2 * driver for channel subsystem
4 * Copyright IBM Corp. 2002, 2010
6 * Author(s): Arnd Bergmann (arndb@de.ibm.com)
7 * Cornelia Huck (cornelia.huck@de.ibm.com)
12 #define KMSG_COMPONENT "cio"
13 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
15 #include <linux/export.h>
16 #include <linux/init.h>
17 #include <linux/device.h>
18 #include <linux/slab.h>
19 #include <linux/errno.h>
20 #include <linux/list.h>
21 #include <linux/reboot.h>
22 #include <linux/suspend.h>
23 #include <linux/proc_fs.h>
29 #include "cio_debug.h"
36 int css_init_done
= 0;
40 struct channel_subsystem
*channel_subsystems
[MAX_CSS_IDX
+ 1];
41 static struct bus_type css_bus_type
;
44 for_each_subchannel(int(*fn
)(struct subchannel_id
, void *), void *data
)
46 struct subchannel_id schid
;
49 init_subchannel_id(&schid
);
52 ret
= fn(schid
, data
);
55 } while (schid
.sch_no
++ < __MAX_SUBCHANNEL
);
57 } while (schid
.ssid
++ < max_ssid
);
64 int (*fn_known_sch
)(struct subchannel
*, void *);
65 int (*fn_unknown_sch
)(struct subchannel_id
, void *);
68 static int call_fn_known_sch(struct device
*dev
, void *data
)
70 struct subchannel
*sch
= to_subchannel(dev
);
71 struct cb_data
*cb
= data
;
75 idset_sch_del(cb
->set
, sch
->schid
);
77 rc
= cb
->fn_known_sch(sch
, cb
->data
);
81 static int call_fn_unknown_sch(struct subchannel_id schid
, void *data
)
83 struct cb_data
*cb
= data
;
86 if (idset_sch_contains(cb
->set
, schid
))
87 rc
= cb
->fn_unknown_sch(schid
, cb
->data
);
91 static int call_fn_all_sch(struct subchannel_id schid
, void *data
)
93 struct cb_data
*cb
= data
;
94 struct subchannel
*sch
;
97 sch
= get_subchannel_by_schid(schid
);
100 rc
= cb
->fn_known_sch(sch
, cb
->data
);
101 put_device(&sch
->dev
);
103 if (cb
->fn_unknown_sch
)
104 rc
= cb
->fn_unknown_sch(schid
, cb
->data
);
110 int for_each_subchannel_staged(int (*fn_known
)(struct subchannel
*, void *),
111 int (*fn_unknown
)(struct subchannel_id
,
118 cb
.fn_known_sch
= fn_known
;
119 cb
.fn_unknown_sch
= fn_unknown
;
121 if (fn_known
&& !fn_unknown
) {
122 /* Skip idset allocation in case of known-only loop. */
124 return bus_for_each_dev(&css_bus_type
, NULL
, &cb
,
128 cb
.set
= idset_sch_new();
130 /* fall back to brute force scanning in case of oom */
131 return for_each_subchannel(call_fn_all_sch
, &cb
);
135 /* Process registered subchannels. */
136 rc
= bus_for_each_dev(&css_bus_type
, NULL
, &cb
, call_fn_known_sch
);
139 /* Process unregistered subchannels. */
141 rc
= for_each_subchannel(call_fn_unknown_sch
, &cb
);
148 static void css_sch_todo(struct work_struct
*work
);
150 static int css_sch_create_locks(struct subchannel
*sch
)
152 sch
->lock
= kmalloc(sizeof(*sch
->lock
), GFP_KERNEL
);
156 spin_lock_init(sch
->lock
);
157 mutex_init(&sch
->reg_mutex
);
162 static void css_subchannel_release(struct device
*dev
)
164 struct subchannel
*sch
= to_subchannel(dev
);
166 sch
->config
.intparm
= 0;
167 cio_commit_config(sch
);
172 struct subchannel
*css_alloc_subchannel(struct subchannel_id schid
)
174 struct subchannel
*sch
;
177 sch
= kzalloc(sizeof(*sch
), GFP_KERNEL
| GFP_DMA
);
179 return ERR_PTR(-ENOMEM
);
181 ret
= cio_validate_subchannel(sch
, schid
);
185 ret
= css_sch_create_locks(sch
);
189 INIT_WORK(&sch
->todo_work
, css_sch_todo
);
190 sch
->dev
.release
= &css_subchannel_release
;
191 device_initialize(&sch
->dev
);
199 static int css_sch_device_register(struct subchannel
*sch
)
203 mutex_lock(&sch
->reg_mutex
);
204 dev_set_name(&sch
->dev
, "0.%x.%04x", sch
->schid
.ssid
,
206 ret
= device_add(&sch
->dev
);
207 mutex_unlock(&sch
->reg_mutex
);
212 * css_sch_device_unregister - unregister a subchannel
213 * @sch: subchannel to be unregistered
215 void css_sch_device_unregister(struct subchannel
*sch
)
217 mutex_lock(&sch
->reg_mutex
);
218 if (device_is_registered(&sch
->dev
))
219 device_unregister(&sch
->dev
);
220 mutex_unlock(&sch
->reg_mutex
);
222 EXPORT_SYMBOL_GPL(css_sch_device_unregister
);
224 static void ssd_from_pmcw(struct chsc_ssd_info
*ssd
, struct pmcw
*pmcw
)
229 memset(ssd
, 0, sizeof(struct chsc_ssd_info
));
230 ssd
->path_mask
= pmcw
->pim
;
231 for (i
= 0; i
< 8; i
++) {
233 if (pmcw
->pim
& mask
) {
234 chp_id_init(&ssd
->chpid
[i
]);
235 ssd
->chpid
[i
].id
= pmcw
->chpid
[i
];
240 static void ssd_register_chpids(struct chsc_ssd_info
*ssd
)
245 for (i
= 0; i
< 8; i
++) {
247 if (ssd
->path_mask
& mask
)
248 if (!chp_is_registered(ssd
->chpid
[i
]))
249 chp_new(ssd
->chpid
[i
]);
253 void css_update_ssd_info(struct subchannel
*sch
)
257 ret
= chsc_get_ssd_info(sch
->schid
, &sch
->ssd_info
);
259 ssd_from_pmcw(&sch
->ssd_info
, &sch
->schib
.pmcw
);
261 ssd_register_chpids(&sch
->ssd_info
);
264 static ssize_t
type_show(struct device
*dev
, struct device_attribute
*attr
,
267 struct subchannel
*sch
= to_subchannel(dev
);
269 return sprintf(buf
, "%01x\n", sch
->st
);
272 static DEVICE_ATTR(type
, 0444, type_show
, NULL
);
274 static ssize_t
modalias_show(struct device
*dev
, struct device_attribute
*attr
,
277 struct subchannel
*sch
= to_subchannel(dev
);
279 return sprintf(buf
, "css:t%01X\n", sch
->st
);
282 static DEVICE_ATTR(modalias
, 0444, modalias_show
, NULL
);
284 static struct attribute
*subch_attrs
[] = {
286 &dev_attr_modalias
.attr
,
290 static struct attribute_group subch_attr_group
= {
291 .attrs
= subch_attrs
,
294 static const struct attribute_group
*default_subch_attr_groups
[] = {
299 static ssize_t
chpids_show(struct device
*dev
,
300 struct device_attribute
*attr
,
303 struct subchannel
*sch
= to_subchannel(dev
);
304 struct chsc_ssd_info
*ssd
= &sch
->ssd_info
;
309 for (chp
= 0; chp
< 8; chp
++) {
311 if (ssd
->path_mask
& mask
)
312 ret
+= sprintf(buf
+ ret
, "%02x ", ssd
->chpid
[chp
].id
);
314 ret
+= sprintf(buf
+ ret
, "00 ");
316 ret
+= sprintf(buf
+ ret
, "\n");
319 static DEVICE_ATTR(chpids
, 0444, chpids_show
, NULL
);
321 static ssize_t
pimpampom_show(struct device
*dev
,
322 struct device_attribute
*attr
,
325 struct subchannel
*sch
= to_subchannel(dev
);
326 struct pmcw
*pmcw
= &sch
->schib
.pmcw
;
328 return sprintf(buf
, "%02x %02x %02x\n",
329 pmcw
->pim
, pmcw
->pam
, pmcw
->pom
);
331 static DEVICE_ATTR(pimpampom
, 0444, pimpampom_show
, NULL
);
333 static struct attribute
*io_subchannel_type_attrs
[] = {
334 &dev_attr_chpids
.attr
,
335 &dev_attr_pimpampom
.attr
,
338 ATTRIBUTE_GROUPS(io_subchannel_type
);
340 static const struct device_type io_subchannel_type
= {
341 .groups
= io_subchannel_type_groups
,
344 int css_register_subchannel(struct subchannel
*sch
)
348 /* Initialize the subchannel structure */
349 sch
->dev
.parent
= &channel_subsystems
[0]->device
;
350 sch
->dev
.bus
= &css_bus_type
;
351 sch
->dev
.groups
= default_subch_attr_groups
;
353 if (sch
->st
== SUBCHANNEL_TYPE_IO
)
354 sch
->dev
.type
= &io_subchannel_type
;
357 * We don't want to generate uevents for I/O subchannels that don't
358 * have a working ccw device behind them since they will be
359 * unregistered before they can be used anyway, so we delay the add
360 * uevent until after device recognition was successful.
361 * Note that we suppress the uevent for all subchannel types;
362 * the subchannel driver can decide itself when it wants to inform
363 * userspace of its existence.
365 dev_set_uevent_suppress(&sch
->dev
, 1);
366 css_update_ssd_info(sch
);
367 /* make it known to the system */
368 ret
= css_sch_device_register(sch
);
370 CIO_MSG_EVENT(0, "Could not register sch 0.%x.%04x: %d\n",
371 sch
->schid
.ssid
, sch
->schid
.sch_no
, ret
);
376 * No driver matched. Generate the uevent now so that
377 * a fitting driver module may be loaded based on the
380 dev_set_uevent_suppress(&sch
->dev
, 0);
381 kobject_uevent(&sch
->dev
.kobj
, KOBJ_ADD
);
386 static int css_probe_device(struct subchannel_id schid
)
388 struct subchannel
*sch
;
391 sch
= css_alloc_subchannel(schid
);
395 ret
= css_register_subchannel(sch
);
397 put_device(&sch
->dev
);
403 check_subchannel(struct device
* dev
, void * data
)
405 struct subchannel
*sch
;
406 struct subchannel_id
*schid
= data
;
408 sch
= to_subchannel(dev
);
409 return schid_equal(&sch
->schid
, schid
);
413 get_subchannel_by_schid(struct subchannel_id schid
)
417 dev
= bus_find_device(&css_bus_type
, NULL
,
418 &schid
, check_subchannel
);
420 return dev
? to_subchannel(dev
) : NULL
;
424 * css_sch_is_valid() - check if a subchannel is valid
425 * @schib: subchannel information block for the subchannel
427 int css_sch_is_valid(struct schib
*schib
)
429 if ((schib
->pmcw
.st
== SUBCHANNEL_TYPE_IO
) && !schib
->pmcw
.dnv
)
431 if ((schib
->pmcw
.st
== SUBCHANNEL_TYPE_MSG
) && !schib
->pmcw
.w
)
435 EXPORT_SYMBOL_GPL(css_sch_is_valid
);
437 static int css_evaluate_new_subchannel(struct subchannel_id schid
, int slow
)
442 /* Will be done on the slow path. */
445 if (stsch(schid
, &schib
)) {
446 /* Subchannel is not provided. */
449 if (!css_sch_is_valid(&schib
)) {
450 /* Unusable - ignore. */
453 CIO_MSG_EVENT(4, "event: sch 0.%x.%04x, new\n", schid
.ssid
,
456 return css_probe_device(schid
);
459 static int css_evaluate_known_subchannel(struct subchannel
*sch
, int slow
)
464 if (sch
->driver
->sch_event
)
465 ret
= sch
->driver
->sch_event(sch
, slow
);
468 "Got subchannel machine check but "
469 "no sch_event handler provided.\n");
471 if (ret
!= 0 && ret
!= -EAGAIN
) {
472 CIO_MSG_EVENT(2, "eval: sch 0.%x.%04x, rc=%d\n",
473 sch
->schid
.ssid
, sch
->schid
.sch_no
, ret
);
478 static void css_evaluate_subchannel(struct subchannel_id schid
, int slow
)
480 struct subchannel
*sch
;
483 sch
= get_subchannel_by_schid(schid
);
485 ret
= css_evaluate_known_subchannel(sch
, slow
);
486 put_device(&sch
->dev
);
488 ret
= css_evaluate_new_subchannel(schid
, slow
);
490 css_schedule_eval(schid
);
494 * css_sched_sch_todo - schedule a subchannel operation
498 * Schedule the operation identified by @todo to be performed on the slow path
499 * workqueue. Do nothing if another operation with higher priority is already
500 * scheduled. Needs to be called with subchannel lock held.
502 void css_sched_sch_todo(struct subchannel
*sch
, enum sch_todo todo
)
504 CIO_MSG_EVENT(4, "sch_todo: sched sch=0.%x.%04x todo=%d\n",
505 sch
->schid
.ssid
, sch
->schid
.sch_no
, todo
);
506 if (sch
->todo
>= todo
)
508 /* Get workqueue ref. */
509 if (!get_device(&sch
->dev
))
512 if (!queue_work(cio_work_q
, &sch
->todo_work
)) {
513 /* Already queued, release workqueue ref. */
514 put_device(&sch
->dev
);
517 EXPORT_SYMBOL_GPL(css_sched_sch_todo
);
519 static void css_sch_todo(struct work_struct
*work
)
521 struct subchannel
*sch
;
525 sch
= container_of(work
, struct subchannel
, todo_work
);
527 spin_lock_irq(sch
->lock
);
529 CIO_MSG_EVENT(4, "sch_todo: sch=0.%x.%04x, todo=%d\n", sch
->schid
.ssid
,
530 sch
->schid
.sch_no
, todo
);
531 sch
->todo
= SCH_TODO_NOTHING
;
532 spin_unlock_irq(sch
->lock
);
535 case SCH_TODO_NOTHING
:
538 ret
= css_evaluate_known_subchannel(sch
, 1);
539 if (ret
== -EAGAIN
) {
540 spin_lock_irq(sch
->lock
);
541 css_sched_sch_todo(sch
, todo
);
542 spin_unlock_irq(sch
->lock
);
546 css_sch_device_unregister(sch
);
549 /* Release workqueue ref. */
550 put_device(&sch
->dev
);
553 static struct idset
*slow_subchannel_set
;
554 static spinlock_t slow_subchannel_lock
;
555 static wait_queue_head_t css_eval_wq
;
556 static atomic_t css_eval_scheduled
;
558 static int __init
slow_subchannel_init(void)
560 spin_lock_init(&slow_subchannel_lock
);
561 atomic_set(&css_eval_scheduled
, 0);
562 init_waitqueue_head(&css_eval_wq
);
563 slow_subchannel_set
= idset_sch_new();
564 if (!slow_subchannel_set
) {
565 CIO_MSG_EVENT(0, "could not allocate slow subchannel set\n");
571 static int slow_eval_known_fn(struct subchannel
*sch
, void *data
)
576 spin_lock_irq(&slow_subchannel_lock
);
577 eval
= idset_sch_contains(slow_subchannel_set
, sch
->schid
);
578 idset_sch_del(slow_subchannel_set
, sch
->schid
);
579 spin_unlock_irq(&slow_subchannel_lock
);
581 rc
= css_evaluate_known_subchannel(sch
, 1);
583 css_schedule_eval(sch
->schid
);
588 static int slow_eval_unknown_fn(struct subchannel_id schid
, void *data
)
593 spin_lock_irq(&slow_subchannel_lock
);
594 eval
= idset_sch_contains(slow_subchannel_set
, schid
);
595 idset_sch_del(slow_subchannel_set
, schid
);
596 spin_unlock_irq(&slow_subchannel_lock
);
598 rc
= css_evaluate_new_subchannel(schid
, 1);
601 css_schedule_eval(schid
);
607 /* These should abort looping */
608 spin_lock_irq(&slow_subchannel_lock
);
609 idset_sch_del_subseq(slow_subchannel_set
, schid
);
610 spin_unlock_irq(&slow_subchannel_lock
);
615 /* Allow scheduling here since the containing loop might
622 static void css_slow_path_func(struct work_struct
*unused
)
626 CIO_TRACE_EVENT(4, "slowpath");
627 for_each_subchannel_staged(slow_eval_known_fn
, slow_eval_unknown_fn
,
629 spin_lock_irqsave(&slow_subchannel_lock
, flags
);
630 if (idset_is_empty(slow_subchannel_set
)) {
631 atomic_set(&css_eval_scheduled
, 0);
632 wake_up(&css_eval_wq
);
634 spin_unlock_irqrestore(&slow_subchannel_lock
, flags
);
637 static DECLARE_DELAYED_WORK(slow_path_work
, css_slow_path_func
);
638 struct workqueue_struct
*cio_work_q
;
640 void css_schedule_eval(struct subchannel_id schid
)
644 spin_lock_irqsave(&slow_subchannel_lock
, flags
);
645 idset_sch_add(slow_subchannel_set
, schid
);
646 atomic_set(&css_eval_scheduled
, 1);
647 queue_delayed_work(cio_work_q
, &slow_path_work
, 0);
648 spin_unlock_irqrestore(&slow_subchannel_lock
, flags
);
651 void css_schedule_eval_all(void)
655 spin_lock_irqsave(&slow_subchannel_lock
, flags
);
656 idset_fill(slow_subchannel_set
);
657 atomic_set(&css_eval_scheduled
, 1);
658 queue_delayed_work(cio_work_q
, &slow_path_work
, 0);
659 spin_unlock_irqrestore(&slow_subchannel_lock
, flags
);
662 static int __unset_registered(struct device
*dev
, void *data
)
664 struct idset
*set
= data
;
665 struct subchannel
*sch
= to_subchannel(dev
);
667 idset_sch_del(set
, sch
->schid
);
671 void css_schedule_eval_all_unreg(unsigned long delay
)
674 struct idset
*unreg_set
;
676 /* Find unregistered subchannels. */
677 unreg_set
= idset_sch_new();
680 css_schedule_eval_all();
683 idset_fill(unreg_set
);
684 bus_for_each_dev(&css_bus_type
, NULL
, unreg_set
, __unset_registered
);
685 /* Apply to slow_subchannel_set. */
686 spin_lock_irqsave(&slow_subchannel_lock
, flags
);
687 idset_add_set(slow_subchannel_set
, unreg_set
);
688 atomic_set(&css_eval_scheduled
, 1);
689 queue_delayed_work(cio_work_q
, &slow_path_work
, delay
);
690 spin_unlock_irqrestore(&slow_subchannel_lock
, flags
);
691 idset_free(unreg_set
);
694 void css_wait_for_slow_path(void)
696 flush_workqueue(cio_work_q
);
699 /* Schedule reprobing of all unregistered subchannels. */
700 void css_schedule_reprobe(void)
702 /* Schedule with a delay to allow merging of subsequent calls. */
703 css_schedule_eval_all_unreg(1 * HZ
);
705 EXPORT_SYMBOL_GPL(css_schedule_reprobe
);
708 * Called from the machine check handler for subchannel report words.
710 static void css_process_crw(struct crw
*crw0
, struct crw
*crw1
, int overflow
)
712 struct subchannel_id mchk_schid
;
713 struct subchannel
*sch
;
716 css_schedule_eval_all();
719 CIO_CRW_EVENT(2, "CRW0 reports slct=%d, oflw=%d, "
720 "chn=%d, rsc=%X, anc=%d, erc=%X, rsid=%X\n",
721 crw0
->slct
, crw0
->oflw
, crw0
->chn
, crw0
->rsc
, crw0
->anc
,
722 crw0
->erc
, crw0
->rsid
);
724 CIO_CRW_EVENT(2, "CRW1 reports slct=%d, oflw=%d, "
725 "chn=%d, rsc=%X, anc=%d, erc=%X, rsid=%X\n",
726 crw1
->slct
, crw1
->oflw
, crw1
->chn
, crw1
->rsc
,
727 crw1
->anc
, crw1
->erc
, crw1
->rsid
);
728 init_subchannel_id(&mchk_schid
);
729 mchk_schid
.sch_no
= crw0
->rsid
;
731 mchk_schid
.ssid
= (crw1
->rsid
>> 4) & 3;
733 if (crw0
->erc
== CRW_ERC_PMOD
) {
734 sch
= get_subchannel_by_schid(mchk_schid
);
736 css_update_ssd_info(sch
);
737 put_device(&sch
->dev
);
741 * Since we are always presented with IPI in the CRW, we have to
742 * use stsch() to find out if the subchannel in question has come
745 css_evaluate_subchannel(mchk_schid
, 0);
749 css_generate_pgid(struct channel_subsystem
*css
, u32 tod_high
)
753 if (css_general_characteristics
.mcss
) {
754 css
->global_pgid
.pgid_high
.ext_cssid
.version
= 0x80;
755 css
->global_pgid
.pgid_high
.ext_cssid
.cssid
=
756 (css
->cssid
< 0) ? 0 : css
->cssid
;
758 css
->global_pgid
.pgid_high
.cpu_addr
= stap();
761 css
->global_pgid
.cpu_id
= cpu_id
.ident
;
762 css
->global_pgid
.cpu_model
= cpu_id
.machine
;
763 css
->global_pgid
.tod_high
= tod_high
;
766 static void channel_subsystem_release(struct device
*dev
)
768 struct channel_subsystem
*css
= to_css(dev
);
770 mutex_destroy(&css
->mutex
);
774 static ssize_t
real_cssid_show(struct device
*dev
, struct device_attribute
*a
,
777 struct channel_subsystem
*css
= to_css(dev
);
782 return sprintf(buf
, "%x\n", css
->cssid
);
784 static DEVICE_ATTR_RO(real_cssid
);
786 static ssize_t
cm_enable_show(struct device
*dev
, struct device_attribute
*a
,
789 struct channel_subsystem
*css
= to_css(dev
);
792 mutex_lock(&css
->mutex
);
793 ret
= sprintf(buf
, "%x\n", css
->cm_enabled
);
794 mutex_unlock(&css
->mutex
);
798 static ssize_t
cm_enable_store(struct device
*dev
, struct device_attribute
*a
,
799 const char *buf
, size_t count
)
801 struct channel_subsystem
*css
= to_css(dev
);
805 ret
= kstrtoul(buf
, 16, &val
);
808 mutex_lock(&css
->mutex
);
811 ret
= css
->cm_enabled
? chsc_secm(css
, 0) : 0;
814 ret
= css
->cm_enabled
? 0 : chsc_secm(css
, 1);
819 mutex_unlock(&css
->mutex
);
820 return ret
< 0 ? ret
: count
;
822 static DEVICE_ATTR_RW(cm_enable
);
824 static umode_t
cm_enable_mode(struct kobject
*kobj
, struct attribute
*attr
,
827 return css_chsc_characteristics
.secm
? attr
->mode
: 0;
830 static struct attribute
*cssdev_attrs
[] = {
831 &dev_attr_real_cssid
.attr
,
835 static struct attribute_group cssdev_attr_group
= {
836 .attrs
= cssdev_attrs
,
839 static struct attribute
*cssdev_cm_attrs
[] = {
840 &dev_attr_cm_enable
.attr
,
844 static struct attribute_group cssdev_cm_attr_group
= {
845 .attrs
= cssdev_cm_attrs
,
846 .is_visible
= cm_enable_mode
,
849 static const struct attribute_group
*cssdev_attr_groups
[] = {
851 &cssdev_cm_attr_group
,
855 static int __init
setup_css(int nr
)
857 struct channel_subsystem
*css
;
860 css
= kzalloc(sizeof(*css
), GFP_KERNEL
);
864 channel_subsystems
[nr
] = css
;
865 dev_set_name(&css
->device
, "css%x", nr
);
866 css
->device
.groups
= cssdev_attr_groups
;
867 css
->device
.release
= channel_subsystem_release
;
869 mutex_init(&css
->mutex
);
870 css
->cssid
= chsc_get_cssid(nr
);
871 css_generate_pgid(css
, (u32
) (get_tod_clock() >> 32));
873 ret
= device_register(&css
->device
);
875 put_device(&css
->device
);
879 css
->pseudo_subchannel
= kzalloc(sizeof(*css
->pseudo_subchannel
),
881 if (!css
->pseudo_subchannel
) {
882 device_unregister(&css
->device
);
887 css
->pseudo_subchannel
->dev
.parent
= &css
->device
;
888 css
->pseudo_subchannel
->dev
.release
= css_subchannel_release
;
889 mutex_init(&css
->pseudo_subchannel
->reg_mutex
);
890 ret
= css_sch_create_locks(css
->pseudo_subchannel
);
892 kfree(css
->pseudo_subchannel
);
893 device_unregister(&css
->device
);
897 dev_set_name(&css
->pseudo_subchannel
->dev
, "defunct");
898 ret
= device_register(&css
->pseudo_subchannel
->dev
);
900 put_device(&css
->pseudo_subchannel
->dev
);
901 device_unregister(&css
->device
);
907 channel_subsystems
[nr
] = NULL
;
911 static int css_reboot_event(struct notifier_block
*this,
915 struct channel_subsystem
*css
;
920 mutex_lock(&css
->mutex
);
922 if (chsc_secm(css
, 0))
924 mutex_unlock(&css
->mutex
);
930 static struct notifier_block css_reboot_notifier
= {
931 .notifier_call
= css_reboot_event
,
935 * Since the css devices are neither on a bus nor have a class
936 * nor have a special device type, we cannot stop/restart channel
937 * path measurements via the normal suspend/resume callbacks, but have
940 static int css_power_event(struct notifier_block
*this, unsigned long event
,
943 struct channel_subsystem
*css
;
947 case PM_HIBERNATION_PREPARE
:
948 case PM_SUSPEND_PREPARE
:
951 mutex_lock(&css
->mutex
);
952 if (!css
->cm_enabled
) {
953 mutex_unlock(&css
->mutex
);
956 ret
= __chsc_do_secm(css
, 0);
957 ret
= notifier_from_errno(ret
);
958 mutex_unlock(&css
->mutex
);
961 case PM_POST_HIBERNATION
:
962 case PM_POST_SUSPEND
:
965 mutex_lock(&css
->mutex
);
966 if (!css
->cm_enabled
) {
967 mutex_unlock(&css
->mutex
);
970 ret
= __chsc_do_secm(css
, 1);
971 ret
= notifier_from_errno(ret
);
972 mutex_unlock(&css
->mutex
);
974 /* search for subchannels, which appeared during hibernation */
975 css_schedule_reprobe();
983 static struct notifier_block css_power_notifier
= {
984 .notifier_call
= css_power_event
,
988 * Now that the driver core is running, we can setup our channel subsystem.
989 * The struct subchannel's are created during probing.
991 static int __init
css_bus_init(void)
999 chsc_determine_css_characteristics();
1000 /* Try to enable MSS. */
1001 ret
= chsc_enable_facility(CHSC_SDA_OC_MSS
);
1005 max_ssid
= __MAX_SSID
;
1007 ret
= slow_subchannel_init();
1011 ret
= crw_register_handler(CRW_RSC_SCH
, css_process_crw
);
1015 if ((ret
= bus_register(&css_bus_type
)))
1018 /* Setup css structure. */
1019 for (i
= 0; i
<= MAX_CSS_IDX
; i
++) {
1022 goto out_unregister
;
1024 ret
= register_reboot_notifier(&css_reboot_notifier
);
1026 goto out_unregister
;
1027 ret
= register_pm_notifier(&css_power_notifier
);
1029 unregister_reboot_notifier(&css_reboot_notifier
);
1030 goto out_unregister
;
1034 /* Enable default isc for I/O subchannels. */
1035 isc_register(IO_SCH_ISC
);
1040 struct channel_subsystem
*css
= channel_subsystems
[i
];
1041 device_unregister(&css
->pseudo_subchannel
->dev
);
1042 device_unregister(&css
->device
);
1044 bus_unregister(&css_bus_type
);
1046 crw_unregister_handler(CRW_RSC_SCH
);
1047 idset_free(slow_subchannel_set
);
1048 chsc_init_cleanup();
1049 pr_alert("The CSS device driver initialization failed with "
1054 static void __init
css_bus_cleanup(void)
1056 struct channel_subsystem
*css
;
1059 device_unregister(&css
->pseudo_subchannel
->dev
);
1060 device_unregister(&css
->device
);
1062 bus_unregister(&css_bus_type
);
1063 crw_unregister_handler(CRW_RSC_SCH
);
1064 idset_free(slow_subchannel_set
);
1065 chsc_init_cleanup();
1066 isc_unregister(IO_SCH_ISC
);
1069 static int __init
channel_subsystem_init(void)
1073 ret
= css_bus_init();
1076 cio_work_q
= create_singlethread_workqueue("cio");
1081 ret
= io_subchannel_init();
1087 destroy_workqueue(cio_work_q
);
1092 subsys_initcall(channel_subsystem_init
);
1094 static int css_settle(struct device_driver
*drv
, void *unused
)
1096 struct css_driver
*cssdrv
= to_cssdriver(drv
);
1099 return cssdrv
->settle();
1103 int css_complete_work(void)
1107 /* Wait for the evaluation of subchannels to finish. */
1108 ret
= wait_event_interruptible(css_eval_wq
,
1109 atomic_read(&css_eval_scheduled
) == 0);
1112 flush_workqueue(cio_work_q
);
1113 /* Wait for the subchannel type specific initialization to finish */
1114 return bus_for_each_drv(&css_bus_type
, NULL
, NULL
, css_settle
);
1119 * Wait for the initialization of devices to finish, to make sure we are
1120 * done with our setup if the search for the root device starts.
1122 static int __init
channel_subsystem_init_sync(void)
1124 /* Register subchannels which are already in use. */
1125 cio_register_early_subchannels();
1126 /* Start initial subchannel evaluation. */
1127 css_schedule_eval_all();
1128 css_complete_work();
1131 subsys_initcall_sync(channel_subsystem_init_sync
);
1133 void channel_subsystem_reinit(void)
1135 struct channel_path
*chp
;
1136 struct chp_id chpid
;
1138 chsc_enable_facility(CHSC_SDA_OC_MSS
);
1139 chp_id_for_each(&chpid
) {
1140 chp
= chpid_to_chp(chpid
);
1142 chp_update_desc(chp
);
1147 #ifdef CONFIG_PROC_FS
1148 static ssize_t
cio_settle_write(struct file
*file
, const char __user
*buf
,
1149 size_t count
, loff_t
*ppos
)
1153 /* Handle pending CRW's. */
1154 crw_wait_for_channel_report();
1155 ret
= css_complete_work();
1157 return ret
? ret
: count
;
1160 static const struct file_operations cio_settle_proc_fops
= {
1161 .open
= nonseekable_open
,
1162 .write
= cio_settle_write
,
1163 .llseek
= no_llseek
,
1166 static int __init
cio_settle_init(void)
1168 struct proc_dir_entry
*entry
;
1170 entry
= proc_create("cio_settle", S_IWUSR
, NULL
,
1171 &cio_settle_proc_fops
);
1176 device_initcall(cio_settle_init
);
1177 #endif /*CONFIG_PROC_FS*/
1179 int sch_is_pseudo_sch(struct subchannel
*sch
)
1181 return sch
== to_css(sch
->dev
.parent
)->pseudo_subchannel
;
1184 static int css_bus_match(struct device
*dev
, struct device_driver
*drv
)
1186 struct subchannel
*sch
= to_subchannel(dev
);
1187 struct css_driver
*driver
= to_cssdriver(drv
);
1188 struct css_device_id
*id
;
1190 for (id
= driver
->subchannel_type
; id
->match_flags
; id
++) {
1191 if (sch
->st
== id
->type
)
1198 static int css_probe(struct device
*dev
)
1200 struct subchannel
*sch
;
1203 sch
= to_subchannel(dev
);
1204 sch
->driver
= to_cssdriver(dev
->driver
);
1205 ret
= sch
->driver
->probe
? sch
->driver
->probe(sch
) : 0;
1211 static int css_remove(struct device
*dev
)
1213 struct subchannel
*sch
;
1216 sch
= to_subchannel(dev
);
1217 ret
= sch
->driver
->remove
? sch
->driver
->remove(sch
) : 0;
1222 static void css_shutdown(struct device
*dev
)
1224 struct subchannel
*sch
;
1226 sch
= to_subchannel(dev
);
1227 if (sch
->driver
&& sch
->driver
->shutdown
)
1228 sch
->driver
->shutdown(sch
);
1231 static int css_uevent(struct device
*dev
, struct kobj_uevent_env
*env
)
1233 struct subchannel
*sch
= to_subchannel(dev
);
1236 ret
= add_uevent_var(env
, "ST=%01X", sch
->st
);
1239 ret
= add_uevent_var(env
, "MODALIAS=css:t%01X", sch
->st
);
1243 static int css_pm_prepare(struct device
*dev
)
1245 struct subchannel
*sch
= to_subchannel(dev
);
1246 struct css_driver
*drv
;
1248 if (mutex_is_locked(&sch
->reg_mutex
))
1250 if (!sch
->dev
.driver
)
1252 drv
= to_cssdriver(sch
->dev
.driver
);
1253 /* Notify drivers that they may not register children. */
1254 return drv
->prepare
? drv
->prepare(sch
) : 0;
1257 static void css_pm_complete(struct device
*dev
)
1259 struct subchannel
*sch
= to_subchannel(dev
);
1260 struct css_driver
*drv
;
1262 if (!sch
->dev
.driver
)
1264 drv
= to_cssdriver(sch
->dev
.driver
);
1269 static int css_pm_freeze(struct device
*dev
)
1271 struct subchannel
*sch
= to_subchannel(dev
);
1272 struct css_driver
*drv
;
1274 if (!sch
->dev
.driver
)
1276 drv
= to_cssdriver(sch
->dev
.driver
);
1277 return drv
->freeze
? drv
->freeze(sch
) : 0;
1280 static int css_pm_thaw(struct device
*dev
)
1282 struct subchannel
*sch
= to_subchannel(dev
);
1283 struct css_driver
*drv
;
1285 if (!sch
->dev
.driver
)
1287 drv
= to_cssdriver(sch
->dev
.driver
);
1288 return drv
->thaw
? drv
->thaw(sch
) : 0;
1291 static int css_pm_restore(struct device
*dev
)
1293 struct subchannel
*sch
= to_subchannel(dev
);
1294 struct css_driver
*drv
;
1296 css_update_ssd_info(sch
);
1297 if (!sch
->dev
.driver
)
1299 drv
= to_cssdriver(sch
->dev
.driver
);
1300 return drv
->restore
? drv
->restore(sch
) : 0;
1303 static const struct dev_pm_ops css_pm_ops
= {
1304 .prepare
= css_pm_prepare
,
1305 .complete
= css_pm_complete
,
1306 .freeze
= css_pm_freeze
,
1307 .thaw
= css_pm_thaw
,
1308 .restore
= css_pm_restore
,
1311 static struct bus_type css_bus_type
= {
1313 .match
= css_bus_match
,
1315 .remove
= css_remove
,
1316 .shutdown
= css_shutdown
,
1317 .uevent
= css_uevent
,
1322 * css_driver_register - register a css driver
1323 * @cdrv: css driver to register
1325 * This is mainly a wrapper around driver_register that sets name
1326 * and bus_type in the embedded struct device_driver correctly.
1328 int css_driver_register(struct css_driver
*cdrv
)
1330 cdrv
->drv
.bus
= &css_bus_type
;
1331 return driver_register(&cdrv
->drv
);
1333 EXPORT_SYMBOL_GPL(css_driver_register
);
1336 * css_driver_unregister - unregister a css driver
1337 * @cdrv: css driver to unregister
1339 * This is a wrapper around driver_unregister.
1341 void css_driver_unregister(struct css_driver
*cdrv
)
1343 driver_unregister(&cdrv
->drv
);
1345 EXPORT_SYMBOL_GPL(css_driver_unregister
);