2 * Management Module Support for MPT (Message Passing Technology) based
5 * This code is based on drivers/scsi/mpt2sas/mpt2_ctl.c
6 * Copyright (C) 2007-2009 LSI Corporation
7 * (mailto:DL-MPTFusionLinux@lsi.com)
9 * This program is free software; you can redistribute it and/or
10 * modify it under the terms of the GNU General Public License
11 * as published by the Free Software Foundation; either version 2
12 * of the License, or (at your option) 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.
20 * THE PROGRAM IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OR
21 * CONDITIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED INCLUDING, WITHOUT
22 * LIMITATION, ANY WARRANTIES OR CONDITIONS OF TITLE, NON-INFRINGEMENT,
23 * MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. Each Recipient is
24 * solely responsible for determining the appropriateness of using and
25 * distributing the Program and assumes all risks associated with its
26 * exercise of rights under this Agreement, including but not limited to
27 * the risks and costs of program errors, damage to or loss of data,
28 * programs or equipment, and unavailability or interruption of operations.
30 * DISCLAIMER OF LIABILITY
31 * NEITHER RECIPIENT NOR ANY CONTRIBUTORS SHALL HAVE ANY LIABILITY FOR ANY
32 * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
33 * DAMAGES (INCLUDING WITHOUT LIMITATION LOST PROFITS), HOWEVER CAUSED AND
34 * ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR
35 * TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE
36 * USE OR DISTRIBUTION OF THE PROGRAM OR THE EXERCISE OF ANY RIGHTS GRANTED
37 * HEREUNDER, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGES
39 * You should have received a copy of the GNU General Public License
40 * along with this program; if not, write to the Free Software
41 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301,
45 #include <linux/version.h>
46 #include <linux/kernel.h>
47 #include <linux/module.h>
48 #include <linux/errno.h>
49 #include <linux/init.h>
50 #include <linux/slab.h>
51 #include <linux/types.h>
52 #include <linux/pci.h>
53 #include <linux/delay.h>
54 #include <linux/smp_lock.h>
55 #include <linux/compat.h>
56 #include <linux/poll.h>
59 #include <linux/uaccess.h>
61 #include "mpt2sas_base.h"
62 #include "mpt2sas_ctl.h"
64 static struct fasync_struct
*async_queue
;
65 static DECLARE_WAIT_QUEUE_HEAD(ctl_poll_wait
);
67 static int _ctl_send_release(struct MPT2SAS_ADAPTER
*ioc
, u8 buffer_type
,
71 * enum block_state - blocking state
72 * @NON_BLOCKING: non blocking
75 * These states are for ioctls that need to wait for a response
76 * from firmware, so they probably require sleep.
83 #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
85 * _ctl_display_some_debug - debug routine
86 * @ioc: per adapter object
87 * @smid: system request message index
88 * @calling_function_name: string pass from calling function
89 * @mpi_reply: reply message frame
92 * Function for displaying debug info helpfull when debugging issues
96 _ctl_display_some_debug(struct MPT2SAS_ADAPTER
*ioc
, u16 smid
,
97 char *calling_function_name
, MPI2DefaultReply_t
*mpi_reply
)
99 Mpi2ConfigRequest_t
*mpi_request
;
102 if (!(ioc
->logging_level
& MPT_DEBUG_IOCTL
))
105 mpi_request
= mpt2sas_base_get_msg_frame(ioc
, smid
);
106 switch (mpi_request
->Function
) {
107 case MPI2_FUNCTION_SCSI_IO_REQUEST
:
109 Mpi2SCSIIORequest_t
*scsi_request
=
110 (Mpi2SCSIIORequest_t
*)mpi_request
;
112 snprintf(ioc
->tmp_string
, MPT_STRING_LENGTH
,
113 "scsi_io, cmd(0x%02x), cdb_len(%d)",
114 scsi_request
->CDB
.CDB32
[0],
115 le16_to_cpu(scsi_request
->IoFlags
) & 0xF);
116 desc
= ioc
->tmp_string
;
119 case MPI2_FUNCTION_SCSI_TASK_MGMT
:
122 case MPI2_FUNCTION_IOC_INIT
:
125 case MPI2_FUNCTION_IOC_FACTS
:
128 case MPI2_FUNCTION_CONFIG
:
130 Mpi2ConfigRequest_t
*config_request
=
131 (Mpi2ConfigRequest_t
*)mpi_request
;
133 snprintf(ioc
->tmp_string
, MPT_STRING_LENGTH
,
134 "config, type(0x%02x), ext_type(0x%02x), number(%d)",
135 (config_request
->Header
.PageType
&
136 MPI2_CONFIG_PAGETYPE_MASK
), config_request
->ExtPageType
,
137 config_request
->Header
.PageNumber
);
138 desc
= ioc
->tmp_string
;
141 case MPI2_FUNCTION_PORT_FACTS
:
144 case MPI2_FUNCTION_PORT_ENABLE
:
145 desc
= "port_enable";
147 case MPI2_FUNCTION_EVENT_NOTIFICATION
:
148 desc
= "event_notification";
150 case MPI2_FUNCTION_FW_DOWNLOAD
:
151 desc
= "fw_download";
153 case MPI2_FUNCTION_FW_UPLOAD
:
156 case MPI2_FUNCTION_RAID_ACTION
:
157 desc
= "raid_action";
159 case MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH
:
161 Mpi2SCSIIORequest_t
*scsi_request
=
162 (Mpi2SCSIIORequest_t
*)mpi_request
;
164 snprintf(ioc
->tmp_string
, MPT_STRING_LENGTH
,
165 "raid_pass, cmd(0x%02x), cdb_len(%d)",
166 scsi_request
->CDB
.CDB32
[0],
167 le16_to_cpu(scsi_request
->IoFlags
) & 0xF);
168 desc
= ioc
->tmp_string
;
171 case MPI2_FUNCTION_SAS_IO_UNIT_CONTROL
:
172 desc
= "sas_iounit_cntl";
174 case MPI2_FUNCTION_SATA_PASSTHROUGH
:
177 case MPI2_FUNCTION_DIAG_BUFFER_POST
:
178 desc
= "diag_buffer_post";
180 case MPI2_FUNCTION_DIAG_RELEASE
:
181 desc
= "diag_release";
183 case MPI2_FUNCTION_SMP_PASSTHROUGH
:
184 desc
= "smp_passthrough";
191 printk(MPT2SAS_DEBUG_FMT
"%s: %s, smid(%d)\n",
192 ioc
->name
, calling_function_name
, desc
, smid
);
197 if (mpi_reply
->IOCStatus
|| mpi_reply
->IOCLogInfo
)
198 printk(MPT2SAS_DEBUG_FMT
199 "\tiocstatus(0x%04x), loginfo(0x%08x)\n",
200 ioc
->name
, le16_to_cpu(mpi_reply
->IOCStatus
),
201 le32_to_cpu(mpi_reply
->IOCLogInfo
));
203 if (mpi_request
->Function
== MPI2_FUNCTION_SCSI_IO_REQUEST
||
204 mpi_request
->Function
==
205 MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH
) {
206 Mpi2SCSIIOReply_t
*scsi_reply
=
207 (Mpi2SCSIIOReply_t
*)mpi_reply
;
208 if (scsi_reply
->SCSIState
|| scsi_reply
->SCSIStatus
)
209 printk(MPT2SAS_DEBUG_FMT
210 "\tscsi_state(0x%02x), scsi_status"
211 "(0x%02x)\n", ioc
->name
,
212 scsi_reply
->SCSIState
,
213 scsi_reply
->SCSIStatus
);
219 * mpt2sas_ctl_done - ctl module completion routine
220 * @ioc: per adapter object
221 * @smid: system request message index
222 * @msix_index: MSIX table index supplied by the OS
223 * @reply: reply message frame(lower 32bit addr)
226 * The callback handler when using ioc->ctl_cb_idx.
228 * Return 1 meaning mf should be freed from _base_interrupt
229 * 0 means the mf is freed from this function.
232 mpt2sas_ctl_done(struct MPT2SAS_ADAPTER
*ioc
, u16 smid
, u8 msix_index
,
235 MPI2DefaultReply_t
*mpi_reply
;
237 if (ioc
->ctl_cmds
.status
== MPT2_CMD_NOT_USED
)
239 if (ioc
->ctl_cmds
.smid
!= smid
)
241 ioc
->ctl_cmds
.status
|= MPT2_CMD_COMPLETE
;
242 mpi_reply
= mpt2sas_base_get_reply_virt_addr(ioc
, reply
);
244 memcpy(ioc
->ctl_cmds
.reply
, mpi_reply
, mpi_reply
->MsgLength
*4);
245 ioc
->ctl_cmds
.status
|= MPT2_CMD_REPLY_VALID
;
247 #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
248 _ctl_display_some_debug(ioc
, smid
, "ctl_done", mpi_reply
);
250 ioc
->ctl_cmds
.status
&= ~MPT2_CMD_PENDING
;
251 complete(&ioc
->ctl_cmds
.done
);
256 * _ctl_check_event_type - determines when an event needs logging
257 * @ioc: per adapter object
258 * @event: firmware event
260 * The bitmask in ioc->event_type[] indicates which events should be
261 * be saved in the driver event_log. This bitmask is set by application.
263 * Returns 1 when event should be captured, or zero means no match.
266 _ctl_check_event_type(struct MPT2SAS_ADAPTER
*ioc
, u16 event
)
271 if (event
>= 128 || !event
|| !ioc
->event_log
)
274 desired_event
= (1 << (event
% 32));
278 return desired_event
& ioc
->event_type
[i
];
282 * mpt2sas_ctl_add_to_event_log - add event
283 * @ioc: per adapter object
284 * @mpi_reply: reply message frame
289 mpt2sas_ctl_add_to_event_log(struct MPT2SAS_ADAPTER
*ioc
,
290 Mpi2EventNotificationReply_t
*mpi_reply
)
292 struct MPT2_IOCTL_EVENTS
*event_log
;
295 u32 sz
, event_data_sz
;
301 event
= le16_to_cpu(mpi_reply
->Event
);
303 if (_ctl_check_event_type(ioc
, event
)) {
305 /* insert entry into circular event_log */
306 i
= ioc
->event_context
% MPT2SAS_CTL_EVENT_LOG_SIZE
;
307 event_log
= ioc
->event_log
;
308 event_log
[i
].event
= event
;
309 event_log
[i
].context
= ioc
->event_context
++;
311 event_data_sz
= le16_to_cpu(mpi_reply
->EventDataLength
)*4;
312 sz
= min_t(u32
, event_data_sz
, MPT2_EVENT_DATA_SIZE
);
313 memset(event_log
[i
].data
, 0, MPT2_EVENT_DATA_SIZE
);
314 memcpy(event_log
[i
].data
, mpi_reply
->EventData
, sz
);
318 /* This aen_event_read_flag flag is set until the
319 * application has read the event log.
320 * For MPI2_EVENT_LOG_ENTRY_ADDED, we always notify.
322 if (event
== MPI2_EVENT_LOG_ENTRY_ADDED
||
323 (send_aen
&& !ioc
->aen_event_read_flag
)) {
324 ioc
->aen_event_read_flag
= 1;
325 wake_up_interruptible(&ctl_poll_wait
);
327 kill_fasync(&async_queue
, SIGIO
, POLL_IN
);
332 * mpt2sas_ctl_event_callback - firmware event handler (called at ISR time)
333 * @ioc: per adapter object
334 * @msix_index: MSIX table index supplied by the OS
335 * @reply: reply message frame(lower 32bit addr)
336 * Context: interrupt.
338 * This function merely adds a new work task into ioc->firmware_event_thread.
339 * The tasks are worked from _firmware_event_work in user context.
341 * Return 1 meaning mf should be freed from _base_interrupt
342 * 0 means the mf is freed from this function.
345 mpt2sas_ctl_event_callback(struct MPT2SAS_ADAPTER
*ioc
, u8 msix_index
,
348 Mpi2EventNotificationReply_t
*mpi_reply
;
350 mpi_reply
= mpt2sas_base_get_reply_virt_addr(ioc
, reply
);
351 mpt2sas_ctl_add_to_event_log(ioc
, mpi_reply
);
356 * _ctl_verify_adapter - validates ioc_number passed from application
357 * @ioc: per adapter object
358 * @iocpp: The ioc pointer is returned in this.
360 * Return (-1) means error, else ioc_number.
363 _ctl_verify_adapter(int ioc_number
, struct MPT2SAS_ADAPTER
**iocpp
)
365 struct MPT2SAS_ADAPTER
*ioc
;
367 list_for_each_entry(ioc
, &mpt2sas_ioc_list
, list
) {
368 if (ioc
->id
!= ioc_number
)
378 * mpt2sas_ctl_reset_handler - reset callback handler (for ctl)
379 * @ioc: per adapter object
380 * @reset_phase: phase
382 * The handler for doing any required cleanup or initialization.
384 * The reset phase can be MPT2_IOC_PRE_RESET, MPT2_IOC_AFTER_RESET,
385 * MPT2_IOC_DONE_RESET
388 mpt2sas_ctl_reset_handler(struct MPT2SAS_ADAPTER
*ioc
, int reset_phase
)
393 switch (reset_phase
) {
394 case MPT2_IOC_PRE_RESET
:
395 dtmprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
396 "MPT2_IOC_PRE_RESET\n", ioc
->name
, __func__
));
397 for (i
= 0; i
< MPI2_DIAG_BUF_TYPE_COUNT
; i
++) {
398 if (!(ioc
->diag_buffer_status
[i
] &
399 MPT2_DIAG_BUFFER_IS_REGISTERED
))
401 if ((ioc
->diag_buffer_status
[i
] &
402 MPT2_DIAG_BUFFER_IS_RELEASED
))
404 _ctl_send_release(ioc
, i
, &issue_reset
);
407 case MPT2_IOC_AFTER_RESET
:
408 dtmprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
409 "MPT2_IOC_AFTER_RESET\n", ioc
->name
, __func__
));
410 if (ioc
->ctl_cmds
.status
& MPT2_CMD_PENDING
) {
411 ioc
->ctl_cmds
.status
|= MPT2_CMD_RESET
;
412 mpt2sas_base_free_smid(ioc
, ioc
->ctl_cmds
.smid
);
413 complete(&ioc
->ctl_cmds
.done
);
416 case MPT2_IOC_DONE_RESET
:
417 dtmprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
418 "MPT2_IOC_DONE_RESET\n", ioc
->name
, __func__
));
420 for (i
= 0; i
< MPI2_DIAG_BUF_TYPE_COUNT
; i
++) {
421 if (!(ioc
->diag_buffer_status
[i
] &
422 MPT2_DIAG_BUFFER_IS_REGISTERED
))
424 if ((ioc
->diag_buffer_status
[i
] &
425 MPT2_DIAG_BUFFER_IS_RELEASED
))
427 ioc
->diag_buffer_status
[i
] |=
428 MPT2_DIAG_BUFFER_IS_DIAG_RESET
;
440 * Called when application request fasyn callback handler.
443 _ctl_fasync(int fd
, struct file
*filep
, int mode
)
445 return fasync_helper(fd
, filep
, mode
, &async_queue
);
453 * Called when application releases the fasyn callback handler.
456 _ctl_release(struct inode
*inode
, struct file
*filep
)
458 return fasync_helper(-1, filep
, 0, &async_queue
);
468 _ctl_poll(struct file
*filep
, poll_table
*wait
)
470 struct MPT2SAS_ADAPTER
*ioc
;
472 poll_wait(filep
, &ctl_poll_wait
, wait
);
474 list_for_each_entry(ioc
, &mpt2sas_ioc_list
, list
) {
475 if (ioc
->aen_event_read_flag
)
476 return POLLIN
| POLLRDNORM
;
482 * _ctl_set_task_mid - assign an active smid to tm request
483 * @ioc: per adapter object
484 * @karg - (struct mpt2_ioctl_command)
485 * @tm_request - pointer to mf from user space
487 * Returns 0 when an smid if found, else fail.
488 * during failure, the reply frame is filled.
491 _ctl_set_task_mid(struct MPT2SAS_ADAPTER
*ioc
, struct mpt2_ioctl_command
*karg
,
492 Mpi2SCSITaskManagementRequest_t
*tm_request
)
497 struct scsi_cmnd
*scmd
;
498 struct MPT2SAS_DEVICE
*priv_data
;
500 Mpi2SCSITaskManagementReply_t
*tm_reply
;
505 if (tm_request
->TaskType
== MPI2_SCSITASKMGMT_TASKTYPE_ABORT_TASK
)
507 else if (tm_request
->TaskType
== MPI2_SCSITASKMGMT_TASKTYPE_QUERY_TASK
)
512 lun
= scsilun_to_int((struct scsi_lun
*)tm_request
->LUN
);
514 handle
= le16_to_cpu(tm_request
->DevHandle
);
515 spin_lock_irqsave(&ioc
->scsi_lookup_lock
, flags
);
516 for (i
= ioc
->scsiio_depth
; i
&& !found
; i
--) {
517 scmd
= ioc
->scsi_lookup
[i
- 1].scmd
;
518 if (scmd
== NULL
|| scmd
->device
== NULL
||
519 scmd
->device
->hostdata
== NULL
)
521 if (lun
!= scmd
->device
->lun
)
523 priv_data
= scmd
->device
->hostdata
;
524 if (priv_data
->sas_target
== NULL
)
526 if (priv_data
->sas_target
->handle
!= handle
)
528 tm_request
->TaskMID
= cpu_to_le16(ioc
->scsi_lookup
[i
- 1].smid
);
531 spin_unlock_irqrestore(&ioc
->scsi_lookup_lock
, flags
);
534 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
535 "handle(0x%04x), lun(%d), no active mid!!\n", ioc
->name
,
536 desc
, tm_request
->DevHandle
, lun
));
537 tm_reply
= ioc
->ctl_cmds
.reply
;
538 tm_reply
->DevHandle
= tm_request
->DevHandle
;
539 tm_reply
->Function
= MPI2_FUNCTION_SCSI_TASK_MGMT
;
540 tm_reply
->TaskType
= tm_request
->TaskType
;
541 tm_reply
->MsgLength
= sizeof(Mpi2SCSITaskManagementReply_t
)/4;
542 tm_reply
->VP_ID
= tm_request
->VP_ID
;
543 tm_reply
->VF_ID
= tm_request
->VF_ID
;
544 sz
= min_t(u32
, karg
->max_reply_bytes
, ioc
->reply_sz
);
545 if (copy_to_user(karg
->reply_frame_buf_ptr
, ioc
->ctl_cmds
.reply
,
547 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
552 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
553 "handle(0x%04x), lun(%d), task_mid(%d)\n", ioc
->name
,
554 desc
, tm_request
->DevHandle
, lun
, tm_request
->TaskMID
));
559 * _ctl_do_mpt_command - main handler for MPT2COMMAND opcode
560 * @ioc: per adapter object
561 * @karg - (struct mpt2_ioctl_command)
562 * @mf - pointer to mf in user space
563 * @state - NON_BLOCKING or BLOCKING
566 _ctl_do_mpt_command(struct MPT2SAS_ADAPTER
*ioc
,
567 struct mpt2_ioctl_command karg
, void __user
*mf
, enum block_state state
)
569 MPI2RequestHeader_t
*mpi_request
;
570 MPI2DefaultReply_t
*mpi_reply
;
574 unsigned long timeout
, timeleft
;
578 void *priv_sense
= NULL
;
579 void *data_out
= NULL
;
580 dma_addr_t data_out_dma
;
581 size_t data_out_sz
= 0;
582 void *data_in
= NULL
;
583 dma_addr_t data_in_dma
;
584 size_t data_in_sz
= 0;
587 u16 wait_state_count
;
591 if (state
== NON_BLOCKING
&& !mutex_trylock(&ioc
->ctl_cmds
.mutex
))
593 else if (mutex_lock_interruptible(&ioc
->ctl_cmds
.mutex
))
596 if (ioc
->ctl_cmds
.status
!= MPT2_CMD_NOT_USED
) {
597 printk(MPT2SAS_ERR_FMT
"%s: ctl_cmd in use\n",
598 ioc
->name
, __func__
);
603 wait_state_count
= 0;
604 ioc_state
= mpt2sas_base_get_iocstate(ioc
, 1);
605 while (ioc_state
!= MPI2_IOC_STATE_OPERATIONAL
) {
606 if (wait_state_count
++ == 10) {
607 printk(MPT2SAS_ERR_FMT
608 "%s: failed due to ioc not operational\n",
609 ioc
->name
, __func__
);
614 ioc_state
= mpt2sas_base_get_iocstate(ioc
, 1);
615 printk(MPT2SAS_INFO_FMT
"%s: waiting for "
616 "operational state(count=%d)\n", ioc
->name
,
617 __func__
, wait_state_count
);
619 if (wait_state_count
)
620 printk(MPT2SAS_INFO_FMT
"%s: ioc is operational\n",
621 ioc
->name
, __func__
);
623 smid
= mpt2sas_base_get_smid_scsiio(ioc
, ioc
->ctl_cb_idx
, NULL
);
625 printk(MPT2SAS_ERR_FMT
"%s: failed obtaining a smid\n",
626 ioc
->name
, __func__
);
632 ioc
->ctl_cmds
.status
= MPT2_CMD_PENDING
;
633 memset(ioc
->ctl_cmds
.reply
, 0, ioc
->reply_sz
);
634 mpi_request
= mpt2sas_base_get_msg_frame(ioc
, smid
);
635 ioc
->ctl_cmds
.smid
= smid
;
636 data_out_sz
= karg
.data_out_size
;
637 data_in_sz
= karg
.data_in_size
;
639 /* copy in request message frame from user */
640 if (copy_from_user(mpi_request
, mf
, karg
.data_sge_offset
*4)) {
641 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
, __LINE__
,
644 mpt2sas_base_free_smid(ioc
, smid
);
648 if (mpi_request
->Function
== MPI2_FUNCTION_SCSI_IO_REQUEST
||
649 mpi_request
->Function
== MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH
) {
650 if (!mpi_request
->FunctionDependent1
||
651 mpi_request
->FunctionDependent1
>
652 cpu_to_le16(ioc
->facts
.MaxDevHandle
)) {
654 mpt2sas_base_free_smid(ioc
, smid
);
659 /* obtain dma-able memory for data transfer */
660 if (data_out_sz
) /* WRITE */ {
661 data_out
= pci_alloc_consistent(ioc
->pdev
, data_out_sz
,
664 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
667 mpt2sas_base_free_smid(ioc
, smid
);
670 if (copy_from_user(data_out
, karg
.data_out_buf_ptr
,
672 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
675 mpt2sas_base_free_smid(ioc
, smid
);
680 if (data_in_sz
) /* READ */ {
681 data_in
= pci_alloc_consistent(ioc
->pdev
, data_in_sz
,
684 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
687 mpt2sas_base_free_smid(ioc
, smid
);
692 /* add scatter gather elements */
693 psge
= (void *)mpi_request
+ (karg
.data_sge_offset
*4);
695 if (!data_out_sz
&& !data_in_sz
) {
696 mpt2sas_base_build_zero_len_sge(ioc
, psge
);
697 } else if (data_out_sz
&& data_in_sz
) {
698 /* WRITE sgel first */
699 sgl_flags
= (MPI2_SGE_FLAGS_SIMPLE_ELEMENT
|
700 MPI2_SGE_FLAGS_END_OF_BUFFER
| MPI2_SGE_FLAGS_HOST_TO_IOC
);
701 sgl_flags
= sgl_flags
<< MPI2_SGE_FLAGS_SHIFT
;
702 ioc
->base_add_sg_single(psge
, sgl_flags
|
703 data_out_sz
, data_out_dma
);
706 psge
+= ioc
->sge_size
;
709 sgl_flags
= (MPI2_SGE_FLAGS_SIMPLE_ELEMENT
|
710 MPI2_SGE_FLAGS_LAST_ELEMENT
| MPI2_SGE_FLAGS_END_OF_BUFFER
|
711 MPI2_SGE_FLAGS_END_OF_LIST
);
712 sgl_flags
= sgl_flags
<< MPI2_SGE_FLAGS_SHIFT
;
713 ioc
->base_add_sg_single(psge
, sgl_flags
|
714 data_in_sz
, data_in_dma
);
715 } else if (data_out_sz
) /* WRITE */ {
716 sgl_flags
= (MPI2_SGE_FLAGS_SIMPLE_ELEMENT
|
717 MPI2_SGE_FLAGS_LAST_ELEMENT
| MPI2_SGE_FLAGS_END_OF_BUFFER
|
718 MPI2_SGE_FLAGS_END_OF_LIST
| MPI2_SGE_FLAGS_HOST_TO_IOC
);
719 sgl_flags
= sgl_flags
<< MPI2_SGE_FLAGS_SHIFT
;
720 ioc
->base_add_sg_single(psge
, sgl_flags
|
721 data_out_sz
, data_out_dma
);
722 } else if (data_in_sz
) /* READ */ {
723 sgl_flags
= (MPI2_SGE_FLAGS_SIMPLE_ELEMENT
|
724 MPI2_SGE_FLAGS_LAST_ELEMENT
| MPI2_SGE_FLAGS_END_OF_BUFFER
|
725 MPI2_SGE_FLAGS_END_OF_LIST
);
726 sgl_flags
= sgl_flags
<< MPI2_SGE_FLAGS_SHIFT
;
727 ioc
->base_add_sg_single(psge
, sgl_flags
|
728 data_in_sz
, data_in_dma
);
731 /* send command to firmware */
732 #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
733 _ctl_display_some_debug(ioc
, smid
, "ctl_request", NULL
);
736 switch (mpi_request
->Function
) {
737 case MPI2_FUNCTION_SCSI_IO_REQUEST
:
738 case MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH
:
740 Mpi2SCSIIORequest_t
*scsiio_request
=
741 (Mpi2SCSIIORequest_t
*)mpi_request
;
742 scsiio_request
->SenseBufferLowAddress
=
743 mpt2sas_base_get_sense_buffer_dma(ioc
, smid
);
744 priv_sense
= mpt2sas_base_get_sense_buffer(ioc
, smid
);
745 memset(priv_sense
, 0, SCSI_SENSE_BUFFERSIZE
);
746 mpt2sas_base_put_smid_scsi_io(ioc
, smid
,
747 le16_to_cpu(mpi_request
->FunctionDependent1
));
750 case MPI2_FUNCTION_SCSI_TASK_MGMT
:
752 Mpi2SCSITaskManagementRequest_t
*tm_request
=
753 (Mpi2SCSITaskManagementRequest_t
*)mpi_request
;
755 if (tm_request
->TaskType
==
756 MPI2_SCSITASKMGMT_TASKTYPE_ABORT_TASK
||
757 tm_request
->TaskType
==
758 MPI2_SCSITASKMGMT_TASKTYPE_QUERY_TASK
) {
759 if (_ctl_set_task_mid(ioc
, &karg
, tm_request
)) {
760 mpt2sas_base_free_smid(ioc
, smid
);
765 mutex_lock(&ioc
->tm_cmds
.mutex
);
766 mpt2sas_scsih_set_tm_flag(ioc
, le16_to_cpu(
767 tm_request
->DevHandle
));
768 mpt2sas_base_put_smid_hi_priority(ioc
, smid
);
771 case MPI2_FUNCTION_SMP_PASSTHROUGH
:
773 Mpi2SmpPassthroughRequest_t
*smp_request
=
774 (Mpi2SmpPassthroughRequest_t
*)mpi_request
;
777 /* ioc determines which port to use */
778 smp_request
->PhysicalPort
= 0xFF;
779 if (smp_request
->PassthroughFlags
&
780 MPI2_SMP_PT_REQ_PT_FLAGS_IMMEDIATE
)
781 data
= (u8
*)&smp_request
->SGL
;
785 if (data
[1] == 0x91 && (data
[10] == 1 || data
[10] == 2)) {
786 ioc
->ioc_link_reset_in_progress
= 1;
787 ioc
->ignore_loginfos
= 1;
789 mpt2sas_base_put_smid_default(ioc
, smid
);
792 case MPI2_FUNCTION_SAS_IO_UNIT_CONTROL
:
794 Mpi2SasIoUnitControlRequest_t
*sasiounit_request
=
795 (Mpi2SasIoUnitControlRequest_t
*)mpi_request
;
797 if (sasiounit_request
->Operation
== MPI2_SAS_OP_PHY_HARD_RESET
798 || sasiounit_request
->Operation
==
799 MPI2_SAS_OP_PHY_LINK_RESET
) {
800 ioc
->ioc_link_reset_in_progress
= 1;
801 ioc
->ignore_loginfos
= 1;
803 mpt2sas_base_put_smid_default(ioc
, smid
);
807 mpt2sas_base_put_smid_default(ioc
, smid
);
811 if (karg
.timeout
< MPT2_IOCTL_DEFAULT_TIMEOUT
)
812 timeout
= MPT2_IOCTL_DEFAULT_TIMEOUT
;
814 timeout
= karg
.timeout
;
815 init_completion(&ioc
->ctl_cmds
.done
);
816 timeleft
= wait_for_completion_timeout(&ioc
->ctl_cmds
.done
,
818 if (mpi_request
->Function
== MPI2_FUNCTION_SCSI_TASK_MGMT
) {
819 Mpi2SCSITaskManagementRequest_t
*tm_request
=
820 (Mpi2SCSITaskManagementRequest_t
*)mpi_request
;
821 mutex_unlock(&ioc
->tm_cmds
.mutex
);
822 mpt2sas_scsih_clear_tm_flag(ioc
, le16_to_cpu(
823 tm_request
->DevHandle
));
824 } else if ((mpi_request
->Function
== MPI2_FUNCTION_SMP_PASSTHROUGH
||
825 mpi_request
->Function
== MPI2_FUNCTION_SAS_IO_UNIT_CONTROL
) &&
826 ioc
->ioc_link_reset_in_progress
) {
827 ioc
->ioc_link_reset_in_progress
= 0;
828 ioc
->ignore_loginfos
= 0;
830 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_COMPLETE
)) {
831 printk(MPT2SAS_ERR_FMT
"%s: timeout\n", ioc
->name
,
833 _debug_dump_mf(mpi_request
, karg
.data_sge_offset
);
834 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_RESET
))
836 goto issue_host_reset
;
839 mpi_reply
= ioc
->ctl_cmds
.reply
;
840 ioc_status
= le16_to_cpu(mpi_reply
->IOCStatus
) & MPI2_IOCSTATUS_MASK
;
842 #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
843 if (mpi_reply
->Function
== MPI2_FUNCTION_SCSI_TASK_MGMT
&&
844 (ioc
->logging_level
& MPT_DEBUG_TM
)) {
845 Mpi2SCSITaskManagementReply_t
*tm_reply
=
846 (Mpi2SCSITaskManagementReply_t
*)mpi_reply
;
848 printk(MPT2SAS_DEBUG_FMT
"TASK_MGMT: "
849 "IOCStatus(0x%04x), IOCLogInfo(0x%08x), "
850 "TerminationCount(0x%08x)\n", ioc
->name
,
851 le16_to_cpu(tm_reply
->IOCStatus
),
852 le32_to_cpu(tm_reply
->IOCLogInfo
),
853 le32_to_cpu(tm_reply
->TerminationCount
));
856 /* copy out xdata to user */
858 if (copy_to_user(karg
.data_in_buf_ptr
, data_in
,
860 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
867 /* copy out reply message frame to user */
868 if (karg
.max_reply_bytes
) {
869 sz
= min_t(u32
, karg
.max_reply_bytes
, ioc
->reply_sz
);
870 if (copy_to_user(karg
.reply_frame_buf_ptr
, ioc
->ctl_cmds
.reply
,
872 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
879 /* copy out sense to user */
880 if (karg
.max_sense_bytes
&& (mpi_request
->Function
==
881 MPI2_FUNCTION_SCSI_IO_REQUEST
|| mpi_request
->Function
==
882 MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH
)) {
883 sz
= min_t(u32
, karg
.max_sense_bytes
, SCSI_SENSE_BUFFERSIZE
);
884 if (copy_to_user(karg
.sense_data_ptr
, priv_sense
, sz
)) {
885 printk(KERN_ERR
"failure at %s:%d/%s()!\n", __FILE__
,
895 if ((mpi_request
->Function
== MPI2_FUNCTION_SCSI_IO_REQUEST
||
896 mpi_request
->Function
==
897 MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH
)) {
898 printk(MPT2SAS_INFO_FMT
"issue target reset: handle "
899 "= (0x%04x)\n", ioc
->name
,
900 mpi_request
->FunctionDependent1
);
901 mpt2sas_halt_firmware(ioc
);
902 mutex_lock(&ioc
->tm_cmds
.mutex
);
903 mpt2sas_scsih_issue_tm(ioc
,
904 mpi_request
->FunctionDependent1
, 0,
905 MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET
, 0, 10);
906 ioc
->tm_cmds
.status
= MPT2_CMD_NOT_USED
;
907 mutex_unlock(&ioc
->tm_cmds
.mutex
);
909 mpt2sas_base_hard_reset_handler(ioc
, CAN_SLEEP
,
915 /* free memory associated with sg buffers */
917 pci_free_consistent(ioc
->pdev
, data_in_sz
, data_in
,
921 pci_free_consistent(ioc
->pdev
, data_out_sz
, data_out
,
924 ioc
->ctl_cmds
.status
= MPT2_CMD_NOT_USED
;
925 mutex_unlock(&ioc
->ctl_cmds
.mutex
);
930 * _ctl_getiocinfo - main handler for MPT2IOCINFO opcode
931 * @arg - user space buffer containing ioctl content
934 _ctl_getiocinfo(void __user
*arg
)
936 struct mpt2_ioctl_iocinfo karg
;
937 struct MPT2SAS_ADAPTER
*ioc
;
940 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
941 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
942 __FILE__
, __LINE__
, __func__
);
945 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
948 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: enter\n", ioc
->name
,
951 memset(&karg
, 0 , sizeof(karg
));
952 karg
.adapter_type
= MPT2_IOCTL_INTERFACE_SAS2
;
954 karg
.port_number
= ioc
->pfacts
[0].PortNumber
;
955 pci_read_config_byte(ioc
->pdev
, PCI_CLASS_REVISION
, &revision
);
956 karg
.hw_rev
= revision
;
957 karg
.pci_id
= ioc
->pdev
->device
;
958 karg
.subsystem_device
= ioc
->pdev
->subsystem_device
;
959 karg
.subsystem_vendor
= ioc
->pdev
->subsystem_vendor
;
960 karg
.pci_information
.u
.bits
.bus
= ioc
->pdev
->bus
->number
;
961 karg
.pci_information
.u
.bits
.device
= PCI_SLOT(ioc
->pdev
->devfn
);
962 karg
.pci_information
.u
.bits
.function
= PCI_FUNC(ioc
->pdev
->devfn
);
963 karg
.pci_information
.segment_id
= pci_domain_nr(ioc
->pdev
->bus
);
964 karg
.firmware_version
= ioc
->facts
.FWVersion
.Word
;
965 strcpy(karg
.driver_version
, MPT2SAS_DRIVER_NAME
);
966 strcat(karg
.driver_version
, "-");
967 strcat(karg
.driver_version
, MPT2SAS_DRIVER_VERSION
);
968 karg
.bios_version
= le32_to_cpu(ioc
->bios_pg3
.BiosVersion
);
970 if (copy_to_user(arg
, &karg
, sizeof(karg
))) {
971 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
972 __FILE__
, __LINE__
, __func__
);
979 * _ctl_eventquery - main handler for MPT2EVENTQUERY opcode
980 * @arg - user space buffer containing ioctl content
983 _ctl_eventquery(void __user
*arg
)
985 struct mpt2_ioctl_eventquery karg
;
986 struct MPT2SAS_ADAPTER
*ioc
;
988 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
989 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
990 __FILE__
, __LINE__
, __func__
);
993 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
996 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: enter\n", ioc
->name
,
999 karg
.event_entries
= MPT2SAS_CTL_EVENT_LOG_SIZE
;
1000 memcpy(karg
.event_types
, ioc
->event_type
,
1001 MPI2_EVENT_NOTIFY_EVENTMASK_WORDS
* sizeof(u32
));
1003 if (copy_to_user(arg
, &karg
, sizeof(karg
))) {
1004 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1005 __FILE__
, __LINE__
, __func__
);
1012 * _ctl_eventenable - main handler for MPT2EVENTENABLE opcode
1013 * @arg - user space buffer containing ioctl content
1016 _ctl_eventenable(void __user
*arg
)
1018 struct mpt2_ioctl_eventenable karg
;
1019 struct MPT2SAS_ADAPTER
*ioc
;
1021 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1022 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1023 __FILE__
, __LINE__
, __func__
);
1026 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1029 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: enter\n", ioc
->name
,
1034 memcpy(ioc
->event_type
, karg
.event_types
,
1035 MPI2_EVENT_NOTIFY_EVENTMASK_WORDS
* sizeof(u32
));
1036 mpt2sas_base_validate_event_type(ioc
, ioc
->event_type
);
1038 /* initialize event_log */
1039 ioc
->event_context
= 0;
1040 ioc
->aen_event_read_flag
= 0;
1041 ioc
->event_log
= kcalloc(MPT2SAS_CTL_EVENT_LOG_SIZE
,
1042 sizeof(struct MPT2_IOCTL_EVENTS
), GFP_KERNEL
);
1043 if (!ioc
->event_log
) {
1044 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1045 __FILE__
, __LINE__
, __func__
);
1052 * _ctl_eventreport - main handler for MPT2EVENTREPORT opcode
1053 * @arg - user space buffer containing ioctl content
1056 _ctl_eventreport(void __user
*arg
)
1058 struct mpt2_ioctl_eventreport karg
;
1059 struct MPT2SAS_ADAPTER
*ioc
;
1060 u32 number_bytes
, max_events
, max
;
1061 struct mpt2_ioctl_eventreport __user
*uarg
= arg
;
1063 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1064 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1065 __FILE__
, __LINE__
, __func__
);
1068 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1071 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: enter\n", ioc
->name
,
1074 number_bytes
= karg
.hdr
.max_data_size
-
1075 sizeof(struct mpt2_ioctl_header
);
1076 max_events
= number_bytes
/sizeof(struct MPT2_IOCTL_EVENTS
);
1077 max
= min_t(u32
, MPT2SAS_CTL_EVENT_LOG_SIZE
, max_events
);
1079 /* If fewer than 1 event is requested, there must have
1080 * been some type of error.
1082 if (!max
|| !ioc
->event_log
)
1085 number_bytes
= max
* sizeof(struct MPT2_IOCTL_EVENTS
);
1086 if (copy_to_user(uarg
->event_data
, ioc
->event_log
, number_bytes
)) {
1087 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1088 __FILE__
, __LINE__
, __func__
);
1092 /* reset flag so SIGIO can restart */
1093 ioc
->aen_event_read_flag
= 0;
1098 * _ctl_do_reset - main handler for MPT2HARDRESET opcode
1099 * @arg - user space buffer containing ioctl content
1102 _ctl_do_reset(void __user
*arg
)
1104 struct mpt2_ioctl_diag_reset karg
;
1105 struct MPT2SAS_ADAPTER
*ioc
;
1108 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1109 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1110 __FILE__
, __LINE__
, __func__
);
1113 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1116 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: enter\n", ioc
->name
,
1119 retval
= mpt2sas_base_hard_reset_handler(ioc
, CAN_SLEEP
,
1121 printk(MPT2SAS_INFO_FMT
"host reset: %s\n",
1122 ioc
->name
, ((!retval
) ? "SUCCESS" : "FAILED"));
1127 * _ctl_btdh_search_sas_device - searching for sas device
1128 * @ioc: per adapter object
1129 * @btdh: btdh ioctl payload
1132 _ctl_btdh_search_sas_device(struct MPT2SAS_ADAPTER
*ioc
,
1133 struct mpt2_ioctl_btdh_mapping
*btdh
)
1135 struct _sas_device
*sas_device
;
1136 unsigned long flags
;
1139 if (list_empty(&ioc
->sas_device_list
))
1142 spin_lock_irqsave(&ioc
->sas_device_lock
, flags
);
1143 list_for_each_entry(sas_device
, &ioc
->sas_device_list
, list
) {
1144 if (btdh
->bus
== 0xFFFFFFFF && btdh
->id
== 0xFFFFFFFF &&
1145 btdh
->handle
== sas_device
->handle
) {
1146 btdh
->bus
= sas_device
->channel
;
1147 btdh
->id
= sas_device
->id
;
1150 } else if (btdh
->bus
== sas_device
->channel
&& btdh
->id
==
1151 sas_device
->id
&& btdh
->handle
== 0xFFFF) {
1152 btdh
->handle
= sas_device
->handle
;
1158 spin_unlock_irqrestore(&ioc
->sas_device_lock
, flags
);
1163 * _ctl_btdh_search_raid_device - searching for raid device
1164 * @ioc: per adapter object
1165 * @btdh: btdh ioctl payload
1168 _ctl_btdh_search_raid_device(struct MPT2SAS_ADAPTER
*ioc
,
1169 struct mpt2_ioctl_btdh_mapping
*btdh
)
1171 struct _raid_device
*raid_device
;
1172 unsigned long flags
;
1175 if (list_empty(&ioc
->raid_device_list
))
1178 spin_lock_irqsave(&ioc
->raid_device_lock
, flags
);
1179 list_for_each_entry(raid_device
, &ioc
->raid_device_list
, list
) {
1180 if (btdh
->bus
== 0xFFFFFFFF && btdh
->id
== 0xFFFFFFFF &&
1181 btdh
->handle
== raid_device
->handle
) {
1182 btdh
->bus
= raid_device
->channel
;
1183 btdh
->id
= raid_device
->id
;
1186 } else if (btdh
->bus
== raid_device
->channel
&& btdh
->id
==
1187 raid_device
->id
&& btdh
->handle
== 0xFFFF) {
1188 btdh
->handle
= raid_device
->handle
;
1194 spin_unlock_irqrestore(&ioc
->raid_device_lock
, flags
);
1199 * _ctl_btdh_mapping - main handler for MPT2BTDHMAPPING opcode
1200 * @arg - user space buffer containing ioctl content
1203 _ctl_btdh_mapping(void __user
*arg
)
1205 struct mpt2_ioctl_btdh_mapping karg
;
1206 struct MPT2SAS_ADAPTER
*ioc
;
1209 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1210 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1211 __FILE__
, __LINE__
, __func__
);
1214 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1217 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1220 rc
= _ctl_btdh_search_sas_device(ioc
, &karg
);
1222 _ctl_btdh_search_raid_device(ioc
, &karg
);
1224 if (copy_to_user(arg
, &karg
, sizeof(karg
))) {
1225 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1226 __FILE__
, __LINE__
, __func__
);
1233 * _ctl_diag_capability - return diag buffer capability
1234 * @ioc: per adapter object
1235 * @buffer_type: specifies either TRACE, SNAPSHOT, or EXTENDED
1237 * returns 1 when diag buffer support is enabled in firmware
1240 _ctl_diag_capability(struct MPT2SAS_ADAPTER
*ioc
, u8 buffer_type
)
1244 switch (buffer_type
) {
1245 case MPI2_DIAG_BUF_TYPE_TRACE
:
1246 if (ioc
->facts
.IOCCapabilities
&
1247 MPI2_IOCFACTS_CAPABILITY_DIAG_TRACE_BUFFER
)
1250 case MPI2_DIAG_BUF_TYPE_SNAPSHOT
:
1251 if (ioc
->facts
.IOCCapabilities
&
1252 MPI2_IOCFACTS_CAPABILITY_SNAPSHOT_BUFFER
)
1255 case MPI2_DIAG_BUF_TYPE_EXTENDED
:
1256 if (ioc
->facts
.IOCCapabilities
&
1257 MPI2_IOCFACTS_CAPABILITY_EXTENDED_BUFFER
)
1265 * _ctl_diag_register_2 - wrapper for registering diag buffer support
1266 * @ioc: per adapter object
1267 * @diag_register: the diag_register struct passed in from user space
1271 _ctl_diag_register_2(struct MPT2SAS_ADAPTER
*ioc
,
1272 struct mpt2_diag_register
*diag_register
)
1275 void *request_data
= NULL
;
1276 dma_addr_t request_data_dma
;
1277 u32 request_data_sz
= 0;
1278 Mpi2DiagBufferPostRequest_t
*mpi_request
;
1279 Mpi2DiagBufferPostReply_t
*mpi_reply
;
1281 unsigned long timeleft
;
1286 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1289 if (ioc
->ctl_cmds
.status
!= MPT2_CMD_NOT_USED
) {
1290 printk(MPT2SAS_ERR_FMT
"%s: ctl_cmd in use\n",
1291 ioc
->name
, __func__
);
1296 buffer_type
= diag_register
->buffer_type
;
1297 if (!_ctl_diag_capability(ioc
, buffer_type
)) {
1298 printk(MPT2SAS_ERR_FMT
"%s: doesn't have capability for "
1299 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1303 if (ioc
->diag_buffer_status
[buffer_type
] &
1304 MPT2_DIAG_BUFFER_IS_REGISTERED
) {
1305 printk(MPT2SAS_ERR_FMT
"%s: already has a registered "
1306 "buffer for buffer_type(0x%02x)\n", ioc
->name
, __func__
,
1311 if (diag_register
->requested_buffer_size
% 4) {
1312 printk(MPT2SAS_ERR_FMT
"%s: the requested_buffer_size "
1313 "is not 4 byte aligned\n", ioc
->name
, __func__
);
1317 smid
= mpt2sas_base_get_smid(ioc
, ioc
->ctl_cb_idx
);
1319 printk(MPT2SAS_ERR_FMT
"%s: failed obtaining a smid\n",
1320 ioc
->name
, __func__
);
1326 ioc
->ctl_cmds
.status
= MPT2_CMD_PENDING
;
1327 memset(ioc
->ctl_cmds
.reply
, 0, ioc
->reply_sz
);
1328 mpi_request
= mpt2sas_base_get_msg_frame(ioc
, smid
);
1329 ioc
->ctl_cmds
.smid
= smid
;
1331 request_data
= ioc
->diag_buffer
[buffer_type
];
1332 request_data_sz
= diag_register
->requested_buffer_size
;
1333 ioc
->unique_id
[buffer_type
] = diag_register
->unique_id
;
1334 ioc
->diag_buffer_status
[buffer_type
] = 0;
1335 memcpy(ioc
->product_specific
[buffer_type
],
1336 diag_register
->product_specific
, MPT2_PRODUCT_SPECIFIC_DWORDS
);
1337 ioc
->diagnostic_flags
[buffer_type
] = diag_register
->diagnostic_flags
;
1340 request_data_dma
= ioc
->diag_buffer_dma
[buffer_type
];
1341 if (request_data_sz
!= ioc
->diag_buffer_sz
[buffer_type
]) {
1342 pci_free_consistent(ioc
->pdev
,
1343 ioc
->diag_buffer_sz
[buffer_type
],
1344 request_data
, request_data_dma
);
1345 request_data
= NULL
;
1349 if (request_data
== NULL
) {
1350 ioc
->diag_buffer_sz
[buffer_type
] = 0;
1351 ioc
->diag_buffer_dma
[buffer_type
] = 0;
1352 request_data
= pci_alloc_consistent(
1353 ioc
->pdev
, request_data_sz
, &request_data_dma
);
1354 if (request_data
== NULL
) {
1355 printk(MPT2SAS_ERR_FMT
"%s: failed allocating memory"
1356 " for diag buffers, requested size(%d)\n",
1357 ioc
->name
, __func__
, request_data_sz
);
1358 mpt2sas_base_free_smid(ioc
, smid
);
1361 ioc
->diag_buffer
[buffer_type
] = request_data
;
1362 ioc
->diag_buffer_sz
[buffer_type
] = request_data_sz
;
1363 ioc
->diag_buffer_dma
[buffer_type
] = request_data_dma
;
1366 mpi_request
->Function
= MPI2_FUNCTION_DIAG_BUFFER_POST
;
1367 mpi_request
->BufferType
= diag_register
->buffer_type
;
1368 mpi_request
->Flags
= cpu_to_le32(diag_register
->diagnostic_flags
);
1369 mpi_request
->BufferAddress
= cpu_to_le64(request_data_dma
);
1370 mpi_request
->BufferLength
= cpu_to_le32(request_data_sz
);
1371 mpi_request
->VF_ID
= 0; /* TODO */
1372 mpi_request
->VP_ID
= 0;
1374 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: diag_buffer(0x%p), "
1375 "dma(0x%llx), sz(%d)\n", ioc
->name
, __func__
, request_data
,
1376 (unsigned long long)request_data_dma
, mpi_request
->BufferLength
));
1378 for (i
= 0; i
< MPT2_PRODUCT_SPECIFIC_DWORDS
; i
++)
1379 mpi_request
->ProductSpecific
[i
] =
1380 cpu_to_le32(ioc
->product_specific
[buffer_type
][i
]);
1382 mpt2sas_base_put_smid_default(ioc
, smid
);
1383 init_completion(&ioc
->ctl_cmds
.done
);
1384 timeleft
= wait_for_completion_timeout(&ioc
->ctl_cmds
.done
,
1385 MPT2_IOCTL_DEFAULT_TIMEOUT
*HZ
);
1387 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_COMPLETE
)) {
1388 printk(MPT2SAS_ERR_FMT
"%s: timeout\n", ioc
->name
,
1390 _debug_dump_mf(mpi_request
,
1391 sizeof(Mpi2DiagBufferPostRequest_t
)/4);
1392 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_RESET
))
1394 goto issue_host_reset
;
1397 /* process the completed Reply Message Frame */
1398 if ((ioc
->ctl_cmds
.status
& MPT2_CMD_REPLY_VALID
) == 0) {
1399 printk(MPT2SAS_ERR_FMT
"%s: no reply message\n",
1400 ioc
->name
, __func__
);
1405 mpi_reply
= ioc
->ctl_cmds
.reply
;
1406 ioc_status
= le16_to_cpu(mpi_reply
->IOCStatus
) & MPI2_IOCSTATUS_MASK
;
1408 if (ioc_status
== MPI2_IOCSTATUS_SUCCESS
) {
1409 ioc
->diag_buffer_status
[buffer_type
] |=
1410 MPT2_DIAG_BUFFER_IS_REGISTERED
;
1411 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: success\n",
1412 ioc
->name
, __func__
));
1414 printk(MPT2SAS_DEBUG_FMT
"%s: ioc_status(0x%04x) "
1415 "log_info(0x%08x)\n", ioc
->name
, __func__
,
1416 ioc_status
, le32_to_cpu(mpi_reply
->IOCLogInfo
));
1422 mpt2sas_base_hard_reset_handler(ioc
, CAN_SLEEP
,
1427 if (rc
&& request_data
)
1428 pci_free_consistent(ioc
->pdev
, request_data_sz
,
1429 request_data
, request_data_dma
);
1431 ioc
->ctl_cmds
.status
= MPT2_CMD_NOT_USED
;
1436 * mpt2sas_enable_diag_buffer - enabling diag_buffers support driver load time
1437 * @ioc: per adapter object
1438 * @bits_to_register: bitwise field where trace is bit 0, and snapshot is bit 1
1440 * This is called when command line option diag_buffer_enable is enabled
1441 * at driver load time.
1444 mpt2sas_enable_diag_buffer(struct MPT2SAS_ADAPTER
*ioc
, u8 bits_to_register
)
1446 struct mpt2_diag_register diag_register
;
1448 memset(&diag_register
, 0, sizeof(struct mpt2_diag_register
));
1450 if (bits_to_register
& 1) {
1451 printk(MPT2SAS_INFO_FMT
"registering trace buffer support\n",
1453 diag_register
.buffer_type
= MPI2_DIAG_BUF_TYPE_TRACE
;
1454 /* register for 1MB buffers */
1455 diag_register
.requested_buffer_size
= (1024 * 1024);
1456 diag_register
.unique_id
= 0x7075900;
1457 _ctl_diag_register_2(ioc
, &diag_register
);
1460 if (bits_to_register
& 2) {
1461 printk(MPT2SAS_INFO_FMT
"registering snapshot buffer support\n",
1463 diag_register
.buffer_type
= MPI2_DIAG_BUF_TYPE_SNAPSHOT
;
1464 /* register for 2MB buffers */
1465 diag_register
.requested_buffer_size
= 2 * (1024 * 1024);
1466 diag_register
.unique_id
= 0x7075901;
1467 _ctl_diag_register_2(ioc
, &diag_register
);
1470 if (bits_to_register
& 4) {
1471 printk(MPT2SAS_INFO_FMT
"registering extended buffer support\n",
1473 diag_register
.buffer_type
= MPI2_DIAG_BUF_TYPE_EXTENDED
;
1474 /* register for 2MB buffers */
1475 diag_register
.requested_buffer_size
= 2 * (1024 * 1024);
1476 diag_register
.unique_id
= 0x7075901;
1477 _ctl_diag_register_2(ioc
, &diag_register
);
1482 * _ctl_diag_register - application register with driver
1483 * @arg - user space buffer containing ioctl content
1484 * @state - NON_BLOCKING or BLOCKING
1486 * This will allow the driver to setup any required buffers that will be
1487 * needed by firmware to communicate with the driver.
1490 _ctl_diag_register(void __user
*arg
, enum block_state state
)
1492 struct mpt2_diag_register karg
;
1493 struct MPT2SAS_ADAPTER
*ioc
;
1496 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1497 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1498 __FILE__
, __LINE__
, __func__
);
1501 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1504 if (state
== NON_BLOCKING
&& !mutex_trylock(&ioc
->ctl_cmds
.mutex
))
1506 else if (mutex_lock_interruptible(&ioc
->ctl_cmds
.mutex
))
1507 return -ERESTARTSYS
;
1508 rc
= _ctl_diag_register_2(ioc
, &karg
);
1509 mutex_unlock(&ioc
->ctl_cmds
.mutex
);
1514 * _ctl_diag_unregister - application unregister with driver
1515 * @arg - user space buffer containing ioctl content
1517 * This will allow the driver to cleanup any memory allocated for diag
1518 * messages and to free up any resources.
1521 _ctl_diag_unregister(void __user
*arg
)
1523 struct mpt2_diag_unregister karg
;
1524 struct MPT2SAS_ADAPTER
*ioc
;
1526 dma_addr_t request_data_dma
;
1527 u32 request_data_sz
;
1530 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1531 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1532 __FILE__
, __LINE__
, __func__
);
1535 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1538 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1541 buffer_type
= karg
.unique_id
& 0x000000ff;
1542 if (!_ctl_diag_capability(ioc
, buffer_type
)) {
1543 printk(MPT2SAS_ERR_FMT
"%s: doesn't have capability for "
1544 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1548 if ((ioc
->diag_buffer_status
[buffer_type
] &
1549 MPT2_DIAG_BUFFER_IS_REGISTERED
) == 0) {
1550 printk(MPT2SAS_ERR_FMT
"%s: buffer_type(0x%02x) is not "
1551 "registered\n", ioc
->name
, __func__
, buffer_type
);
1554 if ((ioc
->diag_buffer_status
[buffer_type
] &
1555 MPT2_DIAG_BUFFER_IS_RELEASED
) == 0) {
1556 printk(MPT2SAS_ERR_FMT
"%s: buffer_type(0x%02x) has not been "
1557 "released\n", ioc
->name
, __func__
, buffer_type
);
1561 if (karg
.unique_id
!= ioc
->unique_id
[buffer_type
]) {
1562 printk(MPT2SAS_ERR_FMT
"%s: unique_id(0x%08x) is not "
1563 "registered\n", ioc
->name
, __func__
, karg
.unique_id
);
1567 request_data
= ioc
->diag_buffer
[buffer_type
];
1568 if (!request_data
) {
1569 printk(MPT2SAS_ERR_FMT
"%s: doesn't have memory allocated for "
1570 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1574 request_data_sz
= ioc
->diag_buffer_sz
[buffer_type
];
1575 request_data_dma
= ioc
->diag_buffer_dma
[buffer_type
];
1576 pci_free_consistent(ioc
->pdev
, request_data_sz
,
1577 request_data
, request_data_dma
);
1578 ioc
->diag_buffer
[buffer_type
] = NULL
;
1579 ioc
->diag_buffer_status
[buffer_type
] = 0;
1584 * _ctl_diag_query - query relevant info associated with diag buffers
1585 * @arg - user space buffer containing ioctl content
1587 * The application will send only buffer_type and unique_id. Driver will
1588 * inspect unique_id first, if valid, fill in all the info. If unique_id is
1589 * 0x00, the driver will return info specified by Buffer Type.
1592 _ctl_diag_query(void __user
*arg
)
1594 struct mpt2_diag_query karg
;
1595 struct MPT2SAS_ADAPTER
*ioc
;
1600 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1601 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1602 __FILE__
, __LINE__
, __func__
);
1605 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1608 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1611 karg
.application_flags
= 0;
1612 buffer_type
= karg
.buffer_type
;
1614 if (!_ctl_diag_capability(ioc
, buffer_type
)) {
1615 printk(MPT2SAS_ERR_FMT
"%s: doesn't have capability for "
1616 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1620 if ((ioc
->diag_buffer_status
[buffer_type
] &
1621 MPT2_DIAG_BUFFER_IS_REGISTERED
) == 0) {
1622 printk(MPT2SAS_ERR_FMT
"%s: buffer_type(0x%02x) is not "
1623 "registered\n", ioc
->name
, __func__
, buffer_type
);
1627 if (karg
.unique_id
& 0xffffff00) {
1628 if (karg
.unique_id
!= ioc
->unique_id
[buffer_type
]) {
1629 printk(MPT2SAS_ERR_FMT
"%s: unique_id(0x%08x) is not "
1630 "registered\n", ioc
->name
, __func__
,
1636 request_data
= ioc
->diag_buffer
[buffer_type
];
1637 if (!request_data
) {
1638 printk(MPT2SAS_ERR_FMT
"%s: doesn't have buffer for "
1639 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1643 if (ioc
->diag_buffer_status
[buffer_type
] & MPT2_DIAG_BUFFER_IS_RELEASED
)
1644 karg
.application_flags
= (MPT2_APP_FLAGS_APP_OWNED
|
1645 MPT2_APP_FLAGS_BUFFER_VALID
);
1647 karg
.application_flags
= (MPT2_APP_FLAGS_APP_OWNED
|
1648 MPT2_APP_FLAGS_BUFFER_VALID
|
1649 MPT2_APP_FLAGS_FW_BUFFER_ACCESS
);
1651 for (i
= 0; i
< MPT2_PRODUCT_SPECIFIC_DWORDS
; i
++)
1652 karg
.product_specific
[i
] =
1653 ioc
->product_specific
[buffer_type
][i
];
1655 karg
.total_buffer_size
= ioc
->diag_buffer_sz
[buffer_type
];
1656 karg
.driver_added_buffer_size
= 0;
1657 karg
.unique_id
= ioc
->unique_id
[buffer_type
];
1658 karg
.diagnostic_flags
= ioc
->diagnostic_flags
[buffer_type
];
1660 if (copy_to_user(arg
, &karg
, sizeof(struct mpt2_diag_query
))) {
1661 printk(MPT2SAS_ERR_FMT
"%s: unable to write mpt2_diag_query "
1662 "data @ %p\n", ioc
->name
, __func__
, arg
);
1669 * _ctl_send_release - Diag Release Message
1670 * @ioc: per adapter object
1671 * @buffer_type - specifies either TRACE, SNAPSHOT, or EXTENDED
1672 * @issue_reset - specifies whether host reset is required.
1676 _ctl_send_release(struct MPT2SAS_ADAPTER
*ioc
, u8 buffer_type
, u8
*issue_reset
)
1678 Mpi2DiagReleaseRequest_t
*mpi_request
;
1679 Mpi2DiagReleaseReply_t
*mpi_reply
;
1684 unsigned long timeleft
;
1686 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1692 ioc_state
= mpt2sas_base_get_iocstate(ioc
, 1);
1693 if (ioc_state
!= MPI2_IOC_STATE_OPERATIONAL
) {
1694 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
1695 "skipping due to FAULT state\n", ioc
->name
,
1701 if (ioc
->ctl_cmds
.status
!= MPT2_CMD_NOT_USED
) {
1702 printk(MPT2SAS_ERR_FMT
"%s: ctl_cmd in use\n",
1703 ioc
->name
, __func__
);
1708 smid
= mpt2sas_base_get_smid(ioc
, ioc
->ctl_cb_idx
);
1710 printk(MPT2SAS_ERR_FMT
"%s: failed obtaining a smid\n",
1711 ioc
->name
, __func__
);
1716 ioc
->ctl_cmds
.status
= MPT2_CMD_PENDING
;
1717 memset(ioc
->ctl_cmds
.reply
, 0, ioc
->reply_sz
);
1718 mpi_request
= mpt2sas_base_get_msg_frame(ioc
, smid
);
1719 ioc
->ctl_cmds
.smid
= smid
;
1721 mpi_request
->Function
= MPI2_FUNCTION_DIAG_RELEASE
;
1722 mpi_request
->BufferType
= buffer_type
;
1723 mpi_request
->VF_ID
= 0; /* TODO */
1724 mpi_request
->VP_ID
= 0;
1726 mpt2sas_base_put_smid_default(ioc
, smid
);
1727 init_completion(&ioc
->ctl_cmds
.done
);
1728 timeleft
= wait_for_completion_timeout(&ioc
->ctl_cmds
.done
,
1729 MPT2_IOCTL_DEFAULT_TIMEOUT
*HZ
);
1731 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_COMPLETE
)) {
1732 printk(MPT2SAS_ERR_FMT
"%s: timeout\n", ioc
->name
,
1734 _debug_dump_mf(mpi_request
,
1735 sizeof(Mpi2DiagReleaseRequest_t
)/4);
1736 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_RESET
))
1742 /* process the completed Reply Message Frame */
1743 if ((ioc
->ctl_cmds
.status
& MPT2_CMD_REPLY_VALID
) == 0) {
1744 printk(MPT2SAS_ERR_FMT
"%s: no reply message\n",
1745 ioc
->name
, __func__
);
1750 mpi_reply
= ioc
->ctl_cmds
.reply
;
1751 ioc_status
= le16_to_cpu(mpi_reply
->IOCStatus
) & MPI2_IOCSTATUS_MASK
;
1753 if (ioc_status
== MPI2_IOCSTATUS_SUCCESS
) {
1754 ioc
->diag_buffer_status
[buffer_type
] |=
1755 MPT2_DIAG_BUFFER_IS_RELEASED
;
1756 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: success\n",
1757 ioc
->name
, __func__
));
1759 printk(MPT2SAS_DEBUG_FMT
"%s: ioc_status(0x%04x) "
1760 "log_info(0x%08x)\n", ioc
->name
, __func__
,
1761 ioc_status
, le32_to_cpu(mpi_reply
->IOCLogInfo
));
1766 ioc
->ctl_cmds
.status
= MPT2_CMD_NOT_USED
;
1771 * _ctl_diag_release - request to send Diag Release Message to firmware
1772 * @arg - user space buffer containing ioctl content
1773 * @state - NON_BLOCKING or BLOCKING
1775 * This allows ownership of the specified buffer to returned to the driver,
1776 * allowing an application to read the buffer without fear that firmware is
1777 * overwritting information in the buffer.
1780 _ctl_diag_release(void __user
*arg
, enum block_state state
)
1782 struct mpt2_diag_release karg
;
1783 struct MPT2SAS_ADAPTER
*ioc
;
1789 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1790 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1791 __FILE__
, __LINE__
, __func__
);
1794 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1797 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1800 buffer_type
= karg
.unique_id
& 0x000000ff;
1801 if (!_ctl_diag_capability(ioc
, buffer_type
)) {
1802 printk(MPT2SAS_ERR_FMT
"%s: doesn't have capability for "
1803 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1807 if ((ioc
->diag_buffer_status
[buffer_type
] &
1808 MPT2_DIAG_BUFFER_IS_REGISTERED
) == 0) {
1809 printk(MPT2SAS_ERR_FMT
"%s: buffer_type(0x%02x) is not "
1810 "registered\n", ioc
->name
, __func__
, buffer_type
);
1814 if (karg
.unique_id
!= ioc
->unique_id
[buffer_type
]) {
1815 printk(MPT2SAS_ERR_FMT
"%s: unique_id(0x%08x) is not "
1816 "registered\n", ioc
->name
, __func__
, karg
.unique_id
);
1820 if (ioc
->diag_buffer_status
[buffer_type
] &
1821 MPT2_DIAG_BUFFER_IS_RELEASED
) {
1822 printk(MPT2SAS_ERR_FMT
"%s: buffer_type(0x%02x) "
1823 "is already released\n", ioc
->name
, __func__
,
1828 request_data
= ioc
->diag_buffer
[buffer_type
];
1830 if (!request_data
) {
1831 printk(MPT2SAS_ERR_FMT
"%s: doesn't have memory allocated for "
1832 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1836 /* buffers were released by due to host reset */
1837 if ((ioc
->diag_buffer_status
[buffer_type
] &
1838 MPT2_DIAG_BUFFER_IS_DIAG_RESET
)) {
1839 ioc
->diag_buffer_status
[buffer_type
] |=
1840 MPT2_DIAG_BUFFER_IS_RELEASED
;
1841 ioc
->diag_buffer_status
[buffer_type
] &=
1842 ~MPT2_DIAG_BUFFER_IS_DIAG_RESET
;
1843 printk(MPT2SAS_ERR_FMT
"%s: buffer_type(0x%02x) "
1844 "was released due to host reset\n", ioc
->name
, __func__
,
1849 if (state
== NON_BLOCKING
&& !mutex_trylock(&ioc
->ctl_cmds
.mutex
))
1851 else if (mutex_lock_interruptible(&ioc
->ctl_cmds
.mutex
))
1852 return -ERESTARTSYS
;
1854 rc
= _ctl_send_release(ioc
, buffer_type
, &issue_reset
);
1857 mpt2sas_base_hard_reset_handler(ioc
, CAN_SLEEP
,
1860 mutex_unlock(&ioc
->ctl_cmds
.mutex
);
1865 * _ctl_diag_read_buffer - request for copy of the diag buffer
1866 * @arg - user space buffer containing ioctl content
1867 * @state - NON_BLOCKING or BLOCKING
1870 _ctl_diag_read_buffer(void __user
*arg
, enum block_state state
)
1872 struct mpt2_diag_read_buffer karg
;
1873 struct mpt2_diag_read_buffer __user
*uarg
= arg
;
1874 struct MPT2SAS_ADAPTER
*ioc
;
1875 void *request_data
, *diag_data
;
1876 Mpi2DiagBufferPostRequest_t
*mpi_request
;
1877 Mpi2DiagBufferPostReply_t
*mpi_reply
;
1880 unsigned long timeleft
;
1885 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
1886 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
1887 __FILE__
, __LINE__
, __func__
);
1890 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
1893 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s\n", ioc
->name
,
1896 buffer_type
= karg
.unique_id
& 0x000000ff;
1897 if (!_ctl_diag_capability(ioc
, buffer_type
)) {
1898 printk(MPT2SAS_ERR_FMT
"%s: doesn't have capability for "
1899 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1903 if (karg
.unique_id
!= ioc
->unique_id
[buffer_type
]) {
1904 printk(MPT2SAS_ERR_FMT
"%s: unique_id(0x%08x) is not "
1905 "registered\n", ioc
->name
, __func__
, karg
.unique_id
);
1909 request_data
= ioc
->diag_buffer
[buffer_type
];
1910 if (!request_data
) {
1911 printk(MPT2SAS_ERR_FMT
"%s: doesn't have buffer for "
1912 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
);
1916 if ((karg
.starting_offset
% 4) || (karg
.bytes_to_read
% 4)) {
1917 printk(MPT2SAS_ERR_FMT
"%s: either the starting_offset "
1918 "or bytes_to_read are not 4 byte aligned\n", ioc
->name
,
1923 diag_data
= (void *)(request_data
+ karg
.starting_offset
);
1924 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: diag_buffer(%p), "
1925 "offset(%d), sz(%d)\n", ioc
->name
, __func__
,
1926 diag_data
, karg
.starting_offset
, karg
.bytes_to_read
));
1928 if (copy_to_user((void __user
*)uarg
->diagnostic_data
,
1929 diag_data
, karg
.bytes_to_read
)) {
1930 printk(MPT2SAS_ERR_FMT
"%s: Unable to write "
1931 "mpt_diag_read_buffer_t data @ %p\n", ioc
->name
,
1932 __func__
, diag_data
);
1936 if ((karg
.flags
& MPT2_FLAGS_REREGISTER
) == 0)
1939 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: Reregister "
1940 "buffer_type(0x%02x)\n", ioc
->name
, __func__
, buffer_type
));
1941 if ((ioc
->diag_buffer_status
[buffer_type
] &
1942 MPT2_DIAG_BUFFER_IS_RELEASED
) == 0) {
1943 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: "
1944 "buffer_type(0x%02x) is still registered\n", ioc
->name
,
1945 __func__
, buffer_type
));
1948 /* Get a free request frame and save the message context.
1950 if (state
== NON_BLOCKING
&& !mutex_trylock(&ioc
->ctl_cmds
.mutex
))
1952 else if (mutex_lock_interruptible(&ioc
->ctl_cmds
.mutex
))
1953 return -ERESTARTSYS
;
1955 if (ioc
->ctl_cmds
.status
!= MPT2_CMD_NOT_USED
) {
1956 printk(MPT2SAS_ERR_FMT
"%s: ctl_cmd in use\n",
1957 ioc
->name
, __func__
);
1962 smid
= mpt2sas_base_get_smid(ioc
, ioc
->ctl_cb_idx
);
1964 printk(MPT2SAS_ERR_FMT
"%s: failed obtaining a smid\n",
1965 ioc
->name
, __func__
);
1971 ioc
->ctl_cmds
.status
= MPT2_CMD_PENDING
;
1972 memset(ioc
->ctl_cmds
.reply
, 0, ioc
->reply_sz
);
1973 mpi_request
= mpt2sas_base_get_msg_frame(ioc
, smid
);
1974 ioc
->ctl_cmds
.smid
= smid
;
1976 mpi_request
->Function
= MPI2_FUNCTION_DIAG_BUFFER_POST
;
1977 mpi_request
->BufferType
= buffer_type
;
1978 mpi_request
->BufferLength
=
1979 cpu_to_le32(ioc
->diag_buffer_sz
[buffer_type
]);
1980 mpi_request
->BufferAddress
=
1981 cpu_to_le64(ioc
->diag_buffer_dma
[buffer_type
]);
1982 for (i
= 0; i
< MPT2_PRODUCT_SPECIFIC_DWORDS
; i
++)
1983 mpi_request
->ProductSpecific
[i
] =
1984 cpu_to_le32(ioc
->product_specific
[buffer_type
][i
]);
1985 mpi_request
->VF_ID
= 0; /* TODO */
1986 mpi_request
->VP_ID
= 0;
1988 mpt2sas_base_put_smid_default(ioc
, smid
);
1989 init_completion(&ioc
->ctl_cmds
.done
);
1990 timeleft
= wait_for_completion_timeout(&ioc
->ctl_cmds
.done
,
1991 MPT2_IOCTL_DEFAULT_TIMEOUT
*HZ
);
1993 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_COMPLETE
)) {
1994 printk(MPT2SAS_ERR_FMT
"%s: timeout\n", ioc
->name
,
1996 _debug_dump_mf(mpi_request
,
1997 sizeof(Mpi2DiagBufferPostRequest_t
)/4);
1998 if (!(ioc
->ctl_cmds
.status
& MPT2_CMD_RESET
))
2000 goto issue_host_reset
;
2003 /* process the completed Reply Message Frame */
2004 if ((ioc
->ctl_cmds
.status
& MPT2_CMD_REPLY_VALID
) == 0) {
2005 printk(MPT2SAS_ERR_FMT
"%s: no reply message\n",
2006 ioc
->name
, __func__
);
2011 mpi_reply
= ioc
->ctl_cmds
.reply
;
2012 ioc_status
= le16_to_cpu(mpi_reply
->IOCStatus
) & MPI2_IOCSTATUS_MASK
;
2014 if (ioc_status
== MPI2_IOCSTATUS_SUCCESS
) {
2015 ioc
->diag_buffer_status
[buffer_type
] |=
2016 MPT2_DIAG_BUFFER_IS_REGISTERED
;
2017 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
"%s: success\n",
2018 ioc
->name
, __func__
));
2020 printk(MPT2SAS_DEBUG_FMT
"%s: ioc_status(0x%04x) "
2021 "log_info(0x%08x)\n", ioc
->name
, __func__
,
2022 ioc_status
, le32_to_cpu(mpi_reply
->IOCLogInfo
));
2028 mpt2sas_base_hard_reset_handler(ioc
, CAN_SLEEP
,
2033 ioc
->ctl_cmds
.status
= MPT2_CMD_NOT_USED
;
2034 mutex_unlock(&ioc
->ctl_cmds
.mutex
);
2039 * _ctl_ioctl_main - main ioctl entry point
2040 * @file - (struct file)
2041 * @cmd - ioctl opcode
2045 _ctl_ioctl_main(struct file
*file
, unsigned int cmd
, void __user
*arg
)
2047 enum block_state state
;
2050 state
= (file
->f_flags
& O_NONBLOCK
) ? NON_BLOCKING
:
2055 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_ioctl_iocinfo
))
2056 ret
= _ctl_getiocinfo(arg
);
2060 struct mpt2_ioctl_command karg
;
2061 struct mpt2_ioctl_command __user
*uarg
;
2062 struct MPT2SAS_ADAPTER
*ioc
;
2064 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
2065 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
2066 __FILE__
, __LINE__
, __func__
);
2070 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 ||
2074 if (ioc
->shost_recovery
)
2077 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_ioctl_command
)) {
2079 ret
= _ctl_do_mpt_command(ioc
, karg
, &uarg
->mf
, state
);
2083 case MPT2EVENTQUERY
:
2084 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_ioctl_eventquery
))
2085 ret
= _ctl_eventquery(arg
);
2087 case MPT2EVENTENABLE
:
2088 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_ioctl_eventenable
))
2089 ret
= _ctl_eventenable(arg
);
2091 case MPT2EVENTREPORT
:
2092 ret
= _ctl_eventreport(arg
);
2095 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_ioctl_diag_reset
))
2096 ret
= _ctl_do_reset(arg
);
2098 case MPT2BTDHMAPPING
:
2099 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_ioctl_btdh_mapping
))
2100 ret
= _ctl_btdh_mapping(arg
);
2102 case MPT2DIAGREGISTER
:
2103 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_diag_register
))
2104 ret
= _ctl_diag_register(arg
, state
);
2106 case MPT2DIAGUNREGISTER
:
2107 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_diag_unregister
))
2108 ret
= _ctl_diag_unregister(arg
);
2111 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_diag_query
))
2112 ret
= _ctl_diag_query(arg
);
2114 case MPT2DIAGRELEASE
:
2115 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_diag_release
))
2116 ret
= _ctl_diag_release(arg
, state
);
2118 case MPT2DIAGREADBUFFER
:
2119 if (_IOC_SIZE(cmd
) == sizeof(struct mpt2_diag_read_buffer
))
2120 ret
= _ctl_diag_read_buffer(arg
, state
);
2124 struct mpt2_ioctl_command karg
;
2125 struct MPT2SAS_ADAPTER
*ioc
;
2127 if (copy_from_user(&karg
, arg
, sizeof(karg
))) {
2128 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
2129 __FILE__
, __LINE__
, __func__
);
2133 if (_ctl_verify_adapter(karg
.hdr
.ioc_number
, &ioc
) == -1 ||
2137 dctlprintk(ioc
, printk(MPT2SAS_DEBUG_FMT
2138 "unsupported ioctl opcode(0x%08x)\n", ioc
->name
, cmd
));
2146 * _ctl_ioctl - main ioctl entry point (unlocked)
2147 * @file - (struct file)
2148 * @cmd - ioctl opcode
2152 _ctl_ioctl(struct file
*file
, unsigned int cmd
, unsigned long arg
)
2157 ret
= _ctl_ioctl_main(file
, cmd
, (void __user
*)arg
);
2162 #ifdef CONFIG_COMPAT
2164 * _ctl_compat_mpt_command - convert 32bit pointers to 64bit.
2165 * @file - (struct file)
2166 * @cmd - ioctl opcode
2167 * @arg - (struct mpt2_ioctl_command32)
2169 * MPT2COMMAND32 - Handle 32bit applications running on 64bit os.
2172 _ctl_compat_mpt_command(struct file
*file
, unsigned cmd
, unsigned long arg
)
2174 struct mpt2_ioctl_command32 karg32
;
2175 struct mpt2_ioctl_command32 __user
*uarg
;
2176 struct mpt2_ioctl_command karg
;
2177 struct MPT2SAS_ADAPTER
*ioc
;
2178 enum block_state state
;
2180 if (_IOC_SIZE(cmd
) != sizeof(struct mpt2_ioctl_command32
))
2183 uarg
= (struct mpt2_ioctl_command32 __user
*) arg
;
2185 if (copy_from_user(&karg32
, (char __user
*)arg
, sizeof(karg32
))) {
2186 printk(KERN_ERR
"failure at %s:%d/%s()!\n",
2187 __FILE__
, __LINE__
, __func__
);
2190 if (_ctl_verify_adapter(karg32
.hdr
.ioc_number
, &ioc
) == -1 || !ioc
)
2193 if (ioc
->shost_recovery
)
2196 memset(&karg
, 0, sizeof(struct mpt2_ioctl_command
));
2197 karg
.hdr
.ioc_number
= karg32
.hdr
.ioc_number
;
2198 karg
.hdr
.port_number
= karg32
.hdr
.port_number
;
2199 karg
.hdr
.max_data_size
= karg32
.hdr
.max_data_size
;
2200 karg
.timeout
= karg32
.timeout
;
2201 karg
.max_reply_bytes
= karg32
.max_reply_bytes
;
2202 karg
.data_in_size
= karg32
.data_in_size
;
2203 karg
.data_out_size
= karg32
.data_out_size
;
2204 karg
.max_sense_bytes
= karg32
.max_sense_bytes
;
2205 karg
.data_sge_offset
= karg32
.data_sge_offset
;
2206 karg
.reply_frame_buf_ptr
= compat_ptr(karg32
.reply_frame_buf_ptr
);
2207 karg
.data_in_buf_ptr
= compat_ptr(karg32
.data_in_buf_ptr
);
2208 karg
.data_out_buf_ptr
= compat_ptr(karg32
.data_out_buf_ptr
);
2209 karg
.sense_data_ptr
= compat_ptr(karg32
.sense_data_ptr
);
2210 state
= (file
->f_flags
& O_NONBLOCK
) ? NON_BLOCKING
: BLOCKING
;
2211 return _ctl_do_mpt_command(ioc
, karg
, &uarg
->mf
, state
);
2215 * _ctl_ioctl_compat - main ioctl entry point (compat)
2220 * This routine handles 32 bit applications in 64bit os.
2223 _ctl_ioctl_compat(struct file
*file
, unsigned cmd
, unsigned long arg
)
2228 if (cmd
== MPT2COMMAND32
)
2229 ret
= _ctl_compat_mpt_command(file
, cmd
, arg
);
2231 ret
= _ctl_ioctl_main(file
, cmd
, (void __user
*)arg
);
2237 /* scsi host attributes */
2240 * _ctl_version_fw_show - firmware version
2241 * @cdev - pointer to embedded class device
2242 * @buf - the buffer returned
2244 * A sysfs 'read-only' shost attribute.
2247 _ctl_version_fw_show(struct device
*cdev
, struct device_attribute
*attr
,
2250 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2251 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2253 return snprintf(buf
, PAGE_SIZE
, "%02d.%02d.%02d.%02d\n",
2254 (ioc
->facts
.FWVersion
.Word
& 0xFF000000) >> 24,
2255 (ioc
->facts
.FWVersion
.Word
& 0x00FF0000) >> 16,
2256 (ioc
->facts
.FWVersion
.Word
& 0x0000FF00) >> 8,
2257 ioc
->facts
.FWVersion
.Word
& 0x000000FF);
2259 static DEVICE_ATTR(version_fw
, S_IRUGO
, _ctl_version_fw_show
, NULL
);
2262 * _ctl_version_bios_show - bios version
2263 * @cdev - pointer to embedded class device
2264 * @buf - the buffer returned
2266 * A sysfs 'read-only' shost attribute.
2269 _ctl_version_bios_show(struct device
*cdev
, struct device_attribute
*attr
,
2272 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2273 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2275 u32 version
= le32_to_cpu(ioc
->bios_pg3
.BiosVersion
);
2277 return snprintf(buf
, PAGE_SIZE
, "%02d.%02d.%02d.%02d\n",
2278 (version
& 0xFF000000) >> 24,
2279 (version
& 0x00FF0000) >> 16,
2280 (version
& 0x0000FF00) >> 8,
2281 version
& 0x000000FF);
2283 static DEVICE_ATTR(version_bios
, S_IRUGO
, _ctl_version_bios_show
, NULL
);
2286 * _ctl_version_mpi_show - MPI (message passing interface) version
2287 * @cdev - pointer to embedded class device
2288 * @buf - the buffer returned
2290 * A sysfs 'read-only' shost attribute.
2293 _ctl_version_mpi_show(struct device
*cdev
, struct device_attribute
*attr
,
2296 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2297 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2299 return snprintf(buf
, PAGE_SIZE
, "%03x.%02x\n",
2300 ioc
->facts
.MsgVersion
, ioc
->facts
.HeaderVersion
>> 8);
2302 static DEVICE_ATTR(version_mpi
, S_IRUGO
, _ctl_version_mpi_show
, NULL
);
2305 * _ctl_version_product_show - product name
2306 * @cdev - pointer to embedded class device
2307 * @buf - the buffer returned
2309 * A sysfs 'read-only' shost attribute.
2312 _ctl_version_product_show(struct device
*cdev
, struct device_attribute
*attr
,
2315 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2316 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2318 return snprintf(buf
, 16, "%s\n", ioc
->manu_pg0
.ChipName
);
2320 static DEVICE_ATTR(version_product
, S_IRUGO
,
2321 _ctl_version_product_show
, NULL
);
2324 * _ctl_version_nvdata_persistent_show - ndvata persistent version
2325 * @cdev - pointer to embedded class device
2326 * @buf - the buffer returned
2328 * A sysfs 'read-only' shost attribute.
2331 _ctl_version_nvdata_persistent_show(struct device
*cdev
,
2332 struct device_attribute
*attr
, char *buf
)
2334 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2335 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2337 return snprintf(buf
, PAGE_SIZE
, "%02xh\n",
2338 le16_to_cpu(ioc
->iounit_pg0
.NvdataVersionPersistent
.Word
));
2340 static DEVICE_ATTR(version_nvdata_persistent
, S_IRUGO
,
2341 _ctl_version_nvdata_persistent_show
, NULL
);
2344 * _ctl_version_nvdata_default_show - nvdata default version
2345 * @cdev - pointer to embedded class device
2346 * @buf - the buffer returned
2348 * A sysfs 'read-only' shost attribute.
2351 _ctl_version_nvdata_default_show(struct device
*cdev
,
2352 struct device_attribute
*attr
, char *buf
)
2354 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2355 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2357 return snprintf(buf
, PAGE_SIZE
, "%02xh\n",
2358 le16_to_cpu(ioc
->iounit_pg0
.NvdataVersionDefault
.Word
));
2360 static DEVICE_ATTR(version_nvdata_default
, S_IRUGO
,
2361 _ctl_version_nvdata_default_show
, NULL
);
2364 * _ctl_board_name_show - board name
2365 * @cdev - pointer to embedded class device
2366 * @buf - the buffer returned
2368 * A sysfs 'read-only' shost attribute.
2371 _ctl_board_name_show(struct device
*cdev
, struct device_attribute
*attr
,
2374 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2375 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2377 return snprintf(buf
, 16, "%s\n", ioc
->manu_pg0
.BoardName
);
2379 static DEVICE_ATTR(board_name
, S_IRUGO
, _ctl_board_name_show
, NULL
);
2382 * _ctl_board_assembly_show - board assembly name
2383 * @cdev - pointer to embedded class device
2384 * @buf - the buffer returned
2386 * A sysfs 'read-only' shost attribute.
2389 _ctl_board_assembly_show(struct device
*cdev
, struct device_attribute
*attr
,
2392 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2393 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2395 return snprintf(buf
, 16, "%s\n", ioc
->manu_pg0
.BoardAssembly
);
2397 static DEVICE_ATTR(board_assembly
, S_IRUGO
,
2398 _ctl_board_assembly_show
, NULL
);
2401 * _ctl_board_tracer_show - board tracer number
2402 * @cdev - pointer to embedded class device
2403 * @buf - the buffer returned
2405 * A sysfs 'read-only' shost attribute.
2408 _ctl_board_tracer_show(struct device
*cdev
, struct device_attribute
*attr
,
2411 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2412 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2414 return snprintf(buf
, 16, "%s\n", ioc
->manu_pg0
.BoardTracerNumber
);
2416 static DEVICE_ATTR(board_tracer
, S_IRUGO
,
2417 _ctl_board_tracer_show
, NULL
);
2420 * _ctl_io_delay_show - io missing delay
2421 * @cdev - pointer to embedded class device
2422 * @buf - the buffer returned
2424 * This is for firmware implemention for deboucing device
2427 * A sysfs 'read-only' shost attribute.
2430 _ctl_io_delay_show(struct device
*cdev
, struct device_attribute
*attr
,
2433 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2434 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2436 return snprintf(buf
, PAGE_SIZE
, "%02d\n", ioc
->io_missing_delay
);
2438 static DEVICE_ATTR(io_delay
, S_IRUGO
,
2439 _ctl_io_delay_show
, NULL
);
2442 * _ctl_device_delay_show - device missing delay
2443 * @cdev - pointer to embedded class device
2444 * @buf - the buffer returned
2446 * This is for firmware implemention for deboucing device
2449 * A sysfs 'read-only' shost attribute.
2452 _ctl_device_delay_show(struct device
*cdev
, struct device_attribute
*attr
,
2455 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2456 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2458 return snprintf(buf
, PAGE_SIZE
, "%02d\n", ioc
->device_missing_delay
);
2460 static DEVICE_ATTR(device_delay
, S_IRUGO
,
2461 _ctl_device_delay_show
, NULL
);
2464 * _ctl_fw_queue_depth_show - global credits
2465 * @cdev - pointer to embedded class device
2466 * @buf - the buffer returned
2468 * This is firmware queue depth limit
2470 * A sysfs 'read-only' shost attribute.
2473 _ctl_fw_queue_depth_show(struct device
*cdev
, struct device_attribute
*attr
,
2476 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2477 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2479 return snprintf(buf
, PAGE_SIZE
, "%02d\n", ioc
->facts
.RequestCredit
);
2481 static DEVICE_ATTR(fw_queue_depth
, S_IRUGO
,
2482 _ctl_fw_queue_depth_show
, NULL
);
2485 * _ctl_sas_address_show - sas address
2486 * @cdev - pointer to embedded class device
2487 * @buf - the buffer returned
2489 * This is the controller sas address
2491 * A sysfs 'read-only' shost attribute.
2494 _ctl_host_sas_address_show(struct device
*cdev
, struct device_attribute
*attr
,
2497 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2498 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2500 return snprintf(buf
, PAGE_SIZE
, "0x%016llx\n",
2501 (unsigned long long)ioc
->sas_hba
.sas_address
);
2503 static DEVICE_ATTR(host_sas_address
, S_IRUGO
,
2504 _ctl_host_sas_address_show
, NULL
);
2507 * _ctl_logging_level_show - logging level
2508 * @cdev - pointer to embedded class device
2509 * @buf - the buffer returned
2511 * A sysfs 'read/write' shost attribute.
2514 _ctl_logging_level_show(struct device
*cdev
, struct device_attribute
*attr
,
2517 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2518 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2520 return snprintf(buf
, PAGE_SIZE
, "%08xh\n", ioc
->logging_level
);
2523 _ctl_logging_level_store(struct device
*cdev
, struct device_attribute
*attr
,
2524 const char *buf
, size_t count
)
2526 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2527 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2530 if (sscanf(buf
, "%x", &val
) != 1)
2533 ioc
->logging_level
= val
;
2534 printk(MPT2SAS_INFO_FMT
"logging_level=%08xh\n", ioc
->name
,
2535 ioc
->logging_level
);
2538 static DEVICE_ATTR(logging_level
, S_IRUGO
| S_IWUSR
,
2539 _ctl_logging_level_show
, _ctl_logging_level_store
);
2541 /* device attributes */
2543 * _ctl_fwfault_debug_show - show/store fwfault_debug
2544 * @cdev - pointer to embedded class device
2545 * @buf - the buffer returned
2547 * mpt2sas_fwfault_debug is command line option
2548 * A sysfs 'read/write' shost attribute.
2551 _ctl_fwfault_debug_show(struct device
*cdev
,
2552 struct device_attribute
*attr
, char *buf
)
2554 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2555 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2557 return snprintf(buf
, PAGE_SIZE
, "%d\n", ioc
->fwfault_debug
);
2560 _ctl_fwfault_debug_store(struct device
*cdev
,
2561 struct device_attribute
*attr
, const char *buf
, size_t count
)
2563 struct Scsi_Host
*shost
= class_to_shost(cdev
);
2564 struct MPT2SAS_ADAPTER
*ioc
= shost_priv(shost
);
2567 if (sscanf(buf
, "%d", &val
) != 1)
2570 ioc
->fwfault_debug
= val
;
2571 printk(MPT2SAS_INFO_FMT
"fwfault_debug=%d\n", ioc
->name
,
2572 ioc
->fwfault_debug
);
2575 static DEVICE_ATTR(fwfault_debug
, S_IRUGO
| S_IWUSR
,
2576 _ctl_fwfault_debug_show
, _ctl_fwfault_debug_store
);
2578 struct device_attribute
*mpt2sas_host_attrs
[] = {
2579 &dev_attr_version_fw
,
2580 &dev_attr_version_bios
,
2581 &dev_attr_version_mpi
,
2582 &dev_attr_version_product
,
2583 &dev_attr_version_nvdata_persistent
,
2584 &dev_attr_version_nvdata_default
,
2585 &dev_attr_board_name
,
2586 &dev_attr_board_assembly
,
2587 &dev_attr_board_tracer
,
2589 &dev_attr_device_delay
,
2590 &dev_attr_logging_level
,
2591 &dev_attr_fwfault_debug
,
2592 &dev_attr_fw_queue_depth
,
2593 &dev_attr_host_sas_address
,
2598 * _ctl_device_sas_address_show - sas address
2599 * @cdev - pointer to embedded class device
2600 * @buf - the buffer returned
2602 * This is the sas address for the target
2604 * A sysfs 'read-only' shost attribute.
2607 _ctl_device_sas_address_show(struct device
*dev
, struct device_attribute
*attr
,
2610 struct scsi_device
*sdev
= to_scsi_device(dev
);
2611 struct MPT2SAS_DEVICE
*sas_device_priv_data
= sdev
->hostdata
;
2613 return snprintf(buf
, PAGE_SIZE
, "0x%016llx\n",
2614 (unsigned long long)sas_device_priv_data
->sas_target
->sas_address
);
2616 static DEVICE_ATTR(sas_address
, S_IRUGO
, _ctl_device_sas_address_show
, NULL
);
2619 * _ctl_device_handle_show - device handle
2620 * @cdev - pointer to embedded class device
2621 * @buf - the buffer returned
2623 * This is the firmware assigned device handle
2625 * A sysfs 'read-only' shost attribute.
2628 _ctl_device_handle_show(struct device
*dev
, struct device_attribute
*attr
,
2631 struct scsi_device
*sdev
= to_scsi_device(dev
);
2632 struct MPT2SAS_DEVICE
*sas_device_priv_data
= sdev
->hostdata
;
2634 return snprintf(buf
, PAGE_SIZE
, "0x%04x\n",
2635 sas_device_priv_data
->sas_target
->handle
);
2637 static DEVICE_ATTR(sas_device_handle
, S_IRUGO
, _ctl_device_handle_show
, NULL
);
2639 struct device_attribute
*mpt2sas_dev_attrs
[] = {
2640 &dev_attr_sas_address
,
2641 &dev_attr_sas_device_handle
,
2645 static const struct file_operations ctl_fops
= {
2646 .owner
= THIS_MODULE
,
2647 .unlocked_ioctl
= _ctl_ioctl
,
2648 .release
= _ctl_release
,
2650 .fasync
= _ctl_fasync
,
2651 #ifdef CONFIG_COMPAT
2652 .compat_ioctl
= _ctl_ioctl_compat
,
2656 static struct miscdevice ctl_dev
= {
2657 .minor
= MPT2SAS_MINOR
,
2658 .name
= MPT2SAS_DEV_NAME
,
2663 * mpt2sas_ctl_init - main entry point for ctl.
2667 mpt2sas_ctl_init(void)
2670 if (misc_register(&ctl_dev
) < 0)
2671 printk(KERN_ERR
"%s can't register misc device [minor=%d]\n",
2672 MPT2SAS_DRIVER_NAME
, MPT2SAS_MINOR
);
2674 init_waitqueue_head(&ctl_poll_wait
);
2678 * mpt2sas_ctl_exit - exit point for ctl
2682 mpt2sas_ctl_exit(void)
2684 struct MPT2SAS_ADAPTER
*ioc
;
2687 list_for_each_entry(ioc
, &mpt2sas_ioc_list
, list
) {
2689 /* free memory associated to diag buffers */
2690 for (i
= 0; i
< MPI2_DIAG_BUF_TYPE_COUNT
; i
++) {
2691 if (!ioc
->diag_buffer
[i
])
2693 pci_free_consistent(ioc
->pdev
, ioc
->diag_buffer_sz
[i
],
2694 ioc
->diag_buffer
[i
], ioc
->diag_buffer_dma
[i
]);
2695 ioc
->diag_buffer
[i
] = NULL
;
2696 ioc
->diag_buffer_status
[i
] = 0;
2699 kfree(ioc
->event_log
);
2701 misc_deregister(&ctl_dev
);