xref: /linux/kernel/scftorture.c (revision 59e6295fac26b8e85c1ea859cdd89fa1e47519d7)
1 // SPDX-License-Identifier: GPL-2.0+
2 //
3 // Torture test for smp_call_function() and friends.
4 //
5 // Copyright (C) Facebook, 2020.
6 //
7 // Author: Paul E. McKenney <paulmck@kernel.org>
8 
9 #define pr_fmt(fmt) fmt
10 
11 #include <linux/atomic.h>
12 #include <linux/bitops.h>
13 #include <linux/completion.h>
14 #include <linux/cpu.h>
15 #include <linux/delay.h>
16 #include <linux/err.h>
17 #include <linux/init.h>
18 #include <linux/interrupt.h>
19 #include <linux/kthread.h>
20 #include <linux/kernel.h>
21 #include <linux/mm.h>
22 #include <linux/module.h>
23 #include <linux/moduleparam.h>
24 #include <linux/notifier.h>
25 #include <linux/percpu.h>
26 #include <linux/rcupdate.h>
27 #include <linux/rcupdate_trace.h>
28 #include <linux/reboot.h>
29 #include <linux/sched.h>
30 #include <linux/spinlock.h>
31 #include <linux/smp.h>
32 #include <linux/stat.h>
33 #include <linux/srcu.h>
34 #include <linux/slab.h>
35 #include <linux/torture.h>
36 #include <linux/types.h>
37 
38 #define SCFTORT_STRING "scftorture"
39 #define SCFTORT_FLAG SCFTORT_STRING ": "
40 
41 #define VERBOSE_SCFTORTOUT(s, x...) \
42 	do { if (verbose) pr_alert(SCFTORT_FLAG s "\n", ## x); } while (0)
43 
44 #define SCFTORTOUT_ERRSTRING(s, x...) pr_alert(SCFTORT_FLAG "!!! " s "\n", ## x)
45 
46 MODULE_DESCRIPTION("Torture tests on the smp_call_function() family of primitives");
47 MODULE_LICENSE("GPL");
48 MODULE_AUTHOR("Paul E. McKenney <paulmck@kernel.org>");
49 
50 // Wait until there are multiple CPUs before starting test.
51 torture_param(int, holdoff, IS_BUILTIN(CONFIG_SCF_TORTURE_TEST) ? 10 : 0,
52 	      "Holdoff time before test start (s)");
53 torture_param(int, longwait, 0, "Include ridiculously long waits? (seconds)");
54 torture_param(int, nthreads, -1, "# threads, defaults to -1 for all CPUs.");
55 torture_param(int, onoff_holdoff, 0, "Time after boot before CPU hotplugs (s)");
56 torture_param(int, onoff_interval, 0, "Time between CPU hotplugs (s), 0=disable");
57 torture_param(int, shutdown_secs, 0, "Shutdown time (ms), <= zero to disable.");
58 torture_param(int, stat_interval, 60, "Number of seconds between stats printk()s.");
59 torture_param(int, stutter, 5, "Number of jiffies to run/halt test, 0=disable");
60 torture_param(bool, use_cpus_read_lock, 0, "Use cpus_read_lock() to exclude CPU hotplug.");
61 torture_param(int, verbose, 0, "Enable verbose debugging printk()s");
62 torture_param(int, weight_resched, -1, "Testing weight for resched_cpu() operations.");
63 torture_param(int, weight_single, -1, "Testing weight for single-CPU no-wait operations.");
64 torture_param(int, weight_single_rpc, -1, "Testing weight for single-CPU RPC operations.");
65 torture_param(int, weight_single_wait, -1, "Testing weight for single-CPU operations.");
66 torture_param(int, weight_many, -1, "Testing weight for multi-CPU no-wait operations.");
67 torture_param(int, weight_many_wait, -1, "Testing weight for multi-CPU operations.");
68 torture_param(int, weight_all, -1, "Testing weight for all-CPU no-wait operations.");
69 torture_param(int, weight_all_wait, -1, "Testing weight for all-CPU operations.");
70 
71 static char *torture_type = "";
72 
73 #ifdef MODULE
74 # define SCFTORT_SHUTDOWN 0
75 #else
76 # define SCFTORT_SHUTDOWN 1
77 #endif
78 
79 torture_param(bool, shutdown, SCFTORT_SHUTDOWN, "Shutdown at end of torture test.");
80 
81 struct scf_statistics {
82 	struct task_struct *task;
83 	int cpu;
84 	long long n_resched;
85 	long long n_single;
86 	long long n_single_ofl;
87 	long long n_single_rpc;
88 	long long n_single_rpc_ofl;
89 	long long n_single_wait;
90 	long long n_single_wait_ofl;
91 	long long n_many;
92 	long long n_many_wait;
93 	long long n_all;
94 	long long n_all_wait;
95 };
96 
97 static struct scf_statistics *scf_stats_p;
98 static struct task_struct *scf_torture_stats_task;
99 static DEFINE_PER_CPU(long long, scf_invoked_count);
100 static DEFINE_PER_CPU(struct llist_head, scf_free_pool);
101 
102 // Data for random primitive selection
103 #define SCF_PRIM_RESCHED	0
104 #define SCF_PRIM_SINGLE		1
105 #define SCF_PRIM_SINGLE_RPC	2
106 #define SCF_PRIM_MANY		3
107 #define SCF_PRIM_ALL		4
108 #define SCF_NPRIMS		8 // Need wait and no-wait versions of each,
109 				  //  except for SCF_PRIM_RESCHED and
110 				  //  SCF_PRIM_SINGLE_RPC.
111 
112 static char *scf_prim_name[] = {
113 	"resched_cpu",
114 	"smp_call_function_single",
115 	"smp_call_function_single_rpc",
116 	"smp_call_function_many",
117 	"smp_call_function",
118 };
119 
120 struct scf_selector {
121 	unsigned long scfs_weight;
122 	int scfs_prim;
123 	bool scfs_wait;
124 };
125 static struct scf_selector scf_sel_array[SCF_NPRIMS];
126 static int scf_sel_array_len;
127 static unsigned long scf_sel_totweight;
128 
129 // Communicate between caller and handler.
130 struct scf_check {
131 	bool scfc_in;
132 	bool scfc_out;
133 	int scfc_cpu; // -1 for not _single().
134 	bool scfc_wait;
135 	bool scfc_rpc;
136 	struct completion scfc_completion;
137 	struct llist_node scf_node;
138 };
139 
140 // Use to wait for all threads to start.
141 static atomic_t n_started;
142 static atomic_t n_errs;
143 static atomic_t n_mb_in_errs;
144 static atomic_t n_mb_out_errs;
145 static atomic_t n_alloc_errs;
146 static bool scfdone;
147 static char *bangstr = "";
148 
149 static DEFINE_TORTURE_RANDOM_PERCPU(scf_torture_rand);
150 
151 extern void resched_cpu(int cpu); // An alternative IPI vector.
152 
153 static void scf_add_to_free_list(struct scf_check *scfcp)
154 {
155 	struct llist_head *pool;
156 	unsigned int cpu;
157 
158 	if (!scfcp)
159 		return;
160 	cpu = raw_smp_processor_id() % nthreads;
161 	pool = &per_cpu(scf_free_pool, cpu);
162 	llist_add(&scfcp->scf_node, pool);
163 }
164 
165 static void scf_cleanup_free_list(unsigned int cpu)
166 {
167 	struct llist_head *pool;
168 	struct llist_node *node;
169 	struct scf_check *scfcp;
170 
171 	pool = &per_cpu(scf_free_pool, cpu);
172 	node = llist_del_all(pool);
173 	while (node) {
174 		scfcp = llist_entry(node, struct scf_check, scf_node);
175 		node = node->next;
176 		kfree(scfcp);
177 	}
178 }
179 
180 // Print torture statistics.  Caller must ensure serialization.
181 static void scf_torture_stats_print(void)
182 {
183 	int cpu;
184 	int i;
185 	long long invoked_count = 0;
186 	bool isdone = READ_ONCE(scfdone);
187 	struct scf_statistics scfs = {};
188 
189 	for_each_possible_cpu(cpu)
190 		invoked_count += data_race(per_cpu(scf_invoked_count, cpu));
191 	for (i = 0; i < nthreads; i++) {
192 		scfs.n_resched += scf_stats_p[i].n_resched;
193 		scfs.n_single += scf_stats_p[i].n_single;
194 		scfs.n_single_ofl += scf_stats_p[i].n_single_ofl;
195 		scfs.n_single_rpc += scf_stats_p[i].n_single_rpc;
196 		scfs.n_single_wait += scf_stats_p[i].n_single_wait;
197 		scfs.n_single_wait_ofl += scf_stats_p[i].n_single_wait_ofl;
198 		scfs.n_many += scf_stats_p[i].n_many;
199 		scfs.n_many_wait += scf_stats_p[i].n_many_wait;
200 		scfs.n_all += scf_stats_p[i].n_all;
201 		scfs.n_all_wait += scf_stats_p[i].n_all_wait;
202 	}
203 	if (atomic_read(&n_errs) || atomic_read(&n_mb_in_errs) ||
204 	    atomic_read(&n_mb_out_errs) ||
205 	    (!IS_ENABLED(CONFIG_KASAN) && atomic_read(&n_alloc_errs)))
206 		bangstr = "!!! ";
207 	pr_alert("%s %sscf_invoked_count %s: %lld resched: %lld single: %lld/%lld single_ofl: %lld/%lld single_rpc: %lld single_rpc_ofl: %lld many: %lld/%lld all: %lld/%lld ",
208 		 SCFTORT_FLAG, bangstr, isdone ? "VER" : "ver", invoked_count, scfs.n_resched,
209 		 scfs.n_single, scfs.n_single_wait, scfs.n_single_ofl, scfs.n_single_wait_ofl,
210 		 scfs.n_single_rpc, scfs.n_single_rpc_ofl,
211 		 scfs.n_many, scfs.n_many_wait, scfs.n_all, scfs.n_all_wait);
212 	torture_onoff_stats();
213 	pr_cont("ste: %d stnmie: %d stnmoe: %d staf: %d\n", atomic_read(&n_errs),
214 		atomic_read(&n_mb_in_errs), atomic_read(&n_mb_out_errs),
215 		atomic_read(&n_alloc_errs));
216 }
217 
218 // Periodically prints torture statistics, if periodic statistics printing
219 // was specified via the stat_interval module parameter.
220 static int
221 scf_torture_stats(void *arg)
222 {
223 	VERBOSE_TOROUT_STRING("scf_torture_stats task started");
224 	do {
225 		schedule_timeout_interruptible(stat_interval * HZ);
226 		scf_torture_stats_print();
227 		torture_shutdown_absorb("scf_torture_stats");
228 	} while (!torture_must_stop());
229 	torture_kthread_stopping("scf_torture_stats");
230 	return 0;
231 }
232 
233 // Add a primitive to the scf_sel_array[].
234 static void scf_sel_add(unsigned long weight, int prim, bool wait)
235 {
236 	struct scf_selector *scfsp = &scf_sel_array[scf_sel_array_len];
237 
238 	// If no weight, if array would overflow, if computing three-place
239 	// percentages would overflow, or if the scf_prim_name[] array would
240 	// overflow, don't bother.  In the last three two cases, complain.
241 	if (!weight ||
242 	    WARN_ON_ONCE(scf_sel_array_len >= ARRAY_SIZE(scf_sel_array)) ||
243 	    WARN_ON_ONCE(0 - 100000 * weight <= 100000 * scf_sel_totweight) ||
244 	    WARN_ON_ONCE(prim >= ARRAY_SIZE(scf_prim_name)))
245 		return;
246 	scf_sel_totweight += weight;
247 	scfsp->scfs_weight = scf_sel_totweight;
248 	scfsp->scfs_prim = prim;
249 	scfsp->scfs_wait = wait;
250 	scf_sel_array_len++;
251 }
252 
253 // Dump out weighting percentages for scf_prim_name[] array.
254 static void scf_sel_dump(void)
255 {
256 	int i;
257 	unsigned long oldw = 0;
258 	struct scf_selector *scfsp;
259 	unsigned long w;
260 
261 	for (i = 0; i < scf_sel_array_len; i++) {
262 		scfsp = &scf_sel_array[i];
263 		w = (scfsp->scfs_weight - oldw) * 100000 / scf_sel_totweight;
264 		pr_info("%s: %3lu.%03lu %s(%s)\n", __func__, w / 1000, w % 1000,
265 			scf_prim_name[scfsp->scfs_prim],
266 			scfsp->scfs_wait ? "wait" : "nowait");
267 		oldw = scfsp->scfs_weight;
268 	}
269 }
270 
271 // Randomly pick a primitive and wait/nowait, based on weightings.
272 static struct scf_selector *scf_sel_rand(struct torture_random_state *trsp)
273 {
274 	int i;
275 	unsigned long w = torture_random(trsp) % (scf_sel_totweight + 1);
276 
277 	for (i = 0; i < scf_sel_array_len; i++)
278 		if (scf_sel_array[i].scfs_weight >= w)
279 			return &scf_sel_array[i];
280 	WARN_ON_ONCE(1);
281 	return &scf_sel_array[0];
282 }
283 
284 // Update statistics and occasionally burn up mass quantities of CPU time,
285 // if told to do so via scftorture.longwait.  Otherwise, occasionally burn
286 // a little bit.
287 static void scf_handler(void *scfc_in)
288 {
289 	int i;
290 	int j;
291 	unsigned long r = torture_random(this_cpu_ptr(&scf_torture_rand));
292 	struct scf_check *scfcp = scfc_in;
293 
294 	if (likely(scfcp)) {
295 		WRITE_ONCE(scfcp->scfc_out, false); // For multiple receivers.
296 		if (WARN_ON_ONCE(unlikely(!READ_ONCE(scfcp->scfc_in))))
297 			atomic_inc(&n_mb_in_errs);
298 	}
299 	this_cpu_inc(scf_invoked_count);
300 	if (longwait <= 0) {
301 		if (!(r & 0xffc0)) {
302 			udelay(r & 0x3f);
303 			goto out;
304 		}
305 	}
306 	if (r & 0xfff)
307 		goto out;
308 	r = (r >> 12);
309 	if (longwait <= 0) {
310 		udelay((r & 0xff) + 1);
311 		goto out;
312 	}
313 	r = r % longwait + 1;
314 	for (i = 0; i < r; i++) {
315 		for (j = 0; j < 1000; j++) {
316 			udelay(1000);
317 			cpu_relax();
318 		}
319 	}
320 out:
321 	if (unlikely(!scfcp))
322 		return;
323 	if (scfcp->scfc_wait) {
324 		WRITE_ONCE(scfcp->scfc_out, true);
325 		if (scfcp->scfc_rpc)
326 			complete(&scfcp->scfc_completion);
327 	} else {
328 		scf_add_to_free_list(scfcp);
329 	}
330 }
331 
332 // As above, but check for correct CPU.
333 static void scf_handler_1(void *scfc_in)
334 {
335 	struct scf_check *scfcp = scfc_in;
336 
337 	if (likely(scfcp) && WARN_ONCE(smp_processor_id() != scfcp->scfc_cpu, "%s: Wanted CPU %d got CPU %d\n", __func__, scfcp->scfc_cpu, smp_processor_id())) {
338 		atomic_inc(&n_errs);
339 	}
340 	scf_handler(scfcp);
341 }
342 
343 // Randomly do an smp_call_function*() invocation.
344 static void scftorture_invoke_one(struct scf_statistics *scfp, struct torture_random_state *trsp)
345 {
346 	bool allocfail = false;
347 	uintptr_t cpu;
348 	int ret = 0;
349 	struct scf_check *scfcp = NULL;
350 	struct scf_selector *scfsp = scf_sel_rand(trsp);
351 	bool is_single = (scfsp->scfs_prim == SCF_PRIM_SINGLE ||
352 			  scfsp->scfs_prim == SCF_PRIM_SINGLE_RPC);
353 
354 	if (scfsp->scfs_prim == SCF_PRIM_SINGLE || scfsp->scfs_wait) {
355 		scfcp = kmalloc_obj(*scfcp, GFP_ATOMIC);
356 		if (!scfcp) {
357 			WARN_ON_ONCE(!IS_ENABLED(CONFIG_KASAN));
358 			atomic_inc(&n_alloc_errs);
359 			allocfail = true;
360 		} else {
361 			scfcp->scfc_cpu = -1;
362 			scfcp->scfc_wait = scfsp->scfs_wait;
363 			scfcp->scfc_out = false;
364 			scfcp->scfc_rpc = false;
365 		}
366 	}
367 	if (use_cpus_read_lock)
368 		cpus_read_lock();
369 	switch (scfsp->scfs_prim) {
370 	case SCF_PRIM_RESCHED:
371 		if (IS_BUILTIN(CONFIG_SCF_TORTURE_TEST)) {
372 			cpu = torture_random(trsp) % nr_cpu_ids;
373 			scfp->n_resched++;
374 			resched_cpu(cpu);
375 			this_cpu_inc(scf_invoked_count);
376 		}
377 		break;
378 	case SCF_PRIM_SINGLE:
379 		cpu = torture_random(trsp) % nr_cpu_ids;
380 		if (scfsp->scfs_wait)
381 			scfp->n_single_wait++;
382 		else
383 			scfp->n_single++;
384 		if (scfcp) {
385 			scfcp->scfc_cpu = cpu;
386 			barrier(); // Prevent race-reduction compiler optimizations.
387 			scfcp->scfc_in = true;
388 		}
389 		ret = smp_call_function_single(cpu, scf_handler_1, (void *)scfcp, scfsp->scfs_wait);
390 		if (ret) {
391 			if (scfsp->scfs_wait)
392 				scfp->n_single_wait_ofl++;
393 			else
394 				scfp->n_single_ofl++;
395 			scf_add_to_free_list(scfcp);
396 			scfcp = NULL;
397 		}
398 		break;
399 	case SCF_PRIM_SINGLE_RPC:
400 		if (!scfcp)
401 			break;
402 		cpu = torture_random(trsp) % nr_cpu_ids;
403 		scfp->n_single_rpc++;
404 		scfcp->scfc_cpu = cpu;
405 		scfcp->scfc_wait = true;
406 		init_completion(&scfcp->scfc_completion);
407 		scfcp->scfc_rpc = true;
408 		barrier(); // Prevent race-reduction compiler optimizations.
409 		scfcp->scfc_in = true;
410 		ret = smp_call_function_single(cpu, scf_handler_1, (void *)scfcp, 0);
411 		if (!ret) {
412 			if (use_cpus_read_lock)
413 				cpus_read_unlock();
414 
415 			wait_for_completion(&scfcp->scfc_completion);
416 			if (use_cpus_read_lock)
417 				cpus_read_lock();
418 		} else {
419 			scfp->n_single_rpc_ofl++;
420 			scf_add_to_free_list(scfcp);
421 			scfcp = NULL;
422 		}
423 		break;
424 	case SCF_PRIM_MANY:
425 		if (scfsp->scfs_wait)
426 			scfp->n_many_wait++;
427 		else
428 			scfp->n_many++;
429 		if (scfcp) {
430 			barrier(); // Prevent race-reduction compiler optimizations.
431 			scfcp->scfc_in = true;
432 		}
433 		smp_call_function_many(cpu_online_mask, scf_handler, scfcp, scfsp->scfs_wait);
434 		break;
435 	case SCF_PRIM_ALL:
436 		if (scfsp->scfs_wait)
437 			scfp->n_all_wait++;
438 		else
439 			scfp->n_all++;
440 		if (scfcp) {
441 			barrier(); // Prevent race-reduction compiler optimizations.
442 			scfcp->scfc_in = true;
443 		}
444 		smp_call_function(scf_handler, scfcp, scfsp->scfs_wait);
445 		break;
446 	default:
447 		WARN_ON_ONCE(1);
448 		if (scfcp)
449 			scfcp->scfc_out = true;
450 	}
451 	if (scfcp && scfsp->scfs_wait) {
452 		if (WARN_ON_ONCE(((use_cpus_read_lock && num_online_cpus() > 1) || is_single) &&
453 				 !scfcp->scfc_out)) {
454 			pr_warn("%s: Memory-ordering failure, scfs_prim: %d.\n", __func__, scfsp->scfs_prim);
455 			atomic_inc(&n_mb_out_errs); // Leak rather than trash!
456 		} else {
457 			scf_add_to_free_list(scfcp);
458 		}
459 		barrier(); // Prevent race-reduction compiler optimizations.
460 	}
461 	if (use_cpus_read_lock)
462 		cpus_read_unlock();
463 	if (allocfail)
464 		schedule_timeout_idle((1 + longwait) * HZ);  // Let no-wait handlers complete.
465 	else if (!(torture_random(trsp) & 0xfff))
466 		schedule_timeout_uninterruptible(1);
467 }
468 
469 // SCF test kthread.  Repeatedly does calls to members of the
470 // smp_call_function() family of functions.
471 static int scftorture_invoker(void *arg)
472 {
473 	int cpu;
474 	int curcpu;
475 	DEFINE_TORTURE_RANDOM(rand);
476 	struct scf_statistics *scfp = (struct scf_statistics *)arg;
477 	bool was_offline = false;
478 
479 	VERBOSE_SCFTORTOUT("scftorture_invoker %d: task started", scfp->cpu);
480 	cpu = scfp->cpu % nr_cpu_ids;
481 	WARN_ON_ONCE(set_cpus_allowed_ptr(current, cpumask_of(cpu)));
482 	set_user_nice(current, MAX_NICE);
483 	if (holdoff)
484 		schedule_timeout_interruptible(holdoff * HZ);
485 
486 	VERBOSE_SCFTORTOUT("scftorture_invoker %d: Waiting for all SCF torturers from cpu %d", scfp->cpu, raw_smp_processor_id());
487 
488 	// Make sure that the CPU is affinitized appropriately during testing.
489 	curcpu = raw_smp_processor_id();
490 	WARN_ONCE(curcpu != cpu,
491 		  "%s: Wanted CPU %d, running on %d, nr_cpu_ids = %d\n",
492 		  __func__, scfp->cpu, curcpu, nr_cpu_ids);
493 
494 	if (!atomic_dec_return(&n_started))
495 		while (atomic_read_acquire(&n_started)) {
496 			if (torture_must_stop()) {
497 				VERBOSE_SCFTORTOUT("scftorture_invoker %d ended before starting", scfp->cpu);
498 				goto end;
499 			}
500 			schedule_timeout_uninterruptible(1);
501 		}
502 
503 	VERBOSE_SCFTORTOUT("scftorture_invoker %d started", scfp->cpu);
504 
505 	do {
506 		scf_cleanup_free_list(cpu);
507 
508 		scftorture_invoke_one(scfp, &rand);
509 		while (cpu_is_offline(cpu) && !torture_must_stop()) {
510 			schedule_timeout_interruptible(HZ / 5);
511 			was_offline = true;
512 		}
513 		if (was_offline) {
514 			set_cpus_allowed_ptr(current, cpumask_of(cpu));
515 			was_offline = false;
516 		}
517 		cond_resched();
518 		stutter_wait("scftorture_invoker");
519 	} while (!torture_must_stop());
520 
521 	VERBOSE_SCFTORTOUT("scftorture_invoker %d ended", scfp->cpu);
522 end:
523 	torture_kthread_stopping("scftorture_invoker");
524 	return 0;
525 }
526 
527 static void
528 scftorture_print_module_parms(const char *tag)
529 {
530 	pr_alert(SCFTORT_FLAG
531 		 "--- %s:  verbose=%d holdoff=%d longwait=%d nthreads=%d onoff_holdoff=%d onoff_interval=%d shutdown_secs=%d stat_interval=%d stutter=%d use_cpus_read_lock=%d, weight_resched=%d, weight_single=%d, weight_single_rpc=%d, weight_single_wait=%d, weight_many=%d, weight_many_wait=%d, weight_all=%d, weight_all_wait=%d\n", tag,
532 		 verbose, holdoff, longwait, nthreads, onoff_holdoff, onoff_interval, shutdown, stat_interval, stutter, use_cpus_read_lock, weight_resched, weight_single, weight_single_rpc, weight_single_wait, weight_many, weight_many_wait, weight_all, weight_all_wait);
533 }
534 
535 static void scf_cleanup_handler(void *unused)
536 {
537 }
538 
539 static void scf_torture_cleanup(void)
540 {
541 	int i;
542 
543 	if (torture_cleanup_begin())
544 		return;
545 
546 	WRITE_ONCE(scfdone, true);
547 	if (nthreads && scf_stats_p)
548 		for (i = 0; i < nthreads; i++)
549 			torture_stop_kthread("scftorture_invoker", scf_stats_p[i].task);
550 	else
551 		goto end;
552 	smp_call_function(scf_cleanup_handler, NULL, 1);
553 	torture_stop_kthread(scf_torture_stats, scf_torture_stats_task);
554 	scf_torture_stats_print();  // -After- the stats thread is stopped!
555 	kfree(scf_stats_p);  // -After- the last stats print has completed!
556 	scf_stats_p = NULL;
557 
558 	for (i = 0; i < nr_cpu_ids; i++)
559 		scf_cleanup_free_list(i);
560 
561 	if (atomic_read(&n_errs) || atomic_read(&n_mb_in_errs) || atomic_read(&n_mb_out_errs))
562 		scftorture_print_module_parms("End of test: FAILURE");
563 	else if (torture_onoff_failures())
564 		scftorture_print_module_parms("End of test: LOCK_HOTPLUG");
565 	else
566 		scftorture_print_module_parms("End of test: SUCCESS");
567 
568 end:
569 	torture_cleanup_end();
570 }
571 
572 static int __init scf_torture_init(void)
573 {
574 	long i;
575 	int firsterr = 0;
576 	unsigned long weight_resched1 = weight_resched;
577 	unsigned long weight_single1 = weight_single;
578 	unsigned long weight_single_rpc1 = weight_single_rpc;
579 	unsigned long weight_single_wait1 = weight_single_wait;
580 	unsigned long weight_many1 = weight_many;
581 	unsigned long weight_many_wait1 = weight_many_wait;
582 	unsigned long weight_all1 = weight_all;
583 	unsigned long weight_all_wait1 = weight_all_wait;
584 
585 	if (!torture_init_begin(SCFTORT_STRING, verbose))
586 		return -EBUSY;
587 
588 	scftorture_print_module_parms("Start of test");
589 
590 	if (weight_resched <= 0 &&
591 	    weight_single <= 0 && weight_single_rpc <= 0 && weight_single_wait <= 0 &&
592 	    weight_many <= 0 && weight_many_wait <= 0 &&
593 	    weight_all <= 0 && weight_all_wait <= 0) {
594 		weight_resched1 = weight_resched == 0 ? 0 : 2 * nr_cpu_ids;
595 		weight_single1 = weight_single == 0 ? 0 : 2 * nr_cpu_ids;
596 		weight_single_rpc1 = weight_single_rpc == 0 ? 0 : 2 * nr_cpu_ids;
597 		weight_single_wait1 = weight_single_wait == 0 ? 0 : 2 * nr_cpu_ids;
598 		weight_many1 = weight_many == 0 ? 0 : 2;
599 		weight_many_wait1 = weight_many_wait == 0 ? 0 : 2;
600 		weight_all1 = weight_all == 0 ? 0 : 1;
601 		weight_all_wait1 = weight_all_wait == 0 ? 0 : 1;
602 	} else {
603 		if (weight_resched == -1)
604 			weight_resched1 = 0;
605 		if (weight_single == -1)
606 			weight_single1 = 0;
607 		if (weight_single_rpc == -1)
608 			weight_single_rpc1 = 0;
609 		if (weight_single_wait == -1)
610 			weight_single_wait1 = 0;
611 		if (weight_many == -1)
612 			weight_many1 = 0;
613 		if (weight_many_wait == -1)
614 			weight_many_wait1 = 0;
615 		if (weight_all == -1)
616 			weight_all1 = 0;
617 		if (weight_all_wait == -1)
618 			weight_all_wait1 = 0;
619 	}
620 	if (weight_resched1 == 0 && weight_single1 == 0 && weight_single_rpc1 == 0 &&
621 	    weight_single_wait1 == 0 && weight_many1 == 0 && weight_many_wait1 == 0 &&
622 	    weight_all1 == 0 && weight_all_wait1 == 0) {
623 		SCFTORTOUT_ERRSTRING("all zero weights makes no sense");
624 		firsterr = -EINVAL;
625 		goto unwind;
626 	}
627 	if (IS_BUILTIN(CONFIG_SCF_TORTURE_TEST))
628 		scf_sel_add(weight_resched1, SCF_PRIM_RESCHED, false);
629 	else if (weight_resched1)
630 		SCFTORTOUT_ERRSTRING("built as module, weight_resched ignored");
631 	scf_sel_add(weight_single1, SCF_PRIM_SINGLE, false);
632 	scf_sel_add(weight_single_rpc1, SCF_PRIM_SINGLE_RPC, true);
633 	scf_sel_add(weight_single_wait1, SCF_PRIM_SINGLE, true);
634 	scf_sel_add(weight_many1, SCF_PRIM_MANY, false);
635 	scf_sel_add(weight_many_wait1, SCF_PRIM_MANY, true);
636 	scf_sel_add(weight_all1, SCF_PRIM_ALL, false);
637 	scf_sel_add(weight_all_wait1, SCF_PRIM_ALL, true);
638 	scf_sel_dump();
639 
640 	if (onoff_interval > 0) {
641 		firsterr = torture_onoff_init(onoff_holdoff * HZ, onoff_interval, NULL);
642 		if (torture_init_error(firsterr))
643 			goto unwind;
644 	}
645 	if (shutdown_secs > 0) {
646 		firsterr = torture_shutdown_init(shutdown_secs, scf_torture_cleanup);
647 		if (torture_init_error(firsterr))
648 			goto unwind;
649 	}
650 	if (stutter > 0) {
651 		firsterr = torture_stutter_init(stutter, stutter);
652 		if (torture_init_error(firsterr))
653 			goto unwind;
654 	}
655 
656 	// Worker tasks invoking smp_call_function().
657 	if (nthreads < 0)
658 		nthreads = num_online_cpus();
659 	scf_stats_p = kzalloc_objs(scf_stats_p[0], nthreads);
660 	if (!scf_stats_p) {
661 		SCFTORTOUT_ERRSTRING("out of memory");
662 		firsterr = -ENOMEM;
663 		goto unwind;
664 	}
665 
666 	VERBOSE_SCFTORTOUT("Starting %d smp_call_function() threads", nthreads);
667 
668 	atomic_set(&n_started, nthreads);
669 	for (i = 0; i < nthreads; i++) {
670 		scf_stats_p[i].cpu = i;
671 		firsterr = torture_create_kthread(scftorture_invoker, (void *)&scf_stats_p[i],
672 						  scf_stats_p[i].task);
673 		if (torture_init_error(firsterr))
674 			goto unwind;
675 	}
676 	if (stat_interval > 0) {
677 		firsterr = torture_create_kthread(scf_torture_stats, NULL, scf_torture_stats_task);
678 		if (torture_init_error(firsterr))
679 			goto unwind;
680 	}
681 
682 	torture_init_end();
683 	return 0;
684 
685 unwind:
686 	torture_init_end();
687 	scf_torture_cleanup();
688 	if (shutdown_secs) {
689 		WARN_ON(!IS_MODULE(CONFIG_SCF_TORTURE_TEST));
690 		kernel_power_off();
691 	}
692 	return firsterr;
693 }
694 
695 module_init(scf_torture_init);
696 module_exit(scf_torture_cleanup);
697