1 /* SPDX-License-Identifier: GPL-2.0+ */ 2 /* 3 * Task-based RCU implementations. 4 * 5 * Copyright (C) 2020 Paul E. McKenney 6 */ 7 8 #ifdef CONFIG_TASKS_RCU_GENERIC 9 #include "rcu_segcblist.h" 10 11 //////////////////////////////////////////////////////////////////////// 12 // 13 // Generic data structures. 14 15 struct rcu_tasks; 16 typedef void (*rcu_tasks_gp_func_t)(struct rcu_tasks *rtp); 17 typedef void (*pregp_func_t)(struct list_head *hop); 18 typedef void (*pertask_func_t)(struct task_struct *t, struct list_head *hop); 19 typedef void (*postscan_func_t)(struct list_head *hop); 20 typedef void (*holdouts_func_t)(struct list_head *hop, bool ndrpt, bool *frptp); 21 typedef void (*postgp_func_t)(struct rcu_tasks *rtp); 22 23 /** 24 * struct rcu_tasks_percpu - Per-CPU component of definition for a Tasks-RCU-like mechanism. 25 * @cblist: Callback list. 26 * @lock: Lock protecting per-CPU callback list. 27 * @rtp_jiffies: Jiffies counter value for statistics. 28 * @lazy_timer: Timer to unlazify callbacks. 29 * @urgent_gp: Number of additional non-lazy grace periods. 30 * @rtp_n_lock_retries: Rough lock-contention statistic. 31 * @rtp_work: Work queue for invoking callbacks. 32 * @rtp_irq_work: IRQ work queue for deferred wakeups. 33 * @barrier_q_head: RCU callback for barrier operation. 34 * @rtp_blkd_tasks: List of tasks blocked as readers. 35 * @cpu: CPU number corresponding to this entry. 36 * @rtpp: Pointer to the rcu_tasks structure. 37 */ 38 struct rcu_tasks_percpu { 39 struct rcu_segcblist cblist; 40 raw_spinlock_t __private lock; 41 unsigned long rtp_jiffies; 42 unsigned long rtp_n_lock_retries; 43 struct timer_list lazy_timer; 44 unsigned int urgent_gp; 45 struct work_struct rtp_work; 46 struct irq_work rtp_irq_work; 47 struct rcu_head barrier_q_head; 48 struct list_head rtp_blkd_tasks; 49 int cpu; 50 struct rcu_tasks *rtpp; 51 }; 52 53 /** 54 * struct rcu_tasks - Definition for a Tasks-RCU-like mechanism. 55 * @cbs_wait: RCU wait allowing a new callback to get kthread's attention. 56 * @cbs_gbl_lock: Lock protecting callback list. 57 * @tasks_gp_mutex: Mutex protecting grace period, needed during mid-boot dead zone. 58 * @gp_func: This flavor's grace-period-wait function. 59 * @gp_state: Grace period's most recent state transition (debugging). 60 * @gp_sleep: Per-grace-period sleep to prevent CPU-bound looping. 61 * @init_fract: Initial backoff sleep interval. 62 * @gp_jiffies: Time of last @gp_state transition. 63 * @gp_start: Most recent grace-period start in jiffies. 64 * @tasks_gp_seq: Number of grace periods completed since boot. 65 * @n_ipis: Number of IPIs sent to encourage grace periods to end. 66 * @n_ipis_fails: Number of IPI-send failures. 67 * @kthread_ptr: This flavor's grace-period/callback-invocation kthread. 68 * @lazy_jiffies: Number of jiffies to allow callbacks to be lazy. 69 * @pregp_func: This flavor's pre-grace-period function (optional). 70 * @pertask_func: This flavor's per-task scan function (optional). 71 * @postscan_func: This flavor's post-task scan function (optional). 72 * @holdouts_func: This flavor's holdout-list scan function (optional). 73 * @postgp_func: This flavor's post-grace-period function (optional). 74 * @call_func: This flavor's call_rcu()-equivalent function. 75 * @rtpcpu: This flavor's rcu_tasks_percpu structure. 76 * @percpu_enqueue_shift: Shift down CPU ID this much when enqueuing callbacks. 77 * @percpu_enqueue_lim: Number of per-CPU callback queues in use for enqueuing. 78 * @percpu_dequeue_lim: Number of per-CPU callback queues in use for dequeuing. 79 * @percpu_dequeue_gpseq: RCU grace-period number to propagate enqueue limit to dequeuers. 80 * @barrier_q_mutex: Serialize barrier operations. 81 * @barrier_q_count: Number of queues being waited on. 82 * @barrier_q_completion: Barrier wait/wakeup mechanism. 83 * @barrier_q_seq: Sequence number for barrier operations. 84 * @name: This flavor's textual name. 85 * @kname: This flavor's kthread name. 86 */ 87 struct rcu_tasks { 88 struct rcuwait cbs_wait; 89 raw_spinlock_t cbs_gbl_lock; 90 struct mutex tasks_gp_mutex; 91 int gp_state; 92 int gp_sleep; 93 int init_fract; 94 unsigned long gp_jiffies; 95 unsigned long gp_start; 96 unsigned long tasks_gp_seq; 97 unsigned long n_ipis; 98 unsigned long n_ipis_fails; 99 struct task_struct *kthread_ptr; 100 unsigned long lazy_jiffies; 101 rcu_tasks_gp_func_t gp_func; 102 pregp_func_t pregp_func; 103 pertask_func_t pertask_func; 104 postscan_func_t postscan_func; 105 holdouts_func_t holdouts_func; 106 postgp_func_t postgp_func; 107 call_rcu_func_t call_func; 108 struct rcu_tasks_percpu __percpu *rtpcpu; 109 int percpu_enqueue_shift; 110 int percpu_enqueue_lim; 111 int percpu_dequeue_lim; 112 unsigned long percpu_dequeue_gpseq; 113 struct mutex barrier_q_mutex; 114 atomic_t barrier_q_count; 115 struct completion barrier_q_completion; 116 unsigned long barrier_q_seq; 117 char *name; 118 char *kname; 119 }; 120 121 static void call_rcu_tasks_iw_wakeup(struct irq_work *iwp); 122 123 #define DEFINE_RCU_TASKS(rt_name, gp, call, n) \ 124 static DEFINE_PER_CPU(struct rcu_tasks_percpu, rt_name ## __percpu) = { \ 125 .lock = __RAW_SPIN_LOCK_UNLOCKED(rt_name ## __percpu.cbs_pcpu_lock), \ 126 .rtp_irq_work = IRQ_WORK_INIT_HARD(call_rcu_tasks_iw_wakeup), \ 127 }; \ 128 static struct rcu_tasks rt_name = \ 129 { \ 130 .cbs_wait = __RCUWAIT_INITIALIZER(rt_name.wait), \ 131 .cbs_gbl_lock = __RAW_SPIN_LOCK_UNLOCKED(rt_name.cbs_gbl_lock), \ 132 .tasks_gp_mutex = __MUTEX_INITIALIZER(rt_name.tasks_gp_mutex), \ 133 .gp_func = gp, \ 134 .call_func = call, \ 135 .rtpcpu = &rt_name ## __percpu, \ 136 .lazy_jiffies = DIV_ROUND_UP(HZ, 4), \ 137 .name = n, \ 138 .percpu_enqueue_shift = order_base_2(CONFIG_NR_CPUS), \ 139 .percpu_enqueue_lim = 1, \ 140 .percpu_dequeue_lim = 1, \ 141 .barrier_q_mutex = __MUTEX_INITIALIZER(rt_name.barrier_q_mutex), \ 142 .barrier_q_seq = (0UL - 50UL) << RCU_SEQ_CTR_SHIFT, \ 143 .kname = #rt_name, \ 144 } 145 146 #ifdef CONFIG_TASKS_RCU 147 /* Track exiting tasks in order to allow them to be waited for. */ 148 DEFINE_STATIC_SRCU(tasks_rcu_exit_srcu); 149 150 /* Report delay in synchronize_srcu() completion in rcu_tasks_postscan(). */ 151 static void tasks_rcu_exit_srcu_stall(struct timer_list *unused); 152 static DEFINE_TIMER(tasks_rcu_exit_srcu_stall_timer, tasks_rcu_exit_srcu_stall); 153 #endif 154 155 /* Avoid IPIing CPUs early in the grace period. */ 156 #define RCU_TASK_IPI_DELAY (IS_ENABLED(CONFIG_TASKS_TRACE_RCU_READ_MB) ? HZ / 2 : 0) 157 static int rcu_task_ipi_delay __read_mostly = RCU_TASK_IPI_DELAY; 158 module_param(rcu_task_ipi_delay, int, 0644); 159 160 /* Control stall timeouts. Disable with <= 0, otherwise jiffies till stall. */ 161 #define RCU_TASK_BOOT_STALL_TIMEOUT (HZ * 30) 162 #define RCU_TASK_STALL_TIMEOUT (HZ * 60 * 10) 163 static int rcu_task_stall_timeout __read_mostly = RCU_TASK_STALL_TIMEOUT; 164 module_param(rcu_task_stall_timeout, int, 0644); 165 #define RCU_TASK_STALL_INFO (HZ * 10) 166 static int rcu_task_stall_info __read_mostly = RCU_TASK_STALL_INFO; 167 module_param(rcu_task_stall_info, int, 0644); 168 static int rcu_task_stall_info_mult __read_mostly = 3; 169 module_param(rcu_task_stall_info_mult, int, 0444); 170 171 static int rcu_task_enqueue_lim __read_mostly = -1; 172 module_param(rcu_task_enqueue_lim, int, 0444); 173 174 static bool rcu_task_cb_adjust; 175 static int rcu_task_contend_lim __read_mostly = 100; 176 module_param(rcu_task_contend_lim, int, 0444); 177 static int rcu_task_collapse_lim __read_mostly = 10; 178 module_param(rcu_task_collapse_lim, int, 0444); 179 static int rcu_task_lazy_lim __read_mostly = 32; 180 module_param(rcu_task_lazy_lim, int, 0444); 181 182 /* RCU tasks grace-period state for debugging. */ 183 #define RTGS_INIT 0 184 #define RTGS_WAIT_WAIT_CBS 1 185 #define RTGS_WAIT_GP 2 186 #define RTGS_PRE_WAIT_GP 3 187 #define RTGS_SCAN_TASKLIST 4 188 #define RTGS_POST_SCAN_TASKLIST 5 189 #define RTGS_WAIT_SCAN_HOLDOUTS 6 190 #define RTGS_SCAN_HOLDOUTS 7 191 #define RTGS_POST_GP 8 192 #define RTGS_WAIT_READERS 9 193 #define RTGS_INVOKE_CBS 10 194 #define RTGS_WAIT_CBS 11 195 #ifndef CONFIG_TINY_RCU 196 static const char * const rcu_tasks_gp_state_names[] = { 197 "RTGS_INIT", 198 "RTGS_WAIT_WAIT_CBS", 199 "RTGS_WAIT_GP", 200 "RTGS_PRE_WAIT_GP", 201 "RTGS_SCAN_TASKLIST", 202 "RTGS_POST_SCAN_TASKLIST", 203 "RTGS_WAIT_SCAN_HOLDOUTS", 204 "RTGS_SCAN_HOLDOUTS", 205 "RTGS_POST_GP", 206 "RTGS_WAIT_READERS", 207 "RTGS_INVOKE_CBS", 208 "RTGS_WAIT_CBS", 209 }; 210 #endif /* #ifndef CONFIG_TINY_RCU */ 211 212 //////////////////////////////////////////////////////////////////////// 213 // 214 // Generic code. 215 216 static void rcu_tasks_invoke_cbs_wq(struct work_struct *wp); 217 218 /* Record grace-period phase and time. */ 219 static void set_tasks_gp_state(struct rcu_tasks *rtp, int newstate) 220 { 221 rtp->gp_state = newstate; 222 rtp->gp_jiffies = jiffies; 223 } 224 225 #ifndef CONFIG_TINY_RCU 226 /* Return state name. */ 227 static const char *tasks_gp_state_getname(struct rcu_tasks *rtp) 228 { 229 int i = data_race(rtp->gp_state); // Let KCSAN detect update races 230 int j = READ_ONCE(i); // Prevent the compiler from reading twice 231 232 if (j >= ARRAY_SIZE(rcu_tasks_gp_state_names)) 233 return "???"; 234 return rcu_tasks_gp_state_names[j]; 235 } 236 #endif /* #ifndef CONFIG_TINY_RCU */ 237 238 // Initialize per-CPU callback lists for the specified flavor of 239 // Tasks RCU. Do not enqueue callbacks before this function is invoked. 240 static void cblist_init_generic(struct rcu_tasks *rtp) 241 { 242 int cpu; 243 unsigned long flags; 244 int lim; 245 int shift; 246 247 if (rcu_task_enqueue_lim < 0) { 248 rcu_task_enqueue_lim = 1; 249 rcu_task_cb_adjust = true; 250 } else if (rcu_task_enqueue_lim == 0) { 251 rcu_task_enqueue_lim = 1; 252 } 253 lim = rcu_task_enqueue_lim; 254 255 if (lim > nr_cpu_ids) 256 lim = nr_cpu_ids; 257 shift = ilog2(nr_cpu_ids / lim); 258 if (((nr_cpu_ids - 1) >> shift) >= lim) 259 shift++; 260 WRITE_ONCE(rtp->percpu_enqueue_shift, shift); 261 WRITE_ONCE(rtp->percpu_dequeue_lim, lim); 262 smp_store_release(&rtp->percpu_enqueue_lim, lim); 263 for_each_possible_cpu(cpu) { 264 struct rcu_tasks_percpu *rtpcp = per_cpu_ptr(rtp->rtpcpu, cpu); 265 266 WARN_ON_ONCE(!rtpcp); 267 if (cpu) 268 raw_spin_lock_init(&ACCESS_PRIVATE(rtpcp, lock)); 269 local_irq_save(flags); // serialize initialization 270 if (rcu_segcblist_empty(&rtpcp->cblist)) 271 rcu_segcblist_init(&rtpcp->cblist); 272 local_irq_restore(flags); 273 INIT_WORK(&rtpcp->rtp_work, rcu_tasks_invoke_cbs_wq); 274 rtpcp->cpu = cpu; 275 rtpcp->rtpp = rtp; 276 if (!rtpcp->rtp_blkd_tasks.next) 277 INIT_LIST_HEAD(&rtpcp->rtp_blkd_tasks); 278 } 279 280 pr_info("%s: Setting shift to %d and lim to %d rcu_task_cb_adjust=%d.\n", rtp->name, 281 data_race(rtp->percpu_enqueue_shift), data_race(rtp->percpu_enqueue_lim), rcu_task_cb_adjust); 282 } 283 284 // Compute wakeup time for lazy callback timer. 285 static unsigned long rcu_tasks_lazy_time(struct rcu_tasks *rtp) 286 { 287 return jiffies + rtp->lazy_jiffies; 288 } 289 290 // Timer handler that unlazifies lazy callbacks. 291 static void call_rcu_tasks_generic_timer(struct timer_list *tlp) 292 { 293 unsigned long flags; 294 bool needwake = false; 295 struct rcu_tasks *rtp; 296 struct rcu_tasks_percpu *rtpcp = from_timer(rtpcp, tlp, lazy_timer); 297 298 rtp = rtpcp->rtpp; 299 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 300 if (!rcu_segcblist_empty(&rtpcp->cblist) && rtp->lazy_jiffies) { 301 if (!rtpcp->urgent_gp) 302 rtpcp->urgent_gp = 1; 303 needwake = true; 304 mod_timer(&rtpcp->lazy_timer, rcu_tasks_lazy_time(rtp)); 305 } 306 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 307 if (needwake) 308 rcuwait_wake_up(&rtp->cbs_wait); 309 } 310 311 // IRQ-work handler that does deferred wakeup for call_rcu_tasks_generic(). 312 static void call_rcu_tasks_iw_wakeup(struct irq_work *iwp) 313 { 314 struct rcu_tasks *rtp; 315 struct rcu_tasks_percpu *rtpcp = container_of(iwp, struct rcu_tasks_percpu, rtp_irq_work); 316 317 rtp = rtpcp->rtpp; 318 rcuwait_wake_up(&rtp->cbs_wait); 319 } 320 321 // Enqueue a callback for the specified flavor of Tasks RCU. 322 static void call_rcu_tasks_generic(struct rcu_head *rhp, rcu_callback_t func, 323 struct rcu_tasks *rtp) 324 { 325 int chosen_cpu; 326 unsigned long flags; 327 bool havekthread = smp_load_acquire(&rtp->kthread_ptr); 328 int ideal_cpu; 329 unsigned long j; 330 bool needadjust = false; 331 bool needwake; 332 struct rcu_tasks_percpu *rtpcp; 333 334 rhp->next = NULL; 335 rhp->func = func; 336 local_irq_save(flags); 337 rcu_read_lock(); 338 ideal_cpu = smp_processor_id() >> READ_ONCE(rtp->percpu_enqueue_shift); 339 chosen_cpu = cpumask_next(ideal_cpu - 1, cpu_possible_mask); 340 rtpcp = per_cpu_ptr(rtp->rtpcpu, chosen_cpu); 341 if (!raw_spin_trylock_rcu_node(rtpcp)) { // irqs already disabled. 342 raw_spin_lock_rcu_node(rtpcp); // irqs already disabled. 343 j = jiffies; 344 if (rtpcp->rtp_jiffies != j) { 345 rtpcp->rtp_jiffies = j; 346 rtpcp->rtp_n_lock_retries = 0; 347 } 348 if (rcu_task_cb_adjust && ++rtpcp->rtp_n_lock_retries > rcu_task_contend_lim && 349 READ_ONCE(rtp->percpu_enqueue_lim) != nr_cpu_ids) 350 needadjust = true; // Defer adjustment to avoid deadlock. 351 } 352 // Queuing callbacks before initialization not yet supported. 353 if (WARN_ON_ONCE(!rcu_segcblist_is_enabled(&rtpcp->cblist))) 354 rcu_segcblist_init(&rtpcp->cblist); 355 needwake = (func == wakeme_after_rcu) || 356 (rcu_segcblist_n_cbs(&rtpcp->cblist) == rcu_task_lazy_lim); 357 if (havekthread && !needwake && !timer_pending(&rtpcp->lazy_timer)) { 358 if (rtp->lazy_jiffies) 359 mod_timer(&rtpcp->lazy_timer, rcu_tasks_lazy_time(rtp)); 360 else 361 needwake = rcu_segcblist_empty(&rtpcp->cblist); 362 } 363 if (needwake) 364 rtpcp->urgent_gp = 3; 365 rcu_segcblist_enqueue(&rtpcp->cblist, rhp); 366 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 367 if (unlikely(needadjust)) { 368 raw_spin_lock_irqsave(&rtp->cbs_gbl_lock, flags); 369 if (rtp->percpu_enqueue_lim != nr_cpu_ids) { 370 WRITE_ONCE(rtp->percpu_enqueue_shift, 0); 371 WRITE_ONCE(rtp->percpu_dequeue_lim, nr_cpu_ids); 372 smp_store_release(&rtp->percpu_enqueue_lim, nr_cpu_ids); 373 pr_info("Switching %s to per-CPU callback queuing.\n", rtp->name); 374 } 375 raw_spin_unlock_irqrestore(&rtp->cbs_gbl_lock, flags); 376 } 377 rcu_read_unlock(); 378 /* We can't create the thread unless interrupts are enabled. */ 379 if (needwake && READ_ONCE(rtp->kthread_ptr)) 380 irq_work_queue(&rtpcp->rtp_irq_work); 381 } 382 383 // RCU callback function for rcu_barrier_tasks_generic(). 384 static void rcu_barrier_tasks_generic_cb(struct rcu_head *rhp) 385 { 386 struct rcu_tasks *rtp; 387 struct rcu_tasks_percpu *rtpcp; 388 389 rtpcp = container_of(rhp, struct rcu_tasks_percpu, barrier_q_head); 390 rtp = rtpcp->rtpp; 391 if (atomic_dec_and_test(&rtp->barrier_q_count)) 392 complete(&rtp->barrier_q_completion); 393 } 394 395 // Wait for all in-flight callbacks for the specified RCU Tasks flavor. 396 // Operates in a manner similar to rcu_barrier(). 397 static void rcu_barrier_tasks_generic(struct rcu_tasks *rtp) 398 { 399 int cpu; 400 unsigned long flags; 401 struct rcu_tasks_percpu *rtpcp; 402 unsigned long s = rcu_seq_snap(&rtp->barrier_q_seq); 403 404 mutex_lock(&rtp->barrier_q_mutex); 405 if (rcu_seq_done(&rtp->barrier_q_seq, s)) { 406 smp_mb(); 407 mutex_unlock(&rtp->barrier_q_mutex); 408 return; 409 } 410 rcu_seq_start(&rtp->barrier_q_seq); 411 init_completion(&rtp->barrier_q_completion); 412 atomic_set(&rtp->barrier_q_count, 2); 413 for_each_possible_cpu(cpu) { 414 if (cpu >= smp_load_acquire(&rtp->percpu_dequeue_lim)) 415 break; 416 rtpcp = per_cpu_ptr(rtp->rtpcpu, cpu); 417 rtpcp->barrier_q_head.func = rcu_barrier_tasks_generic_cb; 418 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 419 if (rcu_segcblist_entrain(&rtpcp->cblist, &rtpcp->barrier_q_head)) 420 atomic_inc(&rtp->barrier_q_count); 421 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 422 } 423 if (atomic_sub_and_test(2, &rtp->barrier_q_count)) 424 complete(&rtp->barrier_q_completion); 425 wait_for_completion(&rtp->barrier_q_completion); 426 rcu_seq_end(&rtp->barrier_q_seq); 427 mutex_unlock(&rtp->barrier_q_mutex); 428 } 429 430 // Advance callbacks and indicate whether either a grace period or 431 // callback invocation is needed. 432 static int rcu_tasks_need_gpcb(struct rcu_tasks *rtp) 433 { 434 int cpu; 435 unsigned long flags; 436 bool gpdone = poll_state_synchronize_rcu(rtp->percpu_dequeue_gpseq); 437 long n; 438 long ncbs = 0; 439 long ncbsnz = 0; 440 int needgpcb = 0; 441 442 for (cpu = 0; cpu < smp_load_acquire(&rtp->percpu_dequeue_lim); cpu++) { 443 struct rcu_tasks_percpu *rtpcp = per_cpu_ptr(rtp->rtpcpu, cpu); 444 445 /* Advance and accelerate any new callbacks. */ 446 if (!rcu_segcblist_n_cbs(&rtpcp->cblist)) 447 continue; 448 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 449 // Should we shrink down to a single callback queue? 450 n = rcu_segcblist_n_cbs(&rtpcp->cblist); 451 if (n) { 452 ncbs += n; 453 if (cpu > 0) 454 ncbsnz += n; 455 } 456 rcu_segcblist_advance(&rtpcp->cblist, rcu_seq_current(&rtp->tasks_gp_seq)); 457 (void)rcu_segcblist_accelerate(&rtpcp->cblist, rcu_seq_snap(&rtp->tasks_gp_seq)); 458 if (rtpcp->urgent_gp > 0 && rcu_segcblist_pend_cbs(&rtpcp->cblist)) { 459 if (rtp->lazy_jiffies) 460 rtpcp->urgent_gp--; 461 needgpcb |= 0x3; 462 } else if (rcu_segcblist_empty(&rtpcp->cblist)) { 463 rtpcp->urgent_gp = 0; 464 } 465 if (rcu_segcblist_ready_cbs(&rtpcp->cblist)) 466 needgpcb |= 0x1; 467 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 468 } 469 470 // Shrink down to a single callback queue if appropriate. 471 // This is done in two stages: (1) If there are no more than 472 // rcu_task_collapse_lim callbacks on CPU 0 and none on any other 473 // CPU, limit enqueueing to CPU 0. (2) After an RCU grace period, 474 // if there has not been an increase in callbacks, limit dequeuing 475 // to CPU 0. Note the matching RCU read-side critical section in 476 // call_rcu_tasks_generic(). 477 if (rcu_task_cb_adjust && ncbs <= rcu_task_collapse_lim) { 478 raw_spin_lock_irqsave(&rtp->cbs_gbl_lock, flags); 479 if (rtp->percpu_enqueue_lim > 1) { 480 WRITE_ONCE(rtp->percpu_enqueue_shift, order_base_2(nr_cpu_ids)); 481 smp_store_release(&rtp->percpu_enqueue_lim, 1); 482 rtp->percpu_dequeue_gpseq = get_state_synchronize_rcu(); 483 gpdone = false; 484 pr_info("Starting switch %s to CPU-0 callback queuing.\n", rtp->name); 485 } 486 raw_spin_unlock_irqrestore(&rtp->cbs_gbl_lock, flags); 487 } 488 if (rcu_task_cb_adjust && !ncbsnz && gpdone) { 489 raw_spin_lock_irqsave(&rtp->cbs_gbl_lock, flags); 490 if (rtp->percpu_enqueue_lim < rtp->percpu_dequeue_lim) { 491 WRITE_ONCE(rtp->percpu_dequeue_lim, 1); 492 pr_info("Completing switch %s to CPU-0 callback queuing.\n", rtp->name); 493 } 494 if (rtp->percpu_dequeue_lim == 1) { 495 for (cpu = rtp->percpu_dequeue_lim; cpu < nr_cpu_ids; cpu++) { 496 struct rcu_tasks_percpu *rtpcp = per_cpu_ptr(rtp->rtpcpu, cpu); 497 498 WARN_ON_ONCE(rcu_segcblist_n_cbs(&rtpcp->cblist)); 499 } 500 } 501 raw_spin_unlock_irqrestore(&rtp->cbs_gbl_lock, flags); 502 } 503 504 return needgpcb; 505 } 506 507 // Advance callbacks and invoke any that are ready. 508 static void rcu_tasks_invoke_cbs(struct rcu_tasks *rtp, struct rcu_tasks_percpu *rtpcp) 509 { 510 int cpu; 511 int cpunext; 512 int cpuwq; 513 unsigned long flags; 514 int len; 515 struct rcu_head *rhp; 516 struct rcu_cblist rcl = RCU_CBLIST_INITIALIZER(rcl); 517 struct rcu_tasks_percpu *rtpcp_next; 518 519 cpu = rtpcp->cpu; 520 cpunext = cpu * 2 + 1; 521 if (cpunext < smp_load_acquire(&rtp->percpu_dequeue_lim)) { 522 rtpcp_next = per_cpu_ptr(rtp->rtpcpu, cpunext); 523 cpuwq = rcu_cpu_beenfullyonline(cpunext) ? cpunext : WORK_CPU_UNBOUND; 524 queue_work_on(cpuwq, system_wq, &rtpcp_next->rtp_work); 525 cpunext++; 526 if (cpunext < smp_load_acquire(&rtp->percpu_dequeue_lim)) { 527 rtpcp_next = per_cpu_ptr(rtp->rtpcpu, cpunext); 528 cpuwq = rcu_cpu_beenfullyonline(cpunext) ? cpunext : WORK_CPU_UNBOUND; 529 queue_work_on(cpuwq, system_wq, &rtpcp_next->rtp_work); 530 } 531 } 532 533 if (rcu_segcblist_empty(&rtpcp->cblist) || !cpu_possible(cpu)) 534 return; 535 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 536 rcu_segcblist_advance(&rtpcp->cblist, rcu_seq_current(&rtp->tasks_gp_seq)); 537 rcu_segcblist_extract_done_cbs(&rtpcp->cblist, &rcl); 538 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 539 len = rcl.len; 540 for (rhp = rcu_cblist_dequeue(&rcl); rhp; rhp = rcu_cblist_dequeue(&rcl)) { 541 local_bh_disable(); 542 rhp->func(rhp); 543 local_bh_enable(); 544 cond_resched(); 545 } 546 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 547 rcu_segcblist_add_len(&rtpcp->cblist, -len); 548 (void)rcu_segcblist_accelerate(&rtpcp->cblist, rcu_seq_snap(&rtp->tasks_gp_seq)); 549 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 550 } 551 552 // Workqueue flood to advance callbacks and invoke any that are ready. 553 static void rcu_tasks_invoke_cbs_wq(struct work_struct *wp) 554 { 555 struct rcu_tasks *rtp; 556 struct rcu_tasks_percpu *rtpcp = container_of(wp, struct rcu_tasks_percpu, rtp_work); 557 558 rtp = rtpcp->rtpp; 559 rcu_tasks_invoke_cbs(rtp, rtpcp); 560 } 561 562 // Wait for one grace period. 563 static void rcu_tasks_one_gp(struct rcu_tasks *rtp, bool midboot) 564 { 565 int needgpcb; 566 567 mutex_lock(&rtp->tasks_gp_mutex); 568 569 // If there were none, wait a bit and start over. 570 if (unlikely(midboot)) { 571 needgpcb = 0x2; 572 } else { 573 mutex_unlock(&rtp->tasks_gp_mutex); 574 set_tasks_gp_state(rtp, RTGS_WAIT_CBS); 575 rcuwait_wait_event(&rtp->cbs_wait, 576 (needgpcb = rcu_tasks_need_gpcb(rtp)), 577 TASK_IDLE); 578 mutex_lock(&rtp->tasks_gp_mutex); 579 } 580 581 if (needgpcb & 0x2) { 582 // Wait for one grace period. 583 set_tasks_gp_state(rtp, RTGS_WAIT_GP); 584 rtp->gp_start = jiffies; 585 rcu_seq_start(&rtp->tasks_gp_seq); 586 rtp->gp_func(rtp); 587 rcu_seq_end(&rtp->tasks_gp_seq); 588 } 589 590 // Invoke callbacks. 591 set_tasks_gp_state(rtp, RTGS_INVOKE_CBS); 592 rcu_tasks_invoke_cbs(rtp, per_cpu_ptr(rtp->rtpcpu, 0)); 593 mutex_unlock(&rtp->tasks_gp_mutex); 594 } 595 596 // RCU-tasks kthread that detects grace periods and invokes callbacks. 597 static int __noreturn rcu_tasks_kthread(void *arg) 598 { 599 int cpu; 600 struct rcu_tasks *rtp = arg; 601 602 for_each_possible_cpu(cpu) { 603 struct rcu_tasks_percpu *rtpcp = per_cpu_ptr(rtp->rtpcpu, cpu); 604 605 timer_setup(&rtpcp->lazy_timer, call_rcu_tasks_generic_timer, 0); 606 rtpcp->urgent_gp = 1; 607 } 608 609 /* Run on housekeeping CPUs by default. Sysadm can move if desired. */ 610 housekeeping_affine(current, HK_TYPE_RCU); 611 smp_store_release(&rtp->kthread_ptr, current); // Let GPs start! 612 613 /* 614 * Each pass through the following loop makes one check for 615 * newly arrived callbacks, and, if there are some, waits for 616 * one RCU-tasks grace period and then invokes the callbacks. 617 * This loop is terminated by the system going down. ;-) 618 */ 619 for (;;) { 620 // Wait for one grace period and invoke any callbacks 621 // that are ready. 622 rcu_tasks_one_gp(rtp, false); 623 624 // Paranoid sleep to keep this from entering a tight loop. 625 schedule_timeout_idle(rtp->gp_sleep); 626 } 627 } 628 629 // Wait for a grace period for the specified flavor of Tasks RCU. 630 static void synchronize_rcu_tasks_generic(struct rcu_tasks *rtp) 631 { 632 /* Complain if the scheduler has not started. */ 633 if (WARN_ONCE(rcu_scheduler_active == RCU_SCHEDULER_INACTIVE, 634 "synchronize_%s() called too soon", rtp->name)) 635 return; 636 637 // If the grace-period kthread is running, use it. 638 if (READ_ONCE(rtp->kthread_ptr)) { 639 wait_rcu_gp(rtp->call_func); 640 return; 641 } 642 rcu_tasks_one_gp(rtp, true); 643 } 644 645 /* Spawn RCU-tasks grace-period kthread. */ 646 static void __init rcu_spawn_tasks_kthread_generic(struct rcu_tasks *rtp) 647 { 648 struct task_struct *t; 649 650 t = kthread_run(rcu_tasks_kthread, rtp, "%s_kthread", rtp->kname); 651 if (WARN_ONCE(IS_ERR(t), "%s: Could not start %s grace-period kthread, OOM is now expected behavior\n", __func__, rtp->name)) 652 return; 653 smp_mb(); /* Ensure others see full kthread. */ 654 } 655 656 #ifndef CONFIG_TINY_RCU 657 658 /* 659 * Print any non-default Tasks RCU settings. 660 */ 661 static void __init rcu_tasks_bootup_oddness(void) 662 { 663 #if defined(CONFIG_TASKS_RCU) || defined(CONFIG_TASKS_TRACE_RCU) 664 int rtsimc; 665 666 if (rcu_task_stall_timeout != RCU_TASK_STALL_TIMEOUT) 667 pr_info("\tTasks-RCU CPU stall warnings timeout set to %d (rcu_task_stall_timeout).\n", rcu_task_stall_timeout); 668 rtsimc = clamp(rcu_task_stall_info_mult, 1, 10); 669 if (rtsimc != rcu_task_stall_info_mult) { 670 pr_info("\tTasks-RCU CPU stall info multiplier clamped to %d (rcu_task_stall_info_mult).\n", rtsimc); 671 rcu_task_stall_info_mult = rtsimc; 672 } 673 #endif /* #ifdef CONFIG_TASKS_RCU */ 674 #ifdef CONFIG_TASKS_RCU 675 pr_info("\tTrampoline variant of Tasks RCU enabled.\n"); 676 #endif /* #ifdef CONFIG_TASKS_RCU */ 677 #ifdef CONFIG_TASKS_RUDE_RCU 678 pr_info("\tRude variant of Tasks RCU enabled.\n"); 679 #endif /* #ifdef CONFIG_TASKS_RUDE_RCU */ 680 #ifdef CONFIG_TASKS_TRACE_RCU 681 pr_info("\tTracing variant of Tasks RCU enabled.\n"); 682 #endif /* #ifdef CONFIG_TASKS_TRACE_RCU */ 683 } 684 685 #endif /* #ifndef CONFIG_TINY_RCU */ 686 687 #ifndef CONFIG_TINY_RCU 688 /* Dump out rcutorture-relevant state common to all RCU-tasks flavors. */ 689 static void show_rcu_tasks_generic_gp_kthread(struct rcu_tasks *rtp, char *s) 690 { 691 int cpu; 692 bool havecbs = false; 693 bool haveurgent = false; 694 bool haveurgentcbs = false; 695 696 for_each_possible_cpu(cpu) { 697 struct rcu_tasks_percpu *rtpcp = per_cpu_ptr(rtp->rtpcpu, cpu); 698 699 if (!data_race(rcu_segcblist_empty(&rtpcp->cblist))) 700 havecbs = true; 701 if (data_race(rtpcp->urgent_gp)) 702 haveurgent = true; 703 if (!data_race(rcu_segcblist_empty(&rtpcp->cblist)) && data_race(rtpcp->urgent_gp)) 704 haveurgentcbs = true; 705 if (havecbs && haveurgent && haveurgentcbs) 706 break; 707 } 708 pr_info("%s: %s(%d) since %lu g:%lu i:%lu/%lu %c%c%c%c l:%lu %s\n", 709 rtp->kname, 710 tasks_gp_state_getname(rtp), data_race(rtp->gp_state), 711 jiffies - data_race(rtp->gp_jiffies), 712 data_race(rcu_seq_current(&rtp->tasks_gp_seq)), 713 data_race(rtp->n_ipis_fails), data_race(rtp->n_ipis), 714 ".k"[!!data_race(rtp->kthread_ptr)], 715 ".C"[havecbs], 716 ".u"[haveurgent], 717 ".U"[haveurgentcbs], 718 rtp->lazy_jiffies, 719 s); 720 } 721 #endif // #ifndef CONFIG_TINY_RCU 722 723 static void exit_tasks_rcu_finish_trace(struct task_struct *t); 724 725 #if defined(CONFIG_TASKS_RCU) || defined(CONFIG_TASKS_TRACE_RCU) 726 727 //////////////////////////////////////////////////////////////////////// 728 // 729 // Shared code between task-list-scanning variants of Tasks RCU. 730 731 /* Wait for one RCU-tasks grace period. */ 732 static void rcu_tasks_wait_gp(struct rcu_tasks *rtp) 733 { 734 struct task_struct *g; 735 int fract; 736 LIST_HEAD(holdouts); 737 unsigned long j; 738 unsigned long lastinfo; 739 unsigned long lastreport; 740 bool reported = false; 741 int rtsi; 742 struct task_struct *t; 743 744 set_tasks_gp_state(rtp, RTGS_PRE_WAIT_GP); 745 rtp->pregp_func(&holdouts); 746 747 /* 748 * There were callbacks, so we need to wait for an RCU-tasks 749 * grace period. Start off by scanning the task list for tasks 750 * that are not already voluntarily blocked. Mark these tasks 751 * and make a list of them in holdouts. 752 */ 753 set_tasks_gp_state(rtp, RTGS_SCAN_TASKLIST); 754 if (rtp->pertask_func) { 755 rcu_read_lock(); 756 for_each_process_thread(g, t) 757 rtp->pertask_func(t, &holdouts); 758 rcu_read_unlock(); 759 } 760 761 set_tasks_gp_state(rtp, RTGS_POST_SCAN_TASKLIST); 762 rtp->postscan_func(&holdouts); 763 764 /* 765 * Each pass through the following loop scans the list of holdout 766 * tasks, removing any that are no longer holdouts. When the list 767 * is empty, we are done. 768 */ 769 lastreport = jiffies; 770 lastinfo = lastreport; 771 rtsi = READ_ONCE(rcu_task_stall_info); 772 773 // Start off with initial wait and slowly back off to 1 HZ wait. 774 fract = rtp->init_fract; 775 776 while (!list_empty(&holdouts)) { 777 ktime_t exp; 778 bool firstreport; 779 bool needreport; 780 int rtst; 781 782 // Slowly back off waiting for holdouts 783 set_tasks_gp_state(rtp, RTGS_WAIT_SCAN_HOLDOUTS); 784 if (!IS_ENABLED(CONFIG_PREEMPT_RT)) { 785 schedule_timeout_idle(fract); 786 } else { 787 exp = jiffies_to_nsecs(fract); 788 __set_current_state(TASK_IDLE); 789 schedule_hrtimeout_range(&exp, jiffies_to_nsecs(HZ / 2), HRTIMER_MODE_REL_HARD); 790 } 791 792 if (fract < HZ) 793 fract++; 794 795 rtst = READ_ONCE(rcu_task_stall_timeout); 796 needreport = rtst > 0 && time_after(jiffies, lastreport + rtst); 797 if (needreport) { 798 lastreport = jiffies; 799 reported = true; 800 } 801 firstreport = true; 802 WARN_ON(signal_pending(current)); 803 set_tasks_gp_state(rtp, RTGS_SCAN_HOLDOUTS); 804 rtp->holdouts_func(&holdouts, needreport, &firstreport); 805 806 // Print pre-stall informational messages if needed. 807 j = jiffies; 808 if (rtsi > 0 && !reported && time_after(j, lastinfo + rtsi)) { 809 lastinfo = j; 810 rtsi = rtsi * rcu_task_stall_info_mult; 811 pr_info("%s: %s grace period number %lu (since boot) is %lu jiffies old.\n", 812 __func__, rtp->kname, rtp->tasks_gp_seq, j - rtp->gp_start); 813 } 814 } 815 816 set_tasks_gp_state(rtp, RTGS_POST_GP); 817 rtp->postgp_func(rtp); 818 } 819 820 #endif /* #if defined(CONFIG_TASKS_RCU) || defined(CONFIG_TASKS_TRACE_RCU) */ 821 822 #ifdef CONFIG_TASKS_RCU 823 824 //////////////////////////////////////////////////////////////////////// 825 // 826 // Simple variant of RCU whose quiescent states are voluntary context 827 // switch, cond_resched_tasks_rcu_qs(), user-space execution, and idle. 828 // As such, grace periods can take one good long time. There are no 829 // read-side primitives similar to rcu_read_lock() and rcu_read_unlock() 830 // because this implementation is intended to get the system into a safe 831 // state for some of the manipulations involved in tracing and the like. 832 // Finally, this implementation does not support high call_rcu_tasks() 833 // rates from multiple CPUs. If this is required, per-CPU callback lists 834 // will be needed. 835 // 836 // The implementation uses rcu_tasks_wait_gp(), which relies on function 837 // pointers in the rcu_tasks structure. The rcu_spawn_tasks_kthread() 838 // function sets these function pointers up so that rcu_tasks_wait_gp() 839 // invokes these functions in this order: 840 // 841 // rcu_tasks_pregp_step(): 842 // Invokes synchronize_rcu() in order to wait for all in-flight 843 // t->on_rq and t->nvcsw transitions to complete. This works because 844 // all such transitions are carried out with interrupts disabled. 845 // rcu_tasks_pertask(), invoked on every non-idle task: 846 // For every runnable non-idle task other than the current one, use 847 // get_task_struct() to pin down that task, snapshot that task's 848 // number of voluntary context switches, and add that task to the 849 // holdout list. 850 // rcu_tasks_postscan(): 851 // Invoke synchronize_srcu() to ensure that all tasks that were 852 // in the process of exiting (and which thus might not know to 853 // synchronize with this RCU Tasks grace period) have completed 854 // exiting. 855 // check_all_holdout_tasks(), repeatedly until holdout list is empty: 856 // Scans the holdout list, attempting to identify a quiescent state 857 // for each task on the list. If there is a quiescent state, the 858 // corresponding task is removed from the holdout list. 859 // rcu_tasks_postgp(): 860 // Invokes synchronize_rcu() in order to ensure that all prior 861 // t->on_rq and t->nvcsw transitions are seen by all CPUs and tasks 862 // to have happened before the end of this RCU Tasks grace period. 863 // Again, this works because all such transitions are carried out 864 // with interrupts disabled. 865 // 866 // For each exiting task, the exit_tasks_rcu_start() and 867 // exit_tasks_rcu_finish() functions begin and end, respectively, the SRCU 868 // read-side critical sections waited for by rcu_tasks_postscan(). 869 // 870 // Pre-grace-period update-side code is ordered before the grace 871 // via the raw_spin_lock.*rcu_node(). Pre-grace-period read-side code 872 // is ordered before the grace period via synchronize_rcu() call in 873 // rcu_tasks_pregp_step() and by the scheduler's locks and interrupt 874 // disabling. 875 876 /* Pre-grace-period preparation. */ 877 static void rcu_tasks_pregp_step(struct list_head *hop) 878 { 879 /* 880 * Wait for all pre-existing t->on_rq and t->nvcsw transitions 881 * to complete. Invoking synchronize_rcu() suffices because all 882 * these transitions occur with interrupts disabled. Without this 883 * synchronize_rcu(), a read-side critical section that started 884 * before the grace period might be incorrectly seen as having 885 * started after the grace period. 886 * 887 * This synchronize_rcu() also dispenses with the need for a 888 * memory barrier on the first store to t->rcu_tasks_holdout, 889 * as it forces the store to happen after the beginning of the 890 * grace period. 891 */ 892 synchronize_rcu(); 893 } 894 895 /* Per-task initial processing. */ 896 static void rcu_tasks_pertask(struct task_struct *t, struct list_head *hop) 897 { 898 if (t != current && READ_ONCE(t->on_rq) && !is_idle_task(t)) { 899 get_task_struct(t); 900 t->rcu_tasks_nvcsw = READ_ONCE(t->nvcsw); 901 WRITE_ONCE(t->rcu_tasks_holdout, true); 902 list_add(&t->rcu_tasks_holdout_list, hop); 903 } 904 } 905 906 /* Processing between scanning taskslist and draining the holdout list. */ 907 static void rcu_tasks_postscan(struct list_head *hop) 908 { 909 int rtsi = READ_ONCE(rcu_task_stall_info); 910 911 if (!IS_ENABLED(CONFIG_TINY_RCU)) { 912 tasks_rcu_exit_srcu_stall_timer.expires = jiffies + rtsi; 913 add_timer(&tasks_rcu_exit_srcu_stall_timer); 914 } 915 916 /* 917 * Exiting tasks may escape the tasklist scan. Those are vulnerable 918 * until their final schedule() with TASK_DEAD state. To cope with 919 * this, divide the fragile exit path part in two intersecting 920 * read side critical sections: 921 * 922 * 1) An _SRCU_ read side starting before calling exit_notify(), 923 * which may remove the task from the tasklist, and ending after 924 * the final preempt_disable() call in do_exit(). 925 * 926 * 2) An _RCU_ read side starting with the final preempt_disable() 927 * call in do_exit() and ending with the final call to schedule() 928 * with TASK_DEAD state. 929 * 930 * This handles the part 1). And postgp will handle part 2) with a 931 * call to synchronize_rcu(). 932 */ 933 synchronize_srcu(&tasks_rcu_exit_srcu); 934 935 if (!IS_ENABLED(CONFIG_TINY_RCU)) 936 del_timer_sync(&tasks_rcu_exit_srcu_stall_timer); 937 } 938 939 /* See if tasks are still holding out, complain if so. */ 940 static void check_holdout_task(struct task_struct *t, 941 bool needreport, bool *firstreport) 942 { 943 int cpu; 944 945 if (!READ_ONCE(t->rcu_tasks_holdout) || 946 t->rcu_tasks_nvcsw != READ_ONCE(t->nvcsw) || 947 !READ_ONCE(t->on_rq) || 948 (IS_ENABLED(CONFIG_NO_HZ_FULL) && 949 !is_idle_task(t) && t->rcu_tasks_idle_cpu >= 0)) { 950 WRITE_ONCE(t->rcu_tasks_holdout, false); 951 list_del_init(&t->rcu_tasks_holdout_list); 952 put_task_struct(t); 953 return; 954 } 955 rcu_request_urgent_qs_task(t); 956 if (!needreport) 957 return; 958 if (*firstreport) { 959 pr_err("INFO: rcu_tasks detected stalls on tasks:\n"); 960 *firstreport = false; 961 } 962 cpu = task_cpu(t); 963 pr_alert("%p: %c%c nvcsw: %lu/%lu holdout: %d idle_cpu: %d/%d\n", 964 t, ".I"[is_idle_task(t)], 965 "N."[cpu < 0 || !tick_nohz_full_cpu(cpu)], 966 t->rcu_tasks_nvcsw, t->nvcsw, t->rcu_tasks_holdout, 967 t->rcu_tasks_idle_cpu, cpu); 968 sched_show_task(t); 969 } 970 971 /* Scan the holdout lists for tasks no longer holding out. */ 972 static void check_all_holdout_tasks(struct list_head *hop, 973 bool needreport, bool *firstreport) 974 { 975 struct task_struct *t, *t1; 976 977 list_for_each_entry_safe(t, t1, hop, rcu_tasks_holdout_list) { 978 check_holdout_task(t, needreport, firstreport); 979 cond_resched(); 980 } 981 } 982 983 /* Finish off the Tasks-RCU grace period. */ 984 static void rcu_tasks_postgp(struct rcu_tasks *rtp) 985 { 986 /* 987 * Because ->on_rq and ->nvcsw are not guaranteed to have a full 988 * memory barriers prior to them in the schedule() path, memory 989 * reordering on other CPUs could cause their RCU-tasks read-side 990 * critical sections to extend past the end of the grace period. 991 * However, because these ->nvcsw updates are carried out with 992 * interrupts disabled, we can use synchronize_rcu() to force the 993 * needed ordering on all such CPUs. 994 * 995 * This synchronize_rcu() also confines all ->rcu_tasks_holdout 996 * accesses to be within the grace period, avoiding the need for 997 * memory barriers for ->rcu_tasks_holdout accesses. 998 * 999 * In addition, this synchronize_rcu() waits for exiting tasks 1000 * to complete their final preempt_disable() region of execution, 1001 * cleaning up after synchronize_srcu(&tasks_rcu_exit_srcu), 1002 * enforcing the whole region before tasklist removal until 1003 * the final schedule() with TASK_DEAD state to be an RCU TASKS 1004 * read side critical section. 1005 */ 1006 synchronize_rcu(); 1007 } 1008 1009 void call_rcu_tasks(struct rcu_head *rhp, rcu_callback_t func); 1010 DEFINE_RCU_TASKS(rcu_tasks, rcu_tasks_wait_gp, call_rcu_tasks, "RCU Tasks"); 1011 1012 static void tasks_rcu_exit_srcu_stall(struct timer_list *unused) 1013 { 1014 #ifndef CONFIG_TINY_RCU 1015 int rtsi; 1016 1017 rtsi = READ_ONCE(rcu_task_stall_info); 1018 pr_info("%s: %s grace period number %lu (since boot) gp_state: %s is %lu jiffies old.\n", 1019 __func__, rcu_tasks.kname, rcu_tasks.tasks_gp_seq, 1020 tasks_gp_state_getname(&rcu_tasks), jiffies - rcu_tasks.gp_jiffies); 1021 pr_info("Please check any exiting tasks stuck between calls to exit_tasks_rcu_start() and exit_tasks_rcu_finish()\n"); 1022 tasks_rcu_exit_srcu_stall_timer.expires = jiffies + rtsi; 1023 add_timer(&tasks_rcu_exit_srcu_stall_timer); 1024 #endif // #ifndef CONFIG_TINY_RCU 1025 } 1026 1027 /** 1028 * call_rcu_tasks() - Queue an RCU for invocation task-based grace period 1029 * @rhp: structure to be used for queueing the RCU updates. 1030 * @func: actual callback function to be invoked after the grace period 1031 * 1032 * The callback function will be invoked some time after a full grace 1033 * period elapses, in other words after all currently executing RCU 1034 * read-side critical sections have completed. call_rcu_tasks() assumes 1035 * that the read-side critical sections end at a voluntary context 1036 * switch (not a preemption!), cond_resched_tasks_rcu_qs(), entry into idle, 1037 * or transition to usermode execution. As such, there are no read-side 1038 * primitives analogous to rcu_read_lock() and rcu_read_unlock() because 1039 * this primitive is intended to determine that all tasks have passed 1040 * through a safe state, not so much for data-structure synchronization. 1041 * 1042 * See the description of call_rcu() for more detailed information on 1043 * memory ordering guarantees. 1044 */ 1045 void call_rcu_tasks(struct rcu_head *rhp, rcu_callback_t func) 1046 { 1047 call_rcu_tasks_generic(rhp, func, &rcu_tasks); 1048 } 1049 EXPORT_SYMBOL_GPL(call_rcu_tasks); 1050 1051 /** 1052 * synchronize_rcu_tasks - wait until an rcu-tasks grace period has elapsed. 1053 * 1054 * Control will return to the caller some time after a full rcu-tasks 1055 * grace period has elapsed, in other words after all currently 1056 * executing rcu-tasks read-side critical sections have elapsed. These 1057 * read-side critical sections are delimited by calls to schedule(), 1058 * cond_resched_tasks_rcu_qs(), idle execution, userspace execution, calls 1059 * to synchronize_rcu_tasks(), and (in theory, anyway) cond_resched(). 1060 * 1061 * This is a very specialized primitive, intended only for a few uses in 1062 * tracing and other situations requiring manipulation of function 1063 * preambles and profiling hooks. The synchronize_rcu_tasks() function 1064 * is not (yet) intended for heavy use from multiple CPUs. 1065 * 1066 * See the description of synchronize_rcu() for more detailed information 1067 * on memory ordering guarantees. 1068 */ 1069 void synchronize_rcu_tasks(void) 1070 { 1071 synchronize_rcu_tasks_generic(&rcu_tasks); 1072 } 1073 EXPORT_SYMBOL_GPL(synchronize_rcu_tasks); 1074 1075 /** 1076 * rcu_barrier_tasks - Wait for in-flight call_rcu_tasks() callbacks. 1077 * 1078 * Although the current implementation is guaranteed to wait, it is not 1079 * obligated to, for example, if there are no pending callbacks. 1080 */ 1081 void rcu_barrier_tasks(void) 1082 { 1083 rcu_barrier_tasks_generic(&rcu_tasks); 1084 } 1085 EXPORT_SYMBOL_GPL(rcu_barrier_tasks); 1086 1087 int rcu_tasks_lazy_ms = -1; 1088 module_param(rcu_tasks_lazy_ms, int, 0444); 1089 1090 static int __init rcu_spawn_tasks_kthread(void) 1091 { 1092 cblist_init_generic(&rcu_tasks); 1093 rcu_tasks.gp_sleep = HZ / 10; 1094 rcu_tasks.init_fract = HZ / 10; 1095 if (rcu_tasks_lazy_ms >= 0) 1096 rcu_tasks.lazy_jiffies = msecs_to_jiffies(rcu_tasks_lazy_ms); 1097 rcu_tasks.pregp_func = rcu_tasks_pregp_step; 1098 rcu_tasks.pertask_func = rcu_tasks_pertask; 1099 rcu_tasks.postscan_func = rcu_tasks_postscan; 1100 rcu_tasks.holdouts_func = check_all_holdout_tasks; 1101 rcu_tasks.postgp_func = rcu_tasks_postgp; 1102 rcu_spawn_tasks_kthread_generic(&rcu_tasks); 1103 return 0; 1104 } 1105 1106 #if !defined(CONFIG_TINY_RCU) 1107 void show_rcu_tasks_classic_gp_kthread(void) 1108 { 1109 show_rcu_tasks_generic_gp_kthread(&rcu_tasks, ""); 1110 } 1111 EXPORT_SYMBOL_GPL(show_rcu_tasks_classic_gp_kthread); 1112 #endif // !defined(CONFIG_TINY_RCU) 1113 1114 struct task_struct *get_rcu_tasks_gp_kthread(void) 1115 { 1116 return rcu_tasks.kthread_ptr; 1117 } 1118 EXPORT_SYMBOL_GPL(get_rcu_tasks_gp_kthread); 1119 1120 /* 1121 * Contribute to protect against tasklist scan blind spot while the 1122 * task is exiting and may be removed from the tasklist. See 1123 * corresponding synchronize_srcu() for further details. 1124 */ 1125 void exit_tasks_rcu_start(void) __acquires(&tasks_rcu_exit_srcu) 1126 { 1127 current->rcu_tasks_idx = __srcu_read_lock(&tasks_rcu_exit_srcu); 1128 } 1129 1130 /* 1131 * Contribute to protect against tasklist scan blind spot while the 1132 * task is exiting and may be removed from the tasklist. See 1133 * corresponding synchronize_srcu() for further details. 1134 */ 1135 void exit_tasks_rcu_stop(void) __releases(&tasks_rcu_exit_srcu) 1136 { 1137 struct task_struct *t = current; 1138 1139 __srcu_read_unlock(&tasks_rcu_exit_srcu, t->rcu_tasks_idx); 1140 } 1141 1142 /* 1143 * Contribute to protect against tasklist scan blind spot while the 1144 * task is exiting and may be removed from the tasklist. See 1145 * corresponding synchronize_srcu() for further details. 1146 */ 1147 void exit_tasks_rcu_finish(void) 1148 { 1149 exit_tasks_rcu_stop(); 1150 exit_tasks_rcu_finish_trace(current); 1151 } 1152 1153 #else /* #ifdef CONFIG_TASKS_RCU */ 1154 void exit_tasks_rcu_start(void) { } 1155 void exit_tasks_rcu_stop(void) { } 1156 void exit_tasks_rcu_finish(void) { exit_tasks_rcu_finish_trace(current); } 1157 #endif /* #else #ifdef CONFIG_TASKS_RCU */ 1158 1159 #ifdef CONFIG_TASKS_RUDE_RCU 1160 1161 //////////////////////////////////////////////////////////////////////// 1162 // 1163 // "Rude" variant of Tasks RCU, inspired by Steve Rostedt's trick of 1164 // passing an empty function to schedule_on_each_cpu(). This approach 1165 // provides an asynchronous call_rcu_tasks_rude() API and batching of 1166 // concurrent calls to the synchronous synchronize_rcu_tasks_rude() API. 1167 // This invokes schedule_on_each_cpu() in order to send IPIs far and wide 1168 // and induces otherwise unnecessary context switches on all online CPUs, 1169 // whether idle or not. 1170 // 1171 // Callback handling is provided by the rcu_tasks_kthread() function. 1172 // 1173 // Ordering is provided by the scheduler's context-switch code. 1174 1175 // Empty function to allow workqueues to force a context switch. 1176 static void rcu_tasks_be_rude(struct work_struct *work) 1177 { 1178 } 1179 1180 // Wait for one rude RCU-tasks grace period. 1181 static void rcu_tasks_rude_wait_gp(struct rcu_tasks *rtp) 1182 { 1183 rtp->n_ipis += cpumask_weight(cpu_online_mask); 1184 schedule_on_each_cpu(rcu_tasks_be_rude); 1185 } 1186 1187 void call_rcu_tasks_rude(struct rcu_head *rhp, rcu_callback_t func); 1188 DEFINE_RCU_TASKS(rcu_tasks_rude, rcu_tasks_rude_wait_gp, call_rcu_tasks_rude, 1189 "RCU Tasks Rude"); 1190 1191 /** 1192 * call_rcu_tasks_rude() - Queue a callback rude task-based grace period 1193 * @rhp: structure to be used for queueing the RCU updates. 1194 * @func: actual callback function to be invoked after the grace period 1195 * 1196 * The callback function will be invoked some time after a full grace 1197 * period elapses, in other words after all currently executing RCU 1198 * read-side critical sections have completed. call_rcu_tasks_rude() 1199 * assumes that the read-side critical sections end at context switch, 1200 * cond_resched_tasks_rcu_qs(), or transition to usermode execution (as 1201 * usermode execution is schedulable). As such, there are no read-side 1202 * primitives analogous to rcu_read_lock() and rcu_read_unlock() because 1203 * this primitive is intended to determine that all tasks have passed 1204 * through a safe state, not so much for data-structure synchronization. 1205 * 1206 * See the description of call_rcu() for more detailed information on 1207 * memory ordering guarantees. 1208 */ 1209 void call_rcu_tasks_rude(struct rcu_head *rhp, rcu_callback_t func) 1210 { 1211 call_rcu_tasks_generic(rhp, func, &rcu_tasks_rude); 1212 } 1213 EXPORT_SYMBOL_GPL(call_rcu_tasks_rude); 1214 1215 /** 1216 * synchronize_rcu_tasks_rude - wait for a rude rcu-tasks grace period 1217 * 1218 * Control will return to the caller some time after a rude rcu-tasks 1219 * grace period has elapsed, in other words after all currently 1220 * executing rcu-tasks read-side critical sections have elapsed. These 1221 * read-side critical sections are delimited by calls to schedule(), 1222 * cond_resched_tasks_rcu_qs(), userspace execution (which is a schedulable 1223 * context), and (in theory, anyway) cond_resched(). 1224 * 1225 * This is a very specialized primitive, intended only for a few uses in 1226 * tracing and other situations requiring manipulation of function preambles 1227 * and profiling hooks. The synchronize_rcu_tasks_rude() function is not 1228 * (yet) intended for heavy use from multiple CPUs. 1229 * 1230 * See the description of synchronize_rcu() for more detailed information 1231 * on memory ordering guarantees. 1232 */ 1233 void synchronize_rcu_tasks_rude(void) 1234 { 1235 synchronize_rcu_tasks_generic(&rcu_tasks_rude); 1236 } 1237 EXPORT_SYMBOL_GPL(synchronize_rcu_tasks_rude); 1238 1239 /** 1240 * rcu_barrier_tasks_rude - Wait for in-flight call_rcu_tasks_rude() callbacks. 1241 * 1242 * Although the current implementation is guaranteed to wait, it is not 1243 * obligated to, for example, if there are no pending callbacks. 1244 */ 1245 void rcu_barrier_tasks_rude(void) 1246 { 1247 rcu_barrier_tasks_generic(&rcu_tasks_rude); 1248 } 1249 EXPORT_SYMBOL_GPL(rcu_barrier_tasks_rude); 1250 1251 int rcu_tasks_rude_lazy_ms = -1; 1252 module_param(rcu_tasks_rude_lazy_ms, int, 0444); 1253 1254 static int __init rcu_spawn_tasks_rude_kthread(void) 1255 { 1256 cblist_init_generic(&rcu_tasks_rude); 1257 rcu_tasks_rude.gp_sleep = HZ / 10; 1258 if (rcu_tasks_rude_lazy_ms >= 0) 1259 rcu_tasks_rude.lazy_jiffies = msecs_to_jiffies(rcu_tasks_rude_lazy_ms); 1260 rcu_spawn_tasks_kthread_generic(&rcu_tasks_rude); 1261 return 0; 1262 } 1263 1264 #if !defined(CONFIG_TINY_RCU) 1265 void show_rcu_tasks_rude_gp_kthread(void) 1266 { 1267 show_rcu_tasks_generic_gp_kthread(&rcu_tasks_rude, ""); 1268 } 1269 EXPORT_SYMBOL_GPL(show_rcu_tasks_rude_gp_kthread); 1270 #endif // !defined(CONFIG_TINY_RCU) 1271 1272 struct task_struct *get_rcu_tasks_rude_gp_kthread(void) 1273 { 1274 return rcu_tasks_rude.kthread_ptr; 1275 } 1276 EXPORT_SYMBOL_GPL(get_rcu_tasks_rude_gp_kthread); 1277 1278 #endif /* #ifdef CONFIG_TASKS_RUDE_RCU */ 1279 1280 //////////////////////////////////////////////////////////////////////// 1281 // 1282 // Tracing variant of Tasks RCU. This variant is designed to be used 1283 // to protect tracing hooks, including those of BPF. This variant 1284 // therefore: 1285 // 1286 // 1. Has explicit read-side markers to allow finite grace periods 1287 // in the face of in-kernel loops for PREEMPT=n builds. 1288 // 1289 // 2. Protects code in the idle loop, exception entry/exit, and 1290 // CPU-hotplug code paths, similar to the capabilities of SRCU. 1291 // 1292 // 3. Avoids expensive read-side instructions, having overhead similar 1293 // to that of Preemptible RCU. 1294 // 1295 // There are of course downsides. For example, the grace-period code 1296 // can send IPIs to CPUs, even when those CPUs are in the idle loop or 1297 // in nohz_full userspace. If needed, these downsides can be at least 1298 // partially remedied. 1299 // 1300 // Perhaps most important, this variant of RCU does not affect the vanilla 1301 // flavors, rcu_preempt and rcu_sched. The fact that RCU Tasks Trace 1302 // readers can operate from idle, offline, and exception entry/exit in no 1303 // way allows rcu_preempt and rcu_sched readers to also do so. 1304 // 1305 // The implementation uses rcu_tasks_wait_gp(), which relies on function 1306 // pointers in the rcu_tasks structure. The rcu_spawn_tasks_trace_kthread() 1307 // function sets these function pointers up so that rcu_tasks_wait_gp() 1308 // invokes these functions in this order: 1309 // 1310 // rcu_tasks_trace_pregp_step(): 1311 // Disables CPU hotplug, adds all currently executing tasks to the 1312 // holdout list, then checks the state of all tasks that blocked 1313 // or were preempted within their current RCU Tasks Trace read-side 1314 // critical section, adding them to the holdout list if appropriate. 1315 // Finally, this function re-enables CPU hotplug. 1316 // The ->pertask_func() pointer is NULL, so there is no per-task processing. 1317 // rcu_tasks_trace_postscan(): 1318 // Invokes synchronize_rcu() to wait for late-stage exiting tasks 1319 // to finish exiting. 1320 // check_all_holdout_tasks_trace(), repeatedly until holdout list is empty: 1321 // Scans the holdout list, attempting to identify a quiescent state 1322 // for each task on the list. If there is a quiescent state, the 1323 // corresponding task is removed from the holdout list. Once this 1324 // list is empty, the grace period has completed. 1325 // rcu_tasks_trace_postgp(): 1326 // Provides the needed full memory barrier and does debug checks. 1327 // 1328 // The exit_tasks_rcu_finish_trace() synchronizes with exiting tasks. 1329 // 1330 // Pre-grace-period update-side code is ordered before the grace period 1331 // via the ->cbs_lock and barriers in rcu_tasks_kthread(). Pre-grace-period 1332 // read-side code is ordered before the grace period by atomic operations 1333 // on .b.need_qs flag of each task involved in this process, or by scheduler 1334 // context-switch ordering (for locked-down non-running readers). 1335 1336 // The lockdep state must be outside of #ifdef to be useful. 1337 #ifdef CONFIG_DEBUG_LOCK_ALLOC 1338 static struct lock_class_key rcu_lock_trace_key; 1339 struct lockdep_map rcu_trace_lock_map = 1340 STATIC_LOCKDEP_MAP_INIT("rcu_read_lock_trace", &rcu_lock_trace_key); 1341 EXPORT_SYMBOL_GPL(rcu_trace_lock_map); 1342 #endif /* #ifdef CONFIG_DEBUG_LOCK_ALLOC */ 1343 1344 #ifdef CONFIG_TASKS_TRACE_RCU 1345 1346 // Record outstanding IPIs to each CPU. No point in sending two... 1347 static DEFINE_PER_CPU(bool, trc_ipi_to_cpu); 1348 1349 // The number of detections of task quiescent state relying on 1350 // heavyweight readers executing explicit memory barriers. 1351 static unsigned long n_heavy_reader_attempts; 1352 static unsigned long n_heavy_reader_updates; 1353 static unsigned long n_heavy_reader_ofl_updates; 1354 static unsigned long n_trc_holdouts; 1355 1356 void call_rcu_tasks_trace(struct rcu_head *rhp, rcu_callback_t func); 1357 DEFINE_RCU_TASKS(rcu_tasks_trace, rcu_tasks_wait_gp, call_rcu_tasks_trace, 1358 "RCU Tasks Trace"); 1359 1360 /* Load from ->trc_reader_special.b.need_qs with proper ordering. */ 1361 static u8 rcu_ld_need_qs(struct task_struct *t) 1362 { 1363 smp_mb(); // Enforce full grace-period ordering. 1364 return smp_load_acquire(&t->trc_reader_special.b.need_qs); 1365 } 1366 1367 /* Store to ->trc_reader_special.b.need_qs with proper ordering. */ 1368 static void rcu_st_need_qs(struct task_struct *t, u8 v) 1369 { 1370 smp_store_release(&t->trc_reader_special.b.need_qs, v); 1371 smp_mb(); // Enforce full grace-period ordering. 1372 } 1373 1374 /* 1375 * Do a cmpxchg() on ->trc_reader_special.b.need_qs, allowing for 1376 * the four-byte operand-size restriction of some platforms. 1377 * Returns the old value, which is often ignored. 1378 */ 1379 u8 rcu_trc_cmpxchg_need_qs(struct task_struct *t, u8 old, u8 new) 1380 { 1381 union rcu_special ret; 1382 union rcu_special trs_old = READ_ONCE(t->trc_reader_special); 1383 union rcu_special trs_new = trs_old; 1384 1385 if (trs_old.b.need_qs != old) 1386 return trs_old.b.need_qs; 1387 trs_new.b.need_qs = new; 1388 ret.s = cmpxchg(&t->trc_reader_special.s, trs_old.s, trs_new.s); 1389 return ret.b.need_qs; 1390 } 1391 EXPORT_SYMBOL_GPL(rcu_trc_cmpxchg_need_qs); 1392 1393 /* 1394 * If we are the last reader, signal the grace-period kthread. 1395 * Also remove from the per-CPU list of blocked tasks. 1396 */ 1397 void rcu_read_unlock_trace_special(struct task_struct *t) 1398 { 1399 unsigned long flags; 1400 struct rcu_tasks_percpu *rtpcp; 1401 union rcu_special trs; 1402 1403 // Open-coded full-word version of rcu_ld_need_qs(). 1404 smp_mb(); // Enforce full grace-period ordering. 1405 trs = smp_load_acquire(&t->trc_reader_special); 1406 1407 if (IS_ENABLED(CONFIG_TASKS_TRACE_RCU_READ_MB) && t->trc_reader_special.b.need_mb) 1408 smp_mb(); // Pairs with update-side barriers. 1409 // Update .need_qs before ->trc_reader_nesting for irq/NMI handlers. 1410 if (trs.b.need_qs == (TRC_NEED_QS_CHECKED | TRC_NEED_QS)) { 1411 u8 result = rcu_trc_cmpxchg_need_qs(t, TRC_NEED_QS_CHECKED | TRC_NEED_QS, 1412 TRC_NEED_QS_CHECKED); 1413 1414 WARN_ONCE(result != trs.b.need_qs, "%s: result = %d", __func__, result); 1415 } 1416 if (trs.b.blocked) { 1417 rtpcp = per_cpu_ptr(rcu_tasks_trace.rtpcpu, t->trc_blkd_cpu); 1418 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 1419 list_del_init(&t->trc_blkd_node); 1420 WRITE_ONCE(t->trc_reader_special.b.blocked, false); 1421 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 1422 } 1423 WRITE_ONCE(t->trc_reader_nesting, 0); 1424 } 1425 EXPORT_SYMBOL_GPL(rcu_read_unlock_trace_special); 1426 1427 /* Add a newly blocked reader task to its CPU's list. */ 1428 void rcu_tasks_trace_qs_blkd(struct task_struct *t) 1429 { 1430 unsigned long flags; 1431 struct rcu_tasks_percpu *rtpcp; 1432 1433 local_irq_save(flags); 1434 rtpcp = this_cpu_ptr(rcu_tasks_trace.rtpcpu); 1435 raw_spin_lock_rcu_node(rtpcp); // irqs already disabled 1436 t->trc_blkd_cpu = smp_processor_id(); 1437 if (!rtpcp->rtp_blkd_tasks.next) 1438 INIT_LIST_HEAD(&rtpcp->rtp_blkd_tasks); 1439 list_add(&t->trc_blkd_node, &rtpcp->rtp_blkd_tasks); 1440 WRITE_ONCE(t->trc_reader_special.b.blocked, true); 1441 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 1442 } 1443 EXPORT_SYMBOL_GPL(rcu_tasks_trace_qs_blkd); 1444 1445 /* Add a task to the holdout list, if it is not already on the list. */ 1446 static void trc_add_holdout(struct task_struct *t, struct list_head *bhp) 1447 { 1448 if (list_empty(&t->trc_holdout_list)) { 1449 get_task_struct(t); 1450 list_add(&t->trc_holdout_list, bhp); 1451 n_trc_holdouts++; 1452 } 1453 } 1454 1455 /* Remove a task from the holdout list, if it is in fact present. */ 1456 static void trc_del_holdout(struct task_struct *t) 1457 { 1458 if (!list_empty(&t->trc_holdout_list)) { 1459 list_del_init(&t->trc_holdout_list); 1460 put_task_struct(t); 1461 n_trc_holdouts--; 1462 } 1463 } 1464 1465 /* IPI handler to check task state. */ 1466 static void trc_read_check_handler(void *t_in) 1467 { 1468 int nesting; 1469 struct task_struct *t = current; 1470 struct task_struct *texp = t_in; 1471 1472 // If the task is no longer running on this CPU, leave. 1473 if (unlikely(texp != t)) 1474 goto reset_ipi; // Already on holdout list, so will check later. 1475 1476 // If the task is not in a read-side critical section, and 1477 // if this is the last reader, awaken the grace-period kthread. 1478 nesting = READ_ONCE(t->trc_reader_nesting); 1479 if (likely(!nesting)) { 1480 rcu_trc_cmpxchg_need_qs(t, 0, TRC_NEED_QS_CHECKED); 1481 goto reset_ipi; 1482 } 1483 // If we are racing with an rcu_read_unlock_trace(), try again later. 1484 if (unlikely(nesting < 0)) 1485 goto reset_ipi; 1486 1487 // Get here if the task is in a read-side critical section. 1488 // Set its state so that it will update state for the grace-period 1489 // kthread upon exit from that critical section. 1490 rcu_trc_cmpxchg_need_qs(t, 0, TRC_NEED_QS | TRC_NEED_QS_CHECKED); 1491 1492 reset_ipi: 1493 // Allow future IPIs to be sent on CPU and for task. 1494 // Also order this IPI handler against any later manipulations of 1495 // the intended task. 1496 smp_store_release(per_cpu_ptr(&trc_ipi_to_cpu, smp_processor_id()), false); // ^^^ 1497 smp_store_release(&texp->trc_ipi_to_cpu, -1); // ^^^ 1498 } 1499 1500 /* Callback function for scheduler to check locked-down task. */ 1501 static int trc_inspect_reader(struct task_struct *t, void *bhp_in) 1502 { 1503 struct list_head *bhp = bhp_in; 1504 int cpu = task_cpu(t); 1505 int nesting; 1506 bool ofl = cpu_is_offline(cpu); 1507 1508 if (task_curr(t) && !ofl) { 1509 // If no chance of heavyweight readers, do it the hard way. 1510 if (!IS_ENABLED(CONFIG_TASKS_TRACE_RCU_READ_MB)) 1511 return -EINVAL; 1512 1513 // If heavyweight readers are enabled on the remote task, 1514 // we can inspect its state despite its currently running. 1515 // However, we cannot safely change its state. 1516 n_heavy_reader_attempts++; 1517 // Check for "running" idle tasks on offline CPUs. 1518 if (!rcu_dynticks_zero_in_eqs(cpu, &t->trc_reader_nesting)) 1519 return -EINVAL; // No quiescent state, do it the hard way. 1520 n_heavy_reader_updates++; 1521 nesting = 0; 1522 } else { 1523 // The task is not running, so C-language access is safe. 1524 nesting = t->trc_reader_nesting; 1525 WARN_ON_ONCE(ofl && task_curr(t) && !is_idle_task(t)); 1526 if (IS_ENABLED(CONFIG_TASKS_TRACE_RCU_READ_MB) && ofl) 1527 n_heavy_reader_ofl_updates++; 1528 } 1529 1530 // If not exiting a read-side critical section, mark as checked 1531 // so that the grace-period kthread will remove it from the 1532 // holdout list. 1533 if (!nesting) { 1534 rcu_trc_cmpxchg_need_qs(t, 0, TRC_NEED_QS_CHECKED); 1535 return 0; // In QS, so done. 1536 } 1537 if (nesting < 0) 1538 return -EINVAL; // Reader transitioning, try again later. 1539 1540 // The task is in a read-side critical section, so set up its 1541 // state so that it will update state upon exit from that critical 1542 // section. 1543 if (!rcu_trc_cmpxchg_need_qs(t, 0, TRC_NEED_QS | TRC_NEED_QS_CHECKED)) 1544 trc_add_holdout(t, bhp); 1545 return 0; 1546 } 1547 1548 /* Attempt to extract the state for the specified task. */ 1549 static void trc_wait_for_one_reader(struct task_struct *t, 1550 struct list_head *bhp) 1551 { 1552 int cpu; 1553 1554 // If a previous IPI is still in flight, let it complete. 1555 if (smp_load_acquire(&t->trc_ipi_to_cpu) != -1) // Order IPI 1556 return; 1557 1558 // The current task had better be in a quiescent state. 1559 if (t == current) { 1560 rcu_trc_cmpxchg_need_qs(t, 0, TRC_NEED_QS_CHECKED); 1561 WARN_ON_ONCE(READ_ONCE(t->trc_reader_nesting)); 1562 return; 1563 } 1564 1565 // Attempt to nail down the task for inspection. 1566 get_task_struct(t); 1567 if (!task_call_func(t, trc_inspect_reader, bhp)) { 1568 put_task_struct(t); 1569 return; 1570 } 1571 put_task_struct(t); 1572 1573 // If this task is not yet on the holdout list, then we are in 1574 // an RCU read-side critical section. Otherwise, the invocation of 1575 // trc_add_holdout() that added it to the list did the necessary 1576 // get_task_struct(). Either way, the task cannot be freed out 1577 // from under this code. 1578 1579 // If currently running, send an IPI, either way, add to list. 1580 trc_add_holdout(t, bhp); 1581 if (task_curr(t) && 1582 time_after(jiffies + 1, rcu_tasks_trace.gp_start + rcu_task_ipi_delay)) { 1583 // The task is currently running, so try IPIing it. 1584 cpu = task_cpu(t); 1585 1586 // If there is already an IPI outstanding, let it happen. 1587 if (per_cpu(trc_ipi_to_cpu, cpu) || t->trc_ipi_to_cpu >= 0) 1588 return; 1589 1590 per_cpu(trc_ipi_to_cpu, cpu) = true; 1591 t->trc_ipi_to_cpu = cpu; 1592 rcu_tasks_trace.n_ipis++; 1593 if (smp_call_function_single(cpu, trc_read_check_handler, t, 0)) { 1594 // Just in case there is some other reason for 1595 // failure than the target CPU being offline. 1596 WARN_ONCE(1, "%s(): smp_call_function_single() failed for CPU: %d\n", 1597 __func__, cpu); 1598 rcu_tasks_trace.n_ipis_fails++; 1599 per_cpu(trc_ipi_to_cpu, cpu) = false; 1600 t->trc_ipi_to_cpu = -1; 1601 } 1602 } 1603 } 1604 1605 /* 1606 * Initialize for first-round processing for the specified task. 1607 * Return false if task is NULL or already taken care of, true otherwise. 1608 */ 1609 static bool rcu_tasks_trace_pertask_prep(struct task_struct *t, bool notself) 1610 { 1611 // During early boot when there is only the one boot CPU, there 1612 // is no idle task for the other CPUs. Also, the grace-period 1613 // kthread is always in a quiescent state. In addition, just return 1614 // if this task is already on the list. 1615 if (unlikely(t == NULL) || (t == current && notself) || !list_empty(&t->trc_holdout_list)) 1616 return false; 1617 1618 rcu_st_need_qs(t, 0); 1619 t->trc_ipi_to_cpu = -1; 1620 return true; 1621 } 1622 1623 /* Do first-round processing for the specified task. */ 1624 static void rcu_tasks_trace_pertask(struct task_struct *t, struct list_head *hop) 1625 { 1626 if (rcu_tasks_trace_pertask_prep(t, true)) 1627 trc_wait_for_one_reader(t, hop); 1628 } 1629 1630 /* Initialize for a new RCU-tasks-trace grace period. */ 1631 static void rcu_tasks_trace_pregp_step(struct list_head *hop) 1632 { 1633 LIST_HEAD(blkd_tasks); 1634 int cpu; 1635 unsigned long flags; 1636 struct rcu_tasks_percpu *rtpcp; 1637 struct task_struct *t; 1638 1639 // There shouldn't be any old IPIs, but... 1640 for_each_possible_cpu(cpu) 1641 WARN_ON_ONCE(per_cpu(trc_ipi_to_cpu, cpu)); 1642 1643 // Disable CPU hotplug across the CPU scan for the benefit of 1644 // any IPIs that might be needed. This also waits for all readers 1645 // in CPU-hotplug code paths. 1646 cpus_read_lock(); 1647 1648 // These rcu_tasks_trace_pertask_prep() calls are serialized to 1649 // allow safe access to the hop list. 1650 for_each_online_cpu(cpu) { 1651 rcu_read_lock(); 1652 t = cpu_curr_snapshot(cpu); 1653 if (rcu_tasks_trace_pertask_prep(t, true)) 1654 trc_add_holdout(t, hop); 1655 rcu_read_unlock(); 1656 cond_resched_tasks_rcu_qs(); 1657 } 1658 1659 // Only after all running tasks have been accounted for is it 1660 // safe to take care of the tasks that have blocked within their 1661 // current RCU tasks trace read-side critical section. 1662 for_each_possible_cpu(cpu) { 1663 rtpcp = per_cpu_ptr(rcu_tasks_trace.rtpcpu, cpu); 1664 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 1665 list_splice_init(&rtpcp->rtp_blkd_tasks, &blkd_tasks); 1666 while (!list_empty(&blkd_tasks)) { 1667 rcu_read_lock(); 1668 t = list_first_entry(&blkd_tasks, struct task_struct, trc_blkd_node); 1669 list_del_init(&t->trc_blkd_node); 1670 list_add(&t->trc_blkd_node, &rtpcp->rtp_blkd_tasks); 1671 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 1672 rcu_tasks_trace_pertask(t, hop); 1673 rcu_read_unlock(); 1674 raw_spin_lock_irqsave_rcu_node(rtpcp, flags); 1675 } 1676 raw_spin_unlock_irqrestore_rcu_node(rtpcp, flags); 1677 cond_resched_tasks_rcu_qs(); 1678 } 1679 1680 // Re-enable CPU hotplug now that the holdout list is populated. 1681 cpus_read_unlock(); 1682 } 1683 1684 /* 1685 * Do intermediate processing between task and holdout scans. 1686 */ 1687 static void rcu_tasks_trace_postscan(struct list_head *hop) 1688 { 1689 // Wait for late-stage exiting tasks to finish exiting. 1690 // These might have passed the call to exit_tasks_rcu_finish(). 1691 1692 // If you remove the following line, update rcu_trace_implies_rcu_gp()!!! 1693 synchronize_rcu(); 1694 // Any tasks that exit after this point will set 1695 // TRC_NEED_QS_CHECKED in ->trc_reader_special.b.need_qs. 1696 } 1697 1698 /* Communicate task state back to the RCU tasks trace stall warning request. */ 1699 struct trc_stall_chk_rdr { 1700 int nesting; 1701 int ipi_to_cpu; 1702 u8 needqs; 1703 }; 1704 1705 static int trc_check_slow_task(struct task_struct *t, void *arg) 1706 { 1707 struct trc_stall_chk_rdr *trc_rdrp = arg; 1708 1709 if (task_curr(t) && cpu_online(task_cpu(t))) 1710 return false; // It is running, so decline to inspect it. 1711 trc_rdrp->nesting = READ_ONCE(t->trc_reader_nesting); 1712 trc_rdrp->ipi_to_cpu = READ_ONCE(t->trc_ipi_to_cpu); 1713 trc_rdrp->needqs = rcu_ld_need_qs(t); 1714 return true; 1715 } 1716 1717 /* Show the state of a task stalling the current RCU tasks trace GP. */ 1718 static void show_stalled_task_trace(struct task_struct *t, bool *firstreport) 1719 { 1720 int cpu; 1721 struct trc_stall_chk_rdr trc_rdr; 1722 bool is_idle_tsk = is_idle_task(t); 1723 1724 if (*firstreport) { 1725 pr_err("INFO: rcu_tasks_trace detected stalls on tasks:\n"); 1726 *firstreport = false; 1727 } 1728 cpu = task_cpu(t); 1729 if (!task_call_func(t, trc_check_slow_task, &trc_rdr)) 1730 pr_alert("P%d: %c%c\n", 1731 t->pid, 1732 ".I"[t->trc_ipi_to_cpu >= 0], 1733 ".i"[is_idle_tsk]); 1734 else 1735 pr_alert("P%d: %c%c%c%c nesting: %d%c%c cpu: %d%s\n", 1736 t->pid, 1737 ".I"[trc_rdr.ipi_to_cpu >= 0], 1738 ".i"[is_idle_tsk], 1739 ".N"[cpu >= 0 && tick_nohz_full_cpu(cpu)], 1740 ".B"[!!data_race(t->trc_reader_special.b.blocked)], 1741 trc_rdr.nesting, 1742 " !CN"[trc_rdr.needqs & 0x3], 1743 " ?"[trc_rdr.needqs > 0x3], 1744 cpu, cpu_online(cpu) ? "" : "(offline)"); 1745 sched_show_task(t); 1746 } 1747 1748 /* List stalled IPIs for RCU tasks trace. */ 1749 static void show_stalled_ipi_trace(void) 1750 { 1751 int cpu; 1752 1753 for_each_possible_cpu(cpu) 1754 if (per_cpu(trc_ipi_to_cpu, cpu)) 1755 pr_alert("\tIPI outstanding to CPU %d\n", cpu); 1756 } 1757 1758 /* Do one scan of the holdout list. */ 1759 static void check_all_holdout_tasks_trace(struct list_head *hop, 1760 bool needreport, bool *firstreport) 1761 { 1762 struct task_struct *g, *t; 1763 1764 // Disable CPU hotplug across the holdout list scan for IPIs. 1765 cpus_read_lock(); 1766 1767 list_for_each_entry_safe(t, g, hop, trc_holdout_list) { 1768 // If safe and needed, try to check the current task. 1769 if (READ_ONCE(t->trc_ipi_to_cpu) == -1 && 1770 !(rcu_ld_need_qs(t) & TRC_NEED_QS_CHECKED)) 1771 trc_wait_for_one_reader(t, hop); 1772 1773 // If check succeeded, remove this task from the list. 1774 if (smp_load_acquire(&t->trc_ipi_to_cpu) == -1 && 1775 rcu_ld_need_qs(t) == TRC_NEED_QS_CHECKED) 1776 trc_del_holdout(t); 1777 else if (needreport) 1778 show_stalled_task_trace(t, firstreport); 1779 cond_resched_tasks_rcu_qs(); 1780 } 1781 1782 // Re-enable CPU hotplug now that the holdout list scan has completed. 1783 cpus_read_unlock(); 1784 1785 if (needreport) { 1786 if (*firstreport) 1787 pr_err("INFO: rcu_tasks_trace detected stalls? (Late IPI?)\n"); 1788 show_stalled_ipi_trace(); 1789 } 1790 } 1791 1792 static void rcu_tasks_trace_empty_fn(void *unused) 1793 { 1794 } 1795 1796 /* Wait for grace period to complete and provide ordering. */ 1797 static void rcu_tasks_trace_postgp(struct rcu_tasks *rtp) 1798 { 1799 int cpu; 1800 1801 // Wait for any lingering IPI handlers to complete. Note that 1802 // if a CPU has gone offline or transitioned to userspace in the 1803 // meantime, all IPI handlers should have been drained beforehand. 1804 // Yes, this assumes that CPUs process IPIs in order. If that ever 1805 // changes, there will need to be a recheck and/or timed wait. 1806 for_each_online_cpu(cpu) 1807 if (WARN_ON_ONCE(smp_load_acquire(per_cpu_ptr(&trc_ipi_to_cpu, cpu)))) 1808 smp_call_function_single(cpu, rcu_tasks_trace_empty_fn, NULL, 1); 1809 1810 smp_mb(); // Caller's code must be ordered after wakeup. 1811 // Pairs with pretty much every ordering primitive. 1812 } 1813 1814 /* Report any needed quiescent state for this exiting task. */ 1815 static void exit_tasks_rcu_finish_trace(struct task_struct *t) 1816 { 1817 union rcu_special trs = READ_ONCE(t->trc_reader_special); 1818 1819 rcu_trc_cmpxchg_need_qs(t, 0, TRC_NEED_QS_CHECKED); 1820 WARN_ON_ONCE(READ_ONCE(t->trc_reader_nesting)); 1821 if (WARN_ON_ONCE(rcu_ld_need_qs(t) & TRC_NEED_QS || trs.b.blocked)) 1822 rcu_read_unlock_trace_special(t); 1823 else 1824 WRITE_ONCE(t->trc_reader_nesting, 0); 1825 } 1826 1827 /** 1828 * call_rcu_tasks_trace() - Queue a callback trace task-based grace period 1829 * @rhp: structure to be used for queueing the RCU updates. 1830 * @func: actual callback function to be invoked after the grace period 1831 * 1832 * The callback function will be invoked some time after a trace rcu-tasks 1833 * grace period elapses, in other words after all currently executing 1834 * trace rcu-tasks read-side critical sections have completed. These 1835 * read-side critical sections are delimited by calls to rcu_read_lock_trace() 1836 * and rcu_read_unlock_trace(). 1837 * 1838 * See the description of call_rcu() for more detailed information on 1839 * memory ordering guarantees. 1840 */ 1841 void call_rcu_tasks_trace(struct rcu_head *rhp, rcu_callback_t func) 1842 { 1843 call_rcu_tasks_generic(rhp, func, &rcu_tasks_trace); 1844 } 1845 EXPORT_SYMBOL_GPL(call_rcu_tasks_trace); 1846 1847 /** 1848 * synchronize_rcu_tasks_trace - wait for a trace rcu-tasks grace period 1849 * 1850 * Control will return to the caller some time after a trace rcu-tasks 1851 * grace period has elapsed, in other words after all currently executing 1852 * trace rcu-tasks read-side critical sections have elapsed. These read-side 1853 * critical sections are delimited by calls to rcu_read_lock_trace() 1854 * and rcu_read_unlock_trace(). 1855 * 1856 * This is a very specialized primitive, intended only for a few uses in 1857 * tracing and other situations requiring manipulation of function preambles 1858 * and profiling hooks. The synchronize_rcu_tasks_trace() function is not 1859 * (yet) intended for heavy use from multiple CPUs. 1860 * 1861 * See the description of synchronize_rcu() for more detailed information 1862 * on memory ordering guarantees. 1863 */ 1864 void synchronize_rcu_tasks_trace(void) 1865 { 1866 RCU_LOCKDEP_WARN(lock_is_held(&rcu_trace_lock_map), "Illegal synchronize_rcu_tasks_trace() in RCU Tasks Trace read-side critical section"); 1867 synchronize_rcu_tasks_generic(&rcu_tasks_trace); 1868 } 1869 EXPORT_SYMBOL_GPL(synchronize_rcu_tasks_trace); 1870 1871 /** 1872 * rcu_barrier_tasks_trace - Wait for in-flight call_rcu_tasks_trace() callbacks. 1873 * 1874 * Although the current implementation is guaranteed to wait, it is not 1875 * obligated to, for example, if there are no pending callbacks. 1876 */ 1877 void rcu_barrier_tasks_trace(void) 1878 { 1879 rcu_barrier_tasks_generic(&rcu_tasks_trace); 1880 } 1881 EXPORT_SYMBOL_GPL(rcu_barrier_tasks_trace); 1882 1883 int rcu_tasks_trace_lazy_ms = -1; 1884 module_param(rcu_tasks_trace_lazy_ms, int, 0444); 1885 1886 static int __init rcu_spawn_tasks_trace_kthread(void) 1887 { 1888 cblist_init_generic(&rcu_tasks_trace); 1889 if (IS_ENABLED(CONFIG_TASKS_TRACE_RCU_READ_MB)) { 1890 rcu_tasks_trace.gp_sleep = HZ / 10; 1891 rcu_tasks_trace.init_fract = HZ / 10; 1892 } else { 1893 rcu_tasks_trace.gp_sleep = HZ / 200; 1894 if (rcu_tasks_trace.gp_sleep <= 0) 1895 rcu_tasks_trace.gp_sleep = 1; 1896 rcu_tasks_trace.init_fract = HZ / 200; 1897 if (rcu_tasks_trace.init_fract <= 0) 1898 rcu_tasks_trace.init_fract = 1; 1899 } 1900 if (rcu_tasks_trace_lazy_ms >= 0) 1901 rcu_tasks_trace.lazy_jiffies = msecs_to_jiffies(rcu_tasks_trace_lazy_ms); 1902 rcu_tasks_trace.pregp_func = rcu_tasks_trace_pregp_step; 1903 rcu_tasks_trace.postscan_func = rcu_tasks_trace_postscan; 1904 rcu_tasks_trace.holdouts_func = check_all_holdout_tasks_trace; 1905 rcu_tasks_trace.postgp_func = rcu_tasks_trace_postgp; 1906 rcu_spawn_tasks_kthread_generic(&rcu_tasks_trace); 1907 return 0; 1908 } 1909 1910 #if !defined(CONFIG_TINY_RCU) 1911 void show_rcu_tasks_trace_gp_kthread(void) 1912 { 1913 char buf[64]; 1914 1915 sprintf(buf, "N%lu h:%lu/%lu/%lu", 1916 data_race(n_trc_holdouts), 1917 data_race(n_heavy_reader_ofl_updates), 1918 data_race(n_heavy_reader_updates), 1919 data_race(n_heavy_reader_attempts)); 1920 show_rcu_tasks_generic_gp_kthread(&rcu_tasks_trace, buf); 1921 } 1922 EXPORT_SYMBOL_GPL(show_rcu_tasks_trace_gp_kthread); 1923 #endif // !defined(CONFIG_TINY_RCU) 1924 1925 struct task_struct *get_rcu_tasks_trace_gp_kthread(void) 1926 { 1927 return rcu_tasks_trace.kthread_ptr; 1928 } 1929 EXPORT_SYMBOL_GPL(get_rcu_tasks_trace_gp_kthread); 1930 1931 #else /* #ifdef CONFIG_TASKS_TRACE_RCU */ 1932 static void exit_tasks_rcu_finish_trace(struct task_struct *t) { } 1933 #endif /* #else #ifdef CONFIG_TASKS_TRACE_RCU */ 1934 1935 #ifndef CONFIG_TINY_RCU 1936 void show_rcu_tasks_gp_kthreads(void) 1937 { 1938 show_rcu_tasks_classic_gp_kthread(); 1939 show_rcu_tasks_rude_gp_kthread(); 1940 show_rcu_tasks_trace_gp_kthread(); 1941 } 1942 #endif /* #ifndef CONFIG_TINY_RCU */ 1943 1944 #ifdef CONFIG_PROVE_RCU 1945 struct rcu_tasks_test_desc { 1946 struct rcu_head rh; 1947 const char *name; 1948 bool notrun; 1949 unsigned long runstart; 1950 }; 1951 1952 static struct rcu_tasks_test_desc tests[] = { 1953 { 1954 .name = "call_rcu_tasks()", 1955 /* If not defined, the test is skipped. */ 1956 .notrun = IS_ENABLED(CONFIG_TASKS_RCU), 1957 }, 1958 { 1959 .name = "call_rcu_tasks_rude()", 1960 /* If not defined, the test is skipped. */ 1961 .notrun = IS_ENABLED(CONFIG_TASKS_RUDE_RCU), 1962 }, 1963 { 1964 .name = "call_rcu_tasks_trace()", 1965 /* If not defined, the test is skipped. */ 1966 .notrun = IS_ENABLED(CONFIG_TASKS_TRACE_RCU) 1967 } 1968 }; 1969 1970 static void test_rcu_tasks_callback(struct rcu_head *rhp) 1971 { 1972 struct rcu_tasks_test_desc *rttd = 1973 container_of(rhp, struct rcu_tasks_test_desc, rh); 1974 1975 pr_info("Callback from %s invoked.\n", rttd->name); 1976 1977 rttd->notrun = false; 1978 } 1979 1980 static void rcu_tasks_initiate_self_tests(void) 1981 { 1982 pr_info("Running RCU-tasks wait API self tests\n"); 1983 #ifdef CONFIG_TASKS_RCU 1984 tests[0].runstart = jiffies; 1985 synchronize_rcu_tasks(); 1986 call_rcu_tasks(&tests[0].rh, test_rcu_tasks_callback); 1987 #endif 1988 1989 #ifdef CONFIG_TASKS_RUDE_RCU 1990 tests[1].runstart = jiffies; 1991 synchronize_rcu_tasks_rude(); 1992 call_rcu_tasks_rude(&tests[1].rh, test_rcu_tasks_callback); 1993 #endif 1994 1995 #ifdef CONFIG_TASKS_TRACE_RCU 1996 tests[2].runstart = jiffies; 1997 synchronize_rcu_tasks_trace(); 1998 call_rcu_tasks_trace(&tests[2].rh, test_rcu_tasks_callback); 1999 #endif 2000 } 2001 2002 /* 2003 * Return: 0 - test passed 2004 * 1 - test failed, but have not timed out yet 2005 * -1 - test failed and timed out 2006 */ 2007 static int rcu_tasks_verify_self_tests(void) 2008 { 2009 int ret = 0; 2010 int i; 2011 unsigned long bst = rcu_task_stall_timeout; 2012 2013 if (bst <= 0 || bst > RCU_TASK_BOOT_STALL_TIMEOUT) 2014 bst = RCU_TASK_BOOT_STALL_TIMEOUT; 2015 for (i = 0; i < ARRAY_SIZE(tests); i++) { 2016 while (tests[i].notrun) { // still hanging. 2017 if (time_after(jiffies, tests[i].runstart + bst)) { 2018 pr_err("%s has failed boot-time tests.\n", tests[i].name); 2019 ret = -1; 2020 break; 2021 } 2022 ret = 1; 2023 break; 2024 } 2025 } 2026 WARN_ON(ret < 0); 2027 2028 return ret; 2029 } 2030 2031 /* 2032 * Repeat the rcu_tasks_verify_self_tests() call once every second until the 2033 * test passes or has timed out. 2034 */ 2035 static struct delayed_work rcu_tasks_verify_work; 2036 static void rcu_tasks_verify_work_fn(struct work_struct *work __maybe_unused) 2037 { 2038 int ret = rcu_tasks_verify_self_tests(); 2039 2040 if (ret <= 0) 2041 return; 2042 2043 /* Test fails but not timed out yet, reschedule another check */ 2044 schedule_delayed_work(&rcu_tasks_verify_work, HZ); 2045 } 2046 2047 static int rcu_tasks_verify_schedule_work(void) 2048 { 2049 INIT_DELAYED_WORK(&rcu_tasks_verify_work, rcu_tasks_verify_work_fn); 2050 rcu_tasks_verify_work_fn(NULL); 2051 return 0; 2052 } 2053 late_initcall(rcu_tasks_verify_schedule_work); 2054 #else /* #ifdef CONFIG_PROVE_RCU */ 2055 static void rcu_tasks_initiate_self_tests(void) { } 2056 #endif /* #else #ifdef CONFIG_PROVE_RCU */ 2057 2058 void __init rcu_init_tasks_generic(void) 2059 { 2060 #ifdef CONFIG_TASKS_RCU 2061 rcu_spawn_tasks_kthread(); 2062 #endif 2063 2064 #ifdef CONFIG_TASKS_RUDE_RCU 2065 rcu_spawn_tasks_rude_kthread(); 2066 #endif 2067 2068 #ifdef CONFIG_TASKS_TRACE_RCU 2069 rcu_spawn_tasks_trace_kthread(); 2070 #endif 2071 2072 // Run the self-tests. 2073 rcu_tasks_initiate_self_tests(); 2074 } 2075 2076 #else /* #ifdef CONFIG_TASKS_RCU_GENERIC */ 2077 static inline void rcu_tasks_bootup_oddness(void) {} 2078 #endif /* #else #ifdef CONFIG_TASKS_RCU_GENERIC */ 2079