btl.c revision 1.1.1.2 1 1.1 soda /* $NetBSD: btl.c,v 1.1.1.2 2000/02/22 11:05:11 soda Exp $ */
2 1.1 soda
3 1.1 soda #undef BTDIAG
4 1.1 soda #define integrate
5 1.1 soda
6 1.1 soda /*
7 1.1 soda * Copyright (c) 1994, 1996 Charles M. Hannum. All rights reserved.
8 1.1 soda *
9 1.1 soda * Redistribution and use in source and binary forms, with or without
10 1.1 soda * modification, are permitted provided that the following conditions
11 1.1 soda * are met:
12 1.1 soda * 1. Redistributions of source code must retain the above copyright
13 1.1 soda * notice, this list of conditions and the following disclaimer.
14 1.1 soda * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 soda * notice, this list of conditions and the following disclaimer in the
16 1.1 soda * documentation and/or other materials provided with the distribution.
17 1.1 soda * 3. All advertising materials mentioning features or use of this software
18 1.1 soda * must display the following acknowledgement:
19 1.1 soda * This product includes software developed by Charles M. Hannum.
20 1.1 soda * 4. The name of the author may not be used to endorse or promote products
21 1.1 soda * derived from this software without specific prior written permission.
22 1.1 soda *
23 1.1 soda * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 1.1 soda * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 1.1 soda * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.1 soda * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 1.1 soda * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 1.1 soda * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 1.1 soda * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 1.1 soda * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 1.1 soda * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 1.1 soda * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 1.1 soda */
34 1.1 soda
35 1.1 soda /*
36 1.1 soda * Originally written by Julian Elischer (julian (at) tfs.com)
37 1.1 soda * for TRW Financial Systems for use under the MACH(2.5) operating system.
38 1.1 soda *
39 1.1 soda * TRW Financial Systems, in accordance with their agreement with Carnegie
40 1.1 soda * Mellon University, makes this software available to CMU to distribute
41 1.1 soda * or use in any manner that they see fit as long as this message is kept with
42 1.1 soda * the software. For this reason TFS also grants any other persons or
43 1.1 soda * organisations permission to use or modify this software.
44 1.1 soda *
45 1.1 soda * TFS supplies this software to be publicly redistributed
46 1.1 soda * on the understanding that TFS is not responsible for the correct
47 1.1 soda * functioning of this software in any circumstances.
48 1.1 soda */
49 1.1 soda
50 1.1 soda #include <sys/types.h>
51 1.1 soda #include <sys/param.h>
52 1.1 soda #include <sys/systm.h>
53 1.1 soda #include <sys/kernel.h>
54 1.1 soda #include <sys/errno.h>
55 1.1 soda #include <sys/malloc.h>
56 1.1 soda #include <sys/ioctl.h>
57 1.1 soda #include <sys/device.h>
58 1.1 soda #include <sys/buf.h>
59 1.1 soda #include <sys/proc.h>
60 1.1 soda #include <sys/user.h>
61 1.1 soda
62 1.1 soda #include <machine/intr.h>
63 1.1 soda #include <machine/pio.h>
64 1.1 soda
65 1.1 soda #include <arc/dti/desktech.h>
66 1.1 soda
67 1.1 soda #include <scsi/scsi_all.h>
68 1.1 soda #include <scsi/scsiconf.h>
69 1.1 soda
70 1.1 soda #include <dev/isa/isavar.h>
71 1.1 soda #include <arc/dti/btlreg.h>
72 1.1.1.2 soda #include <mips/archtype.h> /* XXX for cpu types */
73 1.1 soda
74 1.1 soda #ifndef DDB
75 1.1 soda #define Debugger() panic("should call debugger here (bt742a.c)")
76 1.1 soda #endif /* ! DDB */
77 1.1 soda
78 1.1 soda /*
79 1.1 soda * Mail box defs etc.
80 1.1 soda * these could be bigger but we need the bt_softc to fit on a single page..
81 1.1 soda */
82 1.1 soda #define BT_MBX_SIZE 32 /* mail box size (MAX 255 MBxs) */
83 1.1 soda /* don't need that many really */
84 1.1 soda #define BT_CCB_MAX 32 /* store up to 32 CCBs at one time */
85 1.1 soda #define CCB_HASH_SIZE 32 /* hash table size for phystokv */
86 1.1 soda #define CCB_HASH_SHIFT 9
87 1.1 soda #define CCB_HASH(x) ((((long)(x))>>CCB_HASH_SHIFT) & (CCB_HASH_SIZE - 1))
88 1.1 soda
89 1.1 soda #define bt_nextmbx(wmb, mbx, mbio) \
90 1.1 soda if ((wmb) == &(mbx)->mbio[BT_MBX_SIZE - 1]) \
91 1.1 soda (wmb) = &(mbx)->mbio[0]; \
92 1.1 soda else \
93 1.1 soda (wmb)++;
94 1.1 soda
95 1.1 soda struct bt_mbx {
96 1.1 soda struct bt_mbx_out mbo[BT_MBX_SIZE];
97 1.1 soda struct bt_mbx_in mbi[BT_MBX_SIZE];
98 1.1 soda struct bt_mbx_out *cmbo; /* Collection Mail Box out */
99 1.1 soda struct bt_mbx_out *tmbo; /* Target Mail Box out */
100 1.1 soda struct bt_mbx_in *tmbi; /* Target Mail Box in */
101 1.1 soda };
102 1.1 soda
103 1.1.1.2 soda #define KVTOPHYS(x) ((system_type == DESKSTATION_TYNE) ? \
104 1.1 soda (((int)(x) & 0x7fffff) | 0x800000) : ((int)(x)))
105 1.1.1.2 soda #define PHYSTOKV(x) ((system_type == DESKSTATION_TYNE) ? \
106 1.1 soda (((int)(x) & 0x7fffff) | TYNE_V_BOUNCE) : ((int)(x)))
107 1.1 soda
108 1.1 soda #include "aha.h"
109 1.1 soda #include "btl.h"
110 1.1 soda #if NAHA > 0
111 1.1 soda int btports[NBT];
112 1.1 soda int nbtports;
113 1.1 soda #endif
114 1.1 soda
115 1.1 soda struct bt_softc {
116 1.1 soda struct device sc_dev;
117 1.1 soda struct isadev sc_id;
118 1.1 soda void *sc_ih;
119 1.1 soda
120 1.1 soda int sc_iobase;
121 1.1 soda int sc_irq, sc_drq;
122 1.1 soda
123 1.1 soda char sc_model[7],
124 1.1 soda sc_firmware[6];
125 1.1 soda
126 1.1 soda struct bt_mbx *sc_mbx; /* all our mailboxes */
127 1.1 soda #define wmbx (sc->sc_mbx)
128 1.1 soda struct bt_ccb *sc_ccbhash[CCB_HASH_SIZE];
129 1.1 soda TAILQ_HEAD(, bt_ccb) sc_free_ccb, sc_waiting_ccb;
130 1.1 soda TAILQ_HEAD(, bt_buf) sc_free_buf;
131 1.1 soda int sc_numccbs, sc_mbofull;
132 1.1 soda int sc_numbufs;
133 1.1 soda int sc_scsi_dev; /* adapters scsi id */
134 1.1 soda struct scsi_link sc_link; /* prototype for devs */
135 1.1 soda };
136 1.1 soda
137 1.1 soda #ifdef BTDEBUG
138 1.1 soda int bt_debug = 0;
139 1.1 soda #endif /* BTDEBUG */
140 1.1 soda
141 1.1 soda int bt_cmd __P((int, struct bt_softc *, int, u_char *, int, u_char *));
142 1.1 soda integrate void bt_finish_ccbs __P((struct bt_softc *));
143 1.1 soda int btintr __P((void *));
144 1.1 soda integrate void bt_reset_ccb __P((struct bt_softc *, struct bt_ccb *));
145 1.1 soda void bt_free_ccb __P((struct bt_softc *, struct bt_ccb *));
146 1.1 soda integrate void bt_init_ccb __P((struct bt_softc *, struct bt_ccb *));
147 1.1 soda struct bt_ccb *bt_get_ccb __P((struct bt_softc *, int));
148 1.1 soda struct bt_ccb *bt_ccb_phys_kv __P((struct bt_softc *, u_long));
149 1.1 soda void bt_queue_ccb __P((struct bt_softc *, struct bt_ccb *));
150 1.1 soda void bt_collect_mbo __P((struct bt_softc *));
151 1.1 soda void bt_start_ccbs __P((struct bt_softc *));
152 1.1 soda void bt_done __P((struct bt_softc *, struct bt_ccb *));
153 1.1 soda int bt_find __P((struct isa_attach_args *, struct bt_softc *));
154 1.1 soda void bt_init __P((struct bt_softc *));
155 1.1 soda void bt_inquire_setup_information __P((struct bt_softc *));
156 1.1 soda void btminphys __P((struct buf *));
157 1.1 soda int bt_scsi_cmd __P((struct scsi_xfer *));
158 1.1 soda int bt_poll __P((struct bt_softc *, struct scsi_xfer *, int));
159 1.1 soda void bt_timeout __P((void *arg));
160 1.1 soda void bt_free_buf __P((struct bt_softc *, struct bt_buf *));
161 1.1 soda struct bt_buf * bt_get_buf __P((struct bt_softc *, int));
162 1.1 soda
163 1.1 soda struct scsi_adapter bt_switch = {
164 1.1 soda bt_scsi_cmd,
165 1.1 soda btminphys,
166 1.1 soda 0,
167 1.1 soda 0,
168 1.1 soda };
169 1.1 soda
170 1.1 soda /* XXX static buffer as a kludge. DMA isn't cache coherent on the rpc44, so
171 1.1 soda * we always use uncached buffers for DMA. */
172 1.1 soda static char rpc44_buffer[ TYNE_S_BOUNCE ];
173 1.1 soda
174 1.1 soda /* the below structure is so we have a default dev struct for out link struct */
175 1.1 soda struct scsi_device bt_dev = {
176 1.1 soda NULL, /* Use default error handler */
177 1.1 soda NULL, /* have a queue, served by this */
178 1.1 soda NULL, /* have no async handler */
179 1.1 soda NULL, /* Use default 'done' routine */
180 1.1 soda };
181 1.1 soda
182 1.1 soda int btprobe __P((struct device *, void *, void *));
183 1.1 soda void btattach __P((struct device *, struct device *, void *));
184 1.1 soda int btprint __P((void *, const char *));
185 1.1 soda
186 1.1 soda struct cfattach btl_ca = {
187 1.1 soda sizeof(struct bt_softc), btprobe, btattach
188 1.1 soda };
189 1.1 soda
190 1.1 soda struct cfdriver btl_cd = {
191 1.1 soda NULL, "bt", DV_DULL
192 1.1 soda };
193 1.1 soda
194 1.1 soda #define BT_RESET_TIMEOUT 2000 /* time to wait for reset (mSec) */
195 1.1 soda #define BT_ABORT_TIMEOUT 2000 /* time to wait for abort (mSec) */
196 1.1 soda
197 1.1 soda /*
198 1.1 soda * bt_cmd(iobase, sc, icnt, ibuf, ocnt, obuf)
199 1.1 soda *
200 1.1 soda * Activate Adapter command
201 1.1 soda * icnt: number of args (outbound bytes including opcode)
202 1.1 soda * ibuf: argument buffer
203 1.1 soda * ocnt: number of expected returned bytes
204 1.1 soda * obuf: result buffer
205 1.1 soda * wait: number of seconds to wait for response
206 1.1 soda *
207 1.1 soda * Performs an adapter command through the ports. Not to be confused with a
208 1.1 soda * scsi command, which is read in via the dma; one of the adapter commands
209 1.1 soda * tells it to read in a scsi command.
210 1.1 soda */
211 1.1 soda int
212 1.1 soda bt_cmd(iobase, sc, icnt, ibuf, ocnt, obuf)
213 1.1 soda int iobase;
214 1.1 soda struct bt_softc *sc;
215 1.1 soda int icnt, ocnt;
216 1.1 soda u_char *ibuf, *obuf;
217 1.1 soda {
218 1.1 soda const char *name;
219 1.1 soda register int i;
220 1.1 soda int wait;
221 1.1 soda u_char sts;
222 1.1 soda u_char opcode = ibuf[0];
223 1.1 soda
224 1.1 soda if (sc != NULL)
225 1.1 soda name = sc->sc_dev.dv_xname;
226 1.1 soda else
227 1.1 soda name = "(bt probe)";
228 1.1 soda
229 1.1 soda /*
230 1.1 soda * Calculate a reasonable timeout for the command.
231 1.1 soda */
232 1.1 soda switch (opcode) {
233 1.1 soda case BT_INQUIRE_DEVICES:
234 1.1 soda wait = 15 * 20000;
235 1.1 soda break;
236 1.1 soda default:
237 1.1 soda wait = 1 * 20000;
238 1.1 soda break;
239 1.1 soda }
240 1.1 soda
241 1.1 soda /*
242 1.1 soda * Wait for the adapter to go idle, unless it's one of
243 1.1 soda * the commands which don't need this
244 1.1 soda */
245 1.1 soda if (opcode != BT_MBO_INTR_EN) {
246 1.1 soda for (i = 20000; i; i--) { /* 1 sec? */
247 1.1 soda sts = isa_inb(iobase + BT_STAT_PORT);
248 1.1 soda if (sts & BT_STAT_IDLE)
249 1.1 soda break;
250 1.1 soda delay(50);
251 1.1 soda }
252 1.1 soda if (!i) {
253 1.1 soda printf("%s: bt_cmd, host not idle(0x%x)\n",
254 1.1 soda name, sts);
255 1.1 soda return ENXIO;
256 1.1 soda }
257 1.1 soda }
258 1.1 soda /*
259 1.1 soda * Now that it is idle, if we expect output, preflush the
260 1.1 soda * queue feeding to us.
261 1.1 soda */
262 1.1 soda if (ocnt) {
263 1.1 soda while ((isa_inb(iobase + BT_STAT_PORT)) & BT_STAT_DF)
264 1.1 soda isa_inb(iobase + BT_DATA_PORT);
265 1.1 soda }
266 1.1 soda /*
267 1.1 soda * Output the command and the number of arguments given
268 1.1 soda * for each byte, first check the port is empty.
269 1.1 soda */
270 1.1 soda while (icnt--) {
271 1.1 soda for (i = wait; i; i--) {
272 1.1 soda sts = isa_inb(iobase + BT_STAT_PORT);
273 1.1 soda if (!(sts & BT_STAT_CDF))
274 1.1 soda break;
275 1.1 soda delay(50);
276 1.1 soda }
277 1.1 soda if (!i) {
278 1.1 soda if (opcode != BT_INQUIRE_REVISION &&
279 1.1 soda opcode != BT_INQUIRE_REVISION_3)
280 1.1 soda printf("%s: bt_cmd, cmd/data port full\n", name);
281 1.1 soda isa_outb(iobase + BT_CTRL_PORT, BT_CTRL_SRST);
282 1.1 soda return ENXIO;
283 1.1 soda }
284 1.1 soda isa_outb(iobase + BT_CMD_PORT, *ibuf++);
285 1.1 soda }
286 1.1 soda /*
287 1.1 soda * If we expect input, loop that many times, each time,
288 1.1 soda * looking for the data register to have valid data
289 1.1 soda */
290 1.1 soda while (ocnt--) {
291 1.1 soda for (i = wait; i; i--) {
292 1.1 soda sts = isa_inb(iobase + BT_STAT_PORT);
293 1.1 soda if (sts & BT_STAT_DF)
294 1.1 soda break;
295 1.1 soda delay(50);
296 1.1 soda }
297 1.1 soda if (!i) {
298 1.1 soda if (opcode != BT_INQUIRE_REVISION &&
299 1.1 soda opcode != BT_INQUIRE_REVISION_3)
300 1.1 soda printf("%s: bt_cmd, cmd/data port empty %d\n",
301 1.1 soda name, ocnt);
302 1.1 soda isa_outb(iobase + BT_CTRL_PORT, BT_CTRL_SRST);
303 1.1 soda return ENXIO;
304 1.1 soda }
305 1.1 soda *obuf++ = isa_inb(iobase + BT_DATA_PORT);
306 1.1 soda }
307 1.1 soda /*
308 1.1 soda * Wait for the board to report a finished instruction.
309 1.1 soda * We may get an extra interrupt for the HACC signal, but this is
310 1.1 soda * unimportant.
311 1.1 soda */
312 1.1 soda if (opcode != BT_MBO_INTR_EN) {
313 1.1 soda for (i = 20000; i; i--) { /* 1 sec? */
314 1.1 soda sts = isa_inb(iobase + BT_INTR_PORT);
315 1.1 soda /* XXX Need to save this in the interrupt handler? */
316 1.1 soda if (sts & BT_INTR_HACC)
317 1.1 soda break;
318 1.1 soda delay(50);
319 1.1 soda }
320 1.1 soda if (!i) {
321 1.1 soda printf("%s: bt_cmd, host not finished(0x%x)\n",
322 1.1 soda name, sts);
323 1.1 soda return ENXIO;
324 1.1 soda }
325 1.1 soda }
326 1.1 soda isa_outb(iobase + BT_CTRL_PORT, BT_CTRL_IRST);
327 1.1 soda return 0;
328 1.1 soda }
329 1.1 soda
330 1.1 soda /*
331 1.1 soda * Check if the device can be found at the port given
332 1.1 soda * and if so, set it up ready for further work
333 1.1 soda * as an argument, takes the isa_device structure from
334 1.1 soda * autoconf.c
335 1.1 soda */
336 1.1 soda int
337 1.1 soda btprobe(parent, match, aux)
338 1.1 soda struct device *parent;
339 1.1 soda void *match, *aux;
340 1.1 soda {
341 1.1 soda register struct isa_attach_args *ia = aux;
342 1.1 soda
343 1.1 soda #ifdef NEWCONFIG
344 1.1 soda if (ia->ia_iobase == IOBASEUNK)
345 1.1 soda return 0;
346 1.1 soda #endif
347 1.1 soda
348 1.1 soda /* See if there is a unit at this location. */
349 1.1 soda if (bt_find(ia, NULL) != 0)
350 1.1 soda return 0;
351 1.1 soda
352 1.1 soda ia->ia_msize = 0;
353 1.1 soda ia->ia_iosize = 4;
354 1.1 soda /* IRQ and DRQ set by bt_find(). */
355 1.1 soda return 1;
356 1.1 soda }
357 1.1 soda
358 1.1 soda int
359 1.1 soda btprint(aux, name)
360 1.1 soda void *aux;
361 1.1 soda const char *name;
362 1.1 soda {
363 1.1 soda
364 1.1 soda if (name != NULL)
365 1.1 soda printf("%s: scsibus ", name);
366 1.1 soda return UNCONF;
367 1.1 soda }
368 1.1 soda
369 1.1 soda /*
370 1.1 soda * Attach all the sub-devices we can find
371 1.1 soda */
372 1.1 soda void
373 1.1 soda btattach(parent, self, aux)
374 1.1 soda struct device *parent, *self;
375 1.1 soda void *aux;
376 1.1 soda {
377 1.1 soda struct isa_attach_args *ia = aux;
378 1.1 soda struct bt_softc *sc = (void *)self;
379 1.1 soda struct bt_ccb *ccb;
380 1.1 soda struct bt_buf *buf;
381 1.1 soda u_int bouncearea;
382 1.1 soda u_int bouncebase;
383 1.1 soda u_int bouncesize;
384 1.1 soda
385 1.1 soda if (bt_find(ia, sc) != 0)
386 1.1 soda panic("btattach: bt_find of %s failed", self->dv_xname);
387 1.1 soda sc->sc_iobase = ia->ia_iobase;
388 1.1 soda
389 1.1 soda /*
390 1.1 soda * create mbox area
391 1.1 soda */
392 1.1.1.2 soda if (system_type == DESKSTATION_TYNE) {
393 1.1 soda bouncebase = TYNE_V_BOUNCE;
394 1.1 soda bouncesize = TYNE_S_BOUNCE;
395 1.1 soda } else {
396 1.1 soda bouncesize = TYNE_S_BOUNCE; /* Good enough? XXX */
397 1.1 soda /* bouncebase = (u_int) malloc( bouncesize, M_DEVBUF, M_NOWAIT);*/
398 1.1 soda bouncebase = (u_int) rpc44_buffer | 0xa0000000;
399 1.1 soda }
400 1.1 soda bouncearea = bouncebase + sizeof(struct bt_mbx);
401 1.1 soda sc->sc_mbx = (struct bt_mbx *)bouncebase;
402 1.1 soda
403 1.1 soda bt_inquire_setup_information(sc);
404 1.1 soda bt_init(sc);
405 1.1 soda TAILQ_INIT(&sc->sc_free_ccb);
406 1.1 soda TAILQ_INIT(&sc->sc_free_buf);
407 1.1 soda TAILQ_INIT(&sc->sc_waiting_ccb);
408 1.1 soda
409 1.1 soda /*
410 1.1 soda * fill up with ccb's
411 1.1 soda */
412 1.1 soda while (sc->sc_numccbs < BT_CCB_MAX) {
413 1.1 soda ccb = (struct bt_ccb *)bouncearea;
414 1.1 soda bouncearea += sizeof(struct bt_ccb);
415 1.1 soda bt_init_ccb(sc, ccb);
416 1.1 soda TAILQ_INSERT_HEAD(&sc->sc_free_ccb, ccb, chain);
417 1.1 soda sc->sc_numccbs++;
418 1.1 soda }
419 1.1 soda /*
420 1.1 soda * fill up with bufs's
421 1.1 soda */
422 1.1 soda while ((bouncearea + sizeof(struct bt_buf)) < bouncebase + bouncesize) {
423 1.1 soda buf = (struct bt_buf *)bouncearea;
424 1.1 soda bouncearea += sizeof(struct bt_buf);
425 1.1 soda TAILQ_INSERT_HEAD(&sc->sc_free_buf, buf, chain);
426 1.1 soda sc->sc_numbufs++;
427 1.1 soda }
428 1.1 soda /*
429 1.1 soda * fill in the prototype scsi_link.
430 1.1 soda */
431 1.1 soda sc->sc_link.adapter_softc = sc;
432 1.1 soda sc->sc_link.adapter_target = sc->sc_scsi_dev;
433 1.1 soda sc->sc_link.adapter = &bt_switch;
434 1.1 soda sc->sc_link.device = &bt_dev;
435 1.1 soda sc->sc_link.openings = 1;
436 1.1 soda
437 1.1 soda #ifdef NEWCONFIG
438 1.1 soda isa_establish(&sc->sc_id, &sc->sc_dev);
439 1.1 soda #endif
440 1.1 soda sc->sc_ih = isa_intr_establish(ia->ia_ic, sc->sc_irq, IST_EDGE,
441 1.1 soda IPL_BIO, btintr, sc, sc->sc_dev.dv_xname);
442 1.1 soda
443 1.1 soda /*
444 1.1 soda * ask the adapter what subunits are present
445 1.1 soda */
446 1.1 soda config_found(self, &sc->sc_link, btprint);
447 1.1 soda }
448 1.1 soda
449 1.1 soda integrate void
450 1.1 soda bt_finish_ccbs(sc)
451 1.1 soda struct bt_softc *sc;
452 1.1 soda {
453 1.1 soda struct bt_mbx_in *wmbi;
454 1.1 soda struct bt_ccb *ccb;
455 1.1 soda int i;
456 1.1 soda
457 1.1 soda wmbi = wmbx->tmbi;
458 1.1 soda
459 1.1 soda if (wmbi->stat == BT_MBI_FREE) {
460 1.1 soda for (i = 0; i < BT_MBX_SIZE; i++) {
461 1.1 soda if (wmbi->stat != BT_MBI_FREE) {
462 1.1 soda printf("%s: mbi not in round-robin order\n",
463 1.1 soda sc->sc_dev.dv_xname);
464 1.1 soda goto AGAIN;
465 1.1 soda }
466 1.1 soda bt_nextmbx(wmbi, wmbx, mbi);
467 1.1 soda }
468 1.1 soda #ifdef BTDIAGnot
469 1.1 soda printf("%s: mbi interrupt with no full mailboxes\n",
470 1.1 soda sc->sc_dev.dv_xname);
471 1.1 soda #endif
472 1.1 soda return;
473 1.1 soda }
474 1.1 soda
475 1.1 soda AGAIN:
476 1.1 soda do {
477 1.1 soda ccb = bt_ccb_phys_kv(sc, phystol(wmbi->ccb_addr));
478 1.1 soda if (!ccb) {
479 1.1 soda printf("%s: bad mbi ccb pointer; skipping\n",
480 1.1 soda sc->sc_dev.dv_xname);
481 1.1 soda goto next;
482 1.1 soda }
483 1.1 soda
484 1.1 soda #ifdef BTDEBUG
485 1.1 soda if (bt_debug) {
486 1.1 soda u_char *cp = (u_char *) &ccb->scsi_cmd;
487 1.1 soda printf("op=%x %x %x %x %x %x\n",
488 1.1 soda cp[0], cp[1], cp[2], cp[3], cp[4], cp[5]);
489 1.1 soda printf("stat %x for mbi addr = 0x%08x, ",
490 1.1 soda wmbi->stat, wmbi);
491 1.1 soda printf("ccb addr = 0x%x\n", ccb);
492 1.1 soda }
493 1.1 soda #endif /* BTDEBUG */
494 1.1 soda
495 1.1 soda switch (wmbi->stat) {
496 1.1 soda case BT_MBI_OK:
497 1.1 soda case BT_MBI_ERROR:
498 1.1 soda if ((ccb->flags & CCB_ABORT) != 0) {
499 1.1 soda /*
500 1.1 soda * If we already started an abort, wait for it
501 1.1 soda * to complete before clearing the CCB. We
502 1.1 soda * could instead just clear CCB_SENDING, but
503 1.1 soda * what if the mailbox was already received?
504 1.1 soda * The worst that happens here is that we clear
505 1.1 soda * the CCB a bit later than we need to. BFD.
506 1.1 soda */
507 1.1 soda goto next;
508 1.1 soda }
509 1.1 soda break;
510 1.1 soda
511 1.1 soda case BT_MBI_ABORT:
512 1.1 soda case BT_MBI_UNKNOWN:
513 1.1 soda /*
514 1.1 soda * Even if the CCB wasn't found, we clear it anyway.
515 1.1 soda * See preceeding comment.
516 1.1 soda */
517 1.1 soda break;
518 1.1 soda
519 1.1 soda default:
520 1.1 soda printf("%s: bad mbi status %02x; skipping\n",
521 1.1 soda sc->sc_dev.dv_xname, wmbi->stat);
522 1.1 soda goto next;
523 1.1 soda }
524 1.1 soda
525 1.1 soda untimeout(bt_timeout, ccb);
526 1.1 soda bt_done(sc, ccb);
527 1.1 soda
528 1.1 soda next:
529 1.1 soda wmbi->stat = BT_MBI_FREE;
530 1.1 soda bt_nextmbx(wmbi, wmbx, mbi);
531 1.1 soda } while (wmbi->stat != BT_MBI_FREE);
532 1.1 soda
533 1.1 soda wmbx->tmbi = wmbi;
534 1.1 soda }
535 1.1 soda
536 1.1 soda /*
537 1.1 soda * Catch an interrupt from the adaptor
538 1.1 soda */
539 1.1 soda int
540 1.1 soda btintr(arg)
541 1.1 soda void *arg;
542 1.1 soda {
543 1.1 soda struct bt_softc *sc = arg;
544 1.1 soda int iobase = sc->sc_iobase;
545 1.1 soda u_char sts;
546 1.1 soda
547 1.1 soda #ifdef BTDEBUG
548 1.1 soda printf("%s: btintr ", sc->sc_dev.dv_xname);
549 1.1 soda #endif /* BTDEBUG */
550 1.1 soda
551 1.1 soda /*
552 1.1 soda * First acknowlege the interrupt, Then if it's not telling about
553 1.1 soda * a completed operation just return.
554 1.1 soda */
555 1.1 soda sts = isa_inb(iobase + BT_INTR_PORT);
556 1.1 soda if ((sts & BT_INTR_ANYINTR) == 0)
557 1.1 soda return 0;
558 1.1 soda isa_outb(iobase + BT_CTRL_PORT, BT_CTRL_IRST);
559 1.1 soda
560 1.1 soda #ifdef BTDIAG
561 1.1 soda /* Make sure we clear CCB_SENDING before finishing a CCB. */
562 1.1 soda bt_collect_mbo(sc);
563 1.1 soda #endif
564 1.1 soda
565 1.1 soda /* Mail box out empty? */
566 1.1 soda if (sts & BT_INTR_MBOA) {
567 1.1 soda struct bt_toggle toggle;
568 1.1 soda
569 1.1 soda toggle.cmd.opcode = BT_MBO_INTR_EN;
570 1.1 soda toggle.cmd.enable = 0;
571 1.1 soda bt_cmd(iobase, sc, sizeof(toggle.cmd), (u_char *)&toggle.cmd, 0,
572 1.1 soda (u_char *)0);
573 1.1 soda bt_start_ccbs(sc);
574 1.1 soda }
575 1.1 soda
576 1.1 soda /* Mail box in full? */
577 1.1 soda if (sts & BT_INTR_MBIF)
578 1.1 soda bt_finish_ccbs(sc);
579 1.1 soda
580 1.1 soda return 1;
581 1.1 soda }
582 1.1 soda
583 1.1 soda integrate void
584 1.1 soda bt_reset_ccb(sc, ccb)
585 1.1 soda struct bt_softc *sc;
586 1.1 soda struct bt_ccb *ccb;
587 1.1 soda {
588 1.1 soda
589 1.1 soda ccb->flags = 0;
590 1.1 soda }
591 1.1 soda
592 1.1 soda /*
593 1.1 soda * A ccb is put onto the free list.
594 1.1 soda */
595 1.1 soda void
596 1.1 soda bt_free_ccb(sc, ccb)
597 1.1 soda struct bt_softc *sc;
598 1.1 soda struct bt_ccb *ccb;
599 1.1 soda {
600 1.1 soda int s;
601 1.1 soda
602 1.1 soda s = splbio();
603 1.1 soda
604 1.1 soda bt_reset_ccb(sc, ccb);
605 1.1 soda TAILQ_INSERT_HEAD(&sc->sc_free_ccb, ccb, chain);
606 1.1 soda
607 1.1 soda /*
608 1.1 soda * If there were none, wake anybody waiting for one to come free,
609 1.1 soda * starting with queued entries.
610 1.1 soda */
611 1.1 soda if (ccb->chain.tqe_next == 0)
612 1.1 soda wakeup(&sc->sc_free_ccb);
613 1.1 soda
614 1.1 soda splx(s);
615 1.1 soda }
616 1.1 soda
617 1.1 soda /*
618 1.1 soda * A buf is put onto the free list.
619 1.1 soda */
620 1.1 soda void
621 1.1 soda bt_free_buf(sc, buf)
622 1.1 soda struct bt_softc *sc;
623 1.1 soda struct bt_buf *buf;
624 1.1 soda {
625 1.1 soda int s;
626 1.1 soda
627 1.1 soda s = splbio();
628 1.1 soda
629 1.1 soda TAILQ_INSERT_HEAD(&sc->sc_free_buf, buf, chain);
630 1.1 soda sc->sc_numbufs++;
631 1.1 soda
632 1.1 soda /*
633 1.1 soda * If there were none, wake anybody waiting for one to come free,
634 1.1 soda * starting with queued entries.
635 1.1 soda */
636 1.1 soda if (buf->chain.tqe_next == 0)
637 1.1 soda wakeup(&sc->sc_free_buf);
638 1.1 soda
639 1.1 soda splx(s);
640 1.1 soda }
641 1.1 soda
642 1.1 soda integrate void
643 1.1 soda bt_init_ccb(sc, ccb)
644 1.1 soda struct bt_softc *sc;
645 1.1 soda struct bt_ccb *ccb;
646 1.1 soda {
647 1.1 soda int hashnum;
648 1.1 soda
649 1.1 soda bzero(ccb, sizeof(struct bt_ccb));
650 1.1 soda /*
651 1.1 soda * put in the phystokv hash table
652 1.1 soda * Never gets taken out.
653 1.1 soda */
654 1.1 soda ccb->hashkey = KVTOPHYS(ccb);
655 1.1 soda hashnum = CCB_HASH(ccb->hashkey);
656 1.1 soda ccb->nexthash = sc->sc_ccbhash[hashnum];
657 1.1 soda sc->sc_ccbhash[hashnum] = ccb;
658 1.1 soda bt_reset_ccb(sc, ccb);
659 1.1 soda }
660 1.1 soda
661 1.1 soda /*
662 1.1 soda * Get a free ccb
663 1.1 soda *
664 1.1 soda * If there are none, either return an error or sleep.
665 1.1 soda */
666 1.1 soda struct bt_ccb *
667 1.1 soda bt_get_ccb(sc, flags)
668 1.1 soda struct bt_softc *sc;
669 1.1 soda int flags;
670 1.1 soda {
671 1.1 soda struct bt_ccb *ccb;
672 1.1 soda int s;
673 1.1 soda
674 1.1 soda s = splbio();
675 1.1 soda
676 1.1 soda /*
677 1.1 soda * If we can and have to, sleep waiting for one to come free.
678 1.1 soda */
679 1.1 soda for (;;) {
680 1.1 soda ccb = sc->sc_free_ccb.tqh_first;
681 1.1 soda if (ccb) {
682 1.1 soda TAILQ_REMOVE(&sc->sc_free_ccb, ccb, chain);
683 1.1 soda break;
684 1.1 soda }
685 1.1 soda if ((flags & SCSI_NOSLEEP) != 0)
686 1.1 soda goto out;
687 1.1 soda tsleep(&sc->sc_free_ccb, PRIBIO, "btccb", 0);
688 1.1 soda }
689 1.1 soda
690 1.1 soda ccb->flags |= CCB_ALLOC;
691 1.1 soda
692 1.1 soda out:
693 1.1 soda splx(s);
694 1.1 soda return ccb;
695 1.1 soda }
696 1.1 soda
697 1.1 soda /*
698 1.1 soda * Get a free buf
699 1.1 soda *
700 1.1 soda * If there are none, either return an error or sleep.
701 1.1 soda */
702 1.1 soda struct bt_buf *
703 1.1 soda bt_get_buf(sc, flags)
704 1.1 soda struct bt_softc *sc;
705 1.1 soda int flags;
706 1.1 soda {
707 1.1 soda struct bt_buf *buf;
708 1.1 soda int s;
709 1.1 soda
710 1.1 soda s = splbio();
711 1.1 soda
712 1.1 soda /*
713 1.1 soda * If we can and have to, sleep waiting for one to come free.
714 1.1 soda */
715 1.1 soda for (;;) {
716 1.1 soda buf = sc->sc_free_buf.tqh_first;
717 1.1 soda if (buf) {
718 1.1 soda TAILQ_REMOVE(&sc->sc_free_buf, buf, chain);
719 1.1 soda sc->sc_numbufs--;
720 1.1 soda break;
721 1.1 soda }
722 1.1 soda if ((flags & SCSI_NOSLEEP) != 0)
723 1.1 soda goto out;
724 1.1 soda tsleep(&sc->sc_free_buf, PRIBIO, "btbuf", 0);
725 1.1 soda }
726 1.1 soda
727 1.1 soda out:
728 1.1 soda splx(s);
729 1.1 soda return buf;
730 1.1 soda }
731 1.1 soda
732 1.1 soda /*
733 1.1 soda * Given a physical address, find the ccb that it corresponds to.
734 1.1 soda */
735 1.1 soda struct bt_ccb *
736 1.1 soda bt_ccb_phys_kv(sc, ccb_phys)
737 1.1 soda struct bt_softc *sc;
738 1.1 soda u_long ccb_phys;
739 1.1 soda {
740 1.1 soda int hashnum = CCB_HASH(ccb_phys);
741 1.1 soda struct bt_ccb *ccb = sc->sc_ccbhash[hashnum];
742 1.1 soda
743 1.1 soda while (ccb) {
744 1.1 soda if (ccb->hashkey == ccb_phys)
745 1.1 soda break;
746 1.1 soda ccb = ccb->nexthash;
747 1.1 soda }
748 1.1 soda return ccb;
749 1.1 soda }
750 1.1 soda
751 1.1 soda /*
752 1.1 soda * Queue a CCB to be sent to the controller, and send it if possible.
753 1.1 soda */
754 1.1 soda void
755 1.1 soda bt_queue_ccb(sc, ccb)
756 1.1 soda struct bt_softc *sc;
757 1.1 soda struct bt_ccb *ccb;
758 1.1 soda {
759 1.1 soda
760 1.1 soda TAILQ_INSERT_TAIL(&sc->sc_waiting_ccb, ccb, chain);
761 1.1 soda bt_start_ccbs(sc);
762 1.1 soda }
763 1.1 soda
764 1.1 soda /*
765 1.1 soda * Garbage collect mailboxes that are no longer in use.
766 1.1 soda */
767 1.1 soda void
768 1.1 soda bt_collect_mbo(sc)
769 1.1 soda struct bt_softc *sc;
770 1.1 soda {
771 1.1 soda struct bt_mbx_out *wmbo; /* Mail Box Out pointer */
772 1.1 soda
773 1.1 soda wmbo = wmbx->cmbo;
774 1.1 soda
775 1.1 soda while (sc->sc_mbofull > 0) {
776 1.1 soda if (wmbo->cmd != BT_MBO_FREE)
777 1.1 soda break;
778 1.1 soda
779 1.1 soda #ifdef BTDIAG
780 1.1 soda ccb = bt_ccb_phys_kv(sc, phystol(wmbo->ccb_addr));
781 1.1 soda ccb->flags &= ~CCB_SENDING;
782 1.1 soda #endif
783 1.1 soda
784 1.1 soda --sc->sc_mbofull;
785 1.1 soda bt_nextmbx(wmbo, wmbx, mbo);
786 1.1 soda }
787 1.1 soda
788 1.1 soda wmbx->cmbo = wmbo;
789 1.1 soda }
790 1.1 soda
791 1.1 soda /*
792 1.1 soda * Send as many CCBs as we have empty mailboxes for.
793 1.1 soda */
794 1.1 soda void
795 1.1 soda bt_start_ccbs(sc)
796 1.1 soda struct bt_softc *sc;
797 1.1 soda {
798 1.1 soda int iobase = sc->sc_iobase;
799 1.1 soda struct bt_mbx_out *wmbo; /* Mail Box Out pointer */
800 1.1 soda struct bt_ccb *ccb;
801 1.1 soda
802 1.1 soda wmbo = wmbx->tmbo;
803 1.1 soda
804 1.1 soda while ((ccb = sc->sc_waiting_ccb.tqh_first) != NULL) {
805 1.1 soda if (sc->sc_mbofull >= BT_MBX_SIZE) {
806 1.1 soda bt_collect_mbo(sc);
807 1.1 soda if (sc->sc_mbofull >= BT_MBX_SIZE) {
808 1.1 soda struct bt_toggle toggle;
809 1.1 soda
810 1.1 soda toggle.cmd.opcode = BT_MBO_INTR_EN;
811 1.1 soda toggle.cmd.enable = 1;
812 1.1 soda bt_cmd(iobase, sc, sizeof(toggle.cmd),
813 1.1 soda (u_char *)&toggle.cmd, 0, (u_char *)0);
814 1.1 soda break;
815 1.1 soda }
816 1.1 soda }
817 1.1 soda
818 1.1 soda TAILQ_REMOVE(&sc->sc_waiting_ccb, ccb, chain);
819 1.1 soda #ifdef BTDIAG
820 1.1 soda ccb->flags |= CCB_SENDING;
821 1.1 soda #endif
822 1.1 soda
823 1.1 soda /* Link ccb to mbo. */
824 1.1 soda ltophys(KVTOPHYS(ccb), wmbo->ccb_addr);
825 1.1 soda if (ccb->flags & CCB_ABORT)
826 1.1 soda wmbo->cmd = BT_MBO_ABORT;
827 1.1 soda else
828 1.1 soda wmbo->cmd = BT_MBO_START;
829 1.1 soda
830 1.1 soda /* Tell the card to poll immediately. */
831 1.1 soda isa_outb(iobase + BT_CMD_PORT, BT_START_SCSI);
832 1.1 soda
833 1.1 soda if ((ccb->xs->flags & SCSI_POLL) == 0)
834 1.1 soda timeout(bt_timeout, ccb, (ccb->timeout * hz) / 1000);
835 1.1 soda
836 1.1 soda ++sc->sc_mbofull;
837 1.1 soda bt_nextmbx(wmbo, wmbx, mbo);
838 1.1 soda }
839 1.1 soda
840 1.1 soda wmbx->tmbo = wmbo;
841 1.1 soda }
842 1.1 soda
843 1.1 soda /*
844 1.1 soda * We have a ccb which has been processed by the
845 1.1 soda * adaptor, now we look to see how the operation
846 1.1 soda * went. Wake up the owner if waiting
847 1.1 soda */
848 1.1 soda void
849 1.1 soda bt_done(sc, ccb)
850 1.1 soda struct bt_softc *sc;
851 1.1 soda struct bt_ccb *ccb;
852 1.1 soda {
853 1.1 soda struct scsi_sense_data *s1, *s2;
854 1.1 soda struct scsi_xfer *xs = ccb->xs;
855 1.1 soda
856 1.1 soda u_long thiskv, thisbounce;
857 1.1 soda int bytes_this_page, datalen;
858 1.1 soda struct bt_scat_gath *sg;
859 1.1 soda int seg;
860 1.1 soda
861 1.1 soda SC_DEBUG(xs->sc_link, SDEV_DB2, ("bt_done\n"));
862 1.1 soda /*
863 1.1 soda * Otherwise, put the results of the operation
864 1.1 soda * into the xfer and call whoever started it
865 1.1 soda */
866 1.1 soda #ifdef BTDIAG
867 1.1 soda if (ccb->flags & CCB_SENDING) {
868 1.1 soda printf("%s: exiting ccb still in transit!\n", sc->sc_dev.dv_xname);
869 1.1 soda Debugger();
870 1.1 soda return;
871 1.1 soda }
872 1.1 soda #endif
873 1.1 soda if ((ccb->flags & CCB_ALLOC) == 0) {
874 1.1 soda printf("%s: exiting ccb not allocated!\n", sc->sc_dev.dv_xname);
875 1.1 soda Debugger();
876 1.1 soda return;
877 1.1 soda }
878 1.1 soda if (xs->error == XS_NOERROR) {
879 1.1 soda if (ccb->host_stat != BT_OK) {
880 1.1 soda switch (ccb->host_stat) {
881 1.1 soda case BT_SEL_TIMEOUT: /* No response */
882 1.1 soda xs->error = XS_SELTIMEOUT;
883 1.1 soda break;
884 1.1 soda default: /* Other scsi protocol messes */
885 1.1 soda printf("%s: host_stat %x\n",
886 1.1 soda sc->sc_dev.dv_xname, ccb->host_stat);
887 1.1 soda xs->error = XS_DRIVER_STUFFUP;
888 1.1 soda break;
889 1.1 soda }
890 1.1 soda } else if (ccb->target_stat != SCSI_OK) {
891 1.1 soda switch (ccb->target_stat) {
892 1.1 soda case SCSI_CHECK:
893 1.1 soda s1 = &ccb->scsi_sense;
894 1.1 soda s2 = &xs->sense;
895 1.1 soda *s2 = *s1;
896 1.1 soda xs->error = XS_SENSE;
897 1.1 soda break;
898 1.1 soda case SCSI_BUSY:
899 1.1 soda xs->error = XS_BUSY;
900 1.1 soda break;
901 1.1 soda default:
902 1.1 soda printf("%s: target_stat %x\n",
903 1.1 soda sc->sc_dev.dv_xname, ccb->target_stat);
904 1.1 soda xs->error = XS_DRIVER_STUFFUP;
905 1.1 soda break;
906 1.1 soda }
907 1.1 soda } else
908 1.1 soda xs->resid = 0;
909 1.1 soda }
910 1.1 soda
911 1.1 soda if((datalen = xs->datalen) != 0) {
912 1.1 soda thiskv = (int)xs->data;
913 1.1 soda sg = ccb->scat_gath;
914 1.1 soda seg = phystol(ccb->data_length) / sizeof(struct bt_scat_gath);
915 1.1 soda
916 1.1 soda while (seg) {
917 1.1 soda thisbounce = PHYSTOKV(phystol(sg->seg_addr));
918 1.1 soda bytes_this_page = phystol(sg->seg_len);
919 1.1 soda if(xs->flags & SCSI_DATA_IN) {
920 1.1 soda bcopy((void *)thisbounce, (void *)thiskv, bytes_this_page);
921 1.1 soda }
922 1.1 soda bt_free_buf(sc, (struct bt_buf *)thisbounce);
923 1.1 soda thiskv += bytes_this_page;
924 1.1 soda datalen -= bytes_this_page;
925 1.1 soda
926 1.1 soda sg++;
927 1.1 soda seg--;
928 1.1 soda }
929 1.1 soda }
930 1.1 soda
931 1.1 soda bt_free_ccb(sc, ccb);
932 1.1 soda xs->flags |= ITSDONE;
933 1.1 soda scsi_done(xs);
934 1.1 soda }
935 1.1 soda
936 1.1 soda /*
937 1.1 soda * Find the board and find it's irq/drq
938 1.1 soda */
939 1.1 soda int
940 1.1 soda bt_find(ia, sc)
941 1.1 soda struct isa_attach_args *ia;
942 1.1 soda struct bt_softc *sc;
943 1.1 soda {
944 1.1 soda int iobase = ia->ia_iobase;
945 1.1 soda int i;
946 1.1 soda u_char sts;
947 1.1 soda struct bt_extended_inquire inquire;
948 1.1 soda struct bt_config config;
949 1.1 soda int irq, drq;
950 1.1 soda
951 1.1 soda /*
952 1.1 soda * reset board, If it doesn't respond, assume
953 1.1 soda * that it's not there.. good for the probe
954 1.1 soda */
955 1.1 soda
956 1.1 soda isa_outb(iobase + BT_CTRL_PORT, BT_CTRL_HRST | BT_CTRL_SRST);
957 1.1 soda
958 1.1 soda delay(100);
959 1.1 soda for (i = BT_RESET_TIMEOUT; i; i--) {
960 1.1 soda sts = isa_inb(iobase + BT_STAT_PORT);
961 1.1 soda if (sts == (BT_STAT_IDLE | BT_STAT_INIT))
962 1.1 soda break;
963 1.1 soda delay(1000);
964 1.1 soda }
965 1.1 soda if (!i) {
966 1.1 soda #ifdef BTDEBUG
967 1.1 soda if (bt_debug)
968 1.1 soda printf("bt_find: No answer from buslogic board\n");
969 1.1 soda #endif /* BTDEBUG */
970 1.1 soda return 1;
971 1.1 soda }
972 1.1 soda
973 1.1 soda /*
974 1.1 soda * Check that we actually know how to use this board.
975 1.1 soda */
976 1.1 soda delay(1000);
977 1.1 soda bzero(&inquire, sizeof inquire);
978 1.1 soda inquire.cmd.opcode = BT_INQUIRE_EXTENDED;
979 1.1 soda inquire.cmd.len = sizeof(inquire.reply);
980 1.1 soda bt_cmd(iobase, sc, sizeof(inquire.cmd), (u_char *)&inquire.cmd,
981 1.1 soda sizeof(inquire.reply), (u_char *)&inquire.reply);
982 1.1 soda switch (inquire.reply.bus_type) {
983 1.1 soda case BT_BUS_TYPE_24BIT:
984 1.1 soda case BT_BUS_TYPE_32BIT:
985 1.1 soda break;
986 1.1 soda case BT_BUS_TYPE_MCA:
987 1.1 soda /* We don't grok MicroChannel (yet). */
988 1.1 soda return 1;
989 1.1 soda default:
990 1.1 soda printf("bt_find: illegal bus type %c\n", inquire.reply.bus_type);
991 1.1 soda return 1;
992 1.1 soda }
993 1.1 soda
994 1.1 soda #if NAHA > 0
995 1.1 soda /* Adaptec 1542 cards do not support this */
996 1.1 soda digit.reply.digit = '@';
997 1.1 soda digit.cmd.opcode = BT_INQUIRE_REVISION_3;
998 1.1 soda bt_cmd(iobase, sc, sizeof(digit.cmd), (u_char *)&digit.cmd,
999 1.1 soda sizeof(digit.reply), (u_char *)&digit.reply);
1000 1.1 soda if (digit.reply.digit == '@')
1001 1.1 soda return 1;
1002 1.1 soda #endif
1003 1.1 soda
1004 1.1 soda /*
1005 1.1 soda * Assume we have a board at this stage setup dma channel from
1006 1.1 soda * jumpers and save int level
1007 1.1 soda */
1008 1.1 soda delay(1000);
1009 1.1 soda config.cmd.opcode = BT_INQUIRE_CONFIG;
1010 1.1 soda bt_cmd(iobase, sc, sizeof(config.cmd), (u_char *)&config.cmd,
1011 1.1 soda sizeof(config.reply), (u_char *)&config.reply);
1012 1.1 soda switch (config.reply.chan) {
1013 1.1 soda case EISADMA:
1014 1.1 soda drq = DRQUNK;
1015 1.1 soda break;
1016 1.1 soda case CHAN0:
1017 1.1 soda drq = 0;
1018 1.1 soda break;
1019 1.1 soda case CHAN5:
1020 1.1 soda drq = 5;
1021 1.1 soda break;
1022 1.1 soda case CHAN6:
1023 1.1 soda drq = 6;
1024 1.1 soda break;
1025 1.1 soda case CHAN7:
1026 1.1 soda drq = 7;
1027 1.1 soda break;
1028 1.1 soda default:
1029 1.1 soda printf("bt_find: illegal drq setting %x\n", config.reply.chan);
1030 1.1 soda return 1;
1031 1.1 soda }
1032 1.1 soda
1033 1.1 soda switch (config.reply.intr) {
1034 1.1 soda case INT9:
1035 1.1 soda irq = 9;
1036 1.1 soda break;
1037 1.1 soda case INT10:
1038 1.1 soda irq = 10;
1039 1.1 soda break;
1040 1.1 soda case INT11:
1041 1.1 soda irq = 11;
1042 1.1 soda break;
1043 1.1 soda case INT12:
1044 1.1 soda irq = 12;
1045 1.1 soda break;
1046 1.1 soda case INT14:
1047 1.1 soda irq = 14;
1048 1.1 soda break;
1049 1.1 soda case INT15:
1050 1.1 soda irq = 15;
1051 1.1 soda break;
1052 1.1 soda default:
1053 1.1 soda printf("bt_find: illegal irq setting %x\n", config.reply.intr);
1054 1.1 soda return 1;
1055 1.1 soda }
1056 1.1 soda
1057 1.1 soda if (sc != NULL) {
1058 1.1 soda /* who are we on the scsi bus? */
1059 1.1 soda sc->sc_scsi_dev = config.reply.scsi_dev;
1060 1.1 soda
1061 1.1 soda sc->sc_iobase = iobase;
1062 1.1 soda sc->sc_irq = irq;
1063 1.1 soda sc->sc_drq = drq;
1064 1.1 soda } else {
1065 1.1 soda if (ia->ia_irq == IRQUNK)
1066 1.1 soda ia->ia_irq = irq;
1067 1.1 soda else if (ia->ia_irq != irq)
1068 1.1 soda return 1;
1069 1.1 soda if (ia->ia_drq == DRQUNK)
1070 1.1 soda ia->ia_drq = drq;
1071 1.1 soda else if (ia->ia_drq != drq)
1072 1.1 soda return 1;
1073 1.1 soda }
1074 1.1 soda
1075 1.1 soda #if NAHA > 0
1076 1.1 soda /* XXXX To avoid conflicting with the aha1542 probe */
1077 1.1 soda btports[nbtports++] = iobase;
1078 1.1 soda #endif
1079 1.1 soda return 0;
1080 1.1 soda }
1081 1.1 soda
1082 1.1 soda /*
1083 1.1 soda * Start the board, ready for normal operation
1084 1.1 soda */
1085 1.1 soda void
1086 1.1 soda bt_init(sc)
1087 1.1 soda struct bt_softc *sc;
1088 1.1 soda {
1089 1.1 soda int iobase = sc->sc_iobase;
1090 1.1 soda struct bt_devices devices;
1091 1.1 soda struct bt_setup setup;
1092 1.1 soda struct bt_mailbox mailbox;
1093 1.1 soda struct bt_period period;
1094 1.1 soda int i;
1095 1.1 soda
1096 1.1 soda /* Enable round-robin scheme - appeared at firmware rev. 3.31. */
1097 1.1 soda if (strcmp(sc->sc_firmware, "3.31") >= 0) {
1098 1.1 soda struct bt_toggle toggle;
1099 1.1 soda
1100 1.1 soda toggle.cmd.opcode = BT_ROUND_ROBIN;
1101 1.1 soda toggle.cmd.enable = 1;
1102 1.1 soda bt_cmd(iobase, sc, sizeof(toggle.cmd), (u_char *)&toggle.cmd,
1103 1.1 soda 0, (u_char *)0);
1104 1.1 soda }
1105 1.1 soda
1106 1.1 soda /* Inquire Installed Devices (to force synchronous negotiation). */
1107 1.1 soda devices.cmd.opcode = BT_INQUIRE_DEVICES;
1108 1.1 soda bt_cmd(iobase, sc, sizeof(devices.cmd), (u_char *)&devices.cmd,
1109 1.1 soda sizeof(devices.reply), (u_char *)&devices.reply);
1110 1.1 soda
1111 1.1 soda /* Obtain setup information from. */
1112 1.1 soda setup.cmd.opcode = BT_INQUIRE_SETUP;
1113 1.1 soda setup.cmd.len = sizeof(setup.reply);
1114 1.1 soda bt_cmd(iobase, sc, sizeof(setup.cmd), (u_char *)&setup.cmd,
1115 1.1 soda sizeof(setup.reply), (u_char *)&setup.reply);
1116 1.1 soda
1117 1.1 soda printf("%s: %s, %s\n",
1118 1.1 soda sc->sc_dev.dv_xname,
1119 1.1 soda setup.reply.sync_neg ? "sync" : "async",
1120 1.1 soda setup.reply.parity ? "parity" : "no parity");
1121 1.1 soda
1122 1.1 soda for (i = 0; i < 8; i++)
1123 1.1 soda period.reply.period[i] = setup.reply.sync[i].period * 5 + 20;
1124 1.1 soda
1125 1.1 soda if (sc->sc_firmware[0] >= '3') {
1126 1.1 soda period.cmd.opcode = BT_INQUIRE_PERIOD;
1127 1.1 soda period.cmd.len = sizeof(period.reply);
1128 1.1 soda bt_cmd(iobase, sc, sizeof(period.cmd), (u_char *)&period.cmd,
1129 1.1 soda sizeof(period.reply), (u_char *)&period.reply);
1130 1.1 soda }
1131 1.1 soda
1132 1.1 soda for (i = 0; i < 8; i++) {
1133 1.1 soda if (!setup.reply.sync[i].valid ||
1134 1.1 soda (!setup.reply.sync[i].offset && !setup.reply.sync[i].period))
1135 1.1 soda continue;
1136 1.1 soda printf("%s targ %d: sync, offset %d, period %dnsec\n",
1137 1.1 soda sc->sc_dev.dv_xname, i,
1138 1.1 soda setup.reply.sync[i].offset, period.reply.period[i] * 10);
1139 1.1 soda }
1140 1.1 soda
1141 1.1 soda /*
1142 1.1 soda * Set up initial mail box for round-robin operation.
1143 1.1 soda */
1144 1.1 soda for (i = 0; i < BT_MBX_SIZE; i++) {
1145 1.1 soda wmbx->mbo[i].cmd = BT_MBO_FREE;
1146 1.1 soda wmbx->mbi[i].stat = BT_MBI_FREE;
1147 1.1 soda }
1148 1.1 soda wmbx->cmbo = wmbx->tmbo = &wmbx->mbo[0];
1149 1.1 soda wmbx->tmbi = &wmbx->mbi[0];
1150 1.1 soda sc->sc_mbofull = 0;
1151 1.1 soda
1152 1.1 soda /* Initialize mail box. */
1153 1.1 soda mailbox.cmd.opcode = BT_MBX_INIT_EXTENDED;
1154 1.1 soda mailbox.cmd.nmbx = BT_MBX_SIZE;
1155 1.1 soda ltophys(KVTOPHYS(wmbx), mailbox.cmd.addr);
1156 1.1 soda bt_cmd(iobase, sc, sizeof(mailbox.cmd), (u_char *)&mailbox.cmd,
1157 1.1 soda 0, (u_char *)0);
1158 1.1 soda }
1159 1.1 soda
1160 1.1 soda void
1161 1.1 soda bt_inquire_setup_information(sc)
1162 1.1 soda struct bt_softc *sc;
1163 1.1 soda {
1164 1.1 soda int iobase = sc->sc_iobase;
1165 1.1 soda struct bt_model model;
1166 1.1 soda struct bt_revision revision;
1167 1.1 soda struct bt_digit digit;
1168 1.1 soda char *p;
1169 1.1 soda
1170 1.1 soda /*
1171 1.1 soda * Get the firmware revision.
1172 1.1 soda */
1173 1.1 soda p = sc->sc_firmware;
1174 1.1 soda revision.cmd.opcode = BT_INQUIRE_REVISION;
1175 1.1 soda bt_cmd(iobase, sc, sizeof(revision.cmd), (u_char *)&revision.cmd,
1176 1.1 soda sizeof(revision.reply), (u_char *)&revision.reply);
1177 1.1 soda *p++ = revision.reply.firm_revision;
1178 1.1 soda *p++ = '.';
1179 1.1 soda *p++ = revision.reply.firm_version;
1180 1.1 soda digit.cmd.opcode = BT_INQUIRE_REVISION_3;
1181 1.1 soda bt_cmd(iobase, sc, sizeof(digit.cmd), (u_char *)&digit.cmd,
1182 1.1 soda sizeof(digit.reply), (u_char *)&digit.reply);
1183 1.1 soda *p++ = digit.reply.digit;
1184 1.1 soda if (revision.reply.firm_revision >= '3' ||
1185 1.1 soda (revision.reply.firm_revision == '3' && revision.reply.firm_version >= '3')) {
1186 1.1 soda digit.cmd.opcode = BT_INQUIRE_REVISION_4;
1187 1.1 soda bt_cmd(iobase, sc, sizeof(digit.cmd), (u_char *)&digit.cmd,
1188 1.1 soda sizeof(digit.reply), (u_char *)&digit.reply);
1189 1.1 soda *p++ = digit.reply.digit;
1190 1.1 soda }
1191 1.1 soda while (p > sc->sc_firmware && (p[-1] == ' ' || p[-1] == '\0'))
1192 1.1 soda p--;
1193 1.1 soda *p = '\0';
1194 1.1 soda
1195 1.1 soda /*
1196 1.1 soda * Get the model number.
1197 1.1 soda */
1198 1.1 soda if (revision.reply.firm_revision >= '3') {
1199 1.1 soda p = sc->sc_model;
1200 1.1 soda model.cmd.opcode = BT_INQUIRE_MODEL;
1201 1.1 soda model.cmd.len = sizeof(model.reply);
1202 1.1 soda bt_cmd(iobase, sc, sizeof(model.cmd), (u_char *)&model.cmd,
1203 1.1 soda sizeof(model.reply), (u_char *)&model.reply);
1204 1.1 soda *p++ = model.reply.id[0];
1205 1.1 soda *p++ = model.reply.id[1];
1206 1.1 soda *p++ = model.reply.id[2];
1207 1.1 soda *p++ = model.reply.id[3];
1208 1.1 soda while (p > sc->sc_model && (p[-1] == ' ' || p[-1] == '\0'))
1209 1.1 soda p--;
1210 1.1 soda *p++ = model.reply.version[0];
1211 1.1 soda *p++ = model.reply.version[1];
1212 1.1 soda while (p > sc->sc_model && (p[-1] == ' ' || p[-1] == '\0'))
1213 1.1 soda p--;
1214 1.1 soda *p = '\0';
1215 1.1 soda } else
1216 1.1 soda strcpy(sc->sc_model, "542B");
1217 1.1 soda
1218 1.1 soda printf(": model BT-%s, firmware %s\n", sc->sc_model, sc->sc_firmware);
1219 1.1 soda }
1220 1.1 soda
1221 1.1 soda void
1222 1.1 soda btminphys(bp)
1223 1.1 soda struct buf *bp;
1224 1.1 soda {
1225 1.1 soda
1226 1.1 soda if (bp->b_bcount > ((BT_NSEG - 1) << PGSHIFT))
1227 1.1 soda bp->b_bcount = ((BT_NSEG - 1) << PGSHIFT);
1228 1.1 soda minphys(bp);
1229 1.1 soda }
1230 1.1 soda
1231 1.1 soda /*
1232 1.1 soda * start a scsi operation given the command and the data address. Also needs
1233 1.1 soda * the unit, target and lu.
1234 1.1 soda */
1235 1.1 soda int
1236 1.1 soda bt_scsi_cmd(xs)
1237 1.1 soda struct scsi_xfer *xs;
1238 1.1 soda {
1239 1.1 soda struct scsi_link *sc_link = xs->sc_link;
1240 1.1 soda struct bt_softc *sc = sc_link->adapter_softc;
1241 1.1 soda struct bt_ccb *ccb;
1242 1.1 soda struct bt_scat_gath *sg;
1243 1.1 soda int seg; /* scatter gather seg being worked on */
1244 1.1 soda u_long thiskv, thisbounce;
1245 1.1 soda int bytes_this_page, datalen, flags;
1246 1.1 soda int s;
1247 1.1 soda
1248 1.1 soda SC_DEBUG(sc_link, SDEV_DB2, ("bt_scsi_cmd\n"));
1249 1.1 soda /*
1250 1.1 soda * get a ccb to use. If the transfer
1251 1.1 soda * is from a buf (possibly from interrupt time)
1252 1.1 soda * then we can't allow it to sleep
1253 1.1 soda */
1254 1.1 soda flags = xs->flags;
1255 1.1 soda if ((ccb = bt_get_ccb(sc, flags)) == NULL) {
1256 1.1 soda xs->error = XS_DRIVER_STUFFUP;
1257 1.1 soda return TRY_AGAIN_LATER;
1258 1.1 soda }
1259 1.1 soda ccb->xs = xs;
1260 1.1 soda ccb->timeout = xs->timeout;
1261 1.1 soda
1262 1.1 soda /*
1263 1.1 soda * Put all the arguments for the xfer in the ccb
1264 1.1 soda */
1265 1.1 soda if (flags & SCSI_RESET) {
1266 1.1 soda ccb->opcode = BT_RESET_CCB;
1267 1.1 soda ccb->scsi_cmd_length = 0;
1268 1.1 soda } else {
1269 1.1 soda /* can't use S/G if zero length */
1270 1.1 soda ccb->opcode = (xs->datalen ? BT_INIT_SCAT_GATH_CCB
1271 1.1 soda : BT_INITIATOR_CCB);
1272 1.1 soda bcopy(xs->cmd, &ccb->scsi_cmd,
1273 1.1 soda ccb->scsi_cmd_length = xs->cmdlen);
1274 1.1 soda }
1275 1.1 soda
1276 1.1 soda if (xs->datalen) {
1277 1.1 soda sg = ccb->scat_gath;
1278 1.1 soda seg = 0;
1279 1.1 soda /*
1280 1.1 soda * Set up the scatter-gather block.
1281 1.1 soda */
1282 1.1 soda SC_DEBUG(sc_link, SDEV_DB4,
1283 1.1 soda ("%d @0x%x:- ", xs->datalen, xs->data));
1284 1.1 soda
1285 1.1 soda datalen = xs->datalen;
1286 1.1 soda thiskv = (int)xs->data;
1287 1.1 soda
1288 1.1 soda while (datalen && seg < BT_NSEG) {
1289 1.1 soda
1290 1.1 soda /* put in the base address of a buf */
1291 1.1 soda thisbounce = (u_long)bt_get_buf(sc, flags);
1292 1.1 soda if(thisbounce == 0)
1293 1.1 soda break;
1294 1.1 soda ltophys(KVTOPHYS(thisbounce), sg->seg_addr);
1295 1.1 soda bytes_this_page = min(sizeof(struct bt_buf), datalen);
1296 1.1 soda if(flags & SCSI_DATA_OUT) {
1297 1.1 soda bcopy((void *)thiskv, (void *)thisbounce, bytes_this_page);
1298 1.1 soda }
1299 1.1 soda thiskv += bytes_this_page;
1300 1.1 soda datalen -= bytes_this_page;
1301 1.1 soda
1302 1.1 soda ltophys(bytes_this_page, sg->seg_len);
1303 1.1 soda sg++;
1304 1.1 soda seg++;
1305 1.1 soda }
1306 1.1 soda SC_DEBUGN(sc_link, SDEV_DB4, ("\n"));
1307 1.1 soda if (datalen) {
1308 1.1 soda printf("%s: bt_scsi_cmd, out of bufs %d of %d left.\n",
1309 1.1 soda sc->sc_dev.dv_xname, datalen, xs->datalen);
1310 1.1 soda goto badbuf;
1311 1.1 soda }
1312 1.1 soda ltophys(KVTOPHYS(ccb->scat_gath), ccb->data_addr);
1313 1.1 soda ltophys(seg * sizeof(struct bt_scat_gath), ccb->data_length);
1314 1.1 soda } else { /* No data xfer, use non S/G values */
1315 1.1 soda ltophys(0, ccb->data_addr);
1316 1.1 soda ltophys(0, ccb->data_length);
1317 1.1 soda }
1318 1.1 soda
1319 1.1 soda ccb->data_out = 0;
1320 1.1 soda ccb->data_in = 0;
1321 1.1 soda ccb->target = sc_link->target;
1322 1.1 soda ccb->lun = sc_link->lun;
1323 1.1 soda ltophys(KVTOPHYS(&ccb->scsi_sense), ccb->sense_ptr);
1324 1.1 soda ccb->req_sense_length = sizeof(ccb->scsi_sense);
1325 1.1 soda ccb->host_stat = 0x00;
1326 1.1 soda ccb->target_stat = 0x00;
1327 1.1 soda ccb->link_id = 0;
1328 1.1 soda ltophys(0, ccb->link_addr);
1329 1.1 soda
1330 1.1 soda s = splbio();
1331 1.1 soda bt_queue_ccb(sc, ccb);
1332 1.1 soda splx(s);
1333 1.1 soda
1334 1.1 soda /*
1335 1.1 soda * Usually return SUCCESSFULLY QUEUED
1336 1.1 soda */
1337 1.1 soda SC_DEBUG(sc_link, SDEV_DB3, ("cmd_sent\n"));
1338 1.1 soda if ((flags & SCSI_POLL) == 0)
1339 1.1 soda return SUCCESSFULLY_QUEUED;
1340 1.1 soda
1341 1.1 soda /*
1342 1.1 soda * If we can't use interrupts, poll on completion
1343 1.1 soda */
1344 1.1 soda if (bt_poll(sc, xs, ccb->timeout)) {
1345 1.1 soda bt_timeout(ccb);
1346 1.1 soda if (bt_poll(sc, xs, ccb->timeout))
1347 1.1 soda bt_timeout(ccb);
1348 1.1 soda }
1349 1.1 soda return COMPLETE;
1350 1.1 soda
1351 1.1 soda badbuf:
1352 1.1 soda sg = ccb->scat_gath;
1353 1.1 soda while (seg) {
1354 1.1 soda thisbounce = PHYSTOKV(phystol(sg->seg_addr));
1355 1.1 soda bt_free_buf(sc, (struct bt_buf *)thisbounce);
1356 1.1 soda sg++;
1357 1.1 soda seg--;
1358 1.1 soda }
1359 1.1 soda xs->error = XS_DRIVER_STUFFUP;
1360 1.1 soda bt_free_ccb(sc, ccb);
1361 1.1 soda return TRY_AGAIN_LATER;
1362 1.1 soda }
1363 1.1 soda
1364 1.1 soda /*
1365 1.1 soda * Poll a particular unit, looking for a particular xs
1366 1.1 soda */
1367 1.1 soda int
1368 1.1 soda bt_poll(sc, xs, count)
1369 1.1 soda struct bt_softc *sc;
1370 1.1 soda struct scsi_xfer *xs;
1371 1.1 soda int count;
1372 1.1 soda {
1373 1.1 soda int iobase = sc->sc_iobase;
1374 1.1 soda
1375 1.1 soda /* timeouts are in msec, so we loop in 1000 usec cycles */
1376 1.1 soda while (count) {
1377 1.1 soda /*
1378 1.1 soda * If we had interrupts enabled, would we
1379 1.1 soda * have got an interrupt?
1380 1.1 soda */
1381 1.1 soda if (isa_inb(iobase + BT_INTR_PORT) & BT_INTR_ANYINTR)
1382 1.1 soda btintr(sc);
1383 1.1 soda if (xs->flags & ITSDONE)
1384 1.1 soda return 0;
1385 1.1 soda delay(1000); /* only happens in boot so ok */
1386 1.1 soda count--;
1387 1.1 soda }
1388 1.1 soda return 1;
1389 1.1 soda }
1390 1.1 soda
1391 1.1 soda void
1392 1.1 soda bt_timeout(arg)
1393 1.1 soda void *arg;
1394 1.1 soda {
1395 1.1 soda struct bt_ccb *ccb = arg;
1396 1.1 soda struct scsi_xfer *xs = ccb->xs;
1397 1.1 soda struct scsi_link *sc_link = xs->sc_link;
1398 1.1 soda struct bt_softc *sc = sc_link->adapter_softc;
1399 1.1 soda int s;
1400 1.1 soda
1401 1.1 soda sc_print_addr(sc_link);
1402 1.1 soda printf("timed out");
1403 1.1 soda
1404 1.1 soda s = splbio();
1405 1.1 soda
1406 1.1 soda #ifdef BTDIAG
1407 1.1 soda /*
1408 1.1 soda * If the ccb's mbx is not free, then the board has gone Far East?
1409 1.1 soda */
1410 1.1 soda bt_collect_mbo(sc);
1411 1.1 soda if (ccb->flags & CCB_SENDING) {
1412 1.1 soda printf("%s: not taking commands!\n", sc->sc_dev.dv_xname);
1413 1.1 soda Debugger();
1414 1.1 soda }
1415 1.1 soda #endif
1416 1.1 soda
1417 1.1 soda /*
1418 1.1 soda * If it has been through before, then
1419 1.1 soda * a previous abort has failed, don't
1420 1.1 soda * try abort again
1421 1.1 soda */
1422 1.1 soda if (ccb->flags & CCB_ABORT) {
1423 1.1 soda /* abort timed out */
1424 1.1 soda printf(" AGAIN\n");
1425 1.1 soda /* XXX Must reset! */
1426 1.1 soda } else {
1427 1.1 soda /* abort the operation that has timed out */
1428 1.1 soda printf("\n");
1429 1.1 soda ccb->xs->error = XS_TIMEOUT;
1430 1.1 soda ccb->timeout = BT_ABORT_TIMEOUT;
1431 1.1 soda ccb->flags |= CCB_ABORT;
1432 1.1 soda bt_queue_ccb(sc, ccb);
1433 1.1 soda }
1434 1.1 soda
1435 1.1 soda splx(s);
1436 1.1 soda }
1437