xref: /original-bsd/sys/hp300/dev/rd.c (revision 10042f30)
1 /*
2  * Copyright (c) 1988 University of Utah.
3  * Copyright (c) 1982, 1990 The Regents of the University of California.
4  * All rights reserved.
5  *
6  * This code is derived from software contributed to Berkeley by
7  * the Systems Programming Group of the University of Utah Computer
8  * Science Department.
9  *
10  * %sccs.include.redist.c%
11  *
12  * from: Utah $Hdr: rd.c 1.38 90/10/12$
13  *
14  *	@(#)rd.c	7.13 (Berkeley) 02/19/92
15  */
16 
17 /*
18  * CS80/SS80 disk driver
19  */
20 #include "rd.h"
21 #if NRD > 0
22 
23 #include "sys/param.h"
24 #include "sys/systm.h"
25 #include "sys/errno.h"
26 #include "sys/dkstat.h"
27 #include "sys/disklabel.h"
28 #include "sys/buf.h"
29 #include "sys/uio.h"
30 
31 #include "device.h"
32 #include "rdreg.h"
33 
34 #include "vm/vm_param.h"
35 #include "vm/lock.h"
36 #include "vm/vm_prot.h"
37 #include "vm/pmap.h"
38 
39 int	rdinit(), rdstart(), rdgo(), rdintr();
40 struct	driver rddriver = {
41 	rdinit, "rd", rdstart, rdgo, rdintr,
42 };
43 
44 struct	rd_softc {
45 	struct	hp_device *sc_hd;
46 	int	sc_flags;
47 	short	sc_type;
48 	short	sc_punit;
49 	char	*sc_addr;
50 	int	sc_resid;
51 	u_int	sc_wpms;
52 	struct	rdinfo *sc_info;
53 	struct	devqueue sc_dq;
54 	struct	rd_iocmd sc_ioc;
55 	struct	rd_rscmd sc_rsc;
56 	struct	rd_stat sc_stat;
57 	struct	rd_ssmcmd sc_ssmc;
58 	struct	rd_srcmd sc_src;
59 	struct	rd_clearcmd sc_clear;
60 } rd_softc[NRD];
61 
62 /* sc_flags values */
63 #define	RDF_ALIVE	0x1
64 #define	RDF_SEEK	0x2
65 #define RDF_SWAIT	0x4
66 
67 struct	size {
68 	daddr_t	nblocks;
69 	int	cyloff;
70 };
71 
72 #ifdef DEBUG
73 int rddebug = 0x80;
74 #define RDB_FOLLOW	0x01
75 #define RDB_STATUS	0x02
76 #define RDB_IDENT	0x04
77 #define RDB_IO		0x08
78 #define RDB_ASYNC	0x10
79 #define RDB_ERROR	0x80
80 #define RDB_DUMP	0x80000000
81 
82 struct rdstats {
83 	long	rdretries;
84 	long	rdresets;
85 	long	rdtimeouts;
86 	long	rdpolltries;
87 	long	rdpollwaits;
88 } rdstats[NRD];
89 
90 /* error message tables */
91 char *err_reject[] = {
92 	0, 0,
93 	"channel parity error",		/* 0x2000 */
94 	0, 0,
95 	"illegal opcode",		/* 0x0400 */
96 	"module addressing",		/* 0x0200 */
97 	"address bounds",		/* 0x0100 */
98 	"parameter bounds",		/* 0x0080 */
99 	"illegal parameter",		/* 0x0040 */
100 	"message sequence",		/* 0x0020 */
101 	0,
102 	"message length",		/* 0x0008 */
103 	0, 0, 0
104 };
105 
106 char *err_fault[] = {
107 	0,
108 	"cross unit",			/* 0x4000 */
109 	0,
110 	"controller fault",		/* 0x1000 */
111 	0, 0,
112 	"unit fault",			/* 0x0200 */
113 	0,
114 	"diagnostic result",		/* 0x0080 */
115 	0,
116 	"operator release request",	/* 0x0020 */
117 	"diagnostic release request",	/* 0x0010 */
118 	"internal maintenance release request",	/* 0x0008 */
119 	0,
120 	"power fail",			/* 0x0002 */
121 	"retransmit"			/* 0x0001 */
122 };
123 
124 char *err_access[] = {
125 	"illegal parallel operation",	/* 0x8000 */
126 	"uninitialized media",		/* 0x4000 */
127 	"no spares available",		/* 0x2000 */
128 	"not ready",			/* 0x1000 */
129 	"write protect",		/* 0x0800 */
130 	"no data found",		/* 0x0400 */
131 	0, 0,
132 	"unrecoverable data overflow",	/* 0x0080 */
133 	"unrecoverable data",		/* 0x0040 */
134 	0,
135 	"end of file",			/* 0x0010 */
136 	"end of volume",		/* 0x0008 */
137 	0, 0, 0
138 };
139 
140 char *err_info[] = {
141 	"operator release request",	/* 0x8000 */
142 	"diagnostic release request",	/* 0x4000 */
143 	"internal maintenance release request",	/* 0x2000 */
144 	"media wear",			/* 0x1000 */
145 	"latency induced",		/* 0x0800 */
146 	0, 0,
147 	"auto sparing invoked",		/* 0x0100 */
148 	0,
149 	"recoverable data overflow",	/* 0x0040 */
150 	"marginal data",		/* 0x0020 */
151 	"recoverable data",		/* 0x0010 */
152 	0,
153 	"maintenance track overflow",	/* 0x0004 */
154 	0, 0
155 };
156 #endif
157 
158 /*
159  * CS/80 partitions.  We reserve the first cylinder for a LIF
160  * style boot directory (the 8k allowed in the BSD filesystem
161  * is just way too small).  This boot area is outside of all but
162  * the C partition.  This implies that you cannot use the C
163  * partition on a bootable disk since the filesystem would overlay
164  * the boot area.  You must use the A partition.
165  *
166  * These maps support four basic layouts:
167  *
168  *	A/B/G:   This is the "traditional" setup for a bootable disk.
169  *	         A is the root partition, B the swap, and G a user partition.
170  *	A/D/H:   This is a setup for bootable systems requiring more swap
171  *		 (e.g. those who use HPCL).  It has A as the root, D as a
172  *		 larger swap, and H as a smaller user partition.
173  *	A/D/E/F: Similar to A/D/H with E and F breaking H into two partitions.
174  *		 E could be used for /usr and F for users.
175  *	C:       This gives a single, non-bootable, large user filesystem.
176  *	         Good for second drives on a machine (e.g. /usr/src).
177  */
178 struct size rd7945A_sizes[8] = {
179 	RDSZ(15904),	1,		/* A=cyl 1 thru 142 */
180 	RDSZ(20160),	143,		/* B=cyl 143 thru 322 */
181 	RDSZ(108416),	0,		/* C=cyl 0 thru 967 */
182 	RDSZ(40320),	143,		/* D=cyl 143 thru 502 */
183 	RDSZ(0),	0,		/* E=<undefined> */
184 	RDSZ(0),	0,		/* F=<undefined> */
185 	RDSZ(72240),	323,		/* G=cyl 323 thru 967 */
186 	RDSZ(52080),	503,		/* H=cyl 503 thru 967 */
187 }, rd9134D_sizes[8] = {
188 	RDSZ(15936),	1,		/* A=cyl 1 thru 166 */
189 	RDSZ(13056),	167,		/* B=cyl 167 thru 302 */
190 	RDSZ(29088),	0,		/* C=cyl 0 thru 302 */
191 	RDSZ(0),	0,		/* D=<undefined> */
192 	RDSZ(0),	0,		/* E=<undefined> */
193 	RDSZ(0),	0,		/* F=<undefined> */
194 	RDSZ(0),	0,		/* G=<undefined> */
195 	RDSZ(0),	0,		/* H=<undefined> */
196 }, rd9122S_sizes[8] = {
197 	RDSZ(0),	0,		/* A=<undefined> */
198 	RDSZ(0),	0,		/* B=<undefined> */
199 	RDSZ(1232),	0,		/* C=cyl 0 thru 76 */
200 	RDSZ(0),	0,		/* D=<undefined> */
201 	RDSZ(0),	0,		/* E=<undefined> */
202 	RDSZ(0),	0,		/* F=<undefined> */
203 	RDSZ(0),	0,		/* G=<undefined> */
204 	RDSZ(0),	0,		/* H=<undefined> */
205 }, rd7912P_sizes[8] = {
206 	RDSZ(15904),	0,		/* A=cyl 1 thru 71 */
207 	RDSZ(22400),	72,		/* B=cyl 72 thru 171 */
208 	RDSZ(128128),	0,		/* C=cyl 0 thru 571 */
209 	RDSZ(42560),	72,		/* D=cyl 72 thru 261 */
210 	RDSZ(0),	292,		/* E=<undefined> */
211 	RDSZ(0),	542,		/* F=<undefined> */
212 	RDSZ(89600),	172,		/* G=cyl 221 thru 571 */
213 	RDSZ(69440),	262,		/* H=cyl 262 thru 571 */
214 }, rd7914P_sizes[8] = {
215 	RDSZ(15904),	1,		/* A=cyl 1 thru 71 */
216 	RDSZ(40320),	72,		/* B=cyl 72 thru 251 */
217 	RDSZ(258048),	0,		/* C=cyl 0 thru 1151 */
218 	RDSZ(64960),	72,		/* D=cyl 72 thru 361 */
219 	RDSZ(98560),	362,		/* E=cyl 362 thru 801 */
220 	RDSZ(78400),	802,		/* F=cyl 802 thru 1151 */
221 	RDSZ(201600),	252,		/* G=cyl 221 thru 1151 */
222 	RDSZ(176960),	362,		/* H=cyl 362 thru 1151 */
223 }, rd7933H_sizes[8] = {
224 	RDSZ(16146),	1,		/* A=cyl 1 thru 27 */
225 	RDSZ(66976),	28,		/* B=cyl 28 thru 139 */
226 	RDSZ(789958),	0,		/* C=cyl 0 thru 1320 */
227 	RDSZ(16146),	140,		/* D=cyl 140 thru 166 */
228 	RDSZ(165646),	167,		/* E=cyl 167 thru 443 */
229 	RDSZ(165646),	444,		/* F=cyl 444 thru 720 */
230 	RDSZ(706238),	140,		/* G=cyl 140 thru 1320 */
231 	RDSZ(358800),	721,		/* H=cyl 721 thru 1320 */
232 }, rd9134L_sizes[8] = {
233 	RDSZ(15920),	1,		/* A=cyl 1 thru 199 */
234 	RDSZ(20000),	200,		/* B=cyl 200 thru 449 */
235 	RDSZ(77840),	0,		/* C=cyl 0 thru 972 */
236 	RDSZ(32000),	200,		/* D=cyl 200 thru 599 */
237 	RDSZ(0),	0,		/* E=<undefined> */
238 	RDSZ(0),	0,		/* F=<undefined> */
239 	RDSZ(41840),	450,		/* G=cyl 450 thru 972 */
240 	RDSZ(29840),	600,		/* H=cyl 600 thru 972 */
241 }, rd7957A_sizes[8] = {
242 	RDSZ(16016),	1,		/* A=cyl 1 thru 104 */
243 	RDSZ(24640),	105,		/* B=cyl 105 thru 264 */
244 	RDSZ(159544),	0,		/* C=cyl 0 thru 1035 */
245 	RDSZ(42350),	105,		/* D=cyl 105 thru 379 */
246 	RDSZ(54824),	380,		/* E=cyl 380 thru 735 */
247 	RDSZ(46200),	736,		/* F=cyl 736 thru 1035 */
248 	RDSZ(118734),	265,		/* G=cyl 265 thru 1035 */
249 	RDSZ(101024),	380,		/* H=cyl 380 thru 1035 */
250 }, rd7958A_sizes[8] = {
251 	RDSZ(16128),	1,		/* A=cyl 1 thru 64 */
252 	RDSZ(32256),	65,		/* B=cyl 65 thru 192 */
253 	RDSZ(255276),	0,		/* C=cyl 0 thru 1012 */
254 	RDSZ(48384),	65,		/* D=cyl 65 thru 256 */
255 	RDSZ(100800),	257,		/* E=cyl 257 thru 656 */
256 	RDSZ(89712),	657,		/* F=cyl 657 thru 1012 */
257 	RDSZ(206640),	193,		/* G=cyl 193 thru 1012 */
258 	RDSZ(190512),	257,		/* H=cyl 257 thru 1012 */
259 }, rd7957B_sizes[8] = {
260 	RDSZ(16002),	1,		/* A=cyl 1 thru 127 */
261 	RDSZ(32760),	128,		/* B=cyl 128 thru 387 */
262 	RDSZ(159894),	0,		/* C=cyl 0 thru 1268 */
263 	RDSZ(49140),	128,		/* D=cyl 128 thru 517 */
264 	RDSZ(50400),	518,		/* E=cyl 518 thru 917 */
265 	RDSZ(44226),	918,		/* F=cyl 918 thru 1268 */
266 	RDSZ(111006),	388,		/* G=cyl 388 thru 1268 */
267 	RDSZ(94626),	518,		/* H=cyl 518 thru 1268 */
268 }, rd7958B_sizes[8] = {
269 	RDSZ(16254),	1,		/* A=cyl 1 thru 43 */
270 	RDSZ(32886),	44,		/* B=cyl 44 thru 130 */
271 	RDSZ(297108),	0,		/* C=cyl 0 thru 785 */
272 	RDSZ(49140),	44,		/* D=cyl 44 thru 173 */
273 	RDSZ(121716),	174,		/* E=cyl 174 thru 495 */
274 	RDSZ(109620),	496,		/* F=cyl 496 thru 785 */
275 	RDSZ(247590),	131,		/* G=cyl 131 thru 785 */
276 	RDSZ(231336),	174,		/* H=cyl 174 thru 785 */
277 }, rd7959B_sizes[8] = {
278 	RDSZ(16254),	1,		/* A=cyl 1 thru 43 */
279 	RDSZ(49140),	44,		/* B=cyl 44 thru 173 */
280 	RDSZ(594216),	0,		/* C=cyl 0 thru 1571 */
281 	RDSZ(65772),	44,		/* D=cyl 44 thru 217 */
282 	RDSZ(303912),	218,		/* E=cyl 218 thru 1021 */
283 	RDSZ(207900),	1022,		/* F=cyl 1022 thru 1571 */
284 	RDSZ(528444),	174,		/* G=cyl 174 thru 1571 */
285 	RDSZ(511812),	218,		/* H=cyl 218 thru 1571 */
286 }, rd2200A_sizes[8] = {
287 	RDSZ(16272),	1,		/* A=cyl 1 thru 36 */
288 	RDSZ(49720),	37,		/* B=cyl 37 thru 146 */
289 	RDSZ(654948),	0,		/* C=cyl 0 thru 1448 */
290 	RDSZ(65992),	37,		/* D=cyl 37 thru 182 */
291 	RDSZ(304648),	183,		/* E=cyl 183 thru 856 */
292 	RDSZ(267584),	857,		/* F=cyl 857 thru 1448 */
293 	RDSZ(588504),	147,		/* G=cyl 147 thru 1448 */
294 	RDSZ(572232),	183,		/* H=cyl 183 thru 1448 */
295 }, rd2203A_sizes[8] = {
296 	/* modelled after the 7937; i.e. bogus */
297 	RDSZ(16272),	1,		/* A=cyl 1 thru 18 */
298 	RDSZ(67800),	19,		/* B=cyl 19 thru 93 */
299 	RDSZ(1309896),	0,		/* C=cyl 0 thru 1448 */
300 	RDSZ(16272),	94,		/* D=cyl 19 thru 111 */
301 	RDSZ(305552),	112,		/* E=cyl 112 thru 449 */
302 	RDSZ(305552),	450,		/* F=cyl 450 thru 787 */
303 	RDSZ(1224920),	94,		/* G=cyl 94 thru 1448 */
304 	RDSZ(597544),	788,		/* H=cyl 788 thru 1448 */
305 
306 #if DEV_BSIZE == 512
307 /*
308  * These values would not work for 1k,
309  * since the number of cylinders would be different.
310  */
311 }, rd7936H_sizes[8] = {
312 	RDSZ(16359),	1,		/* A=cyl 1 thru 19 */
313 	RDSZ(67158),	20,		/* B=cyl 20 thru 97 */
314 	RDSZ(600978),	0,		/* C=cyl 0 thru 697 */
315 	RDSZ(16359),	98,		/* D=cyl 98 thru 116 */
316 	RDSZ(120540),	117,		/* E=cyl 117 thru 256 */
317 	RDSZ(120540),	256,		/* F=cyl 256 thru 396 */
318 	RDSZ(516600),	98,		/* G=cyl 98 thru 697 */
319 	RDSZ(259161),	397,		/* H=cyl 397 thru 697 */
320 }, rd7937H_sizes[8] = {
321 #ifdef UTAH
322 	RDSZ(15990),	1,		/* A=cyl 1 thru 10 */
323 	RDSZ(67158),	11,		/* B=cyl 11 thru 52 */
324 	RDSZ(1116102),	0,		/* C=cyl 0 thru 697 */
325 	RDSZ(124722),	53,		/* D=cyl 53 thru 130 */
326 	RDSZ(163098),	131,		/* E=cyl 131 thru 232 */
327 	RDSZ(287820),	233,		/* F=cyl 233 thru 412 */
328 	RDSZ(1031355),	53,		/* G=cyl 53 thru 697 */
329 	RDSZ(455715),	413,		/* H=cyl 413 thru 697 */
330 #else
331 	RDSZ(15990),	1,		/* A=cyl 1 thru 10 */
332 	RDSZ(67158),	11,		/* B=cyl 11 thru 52 */
333 	RDSZ(1116102),	0,		/* C=cyl 0 thru 697 */
334 	RDSZ(15990),	53,		/* D=cyl 53 thru 62 */
335 	RDSZ(246246),	63,		/* E=cyl 63 thru 216 */
336 	RDSZ(246246),	217,		/* F=cyl 217 thru 370 */
337 	RDSZ(1031355),	53,		/* G=cyl 53 thru 697 */
338 	RDSZ(522873),	371,		/* H=cyl 371 thru 697 */
339 #endif
340 #endif
341 };
342 
343 struct	rdinfo {
344 	int	nbpt;		/* DEV_BSIZE blocks per track */
345 	int	ntpc;		/* tracks per cylinder */
346 	int	nbpc;		/* blocks per cylinder */
347 	struct	size *sizes;	/* default partition info (if no disklabel) */
348 	short	hwid;		/* 2 byte HW id */
349 	short	maxunum;	/* maximum allowed unit number */
350 	char	*desc;		/* drive type description */
351 };
352 
353 struct rdinfo rdinfo[] = {
354 	NRD7945ABPT,	NRD7945ATRK,	NRD7945ABPT * NRD7945ATRK,
355 	rd7945A_sizes,	RD7946AID,	0,	"7945A",
356 	NRD9134DBPT,	NRD9134DTRK,	NRD9134DBPT * NRD9134DTRK,
357 	rd9134D_sizes,	RD9134DID,	1,	"9134D",
358 	NRD9122SBPT,	NRD9122STRK,	NRD9122SBPT * NRD9122STRK,
359 	rd9122S_sizes,	RD9134LID,	1,	"9122S",
360 	NRD7912PBPT,	NRD7912PTRK,	NRD7912PBPT * NRD7912PTRK,
361 	rd7912P_sizes,	RD7912PID,	0,	"7912P",
362 	NRD7914PBPT,	NRD7914PTRK,	NRD7914PBPT * NRD7914PTRK,
363 	rd7914P_sizes,	RD7914PID,	0,	"7914P",
364 	NRD7958ABPT,	NRD7958ATRK,	NRD7958ABPT * NRD7958ATRK,
365 	rd7958A_sizes,	RD7958AID,	0,	"7958A",
366 	NRD7957ABPT,	NRD7957ATRK,	NRD7957ABPT * NRD7957ATRK,
367 	rd7957A_sizes,	RD7957AID,	0,	"7957A",
368 	NRD7933HBPT,	NRD7933HTRK,	NRD7933HBPT * NRD7933HTRK,
369 	rd7933H_sizes,	RD7933HID,	0,	"7933H",
370 	NRD9134LBPT,	NRD9134LTRK,	NRD9134LBPT * NRD9134LTRK,
371 	rd9134L_sizes,	RD9134LID,	1,	"9134L",
372 	NRD7936HBPT,	NRD7936HTRK,	NRD7936HBPT * NRD7936HTRK,
373 	rd7936H_sizes,	RD7936HID,	0,	"7936H",
374 	NRD7937HBPT,	NRD7937HTRK,	NRD7937HBPT * NRD7937HTRK,
375 	rd7937H_sizes,	RD7937HID,	0,	"7937H",
376 	NRD7914PBPT,	NRD7914PTRK,	NRD7914PBPT * NRD7914PTRK,
377 	rd7914P_sizes,	RD7914CTID,	0,	"7914CT",
378 	NRD7945ABPT,	NRD7945ATRK,	NRD7945ABPT * NRD7945ATRK,
379 	rd7945A_sizes,	RD7946AID,	0,	"7946A",
380 	NRD9122SBPT,	NRD9122STRK,	NRD9122SBPT * NRD9122STRK,
381 	rd9122S_sizes,	RD9134LID,	1,	"9122D",
382 	NRD7957BBPT,	NRD7957BTRK,	NRD7957BBPT * NRD7957BTRK,
383 	rd7957B_sizes,	RD7957BID,	0,	"7957B",
384 	NRD7958BBPT,	NRD7958BTRK,	NRD7958BBPT * NRD7958BTRK,
385 	rd7958B_sizes,	RD7958BID,	0,	"7958B",
386 	NRD7959BBPT,	NRD7959BTRK,	NRD7959BBPT * NRD7959BTRK,
387 	rd7959B_sizes,	RD7959BID,	0,	"7959B",
388 	NRD2200ABPT,	NRD2200ATRK,	NRD2200ABPT * NRD2200ATRK,
389 	rd2200A_sizes,	RD2200AID,	0,	"2200A",
390 	NRD2203ABPT,	NRD2203ATRK,	NRD2203ABPT * NRD2203ATRK,
391 	rd2203A_sizes,	RD2203AID,	0,	"2203A",
392 };
393 int nrdinfo = sizeof(rdinfo) / sizeof(rdinfo[0]);
394 
395 struct	buf rdtab[NRD];
396 
397 #define	rdunit(x)	(minor(x) >> 3)
398 #define rdpart(x)	(minor(x) & 0x7)
399 #define	rdpunit(x)	((x) & 7)
400 #define	b_cylin		b_resid
401 #define	RDRETRY		5
402 #define RDWAITC		1	/* min time for timeout in seconds */
403 
404 int rderrthresh = RDRETRY-1;	/* when to start reporting errors */
405 
406 rdinit(hd)
407 	register struct hp_device *hd;
408 {
409 	register struct rd_softc *rs = &rd_softc[hd->hp_unit];
410 
411 	rs->sc_hd = hd;
412 	rs->sc_punit = rdpunit(hd->hp_flags);
413 	rs->sc_type = rdident(rs, hd);
414 	if (rs->sc_type < 0)
415 		return(0);
416 	rs->sc_dq.dq_ctlr = hd->hp_ctlr;
417 	rs->sc_dq.dq_unit = hd->hp_unit;
418 	rs->sc_dq.dq_slave = hd->hp_slave;
419 	rs->sc_dq.dq_driver = &rddriver;
420 	rs->sc_info = &rdinfo[rs->sc_type];
421 	rs->sc_flags = RDF_ALIVE;
422 #ifdef DEBUG
423 	/* always report errors */
424 	if (rddebug & RDB_ERROR)
425 		rderrthresh = 0;
426 #endif
427 	return(1);
428 }
429 
430 rdident(rs, hd)
431 	struct rd_softc *rs;
432 	struct hp_device *hd;
433 {
434 	struct rd_describe desc;
435 	u_char stat, cmd[3];
436 	int unit, lunit;
437 	char name[7];
438 	register int ctlr, slave, id, i;
439 
440 	ctlr = hd->hp_ctlr;
441 	slave = hd->hp_slave;
442 	unit = rs->sc_punit;
443 	lunit = hd->hp_unit;
444 
445 	/*
446 	 * Grab device id and make sure:
447 	 * 1. It is a CS80 device.
448 	 * 2. It is one of the types we support.
449 	 * 3. If it is a 7946, we are accessing the disk unit (0)
450 	 */
451 	id = hpibid(ctlr, slave);
452 #ifdef DEBUG
453 	if (rddebug & RDB_IDENT)
454 		printf("hpibid(%d, %d) -> %x\n", ctlr, slave, id);
455 #endif
456 	if ((id & 0x200) == 0)
457 		return(-1);
458 	for (i = 0; i < nrdinfo; i++)
459 		if (id == rdinfo[i].hwid)
460 			break;
461 	if (i == nrdinfo || unit > rdinfo[i].maxunum)
462 		return(-1);
463 	id = i;
464 
465 	/*
466 	 * Reset drive and collect device description.
467 	 * Don't really use the description info right now but
468 	 * might come in handy in the future (for disk labels).
469 	 */
470 	rdreset(rs, hd);
471 	cmd[0] = C_SUNIT(unit);
472 	cmd[1] = C_SVOL(0);
473 	cmd[2] = C_DESC;
474 	hpibsend(ctlr, slave, C_CMD, cmd, sizeof(cmd));
475 	hpibrecv(ctlr, slave, C_EXEC, &desc, 37);
476 	hpibrecv(ctlr, slave, C_QSTAT, &stat, sizeof(stat));
477 	bzero(name, sizeof(name));
478 	if (!stat) {
479 		register int n = desc.d_name;
480 		for (i = 5; i >= 0; i--) {
481 			name[i] = (n & 0xf) + '0';
482 			n >>= 4;
483 		}
484 		/* use drive characteristics to calculate xfer rate */
485 		rs->sc_wpms = 1000000 * (desc.d_sectsize/2) / desc.d_blocktime;
486 	}
487 #ifdef DEBUG
488 	if (rddebug & RDB_IDENT) {
489 		printf("rd%d: name: %x ('%s')\n",
490 		       lunit, desc.d_name, name);
491 		printf("  iuw %x, maxxfr %d, ctype %d\n",
492 		       desc.d_iuw, desc.d_cmaxxfr, desc.d_ctype);
493 		printf("  utype %d, bps %d, blkbuf %d, burst %d, blktime %d\n",
494 		       desc.d_utype, desc.d_sectsize,
495 		       desc.d_blkbuf, desc.d_burstsize, desc.d_blocktime);
496 		printf("  avxfr %d, ort %d, atp %d, maxint %d, fv %x, rv %x\n",
497 		       desc.d_uavexfr, desc.d_retry, desc.d_access,
498 		       desc.d_maxint, desc.d_fvbyte, desc.d_rvbyte);
499 		printf("  maxcyl/head/sect %d/%d/%d, maxvsect %d, inter %d\n",
500 		       desc.d_maxcyl, desc.d_maxhead, desc.d_maxsect,
501 		       desc.d_maxvsectl, desc.d_interleave);
502 	}
503 #endif
504 	/*
505 	 * Take care of a couple of anomolies:
506 	 * 1. 7945A and 7946A both return same HW id
507 	 * 2. 9122S and 9134D both return same HW id
508 	 * 3. 9122D and 9134L both return same HW id
509 	 */
510 	switch (rdinfo[id].hwid) {
511 	case RD7946AID:
512 		if (bcmp(name, "079450", 6) == 0)
513 			id = RD7945A;
514 		else
515 			id = RD7946A;
516 		break;
517 
518 	case RD9134LID:
519 		if (bcmp(name, "091340", 6) == 0)
520 			id = RD9134L;
521 		else
522 			id = RD9122D;
523 		break;
524 
525 	case RD9134DID:
526 		if (bcmp(name, "091220", 6) == 0)
527 			id = RD9122S;
528 		else
529 			id = RD9134D;
530 		break;
531 	}
532 	printf("rd%d: %s\n", lunit, rdinfo[id].desc);
533 	return(id);
534 }
535 
536 rdreset(rs, hd)
537 	register struct rd_softc *rs;
538 	register struct hp_device *hd;
539 {
540 	u_char stat;
541 
542 	rs->sc_clear.c_unit = C_SUNIT(rs->sc_punit);
543 	rs->sc_clear.c_cmd = C_CLEAR;
544 	hpibsend(hd->hp_ctlr, hd->hp_slave, C_TCMD, &rs->sc_clear,
545 		sizeof(rs->sc_clear));
546 	hpibswait(hd->hp_ctlr, hd->hp_slave);
547 	hpibrecv(hd->hp_ctlr, hd->hp_slave, C_QSTAT, &stat, sizeof(stat));
548 	rs->sc_src.c_unit = C_SUNIT(RDCTLR);
549 	rs->sc_src.c_nop = C_NOP;
550 	rs->sc_src.c_cmd = C_SREL;
551 	rs->sc_src.c_param = C_REL;
552 	hpibsend(hd->hp_ctlr, hd->hp_slave, C_CMD, &rs->sc_src,
553 		sizeof(rs->sc_src));
554 	hpibswait(hd->hp_ctlr, hd->hp_slave);
555 	hpibrecv(hd->hp_ctlr, hd->hp_slave, C_QSTAT, &stat, sizeof(stat));
556 	rs->sc_ssmc.c_unit = C_SUNIT(rs->sc_punit);
557 	rs->sc_ssmc.c_cmd = C_SSM;
558 	rs->sc_ssmc.c_refm = REF_MASK;
559 	rs->sc_ssmc.c_fefm = FEF_MASK;
560 	rs->sc_ssmc.c_aefm = AEF_MASK;
561 	rs->sc_ssmc.c_iefm = IEF_MASK;
562 	hpibsend(hd->hp_ctlr, hd->hp_slave, C_CMD, &rs->sc_ssmc,
563 		sizeof(rs->sc_ssmc));
564 	hpibswait(hd->hp_ctlr, hd->hp_slave);
565 	hpibrecv(hd->hp_ctlr, hd->hp_slave, C_QSTAT, &stat, sizeof(stat));
566 #ifdef DEBUG
567 	rdstats[hd->hp_unit].rdresets++;
568 #endif
569 }
570 
571 int
572 rdopen(dev, flags, mode, p)
573 	dev_t dev;
574 	int flags, mode;
575 	struct proc *p;
576 {
577 	register int unit = rdunit(dev);
578 	register struct rd_softc *rs = &rd_softc[unit];
579 
580 	if (unit >= NRD || (rs->sc_flags & RDF_ALIVE) == 0)
581 		return(ENXIO);
582 	if (rs->sc_hd->hp_dk >= 0) {
583 		/* guess at xfer rate based on 3600 rpm (60 rps) */
584 		if (rs->sc_wpms == 0)
585 			rs->sc_wpms = 60 * rs->sc_info->nbpt * DEV_BSIZE / 2;
586 		dk_wpms[rs->sc_hd->hp_dk] = rs->sc_wpms;
587 	}
588 	return(0);
589 }
590 
591 rdstrategy(bp)
592 	register struct buf *bp;
593 {
594 	register int unit = rdunit(bp->b_dev);
595 	register struct rd_softc *rs = &rd_softc[unit];
596 	register struct size *pinfo = &rs->sc_info->sizes[rdpart(bp->b_dev)];
597 	register struct buf *dp = &rdtab[unit];
598 	register daddr_t bn;
599 	register int sz, s;
600 
601 #ifdef DEBUG
602 	if (rddebug & RDB_FOLLOW)
603 		printf("rdstrategy(%x): dev %x, bn %x, bcount %x, %c\n",
604 		       bp, bp->b_dev, bp->b_blkno, bp->b_bcount,
605 		       (bp->b_flags & B_READ) ? 'R' : 'W');
606 #endif
607 	bn = bp->b_blkno;
608 	sz = howmany(bp->b_bcount, DEV_BSIZE);
609 	if (bn < 0 || bn + sz > pinfo->nblocks) {
610 		sz = pinfo->nblocks - bn;
611 		if (sz == 0) {
612 			bp->b_resid = bp->b_bcount;
613 			goto done;
614 		}
615 		if (sz < 0) {
616 			bp->b_error = EINVAL;
617 			bp->b_flags |= B_ERROR;
618 			goto done;
619 		}
620 		bp->b_bcount = dbtob(sz);
621 	}
622 	bp->b_cylin = bn / rs->sc_info->nbpc + pinfo->cyloff;
623 	s = splbio();
624 	disksort(dp, bp);
625 	if (dp->b_active == 0) {
626 		dp->b_active = 1;
627 		rdustart(unit);
628 	}
629 	splx(s);
630 	return;
631 done:
632 	biodone(bp);
633 }
634 
635 /*
636  * Called from timeout() when handling maintenance releases
637  */
638 rdrestart(unit)
639 	int unit;
640 {
641 	int s = splbio();
642 	rdustart(unit);
643 	splx(s);
644 }
645 
646 rdustart(unit)
647 	register int unit;
648 {
649 	register struct buf *bp;
650 	register struct rd_softc *rs = &rd_softc[unit];
651 
652 	bp = rdtab[unit].b_actf;
653 	rs->sc_addr = bp->b_un.b_addr;
654 	rs->sc_resid = bp->b_bcount;
655 	if (hpibreq(&rs->sc_dq))
656 		rdstart(unit);
657 }
658 
659 rdstart(unit)
660 	register int unit;
661 {
662 	register struct rd_softc *rs = &rd_softc[unit];
663 	register struct buf *bp = rdtab[unit].b_actf;
664 	register struct hp_device *hp = rs->sc_hd;
665 	register int part;
666 
667 again:
668 #ifdef DEBUG
669 	if (rddebug & RDB_FOLLOW)
670 		printf("rdstart(%d): bp %x, %c\n", unit, bp,
671 		       (bp->b_flags & B_READ) ? 'R' : 'W');
672 #endif
673 	part = rdpart(bp->b_dev);
674 	rs->sc_flags |= RDF_SEEK;
675 	rs->sc_ioc.c_unit = C_SUNIT(rs->sc_punit);
676 	rs->sc_ioc.c_volume = C_SVOL(0);
677 	rs->sc_ioc.c_saddr = C_SADDR;
678 	rs->sc_ioc.c_hiaddr = 0;
679 	rs->sc_ioc.c_addr = RDBTOS(bp->b_blkno + rs->sc_info->nbpc *
680 		rs->sc_info->sizes[part].cyloff);
681 	rs->sc_ioc.c_nop2 = C_NOP;
682 	rs->sc_ioc.c_slen = C_SLEN;
683 	rs->sc_ioc.c_len = rs->sc_resid;
684 	rs->sc_ioc.c_cmd = bp->b_flags & B_READ ? C_READ : C_WRITE;
685 #ifdef DEBUG
686 	if (rddebug & RDB_IO)
687 		printf("rdstart: hpibsend(%x, %x, %x, %x, %x)\n",
688 		       hp->hp_ctlr, hp->hp_slave, C_CMD,
689 		       &rs->sc_ioc.c_unit, sizeof(rs->sc_ioc)-2);
690 #endif
691 	if (hpibsend(hp->hp_ctlr, hp->hp_slave, C_CMD, &rs->sc_ioc.c_unit,
692 		     sizeof(rs->sc_ioc)-2) == sizeof(rs->sc_ioc)-2) {
693 		if (hp->hp_dk >= 0) {
694 			dk_busy |= 1 << hp->hp_dk;
695 			dk_seek[hp->hp_dk]++;
696 		}
697 #ifdef DEBUG
698 		if (rddebug & RDB_IO)
699 			printf("rdstart: hpibawait(%x)\n", hp->hp_ctlr);
700 #endif
701 		hpibawait(hp->hp_ctlr);
702 		return;
703 	}
704 	/*
705 	 * Experience has shown that the hpibwait in this hpibsend will
706 	 * occasionally timeout.  It appears to occur mostly on old 7914
707 	 * drives with full maintenance tracks.  We should probably
708 	 * integrate this with the backoff code in rderror.
709 	 */
710 #ifdef DEBUG
711 	if (rddebug & RDB_ERROR)
712 		printf("rd%d: rdstart: cmd %x adr %d blk %d len %d ecnt %d\n",
713 		       unit, rs->sc_ioc.c_cmd, rs->sc_ioc.c_addr,
714 		       bp->b_blkno, rs->sc_resid, rdtab[unit].b_errcnt);
715 	rdstats[unit].rdretries++;
716 #endif
717 	rs->sc_flags &= ~RDF_SEEK;
718 	rdreset(rs, hp);
719 	if (rdtab[unit].b_errcnt++ < RDRETRY)
720 		goto again;
721 	printf("rd%d: rdstart err: cmd 0x%x sect %d blk %d len %d\n",
722 	       unit, rs->sc_ioc.c_cmd, rs->sc_ioc.c_addr,
723 	       bp->b_blkno, rs->sc_resid);
724 	rdtab[unit].b_errcnt = 0;
725 	rdtab[unit].b_actf = bp->b_actf;
726 	bp->b_flags |= B_ERROR;
727 	bp->b_error = EIO;
728 	bp->b_resid = 0;
729 	biodone(bp);
730 	hpibfree(&rs->sc_dq);
731 	bp = rdtab[unit].b_actf;
732 	if (bp == NULL) {
733 		rdtab[unit].b_active = 0;
734 		return;
735 	}
736 	rs->sc_addr = bp->b_un.b_addr;
737 	rs->sc_resid = bp->b_bcount;
738 	if (hpibreq(&rs->sc_dq))
739 		goto again;
740 }
741 
742 rdgo(unit)
743 	register int unit;
744 {
745 	register struct rd_softc *rs = &rd_softc[unit];
746 	register struct hp_device *hp = rs->sc_hd;
747 	struct buf *bp = rdtab[unit].b_actf;
748 
749 	if (hp->hp_dk >= 0) {
750 		dk_busy |= 1 << hp->hp_dk;
751 		dk_xfer[hp->hp_dk]++;
752 		dk_wds[hp->hp_dk] += rs->sc_resid >> 6;
753 	}
754 	hpibgo(hp->hp_ctlr, hp->hp_slave, C_EXEC,
755 	       rs->sc_addr, rs->sc_resid, bp->b_flags & B_READ);
756 }
757 
758 rdintr(unit)
759 	register int unit;
760 {
761 	register struct rd_softc *rs = &rd_softc[unit];
762 	register struct buf *bp = rdtab[unit].b_actf;
763 	register struct hp_device *hp = rs->sc_hd;
764 	u_char stat = 13;	/* in case hpibrecv fails */
765 	int rv, restart;
766 
767 #ifdef DEBUG
768 	if (rddebug & RDB_FOLLOW)
769 		printf("rdintr(%d): bp %x, %c, flags %x\n", unit, bp,
770 		       (bp->b_flags & B_READ) ? 'R' : 'W', rs->sc_flags);
771 	if (bp == NULL) {
772 		printf("rd%d: bp == NULL\n", unit);
773 		return;
774 	}
775 #endif
776 	if (hp->hp_dk >= 0)
777 		dk_busy &= ~(1 << hp->hp_dk);
778 	if (rs->sc_flags & RDF_SEEK) {
779 		rs->sc_flags &= ~RDF_SEEK;
780 		if (hpibustart(hp->hp_ctlr))
781 			rdgo(unit);
782 		return;
783 	}
784 	if ((rs->sc_flags & RDF_SWAIT) == 0) {
785 #ifdef DEBUG
786 		rdstats[unit].rdpolltries++;
787 #endif
788 		if (hpibpptest(hp->hp_ctlr, hp->hp_slave) == 0) {
789 #ifdef DEBUG
790 			rdstats[unit].rdpollwaits++;
791 #endif
792 			if (hp->hp_dk >= 0)
793 				dk_busy |= 1 << hp->hp_dk;
794 			rs->sc_flags |= RDF_SWAIT;
795 			hpibawait(hp->hp_ctlr);
796 			return;
797 		}
798 	} else
799 		rs->sc_flags &= ~RDF_SWAIT;
800 	rv = hpibrecv(hp->hp_ctlr, hp->hp_slave, C_QSTAT, &stat, 1);
801 	if (rv != 1 || stat) {
802 #ifdef DEBUG
803 		if (rddebug & RDB_ERROR)
804 			printf("rdintr: recv failed or bad stat %d\n", stat);
805 #endif
806 		restart = rderror(unit);
807 #ifdef DEBUG
808 		rdstats[unit].rdretries++;
809 #endif
810 		if (rdtab[unit].b_errcnt++ < RDRETRY) {
811 			if (restart)
812 				rdstart(unit);
813 			return;
814 		}
815 		bp->b_flags |= B_ERROR;
816 		bp->b_error = EIO;
817 	}
818 	rdtab[unit].b_errcnt = 0;
819 	rdtab[unit].b_actf = bp->b_actf;
820 	bp->b_resid = 0;
821 	biodone(bp);
822 	hpibfree(&rs->sc_dq);
823 	if (rdtab[unit].b_actf)
824 		rdustart(unit);
825 	else
826 		rdtab[unit].b_active = 0;
827 }
828 
829 rdstatus(rs)
830 	register struct rd_softc *rs;
831 {
832 	register int c, s;
833 	u_char stat;
834 	int rv;
835 
836 	c = rs->sc_hd->hp_ctlr;
837 	s = rs->sc_hd->hp_slave;
838 	rs->sc_rsc.c_unit = C_SUNIT(rs->sc_punit);
839 	rs->sc_rsc.c_sram = C_SRAM;
840 	rs->sc_rsc.c_ram = C_RAM;
841 	rs->sc_rsc.c_cmd = C_STATUS;
842 	bzero((caddr_t)&rs->sc_stat, sizeof(rs->sc_stat));
843 	rv = hpibsend(c, s, C_CMD, &rs->sc_rsc, sizeof(rs->sc_rsc));
844 	if (rv != sizeof(rs->sc_rsc)) {
845 #ifdef DEBUG
846 		if (rddebug & RDB_STATUS)
847 			printf("rdstatus: send C_CMD failed %d != %d\n",
848 			       rv, sizeof(rs->sc_rsc));
849 #endif
850 		return(1);
851 	}
852 	rv = hpibrecv(c, s, C_EXEC, &rs->sc_stat, sizeof(rs->sc_stat));
853 	if (rv != sizeof(rs->sc_stat)) {
854 #ifdef DEBUG
855 		if (rddebug & RDB_STATUS)
856 			printf("rdstatus: send C_EXEC failed %d != %d\n",
857 			       rv, sizeof(rs->sc_stat));
858 #endif
859 		return(1);
860 	}
861 	rv = hpibrecv(c, s, C_QSTAT, &stat, 1);
862 	if (rv != 1 || stat) {
863 #ifdef DEBUG
864 		if (rddebug & RDB_STATUS)
865 			printf("rdstatus: recv failed %d or bad stat %d\n",
866 			       rv, stat);
867 #endif
868 		return(1);
869 	}
870 	return(0);
871 }
872 
873 /*
874  * Deal with errors.
875  * Returns 1 if request should be restarted,
876  * 0 if we should just quietly give up.
877  */
878 rderror(unit)
879 	int unit;
880 {
881 	struct rd_softc *rs = &rd_softc[unit];
882 	register struct rd_stat *sp;
883 	struct buf *bp;
884 	daddr_t hwbn, pbn;
885 
886 	if (rdstatus(rs)) {
887 #ifdef DEBUG
888 		printf("rd%d: couldn't get status\n", unit);
889 #endif
890 		rdreset(rs, rs->sc_hd);
891 		return(1);
892 	}
893 	sp = &rs->sc_stat;
894 	if (sp->c_fef & FEF_REXMT)
895 		return(1);
896 	if (sp->c_fef & FEF_PF) {
897 		rdreset(rs, rs->sc_hd);
898 		return(1);
899 	}
900 	/*
901 	 * Unit requests release for internal maintenance.
902 	 * We just delay awhile and try again later.  Use expontially
903 	 * increasing backoff ala ethernet drivers since we don't really
904 	 * know how long the maintenance will take.  With RDWAITC and
905 	 * RDRETRY as defined, the range is 1 to 32 seconds.
906 	 */
907 	if (sp->c_fef & FEF_IMR) {
908 		extern int hz;
909 		int rdtimo = RDWAITC << rdtab[unit].b_errcnt;
910 #ifdef DEBUG
911 		printf("rd%d: internal maintenance, %d second timeout\n",
912 		       unit, rdtimo);
913 		rdstats[unit].rdtimeouts++;
914 #endif
915 		hpibfree(&rs->sc_dq);
916 		timeout(rdrestart, unit, rdtimo*hz);
917 		return(0);
918 	}
919 	/*
920 	 * Only report error if we have reached the error reporting
921 	 * threshhold.  By default, this will only report after the
922 	 * retry limit has been exceeded.
923 	 */
924 	if (rdtab[unit].b_errcnt < rderrthresh)
925 		return(1);
926 
927 	/*
928 	 * First conjure up the block number at which the error occured.
929 	 * Note that not all errors report a block number, in that case
930 	 * we just use b_blkno.
931  	 */
932 	bp = rdtab[unit].b_actf;
933 	pbn = rs->sc_info->nbpc *
934 		rs->sc_info->sizes[rdpart(bp->b_dev)].cyloff;
935 	if ((sp->c_fef & FEF_CU) || (sp->c_fef & FEF_DR) ||
936 	    (sp->c_ief & IEF_RRMASK)) {
937 		hwbn = RDBTOS(pbn + bp->b_blkno);
938 		pbn = bp->b_blkno;
939 	} else {
940 		hwbn = sp->c_blk;
941 		pbn = RDSTOB(hwbn) - pbn;
942 	}
943 	/*
944 	 * Now output a generic message suitable for badsect.
945 	 * Note that we don't use harderr cuz it just prints
946 	 * out b_blkno which is just the beginning block number
947 	 * of the transfer, not necessary where the error occured.
948 	 */
949 	printf("rd%d%c: hard error sn%d\n",
950 	       rdunit(bp->b_dev), 'a'+rdpart(bp->b_dev), pbn);
951 	/*
952 	 * Now report the status as returned by the hardware with
953 	 * attempt at interpretation (unless debugging).
954 	 */
955 	printf("rd%d %s error:",
956 	       unit, (bp->b_flags & B_READ) ? "read" : "write");
957 #ifdef DEBUG
958 	if (rddebug & RDB_ERROR) {
959 		/* status info */
960 		printf("\n    volume: %d, unit: %d\n",
961 		       (sp->c_vu>>4)&0xF, sp->c_vu&0xF);
962 		rdprinterr("reject", sp->c_ref, err_reject);
963 		rdprinterr("fault", sp->c_fef, err_fault);
964 		rdprinterr("access", sp->c_aef, err_access);
965 		rdprinterr("info", sp->c_ief, err_info);
966 		printf("    block: %d, P1-P10: ", hwbn);
967 		printf("%s", hexstr(*(u_int *)&sp->c_raw[0], 8));
968 		printf("%s", hexstr(*(u_int *)&sp->c_raw[4], 8));
969 		printf("%s\n", hexstr(*(u_short *)&sp->c_raw[8], 4));
970 		/* command */
971 		printf("    ioc: ");
972 		printf("%s", hexstr(*(u_int *)&rs->sc_ioc.c_pad, 8));
973 		printf("%s", hexstr(*(u_short *)&rs->sc_ioc.c_hiaddr, 4));
974 		printf("%s", hexstr(*(u_int *)&rs->sc_ioc.c_addr, 8));
975 		printf("%s", hexstr(*(u_short *)&rs->sc_ioc.c_nop2, 4));
976 		printf("%s", hexstr(*(u_int *)&rs->sc_ioc.c_len, 8));
977 		printf("%s\n", hexstr(*(u_short *)&rs->sc_ioc.c_cmd, 4));
978 		return(1);
979 	}
980 #endif
981 	printf(" v%d u%d, R0x%x F0x%x A0x%x I0x%x\n",
982 	       (sp->c_vu>>4)&0xF, sp->c_vu&0xF,
983 	       sp->c_ref, sp->c_fef, sp->c_aef, sp->c_ief);
984 	printf("P1-P10: ");
985 	printf("%s", hexstr(*(u_int *)&sp->c_raw[0], 8));
986 	printf("%s", hexstr(*(u_int *)&sp->c_raw[4], 8));
987 	printf("%s\n", hexstr(*(u_short *)&sp->c_raw[8], 4));
988 	return(1);
989 }
990 
991 int
992 rdread(dev, uio, flags)
993 	dev_t dev;
994 	struct uio *uio;
995 	int flags;
996 {
997 	register int unit = rdunit(dev);
998 
999 	return (physio(rdstrategy, NULL, dev, B_READ, minphys, uio));
1000 }
1001 
1002 int
1003 rdwrite(dev, uio, flags)
1004 	dev_t dev;
1005 	struct uio *uio;
1006 	int flags;
1007 {
1008 	register int unit = rdunit(dev);
1009 
1010 	return (physio(rdstrategy, NULL, dev, B_WRITE, minphys, uio));
1011 }
1012 
1013 int
1014 rdioctl(dev, cmd, data, flag, p)
1015 	dev_t dev;
1016 	int cmd;
1017 	caddr_t data;
1018 	int flag;
1019 	struct proc *p;
1020 {
1021 	return(EINVAL);
1022 }
1023 
1024 int
1025 rdsize(dev)
1026 	dev_t dev;
1027 {
1028 	register int unit = rdunit(dev);
1029 	register struct rd_softc *rs = &rd_softc[unit];
1030 
1031 	if (unit >= NRD || (rs->sc_flags & RDF_ALIVE) == 0)
1032 		return(-1);
1033 	return(rs->sc_info->sizes[rdpart(dev)].nblocks);
1034 }
1035 
1036 #ifdef DEBUG
1037 rdprinterr(str, err, tab)
1038 	char *str;
1039 	short err;
1040 	char *tab[];
1041 {
1042 	register int i;
1043 	int printed;
1044 
1045 	if (err == 0)
1046 		return;
1047 	printf("    %s error field:", str, err);
1048 	printed = 0;
1049 	for (i = 0; i < 16; i++)
1050 		if (err & (0x8000 >> i))
1051 			printf("%s%s", printed++ ? " + " : " ", tab[i]);
1052 	printf("\n");
1053 }
1054 #endif
1055 
1056 /*
1057  * Non-interrupt driven, non-dma dump routine.
1058  */
1059 int
1060 rddump(dev)
1061 	dev_t dev;
1062 {
1063 	int part = rdpart(dev);
1064 	int unit = rdunit(dev);
1065 	register struct rd_softc *rs = &rd_softc[unit];
1066 	register struct hp_device *hp = rs->sc_hd;
1067 	register daddr_t baddr;
1068 	register int maddr, pages, i;
1069 	char stat;
1070 	extern int lowram, dumpsize;
1071 #ifdef DEBUG
1072 	extern int pmapdebug;
1073 	pmapdebug = 0;
1074 #endif
1075 
1076 	pages = dumpsize;
1077 #ifdef DEBUG
1078 	if (rddebug & RDB_DUMP)
1079 		printf("rddump(%x): u %d p %d dumplo %d ram %x pmem %d\n",
1080 		       dev, unit, part, dumplo, lowram, ctod(pages));
1081 #endif
1082 	/* is drive ok? */
1083 	if (unit >= NRD || (rs->sc_flags & RDF_ALIVE) == 0)
1084 		return (ENXIO);
1085 	/* HPIB idle? */
1086 	if (!hpibreq(&rs->sc_dq)) {
1087 #ifdef DEBUG
1088 		/* is this a safe thing to do?? */
1089 		hpibreset(hp->hp_ctlr);
1090 		rdreset(rs, rs->sc_hd);
1091 		printf("[ drive %d reset ] ", unit);
1092 #else
1093 		return (EFAULT);
1094 #endif
1095 	}
1096 	/* dump parameters in range? */
1097 	if (dumplo < 0 || dumplo >= rs->sc_info->sizes[part].nblocks)
1098 		return (EINVAL);
1099 	if (dumplo + ctod(pages) > rs->sc_info->sizes[part].nblocks)
1100 		pages = dtoc(rs->sc_info->sizes[part].nblocks - dumplo);
1101 	maddr = lowram;
1102 	baddr = dumplo + rs->sc_info->nbpc * rs->sc_info->sizes[part].cyloff;
1103 #ifdef DEBUG
1104 	if (rddebug & RDB_DUMP)
1105 		printf("rddump: dumping %d pages from %x to disk block %d\n",
1106 		       pages, maddr, baddr);
1107 #endif
1108 	for (i = 0; i < pages; i++) {
1109 #ifdef DEBUG
1110 #define NPGMB	(1024*1024/NBPG)
1111 		/* print out how many Mbs we have dumped */
1112 		if (i && (i % NPGMB) == 0)
1113 			printf("%d ", i / NPGMB);
1114 #undef NPBMG
1115 #endif
1116 		rs->sc_ioc.c_unit = C_SUNIT(rs->sc_punit);
1117 		rs->sc_ioc.c_volume = C_SVOL(0);
1118 		rs->sc_ioc.c_saddr = C_SADDR;
1119 		rs->sc_ioc.c_hiaddr = 0;
1120 		rs->sc_ioc.c_addr = RDBTOS(baddr);
1121 		rs->sc_ioc.c_nop2 = C_NOP;
1122 		rs->sc_ioc.c_slen = C_SLEN;
1123 		rs->sc_ioc.c_len = NBPG;
1124 		rs->sc_ioc.c_cmd = C_WRITE;
1125 		hpibsend(hp->hp_ctlr, hp->hp_slave, C_CMD,
1126 			 &rs->sc_ioc.c_unit, sizeof(rs->sc_ioc)-2);
1127 		if (hpibswait(hp->hp_ctlr, hp->hp_slave)) {
1128 #ifdef DEBUG
1129 			if (rddebug & RDB_DUMP)
1130 				printf("rddump: IOC wait timeout\n");
1131 #endif
1132 			return (EIO);
1133 		}
1134 		pmap_enter(kernel_pmap, (vm_offset_t)vmmap, maddr,
1135 		    VM_PROT_READ, TRUE);
1136 		hpibsend(hp->hp_ctlr, hp->hp_slave, C_EXEC, vmmap, NBPG);
1137 		if (hpibswait(hp->hp_ctlr, hp->hp_slave)) {
1138 #ifdef DEBUG
1139 			if (rddebug & RDB_DUMP)
1140 				printf("rddump: write wait timeout\n");
1141 #endif
1142 		}
1143 		hpibrecv(hp->hp_ctlr, hp->hp_slave, C_QSTAT, &stat, 1);
1144 		if (stat) {
1145 #ifdef DEBUG
1146 			if (rddebug & RDB_DUMP)
1147 				printf("rddump: write failed, status %x\n",
1148 				       stat);
1149 #endif
1150 			return (EIO);
1151 		}
1152 		maddr += NBPG;
1153 		baddr += ctod(1);
1154 	}
1155 	return (0);
1156 }
1157 #endif
1158