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