lib/test_lockup: test module to generate lockups
[linux-block.git] / lib / test_lockup.c
CommitLineData
30428ef5
KK
1// SPDX-License-Identifier: GPL-2.0
2/*
3 * Test module to generate lockups
4 */
5#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
6
7#include <linux/kernel.h>
8#include <linux/module.h>
9#include <linux/delay.h>
10#include <linux/sched.h>
11#include <linux/sched/signal.h>
12#include <linux/sched/clock.h>
13#include <linux/cpu.h>
14#include <linux/nmi.h>
15#include <linux/mm.h>
16#include <linux/uaccess.h>
17
18static unsigned int time_secs;
19module_param(time_secs, uint, 0600);
20MODULE_PARM_DESC(time_secs, "lockup time in seconds, default 0");
21
22static unsigned int time_nsecs;
23module_param(time_nsecs, uint, 0600);
24MODULE_PARM_DESC(time_nsecs, "nanoseconds part of lockup time, default 0");
25
26static unsigned int cooldown_secs;
27module_param(cooldown_secs, uint, 0600);
28MODULE_PARM_DESC(cooldown_secs, "cooldown time between iterations in seconds, default 0");
29
30static unsigned int cooldown_nsecs;
31module_param(cooldown_nsecs, uint, 0600);
32MODULE_PARM_DESC(cooldown_nsecs, "nanoseconds part of cooldown, default 0");
33
34static unsigned int iterations = 1;
35module_param(iterations, uint, 0600);
36MODULE_PARM_DESC(iterations, "lockup iterations, default 1");
37
38static bool all_cpus;
39module_param(all_cpus, bool, 0400);
40MODULE_PARM_DESC(all_cpus, "trigger lockup at all cpus at once");
41
42static int wait_state;
43static char *state = "R";
44module_param(state, charp, 0400);
45MODULE_PARM_DESC(state, "wait in 'R' running (default), 'D' uninterruptible, 'K' killable, 'S' interruptible state");
46
47static bool use_hrtimer;
48module_param(use_hrtimer, bool, 0400);
49MODULE_PARM_DESC(use_hrtimer, "use high-resolution timer for sleeping");
50
51static bool iowait;
52module_param(iowait, bool, 0400);
53MODULE_PARM_DESC(iowait, "account sleep time as iowait");
54
55static bool lock_read;
56module_param(lock_read, bool, 0400);
57MODULE_PARM_DESC(lock_read, "lock read-write locks for read");
58
59static bool lock_single;
60module_param(lock_single, bool, 0400);
61MODULE_PARM_DESC(lock_single, "acquire locks only at one cpu");
62
63static bool reacquire_locks;
64module_param(reacquire_locks, bool, 0400);
65MODULE_PARM_DESC(reacquire_locks, "release and reacquire locks/irq/preempt between iterations");
66
67static bool touch_softlockup;
68module_param(touch_softlockup, bool, 0600);
69MODULE_PARM_DESC(touch_softlockup, "touch soft-lockup watchdog between iterations");
70
71static bool touch_hardlockup;
72module_param(touch_hardlockup, bool, 0600);
73MODULE_PARM_DESC(touch_hardlockup, "touch hard-lockup watchdog between iterations");
74
75static bool call_cond_resched;
76module_param(call_cond_resched, bool, 0600);
77MODULE_PARM_DESC(call_cond_resched, "call cond_resched() between iterations");
78
79static bool measure_lock_wait;
80module_param(measure_lock_wait, bool, 0400);
81MODULE_PARM_DESC(measure_lock_wait, "measure lock wait time");
82
83static unsigned long lock_wait_threshold = ULONG_MAX;
84module_param(lock_wait_threshold, ulong, 0400);
85MODULE_PARM_DESC(lock_wait_threshold, "print lock wait time longer than this in nanoseconds, default off");
86
87static bool test_disable_irq;
88module_param_named(disable_irq, test_disable_irq, bool, 0400);
89MODULE_PARM_DESC(disable_irq, "disable interrupts: generate hard-lockups");
90
91static bool disable_softirq;
92module_param(disable_softirq, bool, 0400);
93MODULE_PARM_DESC(disable_softirq, "disable bottom-half irq handlers");
94
95static bool disable_preempt;
96module_param(disable_preempt, bool, 0400);
97MODULE_PARM_DESC(disable_preempt, "disable preemption: generate soft-lockups");
98
99static bool lock_rcu;
100module_param(lock_rcu, bool, 0400);
101MODULE_PARM_DESC(lock_rcu, "grab rcu_read_lock: generate rcu stalls");
102
103static bool lock_mmap_sem;
104module_param(lock_mmap_sem, bool, 0400);
105MODULE_PARM_DESC(lock_mmap_sem, "lock mm->mmap_sem: block procfs interfaces");
106
107static unsigned long lock_rwsem_ptr;
108module_param_unsafe(lock_rwsem_ptr, ulong, 0400);
109MODULE_PARM_DESC(lock_rwsem_ptr, "lock rw_semaphore at address");
110
111static unsigned long lock_mutex_ptr;
112module_param_unsafe(lock_mutex_ptr, ulong, 0400);
113MODULE_PARM_DESC(lock_mutex_ptr, "lock mutex at address");
114
115static unsigned long lock_spinlock_ptr;
116module_param_unsafe(lock_spinlock_ptr, ulong, 0400);
117MODULE_PARM_DESC(lock_spinlock_ptr, "lock spinlock at address");
118
119static unsigned long lock_rwlock_ptr;
120module_param_unsafe(lock_rwlock_ptr, ulong, 0400);
121MODULE_PARM_DESC(lock_rwlock_ptr, "lock rwlock at address");
122
123static unsigned int alloc_pages_nr;
124module_param_unsafe(alloc_pages_nr, uint, 0600);
125MODULE_PARM_DESC(alloc_pages_nr, "allocate and free pages under locks");
126
127static unsigned int alloc_pages_order;
128module_param(alloc_pages_order, uint, 0400);
129MODULE_PARM_DESC(alloc_pages_order, "page order to allocate");
130
131static gfp_t alloc_pages_gfp = GFP_KERNEL;
132module_param_unsafe(alloc_pages_gfp, uint, 0400);
133MODULE_PARM_DESC(alloc_pages_gfp, "allocate pages with this gfp_mask, default GFP_KERNEL");
134
135static bool alloc_pages_atomic;
136module_param(alloc_pages_atomic, bool, 0400);
137MODULE_PARM_DESC(alloc_pages_atomic, "allocate pages with GFP_ATOMIC");
138
139static bool reallocate_pages;
140module_param(reallocate_pages, bool, 0400);
141MODULE_PARM_DESC(reallocate_pages, "free and allocate pages between iterations");
142
143static atomic_t alloc_pages_failed = ATOMIC_INIT(0);
144
145static atomic64_t max_lock_wait = ATOMIC64_INIT(0);
146
147static struct task_struct *main_task;
148static int master_cpu;
149
150static void test_lock(bool master, bool verbose)
151{
152 u64 uninitialized_var(wait_start);
153
154 if (measure_lock_wait)
155 wait_start = local_clock();
156
157 if (lock_mutex_ptr && master) {
158 if (verbose)
159 pr_notice("lock mutex %ps\n", (void *)lock_mutex_ptr);
160 mutex_lock((struct mutex *)lock_mutex_ptr);
161 }
162
163 if (lock_rwsem_ptr && master) {
164 if (verbose)
165 pr_notice("lock rw_semaphore %ps\n",
166 (void *)lock_rwsem_ptr);
167 if (lock_read)
168 down_read((struct rw_semaphore *)lock_rwsem_ptr);
169 else
170 down_write((struct rw_semaphore *)lock_rwsem_ptr);
171 }
172
173 if (lock_mmap_sem && master) {
174 if (verbose)
175 pr_notice("lock mmap_sem pid=%d\n", main_task->pid);
176 if (lock_read)
177 down_read(&main_task->mm->mmap_sem);
178 else
179 down_write(&main_task->mm->mmap_sem);
180 }
181
182 if (test_disable_irq)
183 local_irq_disable();
184
185 if (disable_softirq)
186 local_bh_disable();
187
188 if (disable_preempt)
189 preempt_disable();
190
191 if (lock_rcu)
192 rcu_read_lock();
193
194 if (lock_spinlock_ptr && master) {
195 if (verbose)
196 pr_notice("lock spinlock %ps\n",
197 (void *)lock_spinlock_ptr);
198 spin_lock((spinlock_t *)lock_spinlock_ptr);
199 }
200
201 if (lock_rwlock_ptr && master) {
202 if (verbose)
203 pr_notice("lock rwlock %ps\n",
204 (void *)lock_rwlock_ptr);
205 if (lock_read)
206 read_lock((rwlock_t *)lock_rwlock_ptr);
207 else
208 write_lock((rwlock_t *)lock_rwlock_ptr);
209 }
210
211 if (measure_lock_wait) {
212 s64 cur_wait = local_clock() - wait_start;
213 s64 max_wait = atomic64_read(&max_lock_wait);
214
215 do {
216 if (cur_wait < max_wait)
217 break;
218 max_wait = atomic64_cmpxchg(&max_lock_wait,
219 max_wait, cur_wait);
220 } while (max_wait != cur_wait);
221
222 if (cur_wait > lock_wait_threshold)
223 pr_notice_ratelimited("lock wait %lld ns\n", cur_wait);
224 }
225}
226
227static void test_unlock(bool master, bool verbose)
228{
229 if (lock_rwlock_ptr && master) {
230 if (lock_read)
231 read_unlock((rwlock_t *)lock_rwlock_ptr);
232 else
233 write_unlock((rwlock_t *)lock_rwlock_ptr);
234 if (verbose)
235 pr_notice("unlock rwlock %ps\n",
236 (void *)lock_rwlock_ptr);
237 }
238
239 if (lock_spinlock_ptr && master) {
240 spin_unlock((spinlock_t *)lock_spinlock_ptr);
241 if (verbose)
242 pr_notice("unlock spinlock %ps\n",
243 (void *)lock_spinlock_ptr);
244 }
245
246 if (lock_rcu)
247 rcu_read_unlock();
248
249 if (disable_preempt)
250 preempt_enable();
251
252 if (disable_softirq)
253 local_bh_enable();
254
255 if (test_disable_irq)
256 local_irq_enable();
257
258 if (lock_mmap_sem && master) {
259 if (lock_read)
260 up_read(&main_task->mm->mmap_sem);
261 else
262 up_write(&main_task->mm->mmap_sem);
263 if (verbose)
264 pr_notice("unlock mmap_sem pid=%d\n", main_task->pid);
265 }
266
267 if (lock_rwsem_ptr && master) {
268 if (lock_read)
269 up_read((struct rw_semaphore *)lock_rwsem_ptr);
270 else
271 up_write((struct rw_semaphore *)lock_rwsem_ptr);
272 if (verbose)
273 pr_notice("unlock rw_semaphore %ps\n",
274 (void *)lock_rwsem_ptr);
275 }
276
277 if (lock_mutex_ptr && master) {
278 mutex_unlock((struct mutex *)lock_mutex_ptr);
279 if (verbose)
280 pr_notice("unlock mutex %ps\n",
281 (void *)lock_mutex_ptr);
282 }
283}
284
285static void test_alloc_pages(struct list_head *pages)
286{
287 struct page *page;
288 unsigned int i;
289
290 for (i = 0; i < alloc_pages_nr; i++) {
291 page = alloc_pages(alloc_pages_gfp, alloc_pages_order);
292 if (!page) {
293 atomic_inc(&alloc_pages_failed);
294 break;
295 }
296 list_add(&page->lru, pages);
297 }
298}
299
300static void test_free_pages(struct list_head *pages)
301{
302 struct page *page, *next;
303
304 list_for_each_entry_safe(page, next, pages, lru)
305 __free_pages(page, alloc_pages_order);
306 INIT_LIST_HEAD(pages);
307}
308
309static void test_wait(unsigned int secs, unsigned int nsecs)
310{
311 if (wait_state == TASK_RUNNING) {
312 if (secs)
313 mdelay(secs * MSEC_PER_SEC);
314 if (nsecs)
315 ndelay(nsecs);
316 return;
317 }
318
319 __set_current_state(wait_state);
320 if (use_hrtimer) {
321 ktime_t time;
322
323 time = ns_to_ktime((u64)secs * NSEC_PER_SEC + nsecs);
324 schedule_hrtimeout(&time, HRTIMER_MODE_REL);
325 } else {
326 schedule_timeout(secs * HZ + nsecs_to_jiffies(nsecs));
327 }
328}
329
330static void test_lockup(bool master)
331{
332 u64 lockup_start = local_clock();
333 unsigned int iter = 0;
334 LIST_HEAD(pages);
335
336 pr_notice("Start on CPU%d\n", raw_smp_processor_id());
337
338 test_lock(master, true);
339
340 test_alloc_pages(&pages);
341
342 while (iter++ < iterations && !signal_pending(main_task)) {
343
344 if (iowait)
345 current->in_iowait = 1;
346
347 test_wait(time_secs, time_nsecs);
348
349 if (iowait)
350 current->in_iowait = 0;
351
352 if (reallocate_pages)
353 test_free_pages(&pages);
354
355 if (reacquire_locks)
356 test_unlock(master, false);
357
358 if (touch_softlockup)
359 touch_softlockup_watchdog();
360
361 if (touch_hardlockup)
362 touch_nmi_watchdog();
363
364 if (call_cond_resched)
365 cond_resched();
366
367 test_wait(cooldown_secs, cooldown_nsecs);
368
369 if (reacquire_locks)
370 test_lock(master, false);
371
372 if (reallocate_pages)
373 test_alloc_pages(&pages);
374 }
375
376 pr_notice("Finish on CPU%d in %lld ns\n", raw_smp_processor_id(),
377 local_clock() - lockup_start);
378
379 test_free_pages(&pages);
380
381 test_unlock(master, true);
382}
383
384DEFINE_PER_CPU(struct work_struct, test_works);
385
386static void test_work_fn(struct work_struct *work)
387{
388 test_lockup(!lock_single ||
389 work == per_cpu_ptr(&test_works, master_cpu));
390}
391
392static bool test_kernel_ptr(unsigned long addr, int size)
393{
394 void *ptr = (void *)addr;
395 char buf;
396
397 if (!addr)
398 return false;
399
400 /* should be at least readable kernel address */
401 if (access_ok(ptr, 1) ||
402 access_ok(ptr + size - 1, 1) ||
403 probe_kernel_address(ptr, buf) ||
404 probe_kernel_address(ptr + size - 1, buf)) {
405 pr_err("invalid kernel ptr: %#lx\n", addr);
406 return true;
407 }
408
409 return false;
410}
411
412static bool __maybe_unused test_magic(unsigned long addr, int offset,
413 unsigned int expected)
414{
415 void *ptr = (void *)addr + offset;
416 unsigned int magic = 0;
417
418 if (!addr)
419 return false;
420
421 if (probe_kernel_address(ptr, magic) || magic != expected) {
422 pr_err("invalid magic at %#lx + %#x = %#x, expected %#x\n",
423 addr, offset, magic, expected);
424 return true;
425 }
426
427 return false;
428}
429
430static int __init test_lockup_init(void)
431{
432 u64 test_start = local_clock();
433
434 main_task = current;
435
436 switch (state[0]) {
437 case 'S':
438 wait_state = TASK_INTERRUPTIBLE;
439 break;
440 case 'D':
441 wait_state = TASK_UNINTERRUPTIBLE;
442 break;
443 case 'K':
444 wait_state = TASK_KILLABLE;
445 break;
446 case 'R':
447 wait_state = TASK_RUNNING;
448 break;
449 default:
450 pr_err("unknown state=%s\n", state);
451 return -EINVAL;
452 }
453
454 if (alloc_pages_atomic)
455 alloc_pages_gfp = GFP_ATOMIC;
456
457 if (test_kernel_ptr(lock_spinlock_ptr, sizeof(spinlock_t)) ||
458 test_kernel_ptr(lock_rwlock_ptr, sizeof(rwlock_t)) ||
459 test_kernel_ptr(lock_mutex_ptr, sizeof(struct mutex)) ||
460 test_kernel_ptr(lock_rwsem_ptr, sizeof(struct rw_semaphore)))
461 return -EINVAL;
462
463#ifdef CONFIG_DEBUG_SPINLOCK
464 if (test_magic(lock_spinlock_ptr,
465 offsetof(spinlock_t, rlock.magic),
466 SPINLOCK_MAGIC) ||
467 test_magic(lock_rwlock_ptr,
468 offsetof(rwlock_t, magic),
469 RWLOCK_MAGIC) ||
470 test_magic(lock_mutex_ptr,
471 offsetof(struct mutex, wait_lock.rlock.magic),
472 SPINLOCK_MAGIC) ||
473 test_magic(lock_rwsem_ptr,
474 offsetof(struct rw_semaphore, wait_lock.magic),
475 SPINLOCK_MAGIC))
476 return -EINVAL;
477#endif
478
479 if ((wait_state != TASK_RUNNING ||
480 (call_cond_resched && !reacquire_locks) ||
481 (alloc_pages_nr && gfpflags_allow_blocking(alloc_pages_gfp))) &&
482 (test_disable_irq || disable_softirq || disable_preempt ||
483 lock_rcu || lock_spinlock_ptr || lock_rwlock_ptr)) {
484 pr_err("refuse to sleep in atomic context\n");
485 return -EINVAL;
486 }
487
488 if (lock_mmap_sem && !main_task->mm) {
489 pr_err("no mm to lock mmap_sem\n");
490 return -EINVAL;
491 }
492
493 pr_notice("START pid=%d time=%u +%u ns cooldown=%u +%u ns iteraions=%u state=%s %s%s%s%s%s%s%s%s%s%s%s\n",
494 main_task->pid, time_secs, time_nsecs,
495 cooldown_secs, cooldown_nsecs, iterations, state,
496 all_cpus ? "all_cpus " : "",
497 iowait ? "iowait " : "",
498 test_disable_irq ? "disable_irq " : "",
499 disable_softirq ? "disable_softirq " : "",
500 disable_preempt ? "disable_preempt " : "",
501 lock_rcu ? "lock_rcu " : "",
502 lock_read ? "lock_read " : "",
503 touch_softlockup ? "touch_softlockup " : "",
504 touch_hardlockup ? "touch_hardlockup " : "",
505 call_cond_resched ? "call_cond_resched " : "",
506 reacquire_locks ? "reacquire_locks " : "");
507
508 if (alloc_pages_nr)
509 pr_notice("ALLOCATE PAGES nr=%u order=%u gfp=%pGg %s\n",
510 alloc_pages_nr, alloc_pages_order, &alloc_pages_gfp,
511 reallocate_pages ? "reallocate_pages " : "");
512
513 if (all_cpus) {
514 unsigned int cpu;
515
516 cpus_read_lock();
517
518 preempt_disable();
519 master_cpu = smp_processor_id();
520 for_each_online_cpu(cpu) {
521 INIT_WORK(per_cpu_ptr(&test_works, cpu), test_work_fn);
522 queue_work_on(cpu, system_highpri_wq,
523 per_cpu_ptr(&test_works, cpu));
524 }
525 preempt_enable();
526
527 for_each_online_cpu(cpu)
528 flush_work(per_cpu_ptr(&test_works, cpu));
529
530 cpus_read_unlock();
531 } else {
532 test_lockup(true);
533 }
534
535 if (measure_lock_wait)
536 pr_notice("Maximum lock wait: %lld ns\n",
537 atomic64_read(&max_lock_wait));
538
539 if (alloc_pages_nr)
540 pr_notice("Page allocation failed %u times\n",
541 atomic_read(&alloc_pages_failed));
542
543 pr_notice("FINISH in %llu ns\n", local_clock() - test_start);
544
545 if (signal_pending(main_task))
546 return -EINTR;
547
548 return -EAGAIN;
549}
550module_init(test_lockup_init);
551
552MODULE_LICENSE("GPL");
553MODULE_AUTHOR("Konstantin Khlebnikov <khlebnikov@yandex-team.ru>");
554MODULE_DESCRIPTION("Test module to generate lockups");