2 * Copyright IBM Corp. 2006, 2012
3 * Author(s): Cornelia Huck <cornelia.huck@de.ibm.com>
4 * Martin Schwidefsky <schwidefsky@de.ibm.com>
5 * Ralph Wuerthner <rwuerthn@de.ibm.com>
6 * Felix Beck <felix.beck@de.ibm.com>
7 * Holger Dengler <hd@linux.vnet.ibm.com>
9 * Adjunct processor bus.
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; if not, write to the Free Software
23 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
26 #define KMSG_COMPONENT "ap"
27 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
29 #include <linux/kernel_stat.h>
30 #include <linux/module.h>
31 #include <linux/init.h>
32 #include <linux/delay.h>
33 #include <linux/err.h>
34 #include <linux/interrupt.h>
35 #include <linux/workqueue.h>
36 #include <linux/slab.h>
37 #include <linux/notifier.h>
38 #include <linux/kthread.h>
39 #include <linux/mutex.h>
40 #include <linux/suspend.h>
41 #include <asm/reset.h>
43 #include <linux/atomic.h>
45 #include <linux/hrtimer.h>
46 #include <linux/ktime.h>
47 #include <asm/facility.h>
48 #include <linux/crypto.h>
55 MODULE_AUTHOR("IBM Corporation");
56 MODULE_DESCRIPTION("Adjunct Processor Bus driver, " \
57 "Copyright IBM Corp. 2006, 2012");
58 MODULE_LICENSE("GPL");
59 MODULE_ALIAS_CRYPTO("z90crypt");
64 int ap_domain_index
= -1; /* Adjunct Processor Domain Index */
65 module_param_named(domain
, ap_domain_index
, int, S_IRUSR
|S_IRGRP
);
66 MODULE_PARM_DESC(domain
, "domain index for ap devices");
67 EXPORT_SYMBOL(ap_domain_index
);
69 static int ap_thread_flag
= 0;
70 module_param_named(poll_thread
, ap_thread_flag
, int, S_IRUSR
|S_IRGRP
);
71 MODULE_PARM_DESC(poll_thread
, "Turn on/off poll thread, default is 0 (off).");
73 static struct device
*ap_root_device
= NULL
;
74 static struct ap_config_info
*ap_configuration
;
75 static DEFINE_SPINLOCK(ap_device_list_lock
);
76 static LIST_HEAD(ap_device_list
);
77 static bool initialised
;
80 * Workqueue timer for bus rescan.
82 static struct timer_list ap_config_timer
;
83 static int ap_config_time
= AP_CONFIG_TIME
;
84 static void ap_scan_bus(struct work_struct
*);
85 static DECLARE_WORK(ap_scan_work
, ap_scan_bus
);
88 * Tasklet & timer for AP request polling and interrupts
90 static void ap_tasklet_fn(unsigned long);
91 static DECLARE_TASKLET(ap_tasklet
, ap_tasklet_fn
, 0);
92 static atomic_t ap_poll_requests
= ATOMIC_INIT(0);
93 static DECLARE_WAIT_QUEUE_HEAD(ap_poll_wait
);
94 static struct task_struct
*ap_poll_kthread
= NULL
;
95 static DEFINE_MUTEX(ap_poll_thread_mutex
);
96 static DEFINE_SPINLOCK(ap_poll_timer_lock
);
97 static struct hrtimer ap_poll_timer
;
98 /* In LPAR poll with 4kHz frequency. Poll every 250000 nanoseconds.
99 * If z/VM change to 1500000 nanoseconds to adjust to z/VM polling.*/
100 static unsigned long long poll_timeout
= 250000;
103 static int ap_suspend_flag
;
104 /* Maximum domain id */
105 static int ap_max_domain_id
;
106 /* Flag to check if domain was set through module parameter domain=. This is
107 * important when supsend and resume is done in a z/VM environment where the
108 * domain might change. */
109 static int user_set_domain
= 0;
110 static struct bus_type ap_bus_type
;
112 /* Adapter interrupt definitions */
113 static void ap_interrupt_handler(struct airq_struct
*airq
);
115 static int ap_airq_flag
;
117 static struct airq_struct ap_airq
= {
118 .handler
= ap_interrupt_handler
,
123 * ap_using_interrupts() - Returns non-zero if interrupt support is
126 static inline int ap_using_interrupts(void)
132 * ap_intructions_available() - Test if AP instructions are available.
134 * Returns 0 if the AP instructions are installed.
136 static inline int ap_instructions_available(void)
138 register unsigned long reg0
asm ("0") = AP_MKQID(0,0);
139 register unsigned long reg1
asm ("1") = -ENODEV
;
140 register unsigned long reg2
asm ("2") = 0UL;
143 " .long 0xb2af0000\n" /* PQAP(TAPQ) */
147 : "+d" (reg0
), "+d" (reg1
), "+d" (reg2
) : : "cc" );
152 * ap_interrupts_available(): Test if AP interrupts are available.
154 * Returns 1 if AP interrupts are available.
156 static int ap_interrupts_available(void)
158 return test_facility(65);
162 * ap_configuration_available(): Test if AP configuration
163 * information is available.
165 * Returns 1 if AP configuration information is available.
167 static int ap_configuration_available(void)
169 return test_facility(12);
173 * ap_test_queue(): Test adjunct processor queue.
174 * @qid: The AP queue number
175 * @info: Pointer to queue descriptor
177 * Returns AP queue status structure.
179 static inline struct ap_queue_status
180 ap_test_queue(ap_qid_t qid
, unsigned long *info
)
182 register unsigned long reg0
asm ("0") = qid
;
183 register struct ap_queue_status reg1
asm ("1");
184 register unsigned long reg2
asm ("2") = 0UL;
186 if (test_facility(15))
187 reg0
|= 1UL << 23; /* set APFT T bit*/
188 asm volatile(".long 0xb2af0000" /* PQAP(TAPQ) */
189 : "+d" (reg0
), "=d" (reg1
), "+d" (reg2
) : : "cc");
196 * ap_reset_queue(): Reset adjunct processor queue.
197 * @qid: The AP queue number
199 * Returns AP queue status structure.
201 static inline struct ap_queue_status
ap_reset_queue(ap_qid_t qid
)
203 register unsigned long reg0
asm ("0") = qid
| 0x01000000UL
;
204 register struct ap_queue_status reg1
asm ("1");
205 register unsigned long reg2
asm ("2") = 0UL;
208 ".long 0xb2af0000" /* PQAP(RAPQ) */
209 : "+d" (reg0
), "=d" (reg1
), "+d" (reg2
) : : "cc");
214 * ap_queue_interruption_control(): Enable interruption for a specific AP.
215 * @qid: The AP queue number
216 * @ind: The notification indicator byte
218 * Returns AP queue status.
220 static inline struct ap_queue_status
221 ap_queue_interruption_control(ap_qid_t qid
, void *ind
)
223 register unsigned long reg0
asm ("0") = qid
| 0x03000000UL
;
224 register unsigned long reg1_in
asm ("1") = 0x0000800000000000UL
| AP_ISC
;
225 register struct ap_queue_status reg1_out
asm ("1");
226 register void *reg2
asm ("2") = ind
;
228 ".long 0xb2af0000" /* PQAP(AQIC) */
229 : "+d" (reg0
), "+d" (reg1_in
), "=d" (reg1_out
), "+d" (reg2
)
236 * ap_query_configuration(): Get AP configuration data
238 * Returns 0 on success, or -EOPNOTSUPP.
240 static inline int ap_query_configuration(void)
242 register unsigned long reg0
asm ("0") = 0x04000000UL
;
243 register unsigned long reg1
asm ("1") = -EINVAL
;
244 register void *reg2
asm ("2") = (void *) ap_configuration
;
246 if (!ap_configuration
)
249 ".long 0xb2af0000\n" /* PQAP(QCI) */
253 : "+d" (reg0
), "+d" (reg1
), "+d" (reg2
)
261 * ap_init_configuration(): Allocate and query configuration array.
263 static void ap_init_configuration(void)
265 if (!ap_configuration_available())
268 ap_configuration
= kzalloc(sizeof(*ap_configuration
), GFP_KERNEL
);
269 if (!ap_configuration
)
271 if (ap_query_configuration() != 0) {
272 kfree(ap_configuration
);
273 ap_configuration
= NULL
;
279 * ap_test_config(): helper function to extract the nrth bit
280 * within the unsigned int array field.
282 static inline int ap_test_config(unsigned int *field
, unsigned int nr
)
284 return ap_test_bit((field
+ (nr
>> 5)), (nr
& 0x1f));
288 * ap_test_config_card_id(): Test, whether an AP card ID is configured.
291 * Returns 0 if the card is not configured
292 * 1 if the card is configured or
293 * if the configuration information is not available
295 static inline int ap_test_config_card_id(unsigned int id
)
297 if (!ap_configuration
) /* QCI not supported */
299 return ap_test_config(ap_configuration
->apm
, id
);
303 * ap_test_config_domain(): Test, whether an AP usage domain is configured.
304 * @domain AP usage domain ID
306 * Returns 0 if the usage domain is not configured
307 * 1 if the usage domain is configured or
308 * if the configuration information is not available
310 static inline int ap_test_config_domain(unsigned int domain
)
312 if (!ap_configuration
) /* QCI not supported */
314 return ap_test_config(ap_configuration
->aqm
, domain
);
318 * ap_queue_enable_interruption(): Enable interruption on an AP.
319 * @qid: The AP queue number
320 * @ind: the notification indicator byte
322 * Enables interruption on AP queue via ap_queue_interruption_control(). Based
323 * on the return value it waits a while and tests the AP queue if interrupts
324 * have been switched on using ap_test_queue().
326 static int ap_queue_enable_interruption(struct ap_device
*ap_dev
, void *ind
)
328 struct ap_queue_status status
;
330 status
= ap_queue_interruption_control(ap_dev
->qid
, ind
);
331 switch (status
.response_code
) {
332 case AP_RESPONSE_NORMAL
:
333 case AP_RESPONSE_OTHERWISE_CHANGED
:
335 case AP_RESPONSE_Q_NOT_AVAIL
:
336 case AP_RESPONSE_DECONFIGURED
:
337 case AP_RESPONSE_CHECKSTOPPED
:
338 case AP_RESPONSE_INVALID_ADDRESS
:
339 pr_err("Registering adapter interrupts for AP %d failed\n",
340 AP_QID_DEVICE(ap_dev
->qid
));
342 case AP_RESPONSE_RESET_IN_PROGRESS
:
343 case AP_RESPONSE_BUSY
:
350 * __ap_send(): Send message to adjunct processor queue.
351 * @qid: The AP queue number
352 * @psmid: The program supplied message identifier
353 * @msg: The message text
354 * @length: The message length
355 * @special: Special Bit
357 * Returns AP queue status structure.
358 * Condition code 1 on NQAP can't happen because the L bit is 1.
359 * Condition code 2 on NQAP also means the send is incomplete,
360 * because a segment boundary was reached. The NQAP is repeated.
362 static inline struct ap_queue_status
363 __ap_send(ap_qid_t qid
, unsigned long long psmid
, void *msg
, size_t length
,
364 unsigned int special
)
366 typedef struct { char _
[length
]; } msgblock
;
367 register unsigned long reg0
asm ("0") = qid
| 0x40000000UL
;
368 register struct ap_queue_status reg1
asm ("1");
369 register unsigned long reg2
asm ("2") = (unsigned long) msg
;
370 register unsigned long reg3
asm ("3") = (unsigned long) length
;
371 register unsigned long reg4
asm ("4") = (unsigned int) (psmid
>> 32);
372 register unsigned long reg5
asm ("5") = psmid
& 0xffffffff;
378 "0: .long 0xb2ad0042\n" /* NQAP */
380 : "+d" (reg0
), "=d" (reg1
), "+d" (reg2
), "+d" (reg3
)
381 : "d" (reg4
), "d" (reg5
), "m" (*(msgblock
*) msg
)
386 int ap_send(ap_qid_t qid
, unsigned long long psmid
, void *msg
, size_t length
)
388 struct ap_queue_status status
;
390 status
= __ap_send(qid
, psmid
, msg
, length
, 0);
391 switch (status
.response_code
) {
392 case AP_RESPONSE_NORMAL
:
394 case AP_RESPONSE_Q_FULL
:
395 case AP_RESPONSE_RESET_IN_PROGRESS
:
397 case AP_RESPONSE_REQ_FAC_NOT_INST
:
399 default: /* Device is gone. */
403 EXPORT_SYMBOL(ap_send
);
406 * __ap_recv(): Receive message from adjunct processor queue.
407 * @qid: The AP queue number
408 * @psmid: Pointer to program supplied message identifier
409 * @msg: The message text
410 * @length: The message length
412 * Returns AP queue status structure.
413 * Condition code 1 on DQAP means the receive has taken place
414 * but only partially. The response is incomplete, hence the
416 * Condition code 2 on DQAP also means the receive is incomplete,
417 * this time because a segment boundary was reached. Again, the
419 * Note that gpr2 is used by the DQAP instruction to keep track of
420 * any 'residual' length, in case the instruction gets interrupted.
421 * Hence it gets zeroed before the instruction.
423 static inline struct ap_queue_status
424 __ap_recv(ap_qid_t qid
, unsigned long long *psmid
, void *msg
, size_t length
)
426 typedef struct { char _
[length
]; } msgblock
;
427 register unsigned long reg0
asm("0") = qid
| 0x80000000UL
;
428 register struct ap_queue_status reg1
asm ("1");
429 register unsigned long reg2
asm("2") = 0UL;
430 register unsigned long reg4
asm("4") = (unsigned long) msg
;
431 register unsigned long reg5
asm("5") = (unsigned long) length
;
432 register unsigned long reg6
asm("6") = 0UL;
433 register unsigned long reg7
asm("7") = 0UL;
437 "0: .long 0xb2ae0064\n" /* DQAP */
439 : "+d" (reg0
), "=d" (reg1
), "+d" (reg2
),
440 "+d" (reg4
), "+d" (reg5
), "+d" (reg6
), "+d" (reg7
),
441 "=m" (*(msgblock
*) msg
) : : "cc" );
442 *psmid
= (((unsigned long long) reg6
) << 32) + reg7
;
446 int ap_recv(ap_qid_t qid
, unsigned long long *psmid
, void *msg
, size_t length
)
448 struct ap_queue_status status
;
450 status
= __ap_recv(qid
, psmid
, msg
, length
);
451 switch (status
.response_code
) {
452 case AP_RESPONSE_NORMAL
:
454 case AP_RESPONSE_NO_PENDING_REPLY
:
455 if (status
.queue_empty
)
458 case AP_RESPONSE_RESET_IN_PROGRESS
:
464 EXPORT_SYMBOL(ap_recv
);
467 * ap_query_queue(): Check if an AP queue is available.
468 * @qid: The AP queue number
469 * @queue_depth: Pointer to queue depth value
470 * @device_type: Pointer to device type value
471 * @facilities: Pointer to facility indicator
473 static int ap_query_queue(ap_qid_t qid
, int *queue_depth
, int *device_type
,
474 unsigned int *facilities
)
476 struct ap_queue_status status
;
480 if (!ap_test_config_card_id(AP_QID_DEVICE(qid
)))
483 status
= ap_test_queue(qid
, &info
);
484 switch (status
.response_code
) {
485 case AP_RESPONSE_NORMAL
:
486 *queue_depth
= (int)(info
& 0xff);
487 *device_type
= (int)((info
>> 24) & 0xff);
488 *facilities
= (unsigned int)(info
>> 32);
489 /* Update maximum domain id */
490 nd
= (info
>> 16) & 0xff;
491 if ((info
& (1UL << 57)) && nd
> 0)
492 ap_max_domain_id
= nd
;
494 case AP_RESPONSE_Q_NOT_AVAIL
:
495 case AP_RESPONSE_DECONFIGURED
:
496 case AP_RESPONSE_CHECKSTOPPED
:
497 case AP_RESPONSE_INVALID_ADDRESS
:
499 case AP_RESPONSE_RESET_IN_PROGRESS
:
500 case AP_RESPONSE_OTHERWISE_CHANGED
:
501 case AP_RESPONSE_BUSY
:
508 /* State machine definitions and helpers */
510 static void ap_sm_wait(enum ap_wait wait
)
516 case AP_WAIT_INTERRUPT
:
517 if (ap_using_interrupts())
519 if (ap_poll_kthread
) {
520 wake_up(&ap_poll_wait
);
524 case AP_WAIT_TIMEOUT
:
525 spin_lock_bh(&ap_poll_timer_lock
);
526 if (!hrtimer_is_queued(&ap_poll_timer
)) {
527 hr_time
= ktime_set(0, poll_timeout
);
528 hrtimer_forward_now(&ap_poll_timer
, hr_time
);
529 hrtimer_restart(&ap_poll_timer
);
531 spin_unlock_bh(&ap_poll_timer_lock
);
539 static enum ap_wait
ap_sm_nop(struct ap_device
*ap_dev
)
545 * ap_sm_recv(): Receive pending reply messages from an AP device but do
546 * not change the state of the device.
547 * @ap_dev: pointer to the AP device
549 * Returns AP_WAIT_NONE, AP_WAIT_AGAIN, or AP_WAIT_INTERRUPT
551 static struct ap_queue_status
ap_sm_recv(struct ap_device
*ap_dev
)
553 struct ap_queue_status status
;
554 struct ap_message
*ap_msg
;
556 status
= __ap_recv(ap_dev
->qid
, &ap_dev
->reply
->psmid
,
557 ap_dev
->reply
->message
, ap_dev
->reply
->length
);
558 switch (status
.response_code
) {
559 case AP_RESPONSE_NORMAL
:
560 atomic_dec(&ap_poll_requests
);
561 ap_dev
->queue_count
--;
562 if (ap_dev
->queue_count
> 0)
563 mod_timer(&ap_dev
->timeout
,
564 jiffies
+ ap_dev
->drv
->request_timeout
);
565 list_for_each_entry(ap_msg
, &ap_dev
->pendingq
, list
) {
566 if (ap_msg
->psmid
!= ap_dev
->reply
->psmid
)
568 list_del_init(&ap_msg
->list
);
569 ap_dev
->pendingq_count
--;
570 ap_msg
->receive(ap_dev
, ap_msg
, ap_dev
->reply
);
573 case AP_RESPONSE_NO_PENDING_REPLY
:
574 if (!status
.queue_empty
|| ap_dev
->queue_count
<= 0)
576 /* The card shouldn't forget requests but who knows. */
577 atomic_sub(ap_dev
->queue_count
, &ap_poll_requests
);
578 ap_dev
->queue_count
= 0;
579 list_splice_init(&ap_dev
->pendingq
, &ap_dev
->requestq
);
580 ap_dev
->requestq_count
+= ap_dev
->pendingq_count
;
581 ap_dev
->pendingq_count
= 0;
590 * ap_sm_read(): Receive pending reply messages from an AP device.
591 * @ap_dev: pointer to the AP device
593 * Returns AP_WAIT_NONE, AP_WAIT_AGAIN, or AP_WAIT_INTERRUPT
595 static enum ap_wait
ap_sm_read(struct ap_device
*ap_dev
)
597 struct ap_queue_status status
;
599 status
= ap_sm_recv(ap_dev
);
600 switch (status
.response_code
) {
601 case AP_RESPONSE_NORMAL
:
602 if (ap_dev
->queue_count
> 0)
603 return AP_WAIT_AGAIN
;
604 ap_dev
->state
= AP_STATE_IDLE
;
606 case AP_RESPONSE_NO_PENDING_REPLY
:
607 if (ap_dev
->queue_count
> 0)
608 return AP_WAIT_INTERRUPT
;
609 ap_dev
->state
= AP_STATE_IDLE
;
612 ap_dev
->state
= AP_STATE_BORKED
;
618 * ap_sm_write(): Send messages from the request queue to an AP device.
619 * @ap_dev: pointer to the AP device
621 * Returns AP_WAIT_NONE, AP_WAIT_AGAIN, or AP_WAIT_INTERRUPT
623 static enum ap_wait
ap_sm_write(struct ap_device
*ap_dev
)
625 struct ap_queue_status status
;
626 struct ap_message
*ap_msg
;
628 if (ap_dev
->requestq_count
<= 0)
630 /* Start the next request on the queue. */
631 ap_msg
= list_entry(ap_dev
->requestq
.next
, struct ap_message
, list
);
632 status
= __ap_send(ap_dev
->qid
, ap_msg
->psmid
,
633 ap_msg
->message
, ap_msg
->length
, ap_msg
->special
);
634 switch (status
.response_code
) {
635 case AP_RESPONSE_NORMAL
:
636 atomic_inc(&ap_poll_requests
);
637 ap_dev
->queue_count
++;
638 if (ap_dev
->queue_count
== 1)
639 mod_timer(&ap_dev
->timeout
,
640 jiffies
+ ap_dev
->drv
->request_timeout
);
641 list_move_tail(&ap_msg
->list
, &ap_dev
->pendingq
);
642 ap_dev
->requestq_count
--;
643 ap_dev
->pendingq_count
++;
644 if (ap_dev
->queue_count
< ap_dev
->queue_depth
) {
645 ap_dev
->state
= AP_STATE_WORKING
;
646 return AP_WAIT_AGAIN
;
649 case AP_RESPONSE_Q_FULL
:
650 ap_dev
->state
= AP_STATE_QUEUE_FULL
;
651 return AP_WAIT_INTERRUPT
;
652 case AP_RESPONSE_RESET_IN_PROGRESS
:
653 ap_dev
->state
= AP_STATE_RESET_WAIT
;
654 return AP_WAIT_TIMEOUT
;
655 case AP_RESPONSE_MESSAGE_TOO_BIG
:
656 case AP_RESPONSE_REQ_FAC_NOT_INST
:
657 list_del_init(&ap_msg
->list
);
658 ap_dev
->requestq_count
--;
659 ap_msg
->rc
= -EINVAL
;
660 ap_msg
->receive(ap_dev
, ap_msg
, NULL
);
661 return AP_WAIT_AGAIN
;
663 ap_dev
->state
= AP_STATE_BORKED
;
669 * ap_sm_read_write(): Send and receive messages to/from an AP device.
670 * @ap_dev: pointer to the AP device
672 * Returns AP_WAIT_NONE, AP_WAIT_AGAIN, or AP_WAIT_INTERRUPT
674 static enum ap_wait
ap_sm_read_write(struct ap_device
*ap_dev
)
676 return min(ap_sm_read(ap_dev
), ap_sm_write(ap_dev
));
680 * ap_sm_reset(): Reset an AP queue.
681 * @qid: The AP queue number
683 * Submit the Reset command to an AP queue.
685 static enum ap_wait
ap_sm_reset(struct ap_device
*ap_dev
)
687 struct ap_queue_status status
;
689 status
= ap_reset_queue(ap_dev
->qid
);
690 switch (status
.response_code
) {
691 case AP_RESPONSE_NORMAL
:
692 case AP_RESPONSE_RESET_IN_PROGRESS
:
693 ap_dev
->state
= AP_STATE_RESET_WAIT
;
694 ap_dev
->interrupt
= AP_INTR_DISABLED
;
695 return AP_WAIT_TIMEOUT
;
696 case AP_RESPONSE_BUSY
:
697 return AP_WAIT_TIMEOUT
;
698 case AP_RESPONSE_Q_NOT_AVAIL
:
699 case AP_RESPONSE_DECONFIGURED
:
700 case AP_RESPONSE_CHECKSTOPPED
:
702 ap_dev
->state
= AP_STATE_BORKED
;
708 * ap_sm_reset_wait(): Test queue for completion of the reset operation
709 * @ap_dev: pointer to the AP device
711 * Returns AP_POLL_IMMEDIATELY, AP_POLL_AFTER_TIMEROUT or 0.
713 static enum ap_wait
ap_sm_reset_wait(struct ap_device
*ap_dev
)
715 struct ap_queue_status status
;
718 if (ap_dev
->queue_count
> 0)
719 /* Try to read a completed message and get the status */
720 status
= ap_sm_recv(ap_dev
);
722 /* Get the status with TAPQ */
723 status
= ap_test_queue(ap_dev
->qid
, &info
);
725 switch (status
.response_code
) {
726 case AP_RESPONSE_NORMAL
:
727 if (ap_using_interrupts() &&
728 ap_queue_enable_interruption(ap_dev
,
729 ap_airq
.lsi_ptr
) == 0)
730 ap_dev
->state
= AP_STATE_SETIRQ_WAIT
;
732 ap_dev
->state
= (ap_dev
->queue_count
> 0) ?
733 AP_STATE_WORKING
: AP_STATE_IDLE
;
734 return AP_WAIT_AGAIN
;
735 case AP_RESPONSE_BUSY
:
736 case AP_RESPONSE_RESET_IN_PROGRESS
:
737 return AP_WAIT_TIMEOUT
;
738 case AP_RESPONSE_Q_NOT_AVAIL
:
739 case AP_RESPONSE_DECONFIGURED
:
740 case AP_RESPONSE_CHECKSTOPPED
:
742 ap_dev
->state
= AP_STATE_BORKED
;
748 * ap_sm_setirq_wait(): Test queue for completion of the irq enablement
749 * @ap_dev: pointer to the AP device
751 * Returns AP_POLL_IMMEDIATELY, AP_POLL_AFTER_TIMEROUT or 0.
753 static enum ap_wait
ap_sm_setirq_wait(struct ap_device
*ap_dev
)
755 struct ap_queue_status status
;
758 if (ap_dev
->queue_count
> 0)
759 /* Try to read a completed message and get the status */
760 status
= ap_sm_recv(ap_dev
);
762 /* Get the status with TAPQ */
763 status
= ap_test_queue(ap_dev
->qid
, &info
);
765 if (status
.int_enabled
== 1) {
766 /* Irqs are now enabled */
767 ap_dev
->interrupt
= AP_INTR_ENABLED
;
768 ap_dev
->state
= (ap_dev
->queue_count
> 0) ?
769 AP_STATE_WORKING
: AP_STATE_IDLE
;
772 switch (status
.response_code
) {
773 case AP_RESPONSE_NORMAL
:
774 if (ap_dev
->queue_count
> 0)
775 return AP_WAIT_AGAIN
;
777 case AP_RESPONSE_NO_PENDING_REPLY
:
778 return AP_WAIT_TIMEOUT
;
780 ap_dev
->state
= AP_STATE_BORKED
;
786 * AP state machine jump table
788 ap_func_t
*ap_jumptable
[NR_AP_STATES
][NR_AP_EVENTS
] = {
789 [AP_STATE_RESET_START
] = {
790 [AP_EVENT_POLL
] = ap_sm_reset
,
791 [AP_EVENT_TIMEOUT
] = ap_sm_nop
,
793 [AP_STATE_RESET_WAIT
] = {
794 [AP_EVENT_POLL
] = ap_sm_reset_wait
,
795 [AP_EVENT_TIMEOUT
] = ap_sm_nop
,
797 [AP_STATE_SETIRQ_WAIT
] = {
798 [AP_EVENT_POLL
] = ap_sm_setirq_wait
,
799 [AP_EVENT_TIMEOUT
] = ap_sm_nop
,
802 [AP_EVENT_POLL
] = ap_sm_write
,
803 [AP_EVENT_TIMEOUT
] = ap_sm_nop
,
805 [AP_STATE_WORKING
] = {
806 [AP_EVENT_POLL
] = ap_sm_read_write
,
807 [AP_EVENT_TIMEOUT
] = ap_sm_reset
,
809 [AP_STATE_QUEUE_FULL
] = {
810 [AP_EVENT_POLL
] = ap_sm_read
,
811 [AP_EVENT_TIMEOUT
] = ap_sm_reset
,
813 [AP_STATE_SUSPEND_WAIT
] = {
814 [AP_EVENT_POLL
] = ap_sm_read
,
815 [AP_EVENT_TIMEOUT
] = ap_sm_nop
,
817 [AP_STATE_BORKED
] = {
818 [AP_EVENT_POLL
] = ap_sm_nop
,
819 [AP_EVENT_TIMEOUT
] = ap_sm_nop
,
823 static inline enum ap_wait
ap_sm_event(struct ap_device
*ap_dev
,
826 return ap_jumptable
[ap_dev
->state
][event
](ap_dev
);
829 static inline enum ap_wait
ap_sm_event_loop(struct ap_device
*ap_dev
,
834 while ((wait
= ap_sm_event(ap_dev
, event
)) == AP_WAIT_AGAIN
)
840 * ap_request_timeout(): Handling of request timeouts
841 * @data: Holds the AP device.
843 * Handles request timeouts.
845 static void ap_request_timeout(unsigned long data
)
847 struct ap_device
*ap_dev
= (struct ap_device
*) data
;
851 spin_lock_bh(&ap_dev
->lock
);
852 ap_sm_wait(ap_sm_event(ap_dev
, AP_EVENT_TIMEOUT
));
853 spin_unlock_bh(&ap_dev
->lock
);
857 * ap_poll_timeout(): AP receive polling for finished AP requests.
858 * @unused: Unused pointer.
860 * Schedules the AP tasklet using a high resolution timer.
862 static enum hrtimer_restart
ap_poll_timeout(struct hrtimer
*unused
)
864 if (!ap_suspend_flag
)
865 tasklet_schedule(&ap_tasklet
);
866 return HRTIMER_NORESTART
;
870 * ap_interrupt_handler() - Schedule ap_tasklet on interrupt
871 * @airq: pointer to adapter interrupt descriptor
873 static void ap_interrupt_handler(struct airq_struct
*airq
)
875 inc_irq_stat(IRQIO_APB
);
876 if (!ap_suspend_flag
)
877 tasklet_schedule(&ap_tasklet
);
881 * ap_tasklet_fn(): Tasklet to poll all AP devices.
882 * @dummy: Unused variable
884 * Poll all AP devices on the bus.
886 static void ap_tasklet_fn(unsigned long dummy
)
888 struct ap_device
*ap_dev
;
889 enum ap_wait wait
= AP_WAIT_NONE
;
891 /* Reset the indicator if interrupts are used. Thus new interrupts can
892 * be received. Doing it in the beginning of the tasklet is therefor
893 * important that no requests on any AP get lost.
895 if (ap_using_interrupts())
896 xchg(ap_airq
.lsi_ptr
, 0);
898 spin_lock(&ap_device_list_lock
);
899 list_for_each_entry(ap_dev
, &ap_device_list
, list
) {
900 spin_lock_bh(&ap_dev
->lock
);
901 wait
= min(wait
, ap_sm_event_loop(ap_dev
, AP_EVENT_POLL
));
902 spin_unlock_bh(&ap_dev
->lock
);
904 spin_unlock(&ap_device_list_lock
);
909 * ap_poll_thread(): Thread that polls for finished requests.
910 * @data: Unused pointer
912 * AP bus poll thread. The purpose of this thread is to poll for
913 * finished requests in a loop if there is a "free" cpu - that is
914 * a cpu that doesn't have anything better to do. The polling stops
915 * as soon as there is another task or if all messages have been
918 static int ap_poll_thread(void *data
)
920 DECLARE_WAITQUEUE(wait
, current
);
922 set_user_nice(current
, MAX_NICE
);
924 while (!kthread_should_stop()) {
925 add_wait_queue(&ap_poll_wait
, &wait
);
926 set_current_state(TASK_INTERRUPTIBLE
);
927 if (ap_suspend_flag
||
928 atomic_read(&ap_poll_requests
) <= 0) {
932 set_current_state(TASK_RUNNING
);
933 remove_wait_queue(&ap_poll_wait
, &wait
);
934 if (need_resched()) {
940 } while (!kthread_should_stop());
944 static int ap_poll_thread_start(void)
948 if (ap_using_interrupts() || ap_poll_kthread
)
950 mutex_lock(&ap_poll_thread_mutex
);
951 ap_poll_kthread
= kthread_run(ap_poll_thread
, NULL
, "appoll");
952 rc
= PTR_RET(ap_poll_kthread
);
954 ap_poll_kthread
= NULL
;
955 mutex_unlock(&ap_poll_thread_mutex
);
959 static void ap_poll_thread_stop(void)
961 if (!ap_poll_kthread
)
963 mutex_lock(&ap_poll_thread_mutex
);
964 kthread_stop(ap_poll_kthread
);
965 ap_poll_kthread
= NULL
;
966 mutex_unlock(&ap_poll_thread_mutex
);
970 * ap_queue_message(): Queue a request to an AP device.
971 * @ap_dev: The AP device to queue the message to
972 * @ap_msg: The message that is to be added
974 void ap_queue_message(struct ap_device
*ap_dev
, struct ap_message
*ap_msg
)
976 /* For asynchronous message handling a valid receive-callback
978 BUG_ON(!ap_msg
->receive
);
980 spin_lock_bh(&ap_dev
->lock
);
981 /* Queue the message. */
982 list_add_tail(&ap_msg
->list
, &ap_dev
->requestq
);
983 ap_dev
->requestq_count
++;
984 ap_dev
->total_request_count
++;
985 /* Send/receive as many request from the queue as possible. */
986 ap_sm_wait(ap_sm_event_loop(ap_dev
, AP_EVENT_POLL
));
987 spin_unlock_bh(&ap_dev
->lock
);
989 EXPORT_SYMBOL(ap_queue_message
);
992 * ap_cancel_message(): Cancel a crypto request.
993 * @ap_dev: The AP device that has the message queued
994 * @ap_msg: The message that is to be removed
996 * Cancel a crypto request. This is done by removing the request
997 * from the device pending or request queue. Note that the
998 * request stays on the AP queue. When it finishes the message
999 * reply will be discarded because the psmid can't be found.
1001 void ap_cancel_message(struct ap_device
*ap_dev
, struct ap_message
*ap_msg
)
1003 struct ap_message
*tmp
;
1005 spin_lock_bh(&ap_dev
->lock
);
1006 if (!list_empty(&ap_msg
->list
)) {
1007 list_for_each_entry(tmp
, &ap_dev
->pendingq
, list
)
1008 if (tmp
->psmid
== ap_msg
->psmid
) {
1009 ap_dev
->pendingq_count
--;
1012 ap_dev
->requestq_count
--;
1014 list_del_init(&ap_msg
->list
);
1016 spin_unlock_bh(&ap_dev
->lock
);
1018 EXPORT_SYMBOL(ap_cancel_message
);
1021 * AP device related attributes.
1023 static ssize_t
ap_hwtype_show(struct device
*dev
,
1024 struct device_attribute
*attr
, char *buf
)
1026 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1027 return snprintf(buf
, PAGE_SIZE
, "%d\n", ap_dev
->device_type
);
1030 static DEVICE_ATTR(hwtype
, 0444, ap_hwtype_show
, NULL
);
1032 static ssize_t
ap_raw_hwtype_show(struct device
*dev
,
1033 struct device_attribute
*attr
, char *buf
)
1035 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1037 return snprintf(buf
, PAGE_SIZE
, "%d\n", ap_dev
->raw_hwtype
);
1040 static DEVICE_ATTR(raw_hwtype
, 0444, ap_raw_hwtype_show
, NULL
);
1042 static ssize_t
ap_depth_show(struct device
*dev
, struct device_attribute
*attr
,
1045 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1046 return snprintf(buf
, PAGE_SIZE
, "%d\n", ap_dev
->queue_depth
);
1049 static DEVICE_ATTR(depth
, 0444, ap_depth_show
, NULL
);
1050 static ssize_t
ap_request_count_show(struct device
*dev
,
1051 struct device_attribute
*attr
,
1054 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1057 spin_lock_bh(&ap_dev
->lock
);
1058 rc
= snprintf(buf
, PAGE_SIZE
, "%d\n", ap_dev
->total_request_count
);
1059 spin_unlock_bh(&ap_dev
->lock
);
1063 static DEVICE_ATTR(request_count
, 0444, ap_request_count_show
, NULL
);
1065 static ssize_t
ap_requestq_count_show(struct device
*dev
,
1066 struct device_attribute
*attr
, char *buf
)
1068 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1071 spin_lock_bh(&ap_dev
->lock
);
1072 rc
= snprintf(buf
, PAGE_SIZE
, "%d\n", ap_dev
->requestq_count
);
1073 spin_unlock_bh(&ap_dev
->lock
);
1077 static DEVICE_ATTR(requestq_count
, 0444, ap_requestq_count_show
, NULL
);
1079 static ssize_t
ap_pendingq_count_show(struct device
*dev
,
1080 struct device_attribute
*attr
, char *buf
)
1082 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1085 spin_lock_bh(&ap_dev
->lock
);
1086 rc
= snprintf(buf
, PAGE_SIZE
, "%d\n", ap_dev
->pendingq_count
);
1087 spin_unlock_bh(&ap_dev
->lock
);
1091 static DEVICE_ATTR(pendingq_count
, 0444, ap_pendingq_count_show
, NULL
);
1093 static ssize_t
ap_reset_show(struct device
*dev
,
1094 struct device_attribute
*attr
, char *buf
)
1096 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1099 spin_lock_bh(&ap_dev
->lock
);
1100 switch (ap_dev
->state
) {
1101 case AP_STATE_RESET_START
:
1102 case AP_STATE_RESET_WAIT
:
1103 rc
= snprintf(buf
, PAGE_SIZE
, "Reset in progress.\n");
1105 case AP_STATE_WORKING
:
1106 case AP_STATE_QUEUE_FULL
:
1107 rc
= snprintf(buf
, PAGE_SIZE
, "Reset Timer armed.\n");
1110 rc
= snprintf(buf
, PAGE_SIZE
, "No Reset Timer set.\n");
1112 spin_unlock_bh(&ap_dev
->lock
);
1116 static DEVICE_ATTR(reset
, 0444, ap_reset_show
, NULL
);
1118 static ssize_t
ap_interrupt_show(struct device
*dev
,
1119 struct device_attribute
*attr
, char *buf
)
1121 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1124 spin_lock_bh(&ap_dev
->lock
);
1125 if (ap_dev
->state
== AP_STATE_SETIRQ_WAIT
)
1126 rc
= snprintf(buf
, PAGE_SIZE
, "Enable Interrupt pending.\n");
1127 else if (ap_dev
->interrupt
== AP_INTR_ENABLED
)
1128 rc
= snprintf(buf
, PAGE_SIZE
, "Interrupts enabled.\n");
1130 rc
= snprintf(buf
, PAGE_SIZE
, "Interrupts disabled.\n");
1131 spin_unlock_bh(&ap_dev
->lock
);
1135 static DEVICE_ATTR(interrupt
, 0444, ap_interrupt_show
, NULL
);
1137 static ssize_t
ap_modalias_show(struct device
*dev
,
1138 struct device_attribute
*attr
, char *buf
)
1140 return sprintf(buf
, "ap:t%02X\n", to_ap_dev(dev
)->device_type
);
1143 static DEVICE_ATTR(modalias
, 0444, ap_modalias_show
, NULL
);
1145 static ssize_t
ap_functions_show(struct device
*dev
,
1146 struct device_attribute
*attr
, char *buf
)
1148 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1149 return snprintf(buf
, PAGE_SIZE
, "0x%08X\n", ap_dev
->functions
);
1152 static DEVICE_ATTR(ap_functions
, 0444, ap_functions_show
, NULL
);
1154 static struct attribute
*ap_dev_attrs
[] = {
1155 &dev_attr_hwtype
.attr
,
1156 &dev_attr_raw_hwtype
.attr
,
1157 &dev_attr_depth
.attr
,
1158 &dev_attr_request_count
.attr
,
1159 &dev_attr_requestq_count
.attr
,
1160 &dev_attr_pendingq_count
.attr
,
1161 &dev_attr_reset
.attr
,
1162 &dev_attr_interrupt
.attr
,
1163 &dev_attr_modalias
.attr
,
1164 &dev_attr_ap_functions
.attr
,
1167 static struct attribute_group ap_dev_attr_group
= {
1168 .attrs
= ap_dev_attrs
1173 * @dev: Pointer to device
1174 * @drv: Pointer to device_driver
1176 * AP bus driver registration/unregistration.
1178 static int ap_bus_match(struct device
*dev
, struct device_driver
*drv
)
1180 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1181 struct ap_driver
*ap_drv
= to_ap_drv(drv
);
1182 struct ap_device_id
*id
;
1185 * Compare device type of the device with the list of
1186 * supported types of the device_driver.
1188 for (id
= ap_drv
->ids
; id
->match_flags
; id
++) {
1189 if ((id
->match_flags
& AP_DEVICE_ID_MATCH_DEVICE_TYPE
) &&
1190 (id
->dev_type
!= ap_dev
->device_type
))
1198 * ap_uevent(): Uevent function for AP devices.
1199 * @dev: Pointer to device
1200 * @env: Pointer to kobj_uevent_env
1202 * It sets up a single environment variable DEV_TYPE which contains the
1203 * hardware device type.
1205 static int ap_uevent (struct device
*dev
, struct kobj_uevent_env
*env
)
1207 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1213 /* Set up DEV_TYPE environment variable. */
1214 retval
= add_uevent_var(env
, "DEV_TYPE=%04X", ap_dev
->device_type
);
1219 retval
= add_uevent_var(env
, "MODALIAS=ap:t%02X", ap_dev
->device_type
);
1224 static int ap_dev_suspend(struct device
*dev
, pm_message_t state
)
1226 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1228 /* Poll on the device until all requests are finished. */
1229 spin_lock_bh(&ap_dev
->lock
);
1230 ap_dev
->state
= AP_STATE_SUSPEND_WAIT
;
1231 while (ap_sm_event(ap_dev
, AP_EVENT_POLL
) != AP_WAIT_NONE
)
1233 ap_dev
->state
= AP_STATE_BORKED
;
1234 spin_unlock_bh(&ap_dev
->lock
);
1238 static int ap_dev_resume(struct device
*dev
)
1243 static void ap_bus_suspend(void)
1245 ap_suspend_flag
= 1;
1247 * Disable scanning for devices, thus we do not want to scan
1248 * for them after removing.
1250 flush_work(&ap_scan_work
);
1251 tasklet_disable(&ap_tasklet
);
1254 static int __ap_devices_unregister(struct device
*dev
, void *dummy
)
1256 device_unregister(dev
);
1260 static void ap_bus_resume(void)
1264 /* Unconditionally remove all AP devices */
1265 bus_for_each_dev(&ap_bus_type
, NULL
, NULL
, __ap_devices_unregister
);
1266 /* Reset thin interrupt setting */
1267 if (ap_interrupts_available() && !ap_using_interrupts()) {
1268 rc
= register_adapter_interrupt(&ap_airq
);
1269 ap_airq_flag
= (rc
== 0);
1271 if (!ap_interrupts_available() && ap_using_interrupts()) {
1272 unregister_adapter_interrupt(&ap_airq
);
1276 if (!user_set_domain
)
1277 ap_domain_index
= -1;
1278 /* Get things going again */
1279 ap_suspend_flag
= 0;
1281 xchg(ap_airq
.lsi_ptr
, 0);
1282 tasklet_enable(&ap_tasklet
);
1283 queue_work(system_long_wq
, &ap_scan_work
);
1286 static int ap_power_event(struct notifier_block
*this, unsigned long event
,
1290 case PM_HIBERNATION_PREPARE
:
1291 case PM_SUSPEND_PREPARE
:
1294 case PM_POST_HIBERNATION
:
1295 case PM_POST_SUSPEND
:
1303 static struct notifier_block ap_power_notifier
= {
1304 .notifier_call
= ap_power_event
,
1307 static struct bus_type ap_bus_type
= {
1309 .match
= &ap_bus_match
,
1310 .uevent
= &ap_uevent
,
1311 .suspend
= ap_dev_suspend
,
1312 .resume
= ap_dev_resume
,
1315 static int ap_device_probe(struct device
*dev
)
1317 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1318 struct ap_driver
*ap_drv
= to_ap_drv(dev
->driver
);
1321 ap_dev
->drv
= ap_drv
;
1322 rc
= ap_drv
->probe
? ap_drv
->probe(ap_dev
) : -ENODEV
;
1329 * __ap_flush_queue(): Flush requests.
1330 * @ap_dev: Pointer to the AP device
1332 * Flush all requests from the request/pending queue of an AP device.
1334 static void __ap_flush_queue(struct ap_device
*ap_dev
)
1336 struct ap_message
*ap_msg
, *next
;
1338 list_for_each_entry_safe(ap_msg
, next
, &ap_dev
->pendingq
, list
) {
1339 list_del_init(&ap_msg
->list
);
1340 ap_dev
->pendingq_count
--;
1341 ap_msg
->rc
= -EAGAIN
;
1342 ap_msg
->receive(ap_dev
, ap_msg
, NULL
);
1344 list_for_each_entry_safe(ap_msg
, next
, &ap_dev
->requestq
, list
) {
1345 list_del_init(&ap_msg
->list
);
1346 ap_dev
->requestq_count
--;
1347 ap_msg
->rc
= -EAGAIN
;
1348 ap_msg
->receive(ap_dev
, ap_msg
, NULL
);
1352 void ap_flush_queue(struct ap_device
*ap_dev
)
1354 spin_lock_bh(&ap_dev
->lock
);
1355 __ap_flush_queue(ap_dev
);
1356 spin_unlock_bh(&ap_dev
->lock
);
1358 EXPORT_SYMBOL(ap_flush_queue
);
1360 static int ap_device_remove(struct device
*dev
)
1362 struct ap_device
*ap_dev
= to_ap_dev(dev
);
1363 struct ap_driver
*ap_drv
= ap_dev
->drv
;
1365 ap_flush_queue(ap_dev
);
1366 del_timer_sync(&ap_dev
->timeout
);
1367 spin_lock_bh(&ap_device_list_lock
);
1368 list_del_init(&ap_dev
->list
);
1369 spin_unlock_bh(&ap_device_list_lock
);
1371 ap_drv
->remove(ap_dev
);
1372 spin_lock_bh(&ap_dev
->lock
);
1373 atomic_sub(ap_dev
->queue_count
, &ap_poll_requests
);
1374 spin_unlock_bh(&ap_dev
->lock
);
1378 static void ap_device_release(struct device
*dev
)
1380 kfree(to_ap_dev(dev
));
1383 int ap_driver_register(struct ap_driver
*ap_drv
, struct module
*owner
,
1386 struct device_driver
*drv
= &ap_drv
->driver
;
1391 drv
->bus
= &ap_bus_type
;
1392 drv
->probe
= ap_device_probe
;
1393 drv
->remove
= ap_device_remove
;
1396 return driver_register(drv
);
1398 EXPORT_SYMBOL(ap_driver_register
);
1400 void ap_driver_unregister(struct ap_driver
*ap_drv
)
1402 driver_unregister(&ap_drv
->driver
);
1404 EXPORT_SYMBOL(ap_driver_unregister
);
1406 void ap_bus_force_rescan(void)
1408 if (ap_suspend_flag
)
1410 /* processing a asynchronous bus rescan */
1411 del_timer(&ap_config_timer
);
1412 queue_work(system_long_wq
, &ap_scan_work
);
1413 flush_work(&ap_scan_work
);
1415 EXPORT_SYMBOL(ap_bus_force_rescan
);
1418 * AP bus attributes.
1420 static ssize_t
ap_domain_show(struct bus_type
*bus
, char *buf
)
1422 return snprintf(buf
, PAGE_SIZE
, "%d\n", ap_domain_index
);
1425 static BUS_ATTR(ap_domain
, 0444, ap_domain_show
, NULL
);
1427 static ssize_t
ap_control_domain_mask_show(struct bus_type
*bus
, char *buf
)
1429 if (!ap_configuration
) /* QCI not supported */
1430 return snprintf(buf
, PAGE_SIZE
, "not supported\n");
1431 if (!test_facility(76))
1432 /* format 0 - 16 bit domain field */
1433 return snprintf(buf
, PAGE_SIZE
, "%08x%08x\n",
1434 ap_configuration
->adm
[0],
1435 ap_configuration
->adm
[1]);
1436 /* format 1 - 256 bit domain field */
1437 return snprintf(buf
, PAGE_SIZE
,
1438 "0x%08x%08x%08x%08x%08x%08x%08x%08x\n",
1439 ap_configuration
->adm
[0], ap_configuration
->adm
[1],
1440 ap_configuration
->adm
[2], ap_configuration
->adm
[3],
1441 ap_configuration
->adm
[4], ap_configuration
->adm
[5],
1442 ap_configuration
->adm
[6], ap_configuration
->adm
[7]);
1445 static BUS_ATTR(ap_control_domain_mask
, 0444,
1446 ap_control_domain_mask_show
, NULL
);
1448 static ssize_t
ap_config_time_show(struct bus_type
*bus
, char *buf
)
1450 return snprintf(buf
, PAGE_SIZE
, "%d\n", ap_config_time
);
1453 static ssize_t
ap_interrupts_show(struct bus_type
*bus
, char *buf
)
1455 return snprintf(buf
, PAGE_SIZE
, "%d\n",
1456 ap_using_interrupts() ? 1 : 0);
1459 static BUS_ATTR(ap_interrupts
, 0444, ap_interrupts_show
, NULL
);
1461 static ssize_t
ap_config_time_store(struct bus_type
*bus
,
1462 const char *buf
, size_t count
)
1466 if (sscanf(buf
, "%d\n", &time
) != 1 || time
< 5 || time
> 120)
1468 ap_config_time
= time
;
1469 mod_timer(&ap_config_timer
, jiffies
+ ap_config_time
* HZ
);
1473 static BUS_ATTR(config_time
, 0644, ap_config_time_show
, ap_config_time_store
);
1475 static ssize_t
ap_poll_thread_show(struct bus_type
*bus
, char *buf
)
1477 return snprintf(buf
, PAGE_SIZE
, "%d\n", ap_poll_kthread
? 1 : 0);
1480 static ssize_t
ap_poll_thread_store(struct bus_type
*bus
,
1481 const char *buf
, size_t count
)
1485 if (sscanf(buf
, "%d\n", &flag
) != 1)
1488 rc
= ap_poll_thread_start();
1492 ap_poll_thread_stop();
1496 static BUS_ATTR(poll_thread
, 0644, ap_poll_thread_show
, ap_poll_thread_store
);
1498 static ssize_t
poll_timeout_show(struct bus_type
*bus
, char *buf
)
1500 return snprintf(buf
, PAGE_SIZE
, "%llu\n", poll_timeout
);
1503 static ssize_t
poll_timeout_store(struct bus_type
*bus
, const char *buf
,
1506 unsigned long long time
;
1509 /* 120 seconds = maximum poll interval */
1510 if (sscanf(buf
, "%llu\n", &time
) != 1 || time
< 1 ||
1511 time
> 120000000000ULL)
1513 poll_timeout
= time
;
1514 hr_time
= ktime_set(0, poll_timeout
);
1516 spin_lock_bh(&ap_poll_timer_lock
);
1517 hrtimer_cancel(&ap_poll_timer
);
1518 hrtimer_set_expires(&ap_poll_timer
, hr_time
);
1519 hrtimer_start_expires(&ap_poll_timer
, HRTIMER_MODE_ABS
);
1520 spin_unlock_bh(&ap_poll_timer_lock
);
1525 static BUS_ATTR(poll_timeout
, 0644, poll_timeout_show
, poll_timeout_store
);
1527 static ssize_t
ap_max_domain_id_show(struct bus_type
*bus
, char *buf
)
1531 if (ap_configuration
)
1532 max_domain_id
= ap_max_domain_id
? : -1;
1535 return snprintf(buf
, PAGE_SIZE
, "%d\n", max_domain_id
);
1538 static BUS_ATTR(ap_max_domain_id
, 0444, ap_max_domain_id_show
, NULL
);
1540 static struct bus_attribute
*const ap_bus_attrs
[] = {
1541 &bus_attr_ap_domain
,
1542 &bus_attr_ap_control_domain_mask
,
1543 &bus_attr_config_time
,
1544 &bus_attr_poll_thread
,
1545 &bus_attr_ap_interrupts
,
1546 &bus_attr_poll_timeout
,
1547 &bus_attr_ap_max_domain_id
,
1552 * ap_select_domain(): Select an AP domain.
1554 * Pick one of the 16 AP domains.
1556 static int ap_select_domain(void)
1558 int count
, max_count
, best_domain
;
1559 struct ap_queue_status status
;
1563 * We want to use a single domain. Either the one specified with
1564 * the "domain=" parameter or the domain with the maximum number
1567 if (ap_domain_index
>= 0)
1568 /* Domain has already been selected. */
1572 for (i
= 0; i
< AP_DOMAINS
; i
++) {
1573 if (!ap_test_config_domain(i
))
1576 for (j
= 0; j
< AP_DEVICES
; j
++) {
1577 if (!ap_test_config_card_id(j
))
1579 status
= ap_test_queue(AP_MKQID(j
, i
), NULL
);
1580 if (status
.response_code
!= AP_RESPONSE_NORMAL
)
1584 if (count
> max_count
) {
1589 if (best_domain
>= 0){
1590 ap_domain_index
= best_domain
;
1597 * __ap_scan_bus(): Scan the AP bus.
1598 * @dev: Pointer to device
1599 * @data: Pointer to data
1601 * Scan the AP bus for new devices.
1603 static int __ap_scan_bus(struct device
*dev
, void *data
)
1605 return to_ap_dev(dev
)->qid
== (ap_qid_t
)(unsigned long) data
;
1608 static void ap_scan_bus(struct work_struct
*unused
)
1610 struct ap_device
*ap_dev
;
1613 int queue_depth
= 0, device_type
= 0;
1614 unsigned int device_functions
= 0;
1617 ap_query_configuration();
1618 if (ap_select_domain() != 0)
1621 for (i
= 0; i
< AP_DEVICES
; i
++) {
1622 qid
= AP_MKQID(i
, ap_domain_index
);
1623 dev
= bus_find_device(&ap_bus_type
, NULL
,
1624 (void *)(unsigned long)qid
,
1626 rc
= ap_query_queue(qid
, &queue_depth
, &device_type
,
1629 ap_dev
= to_ap_dev(dev
);
1630 spin_lock_bh(&ap_dev
->lock
);
1632 ap_dev
->state
= AP_STATE_BORKED
;
1633 borked
= ap_dev
->state
== AP_STATE_BORKED
;
1634 spin_unlock_bh(&ap_dev
->lock
);
1635 if (borked
) /* Remove broken device */
1636 device_unregister(dev
);
1643 ap_dev
= kzalloc(sizeof(*ap_dev
), GFP_KERNEL
);
1647 ap_dev
->state
= AP_STATE_RESET_START
;
1648 ap_dev
->interrupt
= AP_INTR_DISABLED
;
1649 ap_dev
->queue_depth
= queue_depth
;
1650 ap_dev
->raw_hwtype
= device_type
;
1651 ap_dev
->device_type
= device_type
;
1652 ap_dev
->functions
= device_functions
;
1653 spin_lock_init(&ap_dev
->lock
);
1654 INIT_LIST_HEAD(&ap_dev
->pendingq
);
1655 INIT_LIST_HEAD(&ap_dev
->requestq
);
1656 INIT_LIST_HEAD(&ap_dev
->list
);
1657 setup_timer(&ap_dev
->timeout
, ap_request_timeout
,
1658 (unsigned long) ap_dev
);
1660 ap_dev
->device
.bus
= &ap_bus_type
;
1661 ap_dev
->device
.parent
= ap_root_device
;
1662 rc
= dev_set_name(&ap_dev
->device
, "card%02x",
1663 AP_QID_DEVICE(ap_dev
->qid
));
1668 /* Add to list of devices */
1669 spin_lock_bh(&ap_device_list_lock
);
1670 list_add(&ap_dev
->list
, &ap_device_list
);
1671 spin_unlock_bh(&ap_device_list_lock
);
1672 /* Start with a device reset */
1673 spin_lock_bh(&ap_dev
->lock
);
1674 ap_sm_wait(ap_sm_event(ap_dev
, AP_EVENT_POLL
));
1675 spin_unlock_bh(&ap_dev
->lock
);
1676 /* Register device */
1677 ap_dev
->device
.release
= ap_device_release
;
1678 rc
= device_register(&ap_dev
->device
);
1680 spin_lock_bh(&ap_dev
->lock
);
1681 list_del_init(&ap_dev
->list
);
1682 spin_unlock_bh(&ap_dev
->lock
);
1683 put_device(&ap_dev
->device
);
1686 /* Add device attributes. */
1687 rc
= sysfs_create_group(&ap_dev
->device
.kobj
,
1688 &ap_dev_attr_group
);
1690 device_unregister(&ap_dev
->device
);
1695 mod_timer(&ap_config_timer
, jiffies
+ ap_config_time
* HZ
);
1698 static void ap_config_timeout(unsigned long ptr
)
1700 if (ap_suspend_flag
)
1702 queue_work(system_long_wq
, &ap_scan_work
);
1705 static void ap_reset_domain(void)
1709 if (ap_domain_index
== -1 || !ap_test_config_domain(ap_domain_index
))
1711 for (i
= 0; i
< AP_DEVICES
; i
++)
1712 ap_reset_queue(AP_MKQID(i
, ap_domain_index
));
1715 static void ap_reset_all(void)
1719 for (i
= 0; i
< AP_DOMAINS
; i
++) {
1720 if (!ap_test_config_domain(i
))
1722 for (j
= 0; j
< AP_DEVICES
; j
++) {
1723 if (!ap_test_config_card_id(j
))
1725 ap_reset_queue(AP_MKQID(j
, i
));
1730 static struct reset_call ap_reset_call
= {
1735 * ap_module_init(): The module initialization code.
1737 * Initializes the module.
1739 int __init
ap_module_init(void)
1744 if (ap_instructions_available() != 0) {
1745 pr_warn("The hardware system does not support AP instructions\n");
1749 /* Get AP configuration data if available */
1750 ap_init_configuration();
1752 if (ap_configuration
)
1753 max_domain_id
= ap_max_domain_id
? : (AP_DOMAINS
- 1);
1756 if (ap_domain_index
< -1 || ap_domain_index
> max_domain_id
) {
1757 pr_warn("%d is not a valid cryptographic domain\n",
1761 /* In resume callback we need to know if the user had set the domain.
1762 * If so, we can not just reset it.
1764 if (ap_domain_index
>= 0)
1765 user_set_domain
= 1;
1767 if (ap_interrupts_available()) {
1768 rc
= register_adapter_interrupt(&ap_airq
);
1769 ap_airq_flag
= (rc
== 0);
1772 register_reset_call(&ap_reset_call
);
1774 /* Create /sys/bus/ap. */
1775 rc
= bus_register(&ap_bus_type
);
1778 for (i
= 0; ap_bus_attrs
[i
]; i
++) {
1779 rc
= bus_create_file(&ap_bus_type
, ap_bus_attrs
[i
]);
1784 /* Create /sys/devices/ap. */
1785 ap_root_device
= root_device_register("ap");
1786 rc
= PTR_RET(ap_root_device
);
1790 /* Setup the AP bus rescan timer. */
1791 setup_timer(&ap_config_timer
, ap_config_timeout
, 0);
1794 * Setup the high resultion poll timer.
1795 * If we are running under z/VM adjust polling to z/VM polling rate.
1798 poll_timeout
= 1500000;
1799 spin_lock_init(&ap_poll_timer_lock
);
1800 hrtimer_init(&ap_poll_timer
, CLOCK_MONOTONIC
, HRTIMER_MODE_ABS
);
1801 ap_poll_timer
.function
= ap_poll_timeout
;
1803 /* Start the low priority AP bus poll thread. */
1804 if (ap_thread_flag
) {
1805 rc
= ap_poll_thread_start();
1810 rc
= register_pm_notifier(&ap_power_notifier
);
1814 queue_work(system_long_wq
, &ap_scan_work
);
1820 ap_poll_thread_stop();
1822 hrtimer_cancel(&ap_poll_timer
);
1823 root_device_unregister(ap_root_device
);
1826 bus_remove_file(&ap_bus_type
, ap_bus_attrs
[i
]);
1827 bus_unregister(&ap_bus_type
);
1829 unregister_reset_call(&ap_reset_call
);
1830 if (ap_using_interrupts())
1831 unregister_adapter_interrupt(&ap_airq
);
1832 kfree(ap_configuration
);
1837 * ap_modules_exit(): The module termination code
1839 * Terminates the module.
1841 void ap_module_exit(void)
1845 initialised
= false;
1847 ap_poll_thread_stop();
1848 del_timer_sync(&ap_config_timer
);
1849 hrtimer_cancel(&ap_poll_timer
);
1850 tasklet_kill(&ap_tasklet
);
1851 bus_for_each_dev(&ap_bus_type
, NULL
, NULL
, __ap_devices_unregister
);
1852 for (i
= 0; ap_bus_attrs
[i
]; i
++)
1853 bus_remove_file(&ap_bus_type
, ap_bus_attrs
[i
]);
1854 unregister_pm_notifier(&ap_power_notifier
);
1855 root_device_unregister(ap_root_device
);
1856 bus_unregister(&ap_bus_type
);
1857 kfree(ap_configuration
);
1858 unregister_reset_call(&ap_reset_call
);
1859 if (ap_using_interrupts())
1860 unregister_adapter_interrupt(&ap_airq
);
1863 module_init(ap_module_init
);
1864 module_exit(ap_module_exit
);