1 /*
2  * Adaptec AIC7xxx device driver for Linux.
3  *
4  * $Id: //depot/aic7xxx/linux/drivers/scsi/aic7xxx/aic7xxx_osm.c#234 $
5  *
6  * Copyright (c) 1994 John Aycock
7  *   The University of Calgary Department of Computer Science.
8  *
9  * This program is free software; you can redistribute it and/or modify
10  * it under the terms of the GNU General Public License as published by
11  * the Free Software Foundation; either version 2, or (at your option)
12  * any later version.
13  *
14  * This program is distributed in the hope that it will be useful,
15  * but WITHOUT ANY WARRANTY; without even the implied warranty of
16  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
17  * GNU General Public License for more details.
18  *
19  * You should have received a copy of the GNU General Public License
20  * along with this program; see the file COPYING.  If not, write to
21  * the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
22  *
23  * Sources include the Adaptec 1740 driver (aha1740.c), the Ultrastor 24F
24  * driver (ultrastor.c), various Linux kernel source, the Adaptec EISA
25  * config file (!adp7771.cfg), the Adaptec AHA-2740A Series User's Guide,
26  * the Linux Kernel Hacker's Guide, Writing a SCSI Device Driver for Linux,
27  * the Adaptec 1542 driver (aha1542.c), the Adaptec EISA overlay file
28  * (adp7770.ovl), the Adaptec AHA-2740 Series Technical Reference Manual,
29  * the Adaptec AIC-7770 Data Book, the ANSI SCSI specification, the
30  * ANSI SCSI-2 specification (draft 10c), ...
31  *
32  * --------------------------------------------------------------------------
33  *
34  *  Modifications by Daniel M. Eischen (deischen@iworks.InterWorks.org):
35  *
36  *  Substantially modified to include support for wide and twin bus
37  *  adapters, DMAing of SCBs, tagged queueing, IRQ sharing, bug fixes,
38  *  SCB paging, and other rework of the code.
39  *
40  * --------------------------------------------------------------------------
41  * Copyright (c) 1994-2000 Justin T. Gibbs.
42  * Copyright (c) 2000-2001 Adaptec Inc.
43  * All rights reserved.
44  *
45  * Redistribution and use in source and binary forms, with or without
46  * modification, are permitted provided that the following conditions
47  * are met:
48  * 1. Redistributions of source code must retain the above copyright
49  *    notice, this list of conditions, and the following disclaimer,
50  *    without modification.
51  * 2. Redistributions in binary form must reproduce at minimum a disclaimer
52  *    substantially similar to the "NO WARRANTY" disclaimer below
53  *    ("Disclaimer") and any redistribution must be conditioned upon
54  *    including a substantially similar Disclaimer requirement for further
55  *    binary redistribution.
56  * 3. Neither the names of the above-listed copyright holders nor the names
57  *    of any contributors may be used to endorse or promote products derived
58  *    from this software without specific prior written permission.
59  *
60  * Alternatively, this software may be distributed under the terms of the
61  * GNU General Public License ("GPL") version 2 as published by the Free
62  * Software Foundation.
63  *
64  * NO WARRANTY
65  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
66  * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
67  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR
68  * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
69  * HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
70  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
71  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
72  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
73  * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
74  * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
75  * POSSIBILITY OF SUCH DAMAGES.
76  *
77  *---------------------------------------------------------------------------
78  *
79  *  Thanks also go to (in alphabetical order) the following:
80  *
81  *    Rory Bolt     - Sequencer bug fixes
82  *    Jay Estabrook - Initial DEC Alpha support
83  *    Doug Ledford  - Much needed abort/reset bug fixes
84  *    Kai Makisara  - DMAing of SCBs
85  *
86  *  A Boot time option was also added for not resetting the scsi bus.
87  *
88  *    Form:  aic7xxx=extended
89  *           aic7xxx=no_reset
90  *           aic7xxx=verbose
91  *
92  *  Daniel M. Eischen, deischen@iworks.InterWorks.org, 1/23/97
93  *
94  *  Id: aic7xxx.c,v 4.1 1997/06/12 08:23:42 deang Exp
95  */
96 
97 /*
98  * Further driver modifications made by Doug Ledford <dledford@redhat.com>
99  *
100  * Copyright (c) 1997-1999 Doug Ledford
101  *
102  * These changes are released under the same licensing terms as the FreeBSD
103  * driver written by Justin Gibbs.  Please see his Copyright notice above
104  * for the exact terms and conditions covering my changes as well as the
105  * warranty statement.
106  *
107  * Modifications made to the aic7xxx.c,v 4.1 driver from Dan Eischen include
108  * but are not limited to:
109  *
110  *  1: Import of the latest FreeBSD sequencer code for this driver
111  *  2: Modification of kernel code to accommodate different sequencer semantics
112  *  3: Extensive changes throughout kernel portion of driver to improve
113  *     abort/reset processing and error hanndling
114  *  4: Other work contributed by various people on the Internet
115  *  5: Changes to printk information and verbosity selection code
116  *  6: General reliability related changes, especially in IRQ management
117  *  7: Modifications to the default probe/attach order for supported cards
118  *  8: SMP friendliness has been improved
119  *
120  */
121 
122 #include "aic7xxx_osm.h"
123 #include "aic7xxx_inline.h"
124 #include <scsi/scsicam.h>
125 
126 /*
127  * Include aiclib.c as part of our
128  * "module dependencies are hard" work around.
129  */
130 #include "aiclib.c"
131 
132 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
133 #include <linux/init.h>		/* __setup */
134 #endif
135 
136 
137 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
138 #include "sd.h"			/* For geometry detection */
139 #endif
140 
141 #include <linux/mm.h>		/* For fetching system memory size */
142 #include <linux/blk.h>		/* For block_size() */
143 
144 /*
145  * Lock protecting manipulation of the ahc softc list.
146  */
147 spinlock_t ahc_list_spinlock;
148 
149 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
150 /* For dynamic sglist size calculation. */
151 u_int ahc_linux_nseg;
152 #endif
153 
154 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,3,0)
155 struct proc_dir_entry proc_scsi_aic7xxx = {
156 	PROC_SCSI_AIC7XXX, 7, "aic7xxx",
157 	S_IFDIR | S_IRUGO | S_IXUGO, 2,
158 	0, 0, 0, NULL, NULL, NULL, NULL, NULL, NULL, NULL
159 };
160 #endif
161 
162 /*
163  * Set this to the delay in seconds after SCSI bus reset.
164  * Note, we honor this only for the initial bus reset.
165  * The scsi error recovery code performs its own bus settle
166  * delay handling for error recovery actions.
167  */
168 #ifdef CONFIG_AIC7XXX_RESET_DELAY_MS
169 #define AIC7XXX_RESET_DELAY CONFIG_AIC7XXX_RESET_DELAY_MS
170 #else
171 #define AIC7XXX_RESET_DELAY 5000
172 #endif
173 
174 /*
175  * Control collection of SCSI transfer statistics for the /proc filesystem.
176  *
177  * NOTE: Do NOT enable this when running on kernels version 1.2.x and below.
178  * NOTE: This does affect performance since it has to maintain statistics.
179  */
180 #ifdef CONFIG_AIC7XXX_PROC_STATS
181 #define AIC7XXX_PROC_STATS
182 #endif
183 
184 /*
185  * To change the default number of tagged transactions allowed per-device,
186  * add a line to the lilo.conf file like:
187  * append="aic7xxx=verbose,tag_info:{{32,32,32,32},{32,32,32,32}}"
188  * which will result in the first four devices on the first two
189  * controllers being set to a tagged queue depth of 32.
190  *
191  * The tag_commands is an array of 16 to allow for wide and twin adapters.
192  * Twin adapters will use indexes 0-7 for channel 0, and indexes 8-15
193  * for channel 1.
194  */
195 typedef struct {
196 	uint8_t tag_commands[16];	/* Allow for wide/twin adapters. */
197 } adapter_tag_info_t;
198 
199 /*
200  * Modify this as you see fit for your system.
201  *
202  * 0			tagged queuing disabled
203  * 1 <= n <= 253	n == max tags ever dispatched.
204  *
205  * The driver will throttle the number of commands dispatched to a
206  * device if it returns queue full.  For devices with a fixed maximum
207  * queue depth, the driver will eventually determine this depth and
208  * lock it in (a console message is printed to indicate that a lock
209  * has occurred).  On some devices, queue full is returned for a temporary
210  * resource shortage.  These devices will return queue full at varying
211  * depths.  The driver will throttle back when the queue fulls occur and
212  * attempt to slowly increase the depth over time as the device recovers
213  * from the resource shortage.
214  *
215  * In this example, the first line will disable tagged queueing for all
216  * the devices on the first probed aic7xxx adapter.
217  *
218  * The second line enables tagged queueing with 4 commands/LUN for IDs
219  * (0, 2-11, 13-15), disables tagged queueing for ID 12, and tells the
220  * driver to attempt to use up to 64 tags for ID 1.
221  *
222  * The third line is the same as the first line.
223  *
224  * The fourth line disables tagged queueing for devices 0 and 3.  It
225  * enables tagged queueing for the other IDs, with 16 commands/LUN
226  * for IDs 1 and 4, 127 commands/LUN for ID 8, and 4 commands/LUN for
227  * IDs 2, 5-7, and 9-15.
228  */
229 
230 /*
231  * NOTE: The below structure is for reference only, the actual structure
232  *       to modify in order to change things is just below this comment block.
233 adapter_tag_info_t aic7xxx_tag_info[] =
234 {
235 	{{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}},
236 	{{4, 64, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 0, 4, 4, 4}},
237 	{{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}},
238 	{{0, 16, 4, 0, 16, 4, 4, 4, 127, 4, 4, 4, 4, 4, 4, 4}}
239 };
240 */
241 
242 #ifdef CONFIG_AIC7XXX_CMDS_PER_DEVICE
243 #define AIC7XXX_CMDS_PER_DEVICE CONFIG_AIC7XXX_CMDS_PER_DEVICE
244 #else
245 #define AIC7XXX_CMDS_PER_DEVICE AHC_MAX_QUEUE
246 #endif
247 
248 #define AIC7XXX_CONFIGED_TAG_COMMANDS {					\
249 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
250 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
251 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
252 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
253 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
254 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
255 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE,		\
256 	AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE		\
257 }
258 
259 /*
260  * By default, use the number of commands specified by
261  * the users kernel configuration.
262  */
263 static adapter_tag_info_t aic7xxx_tag_info[] =
264 {
265 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
266 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
267 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
268 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
269 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
270 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
271 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
272 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
273 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
274 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
275 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
276 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
277 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
278 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
279 	{AIC7XXX_CONFIGED_TAG_COMMANDS},
280 	{AIC7XXX_CONFIGED_TAG_COMMANDS}
281 };
282 
283 /*
284  * DV option:
285  *
286  * positive value = DV Enabled
287  * zero		  = DV Disabled
288  * negative value = DV Default for adapter type/seeprom
289  */
290 #ifdef CONFIG_AIC7XXX_DV_SETTING
291 #define AIC7XXX_CONFIGED_DV CONFIG_AIC7XXX_DV_SETTING
292 #else
293 #define AIC7XXX_CONFIGED_DV -1
294 #endif
295 
296 static int8_t aic7xxx_dv_settings[] =
297 {
298 	AIC7XXX_CONFIGED_DV,
299 	AIC7XXX_CONFIGED_DV,
300 	AIC7XXX_CONFIGED_DV,
301 	AIC7XXX_CONFIGED_DV,
302 	AIC7XXX_CONFIGED_DV,
303 	AIC7XXX_CONFIGED_DV,
304 	AIC7XXX_CONFIGED_DV,
305 	AIC7XXX_CONFIGED_DV,
306 	AIC7XXX_CONFIGED_DV,
307 	AIC7XXX_CONFIGED_DV,
308 	AIC7XXX_CONFIGED_DV,
309 	AIC7XXX_CONFIGED_DV,
310 	AIC7XXX_CONFIGED_DV,
311 	AIC7XXX_CONFIGED_DV,
312 	AIC7XXX_CONFIGED_DV,
313 	AIC7XXX_CONFIGED_DV
314 };
315 
316 /*
317  * There should be a specific return value for this in scsi.h, but
318  * it seems that most drivers ignore it.
319  */
320 #define DID_UNDERFLOW   DID_ERROR
321 
322 void
ahc_print_path(struct ahc_softc * ahc,struct scb * scb)323 ahc_print_path(struct ahc_softc *ahc, struct scb *scb)
324 {
325 	printk("(scsi%d:%c:%d:%d): ",
326 	       ahc->platform_data->host->host_no,
327 	       scb != NULL ? SCB_GET_CHANNEL(ahc, scb) : 'X',
328 	       scb != NULL ? SCB_GET_TARGET(ahc, scb) : -1,
329 	       scb != NULL ? SCB_GET_LUN(scb) : -1);
330 }
331 
332 /*
333  * XXX - these options apply unilaterally to _all_ 274x/284x/294x
334  *       cards in the system.  This should be fixed.  Exceptions to this
335  *       rule are noted in the comments.
336  */
337 
338 /*
339  * Skip the scsi bus reset.  Non 0 make us skip the reset at startup.  This
340  * has no effect on any later resets that might occur due to things like
341  * SCSI bus timeouts.
342  */
343 static uint32_t aic7xxx_no_reset;
344 
345 /*
346  * Certain PCI motherboards will scan PCI devices from highest to lowest,
347  * others scan from lowest to highest, and they tend to do all kinds of
348  * strange things when they come into contact with PCI bridge chips.  The
349  * net result of all this is that the PCI card that is actually used to boot
350  * the machine is very hard to detect.  Most motherboards go from lowest
351  * PCI slot number to highest, and the first SCSI controller found is the
352  * one you boot from.  The only exceptions to this are when a controller
353  * has its BIOS disabled.  So, we by default sort all of our SCSI controllers
354  * from lowest PCI slot number to highest PCI slot number.  We also force
355  * all controllers with their BIOS disabled to the end of the list.  This
356  * works on *almost* all computers.  Where it doesn't work, we have this
357  * option.  Setting this option to non-0 will reverse the order of the sort
358  * to highest first, then lowest, but will still leave cards with their BIOS
359  * disabled at the very end.  That should fix everyone up unless there are
360  * really strange cirumstances.
361  */
362 static uint32_t aic7xxx_reverse_scan;
363 
364 /*
365  * Should we force EXTENDED translation on a controller.
366  *     0 == Use whatever is in the SEEPROM or default to off
367  *     1 == Use whatever is in the SEEPROM or default to on
368  */
369 static uint32_t aic7xxx_extended;
370 
371 /*
372  * PCI bus parity checking of the Adaptec controllers.  This is somewhat
373  * dubious at best.  To my knowledge, this option has never actually
374  * solved a PCI parity problem, but on certain machines with broken PCI
375  * chipset configurations where stray PCI transactions with bad parity are
376  * the norm rather than the exception, the error messages can be overwelming.
377  * It's included in the driver for completeness.
378  *   0	   = Shut off PCI parity check
379  *   non-0 = reverse polarity pci parity checking
380  */
381 static uint32_t aic7xxx_pci_parity = ~0;
382 
383 /*
384  * Certain newer motherboards have put new PCI based devices into the
385  * IO spaces that used to typically be occupied by VLB or EISA cards.
386  * This overlap can cause these newer motherboards to lock up when scanned
387  * for older EISA and VLB devices.  Setting this option to non-0 will
388  * cause the driver to skip scanning for any VLB or EISA controllers and
389  * only support the PCI controllers.  NOTE: this means that if the kernel
390  * os compiled with PCI support disabled, then setting this to non-0
391  * would result in never finding any devices :)
392  */
393 #ifndef CONFIG_AIC7XXX_PROBE_EISA_VL
394 uint32_t aic7xxx_probe_eisa_vl;
395 #else
396 uint32_t aic7xxx_probe_eisa_vl = ~0;
397 #endif
398 
399 /*
400  * There are lots of broken chipsets in the world.  Some of them will
401  * violate the PCI spec when we issue byte sized memory writes to our
402  * controller.  I/O mapped register access, if allowed by the given
403  * platform, will work in almost all cases.
404  */
405 uint32_t aic7xxx_allow_memio = ~0;
406 
407 /*
408  * aic7xxx_detect() has been run, so register all device arrivals
409  * immediately with the system rather than deferring to the sorted
410  * attachment performed by aic7xxx_detect().
411  */
412 int aic7xxx_detect_complete;
413 
414 /*
415  * So that we can set how long each device is given as a selection timeout.
416  * The table of values goes like this:
417  *   0 - 256ms
418  *   1 - 128ms
419  *   2 - 64ms
420  *   3 - 32ms
421  * We default to 256ms because some older devices need a longer time
422  * to respond to initial selection.
423  */
424 static uint32_t aic7xxx_seltime;
425 
426 /*
427  * Certain devices do not perform any aging on commands.  Should the
428  * device be saturated by commands in one portion of the disk, it is
429  * possible for transactions on far away sectors to never be serviced.
430  * To handle these devices, we can periodically send an ordered tag to
431  * force all outstanding transactions to be serviced prior to a new
432  * transaction.
433  */
434 uint32_t aic7xxx_periodic_otag;
435 
436 /*
437  * Module information and settable options.
438  */
439 #ifdef MODULE
440 static char *aic7xxx = NULL;
441 /*
442  * Just in case someone uses commas to separate items on the insmod
443  * command line, we define a dummy buffer here to avoid having insmod
444  * write wild stuff into our code segment
445  */
446 static char dummy_buffer[60] = "Please don't trounce on me insmod!!\n";
447 
448 MODULE_AUTHOR("Maintainer: Justin T. Gibbs <gibbs@scsiguy.com>");
449 MODULE_DESCRIPTION("Adaptec Aic77XX/78XX SCSI Host Bus Adapter driver");
450 #ifdef MODULE_LICENSE
451 MODULE_LICENSE("Dual BSD/GPL");
452 #endif
453 MODULE_PARM(aic7xxx, "s");
454 MODULE_PARM_DESC(aic7xxx,
455 "period delimited, options string.\n"
456 "	verbose			Enable verbose/diagnostic logging\n"
457 "	allow_memio		Allow device registers to be memory mapped\n"
458 "	debug			Bitmask of debug values to enable\n"
459 "	no_probe		Toggle EISA/VLB controller probing\n"
460 "	probe_eisa_vl		Toggle EISA/VLB controller probing\n"
461 "	no_reset		Supress initial bus resets\n"
462 "	extended		Enable extended geometry on all controllers\n"
463 "	periodic_otag		Send an ordered tagged transaction\n"
464 "				periodically to prevent tag starvation.\n"
465 "				This may be required by some older disk\n"
466 "				drives or RAID arrays.\n"
467 "	reverse_scan		Sort PCI devices highest Bus/Slot to lowest\n"
468 "	tag_info:<tag_str>	Set per-target tag depth\n"
469 "	global_tag_depth:<int>	Global tag depth for every target\n"
470 "				on every bus\n"
471 "	dv:<dv_settings>	Set per-controller Domain Validation Setting.\n"
472 "	seltime:<int>		Selection Timeout\n"
473 "				(0/256ms,1/128ms,2/64ms,3/32ms)\n"
474 "\n"
475 "	Sample /etc/modules.conf line:\n"
476 "		Toggle EISA/VLB probing\n"
477 "		Set tag depth on Controller 1/Target 1 to 10 tags\n"
478 "		Shorten the selection timeout to 128ms\n"
479 "\n"
480 "	options aic7xxx 'aic7xxx=probe_eisa_vl.tag_info:{{}.{.10}}.seltime:1'\n"
481 );
482 #endif
483 
484 static void ahc_linux_handle_scsi_status(struct ahc_softc *,
485 					 struct ahc_linux_device *,
486 					 struct scb *);
487 static void ahc_linux_queue_cmd_complete(struct ahc_softc *ahc,
488 					 Scsi_Cmnd *cmd);
489 static void ahc_linux_filter_inquiry(struct ahc_softc*, struct ahc_devinfo*);
490 static void ahc_linux_sem_timeout(u_long arg);
491 static void ahc_linux_freeze_simq(struct ahc_softc *ahc);
492 static void ahc_linux_release_simq(u_long arg);
493 static void ahc_linux_dev_timed_unfreeze(u_long arg);
494 static int  ahc_linux_queue_recovery_cmd(Scsi_Cmnd *cmd, scb_flag flag);
495 static void ahc_linux_initialize_scsi_bus(struct ahc_softc *ahc);
496 static void ahc_linux_size_nseg(void);
497 static void ahc_linux_thread_run_complete_queue(struct ahc_softc *ahc);
498 static void ahc_linux_start_dv(struct ahc_softc *ahc);
499 static void ahc_linux_dv_timeout(struct scsi_cmnd *cmd);
500 static int  ahc_linux_dv_thread(void *data);
501 static void ahc_linux_kill_dv_thread(struct ahc_softc *ahc);
502 static void ahc_linux_dv_target(struct ahc_softc *ahc, u_int target);
503 static void ahc_linux_dv_transition(struct ahc_softc *ahc,
504 				    struct scsi_cmnd *cmd,
505 				    struct ahc_devinfo *devinfo,
506 				    struct ahc_linux_target *targ);
507 static void ahc_linux_dv_fill_cmd(struct ahc_softc *ahc,
508 				  struct scsi_cmnd *cmd,
509 				  struct ahc_devinfo *devinfo);
510 static void ahc_linux_dv_inq(struct ahc_softc *ahc,
511 			     struct scsi_cmnd *cmd,
512 			     struct ahc_devinfo *devinfo,
513 			     struct ahc_linux_target *targ,
514 			     u_int request_length);
515 static void ahc_linux_dv_tur(struct ahc_softc *ahc,
516 			     struct scsi_cmnd *cmd,
517 			     struct ahc_devinfo *devinfo);
518 static void ahc_linux_dv_rebd(struct ahc_softc *ahc,
519 			      struct scsi_cmnd *cmd,
520 			      struct ahc_devinfo *devinfo,
521 			      struct ahc_linux_target *targ);
522 static void ahc_linux_dv_web(struct ahc_softc *ahc,
523 			     struct scsi_cmnd *cmd,
524 			     struct ahc_devinfo *devinfo,
525 			     struct ahc_linux_target *targ);
526 static void ahc_linux_dv_reb(struct ahc_softc *ahc,
527 			     struct scsi_cmnd *cmd,
528 			     struct ahc_devinfo *devinfo,
529 			     struct ahc_linux_target *targ);
530 static void ahc_linux_dv_su(struct ahc_softc *ahc,
531 			    struct scsi_cmnd *cmd,
532 			    struct ahc_devinfo *devinfo,
533 			    struct ahc_linux_target *targ);
534 static int ahc_linux_fallback(struct ahc_softc *ahc,
535 			      struct ahc_devinfo *devinfo);
536 static void ahc_linux_dv_complete(Scsi_Cmnd *cmd);
537 static void ahc_linux_generate_dv_pattern(struct ahc_linux_target *targ);
538 static u_int ahc_linux_user_tagdepth(struct ahc_softc *ahc,
539 				     struct ahc_devinfo *devinfo);
540 static u_int ahc_linux_user_dv_setting(struct ahc_softc *ahc);
541 static void ahc_linux_device_queue_depth(struct ahc_softc *ahc,
542 					 struct ahc_linux_device *dev);
543 static struct ahc_linux_target*	ahc_linux_alloc_target(struct ahc_softc*,
544 						       u_int, u_int);
545 static void			ahc_linux_free_target(struct ahc_softc*,
546 						      struct ahc_linux_target*);
547 static struct ahc_linux_device*	ahc_linux_alloc_device(struct ahc_softc*,
548 						       struct ahc_linux_target*,
549 						       u_int);
550 static void			ahc_linux_free_device(struct ahc_softc*,
551 						      struct ahc_linux_device*);
552 static void ahc_linux_run_device_queue(struct ahc_softc*,
553 				       struct ahc_linux_device*);
554 static void ahc_linux_setup_tag_info_global(char *p);
555 static aic_option_callback_t ahc_linux_setup_tag_info;
556 static aic_option_callback_t ahc_linux_setup_dv;
557 static int  aic7xxx_setup(char *s);
558 static int  ahc_linux_next_unit(void);
559 static void ahc_runq_tasklet(unsigned long data);
560 static struct ahc_cmd *ahc_linux_run_complete_queue(struct ahc_softc *ahc);
561 
562 /********************************* Inlines ************************************/
563 static __inline void ahc_schedule_runq(struct ahc_softc *ahc);
564 static __inline struct ahc_linux_device*
565 		     ahc_linux_get_device(struct ahc_softc *ahc, u_int channel,
566 					  u_int target, u_int lun, int alloc);
567 static __inline void ahc_schedule_completeq(struct ahc_softc *ahc);
568 static __inline void ahc_linux_check_device_queue(struct ahc_softc *ahc,
569 						  struct ahc_linux_device *dev);
570 static __inline struct ahc_linux_device *
571 		     ahc_linux_next_device_to_run(struct ahc_softc *ahc);
572 static __inline void ahc_linux_run_device_queues(struct ahc_softc *ahc);
573 static __inline void ahc_linux_unmap_scb(struct ahc_softc*, struct scb*);
574 
575 static __inline int ahc_linux_map_seg(struct ahc_softc *ahc, struct scb *scb,
576 		 		      struct ahc_dma_seg *sg,
577 				      bus_addr_t addr, bus_size_t len);
578 
579 static __inline void
ahc_schedule_completeq(struct ahc_softc * ahc)580 ahc_schedule_completeq(struct ahc_softc *ahc)
581 {
582 	if ((ahc->platform_data->flags & AHC_RUN_CMPLT_Q_TIMER) == 0) {
583 		ahc->platform_data->flags |= AHC_RUN_CMPLT_Q_TIMER;
584 		ahc->platform_data->completeq_timer.expires = jiffies;
585 		add_timer(&ahc->platform_data->completeq_timer);
586 	}
587 }
588 
589 /*
590  * Must be called with our lock held.
591  */
592 static __inline void
ahc_schedule_runq(struct ahc_softc * ahc)593 ahc_schedule_runq(struct ahc_softc *ahc)
594 {
595 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
596 	tasklet_schedule(&ahc->platform_data->runq_tasklet);
597 #else
598 	/*
599 	 * Tasklets are not available, so run inline.
600 	 */
601 	ahc_runq_tasklet((unsigned long)ahc);
602 #endif
603 }
604 
605 static __inline struct ahc_linux_device*
ahc_linux_get_device(struct ahc_softc * ahc,u_int channel,u_int target,u_int lun,int alloc)606 ahc_linux_get_device(struct ahc_softc *ahc, u_int channel, u_int target,
607 		     u_int lun, int alloc)
608 {
609 	struct ahc_linux_target *targ;
610 	struct ahc_linux_device *dev;
611 	u_int target_offset;
612 
613 	target_offset = target;
614 	if (channel != 0)
615 		target_offset += 8;
616 	targ = ahc->platform_data->targets[target_offset];
617 	if (targ == NULL) {
618 		if (alloc != 0) {
619 			targ = ahc_linux_alloc_target(ahc, channel, target);
620 			if (targ == NULL)
621 				return (NULL);
622 		} else
623 			return (NULL);
624 	}
625 	dev = targ->devices[lun];
626 	if (dev == NULL && alloc != 0)
627 		dev = ahc_linux_alloc_device(ahc, targ, lun);
628 	return (dev);
629 }
630 
631 #define AHC_LINUX_MAX_RETURNED_ERRORS 4
632 static struct ahc_cmd *
ahc_linux_run_complete_queue(struct ahc_softc * ahc)633 ahc_linux_run_complete_queue(struct ahc_softc *ahc)
634 {
635 	struct	ahc_cmd *acmd;
636 	u_long	done_flags;
637 	int	with_errors;
638 
639 	with_errors = 0;
640 	ahc_done_lock(ahc, &done_flags);
641 	while ((acmd = TAILQ_FIRST(&ahc->platform_data->completeq)) != NULL) {
642 		Scsi_Cmnd *cmd;
643 
644 		if (with_errors > AHC_LINUX_MAX_RETURNED_ERRORS) {
645 			/*
646 			 * Linux uses stack recursion to requeue
647 			 * commands that need to be retried.  Avoid
648 			 * blowing out the stack by "spoon feeding"
649 			 * commands that completed with error back
650 			 * the operating system in case they are going
651 			 * to be retried. "ick"
652 			 */
653 			ahc_schedule_completeq(ahc);
654 			break;
655 		}
656 		TAILQ_REMOVE(&ahc->platform_data->completeq,
657 			     acmd, acmd_links.tqe);
658 		cmd = &acmd_scsi_cmd(acmd);
659 		cmd->host_scribble = NULL;
660 		if (ahc_cmd_get_transaction_status(cmd) != DID_OK
661 		 || (cmd->result & 0xFF) != SCSI_STATUS_OK)
662 			with_errors++;
663 
664 		cmd->scsi_done(cmd);
665 	}
666 	ahc_done_unlock(ahc, &done_flags);
667 	return (acmd);
668 }
669 
670 static __inline void
ahc_linux_check_device_queue(struct ahc_softc * ahc,struct ahc_linux_device * dev)671 ahc_linux_check_device_queue(struct ahc_softc *ahc,
672 			     struct ahc_linux_device *dev)
673 {
674 	if ((dev->flags & AHC_DEV_FREEZE_TIL_EMPTY) != 0
675 	 && dev->active == 0) {
676 		dev->flags &= ~AHC_DEV_FREEZE_TIL_EMPTY;
677 		dev->qfrozen--;
678 	}
679 
680 	if (TAILQ_FIRST(&dev->busyq) == NULL
681 	 || dev->openings == 0 || dev->qfrozen != 0)
682 		return;
683 
684 	ahc_linux_run_device_queue(ahc, dev);
685 }
686 
687 static __inline struct ahc_linux_device *
ahc_linux_next_device_to_run(struct ahc_softc * ahc)688 ahc_linux_next_device_to_run(struct ahc_softc *ahc)
689 {
690 
691 	if ((ahc->flags & AHC_RESOURCE_SHORTAGE) != 0
692 	 || (ahc->platform_data->qfrozen != 0
693 	  && AHC_DV_SIMQ_FROZEN(ahc) == 0))
694 		return (NULL);
695 	return (TAILQ_FIRST(&ahc->platform_data->device_runq));
696 }
697 
698 static __inline void
ahc_linux_run_device_queues(struct ahc_softc * ahc)699 ahc_linux_run_device_queues(struct ahc_softc *ahc)
700 {
701 	struct ahc_linux_device *dev;
702 
703 	while ((dev = ahc_linux_next_device_to_run(ahc)) != NULL) {
704 		TAILQ_REMOVE(&ahc->platform_data->device_runq, dev, links);
705 		dev->flags &= ~AHC_DEV_ON_RUN_LIST;
706 		ahc_linux_check_device_queue(ahc, dev);
707 	}
708 }
709 
710 static __inline void
ahc_linux_unmap_scb(struct ahc_softc * ahc,struct scb * scb)711 ahc_linux_unmap_scb(struct ahc_softc *ahc, struct scb *scb)
712 {
713 	Scsi_Cmnd *cmd;
714 
715 	cmd = scb->io_ctx;
716 	ahc_sync_sglist(ahc, scb, BUS_DMASYNC_POSTWRITE);
717 	if (cmd->use_sg != 0) {
718 		struct scatterlist *sg;
719 
720 		sg = (struct scatterlist *)cmd->request_buffer;
721 		pci_unmap_sg(ahc->dev_softc, sg, cmd->use_sg,
722 			     scsi_to_pci_dma_dir(cmd->sc_data_direction));
723 	} else if (cmd->request_bufflen != 0) {
724 		pci_unmap_single(ahc->dev_softc,
725 				 scb->platform_data->buf_busaddr,
726 				 cmd->request_bufflen,
727 				 scsi_to_pci_dma_dir(cmd->sc_data_direction));
728 	}
729 }
730 
731 static __inline int
ahc_linux_map_seg(struct ahc_softc * ahc,struct scb * scb,struct ahc_dma_seg * sg,bus_addr_t addr,bus_size_t len)732 ahc_linux_map_seg(struct ahc_softc *ahc, struct scb *scb,
733 		  struct ahc_dma_seg *sg, bus_addr_t addr, bus_size_t len)
734 {
735 	int	 consumed;
736 
737 	if ((scb->sg_count + 1) > AHC_NSEG)
738 		panic("Too few segs for dma mapping.  "
739 		      "Increase AHC_NSEG\n");
740 
741 	consumed = 1;
742 	sg->addr = ahc_htole32(addr & 0xFFFFFFFF);
743 	scb->platform_data->xfer_len += len;
744 
745 	if (sizeof(bus_addr_t) > 4
746 	 && (ahc->flags & AHC_39BIT_ADDRESSING) != 0)
747 		len |= (addr >> 8) & AHC_SG_HIGH_ADDR_MASK;
748 
749 	sg->len = ahc_htole32(len);
750 	return (consumed);
751 }
752 
753 /************************  Host template entry points *************************/
754 static int	   ahc_linux_detect(Scsi_Host_Template *);
755 static int	   ahc_linux_queue(Scsi_Cmnd *, void (*)(Scsi_Cmnd *));
756 static const char *ahc_linux_info(struct Scsi_Host *);
757 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
758 static int	   ahc_linux_slave_alloc(Scsi_Device *);
759 static int	   ahc_linux_slave_configure(Scsi_Device *);
760 static void	   ahc_linux_slave_destroy(Scsi_Device *);
761 #if defined(__i386__)
762 static int	   ahc_linux_biosparam(struct scsi_device*,
763 				       struct block_device*,
764 				       sector_t, int[]);
765 #endif
766 #else
767 static int	   ahc_linux_release(struct Scsi_Host *);
768 static void	   ahc_linux_select_queue_depth(struct Scsi_Host *host,
769 						Scsi_Device *scsi_devs);
770 #if defined(__i386__)
771 static int	   ahc_linux_biosparam(Disk *, kdev_t, int[]);
772 #endif
773 #endif
774 static int	   ahc_linux_bus_reset(Scsi_Cmnd *);
775 static int	   ahc_linux_dev_reset(Scsi_Cmnd *);
776 static int	   ahc_linux_abort(Scsi_Cmnd *);
777 
778 /*
779  * Calculate a safe value for AHC_NSEG (as expressed through ahc_linux_nseg).
780  *
781  * In pre-2.5.X...
782  * The midlayer allocates an S/G array dynamically when a command is issued
783  * using SCSI malloc.  This array, which is in an OS dependent format that
784  * must later be copied to our private S/G list, is sized to house just the
785  * number of segments needed for the current transfer.  Since the code that
786  * sizes the SCSI malloc pool does not take into consideration fragmentation
787  * of the pool, executing transactions numbering just a fraction of our
788  * concurrent transaction limit with list lengths aproaching AHC_NSEG will
789  * quickly depleat the SCSI malloc pool of usable space.  Unfortunately, the
790  * mid-layer does not properly handle this scsi malloc failures for the S/G
791  * array and the result can be a lockup of the I/O subsystem.  We try to size
792  * our S/G list so that it satisfies our drivers allocation requirements in
793  * addition to avoiding fragmentation of the SCSI malloc pool.
794  */
795 static void
ahc_linux_size_nseg(void)796 ahc_linux_size_nseg(void)
797 {
798 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
799 	u_int cur_size;
800 	u_int best_size;
801 
802 	/*
803 	 * The SCSI allocator rounds to the nearest 512 bytes
804 	 * an cannot allocate across a page boundary.  Our algorithm
805 	 * is to start at 1K of scsi malloc space per-command and
806 	 * loop through all factors of the PAGE_SIZE and pick the best.
807 	 */
808 	best_size = 0;
809 	for (cur_size = 1024; cur_size <= PAGE_SIZE; cur_size *= 2) {
810 		u_int nseg;
811 
812 		nseg = cur_size / sizeof(struct scatterlist);
813 		if (nseg < AHC_LINUX_MIN_NSEG)
814 			continue;
815 
816 		if (best_size == 0) {
817 			best_size = cur_size;
818 			ahc_linux_nseg = nseg;
819 		} else {
820 			u_int best_rem;
821 			u_int cur_rem;
822 
823 			/*
824 			 * Compare the traits of the current "best_size"
825 			 * with the current size to determine if the
826 			 * current size is a better size.
827 			 */
828 			best_rem = best_size % sizeof(struct scatterlist);
829 			cur_rem = cur_size % sizeof(struct scatterlist);
830 			if (cur_rem < best_rem) {
831 				best_size = cur_size;
832 				ahc_linux_nseg = nseg;
833 			}
834 		}
835 	}
836 #endif
837 }
838 
839 /*
840  * Try to detect an Adaptec 7XXX controller.
841  */
842 static int
ahc_linux_detect(Scsi_Host_Template * template)843 ahc_linux_detect(Scsi_Host_Template *template)
844 {
845 	struct	ahc_softc *ahc;
846 	int     found;
847 
848 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
849 	/*
850 	 * It is a bug that the upper layer takes
851 	 * this lock just prior to calling us.
852 	 */
853 	spin_unlock_irq(&io_request_lock);
854 #endif
855 
856 	/*
857 	 * Sanity checking of Linux SCSI data structures so
858 	 * that some of our hacks^H^H^H^H^Hassumptions aren't
859 	 * violated.
860 	 */
861 	if (offsetof(struct ahc_cmd_internal, end)
862 	  > offsetof(struct scsi_cmnd, host_scribble)) {
863 		printf("ahc_linux_detect: SCSI data structures changed.\n");
864 		printf("ahc_linux_detect: Unable to attach\n");
865 		return (0);
866 	}
867 	ahc_linux_size_nseg();
868 #ifdef MODULE
869 	/*
870 	 * If we've been passed any parameters, process them now.
871 	 */
872 	if (aic7xxx)
873 		aic7xxx_setup(aic7xxx);
874 	if (dummy_buffer[0] != 'P')
875 		printk(KERN_WARNING
876 "aic7xxx: Please read the file /usr/src/linux/drivers/scsi/README.aic7xxx\n"
877 "aic7xxx: to see the proper way to specify options to the aic7xxx module\n"
878 "aic7xxx: Specifically, don't use any commas when passing arguments to\n"
879 "aic7xxx: insmod or else it might trash certain memory areas.\n");
880 #endif
881 
882 #if LINUX_VERSION_CODE > KERNEL_VERSION(2,3,0)
883 	template->proc_name = "aic7xxx";
884 #else
885 	template->proc_dir = &proc_scsi_aic7xxx;
886 #endif
887 
888 	/*
889 	 * Initialize our softc list lock prior to
890 	 * probing for any adapters.
891 	 */
892 	ahc_list_lockinit();
893 
894 #ifdef CONFIG_PCI
895 	ahc_linux_pci_init();
896 #endif
897 
898 #ifdef CONFIG_EISA
899 	ahc_linux_eisa_init();
900 #endif
901 
902 	/*
903 	 * Register with the SCSI layer all
904 	 * controllers we've found.
905 	 */
906 	found = 0;
907 	TAILQ_FOREACH(ahc, &ahc_tailq, links) {
908 
909 		if (ahc_linux_register_host(ahc, template) == 0)
910 			found++;
911 	}
912 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
913 	spin_lock_irq(&io_request_lock);
914 #endif
915 	aic7xxx_detect_complete++;
916 	return (found);
917 }
918 
919 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
920 /*
921  * Free the passed in Scsi_Host memory structures prior to unloading the
922  * module.
923  */
924 int
ahc_linux_release(struct Scsi_Host * host)925 ahc_linux_release(struct Scsi_Host * host)
926 {
927 	struct ahc_softc *ahc;
928 	u_long l;
929 
930 	ahc_list_lock(&l);
931 	if (host != NULL) {
932 
933 		/*
934 		 * We should be able to just perform
935 		 * the free directly, but check our
936 		 * list for extra sanity.
937 		 */
938 		ahc = ahc_find_softc(*(struct ahc_softc **)host->hostdata);
939 		if (ahc != NULL) {
940 			u_long s;
941 
942 			ahc_lock(ahc, &s);
943 			ahc_intr_enable(ahc, FALSE);
944 			ahc_unlock(ahc, &s);
945 			ahc_free(ahc);
946 		}
947 	}
948 	ahc_list_unlock(&l);
949 	return (0);
950 }
951 #endif
952 
953 /*
954  * Return a string describing the driver.
955  */
956 static const char *
ahc_linux_info(struct Scsi_Host * host)957 ahc_linux_info(struct Scsi_Host *host)
958 {
959 	static char buffer[512];
960 	char	ahc_info[256];
961 	char   *bp;
962 	struct ahc_softc *ahc;
963 
964 	bp = &buffer[0];
965 	ahc = *(struct ahc_softc **)host->hostdata;
966 	memset(bp, 0, sizeof(buffer));
967 	strcpy(bp, "Adaptec AIC7XXX EISA/VLB/PCI SCSI HBA DRIVER, Rev ");
968 	strcat(bp, AIC7XXX_DRIVER_VERSION);
969 	strcat(bp, "\n");
970 	strcat(bp, "        <");
971 	strcat(bp, ahc->description);
972 	strcat(bp, ">\n");
973 	strcat(bp, "        ");
974 	ahc_controller_info(ahc, ahc_info);
975 	strcat(bp, ahc_info);
976 	strcat(bp, "\n");
977 
978 	return (bp);
979 }
980 
981 /*
982  * Queue an SCB to the controller.
983  */
984 static int
ahc_linux_queue(Scsi_Cmnd * cmd,void (* scsi_done)(Scsi_Cmnd *))985 ahc_linux_queue(Scsi_Cmnd * cmd, void (*scsi_done) (Scsi_Cmnd *))
986 {
987 	struct	 ahc_softc *ahc;
988 	struct	 ahc_linux_device *dev;
989 	u_long	 flags;
990 
991 	ahc = *(struct ahc_softc **)cmd->device->host->hostdata;
992 
993 	/*
994 	 * Save the callback on completion function.
995 	 */
996 	cmd->scsi_done = scsi_done;
997 
998 	ahc_midlayer_entrypoint_lock(ahc, &flags);
999 
1000 	/*
1001 	 * Close the race of a command that was in the process of
1002 	 * being queued to us just as our simq was frozen.  Let
1003 	 * DV commands through so long as we are only frozen to
1004 	 * perform DV.
1005 	 */
1006 	if (ahc->platform_data->qfrozen != 0
1007 	 && AHC_DV_CMD(cmd) == 0) {
1008 
1009 		ahc_cmd_set_transaction_status(cmd, CAM_REQUEUE_REQ);
1010 		ahc_linux_queue_cmd_complete(ahc, cmd);
1011 		ahc_schedule_completeq(ahc);
1012 		ahc_midlayer_entrypoint_unlock(ahc, &flags);
1013 		return (0);
1014 	}
1015 	dev = ahc_linux_get_device(ahc, cmd->device->channel, cmd->device->id,
1016 				   cmd->device->lun, /*alloc*/TRUE);
1017 	if (dev == NULL) {
1018 		ahc_cmd_set_transaction_status(cmd, CAM_RESRC_UNAVAIL);
1019 		ahc_linux_queue_cmd_complete(ahc, cmd);
1020 		ahc_schedule_completeq(ahc);
1021 		ahc_midlayer_entrypoint_unlock(ahc, &flags);
1022 		printf("%s: aic7xxx_linux_queue - Unable to allocate device!\n",
1023 		       ahc_name(ahc));
1024 		return (0);
1025 	}
1026 	cmd->result = CAM_REQ_INPROG << 16;
1027 	TAILQ_INSERT_TAIL(&dev->busyq, (struct ahc_cmd *)cmd, acmd_links.tqe);
1028 	if ((dev->flags & AHC_DEV_ON_RUN_LIST) == 0) {
1029 		TAILQ_INSERT_TAIL(&ahc->platform_data->device_runq, dev, links);
1030 		dev->flags |= AHC_DEV_ON_RUN_LIST;
1031 		ahc_linux_run_device_queues(ahc);
1032 	}
1033 	ahc_midlayer_entrypoint_unlock(ahc, &flags);
1034 	return (0);
1035 }
1036 
1037 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1038 static int
ahc_linux_slave_alloc(Scsi_Device * device)1039 ahc_linux_slave_alloc(Scsi_Device *device)
1040 {
1041 	struct	ahc_softc *ahc;
1042 
1043 	ahc = *((struct ahc_softc **)device->host->hostdata);
1044 	if (bootverbose)
1045 		printf("%s: Slave Alloc %d\n", ahc_name(ahc), device->id);
1046 	return (0);
1047 }
1048 
1049 static int
ahc_linux_slave_configure(Scsi_Device * device)1050 ahc_linux_slave_configure(Scsi_Device *device)
1051 {
1052 	struct	ahc_softc *ahc;
1053 	struct	ahc_linux_device *dev;
1054 	u_long	flags;
1055 
1056 	ahc = *((struct ahc_softc **)device->host->hostdata);
1057 	if (bootverbose)
1058 		printf("%s: Slave Configure %d\n", ahc_name(ahc), device->id);
1059 	ahc_midlayer_entrypoint_lock(ahc, &flags);
1060 	/*
1061 	 * Since Linux has attached to the device, configure
1062 	 * it so we don't free and allocate the device
1063 	 * structure on every command.
1064 	 */
1065 	dev = ahc_linux_get_device(ahc, device->channel,
1066 				   device->id, device->lun,
1067 				   /*alloc*/TRUE);
1068 	if (dev != NULL) {
1069 		dev->flags &= ~AHC_DEV_UNCONFIGURED;
1070 		dev->scsi_device = device;
1071 		ahc_linux_device_queue_depth(ahc, dev);
1072 	}
1073 	ahc_midlayer_entrypoint_unlock(ahc, &flags);
1074 	return (0);
1075 }
1076 
1077 static void
ahc_linux_slave_destroy(Scsi_Device * device)1078 ahc_linux_slave_destroy(Scsi_Device *device)
1079 {
1080 	struct	ahc_softc *ahc;
1081 	struct	ahc_linux_device *dev;
1082 	u_long	flags;
1083 
1084 	ahc = *((struct ahc_softc **)device->host->hostdata);
1085 	if (bootverbose)
1086 		printf("%s: Slave Destroy %d\n", ahc_name(ahc), device->id);
1087 	ahc_midlayer_entrypoint_lock(ahc, &flags);
1088 	dev = ahc_linux_get_device(ahc, device->channel,
1089 				   device->id, device->lun,
1090 					   /*alloc*/FALSE);
1091 	/*
1092 	 * Filter out "silly" deletions of real devices by only
1093 	 * deleting devices that have had slave_configure()
1094 	 * called on them.  All other devices that have not
1095 	 * been configured will automatically be deleted by
1096 	 * the refcounting process.
1097 	 */
1098 	if (dev != NULL
1099 	 && (dev->flags & AHC_DEV_SLAVE_CONFIGURED) != 0) {
1100 		dev->flags |= AHC_DEV_UNCONFIGURED;
1101 		if (TAILQ_EMPTY(&dev->busyq)
1102 		 && dev->active == 0
1103 	 	 && (dev->flags & AHC_DEV_TIMER_ACTIVE) == 0)
1104 			ahc_linux_free_device(ahc, dev);
1105 	}
1106 	ahc_midlayer_entrypoint_unlock(ahc, &flags);
1107 }
1108 #else
1109 /*
1110  * Sets the queue depth for each SCSI device hanging
1111  * off the input host adapter.
1112  */
1113 static void
ahc_linux_select_queue_depth(struct Scsi_Host * host,Scsi_Device * scsi_devs)1114 ahc_linux_select_queue_depth(struct Scsi_Host *host, Scsi_Device *scsi_devs)
1115 {
1116 	Scsi_Device *device;
1117 	Scsi_Device *ldev;
1118 	struct	ahc_softc *ahc;
1119 	u_long	flags;
1120 
1121 	ahc = *((struct ahc_softc **)host->hostdata);
1122 	ahc_lock(ahc, &flags);
1123 	for (device = scsi_devs; device != NULL; device = device->next) {
1124 
1125 		/*
1126 		 * Watch out for duplicate devices.  This works around
1127 		 * some quirks in how the SCSI scanning code does its
1128 		 * device management.
1129 		 */
1130 		for (ldev = scsi_devs; ldev != device; ldev = ldev->next) {
1131 			if (ldev->host == device->host
1132 			 && ldev->channel == device->channel
1133 			 && ldev->id == device->id
1134 			 && ldev->lun == device->lun)
1135 				break;
1136 		}
1137 		/* Skip duplicate. */
1138 		if (ldev != device)
1139 			continue;
1140 
1141 		if (device->host == host) {
1142 			struct	 ahc_linux_device *dev;
1143 
1144 			/*
1145 			 * Since Linux has attached to the device, configure
1146 			 * it so we don't free and allocate the device
1147 			 * structure on every command.
1148 			 */
1149 			dev = ahc_linux_get_device(ahc, device->channel,
1150 						   device->id, device->lun,
1151 						   /*alloc*/TRUE);
1152 			if (dev != NULL) {
1153 				dev->flags &= ~AHC_DEV_UNCONFIGURED;
1154 				dev->scsi_device = device;
1155 				ahc_linux_device_queue_depth(ahc, dev);
1156 				device->queue_depth = dev->openings
1157 						    + dev->active;
1158 				if ((dev->flags & (AHC_DEV_Q_BASIC
1159 						| AHC_DEV_Q_TAGGED)) == 0) {
1160 					/*
1161 					 * We allow the OS to queue 2 untagged
1162 					 * transactions to us at any time even
1163 					 * though we can only execute them
1164 					 * serially on the controller/device.
1165 					 * This should remove some latency.
1166 					 */
1167 					device->queue_depth = 2;
1168 				}
1169 			}
1170 		}
1171 	}
1172 	ahc_unlock(ahc, &flags);
1173 }
1174 #endif
1175 
1176 #if defined(__i386__)
1177 /*
1178  * Return the disk geometry for the given SCSI device.
1179  */
1180 static int
1181 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
ahc_linux_biosparam(struct scsi_device * sdev,struct block_device * bdev,sector_t capacity,int geom[])1182 ahc_linux_biosparam(struct scsi_device *sdev, struct block_device *bdev,
1183 		    sector_t capacity, int geom[])
1184 {
1185 	uint8_t *bh;
1186 #else
1187 ahc_linux_biosparam(Disk *disk, kdev_t dev, int geom[])
1188 {
1189 	struct	scsi_device *sdev = disk->device;
1190 	u_long	capacity = disk->capacity;
1191 	struct	buffer_head *bh;
1192 #endif
1193 	int	 heads;
1194 	int	 sectors;
1195 	int	 cylinders;
1196 	int	 ret;
1197 	int	 extended;
1198 	struct	 ahc_softc *ahc;
1199 	u_int	 channel;
1200 
1201 	ahc = *((struct ahc_softc **)sdev->host->hostdata);
1202 	channel = sdev->channel;
1203 
1204 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1205 	bh = scsi_bios_ptable(bdev);
1206 #elif LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,17)
1207 	bh = bread(MKDEV(MAJOR(dev), MINOR(dev) & ~0xf), 0, block_size(dev));
1208 #else
1209 	bh = bread(MKDEV(MAJOR(dev), MINOR(dev) & ~0xf), 0, 1024);
1210 #endif
1211 
1212 	if (bh) {
1213 		ret = scsi_partsize(bh, capacity,
1214 				    &geom[2], &geom[0], &geom[1]);
1215 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1216 		kfree(bh);
1217 #else
1218 		brelse(bh);
1219 #endif
1220 		if (ret != -1)
1221 			return (ret);
1222 	}
1223 	heads = 64;
1224 	sectors = 32;
1225 	cylinders = aic_sector_div(capacity, heads, sectors);
1226 
1227 	if (aic7xxx_extended != 0)
1228 		extended = 1;
1229 	else if (channel == 0)
1230 		extended = (ahc->flags & AHC_EXTENDED_TRANS_A) != 0;
1231 	else
1232 		extended = (ahc->flags & AHC_EXTENDED_TRANS_B) != 0;
1233 	if (extended && cylinders >= 1024) {
1234 		heads = 255;
1235 		sectors = 63;
1236 		cylinders = aic_sector_div(capacity, heads, sectors);
1237 	}
1238 	geom[0] = heads;
1239 	geom[1] = sectors;
1240 	geom[2] = cylinders;
1241 	return (0);
1242 }
1243 #endif
1244 
1245 /*
1246  * Abort the current SCSI command(s).
1247  */
1248 static int
1249 ahc_linux_abort(Scsi_Cmnd *cmd)
1250 {
1251 	int error;
1252 
1253 	error = ahc_linux_queue_recovery_cmd(cmd, SCB_ABORT);
1254 	if (error != 0)
1255 		printf("aic7xxx_abort returns 0x%x\n", error);
1256 	return (error);
1257 }
1258 
1259 /*
1260  * Attempt to send a target reset message to the device that timed out.
1261  */
1262 static int
1263 ahc_linux_dev_reset(Scsi_Cmnd *cmd)
1264 {
1265 	int error;
1266 
1267 	error = ahc_linux_queue_recovery_cmd(cmd, SCB_DEVICE_RESET);
1268 	if (error != 0)
1269 		printf("aic7xxx_dev_reset returns 0x%x\n", error);
1270 	return (error);
1271 }
1272 
1273 /*
1274  * Reset the SCSI bus.
1275  */
1276 static int
1277 ahc_linux_bus_reset(Scsi_Cmnd *cmd)
1278 {
1279 	struct ahc_softc *ahc;
1280 	u_long s;
1281 	int    found;
1282 
1283 	ahc = *(struct ahc_softc **)cmd->device->host->hostdata;
1284 	ahc_midlayer_entrypoint_lock(ahc, &s);
1285 	found = ahc_reset_channel(ahc, cmd->device->channel + 'A',
1286 				  /*initiate reset*/TRUE);
1287 	ahc_linux_run_complete_queue(ahc);
1288 	ahc_midlayer_entrypoint_unlock(ahc, &s);
1289 
1290 	if (bootverbose)
1291 		printf("%s: SCSI bus reset delivered. "
1292 		       "%d SCBs aborted.\n", ahc_name(ahc), found);
1293 
1294 	return SUCCESS;
1295 }
1296 
1297 Scsi_Host_Template aic7xxx_driver_template = {
1298 	.module			= THIS_MODULE,
1299 	.name			= "aic7xxx",
1300 	.proc_info		= ahc_linux_proc_info,
1301 	.info			= ahc_linux_info,
1302 	.queuecommand		= ahc_linux_queue,
1303 	.eh_abort_handler	= ahc_linux_abort,
1304 	.eh_device_reset_handler = ahc_linux_dev_reset,
1305 	.eh_bus_reset_handler	= ahc_linux_bus_reset,
1306 #if defined(__i386__)
1307 	.bios_param		= ahc_linux_biosparam,
1308 #endif
1309 	.can_queue		= AHC_MAX_QUEUE,
1310 	.this_id		= -1,
1311 	.cmd_per_lun		= 2,
1312 	.use_clustering		= ENABLE_CLUSTERING,
1313 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,7)
1314 	/*
1315 	 * We can only map 16MB per-SG
1316 	 * so create a sector limit of
1317 	 * "16MB" in 2K sectors.
1318 	 */
1319 	.max_sectors		= 8192,
1320 #endif
1321 #if defined CONFIG_HIGHIO || LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1322 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,4,10)
1323 /* Assume RedHat Distribution with its different HIGHIO conventions. */
1324 	.can_dma_32		= 1,
1325 	.single_sg_okay		= 1,
1326 #else
1327 	.highmem_io		= 1,
1328 #endif
1329 #endif
1330 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1331 	.slave_alloc		= ahc_linux_slave_alloc,
1332 	.slave_configure	= ahc_linux_slave_configure,
1333 	.slave_destroy		= ahc_linux_slave_destroy,
1334 #else
1335 	.detect			= ahc_linux_detect,
1336 	.release		= ahc_linux_release,
1337 	.select_queue_depths	= ahc_linux_select_queue_depth,
1338 	.use_new_eh_code	= 1,
1339 #endif
1340 };
1341 
1342 /**************************** Tasklet Handler *********************************/
1343 
1344 /*
1345  * In 2.4.X and above, this routine is called from a tasklet,
1346  * so we must re-acquire our lock prior to executing this code.
1347  * In all prior kernels, ahc_schedule_runq() calls this routine
1348  * directly and ahc_schedule_runq() is called with our lock held.
1349  */
1350 static void
1351 ahc_runq_tasklet(unsigned long data)
1352 {
1353 	struct ahc_softc* ahc;
1354 	struct ahc_linux_device *dev;
1355 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
1356 	u_long flags;
1357 #endif
1358 
1359 	ahc = (struct ahc_softc *)data;
1360 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
1361 	ahc_lock(ahc, &flags);
1362 #endif
1363 	while ((dev = ahc_linux_next_device_to_run(ahc)) != NULL) {
1364 
1365 		TAILQ_REMOVE(&ahc->platform_data->device_runq, dev, links);
1366 		dev->flags &= ~AHC_DEV_ON_RUN_LIST;
1367 		ahc_linux_check_device_queue(ahc, dev);
1368 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
1369 		/* Yeild to our interrupt handler */
1370 		ahc_unlock(ahc, &flags);
1371 		ahc_lock(ahc, &flags);
1372 #endif
1373 	}
1374 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
1375 	ahc_unlock(ahc, &flags);
1376 #endif
1377 }
1378 
1379 /******************************** Macros **************************************/
1380 #define BUILD_SCSIID(ahc, cmd)						    \
1381 	((((cmd)->device->id << TID_SHIFT) & TID)			    \
1382 	| (((cmd)->device->channel == 0) ? (ahc)->our_id : (ahc)->our_id_b) \
1383 	| (((cmd)->device->channel == 0) ? 0 : TWIN_CHNLB))
1384 
1385 /******************************** Bus DMA *************************************/
1386 int
1387 ahc_dma_tag_create(struct ahc_softc *ahc, bus_dma_tag_t parent,
1388 		   bus_size_t alignment, bus_size_t boundary,
1389 		   bus_addr_t lowaddr, bus_addr_t highaddr,
1390 		   bus_dma_filter_t *filter, void *filterarg,
1391 		   bus_size_t maxsize, int nsegments,
1392 		   bus_size_t maxsegsz, int flags, bus_dma_tag_t *ret_tag)
1393 {
1394 	bus_dma_tag_t dmat;
1395 
1396 	dmat = malloc(sizeof(*dmat), M_DEVBUF, M_NOWAIT);
1397 	if (dmat == NULL)
1398 		return (ENOMEM);
1399 
1400 	/*
1401 	 * Linux is very simplistic about DMA memory.  For now don't
1402 	 * maintain all specification information.  Once Linux supplies
1403 	 * better facilities for doing these operations, or the
1404 	 * needs of this particular driver change, we might need to do
1405 	 * more here.
1406 	 */
1407 	dmat->alignment = alignment;
1408 	dmat->boundary = boundary;
1409 	dmat->maxsize = maxsize;
1410 	*ret_tag = dmat;
1411 	return (0);
1412 }
1413 
1414 void
1415 ahc_dma_tag_destroy(struct ahc_softc *ahc, bus_dma_tag_t dmat)
1416 {
1417 	free(dmat, M_DEVBUF);
1418 }
1419 
1420 int
1421 ahc_dmamem_alloc(struct ahc_softc *ahc, bus_dma_tag_t dmat, void** vaddr,
1422 		 int flags, bus_dmamap_t *mapp)
1423 {
1424 	bus_dmamap_t map;
1425 
1426 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
1427 	map = malloc(sizeof(*map), M_DEVBUF, M_NOWAIT);
1428 	if (map == NULL)
1429 		return (ENOMEM);
1430 	/*
1431 	 * Although we can dma data above 4GB, our
1432 	 * "consistent" memory is below 4GB for
1433 	 * space efficiency reasons (only need a 4byte
1434 	 * address).  For this reason, we have to reset
1435 	 * our dma mask when doing allocations.
1436 	 */
1437 	if (ahc->dev_softc != NULL)
1438 		ahc_pci_set_dma_mask(ahc->dev_softc, 0xFFFFFFFF);
1439 	*vaddr = pci_alloc_consistent(ahc->dev_softc,
1440 				      dmat->maxsize, &map->bus_addr);
1441 	if (ahc->dev_softc != NULL)
1442 		ahc_pci_set_dma_mask(ahc->dev_softc,
1443 				     ahc->platform_data->hw_dma_mask);
1444 #else /* LINUX_VERSION_CODE < KERNEL_VERSION(2,3,0) */
1445 	/*
1446 	 * At least in 2.2.14, malloc is a slab allocator so all
1447 	 * allocations are aligned.  We assume for these kernel versions
1448 	 * that all allocations will be bellow 4Gig, physically contiguous,
1449 	 * and accessible via DMA by the controller.
1450 	 */
1451 	map = NULL; /* No additional information to store */
1452 	*vaddr = malloc(dmat->maxsize, M_DEVBUF, M_NOWAIT);
1453 #endif
1454 	if (*vaddr == NULL)
1455 		return (ENOMEM);
1456 	*mapp = map;
1457 	return(0);
1458 }
1459 
1460 void
1461 ahc_dmamem_free(struct ahc_softc *ahc, bus_dma_tag_t dmat,
1462 		void* vaddr, bus_dmamap_t map)
1463 {
1464 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
1465 	pci_free_consistent(ahc->dev_softc, dmat->maxsize,
1466 			    vaddr, map->bus_addr);
1467 #else
1468 	free(vaddr, M_DEVBUF);
1469 #endif
1470 }
1471 
1472 int
1473 ahc_dmamap_load(struct ahc_softc *ahc, bus_dma_tag_t dmat, bus_dmamap_t map,
1474 		void *buf, bus_size_t buflen, bus_dmamap_callback_t *cb,
1475 		void *cb_arg, int flags)
1476 {
1477 	/*
1478 	 * Assume for now that this will only be used during
1479 	 * initialization and not for per-transaction buffer mapping.
1480 	 */
1481 	bus_dma_segment_t stack_sg;
1482 
1483 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
1484 	stack_sg.ds_addr = map->bus_addr;
1485 #else
1486 #define VIRT_TO_BUS(a) (uint32_t)virt_to_bus((void *)(a))
1487 	stack_sg.ds_addr = VIRT_TO_BUS(buf);
1488 #endif
1489 	stack_sg.ds_len = dmat->maxsize;
1490 	cb(cb_arg, &stack_sg, /*nseg*/1, /*error*/0);
1491 	return (0);
1492 }
1493 
1494 void
1495 ahc_dmamap_destroy(struct ahc_softc *ahc, bus_dma_tag_t dmat, bus_dmamap_t map)
1496 {
1497 	/*
1498 	 * The map may is NULL in our < 2.3.X implementation.
1499 	 */
1500 	if (map != NULL)
1501 		free(map, M_DEVBUF);
1502 }
1503 
1504 int
1505 ahc_dmamap_unload(struct ahc_softc *ahc, bus_dma_tag_t dmat, bus_dmamap_t map)
1506 {
1507 	/* Nothing to do */
1508 	return (0);
1509 }
1510 
1511 /********************* Platform Dependent Functions ***************************/
1512 /*
1513  * Compare "left hand" softc with "right hand" softc, returning:
1514  * < 0 - lahc has a lower priority than rahc
1515  *   0 - Softcs are equal
1516  * > 0 - lahc has a higher priority than rahc
1517  */
1518 int
1519 ahc_softc_comp(struct ahc_softc *lahc, struct ahc_softc *rahc)
1520 {
1521 	int	value;
1522 	int	rvalue;
1523 	int	lvalue;
1524 
1525 	/*
1526 	 * Under Linux, cards are ordered as follows:
1527 	 *	1) VLB/EISA BIOS enabled devices sorted by BIOS address.
1528 	 *	2) PCI devices with BIOS enabled sorted by bus/slot/func.
1529 	 *	3) All remaining VLB/EISA devices sorted by ioport.
1530 	 *	4) All remaining PCI devices sorted by bus/slot/func.
1531 	 */
1532 	value = (lahc->flags & AHC_BIOS_ENABLED)
1533 	      - (rahc->flags & AHC_BIOS_ENABLED);
1534 	if (value != 0)
1535 		/* Controllers with BIOS enabled have a *higher* priority */
1536 		return (value);
1537 
1538 	/*
1539 	 * Same BIOS setting, now sort based on bus type.
1540 	 * EISA and VL controllers sort together.  EISA/VL
1541 	 * have higher priority than PCI.
1542 	 */
1543 	rvalue = (rahc->chip & AHC_BUS_MASK);
1544  	if (rvalue == AHC_VL)
1545 		rvalue = AHC_EISA;
1546 	lvalue = (lahc->chip & AHC_BUS_MASK);
1547  	if (lvalue == AHC_VL)
1548 		lvalue = AHC_EISA;
1549 	value = rvalue - lvalue;
1550 	if (value != 0)
1551 		return (value);
1552 
1553 	/* Still equal.  Sort by BIOS address, ioport, or bus/slot/func. */
1554 	switch (rvalue) {
1555 #ifdef CONFIG_PCI
1556 	case AHC_PCI:
1557 	{
1558 		char primary_channel;
1559 
1560 		if (aic7xxx_reverse_scan != 0)
1561 			value = ahc_get_pci_bus(lahc->dev_softc)
1562 			      - ahc_get_pci_bus(rahc->dev_softc);
1563 		else
1564 			value = ahc_get_pci_bus(rahc->dev_softc)
1565 			      - ahc_get_pci_bus(lahc->dev_softc);
1566 		if (value != 0)
1567 			break;
1568 		if (aic7xxx_reverse_scan != 0)
1569 			value = ahc_get_pci_slot(lahc->dev_softc)
1570 			      - ahc_get_pci_slot(rahc->dev_softc);
1571 		else
1572 			value = ahc_get_pci_slot(rahc->dev_softc)
1573 			      - ahc_get_pci_slot(lahc->dev_softc);
1574 		if (value != 0)
1575 			break;
1576 		/*
1577 		 * On multi-function devices, the user can choose
1578 		 * to have function 1 probed before function 0.
1579 		 * Give whichever channel is the primary channel
1580 		 * the highest priority.
1581 		 */
1582 		primary_channel = (lahc->flags & AHC_PRIMARY_CHANNEL) + 'A';
1583 		value = -1;
1584 		if (lahc->channel == primary_channel)
1585 			value = 1;
1586 		break;
1587 	}
1588 #endif
1589 #ifdef CONFIG_EISA
1590 	case AHC_EISA:
1591 		if ((rahc->flags & AHC_BIOS_ENABLED) != 0) {
1592 			value = rahc->platform_data->bios_address
1593 			      - lahc->platform_data->bios_address;
1594 		} else {
1595 			value = rahc->bsh.ioport
1596 			      - lahc->bsh.ioport;
1597 		}
1598 		break;
1599 #endif
1600 	default:
1601 		panic("ahc_softc_sort: invalid bus type");
1602 	}
1603 	return (value);
1604 }
1605 
1606 static void
1607 ahc_linux_setup_tag_info_global(char *p)
1608 {
1609 	int tags, i, j;
1610 
1611 	tags = simple_strtoul(p + 1, NULL, 0) & 0xff;
1612 	printf("Setting Global Tags= %d\n", tags);
1613 
1614 	for (i = 0; i < NUM_ELEMENTS(aic7xxx_tag_info); i++) {
1615 		for (j = 0; j < AHC_NUM_TARGETS; j++) {
1616 			aic7xxx_tag_info[i].tag_commands[j] = tags;
1617 		}
1618 	}
1619 }
1620 
1621 static void
1622 ahc_linux_setup_tag_info(u_long arg, int instance, int targ, int32_t value)
1623 {
1624 
1625 	if ((instance >= 0) && (targ >= 0)
1626 	 && (instance < NUM_ELEMENTS(aic7xxx_tag_info))
1627 	 && (targ < AHC_NUM_TARGETS)) {
1628 		aic7xxx_tag_info[instance].tag_commands[targ] = value & 0xff;
1629 		if (bootverbose)
1630 			printf("tag_info[%d:%d] = %d\n", instance, targ, value);
1631 	}
1632 }
1633 
1634 static void
1635 ahc_linux_setup_dv(u_long arg, int instance, int targ, int32_t value)
1636 {
1637 
1638 	if ((instance >= 0)
1639 	 && (instance < NUM_ELEMENTS(aic7xxx_dv_settings))) {
1640 		aic7xxx_dv_settings[instance] = value;
1641 		if (bootverbose)
1642 			printf("dv[%d] = %d\n", instance, value);
1643 	}
1644 }
1645 
1646 /*
1647  * Handle Linux boot parameters. This routine allows for assigning a value
1648  * to a parameter with a ':' between the parameter and the value.
1649  * ie. aic7xxx=stpwlev:1,extended
1650  */
1651 static int
1652 aic7xxx_setup(char *s)
1653 {
1654 	int	i, n;
1655 	char   *p;
1656 	char   *end;
1657 
1658 	static struct {
1659 		const char *name;
1660 		uint32_t *flag;
1661 	} options[] = {
1662 		{ "extended", &aic7xxx_extended },
1663 		{ "no_reset", &aic7xxx_no_reset },
1664 		{ "verbose", &aic7xxx_verbose },
1665 		{ "allow_memio", &aic7xxx_allow_memio},
1666 #ifdef AHC_DEBUG
1667 		{ "debug", &ahc_debug },
1668 #endif
1669 		{ "reverse_scan", &aic7xxx_reverse_scan },
1670 		{ "no_probe", &aic7xxx_probe_eisa_vl },
1671 		{ "probe_eisa_vl", &aic7xxx_probe_eisa_vl },
1672 		{ "periodic_otag", &aic7xxx_periodic_otag },
1673 		{ "pci_parity", &aic7xxx_pci_parity },
1674 		{ "seltime", &aic7xxx_seltime },
1675 		{ "tag_info", NULL },
1676 		{ "global_tag_depth", NULL },
1677 		{ "dv", NULL }
1678 	};
1679 
1680 	end = strchr(s, '\0');
1681 
1682 	/*
1683 	 * XXX ia64 gcc isn't smart enough to know that NUM_ELEMENTS
1684 	 * will never be 0 in this case.
1685 	 */
1686 	n = 0;
1687 
1688 	while ((p = strsep(&s, ",.")) != NULL) {
1689 		if (*p == '\0')
1690 			continue;
1691 		for (i = 0; i < NUM_ELEMENTS(options); i++) {
1692 
1693 			n = strlen(options[i].name);
1694 			if (strncmp(options[i].name, p, n) == 0)
1695 				break;
1696 		}
1697 		if (i == NUM_ELEMENTS(options))
1698 			continue;
1699 
1700 		if (strncmp(p, "global_tag_depth", n) == 0) {
1701 			ahc_linux_setup_tag_info_global(p + n);
1702 		} else if (strncmp(p, "tag_info", n) == 0) {
1703 			s = aic_parse_brace_option("tag_info", p + n, end,
1704 			    2, ahc_linux_setup_tag_info, 0);
1705 		} else if (strncmp(p, "dv", n) == 0) {
1706 			s = aic_parse_brace_option("dv", p + n, end, 1,
1707 			    ahc_linux_setup_dv, 0);
1708 		} else if (p[n] == ':') {
1709 			*(options[i].flag) = simple_strtoul(p + n + 1, NULL, 0);
1710 		} else if (strncmp(p, "verbose", n) == 0) {
1711 			*(options[i].flag) = 1;
1712 		} else {
1713 			*(options[i].flag) ^= 0xFFFFFFFF;
1714 		}
1715 	}
1716 	return 1;
1717 }
1718 
1719 #if LINUX_VERSION_CODE > KERNEL_VERSION(2,3,0)
1720 __setup("aic7xxx=", aic7xxx_setup);
1721 #endif
1722 
1723 uint32_t aic7xxx_verbose;
1724 
1725 int
1726 ahc_linux_register_host(struct ahc_softc *ahc, Scsi_Host_Template *template)
1727 {
1728 	char	 buf[80];
1729 	struct	 Scsi_Host *host;
1730 	char	*new_name;
1731 	u_long	 s;
1732 	u_int	 targ_offset;
1733 
1734 	template->name = ahc->description;
1735 	host = scsi_register(template, sizeof(struct ahc_softc *));
1736 	if (host == NULL)
1737 		return (ENOMEM);
1738 
1739 	*((struct ahc_softc **)host->hostdata) = ahc;
1740 	ahc_lock(ahc, &s);
1741 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1742 	scsi_assign_lock(host, &ahc->platform_data->spin_lock);
1743 #elif AHC_SCSI_HAS_HOST_LOCK != 0
1744 	host->lock = &ahc->platform_data->spin_lock;
1745 #endif
1746 	ahc->platform_data->host = host;
1747 	host->can_queue = AHC_MAX_QUEUE;
1748 	host->cmd_per_lun = 2;
1749 	/* XXX No way to communicate the ID for multiple channels */
1750 	host->this_id = ahc->our_id;
1751 	host->irq = ahc->platform_data->irq;
1752 	host->max_id = (ahc->features & AHC_WIDE) ? 16 : 8;
1753 	host->max_lun = AHC_NUM_LUNS;
1754 	host->max_channel = (ahc->features & AHC_TWIN) ? 1 : 0;
1755 	host->sg_tablesize = AHC_NSEG;
1756 	ahc_set_unit(ahc, ahc_linux_next_unit());
1757 	sprintf(buf, "scsi%d", host->host_no);
1758 	new_name = malloc(strlen(buf) + 1, M_DEVBUF, M_NOWAIT);
1759 	if (new_name != NULL) {
1760 		strcpy(new_name, buf);
1761 		ahc_set_name(ahc, new_name);
1762 	}
1763 	host->unique_id = ahc->unit;
1764 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,4) && \
1765     LINUX_VERSION_CODE  < KERNEL_VERSION(2,5,0)
1766 	scsi_set_pci_device(host, ahc->dev_softc);
1767 #endif
1768 	ahc_linux_initialize_scsi_bus(ahc);
1769 	ahc_unlock(ahc, &s);
1770 	ahc->platform_data->dv_pid = kernel_thread(ahc_linux_dv_thread, ahc, 0);
1771 	ahc_lock(ahc, &s);
1772 	if (ahc->platform_data->dv_pid < 0) {
1773 		printf("%s: Failed to create DV thread, error= %d\n",
1774 		       ahc_name(ahc), ahc->platform_data->dv_pid);
1775 		return (-ahc->platform_data->dv_pid);
1776 	}
1777 	/*
1778 	 * Initially allocate *all* of our linux target objects
1779 	 * so that the DV thread will scan them all in parallel
1780 	 * just after driver initialization.  Any device that
1781 	 * does not exist will have its target object destroyed
1782 	 * by the selection timeout handler.  In the case of a
1783 	 * device that appears after the initial DV scan, async
1784 	 * negotiation will occur for the first command, and DV
1785 	 * will comence should that first command be successful.
1786 	 */
1787 	for (targ_offset = 0;
1788 	     targ_offset < host->max_id * (host->max_channel + 1);
1789 	     targ_offset++) {
1790 		u_int channel;
1791 		u_int target;
1792 
1793 		channel = 0;
1794 		target = targ_offset;
1795 		if (target > 7
1796 		 && (ahc->features & AHC_TWIN) != 0) {
1797 			channel = 1;
1798 			target &= 0x7;
1799 		}
1800 		/*
1801 		 * Skip our own ID.  Some Compaq/HP storage devices
1802 		 * have enclosure management devices that respond to
1803 		 * single bit selection (i.e. selecting ourselves).
1804 		 * It is expected that either an external application
1805 		 * or a modified kernel will be used to probe this
1806 		 * ID if it is appropriate.  To accommodate these
1807 		 * installations, ahc_linux_alloc_target() will allocate
1808 		 * for our ID if asked to do so.
1809 		 */
1810 		if ((channel == 0 && target == ahc->our_id)
1811 		 || (channel == 1 && target == ahc->our_id_b))
1812 			continue;
1813 
1814 		ahc_linux_alloc_target(ahc, channel, target);
1815 	}
1816 	ahc_intr_enable(ahc, TRUE);
1817 	ahc_linux_start_dv(ahc);
1818 	ahc_unlock(ahc, &s);
1819 
1820 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1821 	scsi_add_host(host, (ahc->dev_softc ? &ahc->dev_softc->dev : NULL));
1822 #endif
1823 	return (0);
1824 }
1825 
1826 uint64_t
1827 ahc_linux_get_memsize(void)
1828 {
1829 	struct sysinfo si;
1830 
1831 	si_meminfo(&si);
1832 	return ((uint64_t)si.totalram << PAGE_SHIFT);
1833 }
1834 
1835 /*
1836  * Find the smallest available unit number to use
1837  * for a new device.  We don't just use a static
1838  * count to handle the "repeated hot-(un)plug"
1839  * scenario.
1840  */
1841 static int
1842 ahc_linux_next_unit(void)
1843 {
1844 	struct ahc_softc *ahc;
1845 	int unit;
1846 
1847 	unit = 0;
1848 retry:
1849 	TAILQ_FOREACH(ahc, &ahc_tailq, links) {
1850 		if (ahc->unit == unit) {
1851 			unit++;
1852 			goto retry;
1853 		}
1854 	}
1855 	return (unit);
1856 }
1857 
1858 /*
1859  * Place the SCSI bus into a known state by either resetting it,
1860  * or forcing transfer negotiations on the next command to any
1861  * target.
1862  */
1863 void
1864 ahc_linux_initialize_scsi_bus(struct ahc_softc *ahc)
1865 {
1866 	int i;
1867 	int numtarg;
1868 
1869 	i = 0;
1870 	numtarg = 0;
1871 
1872 	if (aic7xxx_no_reset != 0)
1873 		ahc->flags &= ~(AHC_RESET_BUS_A|AHC_RESET_BUS_B);
1874 
1875 	if ((ahc->flags & AHC_RESET_BUS_A) != 0)
1876 		ahc_reset_channel(ahc, 'A', /*initiate_reset*/TRUE);
1877 	else
1878 		numtarg = (ahc->features & AHC_WIDE) ? 16 : 8;
1879 
1880 	if ((ahc->features & AHC_TWIN) != 0) {
1881 
1882 		if ((ahc->flags & AHC_RESET_BUS_B) != 0) {
1883 			ahc_reset_channel(ahc, 'B', /*initiate_reset*/TRUE);
1884 		} else {
1885 			if (numtarg == 0)
1886 				i = 8;
1887 			numtarg += 8;
1888 		}
1889 	}
1890 
1891 	/*
1892 	 * Force negotiation to async for all targets that
1893 	 * will not see an initial bus reset.
1894 	 */
1895 	for (; i < numtarg; i++) {
1896 		struct ahc_devinfo devinfo;
1897 		struct ahc_initiator_tinfo *tinfo;
1898 		struct ahc_tmode_tstate *tstate;
1899 		u_int our_id;
1900 		u_int target_id;
1901 		char channel;
1902 
1903 		channel = 'A';
1904 		our_id = ahc->our_id;
1905 		target_id = i;
1906 		if (i > 7 && (ahc->features & AHC_TWIN) != 0) {
1907 			channel = 'B';
1908 			our_id = ahc->our_id_b;
1909 			target_id = i % 8;
1910 		}
1911 		tinfo = ahc_fetch_transinfo(ahc, channel, our_id,
1912 					    target_id, &tstate);
1913 		ahc_compile_devinfo(&devinfo, our_id, target_id,
1914 				    CAM_LUN_WILDCARD, channel, ROLE_INITIATOR);
1915 		ahc_update_neg_request(ahc, &devinfo, tstate,
1916 				       tinfo, AHC_NEG_ALWAYS);
1917 	}
1918 	/* Give the bus some time to recover */
1919 	if ((ahc->flags & (AHC_RESET_BUS_A|AHC_RESET_BUS_B)) != 0) {
1920 		ahc_linux_freeze_simq(ahc);
1921 		init_timer(&ahc->platform_data->reset_timer);
1922 		ahc->platform_data->reset_timer.data = (u_long)ahc;
1923 		ahc->platform_data->reset_timer.expires =
1924 		    jiffies + (AIC7XXX_RESET_DELAY * HZ)/1000;
1925 		ahc->platform_data->reset_timer.function =
1926 		    ahc_linux_release_simq;
1927 		add_timer(&ahc->platform_data->reset_timer);
1928 	}
1929 }
1930 
1931 int
1932 ahc_platform_alloc(struct ahc_softc *ahc, void *platform_arg)
1933 {
1934 
1935 	ahc->platform_data =
1936 	    malloc(sizeof(struct ahc_platform_data), M_DEVBUF, M_NOWAIT);
1937 	if (ahc->platform_data == NULL)
1938 		return (ENOMEM);
1939 	memset(ahc->platform_data, 0, sizeof(struct ahc_platform_data));
1940 	TAILQ_INIT(&ahc->platform_data->completeq);
1941 	TAILQ_INIT(&ahc->platform_data->device_runq);
1942 	ahc->platform_data->irq = AHC_LINUX_NOIRQ;
1943 	ahc->platform_data->hw_dma_mask = 0xFFFFFFFF;
1944 	ahc_lockinit(ahc);
1945 	ahc_done_lockinit(ahc);
1946 	init_timer(&ahc->platform_data->completeq_timer);
1947 	ahc->platform_data->completeq_timer.data = (u_long)ahc;
1948 	ahc->platform_data->completeq_timer.function =
1949 	    (ahc_linux_callback_t *)ahc_linux_thread_run_complete_queue;
1950 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
1951 	init_MUTEX_LOCKED(&ahc->platform_data->eh_sem);
1952 	init_MUTEX_LOCKED(&ahc->platform_data->dv_sem);
1953 	init_MUTEX_LOCKED(&ahc->platform_data->dv_cmd_sem);
1954 #else
1955 	ahc->platform_data->eh_sem = MUTEX_LOCKED;
1956 	ahc->platform_data->dv_sem = MUTEX_LOCKED;
1957 	ahc->platform_data->dv_cmd_sem = MUTEX_LOCKED;
1958 #endif
1959 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
1960 	tasklet_init(&ahc->platform_data->runq_tasklet, ahc_runq_tasklet,
1961 		     (unsigned long)ahc);
1962 #endif
1963 	ahc->seltime = (aic7xxx_seltime & 0x3) << 4;
1964 	ahc->seltime_b = (aic7xxx_seltime & 0x3) << 4;
1965 	if (aic7xxx_pci_parity == 0)
1966 		ahc->flags |= AHC_DISABLE_PCI_PERR;
1967 
1968 	return (0);
1969 }
1970 
1971 void
1972 ahc_platform_free(struct ahc_softc *ahc)
1973 {
1974 	struct ahc_linux_target *targ;
1975 	struct ahc_linux_device *dev;
1976 	int i, j;
1977 
1978 	if (ahc->platform_data != NULL) {
1979 		del_timer_sync(&ahc->platform_data->completeq_timer);
1980 		ahc_linux_kill_dv_thread(ahc);
1981 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
1982 		tasklet_kill(&ahc->platform_data->runq_tasklet);
1983 #endif
1984 		if (ahc->platform_data->host != NULL) {
1985 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
1986 			scsi_remove_host(ahc->platform_data->host);
1987 #endif
1988 			scsi_unregister(ahc->platform_data->host);
1989 		}
1990 
1991 		/* destroy all of the device and target objects */
1992 		for (i = 0; i < AHC_NUM_TARGETS; i++) {
1993 			targ = ahc->platform_data->targets[i];
1994 			if (targ != NULL) {
1995 				/* Keep target around through the loop. */
1996 				targ->refcount++;
1997 				for (j = 0; j < AHC_NUM_LUNS; j++) {
1998 
1999 					if (targ->devices[j] == NULL)
2000 						continue;
2001 					dev = targ->devices[j];
2002 					ahc_linux_free_device(ahc, dev);
2003 				}
2004 				/*
2005 				 * Forcibly free the target now that
2006 				 * all devices are gone.
2007 				 */
2008 				ahc_linux_free_target(ahc, targ);
2009  			}
2010  		}
2011 
2012 		if (ahc->platform_data->irq != AHC_LINUX_NOIRQ)
2013 			free_irq(ahc->platform_data->irq, ahc);
2014 		if (ahc->tag == BUS_SPACE_PIO
2015 		 && ahc->bsh.ioport != 0)
2016 			release_region(ahc->bsh.ioport, 256);
2017 		if (ahc->tag == BUS_SPACE_MEMIO
2018 		 && ahc->bsh.maddr != NULL) {
2019 			u_long base_addr;
2020 
2021 			base_addr = (u_long)ahc->bsh.maddr;
2022 			base_addr &= PAGE_MASK;
2023 			iounmap((void *)base_addr);
2024 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0)
2025 			release_mem_region(ahc->platform_data->mem_busaddr,
2026 					   0x1000);
2027 #endif
2028 		}
2029 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,4,0) && \
2030     LINUX_VERSION_CODE  < KERNEL_VERSION(2,5,0)
2031 		/*
2032 		 * In 2.4 we detach from the scsi midlayer before the PCI
2033 		 * layer invokes our remove callback.  No per-instance
2034 		 * detach is provided, so we must reach inside the PCI
2035 		 * subsystem's internals and detach our driver manually.
2036 		 */
2037 		if (ahc->dev_softc != NULL)
2038 			ahc->dev_softc->driver = NULL;
2039 #endif
2040 		free(ahc->platform_data, M_DEVBUF);
2041 	}
2042 }
2043 
2044 void
2045 ahc_platform_freeze_devq(struct ahc_softc *ahc, struct scb *scb)
2046 {
2047 	ahc_platform_abort_scbs(ahc, SCB_GET_TARGET(ahc, scb),
2048 				SCB_GET_CHANNEL(ahc, scb),
2049 				SCB_GET_LUN(scb), SCB_LIST_NULL,
2050 				ROLE_UNKNOWN, CAM_REQUEUE_REQ);
2051 }
2052 
2053 void
2054 ahc_platform_set_tags(struct ahc_softc *ahc, struct ahc_devinfo *devinfo,
2055 		      ahc_queue_alg alg)
2056 {
2057 	struct ahc_linux_device *dev;
2058 	int was_queuing;
2059 	int now_queuing;
2060 
2061 	dev = ahc_linux_get_device(ahc, devinfo->channel - 'A',
2062 				   devinfo->target,
2063 				   devinfo->lun, /*alloc*/FALSE);
2064 	if (dev == NULL)
2065 		return;
2066 	was_queuing = dev->flags & (AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED);
2067 	switch (alg) {
2068 	default:
2069 	case AHC_QUEUE_NONE:
2070 		now_queuing = 0;
2071 		break;
2072 	case AHC_QUEUE_BASIC:
2073 		now_queuing = AHC_DEV_Q_BASIC;
2074 		break;
2075 	case AHC_QUEUE_TAGGED:
2076 		now_queuing = AHC_DEV_Q_TAGGED;
2077 		break;
2078 	}
2079 	if ((dev->flags & AHC_DEV_FREEZE_TIL_EMPTY) == 0
2080 	 && (was_queuing != now_queuing)
2081 	 && (dev->active != 0)) {
2082 		dev->flags |= AHC_DEV_FREEZE_TIL_EMPTY;
2083 		dev->qfrozen++;
2084 	}
2085 
2086 	dev->flags &= ~(AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED|AHC_DEV_PERIODIC_OTAG);
2087 	if (now_queuing) {
2088 		u_int usertags;
2089 
2090 		usertags = ahc_linux_user_tagdepth(ahc, devinfo);
2091 		if (!was_queuing) {
2092 			/*
2093 			 * Start out agressively and allow our
2094 			 * dynamic queue depth algorithm to take
2095 			 * care of the rest.
2096 			 */
2097 			dev->maxtags = usertags;
2098 			dev->openings = dev->maxtags - dev->active;
2099 		}
2100 		if (dev->maxtags == 0) {
2101 			/*
2102 			 * Queueing is disabled by the user.
2103 			 */
2104 			dev->openings = 1;
2105 		} else if (alg == AHC_QUEUE_TAGGED) {
2106 			dev->flags |= AHC_DEV_Q_TAGGED;
2107 			if (aic7xxx_periodic_otag != 0)
2108 				dev->flags |= AHC_DEV_PERIODIC_OTAG;
2109 		} else
2110 			dev->flags |= AHC_DEV_Q_BASIC;
2111 	} else {
2112 		/* We can only have one opening. */
2113 		dev->maxtags = 0;
2114 		dev->openings =  1 - dev->active;
2115 	}
2116 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
2117 	if (dev->scsi_device != NULL) {
2118 		switch ((dev->flags & (AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED))) {
2119 		case AHC_DEV_Q_BASIC:
2120 			scsi_adjust_queue_depth(dev->scsi_device,
2121 						MSG_SIMPLE_TASK,
2122 						dev->openings + dev->active);
2123 			break;
2124 		case AHC_DEV_Q_TAGGED:
2125 			scsi_adjust_queue_depth(dev->scsi_device,
2126 						MSG_ORDERED_TASK,
2127 						dev->openings + dev->active);
2128 			break;
2129 		default:
2130 			/*
2131 			 * We allow the OS to queue 2 untagged transactions to
2132 			 * us at any time even though we can only execute them
2133 			 * serially on the controller/device.  This should
2134 			 * remove some latency.
2135 			 */
2136 			scsi_adjust_queue_depth(dev->scsi_device,
2137 						/*NON-TAGGED*/0,
2138 						/*queue depth*/2);
2139 			break;
2140 		}
2141 	}
2142 #endif
2143 }
2144 
2145 int
2146 ahc_platform_abort_scbs(struct ahc_softc *ahc, int target, char channel,
2147 			int lun, u_int tag, role_t role, uint32_t status)
2148 {
2149 	int chan;
2150 	int maxchan;
2151 	int targ;
2152 	int maxtarg;
2153 	int clun;
2154 	int maxlun;
2155 	int count;
2156 
2157 	if (tag != SCB_LIST_NULL)
2158 		return (0);
2159 
2160 	chan = 0;
2161 	if (channel != ALL_CHANNELS) {
2162 		chan = channel - 'A';
2163 		maxchan = chan + 1;
2164 	} else {
2165 		maxchan = (ahc->features & AHC_TWIN) ? 2 : 1;
2166 	}
2167 	targ = 0;
2168 	if (target != CAM_TARGET_WILDCARD) {
2169 		targ = target;
2170 		maxtarg = targ + 1;
2171 	} else {
2172 		maxtarg = (ahc->features & AHC_WIDE) ? 16 : 8;
2173 	}
2174 	clun = 0;
2175 	if (lun != CAM_LUN_WILDCARD) {
2176 		clun = lun;
2177 		maxlun = clun + 1;
2178 	} else {
2179 		maxlun = AHC_NUM_LUNS;
2180 	}
2181 
2182 	count = 0;
2183 	for (; chan < maxchan; chan++) {
2184 
2185 		for (; targ < maxtarg; targ++) {
2186 
2187 			for (; clun < maxlun; clun++) {
2188 				struct ahc_linux_device *dev;
2189 				struct ahc_busyq *busyq;
2190 				struct ahc_cmd *acmd;
2191 
2192 				dev = ahc_linux_get_device(ahc, chan,
2193 							   targ, clun,
2194 							   /*alloc*/FALSE);
2195 				if (dev == NULL)
2196 					continue;
2197 
2198 				busyq = &dev->busyq;
2199 				while ((acmd = TAILQ_FIRST(busyq)) != NULL) {
2200 					Scsi_Cmnd *cmd;
2201 
2202 					cmd = &acmd_scsi_cmd(acmd);
2203 					TAILQ_REMOVE(busyq, acmd,
2204 						     acmd_links.tqe);
2205 					count++;
2206 					cmd->result = status << 16;
2207 					ahc_linux_queue_cmd_complete(ahc, cmd);
2208 				}
2209 			}
2210 		}
2211 	}
2212 
2213 	return (count);
2214 }
2215 
2216 static void
2217 ahc_linux_thread_run_complete_queue(struct ahc_softc *ahc)
2218 {
2219 	u_long flags;
2220 
2221 	ahc_lock(ahc, &flags);
2222 	del_timer(&ahc->platform_data->completeq_timer);
2223 	ahc->platform_data->flags &= ~AHC_RUN_CMPLT_Q_TIMER;
2224 	ahc_linux_run_complete_queue(ahc);
2225 	ahc_unlock(ahc, &flags);
2226 }
2227 
2228 static void
2229 ahc_linux_start_dv(struct ahc_softc *ahc)
2230 {
2231 
2232 	/*
2233 	 * Freeze the simq and signal ahc_linux_queue to not let any
2234 	 * more commands through.
2235 	 */
2236 	if ((ahc->platform_data->flags & AHC_DV_ACTIVE) == 0) {
2237 #ifdef AHC_DEBUG
2238 		if (ahc_debug & AHC_SHOW_DV)
2239 			printf("%s: Waking DV thread\n", ahc_name(ahc));
2240 #endif
2241 
2242 		ahc->platform_data->flags |= AHC_DV_ACTIVE;
2243 		ahc_linux_freeze_simq(ahc);
2244 
2245 		/* Wake up the DV kthread */
2246 		up(&ahc->platform_data->dv_sem);
2247 	}
2248 }
2249 
2250 static void
2251 ahc_linux_kill_dv_thread(struct ahc_softc *ahc)
2252 {
2253 	u_long s;
2254 
2255 	ahc_lock(ahc, &s);
2256 	if (ahc->platform_data->dv_pid != 0) {
2257 		ahc->platform_data->flags |= AHC_DV_SHUTDOWN;
2258 		ahc_unlock(ahc, &s);
2259 		up(&ahc->platform_data->dv_sem);
2260 
2261 		/*
2262 		 * Use the eh_sem as an indicator that the
2263 		 * dv thread is exiting.  Note that the dv
2264 		 * thread must still return after performing
2265 		 * the up on our semaphore before it has
2266 		 * completely exited this module.  Unfortunately,
2267 		 * there seems to be no easy way to wait for the
2268 		 * exit of a thread for which you are not the
2269 		 * parent (dv threads are parented by init).
2270 		 * Cross your fingers...
2271 		 */
2272 		down(&ahc->platform_data->eh_sem);
2273 
2274 		/*
2275 		 * Mark the dv thread as already dead.  This
2276 		 * avoids attempting to kill it a second time.
2277 		 * This is necessary because we must kill the
2278 		 * DV thread before calling ahc_free() in the
2279 		 * module shutdown case to avoid bogus locking
2280 		 * in the SCSI mid-layer, but we ahc_free() is
2281 		 * called without killing the DV thread in the
2282 		 * instance detach case, so ahc_platform_free()
2283 		 * calls us again to verify that the DV thread
2284 		 * is dead.
2285 		 */
2286 		ahc->platform_data->dv_pid = 0;
2287 	} else {
2288 		ahc_unlock(ahc, &s);
2289 	}
2290 }
2291 
2292 static int
2293 ahc_linux_dv_thread(void *data)
2294 {
2295 	struct	ahc_softc *ahc;
2296 	int	target;
2297 	u_long	s;
2298 
2299 	ahc = (struct ahc_softc *)data;
2300 
2301 #ifdef AHC_DEBUG
2302 	if (ahc_debug & AHC_SHOW_DV)
2303 		printf("Launching DV Thread\n");
2304 #endif
2305 
2306 	/*
2307 	 * Complete thread creation.
2308 	 */
2309 	lock_kernel();
2310 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
2311 	/*
2312 	 * Don't care about any signals.
2313 	 */
2314 	siginitsetinv(&current->blocked, 0);
2315 
2316 	daemonize();
2317 	sprintf(current->comm, "ahc_dv_%d", ahc->unit);
2318 #else
2319 	daemonize("ahc_dv_%d", ahc->unit);
2320 #endif
2321 	unlock_kernel();
2322 
2323 	while (1) {
2324 		/*
2325 		 * Use down_interruptible() rather than down() to
2326 		 * avoid inclusion in the load average.
2327 		 */
2328 		down_interruptible(&ahc->platform_data->dv_sem);
2329 
2330 		/* Check to see if we've been signaled to exit */
2331 		ahc_lock(ahc, &s);
2332 		if ((ahc->platform_data->flags & AHC_DV_SHUTDOWN) != 0) {
2333 			ahc_unlock(ahc, &s);
2334 			break;
2335 		}
2336 		ahc_unlock(ahc, &s);
2337 
2338 #ifdef AHC_DEBUG
2339 		if (ahc_debug & AHC_SHOW_DV)
2340 			printf("%s: Beginning Domain Validation\n",
2341 			       ahc_name(ahc));
2342 #endif
2343 
2344 		/*
2345 		 * Wait for any pending commands to drain before proceeding.
2346 		 */
2347 		ahc_lock(ahc, &s);
2348 		while (LIST_FIRST(&ahc->pending_scbs) != NULL) {
2349 			ahc->platform_data->flags |= AHC_DV_WAIT_SIMQ_EMPTY;
2350 			ahc_unlock(ahc, &s);
2351 			down_interruptible(&ahc->platform_data->dv_sem);
2352 			ahc_lock(ahc, &s);
2353 		}
2354 
2355 		/*
2356 		 * Wait for the SIMQ to be released so that DV is the
2357 		 * only reason the queue is frozen.
2358 		 */
2359 		while (AHC_DV_SIMQ_FROZEN(ahc) == 0) {
2360 			ahc->platform_data->flags |= AHC_DV_WAIT_SIMQ_RELEASE;
2361 			ahc_unlock(ahc, &s);
2362 			down_interruptible(&ahc->platform_data->dv_sem);
2363 			ahc_lock(ahc, &s);
2364 		}
2365 		ahc_unlock(ahc, &s);
2366 
2367 		for (target = 0; target < AHC_NUM_TARGETS; target++)
2368 			ahc_linux_dv_target(ahc, target);
2369 
2370 		ahc_lock(ahc, &s);
2371 		ahc->platform_data->flags &= ~AHC_DV_ACTIVE;
2372 		ahc_unlock(ahc, &s);
2373 
2374 		/*
2375 		 * Release the SIMQ so that normal commands are
2376 		 * allowed to continue on the bus.
2377 		 */
2378 		ahc_linux_release_simq((u_long)ahc);
2379 	}
2380 	up(&ahc->platform_data->eh_sem);
2381 	return (0);
2382 }
2383 
2384 #define AHC_LINUX_DV_INQ_SHORT_LEN	36
2385 #define AHC_LINUX_DV_INQ_LEN		256
2386 #define AHC_LINUX_DV_TIMEOUT		(HZ / 4)
2387 
2388 #define AHC_SET_DV_STATE(ahc, targ, newstate) \
2389 	ahc_set_dv_state(ahc, targ, newstate, __LINE__)
2390 
2391 static __inline void
2392 ahc_set_dv_state(struct ahc_softc *ahc, struct ahc_linux_target *targ,
2393 		 ahc_dv_state newstate, u_int line)
2394 {
2395 	ahc_dv_state oldstate;
2396 
2397 	oldstate = targ->dv_state;
2398 #ifdef AHC_DEBUG
2399 	if (ahc_debug & AHC_SHOW_DV)
2400 		printf("%s:%d: Going from state %d to state %d\n",
2401 		       ahc_name(ahc), line, oldstate, newstate);
2402 #endif
2403 
2404 	if (oldstate == newstate)
2405 		targ->dv_state_retry++;
2406 	else
2407 		targ->dv_state_retry = 0;
2408 	targ->dv_state = newstate;
2409 }
2410 
2411 static void
2412 ahc_linux_dv_target(struct ahc_softc *ahc, u_int target_offset)
2413 {
2414 	struct	 ahc_devinfo devinfo;
2415 	struct	 ahc_linux_target *targ;
2416 	struct	 scsi_cmnd *cmd;
2417 	struct	 scsi_device *scsi_dev;
2418 	struct	 scsi_sense_data *sense;
2419 	uint8_t *buffer;
2420 	u_long	 s;
2421 	u_int	 timeout;
2422 	int	 echo_size;
2423 
2424 	sense = NULL;
2425 	buffer = NULL;
2426 	echo_size = 0;
2427 	ahc_lock(ahc, &s);
2428 	targ = ahc->platform_data->targets[target_offset];
2429 	if (targ == NULL || (targ->flags & AHC_DV_REQUIRED) == 0) {
2430 		ahc_unlock(ahc, &s);
2431 		return;
2432 	}
2433 	ahc_compile_devinfo(&devinfo,
2434 			    targ->channel == 0 ? ahc->our_id : ahc->our_id_b,
2435 			    targ->target, /*lun*/0, targ->channel + 'A',
2436 			    ROLE_INITIATOR);
2437 #ifdef AHC_DEBUG
2438 	if (ahc_debug & AHC_SHOW_DV) {
2439 		ahc_print_devinfo(ahc, &devinfo);
2440 		printf("Performing DV\n");
2441 	}
2442 #endif
2443 
2444 	ahc_unlock(ahc, &s);
2445 
2446 	cmd = malloc(sizeof(struct scsi_cmnd), M_DEVBUF, M_WAITOK);
2447 	scsi_dev = malloc(sizeof(struct scsi_device), M_DEVBUF, M_WAITOK);
2448 	scsi_dev->host = ahc->platform_data->host;
2449 	scsi_dev->id = devinfo.target;
2450 	scsi_dev->lun = devinfo.lun;
2451 	scsi_dev->channel = devinfo.channel - 'A';
2452 	ahc->platform_data->dv_scsi_dev = scsi_dev;
2453 
2454 	AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_INQ_SHORT_ASYNC);
2455 
2456 	while (targ->dv_state != AHC_DV_STATE_EXIT) {
2457 		timeout = AHC_LINUX_DV_TIMEOUT;
2458 		switch (targ->dv_state) {
2459 		case AHC_DV_STATE_INQ_SHORT_ASYNC:
2460 		case AHC_DV_STATE_INQ_ASYNC:
2461 		case AHC_DV_STATE_INQ_ASYNC_VERIFY:
2462 			/*
2463 			 * Set things to async narrow to reduce the
2464 			 * chance that the INQ will fail.
2465 			 */
2466 			ahc_lock(ahc, &s);
2467 			ahc_set_syncrate(ahc, &devinfo, NULL, 0, 0, 0,
2468 					 AHC_TRANS_GOAL, /*paused*/FALSE);
2469 			ahc_set_width(ahc, &devinfo, MSG_EXT_WDTR_BUS_8_BIT,
2470 				      AHC_TRANS_GOAL, /*paused*/FALSE);
2471 			ahc_unlock(ahc, &s);
2472 			timeout = 10 * HZ;
2473 			targ->flags &= ~AHC_INQ_VALID;
2474 			/* FALLTHROUGH */
2475 		case AHC_DV_STATE_INQ_VERIFY:
2476 		{
2477 			u_int inq_len;
2478 
2479 			if (targ->dv_state == AHC_DV_STATE_INQ_SHORT_ASYNC)
2480 				inq_len = AHC_LINUX_DV_INQ_SHORT_LEN;
2481 			else
2482 				inq_len = targ->inq_data->additional_length + 5;
2483 			ahc_linux_dv_inq(ahc, cmd, &devinfo, targ, inq_len);
2484 			break;
2485 		}
2486 		case AHC_DV_STATE_TUR:
2487 		case AHC_DV_STATE_BUSY:
2488 			timeout = 5 * HZ;
2489 			ahc_linux_dv_tur(ahc, cmd, &devinfo);
2490 			break;
2491 		case AHC_DV_STATE_REBD:
2492 			ahc_linux_dv_rebd(ahc, cmd, &devinfo, targ);
2493 			break;
2494 		case AHC_DV_STATE_WEB:
2495 			ahc_linux_dv_web(ahc, cmd, &devinfo, targ);
2496 			break;
2497 
2498 		case AHC_DV_STATE_REB:
2499 			ahc_linux_dv_reb(ahc, cmd, &devinfo, targ);
2500 			break;
2501 
2502 		case AHC_DV_STATE_SU:
2503 			ahc_linux_dv_su(ahc, cmd, &devinfo, targ);
2504 			timeout = 50 * HZ;
2505 			break;
2506 
2507 		default:
2508 			ahc_print_devinfo(ahc, &devinfo);
2509 			printf("Unknown DV state %d\n", targ->dv_state);
2510 			goto out;
2511 		}
2512 
2513 		/* Queue the command and wait for it to complete */
2514 		/* Abuse eh_timeout in the scsi_cmnd struct for our purposes */
2515 		init_timer(&cmd->eh_timeout);
2516 #ifdef AHC_DEBUG
2517 		if ((ahc_debug & AHC_SHOW_MESSAGES) != 0)
2518 			/*
2519 			 * All of the printfs during negotiation
2520 			 * really slow down the negotiation.
2521 			 * Add a bit of time just to be safe.
2522 			 */
2523 			timeout += HZ;
2524 #endif
2525 		scsi_add_timer(cmd, timeout, ahc_linux_dv_timeout);
2526 		/*
2527 		 * In 2.5.X, it is assumed that all calls from the
2528 		 * "midlayer" (which we are emulating) will have the
2529 		 * ahc host lock held.  For other kernels, the
2530 		 * io_request_lock must be held.
2531 		 */
2532 #if AHC_SCSI_HAS_HOST_LOCK != 0
2533 		ahc_lock(ahc, &s);
2534 #else
2535 		spin_lock_irqsave(&io_request_lock, s);
2536 #endif
2537 		ahc_linux_queue(cmd, ahc_linux_dv_complete);
2538 #if AHC_SCSI_HAS_HOST_LOCK != 0
2539 		ahc_unlock(ahc, &s);
2540 #else
2541 		spin_unlock_irqrestore(&io_request_lock, s);
2542 #endif
2543 		down_interruptible(&ahc->platform_data->dv_cmd_sem);
2544 		/*
2545 		 * Wait for the SIMQ to be released so that DV is the
2546 		 * only reason the queue is frozen.
2547 		 */
2548 		ahc_lock(ahc, &s);
2549 		while (AHC_DV_SIMQ_FROZEN(ahc) == 0) {
2550 			ahc->platform_data->flags |= AHC_DV_WAIT_SIMQ_RELEASE;
2551 			ahc_unlock(ahc, &s);
2552 			down_interruptible(&ahc->platform_data->dv_sem);
2553 			ahc_lock(ahc, &s);
2554 		}
2555 		ahc_unlock(ahc, &s);
2556 
2557 		ahc_linux_dv_transition(ahc, cmd, &devinfo, targ);
2558 	}
2559 
2560 out:
2561 	if ((targ->flags & AHC_INQ_VALID) != 0
2562 	 && ahc_linux_get_device(ahc, devinfo.channel - 'A',
2563 				 devinfo.target, devinfo.lun,
2564 				 /*alloc*/FALSE) == NULL) {
2565 		/*
2566 		 * The DV state machine failed to configure this device.
2567 		 * This is normal if DV is disabled.  Since we have inquiry
2568 		 * data, filter it and use the "optimistic" negotiation
2569 		 * parameters found in the inquiry string.
2570 		 */
2571 		ahc_linux_filter_inquiry(ahc, &devinfo);
2572 		if ((targ->flags & (AHC_BASIC_DV|AHC_ENHANCED_DV)) != 0) {
2573 			ahc_print_devinfo(ahc, &devinfo);
2574 			printf("DV failed to configure device.  "
2575 			       "Please file a bug report against "
2576 			       "this driver.\n");
2577 		}
2578 	}
2579 
2580 	if (cmd != NULL)
2581 		free(cmd, M_DEVBUF);
2582 
2583 	if (ahc->platform_data->dv_scsi_dev != NULL) {
2584 		free(ahc->platform_data->dv_scsi_dev, M_DEVBUF);
2585 		ahc->platform_data->dv_scsi_dev = NULL;
2586 	}
2587 
2588 	ahc_lock(ahc, &s);
2589 	if (targ->dv_buffer != NULL) {
2590 		free(targ->dv_buffer, M_DEVBUF);
2591 		targ->dv_buffer = NULL;
2592 	}
2593 	if (targ->dv_buffer1 != NULL) {
2594 		free(targ->dv_buffer1, M_DEVBUF);
2595 		targ->dv_buffer1 = NULL;
2596 	}
2597 	targ->flags &= ~AHC_DV_REQUIRED;
2598 	if (targ->refcount == 0)
2599 		ahc_linux_free_target(ahc, targ);
2600 	ahc_unlock(ahc, &s);
2601 }
2602 
2603 static void
2604 ahc_linux_dv_transition(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
2605 			struct ahc_devinfo *devinfo,
2606 			struct ahc_linux_target *targ)
2607 {
2608 	u_int32_t status;
2609 
2610 	status = aic_error_action(cmd, targ->inq_data,
2611 				  ahc_cmd_get_transaction_status(cmd),
2612 				  ahc_cmd_get_scsi_status(cmd));
2613 
2614 #ifdef AHC_DEBUG
2615 	if (ahc_debug & AHC_SHOW_DV) {
2616 		ahc_print_devinfo(ahc, devinfo);
2617 		printf("Entering ahc_linux_dv_transition, state= %d, "
2618 		       "status= 0x%x, cmd->result= 0x%x\n", targ->dv_state,
2619 		       status, cmd->result);
2620 	}
2621 #endif
2622 
2623 	switch (targ->dv_state) {
2624 	case AHC_DV_STATE_INQ_SHORT_ASYNC:
2625 	case AHC_DV_STATE_INQ_ASYNC:
2626 		switch (status & SS_MASK) {
2627 		case SS_NOP:
2628 		{
2629 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state+1);
2630 			break;
2631 		}
2632 		case SS_INQ_REFRESH:
2633 			AHC_SET_DV_STATE(ahc, targ,
2634 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2635 			break;
2636 		case SS_TUR:
2637 		case SS_RETRY:
2638 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2639 			if (ahc_cmd_get_transaction_status(cmd)
2640 			 == CAM_REQUEUE_REQ)
2641 				targ->dv_state_retry--;
2642 			if ((status & SS_ERRMASK) == EBUSY)
2643 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_BUSY);
2644 			if (targ->dv_state_retry < 10)
2645 				break;
2646 			/* FALLTHROUGH */
2647 		default:
2648 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2649 #ifdef AHC_DEBUG
2650 			if (ahc_debug & AHC_SHOW_DV) {
2651 				ahc_print_devinfo(ahc, devinfo);
2652 				printf("Failed DV inquiry, skipping\n");
2653 			}
2654 #endif
2655 			break;
2656 		}
2657 		break;
2658 	case AHC_DV_STATE_INQ_ASYNC_VERIFY:
2659 		switch (status & SS_MASK) {
2660 		case SS_NOP:
2661 		{
2662 			u_int xportflags;
2663 			u_int spi3data;
2664 
2665 			if (memcmp(targ->inq_data, targ->dv_buffer,
2666 				   AHC_LINUX_DV_INQ_LEN) != 0) {
2667 				/*
2668 				 * Inquiry data must have changed.
2669 				 * Try from the top again.
2670 				 */
2671 				AHC_SET_DV_STATE(ahc, targ,
2672 						 AHC_DV_STATE_INQ_SHORT_ASYNC);
2673 				break;
2674 			}
2675 
2676 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state+1);
2677 			targ->flags |= AHC_INQ_VALID;
2678 			if (ahc_linux_user_dv_setting(ahc) == 0)
2679 				break;
2680 
2681 			xportflags = targ->inq_data->flags;
2682 			if ((xportflags & (SID_Sync|SID_WBus16)) == 0)
2683 				break;
2684 
2685 			spi3data = targ->inq_data->spi3data;
2686 			switch (spi3data & SID_SPI_CLOCK_DT_ST) {
2687 			default:
2688 			case SID_SPI_CLOCK_ST:
2689 				/* Assume only basic DV is supported. */
2690 				targ->flags |= AHC_BASIC_DV;
2691 				break;
2692 			case SID_SPI_CLOCK_DT:
2693 			case SID_SPI_CLOCK_DT_ST:
2694 				targ->flags |= AHC_ENHANCED_DV;
2695 				break;
2696 			}
2697 			break;
2698 		}
2699 		case SS_INQ_REFRESH:
2700 			AHC_SET_DV_STATE(ahc, targ,
2701 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2702 			break;
2703 		case SS_TUR:
2704 		case SS_RETRY:
2705 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2706 			if (ahc_cmd_get_transaction_status(cmd)
2707 			 == CAM_REQUEUE_REQ)
2708 				targ->dv_state_retry--;
2709 
2710 			if ((status & SS_ERRMASK) == EBUSY)
2711 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_BUSY);
2712 			if (targ->dv_state_retry < 10)
2713 				break;
2714 			/* FALLTHROUGH */
2715 		default:
2716 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2717 #ifdef AHC_DEBUG
2718 			if (ahc_debug & AHC_SHOW_DV) {
2719 				ahc_print_devinfo(ahc, devinfo);
2720 				printf("Failed DV inquiry, skipping\n");
2721 			}
2722 #endif
2723 			break;
2724 		}
2725 		break;
2726 	case AHC_DV_STATE_INQ_VERIFY:
2727 		switch (status & SS_MASK) {
2728 		case SS_NOP:
2729 		{
2730 
2731 			if (memcmp(targ->inq_data, targ->dv_buffer,
2732 				   AHC_LINUX_DV_INQ_LEN) == 0) {
2733 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2734 				break;
2735 			}
2736 #ifdef AHC_DEBUG
2737 			if (ahc_debug & AHC_SHOW_DV) {
2738 				int i;
2739 
2740 				ahc_print_devinfo(ahc, devinfo);
2741 				printf("Inquiry buffer mismatch:");
2742 				for (i = 0; i < AHC_LINUX_DV_INQ_LEN; i++) {
2743 					if ((i & 0xF) == 0)
2744 						printf("\n        ");
2745 					printf("0x%x:0x0%x ",
2746 					       ((uint8_t *)targ->inq_data)[i],
2747 					       targ->dv_buffer[i]);
2748 				}
2749 				printf("\n");
2750 			}
2751 #endif
2752 
2753 			if (ahc_linux_fallback(ahc, devinfo) != 0) {
2754 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2755 				break;
2756 			}
2757 			/*
2758 			 * Do not count "falling back"
2759 			 * against our retries.
2760 			 */
2761 			targ->dv_state_retry = 0;
2762 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2763 			break;
2764 		}
2765 		case SS_INQ_REFRESH:
2766 			AHC_SET_DV_STATE(ahc, targ,
2767 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2768 			break;
2769 		case SS_TUR:
2770 		case SS_RETRY:
2771 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2772 			if (ahc_cmd_get_transaction_status(cmd)
2773 			 == CAM_REQUEUE_REQ) {
2774 				targ->dv_state_retry--;
2775 			} else if ((status & SSQ_FALLBACK) != 0) {
2776 				if (ahc_linux_fallback(ahc, devinfo) != 0) {
2777 					AHC_SET_DV_STATE(ahc, targ,
2778 							 AHC_DV_STATE_EXIT);
2779 					break;
2780 				}
2781 				/*
2782 				 * Do not count "falling back"
2783 				 * against our retries.
2784 				 */
2785 				targ->dv_state_retry = 0;
2786 			} else if ((status & SS_ERRMASK) == EBUSY)
2787 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_BUSY);
2788 			if (targ->dv_state_retry < 10)
2789 				break;
2790 			/* FALLTHROUGH */
2791 		default:
2792 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2793 #ifdef AHC_DEBUG
2794 			if (ahc_debug & AHC_SHOW_DV) {
2795 				ahc_print_devinfo(ahc, devinfo);
2796 				printf("Failed DV inquiry, skipping\n");
2797 			}
2798 #endif
2799 			break;
2800 		}
2801 		break;
2802 
2803 	case AHC_DV_STATE_TUR:
2804 		switch (status & SS_MASK) {
2805 		case SS_NOP:
2806 			if ((targ->flags & AHC_BASIC_DV) != 0) {
2807 				ahc_linux_filter_inquiry(ahc, devinfo);
2808 				AHC_SET_DV_STATE(ahc, targ,
2809 						 AHC_DV_STATE_INQ_VERIFY);
2810 			} else if ((targ->flags & AHC_ENHANCED_DV) != 0) {
2811 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_REBD);
2812 			} else {
2813 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2814 			}
2815 			break;
2816 		case SS_RETRY:
2817 		case SS_TUR:
2818 			if ((status & SS_ERRMASK) == EBUSY) {
2819 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_BUSY);
2820 				break;
2821 			}
2822 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2823 			if (ahc_cmd_get_transaction_status(cmd)
2824 			 == CAM_REQUEUE_REQ) {
2825 				targ->dv_state_retry--;
2826 			} else if ((status & SSQ_FALLBACK) != 0) {
2827 				if (ahc_linux_fallback(ahc, devinfo) != 0) {
2828 					AHC_SET_DV_STATE(ahc, targ,
2829 							 AHC_DV_STATE_EXIT);
2830 					break;
2831 				}
2832 				/*
2833 				 * Do not count "falling back"
2834 				 * against our retries.
2835 				 */
2836 				targ->dv_state_retry = 0;
2837 			}
2838 			if (targ->dv_state_retry >= 10) {
2839 #ifdef AHC_DEBUG
2840 				if (ahc_debug & AHC_SHOW_DV) {
2841 					ahc_print_devinfo(ahc, devinfo);
2842 					printf("DV TUR reties exhausted\n");
2843 				}
2844 #endif
2845 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2846 				break;
2847 			}
2848 			if (status & SSQ_DELAY)
2849 				scsi_sleep(1 * HZ);
2850 
2851 			break;
2852 		case SS_START:
2853 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_SU);
2854 			break;
2855 		case SS_INQ_REFRESH:
2856 			AHC_SET_DV_STATE(ahc, targ,
2857 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2858 			break;
2859 		default:
2860 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2861 			break;
2862 		}
2863 		break;
2864 
2865 	case AHC_DV_STATE_REBD:
2866 		switch (status & SS_MASK) {
2867 		case SS_NOP:
2868 		{
2869 			uint32_t echo_size;
2870 
2871 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_WEB);
2872 			echo_size = scsi_3btoul(&targ->dv_buffer[1]);
2873 			echo_size &= 0x1FFF;
2874 #ifdef AHC_DEBUG
2875 			if (ahc_debug & AHC_SHOW_DV) {
2876 				ahc_print_devinfo(ahc, devinfo);
2877 				printf("Echo buffer size= %d\n", echo_size);
2878 			}
2879 #endif
2880 			if (echo_size == 0) {
2881 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2882 				break;
2883 			}
2884 
2885 			/* Generate the buffer pattern */
2886 			targ->dv_echo_size = echo_size;
2887 			ahc_linux_generate_dv_pattern(targ);
2888 			/*
2889 			 * Setup initial negotiation values.
2890 			 */
2891 			ahc_linux_filter_inquiry(ahc, devinfo);
2892 			break;
2893 		}
2894 		case SS_INQ_REFRESH:
2895 			AHC_SET_DV_STATE(ahc, targ,
2896 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2897 			break;
2898 		case SS_RETRY:
2899 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2900 			if (ahc_cmd_get_transaction_status(cmd)
2901 			 == CAM_REQUEUE_REQ)
2902 				targ->dv_state_retry--;
2903 			if (targ->dv_state_retry <= 10)
2904 				break;
2905 #ifdef AHC_DEBUG
2906 			if (ahc_debug & AHC_SHOW_DV) {
2907 				ahc_print_devinfo(ahc, devinfo);
2908 				printf("DV REBD reties exhausted\n");
2909 			}
2910 #endif
2911 			/* FALLTHROUGH */
2912 		case SS_FATAL:
2913 		default:
2914 			/*
2915 			 * Setup initial negotiation values
2916 			 * and try level 1 DV.
2917 			 */
2918 			ahc_linux_filter_inquiry(ahc, devinfo);
2919 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_INQ_VERIFY);
2920 			targ->dv_echo_size = 0;
2921 			break;
2922 		}
2923 		break;
2924 
2925 	case AHC_DV_STATE_WEB:
2926 		switch (status & SS_MASK) {
2927 		case SS_NOP:
2928 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_REB);
2929 			break;
2930 		case SS_INQ_REFRESH:
2931 			AHC_SET_DV_STATE(ahc, targ,
2932 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2933 			break;
2934 		case SS_RETRY:
2935 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2936 			if (ahc_cmd_get_transaction_status(cmd)
2937 			 == CAM_REQUEUE_REQ) {
2938 				targ->dv_state_retry--;
2939 			} else if ((status & SSQ_FALLBACK) != 0) {
2940 				if (ahc_linux_fallback(ahc, devinfo) != 0) {
2941 					AHC_SET_DV_STATE(ahc, targ,
2942 							 AHC_DV_STATE_EXIT);
2943 					break;
2944 				}
2945 				/*
2946 				 * Do not count "falling back"
2947 				 * against our retries.
2948 				 */
2949 				targ->dv_state_retry = 0;
2950 			}
2951 			if (targ->dv_state_retry <= 10)
2952 				break;
2953 			/* FALLTHROUGH */
2954 #ifdef AHC_DEBUG
2955 			if (ahc_debug & AHC_SHOW_DV) {
2956 				ahc_print_devinfo(ahc, devinfo);
2957 				printf("DV WEB reties exhausted\n");
2958 			}
2959 #endif
2960 		default:
2961 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2962 			break;
2963 		}
2964 		break;
2965 
2966 	case AHC_DV_STATE_REB:
2967 		switch (status & SS_MASK) {
2968 		case SS_NOP:
2969 			if (memcmp(targ->dv_buffer, targ->dv_buffer1,
2970 				   targ->dv_echo_size) != 0) {
2971 				if (ahc_linux_fallback(ahc, devinfo) != 0)
2972 					AHC_SET_DV_STATE(ahc, targ,
2973 							 AHC_DV_STATE_EXIT);
2974 				else
2975 					AHC_SET_DV_STATE(ahc, targ,
2976 							 AHC_DV_STATE_WEB);
2977 				break;
2978 			}
2979 
2980 			if (targ->dv_buffer != NULL) {
2981 				free(targ->dv_buffer, M_DEVBUF);
2982 				targ->dv_buffer = NULL;
2983 			}
2984 			if (targ->dv_buffer1 != NULL) {
2985 				free(targ->dv_buffer1, M_DEVBUF);
2986 				targ->dv_buffer1 = NULL;
2987 			}
2988 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
2989 			break;
2990 		case SS_INQ_REFRESH:
2991 			AHC_SET_DV_STATE(ahc, targ,
2992 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
2993 			break;
2994 		case SS_RETRY:
2995 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
2996 			if (ahc_cmd_get_transaction_status(cmd)
2997 			 == CAM_REQUEUE_REQ) {
2998 				targ->dv_state_retry--;
2999 			} else if ((status & SSQ_FALLBACK) != 0) {
3000 				if (ahc_linux_fallback(ahc, devinfo) != 0) {
3001 					AHC_SET_DV_STATE(ahc, targ,
3002 							 AHC_DV_STATE_EXIT);
3003 					break;
3004 				}
3005 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_WEB);
3006 			}
3007 			if (targ->dv_state_retry <= 10) {
3008 				if ((status & (SSQ_DELAY_RANDOM|SSQ_DELAY))!= 0)
3009 					scsi_sleep(ahc->our_id*HZ/10);
3010 				break;
3011 			}
3012 #ifdef AHC_DEBUG
3013 			if (ahc_debug & AHC_SHOW_DV) {
3014 				ahc_print_devinfo(ahc, devinfo);
3015 				printf("DV REB reties exhausted\n");
3016 			}
3017 #endif
3018 			/* FALLTHROUGH */
3019 		default:
3020 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
3021 			break;
3022 		}
3023 		break;
3024 
3025 	case AHC_DV_STATE_SU:
3026 		switch (status & SS_MASK) {
3027 		case SS_NOP:
3028 		case SS_INQ_REFRESH:
3029 			AHC_SET_DV_STATE(ahc, targ,
3030 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
3031 			break;
3032 		default:
3033 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
3034 			break;
3035 		}
3036 		break;
3037 
3038 	case AHC_DV_STATE_BUSY:
3039 		switch (status & SS_MASK) {
3040 		case SS_NOP:
3041 		case SS_INQ_REFRESH:
3042 			AHC_SET_DV_STATE(ahc, targ,
3043 					 AHC_DV_STATE_INQ_SHORT_ASYNC);
3044 			break;
3045 		case SS_TUR:
3046 		case SS_RETRY:
3047 			AHC_SET_DV_STATE(ahc, targ, targ->dv_state);
3048 			if (ahc_cmd_get_transaction_status(cmd)
3049 			 == CAM_REQUEUE_REQ) {
3050 				targ->dv_state_retry--;
3051 			} else if (targ->dv_state_retry < 60) {
3052 				if ((status & SSQ_DELAY) != 0)
3053 					scsi_sleep(1 * HZ);
3054 			} else {
3055 #ifdef AHC_DEBUG
3056 				if (ahc_debug & AHC_SHOW_DV) {
3057 					ahc_print_devinfo(ahc, devinfo);
3058 					printf("DV BUSY reties exhausted\n");
3059 				}
3060 #endif
3061 				AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
3062 			}
3063 			break;
3064 		default:
3065 			AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
3066 			break;
3067 		}
3068 		break;
3069 
3070 	default:
3071 		printf("%s: Invalid DV completion state %d\n", ahc_name(ahc),
3072 		       targ->dv_state);
3073 		AHC_SET_DV_STATE(ahc, targ, AHC_DV_STATE_EXIT);
3074 		break;
3075 	}
3076 }
3077 
3078 static void
3079 ahc_linux_dv_fill_cmd(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3080 		      struct ahc_devinfo *devinfo)
3081 {
3082 	memset(cmd, 0, sizeof(struct scsi_cmnd));
3083 	cmd->device = ahc->platform_data->dv_scsi_dev;
3084 	cmd->scsi_done = ahc_linux_dv_complete;
3085 }
3086 
3087 /*
3088  * Synthesize an inquiry command.  On the return trip, it'll be
3089  * sniffed and the device transfer settings set for us.
3090  */
3091 static void
3092 ahc_linux_dv_inq(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3093 		 struct ahc_devinfo *devinfo, struct ahc_linux_target *targ,
3094 		 u_int request_length)
3095 {
3096 
3097 #ifdef AHC_DEBUG
3098 	if (ahc_debug & AHC_SHOW_DV) {
3099 		ahc_print_devinfo(ahc, devinfo);
3100 		printf("Sending INQ\n");
3101 	}
3102 #endif
3103 	if (targ->inq_data == NULL)
3104 		targ->inq_data = malloc(AHC_LINUX_DV_INQ_LEN,
3105 					M_DEVBUF, M_WAITOK);
3106 	if (targ->dv_state > AHC_DV_STATE_INQ_ASYNC) {
3107 		if (targ->dv_buffer != NULL)
3108 			free(targ->dv_buffer, M_DEVBUF);
3109 		targ->dv_buffer = malloc(AHC_LINUX_DV_INQ_LEN,
3110 					 M_DEVBUF, M_WAITOK);
3111 	}
3112 
3113 	ahc_linux_dv_fill_cmd(ahc, cmd, devinfo);
3114 	cmd->sc_data_direction = SCSI_DATA_READ;
3115 	cmd->cmd_len = 6;
3116 	cmd->cmnd[0] = INQUIRY;
3117 	cmd->cmnd[4] = request_length;
3118 	cmd->request_bufflen = request_length;
3119 	if (targ->dv_state > AHC_DV_STATE_INQ_ASYNC)
3120 		cmd->request_buffer = targ->dv_buffer;
3121 	else
3122 		cmd->request_buffer = targ->inq_data;
3123 	memset(cmd->request_buffer, 0, AHC_LINUX_DV_INQ_LEN);
3124 }
3125 
3126 static void
3127 ahc_linux_dv_tur(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3128 		 struct ahc_devinfo *devinfo)
3129 {
3130 
3131 #ifdef AHC_DEBUG
3132 	if (ahc_debug & AHC_SHOW_DV) {
3133 		ahc_print_devinfo(ahc, devinfo);
3134 		printf("Sending TUR\n");
3135 	}
3136 #endif
3137 	/* Do a TUR to clear out any non-fatal transitional state */
3138 	ahc_linux_dv_fill_cmd(ahc, cmd, devinfo);
3139 	cmd->sc_data_direction = SCSI_DATA_NONE;
3140 	cmd->cmd_len = 6;
3141 	cmd->cmnd[0] = TEST_UNIT_READY;
3142 }
3143 
3144 #define AHC_REBD_LEN 4
3145 
3146 static void
3147 ahc_linux_dv_rebd(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3148 		 struct ahc_devinfo *devinfo, struct ahc_linux_target *targ)
3149 {
3150 
3151 #ifdef AHC_DEBUG
3152 	if (ahc_debug & AHC_SHOW_DV) {
3153 		ahc_print_devinfo(ahc, devinfo);
3154 		printf("Sending REBD\n");
3155 	}
3156 #endif
3157 	if (targ->dv_buffer != NULL)
3158 		free(targ->dv_buffer, M_DEVBUF);
3159 	targ->dv_buffer = malloc(AHC_REBD_LEN, M_DEVBUF, M_WAITOK);
3160 	ahc_linux_dv_fill_cmd(ahc, cmd, devinfo);
3161 	cmd->sc_data_direction = SCSI_DATA_READ;
3162 	cmd->cmd_len = 10;
3163 	cmd->cmnd[0] = READ_BUFFER;
3164 	cmd->cmnd[1] = 0x0b;
3165 	scsi_ulto3b(AHC_REBD_LEN, &cmd->cmnd[6]);
3166 	cmd->request_bufflen = AHC_REBD_LEN;
3167 	cmd->underflow = cmd->request_bufflen;
3168 	cmd->request_buffer = targ->dv_buffer;
3169 }
3170 
3171 static void
3172 ahc_linux_dv_web(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3173 		 struct ahc_devinfo *devinfo, struct ahc_linux_target *targ)
3174 {
3175 
3176 #ifdef AHC_DEBUG
3177 	if (ahc_debug & AHC_SHOW_DV) {
3178 		ahc_print_devinfo(ahc, devinfo);
3179 		printf("Sending WEB\n");
3180 	}
3181 #endif
3182 	ahc_linux_dv_fill_cmd(ahc, cmd, devinfo);
3183 	cmd->sc_data_direction = SCSI_DATA_WRITE;
3184 	cmd->cmd_len = 10;
3185 	cmd->cmnd[0] = WRITE_BUFFER;
3186 	cmd->cmnd[1] = 0x0a;
3187 	scsi_ulto3b(targ->dv_echo_size, &cmd->cmnd[6]);
3188 	cmd->request_bufflen = targ->dv_echo_size;
3189 	cmd->underflow = cmd->request_bufflen;
3190 	cmd->request_buffer = targ->dv_buffer;
3191 }
3192 
3193 static void
3194 ahc_linux_dv_reb(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3195 		 struct ahc_devinfo *devinfo, struct ahc_linux_target *targ)
3196 {
3197 
3198 #ifdef AHC_DEBUG
3199 	if (ahc_debug & AHC_SHOW_DV) {
3200 		ahc_print_devinfo(ahc, devinfo);
3201 		printf("Sending REB\n");
3202 	}
3203 #endif
3204 	ahc_linux_dv_fill_cmd(ahc, cmd, devinfo);
3205 	cmd->sc_data_direction = SCSI_DATA_READ;
3206 	cmd->cmd_len = 10;
3207 	cmd->cmnd[0] = READ_BUFFER;
3208 	cmd->cmnd[1] = 0x0a;
3209 	scsi_ulto3b(targ->dv_echo_size, &cmd->cmnd[6]);
3210 	cmd->request_bufflen = targ->dv_echo_size;
3211 	cmd->underflow = cmd->request_bufflen;
3212 	cmd->request_buffer = targ->dv_buffer1;
3213 }
3214 
3215 static void
3216 ahc_linux_dv_su(struct ahc_softc *ahc, struct scsi_cmnd *cmd,
3217 		struct ahc_devinfo *devinfo,
3218 		struct ahc_linux_target *targ)
3219 {
3220 	u_int le;
3221 
3222 	le = SID_IS_REMOVABLE(targ->inq_data) ? SSS_LOEJ : 0;
3223 
3224 #ifdef AHC_DEBUG
3225 	if (ahc_debug & AHC_SHOW_DV) {
3226 		ahc_print_devinfo(ahc, devinfo);
3227 		printf("Sending SU\n");
3228 	}
3229 #endif
3230 	ahc_linux_dv_fill_cmd(ahc, cmd, devinfo);
3231 	cmd->sc_data_direction = SCSI_DATA_NONE;
3232 	cmd->cmd_len = 6;
3233 	cmd->cmnd[0] = START_STOP_UNIT;
3234 	cmd->cmnd[4] = le | SSS_START;
3235 }
3236 
3237 static int
3238 ahc_linux_fallback(struct ahc_softc *ahc, struct ahc_devinfo *devinfo)
3239 {
3240 	struct	ahc_linux_target *targ;
3241 	struct	ahc_initiator_tinfo *tinfo;
3242 	struct	ahc_transinfo *goal;
3243 	struct	ahc_tmode_tstate *tstate;
3244 	struct	ahc_syncrate *syncrate;
3245 	u_long	s;
3246 	u_int	width;
3247 	u_int	period;
3248 	u_int	offset;
3249 	u_int	ppr_options;
3250 	u_int	cur_speed;
3251 	u_int	wide_speed;
3252 	u_int	narrow_speed;
3253 	u_int	fallback_speed;
3254 
3255 #ifdef AHC_DEBUG
3256 	if (ahc_debug & AHC_SHOW_DV) {
3257 		ahc_print_devinfo(ahc, devinfo);
3258 		printf("Trying to fallback\n");
3259 	}
3260 #endif
3261 	ahc_lock(ahc, &s);
3262 	targ = ahc->platform_data->targets[devinfo->target_offset];
3263 	tinfo = ahc_fetch_transinfo(ahc, devinfo->channel,
3264 				    devinfo->our_scsiid,
3265 				    devinfo->target, &tstate);
3266 	goal = &tinfo->goal;
3267 	width = goal->width;
3268 	period = goal->period;
3269 	offset = goal->offset;
3270 	ppr_options = goal->ppr_options;
3271 	if (offset == 0)
3272 		period = AHC_ASYNC_XFER_PERIOD;
3273 	if (targ->dv_next_narrow_period == 0)
3274 		targ->dv_next_narrow_period = MAX(period, AHC_SYNCRATE_ULTRA2);
3275 	if (targ->dv_next_wide_period == 0)
3276 		targ->dv_next_wide_period = period;
3277 	if (targ->dv_max_width == 0)
3278 		targ->dv_max_width = width;
3279 	if (targ->dv_max_ppr_options == 0)
3280 		targ->dv_max_ppr_options = ppr_options;
3281 	if (targ->dv_last_ppr_options == 0)
3282 		targ->dv_last_ppr_options = ppr_options;
3283 
3284 	cur_speed = aic_calc_speed(width, period, offset, AHC_SYNCRATE_MIN);
3285 	wide_speed = aic_calc_speed(MSG_EXT_WDTR_BUS_16_BIT,
3286 					  targ->dv_next_wide_period,
3287 					  MAX_OFFSET,
3288 					  AHC_SYNCRATE_MIN);
3289 	narrow_speed = aic_calc_speed(MSG_EXT_WDTR_BUS_8_BIT,
3290 					    targ->dv_next_narrow_period,
3291 					    MAX_OFFSET,
3292 					    AHC_SYNCRATE_MIN);
3293 	fallback_speed = aic_calc_speed(width, period+1, offset,
3294 					AHC_SYNCRATE_MIN);
3295 #ifdef AHC_DEBUG
3296 	if (ahc_debug & AHC_SHOW_DV) {
3297 		printf("cur_speed= %d, wide_speed= %d, narrow_speed= %d, "
3298 		       "fallback_speed= %d\n", cur_speed, wide_speed,
3299 		       narrow_speed, fallback_speed);
3300 	}
3301 #endif
3302 
3303 	if (cur_speed > 160000) {
3304 		/*
3305 		 * Paced/DT/IU_REQ only transfer speeds.  All we
3306 		 * can do is fallback in terms of syncrate.
3307 		 */
3308 		period++;
3309 	} else if (cur_speed > 80000) {
3310 		if ((ppr_options & MSG_EXT_PPR_IU_REQ) != 0) {
3311 			/*
3312 			 * Try without IU_REQ as it may be confusing
3313 			 * an expander.
3314 			 */
3315 			ppr_options &= ~MSG_EXT_PPR_IU_REQ;
3316 		} else {
3317 			/*
3318 			 * Paced/DT only transfer speeds.  All we
3319 			 * can do is fallback in terms of syncrate.
3320 			 */
3321 			period++;
3322 			ppr_options = targ->dv_max_ppr_options;
3323 		}
3324 	} else if (cur_speed > 3300) {
3325 
3326 		/*
3327 		 * In this range we the following
3328 		 * options ordered from highest to
3329 		 * lowest desireability:
3330 		 *
3331 		 * o Wide/DT
3332 		 * o Wide/non-DT
3333 		 * o Narrow at a potentally higher sync rate.
3334 		 *
3335 		 * All modes are tested with and without IU_REQ
3336 		 * set since using IUs may confuse an expander.
3337 		 */
3338 		if ((ppr_options & MSG_EXT_PPR_IU_REQ) != 0) {
3339 
3340 			ppr_options &= ~MSG_EXT_PPR_IU_REQ;
3341 		} else if ((ppr_options & MSG_EXT_PPR_DT_REQ) != 0) {
3342 			/*
3343 			 * Try going non-DT.
3344 			 */
3345 			ppr_options = targ->dv_max_ppr_options;
3346 			ppr_options &= ~MSG_EXT_PPR_DT_REQ;
3347 		} else if (targ->dv_last_ppr_options != 0) {
3348 			/*
3349 			 * Try without QAS or any other PPR options.
3350 			 * We may need a non-PPR message to work with
3351 			 * an expander.  We look at the "last PPR options"
3352 			 * so we will perform this fallback even if the
3353 			 * target responded to our PPR negotiation with
3354 			 * no option bits set.
3355 			 */
3356 			ppr_options = 0;
3357 		} else if (width == MSG_EXT_WDTR_BUS_16_BIT) {
3358 			/*
3359 			 * If the next narrow speed is greater than
3360 			 * the next wide speed, fallback to narrow.
3361 			 * Otherwise fallback to the next DT/Wide setting.
3362 			 * The narrow async speed will always be smaller
3363 			 * than the wide async speed, so handle this case
3364 			 * specifically.
3365 			 */
3366 			ppr_options = targ->dv_max_ppr_options;
3367 			if (narrow_speed > fallback_speed
3368 			 || period >= AHC_ASYNC_XFER_PERIOD) {
3369 				targ->dv_next_wide_period = period+1;
3370 				width = MSG_EXT_WDTR_BUS_8_BIT;
3371 				period = targ->dv_next_narrow_period;
3372 			} else {
3373 				period++;
3374 			}
3375 		} else if ((ahc->features & AHC_WIDE) != 0
3376 			&& targ->dv_max_width != 0
3377 			&& wide_speed >= fallback_speed
3378 			&& (targ->dv_next_wide_period <= AHC_ASYNC_XFER_PERIOD
3379 			 || period >= AHC_ASYNC_XFER_PERIOD)) {
3380 
3381 			/*
3382 			 * We are narrow.  Try falling back
3383 			 * to the next wide speed with
3384 			 * all supported ppr options set.
3385 			 */
3386 			targ->dv_next_narrow_period = period+1;
3387 			width = MSG_EXT_WDTR_BUS_16_BIT;
3388 			period = targ->dv_next_wide_period;
3389 			ppr_options = targ->dv_max_ppr_options;
3390 		} else {
3391 			/* Only narrow fallback is allowed. */
3392 			period++;
3393 			ppr_options = targ->dv_max_ppr_options;
3394 		}
3395 	} else {
3396 		ahc_unlock(ahc, &s);
3397 		return (-1);
3398 	}
3399 	offset = MAX_OFFSET;
3400 	syncrate = ahc_find_syncrate(ahc, &period, &ppr_options,
3401 				     AHC_SYNCRATE_DT);
3402 	ahc_set_width(ahc, devinfo, width, AHC_TRANS_GOAL, FALSE);
3403 	if (period == 0) {
3404 		period = 0;
3405 		offset = 0;
3406 		ppr_options = 0;
3407 		if (width == MSG_EXT_WDTR_BUS_8_BIT)
3408 			targ->dv_next_narrow_period = AHC_ASYNC_XFER_PERIOD;
3409 		else
3410 			targ->dv_next_wide_period = AHC_ASYNC_XFER_PERIOD;
3411 	}
3412 	ahc_set_syncrate(ahc, devinfo, syncrate, period, offset,
3413 			 ppr_options, AHC_TRANS_GOAL, FALSE);
3414 	targ->dv_last_ppr_options = ppr_options;
3415 	ahc_unlock(ahc, &s);
3416 	return (0);
3417 }
3418 
3419 static void
3420 ahc_linux_dv_timeout(struct scsi_cmnd *cmd)
3421 {
3422 	struct	ahc_softc *ahc;
3423 	struct	scb *scb;
3424 	u_long	flags;
3425 
3426 	ahc = *((struct ahc_softc **)cmd->device->host->hostdata);
3427 	ahc_lock(ahc, &flags);
3428 
3429 #ifdef AHC_DEBUG
3430 	if (ahc_debug & AHC_SHOW_DV) {
3431 		printf("%s: Timeout while doing DV command %x.\n",
3432 		       ahc_name(ahc), cmd->cmnd[0]);
3433 		ahc_dump_card_state(ahc);
3434 	}
3435 #endif
3436 
3437 	/*
3438 	 * Guard against "done race".  No action is
3439 	 * required if we just completed.
3440 	 */
3441 	if ((scb = (struct scb *)cmd->host_scribble) == NULL) {
3442 		ahc_unlock(ahc, &flags);
3443 		return;
3444 	}
3445 
3446 	/*
3447 	 * Command has not completed.  Mark this
3448 	 * SCB as having failing status prior to
3449 	 * resetting the bus, so we get the correct
3450 	 * error code.
3451 	 */
3452 	if ((scb->flags & SCB_SENSE) != 0)
3453 		ahc_set_transaction_status(scb, CAM_AUTOSENSE_FAIL);
3454 	else
3455 		ahc_set_transaction_status(scb, CAM_CMD_TIMEOUT);
3456 	ahc_reset_channel(ahc, cmd->device->channel + 'A', /*initiate*/TRUE);
3457 
3458 	/*
3459 	 * Add a minimal bus settle delay for devices that are slow to
3460 	 * respond after bus resets.
3461 	 */
3462 	ahc_linux_freeze_simq(ahc);
3463 	init_timer(&ahc->platform_data->reset_timer);
3464 	ahc->platform_data->reset_timer.data = (u_long)ahc;
3465 	ahc->platform_data->reset_timer.expires = jiffies + HZ / 2;
3466 	ahc->platform_data->reset_timer.function =
3467 	    (ahc_linux_callback_t *)ahc_linux_release_simq;
3468 	add_timer(&ahc->platform_data->reset_timer);
3469 	if (ahc_linux_next_device_to_run(ahc) != NULL)
3470 		ahc_schedule_runq(ahc);
3471 	ahc_linux_run_complete_queue(ahc);
3472 	ahc_unlock(ahc, &flags);
3473 }
3474 
3475 static void
3476 ahc_linux_dv_complete(struct scsi_cmnd *cmd)
3477 {
3478 	struct ahc_softc *ahc;
3479 
3480 	ahc = *((struct ahc_softc **)cmd->device->host->hostdata);
3481 
3482 	/* Delete the DV timer before it goes off! */
3483 	scsi_delete_timer(cmd);
3484 
3485 #ifdef AHC_DEBUG
3486 	if (ahc_debug & AHC_SHOW_DV)
3487 		printf("%s:%d:%d: Command completed, status= 0x%x\n",
3488 		       ahc_name(ahc), cmd->device->channel,
3489 		       cmd->device->id, cmd->result);
3490 #endif
3491 
3492 	/* Wake up the state machine */
3493 	up(&ahc->platform_data->dv_cmd_sem);
3494 }
3495 
3496 static void
3497 ahc_linux_generate_dv_pattern(struct ahc_linux_target *targ)
3498 {
3499 	uint16_t b;
3500 	u_int	 i;
3501 	u_int	 j;
3502 
3503 	if (targ->dv_buffer != NULL)
3504 		free(targ->dv_buffer, M_DEVBUF);
3505 	targ->dv_buffer = malloc(targ->dv_echo_size, M_DEVBUF, M_WAITOK);
3506 	if (targ->dv_buffer1 != NULL)
3507 		free(targ->dv_buffer1, M_DEVBUF);
3508 	targ->dv_buffer1 = malloc(targ->dv_echo_size, M_DEVBUF, M_WAITOK);
3509 
3510 	i = 0;
3511 	b = 0x0001;
3512 	for (j = 0 ; i < targ->dv_echo_size; j++) {
3513 		if (j < 32) {
3514 			/*
3515 			 * 32bytes of sequential numbers.
3516 			 */
3517 			targ->dv_buffer[i++] = j & 0xff;
3518 		} else if (j < 48) {
3519 			/*
3520 			 * 32bytes of repeating 0x0000, 0xffff.
3521 			 */
3522 			targ->dv_buffer[i++] = (j & 0x02) ? 0xff : 0x00;
3523 		} else if (j < 64) {
3524 			/*
3525 			 * 32bytes of repeating 0x5555, 0xaaaa.
3526 			 */
3527 			targ->dv_buffer[i++] = (j & 0x02) ? 0xaa : 0x55;
3528 		} else {
3529 			/*
3530 			 * Remaining buffer is filled with a repeating
3531 			 * patter of:
3532 			 *
3533 			 *	 0xffff
3534 			 *	~0x0001 << shifted once in each loop.
3535 			 */
3536 			if (j & 0x02) {
3537 				if (j & 0x01) {
3538 					targ->dv_buffer[i++] = ~(b >> 8) & 0xff;
3539 					b <<= 1;
3540 					if (b == 0x0000)
3541 						b = 0x0001;
3542 				} else {
3543 					targ->dv_buffer[i++] = (~b & 0xff);
3544 				}
3545 			} else {
3546 				targ->dv_buffer[i++] = 0xff;
3547 			}
3548 		}
3549 	}
3550 }
3551 
3552 static u_int
3553 ahc_linux_user_tagdepth(struct ahc_softc *ahc, struct ahc_devinfo *devinfo)
3554 {
3555 	static int warned_user;
3556 	u_int tags;
3557 
3558 	tags = 0;
3559 	if ((ahc->user_discenable & devinfo->target_mask) != 0) {
3560 		if (ahc->unit >= NUM_ELEMENTS(aic7xxx_tag_info)) {
3561 			if (warned_user == 0) {
3562 
3563 				printf(KERN_WARNING
3564 "aic7xxx: WARNING: Insufficient tag_info instances\n"
3565 "aic7xxx: for installed controllers. Using defaults\n"
3566 "aic7xxx: Please update the aic7xxx_tag_info array in\n"
3567 "aic7xxx: the aic7xxx_osm..c source file.\n");
3568 				warned_user++;
3569 			}
3570 			tags = AHC_MAX_QUEUE;
3571 		} else {
3572 			adapter_tag_info_t *tag_info;
3573 
3574 			tag_info = &aic7xxx_tag_info[ahc->unit];
3575 			tags = tag_info->tag_commands[devinfo->target_offset];
3576 			if (tags > AHC_MAX_QUEUE)
3577 				tags = AHC_MAX_QUEUE;
3578 		}
3579 	}
3580 	return (tags);
3581 }
3582 
3583 static u_int
3584 ahc_linux_user_dv_setting(struct ahc_softc *ahc)
3585 {
3586 	static int warned_user;
3587 	int dv;
3588 
3589 	if (ahc->unit >= NUM_ELEMENTS(aic7xxx_dv_settings)) {
3590 		if (warned_user == 0) {
3591 
3592 			printf(KERN_WARNING
3593 "aic7xxx: WARNING: Insufficient dv settings instances\n"
3594 "aic7xxx: for installed controllers. Using defaults\n"
3595 "aic7xxx: Please update the aic7xxx_dv_settings array\n"
3596 "aic7xxx: in the aic7xxx_osm.c source file.\n");
3597 			warned_user++;
3598 		}
3599 		dv = -1;
3600 	} else {
3601 
3602 		dv = aic7xxx_dv_settings[ahc->unit];
3603 	}
3604 
3605 	if (dv < 0) {
3606 		u_long s;
3607 
3608 		/*
3609 		 * Apply the default.
3610 		 */
3611 		/*
3612 		 * XXX - Enable DV on non-U160 controllers once it
3613 		 *       has been tested there.
3614 		 */
3615 		ahc_lock(ahc, &s);
3616 		dv = (ahc->features & AHC_DT);
3617 		if (ahc->seep_config != 0
3618 		 && ahc->seep_config->signature >= CFSIGNATURE2)
3619 			dv = (ahc->seep_config->adapter_control & CFENABLEDV);
3620 		ahc_unlock(ahc, &s);
3621 	}
3622 	return (dv);
3623 }
3624 
3625 /*
3626  * Determines the queue depth for a given device.
3627  */
3628 static void
3629 ahc_linux_device_queue_depth(struct ahc_softc *ahc,
3630 			     struct ahc_linux_device *dev)
3631 {
3632 	struct	ahc_devinfo devinfo;
3633 	u_int	tags;
3634 
3635 	ahc_compile_devinfo(&devinfo,
3636 			    dev->target->channel == 0
3637 			  ? ahc->our_id : ahc->our_id_b,
3638 			    dev->target->target, dev->lun,
3639 			    dev->target->channel == 0 ? 'A' : 'B',
3640 			    ROLE_INITIATOR);
3641 	tags = ahc_linux_user_tagdepth(ahc, &devinfo);
3642 	if (tags != 0
3643 	 && dev->scsi_device != NULL
3644 	 && dev->scsi_device->tagged_supported != 0) {
3645 
3646 		ahc_set_tags(ahc, &devinfo, AHC_QUEUE_TAGGED);
3647 		ahc_print_devinfo(ahc, &devinfo);
3648 		printf("Tagged Queuing enabled.  Depth %d\n", tags);
3649 	} else {
3650 		ahc_set_tags(ahc, &devinfo, AHC_QUEUE_NONE);
3651 	}
3652 }
3653 
3654 static void
3655 ahc_linux_run_device_queue(struct ahc_softc *ahc, struct ahc_linux_device *dev)
3656 {
3657 	struct	 ahc_cmd *acmd;
3658 	struct	 scsi_cmnd *cmd;
3659 	struct	 scb *scb;
3660 	struct	 hardware_scb *hscb;
3661 	struct	 ahc_initiator_tinfo *tinfo;
3662 	struct	 ahc_tmode_tstate *tstate;
3663 	uint16_t mask;
3664 
3665 	if ((dev->flags & AHC_DEV_ON_RUN_LIST) != 0)
3666 		panic("running device on run list");
3667 
3668 	while ((acmd = TAILQ_FIRST(&dev->busyq)) != NULL
3669 	    && dev->openings > 0 && dev->qfrozen == 0) {
3670 
3671 		/*
3672 		 * Schedule us to run later.  The only reason we are not
3673 		 * running is because the whole controller Q is frozen.
3674 		 */
3675 		if (ahc->platform_data->qfrozen != 0
3676 	 	 && AHC_DV_SIMQ_FROZEN(ahc) == 0) {
3677 			TAILQ_INSERT_TAIL(&ahc->platform_data->device_runq,
3678 					  dev, links);
3679 			dev->flags |= AHC_DEV_ON_RUN_LIST;
3680 			return;
3681 		}
3682 		/*
3683 		 * Get an scb to use.
3684 		 */
3685 		if ((scb = ahc_get_scb(ahc)) == NULL) {
3686 			TAILQ_INSERT_TAIL(&ahc->platform_data->device_runq,
3687 					 dev, links);
3688 			dev->flags |= AHC_DEV_ON_RUN_LIST;
3689 			ahc->flags |= AHC_RESOURCE_SHORTAGE;
3690 			return;
3691 		}
3692 		TAILQ_REMOVE(&dev->busyq, acmd, acmd_links.tqe);
3693 		cmd = &acmd_scsi_cmd(acmd);
3694 		scb->io_ctx = cmd;
3695 		scb->platform_data->dev = dev;
3696 		hscb = scb->hscb;
3697 		cmd->host_scribble = (char *)scb;
3698 
3699 		/*
3700 		 * Fill out basics of the HSCB.
3701 		 */
3702 		hscb->control = 0;
3703 		hscb->scsiid = BUILD_SCSIID(ahc, cmd);
3704 		hscb->lun = cmd->device->lun;
3705 		mask = SCB_GET_TARGET_MASK(ahc, scb);
3706 		tinfo = ahc_fetch_transinfo(ahc, SCB_GET_CHANNEL(ahc, scb),
3707 					    SCB_GET_OUR_ID(scb),
3708 					    SCB_GET_TARGET(ahc, scb), &tstate);
3709 		hscb->scsirate = tinfo->scsirate;
3710 		hscb->scsioffset = tinfo->curr.offset;
3711 		if ((tstate->ultraenb & mask) != 0)
3712 			hscb->control |= ULTRAENB;
3713 
3714 		if ((ahc->user_discenable & mask) != 0)
3715 			hscb->control |= DISCENB;
3716 
3717 	 	if (AHC_DV_CMD(cmd) != 0)
3718 			scb->flags |= SCB_SILENT;
3719 
3720 		if ((tstate->auto_negotiate & mask) != 0) {
3721 			scb->flags |= SCB_AUTO_NEGOTIATE;
3722 			scb->hscb->control |= MK_MESSAGE;
3723 		}
3724 
3725 		if ((dev->flags & (AHC_DEV_Q_TAGGED|AHC_DEV_Q_BASIC)) != 0) {
3726 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
3727 			int	msg_bytes;
3728 			uint8_t tag_msgs[2];
3729 
3730 			msg_bytes = scsi_populate_tag_msg(cmd, tag_msgs);
3731 			if (msg_bytes && tag_msgs[0] != MSG_SIMPLE_TASK) {
3732 				hscb->control |= tag_msgs[0];
3733 				if (tag_msgs[0] == MSG_ORDERED_TASK)
3734 					dev->commands_since_idle_or_otag = 0;
3735 			} else
3736 #endif
3737 			if (dev->commands_since_idle_or_otag == AHC_OTAG_THRESH
3738 			 && (dev->flags & AHC_DEV_Q_TAGGED) != 0) {
3739 				hscb->control |= MSG_ORDERED_TASK;
3740 				dev->commands_since_idle_or_otag = 0;
3741 			} else {
3742 				hscb->control |= MSG_SIMPLE_TASK;
3743 			}
3744 		}
3745 
3746 		hscb->cdb_len = cmd->cmd_len;
3747 		if (hscb->cdb_len <= 12) {
3748 			memcpy(hscb->shared_data.cdb, cmd->cmnd, hscb->cdb_len);
3749 		} else {
3750 			memcpy(hscb->cdb32, cmd->cmnd, hscb->cdb_len);
3751 			scb->flags |= SCB_CDB32_PTR;
3752 		}
3753 
3754 		scb->platform_data->xfer_len = 0;
3755 		ahc_set_residual(scb, 0);
3756 		ahc_set_sense_residual(scb, 0);
3757 		scb->sg_count = 0;
3758 		if (cmd->use_sg != 0) {
3759 			struct	ahc_dma_seg *sg;
3760 			struct	scatterlist *cur_seg;
3761 			struct	scatterlist *end_seg;
3762 			int	nseg;
3763 
3764 			cur_seg = (struct scatterlist *)cmd->request_buffer;
3765 			nseg = pci_map_sg(ahc->dev_softc, cur_seg, cmd->use_sg,
3766 			    scsi_to_pci_dma_dir(cmd->sc_data_direction));
3767 			end_seg = cur_seg + nseg;
3768 			/* Copy the segments into the SG list. */
3769 			sg = scb->sg_list;
3770 			/*
3771 			 * The sg_count may be larger than nseg if
3772 			 * a transfer crosses a 32bit page.
3773 			 */
3774 			while (cur_seg < end_seg) {
3775 				bus_addr_t addr;
3776 				bus_size_t len;
3777 				int consumed;
3778 
3779 				addr = sg_dma_address(cur_seg);
3780 				len = sg_dma_len(cur_seg);
3781 				consumed = ahc_linux_map_seg(ahc, scb,
3782 							     sg, addr, len);
3783 				sg += consumed;
3784 				scb->sg_count += consumed;
3785 				cur_seg++;
3786 			}
3787 			sg--;
3788 			sg->len |= ahc_htole32(AHC_DMA_LAST_SEG);
3789 
3790 			/*
3791 			 * Reset the sg list pointer.
3792 			 */
3793 			scb->hscb->sgptr =
3794 			    ahc_htole32(scb->sg_list_phys | SG_FULL_RESID);
3795 
3796 			/*
3797 			 * Copy the first SG into the "current"
3798 			 * data pointer area.
3799 			 */
3800 			scb->hscb->dataptr = scb->sg_list->addr;
3801 			scb->hscb->datacnt = scb->sg_list->len;
3802 		} else if (cmd->request_bufflen != 0) {
3803 			struct	 ahc_dma_seg *sg;
3804 			bus_addr_t addr;
3805 
3806 			sg = scb->sg_list;
3807 			addr = pci_map_single(ahc->dev_softc,
3808 			       cmd->request_buffer,
3809 			       cmd->request_bufflen,
3810 			       scsi_to_pci_dma_dir(cmd->sc_data_direction));
3811 			scb->platform_data->buf_busaddr = addr;
3812 			scb->sg_count = ahc_linux_map_seg(ahc, scb,
3813 							  sg, addr,
3814 							  cmd->request_bufflen);
3815 			sg->len |= ahc_htole32(AHC_DMA_LAST_SEG);
3816 
3817 			/*
3818 			 * Reset the sg list pointer.
3819 			 */
3820 			scb->hscb->sgptr =
3821 			    ahc_htole32(scb->sg_list_phys | SG_FULL_RESID);
3822 
3823 			/*
3824 			 * Copy the first SG into the "current"
3825 			 * data pointer area.
3826 			 */
3827 			scb->hscb->dataptr = sg->addr;
3828 			scb->hscb->datacnt = sg->len;
3829 		} else {
3830 			scb->hscb->sgptr = ahc_htole32(SG_LIST_NULL);
3831 			scb->hscb->dataptr = 0;
3832 			scb->hscb->datacnt = 0;
3833 			scb->sg_count = 0;
3834 		}
3835 
3836 		ahc_sync_sglist(ahc, scb, BUS_DMASYNC_PREWRITE);
3837 		LIST_INSERT_HEAD(&ahc->pending_scbs, scb, pending_links);
3838 		dev->openings--;
3839 		dev->active++;
3840 		dev->commands_issued++;
3841 		if ((dev->flags & AHC_DEV_PERIODIC_OTAG) != 0)
3842 			dev->commands_since_idle_or_otag++;
3843 
3844 		/*
3845 		 * We only allow one untagged transaction
3846 		 * per target in the initiator role unless
3847 		 * we are storing a full busy target *lun*
3848 		 * table in SCB space.
3849 		 */
3850 		if ((scb->hscb->control & (TARGET_SCB|TAG_ENB)) == 0
3851 		 && (ahc->features & AHC_SCB_BTT) == 0) {
3852 			struct scb_tailq *untagged_q;
3853 			int target_offset;
3854 
3855 			target_offset = SCB_GET_TARGET_OFFSET(ahc, scb);
3856 			untagged_q = &(ahc->untagged_queues[target_offset]);
3857 			TAILQ_INSERT_TAIL(untagged_q, scb, links.tqe);
3858 			scb->flags |= SCB_UNTAGGEDQ;
3859 			if (TAILQ_FIRST(untagged_q) != scb)
3860 				continue;
3861 		}
3862 		scb->flags |= SCB_ACTIVE;
3863 		ahc_queue_scb(ahc, scb);
3864 	}
3865 }
3866 
3867 /*
3868  * SCSI controller interrupt handler.
3869  */
3870 irqreturn_t
3871 ahc_linux_isr(int irq, void *dev_id, struct pt_regs * regs)
3872 {
3873 	struct	ahc_softc *ahc;
3874 	u_long	flags;
3875 	int	ours;
3876 
3877 	ahc = (struct ahc_softc *) dev_id;
3878 	ahc_lock(ahc, &flags);
3879 	ours = ahc_intr(ahc);
3880 	if (ahc_linux_next_device_to_run(ahc) != NULL)
3881 		ahc_schedule_runq(ahc);
3882 	ahc_linux_run_complete_queue(ahc);
3883 	ahc_unlock(ahc, &flags);
3884 	return IRQ_RETVAL(ours);
3885 }
3886 
3887 void
3888 ahc_platform_flushwork(struct ahc_softc *ahc)
3889 {
3890 
3891 	while (ahc_linux_run_complete_queue(ahc) != NULL)
3892 		;
3893 }
3894 
3895 static struct ahc_linux_target*
3896 ahc_linux_alloc_target(struct ahc_softc *ahc, u_int channel, u_int target)
3897 {
3898 	struct ahc_linux_target *targ;
3899 	u_int target_offset;
3900 
3901 	target_offset = target;
3902 	if (channel != 0)
3903 		target_offset += 8;
3904 
3905 	targ = malloc(sizeof(*targ), M_DEVBUG, M_NOWAIT);
3906 	if (targ == NULL)
3907 		return (NULL);
3908 	memset(targ, 0, sizeof(*targ));
3909 	targ->channel = channel;
3910 	targ->target = target;
3911 	targ->ahc = ahc;
3912 	targ->flags = AHC_DV_REQUIRED;
3913 	ahc->platform_data->targets[target_offset] = targ;
3914 	return (targ);
3915 }
3916 
3917 static void
3918 ahc_linux_free_target(struct ahc_softc *ahc, struct ahc_linux_target *targ)
3919 {
3920 	struct ahc_devinfo devinfo;
3921 	struct ahc_initiator_tinfo *tinfo;
3922 	struct ahc_tmode_tstate *tstate;
3923 	u_int our_id;
3924 	u_int target_offset;
3925 	char channel;
3926 
3927 	/*
3928 	 * Force a negotiation to async/narrow on any
3929 	 * future command to this device unless a bus
3930 	 * reset occurs between now and that command.
3931 	 */
3932 	channel = 'A' + targ->channel;
3933 	our_id = ahc->our_id;
3934 	target_offset = targ->target;
3935 	if (targ->channel != 0) {
3936 		target_offset += 8;
3937 		our_id = ahc->our_id_b;
3938 	}
3939 	tinfo = ahc_fetch_transinfo(ahc, channel, our_id,
3940 				    targ->target, &tstate);
3941 	ahc_compile_devinfo(&devinfo, our_id, targ->target, CAM_LUN_WILDCARD,
3942 			    channel, ROLE_INITIATOR);
3943 	ahc_set_syncrate(ahc, &devinfo, NULL, 0, 0, 0,
3944 			 AHC_TRANS_GOAL, /*paused*/FALSE);
3945 	ahc_set_width(ahc, &devinfo, MSG_EXT_WDTR_BUS_8_BIT,
3946 		      AHC_TRANS_GOAL, /*paused*/FALSE);
3947 	ahc_update_neg_request(ahc, &devinfo, tstate, tinfo, AHC_NEG_ALWAYS);
3948 	ahc->platform_data->targets[target_offset] = NULL;
3949 	if (targ->inq_data != NULL)
3950 		free(targ->inq_data, M_DEVBUF);
3951 	if (targ->dv_buffer != NULL)
3952 		free(targ->dv_buffer, M_DEVBUF);
3953 	if (targ->dv_buffer1 != NULL)
3954 		free(targ->dv_buffer1, M_DEVBUF);
3955 	free(targ, M_DEVBUF);
3956 }
3957 
3958 static struct ahc_linux_device*
3959 ahc_linux_alloc_device(struct ahc_softc *ahc,
3960 		 struct ahc_linux_target *targ, u_int lun)
3961 {
3962 	struct ahc_linux_device *dev;
3963 
3964 	dev = malloc(sizeof(*dev), M_DEVBUG, M_NOWAIT);
3965 	if (dev == NULL)
3966 		return (NULL);
3967 	memset(dev, 0, sizeof(*dev));
3968 	init_timer(&dev->timer);
3969 	TAILQ_INIT(&dev->busyq);
3970 	dev->flags = AHC_DEV_UNCONFIGURED;
3971 	dev->lun = lun;
3972 	dev->target = targ;
3973 
3974 	/*
3975 	 * We start out life using untagged
3976 	 * transactions of which we allow one.
3977 	 */
3978 	dev->openings = 1;
3979 
3980 	/*
3981 	 * Set maxtags to 0.  This will be changed if we
3982 	 * later determine that we are dealing with
3983 	 * a tagged queuing capable device.
3984 	 */
3985 	dev->maxtags = 0;
3986 
3987 	targ->refcount++;
3988 	targ->devices[lun] = dev;
3989 	return (dev);
3990 }
3991 
3992 static void
3993 ahc_linux_free_device(struct ahc_softc *ahc, struct ahc_linux_device *dev)
3994 {
3995 	struct ahc_linux_target *targ;
3996 
3997 	del_timer_sync(&dev->timer);
3998 	targ = dev->target;
3999 	targ->devices[dev->lun] = NULL;
4000 	free(dev, M_DEVBUF);
4001 	targ->refcount--;
4002 	if (targ->refcount == 0
4003 	 && (targ->flags & AHC_DV_REQUIRED) == 0)
4004 		ahc_linux_free_target(ahc, targ);
4005 }
4006 
4007 void
4008 ahc_send_async(struct ahc_softc *ahc, char channel,
4009 	       u_int target, u_int lun, ac_code code, void *arg)
4010 {
4011 	switch (code) {
4012 	case AC_TRANSFER_NEG:
4013 	{
4014 		char	buf[80];
4015 		struct	ahc_linux_target *targ;
4016 		struct	info_str info;
4017 		struct	ahc_initiator_tinfo *tinfo;
4018 		struct	ahc_tmode_tstate *tstate;
4019 		int	target_offset;
4020 
4021 		info.buffer = buf;
4022 		info.length = sizeof(buf);
4023 		info.offset = 0;
4024 		info.pos = 0;
4025 		tinfo = ahc_fetch_transinfo(ahc, channel,
4026 						channel == 'A' ? ahc->our_id
4027 							       : ahc->our_id_b,
4028 						target, &tstate);
4029 
4030 		/*
4031 		 * Don't bother reporting results while
4032 		 * negotiations are still pending.
4033 		 */
4034 		if (tinfo->curr.period != tinfo->goal.period
4035 		 || tinfo->curr.width != tinfo->goal.width
4036 		 || tinfo->curr.offset != tinfo->goal.offset
4037 		 || tinfo->curr.ppr_options != tinfo->goal.ppr_options)
4038 			if (bootverbose == 0)
4039 				break;
4040 
4041 		/*
4042 		 * Don't bother reporting results that
4043 		 * are identical to those last reported.
4044 		 */
4045 		target_offset = target;
4046 		if (channel == 'B')
4047 			target_offset += 8;
4048 		targ = ahc->platform_data->targets[target_offset];
4049 		if (targ == NULL)
4050 			break;
4051 		if (tinfo->curr.period == targ->last_tinfo.period
4052 		 && tinfo->curr.width == targ->last_tinfo.width
4053 		 && tinfo->curr.offset == targ->last_tinfo.offset
4054 		 && tinfo->curr.ppr_options == targ->last_tinfo.ppr_options)
4055 			if (bootverbose == 0)
4056 				break;
4057 
4058 		targ->last_tinfo.period = tinfo->curr.period;
4059 		targ->last_tinfo.width = tinfo->curr.width;
4060 		targ->last_tinfo.offset = tinfo->curr.offset;
4061 		targ->last_tinfo.ppr_options = tinfo->curr.ppr_options;
4062 
4063 		printf("(%s:%c:", ahc_name(ahc), channel);
4064 		if (target == CAM_TARGET_WILDCARD)
4065 			printf("*): ");
4066 		else
4067 			printf("%d): ", target);
4068 		ahc_format_transinfo(&info, &tinfo->curr);
4069 		if (info.pos < info.length)
4070 			*info.buffer = '\0';
4071 		else
4072 			buf[info.length - 1] = '\0';
4073 		printf("%s", buf);
4074 		break;
4075 	}
4076         case AC_SENT_BDR:
4077 	{
4078 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
4079 		WARN_ON(lun != CAM_LUN_WILDCARD);
4080 		scsi_report_device_reset(ahc->platform_data->host,
4081 					 channel - 'A', target);
4082 #elif LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
4083 		Scsi_Device *scsi_dev;
4084 
4085 		/*
4086 		 * Find the SCSI device associated with this
4087 		 * request and indicate that a UA is expected.
4088 		 */
4089 		for (scsi_dev = ahc->platform_data->host->host_queue;
4090 		     scsi_dev != NULL; scsi_dev = scsi_dev->next) {
4091 			if (channel - 'A' == scsi_dev->channel
4092 			 && target == scsi_dev->id
4093 			 && (lun == CAM_LUN_WILDCARD
4094 			  || lun == scsi_dev->lun)) {
4095 				scsi_dev->was_reset = 1;
4096 				scsi_dev->expecting_cc_ua = 1;
4097 			}
4098 		}
4099 #endif
4100 		break;
4101 	}
4102         case AC_BUS_RESET:
4103 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,3,0)
4104 		if (ahc->platform_data->host != NULL) {
4105 			scsi_report_bus_reset(ahc->platform_data->host,
4106 					      channel - 'A');
4107 		}
4108 #endif
4109                 break;
4110         default:
4111                 panic("ahc_send_async: Unexpected async event");
4112         }
4113 }
4114 
4115 /*
4116  * Calls the higher level scsi done function and frees the scb.
4117  */
4118 void
4119 ahc_done(struct ahc_softc *ahc, struct scb *scb)
4120 {
4121 	Scsi_Cmnd *cmd;
4122 	struct	   ahc_linux_device *dev;
4123 
4124 	LIST_REMOVE(scb, pending_links);
4125 	if ((scb->flags & SCB_UNTAGGEDQ) != 0) {
4126 		struct scb_tailq *untagged_q;
4127 		int target_offset;
4128 
4129 		target_offset = SCB_GET_TARGET_OFFSET(ahc, scb);
4130 		untagged_q = &(ahc->untagged_queues[target_offset]);
4131 		TAILQ_REMOVE(untagged_q, scb, links.tqe);
4132 		ahc_run_untagged_queue(ahc, untagged_q);
4133 	}
4134 
4135 	if ((scb->flags & SCB_ACTIVE) == 0) {
4136 		printf("SCB %d done'd twice\n", scb->hscb->tag);
4137 		ahc_dump_card_state(ahc);
4138 		panic("Stopping for safety");
4139 	}
4140 	cmd = scb->io_ctx;
4141 	dev = scb->platform_data->dev;
4142 	dev->active--;
4143 	dev->openings++;
4144 	if ((cmd->result & (CAM_DEV_QFRZN << 16)) != 0) {
4145 		cmd->result &= ~(CAM_DEV_QFRZN << 16);
4146 		dev->qfrozen--;
4147 	}
4148 	ahc_linux_unmap_scb(ahc, scb);
4149 
4150 	/*
4151 	 * Guard against stale sense data.
4152 	 * The Linux mid-layer assumes that sense
4153 	 * was retrieved anytime the first byte of
4154 	 * the sense buffer looks "sane".
4155 	 */
4156 	cmd->sense_buffer[0] = 0;
4157 	if (ahc_get_transaction_status(scb) == CAM_REQ_INPROG) {
4158 		uint32_t amount_xferred;
4159 
4160 		amount_xferred =
4161 		    ahc_get_transfer_length(scb) - ahc_get_residual(scb);
4162 		if ((scb->flags & SCB_TRANSMISSION_ERROR) != 0) {
4163 #ifdef AHC_DEBUG
4164 			if ((ahc_debug & AHC_SHOW_MISC) != 0) {
4165 				ahc_print_path(ahc, scb);
4166 				printf("Set CAM_UNCOR_PARITY\n");
4167 			}
4168 #endif
4169 			ahc_set_transaction_status(scb, CAM_UNCOR_PARITY);
4170 		} else if (amount_xferred < scb->io_ctx->underflow) {
4171 			u_int i;
4172 
4173 			ahc_print_path(ahc, scb);
4174 			printf("CDB:");
4175 			for (i = 0; i < scb->io_ctx->cmd_len; i++)
4176 				printf(" 0x%x", scb->io_ctx->cmnd[i]);
4177 			printf("\n");
4178 			ahc_print_path(ahc, scb);
4179 			printf("Saw underflow (%ld of %ld bytes). "
4180 			       "Treated as error\n",
4181 				ahc_get_residual(scb),
4182 				ahc_get_transfer_length(scb));
4183 			ahc_set_transaction_status(scb, CAM_DATA_RUN_ERR);
4184 		} else {
4185 			ahc_set_transaction_status(scb, CAM_REQ_CMP);
4186 		}
4187 	} else if (ahc_get_transaction_status(scb) == CAM_SCSI_STATUS_ERROR) {
4188 		ahc_linux_handle_scsi_status(ahc, dev, scb);
4189 	} else if (ahc_get_transaction_status(scb) == CAM_SEL_TIMEOUT) {
4190 		dev->flags |= AHC_DEV_UNCONFIGURED;
4191 		if (AHC_DV_CMD(cmd) == FALSE)
4192 			dev->target->flags &= ~AHC_DV_REQUIRED;
4193 	}
4194 	/*
4195 	 * Start DV for devices that require it assuming the first command
4196 	 * sent does not result in a selection timeout.
4197 	 */
4198 	if (ahc_get_transaction_status(scb) != CAM_SEL_TIMEOUT
4199 	 && (dev->target->flags & AHC_DV_REQUIRED) != 0)
4200 		ahc_linux_start_dv(ahc);
4201 
4202 	if (dev->openings == 1
4203 	 && ahc_get_transaction_status(scb) == CAM_REQ_CMP
4204 	 && ahc_get_scsi_status(scb) != SCSI_STATUS_QUEUE_FULL)
4205 		dev->tag_success_count++;
4206 	/*
4207 	 * Some devices deal with temporary internal resource
4208 	 * shortages by returning queue full.  When the queue
4209 	 * full occurrs, we throttle back.  Slowly try to get
4210 	 * back to our previous queue depth.
4211 	 */
4212 	if ((dev->openings + dev->active) < dev->maxtags
4213 	 && dev->tag_success_count > AHC_TAG_SUCCESS_INTERVAL) {
4214 		dev->tag_success_count = 0;
4215 		dev->openings++;
4216 	}
4217 
4218 	if (dev->active == 0)
4219 		dev->commands_since_idle_or_otag = 0;
4220 
4221 	if (TAILQ_EMPTY(&dev->busyq)) {
4222 		if ((dev->flags & AHC_DEV_UNCONFIGURED) != 0
4223 		 && dev->active == 0
4224 	 	 && (dev->flags & AHC_DEV_TIMER_ACTIVE) == 0)
4225 			ahc_linux_free_device(ahc, dev);
4226 	} else if ((dev->flags & AHC_DEV_ON_RUN_LIST) == 0) {
4227 		TAILQ_INSERT_TAIL(&ahc->platform_data->device_runq, dev, links);
4228 		dev->flags |= AHC_DEV_ON_RUN_LIST;
4229 	}
4230 
4231 	if ((scb->flags & SCB_RECOVERY_SCB) != 0) {
4232 		printf("Recovery SCB completes\n");
4233 		if (ahc_get_transaction_status(scb) == CAM_BDR_SENT
4234 		 || ahc_get_transaction_status(scb) == CAM_REQ_ABORTED)
4235 			ahc_set_transaction_status(scb, CAM_CMD_TIMEOUT);
4236 		if ((ahc->platform_data->flags & AHC_UP_EH_SEMAPHORE) != 0) {
4237 			ahc->platform_data->flags &= ~AHC_UP_EH_SEMAPHORE;
4238 			up(&ahc->platform_data->eh_sem);
4239 		}
4240 	}
4241 
4242 	ahc_free_scb(ahc, scb);
4243 	ahc_linux_queue_cmd_complete(ahc, cmd);
4244 
4245 	if ((ahc->platform_data->flags & AHC_DV_WAIT_SIMQ_EMPTY) != 0
4246 	 && LIST_FIRST(&ahc->pending_scbs) == NULL) {
4247 		ahc->platform_data->flags &= ~AHC_DV_WAIT_SIMQ_EMPTY;
4248 		up(&ahc->platform_data->dv_sem);
4249 	}
4250 
4251 }
4252 
4253 static void
4254 ahc_linux_handle_scsi_status(struct ahc_softc *ahc,
4255 			     struct ahc_linux_device *dev, struct scb *scb)
4256 {
4257 	struct	ahc_devinfo devinfo;
4258 
4259 	ahc_compile_devinfo(&devinfo,
4260 			    ahc->our_id,
4261 			    dev->target->target, dev->lun,
4262 			    dev->target->channel == 0 ? 'A' : 'B',
4263 			    ROLE_INITIATOR);
4264 
4265 	/*
4266 	 * We don't currently trust the mid-layer to
4267 	 * properly deal with queue full or busy.  So,
4268 	 * when one occurs, we tell the mid-layer to
4269 	 * unconditionally requeue the command to us
4270 	 * so that we can retry it ourselves.  We also
4271 	 * implement our own throttling mechanism so
4272 	 * we don't clobber the device with too many
4273 	 * commands.
4274 	 */
4275 	switch (ahc_get_scsi_status(scb)) {
4276 	default:
4277 		break;
4278 	case SCSI_STATUS_CHECK_COND:
4279 	case SCSI_STATUS_CMD_TERMINATED:
4280 	{
4281 		Scsi_Cmnd *cmd;
4282 
4283 		/*
4284 		 * Copy sense information to the OS's cmd
4285 		 * structure if it is available.
4286 		 */
4287 		cmd = scb->io_ctx;
4288 		if (scb->flags & SCB_SENSE) {
4289 			u_int sense_size;
4290 
4291 			sense_size = MIN(sizeof(struct scsi_sense_data)
4292 				       - ahc_get_sense_residual(scb),
4293 					 sizeof(cmd->sense_buffer));
4294 			memcpy(cmd->sense_buffer,
4295 			       ahc_get_sense_buf(ahc, scb), sense_size);
4296 			if (sense_size < sizeof(cmd->sense_buffer))
4297 				memset(&cmd->sense_buffer[sense_size], 0,
4298 				       sizeof(cmd->sense_buffer) - sense_size);
4299 			cmd->result |= (DRIVER_SENSE << 24);
4300 #ifdef AHC_DEBUG
4301 			if (ahc_debug & AHC_SHOW_SENSE) {
4302 				int i;
4303 
4304 				printf("Copied %d bytes of sense data:",
4305 				       sense_size);
4306 				for (i = 0; i < sense_size; i++) {
4307 					if ((i & 0xF) == 0)
4308 						printf("\n");
4309 					printf("0x%x ", cmd->sense_buffer[i]);
4310 				}
4311 				printf("\n");
4312 			}
4313 #endif
4314 		}
4315 		break;
4316 	}
4317 	case SCSI_STATUS_QUEUE_FULL:
4318 	{
4319 		/*
4320 		 * By the time the core driver has returned this
4321 		 * command, all other commands that were queued
4322 		 * to us but not the device have been returned.
4323 		 * This ensures that dev->active is equal to
4324 		 * the number of commands actually queued to
4325 		 * the device.
4326 		 */
4327 		dev->tag_success_count = 0;
4328 		if (dev->active != 0) {
4329 			/*
4330 			 * Drop our opening count to the number
4331 			 * of commands currently outstanding.
4332 			 */
4333 			dev->openings = 0;
4334 /*
4335 			ahc_print_path(ahc, scb);
4336 			printf("Dropping tag count to %d\n", dev->active);
4337  */
4338 			if (dev->active == dev->tags_on_last_queuefull) {
4339 
4340 				dev->last_queuefull_same_count++;
4341 				/*
4342 				 * If we repeatedly see a queue full
4343 				 * at the same queue depth, this
4344 				 * device has a fixed number of tag
4345 				 * slots.  Lock in this tag depth
4346 				 * so we stop seeing queue fulls from
4347 				 * this device.
4348 				 */
4349 				if (dev->last_queuefull_same_count
4350 				 == AHC_LOCK_TAGS_COUNT) {
4351 					dev->maxtags = dev->active;
4352 					ahc_print_path(ahc, scb);
4353 					printf("Locking max tag count at %d\n",
4354 					       dev->active);
4355 				}
4356 			} else {
4357 				dev->tags_on_last_queuefull = dev->active;
4358 				dev->last_queuefull_same_count = 0;
4359 			}
4360 			ahc_set_transaction_status(scb, CAM_REQUEUE_REQ);
4361 			ahc_set_scsi_status(scb, SCSI_STATUS_OK);
4362 			ahc_platform_set_tags(ahc, &devinfo,
4363 				     (dev->flags & AHC_DEV_Q_BASIC)
4364 				   ? AHC_QUEUE_BASIC : AHC_QUEUE_TAGGED);
4365 			break;
4366 		}
4367 		/*
4368 		 * Drop down to a single opening, and treat this
4369 		 * as if the target returned BUSY SCSI status.
4370 		 */
4371 		dev->openings = 1;
4372 		ahc_set_scsi_status(scb, SCSI_STATUS_BUSY);
4373 		ahc_platform_set_tags(ahc, &devinfo,
4374 			     (dev->flags & AHC_DEV_Q_BASIC)
4375 			   ? AHC_QUEUE_BASIC : AHC_QUEUE_TAGGED);
4376 		/* FALLTHROUGH */
4377 	}
4378 	case SCSI_STATUS_BUSY:
4379 	{
4380 		/*
4381 		 * Set a short timer to defer sending commands for
4382 		 * a bit since Linux will not delay in this case.
4383 		 */
4384 		if ((dev->flags & AHC_DEV_TIMER_ACTIVE) != 0) {
4385 			printf("%s:%c:%d: Device Timer still active during "
4386 			       "busy processing\n", ahc_name(ahc),
4387 				dev->target->channel, dev->target->target);
4388 			break;
4389 		}
4390 		dev->flags |= AHC_DEV_TIMER_ACTIVE;
4391 		dev->qfrozen++;
4392 		init_timer(&dev->timer);
4393 		dev->timer.data = (u_long)dev;
4394 		dev->timer.expires = jiffies + (HZ/2);
4395 		dev->timer.function = ahc_linux_dev_timed_unfreeze;
4396 		add_timer(&dev->timer);
4397 		break;
4398 	}
4399 	}
4400 }
4401 
4402 static void
4403 ahc_linux_queue_cmd_complete(struct ahc_softc *ahc, Scsi_Cmnd *cmd)
4404 {
4405 	/*
4406 	 * Typically, the complete queue has very few entries
4407 	 * queued to it before the queue is emptied by
4408 	 * ahc_linux_run_complete_queue, so sorting the entries
4409 	 * by generation number should be inexpensive.
4410 	 * We perform the sort so that commands that complete
4411 	 * with an error are retuned in the order origionally
4412 	 * queued to the controller so that any subsequent retries
4413 	 * are performed in order.  The underlying ahc routines do
4414 	 * not guarantee the order that aborted commands will be
4415 	 * returned to us.
4416 	 */
4417 	struct ahc_completeq *completeq;
4418 	struct ahc_cmd *list_cmd;
4419 	struct ahc_cmd *acmd;
4420 
4421 	/*
4422 	 * Map CAM error codes into Linux Error codes.  We
4423 	 * avoid the conversion so that the DV code has the
4424 	 * full error information available when making
4425 	 * state change decisions.
4426 	 */
4427 	if (AHC_DV_CMD(cmd) == FALSE) {
4428 		u_int new_status;
4429 
4430 		switch (ahc_cmd_get_transaction_status(cmd)) {
4431 		case CAM_REQ_INPROG:
4432 		case CAM_REQ_CMP:
4433 		case CAM_SCSI_STATUS_ERROR:
4434 			new_status = DID_OK;
4435 			break;
4436 		case CAM_REQ_ABORTED:
4437 			new_status = DID_ABORT;
4438 			break;
4439 		case CAM_BUSY:
4440 			new_status = DID_BUS_BUSY;
4441 			break;
4442 		case CAM_REQ_INVALID:
4443 		case CAM_PATH_INVALID:
4444 			new_status = DID_BAD_TARGET;
4445 			break;
4446 		case CAM_SEL_TIMEOUT:
4447 			new_status = DID_NO_CONNECT;
4448 			break;
4449 		case CAM_SCSI_BUS_RESET:
4450 		case CAM_BDR_SENT:
4451 			new_status = DID_RESET;
4452 			break;
4453 		case CAM_UNCOR_PARITY:
4454 			new_status = DID_PARITY;
4455 			break;
4456 		case CAM_CMD_TIMEOUT:
4457 			new_status = DID_TIME_OUT;
4458 			break;
4459 		case CAM_UA_ABORT:
4460 		case CAM_REQ_CMP_ERR:
4461 		case CAM_AUTOSENSE_FAIL:
4462 		case CAM_NO_HBA:
4463 		case CAM_DATA_RUN_ERR:
4464 		case CAM_UNEXP_BUSFREE:
4465 		case CAM_SEQUENCE_FAIL:
4466 		case CAM_CCB_LEN_ERR:
4467 		case CAM_PROVIDE_FAIL:
4468 		case CAM_REQ_TERMIO:
4469 		case CAM_UNREC_HBA_ERROR:
4470 		case CAM_REQ_TOO_BIG:
4471 			new_status = DID_ERROR;
4472 			break;
4473 		case CAM_REQUEUE_REQ:
4474 			/*
4475 			 * If we want the request requeued, make sure there
4476 			 * are sufficent retries.  In the old scsi error code,
4477 			 * we used to be able to specify a result code that
4478 			 * bypassed the retry count.  Now we must use this
4479 			 * hack.  We also "fake" a check condition with
4480 			 * a sense code of ABORTED COMMAND.  This seems to
4481 			 * evoke a retry even if this command is being sent
4482 			 * via the eh thread.  Ick!  Ick!  Ick!
4483 			 */
4484 			if (cmd->retries > 0)
4485 				cmd->retries--;
4486 			new_status = DID_OK;
4487 			ahc_cmd_set_scsi_status(cmd, SCSI_STATUS_CHECK_COND);
4488 			cmd->result |= (DRIVER_SENSE << 24);
4489 			memset(cmd->sense_buffer, 0,
4490 			       sizeof(cmd->sense_buffer));
4491 			cmd->sense_buffer[0] = SSD_ERRCODE_VALID
4492 					     | SSD_CURRENT_ERROR;
4493 			cmd->sense_buffer[2] = SSD_KEY_ABORTED_COMMAND;
4494 			break;
4495 		default:
4496 			/* We should never get here */
4497 			new_status = DID_ERROR;
4498 			break;
4499 		}
4500 
4501 		ahc_cmd_set_transaction_status(cmd, new_status);
4502 	}
4503 
4504 	completeq = &ahc->platform_data->completeq;
4505 	list_cmd = TAILQ_FIRST(completeq);
4506 	acmd = (struct ahc_cmd *)cmd;
4507 	while (list_cmd != NULL
4508 	    && acmd_scsi_cmd(list_cmd).serial_number
4509 	     < acmd_scsi_cmd(acmd).serial_number)
4510 		list_cmd = TAILQ_NEXT(list_cmd, acmd_links.tqe);
4511 	if (list_cmd != NULL)
4512 		TAILQ_INSERT_BEFORE(list_cmd, acmd, acmd_links.tqe);
4513 	else
4514 		TAILQ_INSERT_TAIL(completeq, acmd, acmd_links.tqe);
4515 }
4516 
4517 static void
4518 ahc_linux_filter_inquiry(struct ahc_softc *ahc, struct ahc_devinfo *devinfo)
4519 {
4520 	struct	scsi_inquiry_data *sid;
4521 	struct	ahc_initiator_tinfo *tinfo;
4522 	struct	ahc_transinfo *user;
4523 	struct	ahc_transinfo *goal;
4524 	struct	ahc_transinfo *curr;
4525 	struct	ahc_tmode_tstate *tstate;
4526 	struct	ahc_syncrate *syncrate;
4527 	struct	ahc_linux_device *dev;
4528 	u_int	maxsync;
4529 	u_int	width;
4530 	u_int	period;
4531 	u_int	offset;
4532 	u_int	ppr_options;
4533 	u_int	trans_version;
4534 	u_int	prot_version;
4535 
4536 	/*
4537 	 * Determine if this lun actually exists.  If so,
4538 	 * hold on to its corresponding device structure.
4539 	 * If not, make sure we release the device and
4540 	 * don't bother processing the rest of this inquiry
4541 	 * command.
4542 	 */
4543 	dev = ahc_linux_get_device(ahc, devinfo->channel - 'A',
4544 				   devinfo->target, devinfo->lun,
4545 				   /*alloc*/TRUE);
4546 
4547 	sid = (struct scsi_inquiry_data *)dev->target->inq_data;
4548 	if (SID_QUAL(sid) == SID_QUAL_LU_CONNECTED) {
4549 
4550 		dev->flags &= ~AHC_DEV_UNCONFIGURED;
4551 	} else {
4552 		dev->flags |= AHC_DEV_UNCONFIGURED;
4553 		return;
4554 	}
4555 
4556 	/*
4557 	 * Update our notion of this device's transfer
4558 	 * negotiation capabilities.
4559 	 */
4560 	tinfo = ahc_fetch_transinfo(ahc, devinfo->channel,
4561 				    devinfo->our_scsiid,
4562 				    devinfo->target, &tstate);
4563 	user = &tinfo->user;
4564 	goal = &tinfo->goal;
4565 	curr = &tinfo->curr;
4566 	width = user->width;
4567 	period = user->period;
4568 	offset = user->offset;
4569 	ppr_options = user->ppr_options;
4570 	trans_version = user->transport_version;
4571 	prot_version = MIN(user->protocol_version, SID_ANSI_REV(sid));
4572 
4573 	/*
4574 	 * Only attempt SPI3/4 once we've verified that
4575 	 * the device claims to support SPI3/4 features.
4576 	 */
4577 	if (prot_version < SCSI_REV_2)
4578 		trans_version = SID_ANSI_REV(sid);
4579 	else
4580 		trans_version = SCSI_REV_2;
4581 
4582 	if ((sid->flags & SID_WBus16) == 0)
4583 		width = MSG_EXT_WDTR_BUS_8_BIT;
4584 	if ((sid->flags & SID_Sync) == 0) {
4585 		period = 0;
4586 		offset = 0;
4587 		ppr_options = 0;
4588 	}
4589 	if ((sid->spi3data & SID_SPI_QAS) == 0)
4590 		ppr_options &= ~MSG_EXT_PPR_QAS_REQ;
4591 	if ((sid->spi3data & SID_SPI_CLOCK_DT) == 0)
4592 		ppr_options &= MSG_EXT_PPR_QAS_REQ;
4593 	if ((sid->spi3data & SID_SPI_IUS) == 0)
4594 		ppr_options &= (MSG_EXT_PPR_DT_REQ
4595 			      | MSG_EXT_PPR_QAS_REQ);
4596 
4597 	if (prot_version > SCSI_REV_2
4598 	 && ppr_options != 0)
4599 		trans_version = user->transport_version;
4600 
4601 	ahc_validate_width(ahc, /*tinfo limit*/NULL, &width, ROLE_UNKNOWN);
4602 	if ((ahc->features & AHC_ULTRA2) != 0)
4603 		maxsync = AHC_SYNCRATE_DT;
4604 	else if ((ahc->features & AHC_ULTRA) != 0)
4605 		maxsync = AHC_SYNCRATE_ULTRA;
4606 	else
4607 		maxsync = AHC_SYNCRATE_FAST;
4608 
4609 	syncrate = ahc_find_syncrate(ahc, &period, &ppr_options, maxsync);
4610 	ahc_validate_offset(ahc, /*tinfo limit*/NULL, syncrate,
4611 			    &offset, width, ROLE_UNKNOWN);
4612 	if (offset == 0 || period == 0) {
4613 		period = 0;
4614 		offset = 0;
4615 		ppr_options = 0;
4616 	}
4617 	/* Apply our filtered user settings. */
4618 	curr->transport_version = trans_version;
4619 	curr->protocol_version = prot_version;
4620 	ahc_set_width(ahc, devinfo, width, AHC_TRANS_GOAL, /*paused*/FALSE);
4621 	ahc_set_syncrate(ahc, devinfo, syncrate, period,
4622 			 offset, ppr_options, AHC_TRANS_GOAL,
4623 			 /*paused*/FALSE);
4624 }
4625 
4626 static void
4627 ahc_linux_sem_timeout(u_long arg)
4628 {
4629 	struct	ahc_softc *ahc;
4630 	u_long	s;
4631 
4632 	ahc = (struct ahc_softc *)arg;
4633 
4634 	ahc_lock(ahc, &s);
4635 	if ((ahc->platform_data->flags & AHC_UP_EH_SEMAPHORE) != 0) {
4636 		ahc->platform_data->flags &= ~AHC_UP_EH_SEMAPHORE;
4637 		up(&ahc->platform_data->eh_sem);
4638 	}
4639 	ahc_unlock(ahc, &s);
4640 }
4641 
4642 static void
4643 ahc_linux_freeze_simq(struct ahc_softc *ahc)
4644 {
4645 	ahc->platform_data->qfrozen++;
4646 	if (ahc->platform_data->qfrozen == 1) {
4647 		scsi_block_requests(ahc->platform_data->host);
4648 
4649 		/* XXX What about Twin channels? */
4650 		ahc_platform_abort_scbs(ahc, CAM_TARGET_WILDCARD, ALL_CHANNELS,
4651 					CAM_LUN_WILDCARD, SCB_LIST_NULL,
4652 					ROLE_INITIATOR, CAM_REQUEUE_REQ);
4653 	}
4654 }
4655 
4656 static void
4657 ahc_linux_release_simq(u_long arg)
4658 {
4659 	struct ahc_softc *ahc;
4660 	u_long s;
4661 	int    unblock_reqs;
4662 
4663 	ahc = (struct ahc_softc *)arg;
4664 
4665 	unblock_reqs = 0;
4666 	ahc_lock(ahc, &s);
4667 	if (ahc->platform_data->qfrozen > 0)
4668 		ahc->platform_data->qfrozen--;
4669 	if (ahc->platform_data->qfrozen == 0)
4670 		unblock_reqs = 1;
4671 	if (AHC_DV_SIMQ_FROZEN(ahc)
4672 	 && ((ahc->platform_data->flags & AHC_DV_WAIT_SIMQ_RELEASE) != 0)) {
4673 		ahc->platform_data->flags &= ~AHC_DV_WAIT_SIMQ_RELEASE;
4674 		up(&ahc->platform_data->dv_sem);
4675 	}
4676 	ahc_schedule_runq(ahc);
4677 	ahc_unlock(ahc, &s);
4678 	/*
4679 	 * There is still a race here.  The mid-layer
4680 	 * should keep its own freeze count and use
4681 	 * a bottom half handler to run the queues
4682 	 * so we can unblock with our own lock held.
4683 	 */
4684 	if (unblock_reqs)
4685 		scsi_unblock_requests(ahc->platform_data->host);
4686 }
4687 
4688 static void
4689 ahc_linux_dev_timed_unfreeze(u_long arg)
4690 {
4691 	struct ahc_linux_device *dev;
4692 	struct ahc_softc *ahc;
4693 	u_long s;
4694 
4695 	dev = (struct ahc_linux_device *)arg;
4696 	ahc = dev->target->ahc;
4697 	ahc_lock(ahc, &s);
4698 	dev->flags &= ~AHC_DEV_TIMER_ACTIVE;
4699 	if (dev->qfrozen > 0)
4700 		dev->qfrozen--;
4701 	if (dev->qfrozen == 0
4702 	 && (dev->flags & AHC_DEV_ON_RUN_LIST) == 0)
4703 		ahc_linux_run_device_queue(ahc, dev);
4704 	if (TAILQ_EMPTY(&dev->busyq)
4705 	 && dev->active == 0)
4706 		ahc_linux_free_device(ahc, dev);
4707 	ahc_unlock(ahc, &s);
4708 }
4709 
4710 static int
4711 ahc_linux_queue_recovery_cmd(Scsi_Cmnd *cmd, scb_flag flag)
4712 {
4713 	struct ahc_softc *ahc;
4714 	struct ahc_cmd *acmd;
4715 	struct ahc_cmd *list_acmd;
4716 	struct ahc_linux_device *dev;
4717 	struct scb *pending_scb;
4718 	u_long s;
4719 	u_int  saved_scbptr;
4720 	u_int  active_scb_index;
4721 	u_int  last_phase;
4722 	u_int  saved_scsiid;
4723 	u_int  cdb_byte;
4724 	int    retval;
4725 	int    was_paused;
4726 	int    paused;
4727 	int    wait;
4728 	int    disconnected;
4729 
4730 	pending_scb = NULL;
4731 	paused = FALSE;
4732 	wait = FALSE;
4733 	ahc = *(struct ahc_softc **)cmd->device->host->hostdata;
4734 	acmd = (struct ahc_cmd *)cmd;
4735 
4736 	printf("%s:%d:%d:%d: Attempting to queue a%s message\n",
4737 	       ahc_name(ahc), cmd->device->channel,
4738 	       cmd->device->id, cmd->device->lun,
4739 	       flag == SCB_ABORT ? "n ABORT" : " TARGET RESET");
4740 
4741 	printf("CDB:");
4742 	for (cdb_byte = 0; cdb_byte < cmd->cmd_len; cdb_byte++)
4743 		printf(" 0x%x", cmd->cmnd[cdb_byte]);
4744 	printf("\n");
4745 
4746 	/*
4747 	 * In all versions of Linux, we have to work around
4748 	 * a major flaw in how the mid-layer is locked down
4749 	 * if we are to sleep successfully in our error handler
4750 	 * while allowing our interrupt handler to run.  Since
4751 	 * the midlayer acquires either the io_request_lock or
4752 	 * our lock prior to calling us, we must use the
4753 	 * spin_unlock_irq() method for unlocking our lock.
4754 	 * This will force interrupts to be enabled on the
4755 	 * current CPU.  Since the EH thread should not have
4756 	 * been running with CPU interrupts disabled other than
4757 	 * by acquiring either the io_request_lock or our own
4758 	 * lock, this *should* be safe.
4759 	 */
4760 	ahc_midlayer_entrypoint_lock(ahc, &s);
4761 
4762 	/*
4763 	 * First determine if we currently own this command.
4764 	 * Start by searching the device queue.  If not found
4765 	 * there, check the pending_scb list.  If not found
4766 	 * at all, and the system wanted us to just abort the
4767 	 * command, return success.
4768 	 */
4769 	dev = ahc_linux_get_device(ahc, cmd->device->channel, cmd->device->id,
4770 				   cmd->device->lun, /*alloc*/FALSE);
4771 
4772 	if (dev == NULL) {
4773 		/*
4774 		 * No target device for this command exists,
4775 		 * so we must not still own the command.
4776 		 */
4777 		printf("%s:%d:%d:%d: Is not an active device\n",
4778 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4779 		       cmd->device->lun);
4780 		retval = SUCCESS;
4781 		goto no_cmd;
4782 	}
4783 
4784 	TAILQ_FOREACH(list_acmd, &dev->busyq, acmd_links.tqe) {
4785 		if (list_acmd == acmd)
4786 			break;
4787 	}
4788 
4789 	if (list_acmd != NULL) {
4790 		printf("%s:%d:%d:%d: Command found on device queue\n",
4791 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4792 		       cmd->device->lun);
4793 		if (flag == SCB_ABORT) {
4794 			TAILQ_REMOVE(&dev->busyq, list_acmd, acmd_links.tqe);
4795 			cmd->result = DID_ABORT << 16;
4796 			ahc_linux_queue_cmd_complete(ahc, cmd);
4797 			retval = SUCCESS;
4798 			goto done;
4799 		}
4800 	}
4801 
4802 	if ((dev->flags & (AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED)) == 0
4803 	 && ahc_search_untagged_queues(ahc, cmd, cmd->device->id,
4804 				       cmd->device->channel + 'A',
4805 				       cmd->device->lun,
4806 				       CAM_REQ_ABORTED, SEARCH_COMPLETE) != 0) {
4807 		printf("%s:%d:%d:%d: Command found on untagged queue\n",
4808 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4809 		       cmd->device->lun);
4810 		retval = SUCCESS;
4811 		goto done;
4812 	}
4813 
4814 	/*
4815 	 * See if we can find a matching cmd in the pending list.
4816 	 */
4817 	LIST_FOREACH(pending_scb, &ahc->pending_scbs, pending_links) {
4818 		if (pending_scb->io_ctx == cmd)
4819 			break;
4820 	}
4821 
4822 	if (pending_scb == NULL && flag == SCB_DEVICE_RESET) {
4823 
4824 		/* Any SCB for this device will do for a target reset */
4825 		LIST_FOREACH(pending_scb, &ahc->pending_scbs, pending_links) {
4826 		  	if (ahc_match_scb(ahc, pending_scb, cmd->device->id,
4827 					  cmd->device->channel + 'A',
4828 					  CAM_LUN_WILDCARD,
4829 					  SCB_LIST_NULL, ROLE_INITIATOR))
4830 				break;
4831 		}
4832 	}
4833 
4834 	if (pending_scb == NULL) {
4835 		printf("%s:%d:%d:%d: Command not found\n",
4836 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4837 		       cmd->device->lun);
4838 		goto no_cmd;
4839 	}
4840 
4841 	if ((pending_scb->flags & SCB_RECOVERY_SCB) != 0) {
4842 		/*
4843 		 * We can't queue two recovery actions using the same SCB
4844 		 */
4845 		retval = FAILED;
4846 		goto  done;
4847 	}
4848 
4849 	/*
4850 	 * Ensure that the card doesn't do anything
4851 	 * behind our back and that we didn't "just" miss
4852 	 * an interrupt that would affect this cmd.
4853 	 */
4854 	was_paused = ahc_is_paused(ahc);
4855 	ahc_pause_and_flushwork(ahc);
4856 	paused = TRUE;
4857 
4858 	if ((pending_scb->flags & SCB_ACTIVE) == 0) {
4859 		printf("%s:%d:%d:%d: Command already completed\n",
4860 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4861 		       cmd->device->lun);
4862 		goto no_cmd;
4863 	}
4864 
4865 	printf("%s: At time of recovery, card was %spaused\n",
4866 	       ahc_name(ahc), was_paused ? "" : "not ");
4867 	ahc_dump_card_state(ahc);
4868 
4869 	disconnected = TRUE;
4870 	if (flag == SCB_ABORT) {
4871 		if (ahc_search_qinfifo(ahc, cmd->device->id,
4872 				       cmd->device->channel + 'A',
4873 				       cmd->device->lun,
4874 				       pending_scb->hscb->tag,
4875 				       ROLE_INITIATOR, CAM_REQ_ABORTED,
4876 				       SEARCH_COMPLETE) > 0) {
4877 			printf("%s:%d:%d:%d: Cmd aborted from QINFIFO\n",
4878 			       ahc_name(ahc), cmd->device->channel,
4879 					cmd->device->id, cmd->device->lun);
4880 			retval = SUCCESS;
4881 			goto done;
4882 		}
4883 	} else if (ahc_search_qinfifo(ahc, cmd->device->id,
4884 				      cmd->device->channel + 'A',
4885 				      cmd->device->lun, pending_scb->hscb->tag,
4886 				      ROLE_INITIATOR, /*status*/0,
4887 				      SEARCH_COUNT) > 0) {
4888 		disconnected = FALSE;
4889 	}
4890 
4891 	if (disconnected && (ahc_inb(ahc, SEQ_FLAGS) & NOT_IDENTIFIED) == 0) {
4892 		struct scb *bus_scb;
4893 
4894 		bus_scb = ahc_lookup_scb(ahc, ahc_inb(ahc, SCB_TAG));
4895 		if (bus_scb == pending_scb)
4896 			disconnected = FALSE;
4897 		else if (flag != SCB_ABORT
4898 		      && ahc_inb(ahc, SAVED_SCSIID) == pending_scb->hscb->scsiid
4899 		      && ahc_inb(ahc, SAVED_LUN) == SCB_GET_LUN(pending_scb))
4900 			disconnected = FALSE;
4901 	}
4902 
4903 	/*
4904 	 * At this point, pending_scb is the scb associated with the
4905 	 * passed in command.  That command is currently active on the
4906 	 * bus, is in the disconnected state, or we're hoping to find
4907 	 * a command for the same target active on the bus to abuse to
4908 	 * send a BDR.  Queue the appropriate message based on which of
4909 	 * these states we are in.
4910 	 */
4911 	last_phase = ahc_inb(ahc, LASTPHASE);
4912 	saved_scbptr = ahc_inb(ahc, SCBPTR);
4913 	active_scb_index = ahc_inb(ahc, SCB_TAG);
4914 	saved_scsiid = ahc_inb(ahc, SAVED_SCSIID);
4915 	if (last_phase != P_BUSFREE
4916 	 && (pending_scb->hscb->tag == active_scb_index
4917 	  || (flag == SCB_DEVICE_RESET
4918 	   && SCSIID_TARGET(ahc, saved_scsiid) == cmd->device->id))) {
4919 
4920 		/*
4921 		 * We're active on the bus, so assert ATN
4922 		 * and hope that the target responds.
4923 		 */
4924 		pending_scb = ahc_lookup_scb(ahc, active_scb_index);
4925 		pending_scb->flags |= SCB_RECOVERY_SCB|flag;
4926 		ahc_outb(ahc, MSG_OUT, HOST_MSG);
4927 		ahc_outb(ahc, SCSISIGO, last_phase|ATNO);
4928 		printf("%s:%d:%d:%d: Device is active, asserting ATN\n",
4929 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4930 		       cmd->device->lun);
4931 		wait = TRUE;
4932 	} else if (disconnected) {
4933 
4934 		/*
4935 		 * Actually re-queue this SCB in an attempt
4936 		 * to select the device before it reconnects.
4937 		 * In either case (selection or reselection),
4938 		 * we will now issue the approprate message
4939 		 * to the timed-out device.
4940 		 *
4941 		 * Set the MK_MESSAGE control bit indicating
4942 		 * that we desire to send a message.  We
4943 		 * also set the disconnected flag since
4944 		 * in the paging case there is no guarantee
4945 		 * that our SCB control byte matches the
4946 		 * version on the card.  We don't want the
4947 		 * sequencer to abort the command thinking
4948 		 * an unsolicited reselection occurred.
4949 		 */
4950 		pending_scb->hscb->control |= MK_MESSAGE|DISCONNECTED;
4951 		pending_scb->flags |= SCB_RECOVERY_SCB|flag;
4952 
4953 		/*
4954 		 * Remove any cached copy of this SCB in the
4955 		 * disconnected list in preparation for the
4956 		 * queuing of our abort SCB.  We use the
4957 		 * same element in the SCB, SCB_NEXT, for
4958 		 * both the qinfifo and the disconnected list.
4959 		 */
4960 		ahc_search_disc_list(ahc, cmd->device->id,
4961 				     cmd->device->channel + 'A',
4962 				     cmd->device->lun, pending_scb->hscb->tag,
4963 				     /*stop_on_first*/TRUE,
4964 				     /*remove*/TRUE,
4965 				     /*save_state*/FALSE);
4966 
4967 		/*
4968 		 * In the non-paging case, the sequencer will
4969 		 * never re-reference the in-core SCB.
4970 		 * To make sure we are notified during
4971 		 * reslection, set the MK_MESSAGE flag in
4972 		 * the card's copy of the SCB.
4973 		 */
4974 		if ((ahc->flags & AHC_PAGESCBS) == 0) {
4975 			ahc_outb(ahc, SCBPTR, pending_scb->hscb->tag);
4976 			ahc_outb(ahc, SCB_CONTROL,
4977 				 ahc_inb(ahc, SCB_CONTROL)|MK_MESSAGE);
4978 		}
4979 
4980 		/*
4981 		 * Clear out any entries in the QINFIFO first
4982 		 * so we are the next SCB for this target
4983 		 * to run.
4984 		 */
4985 		ahc_search_qinfifo(ahc, cmd->device->id,
4986 				   cmd->device->channel + 'A',
4987 				   cmd->device->lun, SCB_LIST_NULL,
4988 				   ROLE_INITIATOR, CAM_REQUEUE_REQ,
4989 				   SEARCH_COMPLETE);
4990 		ahc_qinfifo_requeue_tail(ahc, pending_scb);
4991 		ahc_outb(ahc, SCBPTR, saved_scbptr);
4992 		ahc_print_path(ahc, pending_scb);
4993 		printf("Device is disconnected, re-queuing SCB\n");
4994 		wait = TRUE;
4995 	} else {
4996 		printf("%s:%d:%d:%d: Unable to deliver message\n",
4997 		       ahc_name(ahc), cmd->device->channel, cmd->device->id,
4998 		       cmd->device->lun);
4999 		retval = FAILED;
5000 		goto done;
5001 	}
5002 
5003 no_cmd:
5004 	/*
5005 	 * Our assumption is that if we don't have the command, no
5006 	 * recovery action was required, so we return success.  Again,
5007 	 * the semantics of the mid-layer recovery engine are not
5008 	 * well defined, so this may change in time.
5009 	 */
5010 	retval = SUCCESS;
5011 done:
5012 	if (paused)
5013 		ahc_unpause(ahc);
5014 	if (wait) {
5015 		struct timer_list timer;
5016 		int ret;
5017 
5018 		ahc->platform_data->flags |= AHC_UP_EH_SEMAPHORE;
5019 		spin_unlock_irq(&ahc->platform_data->spin_lock);
5020 		init_timer(&timer);
5021 		timer.data = (u_long)ahc;
5022 		timer.expires = jiffies + (5 * HZ);
5023 		timer.function = ahc_linux_sem_timeout;
5024 		add_timer(&timer);
5025 		printf("Recovery code sleeping\n");
5026 		down(&ahc->platform_data->eh_sem);
5027 		printf("Recovery code awake\n");
5028         	ret = del_timer_sync(&timer);
5029 		if (ret == 0) {
5030 			printf("Timer Expired\n");
5031 			retval = FAILED;
5032 		}
5033 		spin_lock_irq(&ahc->platform_data->spin_lock);
5034 	}
5035 	ahc_schedule_runq(ahc);
5036 	ahc_linux_run_complete_queue(ahc);
5037 	ahc_midlayer_entrypoint_unlock(ahc, &s);
5038 	return (retval);
5039 }
5040 
5041 void
5042 ahc_platform_dump_card_state(struct ahc_softc *ahc)
5043 {
5044 	struct ahc_linux_device *dev;
5045 	int channel;
5046 	int maxchannel;
5047 	int target;
5048 	int maxtarget;
5049 	int lun;
5050 	int i;
5051 
5052 	maxchannel = (ahc->features & AHC_TWIN) ? 1 : 0;
5053 	maxtarget = (ahc->features & AHC_WIDE) ? 15 : 7;
5054 	for (channel = 0; channel <= maxchannel; channel++) {
5055 
5056 		for (target = 0; target <=maxtarget; target++) {
5057 
5058 			for (lun = 0; lun < AHC_NUM_LUNS; lun++) {
5059 				struct ahc_cmd *acmd;
5060 
5061 				dev = ahc_linux_get_device(ahc, channel, target,
5062 							   lun, /*alloc*/FALSE);
5063 				if (dev == NULL)
5064 					continue;
5065 
5066 				printf("DevQ(%d:%d:%d): ",
5067 				       channel, target, lun);
5068 				i = 0;
5069 				TAILQ_FOREACH(acmd, &dev->busyq,
5070 					      acmd_links.tqe) {
5071 					if (i++ > AHC_SCB_MAX)
5072 						break;
5073 				}
5074 				printf("%d waiting\n", i);
5075 			}
5076 		}
5077 	}
5078 }
5079 
5080 static int __init
5081 ahc_linux_init(void)
5082 {
5083 #if LINUX_VERSION_CODE >= KERNEL_VERSION(2,5,0)
5084 	return (ahc_linux_detect(&aic7xxx_driver_template) ? 0 : -ENODEV);
5085 #else
5086 	scsi_register_module(MODULE_SCSI_HA, &aic7xxx_driver_template);
5087 	if (aic7xxx_driver_template.present == 0) {
5088 		scsi_unregister_module(MODULE_SCSI_HA,
5089 				       &aic7xxx_driver_template);
5090 		return (-ENODEV);
5091 	}
5092 
5093 	return (0);
5094 #endif
5095 }
5096 
5097 static void __exit
5098 ahc_linux_exit(void)
5099 {
5100 	struct ahc_softc *ahc;
5101 	u_long l;
5102 
5103 	/*
5104 	 * Shutdown DV threads before going into the SCSI mid-layer.
5105 	 * This avoids situations where the mid-layer locks the entire
5106 	 * kernel so that waiting for our DV threads to exit leads
5107 	 * to deadlock.
5108 	 */
5109 	ahc_list_lock(&l);
5110 	TAILQ_FOREACH(ahc, &ahc_tailq, links) {
5111 
5112 		ahc_linux_kill_dv_thread(ahc);
5113 	}
5114 	ahc_list_unlock(&l);
5115 
5116 #if LINUX_VERSION_CODE < KERNEL_VERSION(2,5,0)
5117 	/*
5118 	 * In 2.4 we have to unregister from the PCI core _after_
5119 	 * unregistering from the scsi midlayer to avoid dangling
5120 	 * references.
5121 	 */
5122 	scsi_unregister_module(MODULE_SCSI_HA, &aic7xxx_driver_template);
5123 #endif
5124 #ifdef CONFIG_PCI
5125 	ahc_linux_pci_exit();
5126 #endif
5127 #ifdef CONFIG_EISA
5128 	ahc_linux_eisa_exit();
5129 #endif
5130 }
5131 
5132 module_init(ahc_linux_init);
5133 module_exit(ahc_linux_exit);
5134