| xj | b04a402 | 2021-11-25 15:01:52 +0800 | [diff] [blame] | 1 | /* | 
 | 2 |  *	watchdog_dev.c | 
 | 3 |  * | 
 | 4 |  *	(c) Copyright 2008-2011 Alan Cox <alan@lxorguk.ukuu.org.uk>, | 
 | 5 |  *						All Rights Reserved. | 
 | 6 |  * | 
 | 7 |  *	(c) Copyright 2008-2011 Wim Van Sebroeck <wim@iguana.be>. | 
 | 8 |  * | 
 | 9 |  * | 
 | 10 |  *	This source code is part of the generic code that can be used | 
 | 11 |  *	by all the watchdog timer drivers. | 
 | 12 |  * | 
 | 13 |  *	This part of the generic code takes care of the following | 
 | 14 |  *	misc device: /dev/watchdog. | 
 | 15 |  * | 
 | 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> | 
 | 22 |  * | 
 | 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. | 
 | 27 |  * | 
 | 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. | 
 | 31 |  */ | 
 | 32 |  | 
 | 33 | #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt | 
 | 34 |  | 
 | 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/hrtimer.h>	/* For hrtimers */ | 
 | 40 | #include <linux/kernel.h>	/* For printk/panic/... */ | 
 | 41 | #include <linux/kthread.h>	/* For kthread_work */ | 
 | 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/reboot.h>	/* For reboot notifier */ | 
 | 46 | #include <linux/slab.h>		/* For memory functions */ | 
 | 47 | #include <linux/types.h>	/* For standard types (like size_t) */ | 
 | 48 | #include <linux/watchdog.h>	/* For watchdog specific items */ | 
 | 49 | #include <linux/uaccess.h>	/* For copy_to_user/put_user/... */ | 
 | 50 |  | 
 | 51 | #include <uapi/linux/sched/types.h>	/* For struct sched_param */ | 
 | 52 |  | 
 | 53 | #include "watchdog_core.h" | 
 | 54 | #include "watchdog_pretimeout.h" | 
 | 55 |  | 
 | 56 | #ifdef CONFIG_MTK_AEE_IPANIC | 
 | 57 | #include <mt-plat/mboot_params.h> | 
 | 58 | #endif | 
 | 59 |  | 
 | 60 | /* | 
 | 61 |  * struct watchdog_core_data - watchdog core internal data | 
 | 62 |  * @dev:	The watchdog's internal device | 
 | 63 |  * @cdev:	The watchdog's Character device. | 
 | 64 |  * @wdd:	Pointer to watchdog device. | 
 | 65 |  * @lock:	Lock for watchdog core. | 
 | 66 |  * @status:	Watchdog core internal status bits. | 
 | 67 |  */ | 
 | 68 | struct watchdog_core_data { | 
 | 69 | 	struct device dev; | 
 | 70 | 	struct cdev cdev; | 
 | 71 | 	struct watchdog_device *wdd; | 
 | 72 | 	struct mutex lock; | 
 | 73 | 	ktime_t last_keepalive; | 
 | 74 | 	ktime_t last_hw_keepalive; | 
 | 75 | 	struct hrtimer timer; | 
 | 76 | 	struct kthread_work work; | 
 | 77 | 	unsigned long status;		/* Internal status bits */ | 
 | 78 | #define _WDOG_DEV_OPEN		0	/* Opened ? */ | 
 | 79 | #define _WDOG_ALLOW_RELEASE	1	/* Did we receive the magic char ? */ | 
 | 80 | #define _WDOG_KEEPALIVE		2	/* Did we receive a keepalive ? */ | 
 | 81 | }; | 
 | 82 |  | 
 | 83 | /* the dev_t structure to store the dynamically allocated watchdog devices */ | 
 | 84 | static dev_t watchdog_devt; | 
 | 85 | /* Reference to watchdog device behind /dev/watchdog */ | 
 | 86 | static struct watchdog_core_data *old_wd_data; | 
 | 87 |  | 
 | 88 | static struct kthread_worker *watchdog_kworker; | 
 | 89 |  | 
 | 90 | static bool handle_boot_enabled = | 
 | 91 | 	IS_ENABLED(CONFIG_WATCHDOG_HANDLE_BOOT_ENABLED); | 
 | 92 |  | 
 | 93 | #ifdef CONFIG_MTK_AEE_IPANIC | 
 | 94 | static char dbg_buf[128] = { 0 }; | 
 | 95 | #define aee_log(fmt, ...) \ | 
 | 96 | do { \ | 
 | 97 | 	memset(dbg_buf, 0, sizeof(dbg_buf)); \ | 
 | 98 | 	snprintf(dbg_buf, sizeof(dbg_buf), fmt, ##__VA_ARGS__); \ | 
 | 99 | 	aee_sram_fiq_log(dbg_buf); \ | 
 | 100 | } while (0) | 
 | 101 |  | 
 | 102 | void dump_watchdog_dev_info(void) | 
 | 103 | { | 
 | 104 | 	struct hrtimer *wdd_timer; | 
 | 105 | 	struct kthread_work *work = NULL; | 
 | 106 |  | 
 | 107 | 	if (old_wd_data && old_wd_data->wdd && watchdog_active(old_wd_data->wdd)) { | 
 | 108 | 		aee_log("watchdog ping is taken by user space process\n"); | 
 | 109 | 	} else { | 
 | 110 | 		if (watchdog_kworker) { | 
 | 111 | 		    aee_log("watchdog_kworker flags: 0x%x, comm: %s\n", watchdog_kworker->flags, watchdog_kworker->task->comm); | 
 | 112 | 			if (!list_empty(&watchdog_kworker->work_list)) { | 
 | 113 | 				work = list_first_entry(&watchdog_kworker->work_list, | 
 | 114 | 					struct kthread_work, node); | 
 | 115 | 				aee_log("watchdog_work %pF\n", work->func); | 
 | 116 | 			} else { | 
 | 117 | 				aee_log("watchdog_work empty\n"); | 
 | 118 | 			} | 
 | 119 | 			if (watchdog_kworker->current_work) { | 
 | 120 | 				aee_log("current_work fn: %pF\n", watchdog_kworker->current_work->func); | 
 | 121 | 			} | 
 | 122 | 		} | 
 | 123 | 		if (old_wd_data && old_wd_data->wdd && old_wd_data->wdd->wd_data) { | 
 | 124 | 			wdd_timer = &old_wd_data->wdd->wd_data->timer; | 
 | 125 | 			aee_log("wdd timer next expired: %lld(%lld), state %d, fn: %pF\n", ktime_to_ns(wdd_timer->_softexpires), ktime_to_ns(wdd_timer->node.expires), wdd_timer->state, wdd_timer->function); | 
 | 126 | 		} | 
 | 127 | 	} | 
 | 128 | } | 
 | 129 | #endif | 
 | 130 |  | 
 | 131 | static inline bool watchdog_need_worker(struct watchdog_device *wdd) | 
 | 132 | { | 
 | 133 | 	/* All variables in milli-seconds */ | 
 | 134 | 	unsigned int hm = wdd->max_hw_heartbeat_ms; | 
 | 135 | 	unsigned int t = wdd->timeout * 1000; | 
 | 136 |  | 
 | 137 | 	/* | 
 | 138 | 	 * A worker to generate heartbeat requests is needed if all of the | 
 | 139 | 	 * following conditions are true. | 
 | 140 | 	 * - Userspace activated the watchdog. | 
 | 141 | 	 * - The driver provided a value for the maximum hardware timeout, and | 
 | 142 | 	 *   thus is aware that the framework supports generating heartbeat | 
 | 143 | 	 *   requests. | 
 | 144 | 	 * - Userspace requests a longer timeout than the hardware can handle. | 
 | 145 | 	 * | 
 | 146 | 	 * Alternatively, if userspace has not opened the watchdog | 
 | 147 | 	 * device, we take care of feeding the watchdog if it is | 
 | 148 | 	 * running. | 
 | 149 | 	 */ | 
 | 150 | 	return (hm && watchdog_active(wdd) && t > hm) || | 
 | 151 | 		(t && !watchdog_active(wdd) && watchdog_hw_running(wdd)); | 
 | 152 | } | 
 | 153 |  | 
 | 154 | static ktime_t watchdog_next_keepalive(struct watchdog_device *wdd) | 
 | 155 | { | 
 | 156 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 157 | 	unsigned int timeout_ms = wdd->timeout * 1000; | 
 | 158 | 	ktime_t keepalive_interval; | 
 | 159 | 	ktime_t last_heartbeat, latest_heartbeat; | 
 | 160 | 	ktime_t virt_timeout; | 
 | 161 | 	unsigned int hw_heartbeat_ms; | 
 | 162 |  | 
 | 163 | 	virt_timeout = ktime_add(wd_data->last_keepalive, | 
 | 164 | 				 ms_to_ktime(timeout_ms)); | 
 | 165 | 	hw_heartbeat_ms = min_not_zero(timeout_ms, wdd->max_hw_heartbeat_ms); | 
 | 166 | 	keepalive_interval = ms_to_ktime(hw_heartbeat_ms / 2); | 
 | 167 |  | 
 | 168 | 	if (!watchdog_active(wdd)) | 
 | 169 | 		return keepalive_interval; | 
 | 170 |  | 
 | 171 | 	/* | 
 | 172 | 	 * To ensure that the watchdog times out wdd->timeout seconds | 
 | 173 | 	 * after the most recent ping from userspace, the last | 
 | 174 | 	 * worker ping has to come in hw_heartbeat_ms before this timeout. | 
 | 175 | 	 */ | 
 | 176 | 	last_heartbeat = ktime_sub(virt_timeout, ms_to_ktime(hw_heartbeat_ms)); | 
 | 177 | 	latest_heartbeat = ktime_sub(last_heartbeat, ktime_get()); | 
 | 178 | 	if (ktime_before(latest_heartbeat, keepalive_interval)) | 
 | 179 | 		return latest_heartbeat; | 
 | 180 | 	return keepalive_interval; | 
 | 181 | } | 
 | 182 |  | 
 | 183 | static inline void watchdog_update_worker(struct watchdog_device *wdd) | 
 | 184 | { | 
 | 185 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 186 |  | 
 | 187 | 	if (watchdog_need_worker(wdd)) { | 
 | 188 | 		ktime_t t = watchdog_next_keepalive(wdd); | 
 | 189 |  | 
 | 190 | 		if (t > 0) | 
 | 191 | 			hrtimer_start(&wd_data->timer, t, HRTIMER_MODE_REL); | 
 | 192 | 	} else { | 
 | 193 | 		hrtimer_cancel(&wd_data->timer); | 
 | 194 | 	} | 
 | 195 | } | 
 | 196 |  | 
 | 197 | static int __watchdog_ping(struct watchdog_device *wdd) | 
 | 198 | { | 
 | 199 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 200 | 	ktime_t earliest_keepalive, now; | 
 | 201 | 	int err; | 
 | 202 |  | 
 | 203 | 	earliest_keepalive = ktime_add(wd_data->last_hw_keepalive, | 
 | 204 | 				       ms_to_ktime(wdd->min_hw_heartbeat_ms)); | 
 | 205 | 	now = ktime_get(); | 
 | 206 |  | 
 | 207 | 	if (ktime_after(earliest_keepalive, now)) { | 
 | 208 | 		hrtimer_start(&wd_data->timer, | 
 | 209 | 			      ktime_sub(earliest_keepalive, now), | 
 | 210 | 			      HRTIMER_MODE_REL); | 
 | 211 | 		return 0; | 
 | 212 | 	} | 
 | 213 |  | 
 | 214 | 	wd_data->last_hw_keepalive = now; | 
 | 215 |  | 
 | 216 | 	if (wdd->ops->ping) | 
 | 217 | 		err = wdd->ops->ping(wdd);  /* ping the watchdog */ | 
 | 218 | 	else | 
 | 219 | 		err = wdd->ops->start(wdd); /* restart watchdog */ | 
 | 220 |  | 
 | 221 | 	watchdog_update_worker(wdd); | 
 | 222 |  | 
 | 223 | 	return err; | 
 | 224 | } | 
 | 225 |  | 
 | 226 | /* | 
 | 227 |  *	watchdog_ping: ping the watchdog. | 
 | 228 |  *	@wdd: the watchdog device to ping | 
 | 229 |  * | 
 | 230 |  *	The caller must hold wd_data->lock. | 
 | 231 |  * | 
 | 232 |  *	If the watchdog has no own ping operation then it needs to be | 
 | 233 |  *	restarted via the start operation. This wrapper function does | 
 | 234 |  *	exactly that. | 
 | 235 |  *	We only ping when the watchdog device is running. | 
 | 236 |  */ | 
 | 237 |  | 
 | 238 | static int watchdog_ping(struct watchdog_device *wdd) | 
 | 239 | { | 
 | 240 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 241 |  | 
 | 242 | 	if (!watchdog_active(wdd) && !watchdog_hw_running(wdd)) | 
 | 243 | 		return 0; | 
 | 244 |  | 
 | 245 | 	set_bit(_WDOG_KEEPALIVE, &wd_data->status); | 
 | 246 |  | 
 | 247 | 	wd_data->last_keepalive = ktime_get(); | 
 | 248 | 	return __watchdog_ping(wdd); | 
 | 249 | } | 
 | 250 |  | 
 | 251 | static bool watchdog_worker_should_ping(struct watchdog_core_data *wd_data) | 
 | 252 | { | 
 | 253 | 	struct watchdog_device *wdd = wd_data->wdd; | 
 | 254 |  | 
 | 255 | 	return wdd && (watchdog_active(wdd) || watchdog_hw_running(wdd)); | 
 | 256 | } | 
 | 257 |  | 
 | 258 | static void watchdog_ping_work(struct kthread_work *work) | 
 | 259 | { | 
 | 260 | 	struct watchdog_core_data *wd_data; | 
 | 261 |  | 
 | 262 | 	wd_data = container_of(work, struct watchdog_core_data, work); | 
 | 263 |  | 
 | 264 | 	mutex_lock(&wd_data->lock); | 
 | 265 | 	if (watchdog_worker_should_ping(wd_data)) | 
 | 266 | 		__watchdog_ping(wd_data->wdd); | 
 | 267 | 	mutex_unlock(&wd_data->lock); | 
 | 268 | } | 
 | 269 |  | 
 | 270 | static enum hrtimer_restart watchdog_timer_expired(struct hrtimer *timer) | 
 | 271 | { | 
 | 272 | 	struct watchdog_core_data *wd_data; | 
 | 273 |  | 
 | 274 | 	wd_data = container_of(timer, struct watchdog_core_data, timer); | 
 | 275 |  | 
 | 276 | 	kthread_queue_work(watchdog_kworker, &wd_data->work); | 
 | 277 | 	return HRTIMER_NORESTART; | 
 | 278 | } | 
 | 279 |  | 
 | 280 | /* | 
 | 281 |  *	watchdog_start: wrapper to start the watchdog. | 
 | 282 |  *	@wdd: the watchdog device to start | 
 | 283 |  * | 
 | 284 |  *	The caller must hold wd_data->lock. | 
 | 285 |  * | 
 | 286 |  *	Start the watchdog if it is not active and mark it active. | 
 | 287 |  *	This function returns zero on success or a negative errno code for | 
 | 288 |  *	failure. | 
 | 289 |  */ | 
 | 290 |  | 
 | 291 | static int watchdog_start(struct watchdog_device *wdd) | 
 | 292 | { | 
 | 293 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 294 | 	ktime_t started_at; | 
 | 295 | 	int err; | 
 | 296 |  | 
 | 297 | 	if (watchdog_active(wdd)) | 
 | 298 | 		return 0; | 
 | 299 |  | 
 | 300 | 	set_bit(_WDOG_KEEPALIVE, &wd_data->status); | 
 | 301 |  | 
 | 302 | 	started_at = ktime_get(); | 
 | 303 | 	if (watchdog_hw_running(wdd) && wdd->ops->ping) | 
 | 304 | 		err = wdd->ops->ping(wdd); | 
 | 305 | 	else | 
 | 306 | 		err = wdd->ops->start(wdd); | 
 | 307 | 	if (err == 0) { | 
 | 308 | 		set_bit(WDOG_ACTIVE, &wdd->status); | 
 | 309 | 		wd_data->last_keepalive = started_at; | 
 | 310 | 		watchdog_update_worker(wdd); | 
 | 311 | 	} | 
 | 312 |  | 
 | 313 | 	return err; | 
 | 314 | } | 
 | 315 |  | 
 | 316 | /* | 
 | 317 |  *	watchdog_stop: wrapper to stop the watchdog. | 
 | 318 |  *	@wdd: the watchdog device to stop | 
 | 319 |  * | 
 | 320 |  *	The caller must hold wd_data->lock. | 
 | 321 |  * | 
 | 322 |  *	Stop the watchdog if it is still active and unmark it active. | 
 | 323 |  *	This function returns zero on success or a negative errno code for | 
 | 324 |  *	failure. | 
 | 325 |  *	If the 'nowayout' feature was set, the watchdog cannot be stopped. | 
 | 326 |  */ | 
 | 327 |  | 
 | 328 | static int watchdog_stop(struct watchdog_device *wdd) | 
 | 329 | { | 
 | 330 | 	int err = 0; | 
 | 331 |  | 
 | 332 | 	if (!watchdog_active(wdd)) | 
 | 333 | 		return 0; | 
 | 334 |  | 
 | 335 | 	if (test_bit(WDOG_NO_WAY_OUT, &wdd->status)) { | 
 | 336 | 		pr_info("watchdog%d: nowayout prevents watchdog being stopped!\n", | 
 | 337 | 			wdd->id); | 
 | 338 | 		return -EBUSY; | 
 | 339 | 	} | 
 | 340 |  | 
 | 341 | 	if (wdd->ops->stop) { | 
 | 342 | 		clear_bit(WDOG_HW_RUNNING, &wdd->status); | 
 | 343 | 		err = wdd->ops->stop(wdd); | 
 | 344 | 	} else { | 
 | 345 | 		set_bit(WDOG_HW_RUNNING, &wdd->status); | 
 | 346 | 	} | 
 | 347 |  | 
 | 348 | 	if (err == 0) { | 
 | 349 | 		clear_bit(WDOG_ACTIVE, &wdd->status); | 
 | 350 | 		watchdog_update_worker(wdd); | 
 | 351 | 	} | 
 | 352 |  | 
 | 353 | 	return err; | 
 | 354 | } | 
 | 355 |  | 
 | 356 | /* | 
 | 357 |  *	watchdog_get_status: wrapper to get the watchdog status | 
 | 358 |  *	@wdd: the watchdog device to get the status from | 
 | 359 |  * | 
 | 360 |  *	The caller must hold wd_data->lock. | 
 | 361 |  * | 
 | 362 |  *	Get the watchdog's status flags. | 
 | 363 |  */ | 
 | 364 |  | 
 | 365 | static unsigned int watchdog_get_status(struct watchdog_device *wdd) | 
 | 366 | { | 
 | 367 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 368 | 	unsigned int status; | 
 | 369 |  | 
 | 370 | 	if (wdd->ops->status) | 
 | 371 | 		status = wdd->ops->status(wdd); | 
 | 372 | 	else | 
 | 373 | 		status = wdd->bootstatus & (WDIOF_CARDRESET | | 
 | 374 | 					    WDIOF_OVERHEAT | | 
 | 375 | 					    WDIOF_FANFAULT | | 
 | 376 | 					    WDIOF_EXTERN1 | | 
 | 377 | 					    WDIOF_EXTERN2 | | 
 | 378 | 					    WDIOF_POWERUNDER | | 
 | 379 | 					    WDIOF_POWEROVER); | 
 | 380 |  | 
 | 381 | 	if (test_bit(_WDOG_ALLOW_RELEASE, &wd_data->status)) | 
 | 382 | 		status |= WDIOF_MAGICCLOSE; | 
 | 383 |  | 
 | 384 | 	if (test_and_clear_bit(_WDOG_KEEPALIVE, &wd_data->status)) | 
 | 385 | 		status |= WDIOF_KEEPALIVEPING; | 
 | 386 |  | 
 | 387 | 	return status; | 
 | 388 | } | 
 | 389 |  | 
 | 390 | /* | 
 | 391 |  *	watchdog_set_timeout: set the watchdog timer timeout | 
 | 392 |  *	@wdd: the watchdog device to set the timeout for | 
 | 393 |  *	@timeout: timeout to set in seconds | 
 | 394 |  * | 
 | 395 |  *	The caller must hold wd_data->lock. | 
 | 396 |  */ | 
 | 397 |  | 
 | 398 | static int watchdog_set_timeout(struct watchdog_device *wdd, | 
 | 399 | 							unsigned int timeout) | 
 | 400 | { | 
 | 401 | 	int err = 0; | 
 | 402 |  | 
 | 403 | 	if (!(wdd->info->options & WDIOF_SETTIMEOUT)) | 
 | 404 | 		return -EOPNOTSUPP; | 
 | 405 |  | 
 | 406 | 	if (watchdog_timeout_invalid(wdd, timeout)) | 
 | 407 | 		return -EINVAL; | 
 | 408 |  | 
 | 409 | 	if (wdd->ops->set_timeout) { | 
 | 410 | 		err = wdd->ops->set_timeout(wdd, timeout); | 
 | 411 | 	} else { | 
 | 412 | 		wdd->timeout = timeout; | 
 | 413 | 		/* Disable pretimeout if it doesn't fit the new timeout */ | 
 | 414 | 		if (wdd->pretimeout >= wdd->timeout) | 
 | 415 | 			wdd->pretimeout = 0; | 
 | 416 | 	} | 
 | 417 |  | 
 | 418 | 	watchdog_update_worker(wdd); | 
 | 419 |  | 
 | 420 | 	return err; | 
 | 421 | } | 
 | 422 |  | 
 | 423 | /* | 
 | 424 |  *	watchdog_set_pretimeout: set the watchdog timer pretimeout | 
 | 425 |  *	@wdd: the watchdog device to set the timeout for | 
 | 426 |  *	@timeout: pretimeout to set in seconds | 
 | 427 |  */ | 
 | 428 |  | 
 | 429 | static int watchdog_set_pretimeout(struct watchdog_device *wdd, | 
 | 430 | 				   unsigned int timeout) | 
 | 431 | { | 
 | 432 | 	int err = 0; | 
 | 433 |  | 
 | 434 | 	if (!(wdd->info->options & WDIOF_PRETIMEOUT)) | 
 | 435 | 		return -EOPNOTSUPP; | 
 | 436 |  | 
 | 437 | 	if (watchdog_pretimeout_invalid(wdd, timeout)) | 
 | 438 | 		return -EINVAL; | 
 | 439 |  | 
 | 440 | 	if (wdd->ops->set_pretimeout) | 
 | 441 | 		err = wdd->ops->set_pretimeout(wdd, timeout); | 
 | 442 | 	else | 
 | 443 | 		wdd->pretimeout = timeout; | 
 | 444 |  | 
 | 445 | 	return err; | 
 | 446 | } | 
 | 447 |  | 
 | 448 | /* | 
 | 449 |  *	watchdog_get_timeleft: wrapper to get the time left before a reboot | 
 | 450 |  *	@wdd: the watchdog device to get the remaining time from | 
 | 451 |  *	@timeleft: the time that's left | 
 | 452 |  * | 
 | 453 |  *	The caller must hold wd_data->lock. | 
 | 454 |  * | 
 | 455 |  *	Get the time before a watchdog will reboot (if not pinged). | 
 | 456 |  */ | 
 | 457 |  | 
 | 458 | static int watchdog_get_timeleft(struct watchdog_device *wdd, | 
 | 459 | 							unsigned int *timeleft) | 
 | 460 | { | 
 | 461 | 	*timeleft = 0; | 
 | 462 |  | 
 | 463 | 	if (!wdd->ops->get_timeleft) | 
 | 464 | 		return -EOPNOTSUPP; | 
 | 465 |  | 
 | 466 | 	*timeleft = wdd->ops->get_timeleft(wdd); | 
 | 467 |  | 
 | 468 | 	return 0; | 
 | 469 | } | 
 | 470 |  | 
 | 471 | #ifdef CONFIG_WATCHDOG_SYSFS | 
 | 472 | static ssize_t nowayout_show(struct device *dev, struct device_attribute *attr, | 
 | 473 | 				char *buf) | 
 | 474 | { | 
 | 475 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 476 |  | 
 | 477 | 	return sprintf(buf, "%d\n", !!test_bit(WDOG_NO_WAY_OUT, &wdd->status)); | 
 | 478 | } | 
 | 479 | static DEVICE_ATTR_RO(nowayout); | 
 | 480 |  | 
 | 481 | static ssize_t status_show(struct device *dev, struct device_attribute *attr, | 
 | 482 | 				char *buf) | 
 | 483 | { | 
 | 484 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 485 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 486 | 	unsigned int status; | 
 | 487 |  | 
 | 488 | 	mutex_lock(&wd_data->lock); | 
 | 489 | 	status = watchdog_get_status(wdd); | 
 | 490 | 	mutex_unlock(&wd_data->lock); | 
 | 491 |  | 
 | 492 | 	return sprintf(buf, "0x%x\n", status); | 
 | 493 | } | 
 | 494 | static DEVICE_ATTR_RO(status); | 
 | 495 |  | 
 | 496 | static ssize_t bootstatus_show(struct device *dev, | 
 | 497 | 				struct device_attribute *attr, char *buf) | 
 | 498 | { | 
 | 499 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 500 |  | 
 | 501 | 	return sprintf(buf, "%u\n", wdd->bootstatus); | 
 | 502 | } | 
 | 503 | static DEVICE_ATTR_RO(bootstatus); | 
 | 504 |  | 
 | 505 | static ssize_t timeleft_show(struct device *dev, struct device_attribute *attr, | 
 | 506 | 				char *buf) | 
 | 507 | { | 
 | 508 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 509 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 510 | 	ssize_t status; | 
 | 511 | 	unsigned int val; | 
 | 512 |  | 
 | 513 | 	mutex_lock(&wd_data->lock); | 
 | 514 | 	status = watchdog_get_timeleft(wdd, &val); | 
 | 515 | 	mutex_unlock(&wd_data->lock); | 
 | 516 | 	if (!status) | 
 | 517 | 		status = sprintf(buf, "%u\n", val); | 
 | 518 |  | 
 | 519 | 	return status; | 
 | 520 | } | 
 | 521 | static DEVICE_ATTR_RO(timeleft); | 
 | 522 |  | 
 | 523 | static ssize_t timeout_show(struct device *dev, struct device_attribute *attr, | 
 | 524 | 				char *buf) | 
 | 525 | { | 
 | 526 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 527 |  | 
 | 528 | 	return sprintf(buf, "%u\n", wdd->timeout); | 
 | 529 | } | 
 | 530 | static DEVICE_ATTR_RO(timeout); | 
 | 531 |  | 
 | 532 | static ssize_t pretimeout_show(struct device *dev, | 
 | 533 | 			       struct device_attribute *attr, char *buf) | 
 | 534 | { | 
 | 535 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 536 |  | 
 | 537 | 	return sprintf(buf, "%u\n", wdd->pretimeout); | 
 | 538 | } | 
 | 539 | static DEVICE_ATTR_RO(pretimeout); | 
 | 540 |  | 
 | 541 | static ssize_t identity_show(struct device *dev, struct device_attribute *attr, | 
 | 542 | 				char *buf) | 
 | 543 | { | 
 | 544 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 545 |  | 
 | 546 | 	return sprintf(buf, "%s\n", wdd->info->identity); | 
 | 547 | } | 
 | 548 | static DEVICE_ATTR_RO(identity); | 
 | 549 |  | 
 | 550 | static ssize_t state_show(struct device *dev, struct device_attribute *attr, | 
 | 551 | 				char *buf) | 
 | 552 | { | 
 | 553 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 554 |  | 
 | 555 | 	if (watchdog_active(wdd)) | 
 | 556 | 		return sprintf(buf, "active\n"); | 
 | 557 |  | 
 | 558 | 	return sprintf(buf, "inactive\n"); | 
 | 559 | } | 
 | 560 | static DEVICE_ATTR_RO(state); | 
 | 561 |  | 
 | 562 | static ssize_t pretimeout_available_governors_show(struct device *dev, | 
 | 563 | 				   struct device_attribute *attr, char *buf) | 
 | 564 | { | 
 | 565 | 	return watchdog_pretimeout_available_governors_get(buf); | 
 | 566 | } | 
 | 567 | static DEVICE_ATTR_RO(pretimeout_available_governors); | 
 | 568 |  | 
 | 569 | static ssize_t pretimeout_governor_show(struct device *dev, | 
 | 570 | 					struct device_attribute *attr, | 
 | 571 | 					char *buf) | 
 | 572 | { | 
 | 573 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 574 |  | 
 | 575 | 	return watchdog_pretimeout_governor_get(wdd, buf); | 
 | 576 | } | 
 | 577 |  | 
 | 578 | static ssize_t pretimeout_governor_store(struct device *dev, | 
 | 579 | 					 struct device_attribute *attr, | 
 | 580 | 					 const char *buf, size_t count) | 
 | 581 | { | 
 | 582 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 583 | 	int ret = watchdog_pretimeout_governor_set(wdd, buf); | 
 | 584 |  | 
 | 585 | 	if (!ret) | 
 | 586 | 		ret = count; | 
 | 587 |  | 
 | 588 | 	return ret; | 
 | 589 | } | 
 | 590 | static DEVICE_ATTR_RW(pretimeout_governor); | 
 | 591 |  | 
 | 592 | static umode_t wdt_is_visible(struct kobject *kobj, struct attribute *attr, | 
 | 593 | 				int n) | 
 | 594 | { | 
 | 595 | 	struct device *dev = container_of(kobj, struct device, kobj); | 
 | 596 | 	struct watchdog_device *wdd = dev_get_drvdata(dev); | 
 | 597 | 	umode_t mode = attr->mode; | 
 | 598 |  | 
 | 599 | 	if (attr == &dev_attr_timeleft.attr && !wdd->ops->get_timeleft) | 
 | 600 | 		mode = 0; | 
 | 601 | 	else if (attr == &dev_attr_pretimeout.attr && | 
 | 602 | 		 !(wdd->info->options & WDIOF_PRETIMEOUT)) | 
 | 603 | 		mode = 0; | 
 | 604 | 	else if ((attr == &dev_attr_pretimeout_governor.attr || | 
 | 605 | 		  attr == &dev_attr_pretimeout_available_governors.attr) && | 
 | 606 | 		 (!(wdd->info->options & WDIOF_PRETIMEOUT) || | 
 | 607 | 		  !IS_ENABLED(CONFIG_WATCHDOG_PRETIMEOUT_GOV))) | 
 | 608 | 		mode = 0; | 
 | 609 |  | 
 | 610 | 	return mode; | 
 | 611 | } | 
 | 612 | static struct attribute *wdt_attrs[] = { | 
 | 613 | 	&dev_attr_state.attr, | 
 | 614 | 	&dev_attr_identity.attr, | 
 | 615 | 	&dev_attr_timeout.attr, | 
 | 616 | 	&dev_attr_pretimeout.attr, | 
 | 617 | 	&dev_attr_timeleft.attr, | 
 | 618 | 	&dev_attr_bootstatus.attr, | 
 | 619 | 	&dev_attr_status.attr, | 
 | 620 | 	&dev_attr_nowayout.attr, | 
 | 621 | 	&dev_attr_pretimeout_governor.attr, | 
 | 622 | 	&dev_attr_pretimeout_available_governors.attr, | 
 | 623 | 	NULL, | 
 | 624 | }; | 
 | 625 |  | 
 | 626 | static const struct attribute_group wdt_group = { | 
 | 627 | 	.attrs = wdt_attrs, | 
 | 628 | 	.is_visible = wdt_is_visible, | 
 | 629 | }; | 
 | 630 | __ATTRIBUTE_GROUPS(wdt); | 
 | 631 | #else | 
 | 632 | #define wdt_groups	NULL | 
 | 633 | #endif | 
 | 634 |  | 
 | 635 | /* | 
 | 636 |  *	watchdog_ioctl_op: call the watchdog drivers ioctl op if defined | 
 | 637 |  *	@wdd: the watchdog device to do the ioctl on | 
 | 638 |  *	@cmd: watchdog command | 
 | 639 |  *	@arg: argument pointer | 
 | 640 |  * | 
 | 641 |  *	The caller must hold wd_data->lock. | 
 | 642 |  */ | 
 | 643 |  | 
 | 644 | static int watchdog_ioctl_op(struct watchdog_device *wdd, unsigned int cmd, | 
 | 645 | 							unsigned long arg) | 
 | 646 | { | 
 | 647 | 	if (!wdd->ops->ioctl) | 
 | 648 | 		return -ENOIOCTLCMD; | 
 | 649 |  | 
 | 650 | 	return wdd->ops->ioctl(wdd, cmd, arg); | 
 | 651 | } | 
 | 652 |  | 
 | 653 | /* | 
 | 654 |  *	watchdog_write: writes to the watchdog. | 
 | 655 |  *	@file: file from VFS | 
 | 656 |  *	@data: user address of data | 
 | 657 |  *	@len: length of data | 
 | 658 |  *	@ppos: pointer to the file offset | 
 | 659 |  * | 
 | 660 |  *	A write to a watchdog device is defined as a keepalive ping. | 
 | 661 |  *	Writing the magic 'V' sequence allows the next close to turn | 
 | 662 |  *	off the watchdog (if 'nowayout' is not set). | 
 | 663 |  */ | 
 | 664 |  | 
 | 665 | static ssize_t watchdog_write(struct file *file, const char __user *data, | 
 | 666 | 						size_t len, loff_t *ppos) | 
 | 667 | { | 
 | 668 | 	struct watchdog_core_data *wd_data = file->private_data; | 
 | 669 | 	struct watchdog_device *wdd; | 
 | 670 | 	int err; | 
 | 671 | 	size_t i; | 
 | 672 | 	char c; | 
 | 673 |  | 
 | 674 | 	if (len == 0) | 
 | 675 | 		return 0; | 
 | 676 |  | 
 | 677 | 	/* | 
 | 678 | 	 * Note: just in case someone wrote the magic character | 
 | 679 | 	 * five months ago... | 
 | 680 | 	 */ | 
 | 681 | 	clear_bit(_WDOG_ALLOW_RELEASE, &wd_data->status); | 
 | 682 |  | 
 | 683 | 	/* scan to see whether or not we got the magic character */ | 
 | 684 | 	for (i = 0; i != len; i++) { | 
 | 685 | 		if (get_user(c, data + i)) | 
 | 686 | 			return -EFAULT; | 
 | 687 | 		if (c == 'V') | 
 | 688 | 			set_bit(_WDOG_ALLOW_RELEASE, &wd_data->status); | 
 | 689 | 	} | 
 | 690 |  | 
 | 691 | 	/* someone wrote to us, so we send the watchdog a keepalive ping */ | 
 | 692 |  | 
 | 693 | 	err = -ENODEV; | 
 | 694 | 	mutex_lock(&wd_data->lock); | 
 | 695 | 	wdd = wd_data->wdd; | 
 | 696 | 	if (wdd) | 
 | 697 | 		err = watchdog_ping(wdd); | 
 | 698 | 	mutex_unlock(&wd_data->lock); | 
 | 699 |  | 
 | 700 | 	if (err < 0) | 
 | 701 | 		return err; | 
 | 702 |  | 
 | 703 | 	return len; | 
 | 704 | } | 
 | 705 |  | 
 | 706 | /* | 
 | 707 |  *	watchdog_ioctl: handle the different ioctl's for the watchdog device. | 
 | 708 |  *	@file: file handle to the device | 
 | 709 |  *	@cmd: watchdog command | 
 | 710 |  *	@arg: argument pointer | 
 | 711 |  * | 
 | 712 |  *	The watchdog API defines a common set of functions for all watchdogs | 
 | 713 |  *	according to their available features. | 
 | 714 |  */ | 
 | 715 |  | 
 | 716 | static long watchdog_ioctl(struct file *file, unsigned int cmd, | 
 | 717 | 							unsigned long arg) | 
 | 718 | { | 
 | 719 | 	struct watchdog_core_data *wd_data = file->private_data; | 
 | 720 | 	void __user *argp = (void __user *)arg; | 
 | 721 | 	struct watchdog_device *wdd; | 
 | 722 | 	int __user *p = argp; | 
 | 723 | 	unsigned int val; | 
 | 724 | 	int err; | 
 | 725 |  | 
 | 726 | 	mutex_lock(&wd_data->lock); | 
 | 727 |  | 
 | 728 | 	wdd = wd_data->wdd; | 
 | 729 | 	if (!wdd) { | 
 | 730 | 		err = -ENODEV; | 
 | 731 | 		goto out_ioctl; | 
 | 732 | 	} | 
 | 733 |  | 
 | 734 | 	err = watchdog_ioctl_op(wdd, cmd, arg); | 
 | 735 | 	if (err != -ENOIOCTLCMD) | 
 | 736 | 		goto out_ioctl; | 
 | 737 |  | 
 | 738 | 	switch (cmd) { | 
 | 739 | 	case WDIOC_GETSUPPORT: | 
 | 740 | 		err = copy_to_user(argp, wdd->info, | 
 | 741 | 			sizeof(struct watchdog_info)) ? -EFAULT : 0; | 
 | 742 | 		break; | 
 | 743 | 	case WDIOC_GETSTATUS: | 
 | 744 | 		val = watchdog_get_status(wdd); | 
 | 745 | 		err = put_user(val, p); | 
 | 746 | 		break; | 
 | 747 | 	case WDIOC_GETBOOTSTATUS: | 
 | 748 | 		err = put_user(wdd->bootstatus, p); | 
 | 749 | 		break; | 
 | 750 | 	case WDIOC_SETOPTIONS: | 
 | 751 | 		if (get_user(val, p)) { | 
 | 752 | 			err = -EFAULT; | 
 | 753 | 			break; | 
 | 754 | 		} | 
 | 755 | 		if (val & WDIOS_DISABLECARD) { | 
 | 756 | 			err = watchdog_stop(wdd); | 
 | 757 | 			if (err < 0) | 
 | 758 | 				break; | 
 | 759 | 		} | 
 | 760 | 		if (val & WDIOS_ENABLECARD) | 
 | 761 | 			err = watchdog_start(wdd); | 
 | 762 | 		break; | 
 | 763 | 	case WDIOC_KEEPALIVE: | 
 | 764 | 		if (!(wdd->info->options & WDIOF_KEEPALIVEPING)) { | 
 | 765 | 			err = -EOPNOTSUPP; | 
 | 766 | 			break; | 
 | 767 | 		} | 
 | 768 | 		err = watchdog_ping(wdd); | 
 | 769 | 		break; | 
 | 770 | 	case WDIOC_SETTIMEOUT: | 
 | 771 | 		if (get_user(val, p)) { | 
 | 772 | 			err = -EFAULT; | 
 | 773 | 			break; | 
 | 774 | 		} | 
 | 775 | 		err = watchdog_set_timeout(wdd, val); | 
 | 776 | 		if (err < 0) | 
 | 777 | 			break; | 
 | 778 | 		/* If the watchdog is active then we send a keepalive ping | 
 | 779 | 		 * to make sure that the watchdog keep's running (and if | 
 | 780 | 		 * possible that it takes the new timeout) */ | 
 | 781 | 		err = watchdog_ping(wdd); | 
 | 782 | 		if (err < 0) | 
 | 783 | 			break; | 
 | 784 | 		/* fall through */ | 
 | 785 | 	case WDIOC_GETTIMEOUT: | 
 | 786 | 		/* timeout == 0 means that we don't know the timeout */ | 
 | 787 | 		if (wdd->timeout == 0) { | 
 | 788 | 			err = -EOPNOTSUPP; | 
 | 789 | 			break; | 
 | 790 | 		} | 
 | 791 | 		err = put_user(wdd->timeout, p); | 
 | 792 | 		break; | 
 | 793 | 	case WDIOC_GETTIMELEFT: | 
 | 794 | 		err = watchdog_get_timeleft(wdd, &val); | 
 | 795 | 		if (err < 0) | 
 | 796 | 			break; | 
 | 797 | 		err = put_user(val, p); | 
 | 798 | 		break; | 
 | 799 | 	case WDIOC_SETPRETIMEOUT: | 
 | 800 | 		if (get_user(val, p)) { | 
 | 801 | 			err = -EFAULT; | 
 | 802 | 			break; | 
 | 803 | 		} | 
 | 804 | 		err = watchdog_set_pretimeout(wdd, val); | 
 | 805 | 		break; | 
 | 806 | 	case WDIOC_GETPRETIMEOUT: | 
 | 807 | 		err = put_user(wdd->pretimeout, p); | 
 | 808 | 		break; | 
 | 809 | 	default: | 
 | 810 | 		err = -ENOTTY; | 
 | 811 | 		break; | 
 | 812 | 	} | 
 | 813 |  | 
 | 814 | out_ioctl: | 
 | 815 | 	mutex_unlock(&wd_data->lock); | 
 | 816 | 	return err; | 
 | 817 | } | 
 | 818 |  | 
 | 819 | /* | 
 | 820 |  *	watchdog_open: open the /dev/watchdog* devices. | 
 | 821 |  *	@inode: inode of device | 
 | 822 |  *	@file: file handle to device | 
 | 823 |  * | 
 | 824 |  *	When the /dev/watchdog* device gets opened, we start the watchdog. | 
 | 825 |  *	Watch out: the /dev/watchdog device is single open, so we make sure | 
 | 826 |  *	it can only be opened once. | 
 | 827 |  */ | 
 | 828 |  | 
 | 829 | static int watchdog_open(struct inode *inode, struct file *file) | 
 | 830 | { | 
 | 831 | 	struct watchdog_core_data *wd_data; | 
 | 832 | 	struct watchdog_device *wdd; | 
 | 833 | 	bool hw_running; | 
 | 834 | 	int err; | 
 | 835 |  | 
 | 836 | 	/* Get the corresponding watchdog device */ | 
 | 837 | 	if (imajor(inode) == MISC_MAJOR) | 
 | 838 | 		wd_data = old_wd_data; | 
 | 839 | 	else | 
 | 840 | 		wd_data = container_of(inode->i_cdev, struct watchdog_core_data, | 
 | 841 | 				       cdev); | 
 | 842 |  | 
 | 843 | 	/* the watchdog is single open! */ | 
 | 844 | 	if (test_and_set_bit(_WDOG_DEV_OPEN, &wd_data->status)) | 
 | 845 | 		return -EBUSY; | 
 | 846 |  | 
 | 847 | 	wdd = wd_data->wdd; | 
 | 848 |  | 
 | 849 | 	/* | 
 | 850 | 	 * If the /dev/watchdog device is open, we don't want the module | 
 | 851 | 	 * to be unloaded. | 
 | 852 | 	 */ | 
 | 853 | 	hw_running = watchdog_hw_running(wdd); | 
 | 854 | 	if (!hw_running && !try_module_get(wdd->ops->owner)) { | 
 | 855 | 		err = -EBUSY; | 
 | 856 | 		goto out_clear; | 
 | 857 | 	} | 
 | 858 |  | 
 | 859 | 	err = watchdog_start(wdd); | 
 | 860 | 	if (err < 0) | 
 | 861 | 		goto out_mod; | 
 | 862 |  | 
 | 863 | 	file->private_data = wd_data; | 
 | 864 |  | 
 | 865 | 	if (!hw_running) | 
 | 866 | 		get_device(&wd_data->dev); | 
 | 867 |  | 
 | 868 | 	/* dev/watchdog is a virtual (and thus non-seekable) filesystem */ | 
 | 869 | 	return nonseekable_open(inode, file); | 
 | 870 |  | 
 | 871 | out_mod: | 
 | 872 | 	module_put(wd_data->wdd->ops->owner); | 
 | 873 | out_clear: | 
 | 874 | 	clear_bit(_WDOG_DEV_OPEN, &wd_data->status); | 
 | 875 | 	return err; | 
 | 876 | } | 
 | 877 |  | 
 | 878 | static void watchdog_core_data_release(struct device *dev) | 
 | 879 | { | 
 | 880 | 	struct watchdog_core_data *wd_data; | 
 | 881 |  | 
 | 882 | 	wd_data = container_of(dev, struct watchdog_core_data, dev); | 
 | 883 |  | 
 | 884 | 	kfree(wd_data); | 
 | 885 | } | 
 | 886 |  | 
 | 887 | /* | 
 | 888 |  *	watchdog_release: release the watchdog device. | 
 | 889 |  *	@inode: inode of device | 
 | 890 |  *	@file: file handle to device | 
 | 891 |  * | 
 | 892 |  *	This is the code for when /dev/watchdog gets closed. We will only | 
 | 893 |  *	stop the watchdog when we have received the magic char (and nowayout | 
 | 894 |  *	was not set), else the watchdog will keep running. | 
 | 895 |  */ | 
 | 896 |  | 
 | 897 | static int watchdog_release(struct inode *inode, struct file *file) | 
 | 898 | { | 
 | 899 | 	struct watchdog_core_data *wd_data = file->private_data; | 
 | 900 | 	struct watchdog_device *wdd; | 
 | 901 | 	int err = -EBUSY; | 
 | 902 | 	bool running; | 
 | 903 |  | 
 | 904 | 	mutex_lock(&wd_data->lock); | 
 | 905 |  | 
 | 906 | 	wdd = wd_data->wdd; | 
 | 907 | 	if (!wdd) | 
 | 908 | 		goto done; | 
 | 909 |  | 
 | 910 | 	/* | 
 | 911 | 	 * We only stop the watchdog if we received the magic character | 
 | 912 | 	 * or if WDIOF_MAGICCLOSE is not set. If nowayout was set then | 
 | 913 | 	 * watchdog_stop will fail. | 
 | 914 | 	 */ | 
 | 915 | 	if (!test_bit(WDOG_ACTIVE, &wdd->status)) | 
 | 916 | 		err = 0; | 
 | 917 | 	else if (test_and_clear_bit(_WDOG_ALLOW_RELEASE, &wd_data->status) || | 
 | 918 | 		 !(wdd->info->options & WDIOF_MAGICCLOSE)) | 
 | 919 | 		err = watchdog_stop(wdd); | 
 | 920 |  | 
 | 921 | 	/* If the watchdog was not stopped, send a keepalive ping */ | 
 | 922 | 	if (err < 0) { | 
 | 923 | 		pr_crit("watchdog%d: watchdog did not stop!\n", wdd->id); | 
 | 924 | 		watchdog_ping(wdd); | 
 | 925 | 	} | 
 | 926 |  | 
 | 927 | 	watchdog_update_worker(wdd); | 
 | 928 |  | 
 | 929 | 	/* make sure that /dev/watchdog can be re-opened */ | 
 | 930 | 	clear_bit(_WDOG_DEV_OPEN, &wd_data->status); | 
 | 931 |  | 
 | 932 | done: | 
 | 933 | 	running = wdd && watchdog_hw_running(wdd); | 
 | 934 | 	mutex_unlock(&wd_data->lock); | 
 | 935 | 	/* | 
 | 936 | 	 * Allow the owner module to be unloaded again unless the watchdog | 
 | 937 | 	 * is still running. If the watchdog is still running, it can not | 
 | 938 | 	 * be stopped, and its driver must not be unloaded. | 
 | 939 | 	 */ | 
 | 940 | 	if (!running) { | 
 | 941 | 		module_put(wd_data->cdev.owner); | 
 | 942 | 		put_device(&wd_data->dev); | 
 | 943 | 	} | 
 | 944 | 	return 0; | 
 | 945 | } | 
 | 946 |  | 
 | 947 | static const struct file_operations watchdog_fops = { | 
 | 948 | 	.owner		= THIS_MODULE, | 
 | 949 | 	.write		= watchdog_write, | 
 | 950 | 	.unlocked_ioctl	= watchdog_ioctl, | 
 | 951 | 	.open		= watchdog_open, | 
 | 952 | 	.release	= watchdog_release, | 
 | 953 | }; | 
 | 954 |  | 
 | 955 | static struct miscdevice watchdog_miscdev = { | 
 | 956 | 	.minor		= WATCHDOG_MINOR, | 
 | 957 | 	.name		= "watchdog", | 
 | 958 | 	.fops		= &watchdog_fops, | 
 | 959 | }; | 
 | 960 |  | 
 | 961 | static struct class watchdog_class = { | 
 | 962 | 	.name =		"watchdog", | 
 | 963 | 	.owner =	THIS_MODULE, | 
 | 964 | 	.dev_groups =	wdt_groups, | 
 | 965 | }; | 
 | 966 |  | 
 | 967 | /* | 
 | 968 |  *	watchdog_cdev_register: register watchdog character device | 
 | 969 |  *	@wdd: watchdog device | 
 | 970 |  * | 
 | 971 |  *	Register a watchdog character device including handling the legacy | 
 | 972 |  *	/dev/watchdog node. /dev/watchdog is actually a miscdevice and | 
 | 973 |  *	thus we set it up like that. | 
 | 974 |  */ | 
 | 975 |  | 
 | 976 | static int watchdog_cdev_register(struct watchdog_device *wdd) | 
 | 977 | { | 
 | 978 | 	struct watchdog_core_data *wd_data; | 
 | 979 | 	int err; | 
 | 980 |  | 
 | 981 | 	wd_data = kzalloc(sizeof(struct watchdog_core_data), GFP_KERNEL); | 
 | 982 | 	if (!wd_data) | 
 | 983 | 		return -ENOMEM; | 
 | 984 | 	mutex_init(&wd_data->lock); | 
 | 985 |  | 
 | 986 | 	wd_data->wdd = wdd; | 
 | 987 | 	wdd->wd_data = wd_data; | 
 | 988 |  | 
 | 989 | 	if (IS_ERR_OR_NULL(watchdog_kworker)) | 
 | 990 | 		return -ENODEV; | 
 | 991 |  | 
 | 992 | 	kthread_init_work(&wd_data->work, watchdog_ping_work); | 
 | 993 | 	hrtimer_init(&wd_data->timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL); | 
 | 994 | 	wd_data->timer.function = watchdog_timer_expired; | 
 | 995 |  | 
 | 996 | 	if (wdd->id == 0) { | 
 | 997 | 		old_wd_data = wd_data; | 
 | 998 | 		watchdog_miscdev.parent = wdd->parent; | 
 | 999 | 		err = misc_register(&watchdog_miscdev); | 
 | 1000 | 		if (err != 0) { | 
 | 1001 | 			pr_err("%s: cannot register miscdev on minor=%d (err=%d).\n", | 
 | 1002 | 				wdd->info->identity, WATCHDOG_MINOR, err); | 
 | 1003 | 			if (err == -EBUSY) | 
 | 1004 | 				pr_err("%s: a legacy watchdog module is probably present.\n", | 
 | 1005 | 					wdd->info->identity); | 
 | 1006 | 			old_wd_data = NULL; | 
 | 1007 | 			kfree(wd_data); | 
 | 1008 | 			return err; | 
 | 1009 | 		} | 
 | 1010 | 	} | 
 | 1011 |  | 
 | 1012 | 	device_initialize(&wd_data->dev); | 
 | 1013 | 	wd_data->dev.devt = MKDEV(MAJOR(watchdog_devt), wdd->id); | 
 | 1014 | 	wd_data->dev.class = &watchdog_class; | 
 | 1015 | 	wd_data->dev.parent = wdd->parent; | 
 | 1016 | 	wd_data->dev.groups = wdd->groups; | 
 | 1017 | 	wd_data->dev.release = watchdog_core_data_release; | 
 | 1018 | 	dev_set_drvdata(&wd_data->dev, wdd); | 
 | 1019 | 	dev_set_name(&wd_data->dev, "watchdog%d", wdd->id); | 
 | 1020 |  | 
 | 1021 | 	/* Fill in the data structures */ | 
 | 1022 | 	cdev_init(&wd_data->cdev, &watchdog_fops); | 
 | 1023 |  | 
 | 1024 | 	/* Add the device */ | 
 | 1025 | 	err = cdev_device_add(&wd_data->cdev, &wd_data->dev); | 
 | 1026 | 	if (err) { | 
 | 1027 | 		pr_err("watchdog%d unable to add device %d:%d\n", | 
 | 1028 | 			wdd->id,  MAJOR(watchdog_devt), wdd->id); | 
 | 1029 | 		if (wdd->id == 0) { | 
 | 1030 | 			misc_deregister(&watchdog_miscdev); | 
 | 1031 | 			old_wd_data = NULL; | 
 | 1032 | 			put_device(&wd_data->dev); | 
 | 1033 | 		} | 
 | 1034 | 		return err; | 
 | 1035 | 	} | 
 | 1036 |  | 
 | 1037 | 	wd_data->cdev.owner = wdd->ops->owner; | 
 | 1038 |  | 
 | 1039 | 	/* Record time of most recent heartbeat as 'just before now'. */ | 
 | 1040 | 	wd_data->last_hw_keepalive = ktime_sub(ktime_get(), 1); | 
 | 1041 |  | 
 | 1042 | 	/* | 
 | 1043 | 	 * If the watchdog is running, prevent its driver from being unloaded, | 
 | 1044 | 	 * and schedule an immediate ping. | 
 | 1045 | 	 */ | 
 | 1046 | 	if (watchdog_hw_running(wdd)) { | 
 | 1047 | 		__module_get(wdd->ops->owner); | 
 | 1048 | 		get_device(&wd_data->dev); | 
 | 1049 | 		if (handle_boot_enabled) | 
 | 1050 | 			hrtimer_start(&wd_data->timer, 0, HRTIMER_MODE_REL); | 
 | 1051 | 		else | 
 | 1052 | 			pr_info("watchdog%d running and kernel based pre-userspace handler disabled\n", | 
 | 1053 | 				wdd->id); | 
 | 1054 | 	} | 
 | 1055 |  | 
 | 1056 | 	return 0; | 
 | 1057 | } | 
 | 1058 |  | 
 | 1059 | /* | 
 | 1060 |  *	watchdog_cdev_unregister: unregister watchdog character device | 
 | 1061 |  *	@watchdog: watchdog device | 
 | 1062 |  * | 
 | 1063 |  *	Unregister watchdog character device and if needed the legacy | 
 | 1064 |  *	/dev/watchdog device. | 
 | 1065 |  */ | 
 | 1066 |  | 
 | 1067 | static void watchdog_cdev_unregister(struct watchdog_device *wdd) | 
 | 1068 | { | 
 | 1069 | 	struct watchdog_core_data *wd_data = wdd->wd_data; | 
 | 1070 |  | 
 | 1071 | 	cdev_device_del(&wd_data->cdev, &wd_data->dev); | 
 | 1072 | 	if (wdd->id == 0) { | 
 | 1073 | 		misc_deregister(&watchdog_miscdev); | 
 | 1074 | 		old_wd_data = NULL; | 
 | 1075 | 	} | 
 | 1076 |  | 
 | 1077 | 	if (watchdog_active(wdd) && | 
 | 1078 | 	    test_bit(WDOG_STOP_ON_UNREGISTER, &wdd->status)) { | 
 | 1079 | 		watchdog_stop(wdd); | 
 | 1080 | 	} | 
 | 1081 |  | 
 | 1082 | 	mutex_lock(&wd_data->lock); | 
 | 1083 | 	wd_data->wdd = NULL; | 
 | 1084 | 	wdd->wd_data = NULL; | 
 | 1085 | 	mutex_unlock(&wd_data->lock); | 
 | 1086 |  | 
 | 1087 | 	hrtimer_cancel(&wd_data->timer); | 
 | 1088 | 	kthread_cancel_work_sync(&wd_data->work); | 
 | 1089 |  | 
 | 1090 | 	put_device(&wd_data->dev); | 
 | 1091 | } | 
 | 1092 |  | 
 | 1093 | static int watchdog_reboot_notifier(struct notifier_block *nb, | 
 | 1094 | 				    unsigned long code, void *data) | 
 | 1095 | { | 
 | 1096 | 	struct watchdog_device *wdd; | 
 | 1097 |  | 
 | 1098 | 	wdd = container_of(nb, struct watchdog_device, reboot_nb); | 
 | 1099 | 	if (code == SYS_DOWN || code == SYS_HALT) { | 
 | 1100 | 		if (watchdog_active(wdd)) { | 
 | 1101 | 			int ret; | 
 | 1102 |  | 
 | 1103 | 			ret = wdd->ops->stop(wdd); | 
 | 1104 | 			if (ret) | 
 | 1105 | 				return NOTIFY_BAD; | 
 | 1106 | 		} | 
 | 1107 | 	} | 
 | 1108 |  | 
 | 1109 | 	return NOTIFY_DONE; | 
 | 1110 | } | 
 | 1111 |  | 
 | 1112 | /* | 
 | 1113 |  *	watchdog_dev_register: register a watchdog device | 
 | 1114 |  *	@wdd: watchdog device | 
 | 1115 |  * | 
 | 1116 |  *	Register a watchdog device including handling the legacy | 
 | 1117 |  *	/dev/watchdog node. /dev/watchdog is actually a miscdevice and | 
 | 1118 |  *	thus we set it up like that. | 
 | 1119 |  */ | 
 | 1120 |  | 
 | 1121 | int watchdog_dev_register(struct watchdog_device *wdd) | 
 | 1122 | { | 
 | 1123 | 	int ret; | 
 | 1124 |  | 
 | 1125 | 	ret = watchdog_cdev_register(wdd); | 
 | 1126 | 	if (ret) | 
 | 1127 | 		return ret; | 
 | 1128 |  | 
 | 1129 | 	ret = watchdog_register_pretimeout(wdd); | 
 | 1130 | 	if (ret) { | 
 | 1131 | 		watchdog_cdev_unregister(wdd); | 
 | 1132 | 		return ret; | 
 | 1133 | 	} | 
 | 1134 |  | 
 | 1135 | 	if (test_bit(WDOG_STOP_ON_REBOOT, &wdd->status)) { | 
 | 1136 | 		wdd->reboot_nb.notifier_call = watchdog_reboot_notifier; | 
 | 1137 |  | 
 | 1138 | 		ret = devm_register_reboot_notifier(&wdd->wd_data->dev, | 
 | 1139 | 						    &wdd->reboot_nb); | 
 | 1140 | 		if (ret) { | 
 | 1141 | 			pr_err("watchdog%d: Cannot register reboot notifier (%d)\n", | 
 | 1142 | 			       wdd->id, ret); | 
 | 1143 | 			watchdog_dev_unregister(wdd); | 
 | 1144 | 		} | 
 | 1145 | 	} | 
 | 1146 |  | 
 | 1147 | 	return ret; | 
 | 1148 | } | 
 | 1149 |  | 
 | 1150 | /* | 
 | 1151 |  *	watchdog_dev_unregister: unregister a watchdog device | 
 | 1152 |  *	@watchdog: watchdog device | 
 | 1153 |  * | 
 | 1154 |  *	Unregister watchdog device and if needed the legacy | 
 | 1155 |  *	/dev/watchdog device. | 
 | 1156 |  */ | 
 | 1157 |  | 
 | 1158 | void watchdog_dev_unregister(struct watchdog_device *wdd) | 
 | 1159 | { | 
 | 1160 | 	watchdog_unregister_pretimeout(wdd); | 
 | 1161 | 	watchdog_cdev_unregister(wdd); | 
 | 1162 | } | 
 | 1163 |  | 
 | 1164 | /* | 
 | 1165 |  *	watchdog_dev_init: init dev part of watchdog core | 
 | 1166 |  * | 
 | 1167 |  *	Allocate a range of chardev nodes to use for watchdog devices | 
 | 1168 |  */ | 
 | 1169 |  | 
 | 1170 | int __init watchdog_dev_init(void) | 
 | 1171 | { | 
 | 1172 | 	int err; | 
 | 1173 | 	struct sched_param param = {.sched_priority = MAX_RT_PRIO - 1,}; | 
 | 1174 |  | 
 | 1175 | 	watchdog_kworker = kthread_create_worker(0, "watchdogd"); | 
 | 1176 | 	if (IS_ERR(watchdog_kworker)) { | 
 | 1177 | 		pr_err("Failed to create watchdog kworker\n"); | 
 | 1178 | 		return PTR_ERR(watchdog_kworker); | 
 | 1179 | 	} | 
 | 1180 | 	sched_setscheduler(watchdog_kworker->task, SCHED_FIFO, ¶m); | 
 | 1181 |  | 
 | 1182 | 	err = class_register(&watchdog_class); | 
 | 1183 | 	if (err < 0) { | 
 | 1184 | 		pr_err("couldn't register class\n"); | 
 | 1185 | 		goto err_register; | 
 | 1186 | 	} | 
 | 1187 |  | 
 | 1188 | 	err = alloc_chrdev_region(&watchdog_devt, 0, MAX_DOGS, "watchdog"); | 
 | 1189 | 	if (err < 0) { | 
 | 1190 | 		pr_err("watchdog: unable to allocate char dev region\n"); | 
 | 1191 | 		goto err_alloc; | 
 | 1192 | 	} | 
 | 1193 |  | 
 | 1194 | 	return 0; | 
 | 1195 |  | 
 | 1196 | err_alloc: | 
 | 1197 | 	class_unregister(&watchdog_class); | 
 | 1198 | err_register: | 
 | 1199 | 	kthread_destroy_worker(watchdog_kworker); | 
 | 1200 | 	return err; | 
 | 1201 | } | 
 | 1202 |  | 
 | 1203 | /* | 
 | 1204 |  *	watchdog_dev_exit: exit dev part of watchdog core | 
 | 1205 |  * | 
 | 1206 |  *	Release the range of chardev nodes used for watchdog devices | 
 | 1207 |  */ | 
 | 1208 |  | 
 | 1209 | void __exit watchdog_dev_exit(void) | 
 | 1210 | { | 
 | 1211 | 	unregister_chrdev_region(watchdog_devt, MAX_DOGS); | 
 | 1212 | 	class_unregister(&watchdog_class); | 
 | 1213 | 	kthread_destroy_worker(watchdog_kworker); | 
 | 1214 | } | 
 | 1215 |  | 
 | 1216 | module_param(handle_boot_enabled, bool, 0444); | 
 | 1217 | MODULE_PARM_DESC(handle_boot_enabled, | 
 | 1218 | 	"Watchdog core auto-updates boot enabled watchdogs before userspace takes over (default=" | 
 | 1219 | 	__MODULE_STRING(IS_ENABLED(CONFIG_WATCHDOG_HANDLE_BOOT_ENABLED)) ")"); |