4 * (c) Copyright 2008-2011 Alan Cox <alan@lxorguk.ukuu.org.uk>,
7 * (c) Copyright 2008-2011 Wim Van Sebroeck <wim@iguana.be>.
10 * This source code is part of the generic code that can be used
11 * by all the watchdog timer drivers.
13 * This part of the generic code takes care of the following
14 * misc device: /dev/watchdog.
16 * Based on source code of the following authors:
17 * Matt Domsch <Matt_Domsch@dell.com>,
18 * Rob Radez <rob@osinvestor.com>,
19 * Rusty Lynch <rusty@linux.co.intel.com>
20 * Satyam Sharma <satyam@infradead.org>
21 * Randy Dunlap <randy.dunlap@oracle.com>
23 * This program is free software; you can redistribute it and/or
24 * modify it under the terms of the GNU General Public License
25 * as published by the Free Software Foundation; either version
26 * 2 of the License, or (at your option) any later version.
28 * Neither Alan Cox, CymruNet Ltd., Wim Van Sebroeck nor Iguana vzw.
29 * admit liability nor provide warranty for any of this software.
30 * This material is provided "AS-IS" and at no charge.
33 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
35 #include <linux/cdev.h> /* For character device */
36 #include <linux/errno.h> /* For the -ENODEV/... values */
37 #include <linux/fs.h> /* For file operations */
38 #include <linux/init.h> /* For __init/__exit/... */
39 #include <linux/jiffies.h> /* For timeout functions */
40 #include <linux/kernel.h> /* For printk/panic/... */
41 #include <linux/kref.h> /* For data references */
42 #include <linux/miscdevice.h> /* For handling misc devices */
43 #include <linux/module.h> /* For module stuff/... */
44 #include <linux/mutex.h> /* For mutexes */
45 #include <linux/slab.h> /* For memory functions */
46 #include <linux/types.h> /* For standard types (like size_t) */
47 #include <linux/watchdog.h> /* For watchdog specific items */
48 #include <linux/workqueue.h> /* For workqueue */
49 #include <linux/uaccess.h> /* For copy_to_user/put_user/... */
51 #include "watchdog_core.h"
52 #include "watchdog_pretimeout.h"
55 * struct watchdog_core_data - watchdog core internal data
56 * @kref: Reference count.
57 * @cdev: The watchdog's Character device.
58 * @wdd: Pointer to watchdog device.
59 * @lock: Lock for watchdog core.
60 * @status: Watchdog core internal status bits.
62 struct watchdog_core_data
{
65 struct watchdog_device
*wdd
;
67 unsigned long last_keepalive
;
68 unsigned long last_hw_keepalive
;
69 struct delayed_work work
;
70 unsigned long status
; /* Internal status bits */
71 #define _WDOG_DEV_OPEN 0 /* Opened ? */
72 #define _WDOG_ALLOW_RELEASE 1 /* Did we receive the magic char ? */
73 #define _WDOG_KEEPALIVE 2 /* Did we receive a keepalive ? */
76 /* the dev_t structure to store the dynamically allocated watchdog devices */
77 static dev_t watchdog_devt
;
78 /* Reference to watchdog device behind /dev/watchdog */
79 static struct watchdog_core_data
*old_wd_data
;
81 static struct workqueue_struct
*watchdog_wq
;
83 static inline bool watchdog_need_worker(struct watchdog_device
*wdd
)
85 /* All variables in milli-seconds */
86 unsigned int hm
= wdd
->max_hw_heartbeat_ms
;
87 unsigned int t
= wdd
->timeout
* 1000;
90 * A worker to generate heartbeat requests is needed if all of the
91 * following conditions are true.
92 * - Userspace activated the watchdog.
93 * - The driver provided a value for the maximum hardware timeout, and
94 * thus is aware that the framework supports generating heartbeat
96 * - Userspace requests a longer timeout than the hardware can handle.
98 * Alternatively, if userspace has not opened the watchdog
99 * device, we take care of feeding the watchdog if it is
102 return (hm
&& watchdog_active(wdd
) && t
> hm
) ||
103 (t
&& !watchdog_active(wdd
) && watchdog_hw_running(wdd
));
106 static long watchdog_next_keepalive(struct watchdog_device
*wdd
)
108 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
109 unsigned int timeout_ms
= wdd
->timeout
* 1000;
110 unsigned long keepalive_interval
;
111 unsigned long last_heartbeat
;
112 unsigned long virt_timeout
;
113 unsigned int hw_heartbeat_ms
;
115 virt_timeout
= wd_data
->last_keepalive
+ msecs_to_jiffies(timeout_ms
);
116 hw_heartbeat_ms
= min_not_zero(timeout_ms
, wdd
->max_hw_heartbeat_ms
);
117 keepalive_interval
= msecs_to_jiffies(hw_heartbeat_ms
/ 2);
119 if (!watchdog_active(wdd
))
120 return keepalive_interval
;
123 * To ensure that the watchdog times out wdd->timeout seconds
124 * after the most recent ping from userspace, the last
125 * worker ping has to come in hw_heartbeat_ms before this timeout.
127 last_heartbeat
= virt_timeout
- msecs_to_jiffies(hw_heartbeat_ms
);
128 return min_t(long, last_heartbeat
- jiffies
, keepalive_interval
);
131 static inline void watchdog_update_worker(struct watchdog_device
*wdd
)
133 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
135 if (watchdog_need_worker(wdd
)) {
136 long t
= watchdog_next_keepalive(wdd
);
139 mod_delayed_work(watchdog_wq
, &wd_data
->work
, t
);
141 cancel_delayed_work(&wd_data
->work
);
145 static int __watchdog_ping(struct watchdog_device
*wdd
)
147 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
148 unsigned long earliest_keepalive
= wd_data
->last_hw_keepalive
+
149 msecs_to_jiffies(wdd
->min_hw_heartbeat_ms
);
152 if (time_is_after_jiffies(earliest_keepalive
)) {
153 mod_delayed_work(watchdog_wq
, &wd_data
->work
,
154 earliest_keepalive
- jiffies
);
158 wd_data
->last_hw_keepalive
= jiffies
;
161 err
= wdd
->ops
->ping(wdd
); /* ping the watchdog */
163 err
= wdd
->ops
->start(wdd
); /* restart watchdog */
165 watchdog_update_worker(wdd
);
171 * watchdog_ping: ping the watchdog.
172 * @wdd: the watchdog device to ping
174 * The caller must hold wd_data->lock.
176 * If the watchdog has no own ping operation then it needs to be
177 * restarted via the start operation. This wrapper function does
179 * We only ping when the watchdog device is running.
182 static int watchdog_ping(struct watchdog_device
*wdd
)
184 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
186 if (!watchdog_active(wdd
) && !watchdog_hw_running(wdd
))
189 set_bit(_WDOG_KEEPALIVE
, &wd_data
->status
);
191 wd_data
->last_keepalive
= jiffies
;
192 return __watchdog_ping(wdd
);
195 static void watchdog_ping_work(struct work_struct
*work
)
197 struct watchdog_core_data
*wd_data
;
198 struct watchdog_device
*wdd
;
200 wd_data
= container_of(to_delayed_work(work
), struct watchdog_core_data
,
203 mutex_lock(&wd_data
->lock
);
205 if (wdd
&& (watchdog_active(wdd
) || watchdog_hw_running(wdd
)))
206 __watchdog_ping(wdd
);
207 mutex_unlock(&wd_data
->lock
);
211 * watchdog_start: wrapper to start the watchdog.
212 * @wdd: the watchdog device to start
214 * The caller must hold wd_data->lock.
216 * Start the watchdog if it is not active and mark it active.
217 * This function returns zero on success or a negative errno code for
221 static int watchdog_start(struct watchdog_device
*wdd
)
223 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
224 unsigned long started_at
;
227 if (watchdog_active(wdd
))
230 set_bit(_WDOG_KEEPALIVE
, &wd_data
->status
);
232 started_at
= jiffies
;
233 if (watchdog_hw_running(wdd
) && wdd
->ops
->ping
)
234 err
= wdd
->ops
->ping(wdd
);
236 err
= wdd
->ops
->start(wdd
);
238 set_bit(WDOG_ACTIVE
, &wdd
->status
);
239 wd_data
->last_keepalive
= started_at
;
240 watchdog_update_worker(wdd
);
247 * watchdog_stop: wrapper to stop the watchdog.
248 * @wdd: the watchdog device to stop
250 * The caller must hold wd_data->lock.
252 * Stop the watchdog if it is still active and unmark it active.
253 * This function returns zero on success or a negative errno code for
255 * If the 'nowayout' feature was set, the watchdog cannot be stopped.
258 static int watchdog_stop(struct watchdog_device
*wdd
)
262 if (!watchdog_active(wdd
))
265 if (test_bit(WDOG_NO_WAY_OUT
, &wdd
->status
)) {
266 pr_info("watchdog%d: nowayout prevents watchdog being stopped!\n",
271 if (wdd
->ops
->stop
) {
272 clear_bit(WDOG_HW_RUNNING
, &wdd
->status
);
273 err
= wdd
->ops
->stop(wdd
);
275 set_bit(WDOG_HW_RUNNING
, &wdd
->status
);
279 clear_bit(WDOG_ACTIVE
, &wdd
->status
);
280 watchdog_update_worker(wdd
);
287 * watchdog_get_status: wrapper to get the watchdog status
288 * @wdd: the watchdog device to get the status from
290 * The caller must hold wd_data->lock.
292 * Get the watchdog's status flags.
295 static unsigned int watchdog_get_status(struct watchdog_device
*wdd
)
297 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
300 if (wdd
->ops
->status
)
301 status
= wdd
->ops
->status(wdd
);
303 status
= wdd
->bootstatus
& (WDIOF_CARDRESET
|
311 if (test_bit(_WDOG_ALLOW_RELEASE
, &wd_data
->status
))
312 status
|= WDIOF_MAGICCLOSE
;
314 if (test_and_clear_bit(_WDOG_KEEPALIVE
, &wd_data
->status
))
315 status
|= WDIOF_KEEPALIVEPING
;
321 * watchdog_set_timeout: set the watchdog timer timeout
322 * @wdd: the watchdog device to set the timeout for
323 * @timeout: timeout to set in seconds
325 * The caller must hold wd_data->lock.
328 static int watchdog_set_timeout(struct watchdog_device
*wdd
,
329 unsigned int timeout
)
333 if (!(wdd
->info
->options
& WDIOF_SETTIMEOUT
))
336 if (watchdog_timeout_invalid(wdd
, timeout
))
339 if (wdd
->ops
->set_timeout
) {
340 err
= wdd
->ops
->set_timeout(wdd
, timeout
);
342 wdd
->timeout
= timeout
;
343 /* Disable pretimeout if it doesn't fit the new timeout */
344 if (wdd
->pretimeout
>= wdd
->timeout
)
348 watchdog_update_worker(wdd
);
354 * watchdog_set_pretimeout: set the watchdog timer pretimeout
355 * @wdd: the watchdog device to set the timeout for
356 * @timeout: pretimeout to set in seconds
359 static int watchdog_set_pretimeout(struct watchdog_device
*wdd
,
360 unsigned int timeout
)
364 if (!(wdd
->info
->options
& WDIOF_PRETIMEOUT
))
367 if (watchdog_pretimeout_invalid(wdd
, timeout
))
370 if (wdd
->ops
->set_pretimeout
)
371 err
= wdd
->ops
->set_pretimeout(wdd
, timeout
);
373 wdd
->pretimeout
= timeout
;
379 * watchdog_get_timeleft: wrapper to get the time left before a reboot
380 * @wdd: the watchdog device to get the remaining time from
381 * @timeleft: the time that's left
383 * The caller must hold wd_data->lock.
385 * Get the time before a watchdog will reboot (if not pinged).
388 static int watchdog_get_timeleft(struct watchdog_device
*wdd
,
389 unsigned int *timeleft
)
393 if (!wdd
->ops
->get_timeleft
)
396 *timeleft
= wdd
->ops
->get_timeleft(wdd
);
401 #ifdef CONFIG_WATCHDOG_SYSFS
402 static ssize_t
nowayout_show(struct device
*dev
, struct device_attribute
*attr
,
405 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
407 return sprintf(buf
, "%d\n", !!test_bit(WDOG_NO_WAY_OUT
, &wdd
->status
));
409 static DEVICE_ATTR_RO(nowayout
);
411 static ssize_t
status_show(struct device
*dev
, struct device_attribute
*attr
,
414 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
415 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
418 mutex_lock(&wd_data
->lock
);
419 status
= watchdog_get_status(wdd
);
420 mutex_unlock(&wd_data
->lock
);
422 return sprintf(buf
, "0x%x\n", status
);
424 static DEVICE_ATTR_RO(status
);
426 static ssize_t
bootstatus_show(struct device
*dev
,
427 struct device_attribute
*attr
, char *buf
)
429 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
431 return sprintf(buf
, "%u\n", wdd
->bootstatus
);
433 static DEVICE_ATTR_RO(bootstatus
);
435 static ssize_t
timeleft_show(struct device
*dev
, struct device_attribute
*attr
,
438 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
439 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
443 mutex_lock(&wd_data
->lock
);
444 status
= watchdog_get_timeleft(wdd
, &val
);
445 mutex_unlock(&wd_data
->lock
);
447 status
= sprintf(buf
, "%u\n", val
);
451 static DEVICE_ATTR_RO(timeleft
);
453 static ssize_t
timeout_show(struct device
*dev
, struct device_attribute
*attr
,
456 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
458 return sprintf(buf
, "%u\n", wdd
->timeout
);
460 static DEVICE_ATTR_RO(timeout
);
462 static ssize_t
pretimeout_show(struct device
*dev
,
463 struct device_attribute
*attr
, char *buf
)
465 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
467 return sprintf(buf
, "%u\n", wdd
->pretimeout
);
469 static DEVICE_ATTR_RO(pretimeout
);
471 static ssize_t
identity_show(struct device
*dev
, struct device_attribute
*attr
,
474 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
476 return sprintf(buf
, "%s\n", wdd
->info
->identity
);
478 static DEVICE_ATTR_RO(identity
);
480 static ssize_t
state_show(struct device
*dev
, struct device_attribute
*attr
,
483 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
485 if (watchdog_active(wdd
))
486 return sprintf(buf
, "active\n");
488 return sprintf(buf
, "inactive\n");
490 static DEVICE_ATTR_RO(state
);
492 static ssize_t
pretimeout_available_governors_show(struct device
*dev
,
493 struct device_attribute
*attr
, char *buf
)
495 return watchdog_pretimeout_available_governors_get(buf
);
497 static DEVICE_ATTR_RO(pretimeout_available_governors
);
499 static ssize_t
pretimeout_governor_show(struct device
*dev
,
500 struct device_attribute
*attr
,
503 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
505 return watchdog_pretimeout_governor_get(wdd
, buf
);
508 static ssize_t
pretimeout_governor_store(struct device
*dev
,
509 struct device_attribute
*attr
,
510 const char *buf
, size_t count
)
512 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
513 int ret
= watchdog_pretimeout_governor_set(wdd
, buf
);
520 static DEVICE_ATTR_RW(pretimeout_governor
);
522 static umode_t
wdt_is_visible(struct kobject
*kobj
, struct attribute
*attr
,
525 struct device
*dev
= container_of(kobj
, struct device
, kobj
);
526 struct watchdog_device
*wdd
= dev_get_drvdata(dev
);
527 umode_t mode
= attr
->mode
;
529 if (attr
== &dev_attr_timeleft
.attr
&& !wdd
->ops
->get_timeleft
)
531 else if (attr
== &dev_attr_pretimeout
.attr
&&
532 !(wdd
->info
->options
& WDIOF_PRETIMEOUT
))
534 else if ((attr
== &dev_attr_pretimeout_governor
.attr
||
535 attr
== &dev_attr_pretimeout_available_governors
.attr
) &&
536 (!(wdd
->info
->options
& WDIOF_PRETIMEOUT
) ||
537 !IS_ENABLED(CONFIG_WATCHDOG_PRETIMEOUT_GOV
)))
542 static struct attribute
*wdt_attrs
[] = {
543 &dev_attr_state
.attr
,
544 &dev_attr_identity
.attr
,
545 &dev_attr_timeout
.attr
,
546 &dev_attr_pretimeout
.attr
,
547 &dev_attr_timeleft
.attr
,
548 &dev_attr_bootstatus
.attr
,
549 &dev_attr_status
.attr
,
550 &dev_attr_nowayout
.attr
,
551 &dev_attr_pretimeout_governor
.attr
,
552 &dev_attr_pretimeout_available_governors
.attr
,
556 static const struct attribute_group wdt_group
= {
558 .is_visible
= wdt_is_visible
,
560 __ATTRIBUTE_GROUPS(wdt
);
562 #define wdt_groups NULL
566 * watchdog_ioctl_op: call the watchdog drivers ioctl op if defined
567 * @wdd: the watchdog device to do the ioctl on
568 * @cmd: watchdog command
569 * @arg: argument pointer
571 * The caller must hold wd_data->lock.
574 static int watchdog_ioctl_op(struct watchdog_device
*wdd
, unsigned int cmd
,
577 if (!wdd
->ops
->ioctl
)
580 return wdd
->ops
->ioctl(wdd
, cmd
, arg
);
584 * watchdog_write: writes to the watchdog.
585 * @file: file from VFS
586 * @data: user address of data
587 * @len: length of data
588 * @ppos: pointer to the file offset
590 * A write to a watchdog device is defined as a keepalive ping.
591 * Writing the magic 'V' sequence allows the next close to turn
592 * off the watchdog (if 'nowayout' is not set).
595 static ssize_t
watchdog_write(struct file
*file
, const char __user
*data
,
596 size_t len
, loff_t
*ppos
)
598 struct watchdog_core_data
*wd_data
= file
->private_data
;
599 struct watchdog_device
*wdd
;
608 * Note: just in case someone wrote the magic character
611 clear_bit(_WDOG_ALLOW_RELEASE
, &wd_data
->status
);
613 /* scan to see whether or not we got the magic character */
614 for (i
= 0; i
!= len
; i
++) {
615 if (get_user(c
, data
+ i
))
618 set_bit(_WDOG_ALLOW_RELEASE
, &wd_data
->status
);
621 /* someone wrote to us, so we send the watchdog a keepalive ping */
624 mutex_lock(&wd_data
->lock
);
627 err
= watchdog_ping(wdd
);
628 mutex_unlock(&wd_data
->lock
);
637 * watchdog_ioctl: handle the different ioctl's for the watchdog device.
638 * @file: file handle to the device
639 * @cmd: watchdog command
640 * @arg: argument pointer
642 * The watchdog API defines a common set of functions for all watchdogs
643 * according to their available features.
646 static long watchdog_ioctl(struct file
*file
, unsigned int cmd
,
649 struct watchdog_core_data
*wd_data
= file
->private_data
;
650 void __user
*argp
= (void __user
*)arg
;
651 struct watchdog_device
*wdd
;
652 int __user
*p
= argp
;
656 mutex_lock(&wd_data
->lock
);
664 err
= watchdog_ioctl_op(wdd
, cmd
, arg
);
665 if (err
!= -ENOIOCTLCMD
)
669 case WDIOC_GETSUPPORT
:
670 err
= copy_to_user(argp
, wdd
->info
,
671 sizeof(struct watchdog_info
)) ? -EFAULT
: 0;
673 case WDIOC_GETSTATUS
:
674 val
= watchdog_get_status(wdd
);
675 err
= put_user(val
, p
);
677 case WDIOC_GETBOOTSTATUS
:
678 err
= put_user(wdd
->bootstatus
, p
);
680 case WDIOC_SETOPTIONS
:
681 if (get_user(val
, p
)) {
685 if (val
& WDIOS_DISABLECARD
) {
686 err
= watchdog_stop(wdd
);
690 if (val
& WDIOS_ENABLECARD
)
691 err
= watchdog_start(wdd
);
693 case WDIOC_KEEPALIVE
:
694 if (!(wdd
->info
->options
& WDIOF_KEEPALIVEPING
)) {
698 err
= watchdog_ping(wdd
);
700 case WDIOC_SETTIMEOUT
:
701 if (get_user(val
, p
)) {
705 err
= watchdog_set_timeout(wdd
, val
);
708 /* If the watchdog is active then we send a keepalive ping
709 * to make sure that the watchdog keep's running (and if
710 * possible that it takes the new timeout) */
711 err
= watchdog_ping(wdd
);
715 case WDIOC_GETTIMEOUT
:
716 /* timeout == 0 means that we don't know the timeout */
717 if (wdd
->timeout
== 0) {
721 err
= put_user(wdd
->timeout
, p
);
723 case WDIOC_GETTIMELEFT
:
724 err
= watchdog_get_timeleft(wdd
, &val
);
727 err
= put_user(val
, p
);
729 case WDIOC_SETPRETIMEOUT
:
730 if (get_user(val
, p
)) {
734 err
= watchdog_set_pretimeout(wdd
, val
);
736 case WDIOC_GETPRETIMEOUT
:
737 err
= put_user(wdd
->pretimeout
, p
);
745 mutex_unlock(&wd_data
->lock
);
750 * watchdog_open: open the /dev/watchdog* devices.
751 * @inode: inode of device
752 * @file: file handle to device
754 * When the /dev/watchdog* device gets opened, we start the watchdog.
755 * Watch out: the /dev/watchdog device is single open, so we make sure
756 * it can only be opened once.
759 static int watchdog_open(struct inode
*inode
, struct file
*file
)
761 struct watchdog_core_data
*wd_data
;
762 struct watchdog_device
*wdd
;
765 /* Get the corresponding watchdog device */
766 if (imajor(inode
) == MISC_MAJOR
)
767 wd_data
= old_wd_data
;
769 wd_data
= container_of(inode
->i_cdev
, struct watchdog_core_data
,
772 /* the watchdog is single open! */
773 if (test_and_set_bit(_WDOG_DEV_OPEN
, &wd_data
->status
))
779 * If the /dev/watchdog device is open, we don't want the module
782 if (!watchdog_hw_running(wdd
) && !try_module_get(wdd
->ops
->owner
)) {
787 err
= watchdog_start(wdd
);
791 file
->private_data
= wd_data
;
793 if (!watchdog_hw_running(wdd
))
794 kref_get(&wd_data
->kref
);
796 /* dev/watchdog is a virtual (and thus non-seekable) filesystem */
797 return nonseekable_open(inode
, file
);
800 module_put(wd_data
->wdd
->ops
->owner
);
802 clear_bit(_WDOG_DEV_OPEN
, &wd_data
->status
);
806 static void watchdog_core_data_release(struct kref
*kref
)
808 struct watchdog_core_data
*wd_data
;
810 wd_data
= container_of(kref
, struct watchdog_core_data
, kref
);
816 * watchdog_release: release the watchdog device.
817 * @inode: inode of device
818 * @file: file handle to device
820 * This is the code for when /dev/watchdog gets closed. We will only
821 * stop the watchdog when we have received the magic char (and nowayout
822 * was not set), else the watchdog will keep running.
825 static int watchdog_release(struct inode
*inode
, struct file
*file
)
827 struct watchdog_core_data
*wd_data
= file
->private_data
;
828 struct watchdog_device
*wdd
;
832 mutex_lock(&wd_data
->lock
);
839 * We only stop the watchdog if we received the magic character
840 * or if WDIOF_MAGICCLOSE is not set. If nowayout was set then
841 * watchdog_stop will fail.
843 if (!test_bit(WDOG_ACTIVE
, &wdd
->status
))
845 else if (test_and_clear_bit(_WDOG_ALLOW_RELEASE
, &wd_data
->status
) ||
846 !(wdd
->info
->options
& WDIOF_MAGICCLOSE
))
847 err
= watchdog_stop(wdd
);
849 /* If the watchdog was not stopped, send a keepalive ping */
851 pr_crit("watchdog%d: watchdog did not stop!\n", wdd
->id
);
855 watchdog_update_worker(wdd
);
857 /* make sure that /dev/watchdog can be re-opened */
858 clear_bit(_WDOG_DEV_OPEN
, &wd_data
->status
);
861 running
= wdd
&& watchdog_hw_running(wdd
);
862 mutex_unlock(&wd_data
->lock
);
864 * Allow the owner module to be unloaded again unless the watchdog
865 * is still running. If the watchdog is still running, it can not
866 * be stopped, and its driver must not be unloaded.
869 module_put(wd_data
->cdev
.owner
);
870 kref_put(&wd_data
->kref
, watchdog_core_data_release
);
875 static const struct file_operations watchdog_fops
= {
876 .owner
= THIS_MODULE
,
877 .write
= watchdog_write
,
878 .unlocked_ioctl
= watchdog_ioctl
,
879 .open
= watchdog_open
,
880 .release
= watchdog_release
,
883 static struct miscdevice watchdog_miscdev
= {
884 .minor
= WATCHDOG_MINOR
,
886 .fops
= &watchdog_fops
,
890 * watchdog_cdev_register: register watchdog character device
891 * @wdd: watchdog device
892 * @devno: character device number
894 * Register a watchdog character device including handling the legacy
895 * /dev/watchdog node. /dev/watchdog is actually a miscdevice and
896 * thus we set it up like that.
899 static int watchdog_cdev_register(struct watchdog_device
*wdd
, dev_t devno
)
901 struct watchdog_core_data
*wd_data
;
904 wd_data
= kzalloc(sizeof(struct watchdog_core_data
), GFP_KERNEL
);
907 kref_init(&wd_data
->kref
);
908 mutex_init(&wd_data
->lock
);
911 wdd
->wd_data
= wd_data
;
916 INIT_DELAYED_WORK(&wd_data
->work
, watchdog_ping_work
);
919 old_wd_data
= wd_data
;
920 watchdog_miscdev
.parent
= wdd
->parent
;
921 err
= misc_register(&watchdog_miscdev
);
923 pr_err("%s: cannot register miscdev on minor=%d (err=%d).\n",
924 wdd
->info
->identity
, WATCHDOG_MINOR
, err
);
926 pr_err("%s: a legacy watchdog module is probably present.\n",
927 wdd
->info
->identity
);
934 /* Fill in the data structures */
935 cdev_init(&wd_data
->cdev
, &watchdog_fops
);
936 wd_data
->cdev
.owner
= wdd
->ops
->owner
;
939 err
= cdev_add(&wd_data
->cdev
, devno
, 1);
941 pr_err("watchdog%d unable to add device %d:%d\n",
942 wdd
->id
, MAJOR(watchdog_devt
), wdd
->id
);
944 misc_deregister(&watchdog_miscdev
);
946 kref_put(&wd_data
->kref
, watchdog_core_data_release
);
951 /* Record time of most recent heartbeat as 'just before now'. */
952 wd_data
->last_hw_keepalive
= jiffies
- 1;
955 * If the watchdog is running, prevent its driver from being unloaded,
956 * and schedule an immediate ping.
958 if (watchdog_hw_running(wdd
)) {
959 __module_get(wdd
->ops
->owner
);
960 kref_get(&wd_data
->kref
);
961 queue_delayed_work(watchdog_wq
, &wd_data
->work
, 0);
968 * watchdog_cdev_unregister: unregister watchdog character device
969 * @watchdog: watchdog device
971 * Unregister watchdog character device and if needed the legacy
972 * /dev/watchdog device.
975 static void watchdog_cdev_unregister(struct watchdog_device
*wdd
)
977 struct watchdog_core_data
*wd_data
= wdd
->wd_data
;
979 cdev_del(&wd_data
->cdev
);
981 misc_deregister(&watchdog_miscdev
);
985 mutex_lock(&wd_data
->lock
);
988 mutex_unlock(&wd_data
->lock
);
990 cancel_delayed_work_sync(&wd_data
->work
);
992 kref_put(&wd_data
->kref
, watchdog_core_data_release
);
995 static struct class watchdog_class
= {
997 .owner
= THIS_MODULE
,
998 .dev_groups
= wdt_groups
,
1002 * watchdog_dev_register: register a watchdog device
1003 * @wdd: watchdog device
1005 * Register a watchdog device including handling the legacy
1006 * /dev/watchdog node. /dev/watchdog is actually a miscdevice and
1007 * thus we set it up like that.
1010 int watchdog_dev_register(struct watchdog_device
*wdd
)
1016 devno
= MKDEV(MAJOR(watchdog_devt
), wdd
->id
);
1018 ret
= watchdog_cdev_register(wdd
, devno
);
1022 dev
= device_create_with_groups(&watchdog_class
, wdd
->parent
,
1023 devno
, wdd
, wdd
->groups
,
1024 "watchdog%d", wdd
->id
);
1026 watchdog_cdev_unregister(wdd
);
1027 return PTR_ERR(dev
);
1030 ret
= watchdog_register_pretimeout(wdd
);
1032 device_destroy(&watchdog_class
, devno
);
1033 watchdog_cdev_unregister(wdd
);
1040 * watchdog_dev_unregister: unregister a watchdog device
1041 * @watchdog: watchdog device
1043 * Unregister watchdog device and if needed the legacy
1044 * /dev/watchdog device.
1047 void watchdog_dev_unregister(struct watchdog_device
*wdd
)
1049 watchdog_unregister_pretimeout(wdd
);
1050 device_destroy(&watchdog_class
, wdd
->wd_data
->cdev
.dev
);
1051 watchdog_cdev_unregister(wdd
);
1055 * watchdog_dev_init: init dev part of watchdog core
1057 * Allocate a range of chardev nodes to use for watchdog devices
1060 int __init
watchdog_dev_init(void)
1064 watchdog_wq
= alloc_workqueue("watchdogd",
1065 WQ_HIGHPRI
| WQ_MEM_RECLAIM
, 0);
1067 pr_err("Failed to create watchdog workqueue\n");
1071 err
= class_register(&watchdog_class
);
1073 pr_err("couldn't register class\n");
1077 err
= alloc_chrdev_region(&watchdog_devt
, 0, MAX_DOGS
, "watchdog");
1079 pr_err("watchdog: unable to allocate char dev region\n");
1086 class_unregister(&watchdog_class
);
1088 destroy_workqueue(watchdog_wq
);
1093 * watchdog_dev_exit: exit dev part of watchdog core
1095 * Release the range of chardev nodes used for watchdog devices
1098 void __exit
watchdog_dev_exit(void)
1100 unregister_chrdev_region(watchdog_devt
, MAX_DOGS
);
1101 class_unregister(&watchdog_class
);
1102 destroy_workqueue(watchdog_wq
);