1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * Device driver for the SYMBIOS/LSILOGIC 53C8XX and 53C1010 family
4  * of PCI-SCSI IO processors.
5  *
6  * Copyright (C) 1999-2001  Gerard Roudier <groudier@free.fr>
7  * Copyright (c) 2003-2005  Matthew Wilcox <matthew@wil.cx>
8  *
9  * This driver is derived from the Linux sym53c8xx driver.
10  * Copyright (C) 1998-2000  Gerard Roudier
11  *
12  * The sym53c8xx driver is derived from the ncr53c8xx driver that had been
13  * a port of the FreeBSD ncr driver to Linux-1.2.13.
14  *
15  * The original ncr driver has been written for 386bsd and FreeBSD by
16  *         Wolfgang Stanglmeier        <wolf@cologne.de>
17  *         Stefan Esser                <se@mi.Uni-Koeln.de>
18  * Copyright (C) 1994  Wolfgang Stanglmeier
19  *
20  * Other major contributions:
21  *
22  * NVRAM detection and reading.
23  * Copyright (C) 1997 Richard Waltham <dormouse@farsrobt.demon.co.uk>
24  *
25  *-----------------------------------------------------------------------------
26  */
27 #include <linux/ctype.h>
28 #include <linux/init.h>
29 #include <linux/module.h>
30 #include <linux/moduleparam.h>
31 #include <linux/spinlock.h>
32 #include <scsi/scsi.h>
33 #include <scsi/scsi_tcq.h>
34 #include <scsi/scsi_device.h>
35 #include <scsi/scsi_transport.h>
36 
37 #include "sym_glue.h"
38 #include "sym_nvram.h"
39 
40 #define NAME53C		"sym53c"
41 #define NAME53C8XX	"sym53c8xx"
42 
43 struct sym_driver_setup sym_driver_setup = SYM_LINUX_DRIVER_SETUP;
44 unsigned int sym_debug_flags = 0;
45 
46 static char *excl_string;
47 static char *safe_string;
48 module_param_named(cmd_per_lun, sym_driver_setup.max_tag, ushort, 0);
49 module_param_named(burst, sym_driver_setup.burst_order, byte, 0);
50 module_param_named(led, sym_driver_setup.scsi_led, byte, 0);
51 module_param_named(diff, sym_driver_setup.scsi_diff, byte, 0);
52 module_param_named(irqm, sym_driver_setup.irq_mode, byte, 0);
53 module_param_named(buschk, sym_driver_setup.scsi_bus_check, byte, 0);
54 module_param_named(hostid, sym_driver_setup.host_id, byte, 0);
55 module_param_named(verb, sym_driver_setup.verbose, byte, 0);
56 module_param_named(debug, sym_debug_flags, uint, 0);
57 module_param_named(settle, sym_driver_setup.settle_delay, byte, 0);
58 module_param_named(nvram, sym_driver_setup.use_nvram, byte, 0);
59 module_param_named(excl, excl_string, charp, 0);
60 module_param_named(safe, safe_string, charp, 0);
61 
62 MODULE_PARM_DESC(cmd_per_lun, "The maximum number of tags to use by default");
63 MODULE_PARM_DESC(burst, "Maximum burst.  0 to disable, 255 to read from registers");
64 MODULE_PARM_DESC(led, "Set to 1 to enable LED support");
65 MODULE_PARM_DESC(diff, "0 for no differential mode, 1 for BIOS, 2 for always, 3 for not GPIO3");
66 MODULE_PARM_DESC(irqm, "0 for open drain, 1 to leave alone, 2 for totem pole");
67 MODULE_PARM_DESC(buschk, "0 to not check, 1 for detach on error, 2 for warn on error");
68 MODULE_PARM_DESC(hostid, "The SCSI ID to use for the host adapters");
69 MODULE_PARM_DESC(verb, "0 for minimal verbosity, 1 for normal, 2 for excessive");
70 MODULE_PARM_DESC(debug, "Set bits to enable debugging");
71 MODULE_PARM_DESC(settle, "Settle delay in seconds.  Default 3");
72 MODULE_PARM_DESC(nvram, "Option currently not used");
73 MODULE_PARM_DESC(excl, "List ioport addresses here to prevent controllers from being attached");
74 MODULE_PARM_DESC(safe, "Set other settings to a \"safe mode\"");
75 
76 MODULE_LICENSE("GPL");
77 MODULE_VERSION(SYM_VERSION);
78 MODULE_AUTHOR("Matthew Wilcox <matthew@wil.cx>");
79 MODULE_DESCRIPTION("NCR, Symbios and LSI 8xx and 1010 PCI SCSI adapters");
80 
81 static void sym2_setup_params(void)
82 {
83 	char *p = excl_string;
84 	int xi = 0;
85 
86 	while (p && (xi < 8)) {
87 		char *next_p;
88 		int val = (int) simple_strtoul(p, &next_p, 0);
89 		sym_driver_setup.excludes[xi++] = val;
90 		p = next_p;
91 	}
92 
93 	if (safe_string) {
94 		if (*safe_string == 'y') {
95 			sym_driver_setup.max_tag = 0;
96 			sym_driver_setup.burst_order = 0;
97 			sym_driver_setup.scsi_led = 0;
98 			sym_driver_setup.scsi_diff = 1;
99 			sym_driver_setup.irq_mode = 0;
100 			sym_driver_setup.scsi_bus_check = 2;
101 			sym_driver_setup.host_id = 7;
102 			sym_driver_setup.verbose = 2;
103 			sym_driver_setup.settle_delay = 10;
104 			sym_driver_setup.use_nvram = 1;
105 		} else if (*safe_string != 'n') {
106 			printk(KERN_WARNING NAME53C8XX "Ignoring parameter %s"
107 					" passed to safe option", safe_string);
108 		}
109 	}
110 }
111 
112 static struct scsi_transport_template *sym2_transport_template = NULL;
113 
114 /*
115  *  Driver private area in the SCSI command structure.
116  */
117 struct sym_ucmd {		/* Override the SCSI pointer structure */
118 	struct completion *eh_done;		/* SCSI error handling */
119 };
120 
121 #define SYM_UCMD_PTR(cmd)  ((struct sym_ucmd *)(&(cmd)->SCp))
122 #define SYM_SOFTC_PTR(cmd) sym_get_hcb(cmd->device->host)
123 
124 /*
125  *  Complete a pending CAM CCB.
126  */
127 void sym_xpt_done(struct sym_hcb *np, struct scsi_cmnd *cmd)
128 {
129 	struct sym_ucmd *ucmd = SYM_UCMD_PTR(cmd);
130 	BUILD_BUG_ON(sizeof(struct scsi_pointer) < sizeof(struct sym_ucmd));
131 
132 	if (ucmd->eh_done)
133 		complete(ucmd->eh_done);
134 
135 	scsi_dma_unmap(cmd);
136 	cmd->scsi_done(cmd);
137 }
138 
139 /*
140  *  Tell the SCSI layer about a BUS RESET.
141  */
142 void sym_xpt_async_bus_reset(struct sym_hcb *np)
143 {
144 	printf_notice("%s: SCSI BUS has been reset.\n", sym_name(np));
145 	np->s.settle_time = jiffies + sym_driver_setup.settle_delay * HZ;
146 	np->s.settle_time_valid = 1;
147 	if (sym_verbose >= 2)
148 		printf_info("%s: command processing suspended for %d seconds\n",
149 			    sym_name(np), sym_driver_setup.settle_delay);
150 }
151 
152 /*
153  *  Choose the more appropriate CAM status if
154  *  the IO encountered an extended error.
155  */
156 static int sym_xerr_cam_status(int cam_status, int x_status)
157 {
158 	if (x_status) {
159 		if (x_status & XE_PARITY_ERR)
160 			cam_status = DID_PARITY;
161 		else
162 			cam_status = DID_ERROR;
163 	}
164 	return cam_status;
165 }
166 
167 /*
168  *  Build CAM result for a failed or auto-sensed IO.
169  */
170 void sym_set_cam_result_error(struct sym_hcb *np, struct sym_ccb *cp, int resid)
171 {
172 	struct scsi_cmnd *cmd = cp->cmd;
173 	u_int cam_status, scsi_status, drv_status;
174 
175 	drv_status  = 0;
176 	cam_status  = DID_OK;
177 	scsi_status = cp->ssss_status;
178 
179 	if (cp->host_flags & HF_SENSE) {
180 		scsi_status = cp->sv_scsi_status;
181 		resid = cp->sv_resid;
182 		if (sym_verbose && cp->sv_xerr_status)
183 			sym_print_xerr(cmd, cp->sv_xerr_status);
184 		if (cp->host_status == HS_COMPLETE &&
185 		    cp->ssss_status == S_GOOD &&
186 		    cp->xerr_status == 0) {
187 			cam_status = sym_xerr_cam_status(DID_OK,
188 							 cp->sv_xerr_status);
189 			drv_status = DRIVER_SENSE;
190 			/*
191 			 *  Bounce back the sense data to user.
192 			 */
193 			memset(cmd->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
194 			memcpy(cmd->sense_buffer, cp->sns_bbuf,
195 			       min(SCSI_SENSE_BUFFERSIZE, SYM_SNS_BBUF_LEN));
196 #if 0
197 			/*
198 			 *  If the device reports a UNIT ATTENTION condition
199 			 *  due to a RESET condition, we should consider all
200 			 *  disconnect CCBs for this unit as aborted.
201 			 */
202 			if (1) {
203 				u_char *p;
204 				p  = (u_char *) cmd->sense_data;
205 				if (p[0]==0x70 && p[2]==0x6 && p[12]==0x29)
206 					sym_clear_tasks(np, DID_ABORT,
207 							cp->target,cp->lun, -1);
208 			}
209 #endif
210 		} else {
211 			/*
212 			 * Error return from our internal request sense.  This
213 			 * is bad: we must clear the contingent allegiance
214 			 * condition otherwise the device will always return
215 			 * BUSY.  Use a big stick.
216 			 */
217 			sym_reset_scsi_target(np, cmd->device->id);
218 			cam_status = DID_ERROR;
219 		}
220 	} else if (cp->host_status == HS_COMPLETE) 	/* Bad SCSI status */
221 		cam_status = DID_OK;
222 	else if (cp->host_status == HS_SEL_TIMEOUT)	/* Selection timeout */
223 		cam_status = DID_NO_CONNECT;
224 	else if (cp->host_status == HS_UNEXPECTED)	/* Unexpected BUS FREE*/
225 		cam_status = DID_ERROR;
226 	else {						/* Extended error */
227 		if (sym_verbose) {
228 			sym_print_addr(cmd, "COMMAND FAILED (%x %x %x).\n",
229 				cp->host_status, cp->ssss_status,
230 				cp->xerr_status);
231 		}
232 		/*
233 		 *  Set the most appropriate value for CAM status.
234 		 */
235 		cam_status = sym_xerr_cam_status(DID_ERROR, cp->xerr_status);
236 	}
237 	scsi_set_resid(cmd, resid);
238 	cmd->result = (drv_status << 24) | (cam_status << 16) | scsi_status;
239 }
240 
241 static int sym_scatter(struct sym_hcb *np, struct sym_ccb *cp, struct scsi_cmnd *cmd)
242 {
243 	int segment;
244 	int use_sg;
245 
246 	cp->data_len = 0;
247 
248 	use_sg = scsi_dma_map(cmd);
249 	if (use_sg > 0) {
250 		struct scatterlist *sg;
251 		struct sym_tcb *tp = &np->target[cp->target];
252 		struct sym_tblmove *data;
253 
254 		if (use_sg > SYM_CONF_MAX_SG) {
255 			scsi_dma_unmap(cmd);
256 			return -1;
257 		}
258 
259 		data = &cp->phys.data[SYM_CONF_MAX_SG - use_sg];
260 
261 		scsi_for_each_sg(cmd, sg, use_sg, segment) {
262 			dma_addr_t baddr = sg_dma_address(sg);
263 			unsigned int len = sg_dma_len(sg);
264 
265 			if ((len & 1) && (tp->head.wval & EWS)) {
266 				len++;
267 				cp->odd_byte_adjustment++;
268 			}
269 
270 			sym_build_sge(np, &data[segment], baddr, len);
271 			cp->data_len += len;
272 		}
273 	} else {
274 		segment = -2;
275 	}
276 
277 	return segment;
278 }
279 
280 /*
281  *  Queue a SCSI command.
282  */
283 static int sym_queue_command(struct sym_hcb *np, struct scsi_cmnd *cmd)
284 {
285 	struct scsi_device *sdev = cmd->device;
286 	struct sym_tcb *tp;
287 	struct sym_lcb *lp;
288 	struct sym_ccb *cp;
289 	int	order;
290 
291 	/*
292 	 *  Retrieve the target descriptor.
293 	 */
294 	tp = &np->target[sdev->id];
295 
296 	/*
297 	 *  Select tagged/untagged.
298 	 */
299 	lp = sym_lp(tp, sdev->lun);
300 	order = (lp && lp->s.reqtags) ? M_SIMPLE_TAG : 0;
301 
302 	/*
303 	 *  Queue the SCSI IO.
304 	 */
305 	cp = sym_get_ccb(np, cmd, order);
306 	if (!cp)
307 		return 1;	/* Means resource shortage */
308 	sym_queue_scsiio(np, cmd, cp);
309 	return 0;
310 }
311 
312 /*
313  *  Setup buffers and pointers that address the CDB.
314  */
315 static inline int sym_setup_cdb(struct sym_hcb *np, struct scsi_cmnd *cmd, struct sym_ccb *cp)
316 {
317 	memcpy(cp->cdb_buf, cmd->cmnd, cmd->cmd_len);
318 
319 	cp->phys.cmd.addr = CCB_BA(cp, cdb_buf[0]);
320 	cp->phys.cmd.size = cpu_to_scr(cmd->cmd_len);
321 
322 	return 0;
323 }
324 
325 /*
326  *  Setup pointers that address the data and start the I/O.
327  */
328 int sym_setup_data_and_start(struct sym_hcb *np, struct scsi_cmnd *cmd, struct sym_ccb *cp)
329 {
330 	u32 lastp, goalp;
331 	int dir;
332 
333 	/*
334 	 *  Build the CDB.
335 	 */
336 	if (sym_setup_cdb(np, cmd, cp))
337 		goto out_abort;
338 
339 	/*
340 	 *  No direction means no data.
341 	 */
342 	dir = cmd->sc_data_direction;
343 	if (dir != DMA_NONE) {
344 		cp->segments = sym_scatter(np, cp, cmd);
345 		if (cp->segments < 0) {
346 			sym_set_cam_status(cmd, DID_ERROR);
347 			goto out_abort;
348 		}
349 
350 		/*
351 		 *  No segments means no data.
352 		 */
353 		if (!cp->segments)
354 			dir = DMA_NONE;
355 	} else {
356 		cp->data_len = 0;
357 		cp->segments = 0;
358 	}
359 
360 	/*
361 	 *  Set the data pointer.
362 	 */
363 	switch (dir) {
364 	case DMA_BIDIRECTIONAL:
365 		scmd_printk(KERN_INFO, cmd, "got DMA_BIDIRECTIONAL command");
366 		sym_set_cam_status(cmd, DID_ERROR);
367 		goto out_abort;
368 	case DMA_TO_DEVICE:
369 		goalp = SCRIPTA_BA(np, data_out2) + 8;
370 		lastp = goalp - 8 - (cp->segments * (2*4));
371 		break;
372 	case DMA_FROM_DEVICE:
373 		cp->host_flags |= HF_DATA_IN;
374 		goalp = SCRIPTA_BA(np, data_in2) + 8;
375 		lastp = goalp - 8 - (cp->segments * (2*4));
376 		break;
377 	case DMA_NONE:
378 	default:
379 		lastp = goalp = SCRIPTB_BA(np, no_data);
380 		break;
381 	}
382 
383 	/*
384 	 *  Set all pointers values needed by SCRIPTS.
385 	 */
386 	cp->phys.head.lastp = cpu_to_scr(lastp);
387 	cp->phys.head.savep = cpu_to_scr(lastp);
388 	cp->startp	    = cp->phys.head.savep;
389 	cp->goalp	    = cpu_to_scr(goalp);
390 
391 	/*
392 	 *  When `#ifed 1', the code below makes the driver
393 	 *  panic on the first attempt to write to a SCSI device.
394 	 *  It is the first test we want to do after a driver
395 	 *  change that does not seem obviously safe. :)
396 	 */
397 #if 0
398 	switch (cp->cdb_buf[0]) {
399 	case 0x0A: case 0x2A: case 0xAA:
400 		panic("XXXXXXXXXXXXX WRITE NOT YET ALLOWED XXXXXXXXXXXXXX\n");
401 		break;
402 	default:
403 		break;
404 	}
405 #endif
406 
407 	/*
408 	 *	activate this job.
409 	 */
410 	sym_put_start_queue(np, cp);
411 	return 0;
412 
413 out_abort:
414 	sym_free_ccb(np, cp);
415 	sym_xpt_done(np, cmd);
416 	return 0;
417 }
418 
419 
420 /*
421  *  timer daemon.
422  *
423  *  Misused to keep the driver running when
424  *  interrupts are not configured correctly.
425  */
426 static void sym_timer(struct sym_hcb *np)
427 {
428 	unsigned long thistime = jiffies;
429 
430 	/*
431 	 *  Restart the timer.
432 	 */
433 	np->s.timer.expires = thistime + SYM_CONF_TIMER_INTERVAL;
434 	add_timer(&np->s.timer);
435 
436 	/*
437 	 *  If we are resetting the ncr, wait for settle_time before
438 	 *  clearing it. Then command processing will be resumed.
439 	 */
440 	if (np->s.settle_time_valid) {
441 		if (time_before_eq(np->s.settle_time, thistime)) {
442 			if (sym_verbose >= 2 )
443 				printk("%s: command processing resumed\n",
444 				       sym_name(np));
445 			np->s.settle_time_valid = 0;
446 		}
447 		return;
448 	}
449 
450 	/*
451 	 *	Nothing to do for now, but that may come.
452 	 */
453 	if (np->s.lasttime + 4*HZ < thistime) {
454 		np->s.lasttime = thistime;
455 	}
456 
457 #ifdef SYM_CONF_PCIQ_MAY_MISS_COMPLETIONS
458 	/*
459 	 *  Some way-broken PCI bridges may lead to
460 	 *  completions being lost when the clearing
461 	 *  of the INTFLY flag by the CPU occurs
462 	 *  concurrently with the chip raising this flag.
463 	 *  If this ever happen, lost completions will
464 	 * be reaped here.
465 	 */
466 	sym_wakeup_done(np);
467 #endif
468 }
469 
470 
471 /*
472  *  PCI BUS error handler.
473  */
474 void sym_log_bus_error(struct Scsi_Host *shost)
475 {
476 	struct sym_data *sym_data = shost_priv(shost);
477 	struct pci_dev *pdev = sym_data->pdev;
478 	unsigned short pci_sts;
479 	pci_read_config_word(pdev, PCI_STATUS, &pci_sts);
480 	if (pci_sts & 0xf900) {
481 		pci_write_config_word(pdev, PCI_STATUS, pci_sts);
482 		shost_printk(KERN_WARNING, shost,
483 			"PCI bus error: status = 0x%04x\n", pci_sts & 0xf900);
484 	}
485 }
486 
487 /*
488  * queuecommand method.  Entered with the host adapter lock held and
489  * interrupts disabled.
490  */
491 static int sym53c8xx_queue_command_lck(struct scsi_cmnd *cmd,
492 					void (*done)(struct scsi_cmnd *))
493 {
494 	struct sym_hcb *np = SYM_SOFTC_PTR(cmd);
495 	struct sym_ucmd *ucp = SYM_UCMD_PTR(cmd);
496 	int sts = 0;
497 
498 	cmd->scsi_done = done;
499 	memset(ucp, 0, sizeof(*ucp));
500 
501 	/*
502 	 *  Shorten our settle_time if needed for
503 	 *  this command not to time out.
504 	 */
505 	if (np->s.settle_time_valid && cmd->request->timeout) {
506 		unsigned long tlimit = jiffies + cmd->request->timeout;
507 		tlimit -= SYM_CONF_TIMER_INTERVAL*2;
508 		if (time_after(np->s.settle_time, tlimit)) {
509 			np->s.settle_time = tlimit;
510 		}
511 	}
512 
513 	if (np->s.settle_time_valid)
514 		return SCSI_MLQUEUE_HOST_BUSY;
515 
516 	sts = sym_queue_command(np, cmd);
517 	if (sts)
518 		return SCSI_MLQUEUE_HOST_BUSY;
519 	return 0;
520 }
521 
522 static DEF_SCSI_QCMD(sym53c8xx_queue_command)
523 
524 /*
525  *  Linux entry point of the interrupt handler.
526  */
527 static irqreturn_t sym53c8xx_intr(int irq, void *dev_id)
528 {
529 	struct Scsi_Host *shost = dev_id;
530 	struct sym_data *sym_data = shost_priv(shost);
531 	irqreturn_t result;
532 
533 	/* Avoid spinloop trying to handle interrupts on frozen device */
534 	if (pci_channel_offline(sym_data->pdev))
535 		return IRQ_NONE;
536 
537 	if (DEBUG_FLAGS & DEBUG_TINY) printf_debug ("[");
538 
539 	spin_lock(shost->host_lock);
540 	result = sym_interrupt(shost);
541 	spin_unlock(shost->host_lock);
542 
543 	if (DEBUG_FLAGS & DEBUG_TINY) printf_debug ("]\n");
544 
545 	return result;
546 }
547 
548 /*
549  *  Linux entry point of the timer handler
550  */
551 static void sym53c8xx_timer(struct timer_list *t)
552 {
553 	struct sym_hcb *np = from_timer(np, t, s.timer);
554 	unsigned long flags;
555 
556 	spin_lock_irqsave(np->s.host->host_lock, flags);
557 	sym_timer(np);
558 	spin_unlock_irqrestore(np->s.host->host_lock, flags);
559 }
560 
561 
562 /*
563  *  What the eh thread wants us to perform.
564  */
565 #define SYM_EH_ABORT		0
566 #define SYM_EH_DEVICE_RESET	1
567 #define SYM_EH_BUS_RESET	2
568 #define SYM_EH_HOST_RESET	3
569 
570 /*
571  *  Generic method for our eh processing.
572  *  The 'op' argument tells what we have to do.
573  */
574 static int sym_eh_handler(int op, char *opname, struct scsi_cmnd *cmd)
575 {
576 	struct sym_ucmd *ucmd = SYM_UCMD_PTR(cmd);
577 	struct Scsi_Host *shost = cmd->device->host;
578 	struct sym_data *sym_data = shost_priv(shost);
579 	struct pci_dev *pdev = sym_data->pdev;
580 	struct sym_hcb *np = sym_data->ncb;
581 	SYM_QUEHEAD *qp;
582 	int cmd_queued = 0;
583 	int sts = -1;
584 	struct completion eh_done;
585 
586 	scmd_printk(KERN_WARNING, cmd, "%s operation started\n", opname);
587 
588 	/* We may be in an error condition because the PCI bus
589 	 * went down. In this case, we need to wait until the
590 	 * PCI bus is reset, the card is reset, and only then
591 	 * proceed with the scsi error recovery.  There's no
592 	 * point in hurrying; take a leisurely wait.
593 	 */
594 #define WAIT_FOR_PCI_RECOVERY	35
595 	if (pci_channel_offline(pdev)) {
596 		int finished_reset = 0;
597 		init_completion(&eh_done);
598 		spin_lock_irq(shost->host_lock);
599 		/* Make sure we didn't race */
600 		if (pci_channel_offline(pdev)) {
601 			BUG_ON(sym_data->io_reset);
602 			sym_data->io_reset = &eh_done;
603 		} else {
604 			finished_reset = 1;
605 		}
606 		spin_unlock_irq(shost->host_lock);
607 		if (!finished_reset)
608 			finished_reset = wait_for_completion_timeout
609 						(sym_data->io_reset,
610 						WAIT_FOR_PCI_RECOVERY*HZ);
611 		spin_lock_irq(shost->host_lock);
612 		sym_data->io_reset = NULL;
613 		spin_unlock_irq(shost->host_lock);
614 		if (!finished_reset)
615 			return SCSI_FAILED;
616 	}
617 
618 	spin_lock_irq(shost->host_lock);
619 	/* This one is queued in some place -> to wait for completion */
620 	FOR_EACH_QUEUED_ELEMENT(&np->busy_ccbq, qp) {
621 		struct sym_ccb *cp = sym_que_entry(qp, struct sym_ccb, link_ccbq);
622 		if (cp->cmd == cmd) {
623 			cmd_queued = 1;
624 			break;
625 		}
626 	}
627 
628 	/* Try to proceed the operation we have been asked for */
629 	sts = -1;
630 	switch(op) {
631 	case SYM_EH_ABORT:
632 		sts = sym_abort_scsiio(np, cmd, 1);
633 		break;
634 	case SYM_EH_DEVICE_RESET:
635 		sts = sym_reset_scsi_target(np, cmd->device->id);
636 		break;
637 	case SYM_EH_BUS_RESET:
638 		sym_reset_scsi_bus(np, 1);
639 		sts = 0;
640 		break;
641 	case SYM_EH_HOST_RESET:
642 		sym_reset_scsi_bus(np, 0);
643 		sym_start_up(shost, 1);
644 		sts = 0;
645 		break;
646 	default:
647 		break;
648 	}
649 
650 	/* On error, restore everything and cross fingers :) */
651 	if (sts)
652 		cmd_queued = 0;
653 
654 	if (cmd_queued) {
655 		init_completion(&eh_done);
656 		ucmd->eh_done = &eh_done;
657 		spin_unlock_irq(shost->host_lock);
658 		if (!wait_for_completion_timeout(&eh_done, 5*HZ)) {
659 			ucmd->eh_done = NULL;
660 			sts = -2;
661 		}
662 	} else {
663 		spin_unlock_irq(shost->host_lock);
664 	}
665 
666 	dev_warn(&cmd->device->sdev_gendev, "%s operation %s.\n", opname,
667 			sts==0 ? "complete" :sts==-2 ? "timed-out" : "failed");
668 	return sts ? SCSI_FAILED : SCSI_SUCCESS;
669 }
670 
671 
672 /*
673  * Error handlers called from the eh thread (one thread per HBA).
674  */
675 static int sym53c8xx_eh_abort_handler(struct scsi_cmnd *cmd)
676 {
677 	return sym_eh_handler(SYM_EH_ABORT, "ABORT", cmd);
678 }
679 
680 static int sym53c8xx_eh_device_reset_handler(struct scsi_cmnd *cmd)
681 {
682 	return sym_eh_handler(SYM_EH_DEVICE_RESET, "DEVICE RESET", cmd);
683 }
684 
685 static int sym53c8xx_eh_bus_reset_handler(struct scsi_cmnd *cmd)
686 {
687 	return sym_eh_handler(SYM_EH_BUS_RESET, "BUS RESET", cmd);
688 }
689 
690 static int sym53c8xx_eh_host_reset_handler(struct scsi_cmnd *cmd)
691 {
692 	return sym_eh_handler(SYM_EH_HOST_RESET, "HOST RESET", cmd);
693 }
694 
695 /*
696  *  Tune device queuing depth, according to various limits.
697  */
698 static void sym_tune_dev_queuing(struct sym_tcb *tp, int lun, u_short reqtags)
699 {
700 	struct sym_lcb *lp = sym_lp(tp, lun);
701 	u_short	oldtags;
702 
703 	if (!lp)
704 		return;
705 
706 	oldtags = lp->s.reqtags;
707 
708 	if (reqtags > lp->s.scdev_depth)
709 		reqtags = lp->s.scdev_depth;
710 
711 	lp->s.reqtags     = reqtags;
712 
713 	if (reqtags != oldtags) {
714 		dev_info(&tp->starget->dev,
715 		         "tagged command queuing %s, command queue depth %d.\n",
716 		          lp->s.reqtags ? "enabled" : "disabled", reqtags);
717 	}
718 }
719 
720 static int sym53c8xx_slave_alloc(struct scsi_device *sdev)
721 {
722 	struct sym_hcb *np = sym_get_hcb(sdev->host);
723 	struct sym_tcb *tp = &np->target[sdev->id];
724 	struct sym_lcb *lp;
725 	unsigned long flags;
726 	int error;
727 
728 	if (sdev->id >= SYM_CONF_MAX_TARGET || sdev->lun >= SYM_CONF_MAX_LUN)
729 		return -ENXIO;
730 
731 	spin_lock_irqsave(np->s.host->host_lock, flags);
732 
733 	/*
734 	 * Fail the device init if the device is flagged NOSCAN at BOOT in
735 	 * the NVRAM.  This may speed up boot and maintain coherency with
736 	 * BIOS device numbering.  Clearing the flag allows the user to
737 	 * rescan skipped devices later.  We also return an error for
738 	 * devices not flagged for SCAN LUNS in the NVRAM since some single
739 	 * lun devices behave badly when asked for a non zero LUN.
740 	 */
741 
742 	if (tp->usrflags & SYM_SCAN_BOOT_DISABLED) {
743 		tp->usrflags &= ~SYM_SCAN_BOOT_DISABLED;
744 		starget_printk(KERN_INFO, sdev->sdev_target,
745 				"Scan at boot disabled in NVRAM\n");
746 		error = -ENXIO;
747 		goto out;
748 	}
749 
750 	if (tp->usrflags & SYM_SCAN_LUNS_DISABLED) {
751 		if (sdev->lun != 0) {
752 			error = -ENXIO;
753 			goto out;
754 		}
755 		starget_printk(KERN_INFO, sdev->sdev_target,
756 				"Multiple LUNs disabled in NVRAM\n");
757 	}
758 
759 	lp = sym_alloc_lcb(np, sdev->id, sdev->lun);
760 	if (!lp) {
761 		error = -ENOMEM;
762 		goto out;
763 	}
764 	if (tp->nlcb == 1)
765 		tp->starget = sdev->sdev_target;
766 
767 	spi_min_period(tp->starget) = tp->usr_period;
768 	spi_max_width(tp->starget) = tp->usr_width;
769 
770 	error = 0;
771 out:
772 	spin_unlock_irqrestore(np->s.host->host_lock, flags);
773 
774 	return error;
775 }
776 
777 /*
778  * Linux entry point for device queue sizing.
779  */
780 static int sym53c8xx_slave_configure(struct scsi_device *sdev)
781 {
782 	struct sym_hcb *np = sym_get_hcb(sdev->host);
783 	struct sym_tcb *tp = &np->target[sdev->id];
784 	struct sym_lcb *lp = sym_lp(tp, sdev->lun);
785 	int reqtags, depth_to_use;
786 
787 	/*
788 	 *  Get user flags.
789 	 */
790 	lp->curr_flags = lp->user_flags;
791 
792 	/*
793 	 *  Select queue depth from driver setup.
794 	 *  Do not use more than configured by user.
795 	 *  Use at least 1.
796 	 *  Do not use more than our maximum.
797 	 */
798 	reqtags = sym_driver_setup.max_tag;
799 	if (reqtags > tp->usrtags)
800 		reqtags = tp->usrtags;
801 	if (!sdev->tagged_supported)
802 		reqtags = 0;
803 	if (reqtags > SYM_CONF_MAX_TAG)
804 		reqtags = SYM_CONF_MAX_TAG;
805 	depth_to_use = reqtags ? reqtags : 1;
806 	scsi_change_queue_depth(sdev, depth_to_use);
807 	lp->s.scdev_depth = depth_to_use;
808 	sym_tune_dev_queuing(tp, sdev->lun, reqtags);
809 
810 	if (!spi_initial_dv(sdev->sdev_target))
811 		spi_dv_device(sdev);
812 
813 	return 0;
814 }
815 
816 static void sym53c8xx_slave_destroy(struct scsi_device *sdev)
817 {
818 	struct sym_hcb *np = sym_get_hcb(sdev->host);
819 	struct sym_tcb *tp = &np->target[sdev->id];
820 	struct sym_lcb *lp = sym_lp(tp, sdev->lun);
821 	unsigned long flags;
822 
823 	/* if slave_alloc returned before allocating a sym_lcb, return */
824 	if (!lp)
825 		return;
826 
827 	spin_lock_irqsave(np->s.host->host_lock, flags);
828 
829 	if (lp->busy_itlq || lp->busy_itl) {
830 		/*
831 		 * This really shouldn't happen, but we can't return an error
832 		 * so let's try to stop all on-going I/O.
833 		 */
834 		starget_printk(KERN_WARNING, tp->starget,
835 			       "Removing busy LCB (%d)\n", (u8)sdev->lun);
836 		sym_reset_scsi_bus(np, 1);
837 	}
838 
839 	if (sym_free_lcb(np, sdev->id, sdev->lun) == 0) {
840 		/*
841 		 * It was the last unit for this target.
842 		 */
843 		tp->head.sval        = 0;
844 		tp->head.wval        = np->rv_scntl3;
845 		tp->head.uval        = 0;
846 		tp->tgoal.check_nego = 1;
847 		tp->starget	     = NULL;
848 	}
849 
850 	spin_unlock_irqrestore(np->s.host->host_lock, flags);
851 }
852 
853 /*
854  *  Linux entry point for info() function
855  */
856 static const char *sym53c8xx_info (struct Scsi_Host *host)
857 {
858 	return SYM_DRIVER_NAME;
859 }
860 
861 
862 #ifdef SYM_LINUX_PROC_INFO_SUPPORT
863 /*
864  *  Proc file system stuff
865  *
866  *  A read operation returns adapter information.
867  *  A write operation is a control command.
868  *  The string is parsed in the driver code and the command is passed
869  *  to the sym_usercmd() function.
870  */
871 
872 #ifdef SYM_LINUX_USER_COMMAND_SUPPORT
873 
874 struct	sym_usrcmd {
875 	u_long	target;
876 	u_long	lun;
877 	u_long	data;
878 	u_long	cmd;
879 };
880 
881 #define UC_SETSYNC      10
882 #define UC_SETTAGS	11
883 #define UC_SETDEBUG	12
884 #define UC_SETWIDE	14
885 #define UC_SETFLAG	15
886 #define UC_SETVERBOSE	17
887 #define UC_RESETDEV	18
888 #define UC_CLEARDEV	19
889 
890 static void sym_exec_user_command (struct sym_hcb *np, struct sym_usrcmd *uc)
891 {
892 	struct sym_tcb *tp;
893 	int t, l;
894 
895 	switch (uc->cmd) {
896 	case 0: return;
897 
898 #ifdef SYM_LINUX_DEBUG_CONTROL_SUPPORT
899 	case UC_SETDEBUG:
900 		sym_debug_flags = uc->data;
901 		break;
902 #endif
903 	case UC_SETVERBOSE:
904 		np->verbose = uc->data;
905 		break;
906 	default:
907 		/*
908 		 * We assume that other commands apply to targets.
909 		 * This should always be the case and avoid the below
910 		 * 4 lines to be repeated 6 times.
911 		 */
912 		for (t = 0; t < SYM_CONF_MAX_TARGET; t++) {
913 			if (!((uc->target >> t) & 1))
914 				continue;
915 			tp = &np->target[t];
916 			if (!tp->nlcb)
917 				continue;
918 
919 			switch (uc->cmd) {
920 
921 			case UC_SETSYNC:
922 				if (!uc->data || uc->data >= 255) {
923 					tp->tgoal.iu = tp->tgoal.dt =
924 						tp->tgoal.qas = 0;
925 					tp->tgoal.offset = 0;
926 				} else if (uc->data <= 9 && np->minsync_dt) {
927 					if (uc->data < np->minsync_dt)
928 						uc->data = np->minsync_dt;
929 					tp->tgoal.iu = tp->tgoal.dt =
930 						tp->tgoal.qas = 1;
931 					tp->tgoal.width = 1;
932 					tp->tgoal.period = uc->data;
933 					tp->tgoal.offset = np->maxoffs_dt;
934 				} else {
935 					if (uc->data < np->minsync)
936 						uc->data = np->minsync;
937 					tp->tgoal.iu = tp->tgoal.dt =
938 						tp->tgoal.qas = 0;
939 					tp->tgoal.period = uc->data;
940 					tp->tgoal.offset = np->maxoffs;
941 				}
942 				tp->tgoal.check_nego = 1;
943 				break;
944 			case UC_SETWIDE:
945 				tp->tgoal.width = uc->data ? 1 : 0;
946 				tp->tgoal.check_nego = 1;
947 				break;
948 			case UC_SETTAGS:
949 				for (l = 0; l < SYM_CONF_MAX_LUN; l++)
950 					sym_tune_dev_queuing(tp, l, uc->data);
951 				break;
952 			case UC_RESETDEV:
953 				tp->to_reset = 1;
954 				np->istat_sem = SEM;
955 				OUTB(np, nc_istat, SIGP|SEM);
956 				break;
957 			case UC_CLEARDEV:
958 				for (l = 0; l < SYM_CONF_MAX_LUN; l++) {
959 					struct sym_lcb *lp = sym_lp(tp, l);
960 					if (lp) lp->to_clear = 1;
961 				}
962 				np->istat_sem = SEM;
963 				OUTB(np, nc_istat, SIGP|SEM);
964 				break;
965 			case UC_SETFLAG:
966 				tp->usrflags = uc->data;
967 				break;
968 			}
969 		}
970 		break;
971 	}
972 }
973 
974 static int sym_skip_spaces(char *ptr, int len)
975 {
976 	int cnt, c;
977 
978 	for (cnt = len; cnt > 0 && (c = *ptr++) && isspace(c); cnt--);
979 
980 	return (len - cnt);
981 }
982 
983 static int get_int_arg(char *ptr, int len, u_long *pv)
984 {
985 	char *end;
986 
987 	*pv = simple_strtoul(ptr, &end, 10);
988 	return (end - ptr);
989 }
990 
991 static int is_keyword(char *ptr, int len, char *verb)
992 {
993 	int verb_len = strlen(verb);
994 
995 	if (len >= verb_len && !memcmp(verb, ptr, verb_len))
996 		return verb_len;
997 	else
998 		return 0;
999 }
1000 
1001 #define SKIP_SPACES(ptr, len)						\
1002 	if ((arg_len = sym_skip_spaces(ptr, len)) < 1)			\
1003 		return -EINVAL;						\
1004 	ptr += arg_len; len -= arg_len;
1005 
1006 #define GET_INT_ARG(ptr, len, v)					\
1007 	if (!(arg_len = get_int_arg(ptr, len, &(v))))			\
1008 		return -EINVAL;						\
1009 	ptr += arg_len; len -= arg_len;
1010 
1011 
1012 /*
1013  * Parse a control command
1014  */
1015 
1016 static int sym_user_command(struct Scsi_Host *shost, char *buffer, int length)
1017 {
1018 	struct sym_hcb *np = sym_get_hcb(shost);
1019 	char *ptr	= buffer;
1020 	int len		= length;
1021 	struct sym_usrcmd cmd, *uc = &cmd;
1022 	int		arg_len;
1023 	u_long 		target;
1024 
1025 	memset(uc, 0, sizeof(*uc));
1026 
1027 	if (len > 0 && ptr[len-1] == '\n')
1028 		--len;
1029 
1030 	if	((arg_len = is_keyword(ptr, len, "setsync")) != 0)
1031 		uc->cmd = UC_SETSYNC;
1032 	else if	((arg_len = is_keyword(ptr, len, "settags")) != 0)
1033 		uc->cmd = UC_SETTAGS;
1034 	else if	((arg_len = is_keyword(ptr, len, "setverbose")) != 0)
1035 		uc->cmd = UC_SETVERBOSE;
1036 	else if	((arg_len = is_keyword(ptr, len, "setwide")) != 0)
1037 		uc->cmd = UC_SETWIDE;
1038 #ifdef SYM_LINUX_DEBUG_CONTROL_SUPPORT
1039 	else if	((arg_len = is_keyword(ptr, len, "setdebug")) != 0)
1040 		uc->cmd = UC_SETDEBUG;
1041 #endif
1042 	else if	((arg_len = is_keyword(ptr, len, "setflag")) != 0)
1043 		uc->cmd = UC_SETFLAG;
1044 	else if	((arg_len = is_keyword(ptr, len, "resetdev")) != 0)
1045 		uc->cmd = UC_RESETDEV;
1046 	else if	((arg_len = is_keyword(ptr, len, "cleardev")) != 0)
1047 		uc->cmd = UC_CLEARDEV;
1048 	else
1049 		arg_len = 0;
1050 
1051 #ifdef DEBUG_PROC_INFO
1052 printk("sym_user_command: arg_len=%d, cmd=%ld\n", arg_len, uc->cmd);
1053 #endif
1054 
1055 	if (!arg_len)
1056 		return -EINVAL;
1057 	ptr += arg_len; len -= arg_len;
1058 
1059 	switch(uc->cmd) {
1060 	case UC_SETSYNC:
1061 	case UC_SETTAGS:
1062 	case UC_SETWIDE:
1063 	case UC_SETFLAG:
1064 	case UC_RESETDEV:
1065 	case UC_CLEARDEV:
1066 		SKIP_SPACES(ptr, len);
1067 		if ((arg_len = is_keyword(ptr, len, "all")) != 0) {
1068 			ptr += arg_len; len -= arg_len;
1069 			uc->target = ~0;
1070 		} else {
1071 			GET_INT_ARG(ptr, len, target);
1072 			uc->target = (1<<target);
1073 #ifdef DEBUG_PROC_INFO
1074 printk("sym_user_command: target=%ld\n", target);
1075 #endif
1076 		}
1077 		break;
1078 	}
1079 
1080 	switch(uc->cmd) {
1081 	case UC_SETVERBOSE:
1082 	case UC_SETSYNC:
1083 	case UC_SETTAGS:
1084 	case UC_SETWIDE:
1085 		SKIP_SPACES(ptr, len);
1086 		GET_INT_ARG(ptr, len, uc->data);
1087 #ifdef DEBUG_PROC_INFO
1088 printk("sym_user_command: data=%ld\n", uc->data);
1089 #endif
1090 		break;
1091 #ifdef SYM_LINUX_DEBUG_CONTROL_SUPPORT
1092 	case UC_SETDEBUG:
1093 		while (len > 0) {
1094 			SKIP_SPACES(ptr, len);
1095 			if	((arg_len = is_keyword(ptr, len, "alloc")))
1096 				uc->data |= DEBUG_ALLOC;
1097 			else if	((arg_len = is_keyword(ptr, len, "phase")))
1098 				uc->data |= DEBUG_PHASE;
1099 			else if	((arg_len = is_keyword(ptr, len, "queue")))
1100 				uc->data |= DEBUG_QUEUE;
1101 			else if	((arg_len = is_keyword(ptr, len, "result")))
1102 				uc->data |= DEBUG_RESULT;
1103 			else if	((arg_len = is_keyword(ptr, len, "scatter")))
1104 				uc->data |= DEBUG_SCATTER;
1105 			else if	((arg_len = is_keyword(ptr, len, "script")))
1106 				uc->data |= DEBUG_SCRIPT;
1107 			else if	((arg_len = is_keyword(ptr, len, "tiny")))
1108 				uc->data |= DEBUG_TINY;
1109 			else if	((arg_len = is_keyword(ptr, len, "timing")))
1110 				uc->data |= DEBUG_TIMING;
1111 			else if	((arg_len = is_keyword(ptr, len, "nego")))
1112 				uc->data |= DEBUG_NEGO;
1113 			else if	((arg_len = is_keyword(ptr, len, "tags")))
1114 				uc->data |= DEBUG_TAGS;
1115 			else if	((arg_len = is_keyword(ptr, len, "pointer")))
1116 				uc->data |= DEBUG_POINTER;
1117 			else
1118 				return -EINVAL;
1119 			ptr += arg_len; len -= arg_len;
1120 		}
1121 #ifdef DEBUG_PROC_INFO
1122 printk("sym_user_command: data=%ld\n", uc->data);
1123 #endif
1124 		break;
1125 #endif /* SYM_LINUX_DEBUG_CONTROL_SUPPORT */
1126 	case UC_SETFLAG:
1127 		while (len > 0) {
1128 			SKIP_SPACES(ptr, len);
1129 			if	((arg_len = is_keyword(ptr, len, "no_disc")))
1130 				uc->data &= ~SYM_DISC_ENABLED;
1131 			else
1132 				return -EINVAL;
1133 			ptr += arg_len; len -= arg_len;
1134 		}
1135 		break;
1136 	default:
1137 		break;
1138 	}
1139 
1140 	if (len)
1141 		return -EINVAL;
1142 	else {
1143 		unsigned long flags;
1144 
1145 		spin_lock_irqsave(shost->host_lock, flags);
1146 		sym_exec_user_command(np, uc);
1147 		spin_unlock_irqrestore(shost->host_lock, flags);
1148 	}
1149 	return length;
1150 }
1151 
1152 #endif	/* SYM_LINUX_USER_COMMAND_SUPPORT */
1153 
1154 
1155 /*
1156  *  Copy formatted information into the input buffer.
1157  */
1158 static int sym_show_info(struct seq_file *m, struct Scsi_Host *shost)
1159 {
1160 #ifdef SYM_LINUX_USER_INFO_SUPPORT
1161 	struct sym_data *sym_data = shost_priv(shost);
1162 	struct pci_dev *pdev = sym_data->pdev;
1163 	struct sym_hcb *np = sym_data->ncb;
1164 
1165 	seq_printf(m, "Chip " NAME53C "%s, device id 0x%x, "
1166 		 "revision id 0x%x\n", np->s.chip_name,
1167 		 pdev->device, pdev->revision);
1168 	seq_printf(m, "At PCI address %s, IRQ %u\n",
1169 			 pci_name(pdev), pdev->irq);
1170 	seq_printf(m, "Min. period factor %d, %s SCSI BUS%s\n",
1171 		 (int) (np->minsync_dt ? np->minsync_dt : np->minsync),
1172 		 np->maxwide ? "Wide" : "Narrow",
1173 		 np->minsync_dt ? ", DT capable" : "");
1174 
1175 	seq_printf(m, "Max. started commands %d, "
1176 		 "max. commands per LUN %d\n",
1177 		 SYM_CONF_MAX_START, SYM_CONF_MAX_TAG);
1178 
1179 	return 0;
1180 #else
1181 	return -EINVAL;
1182 #endif /* SYM_LINUX_USER_INFO_SUPPORT */
1183 }
1184 
1185 #endif /* SYM_LINUX_PROC_INFO_SUPPORT */
1186 
1187 /*
1188  * Free resources claimed by sym_iomap_device().  Note that
1189  * sym_free_resources() should be used instead of this function after calling
1190  * sym_attach().
1191  */
1192 static void sym_iounmap_device(struct sym_device *device)
1193 {
1194 	if (device->s.ioaddr)
1195 		pci_iounmap(device->pdev, device->s.ioaddr);
1196 	if (device->s.ramaddr)
1197 		pci_iounmap(device->pdev, device->s.ramaddr);
1198 }
1199 
1200 /*
1201  *	Free controller resources.
1202  */
1203 static void sym_free_resources(struct sym_hcb *np, struct pci_dev *pdev,
1204 		int do_free_irq)
1205 {
1206 	/*
1207 	 *  Free O/S specific resources.
1208 	 */
1209 	if (do_free_irq)
1210 		free_irq(pdev->irq, np->s.host);
1211 	if (np->s.ioaddr)
1212 		pci_iounmap(pdev, np->s.ioaddr);
1213 	if (np->s.ramaddr)
1214 		pci_iounmap(pdev, np->s.ramaddr);
1215 	/*
1216 	 *  Free O/S independent resources.
1217 	 */
1218 	sym_hcb_free(np);
1219 
1220 	sym_mfree_dma(np, sizeof(*np), "HCB");
1221 }
1222 
1223 /*
1224  *  Host attach and initialisations.
1225  *
1226  *  Allocate host data and ncb structure.
1227  *  Remap MMIO region.
1228  *  Do chip initialization.
1229  *  If all is OK, install interrupt handling and
1230  *  start the timer daemon.
1231  */
1232 static struct Scsi_Host *sym_attach(struct scsi_host_template *tpnt, int unit,
1233 				    struct sym_device *dev)
1234 {
1235 	struct sym_data *sym_data;
1236 	struct sym_hcb *np = NULL;
1237 	struct Scsi_Host *shost = NULL;
1238 	struct pci_dev *pdev = dev->pdev;
1239 	unsigned long flags;
1240 	struct sym_fw *fw;
1241 	int do_free_irq = 0;
1242 
1243 	printk(KERN_INFO "sym%d: <%s> rev 0x%x at pci %s irq %u\n",
1244 		unit, dev->chip.name, pdev->revision, pci_name(pdev),
1245 		pdev->irq);
1246 
1247 	/*
1248 	 *  Get the firmware for this chip.
1249 	 */
1250 	fw = sym_find_firmware(&dev->chip);
1251 	if (!fw)
1252 		goto attach_failed;
1253 
1254 	shost = scsi_host_alloc(tpnt, sizeof(*sym_data));
1255 	if (!shost)
1256 		goto attach_failed;
1257 	sym_data = shost_priv(shost);
1258 
1259 	/*
1260 	 *  Allocate immediately the host control block,
1261 	 *  since we are only expecting to succeed. :)
1262 	 *  We keep track in the HCB of all the resources that
1263 	 *  are to be released on error.
1264 	 */
1265 	np = __sym_calloc_dma(&pdev->dev, sizeof(*np), "HCB");
1266 	if (!np)
1267 		goto attach_failed;
1268 	np->bus_dmat = &pdev->dev; /* Result in 1 DMA pool per HBA */
1269 	sym_data->ncb = np;
1270 	sym_data->pdev = pdev;
1271 	np->s.host = shost;
1272 
1273 	pci_set_drvdata(pdev, shost);
1274 
1275 	/*
1276 	 *  Copy some useful infos to the HCB.
1277 	 */
1278 	np->hcb_ba	= vtobus(np);
1279 	np->verbose	= sym_driver_setup.verbose;
1280 	np->s.unit	= unit;
1281 	np->features	= dev->chip.features;
1282 	np->clock_divn	= dev->chip.nr_divisor;
1283 	np->maxoffs	= dev->chip.offset_max;
1284 	np->maxburst	= dev->chip.burst_max;
1285 	np->myaddr	= dev->host_id;
1286 	np->mmio_ba	= (u32)dev->mmio_base;
1287 	np->ram_ba	= (u32)dev->ram_base;
1288 	np->s.ioaddr	= dev->s.ioaddr;
1289 	np->s.ramaddr	= dev->s.ramaddr;
1290 
1291 	/*
1292 	 *  Edit its name.
1293 	 */
1294 	strlcpy(np->s.chip_name, dev->chip.name, sizeof(np->s.chip_name));
1295 	sprintf(np->s.inst_name, "sym%d", np->s.unit);
1296 
1297 	if ((SYM_CONF_DMA_ADDRESSING_MODE > 0) && (np->features & FE_DAC) &&
1298 			!dma_set_mask(&pdev->dev, DMA_DAC_MASK)) {
1299 		set_dac(np);
1300 	} else if (dma_set_mask(&pdev->dev, DMA_BIT_MASK(32))) {
1301 		printf_warning("%s: No suitable DMA available\n", sym_name(np));
1302 		goto attach_failed;
1303 	}
1304 
1305 	if (sym_hcb_attach(shost, fw, dev->nvram))
1306 		goto attach_failed;
1307 
1308 	/*
1309 	 *  Install the interrupt handler.
1310 	 *  If we synchonize the C code with SCRIPTS on interrupt,
1311 	 *  we do not want to share the INTR line at all.
1312 	 */
1313 	if (request_irq(pdev->irq, sym53c8xx_intr, IRQF_SHARED, NAME53C8XX,
1314 			shost)) {
1315 		printf_err("%s: request irq %u failure\n",
1316 			sym_name(np), pdev->irq);
1317 		goto attach_failed;
1318 	}
1319 	do_free_irq = 1;
1320 
1321 	/*
1322 	 *  After SCSI devices have been opened, we cannot
1323 	 *  reset the bus safely, so we do it here.
1324 	 */
1325 	spin_lock_irqsave(shost->host_lock, flags);
1326 	if (sym_reset_scsi_bus(np, 0))
1327 		goto reset_failed;
1328 
1329 	/*
1330 	 *  Start the SCRIPTS.
1331 	 */
1332 	sym_start_up(shost, 1);
1333 
1334 	/*
1335 	 *  Start the timer daemon
1336 	 */
1337 	timer_setup(&np->s.timer, sym53c8xx_timer, 0);
1338 	np->s.lasttime=0;
1339 	sym_timer (np);
1340 
1341 	/*
1342 	 *  Fill Linux host instance structure
1343 	 *  and return success.
1344 	 */
1345 	shost->max_channel	= 0;
1346 	shost->this_id		= np->myaddr;
1347 	shost->max_id		= np->maxwide ? 16 : 8;
1348 	shost->max_lun		= SYM_CONF_MAX_LUN;
1349 	shost->unique_id	= pci_resource_start(pdev, 0);
1350 	shost->cmd_per_lun	= SYM_CONF_MAX_TAG;
1351 	shost->can_queue	= (SYM_CONF_MAX_START-2);
1352 	shost->sg_tablesize	= SYM_CONF_MAX_SG;
1353 	shost->max_cmd_len	= 16;
1354 	BUG_ON(sym2_transport_template == NULL);
1355 	shost->transportt	= sym2_transport_template;
1356 
1357 	/* 53c896 rev 1 errata: DMA may not cross 16MB boundary */
1358 	if (pdev->device == PCI_DEVICE_ID_NCR_53C896 && pdev->revision < 2)
1359 		shost->dma_boundary = 0xFFFFFF;
1360 
1361 	spin_unlock_irqrestore(shost->host_lock, flags);
1362 
1363 	return shost;
1364 
1365  reset_failed:
1366 	printf_err("%s: FATAL ERROR: CHECK SCSI BUS - CABLES, "
1367 		   "TERMINATION, DEVICE POWER etc.!\n", sym_name(np));
1368 	spin_unlock_irqrestore(shost->host_lock, flags);
1369  attach_failed:
1370 	printf_info("sym%d: giving up ...\n", unit);
1371 	if (np)
1372 		sym_free_resources(np, pdev, do_free_irq);
1373 	else
1374 		sym_iounmap_device(dev);
1375 	if (shost)
1376 		scsi_host_put(shost);
1377 
1378 	return NULL;
1379 }
1380 
1381 
1382 /*
1383  *    Detect and try to read SYMBIOS and TEKRAM NVRAM.
1384  */
1385 #if SYM_CONF_NVRAM_SUPPORT
1386 static void sym_get_nvram(struct sym_device *devp, struct sym_nvram *nvp)
1387 {
1388 	devp->nvram = nvp;
1389 	nvp->type = 0;
1390 
1391 	sym_read_nvram(devp, nvp);
1392 }
1393 #else
1394 static inline void sym_get_nvram(struct sym_device *devp, struct sym_nvram *nvp)
1395 {
1396 }
1397 #endif	/* SYM_CONF_NVRAM_SUPPORT */
1398 
1399 static int sym_check_supported(struct sym_device *device)
1400 {
1401 	struct sym_chip *chip;
1402 	struct pci_dev *pdev = device->pdev;
1403 	unsigned long io_port = pci_resource_start(pdev, 0);
1404 	int i;
1405 
1406 	/*
1407 	 *  If user excluded this chip, do not initialize it.
1408 	 *  I hate this code so much.  Must kill it.
1409 	 */
1410 	if (io_port) {
1411 		for (i = 0 ; i < 8 ; i++) {
1412 			if (sym_driver_setup.excludes[i] == io_port)
1413 				return -ENODEV;
1414 		}
1415 	}
1416 
1417 	/*
1418 	 * Check if the chip is supported.  Then copy the chip description
1419 	 * to our device structure so we can make it match the actual device
1420 	 * and options.
1421 	 */
1422 	chip = sym_lookup_chip_table(pdev->device, pdev->revision);
1423 	if (!chip) {
1424 		dev_info(&pdev->dev, "device not supported\n");
1425 		return -ENODEV;
1426 	}
1427 	memcpy(&device->chip, chip, sizeof(device->chip));
1428 
1429 	return 0;
1430 }
1431 
1432 /*
1433  * Ignore Symbios chips controlled by various RAID controllers.
1434  * These controllers set value 0x52414944 at RAM end - 16.
1435  */
1436 static int sym_check_raid(struct sym_device *device)
1437 {
1438 	unsigned int ram_size, ram_val;
1439 
1440 	if (!device->s.ramaddr)
1441 		return 0;
1442 
1443 	if (device->chip.features & FE_RAM8K)
1444 		ram_size = 8192;
1445 	else
1446 		ram_size = 4096;
1447 
1448 	ram_val = readl(device->s.ramaddr + ram_size - 16);
1449 	if (ram_val != 0x52414944)
1450 		return 0;
1451 
1452 	dev_info(&device->pdev->dev,
1453 			"not initializing, driven by RAID controller.\n");
1454 	return -ENODEV;
1455 }
1456 
1457 static int sym_set_workarounds(struct sym_device *device)
1458 {
1459 	struct sym_chip *chip = &device->chip;
1460 	struct pci_dev *pdev = device->pdev;
1461 	u_short status_reg;
1462 
1463 	/*
1464 	 *  (ITEM 12 of a DEL about the 896 I haven't yet).
1465 	 *  We must ensure the chip will use WRITE AND INVALIDATE.
1466 	 *  The revision number limit is for now arbitrary.
1467 	 */
1468 	if (pdev->device == PCI_DEVICE_ID_NCR_53C896 && pdev->revision < 0x4) {
1469 		chip->features	|= (FE_WRIE | FE_CLSE);
1470 	}
1471 
1472 	/* If the chip can do Memory Write Invalidate, enable it */
1473 	if (chip->features & FE_WRIE) {
1474 		if (pci_set_mwi(pdev))
1475 			return -ENODEV;
1476 	}
1477 
1478 	/*
1479 	 *  Work around for errant bit in 895A. The 66Mhz
1480 	 *  capable bit is set erroneously. Clear this bit.
1481 	 *  (Item 1 DEL 533)
1482 	 *
1483 	 *  Make sure Config space and Features agree.
1484 	 *
1485 	 *  Recall: writes are not normal to status register -
1486 	 *  write a 1 to clear and a 0 to leave unchanged.
1487 	 *  Can only reset bits.
1488 	 */
1489 	pci_read_config_word(pdev, PCI_STATUS, &status_reg);
1490 	if (chip->features & FE_66MHZ) {
1491 		if (!(status_reg & PCI_STATUS_66MHZ))
1492 			chip->features &= ~FE_66MHZ;
1493 	} else {
1494 		if (status_reg & PCI_STATUS_66MHZ) {
1495 			status_reg = PCI_STATUS_66MHZ;
1496 			pci_write_config_word(pdev, PCI_STATUS, status_reg);
1497 			pci_read_config_word(pdev, PCI_STATUS, &status_reg);
1498 		}
1499 	}
1500 
1501 	return 0;
1502 }
1503 
1504 /*
1505  * Map HBA registers and on-chip SRAM (if present).
1506  */
1507 static int sym_iomap_device(struct sym_device *device)
1508 {
1509 	struct pci_dev *pdev = device->pdev;
1510 	struct pci_bus_region bus_addr;
1511 	int i = 2;
1512 
1513 	pcibios_resource_to_bus(pdev->bus, &bus_addr, &pdev->resource[1]);
1514 	device->mmio_base = bus_addr.start;
1515 
1516 	if (device->chip.features & FE_RAM) {
1517 		/*
1518 		 * If the BAR is 64-bit, resource 2 will be occupied by the
1519 		 * upper 32 bits
1520 		 */
1521 		if (!pdev->resource[i].flags)
1522 			i++;
1523 		pcibios_resource_to_bus(pdev->bus, &bus_addr,
1524 					&pdev->resource[i]);
1525 		device->ram_base = bus_addr.start;
1526 	}
1527 
1528 #ifdef CONFIG_SCSI_SYM53C8XX_MMIO
1529 	if (device->mmio_base)
1530 		device->s.ioaddr = pci_iomap(pdev, 1,
1531 						pci_resource_len(pdev, 1));
1532 #endif
1533 	if (!device->s.ioaddr)
1534 		device->s.ioaddr = pci_iomap(pdev, 0,
1535 						pci_resource_len(pdev, 0));
1536 	if (!device->s.ioaddr) {
1537 		dev_err(&pdev->dev, "could not map registers; giving up.\n");
1538 		return -EIO;
1539 	}
1540 	if (device->ram_base) {
1541 		device->s.ramaddr = pci_iomap(pdev, i,
1542 						pci_resource_len(pdev, i));
1543 		if (!device->s.ramaddr) {
1544 			dev_warn(&pdev->dev,
1545 				"could not map SRAM; continuing anyway.\n");
1546 			device->ram_base = 0;
1547 		}
1548 	}
1549 
1550 	return 0;
1551 }
1552 
1553 /*
1554  * The NCR PQS and PDS cards are constructed as a DEC bridge
1555  * behind which sits a proprietary NCR memory controller and
1556  * either four or two 53c875s as separate devices.  We can tell
1557  * if an 875 is part of a PQS/PDS or not since if it is, it will
1558  * be on the same bus as the memory controller.  In its usual
1559  * mode of operation, the 875s are slaved to the memory
1560  * controller for all transfers.  To operate with the Linux
1561  * driver, the memory controller is disabled and the 875s
1562  * freed to function independently.  The only wrinkle is that
1563  * the preset SCSI ID (which may be zero) must be read in from
1564  * a special configuration space register of the 875.
1565  */
1566 static void sym_config_pqs(struct pci_dev *pdev, struct sym_device *sym_dev)
1567 {
1568 	int slot;
1569 	u8 tmp;
1570 
1571 	for (slot = 0; slot < 256; slot++) {
1572 		struct pci_dev *memc = pci_get_slot(pdev->bus, slot);
1573 
1574 		if (!memc || memc->vendor != 0x101a || memc->device == 0x0009) {
1575 			pci_dev_put(memc);
1576 			continue;
1577 		}
1578 
1579 		/* bit 1: allow individual 875 configuration */
1580 		pci_read_config_byte(memc, 0x44, &tmp);
1581 		if ((tmp & 0x2) == 0) {
1582 			tmp |= 0x2;
1583 			pci_write_config_byte(memc, 0x44, tmp);
1584 		}
1585 
1586 		/* bit 2: drive individual 875 interrupts to the bus */
1587 		pci_read_config_byte(memc, 0x45, &tmp);
1588 		if ((tmp & 0x4) == 0) {
1589 			tmp |= 0x4;
1590 			pci_write_config_byte(memc, 0x45, tmp);
1591 		}
1592 
1593 		pci_dev_put(memc);
1594 		break;
1595 	}
1596 
1597 	pci_read_config_byte(pdev, 0x84, &tmp);
1598 	sym_dev->host_id = tmp;
1599 }
1600 
1601 /*
1602  *  Called before unloading the module.
1603  *  Detach the host.
1604  *  We have to free resources and halt the NCR chip.
1605  */
1606 static int sym_detach(struct Scsi_Host *shost, struct pci_dev *pdev)
1607 {
1608 	struct sym_hcb *np = sym_get_hcb(shost);
1609 	printk("%s: detaching ...\n", sym_name(np));
1610 
1611 	del_timer_sync(&np->s.timer);
1612 
1613 	/*
1614 	 * Reset NCR chip.
1615 	 * We should use sym_soft_reset(), but we don't want to do
1616 	 * so, since we may not be safe if interrupts occur.
1617 	 */
1618 	printk("%s: resetting chip\n", sym_name(np));
1619 	OUTB(np, nc_istat, SRST);
1620 	INB(np, nc_mbox1);
1621 	udelay(10);
1622 	OUTB(np, nc_istat, 0);
1623 
1624 	sym_free_resources(np, pdev, 1);
1625 	scsi_host_put(shost);
1626 
1627 	return 1;
1628 }
1629 
1630 /*
1631  * Driver host template.
1632  */
1633 static struct scsi_host_template sym2_template = {
1634 	.module			= THIS_MODULE,
1635 	.name			= "sym53c8xx",
1636 	.info			= sym53c8xx_info,
1637 	.queuecommand		= sym53c8xx_queue_command,
1638 	.slave_alloc		= sym53c8xx_slave_alloc,
1639 	.slave_configure	= sym53c8xx_slave_configure,
1640 	.slave_destroy		= sym53c8xx_slave_destroy,
1641 	.eh_abort_handler	= sym53c8xx_eh_abort_handler,
1642 	.eh_device_reset_handler = sym53c8xx_eh_device_reset_handler,
1643 	.eh_bus_reset_handler	= sym53c8xx_eh_bus_reset_handler,
1644 	.eh_host_reset_handler	= sym53c8xx_eh_host_reset_handler,
1645 	.this_id		= 7,
1646 	.max_sectors		= 0xFFFF,
1647 #ifdef SYM_LINUX_PROC_INFO_SUPPORT
1648 	.show_info		= sym_show_info,
1649 #ifdef	SYM_LINUX_USER_COMMAND_SUPPORT
1650 	.write_info		= sym_user_command,
1651 #endif
1652 	.proc_name		= NAME53C8XX,
1653 #endif
1654 };
1655 
1656 static int attach_count;
1657 
1658 static int sym2_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
1659 {
1660 	struct sym_device sym_dev;
1661 	struct sym_nvram nvram;
1662 	struct Scsi_Host *shost;
1663 	int do_iounmap = 0;
1664 	int do_disable_device = 1;
1665 
1666 	memset(&sym_dev, 0, sizeof(sym_dev));
1667 	memset(&nvram, 0, sizeof(nvram));
1668 	sym_dev.pdev = pdev;
1669 	sym_dev.host_id = SYM_SETUP_HOST_ID;
1670 
1671 	if (pci_enable_device(pdev))
1672 		goto leave;
1673 
1674 	pci_set_master(pdev);
1675 
1676 	if (pci_request_regions(pdev, NAME53C8XX))
1677 		goto disable;
1678 
1679 	if (sym_check_supported(&sym_dev))
1680 		goto free;
1681 
1682 	if (sym_iomap_device(&sym_dev))
1683 		goto free;
1684 	do_iounmap = 1;
1685 
1686 	if (sym_check_raid(&sym_dev)) {
1687 		do_disable_device = 0;	/* Don't disable the device */
1688 		goto free;
1689 	}
1690 
1691 	if (sym_set_workarounds(&sym_dev))
1692 		goto free;
1693 
1694 	sym_config_pqs(pdev, &sym_dev);
1695 
1696 	sym_get_nvram(&sym_dev, &nvram);
1697 
1698 	do_iounmap = 0; /* Don't sym_iounmap_device() after sym_attach(). */
1699 	shost = sym_attach(&sym2_template, attach_count, &sym_dev);
1700 	if (!shost)
1701 		goto free;
1702 
1703 	if (scsi_add_host(shost, &pdev->dev))
1704 		goto detach;
1705 	scsi_scan_host(shost);
1706 
1707 	attach_count++;
1708 
1709 	return 0;
1710 
1711  detach:
1712 	sym_detach(pci_get_drvdata(pdev), pdev);
1713  free:
1714 	if (do_iounmap)
1715 		sym_iounmap_device(&sym_dev);
1716 	pci_release_regions(pdev);
1717  disable:
1718 	if (do_disable_device)
1719 		pci_disable_device(pdev);
1720  leave:
1721 	return -ENODEV;
1722 }
1723 
1724 static void sym2_remove(struct pci_dev *pdev)
1725 {
1726 	struct Scsi_Host *shost = pci_get_drvdata(pdev);
1727 
1728 	scsi_remove_host(shost);
1729 	sym_detach(shost, pdev);
1730 	pci_release_regions(pdev);
1731 	pci_disable_device(pdev);
1732 
1733 	attach_count--;
1734 }
1735 
1736 /**
1737  * sym2_io_error_detected() - called when PCI error is detected
1738  * @pdev: pointer to PCI device
1739  * @state: current state of the PCI slot
1740  */
1741 static pci_ers_result_t sym2_io_error_detected(struct pci_dev *pdev,
1742                                          pci_channel_state_t state)
1743 {
1744 	/* If slot is permanently frozen, turn everything off */
1745 	if (state == pci_channel_io_perm_failure) {
1746 		sym2_remove(pdev);
1747 		return PCI_ERS_RESULT_DISCONNECT;
1748 	}
1749 
1750 	disable_irq(pdev->irq);
1751 	pci_disable_device(pdev);
1752 
1753 	/* Request that MMIO be enabled, so register dump can be taken. */
1754 	return PCI_ERS_RESULT_CAN_RECOVER;
1755 }
1756 
1757 /**
1758  * sym2_io_slot_dump - Enable MMIO and dump debug registers
1759  * @pdev: pointer to PCI device
1760  */
1761 static pci_ers_result_t sym2_io_slot_dump(struct pci_dev *pdev)
1762 {
1763 	struct Scsi_Host *shost = pci_get_drvdata(pdev);
1764 
1765 	sym_dump_registers(shost);
1766 
1767 	/* Request a slot reset. */
1768 	return PCI_ERS_RESULT_NEED_RESET;
1769 }
1770 
1771 /**
1772  * sym2_reset_workarounds - hardware-specific work-arounds
1773  * @pdev: pointer to PCI device
1774  *
1775  * This routine is similar to sym_set_workarounds(), except
1776  * that, at this point, we already know that the device was
1777  * successfully initialized at least once before, and so most
1778  * of the steps taken there are un-needed here.
1779  */
1780 static void sym2_reset_workarounds(struct pci_dev *pdev)
1781 {
1782 	u_short status_reg;
1783 	struct sym_chip *chip;
1784 
1785 	chip = sym_lookup_chip_table(pdev->device, pdev->revision);
1786 
1787 	/* Work around for errant bit in 895A, in a fashion
1788 	 * similar to what is done in sym_set_workarounds().
1789 	 */
1790 	pci_read_config_word(pdev, PCI_STATUS, &status_reg);
1791 	if (!(chip->features & FE_66MHZ) && (status_reg & PCI_STATUS_66MHZ)) {
1792 		status_reg = PCI_STATUS_66MHZ;
1793 		pci_write_config_word(pdev, PCI_STATUS, status_reg);
1794 		pci_read_config_word(pdev, PCI_STATUS, &status_reg);
1795 	}
1796 }
1797 
1798 /**
1799  * sym2_io_slot_reset() - called when the pci bus has been reset.
1800  * @pdev: pointer to PCI device
1801  *
1802  * Restart the card from scratch.
1803  */
1804 static pci_ers_result_t sym2_io_slot_reset(struct pci_dev *pdev)
1805 {
1806 	struct Scsi_Host *shost = pci_get_drvdata(pdev);
1807 	struct sym_hcb *np = sym_get_hcb(shost);
1808 
1809 	printk(KERN_INFO "%s: recovering from a PCI slot reset\n",
1810 	          sym_name(np));
1811 
1812 	if (pci_enable_device(pdev)) {
1813 		printk(KERN_ERR "%s: Unable to enable after PCI reset\n",
1814 		        sym_name(np));
1815 		return PCI_ERS_RESULT_DISCONNECT;
1816 	}
1817 
1818 	pci_set_master(pdev);
1819 	enable_irq(pdev->irq);
1820 
1821 	/* If the chip can do Memory Write Invalidate, enable it */
1822 	if (np->features & FE_WRIE) {
1823 		if (pci_set_mwi(pdev))
1824 			return PCI_ERS_RESULT_DISCONNECT;
1825 	}
1826 
1827 	/* Perform work-arounds, analogous to sym_set_workarounds() */
1828 	sym2_reset_workarounds(pdev);
1829 
1830 	/* Perform host reset only on one instance of the card */
1831 	if (PCI_FUNC(pdev->devfn) == 0) {
1832 		if (sym_reset_scsi_bus(np, 0)) {
1833 			printk(KERN_ERR "%s: Unable to reset scsi host\n",
1834 			        sym_name(np));
1835 			return PCI_ERS_RESULT_DISCONNECT;
1836 		}
1837 		sym_start_up(shost, 1);
1838 	}
1839 
1840 	return PCI_ERS_RESULT_RECOVERED;
1841 }
1842 
1843 /**
1844  * sym2_io_resume() - resume normal ops after PCI reset
1845  * @pdev: pointer to PCI device
1846  *
1847  * Called when the error recovery driver tells us that its
1848  * OK to resume normal operation. Use completion to allow
1849  * halted scsi ops to resume.
1850  */
1851 static void sym2_io_resume(struct pci_dev *pdev)
1852 {
1853 	struct Scsi_Host *shost = pci_get_drvdata(pdev);
1854 	struct sym_data *sym_data = shost_priv(shost);
1855 
1856 	spin_lock_irq(shost->host_lock);
1857 	if (sym_data->io_reset)
1858 		complete(sym_data->io_reset);
1859 	spin_unlock_irq(shost->host_lock);
1860 }
1861 
1862 static void sym2_get_signalling(struct Scsi_Host *shost)
1863 {
1864 	struct sym_hcb *np = sym_get_hcb(shost);
1865 	enum spi_signal_type type;
1866 
1867 	switch (np->scsi_mode) {
1868 	case SMODE_SE:
1869 		type = SPI_SIGNAL_SE;
1870 		break;
1871 	case SMODE_LVD:
1872 		type = SPI_SIGNAL_LVD;
1873 		break;
1874 	case SMODE_HVD:
1875 		type = SPI_SIGNAL_HVD;
1876 		break;
1877 	default:
1878 		type = SPI_SIGNAL_UNKNOWN;
1879 		break;
1880 	}
1881 	spi_signalling(shost) = type;
1882 }
1883 
1884 static void sym2_set_offset(struct scsi_target *starget, int offset)
1885 {
1886 	struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
1887 	struct sym_hcb *np = sym_get_hcb(shost);
1888 	struct sym_tcb *tp = &np->target[starget->id];
1889 
1890 	tp->tgoal.offset = offset;
1891 	tp->tgoal.check_nego = 1;
1892 }
1893 
1894 static void sym2_set_period(struct scsi_target *starget, int period)
1895 {
1896 	struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
1897 	struct sym_hcb *np = sym_get_hcb(shost);
1898 	struct sym_tcb *tp = &np->target[starget->id];
1899 
1900 	/* have to have DT for these transfers, but DT will also
1901 	 * set width, so check that this is allowed */
1902 	if (period <= np->minsync && spi_width(starget))
1903 		tp->tgoal.dt = 1;
1904 
1905 	tp->tgoal.period = period;
1906 	tp->tgoal.check_nego = 1;
1907 }
1908 
1909 static void sym2_set_width(struct scsi_target *starget, int width)
1910 {
1911 	struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
1912 	struct sym_hcb *np = sym_get_hcb(shost);
1913 	struct sym_tcb *tp = &np->target[starget->id];
1914 
1915 	/* It is illegal to have DT set on narrow transfers.  If DT is
1916 	 * clear, we must also clear IU and QAS.  */
1917 	if (width == 0)
1918 		tp->tgoal.iu = tp->tgoal.dt = tp->tgoal.qas = 0;
1919 
1920 	tp->tgoal.width = width;
1921 	tp->tgoal.check_nego = 1;
1922 }
1923 
1924 static void sym2_set_dt(struct scsi_target *starget, int dt)
1925 {
1926 	struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
1927 	struct sym_hcb *np = sym_get_hcb(shost);
1928 	struct sym_tcb *tp = &np->target[starget->id];
1929 
1930 	/* We must clear QAS and IU if DT is clear */
1931 	if (dt)
1932 		tp->tgoal.dt = 1;
1933 	else
1934 		tp->tgoal.iu = tp->tgoal.dt = tp->tgoal.qas = 0;
1935 	tp->tgoal.check_nego = 1;
1936 }
1937 
1938 #if 0
1939 static void sym2_set_iu(struct scsi_target *starget, int iu)
1940 {
1941 	struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
1942 	struct sym_hcb *np = sym_get_hcb(shost);
1943 	struct sym_tcb *tp = &np->target[starget->id];
1944 
1945 	if (iu)
1946 		tp->tgoal.iu = tp->tgoal.dt = 1;
1947 	else
1948 		tp->tgoal.iu = 0;
1949 	tp->tgoal.check_nego = 1;
1950 }
1951 
1952 static void sym2_set_qas(struct scsi_target *starget, int qas)
1953 {
1954 	struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
1955 	struct sym_hcb *np = sym_get_hcb(shost);
1956 	struct sym_tcb *tp = &np->target[starget->id];
1957 
1958 	if (qas)
1959 		tp->tgoal.dt = tp->tgoal.qas = 1;
1960 	else
1961 		tp->tgoal.qas = 0;
1962 	tp->tgoal.check_nego = 1;
1963 }
1964 #endif
1965 
1966 static struct spi_function_template sym2_transport_functions = {
1967 	.set_offset	= sym2_set_offset,
1968 	.show_offset	= 1,
1969 	.set_period	= sym2_set_period,
1970 	.show_period	= 1,
1971 	.set_width	= sym2_set_width,
1972 	.show_width	= 1,
1973 	.set_dt		= sym2_set_dt,
1974 	.show_dt	= 1,
1975 #if 0
1976 	.set_iu		= sym2_set_iu,
1977 	.show_iu	= 1,
1978 	.set_qas	= sym2_set_qas,
1979 	.show_qas	= 1,
1980 #endif
1981 	.get_signalling	= sym2_get_signalling,
1982 };
1983 
1984 static struct pci_device_id sym2_id_table[] = {
1985 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C810,
1986 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
1987 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C820,
1988 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL }, /* new */
1989 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C825,
1990 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
1991 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C815,
1992 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
1993 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_53C810AP,
1994 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL }, /* new */
1995 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C860,
1996 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
1997 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_53C1510,
1998 	  PCI_ANY_ID, PCI_ANY_ID, PCI_CLASS_STORAGE_SCSI<<8,  0xffff00, 0UL },
1999 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C896,
2000 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2001 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C895,
2002 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2003 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C885,
2004 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2005 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C875,
2006 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2007 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C1510,
2008 	  PCI_ANY_ID, PCI_ANY_ID,  PCI_CLASS_STORAGE_SCSI<<8,  0xffff00, 0UL }, /* new */
2009 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_53C895A,
2010 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2011 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_53C875A,
2012 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2013 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_53C1010_33,
2014 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2015 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_53C1010_66,
2016 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2017 	{ PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_NCR_53C875J,
2018 	  PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
2019 	{ 0, }
2020 };
2021 
2022 MODULE_DEVICE_TABLE(pci, sym2_id_table);
2023 
2024 static const struct pci_error_handlers sym2_err_handler = {
2025 	.error_detected	= sym2_io_error_detected,
2026 	.mmio_enabled	= sym2_io_slot_dump,
2027 	.slot_reset	= sym2_io_slot_reset,
2028 	.resume		= sym2_io_resume,
2029 };
2030 
2031 static struct pci_driver sym2_driver = {
2032 	.name		= NAME53C8XX,
2033 	.id_table	= sym2_id_table,
2034 	.probe		= sym2_probe,
2035 	.remove		= sym2_remove,
2036 	.err_handler 	= &sym2_err_handler,
2037 };
2038 
2039 static int __init sym2_init(void)
2040 {
2041 	int error;
2042 
2043 	sym2_setup_params();
2044 	sym2_transport_template = spi_attach_transport(&sym2_transport_functions);
2045 	if (!sym2_transport_template)
2046 		return -ENODEV;
2047 
2048 	error = pci_register_driver(&sym2_driver);
2049 	if (error)
2050 		spi_release_transport(sym2_transport_template);
2051 	return error;
2052 }
2053 
2054 static void __exit sym2_exit(void)
2055 {
2056 	pci_unregister_driver(&sym2_driver);
2057 	spi_release_transport(sym2_transport_template);
2058 }
2059 
2060 module_init(sym2_init);
2061 module_exit(sym2_exit);
2062