1 // SPDX-License-Identifier: GPL-2.0+ 2 /* 3 * watchdog_dev.c 4 * 5 * (c) Copyright 2008-2011 Alan Cox <alan@lxorguk.ukuu.org.uk>, 6 * All Rights Reserved. 7 * 8 * (c) Copyright 2008-2011 Wim Van Sebroeck <wim@iguana.be>. 9 * 10 * (c) Copyright 2021 Hewlett Packard Enterprise Development LP. 11 * 12 * This source code is part of the generic code that can be used 13 * by all the watchdog timer drivers. 14 * 15 * This part of the generic code takes care of the following 16 * misc device: /dev/watchdog. 17 * 18 * Based on source code of the following authors: 19 * Matt Domsch <Matt_Domsch@dell.com>, 20 * Rob Radez <rob@osinvestor.com>, 21 * Rusty Lynch <rusty@linux.co.intel.com> 22 * Satyam Sharma <satyam@infradead.org> 23 * Randy Dunlap <randy.dunlap@oracle.com> 24 * 25 * Neither Alan Cox, CymruNet Ltd., Wim Van Sebroeck nor Iguana vzw. 26 * admit liability nor provide warranty for any of this software. 27 * This material is provided "AS-IS" and at no charge. 28 */ 29 30 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 31 32 #include <linux/cdev.h> /* For character device */ 33 #include <linux/errno.h> /* For the -ENODEV/... values */ 34 #include <linux/fs.h> /* For file operations */ 35 #include <linux/init.h> /* For __init/__exit/... */ 36 #include <linux/hrtimer.h> /* For hrtimers */ 37 #include <linux/kernel.h> /* For printk/panic/... */ 38 #include <linux/kstrtox.h> /* For kstrto* */ 39 #include <linux/kthread.h> /* For kthread_work */ 40 #include <linux/miscdevice.h> /* For handling misc devices */ 41 #include <linux/module.h> /* For module stuff/... */ 42 #include <linux/mutex.h> /* For mutexes */ 43 #include <linux/slab.h> /* For memory functions */ 44 #include <linux/types.h> /* For standard types (like size_t) */ 45 #include <linux/watchdog.h> /* For watchdog specific items */ 46 #include <linux/uaccess.h> /* For copy_to_user/put_user/... */ 47 48 #include "watchdog_core.h" 49 #include "watchdog_pretimeout.h" 50 51 #include <trace/events/watchdog.h> 52 53 /* the dev_t structure to store the dynamically allocated watchdog devices */ 54 static dev_t watchdog_devt; 55 /* Reference to watchdog device behind /dev/watchdog */ 56 static struct watchdog_core_data *old_wd_data; 57 58 static struct kthread_worker *watchdog_kworker; 59 60 static bool handle_boot_enabled = 61 IS_ENABLED(CONFIG_WATCHDOG_HANDLE_BOOT_ENABLED); 62 63 static unsigned open_timeout = CONFIG_WATCHDOG_OPEN_TIMEOUT; 64 65 static bool watchdog_past_open_deadline(struct watchdog_core_data *data) 66 { 67 return ktime_after(ktime_get(), data->open_deadline); 68 } 69 70 static void watchdog_set_open_deadline(struct watchdog_core_data *data) 71 { 72 data->open_deadline = open_timeout ? 73 ktime_get() + ktime_set(open_timeout, 0) : KTIME_MAX; 74 } 75 76 static inline bool watchdog_need_worker(struct watchdog_device *wdd) 77 { 78 /* All variables in milli-seconds */ 79 unsigned int hm = wdd->max_hw_heartbeat_ms; 80 unsigned int t = wdd->timeout * 1000; 81 82 /* 83 * A worker to generate heartbeat requests is needed if all of the 84 * following conditions are true. 85 * - Userspace activated the watchdog. 86 * - The driver provided a value for the maximum hardware timeout, and 87 * thus is aware that the framework supports generating heartbeat 88 * requests. 89 * - Userspace requests a longer timeout than the hardware can handle. 90 * 91 * Alternatively, if userspace has not opened the watchdog 92 * device, we take care of feeding the watchdog if it is 93 * running. 94 */ 95 return (hm && watchdog_active(wdd) && t > hm) || 96 (t && !watchdog_active(wdd) && watchdog_hw_running(wdd)); 97 } 98 99 static ktime_t watchdog_next_keepalive(struct watchdog_device *wdd) 100 { 101 struct watchdog_core_data *wd_data = wdd->wd_data; 102 unsigned int timeout_ms = wdd->timeout * 1000; 103 ktime_t keepalive_interval; 104 ktime_t last_heartbeat, latest_heartbeat; 105 ktime_t virt_timeout; 106 unsigned int hw_heartbeat_ms; 107 108 if (watchdog_active(wdd)) 109 virt_timeout = ktime_add(wd_data->last_keepalive, 110 ms_to_ktime(timeout_ms)); 111 else 112 virt_timeout = wd_data->open_deadline; 113 114 hw_heartbeat_ms = min_not_zero(timeout_ms, wdd->max_hw_heartbeat_ms); 115 keepalive_interval = ms_to_ktime(hw_heartbeat_ms / 2); 116 117 /* 118 * To ensure that the watchdog times out wdd->timeout seconds 119 * after the most recent ping from userspace, the last 120 * worker ping has to come in hw_heartbeat_ms before this timeout. 121 */ 122 last_heartbeat = ktime_sub(virt_timeout, ms_to_ktime(hw_heartbeat_ms)); 123 latest_heartbeat = ktime_sub(last_heartbeat, ktime_get()); 124 if (ktime_before(latest_heartbeat, keepalive_interval)) 125 return latest_heartbeat; 126 return keepalive_interval; 127 } 128 129 static inline void watchdog_update_worker(struct watchdog_device *wdd) 130 { 131 struct watchdog_core_data *wd_data = wdd->wd_data; 132 133 if (watchdog_need_worker(wdd)) { 134 ktime_t t = watchdog_next_keepalive(wdd); 135 136 if (t > 0) 137 hrtimer_start(&wd_data->timer, t, 138 HRTIMER_MODE_REL_HARD); 139 } else { 140 hrtimer_cancel(&wd_data->timer); 141 } 142 } 143 144 static int __watchdog_ping(struct watchdog_device *wdd) 145 { 146 struct watchdog_core_data *wd_data = wdd->wd_data; 147 ktime_t earliest_keepalive, now; 148 int err; 149 150 earliest_keepalive = ktime_add(wd_data->last_hw_keepalive, 151 ms_to_ktime(wdd->min_hw_heartbeat_ms)); 152 now = ktime_get(); 153 154 if (ktime_after(earliest_keepalive, now)) { 155 hrtimer_start(&wd_data->timer, 156 ktime_sub(earliest_keepalive, now), 157 HRTIMER_MODE_REL_HARD); 158 return 0; 159 } 160 161 wd_data->last_hw_keepalive = now; 162 163 if (wdd->ops->ping) { 164 err = wdd->ops->ping(wdd); /* ping the watchdog */ 165 trace_watchdog_ping(wdd, err); 166 } else { 167 err = wdd->ops->start(wdd); /* restart watchdog */ 168 trace_watchdog_start(wdd, err); 169 } 170 171 if (err == 0) 172 watchdog_hrtimer_pretimeout_start(wdd); 173 174 watchdog_update_worker(wdd); 175 176 return err; 177 } 178 179 /* 180 * watchdog_ping - ping the watchdog 181 * @wdd: The watchdog device to ping 182 * 183 * If the watchdog has no own ping operation then it needs to be 184 * restarted via the start operation. This wrapper function does 185 * exactly that. 186 * We only ping when the watchdog device is running. 187 * The caller must hold wd_data->lock. 188 * 189 * Return: 0 on success, error otherwise. 190 */ 191 static int watchdog_ping(struct watchdog_device *wdd) 192 { 193 struct watchdog_core_data *wd_data = wdd->wd_data; 194 195 if (!watchdog_hw_running(wdd)) 196 return 0; 197 198 set_bit(_WDOG_KEEPALIVE, &wd_data->status); 199 200 wd_data->last_keepalive = ktime_get(); 201 return __watchdog_ping(wdd); 202 } 203 204 static bool watchdog_worker_should_ping(struct watchdog_core_data *wd_data) 205 { 206 struct watchdog_device *wdd = wd_data->wdd; 207 208 if (!wdd) 209 return false; 210 211 if (watchdog_active(wdd)) 212 return true; 213 214 return watchdog_hw_running(wdd) && !watchdog_past_open_deadline(wd_data); 215 } 216 217 static void watchdog_ping_work(struct kthread_work *work) 218 { 219 struct watchdog_core_data *wd_data; 220 221 wd_data = container_of(work, struct watchdog_core_data, work); 222 223 mutex_lock(&wd_data->lock); 224 if (watchdog_worker_should_ping(wd_data)) 225 __watchdog_ping(wd_data->wdd); 226 mutex_unlock(&wd_data->lock); 227 } 228 229 static enum hrtimer_restart watchdog_timer_expired(struct hrtimer *timer) 230 { 231 struct watchdog_core_data *wd_data; 232 233 wd_data = container_of(timer, struct watchdog_core_data, timer); 234 235 kthread_queue_work(watchdog_kworker, &wd_data->work); 236 return HRTIMER_NORESTART; 237 } 238 239 /* 240 * watchdog_start - wrapper to start the watchdog 241 * @wdd: The watchdog device to start 242 * 243 * Start the watchdog if it is not active and mark it active. 244 * The caller must hold wd_data->lock. 245 * 246 * Return: 0 on success or a negative errno code for failure. 247 */ 248 static int watchdog_start(struct watchdog_device *wdd) 249 { 250 struct watchdog_core_data *wd_data = wdd->wd_data; 251 ktime_t started_at; 252 int err; 253 254 if (watchdog_active(wdd)) 255 return 0; 256 257 set_bit(_WDOG_KEEPALIVE, &wd_data->status); 258 259 started_at = ktime_get(); 260 if (watchdog_hw_running(wdd) && wdd->ops->ping) { 261 err = __watchdog_ping(wdd); 262 if (err == 0) { 263 set_bit(WDOG_ACTIVE, &wdd->status); 264 watchdog_hrtimer_pretimeout_start(wdd); 265 } 266 } else { 267 err = wdd->ops->start(wdd); 268 trace_watchdog_start(wdd, err); 269 if (err == 0) { 270 set_bit(WDOG_ACTIVE, &wdd->status); 271 set_bit(WDOG_HW_RUNNING, &wdd->status); 272 wd_data->last_keepalive = started_at; 273 wd_data->last_hw_keepalive = started_at; 274 watchdog_update_worker(wdd); 275 watchdog_hrtimer_pretimeout_start(wdd); 276 } 277 } 278 279 return err; 280 } 281 282 /* 283 * watchdog_stop - wrapper to stop the watchdog 284 * @wdd: The watchdog device to stop 285 * 286 * Stop the watchdog if it is still active and unmark it active. 287 * If the 'nowayout' feature was set, the watchdog cannot be stopped. 288 * The caller must hold wd_data->lock. 289 * 290 * Return: 0 on success or a negative errno code for failure. 291 */ 292 static int watchdog_stop(struct watchdog_device *wdd) 293 { 294 int err = 0; 295 296 if (!watchdog_active(wdd)) 297 return 0; 298 299 if (test_bit(WDOG_NO_WAY_OUT, &wdd->status)) { 300 pr_info("watchdog%d: nowayout prevents watchdog being stopped!\n", 301 wdd->id); 302 return -EBUSY; 303 } 304 305 if (wdd->ops->stop) { 306 clear_bit(WDOG_HW_RUNNING, &wdd->status); 307 err = wdd->ops->stop(wdd); 308 trace_watchdog_stop(wdd, err); 309 } else { 310 set_bit(WDOG_HW_RUNNING, &wdd->status); 311 } 312 313 if (err == 0) { 314 clear_bit(WDOG_ACTIVE, &wdd->status); 315 watchdog_update_worker(wdd); 316 watchdog_hrtimer_pretimeout_stop(wdd); 317 } 318 319 return err; 320 } 321 322 /* 323 * watchdog_get_status - wrapper to get the watchdog status 324 * @wdd: The watchdog device to get the status from 325 * 326 * Get the watchdog's status flags. 327 * The caller must hold wd_data->lock. 328 * 329 * Return: watchdog's status flags. 330 */ 331 static unsigned int watchdog_get_status(struct watchdog_device *wdd) 332 { 333 struct watchdog_core_data *wd_data = wdd->wd_data; 334 unsigned int status; 335 336 if (wdd->ops->status) 337 status = wdd->ops->status(wdd); 338 else 339 status = wdd->bootstatus & (WDIOF_CARDRESET | 340 WDIOF_OVERHEAT | 341 WDIOF_FANFAULT | 342 WDIOF_EXTERN1 | 343 WDIOF_EXTERN2 | 344 WDIOF_POWERUNDER | 345 WDIOF_POWEROVER); 346 347 if (test_bit(_WDOG_ALLOW_RELEASE, &wd_data->status)) 348 status |= WDIOF_MAGICCLOSE; 349 350 if (test_and_clear_bit(_WDOG_KEEPALIVE, &wd_data->status)) 351 status |= WDIOF_KEEPALIVEPING; 352 353 if (IS_ENABLED(CONFIG_WATCHDOG_HRTIMER_PRETIMEOUT)) 354 status |= WDIOF_PRETIMEOUT; 355 356 return status; 357 } 358 359 /* 360 * watchdog_set_timeout - set the watchdog timer timeout 361 * @wdd: The watchdog device to set the timeout for 362 * @timeout: Timeout to set in seconds 363 * 364 * The caller must hold wd_data->lock. 365 * 366 * Return: 0 if successful, error otherwise. 367 */ 368 static int watchdog_set_timeout(struct watchdog_device *wdd, 369 unsigned int timeout) 370 { 371 int err = 0; 372 373 if (!(wdd->info->options & WDIOF_SETTIMEOUT)) 374 return -EOPNOTSUPP; 375 376 if (watchdog_timeout_invalid(wdd, timeout)) 377 return -EINVAL; 378 379 if (wdd->ops->set_timeout) { 380 err = wdd->ops->set_timeout(wdd, timeout); 381 trace_watchdog_set_timeout(wdd, timeout, err); 382 } else { 383 wdd->timeout = timeout; 384 /* Disable pretimeout if it doesn't fit the new timeout */ 385 if (wdd->pretimeout >= wdd->timeout) 386 wdd->pretimeout = 0; 387 } 388 389 watchdog_update_worker(wdd); 390 391 return err; 392 } 393 394 /* 395 * watchdog_set_pretimeout - set the watchdog timer pretimeout 396 * @wdd: The watchdog device to set the timeout for 397 * @timeout: pretimeout to set in seconds 398 * 399 * Return: 0 if successful, error otherwise. 400 */ 401 static int watchdog_set_pretimeout(struct watchdog_device *wdd, 402 unsigned int timeout) 403 { 404 int err = 0; 405 406 if (!watchdog_have_pretimeout(wdd)) 407 return -EOPNOTSUPP; 408 409 if (watchdog_pretimeout_invalid(wdd, timeout)) 410 return -EINVAL; 411 412 if (wdd->ops->set_pretimeout && (wdd->info->options & WDIOF_PRETIMEOUT)) 413 err = wdd->ops->set_pretimeout(wdd, timeout); 414 else 415 wdd->pretimeout = timeout; 416 417 return err; 418 } 419 420 /* 421 * watchdog_get_timeleft - wrapper to get the time left before a reboot 422 * @wdd: The watchdog device to get the remaining time from 423 * @timeleft: The time that's left 424 * 425 * Get the time before a watchdog will reboot (if not pinged). 426 * The caller must hold wd_data->lock. 427 */ 428 static void watchdog_get_timeleft(struct watchdog_device *wdd, 429 unsigned int *timeleft) 430 { 431 *timeleft = 0; 432 433 if (wdd->ops->get_timeleft) { 434 *timeleft = wdd->ops->get_timeleft(wdd); 435 } else { 436 struct watchdog_core_data *wd_data = wdd->wd_data; 437 s64 last_keepalive_ms = ktime_ms_delta(ktime_get(), wd_data->last_keepalive); 438 s64 last_keepalive = DIV_ROUND_UP_ULL(last_keepalive_ms, 1000); 439 440 if (wdd->timeout > last_keepalive) 441 *timeleft = wdd->timeout - last_keepalive; 442 } 443 } 444 445 #ifdef CONFIG_WATCHDOG_SYSFS 446 static ssize_t nowayout_show(struct device *dev, struct device_attribute *attr, 447 char *buf) 448 { 449 struct watchdog_device *wdd = dev_get_drvdata(dev); 450 451 return sysfs_emit(buf, "%d\n", !!test_bit(WDOG_NO_WAY_OUT, 452 &wdd->status)); 453 } 454 455 static ssize_t nowayout_store(struct device *dev, struct device_attribute *attr, 456 const char *buf, size_t len) 457 { 458 struct watchdog_device *wdd = dev_get_drvdata(dev); 459 unsigned int value; 460 int ret; 461 462 ret = kstrtouint(buf, 0, &value); 463 if (ret) 464 return ret; 465 if (value > 1) 466 return -EINVAL; 467 /* nowayout cannot be disabled once set */ 468 if (test_bit(WDOG_NO_WAY_OUT, &wdd->status) && !value) 469 return -EPERM; 470 watchdog_set_nowayout(wdd, value); 471 return len; 472 } 473 static DEVICE_ATTR_RW(nowayout); 474 475 static ssize_t status_show(struct device *dev, struct device_attribute *attr, 476 char *buf) 477 { 478 struct watchdog_device *wdd = dev_get_drvdata(dev); 479 struct watchdog_core_data *wd_data = wdd->wd_data; 480 unsigned int status; 481 482 mutex_lock(&wd_data->lock); 483 status = watchdog_get_status(wdd); 484 mutex_unlock(&wd_data->lock); 485 486 return sysfs_emit(buf, "0x%x\n", status); 487 } 488 static DEVICE_ATTR_RO(status); 489 490 static ssize_t bootstatus_show(struct device *dev, 491 struct device_attribute *attr, char *buf) 492 { 493 struct watchdog_device *wdd = dev_get_drvdata(dev); 494 495 return sysfs_emit(buf, "%u\n", wdd->bootstatus); 496 } 497 static DEVICE_ATTR_RO(bootstatus); 498 499 static ssize_t timeleft_show(struct device *dev, struct device_attribute *attr, 500 char *buf) 501 { 502 struct watchdog_device *wdd = dev_get_drvdata(dev); 503 struct watchdog_core_data *wd_data = wdd->wd_data; 504 unsigned int val; 505 506 mutex_lock(&wd_data->lock); 507 watchdog_get_timeleft(wdd, &val); 508 mutex_unlock(&wd_data->lock); 509 510 return sysfs_emit(buf, "%u\n", val); 511 } 512 static DEVICE_ATTR_RO(timeleft); 513 514 static ssize_t timeout_show(struct device *dev, struct device_attribute *attr, 515 char *buf) 516 { 517 struct watchdog_device *wdd = dev_get_drvdata(dev); 518 519 return sysfs_emit(buf, "%u\n", wdd->timeout); 520 } 521 static DEVICE_ATTR_RO(timeout); 522 523 static ssize_t min_timeout_show(struct device *dev, 524 struct device_attribute *attr, char *buf) 525 { 526 struct watchdog_device *wdd = dev_get_drvdata(dev); 527 528 return sysfs_emit(buf, "%u\n", wdd->min_timeout); 529 } 530 static DEVICE_ATTR_RO(min_timeout); 531 532 static ssize_t max_timeout_show(struct device *dev, 533 struct device_attribute *attr, char *buf) 534 { 535 struct watchdog_device *wdd = dev_get_drvdata(dev); 536 537 return sysfs_emit(buf, "%u\n", wdd->max_timeout); 538 } 539 static DEVICE_ATTR_RO(max_timeout); 540 541 static ssize_t pretimeout_show(struct device *dev, 542 struct device_attribute *attr, char *buf) 543 { 544 struct watchdog_device *wdd = dev_get_drvdata(dev); 545 546 return sysfs_emit(buf, "%u\n", wdd->pretimeout); 547 } 548 static DEVICE_ATTR_RO(pretimeout); 549 550 static ssize_t options_show(struct device *dev, struct device_attribute *attr, 551 char *buf) 552 { 553 struct watchdog_device *wdd = dev_get_drvdata(dev); 554 555 return sysfs_emit(buf, "0x%x\n", wdd->info->options); 556 } 557 static DEVICE_ATTR_RO(options); 558 559 static ssize_t fw_version_show(struct device *dev, struct device_attribute *attr, 560 char *buf) 561 { 562 struct watchdog_device *wdd = dev_get_drvdata(dev); 563 564 return sysfs_emit(buf, "%d\n", wdd->info->firmware_version); 565 } 566 static DEVICE_ATTR_RO(fw_version); 567 568 static ssize_t identity_show(struct device *dev, struct device_attribute *attr, 569 char *buf) 570 { 571 struct watchdog_device *wdd = dev_get_drvdata(dev); 572 573 return sysfs_emit(buf, "%s\n", wdd->info->identity); 574 } 575 static DEVICE_ATTR_RO(identity); 576 577 static ssize_t state_show(struct device *dev, struct device_attribute *attr, 578 char *buf) 579 { 580 struct watchdog_device *wdd = dev_get_drvdata(dev); 581 582 if (watchdog_active(wdd)) 583 return sysfs_emit(buf, "active\n"); 584 585 return sysfs_emit(buf, "inactive\n"); 586 } 587 static DEVICE_ATTR_RO(state); 588 589 static ssize_t pretimeout_available_governors_show(struct device *dev, 590 struct device_attribute *attr, char *buf) 591 { 592 return watchdog_pretimeout_available_governors_get(buf); 593 } 594 static DEVICE_ATTR_RO(pretimeout_available_governors); 595 596 static ssize_t pretimeout_governor_show(struct device *dev, 597 struct device_attribute *attr, 598 char *buf) 599 { 600 struct watchdog_device *wdd = dev_get_drvdata(dev); 601 602 return watchdog_pretimeout_governor_get(wdd, buf); 603 } 604 605 static ssize_t pretimeout_governor_store(struct device *dev, 606 struct device_attribute *attr, 607 const char *buf, size_t count) 608 { 609 struct watchdog_device *wdd = dev_get_drvdata(dev); 610 int ret = watchdog_pretimeout_governor_set(wdd, buf); 611 612 if (!ret) 613 ret = count; 614 615 return ret; 616 } 617 static DEVICE_ATTR_RW(pretimeout_governor); 618 619 static umode_t wdt_is_visible(struct kobject *kobj, struct attribute *attr, 620 int n) 621 { 622 struct device *dev = kobj_to_dev(kobj); 623 struct watchdog_device *wdd = dev_get_drvdata(dev); 624 umode_t mode = attr->mode; 625 626 if (attr == &dev_attr_pretimeout.attr && !watchdog_have_pretimeout(wdd)) 627 mode = 0; 628 else if ((attr == &dev_attr_pretimeout_governor.attr || 629 attr == &dev_attr_pretimeout_available_governors.attr) && 630 (!watchdog_have_pretimeout(wdd) || !IS_ENABLED(CONFIG_WATCHDOG_PRETIMEOUT_GOV))) 631 mode = 0; 632 633 return mode; 634 } 635 static struct attribute *wdt_attrs[] = { 636 &dev_attr_state.attr, 637 &dev_attr_options.attr, 638 &dev_attr_fw_version.attr, 639 &dev_attr_identity.attr, 640 &dev_attr_timeout.attr, 641 &dev_attr_min_timeout.attr, 642 &dev_attr_max_timeout.attr, 643 &dev_attr_pretimeout.attr, 644 &dev_attr_timeleft.attr, 645 &dev_attr_bootstatus.attr, 646 &dev_attr_status.attr, 647 &dev_attr_nowayout.attr, 648 &dev_attr_pretimeout_governor.attr, 649 &dev_attr_pretimeout_available_governors.attr, 650 NULL, 651 }; 652 653 static const struct attribute_group wdt_group = { 654 .attrs = wdt_attrs, 655 .is_visible = wdt_is_visible, 656 }; 657 __ATTRIBUTE_GROUPS(wdt); 658 #else 659 #define wdt_groups NULL 660 #endif 661 662 /* 663 * watchdog_ioctl_op - call the watchdog drivers ioctl op if defined 664 * @wdd: The watchdog device to do the ioctl on 665 * @cmd: Watchdog command 666 * @arg: Argument pointer 667 * 668 * The caller must hold wd_data->lock. 669 * 670 * Return: 0 if successful, error otherwise. 671 */ 672 static int watchdog_ioctl_op(struct watchdog_device *wdd, unsigned int cmd, 673 unsigned long arg) 674 { 675 if (!wdd->ops->ioctl) 676 return -ENOIOCTLCMD; 677 678 return wdd->ops->ioctl(wdd, cmd, arg); 679 } 680 681 /* 682 * watchdog_write - writes to the watchdog 683 * @file: File from VFS 684 * @data: User address of data 685 * @len: Length of data 686 * @ppos: Pointer to the file offset 687 * 688 * A write to a watchdog device is defined as a keepalive ping. 689 * Writing the magic 'V' sequence allows the next close to turn 690 * off the watchdog (if 'nowayout' is not set). 691 * 692 * Return: @len if successful, error otherwise. 693 */ 694 static ssize_t watchdog_write(struct file *file, const char __user *data, 695 size_t len, loff_t *ppos) 696 { 697 struct watchdog_core_data *wd_data = file->private_data; 698 struct watchdog_device *wdd; 699 int err; 700 size_t i; 701 char c; 702 703 if (len == 0) 704 return 0; 705 706 /* 707 * Note: just in case someone wrote the magic character 708 * five months ago... 709 */ 710 clear_bit(_WDOG_ALLOW_RELEASE, &wd_data->status); 711 712 /* scan to see whether or not we got the magic character */ 713 for (i = 0; i != len; i++) { 714 if (get_user(c, data + i)) 715 return -EFAULT; 716 if (c == 'V') 717 set_bit(_WDOG_ALLOW_RELEASE, &wd_data->status); 718 } 719 720 /* someone wrote to us, so we send the watchdog a keepalive ping */ 721 722 err = -ENODEV; 723 mutex_lock(&wd_data->lock); 724 wdd = wd_data->wdd; 725 if (wdd) 726 err = watchdog_ping(wdd); 727 mutex_unlock(&wd_data->lock); 728 729 if (err < 0) 730 return err; 731 732 return len; 733 } 734 735 /* 736 * watchdog_ioctl - handle the different ioctl's for the watchdog device 737 * @file: File handle to the device 738 * @cmd: Watchdog command 739 * @arg: Argument pointer 740 * 741 * The watchdog API defines a common set of functions for all watchdogs 742 * according to their available features. 743 * 744 * Return: 0 if successful, error otherwise. 745 */ 746 747 static long watchdog_ioctl(struct file *file, unsigned int cmd, 748 unsigned long arg) 749 { 750 struct watchdog_core_data *wd_data = file->private_data; 751 void __user *argp = (void __user *)arg; 752 struct watchdog_device *wdd; 753 int __user *p = argp; 754 unsigned int val; 755 int err; 756 757 mutex_lock(&wd_data->lock); 758 759 wdd = wd_data->wdd; 760 if (!wdd) { 761 err = -ENODEV; 762 goto out_ioctl; 763 } 764 765 err = watchdog_ioctl_op(wdd, cmd, arg); 766 if (err != -ENOIOCTLCMD) 767 goto out_ioctl; 768 769 switch (cmd) { 770 case WDIOC_GETSUPPORT: 771 err = copy_to_user(argp, wdd->info, 772 sizeof(struct watchdog_info)) ? -EFAULT : 0; 773 break; 774 case WDIOC_GETSTATUS: 775 val = watchdog_get_status(wdd); 776 err = put_user(val, p); 777 break; 778 case WDIOC_GETBOOTSTATUS: 779 err = put_user(wdd->bootstatus, p); 780 break; 781 case WDIOC_SETOPTIONS: 782 if (get_user(val, p)) { 783 err = -EFAULT; 784 break; 785 } 786 if (val & WDIOS_DISABLECARD) { 787 err = watchdog_stop(wdd); 788 if (err < 0) 789 break; 790 } 791 if (val & WDIOS_ENABLECARD) 792 err = watchdog_start(wdd); 793 break; 794 case WDIOC_KEEPALIVE: 795 if (!(wdd->info->options & WDIOF_KEEPALIVEPING)) { 796 err = -EOPNOTSUPP; 797 break; 798 } 799 err = watchdog_ping(wdd); 800 break; 801 case WDIOC_SETTIMEOUT: 802 if (get_user(val, p)) { 803 err = -EFAULT; 804 break; 805 } 806 err = watchdog_set_timeout(wdd, val); 807 if (err < 0) 808 break; 809 /* If the watchdog is active then we send a keepalive ping 810 * to make sure that the watchdog keep's running (and if 811 * possible that it takes the new timeout) */ 812 err = watchdog_ping(wdd); 813 if (err < 0) 814 break; 815 fallthrough; 816 case WDIOC_GETTIMEOUT: 817 /* timeout == 0 means that we don't know the timeout */ 818 if (wdd->timeout == 0) { 819 err = -EOPNOTSUPP; 820 break; 821 } 822 err = put_user(wdd->timeout, p); 823 break; 824 case WDIOC_GETTIMELEFT: 825 watchdog_get_timeleft(wdd, &val); 826 err = put_user(val, p); 827 break; 828 case WDIOC_SETPRETIMEOUT: 829 if (get_user(val, p)) { 830 err = -EFAULT; 831 break; 832 } 833 err = watchdog_set_pretimeout(wdd, val); 834 break; 835 case WDIOC_GETPRETIMEOUT: 836 err = put_user(wdd->pretimeout, p); 837 break; 838 default: 839 err = -ENOTTY; 840 break; 841 } 842 843 out_ioctl: 844 mutex_unlock(&wd_data->lock); 845 return err; 846 } 847 848 /* 849 * watchdog_open - open the /dev/watchdog* devices 850 * @inode: Inode of device 851 * @file: File handle to device 852 * 853 * When the /dev/watchdog* device gets opened, we start the watchdog. 854 * Watch out: the /dev/watchdog device is single open, so we make sure 855 * it can only be opened once. 856 * 857 * Return: 0 if successful, error otherwise. 858 */ 859 static int watchdog_open(struct inode *inode, struct file *file) 860 { 861 struct watchdog_core_data *wd_data; 862 struct watchdog_device *wdd; 863 bool hw_running; 864 int err; 865 866 /* Get the corresponding watchdog device */ 867 if (imajor(inode) == MISC_MAJOR) 868 wd_data = old_wd_data; 869 else 870 wd_data = container_of(inode->i_cdev, struct watchdog_core_data, 871 cdev); 872 873 /* the watchdog is single open! */ 874 if (test_and_set_bit(_WDOG_DEV_OPEN, &wd_data->status)) 875 return -EBUSY; 876 877 wdd = wd_data->wdd; 878 879 /* 880 * If the /dev/watchdog device is open, we don't want the module 881 * to be unloaded. 882 */ 883 hw_running = watchdog_hw_running(wdd); 884 if (!hw_running && !try_module_get(wdd->ops->owner)) { 885 err = -EBUSY; 886 goto out_clear; 887 } 888 889 err = watchdog_start(wdd); 890 if (err < 0) 891 goto out_mod; 892 893 file->private_data = wd_data; 894 895 if (!hw_running) 896 get_device(&wd_data->dev); 897 898 /* 899 * open_timeout only applies for the first open from 900 * userspace. Set open_deadline to infinity so that the kernel 901 * will take care of an always-running hardware watchdog in 902 * case the device gets magic-closed or WDIOS_DISABLECARD is 903 * applied. 904 */ 905 wd_data->open_deadline = KTIME_MAX; 906 907 /* dev/watchdog is a virtual (and thus non-seekable) filesystem */ 908 return stream_open(inode, file); 909 910 out_mod: 911 module_put(wd_data->wdd->ops->owner); 912 out_clear: 913 clear_bit(_WDOG_DEV_OPEN, &wd_data->status); 914 return err; 915 } 916 917 static void watchdog_core_data_release(struct device *dev) 918 { 919 struct watchdog_core_data *wd_data; 920 921 wd_data = container_of(dev, struct watchdog_core_data, dev); 922 923 kfree(wd_data); 924 } 925 926 /* 927 * watchdog_release - release the watchdog device 928 * @inode: Inode of device 929 * @file: File handle to device 930 * 931 * This is the code for when /dev/watchdog gets closed. We will only 932 * stop the watchdog when we have received the magic char (and nowayout 933 * was not set), else the watchdog will keep running. 934 * 935 * Always returns 0. 936 */ 937 static int watchdog_release(struct inode *inode, struct file *file) 938 { 939 struct watchdog_core_data *wd_data = file->private_data; 940 struct watchdog_device *wdd; 941 int err = -EBUSY; 942 bool running; 943 944 mutex_lock(&wd_data->lock); 945 946 wdd = wd_data->wdd; 947 if (!wdd) 948 goto done; 949 950 /* 951 * We only stop the watchdog if we received the magic character 952 * or if WDIOF_MAGICCLOSE is not set. If nowayout was set then 953 * watchdog_stop will fail. 954 */ 955 if (!watchdog_active(wdd)) 956 err = 0; 957 else if (test_and_clear_bit(_WDOG_ALLOW_RELEASE, &wd_data->status) || 958 !(wdd->info->options & WDIOF_MAGICCLOSE)) 959 err = watchdog_stop(wdd); 960 961 /* If the watchdog was not stopped, send a keepalive ping */ 962 if (err < 0) { 963 pr_crit("watchdog%d: watchdog did not stop!\n", wdd->id); 964 watchdog_ping(wdd); 965 } 966 967 watchdog_update_worker(wdd); 968 969 /* make sure that /dev/watchdog can be re-opened */ 970 clear_bit(_WDOG_DEV_OPEN, &wd_data->status); 971 972 done: 973 running = wdd && watchdog_hw_running(wdd); 974 mutex_unlock(&wd_data->lock); 975 /* 976 * Allow the owner module to be unloaded again unless the watchdog 977 * is still running. If the watchdog is still running, it can not 978 * be stopped, and its driver must not be unloaded. 979 */ 980 if (!running) { 981 module_put(wd_data->cdev.owner); 982 put_device(&wd_data->dev); 983 } 984 return 0; 985 } 986 987 static const struct file_operations watchdog_fops = { 988 .owner = THIS_MODULE, 989 .write = watchdog_write, 990 .unlocked_ioctl = watchdog_ioctl, 991 .compat_ioctl = compat_ptr_ioctl, 992 .open = watchdog_open, 993 .release = watchdog_release, 994 }; 995 996 static struct miscdevice watchdog_miscdev = { 997 .minor = WATCHDOG_MINOR, 998 .name = "watchdog", 999 .fops = &watchdog_fops, 1000 }; 1001 1002 static const struct class watchdog_class = { 1003 .name = "watchdog", 1004 .dev_groups = wdt_groups, 1005 }; 1006 1007 /* 1008 * watchdog_cdev_register - register watchdog character device 1009 * @wdd: Watchdog device 1010 * 1011 * Register a watchdog character device including handling the legacy 1012 * /dev/watchdog node. /dev/watchdog is actually a miscdevice and 1013 * thus we set it up like that. 1014 * 1015 * Return: 0 if successful, error otherwise. 1016 */ 1017 static int watchdog_cdev_register(struct watchdog_device *wdd) 1018 { 1019 struct watchdog_core_data *wd_data; 1020 int err; 1021 1022 wd_data = kzalloc_obj(struct watchdog_core_data, GFP_KERNEL); 1023 if (!wd_data) 1024 return -ENOMEM; 1025 mutex_init(&wd_data->lock); 1026 1027 wd_data->wdd = wdd; 1028 wdd->wd_data = wd_data; 1029 1030 if (IS_ERR_OR_NULL(watchdog_kworker)) { 1031 kfree(wd_data); 1032 return -ENODEV; 1033 } 1034 1035 device_initialize(&wd_data->dev); 1036 wd_data->dev.devt = MKDEV(MAJOR(watchdog_devt), wdd->id); 1037 wd_data->dev.class = &watchdog_class; 1038 wd_data->dev.parent = wdd->parent; 1039 wd_data->dev.groups = wdd->groups; 1040 wd_data->dev.release = watchdog_core_data_release; 1041 dev_set_drvdata(&wd_data->dev, wdd); 1042 err = dev_set_name(&wd_data->dev, "watchdog%d", wdd->id); 1043 if (err) { 1044 put_device(&wd_data->dev); 1045 return err; 1046 } 1047 1048 kthread_init_work(&wd_data->work, watchdog_ping_work); 1049 hrtimer_setup(&wd_data->timer, watchdog_timer_expired, CLOCK_MONOTONIC, 1050 HRTIMER_MODE_REL_HARD); 1051 watchdog_hrtimer_pretimeout_init(wdd); 1052 1053 if (wdd->id == 0) { 1054 old_wd_data = wd_data; 1055 watchdog_miscdev.parent = wdd->parent; 1056 err = misc_register(&watchdog_miscdev); 1057 if (err != 0) { 1058 pr_err("%s: cannot register miscdev on minor=%d (err=%d).\n", 1059 wdd->info->identity, WATCHDOG_MINOR, err); 1060 if (err == -EBUSY) 1061 pr_err("%s: a legacy watchdog module is probably present.\n", 1062 wdd->info->identity); 1063 old_wd_data = NULL; 1064 put_device(&wd_data->dev); 1065 return err; 1066 } 1067 } 1068 1069 /* Fill in the data structures */ 1070 cdev_init(&wd_data->cdev, &watchdog_fops); 1071 wd_data->cdev.owner = wdd->ops->owner; 1072 1073 /* Add the device */ 1074 err = cdev_device_add(&wd_data->cdev, &wd_data->dev); 1075 if (err) { 1076 pr_err("watchdog%d unable to add device %d:%d\n", 1077 wdd->id, MAJOR(watchdog_devt), wdd->id); 1078 if (wdd->id == 0) { 1079 misc_deregister(&watchdog_miscdev); 1080 old_wd_data = NULL; 1081 } 1082 put_device(&wd_data->dev); 1083 return err; 1084 } 1085 1086 /* Record time of most recent heartbeat as 'just before now'. */ 1087 wd_data->last_hw_keepalive = ktime_sub(ktime_get(), 1); 1088 watchdog_set_open_deadline(wd_data); 1089 1090 /* 1091 * If the watchdog is running, prevent its driver from being unloaded, 1092 * and schedule an immediate ping. 1093 */ 1094 if (watchdog_hw_running(wdd)) { 1095 __module_get(wdd->ops->owner); 1096 get_device(&wd_data->dev); 1097 if (handle_boot_enabled) 1098 hrtimer_start(&wd_data->timer, 0, 1099 HRTIMER_MODE_REL_HARD); 1100 else 1101 pr_info("watchdog%d running and kernel based pre-userspace handler disabled\n", 1102 wdd->id); 1103 } 1104 1105 return 0; 1106 } 1107 1108 /* 1109 * watchdog_cdev_unregister - unregister watchdog character device 1110 * @wdd: Watchdog device 1111 * 1112 * Unregister watchdog character device and if needed the legacy 1113 * /dev/watchdog device. 1114 */ 1115 static void watchdog_cdev_unregister(struct watchdog_device *wdd) 1116 { 1117 struct watchdog_core_data *wd_data = wdd->wd_data; 1118 1119 cdev_device_del(&wd_data->cdev, &wd_data->dev); 1120 if (wdd->id == 0) { 1121 misc_deregister(&watchdog_miscdev); 1122 old_wd_data = NULL; 1123 } 1124 1125 if (watchdog_active(wdd) && 1126 test_bit(WDOG_STOP_ON_UNREGISTER, &wdd->status)) { 1127 watchdog_stop(wdd); 1128 } 1129 1130 watchdog_hrtimer_pretimeout_stop(wdd); 1131 1132 mutex_lock(&wd_data->lock); 1133 wd_data->wdd = NULL; 1134 wdd->wd_data = NULL; 1135 mutex_unlock(&wd_data->lock); 1136 1137 hrtimer_cancel(&wd_data->timer); 1138 kthread_cancel_work_sync(&wd_data->work); 1139 1140 put_device(&wd_data->dev); 1141 } 1142 1143 /** 1144 * watchdog_dev_register - register a watchdog device 1145 * @wdd: Watchdog device 1146 * 1147 * Register a watchdog device including handling the legacy 1148 * /dev/watchdog node. /dev/watchdog is actually a miscdevice and 1149 * thus we set it up like that. 1150 * 1151 * Return: 0 if successful, error otherwise. 1152 */ 1153 int watchdog_dev_register(struct watchdog_device *wdd) 1154 { 1155 int ret; 1156 1157 ret = watchdog_cdev_register(wdd); 1158 if (ret) 1159 return ret; 1160 1161 ret = watchdog_register_pretimeout(wdd); 1162 if (ret) 1163 watchdog_cdev_unregister(wdd); 1164 1165 return ret; 1166 } 1167 1168 /** 1169 * watchdog_dev_unregister - unregister a watchdog device 1170 * @wdd: watchdog device 1171 * 1172 * Unregister watchdog device and if needed the legacy 1173 * /dev/watchdog device. 1174 */ 1175 void watchdog_dev_unregister(struct watchdog_device *wdd) 1176 { 1177 watchdog_unregister_pretimeout(wdd); 1178 watchdog_cdev_unregister(wdd); 1179 } 1180 1181 /** 1182 * watchdog_set_last_hw_keepalive - set last HW keepalive time for watchdog 1183 * @wdd: Watchdog device 1184 * @last_ping_ms: Time since last HW heartbeat 1185 * 1186 * Adjusts the last known HW keepalive time for a watchdog timer. 1187 * This is needed if the watchdog is already running when the probe 1188 * function is called, and it can't be pinged immediately. This 1189 * function must be called immediately after watchdog registration, 1190 * and min_hw_heartbeat_ms must be set for this to be useful. 1191 * 1192 * Return: 0 if successful, error otherwise. 1193 */ 1194 int watchdog_set_last_hw_keepalive(struct watchdog_device *wdd, 1195 unsigned int last_ping_ms) 1196 { 1197 struct watchdog_core_data *wd_data; 1198 ktime_t now; 1199 1200 if (!wdd) 1201 return -EINVAL; 1202 1203 wd_data = wdd->wd_data; 1204 1205 now = ktime_get(); 1206 1207 wd_data->last_hw_keepalive = ktime_sub(now, ms_to_ktime(last_ping_ms)); 1208 1209 if (watchdog_hw_running(wdd) && handle_boot_enabled) 1210 return __watchdog_ping(wdd); 1211 1212 return 0; 1213 } 1214 EXPORT_SYMBOL_GPL(watchdog_set_last_hw_keepalive); 1215 1216 /** 1217 * watchdog_dev_init - init dev part of watchdog core 1218 * 1219 * Allocate a range of chardev nodes to use for watchdog devices. 1220 * 1221 * Return: 0 if successful, error otherwise. 1222 */ 1223 int __init watchdog_dev_init(void) 1224 { 1225 int err; 1226 1227 watchdog_kworker = kthread_run_worker(0, "watchdogd"); 1228 if (IS_ERR(watchdog_kworker)) { 1229 pr_err("Failed to create watchdog kworker\n"); 1230 return PTR_ERR(watchdog_kworker); 1231 } 1232 sched_set_fifo(watchdog_kworker->task); 1233 1234 err = class_register(&watchdog_class); 1235 if (err < 0) { 1236 pr_err("couldn't register class\n"); 1237 goto err_register; 1238 } 1239 1240 err = alloc_chrdev_region(&watchdog_devt, 0, MAX_DOGS, "watchdog"); 1241 if (err < 0) { 1242 pr_err("watchdog: unable to allocate char dev region\n"); 1243 goto err_alloc; 1244 } 1245 1246 return 0; 1247 1248 err_alloc: 1249 class_unregister(&watchdog_class); 1250 err_register: 1251 kthread_destroy_worker(watchdog_kworker); 1252 return err; 1253 } 1254 1255 /** 1256 * watchdog_dev_exit - exit dev part of watchdog core 1257 * 1258 * Release the range of chardev nodes used for watchdog devices. 1259 */ 1260 void __exit watchdog_dev_exit(void) 1261 { 1262 unregister_chrdev_region(watchdog_devt, MAX_DOGS); 1263 class_unregister(&watchdog_class); 1264 kthread_destroy_worker(watchdog_kworker); 1265 } 1266 1267 int watchdog_dev_suspend(struct watchdog_device *wdd) 1268 { 1269 struct watchdog_core_data *wd_data = wdd->wd_data; 1270 int ret = 0; 1271 1272 if (!wdd->wd_data) 1273 return -ENODEV; 1274 1275 /* ping for the last time before suspend */ 1276 mutex_lock(&wd_data->lock); 1277 if (watchdog_worker_should_ping(wd_data)) 1278 ret = __watchdog_ping(wd_data->wdd); 1279 mutex_unlock(&wd_data->lock); 1280 1281 if (ret) 1282 return ret; 1283 1284 /* 1285 * make sure that watchdog worker will not kick in when the wdog is 1286 * suspended 1287 */ 1288 hrtimer_cancel(&wd_data->timer); 1289 kthread_cancel_work_sync(&wd_data->work); 1290 1291 return 0; 1292 } 1293 1294 int watchdog_dev_resume(struct watchdog_device *wdd) 1295 { 1296 struct watchdog_core_data *wd_data = wdd->wd_data; 1297 int ret = 0; 1298 1299 if (!wdd->wd_data) 1300 return -ENODEV; 1301 1302 /* 1303 * __watchdog_ping will also retrigger hrtimer and therefore restore the 1304 * ping worker if needed. 1305 */ 1306 mutex_lock(&wd_data->lock); 1307 if (watchdog_worker_should_ping(wd_data)) 1308 ret = __watchdog_ping(wd_data->wdd); 1309 mutex_unlock(&wd_data->lock); 1310 1311 return ret; 1312 } 1313 1314 module_param(handle_boot_enabled, bool, 0444); 1315 MODULE_PARM_DESC(handle_boot_enabled, 1316 "Watchdog core auto-updates boot enabled watchdogs before userspace takes over (default=" 1317 __MODULE_STRING(IS_ENABLED(CONFIG_WATCHDOG_HANDLE_BOOT_ENABLED)) ")"); 1318 1319 module_param(open_timeout, uint, 0644); 1320 MODULE_PARM_DESC(open_timeout, 1321 "Maximum time (in seconds, 0 means infinity) for userspace to take over a running watchdog (default=" 1322 __MODULE_STRING(CONFIG_WATCHDOG_OPEN_TIMEOUT) ")"); 1323