2 * Adaptec AAC series RAID controller driver
3 * (c) Copyright 2001 Red Hat Inc.
5 * based on the old aacraid driver that is..
6 * Adaptec aacraid device driver for Linux.
8 * Copyright (c) 2000-2010 Adaptec, Inc.
9 * 2010 PMC-Sierra, Inc. (aacraid@pmc-sierra.com)
11 * This program is free software; you can redistribute it and/or modify
12 * it under the terms of the GNU General Public License as published by
13 * the Free Software Foundation; either version 2, or (at your option)
16 * This program is distributed in the hope that it will be useful,
17 * but WITHOUT ANY WARRANTY; without even the implied warranty of
18 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 * GNU General Public License for more details.
21 * You should have received a copy of the GNU General Public License
22 * along with this program; see the file COPYING. If not, write to
23 * the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
27 #include <linux/kernel.h>
28 #include <linux/init.h>
29 #include <linux/types.h>
30 #include <linux/pci.h>
31 #include <linux/spinlock.h>
32 #include <linux/slab.h>
33 #include <linux/completion.h>
34 #include <linux/blkdev.h>
35 #include <asm/uaccess.h>
36 #include <linux/highmem.h> /* For flush_kernel_dcache_page */
37 #include <linux/module.h>
39 #include <scsi/scsi.h>
40 #include <scsi/scsi_cmnd.h>
41 #include <scsi/scsi_device.h>
42 #include <scsi/scsi_host.h>
46 /* values for inqd_pdt: Peripheral device type in plain English */
47 #define INQD_PDT_DA 0x00 /* Direct-access (DISK) device */
48 #define INQD_PDT_PROC 0x03 /* Processor device */
49 #define INQD_PDT_CHNGR 0x08 /* Changer (jukebox, scsi2) */
50 #define INQD_PDT_COMM 0x09 /* Communication device (scsi2) */
51 #define INQD_PDT_NOLUN2 0x1f /* Unknown Device (scsi2) */
52 #define INQD_PDT_NOLUN 0x7f /* Logical Unit Not Present */
54 #define INQD_PDT_DMASK 0x1F /* Peripheral Device Type Mask */
55 #define INQD_PDT_QMASK 0xE0 /* Peripheral Device Qualifer Mask */
61 #define SENCODE_NO_SENSE 0x00
62 #define SENCODE_END_OF_DATA 0x00
63 #define SENCODE_BECOMING_READY 0x04
64 #define SENCODE_INIT_CMD_REQUIRED 0x04
65 #define SENCODE_PARAM_LIST_LENGTH_ERROR 0x1A
66 #define SENCODE_INVALID_COMMAND 0x20
67 #define SENCODE_LBA_OUT_OF_RANGE 0x21
68 #define SENCODE_INVALID_CDB_FIELD 0x24
69 #define SENCODE_LUN_NOT_SUPPORTED 0x25
70 #define SENCODE_INVALID_PARAM_FIELD 0x26
71 #define SENCODE_PARAM_NOT_SUPPORTED 0x26
72 #define SENCODE_PARAM_VALUE_INVALID 0x26
73 #define SENCODE_RESET_OCCURRED 0x29
74 #define SENCODE_LUN_NOT_SELF_CONFIGURED_YET 0x3E
75 #define SENCODE_INQUIRY_DATA_CHANGED 0x3F
76 #define SENCODE_SAVING_PARAMS_NOT_SUPPORTED 0x39
77 #define SENCODE_DIAGNOSTIC_FAILURE 0x40
78 #define SENCODE_INTERNAL_TARGET_FAILURE 0x44
79 #define SENCODE_INVALID_MESSAGE_ERROR 0x49
80 #define SENCODE_LUN_FAILED_SELF_CONFIG 0x4c
81 #define SENCODE_OVERLAPPED_COMMAND 0x4E
84 * Additional sense codes
87 #define ASENCODE_NO_SENSE 0x00
88 #define ASENCODE_END_OF_DATA 0x05
89 #define ASENCODE_BECOMING_READY 0x01
90 #define ASENCODE_INIT_CMD_REQUIRED 0x02
91 #define ASENCODE_PARAM_LIST_LENGTH_ERROR 0x00
92 #define ASENCODE_INVALID_COMMAND 0x00
93 #define ASENCODE_LBA_OUT_OF_RANGE 0x00
94 #define ASENCODE_INVALID_CDB_FIELD 0x00
95 #define ASENCODE_LUN_NOT_SUPPORTED 0x00
96 #define ASENCODE_INVALID_PARAM_FIELD 0x00
97 #define ASENCODE_PARAM_NOT_SUPPORTED 0x01
98 #define ASENCODE_PARAM_VALUE_INVALID 0x02
99 #define ASENCODE_RESET_OCCURRED 0x00
100 #define ASENCODE_LUN_NOT_SELF_CONFIGURED_YET 0x00
101 #define ASENCODE_INQUIRY_DATA_CHANGED 0x03
102 #define ASENCODE_SAVING_PARAMS_NOT_SUPPORTED 0x00
103 #define ASENCODE_DIAGNOSTIC_FAILURE 0x80
104 #define ASENCODE_INTERNAL_TARGET_FAILURE 0x00
105 #define ASENCODE_INVALID_MESSAGE_ERROR 0x00
106 #define ASENCODE_LUN_FAILED_SELF_CONFIG 0x00
107 #define ASENCODE_OVERLAPPED_COMMAND 0x00
109 #define BYTE0(x) (unsigned char)(x)
110 #define BYTE1(x) (unsigned char)((x) >> 8)
111 #define BYTE2(x) (unsigned char)((x) >> 16)
112 #define BYTE3(x) (unsigned char)((x) >> 24)
114 /*------------------------------------------------------------------------------
115 * S T R U C T S / T Y P E D E F S
116 *----------------------------------------------------------------------------*/
117 /* SCSI inquiry data */
118 struct inquiry_data
{
119 u8 inqd_pdt
; /* Peripheral qualifier | Peripheral Device Type */
120 u8 inqd_dtq
; /* RMB | Device Type Qualifier */
121 u8 inqd_ver
; /* ISO version | ECMA version | ANSI-approved version */
122 u8 inqd_rdf
; /* AENC | TrmIOP | Response data format */
123 u8 inqd_len
; /* Additional length (n-4) */
124 u8 inqd_pad1
[2];/* Reserved - must be zero */
125 u8 inqd_pad2
; /* RelAdr | WBus32 | WBus16 | Sync | Linked |Reserved| CmdQue | SftRe */
126 u8 inqd_vid
[8]; /* Vendor ID */
127 u8 inqd_pid
[16];/* Product ID */
128 u8 inqd_prl
[4]; /* Product Revision Level */
132 * M O D U L E G L O B A L S
135 static unsigned long aac_build_sg(struct scsi_cmnd
* scsicmd
, struct sgmap
* sgmap
);
136 static unsigned long aac_build_sg64(struct scsi_cmnd
* scsicmd
, struct sgmap64
* psg
);
137 static unsigned long aac_build_sgraw(struct scsi_cmnd
* scsicmd
, struct sgmapraw
* psg
);
138 static int aac_send_srb_fib(struct scsi_cmnd
* scsicmd
);
139 #ifdef AAC_DETAILED_STATUS_INFO
140 static char *aac_get_status_string(u32 status
);
144 * Non dasd selection is handled entirely in aachba now
147 static int nondasd
= -1;
148 static int aac_cache
= 2; /* WCE=0 to avoid performance problems */
149 static int dacmode
= -1;
152 int startup_timeout
= 180;
153 int aif_timeout
= 120;
154 int aac_sync_mode
; /* Only Sync. transfer - disabled */
156 module_param(aac_sync_mode
, int, S_IRUGO
|S_IWUSR
);
157 MODULE_PARM_DESC(aac_sync_mode
, "Force sync. transfer mode"
159 module_param(nondasd
, int, S_IRUGO
|S_IWUSR
);
160 MODULE_PARM_DESC(nondasd
, "Control scanning of hba for nondasd devices."
162 module_param_named(cache
, aac_cache
, int, S_IRUGO
|S_IWUSR
);
163 MODULE_PARM_DESC(cache
, "Disable Queue Flush commands:\n"
164 "\tbit 0 - Disable FUA in WRITE SCSI commands\n"
165 "\tbit 1 - Disable SYNCHRONIZE_CACHE SCSI command\n"
166 "\tbit 2 - Disable only if Battery is protecting Cache");
167 module_param(dacmode
, int, S_IRUGO
|S_IWUSR
);
168 MODULE_PARM_DESC(dacmode
, "Control whether dma addressing is using 64 bit DAC."
170 module_param_named(commit
, aac_commit
, int, S_IRUGO
|S_IWUSR
);
171 MODULE_PARM_DESC(commit
, "Control whether a COMMIT_CONFIG is issued to the"
172 " adapter for foreign arrays.\n"
173 "This is typically needed in systems that do not have a BIOS."
175 module_param_named(msi
, aac_msi
, int, S_IRUGO
|S_IWUSR
);
176 MODULE_PARM_DESC(msi
, "IRQ handling."
177 " 0=PIC(default), 1=MSI, 2=MSI-X(unsupported, uses MSI)");
178 module_param(startup_timeout
, int, S_IRUGO
|S_IWUSR
);
179 MODULE_PARM_DESC(startup_timeout
, "The duration of time in seconds to wait for"
180 " adapter to have it's kernel up and\n"
181 "running. This is typically adjusted for large systems that do not"
183 module_param(aif_timeout
, int, S_IRUGO
|S_IWUSR
);
184 MODULE_PARM_DESC(aif_timeout
, "The duration of time in seconds to wait for"
185 " applications to pick up AIFs before\n"
186 "deregistering them. This is typically adjusted for heavily burdened"
190 module_param(numacb
, int, S_IRUGO
|S_IWUSR
);
191 MODULE_PARM_DESC(numacb
, "Request a limit to the number of adapter control"
192 " blocks (FIB) allocated. Valid values are 512 and down. Default is"
193 " to use suggestion from Firmware.");
196 module_param(acbsize
, int, S_IRUGO
|S_IWUSR
);
197 MODULE_PARM_DESC(acbsize
, "Request a specific adapter control block (FIB)"
198 " size. Valid values are 512, 2048, 4096 and 8192. Default is to use"
199 " suggestion from Firmware.");
201 int update_interval
= 30 * 60;
202 module_param(update_interval
, int, S_IRUGO
|S_IWUSR
);
203 MODULE_PARM_DESC(update_interval
, "Interval in seconds between time sync"
204 " updates issued to adapter.");
206 int check_interval
= 24 * 60 * 60;
207 module_param(check_interval
, int, S_IRUGO
|S_IWUSR
);
208 MODULE_PARM_DESC(check_interval
, "Interval in seconds between adapter health"
211 int aac_check_reset
= 1;
212 module_param_named(check_reset
, aac_check_reset
, int, S_IRUGO
|S_IWUSR
);
213 MODULE_PARM_DESC(check_reset
, "If adapter fails health check, reset the"
214 " adapter. a value of -1 forces the reset to adapters programmed to"
217 int expose_physicals
= -1;
218 module_param(expose_physicals
, int, S_IRUGO
|S_IWUSR
);
219 MODULE_PARM_DESC(expose_physicals
, "Expose physical components of the arrays."
220 " -1=protect 0=off, 1=on");
222 int aac_reset_devices
;
223 module_param_named(reset_devices
, aac_reset_devices
, int, S_IRUGO
|S_IWUSR
);
224 MODULE_PARM_DESC(reset_devices
, "Force an adapter reset at initialization.");
227 module_param_named(wwn
, aac_wwn
, int, S_IRUGO
|S_IWUSR
);
228 MODULE_PARM_DESC(wwn
, "Select a WWN type for the arrays:\n"
230 "\t1 - Array Meta Data Signature (default)\n"
231 "\t2 - Adapter Serial Number");
234 static inline int aac_valid_context(struct scsi_cmnd
*scsicmd
,
235 struct fib
*fibptr
) {
236 struct scsi_device
*device
;
238 if (unlikely(!scsicmd
|| !scsicmd
->scsi_done
)) {
239 dprintk((KERN_WARNING
"aac_valid_context: scsi command corrupt\n"));
240 aac_fib_complete(fibptr
);
241 aac_fib_free(fibptr
);
244 scsicmd
->SCp
.phase
= AAC_OWNER_MIDLEVEL
;
245 device
= scsicmd
->device
;
246 if (unlikely(!device
|| !scsi_device_online(device
))) {
247 dprintk((KERN_WARNING
"aac_valid_context: scsi device corrupt\n"));
248 aac_fib_complete(fibptr
);
249 aac_fib_free(fibptr
);
256 * aac_get_config_status - check the adapter configuration
257 * @common: adapter to query
259 * Query config status, and commit the configuration if needed.
261 int aac_get_config_status(struct aac_dev
*dev
, int commit_flag
)
266 if (!(fibptr
= aac_fib_alloc(dev
)))
269 aac_fib_init(fibptr
);
271 struct aac_get_config_status
*dinfo
;
272 dinfo
= (struct aac_get_config_status
*) fib_data(fibptr
);
274 dinfo
->command
= cpu_to_le32(VM_ContainerConfig
);
275 dinfo
->type
= cpu_to_le32(CT_GET_CONFIG_STATUS
);
276 dinfo
->count
= cpu_to_le32(sizeof(((struct aac_get_config_status_resp
*)NULL
)->data
));
279 status
= aac_fib_send(ContainerCommand
,
281 sizeof (struct aac_get_config_status
),
286 printk(KERN_WARNING
"aac_get_config_status: SendFIB failed.\n");
288 struct aac_get_config_status_resp
*reply
289 = (struct aac_get_config_status_resp
*) fib_data(fibptr
);
290 dprintk((KERN_WARNING
291 "aac_get_config_status: response=%d status=%d action=%d\n",
292 le32_to_cpu(reply
->response
),
293 le32_to_cpu(reply
->status
),
294 le32_to_cpu(reply
->data
.action
)));
295 if ((le32_to_cpu(reply
->response
) != ST_OK
) ||
296 (le32_to_cpu(reply
->status
) != CT_OK
) ||
297 (le32_to_cpu(reply
->data
.action
) > CFACT_PAUSE
)) {
298 printk(KERN_WARNING
"aac_get_config_status: Will not issue the Commit Configuration\n");
302 /* Do not set XferState to zero unless receives a response from F/W */
304 aac_fib_complete(fibptr
);
306 /* Send a CT_COMMIT_CONFIG to enable discovery of devices */
308 if ((aac_commit
== 1) || commit_flag
) {
309 struct aac_commit_config
* dinfo
;
310 aac_fib_init(fibptr
);
311 dinfo
= (struct aac_commit_config
*) fib_data(fibptr
);
313 dinfo
->command
= cpu_to_le32(VM_ContainerConfig
);
314 dinfo
->type
= cpu_to_le32(CT_COMMIT_CONFIG
);
316 status
= aac_fib_send(ContainerCommand
,
318 sizeof (struct aac_commit_config
),
322 /* Do not set XferState to zero unless
323 * receives a response from F/W */
325 aac_fib_complete(fibptr
);
326 } else if (aac_commit
== 0) {
328 "aac_get_config_status: Foreign device configurations are being ignored\n");
331 /* FIB should be freed only after getting the response from the F/W */
332 if (status
!= -ERESTARTSYS
)
333 aac_fib_free(fibptr
);
337 static void aac_expose_phy_device(struct scsi_cmnd
*scsicmd
)
340 scsi_sg_copy_to_buffer(scsicmd
, &inq_data
, sizeof(inq_data
));
341 if ((inq_data
& 0x20) && (inq_data
& 0x1f) == TYPE_DISK
) {
343 scsi_sg_copy_from_buffer(scsicmd
, &inq_data
, sizeof(inq_data
));
348 * aac_get_containers - list containers
349 * @common: adapter to probe
351 * Make a list of all containers on this controller
353 int aac_get_containers(struct aac_dev
*dev
)
355 struct fsa_dev_info
*fsa_dev_ptr
;
359 struct aac_get_container_count
*dinfo
;
360 struct aac_get_container_count_resp
*dresp
;
361 int maximum_num_containers
= MAXIMUM_NUM_CONTAINERS
;
363 if (!(fibptr
= aac_fib_alloc(dev
)))
366 aac_fib_init(fibptr
);
367 dinfo
= (struct aac_get_container_count
*) fib_data(fibptr
);
368 dinfo
->command
= cpu_to_le32(VM_ContainerConfig
);
369 dinfo
->type
= cpu_to_le32(CT_GET_CONTAINER_COUNT
);
371 status
= aac_fib_send(ContainerCommand
,
373 sizeof (struct aac_get_container_count
),
378 dresp
= (struct aac_get_container_count_resp
*)fib_data(fibptr
);
379 maximum_num_containers
= le32_to_cpu(dresp
->ContainerSwitchEntries
);
380 aac_fib_complete(fibptr
);
382 /* FIB should be freed only after getting the response from the F/W */
383 if (status
!= -ERESTARTSYS
)
384 aac_fib_free(fibptr
);
386 if (maximum_num_containers
< MAXIMUM_NUM_CONTAINERS
)
387 maximum_num_containers
= MAXIMUM_NUM_CONTAINERS
;
388 fsa_dev_ptr
= kzalloc(sizeof(*fsa_dev_ptr
) * maximum_num_containers
,
393 dev
->fsa_dev
= fsa_dev_ptr
;
394 dev
->maximum_num_containers
= maximum_num_containers
;
396 for (index
= 0; index
< dev
->maximum_num_containers
; ) {
397 fsa_dev_ptr
[index
].devname
[0] = '\0';
399 status
= aac_probe_container(dev
, index
);
402 printk(KERN_WARNING
"aac_get_containers: SendFIB failed.\n");
407 * If there are no more containers, then stop asking.
409 if (++index
>= status
)
415 static void get_container_name_callback(void *context
, struct fib
* fibptr
)
417 struct aac_get_name_resp
* get_name_reply
;
418 struct scsi_cmnd
* scsicmd
;
420 scsicmd
= (struct scsi_cmnd
*) context
;
422 if (!aac_valid_context(scsicmd
, fibptr
))
425 dprintk((KERN_DEBUG
"get_container_name_callback[cpu %d]: t = %ld.\n", smp_processor_id(), jiffies
));
426 BUG_ON(fibptr
== NULL
);
428 get_name_reply
= (struct aac_get_name_resp
*) fib_data(fibptr
);
429 /* Failure is irrelevant, using default value instead */
430 if ((le32_to_cpu(get_name_reply
->status
) == CT_OK
)
431 && (get_name_reply
->data
[0] != '\0')) {
432 char *sp
= get_name_reply
->data
;
433 sp
[sizeof(((struct aac_get_name_resp
*)NULL
)->data
)-1] = '\0';
437 struct inquiry_data inq
;
438 char d
[sizeof(((struct inquiry_data
*)NULL
)->inqd_pid
)];
439 int count
= sizeof(d
);
442 *dp
++ = (*sp
) ? *sp
++ : ' ';
443 } while (--count
> 0);
445 scsi_sg_copy_to_buffer(scsicmd
, &inq
, sizeof(inq
));
446 memcpy(inq
.inqd_pid
, d
, sizeof(d
));
447 scsi_sg_copy_from_buffer(scsicmd
, &inq
, sizeof(inq
));
451 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
453 aac_fib_complete(fibptr
);
454 aac_fib_free(fibptr
);
455 scsicmd
->scsi_done(scsicmd
);
459 * aac_get_container_name - get container name, none blocking.
461 static int aac_get_container_name(struct scsi_cmnd
* scsicmd
)
464 struct aac_get_name
*dinfo
;
465 struct fib
* cmd_fibcontext
;
466 struct aac_dev
* dev
;
468 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
470 if (!(cmd_fibcontext
= aac_fib_alloc(dev
)))
473 aac_fib_init(cmd_fibcontext
);
474 dinfo
= (struct aac_get_name
*) fib_data(cmd_fibcontext
);
476 dinfo
->command
= cpu_to_le32(VM_ContainerConfig
);
477 dinfo
->type
= cpu_to_le32(CT_READ_NAME
);
478 dinfo
->cid
= cpu_to_le32(scmd_id(scsicmd
));
479 dinfo
->count
= cpu_to_le32(sizeof(((struct aac_get_name_resp
*)NULL
)->data
));
481 status
= aac_fib_send(ContainerCommand
,
483 sizeof (struct aac_get_name
),
486 (fib_callback
)get_container_name_callback
,
490 * Check that the command queued to the controller
492 if (status
== -EINPROGRESS
) {
493 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
497 printk(KERN_WARNING
"aac_get_container_name: aac_fib_send failed with status: %d.\n", status
);
498 aac_fib_complete(cmd_fibcontext
);
499 aac_fib_free(cmd_fibcontext
);
503 static int aac_probe_container_callback2(struct scsi_cmnd
* scsicmd
)
505 struct fsa_dev_info
*fsa_dev_ptr
= ((struct aac_dev
*)(scsicmd
->device
->host
->hostdata
))->fsa_dev
;
507 if ((fsa_dev_ptr
[scmd_id(scsicmd
)].valid
& 1))
508 return aac_scsi_cmd(scsicmd
);
510 scsicmd
->result
= DID_NO_CONNECT
<< 16;
511 scsicmd
->scsi_done(scsicmd
);
515 static void _aac_probe_container2(void * context
, struct fib
* fibptr
)
517 struct fsa_dev_info
*fsa_dev_ptr
;
518 int (*callback
)(struct scsi_cmnd
*);
519 struct scsi_cmnd
* scsicmd
= (struct scsi_cmnd
*)context
;
522 if (!aac_valid_context(scsicmd
, fibptr
))
525 scsicmd
->SCp
.Status
= 0;
526 fsa_dev_ptr
= fibptr
->dev
->fsa_dev
;
528 struct aac_mount
* dresp
= (struct aac_mount
*) fib_data(fibptr
);
529 fsa_dev_ptr
+= scmd_id(scsicmd
);
531 if ((le32_to_cpu(dresp
->status
) == ST_OK
) &&
532 (le32_to_cpu(dresp
->mnt
[0].vol
) != CT_NONE
) &&
533 (le32_to_cpu(dresp
->mnt
[0].state
) != FSCS_HIDDEN
)) {
534 fsa_dev_ptr
->valid
= 1;
535 /* sense_key holds the current state of the spin-up */
536 if (dresp
->mnt
[0].state
& cpu_to_le32(FSCS_NOT_READY
))
537 fsa_dev_ptr
->sense_data
.sense_key
= NOT_READY
;
538 else if (fsa_dev_ptr
->sense_data
.sense_key
== NOT_READY
)
539 fsa_dev_ptr
->sense_data
.sense_key
= NO_SENSE
;
540 fsa_dev_ptr
->type
= le32_to_cpu(dresp
->mnt
[0].vol
);
542 = ((u64
)le32_to_cpu(dresp
->mnt
[0].capacity
)) +
543 (((u64
)le32_to_cpu(dresp
->mnt
[0].capacityhigh
)) << 32);
544 fsa_dev_ptr
->ro
= ((le32_to_cpu(dresp
->mnt
[0].state
) & FSCS_READONLY
) != 0);
546 if ((fsa_dev_ptr
->valid
& 1) == 0)
547 fsa_dev_ptr
->valid
= 0;
548 scsicmd
->SCp
.Status
= le32_to_cpu(dresp
->count
);
550 aac_fib_complete(fibptr
);
551 aac_fib_free(fibptr
);
552 callback
= (int (*)(struct scsi_cmnd
*))(scsicmd
->SCp
.ptr
);
553 scsicmd
->SCp
.ptr
= NULL
;
554 (*callback
)(scsicmd
);
558 static void _aac_probe_container1(void * context
, struct fib
* fibptr
)
560 struct scsi_cmnd
* scsicmd
;
561 struct aac_mount
* dresp
;
562 struct aac_query_mount
*dinfo
;
565 dresp
= (struct aac_mount
*) fib_data(fibptr
);
566 dresp
->mnt
[0].capacityhigh
= 0;
567 if ((le32_to_cpu(dresp
->status
) != ST_OK
) ||
568 (le32_to_cpu(dresp
->mnt
[0].vol
) != CT_NONE
)) {
569 _aac_probe_container2(context
, fibptr
);
572 scsicmd
= (struct scsi_cmnd
*) context
;
574 if (!aac_valid_context(scsicmd
, fibptr
))
577 aac_fib_init(fibptr
);
579 dinfo
= (struct aac_query_mount
*)fib_data(fibptr
);
581 dinfo
->command
= cpu_to_le32(VM_NameServe64
);
582 dinfo
->count
= cpu_to_le32(scmd_id(scsicmd
));
583 dinfo
->type
= cpu_to_le32(FT_FILESYS
);
585 status
= aac_fib_send(ContainerCommand
,
587 sizeof(struct aac_query_mount
),
590 _aac_probe_container2
,
593 * Check that the command queued to the controller
595 if (status
== -EINPROGRESS
)
596 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
597 else if (status
< 0) {
598 /* Inherit results from VM_NameServe, if any */
599 dresp
->status
= cpu_to_le32(ST_OK
);
600 _aac_probe_container2(context
, fibptr
);
604 static int _aac_probe_container(struct scsi_cmnd
* scsicmd
, int (*callback
)(struct scsi_cmnd
*))
607 int status
= -ENOMEM
;
609 if ((fibptr
= aac_fib_alloc((struct aac_dev
*)scsicmd
->device
->host
->hostdata
))) {
610 struct aac_query_mount
*dinfo
;
612 aac_fib_init(fibptr
);
614 dinfo
= (struct aac_query_mount
*)fib_data(fibptr
);
616 dinfo
->command
= cpu_to_le32(VM_NameServe
);
617 dinfo
->count
= cpu_to_le32(scmd_id(scsicmd
));
618 dinfo
->type
= cpu_to_le32(FT_FILESYS
);
619 scsicmd
->SCp
.ptr
= (char *)callback
;
621 status
= aac_fib_send(ContainerCommand
,
623 sizeof(struct aac_query_mount
),
626 _aac_probe_container1
,
629 * Check that the command queued to the controller
631 if (status
== -EINPROGRESS
) {
632 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
636 scsicmd
->SCp
.ptr
= NULL
;
637 aac_fib_complete(fibptr
);
638 aac_fib_free(fibptr
);
642 struct fsa_dev_info
*fsa_dev_ptr
= ((struct aac_dev
*)(scsicmd
->device
->host
->hostdata
))->fsa_dev
;
644 fsa_dev_ptr
+= scmd_id(scsicmd
);
645 if ((fsa_dev_ptr
->valid
& 1) == 0) {
646 fsa_dev_ptr
->valid
= 0;
647 return (*callback
)(scsicmd
);
655 * aac_probe_container - query a logical volume
656 * @dev: device to query
657 * @cid: container identifier
659 * Queries the controller about the given volume. The volume information
660 * is updated in the struct fsa_dev_info structure rather than returned.
662 static int aac_probe_container_callback1(struct scsi_cmnd
* scsicmd
)
664 scsicmd
->device
= NULL
;
668 int aac_probe_container(struct aac_dev
*dev
, int cid
)
670 struct scsi_cmnd
*scsicmd
= kmalloc(sizeof(*scsicmd
), GFP_KERNEL
);
671 struct scsi_device
*scsidev
= kmalloc(sizeof(*scsidev
), GFP_KERNEL
);
674 if (!scsicmd
|| !scsidev
) {
679 scsicmd
->list
.next
= NULL
;
680 scsicmd
->scsi_done
= (void (*)(struct scsi_cmnd
*))aac_probe_container_callback1
;
682 scsicmd
->device
= scsidev
;
683 scsidev
->sdev_state
= 0;
685 scsidev
->host
= dev
->scsi_host_ptr
;
687 if (_aac_probe_container(scsicmd
, aac_probe_container_callback1
) == 0)
688 while (scsicmd
->device
== scsidev
)
691 status
= scsicmd
->SCp
.Status
;
696 /* Local Structure to set SCSI inquiry data strings */
698 char vid
[8]; /* Vendor ID */
699 char pid
[16]; /* Product ID */
700 char prl
[4]; /* Product Revision Level */
704 * InqStrCopy - string merge
705 * @a: string to copy from
706 * @b: string to copy to
708 * Copy a String from one location to another
712 static void inqstrcpy(char *a
, char *b
)
715 while (*a
!= (char)0)
719 static char *container_types
[] = {
743 char * get_container_type(unsigned tindex
)
745 if (tindex
>= ARRAY_SIZE(container_types
))
746 tindex
= ARRAY_SIZE(container_types
) - 1;
747 return container_types
[tindex
];
750 /* Function: setinqstr
752 * Arguments: [1] pointer to void [1] int
754 * Purpose: Sets SCSI inquiry data strings for vendor, product
755 * and revision level. Allows strings to be set in platform dependent
756 * files instead of in OS dependent driver source.
759 static void setinqstr(struct aac_dev
*dev
, void *data
, int tindex
)
761 struct scsi_inq
*str
;
763 str
= (struct scsi_inq
*)(data
); /* cast data to scsi inq block */
764 memset(str
, ' ', sizeof(*str
));
766 if (dev
->supplement_adapter_info
.AdapterTypeText
[0]) {
767 char * cp
= dev
->supplement_adapter_info
.AdapterTypeText
;
769 if ((cp
[0] == 'A') && (cp
[1] == 'O') && (cp
[2] == 'C'))
770 inqstrcpy("SMC", str
->vid
);
772 c
= sizeof(str
->vid
);
773 while (*cp
&& *cp
!= ' ' && --c
)
777 inqstrcpy (dev
->supplement_adapter_info
.AdapterTypeText
,
780 while (*cp
&& *cp
!= ' ')
785 /* last six chars reserved for vol type */
787 if (strlen(cp
) > sizeof(str
->pid
)) {
788 c
= cp
[sizeof(str
->pid
)];
789 cp
[sizeof(str
->pid
)] = '\0';
791 inqstrcpy (cp
, str
->pid
);
793 cp
[sizeof(str
->pid
)] = c
;
795 struct aac_driver_ident
*mp
= aac_get_driver_ident(dev
->cardtype
);
797 inqstrcpy (mp
->vname
, str
->vid
);
798 /* last six chars reserved for vol type */
799 inqstrcpy (mp
->model
, str
->pid
);
802 if (tindex
< ARRAY_SIZE(container_types
)){
803 char *findit
= str
->pid
;
805 for ( ; *findit
!= ' '; findit
++); /* walk till we find a space */
806 /* RAID is superfluous in the context of a RAID device */
807 if (memcmp(findit
-4, "RAID", 4) == 0)
808 *(findit
-= 4) = ' ';
809 if (((findit
- str
->pid
) + strlen(container_types
[tindex
]))
810 < (sizeof(str
->pid
) + sizeof(str
->prl
)))
811 inqstrcpy (container_types
[tindex
], findit
+ 1);
813 inqstrcpy ("V1.0", str
->prl
);
816 static void get_container_serial_callback(void *context
, struct fib
* fibptr
)
818 struct aac_get_serial_resp
* get_serial_reply
;
819 struct scsi_cmnd
* scsicmd
;
821 BUG_ON(fibptr
== NULL
);
823 scsicmd
= (struct scsi_cmnd
*) context
;
824 if (!aac_valid_context(scsicmd
, fibptr
))
827 get_serial_reply
= (struct aac_get_serial_resp
*) fib_data(fibptr
);
828 /* Failure is irrelevant, using default value instead */
829 if (le32_to_cpu(get_serial_reply
->status
) == CT_OK
) {
833 sp
[1] = scsicmd
->cmnd
[2];
835 sp
[3] = snprintf(sp
+4, sizeof(sp
)-4, "%08X",
836 le32_to_cpu(get_serial_reply
->uid
));
837 scsi_sg_copy_from_buffer(scsicmd
, sp
, sizeof(sp
));
840 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
842 aac_fib_complete(fibptr
);
843 aac_fib_free(fibptr
);
844 scsicmd
->scsi_done(scsicmd
);
848 * aac_get_container_serial - get container serial, none blocking.
850 static int aac_get_container_serial(struct scsi_cmnd
* scsicmd
)
853 struct aac_get_serial
*dinfo
;
854 struct fib
* cmd_fibcontext
;
855 struct aac_dev
* dev
;
857 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
859 if (!(cmd_fibcontext
= aac_fib_alloc(dev
)))
862 aac_fib_init(cmd_fibcontext
);
863 dinfo
= (struct aac_get_serial
*) fib_data(cmd_fibcontext
);
865 dinfo
->command
= cpu_to_le32(VM_ContainerConfig
);
866 dinfo
->type
= cpu_to_le32(CT_CID_TO_32BITS_UID
);
867 dinfo
->cid
= cpu_to_le32(scmd_id(scsicmd
));
869 status
= aac_fib_send(ContainerCommand
,
871 sizeof (struct aac_get_serial
),
874 (fib_callback
) get_container_serial_callback
,
878 * Check that the command queued to the controller
880 if (status
== -EINPROGRESS
) {
881 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
885 printk(KERN_WARNING
"aac_get_container_serial: aac_fib_send failed with status: %d.\n", status
);
886 aac_fib_complete(cmd_fibcontext
);
887 aac_fib_free(cmd_fibcontext
);
891 /* Function: setinqserial
893 * Arguments: [1] pointer to void [1] int
895 * Purpose: Sets SCSI Unit Serial number.
896 * This is a fake. We should read a proper
897 * serial number from the container. <SuSE>But
898 * without docs it's quite hard to do it :-)
899 * So this will have to do in the meantime.</SuSE>
902 static int setinqserial(struct aac_dev
*dev
, void *data
, int cid
)
905 * This breaks array migration.
907 return snprintf((char *)(data
), sizeof(struct scsi_inq
) - 4, "%08X%02X",
908 le32_to_cpu(dev
->adapter_info
.serial
[0]), cid
);
911 static inline void set_sense(struct sense_data
*sense_data
, u8 sense_key
,
912 u8 sense_code
, u8 a_sense_code
, u8 bit_pointer
, u16 field_pointer
)
914 u8
*sense_buf
= (u8
*)sense_data
;
915 /* Sense data valid, err code 70h */
916 sense_buf
[0] = 0x70; /* No info field */
917 sense_buf
[1] = 0; /* Segment number, always zero */
919 sense_buf
[2] = sense_key
; /* Sense key */
921 sense_buf
[12] = sense_code
; /* Additional sense code */
922 sense_buf
[13] = a_sense_code
; /* Additional sense code qualifier */
924 if (sense_key
== ILLEGAL_REQUEST
) {
925 sense_buf
[7] = 10; /* Additional sense length */
927 sense_buf
[15] = bit_pointer
;
928 /* Illegal parameter is in the parameter block */
929 if (sense_code
== SENCODE_INVALID_CDB_FIELD
)
930 sense_buf
[15] |= 0xc0;/* Std sense key specific field */
931 /* Illegal parameter is in the CDB block */
932 sense_buf
[16] = field_pointer
>> 8; /* MSB */
933 sense_buf
[17] = field_pointer
; /* LSB */
935 sense_buf
[7] = 6; /* Additional sense length */
938 static int aac_bounds_32(struct aac_dev
* dev
, struct scsi_cmnd
* cmd
, u64 lba
)
940 if (lba
& 0xffffffff00000000LL
) {
941 int cid
= scmd_id(cmd
);
942 dprintk((KERN_DEBUG
"aacraid: Illegal lba\n"));
943 cmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
944 SAM_STAT_CHECK_CONDITION
;
945 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
946 HARDWARE_ERROR
, SENCODE_INTERNAL_TARGET_FAILURE
,
947 ASENCODE_INTERNAL_TARGET_FAILURE
, 0, 0);
948 memcpy(cmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
949 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
950 SCSI_SENSE_BUFFERSIZE
));
957 static int aac_bounds_64(struct aac_dev
* dev
, struct scsi_cmnd
* cmd
, u64 lba
)
962 static void io_callback(void *context
, struct fib
* fibptr
);
964 static int aac_read_raw_io(struct fib
* fib
, struct scsi_cmnd
* cmd
, u64 lba
, u32 count
)
967 struct aac_raw_io
*readcmd
;
969 readcmd
= (struct aac_raw_io
*) fib_data(fib
);
970 readcmd
->block
[0] = cpu_to_le32((u32
)(lba
&0xffffffff));
971 readcmd
->block
[1] = cpu_to_le32((u32
)((lba
&0xffffffff00000000LL
)>>32));
972 readcmd
->count
= cpu_to_le32(count
<<9);
973 readcmd
->cid
= cpu_to_le16(scmd_id(cmd
));
974 readcmd
->flags
= cpu_to_le16(IO_TYPE_READ
);
975 readcmd
->bpTotal
= 0;
976 readcmd
->bpComplete
= 0;
978 aac_build_sgraw(cmd
, &readcmd
->sg
);
979 fibsize
= sizeof(struct aac_raw_io
) + ((le32_to_cpu(readcmd
->sg
.count
) - 1) * sizeof (struct sgentryraw
));
980 BUG_ON(fibsize
> (fib
->dev
->max_fib_size
- sizeof(struct aac_fibhdr
)));
982 * Now send the Fib to the adapter
984 return aac_fib_send(ContainerRawIo
,
989 (fib_callback
) io_callback
,
993 static int aac_read_block64(struct fib
* fib
, struct scsi_cmnd
* cmd
, u64 lba
, u32 count
)
996 struct aac_read64
*readcmd
;
998 readcmd
= (struct aac_read64
*) fib_data(fib
);
999 readcmd
->command
= cpu_to_le32(VM_CtHostRead64
);
1000 readcmd
->cid
= cpu_to_le16(scmd_id(cmd
));
1001 readcmd
->sector_count
= cpu_to_le16(count
);
1002 readcmd
->block
= cpu_to_le32((u32
)(lba
&0xffffffff));
1006 aac_build_sg64(cmd
, &readcmd
->sg
);
1007 fibsize
= sizeof(struct aac_read64
) +
1008 ((le32_to_cpu(readcmd
->sg
.count
) - 1) *
1009 sizeof (struct sgentry64
));
1010 BUG_ON (fibsize
> (fib
->dev
->max_fib_size
-
1011 sizeof(struct aac_fibhdr
)));
1013 * Now send the Fib to the adapter
1015 return aac_fib_send(ContainerCommand64
,
1020 (fib_callback
) io_callback
,
1024 static int aac_read_block(struct fib
* fib
, struct scsi_cmnd
* cmd
, u64 lba
, u32 count
)
1027 struct aac_read
*readcmd
;
1029 readcmd
= (struct aac_read
*) fib_data(fib
);
1030 readcmd
->command
= cpu_to_le32(VM_CtBlockRead
);
1031 readcmd
->cid
= cpu_to_le32(scmd_id(cmd
));
1032 readcmd
->block
= cpu_to_le32((u32
)(lba
&0xffffffff));
1033 readcmd
->count
= cpu_to_le32(count
* 512);
1035 aac_build_sg(cmd
, &readcmd
->sg
);
1036 fibsize
= sizeof(struct aac_read
) +
1037 ((le32_to_cpu(readcmd
->sg
.count
) - 1) *
1038 sizeof (struct sgentry
));
1039 BUG_ON (fibsize
> (fib
->dev
->max_fib_size
-
1040 sizeof(struct aac_fibhdr
)));
1042 * Now send the Fib to the adapter
1044 return aac_fib_send(ContainerCommand
,
1049 (fib_callback
) io_callback
,
1053 static int aac_write_raw_io(struct fib
* fib
, struct scsi_cmnd
* cmd
, u64 lba
, u32 count
, int fua
)
1056 struct aac_raw_io
*writecmd
;
1058 writecmd
= (struct aac_raw_io
*) fib_data(fib
);
1059 writecmd
->block
[0] = cpu_to_le32((u32
)(lba
&0xffffffff));
1060 writecmd
->block
[1] = cpu_to_le32((u32
)((lba
&0xffffffff00000000LL
)>>32));
1061 writecmd
->count
= cpu_to_le32(count
<<9);
1062 writecmd
->cid
= cpu_to_le16(scmd_id(cmd
));
1063 writecmd
->flags
= (fua
&& ((aac_cache
& 5) != 1) &&
1064 (((aac_cache
& 5) != 5) || !fib
->dev
->cache_protected
)) ?
1065 cpu_to_le16(IO_TYPE_WRITE
|IO_SUREWRITE
) :
1066 cpu_to_le16(IO_TYPE_WRITE
);
1067 writecmd
->bpTotal
= 0;
1068 writecmd
->bpComplete
= 0;
1070 aac_build_sgraw(cmd
, &writecmd
->sg
);
1071 fibsize
= sizeof(struct aac_raw_io
) + ((le32_to_cpu(writecmd
->sg
.count
) - 1) * sizeof (struct sgentryraw
));
1072 BUG_ON(fibsize
> (fib
->dev
->max_fib_size
- sizeof(struct aac_fibhdr
)));
1074 * Now send the Fib to the adapter
1076 return aac_fib_send(ContainerRawIo
,
1081 (fib_callback
) io_callback
,
1085 static int aac_write_block64(struct fib
* fib
, struct scsi_cmnd
* cmd
, u64 lba
, u32 count
, int fua
)
1088 struct aac_write64
*writecmd
;
1090 writecmd
= (struct aac_write64
*) fib_data(fib
);
1091 writecmd
->command
= cpu_to_le32(VM_CtHostWrite64
);
1092 writecmd
->cid
= cpu_to_le16(scmd_id(cmd
));
1093 writecmd
->sector_count
= cpu_to_le16(count
);
1094 writecmd
->block
= cpu_to_le32((u32
)(lba
&0xffffffff));
1096 writecmd
->flags
= 0;
1098 aac_build_sg64(cmd
, &writecmd
->sg
);
1099 fibsize
= sizeof(struct aac_write64
) +
1100 ((le32_to_cpu(writecmd
->sg
.count
) - 1) *
1101 sizeof (struct sgentry64
));
1102 BUG_ON (fibsize
> (fib
->dev
->max_fib_size
-
1103 sizeof(struct aac_fibhdr
)));
1105 * Now send the Fib to the adapter
1107 return aac_fib_send(ContainerCommand64
,
1112 (fib_callback
) io_callback
,
1116 static int aac_write_block(struct fib
* fib
, struct scsi_cmnd
* cmd
, u64 lba
, u32 count
, int fua
)
1119 struct aac_write
*writecmd
;
1121 writecmd
= (struct aac_write
*) fib_data(fib
);
1122 writecmd
->command
= cpu_to_le32(VM_CtBlockWrite
);
1123 writecmd
->cid
= cpu_to_le32(scmd_id(cmd
));
1124 writecmd
->block
= cpu_to_le32((u32
)(lba
&0xffffffff));
1125 writecmd
->count
= cpu_to_le32(count
* 512);
1126 writecmd
->sg
.count
= cpu_to_le32(1);
1127 /* ->stable is not used - it did mean which type of write */
1129 aac_build_sg(cmd
, &writecmd
->sg
);
1130 fibsize
= sizeof(struct aac_write
) +
1131 ((le32_to_cpu(writecmd
->sg
.count
) - 1) *
1132 sizeof (struct sgentry
));
1133 BUG_ON (fibsize
> (fib
->dev
->max_fib_size
-
1134 sizeof(struct aac_fibhdr
)));
1136 * Now send the Fib to the adapter
1138 return aac_fib_send(ContainerCommand
,
1143 (fib_callback
) io_callback
,
1147 static struct aac_srb
* aac_scsi_common(struct fib
* fib
, struct scsi_cmnd
* cmd
)
1149 struct aac_srb
* srbcmd
;
1154 switch(cmd
->sc_data_direction
){
1158 case DMA_BIDIRECTIONAL
:
1159 flag
= SRB_DataIn
| SRB_DataOut
;
1161 case DMA_FROM_DEVICE
:
1165 default: /* shuts up some versions of gcc */
1166 flag
= SRB_NoDataXfer
;
1170 srbcmd
= (struct aac_srb
*) fib_data(fib
);
1171 srbcmd
->function
= cpu_to_le32(SRBF_ExecuteScsi
);
1172 srbcmd
->channel
= cpu_to_le32(aac_logical_to_phys(scmd_channel(cmd
)));
1173 srbcmd
->id
= cpu_to_le32(scmd_id(cmd
));
1174 srbcmd
->lun
= cpu_to_le32(cmd
->device
->lun
);
1175 srbcmd
->flags
= cpu_to_le32(flag
);
1176 timeout
= cmd
->request
->timeout
/HZ
;
1179 srbcmd
->timeout
= cpu_to_le32(timeout
); // timeout in seconds
1180 srbcmd
->retry_limit
= 0; /* Obsolete parameter */
1181 srbcmd
->cdb_size
= cpu_to_le32(cmd
->cmd_len
);
1185 static void aac_srb_callback(void *context
, struct fib
* fibptr
);
1187 static int aac_scsi_64(struct fib
* fib
, struct scsi_cmnd
* cmd
)
1190 struct aac_srb
* srbcmd
= aac_scsi_common(fib
, cmd
);
1192 aac_build_sg64(cmd
, (struct sgmap64
*) &srbcmd
->sg
);
1193 srbcmd
->count
= cpu_to_le32(scsi_bufflen(cmd
));
1195 memset(srbcmd
->cdb
, 0, sizeof(srbcmd
->cdb
));
1196 memcpy(srbcmd
->cdb
, cmd
->cmnd
, cmd
->cmd_len
);
1198 * Build Scatter/Gather list
1200 fibsize
= sizeof (struct aac_srb
) - sizeof (struct sgentry
) +
1201 ((le32_to_cpu(srbcmd
->sg
.count
) & 0xff) *
1202 sizeof (struct sgentry64
));
1203 BUG_ON (fibsize
> (fib
->dev
->max_fib_size
-
1204 sizeof(struct aac_fibhdr
)));
1207 * Now send the Fib to the adapter
1209 return aac_fib_send(ScsiPortCommand64
, fib
,
1210 fibsize
, FsaNormal
, 0, 1,
1211 (fib_callback
) aac_srb_callback
,
1215 static int aac_scsi_32(struct fib
* fib
, struct scsi_cmnd
* cmd
)
1218 struct aac_srb
* srbcmd
= aac_scsi_common(fib
, cmd
);
1220 aac_build_sg(cmd
, (struct sgmap
*)&srbcmd
->sg
);
1221 srbcmd
->count
= cpu_to_le32(scsi_bufflen(cmd
));
1223 memset(srbcmd
->cdb
, 0, sizeof(srbcmd
->cdb
));
1224 memcpy(srbcmd
->cdb
, cmd
->cmnd
, cmd
->cmd_len
);
1226 * Build Scatter/Gather list
1228 fibsize
= sizeof (struct aac_srb
) +
1229 (((le32_to_cpu(srbcmd
->sg
.count
) & 0xff) - 1) *
1230 sizeof (struct sgentry
));
1231 BUG_ON (fibsize
> (fib
->dev
->max_fib_size
-
1232 sizeof(struct aac_fibhdr
)));
1235 * Now send the Fib to the adapter
1237 return aac_fib_send(ScsiPortCommand
, fib
, fibsize
, FsaNormal
, 0, 1,
1238 (fib_callback
) aac_srb_callback
, (void *) cmd
);
1241 static int aac_scsi_32_64(struct fib
* fib
, struct scsi_cmnd
* cmd
)
1243 if ((sizeof(dma_addr_t
) > 4) && fib
->dev
->needs_dac
&&
1244 (fib
->dev
->adapter_info
.options
& AAC_OPT_SGMAP_HOST64
))
1246 return aac_scsi_32(fib
, cmd
);
1249 int aac_get_adapter_info(struct aac_dev
* dev
)
1254 struct aac_adapter_info
*info
;
1255 struct aac_bus_info
*command
;
1256 struct aac_bus_info_response
*bus_info
;
1258 if (!(fibptr
= aac_fib_alloc(dev
)))
1261 aac_fib_init(fibptr
);
1262 info
= (struct aac_adapter_info
*) fib_data(fibptr
);
1263 memset(info
,0,sizeof(*info
));
1265 rcode
= aac_fib_send(RequestAdapterInfo
,
1269 -1, 1, /* First `interrupt' command uses special wait */
1274 /* FIB should be freed only after
1275 * getting the response from the F/W */
1276 if (rcode
!= -ERESTARTSYS
) {
1277 aac_fib_complete(fibptr
);
1278 aac_fib_free(fibptr
);
1282 memcpy(&dev
->adapter_info
, info
, sizeof(*info
));
1284 if (dev
->adapter_info
.options
& AAC_OPT_SUPPLEMENT_ADAPTER_INFO
) {
1285 struct aac_supplement_adapter_info
* sinfo
;
1287 aac_fib_init(fibptr
);
1289 sinfo
= (struct aac_supplement_adapter_info
*) fib_data(fibptr
);
1291 memset(sinfo
,0,sizeof(*sinfo
));
1293 rcode
= aac_fib_send(RequestSupplementAdapterInfo
,
1302 memcpy(&dev
->supplement_adapter_info
, sinfo
, sizeof(*sinfo
));
1303 if (rcode
== -ERESTARTSYS
) {
1304 fibptr
= aac_fib_alloc(dev
);
1316 aac_fib_init(fibptr
);
1318 bus_info
= (struct aac_bus_info_response
*) fib_data(fibptr
);
1320 memset(bus_info
, 0, sizeof(*bus_info
));
1322 command
= (struct aac_bus_info
*)bus_info
;
1324 command
->Command
= cpu_to_le32(VM_Ioctl
);
1325 command
->ObjType
= cpu_to_le32(FT_DRIVE
);
1326 command
->MethodId
= cpu_to_le32(1);
1327 command
->CtlCmd
= cpu_to_le32(GetBusInfo
);
1329 rcode
= aac_fib_send(ContainerCommand
,
1336 /* reasoned default */
1337 dev
->maximum_num_physicals
= 16;
1338 if (rcode
>= 0 && le32_to_cpu(bus_info
->Status
) == ST_OK
) {
1339 dev
->maximum_num_physicals
= le32_to_cpu(bus_info
->TargetsPerBus
);
1340 dev
->maximum_num_channels
= le32_to_cpu(bus_info
->BusCount
);
1343 if (!dev
->in_reset
) {
1345 tmp
= le32_to_cpu(dev
->adapter_info
.kernelrev
);
1346 printk(KERN_INFO
"%s%d: kernel %d.%d-%d[%d] %.*s\n",
1352 le32_to_cpu(dev
->adapter_info
.kernelbuild
),
1353 (int)sizeof(dev
->supplement_adapter_info
.BuildDate
),
1354 dev
->supplement_adapter_info
.BuildDate
);
1355 tmp
= le32_to_cpu(dev
->adapter_info
.monitorrev
);
1356 printk(KERN_INFO
"%s%d: monitor %d.%d-%d[%d]\n",
1358 tmp
>>24,(tmp
>>16)&0xff,tmp
&0xff,
1359 le32_to_cpu(dev
->adapter_info
.monitorbuild
));
1360 tmp
= le32_to_cpu(dev
->adapter_info
.biosrev
);
1361 printk(KERN_INFO
"%s%d: bios %d.%d-%d[%d]\n",
1363 tmp
>>24,(tmp
>>16)&0xff,tmp
&0xff,
1364 le32_to_cpu(dev
->adapter_info
.biosbuild
));
1366 if (aac_get_serial_number(
1367 shost_to_class(dev
->scsi_host_ptr
), buffer
))
1368 printk(KERN_INFO
"%s%d: serial %s",
1369 dev
->name
, dev
->id
, buffer
);
1370 if (dev
->supplement_adapter_info
.VpdInfo
.Tsid
[0]) {
1371 printk(KERN_INFO
"%s%d: TSID %.*s\n",
1373 (int)sizeof(dev
->supplement_adapter_info
.VpdInfo
.Tsid
),
1374 dev
->supplement_adapter_info
.VpdInfo
.Tsid
);
1376 if (!aac_check_reset
|| ((aac_check_reset
== 1) &&
1377 (dev
->supplement_adapter_info
.SupportedOptions2
&
1378 AAC_OPTION_IGNORE_RESET
))) {
1379 printk(KERN_INFO
"%s%d: Reset Adapter Ignored\n",
1380 dev
->name
, dev
->id
);
1384 dev
->cache_protected
= 0;
1385 dev
->jbod
= ((dev
->supplement_adapter_info
.FeatureBits
&
1386 AAC_FEATURE_JBOD
) != 0);
1387 dev
->nondasd_support
= 0;
1388 dev
->raid_scsi_mode
= 0;
1389 if(dev
->adapter_info
.options
& AAC_OPT_NONDASD
)
1390 dev
->nondasd_support
= 1;
1393 * If the firmware supports ROMB RAID/SCSI mode and we are currently
1394 * in RAID/SCSI mode, set the flag. For now if in this mode we will
1395 * force nondasd support on. If we decide to allow the non-dasd flag
1396 * additional changes changes will have to be made to support
1397 * RAID/SCSI. the function aac_scsi_cmd in this module will have to be
1398 * changed to support the new dev->raid_scsi_mode flag instead of
1399 * leaching off of the dev->nondasd_support flag. Also in linit.c the
1400 * function aac_detect will have to be modified where it sets up the
1401 * max number of channels based on the aac->nondasd_support flag only.
1403 if ((dev
->adapter_info
.options
& AAC_OPT_SCSI_MANAGED
) &&
1404 (dev
->adapter_info
.options
& AAC_OPT_RAID_SCSI_MODE
)) {
1405 dev
->nondasd_support
= 1;
1406 dev
->raid_scsi_mode
= 1;
1408 if (dev
->raid_scsi_mode
!= 0)
1409 printk(KERN_INFO
"%s%d: ROMB RAID/SCSI mode enabled\n",
1410 dev
->name
, dev
->id
);
1413 dev
->nondasd_support
= (nondasd
!=0);
1414 if (dev
->nondasd_support
&& !dev
->in_reset
)
1415 printk(KERN_INFO
"%s%d: Non-DASD support enabled.\n",dev
->name
, dev
->id
);
1417 if (dma_get_required_mask(&dev
->pdev
->dev
) > DMA_BIT_MASK(32))
1419 dev
->dac_support
= 0;
1420 if ((sizeof(dma_addr_t
) > 4) && dev
->needs_dac
&&
1421 (dev
->adapter_info
.options
& AAC_OPT_SGMAP_HOST64
)) {
1423 printk(KERN_INFO
"%s%d: 64bit support enabled.\n",
1424 dev
->name
, dev
->id
);
1425 dev
->dac_support
= 1;
1429 dev
->dac_support
= (dacmode
!=0);
1432 /* avoid problems with AAC_QUIRK_SCSI_32 controllers */
1433 if (dev
->dac_support
&& (aac_get_driver_ident(dev
->cardtype
)->quirks
1434 & AAC_QUIRK_SCSI_32
)) {
1435 dev
->nondasd_support
= 0;
1437 expose_physicals
= 0;
1440 if(dev
->dac_support
!= 0) {
1441 if (!pci_set_dma_mask(dev
->pdev
, DMA_BIT_MASK(64)) &&
1442 !pci_set_consistent_dma_mask(dev
->pdev
, DMA_BIT_MASK(64))) {
1444 printk(KERN_INFO
"%s%d: 64 Bit DAC enabled\n",
1445 dev
->name
, dev
->id
);
1446 } else if (!pci_set_dma_mask(dev
->pdev
, DMA_BIT_MASK(32)) &&
1447 !pci_set_consistent_dma_mask(dev
->pdev
, DMA_BIT_MASK(32))) {
1448 printk(KERN_INFO
"%s%d: DMA mask set failed, 64 Bit DAC disabled\n",
1449 dev
->name
, dev
->id
);
1450 dev
->dac_support
= 0;
1452 printk(KERN_WARNING
"%s%d: No suitable DMA available.\n",
1453 dev
->name
, dev
->id
);
1458 * Deal with configuring for the individualized limits of each packet
1461 dev
->a_ops
.adapter_scsi
= (dev
->dac_support
)
1462 ? ((aac_get_driver_ident(dev
->cardtype
)->quirks
& AAC_QUIRK_SCSI_32
)
1466 if (dev
->raw_io_interface
) {
1467 dev
->a_ops
.adapter_bounds
= (dev
->raw_io_64
)
1470 dev
->a_ops
.adapter_read
= aac_read_raw_io
;
1471 dev
->a_ops
.adapter_write
= aac_write_raw_io
;
1473 dev
->a_ops
.adapter_bounds
= aac_bounds_32
;
1474 dev
->scsi_host_ptr
->sg_tablesize
= (dev
->max_fib_size
-
1475 sizeof(struct aac_fibhdr
) -
1476 sizeof(struct aac_write
) + sizeof(struct sgentry
)) /
1477 sizeof(struct sgentry
);
1478 if (dev
->dac_support
) {
1479 dev
->a_ops
.adapter_read
= aac_read_block64
;
1480 dev
->a_ops
.adapter_write
= aac_write_block64
;
1482 * 38 scatter gather elements
1484 dev
->scsi_host_ptr
->sg_tablesize
=
1485 (dev
->max_fib_size
-
1486 sizeof(struct aac_fibhdr
) -
1487 sizeof(struct aac_write64
) +
1488 sizeof(struct sgentry64
)) /
1489 sizeof(struct sgentry64
);
1491 dev
->a_ops
.adapter_read
= aac_read_block
;
1492 dev
->a_ops
.adapter_write
= aac_write_block
;
1494 dev
->scsi_host_ptr
->max_sectors
= AAC_MAX_32BIT_SGBCOUNT
;
1495 if (dev
->adapter_info
.options
& AAC_OPT_NEW_COMM_TYPE1
)
1496 dev
->adapter_info
.options
|= AAC_OPT_NEW_COMM
;
1497 if (!(dev
->adapter_info
.options
& AAC_OPT_NEW_COMM
)) {
1499 * Worst case size that could cause sg overflow when
1500 * we break up SG elements that are larger than 64KB.
1501 * Would be nice if we could tell the SCSI layer what
1502 * the maximum SG element size can be. Worst case is
1503 * (sg_tablesize-1) 4KB elements with one 64KB
1505 * 32bit -> 468 or 238KB 64bit -> 424 or 212KB
1507 dev
->scsi_host_ptr
->max_sectors
=
1508 (dev
->scsi_host_ptr
->sg_tablesize
* 8) + 112;
1511 /* FIB should be freed only after getting the response from the F/W */
1512 if (rcode
!= -ERESTARTSYS
) {
1513 aac_fib_complete(fibptr
);
1514 aac_fib_free(fibptr
);
1521 static void io_callback(void *context
, struct fib
* fibptr
)
1523 struct aac_dev
*dev
;
1524 struct aac_read_reply
*readreply
;
1525 struct scsi_cmnd
*scsicmd
;
1528 scsicmd
= (struct scsi_cmnd
*) context
;
1530 if (!aac_valid_context(scsicmd
, fibptr
))
1534 cid
= scmd_id(scsicmd
);
1536 if (nblank(dprintk(x
))) {
1538 switch (scsicmd
->cmnd
[0]) {
1541 lba
= ((scsicmd
->cmnd
[1] & 0x1F) << 16) |
1542 (scsicmd
->cmnd
[2] << 8) | scsicmd
->cmnd
[3];
1546 lba
= ((u64
)scsicmd
->cmnd
[2] << 56) |
1547 ((u64
)scsicmd
->cmnd
[3] << 48) |
1548 ((u64
)scsicmd
->cmnd
[4] << 40) |
1549 ((u64
)scsicmd
->cmnd
[5] << 32) |
1550 ((u64
)scsicmd
->cmnd
[6] << 24) |
1551 (scsicmd
->cmnd
[7] << 16) |
1552 (scsicmd
->cmnd
[8] << 8) | scsicmd
->cmnd
[9];
1556 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) |
1557 (scsicmd
->cmnd
[3] << 16) |
1558 (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1561 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) |
1562 (scsicmd
->cmnd
[3] << 16) |
1563 (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1567 "io_callback[cpu %d]: lba = %llu, t = %ld.\n",
1568 smp_processor_id(), (unsigned long long)lba
, jiffies
);
1571 BUG_ON(fibptr
== NULL
);
1573 scsi_dma_unmap(scsicmd
);
1575 readreply
= (struct aac_read_reply
*)fib_data(fibptr
);
1576 switch (le32_to_cpu(readreply
->status
)) {
1578 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
1580 dev
->fsa_dev
[cid
].sense_data
.sense_key
= NO_SENSE
;
1583 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
1584 SAM_STAT_CHECK_CONDITION
;
1585 set_sense(&dev
->fsa_dev
[cid
].sense_data
, NOT_READY
,
1586 SENCODE_BECOMING_READY
, ASENCODE_BECOMING_READY
, 0, 0);
1587 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
1588 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
1589 SCSI_SENSE_BUFFERSIZE
));
1592 #ifdef AAC_DETAILED_STATUS_INFO
1593 printk(KERN_WARNING
"io_callback: io failed, status = %d\n",
1594 le32_to_cpu(readreply
->status
));
1596 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
1597 SAM_STAT_CHECK_CONDITION
;
1598 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
1599 HARDWARE_ERROR
, SENCODE_INTERNAL_TARGET_FAILURE
,
1600 ASENCODE_INTERNAL_TARGET_FAILURE
, 0, 0);
1601 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
1602 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
1603 SCSI_SENSE_BUFFERSIZE
));
1606 aac_fib_complete(fibptr
);
1607 aac_fib_free(fibptr
);
1609 scsicmd
->scsi_done(scsicmd
);
1612 static int aac_read(struct scsi_cmnd
* scsicmd
)
1617 struct aac_dev
*dev
;
1618 struct fib
* cmd_fibcontext
;
1621 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
1623 * Get block address and transfer length
1625 switch (scsicmd
->cmnd
[0]) {
1627 dprintk((KERN_DEBUG
"aachba: received a read(6) command on id %d.\n", scmd_id(scsicmd
)));
1629 lba
= ((scsicmd
->cmnd
[1] & 0x1F) << 16) |
1630 (scsicmd
->cmnd
[2] << 8) | scsicmd
->cmnd
[3];
1631 count
= scsicmd
->cmnd
[4];
1637 dprintk((KERN_DEBUG
"aachba: received a read(16) command on id %d.\n", scmd_id(scsicmd
)));
1639 lba
= ((u64
)scsicmd
->cmnd
[2] << 56) |
1640 ((u64
)scsicmd
->cmnd
[3] << 48) |
1641 ((u64
)scsicmd
->cmnd
[4] << 40) |
1642 ((u64
)scsicmd
->cmnd
[5] << 32) |
1643 ((u64
)scsicmd
->cmnd
[6] << 24) |
1644 (scsicmd
->cmnd
[7] << 16) |
1645 (scsicmd
->cmnd
[8] << 8) | scsicmd
->cmnd
[9];
1646 count
= (scsicmd
->cmnd
[10] << 24) |
1647 (scsicmd
->cmnd
[11] << 16) |
1648 (scsicmd
->cmnd
[12] << 8) | scsicmd
->cmnd
[13];
1651 dprintk((KERN_DEBUG
"aachba: received a read(12) command on id %d.\n", scmd_id(scsicmd
)));
1653 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) |
1654 (scsicmd
->cmnd
[3] << 16) |
1655 (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1656 count
= (scsicmd
->cmnd
[6] << 24) |
1657 (scsicmd
->cmnd
[7] << 16) |
1658 (scsicmd
->cmnd
[8] << 8) | scsicmd
->cmnd
[9];
1661 dprintk((KERN_DEBUG
"aachba: received a read(10) command on id %d.\n", scmd_id(scsicmd
)));
1663 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) |
1664 (scsicmd
->cmnd
[3] << 16) |
1665 (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1666 count
= (scsicmd
->cmnd
[7] << 8) | scsicmd
->cmnd
[8];
1670 if ((lba
+ count
) > (dev
->fsa_dev
[scmd_id(scsicmd
)].size
)) {
1671 cid
= scmd_id(scsicmd
);
1672 dprintk((KERN_DEBUG
"aacraid: Illegal lba\n"));
1673 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
1674 SAM_STAT_CHECK_CONDITION
;
1675 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
1676 HARDWARE_ERROR
, SENCODE_INTERNAL_TARGET_FAILURE
,
1677 ASENCODE_INTERNAL_TARGET_FAILURE
, 0, 0);
1678 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
1679 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
1680 SCSI_SENSE_BUFFERSIZE
));
1681 scsicmd
->scsi_done(scsicmd
);
1685 dprintk((KERN_DEBUG
"aac_read[cpu %d]: lba = %llu, t = %ld.\n",
1686 smp_processor_id(), (unsigned long long)lba
, jiffies
));
1687 if (aac_adapter_bounds(dev
,scsicmd
,lba
))
1690 * Alocate and initialize a Fib
1692 if (!(cmd_fibcontext
= aac_fib_alloc(dev
))) {
1693 printk(KERN_WARNING
"aac_read: fib allocation failed\n");
1697 status
= aac_adapter_read(cmd_fibcontext
, scsicmd
, lba
, count
);
1700 * Check that the command queued to the controller
1702 if (status
== -EINPROGRESS
) {
1703 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
1707 printk(KERN_WARNING
"aac_read: aac_fib_send failed with status: %d.\n", status
);
1709 * For some reason, the Fib didn't queue, return QUEUE_FULL
1711 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_TASK_SET_FULL
;
1712 scsicmd
->scsi_done(scsicmd
);
1713 aac_fib_complete(cmd_fibcontext
);
1714 aac_fib_free(cmd_fibcontext
);
1718 static int aac_write(struct scsi_cmnd
* scsicmd
)
1724 struct aac_dev
*dev
;
1725 struct fib
* cmd_fibcontext
;
1728 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
1730 * Get block address and transfer length
1732 if (scsicmd
->cmnd
[0] == WRITE_6
) /* 6 byte command */
1734 lba
= ((scsicmd
->cmnd
[1] & 0x1F) << 16) | (scsicmd
->cmnd
[2] << 8) | scsicmd
->cmnd
[3];
1735 count
= scsicmd
->cmnd
[4];
1739 } else if (scsicmd
->cmnd
[0] == WRITE_16
) { /* 16 byte command */
1740 dprintk((KERN_DEBUG
"aachba: received a write(16) command on id %d.\n", scmd_id(scsicmd
)));
1742 lba
= ((u64
)scsicmd
->cmnd
[2] << 56) |
1743 ((u64
)scsicmd
->cmnd
[3] << 48) |
1744 ((u64
)scsicmd
->cmnd
[4] << 40) |
1745 ((u64
)scsicmd
->cmnd
[5] << 32) |
1746 ((u64
)scsicmd
->cmnd
[6] << 24) |
1747 (scsicmd
->cmnd
[7] << 16) |
1748 (scsicmd
->cmnd
[8] << 8) | scsicmd
->cmnd
[9];
1749 count
= (scsicmd
->cmnd
[10] << 24) | (scsicmd
->cmnd
[11] << 16) |
1750 (scsicmd
->cmnd
[12] << 8) | scsicmd
->cmnd
[13];
1751 fua
= scsicmd
->cmnd
[1] & 0x8;
1752 } else if (scsicmd
->cmnd
[0] == WRITE_12
) { /* 12 byte command */
1753 dprintk((KERN_DEBUG
"aachba: received a write(12) command on id %d.\n", scmd_id(scsicmd
)));
1755 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) | (scsicmd
->cmnd
[3] << 16)
1756 | (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1757 count
= (scsicmd
->cmnd
[6] << 24) | (scsicmd
->cmnd
[7] << 16)
1758 | (scsicmd
->cmnd
[8] << 8) | scsicmd
->cmnd
[9];
1759 fua
= scsicmd
->cmnd
[1] & 0x8;
1761 dprintk((KERN_DEBUG
"aachba: received a write(10) command on id %d.\n", scmd_id(scsicmd
)));
1762 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) | (scsicmd
->cmnd
[3] << 16) | (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1763 count
= (scsicmd
->cmnd
[7] << 8) | scsicmd
->cmnd
[8];
1764 fua
= scsicmd
->cmnd
[1] & 0x8;
1767 if ((lba
+ count
) > (dev
->fsa_dev
[scmd_id(scsicmd
)].size
)) {
1768 cid
= scmd_id(scsicmd
);
1769 dprintk((KERN_DEBUG
"aacraid: Illegal lba\n"));
1770 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
1771 SAM_STAT_CHECK_CONDITION
;
1772 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
1773 HARDWARE_ERROR
, SENCODE_INTERNAL_TARGET_FAILURE
,
1774 ASENCODE_INTERNAL_TARGET_FAILURE
, 0, 0);
1775 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
1776 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
1777 SCSI_SENSE_BUFFERSIZE
));
1778 scsicmd
->scsi_done(scsicmd
);
1782 dprintk((KERN_DEBUG
"aac_write[cpu %d]: lba = %llu, t = %ld.\n",
1783 smp_processor_id(), (unsigned long long)lba
, jiffies
));
1784 if (aac_adapter_bounds(dev
,scsicmd
,lba
))
1787 * Allocate and initialize a Fib then setup a BlockWrite command
1789 if (!(cmd_fibcontext
= aac_fib_alloc(dev
))) {
1790 /* FIB temporarily unavailable,not catastrophic failure */
1792 /* scsicmd->result = DID_ERROR << 16;
1793 * scsicmd->scsi_done(scsicmd);
1796 printk(KERN_WARNING
"aac_write: fib allocation failed\n");
1800 status
= aac_adapter_write(cmd_fibcontext
, scsicmd
, lba
, count
, fua
);
1803 * Check that the command queued to the controller
1805 if (status
== -EINPROGRESS
) {
1806 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
1810 printk(KERN_WARNING
"aac_write: aac_fib_send failed with status: %d\n", status
);
1812 * For some reason, the Fib didn't queue, return QUEUE_FULL
1814 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_TASK_SET_FULL
;
1815 scsicmd
->scsi_done(scsicmd
);
1817 aac_fib_complete(cmd_fibcontext
);
1818 aac_fib_free(cmd_fibcontext
);
1822 static void synchronize_callback(void *context
, struct fib
*fibptr
)
1824 struct aac_synchronize_reply
*synchronizereply
;
1825 struct scsi_cmnd
*cmd
;
1829 if (!aac_valid_context(cmd
, fibptr
))
1832 dprintk((KERN_DEBUG
"synchronize_callback[cpu %d]: t = %ld.\n",
1833 smp_processor_id(), jiffies
));
1834 BUG_ON(fibptr
== NULL
);
1837 synchronizereply
= fib_data(fibptr
);
1838 if (le32_to_cpu(synchronizereply
->status
) == CT_OK
)
1839 cmd
->result
= DID_OK
<< 16 |
1840 COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
1842 struct scsi_device
*sdev
= cmd
->device
;
1843 struct aac_dev
*dev
= fibptr
->dev
;
1844 u32 cid
= sdev_id(sdev
);
1846 "synchronize_callback: synchronize failed, status = %d\n",
1847 le32_to_cpu(synchronizereply
->status
));
1848 cmd
->result
= DID_OK
<< 16 |
1849 COMMAND_COMPLETE
<< 8 | SAM_STAT_CHECK_CONDITION
;
1850 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
1851 HARDWARE_ERROR
, SENCODE_INTERNAL_TARGET_FAILURE
,
1852 ASENCODE_INTERNAL_TARGET_FAILURE
, 0, 0);
1853 memcpy(cmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
1854 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
1855 SCSI_SENSE_BUFFERSIZE
));
1858 aac_fib_complete(fibptr
);
1859 aac_fib_free(fibptr
);
1860 cmd
->scsi_done(cmd
);
1863 static int aac_synchronize(struct scsi_cmnd
*scsicmd
)
1866 struct fib
*cmd_fibcontext
;
1867 struct aac_synchronize
*synchronizecmd
;
1868 struct scsi_cmnd
*cmd
;
1869 struct scsi_device
*sdev
= scsicmd
->device
;
1871 struct aac_dev
*aac
;
1872 u64 lba
= ((u64
)scsicmd
->cmnd
[2] << 24) | (scsicmd
->cmnd
[3] << 16) |
1873 (scsicmd
->cmnd
[4] << 8) | scsicmd
->cmnd
[5];
1874 u32 count
= (scsicmd
->cmnd
[7] << 8) | scsicmd
->cmnd
[8];
1875 unsigned long flags
;
1878 * Wait for all outstanding queued commands to complete to this
1879 * specific target (block).
1881 spin_lock_irqsave(&sdev
->list_lock
, flags
);
1882 list_for_each_entry(cmd
, &sdev
->cmd_list
, list
)
1883 if (cmd
->SCp
.phase
== AAC_OWNER_FIRMWARE
) {
1887 if (cmd
->cmnd
[0] == WRITE_6
) {
1888 cmnd_lba
= ((cmd
->cmnd
[1] & 0x1F) << 16) |
1889 (cmd
->cmnd
[2] << 8) |
1891 cmnd_count
= cmd
->cmnd
[4];
1892 if (cmnd_count
== 0)
1894 } else if (cmd
->cmnd
[0] == WRITE_16
) {
1895 cmnd_lba
= ((u64
)cmd
->cmnd
[2] << 56) |
1896 ((u64
)cmd
->cmnd
[3] << 48) |
1897 ((u64
)cmd
->cmnd
[4] << 40) |
1898 ((u64
)cmd
->cmnd
[5] << 32) |
1899 ((u64
)cmd
->cmnd
[6] << 24) |
1900 (cmd
->cmnd
[7] << 16) |
1901 (cmd
->cmnd
[8] << 8) |
1903 cmnd_count
= (cmd
->cmnd
[10] << 24) |
1904 (cmd
->cmnd
[11] << 16) |
1905 (cmd
->cmnd
[12] << 8) |
1907 } else if (cmd
->cmnd
[0] == WRITE_12
) {
1908 cmnd_lba
= ((u64
)cmd
->cmnd
[2] << 24) |
1909 (cmd
->cmnd
[3] << 16) |
1910 (cmd
->cmnd
[4] << 8) |
1912 cmnd_count
= (cmd
->cmnd
[6] << 24) |
1913 (cmd
->cmnd
[7] << 16) |
1914 (cmd
->cmnd
[8] << 8) |
1916 } else if (cmd
->cmnd
[0] == WRITE_10
) {
1917 cmnd_lba
= ((u64
)cmd
->cmnd
[2] << 24) |
1918 (cmd
->cmnd
[3] << 16) |
1919 (cmd
->cmnd
[4] << 8) |
1921 cmnd_count
= (cmd
->cmnd
[7] << 8) |
1925 if (((cmnd_lba
+ cmnd_count
) < lba
) ||
1926 (count
&& ((lba
+ count
) < cmnd_lba
)))
1932 spin_unlock_irqrestore(&sdev
->list_lock
, flags
);
1935 * Yield the processor (requeue for later)
1938 return SCSI_MLQUEUE_DEVICE_BUSY
;
1940 aac
= (struct aac_dev
*)sdev
->host
->hostdata
;
1942 return SCSI_MLQUEUE_HOST_BUSY
;
1945 * Allocate and initialize a Fib
1947 if (!(cmd_fibcontext
= aac_fib_alloc(aac
)))
1948 return SCSI_MLQUEUE_HOST_BUSY
;
1950 aac_fib_init(cmd_fibcontext
);
1952 synchronizecmd
= fib_data(cmd_fibcontext
);
1953 synchronizecmd
->command
= cpu_to_le32(VM_ContainerConfig
);
1954 synchronizecmd
->type
= cpu_to_le32(CT_FLUSH_CACHE
);
1955 synchronizecmd
->cid
= cpu_to_le32(scmd_id(scsicmd
));
1956 synchronizecmd
->count
=
1957 cpu_to_le32(sizeof(((struct aac_synchronize_reply
*)NULL
)->data
));
1960 * Now send the Fib to the adapter
1962 status
= aac_fib_send(ContainerCommand
,
1964 sizeof(struct aac_synchronize
),
1967 (fib_callback
)synchronize_callback
,
1971 * Check that the command queued to the controller
1973 if (status
== -EINPROGRESS
) {
1974 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
1979 "aac_synchronize: aac_fib_send failed with status: %d.\n", status
);
1980 aac_fib_complete(cmd_fibcontext
);
1981 aac_fib_free(cmd_fibcontext
);
1982 return SCSI_MLQUEUE_HOST_BUSY
;
1985 static void aac_start_stop_callback(void *context
, struct fib
*fibptr
)
1987 struct scsi_cmnd
*scsicmd
= context
;
1989 if (!aac_valid_context(scsicmd
, fibptr
))
1992 BUG_ON(fibptr
== NULL
);
1994 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
1996 aac_fib_complete(fibptr
);
1997 aac_fib_free(fibptr
);
1998 scsicmd
->scsi_done(scsicmd
);
2001 static int aac_start_stop(struct scsi_cmnd
*scsicmd
)
2004 struct fib
*cmd_fibcontext
;
2005 struct aac_power_management
*pmcmd
;
2006 struct scsi_device
*sdev
= scsicmd
->device
;
2007 struct aac_dev
*aac
= (struct aac_dev
*)sdev
->host
->hostdata
;
2009 if (!(aac
->supplement_adapter_info
.SupportedOptions2
&
2010 AAC_OPTION_POWER_MANAGEMENT
)) {
2011 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
2013 scsicmd
->scsi_done(scsicmd
);
2018 return SCSI_MLQUEUE_HOST_BUSY
;
2021 * Allocate and initialize a Fib
2023 cmd_fibcontext
= aac_fib_alloc(aac
);
2024 if (!cmd_fibcontext
)
2025 return SCSI_MLQUEUE_HOST_BUSY
;
2027 aac_fib_init(cmd_fibcontext
);
2029 pmcmd
= fib_data(cmd_fibcontext
);
2030 pmcmd
->command
= cpu_to_le32(VM_ContainerConfig
);
2031 pmcmd
->type
= cpu_to_le32(CT_POWER_MANAGEMENT
);
2032 /* Eject bit ignored, not relevant */
2033 pmcmd
->sub
= (scsicmd
->cmnd
[4] & 1) ?
2034 cpu_to_le32(CT_PM_START_UNIT
) : cpu_to_le32(CT_PM_STOP_UNIT
);
2035 pmcmd
->cid
= cpu_to_le32(sdev_id(sdev
));
2036 pmcmd
->parm
= (scsicmd
->cmnd
[1] & 1) ?
2037 cpu_to_le32(CT_PM_UNIT_IMMEDIATE
) : 0;
2040 * Now send the Fib to the adapter
2042 status
= aac_fib_send(ContainerCommand
,
2044 sizeof(struct aac_power_management
),
2047 (fib_callback
)aac_start_stop_callback
,
2051 * Check that the command queued to the controller
2053 if (status
== -EINPROGRESS
) {
2054 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
2058 aac_fib_complete(cmd_fibcontext
);
2059 aac_fib_free(cmd_fibcontext
);
2060 return SCSI_MLQUEUE_HOST_BUSY
;
2064 * aac_scsi_cmd() - Process SCSI command
2065 * @scsicmd: SCSI command block
2067 * Emulate a SCSI command and queue the required request for the
2071 int aac_scsi_cmd(struct scsi_cmnd
* scsicmd
)
2074 struct Scsi_Host
*host
= scsicmd
->device
->host
;
2075 struct aac_dev
*dev
= (struct aac_dev
*)host
->hostdata
;
2076 struct fsa_dev_info
*fsa_dev_ptr
= dev
->fsa_dev
;
2078 if (fsa_dev_ptr
== NULL
)
2081 * If the bus, id or lun is out of range, return fail
2082 * Test does not apply to ID 16, the pseudo id for the controller
2085 cid
= scmd_id(scsicmd
);
2086 if (cid
!= host
->this_id
) {
2087 if (scmd_channel(scsicmd
) == CONTAINER_CHANNEL
) {
2088 if((cid
>= dev
->maximum_num_containers
) ||
2089 (scsicmd
->device
->lun
!= 0)) {
2090 scsicmd
->result
= DID_NO_CONNECT
<< 16;
2091 scsicmd
->scsi_done(scsicmd
);
2096 * If the target container doesn't exist, it may have
2097 * been newly created
2099 if (((fsa_dev_ptr
[cid
].valid
& 1) == 0) ||
2100 (fsa_dev_ptr
[cid
].sense_data
.sense_key
==
2102 switch (scsicmd
->cmnd
[0]) {
2103 case SERVICE_ACTION_IN
:
2104 if (!(dev
->raw_io_interface
) ||
2105 !(dev
->raw_io_64
) ||
2106 ((scsicmd
->cmnd
[1] & 0x1f) != SAI_READ_CAPACITY_16
))
2110 case TEST_UNIT_READY
:
2113 return _aac_probe_container(scsicmd
,
2114 aac_probe_container_callback2
);
2119 } else { /* check for physical non-dasd devices */
2120 if (dev
->nondasd_support
|| expose_physicals
||
2124 return aac_send_srb_fib(scsicmd
);
2126 scsicmd
->result
= DID_NO_CONNECT
<< 16;
2127 scsicmd
->scsi_done(scsicmd
);
2133 * else Command for the controller itself
2135 else if ((scsicmd
->cmnd
[0] != INQUIRY
) && /* only INQUIRY & TUR cmnd supported for controller */
2136 (scsicmd
->cmnd
[0] != TEST_UNIT_READY
))
2138 dprintk((KERN_WARNING
"Only INQUIRY & TUR command supported for controller, rcvd = 0x%x.\n", scsicmd
->cmnd
[0]));
2139 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_CHECK_CONDITION
;
2140 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
2141 ILLEGAL_REQUEST
, SENCODE_INVALID_COMMAND
,
2142 ASENCODE_INVALID_COMMAND
, 0, 0);
2143 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
2144 min_t(size_t, sizeof(dev
->fsa_dev
[cid
].sense_data
),
2145 SCSI_SENSE_BUFFERSIZE
));
2146 scsicmd
->scsi_done(scsicmd
);
2151 /* Handle commands here that don't really require going out to the adapter */
2152 switch (scsicmd
->cmnd
[0]) {
2155 struct inquiry_data inq_data
;
2157 dprintk((KERN_DEBUG
"INQUIRY command, ID: %d.\n", cid
));
2158 memset(&inq_data
, 0, sizeof (struct inquiry_data
));
2160 if ((scsicmd
->cmnd
[1] & 0x1) && aac_wwn
) {
2161 char *arr
= (char *)&inq_data
;
2164 arr
[0] = (scmd_id(scsicmd
) == host
->this_id
) ?
2165 INQD_PDT_PROC
: INQD_PDT_DA
;
2166 if (scsicmd
->cmnd
[2] == 0) {
2167 /* supported vital product data pages */
2171 arr
[1] = scsicmd
->cmnd
[2];
2172 scsi_sg_copy_from_buffer(scsicmd
, &inq_data
,
2174 scsicmd
->result
= DID_OK
<< 16 |
2175 COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2176 } else if (scsicmd
->cmnd
[2] == 0x80) {
2177 /* unit serial number page */
2178 arr
[3] = setinqserial(dev
, &arr
[4],
2180 arr
[1] = scsicmd
->cmnd
[2];
2181 scsi_sg_copy_from_buffer(scsicmd
, &inq_data
,
2184 return aac_get_container_serial(
2186 /* SLES 10 SP1 special */
2187 scsicmd
->result
= DID_OK
<< 16 |
2188 COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2190 /* vpd page not implemented */
2191 scsicmd
->result
= DID_OK
<< 16 |
2192 COMMAND_COMPLETE
<< 8 |
2193 SAM_STAT_CHECK_CONDITION
;
2194 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
2195 ILLEGAL_REQUEST
, SENCODE_INVALID_CDB_FIELD
,
2196 ASENCODE_NO_SENSE
, 7, 2);
2197 memcpy(scsicmd
->sense_buffer
,
2198 &dev
->fsa_dev
[cid
].sense_data
,
2200 sizeof(dev
->fsa_dev
[cid
].sense_data
),
2201 SCSI_SENSE_BUFFERSIZE
));
2203 scsicmd
->scsi_done(scsicmd
);
2206 inq_data
.inqd_ver
= 2; /* claim compliance to SCSI-2 */
2207 inq_data
.inqd_rdf
= 2; /* A response data format value of two indicates that the data shall be in the format specified in SCSI-2 */
2208 inq_data
.inqd_len
= 31;
2209 /*Format for "pad2" is RelAdr | WBus32 | WBus16 | Sync | Linked |Reserved| CmdQue | SftRe */
2210 inq_data
.inqd_pad2
= 0x32 ; /*WBus16|Sync|CmdQue */
2212 * Set the Vendor, Product, and Revision Level
2213 * see: <vendor>.c i.e. aac.c
2215 if (cid
== host
->this_id
) {
2216 setinqstr(dev
, (void *) (inq_data
.inqd_vid
), ARRAY_SIZE(container_types
));
2217 inq_data
.inqd_pdt
= INQD_PDT_PROC
; /* Processor device */
2218 scsi_sg_copy_from_buffer(scsicmd
, &inq_data
,
2220 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2221 scsicmd
->scsi_done(scsicmd
);
2226 setinqstr(dev
, (void *) (inq_data
.inqd_vid
), fsa_dev_ptr
[cid
].type
);
2227 inq_data
.inqd_pdt
= INQD_PDT_DA
; /* Direct/random access device */
2228 scsi_sg_copy_from_buffer(scsicmd
, &inq_data
, sizeof(inq_data
));
2229 return aac_get_container_name(scsicmd
);
2231 case SERVICE_ACTION_IN
:
2232 if (!(dev
->raw_io_interface
) ||
2233 !(dev
->raw_io_64
) ||
2234 ((scsicmd
->cmnd
[1] & 0x1f) != SAI_READ_CAPACITY_16
))
2239 unsigned int alloc_len
;
2241 dprintk((KERN_DEBUG
"READ CAPACITY_16 command.\n"));
2242 capacity
= fsa_dev_ptr
[cid
].size
- 1;
2243 cp
[0] = (capacity
>> 56) & 0xff;
2244 cp
[1] = (capacity
>> 48) & 0xff;
2245 cp
[2] = (capacity
>> 40) & 0xff;
2246 cp
[3] = (capacity
>> 32) & 0xff;
2247 cp
[4] = (capacity
>> 24) & 0xff;
2248 cp
[5] = (capacity
>> 16) & 0xff;
2249 cp
[6] = (capacity
>> 8) & 0xff;
2250 cp
[7] = (capacity
>> 0) & 0xff;
2257 alloc_len
= ((scsicmd
->cmnd
[10] << 24)
2258 + (scsicmd
->cmnd
[11] << 16)
2259 + (scsicmd
->cmnd
[12] << 8) + scsicmd
->cmnd
[13]);
2261 alloc_len
= min_t(size_t, alloc_len
, sizeof(cp
));
2262 scsi_sg_copy_from_buffer(scsicmd
, cp
, alloc_len
);
2263 if (alloc_len
< scsi_bufflen(scsicmd
))
2264 scsi_set_resid(scsicmd
,
2265 scsi_bufflen(scsicmd
) - alloc_len
);
2267 /* Do not cache partition table for arrays */
2268 scsicmd
->device
->removable
= 1;
2270 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2271 scsicmd
->scsi_done(scsicmd
);
2281 dprintk((KERN_DEBUG
"READ CAPACITY command.\n"));
2282 if (fsa_dev_ptr
[cid
].size
<= 0x100000000ULL
)
2283 capacity
= fsa_dev_ptr
[cid
].size
- 1;
2287 cp
[0] = (capacity
>> 24) & 0xff;
2288 cp
[1] = (capacity
>> 16) & 0xff;
2289 cp
[2] = (capacity
>> 8) & 0xff;
2290 cp
[3] = (capacity
>> 0) & 0xff;
2295 scsi_sg_copy_from_buffer(scsicmd
, cp
, sizeof(cp
));
2296 /* Do not cache partition table for arrays */
2297 scsicmd
->device
->removable
= 1;
2298 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
2300 scsicmd
->scsi_done(scsicmd
);
2308 int mode_buf_length
= 4;
2310 dprintk((KERN_DEBUG
"MODE SENSE command.\n"));
2311 mode_buf
[0] = 3; /* Mode data length */
2312 mode_buf
[1] = 0; /* Medium type - default */
2313 mode_buf
[2] = 0; /* Device-specific param,
2314 bit 8: 0/1 = write enabled/protected
2315 bit 4: 0/1 = FUA enabled */
2316 if (dev
->raw_io_interface
&& ((aac_cache
& 5) != 1))
2318 mode_buf
[3] = 0; /* Block descriptor length */
2319 if (((scsicmd
->cmnd
[2] & 0x3f) == 8) ||
2320 ((scsicmd
->cmnd
[2] & 0x3f) == 0x3f)) {
2324 mode_buf
[6] = ((aac_cache
& 6) == 2)
2325 ? 0 : 0x04; /* WCE */
2326 mode_buf_length
= 7;
2327 if (mode_buf_length
> scsicmd
->cmnd
[4])
2328 mode_buf_length
= scsicmd
->cmnd
[4];
2330 scsi_sg_copy_from_buffer(scsicmd
, mode_buf
, mode_buf_length
);
2331 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2332 scsicmd
->scsi_done(scsicmd
);
2339 int mode_buf_length
= 8;
2341 dprintk((KERN_DEBUG
"MODE SENSE 10 byte command.\n"));
2342 mode_buf
[0] = 0; /* Mode data length (MSB) */
2343 mode_buf
[1] = 6; /* Mode data length (LSB) */
2344 mode_buf
[2] = 0; /* Medium type - default */
2345 mode_buf
[3] = 0; /* Device-specific param,
2346 bit 8: 0/1 = write enabled/protected
2347 bit 4: 0/1 = FUA enabled */
2348 if (dev
->raw_io_interface
&& ((aac_cache
& 5) != 1))
2350 mode_buf
[4] = 0; /* reserved */
2351 mode_buf
[5] = 0; /* reserved */
2352 mode_buf
[6] = 0; /* Block descriptor length (MSB) */
2353 mode_buf
[7] = 0; /* Block descriptor length (LSB) */
2354 if (((scsicmd
->cmnd
[2] & 0x3f) == 8) ||
2355 ((scsicmd
->cmnd
[2] & 0x3f) == 0x3f)) {
2359 mode_buf
[10] = ((aac_cache
& 6) == 2)
2360 ? 0 : 0x04; /* WCE */
2361 mode_buf_length
= 11;
2362 if (mode_buf_length
> scsicmd
->cmnd
[8])
2363 mode_buf_length
= scsicmd
->cmnd
[8];
2365 scsi_sg_copy_from_buffer(scsicmd
, mode_buf
, mode_buf_length
);
2367 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2368 scsicmd
->scsi_done(scsicmd
);
2373 dprintk((KERN_DEBUG
"REQUEST SENSE command.\n"));
2374 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
, sizeof (struct sense_data
));
2375 memset(&dev
->fsa_dev
[cid
].sense_data
, 0, sizeof (struct sense_data
));
2376 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2377 scsicmd
->scsi_done(scsicmd
);
2380 case ALLOW_MEDIUM_REMOVAL
:
2381 dprintk((KERN_DEBUG
"LOCK command.\n"));
2382 if (scsicmd
->cmnd
[4])
2383 fsa_dev_ptr
[cid
].locked
= 1;
2385 fsa_dev_ptr
[cid
].locked
= 0;
2387 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2388 scsicmd
->scsi_done(scsicmd
);
2391 * These commands are all No-Ops
2393 case TEST_UNIT_READY
:
2394 if (fsa_dev_ptr
[cid
].sense_data
.sense_key
== NOT_READY
) {
2395 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 |
2396 SAM_STAT_CHECK_CONDITION
;
2397 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
2398 NOT_READY
, SENCODE_BECOMING_READY
,
2399 ASENCODE_BECOMING_READY
, 0, 0);
2400 memcpy(scsicmd
->sense_buffer
,
2401 &dev
->fsa_dev
[cid
].sense_data
,
2403 sizeof(dev
->fsa_dev
[cid
].sense_data
),
2404 SCSI_SENSE_BUFFERSIZE
));
2405 scsicmd
->scsi_done(scsicmd
);
2412 case REASSIGN_BLOCKS
:
2414 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2415 scsicmd
->scsi_done(scsicmd
);
2419 return aac_start_stop(scsicmd
);
2422 switch (scsicmd
->cmnd
[0])
2431 * Hack to keep track of ordinal number of the device that
2432 * corresponds to a container. Needed to convert
2433 * containers to /dev/sd device names
2436 if (scsicmd
->request
->rq_disk
)
2437 strlcpy(fsa_dev_ptr
[cid
].devname
,
2438 scsicmd
->request
->rq_disk
->disk_name
,
2439 min(sizeof(fsa_dev_ptr
[cid
].devname
),
2440 sizeof(scsicmd
->request
->rq_disk
->disk_name
) + 1));
2442 return aac_read(scsicmd
);
2450 return aac_write(scsicmd
);
2452 case SYNCHRONIZE_CACHE
:
2453 if (((aac_cache
& 6) == 6) && dev
->cache_protected
) {
2454 scsicmd
->result
= DID_OK
<< 16 |
2455 COMMAND_COMPLETE
<< 8 | SAM_STAT_GOOD
;
2456 scsicmd
->scsi_done(scsicmd
);
2459 /* Issue FIB to tell Firmware to flush it's cache */
2460 if ((aac_cache
& 6) != 2)
2461 return aac_synchronize(scsicmd
);
2465 * Unhandled commands
2467 dprintk((KERN_WARNING
"Unhandled SCSI Command: 0x%x.\n", scsicmd
->cmnd
[0]));
2468 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_CHECK_CONDITION
;
2469 set_sense(&dev
->fsa_dev
[cid
].sense_data
,
2470 ILLEGAL_REQUEST
, SENCODE_INVALID_COMMAND
,
2471 ASENCODE_INVALID_COMMAND
, 0, 0);
2472 memcpy(scsicmd
->sense_buffer
, &dev
->fsa_dev
[cid
].sense_data
,
2474 sizeof(dev
->fsa_dev
[cid
].sense_data
),
2475 SCSI_SENSE_BUFFERSIZE
));
2476 scsicmd
->scsi_done(scsicmd
);
2481 static int query_disk(struct aac_dev
*dev
, void __user
*arg
)
2483 struct aac_query_disk qd
;
2484 struct fsa_dev_info
*fsa_dev_ptr
;
2486 fsa_dev_ptr
= dev
->fsa_dev
;
2489 if (copy_from_user(&qd
, arg
, sizeof (struct aac_query_disk
)))
2493 else if ((qd
.bus
== -1) && (qd
.id
== -1) && (qd
.lun
== -1))
2495 if (qd
.cnum
< 0 || qd
.cnum
>= dev
->maximum_num_containers
)
2497 qd
.instance
= dev
->scsi_host_ptr
->host_no
;
2499 qd
.id
= CONTAINER_TO_ID(qd
.cnum
);
2500 qd
.lun
= CONTAINER_TO_LUN(qd
.cnum
);
2502 else return -EINVAL
;
2504 qd
.valid
= fsa_dev_ptr
[qd
.cnum
].valid
!= 0;
2505 qd
.locked
= fsa_dev_ptr
[qd
.cnum
].locked
;
2506 qd
.deleted
= fsa_dev_ptr
[qd
.cnum
].deleted
;
2508 if (fsa_dev_ptr
[qd
.cnum
].devname
[0] == '\0')
2513 strlcpy(qd
.name
, fsa_dev_ptr
[qd
.cnum
].devname
,
2514 min(sizeof(qd
.name
), sizeof(fsa_dev_ptr
[qd
.cnum
].devname
) + 1));
2516 if (copy_to_user(arg
, &qd
, sizeof (struct aac_query_disk
)))
2521 static int force_delete_disk(struct aac_dev
*dev
, void __user
*arg
)
2523 struct aac_delete_disk dd
;
2524 struct fsa_dev_info
*fsa_dev_ptr
;
2526 fsa_dev_ptr
= dev
->fsa_dev
;
2530 if (copy_from_user(&dd
, arg
, sizeof (struct aac_delete_disk
)))
2533 if (dd
.cnum
>= dev
->maximum_num_containers
)
2536 * Mark this container as being deleted.
2538 fsa_dev_ptr
[dd
.cnum
].deleted
= 1;
2540 * Mark the container as no longer valid
2542 fsa_dev_ptr
[dd
.cnum
].valid
= 0;
2546 static int delete_disk(struct aac_dev
*dev
, void __user
*arg
)
2548 struct aac_delete_disk dd
;
2549 struct fsa_dev_info
*fsa_dev_ptr
;
2551 fsa_dev_ptr
= dev
->fsa_dev
;
2555 if (copy_from_user(&dd
, arg
, sizeof (struct aac_delete_disk
)))
2558 if (dd
.cnum
>= dev
->maximum_num_containers
)
2561 * If the container is locked, it can not be deleted by the API.
2563 if (fsa_dev_ptr
[dd
.cnum
].locked
)
2567 * Mark the container as no longer being valid.
2569 fsa_dev_ptr
[dd
.cnum
].valid
= 0;
2570 fsa_dev_ptr
[dd
.cnum
].devname
[0] = '\0';
2575 int aac_dev_ioctl(struct aac_dev
*dev
, int cmd
, void __user
*arg
)
2578 case FSACTL_QUERY_DISK
:
2579 return query_disk(dev
, arg
);
2580 case FSACTL_DELETE_DISK
:
2581 return delete_disk(dev
, arg
);
2582 case FSACTL_FORCE_DELETE_DISK
:
2583 return force_delete_disk(dev
, arg
);
2584 case FSACTL_GET_CONTAINERS
:
2585 return aac_get_containers(dev
);
2594 * @context: the context set in the fib - here it is scsi cmd
2595 * @fibptr: pointer to the fib
2597 * Handles the completion of a scsi command to a non dasd device
2601 static void aac_srb_callback(void *context
, struct fib
* fibptr
)
2603 struct aac_dev
*dev
;
2604 struct aac_srb_reply
*srbreply
;
2605 struct scsi_cmnd
*scsicmd
;
2607 scsicmd
= (struct scsi_cmnd
*) context
;
2609 if (!aac_valid_context(scsicmd
, fibptr
))
2612 BUG_ON(fibptr
== NULL
);
2616 srbreply
= (struct aac_srb_reply
*) fib_data(fibptr
);
2618 scsicmd
->sense_buffer
[0] = '\0'; /* Initialize sense valid flag to false */
2620 * Calculate resid for sg
2623 scsi_set_resid(scsicmd
, scsi_bufflen(scsicmd
)
2624 - le32_to_cpu(srbreply
->data_xfer_length
));
2626 scsi_dma_unmap(scsicmd
);
2628 /* expose physical device if expose_physicald flag is on */
2629 if (scsicmd
->cmnd
[0] == INQUIRY
&& !(scsicmd
->cmnd
[1] & 0x01)
2630 && expose_physicals
> 0)
2631 aac_expose_phy_device(scsicmd
);
2634 * First check the fib status
2637 if (le32_to_cpu(srbreply
->status
) != ST_OK
){
2639 printk(KERN_WARNING
"aac_srb_callback: srb failed, status = %d\n", le32_to_cpu(srbreply
->status
));
2640 len
= min_t(u32
, le32_to_cpu(srbreply
->sense_data_size
),
2641 SCSI_SENSE_BUFFERSIZE
);
2642 scsicmd
->result
= DID_ERROR
<< 16 | COMMAND_COMPLETE
<< 8 | SAM_STAT_CHECK_CONDITION
;
2643 memcpy(scsicmd
->sense_buffer
, srbreply
->sense_data
, len
);
2647 * Next check the srb status
2649 switch( (le32_to_cpu(srbreply
->srb_status
))&0x3f){
2650 case SRB_STATUS_ERROR_RECOVERY
:
2651 case SRB_STATUS_PENDING
:
2652 case SRB_STATUS_SUCCESS
:
2653 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8;
2655 case SRB_STATUS_DATA_OVERRUN
:
2656 switch(scsicmd
->cmnd
[0]){
2665 if (le32_to_cpu(srbreply
->data_xfer_length
) < scsicmd
->underflow
) {
2666 printk(KERN_WARNING
"aacraid: SCSI CMD underflow\n");
2668 printk(KERN_WARNING
"aacraid: SCSI CMD Data Overrun\n");
2670 scsicmd
->result
= DID_ERROR
<< 16 | COMMAND_COMPLETE
<< 8;
2673 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8;
2677 scsicmd
->result
= DID_OK
<< 16 | COMMAND_COMPLETE
<< 8;
2681 case SRB_STATUS_ABORTED
:
2682 scsicmd
->result
= DID_ABORT
<< 16 | ABORT
<< 8;
2684 case SRB_STATUS_ABORT_FAILED
:
2685 // Not sure about this one - but assuming the hba was trying to abort for some reason
2686 scsicmd
->result
= DID_ERROR
<< 16 | ABORT
<< 8;
2688 case SRB_STATUS_PARITY_ERROR
:
2689 scsicmd
->result
= DID_PARITY
<< 16 | MSG_PARITY_ERROR
<< 8;
2691 case SRB_STATUS_NO_DEVICE
:
2692 case SRB_STATUS_INVALID_PATH_ID
:
2693 case SRB_STATUS_INVALID_TARGET_ID
:
2694 case SRB_STATUS_INVALID_LUN
:
2695 case SRB_STATUS_SELECTION_TIMEOUT
:
2696 scsicmd
->result
= DID_NO_CONNECT
<< 16 | COMMAND_COMPLETE
<< 8;
2699 case SRB_STATUS_COMMAND_TIMEOUT
:
2700 case SRB_STATUS_TIMEOUT
:
2701 scsicmd
->result
= DID_TIME_OUT
<< 16 | COMMAND_COMPLETE
<< 8;
2704 case SRB_STATUS_BUSY
:
2705 scsicmd
->result
= DID_BUS_BUSY
<< 16 | COMMAND_COMPLETE
<< 8;
2708 case SRB_STATUS_BUS_RESET
:
2709 scsicmd
->result
= DID_RESET
<< 16 | COMMAND_COMPLETE
<< 8;
2712 case SRB_STATUS_MESSAGE_REJECTED
:
2713 scsicmd
->result
= DID_ERROR
<< 16 | MESSAGE_REJECT
<< 8;
2715 case SRB_STATUS_REQUEST_FLUSHED
:
2716 case SRB_STATUS_ERROR
:
2717 case SRB_STATUS_INVALID_REQUEST
:
2718 case SRB_STATUS_REQUEST_SENSE_FAILED
:
2719 case SRB_STATUS_NO_HBA
:
2720 case SRB_STATUS_UNEXPECTED_BUS_FREE
:
2721 case SRB_STATUS_PHASE_SEQUENCE_FAILURE
:
2722 case SRB_STATUS_BAD_SRB_BLOCK_LENGTH
:
2723 case SRB_STATUS_DELAYED_RETRY
:
2724 case SRB_STATUS_BAD_FUNCTION
:
2725 case SRB_STATUS_NOT_STARTED
:
2726 case SRB_STATUS_NOT_IN_USE
:
2727 case SRB_STATUS_FORCE_ABORT
:
2728 case SRB_STATUS_DOMAIN_VALIDATION_FAIL
:
2730 #ifdef AAC_DETAILED_STATUS_INFO
2731 printk("aacraid: SRB ERROR(%u) %s scsi cmd 0x%x - scsi status 0x%x\n",
2732 le32_to_cpu(srbreply
->srb_status
) & 0x3F,
2733 aac_get_status_string(
2734 le32_to_cpu(srbreply
->srb_status
) & 0x3F),
2736 le32_to_cpu(srbreply
->scsi_status
));
2738 if ((scsicmd
->cmnd
[0] == ATA_12
)
2739 || (scsicmd
->cmnd
[0] == ATA_16
)) {
2740 if (scsicmd
->cmnd
[2] & (0x01 << 5)) {
2741 scsicmd
->result
= DID_OK
<< 16
2742 | COMMAND_COMPLETE
<< 8;
2745 scsicmd
->result
= DID_ERROR
<< 16
2746 | COMMAND_COMPLETE
<< 8;
2750 scsicmd
->result
= DID_ERROR
<< 16
2751 | COMMAND_COMPLETE
<< 8;
2755 if (le32_to_cpu(srbreply
->scsi_status
) == SAM_STAT_CHECK_CONDITION
) {
2757 scsicmd
->result
|= SAM_STAT_CHECK_CONDITION
;
2758 len
= min_t(u32
, le32_to_cpu(srbreply
->sense_data_size
),
2759 SCSI_SENSE_BUFFERSIZE
);
2760 #ifdef AAC_DETAILED_STATUS_INFO
2761 printk(KERN_WARNING
"aac_srb_callback: check condition, status = %d len=%d\n",
2762 le32_to_cpu(srbreply
->status
), len
);
2764 memcpy(scsicmd
->sense_buffer
, srbreply
->sense_data
, len
);
2767 * OR in the scsi status (already shifted up a bit)
2769 scsicmd
->result
|= le32_to_cpu(srbreply
->scsi_status
);
2771 aac_fib_complete(fibptr
);
2772 aac_fib_free(fibptr
);
2773 scsicmd
->scsi_done(scsicmd
);
2779 * @scsicmd: the scsi command block
2781 * This routine will form a FIB and fill in the aac_srb from the
2782 * scsicmd passed in.
2785 static int aac_send_srb_fib(struct scsi_cmnd
* scsicmd
)
2787 struct fib
* cmd_fibcontext
;
2788 struct aac_dev
* dev
;
2791 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
2792 if (scmd_id(scsicmd
) >= dev
->maximum_num_physicals
||
2793 scsicmd
->device
->lun
> 7) {
2794 scsicmd
->result
= DID_NO_CONNECT
<< 16;
2795 scsicmd
->scsi_done(scsicmd
);
2800 * Allocate and initialize a Fib then setup a BlockWrite command
2802 if (!(cmd_fibcontext
= aac_fib_alloc(dev
))) {
2805 status
= aac_adapter_scsi(cmd_fibcontext
, scsicmd
);
2808 * Check that the command queued to the controller
2810 if (status
== -EINPROGRESS
) {
2811 scsicmd
->SCp
.phase
= AAC_OWNER_FIRMWARE
;
2815 printk(KERN_WARNING
"aac_srb: aac_fib_send failed with status: %d\n", status
);
2816 aac_fib_complete(cmd_fibcontext
);
2817 aac_fib_free(cmd_fibcontext
);
2822 static unsigned long aac_build_sg(struct scsi_cmnd
* scsicmd
, struct sgmap
* psg
)
2824 struct aac_dev
*dev
;
2825 unsigned long byte_count
= 0;
2828 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
2829 // Get rid of old data
2831 psg
->sg
[0].addr
= 0;
2832 psg
->sg
[0].count
= 0;
2834 nseg
= scsi_dma_map(scsicmd
);
2837 struct scatterlist
*sg
;
2840 psg
->count
= cpu_to_le32(nseg
);
2842 scsi_for_each_sg(scsicmd
, sg
, nseg
, i
) {
2843 psg
->sg
[i
].addr
= cpu_to_le32(sg_dma_address(sg
));
2844 psg
->sg
[i
].count
= cpu_to_le32(sg_dma_len(sg
));
2845 byte_count
+= sg_dma_len(sg
);
2847 /* hba wants the size to be exact */
2848 if (byte_count
> scsi_bufflen(scsicmd
)) {
2849 u32 temp
= le32_to_cpu(psg
->sg
[i
-1].count
) -
2850 (byte_count
- scsi_bufflen(scsicmd
));
2851 psg
->sg
[i
-1].count
= cpu_to_le32(temp
);
2852 byte_count
= scsi_bufflen(scsicmd
);
2854 /* Check for command underflow */
2855 if(scsicmd
->underflow
&& (byte_count
< scsicmd
->underflow
)){
2856 printk(KERN_WARNING
"aacraid: cmd len %08lX cmd underflow %08X\n",
2857 byte_count
, scsicmd
->underflow
);
2864 static unsigned long aac_build_sg64(struct scsi_cmnd
* scsicmd
, struct sgmap64
* psg
)
2866 struct aac_dev
*dev
;
2867 unsigned long byte_count
= 0;
2871 dev
= (struct aac_dev
*)scsicmd
->device
->host
->hostdata
;
2872 // Get rid of old data
2874 psg
->sg
[0].addr
[0] = 0;
2875 psg
->sg
[0].addr
[1] = 0;
2876 psg
->sg
[0].count
= 0;
2878 nseg
= scsi_dma_map(scsicmd
);
2881 struct scatterlist
*sg
;
2884 scsi_for_each_sg(scsicmd
, sg
, nseg
, i
) {
2885 int count
= sg_dma_len(sg
);
2886 addr
= sg_dma_address(sg
);
2887 psg
->sg
[i
].addr
[0] = cpu_to_le32(addr
& 0xffffffff);
2888 psg
->sg
[i
].addr
[1] = cpu_to_le32(addr
>>32);
2889 psg
->sg
[i
].count
= cpu_to_le32(count
);
2890 byte_count
+= count
;
2892 psg
->count
= cpu_to_le32(nseg
);
2893 /* hba wants the size to be exact */
2894 if (byte_count
> scsi_bufflen(scsicmd
)) {
2895 u32 temp
= le32_to_cpu(psg
->sg
[i
-1].count
) -
2896 (byte_count
- scsi_bufflen(scsicmd
));
2897 psg
->sg
[i
-1].count
= cpu_to_le32(temp
);
2898 byte_count
= scsi_bufflen(scsicmd
);
2900 /* Check for command underflow */
2901 if(scsicmd
->underflow
&& (byte_count
< scsicmd
->underflow
)){
2902 printk(KERN_WARNING
"aacraid: cmd len %08lX cmd underflow %08X\n",
2903 byte_count
, scsicmd
->underflow
);
2909 static unsigned long aac_build_sgraw(struct scsi_cmnd
* scsicmd
, struct sgmapraw
* psg
)
2911 unsigned long byte_count
= 0;
2914 // Get rid of old data
2916 psg
->sg
[0].next
= 0;
2917 psg
->sg
[0].prev
= 0;
2918 psg
->sg
[0].addr
[0] = 0;
2919 psg
->sg
[0].addr
[1] = 0;
2920 psg
->sg
[0].count
= 0;
2921 psg
->sg
[0].flags
= 0;
2923 nseg
= scsi_dma_map(scsicmd
);
2926 struct scatterlist
*sg
;
2929 scsi_for_each_sg(scsicmd
, sg
, nseg
, i
) {
2930 int count
= sg_dma_len(sg
);
2931 u64 addr
= sg_dma_address(sg
);
2932 psg
->sg
[i
].next
= 0;
2933 psg
->sg
[i
].prev
= 0;
2934 psg
->sg
[i
].addr
[1] = cpu_to_le32((u32
)(addr
>>32));
2935 psg
->sg
[i
].addr
[0] = cpu_to_le32((u32
)(addr
& 0xffffffff));
2936 psg
->sg
[i
].count
= cpu_to_le32(count
);
2937 psg
->sg
[i
].flags
= 0;
2938 byte_count
+= count
;
2940 psg
->count
= cpu_to_le32(nseg
);
2941 /* hba wants the size to be exact */
2942 if (byte_count
> scsi_bufflen(scsicmd
)) {
2943 u32 temp
= le32_to_cpu(psg
->sg
[i
-1].count
) -
2944 (byte_count
- scsi_bufflen(scsicmd
));
2945 psg
->sg
[i
-1].count
= cpu_to_le32(temp
);
2946 byte_count
= scsi_bufflen(scsicmd
);
2948 /* Check for command underflow */
2949 if(scsicmd
->underflow
&& (byte_count
< scsicmd
->underflow
)){
2950 printk(KERN_WARNING
"aacraid: cmd len %08lX cmd underflow %08X\n",
2951 byte_count
, scsicmd
->underflow
);
2957 #ifdef AAC_DETAILED_STATUS_INFO
2959 struct aac_srb_status_info
{
2965 static struct aac_srb_status_info srb_status_info
[] = {
2966 { SRB_STATUS_PENDING
, "Pending Status"},
2967 { SRB_STATUS_SUCCESS
, "Success"},
2968 { SRB_STATUS_ABORTED
, "Aborted Command"},
2969 { SRB_STATUS_ABORT_FAILED
, "Abort Failed"},
2970 { SRB_STATUS_ERROR
, "Error Event"},
2971 { SRB_STATUS_BUSY
, "Device Busy"},
2972 { SRB_STATUS_INVALID_REQUEST
, "Invalid Request"},
2973 { SRB_STATUS_INVALID_PATH_ID
, "Invalid Path ID"},
2974 { SRB_STATUS_NO_DEVICE
, "No Device"},
2975 { SRB_STATUS_TIMEOUT
, "Timeout"},
2976 { SRB_STATUS_SELECTION_TIMEOUT
, "Selection Timeout"},
2977 { SRB_STATUS_COMMAND_TIMEOUT
, "Command Timeout"},
2978 { SRB_STATUS_MESSAGE_REJECTED
, "Message Rejected"},
2979 { SRB_STATUS_BUS_RESET
, "Bus Reset"},
2980 { SRB_STATUS_PARITY_ERROR
, "Parity Error"},
2981 { SRB_STATUS_REQUEST_SENSE_FAILED
,"Request Sense Failed"},
2982 { SRB_STATUS_NO_HBA
, "No HBA"},
2983 { SRB_STATUS_DATA_OVERRUN
, "Data Overrun/Data Underrun"},
2984 { SRB_STATUS_UNEXPECTED_BUS_FREE
,"Unexpected Bus Free"},
2985 { SRB_STATUS_PHASE_SEQUENCE_FAILURE
,"Phase Error"},
2986 { SRB_STATUS_BAD_SRB_BLOCK_LENGTH
,"Bad Srb Block Length"},
2987 { SRB_STATUS_REQUEST_FLUSHED
, "Request Flushed"},
2988 { SRB_STATUS_DELAYED_RETRY
, "Delayed Retry"},
2989 { SRB_STATUS_INVALID_LUN
, "Invalid LUN"},
2990 { SRB_STATUS_INVALID_TARGET_ID
, "Invalid TARGET ID"},
2991 { SRB_STATUS_BAD_FUNCTION
, "Bad Function"},
2992 { SRB_STATUS_ERROR_RECOVERY
, "Error Recovery"},
2993 { SRB_STATUS_NOT_STARTED
, "Not Started"},
2994 { SRB_STATUS_NOT_IN_USE
, "Not In Use"},
2995 { SRB_STATUS_FORCE_ABORT
, "Force Abort"},
2996 { SRB_STATUS_DOMAIN_VALIDATION_FAIL
,"Domain Validation Failure"},
2997 { 0xff, "Unknown Error"}
3000 char *aac_get_status_string(u32 status
)
3004 for (i
= 0; i
< ARRAY_SIZE(srb_status_info
); i
++)
3005 if (srb_status_info
[i
].status
== status
)
3006 return srb_status_info
[i
].str
;
3008 return "Bad Status Code";