seagate.c revision 1.1 1 /*
2 * ST01/02, Future Domain TMC-885, TMC-950 SCSI driver
3 *
4 * Copyright 1994, Charles Hannum (mycroft (at) ai.mit.edu)
5 * Copyright 1994, Kent Palmkvist (kentp (at) isy.liu.se)
6 * Copyright 1994, Robert Knier (rknier (at) qgraph.com)
7 * Copyright 1992, 1994 Drew Eckhardt (drew (at) colorado.edu)
8 * Copyright 1994, Julian Elischer (julian (at) tfs.com)
9 *
10 * Others that has contributed by example code is
11 * Glen Overby (overby (at) cray.com)
12 * Tatu Yllnen
13 * Brian E Litzinger
14 *
15 * Redistribution and use in source and binary forms, with or without
16 * modification, are permitted provided that the following conditions
17 * are met:
18 * 1. Redistributions of source code must retain the above copyright
19 * notice, this list of conditions and the following disclaimer.
20 * 2. Redistributions in binary form must reproduce the above copyright
21 * notice, this list of conditions and the following disclaimer in the
22 * documentation and/or other materials provided with the distribution.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE DEVELOPERS ``AS IS'' AND
25 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE DEVELOPERS BE LIABLE
28 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * SUCH DAMAGE.
35 */
36
37 /*
38 * kentp 940307 alpha version based on newscsi-03 version of Julians SCSI-code
39 * kentp 940314 Added possibility to not use messages
40 * rknier 940331 Added fast transfer code
41 * rknier 940407 Added assembler coded data transfers
42 */
43
44 /*
45 * What should really be done:
46 *
47 * Add missing tests for timeouts
48 * Restructure interrupt enable/disable code (runs to long with int disabled)
49 * Find bug? giving problem with tape status
50 * Add code to handle Future Domain 840, 841, 880 and 881
51 * adjust timeouts (startup is very slow)
52 * add code to use tagged commands in SCSI2
53 * Add code to handle slow devices better (sleep if device not disconnecting)
54 * Fix unnecessary interrupts
55 */
56
57 /*
58 * Note to users trying to share a disk between DOS and unix:
59 * The ST01/02 is a translating host-adapter. It is not giving DOS
60 * the same number of heads/tracks/sectors as specified by the disk.
61 * It is therefore important to look at what numbers DOS thinks the
62 * disk has. Use these to disklabel your disk in an appropriate manner
63 */
64
65 #include <sys/types.h>
66
67 #include <sys/param.h>
68 #include <sys/systm.h>
69 #include <sys/kernel.h>
70 #include <sys/errno.h>
71 #include <sys/ioctl.h>
72 #include <sys/malloc.h>
73 #include <sys/buf.h>
74 #include <sys/proc.h>
75 #include <sys/user.h>
76 #include <sys/device.h>
77
78 #include <machine/pio.h>
79
80 #include <i386/isa/isavar.h>
81 #include <scsi/scsi_all.h>
82 #include <scsi/scsiconf.h>
83
84 #define SEA_SCB_MAX 32 /* allow maximally 8 scsi control blocks */
85 #define SCB_TABLE_SIZE 8 /* start with 8 scb entries in table */
86 #define BLOCK_SIZE 512 /* size of READ/WRITE areas on SCSI card */
87
88 /*
89 * defining PARITY causes parity data to be checked
90 */
91 #define PARITY
92
93 /*
94 * defining SEA_BLINDTRANSFER will make DATA IN and DATA OUT to be done with
95 * blind transfers, i.e. no check is done for scsi phase changes. This will
96 * result in data loss if the scsi device does not send its data using
97 * BLOCK_SIZE bytes at a time.
98 * If SEA_BLINDTRANSFER defined and SEA_ASSEMBLER also defined will result in
99 * the use of blind transfers coded in assembler. SEA_ASSEMBLER is no good
100 * without SEA_BLINDTRANSFER defined.
101 */
102 #define SEA_BLINDTRANSFER /* do blind transfers */
103 #define SEA_ASSEMBLER /* Use assembly code for fast transfers */
104
105 /*
106 * defining SEA_NOMSGS causes messages not to be used (thereby disabling
107 * disconnects)
108 */
109 #undef SEA_NOMSGS
110
111 /*
112 * defining SEA_NODATAOUT makes dataout phase being aborted
113 */
114 #undef SEA_NODATAOUT
115
116 /*
117 * defining SEA_SENSEFIRST make REQUEST_SENSE opcode to be placed first
118 */
119 #undef SEA_SENSEFIRST
120
121 /* Debugging definitions. Should not be used unless you want a lot of
122 printouts even under normal conditions */
123
124 #undef SEA_DEBUGQUEUE /* Display info about queue-lengths */
125
126 /******************************* board definitions **************************/
127 /*
128 * CONTROL defines
129 */
130 #define CMD_RST 0x01 /* scsi reset */
131 #define CMD_SEL 0x02 /* scsi select */
132 #define CMD_BSY 0x04 /* scsi busy */
133 #define CMD_ATTN 0x08 /* scsi attention */
134 #define CMD_START_ARB 0x10 /* start arbitration bit */
135 #define CMD_EN_PARITY 0x20 /* enable scsi parity generation */
136 #define CMD_INTR 0x40 /* enable scsi interrupts */
137 #define CMD_DRVR_ENABLE 0x80 /* scsi enable */
138
139 /*
140 * STATUS
141 */
142 #define STAT_BSY 0x01 /* scsi busy */
143 #define STAT_MSG 0x02 /* scsi msg */
144 #define STAT_IO 0x04 /* scsi I/O */
145 #define STAT_CD 0x08 /* scsi C/D */
146 #define STAT_REQ 0x10 /* scsi req */
147 #define STAT_SEL 0x20 /* scsi select */
148 #define STAT_PARITY 0x40 /* parity error bit */
149 #define STAT_ARB_CMPL 0x80 /* arbitration complete bit */
150
151 /*
152 * REQUESTS
153 */
154 #define REQ_MASK (STAT_CD | STAT_IO | STAT_MSG)
155 #define REQ_DATAOUT 0
156 #define REQ_DATAIN STAT_IO
157 #define REQ_CMDOUT STAT_CD
158 #define REQ_STATIN (STAT_CD | STAT_IO)
159 #define REQ_MSGOUT (STAT_MSG | STAT_CD)
160 #define REQ_MSGIN (STAT_MSG | STAT_CD | STAT_IO)
161
162 #define REQ_UNKNOWN 0xff
163
164 #define SEA_RAMOFFSET 0x00001800
165
166 #ifdef PARITY
167 #define BASE_CMD (CMD_INTR | CMD_EN_PARITY)
168 #else
169 #define BASE_CMD (CMD_INTR)
170 #endif
171
172 #define SEAGATE 1
173 #define FDOMAIN 2
174
175 /******************************************************************************
176 * This should be placed in a more generic file (presume in /sys/scsi)
177 * Message codes:
178 */
179 #define MSG_ABORT 0x06
180 #define MSG_NOP 0x08
181 #define MSG_COMMAND_COMPLETE 0x00
182 #define MSG_DISCONNECT 0x04
183 #define MSG_IDENTIFY 0x80
184 #define MSG_BUS_DEV_RESET 0x0c
185 #define MSG_MESSAGE_REJECT 0x07
186 #define MSG_SAVE_POINTERS 0x02
187 #define MSG_RESTORE_POINTERS 0x03
188 /******************************************************************************/
189
190 #define IDENTIFY(can_disconnect, lun) \
191 (MSG_IDENTIFY | ((can_disconnect) ? 0x40 : 0) | ((lun) & 0x07))
192
193 /* scsi control block used to keep info about a scsi command */
194 struct sea_scb {
195 u_char *data; /* position in data buffer so far */
196 int32 datalen; /* bytes remaining to transfer */
197 TAILQ_ENTRY(sea_scb) chain;
198 struct scsi_xfer *xfer; /* the scsi_xfer for this cmd */
199 int flags; /* status of the instruction */
200 #define SCB_FREE 0
201 #define SCB_ACTIVE 1
202 #define SCB_ABORTED 2
203 #define SCB_TIMEOUT 4
204 #define SCB_ERROR 8
205 };
206
207 /*
208 * data structure describing current status of the scsi bus. One for each
209 * controller card.
210 */
211 struct sea_softc {
212 struct device sc_dev;
213 struct isadev sc_id;
214 struct intrhand sc_ih;
215
216 struct scsi_link sc_link; /* struct connecting different data */
217 struct sea_scb *connected; /* currently connected command */
218 TAILQ_HEAD(chainhead, sea_scb)
219 issue_queue, disconnected_queue, free_queue;
220 int numscbs; /* number of scsi control blocks */
221 struct sea_scb scbs[SCB_TABLE_SIZE];
222
223 caddr_t maddr; /* Base address for card */
224 caddr_t maddr_cr_sr; /* Address of control and status reg */
225 caddr_t maddr_dr; /* Address of data register */
226 int type; /* FDOMAIN or SEAGATE */
227 int our_id; /* our scsi id */
228 u_char our_id_mask;
229 volatile u_char busy[8]; /* index=target, bit=lun, Keep track of
230 busy luns at device target */
231 };
232
233 /* flag showing if main routine is running. */
234 static volatile int main_running = 0;
235
236 #define STATUS (*(volatile u_char *)sea->maddr_cr_sr)
237 #define CONTROL STATUS
238 #define DATA (*(volatile u_char *)sea->maddr_dr)
239
240 /*
241 * These are "special" values for the tag parameter passed to sea_select
242 * Not implemented right now.
243 */
244 #define TAG_NEXT -1 /* Use next free tag */
245 #define TAG_NONE -2 /*
246 * Establish I_T_L nexus instead of I_T_L_Q
247 * even on SCSI-II devices.
248 */
249
250 typedef struct {
251 char *signature;
252 int offset, length;
253 int type;
254 } BiosSignature;
255
256 /*
257 * Signatures for automatic recognition of board type
258 */
259 static const BiosSignature signatures[] = {
260 {"ST01 v1.7 (C) Copyright 1987 Seagate", 15, 37, SEAGATE},
261 {"SCSI BIOS 2.00 (C) Copyright 1987 Seagate", 15, 40, SEAGATE},
262
263 /*
264 * The following two lines are NOT mistakes. One detects ROM revision
265 * 3.0.0, the other 3.2. Since seagate has only one type of SCSI adapter,
266 * and this is not going to change, the "SEAGATE" and "SCSI" together
267 * are probably "good enough"
268 */
269 {"SEAGATE SCSI BIOS ", 16, 17, SEAGATE},
270 {"SEAGATE SCSI BIOS ", 17, 17, SEAGATE},
271
272 /*
273 * However, future domain makes several incompatible SCSI boards, so specific
274 * signatures must be used.
275 */
276 {"FUTURE DOMAIN CORP. (C) 1986-1989 V5.0C2/14/89", 5, 45, FDOMAIN},
277 {"FUTURE DOMAIN CORP. (C) 1986-1989 V6.0A7/28/89", 5, 46, FDOMAIN},
278 {"FUTURE DOMAIN CORP. (C) 1986-1990 V6.0105/31/90",5, 47, FDOMAIN},
279 {"FUTURE DOMAIN CORP. (C) 1986-1990 V6.0209/18/90",5, 47, FDOMAIN},
280 {"FUTURE DOMAIN CORP. (C) 1986-1990 V7.009/18/90", 5, 46, FDOMAIN},
281 {"FUTURE DOMAIN CORP. (C) 1992 V8.00.004/02/92", 5, 44, FDOMAIN},
282 {"FUTURE DOMAIN TMC-950", 5, 21, FDOMAIN},
283 };
284
285 #define nsignatures (sizeof(signatures) / sizeof(signatures[0]))
286
287 static const char *bases[] = {
288 (char *) 0xc8000, (char *) 0xca000, (char *) 0xcc000,
289 (char *) 0xce000, (char *) 0xdc000, (char *) 0xde000
290 };
291
292 #define nbases (sizeof(bases) / sizeof(bases[0]))
293
294 int seaintr __P((struct sea_softc *));
295 int sea_scsi_cmd __P((struct scsi_xfer *xs));
296 void sea_timeout __P((void *));
297 void seaminphys __P((struct buf *));
298 void sea_done __P((struct sea_softc *, struct sea_scb *));
299 u_int sea_adapter_info __P((struct sea_softc *));
300 struct sea_scb *sea_get_scb __P((struct sea_softc *, int));
301 void sea_free_scb __P((struct sea_softc *, struct sea_scb *, int));
302 static void sea_main __P((void));
303 static void sea_information_transfer __P((struct sea_softc *));
304 int sea_poll __P((struct sea_softc *, struct scsi_xfer *, struct sea_scb *));
305 void sea_init __P((struct sea_softc *));
306 void sea_send_scb __P((struct sea_softc *sea, struct sea_scb *scb));
307 void sea_reselect __P((struct sea_softc *sea));
308 int sea_select __P((struct sea_softc *sea, struct sea_scb *scb));
309 int sea_transfer_pio __P((struct sea_softc *sea, u_char *phase,
310 int32 *count, u_char **data));
311 int sea_abort __P((struct sea_softc *, struct sea_scb *scb));
312
313 struct scsi_adapter sea_switch = {
314 sea_scsi_cmd,
315 seaminphys,
316 0,
317 0,
318 sea_adapter_info,
319 "sea",
320 };
321
322 /* the below structure is so we have a default dev struct for our link struct */
323 struct scsi_device sea_dev = {
324 NULL, /* use default error handler */
325 NULL, /* have a queue, served by this */
326 NULL, /* have no async handler */
327 NULL, /* Use default 'done' routine */
328 "sea",
329 0,
330 };
331
332 int seaprobe();
333 void seaattach();
334
335 struct cfdriver seacd = {
336 NULL, "sea", seaprobe, seaattach, DV_DULL, sizeof(struct sea_softc)
337 };
338
339 #ifdef SEA_DEBUGQUEUE
340 void
341 sea_queue_length(sea)
342 struct sea_softc *sea;
343 {
344 struct sea_scb *scb;
345 int connected, issued, disconnected;
346
347 connected = sea->connected ? 1 : 0;
348 for (scb = sea->issue_queue.tqh_first, issued = 0; scb;
349 scb = scb->chain.tqe_next, issued++);
350 for (scb = sea->disconnected_queue.tqh_first, disconnected = 0; scb;
351 scb = scb->chain.tqe_next, disconnected++);
352 printf("%s: length: %d/%d/%d\n", sea->sc_dev.dv_xname, connected,
353 issued, disconnected);
354 }
355 #endif
356
357 /*
358 * Check if the device can be found at the port given and if so, detect the
359 * type the type of board. Set it up ready for further work. Takes the isa_dev
360 * structure from autoconf as an argument.
361 * Returns 1 if card recognized, 0 if errors.
362 */
363 int
364 seaprobe(parent, self, aux)
365 struct device *parent, *self;
366 void *aux;
367 {
368 struct sea_softc *sea = (void *)self;
369 struct isa_attach_args *ia = aux;
370 int i;
371
372 /*
373 * Could try to find a board by looking through all possible addresses.
374 * This is not done the right way now, because I have not found a way
375 * to get a boards virtual memory address given its physical. There is
376 * a function that returns the physical address for a given virtual
377 * address, but not the other way around.
378 */
379
380 if (ia->ia_maddr == 0) {
381 /* XXX */
382 return 0;
383 } else
384 sea->maddr = ia->ia_maddr;
385
386 /* check board type */ /* No way to define this through config */
387 for (i = 0; i < nsignatures; i++)
388 if (!memcmp(sea->maddr + signatures[i].offset,
389 signatures[i].signature, signatures[i].length)) {
390 sea->type = signatures[i].type;
391 break;
392 }
393
394 /* Find controller and data memory addresses */
395 switch (sea->type) {
396 case SEAGATE:
397 sea->maddr_cr_sr =
398 (void *) (((u_char *)sea->maddr) + 0x1a00);
399 sea->maddr_dr =
400 (void *) (((u_char *)sea->maddr) + 0x1c00);
401 break;
402 case FDOMAIN:
403 sea->maddr_cr_sr =
404 (void *) (((u_char *)sea->maddr) + 0x1c00);
405 sea->maddr_dr =
406 (void *) (((u_char *)sea->maddr) + 0x1e00);
407 break;
408 default:
409 printf("%s: board type unknown at address 0x%lx\n",
410 sea->sc_dev.dv_xname, sea->maddr);
411 return 0;
412 }
413
414 /* Test controller RAM (works the same way on future domain cards?) */
415 *((u_char *)sea->maddr + SEA_RAMOFFSET) = 0xa5;
416 *((u_char *)sea->maddr + SEA_RAMOFFSET + 1) = 0x5a;
417
418 if ((*((u_char *)sea->maddr + SEA_RAMOFFSET) != 0xa5) ||
419 (*((u_char *)sea->maddr + SEA_RAMOFFSET + 1) != 0x5a)) {
420 printf("%s: board RAM failure\n", sea->sc_dev.dv_xname);
421 return 0;
422 }
423
424 ia->ia_drq = DRQUNK;
425 ia->ia_msize = 0x2000;
426 ia->ia_iosize = 0;
427 return 1;
428 }
429
430 seaprint()
431 {
432
433 }
434
435 /*
436 * Attach all sub-devices we can find
437 */
438 void
439 seaattach(parent, self, aux)
440 struct device *parent, *self;
441 void *aux;
442 {
443 struct isa_attach_args *ia = aux;
444 struct sea_softc *sea = (void *)self;
445
446 sea_init(sea);
447
448 /*
449 * fill in the prototype scsi_link.
450 */
451 sea->sc_link.adapter_softc = sea;
452 sea->sc_link.adapter_targ = sea->our_id;
453 sea->sc_link.adapter = &sea_switch;
454 sea->sc_link.device = &sea_dev;
455
456 printf("\n");
457
458 #ifdef NEWCONFIG
459 isa_establish(&sea->sc_id, &sea->sc_deV);
460 #endif
461 sea->sc_ih.ih_fun = seaintr;
462 sea->sc_ih.ih_arg = sea;
463 sea->sc_ih.ih_level = IPL_BIO;
464 intr_establish(ia->ia_irq, &sea->sc_ih);
465
466 /*
467 * ask the adapter what subunits are present
468 */
469 config_found(self, &sea->sc_link, seaprint);
470 }
471
472 /*
473 * Return some information to the caller about
474 * the adapter and its capabilities
475 */
476 u_int
477 sea_adapter_info(sea)
478 struct sea_softc *sea;
479 {
480
481 return 1; /* 1 outstanding request at a time per device */
482 }
483
484 /*
485 * Catch an interrupt from the adaptor
486 */
487 int
488 seaintr(sea)
489 struct sea_softc *sea;
490 {
491
492 #ifdef DEBUG /* extra overhead, and only needed for intr debugging */
493 if ((STATUS & STAT_PARITY) == 0 &&
494 (STATUS & (STAT_SEL | STAT_IO)) != (STAT_SEL | STAT_IO))
495 return 0;
496 #endif
497
498 loop:
499 /* dispatch to appropriate routine if found and done=0 */
500 /* should check to see that this card really caused the interrupt */
501
502 if (STATUS & STAT_PARITY) {
503 /* Parity error interrupt */
504 printf("%s: parity error\n", sea->sc_dev.dv_xname);
505 return 1;
506 }
507
508 if ((STATUS & (STAT_SEL | STAT_IO)) == (STAT_SEL | STAT_IO)) {
509 /* Reselect interrupt */
510 sea_reselect(sea);
511 if (!main_running)
512 sea_main();
513 goto loop;
514 }
515
516 return 1;
517 }
518
519 /*
520 * Setup data structures, and reset the board and the SCSI bus.
521 */
522 void
523 sea_init(sea)
524 struct sea_softc *sea;
525 {
526 int i;
527
528 /* Reset the scsi bus (I don't know if this is needed */
529 CONTROL = BASE_CMD | CMD_DRVR_ENABLE | CMD_RST;
530 delay(25); /* hold reset for at least 25 microseconds */
531 CONTROL = BASE_CMD;
532 delay(10); /* wait a Bus Clear Delay (800 ns + bus free delay (800 ns) */
533
534 /* Set our id (don't know anything about this) */
535 switch (sea->type) {
536 case SEAGATE:
537 sea->our_id = 7;
538 break;
539 case FDOMAIN:
540 sea->our_id = 6;
541 break;
542 }
543 sea->our_id_mask = 1 << sea->our_id;
544
545 /* init fields used by our routines */
546 sea->connected = 0;
547 TAILQ_INIT(&sea->issue_queue);
548 TAILQ_INIT(&sea->disconnected_queue);
549 TAILQ_INIT(&sea->free_queue);
550 for (i = 0; i < 8; i++)
551 sea->busy[i] = 0x00;
552
553 /* link up the free list of scbs */
554 sea->numscbs = SCB_TABLE_SIZE;
555 for (i = 0; i < SCB_TABLE_SIZE; i++) {
556 TAILQ_INSERT_TAIL(&sea->free_queue, &sea->scbs[i], chain);
557 }
558 }
559
560 void
561 seaminphys(bp)
562 struct buf *bp;
563 {
564
565 /* No need for a max since we're doing PIO. */
566 }
567
568 /*
569 * start a scsi operation given the command and the data address. Also needs
570 * the unit, target and lu.
571 */
572 int
573 sea_scsi_cmd(xs)
574 struct scsi_xfer *xs;
575 {
576 struct scsi_link *sc_link = xs->sc_link;
577 struct sea_softc *sea = sc_link->adapter_softc;
578 struct sea_scb *scb;
579 int flags;
580
581 SC_DEBUG(sc_link, SDEV_DB2, ("sea_scsi_cmd\n"));
582
583 flags = xs->flags;
584 if (xs->bp)
585 flags |= SCSI_NOSLEEP;
586 if (flags & ITSDONE) {
587 printf("%s: already done?", sea->sc_dev.dv_xname);
588 xs->flags &= ~ITSDONE;
589 }
590 if (!(flags & INUSE)) {
591 printf("%s: not in use?", sea->sc_dev.dv_xname);
592 xs->flags |= INUSE;
593 }
594 if (!(scb = sea_get_scb(sea, flags))) {
595 xs->error = XS_DRIVER_STUFFUP;
596 return TRY_AGAIN_LATER;
597 }
598
599 scb->xfer = xs;
600
601 if (flags & SCSI_RESET) {
602 /*
603 * Try to send a reset command to the card.
604 * XXX Not implemented.
605 */
606 printf("%s: resetting\n", sea->sc_dev.dv_xname);
607 xs->error = XS_DRIVER_STUFFUP;
608 return HAD_ERROR;
609 }
610
611 /*
612 * Put all the arguments for the xfer in the scb
613 */
614 scb->datalen = xs->datalen;
615 scb->data = xs->data;
616
617 #ifdef SEA_DEBUGQUEUE
618 sea_queue_length(sea);
619 #endif
620
621 /*
622 * Usually return SUCCESSFULLY QUEUED
623 */
624 if (!(flags & SCSI_NOMASK)) {
625 int s = splbio();
626 sea_send_scb(sea, scb);
627 if (!(xs->flags & ITSDONE))
628 timeout(sea_timeout, scb, (xs->timeout * hz) / 1000);
629 splx(s);
630 return SUCCESSFULLY_QUEUED;
631 }
632
633 /*
634 * If we can't use interrupts, poll on completion
635 */
636 sea_send_scb(sea, scb);
637 /* XXX Check ITSDONE? */
638 return sea_poll(sea, xs, scb);
639 }
640
641 /*
642 * Get a free scb. If there are none, see if we can allocate a new one. If so,
643 * put it in the hash table too; otherwise return an error or sleep.
644 */
645 struct sea_scb *
646 sea_get_scb(sea, flags)
647 struct sea_softc *sea;
648 int flags;
649 {
650 int s;
651 struct sea_scb *scb;
652
653 if (!(flags & SCSI_NOMASK))
654 s = splbio();
655
656 /*
657 * If we can and have to, sleep waiting for one to come free
658 * but only if we can't allocate a new one.
659 */
660 for (;;) {
661 scb = sea->free_queue.tqh_first;
662 if (scb) {
663 TAILQ_REMOVE(&sea->free_queue, scb, chain);
664 break;
665 }
666 if (sea->numscbs < SEA_SCB_MAX) {
667 printf("malloced new scbs\n");
668 if (scb = (void *) malloc(sizeof(struct sea_scb),
669 M_TEMP, M_NOWAIT)) {
670 bzero(scb, sizeof(struct sea_scb));
671 sea->numscbs++;
672 scb->flags = SCB_ACTIVE;
673 } else
674 printf("%s: can't malloc scb\n",
675 sea->sc_dev.dv_xname);
676 break;
677 } else {
678 if (!(flags & SCSI_NOSLEEP))
679 tsleep((caddr_t)&sea->free_queue, PRIBIO,
680 "seascb", 0);
681 }
682 }
683 if (!(flags & SCSI_NOMASK))
684 splx(s);
685
686 return scb;
687 }
688
689 /*
690 * Try to send this command to the board. Because this board does not use any
691 * mailboxes, this routine simply adds the command to the queue held by the
692 * sea_softc structure.
693 * A check is done to see if the command contains a REQUEST_SENSE command, and
694 * if so the command is put first in the queue, otherwise the command is added
695 * to the end of the queue. ?? Not correct ??
696 */
697 void
698 sea_send_scb(sea, scb)
699 struct sea_softc *sea;
700 struct sea_scb *scb;
701 {
702
703 #ifdef SEA_SENSEFIRST
704 if (scb->xfer->cmd->opcode == (u_char) REQUEST_SENSE) {
705 TAILQ_INSERT_HEAD(&sea->issue_queue, scb, chain);
706 } else {
707 TAILQ_INSERT_TAIL(&sea->issue_queue, scb, chain);
708 }
709 #else
710 TAILQ_INSERT_TAIL(&sea->issue_queue, scb, chain);
711 #endif
712 /* Try to do some work on the card */
713 if (!main_running)
714 sea_main();
715 }
716
717 /*
718 * Coroutine that runs as long as more work can be done on the seagate host
719 * adapter in a system. Both sea_scsi_cmd and sea_intr will try to start it in
720 * case it is not running.
721 */
722 void
723 sea_main()
724 {
725 struct sea_softc *sea;
726 struct sea_scb *scb;
727 int done;
728 int unit;
729 int s;
730
731 main_running = 1;
732
733 /*
734 * This should not be run with interrupts disabled, but use the splx
735 * code instead.
736 */
737 loop:
738 done = 1;
739 for (unit = 0; unit < seacd.cd_ndevs; unit++) {
740 sea = seacd.cd_devs[unit];
741 if (!sea)
742 continue;
743 s = splbio();
744 if (!sea->connected) {
745 /*
746 * Search through the issue_queue for a command
747 * destined for a target that's not busy.
748 */
749 for (scb = sea->issue_queue.tqh_first; scb;
750 scb = scb->chain.tqe_next) {
751 if (!(sea->busy[scb->xfer->sc_link->target] &
752 (1 << scb->xfer->sc_link->lun))) {
753 TAILQ_REMOVE(&sea->issue_queue, scb,
754 chain);
755
756 /* Re-enable interrupts. */
757 splx(s);
758
759 /*
760 * Attempt to establish an I_T_L nexus.
761 * On success, sea->connected is set.
762 * On failure, we must add the command
763 * back to the issue queue so we can
764 * keep trying.
765 */
766
767 /*
768 * REQUEST_SENSE commands are issued
769 * without tagged queueing, even on
770 * SCSI-II devices because the
771 * contingent alligence condition
772 * exists for the entire unit.
773 */
774
775 /*
776 * First check that if any device has
777 * tried a reconnect while we have done
778 * other things with interrupts
779 * disabled.
780 */
781
782 if ((STATUS & (STAT_SEL | STAT_IO)) ==
783 (STAT_SEL | STAT_IO)) {
784 sea_reselect(sea);
785 break;
786 }
787 if (sea_select(sea, scb)) {
788 s = splbio();
789 TAILQ_INSERT_HEAD(&sea->issue_queue,
790 scb, chain);
791 splx(s);
792 } else
793 break;
794 } /* if target/lun is not busy */
795 } /* for scb */
796 } /* if (!sea->connected) */
797
798 splx(s);
799 if (sea->connected) { /* we are connected. Do the task */
800 sea_information_transfer(sea);
801 done = 0;
802 } else
803 break;
804 } /* for instance */
805
806 if (!done)
807 goto loop;
808
809 main_running = 0;
810 }
811
812 void
813 sea_free_scb(sea, scb, flags)
814 struct sea_softc *sea;
815 struct sea_scb *scb;
816 int flags;
817 {
818 int s;
819
820 if (!(flags & SCSI_NOMASK))
821 s = splbio();
822
823 TAILQ_INSERT_HEAD(&sea->free_queue, scb, chain);
824 scb->flags = SCB_FREE;
825 /*
826 * If there were none, wake anybody waiting for one to come free,
827 * starting with queued entries.
828 */
829 if (!scb->chain.tqe_next)
830 wakeup((caddr_t)&sea->free_queue);
831
832 if (!(flags & SCSI_NOMASK))
833 splx(s);
834 }
835
836 void
837 sea_timeout(arg)
838 void *arg;
839 {
840 int s = splbio();
841 struct sea_scb *scb = arg;
842 struct sea_softc *sea;
843
844 sea = scb->xfer->sc_link->adapter_softc;
845 sc_print_addr(scb->xfer->sc_link);
846 printf("timed out");
847
848 /*
849 * If it has been through before, then
850 * a previous abort has failed, don't
851 * try abort again
852 */
853 if (scb->flags & SCB_ABORTED) {
854 printf(" AGAIN\n");
855 scb->xfer->retries = 0;
856 scb->flags |= SCB_ABORTED;
857 sea_done(sea, scb);
858 } else {
859 printf("\n");
860 sea_abort(sea, scb);
861 timeout(sea_timeout, scb, 2 * hz);
862 scb->flags |= SCB_ABORTED;
863 }
864 splx(s);
865 }
866
867 void
868 sea_reselect(sea)
869 struct sea_softc *sea;
870 {
871 u_char target_mask;
872 int i;
873 u_char lun, phase;
874 u_char msg[3];
875 int32 len;
876 u_char *data;
877 struct sea_scb *scb;
878 int abort = 0;
879
880 if (!((target_mask = STATUS) & STAT_SEL)) {
881 printf("%s: wrong state 0x%x\n", sea->sc_dev.dv_xname,
882 target_mask);
883 return;
884 }
885
886 /* wait for a device to win the reselection phase */
887 /* signals this by asserting the I/O signal */
888 for (i = 10; i && (STATUS & (STAT_SEL | STAT_IO | STAT_BSY)) !=
889 (STAT_SEL | STAT_IO | 0); i--);
890 /* !! Check for timeout here */
891 /* the data bus contains original initiator id ORed with target id */
892 target_mask = DATA;
893 /* see that we really are the initiator */
894 if (!(target_mask & sea->our_id_mask)) {
895 printf("%s: polled reselection was not for me: 0x%x\n",
896 sea->sc_dev.dv_xname, target_mask);
897 return;
898 }
899 /* find target who won */
900 target_mask &= ~sea->our_id_mask;
901 /* host responds by asserting the BSY signal */
902 CONTROL = BASE_CMD | CMD_DRVR_ENABLE | CMD_BSY;
903 /* target should respond by deasserting the SEL signal */
904 for (i = 50000; i && (STATUS & STAT_SEL); i++);
905 /* remove the busy status */
906 CONTROL = BASE_CMD | CMD_DRVR_ENABLE;
907 /* we are connected. Now we wait for the MSGIN condition */
908 for (i = 50000; i && !(STATUS & STAT_REQ); i--);
909 /* !! Add timeout check here */
910 /* hope we get an IDENTIFY message */
911 len = 3;
912 data = msg;
913 phase = REQ_MSGIN;
914 sea_transfer_pio(sea, &phase, &len, &data);
915
916 if (!(msg[0] & 0x80)) {
917 printf("%s: expecting IDENTIFY message, got 0x%x\n",
918 sea->sc_dev.dv_xname, msg[0]);
919 abort = 1;
920 } else {
921 lun = msg[0] & 0x07;
922
923 /*
924 * Find the command corresponding to the I_T_L or I_T_L_Q nexus
925 * we just reestablished, and remove it from the disconnected
926 * queue.
927 */
928 for (scb = sea->disconnected_queue.tqh_first; scb;
929 scb = scb->chain.tqe_next)
930 if (target_mask == (1 << scb->xfer->sc_link->target) &&
931 lun == scb->xfer->sc_link->lun) {
932 TAILQ_REMOVE(&sea->disconnected_queue, scb,
933 chain);
934 break;
935 }
936 if (!scb) {
937 printf("%s: target %02x lun %d not disconnected\n",
938 sea->sc_dev.dv_xname, target_mask, lun);
939 /*
940 * Since we have an established nexus that we can't do
941 * anything with, we must abort it.
942 */
943 abort = 1;
944 }
945 }
946
947 if (abort) {
948 msg[0] = MSG_ABORT;
949 len = 1;
950 data = msg;
951 phase = REQ_MSGOUT;
952 CONTROL = BASE_CMD | CMD_ATTN;
953 sea_transfer_pio(sea, &phase, &len, &data);
954 } else
955 sea->connected = scb;
956
957 return;
958 }
959
960 /*
961 * Transfer data in given phase using polled I/O.
962 */
963 int
964 sea_transfer_pio(sea, phase, count, data)
965 struct sea_softc *sea;
966 u_char *phase;
967 int32 *count;
968 u_char **data;
969 {
970 register u_char p = *phase, tmp;
971 register int c = *count;
972 register u_char *d = *data;
973 int timeout;
974
975 do {
976 /*
977 * Wait for assertion of REQ, after which the phase bits will
978 * be valid.
979 */
980 for (timeout = 0; timeout < 5000000L; timeout++)
981 if ((tmp = STATUS) & STAT_REQ)
982 break;
983 if (!(tmp & STAT_REQ)) {
984 printf("%s: timeout waiting for STAT_REQ\n",
985 sea->sc_dev.dv_xname);
986 break;
987 }
988
989 /*
990 * Check for phase mismatch. Reached if the target decides
991 * that it has finished the transfer.
992 */
993 if ((tmp & REQ_MASK) != p)
994 break;
995
996 /* Do actual transfer from SCSI bus to/from memory. */
997 if (!(p & STAT_IO))
998 DATA = *d;
999 else
1000 *d = DATA;
1001 ++d;
1002
1003 /*
1004 * The SCSI standard suggests that in MSGOUT phase, the
1005 * initiator should drop ATN on the last byte of the message
1006 * phase after REQ has been asserted for the handshake but
1007 * before the initiator raises ACK.
1008 * Don't know how to accomplish this on the ST01/02.
1009 */
1010
1011 #if 0
1012 /*
1013 * XXX
1014 * The st01 code doesn't wait for STAT_REQ to be deasserted.
1015 * Is this ok?
1016 */
1017 for (timeout = 0; timeout < 200000L; timeout++)
1018 if (!(STATUS & STAT_REQ))
1019 break;
1020 if (STATUS & STAT_REQ)
1021 printf("%s: timeout on wait for !STAT_REQ",
1022 sea->sc_dev.dv_xname);
1023 #endif
1024 } while (--c);
1025
1026 *count = c;
1027 *data = d;
1028 tmp = STATUS;
1029 if (tmp & STAT_REQ)
1030 *phase = tmp & REQ_MASK;
1031 else
1032 *phase = REQ_UNKNOWN;
1033
1034 if (c && (*phase != p))
1035 return -1;
1036 return 0;
1037 }
1038
1039 /*
1040 * Establish I_T_L or I_T_L_Q nexus for new or existing command including
1041 * ARBITRATION, SELECTION, and initial message out for IDENTIFY and queue
1042 * messages. Return -1 if selection could not execute for some reason, 0 if
1043 * selection succeded or failed because the target did not respond.
1044 */
1045 int
1046 sea_select(sea, scb)
1047 struct sea_softc *sea;
1048 struct sea_scb *scb;
1049 {
1050 u_char msg[3], phase;
1051 u_char *data;
1052 int32 len;
1053 int timeout;
1054
1055 CONTROL = BASE_CMD;
1056 DATA = sea->our_id_mask;
1057 CONTROL = (BASE_CMD & ~CMD_INTR) | CMD_START_ARB;
1058
1059 /* wait for arbitration to complete */
1060 for (timeout = 0; timeout < 3000000L; timeout++)
1061 if (STATUS & STAT_ARB_CMPL)
1062 break;
1063 if (!(STATUS & STAT_ARB_CMPL)) {
1064 if (STATUS & STAT_SEL) {
1065 printf("%s: arbitration lost\n", sea->sc_dev.dv_xname);
1066 scb->flags |= SCB_ERROR;
1067 } else {
1068 printf("%s: arbitration timeout\n",
1069 sea->sc_dev.dv_xname);
1070 scb->flags |= SCB_TIMEOUT;
1071 }
1072 CONTROL = BASE_CMD;
1073 return -1;
1074 }
1075
1076 delay(2);
1077 DATA = (u_char)((1 << scb->xfer->sc_link->target) | sea->our_id_mask);
1078 CONTROL =
1079 #ifdef SEA_NOMSGS
1080 (BASE_CMD & ~CMD_INTR) | CMD_DRVR_ENABLE | CMD_SEL;
1081 #else
1082 (BASE_CMD & ~CMD_INTR) | CMD_DRVR_ENABLE | CMD_SEL | CMD_ATTN;
1083 #endif
1084 delay(1);
1085
1086 /* wait for a bsy from target */
1087 for (timeout = 0; timeout < 2000000L; timeout++)
1088 if (STATUS & STAT_BSY)
1089 break;
1090 if (!(STATUS & STAT_BSY)) {
1091 /* should return some error to the higher level driver */
1092 CONTROL = BASE_CMD;
1093 scb->flags |= SCB_TIMEOUT;
1094 return 0;
1095 }
1096
1097 /* Try to make the target to take a message from us */
1098 #ifdef SEA_NOMSGS
1099 CONTROL = (BASE_CMD & ~CMD_INTR) | CMD_DRVR_ENABLE;
1100 #else
1101 CONTROL = (BASE_CMD & ~CMD_INTR) | CMD_DRVR_ENABLE | CMD_ATTN;
1102 #endif
1103 delay(1);
1104
1105 /* should start a msg_out phase */
1106 for (timeout = 0; timeout < 2000000L; timeout++)
1107 if (STATUS & STAT_REQ)
1108 break;
1109 CONTROL = BASE_CMD | CMD_DRVR_ENABLE;
1110 if (!(STATUS & STAT_REQ)) {
1111 /*
1112 * This should not be taken as an error, but more like an
1113 * unsupported feature! Should set a flag indicating that the
1114 * target don't support messages, and continue without failure.
1115 * (THIS IS NOT AN ERROR!)
1116 */
1117 } else {
1118 msg[0] = IDENTIFY(1, scb->xfer->sc_link->lun);
1119 len = 1;
1120 data = msg;
1121 phase = REQ_MSGOUT;
1122 /* Should do test on result of sea_transfer_pio(). */
1123 sea_transfer_pio(sea, &phase, &len, &data);
1124 }
1125 if (!(STATUS & STAT_BSY))
1126 printf("%s: after successful arbitrate: no STAT_BSY!\n",
1127 sea->sc_dev.dv_xname);
1128
1129 sea->connected = scb;
1130 sea->busy[scb->xfer->sc_link->target] |= 1 << scb->xfer->sc_link->lun;
1131 /* This assignment should depend on possibility to send a message to target. */
1132 CONTROL = BASE_CMD | CMD_DRVR_ENABLE;
1133 /* XXX Reset pointer in command? */
1134 return 0;
1135 }
1136
1137 /*
1138 * Send an abort to the target. Return 1 success, 0 on failure.
1139 */
1140 int
1141 sea_abort(sea, scb)
1142 struct sea_softc *sea;
1143 struct sea_scb *scb;
1144 {
1145 struct sea_scb *tmp;
1146 u_char msg, phase, *msgptr;
1147 int32 len;
1148 int s;
1149
1150 s = splbio();
1151
1152 /*
1153 * If the command hasn't been issued yet, we simply remove it from the
1154 * issue queue
1155 * XXX Could avoid this loop.
1156 */
1157 for (tmp = sea->issue_queue.tqh_first; tmp; tmp = tmp->chain.tqe_next)
1158 if (scb == tmp) {
1159 TAILQ_REMOVE(&sea->issue_queue, scb, chain);
1160 /* XXX Set some type of error result for operation. */
1161 splx(s);
1162 return 1;
1163 }
1164
1165 /*
1166 * If any commands are connected, we're going to fail the abort and let
1167 * the high level SCSI driver retry at a later time or issue a reset.
1168 */
1169 if (sea->connected) {
1170 splx(s);
1171 return 0;
1172 }
1173
1174 /*
1175 * If the command is currently disconnected from the bus, and there are
1176 * no connected commands, we reconnect the I_T_L or I_T_L_Q nexus
1177 * associated with it, go into message out, and send an abort message.
1178 */
1179 for (tmp = sea->disconnected_queue.tqh_first; tmp;
1180 tmp = tmp->chain.tqe_next)
1181 if (scb == tmp) {
1182 splx(s);
1183 if (sea_select(sea, scb))
1184 return 0;
1185
1186 msg = MSG_ABORT;
1187 msgptr = &msg;
1188 len = 1;
1189 phase = REQ_MSGOUT;
1190 CONTROL = BASE_CMD | CMD_ATTN;
1191 sea_transfer_pio(sea, &phase, &len, &msgptr);
1192
1193 s = splbio();
1194 for (tmp = sea->disconnected_queue.tqh_first; tmp;
1195 tmp = tmp->chain.tqe_next)
1196 if (scb == tmp) {
1197 TAILQ_REMOVE(&sea->disconnected_queue,
1198 scb, chain);
1199 /* XXX Set some type of error result
1200 for the operation. */
1201 splx(s);
1202 return 1;
1203 }
1204 }
1205
1206 /* Command not found in any queue; race condition? */
1207 splx(s);
1208 return 1;
1209 }
1210
1211 void
1212 sea_done(sea, scb)
1213 struct sea_softc *sea;
1214 struct sea_scb *scb;
1215 {
1216 struct scsi_xfer *xs = scb->xfer;
1217
1218 untimeout(sea_timeout, scb);
1219
1220 xs->resid = scb->datalen;
1221
1222 if ((scb->flags == SCB_ACTIVE) || (xs->flags & SCSI_ERR_OK)) {
1223 xs->resid = 0;
1224 xs->error = 0;
1225 } else {
1226 if (!(scb->flags == SCB_ACTIVE)) {
1227 if ((scb->flags & SCB_TIMEOUT) ||
1228 (scb->flags & SCB_ABORTED))
1229 xs->error = XS_TIMEOUT;
1230 if (scb->flags & SCB_ERROR)
1231 xs->error = XS_DRIVER_STUFFUP;
1232 } else {
1233 /* XXX Add code to check for target status. */
1234 xs->error = XS_DRIVER_STUFFUP;
1235 }
1236 }
1237 xs->flags |= ITSDONE;
1238 sea_free_scb(sea, scb, xs->flags);
1239 scsi_done(xs);
1240 }
1241
1242 /*
1243 * Wait for completion of command in polled mode.
1244 */
1245 int
1246 sea_poll(sea, xs, scb)
1247 struct sea_softc *sea;
1248 struct scsi_xfer *xs;
1249 struct sea_scb *scb;
1250 {
1251 int count = 500; /* XXX xs->timeout; */
1252 int s;
1253
1254 while (count) {
1255 /* try to do something */
1256 s = splbio();
1257 if (!main_running)
1258 sea_main();
1259 splx(s);
1260 if (xs->flags & ITSDONE)
1261 break;
1262 delay(10);
1263 count--;
1264 }
1265 if (count == 0) {
1266 /*
1267 * We timed out, so call the timeout handler manually,
1268 * accounting for the fact that the clock is not running yet
1269 * by taking out the clock queue entry it makes.
1270 */
1271 sea_timeout(scb);
1272
1273 /*
1274 * Because we are polling, take out the timeout entry
1275 * sea_timeout() made.
1276 */
1277 untimeout(sea_timeout, scb);
1278 count = 50;
1279 while (count) {
1280 /* Once again, wait for the int bit. */
1281 s = splbio();
1282 if (!main_running)
1283 sea_main();
1284 splx(s);
1285 if (xs->flags & ITSDONE)
1286 break;
1287 delay(10);
1288 count--;
1289 }
1290 if (count == 0) {
1291 /*
1292 * We timed out again... This is bad. Notice that
1293 * this time there is no clock queue entry to remove
1294 */
1295 sea_timeout(scb);
1296 }
1297 }
1298 if (xs->error)
1299 return HAD_ERROR;
1300 return COMPLETE;
1301 }
1302
1303 /*
1304 * Do the transfer. We know we are connected. Update the flags, and call
1305 * sea_done() when task accomplished. Dialog controlled by the target.
1306 */
1307 void
1308 sea_information_transfer(sea)
1309 struct sea_softc *sea;
1310 {
1311 int timeout;
1312 u_char msgout = MSG_NOP;
1313 int32 len;
1314 int s;
1315 u_char *data;
1316 u_char phase, tmp, old_phase = REQ_UNKNOWN;
1317 struct sea_scb *scb = sea->connected;
1318 int loop;
1319
1320 for (timeout = 0; timeout < 10000000L; timeout++) {
1321 tmp = STATUS;
1322 if (!(tmp & STAT_BSY)) {
1323 #if 0
1324 for (loop = 0; loop < 20; loop++)
1325 if ((tmp = STATUS) & STAT_BSY)
1326 break;
1327 #endif
1328 if (!(tmp & STAT_BSY)) {
1329 printf("%s: !STAT_BSY unit in data transfer!\n",
1330 sea->sc_dev.dv_xname);
1331 s = splbio();
1332 sea->connected = NULL;
1333 scb->flags = SCB_ERROR;
1334 splx(s);
1335 sea_done(sea, scb);
1336 return;
1337 }
1338 }
1339
1340 /* we only have a valid SCSI phase when REQ is asserted */
1341 if (!(tmp & STAT_REQ))
1342 continue;
1343
1344 phase = (tmp & REQ_MASK);
1345 if (phase != old_phase)
1346 old_phase = phase;
1347
1348 switch (phase) {
1349 case REQ_DATAOUT:
1350 #ifdef SEA_NODATAOUT
1351 printf("%s: SEA_NODATAOUT set, attempted DATAOUT aborted\n",
1352 sea->sc_dev.dv_xname);
1353 msgout = MSG_ABORT;
1354 CONTROL = BASE_CMD | CMD_ATTN;
1355 break;
1356 #endif
1357 case REQ_DATAIN:
1358 if (!scb->data)
1359 printf("no data address!\n");
1360 #ifdef SEA_BLINDTRANSFER
1361 if (scb->datalen && !(scb->datalen % BLOCK_SIZE)) {
1362 while (scb->datalen) {
1363 for (timeout = 0; timeout < 5000000L;
1364 timeout++)
1365 if ((tmp = STATUS) & STAT_REQ)
1366 break;
1367 if (!(tmp & STAT_REQ)) {
1368 printf("%s: timeout waiting for STAT_REQ\n",
1369 sea->sc_dev.dv_xname);
1370 /* XXX Do something? */
1371 }
1372 if ((tmp & REQ_MASK) != phase)
1373 break;
1374 if (!(phase & STAT_IO)) {
1375 #ifdef SEA_ASSEMBLER
1376 asm("shr $2, %%ecx\n\t\
1377 cld\n\t\
1378 rep\n\t\
1379 movsl" :
1380 "=S" (scb->data) :
1381 "0" (scb->data),
1382 "D" (sea->maddr_dr),
1383 "c" (BLOCK_SIZE) :
1384 "%ecx", "%edi");
1385 #else
1386 for (count = 0;
1387 count < BLOCK_SIZE;
1388 count++)
1389 DATA = *(scb->data++);
1390 #endif
1391 } else {
1392 #ifdef SEA_ASSEMBLER
1393 asm("shr $2, %%ecx\n\t\
1394 cld\n\t\
1395 rep\n\t\
1396 movsl" :
1397 "=D" (scb->data) :
1398 "S" (sea->maddr_dr),
1399 "0" (scb->data),
1400 "c" (BLOCK_SIZE) :
1401 "%ecx", "%esi");
1402 #else
1403 for (count = 0;
1404 count < BLOCK_SIZE;
1405 count++)
1406 *(scb->data++) = DATA;
1407 #endif
1408 }
1409 scb->datalen -= BLOCK_SIZE;
1410 }
1411 }
1412 #endif
1413 if (scb->datalen)
1414 sea_transfer_pio(sea, &phase, &scb->datalen,
1415 &scb->data);
1416 break;
1417 case REQ_MSGIN:
1418 /* Multibyte messages should not be present here. */
1419 len = 1;
1420 data = &tmp;
1421 sea_transfer_pio(sea, &phase, &len, &data);
1422 /* scb->MessageIn = tmp; */
1423
1424 switch (tmp) {
1425 case MSG_ABORT:
1426 scb->flags = SCB_ABORTED;
1427 printf("sea: command aborted by target\n");
1428 CONTROL = BASE_CMD;
1429 sea_done(sea, scb);
1430 return;
1431 case MSG_COMMAND_COMPLETE:
1432 s = splbio();
1433 sea->connected = NULL;
1434 splx(s);
1435 sea->busy[scb->xfer->sc_link->target] &=
1436 ~(1 << scb->xfer->sc_link->lun);
1437 CONTROL = BASE_CMD;
1438 sea_done(sea, scb);
1439 return;
1440 case MSG_MESSAGE_REJECT:
1441 printf("%s: message_reject recieved\n",
1442 sea->sc_dev.dv_xname);
1443 break;
1444 case MSG_DISCONNECT:
1445 s = splbio();
1446 TAILQ_INSERT_TAIL(&sea->disconnected_queue,
1447 scb, chain);
1448 sea->connected = NULL;
1449 CONTROL = BASE_CMD;
1450 splx(s);
1451 return;
1452 case MSG_SAVE_POINTERS:
1453 case MSG_RESTORE_POINTERS:
1454 /* save/restore of pointers are ignored */
1455 break;
1456 default:
1457 /*
1458 * This should be handled in the pio data
1459 * transfer phase, as the ATN should be raised
1460 * before ACK goes false when rejecting a
1461 * message.
1462 */
1463 printf("%s: unknown message in: %x\n",
1464 sea->sc_dev.dv_xname, tmp);
1465 break;
1466 } /* switch (tmp) */
1467 break;
1468 case REQ_MSGOUT:
1469 len = 1;
1470 data = &msgout;
1471 /* sea->last_message = msgout; */
1472 sea_transfer_pio(sea, &phase, &len, &data);
1473 if (msgout == MSG_ABORT) {
1474 printf("%s: sent message abort to target\n",
1475 sea->sc_dev.dv_xname);
1476 s = splbio();
1477 sea->busy[scb->xfer->sc_link->target] &=
1478 ~(1 << scb->xfer->sc_link->lun);
1479 sea->connected = NULL;
1480 scb->flags = SCB_ABORTED;
1481 splx(s);
1482 /* enable interrupt from scsi */
1483 sea_done(sea, scb);
1484 return;
1485 }
1486 msgout = MSG_NOP;
1487 break;
1488 case REQ_CMDOUT:
1489 len = scb->xfer->cmdlen;
1490 data = (char *) scb->xfer->cmd;
1491 sea_transfer_pio(sea, &phase, &len, &data);
1492 break;
1493 case REQ_STATIN:
1494 len = 1;
1495 data = &tmp;
1496 sea_transfer_pio(sea, &phase, &len, &data);
1497 scb->xfer->status = tmp;
1498 break;
1499 default:
1500 printf("sea: unknown phase\n");
1501 } /* switch (phase) */
1502 } /* for (...) */
1503
1504 /* If we get here we have got a timeout! */
1505 printf("%s: timeout in data transfer\n", sea->sc_dev.dv_xname);
1506 scb->flags = SCB_TIMEOUT;
1507 /* XXX Should I clear scsi-bus state? */
1508 sea_done(sea, scb);
1509 }
1510