gpio: rcar: Fix runtime PM imbalance on error
[linux/fpc-iii.git] / drivers / scsi / aic7xxx / aic7xxx_osm.c
blob2edfa0594f1830cb0142286f5032bf0a61438463
1 /*
2 * Adaptec AIC7xxx device driver for Linux.
4 * $Id: //depot/aic7xxx/linux/drivers/scsi/aic7xxx/aic7xxx_osm.c#235 $
6 * Copyright (c) 1994 John Aycock
7 * The University of Calgary Department of Computer Science.
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.
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.
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.
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), ...
32 * --------------------------------------------------------------------------
34 * Modifications by Daniel M. Eischen (deischen@iworks.InterWorks.org):
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.
40 * --------------------------------------------------------------------------
41 * Copyright (c) 1994-2000 Justin T. Gibbs.
42 * Copyright (c) 2000-2001 Adaptec Inc.
43 * All rights reserved.
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.
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.
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.
77 *---------------------------------------------------------------------------
79 * Thanks also go to (in alphabetical order) the following:
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
86 * A Boot time option was also added for not resetting the scsi bus.
88 * Form: aic7xxx=extended
89 * aic7xxx=no_reset
90 * aic7xxx=verbose
92 * Daniel M. Eischen, deischen@iworks.InterWorks.org, 1/23/97
94 * Id: aic7xxx.c,v 4.1 1997/06/12 08:23:42 deang Exp
98 * Further driver modifications made by Doug Ledford <dledford@redhat.com>
100 * Copyright (c) 1997-1999 Doug Ledford
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.
107 * Modifications made to the aic7xxx.c,v 4.1 driver from Dan Eischen include
108 * but are not limited to:
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
122 #include "aic7xxx_osm.h"
123 #include "aic7xxx_inline.h"
124 #include <scsi/scsicam.h>
126 static struct scsi_transport_template *ahc_linux_transport_template = NULL;
128 #include <linux/init.h> /* __setup */
129 #include <linux/mm.h> /* For fetching system memory size */
130 #include <linux/blkdev.h> /* For block_size() */
131 #include <linux/delay.h> /* For ssleep/msleep */
132 #include <linux/slab.h>
136 * Set this to the delay in seconds after SCSI bus reset.
137 * Note, we honor this only for the initial bus reset.
138 * The scsi error recovery code performs its own bus settle
139 * delay handling for error recovery actions.
141 #ifdef CONFIG_AIC7XXX_RESET_DELAY_MS
142 #define AIC7XXX_RESET_DELAY CONFIG_AIC7XXX_RESET_DELAY_MS
143 #else
144 #define AIC7XXX_RESET_DELAY 5000
145 #endif
148 * To change the default number of tagged transactions allowed per-device,
149 * add a line to the lilo.conf file like:
150 * append="aic7xxx=verbose,tag_info:{{32,32,32,32},{32,32,32,32}}"
151 * which will result in the first four devices on the first two
152 * controllers being set to a tagged queue depth of 32.
154 * The tag_commands is an array of 16 to allow for wide and twin adapters.
155 * Twin adapters will use indexes 0-7 for channel 0, and indexes 8-15
156 * for channel 1.
158 typedef struct {
159 uint8_t tag_commands[16]; /* Allow for wide/twin adapters. */
160 } adapter_tag_info_t;
163 * Modify this as you see fit for your system.
165 * 0 tagged queuing disabled
166 * 1 <= n <= 253 n == max tags ever dispatched.
168 * The driver will throttle the number of commands dispatched to a
169 * device if it returns queue full. For devices with a fixed maximum
170 * queue depth, the driver will eventually determine this depth and
171 * lock it in (a console message is printed to indicate that a lock
172 * has occurred). On some devices, queue full is returned for a temporary
173 * resource shortage. These devices will return queue full at varying
174 * depths. The driver will throttle back when the queue fulls occur and
175 * attempt to slowly increase the depth over time as the device recovers
176 * from the resource shortage.
178 * In this example, the first line will disable tagged queueing for all
179 * the devices on the first probed aic7xxx adapter.
181 * The second line enables tagged queueing with 4 commands/LUN for IDs
182 * (0, 2-11, 13-15), disables tagged queueing for ID 12, and tells the
183 * driver to attempt to use up to 64 tags for ID 1.
185 * The third line is the same as the first line.
187 * The fourth line disables tagged queueing for devices 0 and 3. It
188 * enables tagged queueing for the other IDs, with 16 commands/LUN
189 * for IDs 1 and 4, 127 commands/LUN for ID 8, and 4 commands/LUN for
190 * IDs 2, 5-7, and 9-15.
194 * NOTE: The below structure is for reference only, the actual structure
195 * to modify in order to change things is just below this comment block.
196 adapter_tag_info_t aic7xxx_tag_info[] =
198 {{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}},
199 {{4, 64, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 0, 4, 4, 4}},
200 {{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}},
201 {{0, 16, 4, 0, 16, 4, 4, 4, 127, 4, 4, 4, 4, 4, 4, 4}}
205 #ifdef CONFIG_AIC7XXX_CMDS_PER_DEVICE
206 #define AIC7XXX_CMDS_PER_DEVICE CONFIG_AIC7XXX_CMDS_PER_DEVICE
207 #else
208 #define AIC7XXX_CMDS_PER_DEVICE AHC_MAX_QUEUE
209 #endif
211 #define AIC7XXX_CONFIGED_TAG_COMMANDS { \
212 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
213 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
214 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
215 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
216 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
217 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
218 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE, \
219 AIC7XXX_CMDS_PER_DEVICE, AIC7XXX_CMDS_PER_DEVICE \
223 * By default, use the number of commands specified by
224 * the users kernel configuration.
226 static adapter_tag_info_t aic7xxx_tag_info[] =
228 {AIC7XXX_CONFIGED_TAG_COMMANDS},
229 {AIC7XXX_CONFIGED_TAG_COMMANDS},
230 {AIC7XXX_CONFIGED_TAG_COMMANDS},
231 {AIC7XXX_CONFIGED_TAG_COMMANDS},
232 {AIC7XXX_CONFIGED_TAG_COMMANDS},
233 {AIC7XXX_CONFIGED_TAG_COMMANDS},
234 {AIC7XXX_CONFIGED_TAG_COMMANDS},
235 {AIC7XXX_CONFIGED_TAG_COMMANDS},
236 {AIC7XXX_CONFIGED_TAG_COMMANDS},
237 {AIC7XXX_CONFIGED_TAG_COMMANDS},
238 {AIC7XXX_CONFIGED_TAG_COMMANDS},
239 {AIC7XXX_CONFIGED_TAG_COMMANDS},
240 {AIC7XXX_CONFIGED_TAG_COMMANDS},
241 {AIC7XXX_CONFIGED_TAG_COMMANDS},
242 {AIC7XXX_CONFIGED_TAG_COMMANDS},
243 {AIC7XXX_CONFIGED_TAG_COMMANDS}
247 * There should be a specific return value for this in scsi.h, but
248 * it seems that most drivers ignore it.
250 #define DID_UNDERFLOW DID_ERROR
252 void
253 ahc_print_path(struct ahc_softc *ahc, struct scb *scb)
255 printk("(scsi%d:%c:%d:%d): ",
256 ahc->platform_data->host->host_no,
257 scb != NULL ? SCB_GET_CHANNEL(ahc, scb) : 'X',
258 scb != NULL ? SCB_GET_TARGET(ahc, scb) : -1,
259 scb != NULL ? SCB_GET_LUN(scb) : -1);
263 * XXX - these options apply unilaterally to _all_ 274x/284x/294x
264 * cards in the system. This should be fixed. Exceptions to this
265 * rule are noted in the comments.
269 * Skip the scsi bus reset. Non 0 make us skip the reset at startup. This
270 * has no effect on any later resets that might occur due to things like
271 * SCSI bus timeouts.
273 static uint32_t aic7xxx_no_reset;
276 * Should we force EXTENDED translation on a controller.
277 * 0 == Use whatever is in the SEEPROM or default to off
278 * 1 == Use whatever is in the SEEPROM or default to on
280 static uint32_t aic7xxx_extended;
283 * PCI bus parity checking of the Adaptec controllers. This is somewhat
284 * dubious at best. To my knowledge, this option has never actually
285 * solved a PCI parity problem, but on certain machines with broken PCI
286 * chipset configurations where stray PCI transactions with bad parity are
287 * the norm rather than the exception, the error messages can be overwhelming.
288 * It's included in the driver for completeness.
289 * 0 = Shut off PCI parity check
290 * non-0 = reverse polarity pci parity checking
292 static uint32_t aic7xxx_pci_parity = ~0;
295 * There are lots of broken chipsets in the world. Some of them will
296 * violate the PCI spec when we issue byte sized memory writes to our
297 * controller. I/O mapped register access, if allowed by the given
298 * platform, will work in almost all cases.
300 uint32_t aic7xxx_allow_memio = ~0;
303 * So that we can set how long each device is given as a selection timeout.
304 * The table of values goes like this:
305 * 0 - 256ms
306 * 1 - 128ms
307 * 2 - 64ms
308 * 3 - 32ms
309 * We default to 256ms because some older devices need a longer time
310 * to respond to initial selection.
312 static uint32_t aic7xxx_seltime;
315 * Certain devices do not perform any aging on commands. Should the
316 * device be saturated by commands in one portion of the disk, it is
317 * possible for transactions on far away sectors to never be serviced.
318 * To handle these devices, we can periodically send an ordered tag to
319 * force all outstanding transactions to be serviced prior to a new
320 * transaction.
322 static uint32_t aic7xxx_periodic_otag;
325 * Module information and settable options.
327 static char *aic7xxx = NULL;
329 MODULE_AUTHOR("Maintainer: Hannes Reinecke <hare@suse.de>");
330 MODULE_DESCRIPTION("Adaptec AIC77XX/78XX SCSI Host Bus Adapter driver");
331 MODULE_LICENSE("Dual BSD/GPL");
332 MODULE_VERSION(AIC7XXX_DRIVER_VERSION);
333 module_param(aic7xxx, charp, 0444);
334 MODULE_PARM_DESC(aic7xxx,
335 "period-delimited options string:\n"
336 " verbose Enable verbose/diagnostic logging\n"
337 " allow_memio Allow device registers to be memory mapped\n"
338 " debug Bitmask of debug values to enable\n"
339 " no_probe Toggle EISA/VLB controller probing\n"
340 " probe_eisa_vl Toggle EISA/VLB controller probing\n"
341 " no_reset Suppress initial bus resets\n"
342 " extended Enable extended geometry on all controllers\n"
343 " periodic_otag Send an ordered tagged transaction\n"
344 " periodically to prevent tag starvation.\n"
345 " This may be required by some older disk\n"
346 " drives or RAID arrays.\n"
347 " tag_info:<tag_str> Set per-target tag depth\n"
348 " global_tag_depth:<int> Global tag depth for every target\n"
349 " on every bus\n"
350 " seltime:<int> Selection Timeout\n"
351 " (0/256ms,1/128ms,2/64ms,3/32ms)\n"
352 "\n"
353 " Sample modprobe configuration file:\n"
354 " # Toggle EISA/VLB probing\n"
355 " # Set tag depth on Controller 1/Target 1 to 10 tags\n"
356 " # Shorten the selection timeout to 128ms\n"
357 "\n"
358 " options aic7xxx 'aic7xxx=probe_eisa_vl.tag_info:{{}.{.10}}.seltime:1'\n"
361 static void ahc_linux_handle_scsi_status(struct ahc_softc *,
362 struct scsi_device *,
363 struct scb *);
364 static void ahc_linux_queue_cmd_complete(struct ahc_softc *ahc,
365 struct scsi_cmnd *cmd);
366 static void ahc_linux_freeze_simq(struct ahc_softc *ahc);
367 static void ahc_linux_release_simq(struct ahc_softc *ahc);
368 static int ahc_linux_queue_recovery_cmd(struct scsi_cmnd *cmd, scb_flag flag);
369 static void ahc_linux_initialize_scsi_bus(struct ahc_softc *ahc);
370 static u_int ahc_linux_user_tagdepth(struct ahc_softc *ahc,
371 struct ahc_devinfo *devinfo);
372 static void ahc_linux_device_queue_depth(struct scsi_device *);
373 static int ahc_linux_run_command(struct ahc_softc*,
374 struct ahc_linux_device *,
375 struct scsi_cmnd *);
376 static void ahc_linux_setup_tag_info_global(char *p);
377 static int aic7xxx_setup(char *s);
379 static int ahc_linux_unit;
382 /************************** OS Utility Wrappers *******************************/
383 void
384 ahc_delay(long usec)
387 * udelay on Linux can have problems for
388 * multi-millisecond waits. Wait at most
389 * 1024us per call.
391 while (usec > 0) {
392 udelay(usec % 1024);
393 usec -= 1024;
397 /***************************** Low Level I/O **********************************/
398 uint8_t
399 ahc_inb(struct ahc_softc * ahc, long port)
401 uint8_t x;
403 if (ahc->tag == BUS_SPACE_MEMIO) {
404 x = readb(ahc->bsh.maddr + port);
405 } else {
406 x = inb(ahc->bsh.ioport + port);
408 mb();
409 return (x);
412 void
413 ahc_outb(struct ahc_softc * ahc, long port, uint8_t val)
415 if (ahc->tag == BUS_SPACE_MEMIO) {
416 writeb(val, ahc->bsh.maddr + port);
417 } else {
418 outb(val, ahc->bsh.ioport + port);
420 mb();
423 void
424 ahc_outsb(struct ahc_softc * ahc, long port, uint8_t *array, int count)
426 int i;
429 * There is probably a more efficient way to do this on Linux
430 * but we don't use this for anything speed critical and this
431 * should work.
433 for (i = 0; i < count; i++)
434 ahc_outb(ahc, port, *array++);
437 void
438 ahc_insb(struct ahc_softc * ahc, long port, uint8_t *array, int count)
440 int i;
443 * There is probably a more efficient way to do this on Linux
444 * but we don't use this for anything speed critical and this
445 * should work.
447 for (i = 0; i < count; i++)
448 *array++ = ahc_inb(ahc, port);
451 /********************************* Inlines ************************************/
452 static void ahc_linux_unmap_scb(struct ahc_softc*, struct scb*);
454 static int ahc_linux_map_seg(struct ahc_softc *ahc, struct scb *scb,
455 struct ahc_dma_seg *sg,
456 dma_addr_t addr, bus_size_t len);
458 static void
459 ahc_linux_unmap_scb(struct ahc_softc *ahc, struct scb *scb)
461 struct scsi_cmnd *cmd;
463 cmd = scb->io_ctx;
464 ahc_sync_sglist(ahc, scb, BUS_DMASYNC_POSTWRITE);
466 scsi_dma_unmap(cmd);
469 static int
470 ahc_linux_map_seg(struct ahc_softc *ahc, struct scb *scb,
471 struct ahc_dma_seg *sg, dma_addr_t addr, bus_size_t len)
473 int consumed;
475 if ((scb->sg_count + 1) > AHC_NSEG)
476 panic("Too few segs for dma mapping. "
477 "Increase AHC_NSEG\n");
479 consumed = 1;
480 sg->addr = ahc_htole32(addr & 0xFFFFFFFF);
481 scb->platform_data->xfer_len += len;
483 if (sizeof(dma_addr_t) > 4
484 && (ahc->flags & AHC_39BIT_ADDRESSING) != 0)
485 len |= (addr >> 8) & AHC_SG_HIGH_ADDR_MASK;
487 sg->len = ahc_htole32(len);
488 return (consumed);
492 * Return a string describing the driver.
494 static const char *
495 ahc_linux_info(struct Scsi_Host *host)
497 static char buffer[512];
498 char ahc_info[256];
499 char *bp;
500 struct ahc_softc *ahc;
502 bp = &buffer[0];
503 ahc = *(struct ahc_softc **)host->hostdata;
504 memset(bp, 0, sizeof(buffer));
505 strcpy(bp, "Adaptec AIC7XXX EISA/VLB/PCI SCSI HBA DRIVER, Rev " AIC7XXX_DRIVER_VERSION "\n"
506 " <");
507 strcat(bp, ahc->description);
508 strcat(bp, ">\n"
509 " ");
510 ahc_controller_info(ahc, ahc_info);
511 strcat(bp, ahc_info);
512 strcat(bp, "\n");
514 return (bp);
518 * Queue an SCB to the controller.
520 static int
521 ahc_linux_queue_lck(struct scsi_cmnd * cmd, void (*scsi_done) (struct scsi_cmnd *))
523 struct ahc_softc *ahc;
524 struct ahc_linux_device *dev = scsi_transport_device_data(cmd->device);
525 int rtn = SCSI_MLQUEUE_HOST_BUSY;
526 unsigned long flags;
528 ahc = *(struct ahc_softc **)cmd->device->host->hostdata;
530 ahc_lock(ahc, &flags);
531 if (ahc->platform_data->qfrozen == 0) {
532 cmd->scsi_done = scsi_done;
533 cmd->result = CAM_REQ_INPROG << 16;
534 rtn = ahc_linux_run_command(ahc, dev, cmd);
536 ahc_unlock(ahc, &flags);
538 return rtn;
541 static DEF_SCSI_QCMD(ahc_linux_queue)
543 static inline struct scsi_target **
544 ahc_linux_target_in_softc(struct scsi_target *starget)
546 struct ahc_softc *ahc =
547 *((struct ahc_softc **)dev_to_shost(&starget->dev)->hostdata);
548 unsigned int target_offset;
550 target_offset = starget->id;
551 if (starget->channel != 0)
552 target_offset += 8;
554 return &ahc->platform_data->starget[target_offset];
557 static int
558 ahc_linux_target_alloc(struct scsi_target *starget)
560 struct ahc_softc *ahc =
561 *((struct ahc_softc **)dev_to_shost(&starget->dev)->hostdata);
562 struct seeprom_config *sc = ahc->seep_config;
563 unsigned long flags;
564 struct scsi_target **ahc_targp = ahc_linux_target_in_softc(starget);
565 unsigned short scsirate;
566 struct ahc_devinfo devinfo;
567 struct ahc_initiator_tinfo *tinfo;
568 struct ahc_tmode_tstate *tstate;
569 char channel = starget->channel + 'A';
570 unsigned int our_id = ahc->our_id;
571 unsigned int target_offset;
573 target_offset = starget->id;
574 if (starget->channel != 0)
575 target_offset += 8;
577 if (starget->channel)
578 our_id = ahc->our_id_b;
580 ahc_lock(ahc, &flags);
582 BUG_ON(*ahc_targp != NULL);
584 *ahc_targp = starget;
586 if (sc) {
587 int maxsync = AHC_SYNCRATE_DT;
588 int ultra = 0;
589 int flags = sc->device_flags[target_offset];
591 if (ahc->flags & AHC_NEWEEPROM_FMT) {
592 if (flags & CFSYNCHISULTRA)
593 ultra = 1;
594 } else if (flags & CFULTRAEN)
595 ultra = 1;
596 /* AIC nutcase; 10MHz appears as ultra = 1, CFXFER = 0x04
597 * change it to ultra=0, CFXFER = 0 */
598 if(ultra && (flags & CFXFER) == 0x04) {
599 ultra = 0;
600 flags &= ~CFXFER;
603 if ((ahc->features & AHC_ULTRA2) != 0) {
604 scsirate = (flags & CFXFER) | (ultra ? 0x8 : 0);
605 } else {
606 scsirate = (flags & CFXFER) << 4;
607 maxsync = ultra ? AHC_SYNCRATE_ULTRA :
608 AHC_SYNCRATE_FAST;
610 spi_max_width(starget) = (flags & CFWIDEB) ? 1 : 0;
611 if (!(flags & CFSYNCH))
612 spi_max_offset(starget) = 0;
613 spi_min_period(starget) =
614 ahc_find_period(ahc, scsirate, maxsync);
616 tinfo = ahc_fetch_transinfo(ahc, channel, ahc->our_id,
617 starget->id, &tstate);
619 ahc_compile_devinfo(&devinfo, our_id, starget->id,
620 CAM_LUN_WILDCARD, channel,
621 ROLE_INITIATOR);
622 ahc_set_syncrate(ahc, &devinfo, NULL, 0, 0, 0,
623 AHC_TRANS_GOAL, /*paused*/FALSE);
624 ahc_set_width(ahc, &devinfo, MSG_EXT_WDTR_BUS_8_BIT,
625 AHC_TRANS_GOAL, /*paused*/FALSE);
626 ahc_unlock(ahc, &flags);
628 return 0;
631 static void
632 ahc_linux_target_destroy(struct scsi_target *starget)
634 struct scsi_target **ahc_targp = ahc_linux_target_in_softc(starget);
636 *ahc_targp = NULL;
639 static int
640 ahc_linux_slave_alloc(struct scsi_device *sdev)
642 struct ahc_softc *ahc =
643 *((struct ahc_softc **)sdev->host->hostdata);
644 struct scsi_target *starget = sdev->sdev_target;
645 struct ahc_linux_device *dev;
647 if (bootverbose)
648 printk("%s: Slave Alloc %d\n", ahc_name(ahc), sdev->id);
650 dev = scsi_transport_device_data(sdev);
651 memset(dev, 0, sizeof(*dev));
654 * We start out life using untagged
655 * transactions of which we allow one.
657 dev->openings = 1;
660 * Set maxtags to 0. This will be changed if we
661 * later determine that we are dealing with
662 * a tagged queuing capable device.
664 dev->maxtags = 0;
666 spi_period(starget) = 0;
668 return 0;
671 static int
672 ahc_linux_slave_configure(struct scsi_device *sdev)
674 struct ahc_softc *ahc;
676 ahc = *((struct ahc_softc **)sdev->host->hostdata);
678 if (bootverbose)
679 sdev_printk(KERN_INFO, sdev, "Slave Configure\n");
681 ahc_linux_device_queue_depth(sdev);
683 /* Initial Domain Validation */
684 if (!spi_initial_dv(sdev->sdev_target))
685 spi_dv_device(sdev);
687 return 0;
690 #if defined(__i386__)
692 * Return the disk geometry for the given SCSI device.
694 static int
695 ahc_linux_biosparam(struct scsi_device *sdev, struct block_device *bdev,
696 sector_t capacity, int geom[])
698 int heads;
699 int sectors;
700 int cylinders;
701 int extended;
702 struct ahc_softc *ahc;
703 u_int channel;
705 ahc = *((struct ahc_softc **)sdev->host->hostdata);
706 channel = sdev_channel(sdev);
708 if (scsi_partsize(bdev, capacity, geom))
709 return 0;
711 heads = 64;
712 sectors = 32;
713 cylinders = aic_sector_div(capacity, heads, sectors);
715 if (aic7xxx_extended != 0)
716 extended = 1;
717 else if (channel == 0)
718 extended = (ahc->flags & AHC_EXTENDED_TRANS_A) != 0;
719 else
720 extended = (ahc->flags & AHC_EXTENDED_TRANS_B) != 0;
721 if (extended && cylinders >= 1024) {
722 heads = 255;
723 sectors = 63;
724 cylinders = aic_sector_div(capacity, heads, sectors);
726 geom[0] = heads;
727 geom[1] = sectors;
728 geom[2] = cylinders;
729 return (0);
731 #endif
734 * Abort the current SCSI command(s).
736 static int
737 ahc_linux_abort(struct scsi_cmnd *cmd)
739 int error;
741 error = ahc_linux_queue_recovery_cmd(cmd, SCB_ABORT);
742 if (error != 0)
743 printk("aic7xxx_abort returns 0x%x\n", error);
744 return (error);
748 * Attempt to send a target reset message to the device that timed out.
750 static int
751 ahc_linux_dev_reset(struct scsi_cmnd *cmd)
753 int error;
755 error = ahc_linux_queue_recovery_cmd(cmd, SCB_DEVICE_RESET);
756 if (error != 0)
757 printk("aic7xxx_dev_reset returns 0x%x\n", error);
758 return (error);
762 * Reset the SCSI bus.
764 static int
765 ahc_linux_bus_reset(struct scsi_cmnd *cmd)
767 struct ahc_softc *ahc;
768 int found;
769 unsigned long flags;
771 ahc = *(struct ahc_softc **)cmd->device->host->hostdata;
773 ahc_lock(ahc, &flags);
774 found = ahc_reset_channel(ahc, scmd_channel(cmd) + 'A',
775 /*initiate reset*/TRUE);
776 ahc_unlock(ahc, &flags);
778 if (bootverbose)
779 printk("%s: SCSI bus reset delivered. "
780 "%d SCBs aborted.\n", ahc_name(ahc), found);
782 return SUCCESS;
785 struct scsi_host_template aic7xxx_driver_template = {
786 .module = THIS_MODULE,
787 .name = "aic7xxx",
788 .proc_name = "aic7xxx",
789 .show_info = ahc_linux_show_info,
790 .write_info = ahc_proc_write_seeprom,
791 .info = ahc_linux_info,
792 .queuecommand = ahc_linux_queue,
793 .eh_abort_handler = ahc_linux_abort,
794 .eh_device_reset_handler = ahc_linux_dev_reset,
795 .eh_bus_reset_handler = ahc_linux_bus_reset,
796 #if defined(__i386__)
797 .bios_param = ahc_linux_biosparam,
798 #endif
799 .can_queue = AHC_MAX_QUEUE,
800 .this_id = -1,
801 .max_sectors = 8192,
802 .cmd_per_lun = 2,
803 .slave_alloc = ahc_linux_slave_alloc,
804 .slave_configure = ahc_linux_slave_configure,
805 .target_alloc = ahc_linux_target_alloc,
806 .target_destroy = ahc_linux_target_destroy,
809 /**************************** Tasklet Handler *********************************/
811 /******************************** Macros **************************************/
812 #define BUILD_SCSIID(ahc, cmd) \
813 ((((cmd)->device->id << TID_SHIFT) & TID) \
814 | (((cmd)->device->channel == 0) ? (ahc)->our_id : (ahc)->our_id_b) \
815 | (((cmd)->device->channel == 0) ? 0 : TWIN_CHNLB))
817 /******************************** Bus DMA *************************************/
819 ahc_dma_tag_create(struct ahc_softc *ahc, bus_dma_tag_t parent,
820 bus_size_t alignment, bus_size_t boundary,
821 dma_addr_t lowaddr, dma_addr_t highaddr,
822 bus_dma_filter_t *filter, void *filterarg,
823 bus_size_t maxsize, int nsegments,
824 bus_size_t maxsegsz, int flags, bus_dma_tag_t *ret_tag)
826 bus_dma_tag_t dmat;
828 dmat = kmalloc(sizeof(*dmat), GFP_ATOMIC);
829 if (dmat == NULL)
830 return (ENOMEM);
833 * Linux is very simplistic about DMA memory. For now don't
834 * maintain all specification information. Once Linux supplies
835 * better facilities for doing these operations, or the
836 * needs of this particular driver change, we might need to do
837 * more here.
839 dmat->alignment = alignment;
840 dmat->boundary = boundary;
841 dmat->maxsize = maxsize;
842 *ret_tag = dmat;
843 return (0);
846 void
847 ahc_dma_tag_destroy(struct ahc_softc *ahc, bus_dma_tag_t dmat)
849 kfree(dmat);
853 ahc_dmamem_alloc(struct ahc_softc *ahc, bus_dma_tag_t dmat, void** vaddr,
854 int flags, bus_dmamap_t *mapp)
856 /* XXX: check if we really need the GFP_ATOMIC and unwind this mess! */
857 *vaddr = dma_alloc_coherent(ahc->dev, dmat->maxsize, mapp, GFP_ATOMIC);
858 if (*vaddr == NULL)
859 return ENOMEM;
860 return 0;
863 void
864 ahc_dmamem_free(struct ahc_softc *ahc, bus_dma_tag_t dmat,
865 void* vaddr, bus_dmamap_t map)
867 dma_free_coherent(ahc->dev, dmat->maxsize, vaddr, map);
871 ahc_dmamap_load(struct ahc_softc *ahc, bus_dma_tag_t dmat, bus_dmamap_t map,
872 void *buf, bus_size_t buflen, bus_dmamap_callback_t *cb,
873 void *cb_arg, int flags)
876 * Assume for now that this will only be used during
877 * initialization and not for per-transaction buffer mapping.
879 bus_dma_segment_t stack_sg;
881 stack_sg.ds_addr = map;
882 stack_sg.ds_len = dmat->maxsize;
883 cb(cb_arg, &stack_sg, /*nseg*/1, /*error*/0);
884 return (0);
887 void
888 ahc_dmamap_destroy(struct ahc_softc *ahc, bus_dma_tag_t dmat, bus_dmamap_t map)
893 ahc_dmamap_unload(struct ahc_softc *ahc, bus_dma_tag_t dmat, bus_dmamap_t map)
895 /* Nothing to do */
896 return (0);
899 static void
900 ahc_linux_setup_tag_info_global(char *p)
902 int tags, i, j;
904 tags = simple_strtoul(p + 1, NULL, 0) & 0xff;
905 printk("Setting Global Tags= %d\n", tags);
907 for (i = 0; i < ARRAY_SIZE(aic7xxx_tag_info); i++) {
908 for (j = 0; j < AHC_NUM_TARGETS; j++) {
909 aic7xxx_tag_info[i].tag_commands[j] = tags;
914 static void
915 ahc_linux_setup_tag_info(u_long arg, int instance, int targ, int32_t value)
918 if ((instance >= 0) && (targ >= 0)
919 && (instance < ARRAY_SIZE(aic7xxx_tag_info))
920 && (targ < AHC_NUM_TARGETS)) {
921 aic7xxx_tag_info[instance].tag_commands[targ] = value & 0xff;
922 if (bootverbose)
923 printk("tag_info[%d:%d] = %d\n", instance, targ, value);
927 static char *
928 ahc_parse_brace_option(char *opt_name, char *opt_arg, char *end, int depth,
929 void (*callback)(u_long, int, int, int32_t),
930 u_long callback_arg)
932 char *tok_end;
933 char *tok_end2;
934 int i;
935 int instance;
936 int targ;
937 int done;
938 char tok_list[] = {'.', ',', '{', '}', '\0'};
940 /* All options use a ':' name/arg separator */
941 if (*opt_arg != ':')
942 return (opt_arg);
943 opt_arg++;
944 instance = -1;
945 targ = -1;
946 done = FALSE;
948 * Restore separator that may be in
949 * the middle of our option argument.
951 tok_end = strchr(opt_arg, '\0');
952 if (tok_end < end)
953 *tok_end = ',';
954 while (!done) {
955 switch (*opt_arg) {
956 case '{':
957 if (instance == -1) {
958 instance = 0;
959 } else {
960 if (depth > 1) {
961 if (targ == -1)
962 targ = 0;
963 } else {
964 printk("Malformed Option %s\n",
965 opt_name);
966 done = TRUE;
969 opt_arg++;
970 break;
971 case '}':
972 if (targ != -1)
973 targ = -1;
974 else if (instance != -1)
975 instance = -1;
976 opt_arg++;
977 break;
978 case ',':
979 case '.':
980 if (instance == -1)
981 done = TRUE;
982 else if (targ >= 0)
983 targ++;
984 else if (instance >= 0)
985 instance++;
986 opt_arg++;
987 break;
988 case '\0':
989 done = TRUE;
990 break;
991 default:
992 tok_end = end;
993 for (i = 0; tok_list[i]; i++) {
994 tok_end2 = strchr(opt_arg, tok_list[i]);
995 if ((tok_end2) && (tok_end2 < tok_end))
996 tok_end = tok_end2;
998 callback(callback_arg, instance, targ,
999 simple_strtol(opt_arg, NULL, 0));
1000 opt_arg = tok_end;
1001 break;
1004 return (opt_arg);
1008 * Handle Linux boot parameters. This routine allows for assigning a value
1009 * to a parameter with a ':' between the parameter and the value.
1010 * ie. aic7xxx=stpwlev:1,extended
1012 static int
1013 aic7xxx_setup(char *s)
1015 int i, n;
1016 char *p;
1017 char *end;
1019 static const struct {
1020 const char *name;
1021 uint32_t *flag;
1022 } options[] = {
1023 { "extended", &aic7xxx_extended },
1024 { "no_reset", &aic7xxx_no_reset },
1025 { "verbose", &aic7xxx_verbose },
1026 { "allow_memio", &aic7xxx_allow_memio},
1027 #ifdef AHC_DEBUG
1028 { "debug", &ahc_debug },
1029 #endif
1030 { "periodic_otag", &aic7xxx_periodic_otag },
1031 { "pci_parity", &aic7xxx_pci_parity },
1032 { "seltime", &aic7xxx_seltime },
1033 { "tag_info", NULL },
1034 { "global_tag_depth", NULL },
1035 { "dv", NULL }
1038 end = strchr(s, '\0');
1041 * XXX ia64 gcc isn't smart enough to know that ARRAY_SIZE
1042 * will never be 0 in this case.
1044 n = 0;
1046 while ((p = strsep(&s, ",.")) != NULL) {
1047 if (*p == '\0')
1048 continue;
1049 for (i = 0; i < ARRAY_SIZE(options); i++) {
1051 n = strlen(options[i].name);
1052 if (strncmp(options[i].name, p, n) == 0)
1053 break;
1055 if (i == ARRAY_SIZE(options))
1056 continue;
1058 if (strncmp(p, "global_tag_depth", n) == 0) {
1059 ahc_linux_setup_tag_info_global(p + n);
1060 } else if (strncmp(p, "tag_info", n) == 0) {
1061 s = ahc_parse_brace_option("tag_info", p + n, end,
1062 2, ahc_linux_setup_tag_info, 0);
1063 } else if (p[n] == ':') {
1064 *(options[i].flag) = simple_strtoul(p + n + 1, NULL, 0);
1065 } else if (strncmp(p, "verbose", n) == 0) {
1066 *(options[i].flag) = 1;
1067 } else {
1068 *(options[i].flag) ^= 0xFFFFFFFF;
1071 return 1;
1074 __setup("aic7xxx=", aic7xxx_setup);
1076 uint32_t aic7xxx_verbose;
1079 ahc_linux_register_host(struct ahc_softc *ahc, struct scsi_host_template *template)
1081 char buf[80];
1082 struct Scsi_Host *host;
1083 char *new_name;
1084 u_long s;
1085 int retval;
1087 template->name = ahc->description;
1088 host = scsi_host_alloc(template, sizeof(struct ahc_softc *));
1089 if (host == NULL)
1090 return (ENOMEM);
1092 *((struct ahc_softc **)host->hostdata) = ahc;
1093 ahc->platform_data->host = host;
1094 host->can_queue = AHC_MAX_QUEUE;
1095 host->cmd_per_lun = 2;
1096 /* XXX No way to communicate the ID for multiple channels */
1097 host->this_id = ahc->our_id;
1098 host->irq = ahc->platform_data->irq;
1099 host->max_id = (ahc->features & AHC_WIDE) ? 16 : 8;
1100 host->max_lun = AHC_NUM_LUNS;
1101 host->max_channel = (ahc->features & AHC_TWIN) ? 1 : 0;
1102 host->sg_tablesize = AHC_NSEG;
1103 ahc_lock(ahc, &s);
1104 ahc_set_unit(ahc, ahc_linux_unit++);
1105 ahc_unlock(ahc, &s);
1106 sprintf(buf, "scsi%d", host->host_no);
1107 new_name = kmalloc(strlen(buf) + 1, GFP_ATOMIC);
1108 if (new_name != NULL) {
1109 strcpy(new_name, buf);
1110 ahc_set_name(ahc, new_name);
1112 host->unique_id = ahc->unit;
1113 ahc_linux_initialize_scsi_bus(ahc);
1114 ahc_intr_enable(ahc, TRUE);
1116 host->transportt = ahc_linux_transport_template;
1118 retval = scsi_add_host(host, ahc->dev);
1119 if (retval) {
1120 printk(KERN_WARNING "aic7xxx: scsi_add_host failed\n");
1121 scsi_host_put(host);
1122 return retval;
1125 scsi_scan_host(host);
1126 return 0;
1130 * Place the SCSI bus into a known state by either resetting it,
1131 * or forcing transfer negotiations on the next command to any
1132 * target.
1134 static void
1135 ahc_linux_initialize_scsi_bus(struct ahc_softc *ahc)
1137 int i;
1138 int numtarg;
1139 unsigned long s;
1141 i = 0;
1142 numtarg = 0;
1144 ahc_lock(ahc, &s);
1146 if (aic7xxx_no_reset != 0)
1147 ahc->flags &= ~(AHC_RESET_BUS_A|AHC_RESET_BUS_B);
1149 if ((ahc->flags & AHC_RESET_BUS_A) != 0)
1150 ahc_reset_channel(ahc, 'A', /*initiate_reset*/TRUE);
1151 else
1152 numtarg = (ahc->features & AHC_WIDE) ? 16 : 8;
1154 if ((ahc->features & AHC_TWIN) != 0) {
1156 if ((ahc->flags & AHC_RESET_BUS_B) != 0) {
1157 ahc_reset_channel(ahc, 'B', /*initiate_reset*/TRUE);
1158 } else {
1159 if (numtarg == 0)
1160 i = 8;
1161 numtarg += 8;
1166 * Force negotiation to async for all targets that
1167 * will not see an initial bus reset.
1169 for (; i < numtarg; i++) {
1170 struct ahc_devinfo devinfo;
1171 struct ahc_initiator_tinfo *tinfo;
1172 struct ahc_tmode_tstate *tstate;
1173 u_int our_id;
1174 u_int target_id;
1175 char channel;
1177 channel = 'A';
1178 our_id = ahc->our_id;
1179 target_id = i;
1180 if (i > 7 && (ahc->features & AHC_TWIN) != 0) {
1181 channel = 'B';
1182 our_id = ahc->our_id_b;
1183 target_id = i % 8;
1185 tinfo = ahc_fetch_transinfo(ahc, channel, our_id,
1186 target_id, &tstate);
1187 ahc_compile_devinfo(&devinfo, our_id, target_id,
1188 CAM_LUN_WILDCARD, channel, ROLE_INITIATOR);
1189 ahc_update_neg_request(ahc, &devinfo, tstate,
1190 tinfo, AHC_NEG_ALWAYS);
1192 ahc_unlock(ahc, &s);
1193 /* Give the bus some time to recover */
1194 if ((ahc->flags & (AHC_RESET_BUS_A|AHC_RESET_BUS_B)) != 0) {
1195 ahc_linux_freeze_simq(ahc);
1196 msleep(AIC7XXX_RESET_DELAY);
1197 ahc_linux_release_simq(ahc);
1202 ahc_platform_alloc(struct ahc_softc *ahc, void *platform_arg)
1205 ahc->platform_data =
1206 kzalloc(sizeof(struct ahc_platform_data), GFP_ATOMIC);
1207 if (ahc->platform_data == NULL)
1208 return (ENOMEM);
1209 ahc->platform_data->irq = AHC_LINUX_NOIRQ;
1210 ahc_lockinit(ahc);
1211 ahc->seltime = (aic7xxx_seltime & 0x3) << 4;
1212 ahc->seltime_b = (aic7xxx_seltime & 0x3) << 4;
1213 if (aic7xxx_pci_parity == 0)
1214 ahc->flags |= AHC_DISABLE_PCI_PERR;
1216 return (0);
1219 void
1220 ahc_platform_free(struct ahc_softc *ahc)
1222 struct scsi_target *starget;
1223 int i;
1225 if (ahc->platform_data != NULL) {
1226 /* destroy all of the device and target objects */
1227 for (i = 0; i < AHC_NUM_TARGETS; i++) {
1228 starget = ahc->platform_data->starget[i];
1229 if (starget != NULL) {
1230 ahc->platform_data->starget[i] = NULL;
1234 if (ahc->platform_data->irq != AHC_LINUX_NOIRQ)
1235 free_irq(ahc->platform_data->irq, ahc);
1236 if (ahc->tag == BUS_SPACE_PIO
1237 && ahc->bsh.ioport != 0)
1238 release_region(ahc->bsh.ioport, 256);
1239 if (ahc->tag == BUS_SPACE_MEMIO
1240 && ahc->bsh.maddr != NULL) {
1241 iounmap(ahc->bsh.maddr);
1242 release_mem_region(ahc->platform_data->mem_busaddr,
1243 0x1000);
1246 if (ahc->platform_data->host)
1247 scsi_host_put(ahc->platform_data->host);
1249 kfree(ahc->platform_data);
1253 void
1254 ahc_platform_freeze_devq(struct ahc_softc *ahc, struct scb *scb)
1256 ahc_platform_abort_scbs(ahc, SCB_GET_TARGET(ahc, scb),
1257 SCB_GET_CHANNEL(ahc, scb),
1258 SCB_GET_LUN(scb), SCB_LIST_NULL,
1259 ROLE_UNKNOWN, CAM_REQUEUE_REQ);
1262 void
1263 ahc_platform_set_tags(struct ahc_softc *ahc, struct scsi_device *sdev,
1264 struct ahc_devinfo *devinfo, ahc_queue_alg alg)
1266 struct ahc_linux_device *dev;
1267 int was_queuing;
1268 int now_queuing;
1270 if (sdev == NULL)
1271 return;
1272 dev = scsi_transport_device_data(sdev);
1274 was_queuing = dev->flags & (AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED);
1275 switch (alg) {
1276 default:
1277 case AHC_QUEUE_NONE:
1278 now_queuing = 0;
1279 break;
1280 case AHC_QUEUE_BASIC:
1281 now_queuing = AHC_DEV_Q_BASIC;
1282 break;
1283 case AHC_QUEUE_TAGGED:
1284 now_queuing = AHC_DEV_Q_TAGGED;
1285 break;
1287 if ((dev->flags & AHC_DEV_FREEZE_TIL_EMPTY) == 0
1288 && (was_queuing != now_queuing)
1289 && (dev->active != 0)) {
1290 dev->flags |= AHC_DEV_FREEZE_TIL_EMPTY;
1291 dev->qfrozen++;
1294 dev->flags &= ~(AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED|AHC_DEV_PERIODIC_OTAG);
1295 if (now_queuing) {
1296 u_int usertags;
1298 usertags = ahc_linux_user_tagdepth(ahc, devinfo);
1299 if (!was_queuing) {
1301 * Start out aggressively and allow our
1302 * dynamic queue depth algorithm to take
1303 * care of the rest.
1305 dev->maxtags = usertags;
1306 dev->openings = dev->maxtags - dev->active;
1308 if (dev->maxtags == 0) {
1310 * Queueing is disabled by the user.
1312 dev->openings = 1;
1313 } else if (alg == AHC_QUEUE_TAGGED) {
1314 dev->flags |= AHC_DEV_Q_TAGGED;
1315 if (aic7xxx_periodic_otag != 0)
1316 dev->flags |= AHC_DEV_PERIODIC_OTAG;
1317 } else
1318 dev->flags |= AHC_DEV_Q_BASIC;
1319 } else {
1320 /* We can only have one opening. */
1321 dev->maxtags = 0;
1322 dev->openings = 1 - dev->active;
1324 switch ((dev->flags & (AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED))) {
1325 case AHC_DEV_Q_BASIC:
1326 case AHC_DEV_Q_TAGGED:
1327 scsi_change_queue_depth(sdev,
1328 dev->openings + dev->active);
1329 break;
1330 default:
1332 * We allow the OS to queue 2 untagged transactions to
1333 * us at any time even though we can only execute them
1334 * serially on the controller/device. This should
1335 * remove some latency.
1337 scsi_change_queue_depth(sdev, 2);
1338 break;
1343 ahc_platform_abort_scbs(struct ahc_softc *ahc, int target, char channel,
1344 int lun, u_int tag, role_t role, uint32_t status)
1346 return 0;
1349 static u_int
1350 ahc_linux_user_tagdepth(struct ahc_softc *ahc, struct ahc_devinfo *devinfo)
1352 static int warned_user;
1353 u_int tags;
1355 tags = 0;
1356 if ((ahc->user_discenable & devinfo->target_mask) != 0) {
1357 if (ahc->unit >= ARRAY_SIZE(aic7xxx_tag_info)) {
1358 if (warned_user == 0) {
1360 printk(KERN_WARNING
1361 "aic7xxx: WARNING: Insufficient tag_info instances\n"
1362 "aic7xxx: for installed controllers. Using defaults\n"
1363 "aic7xxx: Please update the aic7xxx_tag_info array in\n"
1364 "aic7xxx: the aic7xxx_osm..c source file.\n");
1365 warned_user++;
1367 tags = AHC_MAX_QUEUE;
1368 } else {
1369 adapter_tag_info_t *tag_info;
1371 tag_info = &aic7xxx_tag_info[ahc->unit];
1372 tags = tag_info->tag_commands[devinfo->target_offset];
1373 if (tags > AHC_MAX_QUEUE)
1374 tags = AHC_MAX_QUEUE;
1377 return (tags);
1381 * Determines the queue depth for a given device.
1383 static void
1384 ahc_linux_device_queue_depth(struct scsi_device *sdev)
1386 struct ahc_devinfo devinfo;
1387 u_int tags;
1388 struct ahc_softc *ahc = *((struct ahc_softc **)sdev->host->hostdata);
1390 ahc_compile_devinfo(&devinfo,
1391 sdev->sdev_target->channel == 0
1392 ? ahc->our_id : ahc->our_id_b,
1393 sdev->sdev_target->id, sdev->lun,
1394 sdev->sdev_target->channel == 0 ? 'A' : 'B',
1395 ROLE_INITIATOR);
1396 tags = ahc_linux_user_tagdepth(ahc, &devinfo);
1397 if (tags != 0 && sdev->tagged_supported != 0) {
1399 ahc_platform_set_tags(ahc, sdev, &devinfo, AHC_QUEUE_TAGGED);
1400 ahc_send_async(ahc, devinfo.channel, devinfo.target,
1401 devinfo.lun, AC_TRANSFER_NEG);
1402 ahc_print_devinfo(ahc, &devinfo);
1403 printk("Tagged Queuing enabled. Depth %d\n", tags);
1404 } else {
1405 ahc_platform_set_tags(ahc, sdev, &devinfo, AHC_QUEUE_NONE);
1406 ahc_send_async(ahc, devinfo.channel, devinfo.target,
1407 devinfo.lun, AC_TRANSFER_NEG);
1411 static int
1412 ahc_linux_run_command(struct ahc_softc *ahc, struct ahc_linux_device *dev,
1413 struct scsi_cmnd *cmd)
1415 struct scb *scb;
1416 struct hardware_scb *hscb;
1417 struct ahc_initiator_tinfo *tinfo;
1418 struct ahc_tmode_tstate *tstate;
1419 uint16_t mask;
1420 struct scb_tailq *untagged_q = NULL;
1421 int nseg;
1424 * Schedule us to run later. The only reason we are not
1425 * running is because the whole controller Q is frozen.
1427 if (ahc->platform_data->qfrozen != 0)
1428 return SCSI_MLQUEUE_HOST_BUSY;
1431 * We only allow one untagged transaction
1432 * per target in the initiator role unless
1433 * we are storing a full busy target *lun*
1434 * table in SCB space.
1436 if (!(cmd->flags & SCMD_TAGGED)
1437 && (ahc->features & AHC_SCB_BTT) == 0) {
1438 int target_offset;
1440 target_offset = cmd->device->id + cmd->device->channel * 8;
1441 untagged_q = &(ahc->untagged_queues[target_offset]);
1442 if (!TAILQ_EMPTY(untagged_q))
1443 /* if we're already executing an untagged command
1444 * we're busy to another */
1445 return SCSI_MLQUEUE_DEVICE_BUSY;
1448 nseg = scsi_dma_map(cmd);
1449 if (nseg < 0)
1450 return SCSI_MLQUEUE_HOST_BUSY;
1453 * Get an scb to use.
1455 scb = ahc_get_scb(ahc);
1456 if (!scb) {
1457 scsi_dma_unmap(cmd);
1458 return SCSI_MLQUEUE_HOST_BUSY;
1461 scb->io_ctx = cmd;
1462 scb->platform_data->dev = dev;
1463 hscb = scb->hscb;
1464 cmd->host_scribble = (char *)scb;
1467 * Fill out basics of the HSCB.
1469 hscb->control = 0;
1470 hscb->scsiid = BUILD_SCSIID(ahc, cmd);
1471 hscb->lun = cmd->device->lun;
1472 mask = SCB_GET_TARGET_MASK(ahc, scb);
1473 tinfo = ahc_fetch_transinfo(ahc, SCB_GET_CHANNEL(ahc, scb),
1474 SCB_GET_OUR_ID(scb),
1475 SCB_GET_TARGET(ahc, scb), &tstate);
1476 hscb->scsirate = tinfo->scsirate;
1477 hscb->scsioffset = tinfo->curr.offset;
1478 if ((tstate->ultraenb & mask) != 0)
1479 hscb->control |= ULTRAENB;
1481 if ((ahc->user_discenable & mask) != 0)
1482 hscb->control |= DISCENB;
1484 if ((tstate->auto_negotiate & mask) != 0) {
1485 scb->flags |= SCB_AUTO_NEGOTIATE;
1486 scb->hscb->control |= MK_MESSAGE;
1489 if ((dev->flags & (AHC_DEV_Q_TAGGED|AHC_DEV_Q_BASIC)) != 0) {
1490 if (dev->commands_since_idle_or_otag == AHC_OTAG_THRESH
1491 && (dev->flags & AHC_DEV_Q_TAGGED) != 0) {
1492 hscb->control |= MSG_ORDERED_TASK;
1493 dev->commands_since_idle_or_otag = 0;
1494 } else {
1495 hscb->control |= MSG_SIMPLE_TASK;
1499 hscb->cdb_len = cmd->cmd_len;
1500 if (hscb->cdb_len <= 12) {
1501 memcpy(hscb->shared_data.cdb, cmd->cmnd, hscb->cdb_len);
1502 } else {
1503 memcpy(hscb->cdb32, cmd->cmnd, hscb->cdb_len);
1504 scb->flags |= SCB_CDB32_PTR;
1507 scb->platform_data->xfer_len = 0;
1508 ahc_set_residual(scb, 0);
1509 ahc_set_sense_residual(scb, 0);
1510 scb->sg_count = 0;
1512 if (nseg > 0) {
1513 struct ahc_dma_seg *sg;
1514 struct scatterlist *cur_seg;
1515 int i;
1517 /* Copy the segments into the SG list. */
1518 sg = scb->sg_list;
1520 * The sg_count may be larger than nseg if
1521 * a transfer crosses a 32bit page.
1523 scsi_for_each_sg(cmd, cur_seg, nseg, i) {
1524 dma_addr_t addr;
1525 bus_size_t len;
1526 int consumed;
1528 addr = sg_dma_address(cur_seg);
1529 len = sg_dma_len(cur_seg);
1530 consumed = ahc_linux_map_seg(ahc, scb,
1531 sg, addr, len);
1532 sg += consumed;
1533 scb->sg_count += consumed;
1535 sg--;
1536 sg->len |= ahc_htole32(AHC_DMA_LAST_SEG);
1539 * Reset the sg list pointer.
1541 scb->hscb->sgptr =
1542 ahc_htole32(scb->sg_list_phys | SG_FULL_RESID);
1545 * Copy the first SG into the "current"
1546 * data pointer area.
1548 scb->hscb->dataptr = scb->sg_list->addr;
1549 scb->hscb->datacnt = scb->sg_list->len;
1550 } else {
1551 scb->hscb->sgptr = ahc_htole32(SG_LIST_NULL);
1552 scb->hscb->dataptr = 0;
1553 scb->hscb->datacnt = 0;
1554 scb->sg_count = 0;
1557 LIST_INSERT_HEAD(&ahc->pending_scbs, scb, pending_links);
1558 dev->openings--;
1559 dev->active++;
1560 dev->commands_issued++;
1561 if ((dev->flags & AHC_DEV_PERIODIC_OTAG) != 0)
1562 dev->commands_since_idle_or_otag++;
1564 scb->flags |= SCB_ACTIVE;
1565 if (untagged_q) {
1566 TAILQ_INSERT_TAIL(untagged_q, scb, links.tqe);
1567 scb->flags |= SCB_UNTAGGEDQ;
1569 ahc_queue_scb(ahc, scb);
1570 return 0;
1574 * SCSI controller interrupt handler.
1576 irqreturn_t
1577 ahc_linux_isr(int irq, void *dev_id)
1579 struct ahc_softc *ahc;
1580 u_long flags;
1581 int ours;
1583 ahc = (struct ahc_softc *) dev_id;
1584 ahc_lock(ahc, &flags);
1585 ours = ahc_intr(ahc);
1586 ahc_unlock(ahc, &flags);
1587 return IRQ_RETVAL(ours);
1590 void
1591 ahc_platform_flushwork(struct ahc_softc *ahc)
1596 void
1597 ahc_send_async(struct ahc_softc *ahc, char channel,
1598 u_int target, u_int lun, ac_code code)
1600 switch (code) {
1601 case AC_TRANSFER_NEG:
1603 struct scsi_target *starget;
1604 struct ahc_linux_target *targ;
1605 struct ahc_initiator_tinfo *tinfo;
1606 struct ahc_tmode_tstate *tstate;
1607 int target_offset;
1608 unsigned int target_ppr_options;
1610 BUG_ON(target == CAM_TARGET_WILDCARD);
1612 tinfo = ahc_fetch_transinfo(ahc, channel,
1613 channel == 'A' ? ahc->our_id
1614 : ahc->our_id_b,
1615 target, &tstate);
1618 * Don't bother reporting results while
1619 * negotiations are still pending.
1621 if (tinfo->curr.period != tinfo->goal.period
1622 || tinfo->curr.width != tinfo->goal.width
1623 || tinfo->curr.offset != tinfo->goal.offset
1624 || tinfo->curr.ppr_options != tinfo->goal.ppr_options)
1625 if (bootverbose == 0)
1626 break;
1629 * Don't bother reporting results that
1630 * are identical to those last reported.
1632 target_offset = target;
1633 if (channel == 'B')
1634 target_offset += 8;
1635 starget = ahc->platform_data->starget[target_offset];
1636 if (starget == NULL)
1637 break;
1638 targ = scsi_transport_target_data(starget);
1640 target_ppr_options =
1641 (spi_dt(starget) ? MSG_EXT_PPR_DT_REQ : 0)
1642 + (spi_qas(starget) ? MSG_EXT_PPR_QAS_REQ : 0)
1643 + (spi_iu(starget) ? MSG_EXT_PPR_IU_REQ : 0);
1645 if (tinfo->curr.period == spi_period(starget)
1646 && tinfo->curr.width == spi_width(starget)
1647 && tinfo->curr.offset == spi_offset(starget)
1648 && tinfo->curr.ppr_options == target_ppr_options)
1649 if (bootverbose == 0)
1650 break;
1652 spi_period(starget) = tinfo->curr.period;
1653 spi_width(starget) = tinfo->curr.width;
1654 spi_offset(starget) = tinfo->curr.offset;
1655 spi_dt(starget) = tinfo->curr.ppr_options & MSG_EXT_PPR_DT_REQ ? 1 : 0;
1656 spi_qas(starget) = tinfo->curr.ppr_options & MSG_EXT_PPR_QAS_REQ ? 1 : 0;
1657 spi_iu(starget) = tinfo->curr.ppr_options & MSG_EXT_PPR_IU_REQ ? 1 : 0;
1658 spi_display_xfer_agreement(starget);
1659 break;
1661 case AC_SENT_BDR:
1663 WARN_ON(lun != CAM_LUN_WILDCARD);
1664 scsi_report_device_reset(ahc->platform_data->host,
1665 channel - 'A', target);
1666 break;
1668 case AC_BUS_RESET:
1669 if (ahc->platform_data->host != NULL) {
1670 scsi_report_bus_reset(ahc->platform_data->host,
1671 channel - 'A');
1673 break;
1674 default:
1675 panic("ahc_send_async: Unexpected async event");
1680 * Calls the higher level scsi done function and frees the scb.
1682 void
1683 ahc_done(struct ahc_softc *ahc, struct scb *scb)
1685 struct scsi_cmnd *cmd;
1686 struct ahc_linux_device *dev;
1688 LIST_REMOVE(scb, pending_links);
1689 if ((scb->flags & SCB_UNTAGGEDQ) != 0) {
1690 struct scb_tailq *untagged_q;
1691 int target_offset;
1693 target_offset = SCB_GET_TARGET_OFFSET(ahc, scb);
1694 untagged_q = &(ahc->untagged_queues[target_offset]);
1695 TAILQ_REMOVE(untagged_q, scb, links.tqe);
1696 BUG_ON(!TAILQ_EMPTY(untagged_q));
1697 } else if ((scb->flags & SCB_ACTIVE) == 0) {
1699 * Transactions aborted from the untagged queue may
1700 * not have been dispatched to the controller, so
1701 * only check the SCB_ACTIVE flag for tagged transactions.
1703 printk("SCB %d done'd twice\n", scb->hscb->tag);
1704 ahc_dump_card_state(ahc);
1705 panic("Stopping for safety");
1707 cmd = scb->io_ctx;
1708 dev = scb->platform_data->dev;
1709 dev->active--;
1710 dev->openings++;
1711 if ((cmd->result & (CAM_DEV_QFRZN << 16)) != 0) {
1712 cmd->result &= ~(CAM_DEV_QFRZN << 16);
1713 dev->qfrozen--;
1715 ahc_linux_unmap_scb(ahc, scb);
1718 * Guard against stale sense data.
1719 * The Linux mid-layer assumes that sense
1720 * was retrieved anytime the first byte of
1721 * the sense buffer looks "sane".
1723 cmd->sense_buffer[0] = 0;
1724 if (ahc_get_transaction_status(scb) == CAM_REQ_INPROG) {
1725 uint32_t amount_xferred;
1727 amount_xferred =
1728 ahc_get_transfer_length(scb) - ahc_get_residual(scb);
1729 if ((scb->flags & SCB_TRANSMISSION_ERROR) != 0) {
1730 #ifdef AHC_DEBUG
1731 if ((ahc_debug & AHC_SHOW_MISC) != 0) {
1732 ahc_print_path(ahc, scb);
1733 printk("Set CAM_UNCOR_PARITY\n");
1735 #endif
1736 ahc_set_transaction_status(scb, CAM_UNCOR_PARITY);
1737 #ifdef AHC_REPORT_UNDERFLOWS
1739 * This code is disabled by default as some
1740 * clients of the SCSI system do not properly
1741 * initialize the underflow parameter. This
1742 * results in spurious termination of commands
1743 * that complete as expected (e.g. underflow is
1744 * allowed as command can return variable amounts
1745 * of data.
1747 } else if (amount_xferred < scb->io_ctx->underflow) {
1748 u_int i;
1750 ahc_print_path(ahc, scb);
1751 printk("CDB:");
1752 for (i = 0; i < scb->io_ctx->cmd_len; i++)
1753 printk(" 0x%x", scb->io_ctx->cmnd[i]);
1754 printk("\n");
1755 ahc_print_path(ahc, scb);
1756 printk("Saw underflow (%ld of %ld bytes). "
1757 "Treated as error\n",
1758 ahc_get_residual(scb),
1759 ahc_get_transfer_length(scb));
1760 ahc_set_transaction_status(scb, CAM_DATA_RUN_ERR);
1761 #endif
1762 } else {
1763 ahc_set_transaction_status(scb, CAM_REQ_CMP);
1765 } else if (ahc_get_transaction_status(scb) == CAM_SCSI_STATUS_ERROR) {
1766 ahc_linux_handle_scsi_status(ahc, cmd->device, scb);
1769 if (dev->openings == 1
1770 && ahc_get_transaction_status(scb) == CAM_REQ_CMP
1771 && ahc_get_scsi_status(scb) != SCSI_STATUS_QUEUE_FULL)
1772 dev->tag_success_count++;
1774 * Some devices deal with temporary internal resource
1775 * shortages by returning queue full. When the queue
1776 * full occurrs, we throttle back. Slowly try to get
1777 * back to our previous queue depth.
1779 if ((dev->openings + dev->active) < dev->maxtags
1780 && dev->tag_success_count > AHC_TAG_SUCCESS_INTERVAL) {
1781 dev->tag_success_count = 0;
1782 dev->openings++;
1785 if (dev->active == 0)
1786 dev->commands_since_idle_or_otag = 0;
1788 if ((scb->flags & SCB_RECOVERY_SCB) != 0) {
1789 printk("Recovery SCB completes\n");
1790 if (ahc_get_transaction_status(scb) == CAM_BDR_SENT
1791 || ahc_get_transaction_status(scb) == CAM_REQ_ABORTED)
1792 ahc_set_transaction_status(scb, CAM_CMD_TIMEOUT);
1794 if (ahc->platform_data->eh_done)
1795 complete(ahc->platform_data->eh_done);
1798 ahc_free_scb(ahc, scb);
1799 ahc_linux_queue_cmd_complete(ahc, cmd);
1802 static void
1803 ahc_linux_handle_scsi_status(struct ahc_softc *ahc,
1804 struct scsi_device *sdev, struct scb *scb)
1806 struct ahc_devinfo devinfo;
1807 struct ahc_linux_device *dev = scsi_transport_device_data(sdev);
1809 ahc_compile_devinfo(&devinfo,
1810 ahc->our_id,
1811 sdev->sdev_target->id, sdev->lun,
1812 sdev->sdev_target->channel == 0 ? 'A' : 'B',
1813 ROLE_INITIATOR);
1816 * We don't currently trust the mid-layer to
1817 * properly deal with queue full or busy. So,
1818 * when one occurs, we tell the mid-layer to
1819 * unconditionally requeue the command to us
1820 * so that we can retry it ourselves. We also
1821 * implement our own throttling mechanism so
1822 * we don't clobber the device with too many
1823 * commands.
1825 switch (ahc_get_scsi_status(scb)) {
1826 default:
1827 break;
1828 case SCSI_STATUS_CHECK_COND:
1829 case SCSI_STATUS_CMD_TERMINATED:
1831 struct scsi_cmnd *cmd;
1834 * Copy sense information to the OS's cmd
1835 * structure if it is available.
1837 cmd = scb->io_ctx;
1838 if (scb->flags & SCB_SENSE) {
1839 u_int sense_size;
1841 sense_size = min(sizeof(struct scsi_sense_data)
1842 - ahc_get_sense_residual(scb),
1843 (u_long)SCSI_SENSE_BUFFERSIZE);
1844 memcpy(cmd->sense_buffer,
1845 ahc_get_sense_buf(ahc, scb), sense_size);
1846 if (sense_size < SCSI_SENSE_BUFFERSIZE)
1847 memset(&cmd->sense_buffer[sense_size], 0,
1848 SCSI_SENSE_BUFFERSIZE - sense_size);
1849 cmd->result |= (DRIVER_SENSE << 24);
1850 #ifdef AHC_DEBUG
1851 if (ahc_debug & AHC_SHOW_SENSE) {
1852 int i;
1854 printk("Copied %d bytes of sense data:",
1855 sense_size);
1856 for (i = 0; i < sense_size; i++) {
1857 if ((i & 0xF) == 0)
1858 printk("\n");
1859 printk("0x%x ", cmd->sense_buffer[i]);
1861 printk("\n");
1863 #endif
1865 break;
1867 case SCSI_STATUS_QUEUE_FULL:
1870 * By the time the core driver has returned this
1871 * command, all other commands that were queued
1872 * to us but not the device have been returned.
1873 * This ensures that dev->active is equal to
1874 * the number of commands actually queued to
1875 * the device.
1877 dev->tag_success_count = 0;
1878 if (dev->active != 0) {
1880 * Drop our opening count to the number
1881 * of commands currently outstanding.
1883 dev->openings = 0;
1885 ahc_print_path(ahc, scb);
1886 printk("Dropping tag count to %d\n", dev->active);
1888 if (dev->active == dev->tags_on_last_queuefull) {
1890 dev->last_queuefull_same_count++;
1892 * If we repeatedly see a queue full
1893 * at the same queue depth, this
1894 * device has a fixed number of tag
1895 * slots. Lock in this tag depth
1896 * so we stop seeing queue fulls from
1897 * this device.
1899 if (dev->last_queuefull_same_count
1900 == AHC_LOCK_TAGS_COUNT) {
1901 dev->maxtags = dev->active;
1902 ahc_print_path(ahc, scb);
1903 printk("Locking max tag count at %d\n",
1904 dev->active);
1906 } else {
1907 dev->tags_on_last_queuefull = dev->active;
1908 dev->last_queuefull_same_count = 0;
1910 ahc_set_transaction_status(scb, CAM_REQUEUE_REQ);
1911 ahc_set_scsi_status(scb, SCSI_STATUS_OK);
1912 ahc_platform_set_tags(ahc, sdev, &devinfo,
1913 (dev->flags & AHC_DEV_Q_BASIC)
1914 ? AHC_QUEUE_BASIC : AHC_QUEUE_TAGGED);
1915 break;
1918 * Drop down to a single opening, and treat this
1919 * as if the target returned BUSY SCSI status.
1921 dev->openings = 1;
1922 ahc_set_scsi_status(scb, SCSI_STATUS_BUSY);
1923 ahc_platform_set_tags(ahc, sdev, &devinfo,
1924 (dev->flags & AHC_DEV_Q_BASIC)
1925 ? AHC_QUEUE_BASIC : AHC_QUEUE_TAGGED);
1926 break;
1931 static void
1932 ahc_linux_queue_cmd_complete(struct ahc_softc *ahc, struct scsi_cmnd *cmd)
1935 * Map CAM error codes into Linux Error codes. We
1936 * avoid the conversion so that the DV code has the
1937 * full error information available when making
1938 * state change decisions.
1941 u_int new_status;
1943 switch (ahc_cmd_get_transaction_status(cmd)) {
1944 case CAM_REQ_INPROG:
1945 case CAM_REQ_CMP:
1946 case CAM_SCSI_STATUS_ERROR:
1947 new_status = DID_OK;
1948 break;
1949 case CAM_REQ_ABORTED:
1950 new_status = DID_ABORT;
1951 break;
1952 case CAM_BUSY:
1953 new_status = DID_BUS_BUSY;
1954 break;
1955 case CAM_REQ_INVALID:
1956 case CAM_PATH_INVALID:
1957 new_status = DID_BAD_TARGET;
1958 break;
1959 case CAM_SEL_TIMEOUT:
1960 new_status = DID_NO_CONNECT;
1961 break;
1962 case CAM_SCSI_BUS_RESET:
1963 case CAM_BDR_SENT:
1964 new_status = DID_RESET;
1965 break;
1966 case CAM_UNCOR_PARITY:
1967 new_status = DID_PARITY;
1968 break;
1969 case CAM_CMD_TIMEOUT:
1970 new_status = DID_TIME_OUT;
1971 break;
1972 case CAM_UA_ABORT:
1973 case CAM_REQ_CMP_ERR:
1974 case CAM_AUTOSENSE_FAIL:
1975 case CAM_NO_HBA:
1976 case CAM_DATA_RUN_ERR:
1977 case CAM_UNEXP_BUSFREE:
1978 case CAM_SEQUENCE_FAIL:
1979 case CAM_CCB_LEN_ERR:
1980 case CAM_PROVIDE_FAIL:
1981 case CAM_REQ_TERMIO:
1982 case CAM_UNREC_HBA_ERROR:
1983 case CAM_REQ_TOO_BIG:
1984 new_status = DID_ERROR;
1985 break;
1986 case CAM_REQUEUE_REQ:
1987 new_status = DID_REQUEUE;
1988 break;
1989 default:
1990 /* We should never get here */
1991 new_status = DID_ERROR;
1992 break;
1995 ahc_cmd_set_transaction_status(cmd, new_status);
1998 cmd->scsi_done(cmd);
2001 static void
2002 ahc_linux_freeze_simq(struct ahc_softc *ahc)
2004 unsigned long s;
2006 ahc_lock(ahc, &s);
2007 ahc->platform_data->qfrozen++;
2008 if (ahc->platform_data->qfrozen == 1) {
2009 scsi_block_requests(ahc->platform_data->host);
2011 /* XXX What about Twin channels? */
2012 ahc_platform_abort_scbs(ahc, CAM_TARGET_WILDCARD, ALL_CHANNELS,
2013 CAM_LUN_WILDCARD, SCB_LIST_NULL,
2014 ROLE_INITIATOR, CAM_REQUEUE_REQ);
2016 ahc_unlock(ahc, &s);
2019 static void
2020 ahc_linux_release_simq(struct ahc_softc *ahc)
2022 u_long s;
2023 int unblock_reqs;
2025 unblock_reqs = 0;
2026 ahc_lock(ahc, &s);
2027 if (ahc->platform_data->qfrozen > 0)
2028 ahc->platform_data->qfrozen--;
2029 if (ahc->platform_data->qfrozen == 0)
2030 unblock_reqs = 1;
2031 ahc_unlock(ahc, &s);
2033 * There is still a race here. The mid-layer
2034 * should keep its own freeze count and use
2035 * a bottom half handler to run the queues
2036 * so we can unblock with our own lock held.
2038 if (unblock_reqs)
2039 scsi_unblock_requests(ahc->platform_data->host);
2042 static int
2043 ahc_linux_queue_recovery_cmd(struct scsi_cmnd *cmd, scb_flag flag)
2045 struct ahc_softc *ahc;
2046 struct ahc_linux_device *dev;
2047 struct scb *pending_scb;
2048 u_int saved_scbptr;
2049 u_int active_scb_index;
2050 u_int last_phase;
2051 u_int saved_scsiid;
2052 u_int cdb_byte;
2053 int retval;
2054 int was_paused;
2055 int paused;
2056 int wait;
2057 int disconnected;
2058 unsigned long flags;
2060 pending_scb = NULL;
2061 paused = FALSE;
2062 wait = FALSE;
2063 ahc = *(struct ahc_softc **)cmd->device->host->hostdata;
2065 scmd_printk(KERN_INFO, cmd, "Attempting to queue a%s message\n",
2066 flag == SCB_ABORT ? "n ABORT" : " TARGET RESET");
2068 printk("CDB:");
2069 for (cdb_byte = 0; cdb_byte < cmd->cmd_len; cdb_byte++)
2070 printk(" 0x%x", cmd->cmnd[cdb_byte]);
2071 printk("\n");
2073 ahc_lock(ahc, &flags);
2076 * First determine if we currently own this command.
2077 * Start by searching the device queue. If not found
2078 * there, check the pending_scb list. If not found
2079 * at all, and the system wanted us to just abort the
2080 * command, return success.
2082 dev = scsi_transport_device_data(cmd->device);
2084 if (dev == NULL) {
2086 * No target device for this command exists,
2087 * so we must not still own the command.
2089 printk("%s:%d:%d:%d: Is not an active device\n",
2090 ahc_name(ahc), cmd->device->channel, cmd->device->id,
2091 (u8)cmd->device->lun);
2092 retval = SUCCESS;
2093 goto no_cmd;
2096 if ((dev->flags & (AHC_DEV_Q_BASIC|AHC_DEV_Q_TAGGED)) == 0
2097 && ahc_search_untagged_queues(ahc, cmd, cmd->device->id,
2098 cmd->device->channel + 'A',
2099 (u8)cmd->device->lun,
2100 CAM_REQ_ABORTED, SEARCH_COMPLETE) != 0) {
2101 printk("%s:%d:%d:%d: Command found on untagged queue\n",
2102 ahc_name(ahc), cmd->device->channel, cmd->device->id,
2103 (u8)cmd->device->lun);
2104 retval = SUCCESS;
2105 goto done;
2109 * See if we can find a matching cmd in the pending list.
2111 LIST_FOREACH(pending_scb, &ahc->pending_scbs, pending_links) {
2112 if (pending_scb->io_ctx == cmd)
2113 break;
2116 if (pending_scb == NULL && flag == SCB_DEVICE_RESET) {
2118 /* Any SCB for this device will do for a target reset */
2119 LIST_FOREACH(pending_scb, &ahc->pending_scbs, pending_links) {
2120 if (ahc_match_scb(ahc, pending_scb, scmd_id(cmd),
2121 scmd_channel(cmd) + 'A',
2122 CAM_LUN_WILDCARD,
2123 SCB_LIST_NULL, ROLE_INITIATOR))
2124 break;
2128 if (pending_scb == NULL) {
2129 scmd_printk(KERN_INFO, cmd, "Command not found\n");
2130 goto no_cmd;
2133 if ((pending_scb->flags & SCB_RECOVERY_SCB) != 0) {
2135 * We can't queue two recovery actions using the same SCB
2137 retval = FAILED;
2138 goto done;
2142 * Ensure that the card doesn't do anything
2143 * behind our back and that we didn't "just" miss
2144 * an interrupt that would affect this cmd.
2146 was_paused = ahc_is_paused(ahc);
2147 ahc_pause_and_flushwork(ahc);
2148 paused = TRUE;
2150 if ((pending_scb->flags & SCB_ACTIVE) == 0) {
2151 scmd_printk(KERN_INFO, cmd, "Command already completed\n");
2152 goto no_cmd;
2155 printk("%s: At time of recovery, card was %spaused\n",
2156 ahc_name(ahc), was_paused ? "" : "not ");
2157 ahc_dump_card_state(ahc);
2159 disconnected = TRUE;
2160 if (flag == SCB_ABORT) {
2161 if (ahc_search_qinfifo(ahc, cmd->device->id,
2162 cmd->device->channel + 'A',
2163 cmd->device->lun,
2164 pending_scb->hscb->tag,
2165 ROLE_INITIATOR, CAM_REQ_ABORTED,
2166 SEARCH_COMPLETE) > 0) {
2167 printk("%s:%d:%d:%d: Cmd aborted from QINFIFO\n",
2168 ahc_name(ahc), cmd->device->channel,
2169 cmd->device->id, (u8)cmd->device->lun);
2170 retval = SUCCESS;
2171 goto done;
2173 } else if (ahc_search_qinfifo(ahc, cmd->device->id,
2174 cmd->device->channel + 'A',
2175 cmd->device->lun,
2176 pending_scb->hscb->tag,
2177 ROLE_INITIATOR, /*status*/0,
2178 SEARCH_COUNT) > 0) {
2179 disconnected = FALSE;
2182 if (disconnected && (ahc_inb(ahc, SEQ_FLAGS) & NOT_IDENTIFIED) == 0) {
2183 struct scb *bus_scb;
2185 bus_scb = ahc_lookup_scb(ahc, ahc_inb(ahc, SCB_TAG));
2186 if (bus_scb == pending_scb)
2187 disconnected = FALSE;
2188 else if (flag != SCB_ABORT
2189 && ahc_inb(ahc, SAVED_SCSIID) == pending_scb->hscb->scsiid
2190 && ahc_inb(ahc, SAVED_LUN) == SCB_GET_LUN(pending_scb))
2191 disconnected = FALSE;
2195 * At this point, pending_scb is the scb associated with the
2196 * passed in command. That command is currently active on the
2197 * bus, is in the disconnected state, or we're hoping to find
2198 * a command for the same target active on the bus to abuse to
2199 * send a BDR. Queue the appropriate message based on which of
2200 * these states we are in.
2202 last_phase = ahc_inb(ahc, LASTPHASE);
2203 saved_scbptr = ahc_inb(ahc, SCBPTR);
2204 active_scb_index = ahc_inb(ahc, SCB_TAG);
2205 saved_scsiid = ahc_inb(ahc, SAVED_SCSIID);
2206 if (last_phase != P_BUSFREE
2207 && (pending_scb->hscb->tag == active_scb_index
2208 || (flag == SCB_DEVICE_RESET
2209 && SCSIID_TARGET(ahc, saved_scsiid) == scmd_id(cmd)))) {
2212 * We're active on the bus, so assert ATN
2213 * and hope that the target responds.
2215 pending_scb = ahc_lookup_scb(ahc, active_scb_index);
2216 pending_scb->flags |= SCB_RECOVERY_SCB|flag;
2217 ahc_outb(ahc, MSG_OUT, HOST_MSG);
2218 ahc_outb(ahc, SCSISIGO, last_phase|ATNO);
2219 scmd_printk(KERN_INFO, cmd, "Device is active, asserting ATN\n");
2220 wait = TRUE;
2221 } else if (disconnected) {
2224 * Actually re-queue this SCB in an attempt
2225 * to select the device before it reconnects.
2226 * In either case (selection or reselection),
2227 * we will now issue the approprate message
2228 * to the timed-out device.
2230 * Set the MK_MESSAGE control bit indicating
2231 * that we desire to send a message. We
2232 * also set the disconnected flag since
2233 * in the paging case there is no guarantee
2234 * that our SCB control byte matches the
2235 * version on the card. We don't want the
2236 * sequencer to abort the command thinking
2237 * an unsolicited reselection occurred.
2239 pending_scb->hscb->control |= MK_MESSAGE|DISCONNECTED;
2240 pending_scb->flags |= SCB_RECOVERY_SCB|flag;
2243 * Remove any cached copy of this SCB in the
2244 * disconnected list in preparation for the
2245 * queuing of our abort SCB. We use the
2246 * same element in the SCB, SCB_NEXT, for
2247 * both the qinfifo and the disconnected list.
2249 ahc_search_disc_list(ahc, cmd->device->id,
2250 cmd->device->channel + 'A',
2251 cmd->device->lun, pending_scb->hscb->tag,
2252 /*stop_on_first*/TRUE,
2253 /*remove*/TRUE,
2254 /*save_state*/FALSE);
2257 * In the non-paging case, the sequencer will
2258 * never re-reference the in-core SCB.
2259 * To make sure we are notified during
2260 * reselection, set the MK_MESSAGE flag in
2261 * the card's copy of the SCB.
2263 if ((ahc->flags & AHC_PAGESCBS) == 0) {
2264 ahc_outb(ahc, SCBPTR, pending_scb->hscb->tag);
2265 ahc_outb(ahc, SCB_CONTROL,
2266 ahc_inb(ahc, SCB_CONTROL)|MK_MESSAGE);
2270 * Clear out any entries in the QINFIFO first
2271 * so we are the next SCB for this target
2272 * to run.
2274 ahc_search_qinfifo(ahc, cmd->device->id,
2275 cmd->device->channel + 'A',
2276 cmd->device->lun, SCB_LIST_NULL,
2277 ROLE_INITIATOR, CAM_REQUEUE_REQ,
2278 SEARCH_COMPLETE);
2279 ahc_qinfifo_requeue_tail(ahc, pending_scb);
2280 ahc_outb(ahc, SCBPTR, saved_scbptr);
2281 ahc_print_path(ahc, pending_scb);
2282 printk("Device is disconnected, re-queuing SCB\n");
2283 wait = TRUE;
2284 } else {
2285 scmd_printk(KERN_INFO, cmd, "Unable to deliver message\n");
2286 retval = FAILED;
2287 goto done;
2290 no_cmd:
2292 * Our assumption is that if we don't have the command, no
2293 * recovery action was required, so we return success. Again,
2294 * the semantics of the mid-layer recovery engine are not
2295 * well defined, so this may change in time.
2297 retval = SUCCESS;
2298 done:
2299 if (paused)
2300 ahc_unpause(ahc);
2301 if (wait) {
2302 DECLARE_COMPLETION_ONSTACK(done);
2304 ahc->platform_data->eh_done = &done;
2305 ahc_unlock(ahc, &flags);
2307 printk("Recovery code sleeping\n");
2308 if (!wait_for_completion_timeout(&done, 5 * HZ)) {
2309 ahc_lock(ahc, &flags);
2310 ahc->platform_data->eh_done = NULL;
2311 ahc_unlock(ahc, &flags);
2313 printk("Timer Expired\n");
2314 retval = FAILED;
2316 printk("Recovery code awake\n");
2317 } else
2318 ahc_unlock(ahc, &flags);
2319 return (retval);
2322 static void ahc_linux_set_width(struct scsi_target *starget, int width)
2324 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
2325 struct ahc_softc *ahc = *((struct ahc_softc **)shost->hostdata);
2326 struct ahc_devinfo devinfo;
2327 unsigned long flags;
2329 ahc_compile_devinfo(&devinfo, shost->this_id, starget->id, 0,
2330 starget->channel + 'A', ROLE_INITIATOR);
2331 ahc_lock(ahc, &flags);
2332 ahc_set_width(ahc, &devinfo, width, AHC_TRANS_GOAL, FALSE);
2333 ahc_unlock(ahc, &flags);
2336 static void ahc_linux_set_period(struct scsi_target *starget, int period)
2338 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
2339 struct ahc_softc *ahc = *((struct ahc_softc **)shost->hostdata);
2340 struct ahc_tmode_tstate *tstate;
2341 struct ahc_initiator_tinfo *tinfo
2342 = ahc_fetch_transinfo(ahc,
2343 starget->channel + 'A',
2344 shost->this_id, starget->id, &tstate);
2345 struct ahc_devinfo devinfo;
2346 unsigned int ppr_options = tinfo->goal.ppr_options;
2347 unsigned long flags;
2348 unsigned long offset = tinfo->goal.offset;
2349 const struct ahc_syncrate *syncrate;
2351 if (offset == 0)
2352 offset = MAX_OFFSET;
2354 if (period < 9)
2355 period = 9; /* 12.5ns is our minimum */
2356 if (period == 9) {
2357 if (spi_max_width(starget))
2358 ppr_options |= MSG_EXT_PPR_DT_REQ;
2359 else
2360 /* need wide for DT and need DT for 12.5 ns */
2361 period = 10;
2364 ahc_compile_devinfo(&devinfo, shost->this_id, starget->id, 0,
2365 starget->channel + 'A', ROLE_INITIATOR);
2367 /* all PPR requests apart from QAS require wide transfers */
2368 if (ppr_options & ~MSG_EXT_PPR_QAS_REQ) {
2369 if (spi_width(starget) == 0)
2370 ppr_options &= MSG_EXT_PPR_QAS_REQ;
2373 syncrate = ahc_find_syncrate(ahc, &period, &ppr_options, AHC_SYNCRATE_DT);
2374 ahc_lock(ahc, &flags);
2375 ahc_set_syncrate(ahc, &devinfo, syncrate, period, offset,
2376 ppr_options, AHC_TRANS_GOAL, FALSE);
2377 ahc_unlock(ahc, &flags);
2380 static void ahc_linux_set_offset(struct scsi_target *starget, int offset)
2382 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
2383 struct ahc_softc *ahc = *((struct ahc_softc **)shost->hostdata);
2384 struct ahc_tmode_tstate *tstate;
2385 struct ahc_initiator_tinfo *tinfo
2386 = ahc_fetch_transinfo(ahc,
2387 starget->channel + 'A',
2388 shost->this_id, starget->id, &tstate);
2389 struct ahc_devinfo devinfo;
2390 unsigned int ppr_options = 0;
2391 unsigned int period = 0;
2392 unsigned long flags;
2393 const struct ahc_syncrate *syncrate = NULL;
2395 ahc_compile_devinfo(&devinfo, shost->this_id, starget->id, 0,
2396 starget->channel + 'A', ROLE_INITIATOR);
2397 if (offset != 0) {
2398 syncrate = ahc_find_syncrate(ahc, &period, &ppr_options, AHC_SYNCRATE_DT);
2399 period = tinfo->goal.period;
2400 ppr_options = tinfo->goal.ppr_options;
2402 ahc_lock(ahc, &flags);
2403 ahc_set_syncrate(ahc, &devinfo, syncrate, period, offset,
2404 ppr_options, AHC_TRANS_GOAL, FALSE);
2405 ahc_unlock(ahc, &flags);
2408 static void ahc_linux_set_dt(struct scsi_target *starget, int dt)
2410 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
2411 struct ahc_softc *ahc = *((struct ahc_softc **)shost->hostdata);
2412 struct ahc_tmode_tstate *tstate;
2413 struct ahc_initiator_tinfo *tinfo
2414 = ahc_fetch_transinfo(ahc,
2415 starget->channel + 'A',
2416 shost->this_id, starget->id, &tstate);
2417 struct ahc_devinfo devinfo;
2418 unsigned int ppr_options = tinfo->goal.ppr_options
2419 & ~MSG_EXT_PPR_DT_REQ;
2420 unsigned int period = tinfo->goal.period;
2421 unsigned int width = tinfo->goal.width;
2422 unsigned long flags;
2423 const struct ahc_syncrate *syncrate;
2425 if (dt && spi_max_width(starget)) {
2426 ppr_options |= MSG_EXT_PPR_DT_REQ;
2427 if (!width)
2428 ahc_linux_set_width(starget, 1);
2429 } else if (period == 9)
2430 period = 10; /* if resetting DT, period must be >= 25ns */
2432 ahc_compile_devinfo(&devinfo, shost->this_id, starget->id, 0,
2433 starget->channel + 'A', ROLE_INITIATOR);
2434 syncrate = ahc_find_syncrate(ahc, &period, &ppr_options,AHC_SYNCRATE_DT);
2435 ahc_lock(ahc, &flags);
2436 ahc_set_syncrate(ahc, &devinfo, syncrate, period, tinfo->goal.offset,
2437 ppr_options, AHC_TRANS_GOAL, FALSE);
2438 ahc_unlock(ahc, &flags);
2441 #if 0
2442 /* FIXME: This code claims to support IU and QAS. However, the actual
2443 * sequencer code and aic7xxx_core have no support for these parameters and
2444 * will get into a bad state if they're negotiated. Do not enable this
2445 * unless you know what you're doing */
2446 static void ahc_linux_set_qas(struct scsi_target *starget, int qas)
2448 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
2449 struct ahc_softc *ahc = *((struct ahc_softc **)shost->hostdata);
2450 struct ahc_tmode_tstate *tstate;
2451 struct ahc_initiator_tinfo *tinfo
2452 = ahc_fetch_transinfo(ahc,
2453 starget->channel + 'A',
2454 shost->this_id, starget->id, &tstate);
2455 struct ahc_devinfo devinfo;
2456 unsigned int ppr_options = tinfo->goal.ppr_options
2457 & ~MSG_EXT_PPR_QAS_REQ;
2458 unsigned int period = tinfo->goal.period;
2459 unsigned long flags;
2460 struct ahc_syncrate *syncrate;
2462 if (qas)
2463 ppr_options |= MSG_EXT_PPR_QAS_REQ;
2465 ahc_compile_devinfo(&devinfo, shost->this_id, starget->id, 0,
2466 starget->channel + 'A', ROLE_INITIATOR);
2467 syncrate = ahc_find_syncrate(ahc, &period, &ppr_options, AHC_SYNCRATE_DT);
2468 ahc_lock(ahc, &flags);
2469 ahc_set_syncrate(ahc, &devinfo, syncrate, period, tinfo->goal.offset,
2470 ppr_options, AHC_TRANS_GOAL, FALSE);
2471 ahc_unlock(ahc, &flags);
2474 static void ahc_linux_set_iu(struct scsi_target *starget, int iu)
2476 struct Scsi_Host *shost = dev_to_shost(starget->dev.parent);
2477 struct ahc_softc *ahc = *((struct ahc_softc **)shost->hostdata);
2478 struct ahc_tmode_tstate *tstate;
2479 struct ahc_initiator_tinfo *tinfo
2480 = ahc_fetch_transinfo(ahc,
2481 starget->channel + 'A',
2482 shost->this_id, starget->id, &tstate);
2483 struct ahc_devinfo devinfo;
2484 unsigned int ppr_options = tinfo->goal.ppr_options
2485 & ~MSG_EXT_PPR_IU_REQ;
2486 unsigned int period = tinfo->goal.period;
2487 unsigned long flags;
2488 struct ahc_syncrate *syncrate;
2490 if (iu)
2491 ppr_options |= MSG_EXT_PPR_IU_REQ;
2493 ahc_compile_devinfo(&devinfo, shost->this_id, starget->id, 0,
2494 starget->channel + 'A', ROLE_INITIATOR);
2495 syncrate = ahc_find_syncrate(ahc, &period, &ppr_options, AHC_SYNCRATE_DT);
2496 ahc_lock(ahc, &flags);
2497 ahc_set_syncrate(ahc, &devinfo, syncrate, period, tinfo->goal.offset,
2498 ppr_options, AHC_TRANS_GOAL, FALSE);
2499 ahc_unlock(ahc, &flags);
2501 #endif
2503 static void ahc_linux_get_signalling(struct Scsi_Host *shost)
2505 struct ahc_softc *ahc = *(struct ahc_softc **)shost->hostdata;
2506 unsigned long flags;
2507 u8 mode;
2509 if (!(ahc->features & AHC_ULTRA2)) {
2510 /* non-LVD chipset, may not have SBLKCTL reg */
2511 spi_signalling(shost) =
2512 ahc->features & AHC_HVD ?
2513 SPI_SIGNAL_HVD :
2514 SPI_SIGNAL_SE;
2515 return;
2518 ahc_lock(ahc, &flags);
2519 ahc_pause(ahc);
2520 mode = ahc_inb(ahc, SBLKCTL);
2521 ahc_unpause(ahc);
2522 ahc_unlock(ahc, &flags);
2524 if (mode & ENAB40)
2525 spi_signalling(shost) = SPI_SIGNAL_LVD;
2526 else if (mode & ENAB20)
2527 spi_signalling(shost) = SPI_SIGNAL_SE;
2528 else
2529 spi_signalling(shost) = SPI_SIGNAL_UNKNOWN;
2532 static struct spi_function_template ahc_linux_transport_functions = {
2533 .set_offset = ahc_linux_set_offset,
2534 .show_offset = 1,
2535 .set_period = ahc_linux_set_period,
2536 .show_period = 1,
2537 .set_width = ahc_linux_set_width,
2538 .show_width = 1,
2539 .set_dt = ahc_linux_set_dt,
2540 .show_dt = 1,
2541 #if 0
2542 .set_iu = ahc_linux_set_iu,
2543 .show_iu = 1,
2544 .set_qas = ahc_linux_set_qas,
2545 .show_qas = 1,
2546 #endif
2547 .get_signalling = ahc_linux_get_signalling,
2552 static int __init
2553 ahc_linux_init(void)
2556 * If we've been passed any parameters, process them now.
2558 if (aic7xxx)
2559 aic7xxx_setup(aic7xxx);
2561 ahc_linux_transport_template =
2562 spi_attach_transport(&ahc_linux_transport_functions);
2563 if (!ahc_linux_transport_template)
2564 return -ENODEV;
2566 scsi_transport_reserve_device(ahc_linux_transport_template,
2567 sizeof(struct ahc_linux_device));
2569 ahc_linux_pci_init();
2570 ahc_linux_eisa_init();
2571 return 0;
2574 static void
2575 ahc_linux_exit(void)
2577 ahc_linux_pci_exit();
2578 ahc_linux_eisa_exit();
2579 spi_release_transport(ahc_linux_transport_template);
2582 module_init(ahc_linux_init);
2583 module_exit(ahc_linux_exit);