr if (xy->state == XY_DRIVE_UNKNOWN) {
999 1.1 gwr bp->b_error = EIO;
1000 1.1 gwr goto bad;
1001 1.1 gwr }
1002 1.1 gwr }
1003 1.1 gwr if (xy->state != XY_DRIVE_ONLINE && DISKPART(bp->b_dev) != RAW_PART) {
1004 1.1 gwr /* no I/O to unlabeled disks, unless raw partition */
1005 1.1 gwr bp->b_error = EIO;
1006 1.1 gwr goto bad;
1007 1.1 gwr }
1008 1.1 gwr /* short circuit zero length request */
1009 1.1 gwr
1010 1.1 gwr if (bp->b_bcount == 0)
1011 1.1 gwr goto done;
1012 1.1 gwr
1013 1.1 gwr /* check bounds with label (disksubr.c). Determine the size of the
1014 1.1 gwr * transfer, and make sure it is within the boundaries of the
1015 1.1 gwr * partition. Adjust transfer if needed, and signal errors or early
1016 1.1 gwr * completion. */
1017 1.1 gwr
1018 1.2 thorpej if (bounds_check_with_label(bp, xy->sc_dk.dk_label,
1019 1.1 gwr (xy->flags & XY_WLABEL) != 0) <= 0)
1020 1.1 gwr goto done;
1021 1.1 gwr
1022 1.1 gwr /*
1023 1.1 gwr * now we know we have a valid buf structure that we need to do I/O
1024 1.1 gwr * on.
1025 1.1 gwr */
1026 1.1 gwr
1027 1.1 gwr s = splbio(); /* protect the queues */
1028 1.1 gwr
1029 1.1 gwr disksort(&xy->xyq, bp);
1030 1.1 gwr
1031 1.1 gwr /* start 'em up */
1032 1.1 gwr
1033 1.1 gwr xyc_start(xy->parent, NULL);
1034 1.1 gwr
1035 1.1 gwr /* done! */
1036 1.1 gwr
1037 1.1 gwr splx(s);
1038 1.1 gwr return;
1039 1.1 gwr
1040 1.1 gwr bad: /* tells upper layers we have an error */
1041 1.1 gwr bp->b_flags |= B_ERROR;
1042 1.1 gwr done: /* tells upper layers we are done with this
1043 1.1 gwr * buf */
1044 1.1 gwr bp->b_resid = bp->b_bcount;
1045 1.1 gwr biodone(bp);
1046 1.1 gwr }
1047 1.1 gwr /*
1048 1.1 gwr * end of {b,c}devsw functions
1049 1.1 gwr */
1050 1.1 gwr
1051 1.1 gwr /*
1052 1.1 gwr * i n t e r r u p t f u n c t i o n
1053 1.1 gwr *
1054 1.1 gwr * xycintr: hardware interrupt.
1055 1.1 gwr */
1056 1.1 gwr int
1057 1.1 gwr xycintr(v)
1058 1.1 gwr void *v;
1059 1.1 gwr
1060 1.1 gwr {
1061 1.1 gwr struct xyc_softc *xycsc = v;
1062 1.1 gwr struct xy_softc *xy;
1063 1.1 gwr struct buf *bp;
1064 1.1 gwr
1065 1.1 gwr /* kick the event counter */
1066 1.1 gwr
1067 1.1 gwr xycsc->sc_intrcnt.ev_count++;
1068 1.1 gwr
1069 1.1 gwr /* remove as many done IOPBs as possible */
1070 1.1 gwr
1071 1.1 gwr xyc_remove_iorq(xycsc);
1072 1.1 gwr
1073 1.1 gwr /* start any iorq's already waiting */
1074 1.1 gwr
1075 1.1 gwr xyc_start(xycsc, NULL);
1076 1.1 gwr
1077 1.1 gwr return (1);
1078 1.1 gwr }
1079 1.1 gwr /*
1080 1.1 gwr * end of interrupt function
1081 1.1 gwr */
1082 1.1 gwr
1083 1.1 gwr /*
1084 1.1 gwr * i n t e r n a l f u n c t i o n s
1085 1.1 gwr */
1086 1.1 gwr
1087 1.1 gwr /*
1088 1.1 gwr * xyc_rqinit: fill out the fields of an I/O request
1089 1.1 gwr */
1090 1.1 gwr
1091 1.1 gwr inline void
1092 1.1 gwr xyc_rqinit(rq, xyc, xy, md, blk, cnt, db, bp)
1093 1.1 gwr struct xy_iorq *rq;
1094 1.1 gwr struct xyc_softc *xyc;
1095 1.1 gwr struct xy_softc *xy;
1096 1.1 gwr int md;
1097 1.1 gwr u_long blk;
1098 1.1 gwr int cnt;
1099 1.1 gwr caddr_t db;
1100 1.1 gwr struct buf *bp;
1101 1.1 gwr {
1102 1.1 gwr rq->xyc = xyc;
1103 1.1 gwr rq->xy = xy;
1104 1.1 gwr rq->ttl = XYC_MAXTTL + 10;
1105 1.1 gwr rq->mode = md;
1106 1.1 gwr rq->tries = rq->errno = rq->lasterror = 0;
1107 1.1 gwr rq->blockno = blk;
1108 1.1 gwr rq->sectcnt = cnt;
1109 1.1 gwr rq->dbuf = rq->dbufbase = db;
1110 1.1 gwr rq->buf = bp;
1111 1.1 gwr }
1112 1.1 gwr
1113 1.1 gwr /*
1114 1.1 gwr * xyc_rqtopb: load up an IOPB based on an iorq
1115 1.1 gwr */
1116 1.1 gwr
1117 1.1 gwr void
1118 1.1 gwr xyc_rqtopb(iorq, iopb, cmd, subfun)
1119 1.1 gwr struct xy_iorq *iorq;
1120 1.1 gwr struct xy_iopb *iopb;
1121 1.1 gwr int cmd, subfun;
1122 1.1 gwr
1123 1.1 gwr {
1124 1.1 gwr u_long block, dp;
1125 1.1 gwr
1126 1.1 gwr /* normal IOPB case, standard stuff */
1127 1.1 gwr
1128 1.1 gwr /* chain bit handled later */
1129 1.1 gwr iopb->ien = (XY_STATE(iorq->mode) == XY_SUB_POLL) ? 0 : 1;
1130 1.1 gwr iopb->com = cmd;
1131 1.1 gwr iopb->errno = 0;
1132 1.1 gwr iopb->errs = 0;
1133 1.1 gwr iopb->done = 0;
1134 1.1 gwr if (iorq->xy) {
1135 1.1 gwr iopb->unit = iorq->xy->xy_drive;
1136 1.1 gwr iopb->dt = iorq->xy->drive_type;
1137 1.1 gwr } else {
1138 1.1 gwr iopb->unit = 0;
1139 1.1 gwr iopb->dt = 0;
1140 1.1 gwr }
1141 1.1 gwr block = iorq->blockno;
1142 1.1 gwr if (iorq->xy == NULL || block == 0) {
1143 1.1 gwr iopb->sect = iopb->head = iopb->cyl = 0;
1144 1.1 gwr } else {
1145 1.1 gwr iopb->sect = block % iorq->xy->nsect;
1146 1.1 gwr block = block / iorq->xy->nsect;
1147 1.1 gwr iopb->head = block % iorq->xy->nhead;
1148 1.1 gwr block = block / iorq->xy->nhead;
1149 1.1 gwr iopb->cyl = block;
1150 1.1 gwr }
1151 1.1 gwr iopb->scnt = iorq->sectcnt;
1152 1.1 gwr if (iorq->dbuf == NULL) {
1153 1.1 gwr iopb->dataa = 0;
1154 1.1 gwr iopb->datar = 0;
1155 1.1 gwr } else {
1156 1.8 mycroft dp = dvma_kvtopa((long)iorq->dbuf, BUS_VME16);
1157 1.1 gwr iopb->dataa = (dp & 0xffff);
1158 1.1 gwr iopb->datar = ((dp & 0xff0000) >> 16);
1159 1.1 gwr }
1160 1.1 gwr iopb->subfn = subfun;
1161 1.1 gwr }
1162 1.1 gwr
1163 1.1 gwr
1164 1.1 gwr /*
1165 1.1 gwr * xyc_unbusy: wait for the xyc to go unbusy, or timeout.
1166 1.1 gwr */
1167 1.1 gwr
1168 1.1 gwr int
1169 1.1 gwr xyc_unbusy(xyc, del)
1170 1.1 gwr
1171 1.1 gwr struct xyc *xyc;
1172 1.1 gwr int del;
1173 1.1 gwr
1174 1.1 gwr {
1175 1.1 gwr while (del-- > 0) {
1176 1.1 gwr if ((xyc->xyc_csr & XYC_GBSY) == 0)
1177 1.1 gwr break;
1178 1.1 gwr DELAY(1);
1179 1.1 gwr }
1180 1.1 gwr return(del == 0 ? XY_ERR_FAIL : XY_ERR_AOK);
1181 1.1 gwr }
1182 1.1 gwr
1183 1.1 gwr /*
1184 1.1 gwr * xyc_cmd: front end for POLL'd and WAIT'd commands. Returns 0 or error.
1185 1.1 gwr * note that NORM requests are handled seperately.
1186 1.1 gwr */
1187 1.1 gwr int
1188 1.1 gwr xyc_cmd(xycsc, cmd, subfn, unit, block, scnt, dptr, fullmode)
1189 1.1 gwr struct xyc_softc *xycsc;
1190 1.1 gwr int cmd, subfn, unit, block, scnt;
1191 1.1 gwr char *dptr;
1192 1.1 gwr int fullmode;
1193 1.1 gwr
1194 1.1 gwr {
1195 1.1 gwr int submode = XY_STATE(fullmode), retry;
1196 1.1 gwr u_long dp;
1197 1.1 gwr struct xy_iorq *iorq = xycsc->ciorq;
1198 1.1 gwr struct xy_iopb *iopb = xycsc->ciopb;
1199 1.1 gwr
1200 1.1 gwr /*
1201 1.1 gwr * is someone else using the control iopq wait for it if we can
1202 1.1 gwr */
1203 1.1 gwr start:
1204 1.1 gwr if (submode == XY_SUB_WAIT && XY_STATE(iorq->mode) != XY_SUB_FREE) {
1205 1.1 gwr if (tsleep(iorq, PRIBIO, "xyc_cmd", 0))
1206 1.1 gwr return(XY_ERR_FAIL);
1207 1.1 gwr goto start;
1208 1.1 gwr }
1209 1.1 gwr
1210 1.1 gwr if (XY_STATE(iorq->mode) != XY_SUB_FREE) {
1211 1.1 gwr DELAY(1000000); /* XY_SUB_POLL: steal the iorq */
1212 1.1 gwr iorq->mode = XY_SUB_FREE;
1213 1.11 christos printf("%s: stole control iopb\n", xycsc->sc_dev.dv_xname);
1214 1.1 gwr }
1215 1.1 gwr
1216 1.1 gwr /* init iorq/iopb */
1217 1.1 gwr
1218 1.1 gwr xyc_rqinit(iorq, xycsc,
1219 1.1 gwr (unit == XYC_NOUNIT) ? NULL : xycsc->sc_drives[unit],
1220 1.1 gwr fullmode, block, scnt, dptr, NULL);
1221 1.1 gwr
1222 1.1 gwr /* load IOPB from iorq */
1223 1.1 gwr
1224 1.1 gwr xyc_rqtopb(iorq, iopb, cmd, subfn);
1225 1.1 gwr
1226 1.1 gwr /* submit it for processing */
1227 1.1 gwr
1228 1.1 gwr xyc_submit_iorq(xycsc, iorq, fullmode); /* error code will be in iorq */
1229 1.1 gwr
1230 1.1 gwr return(XY_ERR_AOK);
1231 1.1 gwr }
1232 1.1 gwr
1233 1.1 gwr /*
1234 1.1 gwr * xyc_startbuf
1235 1.1 gwr * start a buffer for running
1236 1.1 gwr */
1237 1.1 gwr
1238 1.1 gwr int
1239 1.1 gwr xyc_startbuf(xycsc, xysc, bp)
1240 1.1 gwr struct xyc_softc *xycsc;
1241 1.1 gwr struct xy_softc *xysc;
1242 1.1 gwr struct buf *bp;
1243 1.1 gwr
1244 1.1 gwr {
1245 1.1 gwr int partno;
1246 1.1 gwr struct xy_iorq *iorq;
1247 1.1 gwr struct xy_iopb *iopb;
1248 1.1 gwr u_long block, dp;
1249 1.1 gwr caddr_t dbuf;
1250 1.1 gwr
1251 1.1 gwr iorq = xysc->xyrq;
1252 1.1 gwr iopb = iorq->iopb;
1253 1.1 gwr
1254 1.1 gwr /* get buf */
1255 1.1 gwr
1256 1.1 gwr if (bp == NULL)
1257 1.1 gwr panic("xyc_startbuf null buf");
1258 1.1 gwr
1259 1.1 gwr partno = DISKPART(bp->b_dev);
1260 1.1 gwr #ifdef XYC_DEBUG
1261 1.11 christos printf("xyc_startbuf: %s%c: %s block %d\n", xysc->sc_dev.dv_xname,
1262 1.1 gwr 'a' + partno, (bp->b_flags & B_READ) ? "read" : "write", bp->b_blkno);
1263 1.11 christos printf("xyc_startbuf: b_bcount %d, b_data 0x%x\n",
1264 1.1 gwr bp->b_bcount, bp->b_data);
1265 1.1 gwr #endif
1266 1.1 gwr
1267 1.1 gwr /*
1268 1.1 gwr * load request. we have to calculate the correct block number based
1269 1.1 gwr * on partition info.
1270 1.1 gwr *
1271 1.1 gwr * also, note that there are two kinds of buf structures, those with
1272 1.1 gwr * B_PHYS set and those without B_PHYS. if B_PHYS is set, then it is
1273 1.1 gwr * a raw I/O (to a cdevsw) and we are doing I/O directly to the users'
1274 1.1 gwr * buffer which has already been mapped into DVMA space. (Not on sun3)
1275 1.1 gwr * However, if B_PHYS is not set, then the buffer is a normal system
1276 1.1 gwr * buffer which does *not* live in DVMA space. In that case we call
1277 1.1 gwr * dvma_mapin to map it into DVMA space so we can do the DMA to it.
1278 1.1 gwr *
1279 1.1 gwr * in cases where we do a dvma_mapin, note that iorq points to the buffer
1280 1.1 gwr * as mapped into DVMA space, where as the bp->b_data points to its
1281 1.1 gwr * non-DVMA mapping.
1282 1.1 gwr *
1283 1.1 gwr * XXX - On the sun3, B_PHYS does NOT mean the buffer is mapped
1284 1.1 gwr * into dvma space, only that it was remapped into the kernel.
1285 1.1 gwr * We ALWAYS have to remap the kernel buf into DVMA space.
1286 1.1 gwr * (It is done inexpensively, using whole segments!)
1287 1.1 gwr */
1288 1.1 gwr
1289 1.1 gwr block = bp->b_blkno + ((partno == RAW_PART) ? 0 :
1290 1.2 thorpej xysc->sc_dk.dk_label->d_partitions[partno].p_offset);
1291 1.1 gwr
1292 1.1 gwr dbuf = dvma_mapin(bp->b_data, bp->b_bcount);
1293 1.1 gwr if (dbuf == NULL) { /* out of DVMA space */
1294 1.11 christos printf("%s: warning: out of DVMA space\n",
1295 1.1 gwr xycsc->sc_dev.dv_xname);
1296 1.1 gwr return (XY_ERR_FAIL); /* XXX: need some sort of
1297 1.1 gwr * call-back scheme here? */
1298 1.1 gwr }
1299 1.1 gwr
1300 1.1 gwr /* init iorq and load iopb from it */
1301 1.1 gwr
1302 1.1 gwr xyc_rqinit(iorq, xycsc, xysc, XY_SUB_NORM | XY_MODE_VERBO, block,
1303 1.1 gwr bp->b_bcount / XYFM_BPS, dbuf, bp);
1304 1.1 gwr
1305 1.1 gwr xyc_rqtopb(iorq, iopb, (bp->b_flags & B_READ) ? XYCMD_RD : XYCMD_WR, 0);
1306 1.1 gwr
1307 1.5 chuck /* Instrumentation. */
1308 1.5 chuck disk_busy(&xysc->sc_dk);
1309 1.5 chuck
1310 1.1 gwr return (XY_ERR_AOK);
1311 1.1 gwr }
1312 1.1 gwr
1313 1.1 gwr
1314 1.1 gwr /*
1315 1.1 gwr * xyc_submit_iorq: submit an iorq for processing. returns XY_ERR_AOK
1316 1.1 gwr * if ok. if it fail returns an error code. type is XY_SUB_*.
1317 1.1 gwr *
1318 1.1 gwr * note: caller frees iorq in all cases except NORM
1319 1.1 gwr *
1320 1.1 gwr * return value:
1321 1.1 gwr * NORM: XY_AOK (req pending), XY_FAIL (couldn't submit request)
1322 1.1 gwr * WAIT: XY_AOK (success), <error-code> (failed)
1323 1.1 gwr * POLL: <same as WAIT>
1324 1.1 gwr * NOQ : <same as NORM>
1325 1.1 gwr *
1326 1.1 gwr * there are three sources for i/o requests:
1327 1.1 gwr * [1] xystrategy: normal block I/O, using "struct buf" system.
1328 1.1 gwr * [2] autoconfig/crash dump: these are polled I/O requests, no interrupts.
1329 1.1 gwr * [3] open/ioctl: these are I/O requests done in the context of a process,
1330 1.1 gwr * and the process should block until they are done.
1331 1.1 gwr *
1332 1.1 gwr * software state is stored in the iorq structure. each iorq has an
1333 1.1 gwr * iopb structure. the hardware understands the iopb structure.
1334 1.1 gwr * every command must go through an iopb. a 450 handles one iopb at a
1335 1.1 gwr * time, where as a 451 can take them in chains. [the 450 claims it
1336 1.1 gwr * can handle chains, but is appears to be buggy...] iopb are allocated
1337 1.1 gwr * in DVMA space at boot up time. each disk gets one iopb, and the
1338 1.1 gwr * controller gets one (for POLL and WAIT commands). what happens if
1339 1.1 gwr * the iopb is busy? for i/o type [1], the buffers are queued at the
1340 1.1 gwr * "buff" layer and * picked up later by the interrupt routine. for case
1341 1.1 gwr * [2] we can only be blocked if there is a WAIT type I/O request being
1342 1.1 gwr * run. since this can only happen when we are crashing, we wait a sec
1343 1.1 gwr * and then steal the IOPB. for case [3] the process can sleep
1344 1.1 gwr * on the iorq free list until some iopbs are avaliable.
1345 1.1 gwr */
1346 1.1 gwr
1347 1.1 gwr
1348 1.1 gwr int
1349 1.1 gwr xyc_submit_iorq(xycsc, iorq, type)
1350 1.1 gwr struct xyc_softc *xycsc;
1351 1.1 gwr struct xy_iorq *iorq;
1352 1.1 gwr int type;
1353 1.1 gwr
1354 1.1 gwr {
1355 1.1 gwr struct xy_iopb *iopb;
1356 1.1 gwr u_long iopbaddr;
1357 1.1 gwr
1358 1.1 gwr #ifdef XYC_DEBUG
1359 1.11 christos printf("xyc_submit_iorq(%s, addr=0x%x, type=%d)\n",
1360 1.1 gwr xycsc->sc_dev.dv_xname, iorq, type);
1361 1.1 gwr #endif
1362 1.1 gwr
1363 1.1 gwr /* first check and see if controller is busy */
1364 1.1 gwr if ((xycsc->xyc->xyc_csr & XYC_GBSY) != 0) {
1365 1.1 gwr #ifdef XYC_DEBUG
1366 1.11 christos printf("xyc_submit_iorq: XYC not ready (BUSY)\n");
1367 1.1 gwr #endif
1368 1.1 gwr if (type == XY_SUB_NOQ)
1369 1.1 gwr return (XY_ERR_FAIL); /* failed */
1370 1.1 gwr switch (type) {
1371 1.1 gwr case XY_SUB_NORM:
1372 1.1 gwr return XY_ERR_AOK; /* success */
1373 1.1 gwr case XY_SUB_WAIT:
1374 1.1 gwr while (iorq->iopb->done == 0) {
1375 1.1 gwr sleep(iorq, PRIBIO);
1376 1.1 gwr }
1377 1.1 gwr return (iorq->errno);
1378 1.1 gwr case XY_SUB_POLL: /* steal controller */
1379 1.1 gwr iopbaddr = xycsc->xyc->xyc_rsetup; /* RESET */
1380 1.1 gwr if (xyc_unbusy(xycsc->xyc,XYC_RESETUSEC) == XY_ERR_FAIL)
1381 1.1 gwr panic("xyc_submit_iorq: stuck xyc");
1382 1.11 christos printf("%s: stole controller\n",
1383 1.1 gwr xycsc->sc_dev.dv_xname);
1384 1.1 gwr break;
1385 1.1 gwr default:
1386 1.1 gwr panic("xyc_submit_iorq adding");
1387 1.1 gwr }
1388 1.1 gwr }
1389 1.1 gwr
1390 1.1 gwr iopb = xyc_chain(xycsc, iorq); /* build chain */
1391 1.1 gwr if (iopb == NULL) { /* nothing doing? */
1392 1.1 gwr if (type == XY_SUB_NORM || type == XY_SUB_NOQ)
1393 1.1 gwr return(XY_ERR_AOK);
1394 1.1 gwr panic("xyc_submit_iorq: xyc_chain failed!\n");
1395 1.1 gwr }
1396 1.1 gwr iopbaddr = dvma_kvtopa((long) iopb, BUS_VME16);
1397 1.1 gwr
1398 1.1 gwr XYC_GO(xycsc->xyc, iopbaddr);
1399 1.1 gwr
1400 1.1 gwr /* command now running, wrap it up */
1401 1.1 gwr switch (type) {
1402 1.1 gwr case XY_SUB_NORM:
1403 1.1 gwr case XY_SUB_NOQ:
1404 1.1 gwr return (XY_ERR_AOK); /* success */
1405 1.1 gwr case XY_SUB_WAIT:
1406 1.1 gwr while (iorq->iopb->done == 0) {
1407 1.1 gwr sleep(iorq, PRIBIO);
1408 1.1 gwr }
1409 1.1 gwr return (iorq->errno);
1410 1.1 gwr case XY_SUB_POLL:
1411 1.1 gwr return (xyc_piodriver(xycsc, iorq));
1412 1.1 gwr default:
1413 1.1 gwr panic("xyc_submit_iorq wrap up");
1414 1.1 gwr }
1415 1.1 gwr panic("xyc_submit_iorq");
1416 1.1 gwr return 0; /* not reached */
1417 1.1 gwr }
1418 1.1 gwr
1419 1.1 gwr
1420 1.1 gwr /*
1421 1.1 gwr * xyc_chain: build a chain. return dvma address of first element in
1422 1.1 gwr * the chain. iorq != NULL: means we only want that item on the chain.
1423 1.1 gwr */
1424 1.1 gwr
1425 1.1 gwr struct xy_iopb *
1426 1.1 gwr xyc_chain(xycsc, iorq)
1427 1.1 gwr
1428 1.1 gwr struct xyc_softc *xycsc;
1429 1.1 gwr struct xy_iorq *iorq;
1430 1.1 gwr
1431 1.1 gwr {
1432 1.1 gwr int togo, chain, hand;
1433 1.1 gwr struct xy_iopb *iopb, *prev_iopb;
1434 1.1 gwr bzero(xycsc->xy_chain, sizeof(xycsc->xy_chain));
1435 1.1 gwr
1436 1.1 gwr /*
1437 1.1 gwr * promote control IOPB to the top
1438 1.1 gwr */
1439 1.1 gwr if (iorq == NULL) {
1440 1.1 gwr if ((XY_STATE(xycsc->reqs[XYC_CTLIOPB].mode) == XY_SUB_POLL ||
1441 1.1 gwr XY_STATE(xycsc->reqs[XYC_CTLIOPB].mode) == XY_SUB_WAIT) &&
1442 1.1 gwr xycsc->iopbase[XYC_CTLIOPB].done == 0)
1443 1.1 gwr iorq = &xycsc->reqs[XYC_CTLIOPB];
1444 1.1 gwr }
1445 1.1 gwr /*
1446 1.1 gwr * special case: if iorq != NULL then we have a POLL or WAIT request.
1447 1.1 gwr * we let these take priority and do them first.
1448 1.1 gwr */
1449 1.1 gwr if (iorq) {
1450 1.1 gwr xycsc->xy_chain[0] = iorq;
1451 1.1 gwr iorq->iopb->chen = 0;
1452 1.1 gwr return(iorq->iopb);
1453 1.1 gwr }
1454 1.1 gwr
1455 1.1 gwr /*
1456 1.1 gwr * NORM case: do round robin and maybe chain (if allowed and possible)
1457 1.1 gwr */
1458 1.1 gwr
1459 1.1 gwr chain = 0;
1460 1.1 gwr hand = xycsc->xy_hand;
1461 1.1 gwr xycsc->xy_hand = (xycsc->xy_hand + 1) % XYC_MAXIOPB;
1462 1.1 gwr
1463 1.1 gwr for (togo = XYC_MAXIOPB ; togo > 0 ; togo--, hand = (hand + 1) % XYC_MAXIOPB){
1464 1.1 gwr
1465 1.1 gwr if (XY_STATE(xycsc->reqs[hand].mode) != XY_SUB_NORM ||
1466 1.1 gwr xycsc->iopbase[hand].done)
1467 1.1 gwr continue; /* not ready-for-i/o */
1468 1.1 gwr
1469 1.1 gwr xycsc->xy_chain[chain] = &xycsc->reqs[hand];
1470 1.1 gwr iopb = xycsc->xy_chain[chain]->iopb;
1471 1.1 gwr iopb->chen = 0;
1472 1.1 gwr if (chain != 0) { /* adding a link to a chain? */
1473 1.1 gwr prev_iopb = xycsc->xy_chain[chain-1]->iopb;
1474 1.1 gwr prev_iopb->chen = 1;
1475 1.1 gwr prev_iopb->nxtiopb = 0xffff &
1476 1.1 gwr dvma_kvtopa((long) iopb, BUS_VME16);
1477 1.1 gwr } else { /* head of chain */
1478 1.1 gwr iorq = xycsc->xy_chain[chain];
1479 1.1 gwr }
1480 1.1 gwr chain++;
1481 1.1 gwr if (xycsc->no_ols) break; /* quit if chaining dis-allowed */
1482 1.1 gwr }
1483 1.1 gwr return(iorq ? iorq->iopb : NULL);
1484 1.1 gwr }
1485 1.1 gwr
1486 1.1 gwr /*
1487 1.1 gwr * xyc_piodriver
1488 1.1 gwr *
1489 1.1 gwr * programmed i/o driver. this function takes over the computer
1490 1.1 gwr * and drains off the polled i/o request. it returns the status of the iorq
1491 1.1 gwr * the caller is interesting in.
1492 1.1 gwr */
1493 1.1 gwr int
1494 1.1 gwr xyc_piodriver(xycsc, iorq)
1495 1.1 gwr struct xyc_softc *xycsc;
1496 1.1 gwr struct xy_iorq *iorq;
1497 1.1 gwr
1498 1.1 gwr {
1499 1.1 gwr int nreset = 0;
1500 1.1 gwr int retval = 0;
1501 1.1 gwr u_long res;
1502 1.1 gwr struct xyc *xyc = xycsc->xyc;
1503 1.1 gwr #ifdef XYC_DEBUG
1504 1.11 christos printf("xyc_piodriver(%s, 0x%x)\n", xycsc->sc_dev.dv_xname, iorq);
1505 1.1 gwr #endif
1506 1.1 gwr
1507 1.1 gwr while (iorq->iopb->done == 0) {
1508 1.1 gwr
1509 1.1 gwr res = xyc_unbusy(xycsc->xyc, XYC_MAXTIME);
1510 1.1 gwr
1511 1.1 gwr /* we expect some progress soon */
1512 1.1 gwr if (res == XY_ERR_FAIL && nreset >= 2) {
1513 1.1 gwr xyc_reset(xycsc, 0, XY_RSET_ALL, XY_ERR_FAIL, 0);
1514 1.1 gwr #ifdef XYC_DEBUG
1515 1.11 christos printf("xyc_piodriver: timeout\n");
1516 1.1 gwr #endif
1517 1.1 gwr return (XY_ERR_FAIL);
1518 1.1 gwr }
1519 1.1 gwr if (res == XY_ERR_FAIL) {
1520 1.1 gwr if (xyc_reset(xycsc, 0,
1521 1.1 gwr (nreset++ == 0) ? XY_RSET_NONE : iorq,
1522 1.1 gwr XY_ERR_FAIL,
1523 1.1 gwr 0) == XY_ERR_FAIL)
1524 1.1 gwr return (XY_ERR_FAIL); /* flushes all but POLL
1525 1.1 gwr * requests, resets */
1526 1.1 gwr continue;
1527 1.1 gwr }
1528 1.1 gwr
1529 1.1 gwr xyc_remove_iorq(xycsc); /* may resubmit request */
1530 1.1 gwr
1531 1.1 gwr if (iorq->iopb->done == 0)
1532 1.1 gwr xyc_start(xycsc, iorq);
1533 1.1 gwr }
1534 1.1 gwr
1535 1.1 gwr /* get return value */
1536 1.1 gwr
1537 1.1 gwr retval = iorq->errno;
1538 1.1 gwr
1539 1.1 gwr #ifdef XYC_DEBUG
1540 1.11 christos printf("xyc_piodriver: done, retval = 0x%x (%s)\n",
1541 1.1 gwr iorq->errno, xyc_e2str(iorq->errno));
1542 1.1 gwr #endif
1543 1.1 gwr
1544 1.1 gwr /* start up any bufs that have queued */
1545 1.1 gwr
1546 1.1 gwr xyc_start(xycsc, NULL);
1547 1.1 gwr
1548 1.1 gwr return (retval);
1549 1.1 gwr }
1550 1.1 gwr
1551 1.1 gwr /*
1552 1.1 gwr * xyc_xyreset: reset one drive. NOTE: assumes xyc was just reset.
1553 1.1 gwr * we steal iopb[XYC_CTLIOPB] for this, but we put it back when we are done.
1554 1.1 gwr */
1555 1.1 gwr int
1556 1.1 gwr xyc_xyreset(xycsc, xysc)
1557 1.1 gwr struct xyc_softc *xycsc;
1558 1.1 gwr struct xy_softc *xysc;
1559 1.1 gwr
1560 1.1 gwr {
1561 1.1 gwr struct xy_iopb tmpiopb;
1562 1.1 gwr u_long addr;
1563 1.1 gwr int del;
1564 1.1 gwr bcopy(xycsc->ciopb, &tmpiopb, sizeof(tmpiopb));
1565 1.1 gwr xycsc->ciopb->chen = xycsc->ciopb->done = xycsc->ciopb->errs = 0;
1566 1.1 gwr xycsc->ciopb->ien = 0;
1567 1.1 gwr xycsc->ciopb->com = XYCMD_RST;
1568 1.1 gwr xycsc->ciopb->unit = xysc->xy_drive;
1569 1.1 gwr addr = dvma_kvtopa((long) xycsc->ciopb, BUS_VME16);
1570 1.1 gwr
1571 1.1 gwr XYC_GO(xycsc->xyc, addr);
1572 1.1 gwr
1573 1.1 gwr del = XYC_RESETUSEC;
1574 1.1 gwr while (del > 0) {
1575 1.1 gwr if ((xycsc->xyc->xyc_csr & XYC_GBSY) == 0) break;
1576 1.1 gwr DELAY(1);
1577 1.1 gwr del--;
1578 1.1 gwr }
1579 1.1 gwr
1580 1.1 gwr if (del <= 0 || xycsc->ciopb->errs) {
1581 1.11 christos printf("%s: off-line: %s\n", xycsc->sc_dev.dv_xname,
1582 1.1 gwr xyc_e2str(xycsc->ciopb->errno));
1583 1.1 gwr del = xycsc->xyc->xyc_rsetup;
1584 1.1 gwr if (xyc_unbusy(xycsc->xyc, XYC_RESETUSEC) == XY_ERR_FAIL)
1585 1.1 gwr panic("xyc_reset");
1586 1.1 gwr } else {
1587 1.7 chuck xycsc->xyc->xyc_csr = XYC_IPND; /* clear IPND */
1588 1.1 gwr }
1589 1.1 gwr bcopy(&tmpiopb, xycsc->ciopb, sizeof(tmpiopb));
1590 1.1 gwr }
1591 1.1 gwr
1592 1.1 gwr
1593 1.1 gwr /*
1594 1.1 gwr * xyc_reset: reset everything: requests are marked as errors except
1595 1.1 gwr * a polled request (which is resubmitted)
1596 1.1 gwr */
1597 1.1 gwr int
1598 1.1 gwr xyc_reset(xycsc, quiet, blastmode, error, xysc)
1599 1.1 gwr struct xyc_softc *xycsc;
1600 1.1 gwr int quiet, error;
1601 1.1 gwr struct xy_iorq *blastmode;
1602 1.1 gwr struct xy_softc *xysc;
1603 1.1 gwr
1604 1.1 gwr {
1605 1.1 gwr int del = 0, lcv, poll = -1, retval = XY_ERR_AOK;
1606 1.1 gwr struct xy_iorq *iorq;
1607 1.1 gwr
1608 1.1 gwr /* soft reset hardware */
1609 1.1 gwr
1610 1.1 gwr if (!quiet)
1611 1.11 christos printf("%s: soft reset\n", xycsc->sc_dev.dv_xname);
1612 1.1 gwr del = xycsc->xyc->xyc_rsetup;
1613 1.1 gwr del = xyc_unbusy(xycsc->xyc, XYC_RESETUSEC);
1614 1.1 gwr if (del == XY_ERR_FAIL) {
1615 1.1 gwr blastmode = XY_RSET_ALL; /* dead, flush all requests */
1616 1.1 gwr retval = XY_ERR_FAIL;
1617 1.1 gwr }
1618 1.1 gwr if (xysc)
1619 1.1 gwr xyc_xyreset(xycsc, xysc);
1620 1.1 gwr
1621 1.1 gwr /* fix queues based on "blast-mode" */
1622 1.1 gwr
1623 1.1 gwr for (lcv = 0; lcv < XYC_MAXIOPB; lcv++) {
1624 1.1 gwr iorq = &xycsc->reqs[lcv];
1625 1.1 gwr
1626 1.1 gwr if (XY_STATE(iorq->mode) != XY_SUB_POLL &&
1627 1.1 gwr XY_STATE(iorq->mode) != XY_SUB_WAIT &&
1628 1.1 gwr XY_STATE(iorq->mode) != XY_SUB_NORM)
1629 1.1 gwr /* is it active? */
1630 1.1 gwr continue;
1631 1.1 gwr
1632 1.1 gwr if (blastmode == XY_RSET_ALL ||
1633 1.1 gwr blastmode != iorq) {
1634 1.1 gwr /* failed */
1635 1.1 gwr iorq->errno = error;
1636 1.1 gwr xycsc->iopbase[lcv].done = xycsc->iopbase[lcv].errs = 1;
1637 1.1 gwr switch (XY_STATE(iorq->mode)) {
1638 1.1 gwr case XY_SUB_NORM:
1639 1.1 gwr iorq->buf->b_error = EIO;
1640 1.1 gwr iorq->buf->b_flags |= B_ERROR;
1641 1.1 gwr iorq->buf->b_resid =
1642 1.1 gwr iorq->sectcnt * XYFM_BPS;
1643 1.1 gwr /* Sun3: map/unmap regardless of B_PHYS */
1644 1.1 gwr dvma_mapout(iorq->dbufbase,
1645 1.1 gwr iorq->buf->b_bcount);
1646 1.1 gwr iorq->xy->xyq.b_actf =
1647 1.4 gwr iorq->buf->b_actf;
1648 1.2 thorpej disk_unbusy(&iorq->xy->sc_dk,
1649 1.4 gwr (iorq->buf->b_bcount -
1650 1.4 gwr iorq->buf->b_resid));
1651 1.1 gwr biodone(iorq->buf);
1652 1.1 gwr iorq->mode = XY_SUB_FREE;
1653 1.1 gwr break;
1654 1.1 gwr case XY_SUB_WAIT:
1655 1.1 gwr wakeup(iorq);
1656 1.1 gwr case XY_SUB_POLL:
1657 1.1 gwr iorq->mode =
1658 1.1 gwr XY_NEWSTATE(iorq->mode, XY_SUB_DONE);
1659 1.1 gwr break;
1660 1.1 gwr }
1661 1.1 gwr
1662 1.1 gwr } else {
1663 1.1 gwr
1664 1.1 gwr /* resubmit, no need to do anything here */
1665 1.1 gwr }
1666 1.1 gwr }
1667 1.1 gwr
1668 1.1 gwr /*
1669 1.1 gwr * now, if stuff is waiting, start it.
1670 1.1 gwr * since we just reset it should go
1671 1.1 gwr */
1672 1.1 gwr xyc_start(xycsc, NULL);
1673 1.1 gwr
1674 1.1 gwr return (retval);
1675 1.1 gwr }
1676 1.1 gwr
1677 1.1 gwr /*
1678 1.1 gwr * xyc_start: start waiting buffers
1679 1.1 gwr */
1680 1.1 gwr
1681 1.1 gwr int
1682 1.1 gwr xyc_start(xycsc, iorq)
1683 1.1 gwr struct xyc_softc *xycsc;
1684 1.1 gwr struct xy_iorq *iorq;
1685 1.1 gwr
1686 1.1 gwr {
1687 1.1 gwr int lcv;
1688 1.1 gwr struct xy_softc *xy;
1689 1.1 gwr
1690 1.1 gwr if (iorq == NULL) {
1691 1.1 gwr for (lcv = 0; lcv < XYC_MAXDEV ; lcv++) {
1692 1.1 gwr if ((xy = xycsc->sc_drives[lcv]) == NULL) continue;
1693 1.1 gwr if (xy->xyq.b_actf == NULL) continue;
1694 1.1 gwr if (xy->xyrq->mode != XY_SUB_FREE) continue;
1695 1.1 gwr xyc_startbuf(xycsc, xy, xy->xyq.b_actf);
1696 1.1 gwr }
1697 1.1 gwr }
1698 1.1 gwr xyc_submit_iorq(xycsc, iorq, XY_SUB_NOQ);
1699 1.1 gwr }
1700 1.1 gwr
1701 1.1 gwr /*
1702 1.1 gwr * xyc_remove_iorq: remove "done" IOPB's.
1703 1.1 gwr */
1704 1.1 gwr
1705 1.1 gwr int
1706 1.1 gwr xyc_remove_iorq(xycsc)
1707 1.1 gwr struct xyc_softc *xycsc;
1708 1.1 gwr
1709 1.1 gwr {
1710 1.1 gwr int errno, rq, comm, errs;
1711 1.1 gwr struct xyc *xyc = xycsc->xyc;
1712 1.1 gwr u_long addr;
1713 1.1 gwr struct xy_iopb *iopb;
1714 1.1 gwr struct xy_iorq *iorq;
1715 1.1 gwr struct buf *bp;
1716 1.1 gwr
1717 1.1 gwr if (xyc->xyc_csr & XYC_DERR) {
1718 1.1 gwr /*
1719 1.1 gwr * DOUBLE ERROR: should never happen under normal use. This
1720 1.1 gwr * error is so bad, you can't even tell which IOPB is bad, so
1721 1.1 gwr * we dump them all.
1722 1.1 gwr */
1723 1.1 gwr errno = XY_ERR_DERR;
1724 1.11 christos printf("%s: DOUBLE ERROR!\n", xycsc->sc_dev.dv_xname);
1725 1.1 gwr if (xyc_reset(xycsc, 0, XY_RSET_ALL, errno, 0) != XY_ERR_AOK) {
1726 1.11 christos printf("%s: soft reset failed!\n",
1727 1.1 gwr xycsc->sc_dev.dv_xname);
1728 1.1 gwr panic("xyc_remove_iorq: controller DEAD");
1729 1.1 gwr }
1730 1.1 gwr return (XY_ERR_AOK);
1731 1.1 gwr }
1732 1.1 gwr
1733 1.1 gwr /*
1734 1.1 gwr * get iopb that is done, loop down the chain
1735 1.1 gwr */
1736 1.1 gwr
1737 1.1 gwr if (xyc->xyc_csr & XYC_ERR) {
1738 1.7 chuck xyc->xyc_csr = XYC_ERR; /* clear error condition */
1739 1.1 gwr }
1740 1.1 gwr if (xyc->xyc_csr & XYC_IPND) {
1741 1.7 chuck xyc->xyc_csr = XYC_IPND; /* clear interrupt */
1742 1.1 gwr }
1743 1.1 gwr
1744 1.1 gwr for (rq = 0; rq < XYC_MAXIOPB; rq++) {
1745 1.1 gwr iorq = xycsc->xy_chain[rq];
1746 1.1 gwr if (iorq == NULL) break; /* done ! */
1747 1.1 gwr if (iorq->mode == 0 || XY_STATE(iorq->mode) == XY_SUB_DONE)
1748 1.1 gwr continue; /* free, or done */
1749 1.1 gwr iopb = iorq->iopb;
1750 1.1 gwr if (iopb->done == 0)
1751 1.1 gwr continue; /* not done yet */
1752 1.1 gwr
1753 1.1 gwr comm = iopb->com;
1754 1.1 gwr errs = iopb->errs;
1755 1.1 gwr
1756 1.1 gwr if (errs)
1757 1.1 gwr iorq->errno = iopb->errno;
1758 1.1 gwr else
1759 1.1 gwr iorq->errno = 0;
1760 1.1 gwr
1761 1.1 gwr /* handle non-fatal errors */
1762 1.1 gwr
1763 1.1 gwr if (errs &&
1764 1.1 gwr xyc_error(xycsc, iorq, iopb, comm) == XY_ERR_AOK)
1765 1.1 gwr continue; /* AOK: we resubmitted it */
1766 1.1 gwr
1767 1.1 gwr
1768 1.1 gwr /* this iorq is now done (hasn't been restarted or anything) */
1769 1.1 gwr
1770 1.1 gwr if ((iorq->mode & XY_MODE_VERBO) && iorq->lasterror)
1771 1.1 gwr xyc_perror(iorq, iopb, 0);
1772 1.1 gwr
1773 1.1 gwr /* now, if read/write check to make sure we got all the data
1774 1.1 gwr * we needed. (this may not be the case if we got an error in
1775 1.1 gwr * the middle of a multisector request). */
1776 1.1 gwr
1777 1.1 gwr if ((iorq->mode & XY_MODE_B144) != 0 && errs == 0 &&
1778 1.1 gwr (comm == XYCMD_RD || comm == XYCMD_WR)) {
1779 1.1 gwr /* we just successfully processed a bad144 sector
1780 1.1 gwr * note: if we are in bad 144 mode, the pointers have
1781 1.1 gwr * been advanced already (see above) and are pointing
1782 1.1 gwr * at the bad144 sector. to exit bad144 mode, we
1783 1.1 gwr * must advance the pointers 1 sector and issue a new
1784 1.1 gwr * request if there are still sectors left to process
1785 1.1 gwr *
1786 1.1 gwr */
1787 1.1 gwr XYC_ADVANCE(iorq, 1); /* advance 1 sector */
1788 1.1 gwr
1789 1.1 gwr /* exit b144 mode */
1790 1.1 gwr iorq->mode = iorq->mode & (~XY_MODE_B144);
1791 1.1 gwr
1792 1.1 gwr if (iorq->sectcnt) { /* more to go! */
1793 1.1 gwr iorq->lasterror = iorq->errno = iopb->errno = 0;
1794 1.1 gwr iopb->errs = iopb->done = 0;
1795 1.1 gwr iorq->tries = 0;
1796 1.1 gwr iopb->scnt = iorq->sectcnt;
1797 1.1 gwr iopb->cyl = iorq->blockno /
1798 1.1 gwr iorq->xy->sectpercyl;
1799 1.1 gwr iopb->head =
1800 1.1 gwr (iorq->blockno / iorq->xy->nhead) %
1801 1.1 gwr iorq->xy->nhead;
1802 1.1 gwr iopb->sect = iorq->blockno % XYFM_BPS;
1803 1.1 gwr addr = dvma_kvtopa((long) iorq->dbuf, BUS_VME16);
1804 1.1 gwr iopb->dataa = (addr & 0xffff);
1805 1.1 gwr iopb->datar = ((addr & 0xff0000) >> 16);
1806 1.1 gwr /* will resubit at end */
1807 1.1 gwr continue;
1808 1.1 gwr }
1809 1.1 gwr }
1810 1.1 gwr /* final cleanup, totally done with this request */
1811 1.1 gwr
1812 1.1 gwr switch (XY_STATE(iorq->mode)) {
1813 1.1 gwr case XY_SUB_NORM:
1814 1.1 gwr bp = iorq->buf;
1815 1.1 gwr if (errs) {
1816 1.1 gwr bp->b_error = EIO;
1817 1.1 gwr bp->b_flags |= B_ERROR;
1818 1.1 gwr bp->b_resid = iorq->sectcnt * XYFM_BPS;
1819 1.1 gwr } else {
1820 1.1 gwr bp->b_resid = 0; /* done */
1821 1.1 gwr }
1822 1.1 gwr /* Sun3: map/unmap regardless of B_PHYS */
1823 1.1 gwr dvma_mapout(iorq->dbufbase,
1824 1.1 gwr iorq->buf->b_bcount);
1825 1.1 gwr iorq->xy->xyq.b_actf = bp->b_actf;
1826 1.2 thorpej disk_unbusy(&iorq->xy->sc_dk,
1827 1.2 thorpej (bp->b_bcount - bp->b_resid));
1828 1.1 gwr biodone(bp);
1829 1.5 chuck iorq->mode = XY_SUB_FREE;
1830 1.1 gwr break;
1831 1.1 gwr case XY_SUB_WAIT:
1832 1.1 gwr iorq->mode = XY_NEWSTATE(iorq->mode, XY_SUB_DONE);
1833 1.1 gwr wakeup(iorq);
1834 1.1 gwr break;
1835 1.1 gwr case XY_SUB_POLL:
1836 1.1 gwr iorq->mode = XY_NEWSTATE(iorq->mode, XY_SUB_DONE);
1837 1.1 gwr break;
1838 1.1 gwr }
1839 1.1 gwr }
1840 1.1 gwr
1841 1.1 gwr return (XY_ERR_AOK);
1842 1.1 gwr }
1843 1.1 gwr
1844 1.1 gwr /*
1845 1.1 gwr * xyc_perror: print error.
1846 1.1 gwr * - if still_trying is true: we got an error, retried and got a
1847 1.1 gwr * different error. in that case lasterror is the old error,
1848 1.1 gwr * and errno is the new one.
1849 1.1 gwr * - if still_trying is not true, then if we ever had an error it
1850 1.1 gwr * is in lasterror. also, if iorq->errno == 0, then we recovered
1851 1.1 gwr * from that error (otherwise iorq->errno == iorq->lasterror).
1852 1.1 gwr */
1853 1.1 gwr void
1854 1.1 gwr xyc_perror(iorq, iopb, still_trying)
1855 1.1 gwr struct xy_iorq *iorq;
1856 1.1 gwr struct xy_iopb *iopb;
1857 1.1 gwr int still_trying;
1858 1.1 gwr
1859 1.1 gwr {
1860 1.1 gwr
1861 1.1 gwr int error = iorq->lasterror;
1862 1.1 gwr
1863 1.11 christos printf("%s", (iorq->xy) ? iorq->xy->sc_dev.dv_xname
1864 1.1 gwr : iorq->xyc->sc_dev.dv_xname);
1865 1.1 gwr if (iorq->buf)
1866 1.11 christos printf("%c: ", 'a' + DISKPART(iorq->buf->b_dev));
1867 1.1 gwr if (iopb->com == XYCMD_RD || iopb->com == XYCMD_WR)
1868 1.11 christos printf("%s %d/%d/%d: ",
1869 1.1 gwr (iopb->com == XYCMD_RD) ? "read" : "write",
1870 1.1 gwr iopb->cyl, iopb->head, iopb->sect);
1871 1.11 christos printf("%s", xyc_e2str(error));
1872 1.1 gwr
1873 1.1 gwr if (still_trying)
1874 1.11 christos printf(" [still trying, new error=%s]", xyc_e2str(iorq->errno));
1875 1.1 gwr else
1876 1.1 gwr if (iorq->errno == 0)
1877 1.11 christos printf(" [recovered in %d tries]", iorq->tries);
1878 1.1 gwr
1879 1.11 christos printf("\n");
1880 1.1 gwr }
1881 1.1 gwr
1882 1.1 gwr /*
1883 1.1 gwr * xyc_error: non-fatal error encountered... recover.
1884 1.1 gwr * return AOK if resubmitted, return FAIL if this iopb is done
1885 1.1 gwr */
1886 1.1 gwr int
1887 1.1 gwr xyc_error(xycsc, iorq, iopb, comm)
1888 1.1 gwr struct xyc_softc *xycsc;
1889 1.1 gwr struct xy_iorq *iorq;
1890 1.1 gwr struct xy_iopb *iopb;
1891 1.1 gwr int comm;
1892 1.1 gwr
1893 1.1 gwr {
1894 1.1 gwr int errno = iorq->errno;
1895 1.1 gwr int erract = xyc_entoact(errno);
1896 1.1 gwr int oldmode, advance, i;
1897 1.1 gwr
1898 1.1 gwr if (erract == XY_ERA_RSET) { /* some errors require a reset */
1899 1.1 gwr oldmode = iorq->mode;
1900 1.1 gwr iorq->mode = XY_SUB_DONE | (~XY_SUB_MASK & oldmode);
1901 1.1 gwr /* make xyc_start ignore us */
1902 1.1 gwr xyc_reset(xycsc, 1, XY_RSET_NONE, errno, iorq->xy);
1903 1.1 gwr iorq->mode = oldmode;
1904 1.1 gwr }
1905 1.1 gwr /* check for read/write to a sector in bad144 table if bad: redirect
1906 1.1 gwr * request to bad144 area */
1907 1.1 gwr
1908 1.1 gwr if ((comm == XYCMD_RD || comm == XYCMD_WR) &&
1909 1.1 gwr (iorq->mode & XY_MODE_B144) == 0) {
1910 1.1 gwr advance = iorq->sectcnt - iopb->scnt;
1911 1.1 gwr XYC_ADVANCE(iorq, advance);
1912 1.1 gwr if ((i = isbad(&iorq->xy->dkb, iorq->blockno / iorq->xy->sectpercyl,
1913 1.1 gwr (iorq->blockno / iorq->xy->nsect) % iorq->xy->nhead,
1914 1.1 gwr iorq->blockno % iorq->xy->nsect)) != -1) {
1915 1.1 gwr iorq->mode |= XY_MODE_B144; /* enter bad144 mode &
1916 1.1 gwr * redirect */
1917 1.1 gwr iopb->errno = iopb->done = iopb->errs = 0;
1918 1.1 gwr iopb->scnt = 1;
1919 1.1 gwr iopb->cyl = (iorq->xy->ncyl + iorq->xy->acyl) - 2;
1920 1.1 gwr /* second to last acyl */
1921 1.1 gwr i = iorq->xy->sectpercyl - 1 - i; /* follow bad144
1922 1.1 gwr * standard */
1923 1.1 gwr iopb->head = i / iorq->xy->nhead;
1924 1.1 gwr iopb->sect = i % iorq->xy->nhead;
1925 1.1 gwr /* will resubmit when we come out of remove_iorq */
1926 1.1 gwr return (XY_ERR_AOK); /* recovered! */
1927 1.1 gwr }
1928 1.1 gwr }
1929 1.1 gwr
1930 1.1 gwr /*
1931 1.1 gwr * it isn't a bad144 sector, must be real error! see if we can retry
1932 1.1 gwr * it?
1933 1.1 gwr */
1934 1.1 gwr if ((iorq->mode & XY_MODE_VERBO) && iorq->lasterror)
1935 1.1 gwr xyc_perror(iorq, iopb, 1); /* inform of error state
1936 1.1 gwr * change */
1937 1.1 gwr iorq->lasterror = errno;
1938 1.1 gwr
1939 1.1 gwr if ((erract == XY_ERA_RSET || erract == XY_ERA_HARD)
1940 1.1 gwr && iorq->tries < XYC_MAXTRIES) { /* retry? */
1941 1.1 gwr iorq->tries++;
1942 1.1 gwr iorq->errno = iopb->errno = iopb->done = iopb->errs = 0;
1943 1.1 gwr /* will resubmit at end of remove_iorq */
1944 1.1 gwr return (XY_ERR_AOK); /* recovered! */
1945 1.1 gwr }
1946 1.1 gwr
1947 1.1 gwr /* failed to recover from this error */
1948 1.1 gwr return (XY_ERR_FAIL);
1949 1.1 gwr }
1950 1.1 gwr
1951 1.1 gwr /*
1952 1.1 gwr * xyc_tick: make sure xy is still alive and ticking (err, kicking).
1953 1.1 gwr */
1954 1.1 gwr void
1955 1.1 gwr xyc_tick(arg)
1956 1.1 gwr void *arg;
1957 1.1 gwr
1958 1.1 gwr {
1959 1.1 gwr struct xyc_softc *xycsc = arg;
1960 1.1 gwr int lcv, s, reset = 0;
1961 1.1 gwr
1962 1.1 gwr /* reduce ttl for each request if one goes to zero, reset xyc */
1963 1.1 gwr s = splbio();
1964 1.1 gwr for (lcv = 0; lcv < XYC_MAXIOPB; lcv++) {
1965 1.1 gwr if (xycsc->reqs[lcv].mode == 0 ||
1966 1.1 gwr XY_STATE(xycsc->reqs[lcv].mode) == XY_SUB_DONE)
1967 1.1 gwr continue;
1968 1.1 gwr xycsc->reqs[lcv].ttl--;
1969 1.1 gwr if (xycsc->reqs[lcv].ttl == 0)
1970 1.1 gwr reset = 1;
1971 1.1 gwr }
1972 1.1 gwr if (reset) {
1973 1.11 christos printf("%s: watchdog timeout\n", xycsc->sc_dev.dv_xname);
1974 1.1 gwr xyc_reset(xycsc, 0, XY_RSET_NONE, XY_ERR_FAIL, NULL);
1975 1.1 gwr }
1976 1.1 gwr splx(s);
1977 1.1 gwr
1978 1.1 gwr /* until next time */
1979 1.1 gwr
1980 1.1 gwr timeout(xyc_tick, xycsc, XYC_TICKCNT);
1981 1.1 gwr }
1982 1.1 gwr
1983 1.1 gwr /*
1984 1.1 gwr * xyc_ioctlcmd: this function provides a user level interface to the
1985 1.1 gwr * controller via ioctl. this allows "format" programs to be written
1986 1.1 gwr * in user code, and is also useful for some debugging. we return
1987 1.1 gwr * an error code. called at user priority.
1988 1.1 gwr *
1989 1.1 gwr * XXX missing a few commands (see the 7053 driver for ideas)
1990 1.1 gwr */
1991 1.1 gwr int
1992 1.1 gwr xyc_ioctlcmd(xy, dev, xio)
1993 1.1 gwr struct xy_softc *xy;
1994 1.1 gwr dev_t dev;
1995 1.1 gwr struct xd_iocmd *xio;
1996 1.1 gwr
1997 1.1 gwr {
1998 1.1 gwr int s, err, rqno, dummy;
1999 1.1 gwr caddr_t dvmabuf = NULL;
2000 1.1 gwr struct xyc_softc *xycsc;
2001 1.1 gwr
2002 1.1 gwr /* check sanity of requested command */
2003 1.1 gwr
2004 1.1 gwr switch (xio->cmd) {
2005 1.1 gwr
2006 1.1 gwr case XYCMD_NOP: /* no op: everything should be zero */
2007 1.1 gwr if (xio->subfn || xio->dptr || xio->dlen ||
2008 1.1 gwr xio->block || xio->sectcnt)
2009 1.1 gwr return (EINVAL);
2010 1.1 gwr break;
2011 1.1 gwr
2012 1.1 gwr case XYCMD_RD: /* read / write sectors (up to XD_IOCMD_MAXS) */
2013 1.1 gwr case XYCMD_WR:
2014 1.1 gwr if (xio->subfn || xio->sectcnt > XD_IOCMD_MAXS ||
2015 1.1 gwr xio->sectcnt * XYFM_BPS != xio->dlen || xio->dptr == NULL)
2016 1.1 gwr return (EINVAL);
2017 1.1 gwr break;
2018 1.1 gwr
2019 1.1 gwr case XYCMD_SK: /* seek: doesn't seem useful to export this */
2020 1.1 gwr return (EINVAL);
2021 1.1 gwr
2022 1.1 gwr break;
2023 1.1 gwr
2024 1.1 gwr default:
2025 1.1 gwr return (EINVAL);/* ??? */
2026 1.1 gwr }
2027 1.1 gwr
2028 1.1 gwr /* create DVMA buffer for request if needed */
2029 1.1 gwr
2030 1.1 gwr if (xio->dlen) {
2031 1.1 gwr dvmabuf = dvma_malloc(xio->dlen);
2032 1.1 gwr if (xio->cmd == XYCMD_WR) {
2033 1.1 gwr if (err = copyin(xio->dptr, dvmabuf, xio->dlen)) {
2034 1.1 gwr dvma_free(dvmabuf, xio->dlen);
2035 1.1 gwr return (err);
2036 1.1 gwr }
2037 1.1 gwr }
2038 1.1 gwr }
2039 1.1 gwr /* do it! */
2040 1.1 gwr
2041 1.1 gwr err = 0;
2042 1.1 gwr xycsc = xy->parent;
2043 1.1 gwr s = splbio();
2044 1.1 gwr rqno = xyc_cmd(xycsc, xio->cmd, xio->subfn, xy->xy_drive, xio->block,
2045 1.1 gwr xio->sectcnt, dvmabuf, XY_SUB_WAIT);
2046 1.1 gwr if (rqno == XY_ERR_FAIL) {
2047 1.1 gwr err = EIO;
2048 1.1 gwr goto done;
2049 1.1 gwr }
2050 1.1 gwr xio->errno = xycsc->ciorq->errno;
2051 1.1 gwr xio->tries = xycsc->ciorq->tries;
2052 1.1 gwr XYC_DONE(xycsc, dummy);
2053 1.1 gwr
2054 1.1 gwr if (xio->cmd == XYCMD_RD)
2055 1.1 gwr err = copyout(dvmabuf, xio->dptr, xio->dlen);
2056 1.1 gwr
2057 1.1 gwr done:
2058 1.1 gwr splx(s);
2059 1.1 gwr if (dvmabuf)
2060 1.1 gwr dvma_free(dvmabuf, xio->dlen);
2061 1.1 gwr return (err);
2062 1.1 gwr }
2063 1.1 gwr
2064 1.1 gwr /*
2065 1.1 gwr * xyc_e2str: convert error code number into an error string
2066 1.1 gwr */
2067 1.1 gwr char *
2068 1.1 gwr xyc_e2str(no)
2069 1.1 gwr int no;
2070 1.1 gwr {
2071 1.1 gwr switch (no) {
2072 1.1 gwr case XY_ERR_FAIL:
2073 1.1 gwr return ("Software fatal error");
2074 1.1 gwr case XY_ERR_DERR:
2075 1.1 gwr return ("DOUBLE ERROR");
2076 1.1 gwr case XY_ERR_AOK:
2077 1.1 gwr return ("Successful completion");
2078 1.1 gwr case XY_ERR_IPEN:
2079 1.1 gwr return("Interrupt pending");
2080 1.1 gwr case XY_ERR_BCFL:
2081 1.1 gwr return("Busy conflict");
2082 1.1 gwr case XY_ERR_TIMO:
2083 1.1 gwr return("Operation timeout");
2084 1.1 gwr case XY_ERR_NHDR:
2085 1.1 gwr return("Header not found");
2086 1.1 gwr case XY_ERR_HARD:
2087 1.1 gwr return("Hard ECC error");
2088 1.1 gwr case XY_ERR_ICYL:
2089 1.1 gwr return("Illegal cylinder address");
2090 1.1 gwr case XY_ERR_ISEC:
2091 1.1 gwr return("Illegal sector address");
2092 1.1 gwr case XY_ERR_SMAL:
2093 1.1 gwr return("Last sector too small");
2094 1.1 gwr case XY_ERR_SACK:
2095 1.1 gwr return("Slave ACK error (non-existent memory)");
2096 1.1 gwr case XY_ERR_CHER:
2097 1.1 gwr return("Cylinder and head/header error");
2098 1.1 gwr case XY_ERR_SRTR:
2099 1.1 gwr return("Auto-seek retry successful");
2100 1.1 gwr case XY_ERR_WPRO:
2101 1.1 gwr return("Write-protect error");
2102 1.1 gwr case XY_ERR_UIMP:
2103 1.1 gwr return("Unimplemented command");
2104 1.1 gwr case XY_ERR_DNRY:
2105 1.1 gwr return("Drive not ready");
2106 1.1 gwr case XY_ERR_SZER:
2107 1.1 gwr return("Sector count zero");
2108 1.1 gwr case XY_ERR_DFLT:
2109 1.1 gwr return("Drive faulted");
2110 1.1 gwr case XY_ERR_ISSZ:
2111 1.1 gwr return("Illegal sector size");
2112 1.1 gwr case XY_ERR_SLTA:
2113 1.1 gwr return("Self test A");
2114 1.1 gwr case XY_ERR_SLTB:
2115 1.1 gwr return("Self test B");
2116 1.1 gwr case XY_ERR_SLTC:
2117 1.1 gwr return("Self test C");
2118 1.1 gwr case XY_ERR_SOFT:
2119 1.1 gwr return("Soft ECC error");
2120 1.1 gwr case XY_ERR_SFOK:
2121 1.1 gwr return("Soft ECC error recovered");
2122 1.1 gwr case XY_ERR_IHED:
2123 1.1 gwr return("Illegal head");
2124 1.1 gwr case XY_ERR_DSEQ:
2125 1.1 gwr return("Disk sequencer error");
2126 1.1 gwr case XY_ERR_SEEK:
2127 1.1 gwr return("Seek error");
2128 1.1 gwr default:
2129 1.1 gwr return ("Unknown error");
2130 1.1 gwr }
2131 1.1 gwr }
2132 1.1 gwr
2133 1.1 gwr int
2134 1.1 gwr xyc_entoact(errno)
2135 1.1 gwr
2136 1.1 gwr int errno;
2137 1.1 gwr
2138 1.1 gwr {
2139 1.1 gwr switch (errno) {
2140 1.1 gwr case XY_ERR_FAIL: case XY_ERR_DERR: case XY_ERR_IPEN:
2141 1.1 gwr case XY_ERR_BCFL: case XY_ERR_ICYL: case XY_ERR_ISEC:
2142 1.1 gwr case XY_ERR_UIMP: case XY_ERR_SZER: case XY_ERR_ISSZ:
2143 1.1 gwr case XY_ERR_SLTA: case XY_ERR_SLTB: case XY_ERR_SLTC:
2144 1.1 gwr case XY_ERR_IHED: case XY_ERR_SACK: case XY_ERR_SMAL:
2145 1.1 gwr
2146 1.1 gwr return(XY_ERA_PROG); /* program error ! */
2147 1.1 gwr
2148 1.1 gwr case XY_ERR_TIMO: case XY_ERR_NHDR: case XY_ERR_HARD:
2149 1.1 gwr case XY_ERR_DNRY: case XY_ERR_CHER: case XY_ERR_SEEK:
2150 1.1 gwr case XY_ERR_SOFT:
2151 1.1 gwr
2152 1.1 gwr return(XY_ERA_HARD); /* hard error, retry */
2153 1.1 gwr
2154 1.1 gwr case XY_ERR_DFLT: case XY_ERR_DSEQ:
2155 1.1 gwr
2156 1.1 gwr return(XY_ERA_RSET); /* hard error reset */
2157 1.1 gwr
2158 1.1 gwr case XY_ERR_SRTR: case XY_ERR_SFOK: case XY_ERR_AOK:
2159 1.1 gwr
2160 1.1 gwr return(XY_ERA_SOFT); /* an FYI error */
2161 1.1 gwr
2162 1.1 gwr case XY_ERR_WPRO:
2163 1.1 gwr
2164 1.1 gwr return(XY_ERA_WPRO); /* write protect */
2165 1.1 gwr }
2166 1.1 gwr
2167 1.1 gwr return(XY_ERA_PROG); /* ??? */
2168 1.1 gwr }
2169