mt.c revision 1.33 1 1.33 msaitoh /* $NetBSD: mt.c,v 1.33 2019/11/12 13:17:44 msaitoh Exp $ */
2 1.1 gmcgarry
3 1.1 gmcgarry /*-
4 1.1 gmcgarry * Copyright (c) 1996-2003 The NetBSD Foundation, Inc.
5 1.1 gmcgarry * All rights reserved.
6 1.1 gmcgarry *
7 1.1 gmcgarry * This code is derived from software contributed to The NetBSD Foundation
8 1.1 gmcgarry * by Jason R. Thorpe.
9 1.1 gmcgarry *
10 1.1 gmcgarry * Redistribution and use in source and binary forms, with or without
11 1.1 gmcgarry * modification, are permitted provided that the following conditions
12 1.1 gmcgarry * are met:
13 1.1 gmcgarry * 1. Redistributions of source code must retain the above copyright
14 1.1 gmcgarry * notice, this list of conditions and the following disclaimer.
15 1.1 gmcgarry * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 gmcgarry * notice, this list of conditions and the following disclaimer in the
17 1.1 gmcgarry * documentation and/or other materials provided with the distribution.
18 1.1 gmcgarry *
19 1.1 gmcgarry * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 gmcgarry * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 gmcgarry * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 gmcgarry * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 gmcgarry * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 gmcgarry * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 gmcgarry * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 gmcgarry * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 gmcgarry * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 gmcgarry * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 gmcgarry * POSSIBILITY OF SUCH DAMAGE.
30 1.1 gmcgarry */
31 1.1 gmcgarry
32 1.1 gmcgarry /*
33 1.24 rmind * Copyright (c) 1988 University of Utah.
34 1.1 gmcgarry * Copyright (c) 1982, 1990, 1993
35 1.1 gmcgarry * The Regents of the University of California. All rights reserved.
36 1.1 gmcgarry *
37 1.1 gmcgarry * This code is derived from software contributed to Berkeley by
38 1.1 gmcgarry * the Systems Programming Group of the University of Utah Computer
39 1.1 gmcgarry * Science Department.
40 1.1 gmcgarry *
41 1.1 gmcgarry * Redistribution and use in source and binary forms, with or without
42 1.1 gmcgarry * modification, are permitted provided that the following conditions
43 1.1 gmcgarry * are met:
44 1.1 gmcgarry * 1. Redistributions of source code must retain the above copyright
45 1.1 gmcgarry * notice, this list of conditions and the following disclaimer.
46 1.1 gmcgarry * 2. Redistributions in binary form must reproduce the above copyright
47 1.1 gmcgarry * notice, this list of conditions and the following disclaimer in the
48 1.1 gmcgarry * documentation and/or other materials provided with the distribution.
49 1.2 agc * 3. Neither the name of the University nor the names of its contributors
50 1.2 agc * may be used to endorse or promote products derived from this software
51 1.2 agc * without specific prior written permission.
52 1.2 agc *
53 1.2 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
54 1.2 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
55 1.2 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
56 1.2 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
57 1.2 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
58 1.2 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
59 1.2 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
60 1.2 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
61 1.2 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
62 1.2 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
63 1.2 agc * SUCH DAMAGE.
64 1.2 agc *
65 1.2 agc * from: Utah $Hdr: rd.c 1.44 92/12/26$
66 1.2 agc *
67 1.2 agc * @(#)rd.c 8.2 (Berkeley) 5/19/94
68 1.2 agc */
69 1.2 agc
70 1.2 agc /*
71 1.1 gmcgarry * Magnetic tape driver (HP7974a, HP7978a/b, HP7979a, HP7980a, HP7980xc)
72 1.1 gmcgarry * Original version contributed by Mt. Xinu.
73 1.1 gmcgarry * Modified for 4.4BSD by Mark Davies and Andrew Vignaux, Department of
74 1.1 gmcgarry * Computer Science, Victoria University of Wellington
75 1.1 gmcgarry */
76 1.1 gmcgarry
77 1.1 gmcgarry #include <sys/cdefs.h>
78 1.33 msaitoh __KERNEL_RCSID(0, "$NetBSD: mt.c,v 1.33 2019/11/12 13:17:44 msaitoh Exp $");
79 1.1 gmcgarry
80 1.1 gmcgarry #include <sys/param.h>
81 1.1 gmcgarry #include <sys/systm.h>
82 1.1 gmcgarry #include <sys/callout.h>
83 1.1 gmcgarry #include <sys/buf.h>
84 1.3 yamt #include <sys/bufq.h>
85 1.1 gmcgarry #include <sys/ioctl.h>
86 1.1 gmcgarry #include <sys/mtio.h>
87 1.1 gmcgarry #include <sys/file.h>
88 1.1 gmcgarry #include <sys/proc.h>
89 1.1 gmcgarry #include <sys/tty.h>
90 1.1 gmcgarry #include <sys/kernel.h>
91 1.1 gmcgarry #include <sys/tprintf.h>
92 1.1 gmcgarry #include <sys/device.h>
93 1.1 gmcgarry #include <sys/conf.h>
94 1.1 gmcgarry
95 1.1 gmcgarry #include <dev/gpib/gpibvar.h>
96 1.1 gmcgarry #include <dev/gpib/cs80busvar.h>
97 1.1 gmcgarry
98 1.1 gmcgarry #include <dev/gpib/mtreg.h>
99 1.1 gmcgarry
100 1.31 riastrad #include "ioconf.h"
101 1.31 riastrad
102 1.1 gmcgarry #ifdef DEBUG
103 1.1 gmcgarry int mtdebug = 0;
104 1.1 gmcgarry #define MDB_ANY 0xff
105 1.1 gmcgarry #define MDB_FOLLOW 0x01
106 1.1 gmcgarry #define DPRINTF(mask, str) if (mtdebug & (mask)) printf str
107 1.1 gmcgarry #else
108 1.1 gmcgarry #define DPRINTF(mask, str) /* nothing */
109 1.1 gmcgarry #endif
110 1.1 gmcgarry
111 1.1 gmcgarry struct mt_softc {
112 1.25 chs device_t sc_dev;
113 1.1 gmcgarry
114 1.1 gmcgarry gpib_chipset_tag_t sc_ic;
115 1.1 gmcgarry gpib_handle_t sc_hdl;
116 1.1 gmcgarry
117 1.1 gmcgarry int sc_slave; /* GPIB slave address (0-6) */
118 1.1 gmcgarry short sc_flags; /* see below */
119 1.1 gmcgarry u_char sc_lastdsj; /* place for DSJ in mtreaddsj() */
120 1.1 gmcgarry u_char sc_lastecmd; /* place for End Command in mtreaddsj() */
121 1.1 gmcgarry short sc_recvtimeo; /* count of gpibsend timeouts to prevent hang */
122 1.1 gmcgarry short sc_statindex; /* index for next sc_stat when MTF_STATTIMEO */
123 1.1 gmcgarry struct mt_stat sc_stat;/* status bytes last read from device */
124 1.1 gmcgarry short sc_density; /* current density of tape (mtio.h format) */
125 1.1 gmcgarry short sc_type; /* tape drive model (hardware IDs) */
126 1.1 gmcgarry tpr_t sc_ttyp;
127 1.4 yamt struct bufq_state *sc_tab;/* buf queue */
128 1.1 gmcgarry int sc_active;
129 1.1 gmcgarry struct buf sc_bufstore; /* XXX buffer storage */
130 1.1 gmcgarry
131 1.1 gmcgarry struct callout sc_start_ch;
132 1.1 gmcgarry struct callout sc_intr_ch;
133 1.1 gmcgarry };
134 1.1 gmcgarry
135 1.1 gmcgarry #define MTUNIT(x) (minor(x) & 0x03)
136 1.1 gmcgarry
137 1.8 reinoud #define B_CMD B_DEVPRIVATE /* command buf instead of data */
138 1.1 gmcgarry #define b_cmd b_blkno /* blkno holds cmd when B_CMD */
139 1.1 gmcgarry
140 1.20 cegger int mtmatch(device_t, cfdata_t, void *);
141 1.20 cegger void mtattach(device_t, device_t, void *);
142 1.1 gmcgarry
143 1.25 chs CFATTACH_DECL_NEW(mt, sizeof(struct mt_softc),
144 1.1 gmcgarry mtmatch, mtattach, NULL, NULL);
145 1.1 gmcgarry
146 1.1 gmcgarry int mtlookup(int, int, int);
147 1.1 gmcgarry void mtustart(struct mt_softc *);
148 1.1 gmcgarry int mtreaddsj(struct mt_softc *, int);
149 1.1 gmcgarry int mtcommand(dev_t, int, int);
150 1.1 gmcgarry
151 1.1 gmcgarry void mtintr_callout(void *);
152 1.1 gmcgarry void mtstart_callout(void *);
153 1.1 gmcgarry
154 1.1 gmcgarry void mtcallback(void *, int);
155 1.1 gmcgarry void mtstart(struct mt_softc *);
156 1.1 gmcgarry void mtintr(struct mt_softc *);
157 1.1 gmcgarry
158 1.1 gmcgarry dev_type_open(mtopen);
159 1.1 gmcgarry dev_type_close(mtclose);
160 1.1 gmcgarry dev_type_read(mtread);
161 1.1 gmcgarry dev_type_write(mtwrite);
162 1.1 gmcgarry dev_type_ioctl(mtioctl);
163 1.1 gmcgarry dev_type_strategy(mtstrategy);
164 1.1 gmcgarry
165 1.1 gmcgarry const struct bdevsw mt_bdevsw = {
166 1.26 dholland .d_open = mtopen,
167 1.26 dholland .d_close = mtclose,
168 1.26 dholland .d_strategy = mtstrategy,
169 1.26 dholland .d_ioctl = mtioctl,
170 1.26 dholland .d_dump = nodump,
171 1.26 dholland .d_psize = nosize,
172 1.28 dholland .d_discard = nodiscard,
173 1.26 dholland .d_flag = D_TAPE
174 1.1 gmcgarry };
175 1.1 gmcgarry
176 1.1 gmcgarry const struct cdevsw mt_cdevsw = {
177 1.26 dholland .d_open = mtopen,
178 1.26 dholland .d_close = mtclose,
179 1.26 dholland .d_read = mtread,
180 1.26 dholland .d_write = mtwrite,
181 1.26 dholland .d_ioctl = mtioctl,
182 1.26 dholland .d_stop = nostop,
183 1.26 dholland .d_tty = notty,
184 1.26 dholland .d_poll = nopoll,
185 1.26 dholland .d_mmap = nommap,
186 1.26 dholland .d_kqfilter = nokqfilter,
187 1.29 dholland .d_discard = nodiscard,
188 1.26 dholland .d_flag = D_TAPE
189 1.1 gmcgarry };
190 1.1 gmcgarry
191 1.1 gmcgarry
192 1.1 gmcgarry struct mtinfo {
193 1.1 gmcgarry u_short hwid;
194 1.7 cube const char *desc;
195 1.1 gmcgarry } mtinfo[] = {
196 1.1 gmcgarry { MT7978ID, "7978" },
197 1.1 gmcgarry { MT7979AID, "7979A" },
198 1.1 gmcgarry { MT7980ID, "7980" },
199 1.1 gmcgarry { MT7974AID, "7974A" },
200 1.1 gmcgarry };
201 1.1 gmcgarry int nmtinfo = sizeof(mtinfo) / sizeof(mtinfo[0]);
202 1.1 gmcgarry
203 1.1 gmcgarry
204 1.1 gmcgarry int
205 1.17 dsl mtlookup(int id, int slave, int punit)
206 1.1 gmcgarry {
207 1.1 gmcgarry int i;
208 1.1 gmcgarry
209 1.1 gmcgarry for (i = 0; i < nmtinfo; i++)
210 1.1 gmcgarry if (mtinfo[i].hwid == id)
211 1.1 gmcgarry break;
212 1.1 gmcgarry if (i == nmtinfo)
213 1.1 gmcgarry return (-1);
214 1.1 gmcgarry return (0);
215 1.1 gmcgarry }
216 1.1 gmcgarry
217 1.1 gmcgarry int
218 1.20 cegger mtmatch(device_t parent, cfdata_t match, void *aux)
219 1.1 gmcgarry {
220 1.1 gmcgarry struct cs80bus_attach_args *ca = aux;
221 1.1 gmcgarry
222 1.1 gmcgarry ca->ca_punit = 0;
223 1.1 gmcgarry return (mtlookup(ca->ca_id, ca->ca_slave, ca->ca_punit) == 0);
224 1.1 gmcgarry }
225 1.1 gmcgarry
226 1.1 gmcgarry void
227 1.20 cegger mtattach(device_t parent, device_t self, void *aux)
228 1.1 gmcgarry {
229 1.6 thorpej struct mt_softc *sc = device_private(self);
230 1.1 gmcgarry struct cs80bus_attach_args *ca = aux;
231 1.1 gmcgarry int type;
232 1.1 gmcgarry
233 1.33 msaitoh sc->sc_dev = self;
234 1.1 gmcgarry sc->sc_ic = ca->ca_ic;
235 1.1 gmcgarry sc->sc_slave = ca->ca_slave;
236 1.1 gmcgarry
237 1.1 gmcgarry if ((type = mtlookup(ca->ca_id, ca->ca_slave, ca->ca_punit)) < 0)
238 1.1 gmcgarry return;
239 1.1 gmcgarry
240 1.30 msaitoh aprint_naive("\n");
241 1.30 msaitoh aprint_normal(": %s tape\n", mtinfo[type].desc);
242 1.1 gmcgarry
243 1.1 gmcgarry sc->sc_type = type;
244 1.1 gmcgarry sc->sc_flags = MTF_EXISTS;
245 1.1 gmcgarry
246 1.4 yamt bufq_alloc(&sc->sc_tab, "fcfs", 0);
247 1.10 ad callout_init(&sc->sc_start_ch, 0);
248 1.10 ad callout_init(&sc->sc_intr_ch, 0);
249 1.1 gmcgarry
250 1.1 gmcgarry if (gpibregister(sc->sc_ic, sc->sc_slave, mtcallback, sc,
251 1.1 gmcgarry &sc->sc_hdl)) {
252 1.25 chs aprint_error_dev(sc->sc_dev, "can't register callback\n");
253 1.1 gmcgarry return;
254 1.1 gmcgarry }
255 1.1 gmcgarry }
256 1.1 gmcgarry
257 1.1 gmcgarry /*
258 1.1 gmcgarry * Perform a read of "Device Status Jump" register and update the
259 1.1 gmcgarry * status if necessary. If status is read, the given "ecmd" is also
260 1.1 gmcgarry * performed, unless "ecmd" is zero. Returns DSJ value, -1 on failure
261 1.1 gmcgarry * and -2 on "temporary" failure.
262 1.1 gmcgarry */
263 1.1 gmcgarry int
264 1.17 dsl mtreaddsj(struct mt_softc *sc, int ecmd)
265 1.1 gmcgarry {
266 1.1 gmcgarry int retval;
267 1.1 gmcgarry
268 1.1 gmcgarry if (sc->sc_flags & MTF_STATTIMEO)
269 1.1 gmcgarry goto getstats;
270 1.1 gmcgarry retval = gpibrecv(sc->sc_ic,
271 1.1 gmcgarry (sc->sc_flags & MTF_DSJTIMEO) ? -1 : sc->sc_slave,
272 1.1 gmcgarry MTT_DSJ, &(sc->sc_lastdsj), 1);
273 1.1 gmcgarry sc->sc_flags &= ~MTF_DSJTIMEO;
274 1.1 gmcgarry if (retval != 1) {
275 1.1 gmcgarry DPRINTF(MDB_ANY, ("%s can't gpibrecv DSJ",
276 1.25 chs device_xname(sc->sc_dev)));
277 1.1 gmcgarry if (sc->sc_recvtimeo == 0)
278 1.1 gmcgarry sc->sc_recvtimeo = hz;
279 1.1 gmcgarry if (--sc->sc_recvtimeo == 0)
280 1.1 gmcgarry return (-1);
281 1.1 gmcgarry if (retval == 0)
282 1.1 gmcgarry sc->sc_flags |= MTF_DSJTIMEO;
283 1.1 gmcgarry return (-2);
284 1.1 gmcgarry }
285 1.1 gmcgarry sc->sc_recvtimeo = 0;
286 1.1 gmcgarry sc->sc_statindex = 0;
287 1.25 chs DPRINTF(MDB_ANY, ("%s readdsj: 0x%x", device_xname(sc->sc_dev),
288 1.1 gmcgarry sc->sc_lastdsj));
289 1.1 gmcgarry sc->sc_lastecmd = ecmd;
290 1.1 gmcgarry switch (sc->sc_lastdsj) {
291 1.1 gmcgarry case 0:
292 1.1 gmcgarry if (ecmd & MTE_DSJ_FORCE)
293 1.1 gmcgarry break;
294 1.1 gmcgarry return (0);
295 1.1 gmcgarry
296 1.1 gmcgarry case 2:
297 1.1 gmcgarry sc->sc_lastecmd = MTE_COMPLETE;
298 1.1 gmcgarry case 1:
299 1.1 gmcgarry break;
300 1.1 gmcgarry
301 1.1 gmcgarry default:
302 1.25 chs printf("%s readdsj: DSJ 0x%x\n", device_xname(sc->sc_dev),
303 1.1 gmcgarry sc->sc_lastdsj);
304 1.1 gmcgarry return (-1);
305 1.1 gmcgarry }
306 1.1 gmcgarry
307 1.1 gmcgarry getstats:
308 1.1 gmcgarry retval = gpibrecv(sc->sc_ic,
309 1.1 gmcgarry (sc->sc_flags & MTF_STATCONT) ? -1 : sc->sc_slave, MTT_STAT,
310 1.1 gmcgarry ((char *)&(sc->sc_stat)) + sc->sc_statindex,
311 1.1 gmcgarry sizeof(sc->sc_stat) - sc->sc_statindex);
312 1.1 gmcgarry sc->sc_flags &= ~(MTF_STATTIMEO | MTF_STATCONT);
313 1.1 gmcgarry if (retval != sizeof(sc->sc_stat) - sc->sc_statindex) {
314 1.1 gmcgarry if (sc->sc_recvtimeo == 0)
315 1.1 gmcgarry sc->sc_recvtimeo = hz;
316 1.1 gmcgarry if (--sc->sc_recvtimeo != 0) {
317 1.1 gmcgarry if (retval >= 0) {
318 1.1 gmcgarry sc->sc_statindex += retval;
319 1.1 gmcgarry sc->sc_flags |= MTF_STATCONT;
320 1.1 gmcgarry }
321 1.1 gmcgarry sc->sc_flags |= MTF_STATTIMEO;
322 1.1 gmcgarry return (-2);
323 1.1 gmcgarry }
324 1.30 msaitoh printf("%s readdsj: can't read status",
325 1.30 msaitoh device_xname(sc->sc_dev));
326 1.1 gmcgarry return (-1);
327 1.1 gmcgarry }
328 1.1 gmcgarry sc->sc_recvtimeo = 0;
329 1.1 gmcgarry sc->sc_statindex = 0;
330 1.1 gmcgarry DPRINTF(MDB_ANY, ("%s readdsj: status is %x %x %x %x %x %x",
331 1.25 chs device_xname(sc->sc_dev),
332 1.1 gmcgarry sc->sc_stat1, sc->sc_stat2, sc->sc_stat3,
333 1.1 gmcgarry sc->sc_stat4, sc->sc_stat5, sc->sc_stat6));
334 1.1 gmcgarry if (sc->sc_lastecmd)
335 1.1 gmcgarry (void) gpibsend(sc->sc_ic, sc->sc_slave,
336 1.1 gmcgarry MTL_ECMD, &(sc->sc_lastecmd), 1);
337 1.1 gmcgarry return ((int) sc->sc_lastdsj);
338 1.1 gmcgarry }
339 1.1 gmcgarry
340 1.1 gmcgarry int
341 1.15 cegger mtopen(dev_t dev, int flag, int mode, struct lwp *l)
342 1.1 gmcgarry {
343 1.1 gmcgarry struct mt_softc *sc;
344 1.1 gmcgarry int req_den;
345 1.1 gmcgarry int error;
346 1.1 gmcgarry
347 1.15 cegger sc = device_lookup_private(&mt_cd, MTUNIT(dev));
348 1.1 gmcgarry if (sc == NULL || (sc->sc_flags & MTF_EXISTS) == 0)
349 1.1 gmcgarry return (ENXIO);
350 1.1 gmcgarry
351 1.1 gmcgarry if (sc->sc_flags & MTF_OPEN)
352 1.1 gmcgarry return (EBUSY);
353 1.1 gmcgarry
354 1.25 chs DPRINTF(MDB_ANY, ("%s open: flags 0x%x", device_xname(sc->sc_dev),
355 1.1 gmcgarry sc->sc_flags));
356 1.1 gmcgarry
357 1.1 gmcgarry sc->sc_flags |= MTF_OPEN;
358 1.7 cube sc->sc_ttyp = tprintf_open(l->l_proc);
359 1.1 gmcgarry if ((sc->sc_flags & MTF_ALIVE) == 0) {
360 1.1 gmcgarry error = mtcommand(dev, MTRESET, 0);
361 1.1 gmcgarry if (error != 0 || (sc->sc_flags & MTF_ALIVE) == 0)
362 1.1 gmcgarry goto errout;
363 1.1 gmcgarry if ((sc->sc_stat1 & (SR1_BOT | SR1_ONLINE)) == SR1_ONLINE)
364 1.1 gmcgarry (void) mtcommand(dev, MTREW, 0);
365 1.1 gmcgarry }
366 1.1 gmcgarry for (;;) {
367 1.1 gmcgarry if ((error = mtcommand(dev, MTNOP, 0)) != 0)
368 1.1 gmcgarry goto errout;
369 1.1 gmcgarry if (!(sc->sc_flags & MTF_REW))
370 1.1 gmcgarry break;
371 1.23 pooka error = kpause("mt", true, hz, NULL);
372 1.23 pooka if (error != 0 && error != EWOULDBLOCK) {
373 1.1 gmcgarry error = EINTR;
374 1.1 gmcgarry goto errout;
375 1.1 gmcgarry }
376 1.1 gmcgarry }
377 1.1 gmcgarry if ((flag & FWRITE) && (sc->sc_stat1 & SR1_RO)) {
378 1.1 gmcgarry error = EROFS;
379 1.1 gmcgarry goto errout;
380 1.1 gmcgarry }
381 1.1 gmcgarry if (!(sc->sc_stat1 & SR1_ONLINE)) {
382 1.25 chs uprintf("%s: not online\n", device_xname(sc->sc_dev));
383 1.1 gmcgarry error = EIO;
384 1.1 gmcgarry goto errout;
385 1.1 gmcgarry }
386 1.1 gmcgarry /*
387 1.1 gmcgarry * Select density:
388 1.1 gmcgarry * - find out what density the drive is set to
389 1.1 gmcgarry * (i.e. the density of the current tape)
390 1.1 gmcgarry * - if we are going to write
391 1.1 gmcgarry * - if we're not at the beginning of the tape
392 1.1 gmcgarry * - complain if we want to change densities
393 1.1 gmcgarry * - otherwise, select the mtcommand to set the density
394 1.1 gmcgarry *
395 1.1 gmcgarry * If the drive doesn't support it then don't change the recorded
396 1.1 gmcgarry * density.
397 1.1 gmcgarry *
398 1.1 gmcgarry * The original MOREbsd code had these additional conditions
399 1.1 gmcgarry * for the mid-tape change
400 1.1 gmcgarry *
401 1.1 gmcgarry * req_den != T_BADBPI &&
402 1.1 gmcgarry * sc->sc_density != T_6250BPI
403 1.1 gmcgarry *
404 1.1 gmcgarry * which suggests that it would be possible to write multiple
405 1.1 gmcgarry * densities if req_den == T_BAD_BPI or the current tape
406 1.1 gmcgarry * density was 6250. Testing of our 7980 suggests that the
407 1.1 gmcgarry * device cannot change densities mid-tape.
408 1.1 gmcgarry *
409 1.1 gmcgarry * ajv (at) comp.vuw.ac.nz
410 1.1 gmcgarry */
411 1.1 gmcgarry sc->sc_density = (sc->sc_stat2 & SR2_6250) ? T_6250BPI : (
412 1.1 gmcgarry (sc->sc_stat3 & SR3_1600) ? T_1600BPI : (
413 1.1 gmcgarry (sc->sc_stat3 & SR3_800) ? T_800BPI : -1));
414 1.1 gmcgarry req_den = (dev & T_DENSEL);
415 1.1 gmcgarry
416 1.1 gmcgarry if (flag & FWRITE) {
417 1.1 gmcgarry if (!(sc->sc_stat1 & SR1_BOT)) {
418 1.1 gmcgarry if (sc->sc_density != req_den) {
419 1.1 gmcgarry uprintf("%s: can't change density mid-tape\n",
420 1.25 chs device_xname(sc->sc_dev));
421 1.1 gmcgarry error = EIO;
422 1.1 gmcgarry goto errout;
423 1.1 gmcgarry }
424 1.1 gmcgarry }
425 1.1 gmcgarry else {
426 1.1 gmcgarry int mtset_density =
427 1.1 gmcgarry (req_den == T_800BPI ? MTSET800BPI : (
428 1.1 gmcgarry req_den == T_1600BPI ? MTSET1600BPI : (
429 1.1 gmcgarry req_den == T_6250BPI ? MTSET6250BPI : (
430 1.1 gmcgarry sc->sc_type == MT7980ID
431 1.1 gmcgarry ? MTSET6250DC
432 1.1 gmcgarry : MTSET6250BPI))));
433 1.1 gmcgarry if (mtcommand(dev, mtset_density, 0) == 0)
434 1.1 gmcgarry sc->sc_density = req_den;
435 1.1 gmcgarry }
436 1.1 gmcgarry }
437 1.1 gmcgarry return (0);
438 1.1 gmcgarry errout:
439 1.1 gmcgarry sc->sc_flags &= ~MTF_OPEN;
440 1.1 gmcgarry return (error);
441 1.1 gmcgarry }
442 1.1 gmcgarry
443 1.1 gmcgarry int
444 1.15 cegger mtclose(dev_t dev, int flag, int fmt, struct lwp *l)
445 1.1 gmcgarry {
446 1.1 gmcgarry struct mt_softc *sc;
447 1.1 gmcgarry
448 1.15 cegger sc = device_lookup_private(&mt_cd, MTUNIT(dev));
449 1.1 gmcgarry if (sc == NULL)
450 1.1 gmcgarry return (ENXIO);
451 1.1 gmcgarry
452 1.1 gmcgarry if (sc->sc_flags & MTF_WRT) {
453 1.1 gmcgarry (void) mtcommand(dev, MTWEOF, 2);
454 1.1 gmcgarry (void) mtcommand(dev, MTBSF, 0);
455 1.1 gmcgarry }
456 1.1 gmcgarry if ((minor(dev) & T_NOREWIND) == 0)
457 1.1 gmcgarry (void) mtcommand(dev, MTREW, 0);
458 1.1 gmcgarry sc->sc_flags &= ~MTF_OPEN;
459 1.1 gmcgarry tprintf_close(sc->sc_ttyp);
460 1.1 gmcgarry return (0);
461 1.1 gmcgarry }
462 1.1 gmcgarry
463 1.1 gmcgarry int
464 1.15 cegger mtcommand(dev_t dev, int cmd, int cnt)
465 1.1 gmcgarry {
466 1.1 gmcgarry struct mt_softc *sc;
467 1.1 gmcgarry struct buf *bp;
468 1.1 gmcgarry int error = 0;
469 1.1 gmcgarry
470 1.15 cegger sc = device_lookup_private(&mt_cd, MTUNIT(dev));
471 1.1 gmcgarry bp = &sc->sc_bufstore;
472 1.1 gmcgarry
473 1.12 ad if (bp->b_cflags & BC_BUSY)
474 1.1 gmcgarry return (EBUSY);
475 1.1 gmcgarry
476 1.1 gmcgarry bp->b_cmd = cmd;
477 1.1 gmcgarry bp->b_dev = dev;
478 1.12 ad bp->b_objlock = &buffer_lock;
479 1.1 gmcgarry do {
480 1.12 ad bp->b_cflags = BC_BUSY;
481 1.12 ad bp->b_flags = B_CMD;
482 1.12 ad bp->b_oflags = 0;
483 1.1 gmcgarry mtstrategy(bp);
484 1.1 gmcgarry biowait(bp);
485 1.11 ad if (bp->b_error != 0) {
486 1.1 gmcgarry error = (int) (unsigned) bp->b_error;
487 1.1 gmcgarry break;
488 1.1 gmcgarry }
489 1.1 gmcgarry } while (--cnt > 0);
490 1.1 gmcgarry #if 0
491 1.12 ad bp->b_cflags = 0 /*&= ~BC_BUSY*/;
492 1.1 gmcgarry #else
493 1.12 ad bp->b_cflags &= ~BC_BUSY;
494 1.1 gmcgarry #endif
495 1.1 gmcgarry return (error);
496 1.1 gmcgarry }
497 1.1 gmcgarry
498 1.1 gmcgarry /*
499 1.1 gmcgarry * Only thing to check here is for legal record lengths (writes only).
500 1.1 gmcgarry */
501 1.1 gmcgarry void
502 1.15 cegger mtstrategy(struct buf *bp)
503 1.1 gmcgarry {
504 1.1 gmcgarry struct mt_softc *sc;
505 1.1 gmcgarry int s;
506 1.1 gmcgarry
507 1.15 cegger sc = device_lookup_private(&mt_cd, MTUNIT(bp->b_dev));
508 1.1 gmcgarry
509 1.25 chs DPRINTF(MDB_ANY, ("%s strategy", device_xname(sc->sc_dev)));
510 1.1 gmcgarry
511 1.1 gmcgarry if ((bp->b_flags & (B_CMD | B_READ)) == 0) {
512 1.1 gmcgarry #define WRITE_BITS_IGNORED 8
513 1.1 gmcgarry #if 0
514 1.1 gmcgarry if (bp->b_bcount & ((1 << WRITE_BITS_IGNORED) - 1)) {
515 1.1 gmcgarry tprintf(sc->sc_ttyp,
516 1.30 msaitoh "%s: write record must be multiple of %d\n",
517 1.30 msaitoh device_xname(sc->sc_dev), 1 << WRITE_BITS_IGNORED);
518 1.1 gmcgarry goto error;
519 1.1 gmcgarry }
520 1.1 gmcgarry #endif
521 1.1 gmcgarry s = 16 * 1024;
522 1.1 gmcgarry if (sc->sc_stat2 & SR2_LONGREC) {
523 1.1 gmcgarry switch (sc->sc_density) {
524 1.1 gmcgarry case T_1600BPI:
525 1.1 gmcgarry s = 32 * 1024;
526 1.1 gmcgarry break;
527 1.1 gmcgarry
528 1.1 gmcgarry case T_6250BPI:
529 1.1 gmcgarry case T_BADBPI:
530 1.1 gmcgarry s = 60 * 1024;
531 1.1 gmcgarry break;
532 1.1 gmcgarry }
533 1.1 gmcgarry }
534 1.1 gmcgarry if (bp->b_bcount > s) {
535 1.1 gmcgarry tprintf(sc->sc_ttyp,
536 1.7 cube "%s: write record (%d) too big: limit (%d)\n",
537 1.25 chs device_xname(sc->sc_dev), bp->b_bcount, s);
538 1.1 gmcgarry #if 0 /* XXX see above */
539 1.1 gmcgarry error:
540 1.1 gmcgarry #endif
541 1.1 gmcgarry bp->b_error = EIO;
542 1.1 gmcgarry biodone(bp);
543 1.1 gmcgarry return;
544 1.1 gmcgarry }
545 1.1 gmcgarry }
546 1.1 gmcgarry s = splbio();
547 1.16 yamt bufq_put(sc->sc_tab, bp);
548 1.1 gmcgarry if (sc->sc_active == 0) {
549 1.1 gmcgarry sc->sc_active = 1;
550 1.1 gmcgarry mtustart(sc);
551 1.1 gmcgarry }
552 1.1 gmcgarry splx(s);
553 1.1 gmcgarry }
554 1.1 gmcgarry
555 1.1 gmcgarry void
556 1.17 dsl mtustart(struct mt_softc *sc)
557 1.1 gmcgarry {
558 1.1 gmcgarry
559 1.25 chs DPRINTF(MDB_ANY, ("%s ustart", device_xname(sc->sc_dev)));
560 1.1 gmcgarry if (gpibrequest(sc->sc_ic, sc->sc_hdl))
561 1.1 gmcgarry mtstart(sc);
562 1.1 gmcgarry }
563 1.1 gmcgarry
564 1.1 gmcgarry void
565 1.17 dsl mtcallback(void *v, int action)
566 1.1 gmcgarry {
567 1.1 gmcgarry struct mt_softc *sc = v;
568 1.1 gmcgarry
569 1.1 gmcgarry DPRINTF(MDB_FOLLOW, ("mtcallback: v=%p, action=%d\n", v, action));
570 1.1 gmcgarry
571 1.1 gmcgarry switch (action) {
572 1.1 gmcgarry case GPIBCBF_START:
573 1.1 gmcgarry mtstart(sc);
574 1.1 gmcgarry break;
575 1.1 gmcgarry case GPIBCBF_INTR:
576 1.1 gmcgarry mtintr(sc);
577 1.1 gmcgarry break;
578 1.1 gmcgarry #ifdef DEBUG
579 1.1 gmcgarry default:
580 1.1 gmcgarry printf("mtcallback: unknown action %d\n", action);
581 1.1 gmcgarry break;
582 1.1 gmcgarry #endif
583 1.1 gmcgarry }
584 1.1 gmcgarry }
585 1.1 gmcgarry
586 1.1 gmcgarry void
587 1.17 dsl mtintr_callout(void *arg)
588 1.1 gmcgarry {
589 1.1 gmcgarry struct mt_softc *sc = arg;
590 1.1 gmcgarry int s = splbio();
591 1.1 gmcgarry
592 1.1 gmcgarry gpibppclear(sc->sc_ic);
593 1.1 gmcgarry mtintr(sc);
594 1.1 gmcgarry splx(s);
595 1.1 gmcgarry }
596 1.1 gmcgarry
597 1.1 gmcgarry void
598 1.17 dsl mtstart_callout(void *arg)
599 1.1 gmcgarry {
600 1.1 gmcgarry int s = splbio();
601 1.1 gmcgarry
602 1.1 gmcgarry mtstart((struct mt_softc *)arg);
603 1.1 gmcgarry splx(s);
604 1.1 gmcgarry }
605 1.1 gmcgarry
606 1.1 gmcgarry void
607 1.17 dsl mtstart(struct mt_softc *sc)
608 1.1 gmcgarry {
609 1.1 gmcgarry struct buf *bp;
610 1.1 gmcgarry short cmdcount = 1;
611 1.1 gmcgarry u_char cmdbuf[2];
612 1.1 gmcgarry
613 1.25 chs DPRINTF(MDB_ANY, ("%s start", device_xname(sc->sc_dev)));
614 1.1 gmcgarry sc->sc_flags &= ~MTF_WRT;
615 1.16 yamt bp = bufq_peek(sc->sc_tab);
616 1.1 gmcgarry if ((sc->sc_flags & MTF_ALIVE) == 0 &&
617 1.1 gmcgarry ((bp->b_flags & B_CMD) == 0 || bp->b_cmd != MTRESET))
618 1.1 gmcgarry goto fatalerror;
619 1.1 gmcgarry
620 1.1 gmcgarry if (sc->sc_flags & MTF_REW) {
621 1.1 gmcgarry if (!gpibpptest(sc->sc_ic, sc->sc_slave))
622 1.1 gmcgarry goto stillrew;
623 1.1 gmcgarry switch (mtreaddsj(sc, MTE_DSJ_FORCE|MTE_COMPLETE|MTE_IDLE)) {
624 1.1 gmcgarry case 0:
625 1.1 gmcgarry case 1:
626 1.1 gmcgarry stillrew:
627 1.1 gmcgarry if ((sc->sc_stat1 & SR1_BOT) ||
628 1.1 gmcgarry !(sc->sc_stat1 & SR1_ONLINE)) {
629 1.1 gmcgarry sc->sc_flags &= ~MTF_REW;
630 1.1 gmcgarry break;
631 1.1 gmcgarry }
632 1.32 kamil /* FALLTHROUGH */
633 1.1 gmcgarry case -2:
634 1.1 gmcgarry /*
635 1.1 gmcgarry * -2 means "timeout" reading DSJ, which is probably
636 1.1 gmcgarry * temporary. This is considered OK when doing a NOP,
637 1.1 gmcgarry * but not otherwise.
638 1.1 gmcgarry */
639 1.1 gmcgarry if (sc->sc_flags & (MTF_DSJTIMEO | MTF_STATTIMEO)) {
640 1.1 gmcgarry callout_reset(&sc->sc_start_ch, hz >> 5,
641 1.1 gmcgarry mtstart_callout, sc);
642 1.1 gmcgarry return;
643 1.1 gmcgarry }
644 1.32 kamil /* FALLTHROUGH */
645 1.1 gmcgarry case 2:
646 1.1 gmcgarry if (bp->b_cmd != MTNOP || !(bp->b_flags & B_CMD)) {
647 1.1 gmcgarry bp->b_error = EBUSY;
648 1.11 ad goto done;
649 1.1 gmcgarry }
650 1.1 gmcgarry goto done;
651 1.1 gmcgarry
652 1.1 gmcgarry default:
653 1.1 gmcgarry goto fatalerror;
654 1.1 gmcgarry }
655 1.1 gmcgarry }
656 1.1 gmcgarry if (bp->b_flags & B_CMD) {
657 1.1 gmcgarry if (sc->sc_flags & MTF_PASTEOT) {
658 1.1 gmcgarry switch(bp->b_cmd) {
659 1.1 gmcgarry case MTFSF:
660 1.1 gmcgarry case MTWEOF:
661 1.1 gmcgarry case MTFSR:
662 1.1 gmcgarry bp->b_error = ENOSPC;
663 1.11 ad goto done;
664 1.1 gmcgarry
665 1.1 gmcgarry case MTBSF:
666 1.1 gmcgarry case MTOFFL:
667 1.1 gmcgarry case MTBSR:
668 1.1 gmcgarry case MTREW:
669 1.1 gmcgarry sc->sc_flags &= ~(MTF_PASTEOT | MTF_ATEOT);
670 1.1 gmcgarry break;
671 1.1 gmcgarry }
672 1.1 gmcgarry }
673 1.1 gmcgarry switch(bp->b_cmd) {
674 1.1 gmcgarry case MTFSF:
675 1.1 gmcgarry if (sc->sc_flags & MTF_HITEOF)
676 1.1 gmcgarry goto done;
677 1.1 gmcgarry cmdbuf[0] = MTTC_FSF;
678 1.1 gmcgarry break;
679 1.1 gmcgarry
680 1.1 gmcgarry case MTBSF:
681 1.1 gmcgarry if (sc->sc_flags & MTF_HITBOF)
682 1.1 gmcgarry goto done;
683 1.1 gmcgarry cmdbuf[0] = MTTC_BSF;
684 1.1 gmcgarry break;
685 1.1 gmcgarry
686 1.1 gmcgarry case MTOFFL:
687 1.1 gmcgarry sc->sc_flags |= MTF_REW;
688 1.1 gmcgarry cmdbuf[0] = MTTC_REWOFF;
689 1.1 gmcgarry break;
690 1.1 gmcgarry
691 1.1 gmcgarry case MTWEOF:
692 1.1 gmcgarry cmdbuf[0] = MTTC_WFM;
693 1.1 gmcgarry break;
694 1.1 gmcgarry
695 1.1 gmcgarry case MTBSR:
696 1.1 gmcgarry cmdbuf[0] = MTTC_BSR;
697 1.1 gmcgarry break;
698 1.1 gmcgarry
699 1.1 gmcgarry case MTFSR:
700 1.1 gmcgarry cmdbuf[0] = MTTC_FSR;
701 1.1 gmcgarry break;
702 1.1 gmcgarry
703 1.1 gmcgarry case MTREW:
704 1.1 gmcgarry sc->sc_flags |= MTF_REW;
705 1.1 gmcgarry cmdbuf[0] = MTTC_REW;
706 1.1 gmcgarry break;
707 1.1 gmcgarry
708 1.1 gmcgarry case MTNOP:
709 1.1 gmcgarry /*
710 1.1 gmcgarry * NOP is supposed to set status bits.
711 1.1 gmcgarry * Force readdsj to do it.
712 1.1 gmcgarry */
713 1.1 gmcgarry switch (mtreaddsj(sc,
714 1.1 gmcgarry MTE_DSJ_FORCE | MTE_COMPLETE | MTE_IDLE)) {
715 1.1 gmcgarry default:
716 1.1 gmcgarry goto done;
717 1.1 gmcgarry
718 1.1 gmcgarry case -1:
719 1.1 gmcgarry /*
720 1.1 gmcgarry * If this fails, perform a device clear
721 1.1 gmcgarry * to fix any protocol problems and (most
722 1.1 gmcgarry * likely) get the status.
723 1.1 gmcgarry */
724 1.1 gmcgarry bp->b_cmd = MTRESET;
725 1.1 gmcgarry break;
726 1.1 gmcgarry
727 1.1 gmcgarry case -2:
728 1.1 gmcgarry callout_reset(&sc->sc_start_ch, hz >> 5,
729 1.1 gmcgarry mtstart_callout, sc);
730 1.1 gmcgarry return;
731 1.1 gmcgarry }
732 1.1 gmcgarry
733 1.1 gmcgarry case MTRESET:
734 1.1 gmcgarry /*
735 1.1 gmcgarry * 1) selected device clear (send with "-2" secondary)
736 1.1 gmcgarry * 2) set timeout, then wait for "service request"
737 1.1 gmcgarry * 3) interrupt will read DSJ (and END COMPLETE-IDLE)
738 1.1 gmcgarry */
739 1.1 gmcgarry if (gpibsend(sc->sc_ic, sc->sc_slave, -2, NULL, 0)){
740 1.25 chs aprint_error_dev(sc->sc_dev, "can't reset");
741 1.1 gmcgarry goto fatalerror;
742 1.1 gmcgarry }
743 1.1 gmcgarry callout_reset(&sc->sc_intr_ch, 4*hz, mtintr_callout,
744 1.1 gmcgarry sc);
745 1.1 gmcgarry gpibawait(sc->sc_ic);
746 1.1 gmcgarry return;
747 1.1 gmcgarry
748 1.1 gmcgarry case MTSET800BPI:
749 1.1 gmcgarry cmdbuf[0] = MTTC_800;
750 1.1 gmcgarry break;
751 1.1 gmcgarry
752 1.1 gmcgarry case MTSET1600BPI:
753 1.1 gmcgarry cmdbuf[0] = MTTC_1600;
754 1.1 gmcgarry break;
755 1.1 gmcgarry
756 1.1 gmcgarry case MTSET6250BPI:
757 1.1 gmcgarry cmdbuf[0] = MTTC_6250;
758 1.1 gmcgarry break;
759 1.1 gmcgarry
760 1.1 gmcgarry case MTSET6250DC:
761 1.1 gmcgarry cmdbuf[0] = MTTC_DC6250;
762 1.1 gmcgarry break;
763 1.1 gmcgarry }
764 1.1 gmcgarry } else {
765 1.1 gmcgarry if (sc->sc_flags & MTF_PASTEOT) {
766 1.1 gmcgarry bp->b_error = ENOSPC;
767 1.11 ad goto done;
768 1.1 gmcgarry }
769 1.1 gmcgarry if (bp->b_flags & B_READ) {
770 1.1 gmcgarry sc->sc_flags |= MTF_IO;
771 1.1 gmcgarry cmdbuf[0] = MTTC_READ;
772 1.1 gmcgarry } else {
773 1.1 gmcgarry sc->sc_flags |= MTF_WRT | MTF_IO;
774 1.1 gmcgarry cmdbuf[0] = MTTC_WRITE;
775 1.1 gmcgarry cmdbuf[1] = (bp->b_bcount +((1 << WRITE_BITS_IGNORED) - 1)) >> WRITE_BITS_IGNORED;
776 1.1 gmcgarry cmdcount = 2;
777 1.1 gmcgarry }
778 1.1 gmcgarry }
779 1.1 gmcgarry if (gpibsend(sc->sc_ic, sc->sc_slave, MTL_TCMD, cmdbuf, cmdcount)
780 1.1 gmcgarry == cmdcount) {
781 1.1 gmcgarry if (sc->sc_flags & MTF_REW)
782 1.1 gmcgarry goto done;
783 1.1 gmcgarry gpibawait(sc->sc_ic);
784 1.1 gmcgarry return;
785 1.1 gmcgarry }
786 1.1 gmcgarry fatalerror:
787 1.1 gmcgarry /*
788 1.1 gmcgarry * If anything fails, the drive is probably hosed, so mark it not
789 1.1 gmcgarry * "ALIVE" (but it EXISTS and is OPEN or we wouldn't be here, and
790 1.1 gmcgarry * if, last we heard, it was REWinding, remember that).
791 1.1 gmcgarry */
792 1.1 gmcgarry sc->sc_flags &= MTF_EXISTS | MTF_OPEN | MTF_REW;
793 1.1 gmcgarry bp->b_error = EIO;
794 1.1 gmcgarry done:
795 1.1 gmcgarry sc->sc_flags &= ~(MTF_HITEOF | MTF_HITBOF);
796 1.16 yamt (void)bufq_get(sc->sc_tab);
797 1.1 gmcgarry biodone(bp);
798 1.1 gmcgarry gpibrelease(sc->sc_ic, sc->sc_hdl);
799 1.16 yamt if ((bp = bufq_peek(sc->sc_tab)) == NULL)
800 1.1 gmcgarry sc->sc_active = 0;
801 1.1 gmcgarry else
802 1.1 gmcgarry mtustart(sc);
803 1.1 gmcgarry }
804 1.1 gmcgarry
805 1.1 gmcgarry void
806 1.17 dsl mtintr(struct mt_softc *sc)
807 1.1 gmcgarry {
808 1.1 gmcgarry struct buf *bp;
809 1.1 gmcgarry int slave, dir, i;
810 1.1 gmcgarry u_char cmdbuf[4];
811 1.1 gmcgarry
812 1.1 gmcgarry slave = sc->sc_slave;
813 1.1 gmcgarry
814 1.16 yamt bp = bufq_peek(sc->sc_tab);
815 1.1 gmcgarry if (bp == NULL) {
816 1.25 chs printf("%s intr: bp == NULL", device_xname(sc->sc_dev));
817 1.1 gmcgarry return;
818 1.1 gmcgarry }
819 1.1 gmcgarry
820 1.25 chs DPRINTF(MDB_ANY, ("%s intr", device_xname(sc->sc_dev)));
821 1.1 gmcgarry
822 1.1 gmcgarry /*
823 1.1 gmcgarry * Some operation completed. Read status bytes and report errors.
824 1.1 gmcgarry * Clear EOF flags here `cause they're set once on specific conditions
825 1.1 gmcgarry * below when a command succeeds.
826 1.1 gmcgarry * A DSJ of 2 always means keep waiting. If the command was READ
827 1.1 gmcgarry * (and we're in data DMA phase) stop data transfer first.
828 1.1 gmcgarry */
829 1.1 gmcgarry sc->sc_flags &= ~(MTF_HITEOF | MTF_HITBOF);
830 1.1 gmcgarry if ((bp->b_flags & (B_CMD|B_READ)) == B_READ &&
831 1.1 gmcgarry !(sc->sc_flags & (MTF_IO | MTF_STATTIMEO | MTF_DSJTIMEO))){
832 1.1 gmcgarry cmdbuf[0] = MTE_STOP;
833 1.1 gmcgarry (void) gpibsend(sc->sc_ic, slave, MTL_ECMD,cmdbuf,1);
834 1.1 gmcgarry }
835 1.1 gmcgarry switch (mtreaddsj(sc, 0)) {
836 1.1 gmcgarry case 0:
837 1.1 gmcgarry break;
838 1.1 gmcgarry
839 1.1 gmcgarry case 1:
840 1.1 gmcgarry /*
841 1.1 gmcgarry * If we're in the middle of a READ/WRITE and have yet to
842 1.1 gmcgarry * start the data transfer, a DSJ of one should terminate it.
843 1.1 gmcgarry */
844 1.1 gmcgarry sc->sc_flags &= ~MTF_IO;
845 1.1 gmcgarry break;
846 1.1 gmcgarry
847 1.1 gmcgarry case 2:
848 1.1 gmcgarry (void) gpibawait(sc->sc_ic);
849 1.1 gmcgarry return;
850 1.1 gmcgarry
851 1.1 gmcgarry case -2:
852 1.1 gmcgarry /*
853 1.1 gmcgarry * -2 means that the drive failed to respond quickly enough
854 1.1 gmcgarry * to the request for DSJ. It's probably just "busy" figuring
855 1.1 gmcgarry * it out and will know in a little bit...
856 1.1 gmcgarry */
857 1.1 gmcgarry callout_reset(&sc->sc_intr_ch, hz >> 5, mtintr_callout, sc);
858 1.1 gmcgarry return;
859 1.1 gmcgarry
860 1.1 gmcgarry default:
861 1.30 msaitoh printf("%s intr: can't get drive stat",
862 1.30 msaitoh device_xname(sc->sc_dev));
863 1.1 gmcgarry goto error;
864 1.1 gmcgarry }
865 1.1 gmcgarry if (sc->sc_stat1 & (SR1_ERR | SR1_REJECT)) {
866 1.1 gmcgarry i = sc->sc_stat4 & SR4_ERCLMASK;
867 1.1 gmcgarry printf("%s: %s error, retry %d, SR2/3 %x/%x, code %d",
868 1.25 chs device_xname(sc->sc_dev), i == SR4_DEVICE ? "device" :
869 1.1 gmcgarry (i == SR4_PROTOCOL ? "protocol" :
870 1.1 gmcgarry (i == SR4_SELFTEST ? "selftest" : "unknown")),
871 1.1 gmcgarry sc->sc_stat4 & SR4_RETRYMASK, sc->sc_stat2,
872 1.1 gmcgarry sc->sc_stat3, sc->sc_stat5);
873 1.1 gmcgarry
874 1.1 gmcgarry if ((bp->b_flags & B_CMD) && bp->b_cmd == MTRESET)
875 1.1 gmcgarry callout_stop(&sc->sc_intr_ch);
876 1.1 gmcgarry if (sc->sc_stat3 & SR3_POWERUP)
877 1.1 gmcgarry sc->sc_flags &= MTF_OPEN | MTF_EXISTS;
878 1.1 gmcgarry goto error;
879 1.1 gmcgarry }
880 1.1 gmcgarry /*
881 1.1 gmcgarry * Report and clear any soft errors.
882 1.1 gmcgarry */
883 1.1 gmcgarry if (sc->sc_stat1 & SR1_SOFTERR) {
884 1.25 chs printf("%s: soft error, retry %d\n", device_xname(sc->sc_dev),
885 1.1 gmcgarry sc->sc_stat4 & SR4_RETRYMASK);
886 1.1 gmcgarry sc->sc_stat1 &= ~SR1_SOFTERR;
887 1.1 gmcgarry }
888 1.1 gmcgarry /*
889 1.1 gmcgarry * We've initiated a read or write, but haven't actually started to
890 1.1 gmcgarry * DMA the data yet. At this point, the drive's ready.
891 1.1 gmcgarry */
892 1.1 gmcgarry if (sc->sc_flags & MTF_IO) {
893 1.1 gmcgarry sc->sc_flags &= ~MTF_IO;
894 1.1 gmcgarry dir = (bp->b_flags & B_READ ? GPIB_READ : GPIB_WRITE);
895 1.1 gmcgarry gpibxfer(sc->sc_ic, slave,
896 1.1 gmcgarry dir == GPIB_READ ? MTT_READ : MTL_WRITE,
897 1.1 gmcgarry bp->b_data, bp->b_bcount, dir, dir == GPIB_READ);
898 1.1 gmcgarry return;
899 1.1 gmcgarry }
900 1.1 gmcgarry /*
901 1.1 gmcgarry * Check for End Of Tape - we're allowed to hit EOT and then write (or
902 1.1 gmcgarry * read) one more record. If we get here and have not already hit EOT,
903 1.1 gmcgarry * return ENOSPC to inform the process that it's hit it. If we get
904 1.1 gmcgarry * here and HAVE already hit EOT, don't allow any more operations that
905 1.1 gmcgarry * move the tape forward.
906 1.1 gmcgarry */
907 1.1 gmcgarry if (sc->sc_stat1 & SR1_EOT) {
908 1.1 gmcgarry if (sc->sc_flags & MTF_ATEOT)
909 1.1 gmcgarry sc->sc_flags |= MTF_PASTEOT;
910 1.1 gmcgarry else {
911 1.1 gmcgarry bp->b_error = ENOSPC;
912 1.1 gmcgarry sc->sc_flags |= MTF_ATEOT;
913 1.1 gmcgarry }
914 1.1 gmcgarry }
915 1.1 gmcgarry /*
916 1.1 gmcgarry * If a motion command was being executed, check for Tape Marks.
917 1.1 gmcgarry * If we were doing data, make sure we got the right amount, and
918 1.1 gmcgarry * check for hitting tape marks on reads.
919 1.1 gmcgarry */
920 1.1 gmcgarry if (bp->b_flags & B_CMD) {
921 1.1 gmcgarry if (sc->sc_stat1 & SR1_EOF) {
922 1.1 gmcgarry if (bp->b_cmd == MTFSR)
923 1.1 gmcgarry sc->sc_flags |= MTF_HITEOF;
924 1.1 gmcgarry if (bp->b_cmd == MTBSR)
925 1.1 gmcgarry sc->sc_flags |= MTF_HITBOF;
926 1.1 gmcgarry }
927 1.1 gmcgarry if (bp->b_cmd == MTRESET) {
928 1.1 gmcgarry callout_stop(&sc->sc_intr_ch);
929 1.1 gmcgarry sc->sc_flags |= MTF_ALIVE;
930 1.1 gmcgarry }
931 1.1 gmcgarry } else {
932 1.1 gmcgarry i = gpibrecv(sc->sc_ic, slave, MTT_BCNT, cmdbuf, 2);
933 1.1 gmcgarry if (i != 2) {
934 1.30 msaitoh aprint_error_dev(sc->sc_dev,
935 1.30 msaitoh "intr: can't get xfer length\n");
936 1.1 gmcgarry goto error;
937 1.1 gmcgarry }
938 1.1 gmcgarry i = (int) *((u_short *) cmdbuf);
939 1.1 gmcgarry if (i <= bp->b_bcount) {
940 1.1 gmcgarry if (i == 0)
941 1.1 gmcgarry sc->sc_flags |= MTF_HITEOF;
942 1.1 gmcgarry bp->b_resid = bp->b_bcount - i;
943 1.22 tsutsui DPRINTF(MDB_ANY, ("%s intr: bcount %d, resid %d",
944 1.25 chs device_xname(sc->sc_dev),
945 1.22 tsutsui bp->b_bcount, bp->b_resid));
946 1.1 gmcgarry } else {
947 1.1 gmcgarry tprintf(sc->sc_ttyp,
948 1.7 cube "%s: record (%d) larger than wanted (%d)\n",
949 1.25 chs device_xname(sc->sc_dev), i, bp->b_bcount);
950 1.1 gmcgarry error:
951 1.1 gmcgarry sc->sc_flags &= ~MTF_IO;
952 1.1 gmcgarry bp->b_error = EIO;
953 1.1 gmcgarry }
954 1.1 gmcgarry }
955 1.1 gmcgarry /*
956 1.1 gmcgarry * The operation is completely done.
957 1.1 gmcgarry * Let the drive know with an END command.
958 1.1 gmcgarry */
959 1.1 gmcgarry cmdbuf[0] = MTE_COMPLETE | MTE_IDLE;
960 1.1 gmcgarry (void) gpibsend(sc->sc_ic, slave, MTL_ECMD, cmdbuf, 1);
961 1.1 gmcgarry bp->b_flags &= ~B_CMD;
962 1.16 yamt (void)bufq_get(sc->sc_tab);
963 1.1 gmcgarry biodone(bp);
964 1.1 gmcgarry gpibrelease(sc->sc_ic, sc->sc_hdl);
965 1.16 yamt if (bufq_peek(sc->sc_tab) == NULL)
966 1.1 gmcgarry sc->sc_active = 0;
967 1.1 gmcgarry else
968 1.1 gmcgarry mtustart(sc);
969 1.1 gmcgarry }
970 1.1 gmcgarry
971 1.1 gmcgarry int
972 1.15 cegger mtread(dev_t dev, struct uio *uio, int flags)
973 1.1 gmcgarry {
974 1.21 ad return (physio(mtstrategy, NULL, dev, B_READ, minphys, uio));
975 1.1 gmcgarry }
976 1.1 gmcgarry
977 1.1 gmcgarry int
978 1.15 cegger mtwrite(dev_t dev, struct uio *uio, int flags)
979 1.1 gmcgarry {
980 1.21 ad return (physio(mtstrategy, NULL, dev, B_WRITE, minphys, uio));
981 1.1 gmcgarry }
982 1.1 gmcgarry
983 1.1 gmcgarry int
984 1.17 dsl mtioctl(dev_t dev, u_long cmd, void *data, int flag, struct lwp *l)
985 1.1 gmcgarry {
986 1.1 gmcgarry struct mtop *op;
987 1.1 gmcgarry int cnt;
988 1.1 gmcgarry
989 1.1 gmcgarry switch (cmd) {
990 1.1 gmcgarry case MTIOCTOP:
991 1.1 gmcgarry op = (struct mtop *)data;
992 1.1 gmcgarry switch(op->mt_op) {
993 1.1 gmcgarry case MTWEOF:
994 1.1 gmcgarry case MTFSF:
995 1.1 gmcgarry case MTBSR:
996 1.1 gmcgarry case MTBSF:
997 1.1 gmcgarry case MTFSR:
998 1.1 gmcgarry cnt = op->mt_count;
999 1.1 gmcgarry break;
1000 1.1 gmcgarry
1001 1.1 gmcgarry case MTOFFL:
1002 1.1 gmcgarry case MTREW:
1003 1.1 gmcgarry case MTNOP:
1004 1.1 gmcgarry cnt = 0;
1005 1.1 gmcgarry break;
1006 1.1 gmcgarry
1007 1.1 gmcgarry default:
1008 1.1 gmcgarry return (EINVAL);
1009 1.1 gmcgarry }
1010 1.1 gmcgarry return (mtcommand(dev, op->mt_op, cnt));
1011 1.1 gmcgarry
1012 1.1 gmcgarry case MTIOCGET:
1013 1.1 gmcgarry break;
1014 1.1 gmcgarry
1015 1.1 gmcgarry default:
1016 1.1 gmcgarry return (EINVAL);
1017 1.1 gmcgarry }
1018 1.1 gmcgarry return (0);
1019 1.1 gmcgarry }
1020