1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Read-Copy Update module-based torture test facility
4 *
5 * Copyright (C) IBM Corporation, 2005, 2006
6 *
7 * Authors: Paul E. McKenney <paulmck@linux.ibm.com>
8 * Josh Triplett <josh@joshtriplett.org>
9 *
10 * See also: Documentation/RCU/torture.rst
11 */
12
13 #define pr_fmt(fmt) fmt
14
15 #include <linux/types.h>
16 #include <linux/kernel.h>
17 #include <linux/init.h>
18 #include <linux/module.h>
19 #include <linux/kthread.h>
20 #include <linux/err.h>
21 #include <linux/spinlock.h>
22 #include <linux/smp.h>
23 #include <linux/rcupdate_wait.h>
24 #include <linux/interrupt.h>
25 #include <linux/sched/signal.h>
26 #include <uapi/linux/sched/types.h>
27 #include <linux/atomic.h>
28 #include <linux/bitops.h>
29 #include <linux/completion.h>
30 #include <linux/moduleparam.h>
31 #include <linux/percpu.h>
32 #include <linux/notifier.h>
33 #include <linux/reboot.h>
34 #include <linux/freezer.h>
35 #include <linux/cpu.h>
36 #include <linux/delay.h>
37 #include <linux/stat.h>
38 #include <linux/srcu.h>
39 #include <linux/slab.h>
40 #include <linux/trace_clock.h>
41 #include <asm/byteorder.h>
42 #include <linux/torture.h>
43 #include <linux/vmalloc.h>
44 #include <linux/sched/debug.h>
45 #include <linux/sched/sysctl.h>
46 #include <linux/oom.h>
47 #include <linux/tick.h>
48 #include <linux/rcupdate_trace.h>
49
50 #include "rcu.h"
51
52 MODULE_LICENSE("GPL");
53 MODULE_AUTHOR("Paul E. McKenney <paulmck@linux.ibm.com> and Josh Triplett <josh@joshtriplett.org>");
54
55 /* Bits for ->extendables field, extendables param, and related definitions. */
56 #define RCUTORTURE_RDR_SHIFT 8 /* Put SRCU index in upper bits. */
57 #define RCUTORTURE_RDR_MASK ((1 << RCUTORTURE_RDR_SHIFT) - 1)
58 #define RCUTORTURE_RDR_BH 0x01 /* Extend readers by disabling bh. */
59 #define RCUTORTURE_RDR_IRQ 0x02 /* ... disabling interrupts. */
60 #define RCUTORTURE_RDR_PREEMPT 0x04 /* ... disabling preemption. */
61 #define RCUTORTURE_RDR_RBH 0x08 /* ... rcu_read_lock_bh(). */
62 #define RCUTORTURE_RDR_SCHED 0x10 /* ... rcu_read_lock_sched(). */
63 #define RCUTORTURE_RDR_RCU 0x20 /* ... entering another RCU reader. */
64 #define RCUTORTURE_RDR_NBITS 6 /* Number of bits defined above. */
65 #define RCUTORTURE_MAX_EXTEND \
66 (RCUTORTURE_RDR_BH | RCUTORTURE_RDR_IRQ | RCUTORTURE_RDR_PREEMPT | \
67 RCUTORTURE_RDR_RBH | RCUTORTURE_RDR_SCHED)
68 #define RCUTORTURE_RDR_MAX_LOOPS 0x7 /* Maximum reader extensions. */
69 /* Must be power of two minus one. */
70 #define RCUTORTURE_RDR_MAX_SEGS (RCUTORTURE_RDR_MAX_LOOPS + 3)
71
72 torture_param(int, extendables, RCUTORTURE_MAX_EXTEND,
73 "Extend readers by disabling bh (1), irqs (2), or preempt (4)");
74 torture_param(int, fqs_duration, 0,
75 "Duration of fqs bursts (us), 0 to disable");
76 torture_param(int, fqs_holdoff, 0, "Holdoff time within fqs bursts (us)");
77 torture_param(int, fqs_stutter, 3, "Wait time between fqs bursts (s)");
78 torture_param(bool, fwd_progress, 1, "Test grace-period forward progress");
79 torture_param(int, fwd_progress_div, 4, "Fraction of CPU stall to wait");
80 torture_param(int, fwd_progress_holdoff, 60,
81 "Time between forward-progress tests (s)");
82 torture_param(bool, fwd_progress_need_resched, 1,
83 "Hide cond_resched() behind need_resched()");
84 torture_param(bool, gp_cond, false, "Use conditional/async GP wait primitives");
85 torture_param(bool, gp_exp, false, "Use expedited GP wait primitives");
86 torture_param(bool, gp_normal, false,
87 "Use normal (non-expedited) GP wait primitives");
88 torture_param(bool, gp_sync, false, "Use synchronous GP wait primitives");
89 torture_param(int, irqreader, 1, "Allow RCU readers from irq handlers");
90 torture_param(int, leakpointer, 0, "Leak pointer dereferences from readers");
91 torture_param(int, n_barrier_cbs, 0,
92 "# of callbacks/kthreads for barrier testing");
93 torture_param(int, nfakewriters, 4, "Number of RCU fake writer threads");
94 torture_param(int, nreaders, -1, "Number of RCU reader threads");
95 torture_param(int, object_debug, 0,
96 "Enable debug-object double call_rcu() testing");
97 torture_param(int, onoff_holdoff, 0, "Time after boot before CPU hotplugs (s)");
98 torture_param(int, onoff_interval, 0,
99 "Time between CPU hotplugs (jiffies), 0=disable");
100 torture_param(int, read_exit_delay, 13,
101 "Delay between read-then-exit episodes (s)");
102 torture_param(int, read_exit_burst, 16,
103 "# of read-then-exit bursts per episode, zero to disable");
104 torture_param(int, shuffle_interval, 3, "Number of seconds between shuffles");
105 torture_param(int, shutdown_secs, 0, "Shutdown time (s), <= zero to disable.");
106 torture_param(int, stall_cpu, 0, "Stall duration (s), zero to disable.");
107 torture_param(int, stall_cpu_holdoff, 10,
108 "Time to wait before starting stall (s).");
109 torture_param(int, stall_cpu_irqsoff, 0, "Disable interrupts while stalling.");
110 torture_param(int, stall_cpu_block, 0, "Sleep while stalling.");
111 torture_param(int, stall_gp_kthread, 0,
112 "Grace-period kthread stall duration (s).");
113 torture_param(int, stat_interval, 60,
114 "Number of seconds between stats printk()s");
115 torture_param(int, stutter, 5, "Number of seconds to run/halt test");
116 torture_param(int, test_boost, 1, "Test RCU prio boost: 0=no, 1=maybe, 2=yes.");
117 torture_param(int, test_boost_duration, 4,
118 "Duration of each boost test, seconds.");
119 torture_param(int, test_boost_interval, 7,
120 "Interval between boost tests, seconds.");
121 torture_param(bool, test_no_idle_hz, true,
122 "Test support for tickless idle CPUs");
123 torture_param(int, verbose, 1,
124 "Enable verbose debugging printk()s");
125
126 static char *torture_type = "rcu";
127 module_param(torture_type, charp, 0444);
128 MODULE_PARM_DESC(torture_type, "Type of RCU to torture (rcu, srcu, ...)");
129
130 static int nrealreaders;
131 static struct task_struct *writer_task;
132 static struct task_struct **fakewriter_tasks;
133 static struct task_struct **reader_tasks;
134 static struct task_struct *stats_task;
135 static struct task_struct *fqs_task;
136 static struct task_struct *boost_tasks[NR_CPUS];
137 static struct task_struct *stall_task;
138 static struct task_struct *fwd_prog_task;
139 static struct task_struct **barrier_cbs_tasks;
140 static struct task_struct *barrier_task;
141 static struct task_struct *read_exit_task;
142
143 #define RCU_TORTURE_PIPE_LEN 10
144
145 struct rcu_torture {
146 struct rcu_head rtort_rcu;
147 int rtort_pipe_count;
148 struct list_head rtort_free;
149 int rtort_mbtest;
150 };
151
152 static LIST_HEAD(rcu_torture_freelist);
153 static struct rcu_torture __rcu *rcu_torture_current;
154 static unsigned long rcu_torture_current_version;
155 static struct rcu_torture rcu_tortures[10 * RCU_TORTURE_PIPE_LEN];
156 static DEFINE_SPINLOCK(rcu_torture_lock);
157 static DEFINE_PER_CPU(long [RCU_TORTURE_PIPE_LEN + 1], rcu_torture_count);
158 static DEFINE_PER_CPU(long [RCU_TORTURE_PIPE_LEN + 1], rcu_torture_batch);
159 static atomic_t rcu_torture_wcount[RCU_TORTURE_PIPE_LEN + 1];
160 static atomic_t n_rcu_torture_alloc;
161 static atomic_t n_rcu_torture_alloc_fail;
162 static atomic_t n_rcu_torture_free;
163 static atomic_t n_rcu_torture_mberror;
164 static atomic_t n_rcu_torture_error;
165 static long n_rcu_torture_barrier_error;
166 static long n_rcu_torture_boost_ktrerror;
167 static long n_rcu_torture_boost_rterror;
168 static long n_rcu_torture_boost_failure;
169 static long n_rcu_torture_boosts;
170 static atomic_long_t n_rcu_torture_timers;
171 static long n_barrier_attempts;
172 static long n_barrier_successes; /* did rcu_barrier test succeed? */
173 static unsigned long n_read_exits;
174 static struct list_head rcu_torture_removed;
175 static unsigned long shutdown_jiffies;
176 static unsigned long start_gp_seq;
177
178 static int rcu_torture_writer_state;
179 #define RTWS_FIXED_DELAY 0
180 #define RTWS_DELAY 1
181 #define RTWS_REPLACE 2
182 #define RTWS_DEF_FREE 3
183 #define RTWS_EXP_SYNC 4
184 #define RTWS_COND_GET 5
185 #define RTWS_COND_SYNC 6
186 #define RTWS_SYNC 7
187 #define RTWS_STUTTER 8
188 #define RTWS_STOPPING 9
189 static const char * const rcu_torture_writer_state_names[] = {
190 "RTWS_FIXED_DELAY",
191 "RTWS_DELAY",
192 "RTWS_REPLACE",
193 "RTWS_DEF_FREE",
194 "RTWS_EXP_SYNC",
195 "RTWS_COND_GET",
196 "RTWS_COND_SYNC",
197 "RTWS_SYNC",
198 "RTWS_STUTTER",
199 "RTWS_STOPPING",
200 };
201
202 /* Record reader segment types and duration for first failing read. */
203 struct rt_read_seg {
204 int rt_readstate;
205 unsigned long rt_delay_jiffies;
206 unsigned long rt_delay_ms;
207 unsigned long rt_delay_us;
208 bool rt_preempted;
209 };
210 static int err_segs_recorded;
211 static struct rt_read_seg err_segs[RCUTORTURE_RDR_MAX_SEGS];
212 static int rt_read_nsegs;
213
rcu_torture_writer_state_getname(void)214 static const char *rcu_torture_writer_state_getname(void)
215 {
216 unsigned int i = READ_ONCE(rcu_torture_writer_state);
217
218 if (i >= ARRAY_SIZE(rcu_torture_writer_state_names))
219 return "???";
220 return rcu_torture_writer_state_names[i];
221 }
222
223 #if defined(CONFIG_RCU_BOOST) && !defined(CONFIG_HOTPLUG_CPU)
224 #define rcu_can_boost() 1
225 #else /* #if defined(CONFIG_RCU_BOOST) && !defined(CONFIG_HOTPLUG_CPU) */
226 #define rcu_can_boost() 0
227 #endif /* #else #if defined(CONFIG_RCU_BOOST) && !defined(CONFIG_HOTPLUG_CPU) */
228
229 #ifdef CONFIG_RCU_TRACE
rcu_trace_clock_local(void)230 static u64 notrace rcu_trace_clock_local(void)
231 {
232 u64 ts = trace_clock_local();
233
234 (void)do_div(ts, NSEC_PER_USEC);
235 return ts;
236 }
237 #else /* #ifdef CONFIG_RCU_TRACE */
rcu_trace_clock_local(void)238 static u64 notrace rcu_trace_clock_local(void)
239 {
240 return 0ULL;
241 }
242 #endif /* #else #ifdef CONFIG_RCU_TRACE */
243
244 /*
245 * Stop aggressive CPU-hog tests a bit before the end of the test in order
246 * to avoid interfering with test shutdown.
247 */
shutdown_time_arrived(void)248 static bool shutdown_time_arrived(void)
249 {
250 return shutdown_secs && time_after(jiffies, shutdown_jiffies - 30 * HZ);
251 }
252
253 static unsigned long boost_starttime; /* jiffies of next boost test start. */
254 static DEFINE_MUTEX(boost_mutex); /* protect setting boost_starttime */
255 /* and boost task create/destroy. */
256 static atomic_t barrier_cbs_count; /* Barrier callbacks registered. */
257 static bool barrier_phase; /* Test phase. */
258 static atomic_t barrier_cbs_invoked; /* Barrier callbacks invoked. */
259 static wait_queue_head_t *barrier_cbs_wq; /* Coordinate barrier testing. */
260 static DECLARE_WAIT_QUEUE_HEAD(barrier_wq);
261
262 static bool rcu_fwd_cb_nodelay; /* Short rcu_torture_delay() delays. */
263
264 /*
265 * Allocate an element from the rcu_tortures pool.
266 */
267 static struct rcu_torture *
rcu_torture_alloc(void)268 rcu_torture_alloc(void)
269 {
270 struct list_head *p;
271
272 spin_lock_bh(&rcu_torture_lock);
273 if (list_empty(&rcu_torture_freelist)) {
274 atomic_inc(&n_rcu_torture_alloc_fail);
275 spin_unlock_bh(&rcu_torture_lock);
276 return NULL;
277 }
278 atomic_inc(&n_rcu_torture_alloc);
279 p = rcu_torture_freelist.next;
280 list_del_init(p);
281 spin_unlock_bh(&rcu_torture_lock);
282 return container_of(p, struct rcu_torture, rtort_free);
283 }
284
285 /*
286 * Free an element to the rcu_tortures pool.
287 */
288 static void
rcu_torture_free(struct rcu_torture * p)289 rcu_torture_free(struct rcu_torture *p)
290 {
291 atomic_inc(&n_rcu_torture_free);
292 spin_lock_bh(&rcu_torture_lock);
293 list_add_tail(&p->rtort_free, &rcu_torture_freelist);
294 spin_unlock_bh(&rcu_torture_lock);
295 }
296
297 /*
298 * Operations vector for selecting different types of tests.
299 */
300
301 struct rcu_torture_ops {
302 int ttype;
303 void (*init)(void);
304 void (*cleanup)(void);
305 int (*readlock)(void);
306 void (*read_delay)(struct torture_random_state *rrsp,
307 struct rt_read_seg *rtrsp);
308 void (*readunlock)(int idx);
309 unsigned long (*get_gp_seq)(void);
310 unsigned long (*gp_diff)(unsigned long new, unsigned long old);
311 void (*deferred_free)(struct rcu_torture *p);
312 void (*sync)(void);
313 void (*exp_sync)(void);
314 unsigned long (*get_state)(void);
315 void (*cond_sync)(unsigned long oldstate);
316 call_rcu_func_t call;
317 void (*cb_barrier)(void);
318 void (*fqs)(void);
319 void (*stats)(void);
320 int (*stall_dur)(void);
321 int irq_capable;
322 int can_boost;
323 int extendables;
324 int slow_gps;
325 const char *name;
326 };
327
328 static struct rcu_torture_ops *cur_ops;
329
330 /*
331 * Definitions for rcu torture testing.
332 */
333
rcu_torture_read_lock(void)334 static int rcu_torture_read_lock(void) __acquires(RCU)
335 {
336 rcu_read_lock();
337 return 0;
338 }
339
340 static void
rcu_read_delay(struct torture_random_state * rrsp,struct rt_read_seg * rtrsp)341 rcu_read_delay(struct torture_random_state *rrsp, struct rt_read_seg *rtrsp)
342 {
343 unsigned long started;
344 unsigned long completed;
345 const unsigned long shortdelay_us = 200;
346 unsigned long longdelay_ms = 300;
347 unsigned long long ts;
348
349 /* We want a short delay sometimes to make a reader delay the grace
350 * period, and we want a long delay occasionally to trigger
351 * force_quiescent_state. */
352
353 if (!READ_ONCE(rcu_fwd_cb_nodelay) &&
354 !(torture_random(rrsp) % (nrealreaders * 2000 * longdelay_ms))) {
355 started = cur_ops->get_gp_seq();
356 ts = rcu_trace_clock_local();
357 if (preempt_count() & (SOFTIRQ_MASK | HARDIRQ_MASK))
358 longdelay_ms = 5; /* Avoid triggering BH limits. */
359 mdelay(longdelay_ms);
360 rtrsp->rt_delay_ms = longdelay_ms;
361 completed = cur_ops->get_gp_seq();
362 do_trace_rcu_torture_read(cur_ops->name, NULL, ts,
363 started, completed);
364 }
365 if (!(torture_random(rrsp) % (nrealreaders * 2 * shortdelay_us))) {
366 udelay(shortdelay_us);
367 rtrsp->rt_delay_us = shortdelay_us;
368 }
369 if (!preempt_count() &&
370 !(torture_random(rrsp) % (nrealreaders * 500))) {
371 torture_preempt_schedule(); /* QS only if preemptible. */
372 rtrsp->rt_preempted = true;
373 }
374 }
375
rcu_torture_read_unlock(int idx)376 static void rcu_torture_read_unlock(int idx) __releases(RCU)
377 {
378 rcu_read_unlock();
379 }
380
381 /*
382 * Update callback in the pipe. This should be invoked after a grace period.
383 */
384 static bool
rcu_torture_pipe_update_one(struct rcu_torture * rp)385 rcu_torture_pipe_update_one(struct rcu_torture *rp)
386 {
387 int i;
388
389 i = READ_ONCE(rp->rtort_pipe_count);
390 if (i > RCU_TORTURE_PIPE_LEN)
391 i = RCU_TORTURE_PIPE_LEN;
392 atomic_inc(&rcu_torture_wcount[i]);
393 WRITE_ONCE(rp->rtort_pipe_count, i + 1);
394 if (rp->rtort_pipe_count >= RCU_TORTURE_PIPE_LEN) {
395 rp->rtort_mbtest = 0;
396 return true;
397 }
398 return false;
399 }
400
401 /*
402 * Update all callbacks in the pipe. Suitable for synchronous grace-period
403 * primitives.
404 */
405 static void
rcu_torture_pipe_update(struct rcu_torture * old_rp)406 rcu_torture_pipe_update(struct rcu_torture *old_rp)
407 {
408 struct rcu_torture *rp;
409 struct rcu_torture *rp1;
410
411 if (old_rp)
412 list_add(&old_rp->rtort_free, &rcu_torture_removed);
413 list_for_each_entry_safe(rp, rp1, &rcu_torture_removed, rtort_free) {
414 if (rcu_torture_pipe_update_one(rp)) {
415 list_del(&rp->rtort_free);
416 rcu_torture_free(rp);
417 }
418 }
419 }
420
421 static void
rcu_torture_cb(struct rcu_head * p)422 rcu_torture_cb(struct rcu_head *p)
423 {
424 struct rcu_torture *rp = container_of(p, struct rcu_torture, rtort_rcu);
425
426 if (torture_must_stop_irq()) {
427 /* Test is ending, just drop callbacks on the floor. */
428 /* The next initialization will pick up the pieces. */
429 return;
430 }
431 if (rcu_torture_pipe_update_one(rp))
432 rcu_torture_free(rp);
433 else
434 cur_ops->deferred_free(rp);
435 }
436
rcu_no_completed(void)437 static unsigned long rcu_no_completed(void)
438 {
439 return 0;
440 }
441
rcu_torture_deferred_free(struct rcu_torture * p)442 static void rcu_torture_deferred_free(struct rcu_torture *p)
443 {
444 call_rcu(&p->rtort_rcu, rcu_torture_cb);
445 }
446
rcu_sync_torture_init(void)447 static void rcu_sync_torture_init(void)
448 {
449 INIT_LIST_HEAD(&rcu_torture_removed);
450 }
451
452 static struct rcu_torture_ops rcu_ops = {
453 .ttype = RCU_FLAVOR,
454 .init = rcu_sync_torture_init,
455 .readlock = rcu_torture_read_lock,
456 .read_delay = rcu_read_delay,
457 .readunlock = rcu_torture_read_unlock,
458 .get_gp_seq = rcu_get_gp_seq,
459 .gp_diff = rcu_seq_diff,
460 .deferred_free = rcu_torture_deferred_free,
461 .sync = synchronize_rcu,
462 .exp_sync = synchronize_rcu_expedited,
463 .get_state = get_state_synchronize_rcu,
464 .cond_sync = cond_synchronize_rcu,
465 .call = call_rcu,
466 .cb_barrier = rcu_barrier,
467 .fqs = rcu_force_quiescent_state,
468 .stats = NULL,
469 .stall_dur = rcu_jiffies_till_stall_check,
470 .irq_capable = 1,
471 .can_boost = rcu_can_boost(),
472 .extendables = RCUTORTURE_MAX_EXTEND,
473 .name = "rcu"
474 };
475
476 /*
477 * Don't even think about trying any of these in real life!!!
478 * The names includes "busted", and they really means it!
479 * The only purpose of these functions is to provide a buggy RCU
480 * implementation to make sure that rcutorture correctly emits
481 * buggy-RCU error messages.
482 */
rcu_busted_torture_deferred_free(struct rcu_torture * p)483 static void rcu_busted_torture_deferred_free(struct rcu_torture *p)
484 {
485 /* This is a deliberate bug for testing purposes only! */
486 rcu_torture_cb(&p->rtort_rcu);
487 }
488
synchronize_rcu_busted(void)489 static void synchronize_rcu_busted(void)
490 {
491 /* This is a deliberate bug for testing purposes only! */
492 }
493
494 static void
call_rcu_busted(struct rcu_head * head,rcu_callback_t func)495 call_rcu_busted(struct rcu_head *head, rcu_callback_t func)
496 {
497 /* This is a deliberate bug for testing purposes only! */
498 func(head);
499 }
500
501 static struct rcu_torture_ops rcu_busted_ops = {
502 .ttype = INVALID_RCU_FLAVOR,
503 .init = rcu_sync_torture_init,
504 .readlock = rcu_torture_read_lock,
505 .read_delay = rcu_read_delay, /* just reuse rcu's version. */
506 .readunlock = rcu_torture_read_unlock,
507 .get_gp_seq = rcu_no_completed,
508 .deferred_free = rcu_busted_torture_deferred_free,
509 .sync = synchronize_rcu_busted,
510 .exp_sync = synchronize_rcu_busted,
511 .call = call_rcu_busted,
512 .cb_barrier = NULL,
513 .fqs = NULL,
514 .stats = NULL,
515 .irq_capable = 1,
516 .name = "busted"
517 };
518
519 /*
520 * Definitions for srcu torture testing.
521 */
522
523 DEFINE_STATIC_SRCU(srcu_ctl);
524 static struct srcu_struct srcu_ctld;
525 static struct srcu_struct *srcu_ctlp = &srcu_ctl;
526
srcu_torture_read_lock(void)527 static int srcu_torture_read_lock(void) __acquires(srcu_ctlp)
528 {
529 return srcu_read_lock(srcu_ctlp);
530 }
531
532 static void
srcu_read_delay(struct torture_random_state * rrsp,struct rt_read_seg * rtrsp)533 srcu_read_delay(struct torture_random_state *rrsp, struct rt_read_seg *rtrsp)
534 {
535 long delay;
536 const long uspertick = 1000000 / HZ;
537 const long longdelay = 10;
538
539 /* We want there to be long-running readers, but not all the time. */
540
541 delay = torture_random(rrsp) %
542 (nrealreaders * 2 * longdelay * uspertick);
543 if (!delay && in_task()) {
544 schedule_timeout_interruptible(longdelay);
545 rtrsp->rt_delay_jiffies = longdelay;
546 } else {
547 rcu_read_delay(rrsp, rtrsp);
548 }
549 }
550
srcu_torture_read_unlock(int idx)551 static void srcu_torture_read_unlock(int idx) __releases(srcu_ctlp)
552 {
553 srcu_read_unlock(srcu_ctlp, idx);
554 }
555
srcu_torture_completed(void)556 static unsigned long srcu_torture_completed(void)
557 {
558 return srcu_batches_completed(srcu_ctlp);
559 }
560
srcu_torture_deferred_free(struct rcu_torture * rp)561 static void srcu_torture_deferred_free(struct rcu_torture *rp)
562 {
563 call_srcu(srcu_ctlp, &rp->rtort_rcu, rcu_torture_cb);
564 }
565
srcu_torture_synchronize(void)566 static void srcu_torture_synchronize(void)
567 {
568 synchronize_srcu(srcu_ctlp);
569 }
570
srcu_torture_call(struct rcu_head * head,rcu_callback_t func)571 static void srcu_torture_call(struct rcu_head *head,
572 rcu_callback_t func)
573 {
574 call_srcu(srcu_ctlp, head, func);
575 }
576
srcu_torture_barrier(void)577 static void srcu_torture_barrier(void)
578 {
579 srcu_barrier(srcu_ctlp);
580 }
581
srcu_torture_stats(void)582 static void srcu_torture_stats(void)
583 {
584 srcu_torture_stats_print(srcu_ctlp, torture_type, TORTURE_FLAG);
585 }
586
srcu_torture_synchronize_expedited(void)587 static void srcu_torture_synchronize_expedited(void)
588 {
589 synchronize_srcu_expedited(srcu_ctlp);
590 }
591
592 static struct rcu_torture_ops srcu_ops = {
593 .ttype = SRCU_FLAVOR,
594 .init = rcu_sync_torture_init,
595 .readlock = srcu_torture_read_lock,
596 .read_delay = srcu_read_delay,
597 .readunlock = srcu_torture_read_unlock,
598 .get_gp_seq = srcu_torture_completed,
599 .deferred_free = srcu_torture_deferred_free,
600 .sync = srcu_torture_synchronize,
601 .exp_sync = srcu_torture_synchronize_expedited,
602 .call = srcu_torture_call,
603 .cb_barrier = srcu_torture_barrier,
604 .stats = srcu_torture_stats,
605 .irq_capable = 1,
606 .name = "srcu"
607 };
608
srcu_torture_init(void)609 static void srcu_torture_init(void)
610 {
611 rcu_sync_torture_init();
612 WARN_ON(init_srcu_struct(&srcu_ctld));
613 srcu_ctlp = &srcu_ctld;
614 }
615
srcu_torture_cleanup(void)616 static void srcu_torture_cleanup(void)
617 {
618 cleanup_srcu_struct(&srcu_ctld);
619 srcu_ctlp = &srcu_ctl; /* In case of a later rcutorture run. */
620 }
621
622 /* As above, but dynamically allocated. */
623 static struct rcu_torture_ops srcud_ops = {
624 .ttype = SRCU_FLAVOR,
625 .init = srcu_torture_init,
626 .cleanup = srcu_torture_cleanup,
627 .readlock = srcu_torture_read_lock,
628 .read_delay = srcu_read_delay,
629 .readunlock = srcu_torture_read_unlock,
630 .get_gp_seq = srcu_torture_completed,
631 .deferred_free = srcu_torture_deferred_free,
632 .sync = srcu_torture_synchronize,
633 .exp_sync = srcu_torture_synchronize_expedited,
634 .call = srcu_torture_call,
635 .cb_barrier = srcu_torture_barrier,
636 .stats = srcu_torture_stats,
637 .irq_capable = 1,
638 .name = "srcud"
639 };
640
641 /* As above, but broken due to inappropriate reader extension. */
642 static struct rcu_torture_ops busted_srcud_ops = {
643 .ttype = SRCU_FLAVOR,
644 .init = srcu_torture_init,
645 .cleanup = srcu_torture_cleanup,
646 .readlock = srcu_torture_read_lock,
647 .read_delay = rcu_read_delay,
648 .readunlock = srcu_torture_read_unlock,
649 .get_gp_seq = srcu_torture_completed,
650 .deferred_free = srcu_torture_deferred_free,
651 .sync = srcu_torture_synchronize,
652 .exp_sync = srcu_torture_synchronize_expedited,
653 .call = srcu_torture_call,
654 .cb_barrier = srcu_torture_barrier,
655 .stats = srcu_torture_stats,
656 .irq_capable = 1,
657 .extendables = RCUTORTURE_MAX_EXTEND,
658 .name = "busted_srcud"
659 };
660
661 /*
662 * Definitions for RCU-tasks torture testing.
663 */
664
tasks_torture_read_lock(void)665 static int tasks_torture_read_lock(void)
666 {
667 return 0;
668 }
669
tasks_torture_read_unlock(int idx)670 static void tasks_torture_read_unlock(int idx)
671 {
672 }
673
rcu_tasks_torture_deferred_free(struct rcu_torture * p)674 static void rcu_tasks_torture_deferred_free(struct rcu_torture *p)
675 {
676 call_rcu_tasks(&p->rtort_rcu, rcu_torture_cb);
677 }
678
synchronize_rcu_mult_test(void)679 static void synchronize_rcu_mult_test(void)
680 {
681 synchronize_rcu_mult(call_rcu_tasks, call_rcu);
682 }
683
684 static struct rcu_torture_ops tasks_ops = {
685 .ttype = RCU_TASKS_FLAVOR,
686 .init = rcu_sync_torture_init,
687 .readlock = tasks_torture_read_lock,
688 .read_delay = rcu_read_delay, /* just reuse rcu's version. */
689 .readunlock = tasks_torture_read_unlock,
690 .get_gp_seq = rcu_no_completed,
691 .deferred_free = rcu_tasks_torture_deferred_free,
692 .sync = synchronize_rcu_tasks,
693 .exp_sync = synchronize_rcu_mult_test,
694 .call = call_rcu_tasks,
695 .cb_barrier = rcu_barrier_tasks,
696 .fqs = NULL,
697 .stats = NULL,
698 .irq_capable = 1,
699 .slow_gps = 1,
700 .name = "tasks"
701 };
702
703 /*
704 * Definitions for trivial CONFIG_PREEMPT=n-only torture testing.
705 * This implementation does not necessarily work well with CPU hotplug.
706 */
707
synchronize_rcu_trivial(void)708 static void synchronize_rcu_trivial(void)
709 {
710 int cpu;
711
712 for_each_online_cpu(cpu) {
713 rcutorture_sched_setaffinity(current->pid, cpumask_of(cpu));
714 WARN_ON_ONCE(raw_smp_processor_id() != cpu);
715 }
716 }
717
rcu_torture_read_lock_trivial(void)718 static int rcu_torture_read_lock_trivial(void) __acquires(RCU)
719 {
720 preempt_disable();
721 return 0;
722 }
723
rcu_torture_read_unlock_trivial(int idx)724 static void rcu_torture_read_unlock_trivial(int idx) __releases(RCU)
725 {
726 preempt_enable();
727 }
728
729 static struct rcu_torture_ops trivial_ops = {
730 .ttype = RCU_TRIVIAL_FLAVOR,
731 .init = rcu_sync_torture_init,
732 .readlock = rcu_torture_read_lock_trivial,
733 .read_delay = rcu_read_delay, /* just reuse rcu's version. */
734 .readunlock = rcu_torture_read_unlock_trivial,
735 .get_gp_seq = rcu_no_completed,
736 .sync = synchronize_rcu_trivial,
737 .exp_sync = synchronize_rcu_trivial,
738 .fqs = NULL,
739 .stats = NULL,
740 .irq_capable = 1,
741 .name = "trivial"
742 };
743
744 /*
745 * Definitions for rude RCU-tasks torture testing.
746 */
747
rcu_tasks_rude_torture_deferred_free(struct rcu_torture * p)748 static void rcu_tasks_rude_torture_deferred_free(struct rcu_torture *p)
749 {
750 call_rcu_tasks_rude(&p->rtort_rcu, rcu_torture_cb);
751 }
752
753 static struct rcu_torture_ops tasks_rude_ops = {
754 .ttype = RCU_TASKS_RUDE_FLAVOR,
755 .init = rcu_sync_torture_init,
756 .readlock = rcu_torture_read_lock_trivial,
757 .read_delay = rcu_read_delay, /* just reuse rcu's version. */
758 .readunlock = rcu_torture_read_unlock_trivial,
759 .get_gp_seq = rcu_no_completed,
760 .deferred_free = rcu_tasks_rude_torture_deferred_free,
761 .sync = synchronize_rcu_tasks_rude,
762 .exp_sync = synchronize_rcu_tasks_rude,
763 .call = call_rcu_tasks_rude,
764 .cb_barrier = rcu_barrier_tasks_rude,
765 .fqs = NULL,
766 .stats = NULL,
767 .irq_capable = 1,
768 .name = "tasks-rude"
769 };
770
771 /*
772 * Definitions for tracing RCU-tasks torture testing.
773 */
774
tasks_tracing_torture_read_lock(void)775 static int tasks_tracing_torture_read_lock(void)
776 {
777 rcu_read_lock_trace();
778 return 0;
779 }
780
tasks_tracing_torture_read_unlock(int idx)781 static void tasks_tracing_torture_read_unlock(int idx)
782 {
783 rcu_read_unlock_trace();
784 }
785
rcu_tasks_tracing_torture_deferred_free(struct rcu_torture * p)786 static void rcu_tasks_tracing_torture_deferred_free(struct rcu_torture *p)
787 {
788 call_rcu_tasks_trace(&p->rtort_rcu, rcu_torture_cb);
789 }
790
791 static struct rcu_torture_ops tasks_tracing_ops = {
792 .ttype = RCU_TASKS_TRACING_FLAVOR,
793 .init = rcu_sync_torture_init,
794 .readlock = tasks_tracing_torture_read_lock,
795 .read_delay = srcu_read_delay, /* just reuse srcu's version. */
796 .readunlock = tasks_tracing_torture_read_unlock,
797 .get_gp_seq = rcu_no_completed,
798 .deferred_free = rcu_tasks_tracing_torture_deferred_free,
799 .sync = synchronize_rcu_tasks_trace,
800 .exp_sync = synchronize_rcu_tasks_trace,
801 .call = call_rcu_tasks_trace,
802 .cb_barrier = rcu_barrier_tasks_trace,
803 .fqs = NULL,
804 .stats = NULL,
805 .irq_capable = 1,
806 .slow_gps = 1,
807 .name = "tasks-tracing"
808 };
809
rcutorture_seq_diff(unsigned long new,unsigned long old)810 static unsigned long rcutorture_seq_diff(unsigned long new, unsigned long old)
811 {
812 if (!cur_ops->gp_diff)
813 return new - old;
814 return cur_ops->gp_diff(new, old);
815 }
816
torturing_tasks(void)817 static bool __maybe_unused torturing_tasks(void)
818 {
819 return cur_ops == &tasks_ops || cur_ops == &tasks_rude_ops;
820 }
821
822 /*
823 * RCU torture priority-boost testing. Runs one real-time thread per
824 * CPU for moderate bursts, repeatedly registering RCU callbacks and
825 * spinning waiting for them to be invoked. If a given callback takes
826 * too long to be invoked, we assume that priority inversion has occurred.
827 */
828
829 struct rcu_boost_inflight {
830 struct rcu_head rcu;
831 int inflight;
832 };
833
rcu_torture_boost_cb(struct rcu_head * head)834 static void rcu_torture_boost_cb(struct rcu_head *head)
835 {
836 struct rcu_boost_inflight *rbip =
837 container_of(head, struct rcu_boost_inflight, rcu);
838
839 /* Ensure RCU-core accesses precede clearing ->inflight */
840 smp_store_release(&rbip->inflight, 0);
841 }
842
843 static int old_rt_runtime = -1;
844
rcu_torture_disable_rt_throttle(void)845 static void rcu_torture_disable_rt_throttle(void)
846 {
847 /*
848 * Disable RT throttling so that rcutorture's boost threads don't get
849 * throttled. Only possible if rcutorture is built-in otherwise the
850 * user should manually do this by setting the sched_rt_period_us and
851 * sched_rt_runtime sysctls.
852 */
853 if (!IS_BUILTIN(CONFIG_RCU_TORTURE_TEST) || old_rt_runtime != -1)
854 return;
855
856 old_rt_runtime = sysctl_sched_rt_runtime;
857 sysctl_sched_rt_runtime = -1;
858 }
859
rcu_torture_enable_rt_throttle(void)860 static void rcu_torture_enable_rt_throttle(void)
861 {
862 if (!IS_BUILTIN(CONFIG_RCU_TORTURE_TEST) || old_rt_runtime == -1)
863 return;
864
865 sysctl_sched_rt_runtime = old_rt_runtime;
866 old_rt_runtime = -1;
867 }
868
rcu_torture_boost_failed(unsigned long start,unsigned long end)869 static bool rcu_torture_boost_failed(unsigned long start, unsigned long end)
870 {
871 if (end - start > test_boost_duration * HZ - HZ / 2) {
872 VERBOSE_TOROUT_STRING("rcu_torture_boost boosting failed");
873 n_rcu_torture_boost_failure++;
874
875 return true; /* failed */
876 }
877
878 return false; /* passed */
879 }
880
rcu_torture_boost(void * arg)881 static int rcu_torture_boost(void *arg)
882 {
883 unsigned long call_rcu_time;
884 unsigned long endtime;
885 unsigned long oldstarttime;
886 struct rcu_boost_inflight rbi = { .inflight = 0 };
887
888 VERBOSE_TOROUT_STRING("rcu_torture_boost started");
889
890 /* Set real-time priority. */
891 sched_set_fifo_low(current);
892
893 init_rcu_head_on_stack(&rbi.rcu);
894 /* Each pass through the following loop does one boost-test cycle. */
895 do {
896 /* Track if the test failed already in this test interval? */
897 bool failed = false;
898
899 /* Increment n_rcu_torture_boosts once per boost-test */
900 while (!kthread_should_stop()) {
901 if (mutex_trylock(&boost_mutex)) {
902 n_rcu_torture_boosts++;
903 mutex_unlock(&boost_mutex);
904 break;
905 }
906 schedule_timeout_uninterruptible(1);
907 }
908 if (kthread_should_stop())
909 goto checkwait;
910
911 /* Wait for the next test interval. */
912 oldstarttime = boost_starttime;
913 while (time_before(jiffies, oldstarttime)) {
914 schedule_timeout_interruptible(oldstarttime - jiffies);
915 stutter_wait("rcu_torture_boost");
916 if (torture_must_stop())
917 goto checkwait;
918 }
919
920 /* Do one boost-test interval. */
921 endtime = oldstarttime + test_boost_duration * HZ;
922 call_rcu_time = jiffies;
923 while (time_before(jiffies, endtime)) {
924 /* If we don't have a callback in flight, post one. */
925 if (!smp_load_acquire(&rbi.inflight)) {
926 /* RCU core before ->inflight = 1. */
927 smp_store_release(&rbi.inflight, 1);
928 call_rcu(&rbi.rcu, rcu_torture_boost_cb);
929 /* Check if the boost test failed */
930 failed = failed ||
931 rcu_torture_boost_failed(call_rcu_time,
932 jiffies);
933 call_rcu_time = jiffies;
934 }
935 stutter_wait("rcu_torture_boost");
936 if (torture_must_stop())
937 goto checkwait;
938 }
939
940 /*
941 * If boost never happened, then inflight will always be 1, in
942 * this case the boost check would never happen in the above
943 * loop so do another one here.
944 */
945 if (!failed && smp_load_acquire(&rbi.inflight))
946 rcu_torture_boost_failed(call_rcu_time, jiffies);
947
948 /*
949 * Set the start time of the next test interval.
950 * Yes, this is vulnerable to long delays, but such
951 * delays simply cause a false negative for the next
952 * interval. Besides, we are running at RT priority,
953 * so delays should be relatively rare.
954 */
955 while (oldstarttime == boost_starttime &&
956 !kthread_should_stop()) {
957 if (mutex_trylock(&boost_mutex)) {
958 boost_starttime = jiffies +
959 test_boost_interval * HZ;
960 mutex_unlock(&boost_mutex);
961 break;
962 }
963 schedule_timeout_uninterruptible(1);
964 }
965
966 /* Go do the stutter. */
967 checkwait: stutter_wait("rcu_torture_boost");
968 } while (!torture_must_stop());
969
970 /* Clean up and exit. */
971 while (!kthread_should_stop() || smp_load_acquire(&rbi.inflight)) {
972 torture_shutdown_absorb("rcu_torture_boost");
973 schedule_timeout_uninterruptible(1);
974 }
975 destroy_rcu_head_on_stack(&rbi.rcu);
976 torture_kthread_stopping("rcu_torture_boost");
977 return 0;
978 }
979
980 /*
981 * RCU torture force-quiescent-state kthread. Repeatedly induces
982 * bursts of calls to force_quiescent_state(), increasing the probability
983 * of occurrence of some important types of race conditions.
984 */
985 static int
rcu_torture_fqs(void * arg)986 rcu_torture_fqs(void *arg)
987 {
988 unsigned long fqs_resume_time;
989 int fqs_burst_remaining;
990
991 VERBOSE_TOROUT_STRING("rcu_torture_fqs task started");
992 do {
993 fqs_resume_time = jiffies + fqs_stutter * HZ;
994 while (time_before(jiffies, fqs_resume_time) &&
995 !kthread_should_stop()) {
996 schedule_timeout_interruptible(1);
997 }
998 fqs_burst_remaining = fqs_duration;
999 while (fqs_burst_remaining > 0 &&
1000 !kthread_should_stop()) {
1001 cur_ops->fqs();
1002 udelay(fqs_holdoff);
1003 fqs_burst_remaining -= fqs_holdoff;
1004 }
1005 stutter_wait("rcu_torture_fqs");
1006 } while (!torture_must_stop());
1007 torture_kthread_stopping("rcu_torture_fqs");
1008 return 0;
1009 }
1010
1011 /*
1012 * RCU torture writer kthread. Repeatedly substitutes a new structure
1013 * for that pointed to by rcu_torture_current, freeing the old structure
1014 * after a series of grace periods (the "pipeline").
1015 */
1016 static int
rcu_torture_writer(void * arg)1017 rcu_torture_writer(void *arg)
1018 {
1019 bool can_expedite = !rcu_gp_is_expedited() && !rcu_gp_is_normal();
1020 int expediting = 0;
1021 unsigned long gp_snap;
1022 bool gp_cond1 = gp_cond, gp_exp1 = gp_exp, gp_normal1 = gp_normal;
1023 bool gp_sync1 = gp_sync;
1024 int i;
1025 struct rcu_torture *rp;
1026 struct rcu_torture *old_rp;
1027 static DEFINE_TORTURE_RANDOM(rand);
1028 int synctype[] = { RTWS_DEF_FREE, RTWS_EXP_SYNC,
1029 RTWS_COND_GET, RTWS_SYNC };
1030 int nsynctypes = 0;
1031
1032 VERBOSE_TOROUT_STRING("rcu_torture_writer task started");
1033 if (!can_expedite)
1034 pr_alert("%s" TORTURE_FLAG
1035 " GP expediting controlled from boot/sysfs for %s.\n",
1036 torture_type, cur_ops->name);
1037
1038 /* Initialize synctype[] array. If none set, take default. */
1039 if (!gp_cond1 && !gp_exp1 && !gp_normal1 && !gp_sync1)
1040 gp_cond1 = gp_exp1 = gp_normal1 = gp_sync1 = true;
1041 if (gp_cond1 && cur_ops->get_state && cur_ops->cond_sync) {
1042 synctype[nsynctypes++] = RTWS_COND_GET;
1043 pr_info("%s: Testing conditional GPs.\n", __func__);
1044 } else if (gp_cond && (!cur_ops->get_state || !cur_ops->cond_sync)) {
1045 pr_alert("%s: gp_cond without primitives.\n", __func__);
1046 }
1047 if (gp_exp1 && cur_ops->exp_sync) {
1048 synctype[nsynctypes++] = RTWS_EXP_SYNC;
1049 pr_info("%s: Testing expedited GPs.\n", __func__);
1050 } else if (gp_exp && !cur_ops->exp_sync) {
1051 pr_alert("%s: gp_exp without primitives.\n", __func__);
1052 }
1053 if (gp_normal1 && cur_ops->deferred_free) {
1054 synctype[nsynctypes++] = RTWS_DEF_FREE;
1055 pr_info("%s: Testing asynchronous GPs.\n", __func__);
1056 } else if (gp_normal && !cur_ops->deferred_free) {
1057 pr_alert("%s: gp_normal without primitives.\n", __func__);
1058 }
1059 if (gp_sync1 && cur_ops->sync) {
1060 synctype[nsynctypes++] = RTWS_SYNC;
1061 pr_info("%s: Testing normal GPs.\n", __func__);
1062 } else if (gp_sync && !cur_ops->sync) {
1063 pr_alert("%s: gp_sync without primitives.\n", __func__);
1064 }
1065 if (WARN_ONCE(nsynctypes == 0,
1066 "rcu_torture_writer: No update-side primitives.\n")) {
1067 /*
1068 * No updates primitives, so don't try updating.
1069 * The resulting test won't be testing much, hence the
1070 * above WARN_ONCE().
1071 */
1072 rcu_torture_writer_state = RTWS_STOPPING;
1073 torture_kthread_stopping("rcu_torture_writer");
1074 }
1075
1076 do {
1077 rcu_torture_writer_state = RTWS_FIXED_DELAY;
1078 schedule_timeout_uninterruptible(1);
1079 rp = rcu_torture_alloc();
1080 if (rp == NULL)
1081 continue;
1082 rp->rtort_pipe_count = 0;
1083 rcu_torture_writer_state = RTWS_DELAY;
1084 udelay(torture_random(&rand) & 0x3ff);
1085 rcu_torture_writer_state = RTWS_REPLACE;
1086 old_rp = rcu_dereference_check(rcu_torture_current,
1087 current == writer_task);
1088 rp->rtort_mbtest = 1;
1089 rcu_assign_pointer(rcu_torture_current, rp);
1090 smp_wmb(); /* Mods to old_rp must follow rcu_assign_pointer() */
1091 if (old_rp) {
1092 i = old_rp->rtort_pipe_count;
1093 if (i > RCU_TORTURE_PIPE_LEN)
1094 i = RCU_TORTURE_PIPE_LEN;
1095 atomic_inc(&rcu_torture_wcount[i]);
1096 WRITE_ONCE(old_rp->rtort_pipe_count,
1097 old_rp->rtort_pipe_count + 1);
1098 switch (synctype[torture_random(&rand) % nsynctypes]) {
1099 case RTWS_DEF_FREE:
1100 rcu_torture_writer_state = RTWS_DEF_FREE;
1101 cur_ops->deferred_free(old_rp);
1102 break;
1103 case RTWS_EXP_SYNC:
1104 rcu_torture_writer_state = RTWS_EXP_SYNC;
1105 cur_ops->exp_sync();
1106 rcu_torture_pipe_update(old_rp);
1107 break;
1108 case RTWS_COND_GET:
1109 rcu_torture_writer_state = RTWS_COND_GET;
1110 gp_snap = cur_ops->get_state();
1111 i = torture_random(&rand) % 16;
1112 if (i != 0)
1113 schedule_timeout_interruptible(i);
1114 udelay(torture_random(&rand) % 1000);
1115 rcu_torture_writer_state = RTWS_COND_SYNC;
1116 cur_ops->cond_sync(gp_snap);
1117 rcu_torture_pipe_update(old_rp);
1118 break;
1119 case RTWS_SYNC:
1120 rcu_torture_writer_state = RTWS_SYNC;
1121 cur_ops->sync();
1122 rcu_torture_pipe_update(old_rp);
1123 break;
1124 default:
1125 WARN_ON_ONCE(1);
1126 break;
1127 }
1128 }
1129 WRITE_ONCE(rcu_torture_current_version,
1130 rcu_torture_current_version + 1);
1131 /* Cycle through nesting levels of rcu_expedite_gp() calls. */
1132 if (can_expedite &&
1133 !(torture_random(&rand) & 0xff & (!!expediting - 1))) {
1134 WARN_ON_ONCE(expediting == 0 && rcu_gp_is_expedited());
1135 if (expediting >= 0)
1136 rcu_expedite_gp();
1137 else
1138 rcu_unexpedite_gp();
1139 if (++expediting > 3)
1140 expediting = -expediting;
1141 } else if (!can_expedite) { /* Disabled during boot, recheck. */
1142 can_expedite = !rcu_gp_is_expedited() &&
1143 !rcu_gp_is_normal();
1144 }
1145 rcu_torture_writer_state = RTWS_STUTTER;
1146 if (stutter_wait("rcu_torture_writer") &&
1147 !READ_ONCE(rcu_fwd_cb_nodelay) &&
1148 !cur_ops->slow_gps &&
1149 !torture_must_stop() &&
1150 rcu_inkernel_boot_has_ended())
1151 for (i = 0; i < ARRAY_SIZE(rcu_tortures); i++)
1152 if (list_empty(&rcu_tortures[i].rtort_free) &&
1153 rcu_access_pointer(rcu_torture_current) !=
1154 &rcu_tortures[i]) {
1155 rcu_ftrace_dump(DUMP_ALL);
1156 WARN(1, "%s: rtort_pipe_count: %d\n", __func__, rcu_tortures[i].rtort_pipe_count);
1157 }
1158 } while (!torture_must_stop());
1159 rcu_torture_current = NULL; // Let stats task know that we are done.
1160 /* Reset expediting back to unexpedited. */
1161 if (expediting > 0)
1162 expediting = -expediting;
1163 while (can_expedite && expediting++ < 0)
1164 rcu_unexpedite_gp();
1165 WARN_ON_ONCE(can_expedite && rcu_gp_is_expedited());
1166 if (!can_expedite)
1167 pr_alert("%s" TORTURE_FLAG
1168 " Dynamic grace-period expediting was disabled.\n",
1169 torture_type);
1170 rcu_torture_writer_state = RTWS_STOPPING;
1171 torture_kthread_stopping("rcu_torture_writer");
1172 return 0;
1173 }
1174
1175 /*
1176 * RCU torture fake writer kthread. Repeatedly calls sync, with a random
1177 * delay between calls.
1178 */
1179 static int
rcu_torture_fakewriter(void * arg)1180 rcu_torture_fakewriter(void *arg)
1181 {
1182 DEFINE_TORTURE_RANDOM(rand);
1183
1184 VERBOSE_TOROUT_STRING("rcu_torture_fakewriter task started");
1185 set_user_nice(current, MAX_NICE);
1186
1187 do {
1188 schedule_timeout_uninterruptible(1 + torture_random(&rand)%10);
1189 udelay(torture_random(&rand) & 0x3ff);
1190 if (cur_ops->cb_barrier != NULL &&
1191 torture_random(&rand) % (nfakewriters * 8) == 0) {
1192 cur_ops->cb_barrier();
1193 } else if (gp_normal == gp_exp) {
1194 if (cur_ops->sync && torture_random(&rand) & 0x80)
1195 cur_ops->sync();
1196 else if (cur_ops->exp_sync)
1197 cur_ops->exp_sync();
1198 } else if (gp_normal && cur_ops->sync) {
1199 cur_ops->sync();
1200 } else if (cur_ops->exp_sync) {
1201 cur_ops->exp_sync();
1202 }
1203 stutter_wait("rcu_torture_fakewriter");
1204 } while (!torture_must_stop());
1205
1206 torture_kthread_stopping("rcu_torture_fakewriter");
1207 return 0;
1208 }
1209
rcu_torture_timer_cb(struct rcu_head * rhp)1210 static void rcu_torture_timer_cb(struct rcu_head *rhp)
1211 {
1212 kfree(rhp);
1213 }
1214
1215 /*
1216 * Do one extension of an RCU read-side critical section using the
1217 * current reader state in readstate (set to zero for initial entry
1218 * to extended critical section), set the new state as specified by
1219 * newstate (set to zero for final exit from extended critical section),
1220 * and random-number-generator state in trsp. If this is neither the
1221 * beginning or end of the critical section and if there was actually a
1222 * change, do a ->read_delay().
1223 */
rcutorture_one_extend(int * readstate,int newstate,struct torture_random_state * trsp,struct rt_read_seg * rtrsp)1224 static void rcutorture_one_extend(int *readstate, int newstate,
1225 struct torture_random_state *trsp,
1226 struct rt_read_seg *rtrsp)
1227 {
1228 unsigned long flags;
1229 int idxnew = -1;
1230 int idxold = *readstate;
1231 int statesnew = ~*readstate & newstate;
1232 int statesold = *readstate & ~newstate;
1233
1234 WARN_ON_ONCE(idxold < 0);
1235 WARN_ON_ONCE((idxold >> RCUTORTURE_RDR_SHIFT) > 1);
1236 rtrsp->rt_readstate = newstate;
1237
1238 /* First, put new protection in place to avoid critical-section gap. */
1239 if (statesnew & RCUTORTURE_RDR_BH)
1240 local_bh_disable();
1241 if (statesnew & RCUTORTURE_RDR_RBH)
1242 rcu_read_lock_bh();
1243 if (statesnew & RCUTORTURE_RDR_IRQ)
1244 local_irq_disable();
1245 if (statesnew & RCUTORTURE_RDR_PREEMPT)
1246 preempt_disable();
1247 if (statesnew & RCUTORTURE_RDR_SCHED)
1248 rcu_read_lock_sched();
1249 if (statesnew & RCUTORTURE_RDR_RCU)
1250 idxnew = cur_ops->readlock() << RCUTORTURE_RDR_SHIFT;
1251
1252 /*
1253 * Next, remove old protection, in decreasing order of strength
1254 * to avoid unlock paths that aren't safe in the stronger
1255 * context. Namely: BH can not be enabled with disabled interrupts.
1256 * Additionally PREEMPT_RT requires that BH is enabled in preemptible
1257 * context.
1258 */
1259 if (statesold & RCUTORTURE_RDR_IRQ)
1260 local_irq_enable();
1261 if (statesold & RCUTORTURE_RDR_PREEMPT)
1262 preempt_enable();
1263 if (statesold & RCUTORTURE_RDR_SCHED)
1264 rcu_read_unlock_sched();
1265 if (statesold & RCUTORTURE_RDR_BH)
1266 local_bh_enable();
1267 if (statesold & RCUTORTURE_RDR_RBH)
1268 rcu_read_unlock_bh();
1269 if (statesold & RCUTORTURE_RDR_RCU) {
1270 bool lockit = !statesnew && !(torture_random(trsp) & 0xffff);
1271
1272 if (lockit)
1273 raw_spin_lock_irqsave(¤t->pi_lock, flags);
1274 cur_ops->readunlock(idxold >> RCUTORTURE_RDR_SHIFT);
1275 if (lockit)
1276 raw_spin_unlock_irqrestore(¤t->pi_lock, flags);
1277 }
1278
1279 /* Delay if neither beginning nor end and there was a change. */
1280 if ((statesnew || statesold) && *readstate && newstate)
1281 cur_ops->read_delay(trsp, rtrsp);
1282
1283 /* Update the reader state. */
1284 if (idxnew == -1)
1285 idxnew = idxold & ~RCUTORTURE_RDR_MASK;
1286 WARN_ON_ONCE(idxnew < 0);
1287 WARN_ON_ONCE((idxnew >> RCUTORTURE_RDR_SHIFT) > 1);
1288 *readstate = idxnew | newstate;
1289 WARN_ON_ONCE((*readstate >> RCUTORTURE_RDR_SHIFT) < 0);
1290 WARN_ON_ONCE((*readstate >> RCUTORTURE_RDR_SHIFT) > 1);
1291 }
1292
1293 /* Return the biggest extendables mask given current RCU and boot parameters. */
rcutorture_extend_mask_max(void)1294 static int rcutorture_extend_mask_max(void)
1295 {
1296 int mask;
1297
1298 WARN_ON_ONCE(extendables & ~RCUTORTURE_MAX_EXTEND);
1299 mask = extendables & RCUTORTURE_MAX_EXTEND & cur_ops->extendables;
1300 mask = mask | RCUTORTURE_RDR_RCU;
1301 return mask;
1302 }
1303
1304 /* Return a random protection state mask, but with at least one bit set. */
1305 static int
rcutorture_extend_mask(int oldmask,struct torture_random_state * trsp)1306 rcutorture_extend_mask(int oldmask, struct torture_random_state *trsp)
1307 {
1308 int mask = rcutorture_extend_mask_max();
1309 unsigned long randmask1 = torture_random(trsp) >> 8;
1310 unsigned long randmask2 = randmask1 >> 3;
1311 unsigned long preempts = RCUTORTURE_RDR_PREEMPT | RCUTORTURE_RDR_SCHED;
1312 unsigned long preempts_irq = preempts | RCUTORTURE_RDR_IRQ;
1313 unsigned long bhs = RCUTORTURE_RDR_BH | RCUTORTURE_RDR_RBH;
1314
1315 WARN_ON_ONCE(mask >> RCUTORTURE_RDR_SHIFT);
1316 /* Mostly only one bit (need preemption!), sometimes lots of bits. */
1317 if (!(randmask1 & 0x7))
1318 mask = mask & randmask2;
1319 else
1320 mask = mask & (1 << (randmask2 % RCUTORTURE_RDR_NBITS));
1321
1322 /*
1323 * Can't enable bh w/irq disabled.
1324 */
1325 if (mask & RCUTORTURE_RDR_IRQ)
1326 mask |= oldmask & bhs;
1327
1328 /*
1329 * Ideally these sequences would be detected in debug builds
1330 * (regardless of RT), but until then don't stop testing
1331 * them on non-RT.
1332 */
1333 if (IS_ENABLED(CONFIG_PREEMPT_RT)) {
1334 /* Can't modify BH in atomic context */
1335 if (oldmask & preempts_irq)
1336 mask &= ~bhs;
1337 if ((oldmask | mask) & preempts_irq)
1338 mask |= oldmask & bhs;
1339 }
1340
1341 return mask ?: RCUTORTURE_RDR_RCU;
1342 }
1343
1344 /*
1345 * Do a randomly selected number of extensions of an existing RCU read-side
1346 * critical section.
1347 */
1348 static struct rt_read_seg *
rcutorture_loop_extend(int * readstate,struct torture_random_state * trsp,struct rt_read_seg * rtrsp)1349 rcutorture_loop_extend(int *readstate, struct torture_random_state *trsp,
1350 struct rt_read_seg *rtrsp)
1351 {
1352 int i;
1353 int j;
1354 int mask = rcutorture_extend_mask_max();
1355
1356 WARN_ON_ONCE(!*readstate); /* -Existing- RCU read-side critsect! */
1357 if (!((mask - 1) & mask))
1358 return rtrsp; /* Current RCU reader not extendable. */
1359 /* Bias towards larger numbers of loops. */
1360 i = (torture_random(trsp) >> 3);
1361 i = ((i | (i >> 3)) & RCUTORTURE_RDR_MAX_LOOPS) + 1;
1362 for (j = 0; j < i; j++) {
1363 mask = rcutorture_extend_mask(*readstate, trsp);
1364 rcutorture_one_extend(readstate, mask, trsp, &rtrsp[j]);
1365 }
1366 return &rtrsp[j];
1367 }
1368
1369 /*
1370 * Do one read-side critical section, returning false if there was
1371 * no data to read. Can be invoked both from process context and
1372 * from a timer handler.
1373 */
rcu_torture_one_read(struct torture_random_state * trsp)1374 static bool rcu_torture_one_read(struct torture_random_state *trsp)
1375 {
1376 int i;
1377 unsigned long started;
1378 unsigned long completed;
1379 int newstate;
1380 struct rcu_torture *p;
1381 int pipe_count;
1382 int readstate = 0;
1383 struct rt_read_seg rtseg[RCUTORTURE_RDR_MAX_SEGS] = { { 0 } };
1384 struct rt_read_seg *rtrsp = &rtseg[0];
1385 struct rt_read_seg *rtrsp1;
1386 unsigned long long ts;
1387
1388 WARN_ON_ONCE(!rcu_is_watching());
1389 newstate = rcutorture_extend_mask(readstate, trsp);
1390 rcutorture_one_extend(&readstate, newstate, trsp, rtrsp++);
1391 started = cur_ops->get_gp_seq();
1392 ts = rcu_trace_clock_local();
1393 p = rcu_dereference_check(rcu_torture_current,
1394 rcu_read_lock_bh_held() ||
1395 rcu_read_lock_sched_held() ||
1396 srcu_read_lock_held(srcu_ctlp) ||
1397 rcu_read_lock_trace_held() ||
1398 torturing_tasks());
1399 if (p == NULL) {
1400 /* Wait for rcu_torture_writer to get underway */
1401 rcutorture_one_extend(&readstate, 0, trsp, rtrsp);
1402 return false;
1403 }
1404 if (p->rtort_mbtest == 0)
1405 atomic_inc(&n_rcu_torture_mberror);
1406 rtrsp = rcutorture_loop_extend(&readstate, trsp, rtrsp);
1407 preempt_disable();
1408 pipe_count = READ_ONCE(p->rtort_pipe_count);
1409 if (pipe_count > RCU_TORTURE_PIPE_LEN) {
1410 /* Should not happen, but... */
1411 pipe_count = RCU_TORTURE_PIPE_LEN;
1412 }
1413 completed = cur_ops->get_gp_seq();
1414 if (pipe_count > 1) {
1415 do_trace_rcu_torture_read(cur_ops->name, &p->rtort_rcu,
1416 ts, started, completed);
1417 rcu_ftrace_dump(DUMP_ALL);
1418 }
1419 __this_cpu_inc(rcu_torture_count[pipe_count]);
1420 completed = rcutorture_seq_diff(completed, started);
1421 if (completed > RCU_TORTURE_PIPE_LEN) {
1422 /* Should not happen, but... */
1423 completed = RCU_TORTURE_PIPE_LEN;
1424 }
1425 __this_cpu_inc(rcu_torture_batch[completed]);
1426 preempt_enable();
1427 rcutorture_one_extend(&readstate, 0, trsp, rtrsp);
1428 WARN_ON_ONCE(readstate & RCUTORTURE_RDR_MASK);
1429 // This next splat is expected behavior if leakpointer, especially
1430 // for CONFIG_RCU_STRICT_GRACE_PERIOD=y kernels.
1431 WARN_ON_ONCE(leakpointer && READ_ONCE(p->rtort_pipe_count) > 1);
1432
1433 /* If error or close call, record the sequence of reader protections. */
1434 if ((pipe_count > 1 || completed > 1) && !xchg(&err_segs_recorded, 1)) {
1435 i = 0;
1436 for (rtrsp1 = &rtseg[0]; rtrsp1 < rtrsp; rtrsp1++)
1437 err_segs[i++] = *rtrsp1;
1438 rt_read_nsegs = i;
1439 }
1440
1441 return true;
1442 }
1443
1444 static DEFINE_TORTURE_RANDOM_PERCPU(rcu_torture_timer_rand);
1445
1446 /*
1447 * RCU torture reader from timer handler. Dereferences rcu_torture_current,
1448 * incrementing the corresponding element of the pipeline array. The
1449 * counter in the element should never be greater than 1, otherwise, the
1450 * RCU implementation is broken.
1451 */
rcu_torture_timer(struct timer_list * unused)1452 static void rcu_torture_timer(struct timer_list *unused)
1453 {
1454 atomic_long_inc(&n_rcu_torture_timers);
1455 (void)rcu_torture_one_read(this_cpu_ptr(&rcu_torture_timer_rand));
1456
1457 /* Test call_rcu() invocation from interrupt handler. */
1458 if (cur_ops->call) {
1459 struct rcu_head *rhp = kmalloc(sizeof(*rhp), GFP_NOWAIT);
1460
1461 if (rhp)
1462 cur_ops->call(rhp, rcu_torture_timer_cb);
1463 }
1464 }
1465
1466 /*
1467 * RCU torture reader kthread. Repeatedly dereferences rcu_torture_current,
1468 * incrementing the corresponding element of the pipeline array. The
1469 * counter in the element should never be greater than 1, otherwise, the
1470 * RCU implementation is broken.
1471 */
1472 static int
rcu_torture_reader(void * arg)1473 rcu_torture_reader(void *arg)
1474 {
1475 unsigned long lastsleep = jiffies;
1476 long myid = (long)arg;
1477 int mynumonline = myid;
1478 DEFINE_TORTURE_RANDOM(rand);
1479 struct timer_list t;
1480
1481 VERBOSE_TOROUT_STRING("rcu_torture_reader task started");
1482 set_user_nice(current, MAX_NICE);
1483 if (irqreader && cur_ops->irq_capable)
1484 timer_setup_on_stack(&t, rcu_torture_timer, 0);
1485 tick_dep_set_task(current, TICK_DEP_BIT_RCU);
1486 do {
1487 if (irqreader && cur_ops->irq_capable) {
1488 if (!timer_pending(&t))
1489 mod_timer(&t, jiffies + 1);
1490 }
1491 if (!rcu_torture_one_read(&rand) && !torture_must_stop())
1492 schedule_timeout_interruptible(HZ);
1493 if (time_after(jiffies, lastsleep) && !torture_must_stop()) {
1494 schedule_timeout_interruptible(1);
1495 lastsleep = jiffies + 10;
1496 }
1497 while (num_online_cpus() < mynumonline && !torture_must_stop())
1498 schedule_timeout_interruptible(HZ / 5);
1499 stutter_wait("rcu_torture_reader");
1500 } while (!torture_must_stop());
1501 if (irqreader && cur_ops->irq_capable) {
1502 del_timer_sync(&t);
1503 destroy_timer_on_stack(&t);
1504 }
1505 tick_dep_clear_task(current, TICK_DEP_BIT_RCU);
1506 torture_kthread_stopping("rcu_torture_reader");
1507 return 0;
1508 }
1509
1510 /*
1511 * Print torture statistics. Caller must ensure that there is only
1512 * one call to this function at a given time!!! This is normally
1513 * accomplished by relying on the module system to only have one copy
1514 * of the module loaded, and then by giving the rcu_torture_stats
1515 * kthread full control (or the init/cleanup functions when rcu_torture_stats
1516 * thread is not running).
1517 */
1518 static void
rcu_torture_stats_print(void)1519 rcu_torture_stats_print(void)
1520 {
1521 int cpu;
1522 int i;
1523 long pipesummary[RCU_TORTURE_PIPE_LEN + 1] = { 0 };
1524 long batchsummary[RCU_TORTURE_PIPE_LEN + 1] = { 0 };
1525 struct rcu_torture *rtcp;
1526 static unsigned long rtcv_snap = ULONG_MAX;
1527 static bool splatted;
1528 struct task_struct *wtp;
1529
1530 for_each_possible_cpu(cpu) {
1531 for (i = 0; i < RCU_TORTURE_PIPE_LEN + 1; i++) {
1532 pipesummary[i] += READ_ONCE(per_cpu(rcu_torture_count, cpu)[i]);
1533 batchsummary[i] += READ_ONCE(per_cpu(rcu_torture_batch, cpu)[i]);
1534 }
1535 }
1536 for (i = RCU_TORTURE_PIPE_LEN - 1; i >= 0; i--) {
1537 if (pipesummary[i] != 0)
1538 break;
1539 }
1540
1541 pr_alert("%s%s ", torture_type, TORTURE_FLAG);
1542 rtcp = rcu_access_pointer(rcu_torture_current);
1543 pr_cont("rtc: %p %s: %lu tfle: %d rta: %d rtaf: %d rtf: %d ",
1544 rtcp,
1545 rtcp && !rcu_stall_is_suppressed_at_boot() ? "ver" : "VER",
1546 rcu_torture_current_version,
1547 list_empty(&rcu_torture_freelist),
1548 atomic_read(&n_rcu_torture_alloc),
1549 atomic_read(&n_rcu_torture_alloc_fail),
1550 atomic_read(&n_rcu_torture_free));
1551 pr_cont("rtmbe: %d rtbe: %ld rtbke: %ld rtbre: %ld ",
1552 atomic_read(&n_rcu_torture_mberror),
1553 n_rcu_torture_barrier_error,
1554 n_rcu_torture_boost_ktrerror,
1555 n_rcu_torture_boost_rterror);
1556 pr_cont("rtbf: %ld rtb: %ld nt: %ld ",
1557 n_rcu_torture_boost_failure,
1558 n_rcu_torture_boosts,
1559 atomic_long_read(&n_rcu_torture_timers));
1560 torture_onoff_stats();
1561 pr_cont("barrier: %ld/%ld:%ld ",
1562 data_race(n_barrier_successes),
1563 data_race(n_barrier_attempts),
1564 data_race(n_rcu_torture_barrier_error));
1565 pr_cont("read-exits: %ld\n", data_race(n_read_exits));
1566
1567 pr_alert("%s%s ", torture_type, TORTURE_FLAG);
1568 if (atomic_read(&n_rcu_torture_mberror) ||
1569 n_rcu_torture_barrier_error || n_rcu_torture_boost_ktrerror ||
1570 n_rcu_torture_boost_rterror || n_rcu_torture_boost_failure ||
1571 i > 1) {
1572 pr_cont("%s", "!!! ");
1573 atomic_inc(&n_rcu_torture_error);
1574 WARN_ON_ONCE(atomic_read(&n_rcu_torture_mberror));
1575 WARN_ON_ONCE(n_rcu_torture_barrier_error); // rcu_barrier()
1576 WARN_ON_ONCE(n_rcu_torture_boost_ktrerror); // no boost kthread
1577 WARN_ON_ONCE(n_rcu_torture_boost_rterror); // can't set RT prio
1578 WARN_ON_ONCE(n_rcu_torture_boost_failure); // RCU boost failed
1579 WARN_ON_ONCE(i > 1); // Too-short grace period
1580 }
1581 pr_cont("Reader Pipe: ");
1582 for (i = 0; i < RCU_TORTURE_PIPE_LEN + 1; i++)
1583 pr_cont(" %ld", pipesummary[i]);
1584 pr_cont("\n");
1585
1586 pr_alert("%s%s ", torture_type, TORTURE_FLAG);
1587 pr_cont("Reader Batch: ");
1588 for (i = 0; i < RCU_TORTURE_PIPE_LEN + 1; i++)
1589 pr_cont(" %ld", batchsummary[i]);
1590 pr_cont("\n");
1591
1592 pr_alert("%s%s ", torture_type, TORTURE_FLAG);
1593 pr_cont("Free-Block Circulation: ");
1594 for (i = 0; i < RCU_TORTURE_PIPE_LEN + 1; i++) {
1595 pr_cont(" %d", atomic_read(&rcu_torture_wcount[i]));
1596 }
1597 pr_cont("\n");
1598
1599 if (cur_ops->stats)
1600 cur_ops->stats();
1601 if (rtcv_snap == rcu_torture_current_version &&
1602 rcu_access_pointer(rcu_torture_current) &&
1603 !rcu_stall_is_suppressed()) {
1604 int __maybe_unused flags = 0;
1605 unsigned long __maybe_unused gp_seq = 0;
1606
1607 rcutorture_get_gp_data(cur_ops->ttype,
1608 &flags, &gp_seq);
1609 srcutorture_get_gp_data(cur_ops->ttype, srcu_ctlp,
1610 &flags, &gp_seq);
1611 wtp = READ_ONCE(writer_task);
1612 pr_alert("??? Writer stall state %s(%d) g%lu f%#x ->state %#lx cpu %d\n",
1613 rcu_torture_writer_state_getname(),
1614 rcu_torture_writer_state, gp_seq, flags,
1615 wtp == NULL ? ~0UL : wtp->state,
1616 wtp == NULL ? -1 : (int)task_cpu(wtp));
1617 if (!splatted && wtp) {
1618 sched_show_task(wtp);
1619 splatted = true;
1620 }
1621 show_rcu_gp_kthreads();
1622 rcu_ftrace_dump(DUMP_ALL);
1623 }
1624 rtcv_snap = rcu_torture_current_version;
1625 }
1626
1627 /*
1628 * Periodically prints torture statistics, if periodic statistics printing
1629 * was specified via the stat_interval module parameter.
1630 */
1631 static int
rcu_torture_stats(void * arg)1632 rcu_torture_stats(void *arg)
1633 {
1634 VERBOSE_TOROUT_STRING("rcu_torture_stats task started");
1635 do {
1636 schedule_timeout_interruptible(stat_interval * HZ);
1637 rcu_torture_stats_print();
1638 torture_shutdown_absorb("rcu_torture_stats");
1639 } while (!torture_must_stop());
1640 torture_kthread_stopping("rcu_torture_stats");
1641 return 0;
1642 }
1643
1644 static void
rcu_torture_print_module_parms(struct rcu_torture_ops * cur_ops,const char * tag)1645 rcu_torture_print_module_parms(struct rcu_torture_ops *cur_ops, const char *tag)
1646 {
1647 pr_alert("%s" TORTURE_FLAG
1648 "--- %s: nreaders=%d nfakewriters=%d "
1649 "stat_interval=%d verbose=%d test_no_idle_hz=%d "
1650 "shuffle_interval=%d stutter=%d irqreader=%d "
1651 "fqs_duration=%d fqs_holdoff=%d fqs_stutter=%d "
1652 "test_boost=%d/%d test_boost_interval=%d "
1653 "test_boost_duration=%d shutdown_secs=%d "
1654 "stall_cpu=%d stall_cpu_holdoff=%d stall_cpu_irqsoff=%d "
1655 "stall_cpu_block=%d "
1656 "n_barrier_cbs=%d "
1657 "onoff_interval=%d onoff_holdoff=%d "
1658 "read_exit_delay=%d read_exit_burst=%d\n",
1659 torture_type, tag, nrealreaders, nfakewriters,
1660 stat_interval, verbose, test_no_idle_hz, shuffle_interval,
1661 stutter, irqreader, fqs_duration, fqs_holdoff, fqs_stutter,
1662 test_boost, cur_ops->can_boost,
1663 test_boost_interval, test_boost_duration, shutdown_secs,
1664 stall_cpu, stall_cpu_holdoff, stall_cpu_irqsoff,
1665 stall_cpu_block,
1666 n_barrier_cbs,
1667 onoff_interval, onoff_holdoff,
1668 read_exit_delay, read_exit_burst);
1669 }
1670
rcutorture_booster_cleanup(unsigned int cpu)1671 static int rcutorture_booster_cleanup(unsigned int cpu)
1672 {
1673 struct task_struct *t;
1674
1675 if (boost_tasks[cpu] == NULL)
1676 return 0;
1677 mutex_lock(&boost_mutex);
1678 t = boost_tasks[cpu];
1679 boost_tasks[cpu] = NULL;
1680 rcu_torture_enable_rt_throttle();
1681 mutex_unlock(&boost_mutex);
1682
1683 /* This must be outside of the mutex, otherwise deadlock! */
1684 torture_stop_kthread(rcu_torture_boost, t);
1685 return 0;
1686 }
1687
rcutorture_booster_init(unsigned int cpu)1688 static int rcutorture_booster_init(unsigned int cpu)
1689 {
1690 int retval;
1691
1692 if (boost_tasks[cpu] != NULL)
1693 return 0; /* Already created, nothing more to do. */
1694
1695 /* Don't allow time recalculation while creating a new task. */
1696 mutex_lock(&boost_mutex);
1697 rcu_torture_disable_rt_throttle();
1698 VERBOSE_TOROUT_STRING("Creating rcu_torture_boost task");
1699 boost_tasks[cpu] = kthread_create_on_node(rcu_torture_boost, NULL,
1700 cpu_to_node(cpu),
1701 "rcu_torture_boost");
1702 if (IS_ERR(boost_tasks[cpu])) {
1703 retval = PTR_ERR(boost_tasks[cpu]);
1704 VERBOSE_TOROUT_STRING("rcu_torture_boost task create failed");
1705 n_rcu_torture_boost_ktrerror++;
1706 boost_tasks[cpu] = NULL;
1707 mutex_unlock(&boost_mutex);
1708 return retval;
1709 }
1710 kthread_bind(boost_tasks[cpu], cpu);
1711 wake_up_process(boost_tasks[cpu]);
1712 mutex_unlock(&boost_mutex);
1713 return 0;
1714 }
1715
1716 /*
1717 * CPU-stall kthread. It waits as specified by stall_cpu_holdoff, then
1718 * induces a CPU stall for the time specified by stall_cpu.
1719 */
rcu_torture_stall(void * args)1720 static int rcu_torture_stall(void *args)
1721 {
1722 int idx;
1723 unsigned long stop_at;
1724
1725 VERBOSE_TOROUT_STRING("rcu_torture_stall task started");
1726 if (stall_cpu_holdoff > 0) {
1727 VERBOSE_TOROUT_STRING("rcu_torture_stall begin holdoff");
1728 schedule_timeout_interruptible(stall_cpu_holdoff * HZ);
1729 VERBOSE_TOROUT_STRING("rcu_torture_stall end holdoff");
1730 }
1731 if (!kthread_should_stop() && stall_gp_kthread > 0) {
1732 VERBOSE_TOROUT_STRING("rcu_torture_stall begin GP stall");
1733 rcu_gp_set_torture_wait(stall_gp_kthread * HZ);
1734 for (idx = 0; idx < stall_gp_kthread + 2; idx++) {
1735 if (kthread_should_stop())
1736 break;
1737 schedule_timeout_uninterruptible(HZ);
1738 }
1739 }
1740 if (!kthread_should_stop() && stall_cpu > 0) {
1741 VERBOSE_TOROUT_STRING("rcu_torture_stall begin CPU stall");
1742 stop_at = ktime_get_seconds() + stall_cpu;
1743 /* RCU CPU stall is expected behavior in following code. */
1744 idx = cur_ops->readlock();
1745 if (stall_cpu_irqsoff)
1746 local_irq_disable();
1747 else if (!stall_cpu_block)
1748 preempt_disable();
1749 pr_alert("rcu_torture_stall start on CPU %d.\n",
1750 raw_smp_processor_id());
1751 while (ULONG_CMP_LT((unsigned long)ktime_get_seconds(),
1752 stop_at))
1753 if (stall_cpu_block)
1754 schedule_timeout_uninterruptible(HZ);
1755 if (stall_cpu_irqsoff)
1756 local_irq_enable();
1757 else if (!stall_cpu_block)
1758 preempt_enable();
1759 cur_ops->readunlock(idx);
1760 }
1761 pr_alert("rcu_torture_stall end.\n");
1762 torture_shutdown_absorb("rcu_torture_stall");
1763 while (!kthread_should_stop())
1764 schedule_timeout_interruptible(10 * HZ);
1765 return 0;
1766 }
1767
1768 /* Spawn CPU-stall kthread, if stall_cpu specified. */
rcu_torture_stall_init(void)1769 static int __init rcu_torture_stall_init(void)
1770 {
1771 if (stall_cpu <= 0 && stall_gp_kthread <= 0)
1772 return 0;
1773 return torture_create_kthread(rcu_torture_stall, NULL, stall_task);
1774 }
1775
1776 /* State structure for forward-progress self-propagating RCU callback. */
1777 struct fwd_cb_state {
1778 struct rcu_head rh;
1779 int stop;
1780 };
1781
1782 /*
1783 * Forward-progress self-propagating RCU callback function. Because
1784 * callbacks run from softirq, this function is an implicit RCU read-side
1785 * critical section.
1786 */
rcu_torture_fwd_prog_cb(struct rcu_head * rhp)1787 static void rcu_torture_fwd_prog_cb(struct rcu_head *rhp)
1788 {
1789 struct fwd_cb_state *fcsp = container_of(rhp, struct fwd_cb_state, rh);
1790
1791 if (READ_ONCE(fcsp->stop)) {
1792 WRITE_ONCE(fcsp->stop, 2);
1793 return;
1794 }
1795 cur_ops->call(&fcsp->rh, rcu_torture_fwd_prog_cb);
1796 }
1797
1798 /* State for continuous-flood RCU callbacks. */
1799 struct rcu_fwd_cb {
1800 struct rcu_head rh;
1801 struct rcu_fwd_cb *rfc_next;
1802 struct rcu_fwd *rfc_rfp;
1803 int rfc_gps;
1804 };
1805
1806 #define MAX_FWD_CB_JIFFIES (8 * HZ) /* Maximum CB test duration. */
1807 #define MIN_FWD_CB_LAUNDERS 3 /* This many CB invocations to count. */
1808 #define MIN_FWD_CBS_LAUNDERED 100 /* Number of counted CBs. */
1809 #define FWD_CBS_HIST_DIV 10 /* Histogram buckets/second. */
1810 #define N_LAUNDERS_HIST (2 * MAX_FWD_CB_JIFFIES / (HZ / FWD_CBS_HIST_DIV))
1811
1812 struct rcu_launder_hist {
1813 long n_launders;
1814 unsigned long launder_gp_seq;
1815 };
1816
1817 struct rcu_fwd {
1818 spinlock_t rcu_fwd_lock;
1819 struct rcu_fwd_cb *rcu_fwd_cb_head;
1820 struct rcu_fwd_cb **rcu_fwd_cb_tail;
1821 long n_launders_cb;
1822 unsigned long rcu_fwd_startat;
1823 struct rcu_launder_hist n_launders_hist[N_LAUNDERS_HIST];
1824 unsigned long rcu_launder_gp_seq_start;
1825 };
1826
1827 static DEFINE_MUTEX(rcu_fwd_mutex);
1828 static struct rcu_fwd *rcu_fwds;
1829 static bool rcu_fwd_emergency_stop;
1830
rcu_torture_fwd_cb_hist(struct rcu_fwd * rfp)1831 static void rcu_torture_fwd_cb_hist(struct rcu_fwd *rfp)
1832 {
1833 unsigned long gps;
1834 unsigned long gps_old;
1835 int i;
1836 int j;
1837
1838 for (i = ARRAY_SIZE(rfp->n_launders_hist) - 1; i > 0; i--)
1839 if (rfp->n_launders_hist[i].n_launders > 0)
1840 break;
1841 pr_alert("%s: Callback-invocation histogram (duration %lu jiffies):",
1842 __func__, jiffies - rfp->rcu_fwd_startat);
1843 gps_old = rfp->rcu_launder_gp_seq_start;
1844 for (j = 0; j <= i; j++) {
1845 gps = rfp->n_launders_hist[j].launder_gp_seq;
1846 pr_cont(" %ds/%d: %ld:%ld",
1847 j + 1, FWD_CBS_HIST_DIV,
1848 rfp->n_launders_hist[j].n_launders,
1849 rcutorture_seq_diff(gps, gps_old));
1850 gps_old = gps;
1851 }
1852 pr_cont("\n");
1853 }
1854
1855 /* Callback function for continuous-flood RCU callbacks. */
rcu_torture_fwd_cb_cr(struct rcu_head * rhp)1856 static void rcu_torture_fwd_cb_cr(struct rcu_head *rhp)
1857 {
1858 unsigned long flags;
1859 int i;
1860 struct rcu_fwd_cb *rfcp = container_of(rhp, struct rcu_fwd_cb, rh);
1861 struct rcu_fwd_cb **rfcpp;
1862 struct rcu_fwd *rfp = rfcp->rfc_rfp;
1863
1864 rfcp->rfc_next = NULL;
1865 rfcp->rfc_gps++;
1866 spin_lock_irqsave(&rfp->rcu_fwd_lock, flags);
1867 rfcpp = rfp->rcu_fwd_cb_tail;
1868 rfp->rcu_fwd_cb_tail = &rfcp->rfc_next;
1869 WRITE_ONCE(*rfcpp, rfcp);
1870 WRITE_ONCE(rfp->n_launders_cb, rfp->n_launders_cb + 1);
1871 i = ((jiffies - rfp->rcu_fwd_startat) / (HZ / FWD_CBS_HIST_DIV));
1872 if (i >= ARRAY_SIZE(rfp->n_launders_hist))
1873 i = ARRAY_SIZE(rfp->n_launders_hist) - 1;
1874 rfp->n_launders_hist[i].n_launders++;
1875 rfp->n_launders_hist[i].launder_gp_seq = cur_ops->get_gp_seq();
1876 spin_unlock_irqrestore(&rfp->rcu_fwd_lock, flags);
1877 }
1878
1879 // Give the scheduler a chance, even on nohz_full CPUs.
rcu_torture_fwd_prog_cond_resched(unsigned long iter)1880 static void rcu_torture_fwd_prog_cond_resched(unsigned long iter)
1881 {
1882 if (IS_ENABLED(CONFIG_PREEMPTION) && IS_ENABLED(CONFIG_NO_HZ_FULL)) {
1883 // Real call_rcu() floods hit userspace, so emulate that.
1884 if (need_resched() || (iter & 0xfff))
1885 schedule();
1886 return;
1887 }
1888 // No userspace emulation: CB invocation throttles call_rcu()
1889 cond_resched();
1890 }
1891
1892 /*
1893 * Free all callbacks on the rcu_fwd_cb_head list, either because the
1894 * test is over or because we hit an OOM event.
1895 */
rcu_torture_fwd_prog_cbfree(struct rcu_fwd * rfp)1896 static unsigned long rcu_torture_fwd_prog_cbfree(struct rcu_fwd *rfp)
1897 {
1898 unsigned long flags;
1899 unsigned long freed = 0;
1900 struct rcu_fwd_cb *rfcp;
1901
1902 for (;;) {
1903 spin_lock_irqsave(&rfp->rcu_fwd_lock, flags);
1904 rfcp = rfp->rcu_fwd_cb_head;
1905 if (!rfcp) {
1906 spin_unlock_irqrestore(&rfp->rcu_fwd_lock, flags);
1907 break;
1908 }
1909 rfp->rcu_fwd_cb_head = rfcp->rfc_next;
1910 if (!rfp->rcu_fwd_cb_head)
1911 rfp->rcu_fwd_cb_tail = &rfp->rcu_fwd_cb_head;
1912 spin_unlock_irqrestore(&rfp->rcu_fwd_lock, flags);
1913 kfree(rfcp);
1914 freed++;
1915 rcu_torture_fwd_prog_cond_resched(freed);
1916 if (tick_nohz_full_enabled()) {
1917 local_irq_save(flags);
1918 rcu_momentary_dyntick_idle();
1919 local_irq_restore(flags);
1920 }
1921 }
1922 return freed;
1923 }
1924
1925 /* Carry out need_resched()/cond_resched() forward-progress testing. */
rcu_torture_fwd_prog_nr(struct rcu_fwd * rfp,int * tested,int * tested_tries)1926 static void rcu_torture_fwd_prog_nr(struct rcu_fwd *rfp,
1927 int *tested, int *tested_tries)
1928 {
1929 unsigned long cver;
1930 unsigned long dur;
1931 struct fwd_cb_state fcs;
1932 unsigned long gps;
1933 int idx;
1934 int sd;
1935 int sd4;
1936 bool selfpropcb = false;
1937 unsigned long stopat;
1938 static DEFINE_TORTURE_RANDOM(trs);
1939
1940 if (cur_ops->call && cur_ops->sync && cur_ops->cb_barrier) {
1941 init_rcu_head_on_stack(&fcs.rh);
1942 selfpropcb = true;
1943 }
1944
1945 /* Tight loop containing cond_resched(). */
1946 WRITE_ONCE(rcu_fwd_cb_nodelay, true);
1947 cur_ops->sync(); /* Later readers see above write. */
1948 if (selfpropcb) {
1949 WRITE_ONCE(fcs.stop, 0);
1950 cur_ops->call(&fcs.rh, rcu_torture_fwd_prog_cb);
1951 }
1952 cver = READ_ONCE(rcu_torture_current_version);
1953 gps = cur_ops->get_gp_seq();
1954 sd = cur_ops->stall_dur() + 1;
1955 sd4 = (sd + fwd_progress_div - 1) / fwd_progress_div;
1956 dur = sd4 + torture_random(&trs) % (sd - sd4);
1957 WRITE_ONCE(rfp->rcu_fwd_startat, jiffies);
1958 stopat = rfp->rcu_fwd_startat + dur;
1959 while (time_before(jiffies, stopat) &&
1960 !shutdown_time_arrived() &&
1961 !READ_ONCE(rcu_fwd_emergency_stop) && !torture_must_stop()) {
1962 idx = cur_ops->readlock();
1963 udelay(10);
1964 cur_ops->readunlock(idx);
1965 if (!fwd_progress_need_resched || need_resched())
1966 cond_resched();
1967 }
1968 (*tested_tries)++;
1969 if (!time_before(jiffies, stopat) &&
1970 !shutdown_time_arrived() &&
1971 !READ_ONCE(rcu_fwd_emergency_stop) && !torture_must_stop()) {
1972 (*tested)++;
1973 cver = READ_ONCE(rcu_torture_current_version) - cver;
1974 gps = rcutorture_seq_diff(cur_ops->get_gp_seq(), gps);
1975 WARN_ON(!cver && gps < 2);
1976 pr_alert("%s: Duration %ld cver %ld gps %ld\n", __func__, dur, cver, gps);
1977 }
1978 if (selfpropcb) {
1979 WRITE_ONCE(fcs.stop, 1);
1980 cur_ops->sync(); /* Wait for running CB to complete. */
1981 cur_ops->cb_barrier(); /* Wait for queued callbacks. */
1982 }
1983
1984 if (selfpropcb) {
1985 WARN_ON(READ_ONCE(fcs.stop) != 2);
1986 destroy_rcu_head_on_stack(&fcs.rh);
1987 }
1988 schedule_timeout_uninterruptible(HZ / 10); /* Let kthreads recover. */
1989 WRITE_ONCE(rcu_fwd_cb_nodelay, false);
1990 }
1991
1992 /* Carry out call_rcu() forward-progress testing. */
rcu_torture_fwd_prog_cr(struct rcu_fwd * rfp)1993 static void rcu_torture_fwd_prog_cr(struct rcu_fwd *rfp)
1994 {
1995 unsigned long cver;
1996 unsigned long flags;
1997 unsigned long gps;
1998 int i;
1999 long n_launders;
2000 long n_launders_cb_snap;
2001 long n_launders_sa;
2002 long n_max_cbs;
2003 long n_max_gps;
2004 struct rcu_fwd_cb *rfcp;
2005 struct rcu_fwd_cb *rfcpn;
2006 unsigned long stopat;
2007 unsigned long stoppedat;
2008
2009 if (READ_ONCE(rcu_fwd_emergency_stop))
2010 return; /* Get out of the way quickly, no GP wait! */
2011 if (!cur_ops->call)
2012 return; /* Can't do call_rcu() fwd prog without ->call. */
2013
2014 /* Loop continuously posting RCU callbacks. */
2015 WRITE_ONCE(rcu_fwd_cb_nodelay, true);
2016 cur_ops->sync(); /* Later readers see above write. */
2017 WRITE_ONCE(rfp->rcu_fwd_startat, jiffies);
2018 stopat = rfp->rcu_fwd_startat + MAX_FWD_CB_JIFFIES;
2019 n_launders = 0;
2020 rfp->n_launders_cb = 0; // Hoist initialization for multi-kthread
2021 n_launders_sa = 0;
2022 n_max_cbs = 0;
2023 n_max_gps = 0;
2024 for (i = 0; i < ARRAY_SIZE(rfp->n_launders_hist); i++)
2025 rfp->n_launders_hist[i].n_launders = 0;
2026 cver = READ_ONCE(rcu_torture_current_version);
2027 gps = cur_ops->get_gp_seq();
2028 rfp->rcu_launder_gp_seq_start = gps;
2029 tick_dep_set_task(current, TICK_DEP_BIT_RCU);
2030 while (time_before(jiffies, stopat) &&
2031 !shutdown_time_arrived() &&
2032 !READ_ONCE(rcu_fwd_emergency_stop) && !torture_must_stop()) {
2033 rfcp = READ_ONCE(rfp->rcu_fwd_cb_head);
2034 rfcpn = NULL;
2035 if (rfcp)
2036 rfcpn = READ_ONCE(rfcp->rfc_next);
2037 if (rfcpn) {
2038 if (rfcp->rfc_gps >= MIN_FWD_CB_LAUNDERS &&
2039 ++n_max_gps >= MIN_FWD_CBS_LAUNDERED)
2040 break;
2041 rfp->rcu_fwd_cb_head = rfcpn;
2042 n_launders++;
2043 n_launders_sa++;
2044 } else {
2045 rfcp = kmalloc(sizeof(*rfcp), GFP_KERNEL);
2046 if (WARN_ON_ONCE(!rfcp)) {
2047 schedule_timeout_interruptible(1);
2048 continue;
2049 }
2050 n_max_cbs++;
2051 n_launders_sa = 0;
2052 rfcp->rfc_gps = 0;
2053 rfcp->rfc_rfp = rfp;
2054 }
2055 cur_ops->call(&rfcp->rh, rcu_torture_fwd_cb_cr);
2056 rcu_torture_fwd_prog_cond_resched(n_launders + n_max_cbs);
2057 if (tick_nohz_full_enabled()) {
2058 local_irq_save(flags);
2059 rcu_momentary_dyntick_idle();
2060 local_irq_restore(flags);
2061 }
2062 }
2063 stoppedat = jiffies;
2064 n_launders_cb_snap = READ_ONCE(rfp->n_launders_cb);
2065 cver = READ_ONCE(rcu_torture_current_version) - cver;
2066 gps = rcutorture_seq_diff(cur_ops->get_gp_seq(), gps);
2067 cur_ops->cb_barrier(); /* Wait for callbacks to be invoked. */
2068 (void)rcu_torture_fwd_prog_cbfree(rfp);
2069
2070 if (!torture_must_stop() && !READ_ONCE(rcu_fwd_emergency_stop) &&
2071 !shutdown_time_arrived()) {
2072 WARN_ON(n_max_gps < MIN_FWD_CBS_LAUNDERED);
2073 pr_alert("%s Duration %lu barrier: %lu pending %ld n_launders: %ld n_launders_sa: %ld n_max_gps: %ld n_max_cbs: %ld cver %ld gps %ld\n",
2074 __func__,
2075 stoppedat - rfp->rcu_fwd_startat, jiffies - stoppedat,
2076 n_launders + n_max_cbs - n_launders_cb_snap,
2077 n_launders, n_launders_sa,
2078 n_max_gps, n_max_cbs, cver, gps);
2079 rcu_torture_fwd_cb_hist(rfp);
2080 }
2081 schedule_timeout_uninterruptible(HZ); /* Let CBs drain. */
2082 tick_dep_clear_task(current, TICK_DEP_BIT_RCU);
2083 WRITE_ONCE(rcu_fwd_cb_nodelay, false);
2084 }
2085
2086
2087 /*
2088 * OOM notifier, but this only prints diagnostic information for the
2089 * current forward-progress test.
2090 */
rcutorture_oom_notify(struct notifier_block * self,unsigned long notused,void * nfreed)2091 static int rcutorture_oom_notify(struct notifier_block *self,
2092 unsigned long notused, void *nfreed)
2093 {
2094 struct rcu_fwd *rfp;
2095
2096 mutex_lock(&rcu_fwd_mutex);
2097 rfp = rcu_fwds;
2098 if (!rfp) {
2099 mutex_unlock(&rcu_fwd_mutex);
2100 return NOTIFY_OK;
2101 }
2102 WARN(1, "%s invoked upon OOM during forward-progress testing.\n",
2103 __func__);
2104 rcu_torture_fwd_cb_hist(rfp);
2105 rcu_fwd_progress_check(1 + (jiffies - READ_ONCE(rfp->rcu_fwd_startat)) / 2);
2106 WRITE_ONCE(rcu_fwd_emergency_stop, true);
2107 smp_mb(); /* Emergency stop before free and wait to avoid hangs. */
2108 pr_info("%s: Freed %lu RCU callbacks.\n",
2109 __func__, rcu_torture_fwd_prog_cbfree(rfp));
2110 rcu_barrier();
2111 pr_info("%s: Freed %lu RCU callbacks.\n",
2112 __func__, rcu_torture_fwd_prog_cbfree(rfp));
2113 rcu_barrier();
2114 pr_info("%s: Freed %lu RCU callbacks.\n",
2115 __func__, rcu_torture_fwd_prog_cbfree(rfp));
2116 smp_mb(); /* Frees before return to avoid redoing OOM. */
2117 (*(unsigned long *)nfreed)++; /* Forward progress CBs freed! */
2118 pr_info("%s returning after OOM processing.\n", __func__);
2119 mutex_unlock(&rcu_fwd_mutex);
2120 return NOTIFY_OK;
2121 }
2122
2123 static struct notifier_block rcutorture_oom_nb = {
2124 .notifier_call = rcutorture_oom_notify
2125 };
2126
2127 /* Carry out grace-period forward-progress testing. */
rcu_torture_fwd_prog(void * args)2128 static int rcu_torture_fwd_prog(void *args)
2129 {
2130 struct rcu_fwd *rfp = args;
2131 int tested = 0;
2132 int tested_tries = 0;
2133
2134 VERBOSE_TOROUT_STRING("rcu_torture_fwd_progress task started");
2135 rcu_bind_current_to_nocb();
2136 if (!IS_ENABLED(CONFIG_SMP) || !IS_ENABLED(CONFIG_RCU_BOOST))
2137 set_user_nice(current, MAX_NICE);
2138 do {
2139 schedule_timeout_interruptible(fwd_progress_holdoff * HZ);
2140 WRITE_ONCE(rcu_fwd_emergency_stop, false);
2141 if (!IS_ENABLED(CONFIG_TINY_RCU) ||
2142 rcu_inkernel_boot_has_ended())
2143 rcu_torture_fwd_prog_nr(rfp, &tested, &tested_tries);
2144 if (rcu_inkernel_boot_has_ended())
2145 rcu_torture_fwd_prog_cr(rfp);
2146
2147 /* Avoid slow periods, better to test when busy. */
2148 stutter_wait("rcu_torture_fwd_prog");
2149 } while (!torture_must_stop());
2150 /* Short runs might not contain a valid forward-progress attempt. */
2151 WARN_ON(!tested && tested_tries >= 5);
2152 pr_alert("%s: tested %d tested_tries %d\n", __func__, tested, tested_tries);
2153 torture_kthread_stopping("rcu_torture_fwd_prog");
2154 return 0;
2155 }
2156
2157 /* If forward-progress checking is requested and feasible, spawn the thread. */
rcu_torture_fwd_prog_init(void)2158 static int __init rcu_torture_fwd_prog_init(void)
2159 {
2160 struct rcu_fwd *rfp;
2161
2162 if (!fwd_progress)
2163 return 0; /* Not requested, so don't do it. */
2164 if (!cur_ops->stall_dur || cur_ops->stall_dur() <= 0 ||
2165 cur_ops == &rcu_busted_ops) {
2166 VERBOSE_TOROUT_STRING("rcu_torture_fwd_prog_init: Disabled, unsupported by RCU flavor under test");
2167 return 0;
2168 }
2169 if (stall_cpu > 0) {
2170 VERBOSE_TOROUT_STRING("rcu_torture_fwd_prog_init: Disabled, conflicts with CPU-stall testing");
2171 if (IS_MODULE(CONFIG_RCU_TORTURE_TESTS))
2172 return -EINVAL; /* In module, can fail back to user. */
2173 WARN_ON(1); /* Make sure rcutorture notices conflict. */
2174 return 0;
2175 }
2176 if (fwd_progress_holdoff <= 0)
2177 fwd_progress_holdoff = 1;
2178 if (fwd_progress_div <= 0)
2179 fwd_progress_div = 4;
2180 rfp = kzalloc(sizeof(*rfp), GFP_KERNEL);
2181 if (!rfp)
2182 return -ENOMEM;
2183 spin_lock_init(&rfp->rcu_fwd_lock);
2184 rfp->rcu_fwd_cb_tail = &rfp->rcu_fwd_cb_head;
2185 mutex_lock(&rcu_fwd_mutex);
2186 rcu_fwds = rfp;
2187 mutex_unlock(&rcu_fwd_mutex);
2188 register_oom_notifier(&rcutorture_oom_nb);
2189 return torture_create_kthread(rcu_torture_fwd_prog, rfp, fwd_prog_task);
2190 }
2191
rcu_torture_fwd_prog_cleanup(void)2192 static void rcu_torture_fwd_prog_cleanup(void)
2193 {
2194 struct rcu_fwd *rfp;
2195
2196 torture_stop_kthread(rcu_torture_fwd_prog, fwd_prog_task);
2197 rfp = rcu_fwds;
2198 mutex_lock(&rcu_fwd_mutex);
2199 rcu_fwds = NULL;
2200 mutex_unlock(&rcu_fwd_mutex);
2201 unregister_oom_notifier(&rcutorture_oom_nb);
2202 kfree(rfp);
2203 }
2204
2205 /* Callback function for RCU barrier testing. */
rcu_torture_barrier_cbf(struct rcu_head * rcu)2206 static void rcu_torture_barrier_cbf(struct rcu_head *rcu)
2207 {
2208 atomic_inc(&barrier_cbs_invoked);
2209 }
2210
2211 /* IPI handler to get callback posted on desired CPU, if online. */
rcu_torture_barrier1cb(void * rcu_void)2212 static void rcu_torture_barrier1cb(void *rcu_void)
2213 {
2214 struct rcu_head *rhp = rcu_void;
2215
2216 cur_ops->call(rhp, rcu_torture_barrier_cbf);
2217 }
2218
2219 /* kthread function to register callbacks used to test RCU barriers. */
rcu_torture_barrier_cbs(void * arg)2220 static int rcu_torture_barrier_cbs(void *arg)
2221 {
2222 long myid = (long)arg;
2223 bool lastphase = false;
2224 bool newphase;
2225 struct rcu_head rcu;
2226
2227 init_rcu_head_on_stack(&rcu);
2228 VERBOSE_TOROUT_STRING("rcu_torture_barrier_cbs task started");
2229 set_user_nice(current, MAX_NICE);
2230 do {
2231 wait_event(barrier_cbs_wq[myid],
2232 (newphase =
2233 smp_load_acquire(&barrier_phase)) != lastphase ||
2234 torture_must_stop());
2235 lastphase = newphase;
2236 if (torture_must_stop())
2237 break;
2238 /*
2239 * The above smp_load_acquire() ensures barrier_phase load
2240 * is ordered before the following ->call().
2241 */
2242 if (smp_call_function_single(myid, rcu_torture_barrier1cb,
2243 &rcu, 1)) {
2244 // IPI failed, so use direct call from current CPU.
2245 cur_ops->call(&rcu, rcu_torture_barrier_cbf);
2246 }
2247 if (atomic_dec_and_test(&barrier_cbs_count))
2248 wake_up(&barrier_wq);
2249 } while (!torture_must_stop());
2250 if (cur_ops->cb_barrier != NULL)
2251 cur_ops->cb_barrier();
2252 destroy_rcu_head_on_stack(&rcu);
2253 torture_kthread_stopping("rcu_torture_barrier_cbs");
2254 return 0;
2255 }
2256
2257 /* kthread function to drive and coordinate RCU barrier testing. */
rcu_torture_barrier(void * arg)2258 static int rcu_torture_barrier(void *arg)
2259 {
2260 int i;
2261
2262 VERBOSE_TOROUT_STRING("rcu_torture_barrier task starting");
2263 do {
2264 atomic_set(&barrier_cbs_invoked, 0);
2265 atomic_set(&barrier_cbs_count, n_barrier_cbs);
2266 /* Ensure barrier_phase ordered after prior assignments. */
2267 smp_store_release(&barrier_phase, !barrier_phase);
2268 for (i = 0; i < n_barrier_cbs; i++)
2269 wake_up(&barrier_cbs_wq[i]);
2270 wait_event(barrier_wq,
2271 atomic_read(&barrier_cbs_count) == 0 ||
2272 torture_must_stop());
2273 if (torture_must_stop())
2274 break;
2275 n_barrier_attempts++;
2276 cur_ops->cb_barrier(); /* Implies smp_mb() for wait_event(). */
2277 if (atomic_read(&barrier_cbs_invoked) != n_barrier_cbs) {
2278 n_rcu_torture_barrier_error++;
2279 pr_err("barrier_cbs_invoked = %d, n_barrier_cbs = %d\n",
2280 atomic_read(&barrier_cbs_invoked),
2281 n_barrier_cbs);
2282 WARN_ON(1);
2283 // Wait manually for the remaining callbacks
2284 i = 0;
2285 do {
2286 if (WARN_ON(i++ > HZ))
2287 i = INT_MIN;
2288 schedule_timeout_interruptible(1);
2289 cur_ops->cb_barrier();
2290 } while (atomic_read(&barrier_cbs_invoked) !=
2291 n_barrier_cbs &&
2292 !torture_must_stop());
2293 smp_mb(); // Can't trust ordering if broken.
2294 if (!torture_must_stop())
2295 pr_err("Recovered: barrier_cbs_invoked = %d\n",
2296 atomic_read(&barrier_cbs_invoked));
2297 } else {
2298 n_barrier_successes++;
2299 }
2300 schedule_timeout_interruptible(HZ / 10);
2301 } while (!torture_must_stop());
2302 torture_kthread_stopping("rcu_torture_barrier");
2303 return 0;
2304 }
2305
2306 /* Initialize RCU barrier testing. */
rcu_torture_barrier_init(void)2307 static int rcu_torture_barrier_init(void)
2308 {
2309 int i;
2310 int ret;
2311
2312 if (n_barrier_cbs <= 0)
2313 return 0;
2314 if (cur_ops->call == NULL || cur_ops->cb_barrier == NULL) {
2315 pr_alert("%s" TORTURE_FLAG
2316 " Call or barrier ops missing for %s,\n",
2317 torture_type, cur_ops->name);
2318 pr_alert("%s" TORTURE_FLAG
2319 " RCU barrier testing omitted from run.\n",
2320 torture_type);
2321 return 0;
2322 }
2323 atomic_set(&barrier_cbs_count, 0);
2324 atomic_set(&barrier_cbs_invoked, 0);
2325 barrier_cbs_tasks =
2326 kcalloc(n_barrier_cbs, sizeof(barrier_cbs_tasks[0]),
2327 GFP_KERNEL);
2328 barrier_cbs_wq =
2329 kcalloc(n_barrier_cbs, sizeof(barrier_cbs_wq[0]), GFP_KERNEL);
2330 if (barrier_cbs_tasks == NULL || !barrier_cbs_wq)
2331 return -ENOMEM;
2332 for (i = 0; i < n_barrier_cbs; i++) {
2333 init_waitqueue_head(&barrier_cbs_wq[i]);
2334 ret = torture_create_kthread(rcu_torture_barrier_cbs,
2335 (void *)(long)i,
2336 barrier_cbs_tasks[i]);
2337 if (ret)
2338 return ret;
2339 }
2340 return torture_create_kthread(rcu_torture_barrier, NULL, barrier_task);
2341 }
2342
2343 /* Clean up after RCU barrier testing. */
rcu_torture_barrier_cleanup(void)2344 static void rcu_torture_barrier_cleanup(void)
2345 {
2346 int i;
2347
2348 torture_stop_kthread(rcu_torture_barrier, barrier_task);
2349 if (barrier_cbs_tasks != NULL) {
2350 for (i = 0; i < n_barrier_cbs; i++)
2351 torture_stop_kthread(rcu_torture_barrier_cbs,
2352 barrier_cbs_tasks[i]);
2353 kfree(barrier_cbs_tasks);
2354 barrier_cbs_tasks = NULL;
2355 }
2356 if (barrier_cbs_wq != NULL) {
2357 kfree(barrier_cbs_wq);
2358 barrier_cbs_wq = NULL;
2359 }
2360 }
2361
rcu_torture_can_boost(void)2362 static bool rcu_torture_can_boost(void)
2363 {
2364 static int boost_warn_once;
2365 int prio;
2366
2367 if (!(test_boost == 1 && cur_ops->can_boost) && test_boost != 2)
2368 return false;
2369
2370 prio = rcu_get_gp_kthreads_prio();
2371 if (!prio)
2372 return false;
2373
2374 if (prio < 2) {
2375 if (boost_warn_once == 1)
2376 return false;
2377
2378 pr_alert("%s: WARN: RCU kthread priority too low to test boosting. Skipping RCU boost test. Try passing rcutree.kthread_prio > 1 on the kernel command line.\n", KBUILD_MODNAME);
2379 boost_warn_once = 1;
2380 return false;
2381 }
2382
2383 return true;
2384 }
2385
2386 static bool read_exit_child_stop;
2387 static bool read_exit_child_stopped;
2388 static wait_queue_head_t read_exit_wq;
2389
2390 // Child kthread which just does an rcutorture reader and exits.
rcu_torture_read_exit_child(void * trsp_in)2391 static int rcu_torture_read_exit_child(void *trsp_in)
2392 {
2393 struct torture_random_state *trsp = trsp_in;
2394
2395 set_user_nice(current, MAX_NICE);
2396 // Minimize time between reading and exiting.
2397 while (!kthread_should_stop())
2398 schedule_timeout_uninterruptible(1);
2399 (void)rcu_torture_one_read(trsp);
2400 return 0;
2401 }
2402
2403 // Parent kthread which creates and destroys read-exit child kthreads.
rcu_torture_read_exit(void * unused)2404 static int rcu_torture_read_exit(void *unused)
2405 {
2406 int count = 0;
2407 bool errexit = false;
2408 int i;
2409 struct task_struct *tsp;
2410 DEFINE_TORTURE_RANDOM(trs);
2411
2412 // Allocate and initialize.
2413 set_user_nice(current, MAX_NICE);
2414 VERBOSE_TOROUT_STRING("rcu_torture_read_exit: Start of test");
2415
2416 // Each pass through this loop does one read-exit episode.
2417 do {
2418 if (++count > read_exit_burst) {
2419 VERBOSE_TOROUT_STRING("rcu_torture_read_exit: End of episode");
2420 rcu_barrier(); // Wait for task_struct free, avoid OOM.
2421 for (i = 0; i < read_exit_delay; i++) {
2422 schedule_timeout_uninterruptible(HZ);
2423 if (READ_ONCE(read_exit_child_stop))
2424 break;
2425 }
2426 if (!READ_ONCE(read_exit_child_stop))
2427 VERBOSE_TOROUT_STRING("rcu_torture_read_exit: Start of episode");
2428 count = 0;
2429 }
2430 if (READ_ONCE(read_exit_child_stop))
2431 break;
2432 // Spawn child.
2433 tsp = kthread_run(rcu_torture_read_exit_child,
2434 &trs, "%s",
2435 "rcu_torture_read_exit_child");
2436 if (IS_ERR(tsp)) {
2437 VERBOSE_TOROUT_ERRSTRING("out of memory");
2438 errexit = true;
2439 tsp = NULL;
2440 break;
2441 }
2442 cond_resched();
2443 kthread_stop(tsp);
2444 n_read_exits ++;
2445 stutter_wait("rcu_torture_read_exit");
2446 } while (!errexit && !READ_ONCE(read_exit_child_stop));
2447
2448 // Clean up and exit.
2449 smp_store_release(&read_exit_child_stopped, true); // After reaping.
2450 smp_mb(); // Store before wakeup.
2451 wake_up(&read_exit_wq);
2452 while (!torture_must_stop())
2453 schedule_timeout_uninterruptible(1);
2454 torture_kthread_stopping("rcu_torture_read_exit");
2455 return 0;
2456 }
2457
rcu_torture_read_exit_init(void)2458 static int rcu_torture_read_exit_init(void)
2459 {
2460 if (read_exit_burst <= 0)
2461 return -EINVAL;
2462 init_waitqueue_head(&read_exit_wq);
2463 read_exit_child_stop = false;
2464 read_exit_child_stopped = false;
2465 return torture_create_kthread(rcu_torture_read_exit, NULL,
2466 read_exit_task);
2467 }
2468
rcu_torture_read_exit_cleanup(void)2469 static void rcu_torture_read_exit_cleanup(void)
2470 {
2471 if (!read_exit_task)
2472 return;
2473 WRITE_ONCE(read_exit_child_stop, true);
2474 smp_mb(); // Above write before wait.
2475 wait_event(read_exit_wq, smp_load_acquire(&read_exit_child_stopped));
2476 torture_stop_kthread(rcutorture_read_exit, read_exit_task);
2477 }
2478
2479 static enum cpuhp_state rcutor_hp;
2480
2481 static void
rcu_torture_cleanup(void)2482 rcu_torture_cleanup(void)
2483 {
2484 int firsttime;
2485 int flags = 0;
2486 unsigned long gp_seq = 0;
2487 int i;
2488
2489 if (torture_cleanup_begin()) {
2490 if (cur_ops->cb_barrier != NULL)
2491 cur_ops->cb_barrier();
2492 return;
2493 }
2494 if (!cur_ops) {
2495 torture_cleanup_end();
2496 return;
2497 }
2498
2499 show_rcu_gp_kthreads();
2500 rcu_torture_read_exit_cleanup();
2501 rcu_torture_barrier_cleanup();
2502 rcu_torture_fwd_prog_cleanup();
2503 torture_stop_kthread(rcu_torture_stall, stall_task);
2504 torture_stop_kthread(rcu_torture_writer, writer_task);
2505
2506 if (reader_tasks) {
2507 for (i = 0; i < nrealreaders; i++)
2508 torture_stop_kthread(rcu_torture_reader,
2509 reader_tasks[i]);
2510 kfree(reader_tasks);
2511 }
2512
2513 if (fakewriter_tasks) {
2514 for (i = 0; i < nfakewriters; i++) {
2515 torture_stop_kthread(rcu_torture_fakewriter,
2516 fakewriter_tasks[i]);
2517 }
2518 kfree(fakewriter_tasks);
2519 fakewriter_tasks = NULL;
2520 }
2521
2522 rcutorture_get_gp_data(cur_ops->ttype, &flags, &gp_seq);
2523 srcutorture_get_gp_data(cur_ops->ttype, srcu_ctlp, &flags, &gp_seq);
2524 pr_alert("%s: End-test grace-period state: g%ld f%#x total-gps=%ld\n",
2525 cur_ops->name, (long)gp_seq, flags,
2526 rcutorture_seq_diff(gp_seq, start_gp_seq));
2527 torture_stop_kthread(rcu_torture_stats, stats_task);
2528 torture_stop_kthread(rcu_torture_fqs, fqs_task);
2529 if (rcu_torture_can_boost())
2530 cpuhp_remove_state(rcutor_hp);
2531
2532 /*
2533 * Wait for all RCU callbacks to fire, then do torture-type-specific
2534 * cleanup operations.
2535 */
2536 if (cur_ops->cb_barrier != NULL)
2537 cur_ops->cb_barrier();
2538 if (cur_ops->cleanup != NULL)
2539 cur_ops->cleanup();
2540
2541 rcu_torture_stats_print(); /* -After- the stats thread is stopped! */
2542
2543 if (err_segs_recorded) {
2544 pr_alert("Failure/close-call rcutorture reader segments:\n");
2545 if (rt_read_nsegs == 0)
2546 pr_alert("\t: No segments recorded!!!\n");
2547 firsttime = 1;
2548 for (i = 0; i < rt_read_nsegs; i++) {
2549 pr_alert("\t%d: %#x ", i, err_segs[i].rt_readstate);
2550 if (err_segs[i].rt_delay_jiffies != 0) {
2551 pr_cont("%s%ldjiffies", firsttime ? "" : "+",
2552 err_segs[i].rt_delay_jiffies);
2553 firsttime = 0;
2554 }
2555 if (err_segs[i].rt_delay_ms != 0) {
2556 pr_cont("%s%ldms", firsttime ? "" : "+",
2557 err_segs[i].rt_delay_ms);
2558 firsttime = 0;
2559 }
2560 if (err_segs[i].rt_delay_us != 0) {
2561 pr_cont("%s%ldus", firsttime ? "" : "+",
2562 err_segs[i].rt_delay_us);
2563 firsttime = 0;
2564 }
2565 pr_cont("%s\n",
2566 err_segs[i].rt_preempted ? "preempted" : "");
2567
2568 }
2569 }
2570 if (atomic_read(&n_rcu_torture_error) || n_rcu_torture_barrier_error)
2571 rcu_torture_print_module_parms(cur_ops, "End of test: FAILURE");
2572 else if (torture_onoff_failures())
2573 rcu_torture_print_module_parms(cur_ops,
2574 "End of test: RCU_HOTPLUG");
2575 else
2576 rcu_torture_print_module_parms(cur_ops, "End of test: SUCCESS");
2577 torture_cleanup_end();
2578 }
2579
2580 #ifdef CONFIG_DEBUG_OBJECTS_RCU_HEAD
rcu_torture_leak_cb(struct rcu_head * rhp)2581 static void rcu_torture_leak_cb(struct rcu_head *rhp)
2582 {
2583 }
2584
rcu_torture_err_cb(struct rcu_head * rhp)2585 static void rcu_torture_err_cb(struct rcu_head *rhp)
2586 {
2587 /*
2588 * This -might- happen due to race conditions, but is unlikely.
2589 * The scenario that leads to this happening is that the
2590 * first of the pair of duplicate callbacks is queued,
2591 * someone else starts a grace period that includes that
2592 * callback, then the second of the pair must wait for the
2593 * next grace period. Unlikely, but can happen. If it
2594 * does happen, the debug-objects subsystem won't have splatted.
2595 */
2596 pr_alert("%s: duplicated callback was invoked.\n", KBUILD_MODNAME);
2597 }
2598 #endif /* #ifdef CONFIG_DEBUG_OBJECTS_RCU_HEAD */
2599
2600 /*
2601 * Verify that double-free causes debug-objects to complain, but only
2602 * if CONFIG_DEBUG_OBJECTS_RCU_HEAD=y. Otherwise, say that the test
2603 * cannot be carried out.
2604 */
rcu_test_debug_objects(void)2605 static void rcu_test_debug_objects(void)
2606 {
2607 #ifdef CONFIG_DEBUG_OBJECTS_RCU_HEAD
2608 struct rcu_head rh1;
2609 struct rcu_head rh2;
2610
2611 init_rcu_head_on_stack(&rh1);
2612 init_rcu_head_on_stack(&rh2);
2613 pr_alert("%s: WARN: Duplicate call_rcu() test starting.\n", KBUILD_MODNAME);
2614
2615 /* Try to queue the rh2 pair of callbacks for the same grace period. */
2616 preempt_disable(); /* Prevent preemption from interrupting test. */
2617 rcu_read_lock(); /* Make it impossible to finish a grace period. */
2618 call_rcu(&rh1, rcu_torture_leak_cb); /* Start grace period. */
2619 local_irq_disable(); /* Make it harder to start a new grace period. */
2620 call_rcu(&rh2, rcu_torture_leak_cb);
2621 call_rcu(&rh2, rcu_torture_err_cb); /* Duplicate callback. */
2622 local_irq_enable();
2623 rcu_read_unlock();
2624 preempt_enable();
2625
2626 /* Wait for them all to get done so we can safely return. */
2627 rcu_barrier();
2628 pr_alert("%s: WARN: Duplicate call_rcu() test complete.\n", KBUILD_MODNAME);
2629 destroy_rcu_head_on_stack(&rh1);
2630 destroy_rcu_head_on_stack(&rh2);
2631 #else /* #ifdef CONFIG_DEBUG_OBJECTS_RCU_HEAD */
2632 pr_alert("%s: !CONFIG_DEBUG_OBJECTS_RCU_HEAD, not testing duplicate call_rcu()\n", KBUILD_MODNAME);
2633 #endif /* #else #ifdef CONFIG_DEBUG_OBJECTS_RCU_HEAD */
2634 }
2635
rcutorture_sync(void)2636 static void rcutorture_sync(void)
2637 {
2638 static unsigned long n;
2639
2640 if (cur_ops->sync && !(++n & 0xfff))
2641 cur_ops->sync();
2642 }
2643
2644 static int __init
rcu_torture_init(void)2645 rcu_torture_init(void)
2646 {
2647 long i;
2648 int cpu;
2649 int firsterr = 0;
2650 int flags = 0;
2651 unsigned long gp_seq = 0;
2652 static struct rcu_torture_ops *torture_ops[] = {
2653 &rcu_ops, &rcu_busted_ops, &srcu_ops, &srcud_ops,
2654 &busted_srcud_ops, &tasks_ops, &tasks_rude_ops,
2655 &tasks_tracing_ops, &trivial_ops,
2656 };
2657
2658 if (!torture_init_begin(torture_type, verbose))
2659 return -EBUSY;
2660
2661 /* Process args and tell the world that the torturer is on the job. */
2662 for (i = 0; i < ARRAY_SIZE(torture_ops); i++) {
2663 cur_ops = torture_ops[i];
2664 if (strcmp(torture_type, cur_ops->name) == 0)
2665 break;
2666 }
2667 if (i == ARRAY_SIZE(torture_ops)) {
2668 pr_alert("rcu-torture: invalid torture type: \"%s\"\n",
2669 torture_type);
2670 pr_alert("rcu-torture types:");
2671 for (i = 0; i < ARRAY_SIZE(torture_ops); i++)
2672 pr_cont(" %s", torture_ops[i]->name);
2673 pr_cont("\n");
2674 WARN_ON(!IS_MODULE(CONFIG_RCU_TORTURE_TEST));
2675 firsterr = -EINVAL;
2676 cur_ops = NULL;
2677 goto unwind;
2678 }
2679 if (cur_ops->fqs == NULL && fqs_duration != 0) {
2680 pr_alert("rcu-torture: ->fqs NULL and non-zero fqs_duration, fqs disabled.\n");
2681 fqs_duration = 0;
2682 }
2683 if (cur_ops->init)
2684 cur_ops->init();
2685
2686 if (nreaders >= 0) {
2687 nrealreaders = nreaders;
2688 } else {
2689 nrealreaders = num_online_cpus() - 2 - nreaders;
2690 if (nrealreaders <= 0)
2691 nrealreaders = 1;
2692 }
2693 rcu_torture_print_module_parms(cur_ops, "Start of test");
2694 rcutorture_get_gp_data(cur_ops->ttype, &flags, &gp_seq);
2695 srcutorture_get_gp_data(cur_ops->ttype, srcu_ctlp, &flags, &gp_seq);
2696 start_gp_seq = gp_seq;
2697 pr_alert("%s: Start-test grace-period state: g%ld f%#x\n",
2698 cur_ops->name, (long)gp_seq, flags);
2699
2700 /* Set up the freelist. */
2701
2702 INIT_LIST_HEAD(&rcu_torture_freelist);
2703 for (i = 0; i < ARRAY_SIZE(rcu_tortures); i++) {
2704 rcu_tortures[i].rtort_mbtest = 0;
2705 list_add_tail(&rcu_tortures[i].rtort_free,
2706 &rcu_torture_freelist);
2707 }
2708
2709 /* Initialize the statistics so that each run gets its own numbers. */
2710
2711 rcu_torture_current = NULL;
2712 rcu_torture_current_version = 0;
2713 atomic_set(&n_rcu_torture_alloc, 0);
2714 atomic_set(&n_rcu_torture_alloc_fail, 0);
2715 atomic_set(&n_rcu_torture_free, 0);
2716 atomic_set(&n_rcu_torture_mberror, 0);
2717 atomic_set(&n_rcu_torture_error, 0);
2718 n_rcu_torture_barrier_error = 0;
2719 n_rcu_torture_boost_ktrerror = 0;
2720 n_rcu_torture_boost_rterror = 0;
2721 n_rcu_torture_boost_failure = 0;
2722 n_rcu_torture_boosts = 0;
2723 for (i = 0; i < RCU_TORTURE_PIPE_LEN + 1; i++)
2724 atomic_set(&rcu_torture_wcount[i], 0);
2725 for_each_possible_cpu(cpu) {
2726 for (i = 0; i < RCU_TORTURE_PIPE_LEN + 1; i++) {
2727 per_cpu(rcu_torture_count, cpu)[i] = 0;
2728 per_cpu(rcu_torture_batch, cpu)[i] = 0;
2729 }
2730 }
2731 err_segs_recorded = 0;
2732 rt_read_nsegs = 0;
2733
2734 /* Start up the kthreads. */
2735
2736 firsterr = torture_create_kthread(rcu_torture_writer, NULL,
2737 writer_task);
2738 if (firsterr)
2739 goto unwind;
2740 if (nfakewriters > 0) {
2741 fakewriter_tasks = kcalloc(nfakewriters,
2742 sizeof(fakewriter_tasks[0]),
2743 GFP_KERNEL);
2744 if (fakewriter_tasks == NULL) {
2745 VERBOSE_TOROUT_ERRSTRING("out of memory");
2746 firsterr = -ENOMEM;
2747 goto unwind;
2748 }
2749 }
2750 for (i = 0; i < nfakewriters; i++) {
2751 firsterr = torture_create_kthread(rcu_torture_fakewriter,
2752 NULL, fakewriter_tasks[i]);
2753 if (firsterr)
2754 goto unwind;
2755 }
2756 reader_tasks = kcalloc(nrealreaders, sizeof(reader_tasks[0]),
2757 GFP_KERNEL);
2758 if (reader_tasks == NULL) {
2759 VERBOSE_TOROUT_ERRSTRING("out of memory");
2760 firsterr = -ENOMEM;
2761 goto unwind;
2762 }
2763 for (i = 0; i < nrealreaders; i++) {
2764 firsterr = torture_create_kthread(rcu_torture_reader, (void *)i,
2765 reader_tasks[i]);
2766 if (firsterr)
2767 goto unwind;
2768 }
2769 if (stat_interval > 0) {
2770 firsterr = torture_create_kthread(rcu_torture_stats, NULL,
2771 stats_task);
2772 if (firsterr)
2773 goto unwind;
2774 }
2775 if (test_no_idle_hz && shuffle_interval > 0) {
2776 firsterr = torture_shuffle_init(shuffle_interval * HZ);
2777 if (firsterr)
2778 goto unwind;
2779 }
2780 if (stutter < 0)
2781 stutter = 0;
2782 if (stutter) {
2783 int t;
2784
2785 t = cur_ops->stall_dur ? cur_ops->stall_dur() : stutter * HZ;
2786 firsterr = torture_stutter_init(stutter * HZ, t);
2787 if (firsterr)
2788 goto unwind;
2789 }
2790 if (fqs_duration < 0)
2791 fqs_duration = 0;
2792 if (fqs_duration) {
2793 /* Create the fqs thread */
2794 firsterr = torture_create_kthread(rcu_torture_fqs, NULL,
2795 fqs_task);
2796 if (firsterr)
2797 goto unwind;
2798 }
2799 if (test_boost_interval < 1)
2800 test_boost_interval = 1;
2801 if (test_boost_duration < 2)
2802 test_boost_duration = 2;
2803 if (rcu_torture_can_boost()) {
2804
2805 boost_starttime = jiffies + test_boost_interval * HZ;
2806
2807 firsterr = cpuhp_setup_state(CPUHP_AP_ONLINE_DYN, "RCU_TORTURE",
2808 rcutorture_booster_init,
2809 rcutorture_booster_cleanup);
2810 if (firsterr < 0)
2811 goto unwind;
2812 rcutor_hp = firsterr;
2813 }
2814 shutdown_jiffies = jiffies + shutdown_secs * HZ;
2815 firsterr = torture_shutdown_init(shutdown_secs, rcu_torture_cleanup);
2816 if (firsterr)
2817 goto unwind;
2818 firsterr = torture_onoff_init(onoff_holdoff * HZ, onoff_interval,
2819 rcutorture_sync);
2820 if (firsterr)
2821 goto unwind;
2822 firsterr = rcu_torture_stall_init();
2823 if (firsterr)
2824 goto unwind;
2825 firsterr = rcu_torture_fwd_prog_init();
2826 if (firsterr)
2827 goto unwind;
2828 firsterr = rcu_torture_barrier_init();
2829 if (firsterr)
2830 goto unwind;
2831 firsterr = rcu_torture_read_exit_init();
2832 if (firsterr)
2833 goto unwind;
2834 if (object_debug)
2835 rcu_test_debug_objects();
2836 torture_init_end();
2837 return 0;
2838
2839 unwind:
2840 torture_init_end();
2841 rcu_torture_cleanup();
2842 return firsterr;
2843 }
2844
2845 module_init(rcu_torture_init);
2846 module_exit(rcu_torture_cleanup);
2847