1 /* SPDX-License-Identifier: GPL-2.0+ */ 2 /* 3 * Read-Copy Update mechanism for mutual exclusion (tree-based version) 4 * Internal non-public definitions that provide either classic 5 * or preemptible semantics. 6 * 7 * Copyright Red Hat, 2009 8 * Copyright IBM Corporation, 2009 9 * Copyright SUSE, 2021 10 * 11 * Author: Ingo Molnar <mingo@elte.hu> 12 * Paul E. McKenney <paulmck@linux.ibm.com> 13 * Frederic Weisbecker <frederic@kernel.org> 14 */ 15 16 #ifdef CONFIG_RCU_NOCB_CPU 17 static cpumask_var_t rcu_nocb_mask; /* CPUs to have callbacks offloaded. */ 18 static bool __read_mostly rcu_nocb_poll; /* Offload kthread are to poll. */ 19 20 static inline bool rcu_current_is_nocb_kthread(struct rcu_data *rdp) 21 { 22 /* Race on early boot between thread creation and assignment */ 23 if (!rdp->nocb_cb_kthread || !rdp->nocb_gp_kthread) 24 return true; 25 26 if (current == rdp->nocb_cb_kthread || current == rdp->nocb_gp_kthread) 27 if (in_task()) 28 return true; 29 return false; 30 } 31 32 /* 33 * Offload callback processing from the boot-time-specified set of CPUs 34 * specified by rcu_nocb_mask. For the CPUs in the set, there are kthreads 35 * created that pull the callbacks from the corresponding CPU, wait for 36 * a grace period to elapse, and invoke the callbacks. These kthreads 37 * are organized into GP kthreads, which manage incoming callbacks, wait for 38 * grace periods, and awaken CB kthreads, and the CB kthreads, which only 39 * invoke callbacks. Each GP kthread invokes its own CBs. The no-CBs CPUs 40 * do a wake_up() on their GP kthread when they insert a callback into any 41 * empty list, unless the rcu_nocb_poll boot parameter has been specified, 42 * in which case each kthread actively polls its CPU. (Which isn't so great 43 * for energy efficiency, but which does reduce RCU's overhead on that CPU.) 44 * 45 * This is intended to be used in conjunction with Frederic Weisbecker's 46 * adaptive-idle work, which would seriously reduce OS jitter on CPUs 47 * running CPU-bound user-mode computations. 48 * 49 * Offloading of callbacks can also be used as an energy-efficiency 50 * measure because CPUs with no RCU callbacks queued are more aggressive 51 * about entering dyntick-idle mode. 52 */ 53 54 55 /* 56 * Parse the boot-time rcu_nocb_mask CPU list from the kernel parameters. 57 * If the list is invalid, a warning is emitted and all CPUs are offloaded. 58 */ 59 static int __init rcu_nocb_setup(char *str) 60 { 61 alloc_bootmem_cpumask_var(&rcu_nocb_mask); 62 if (*str == '=') { 63 if (cpulist_parse(++str, rcu_nocb_mask)) { 64 pr_warn("rcu_nocbs= bad CPU range, all CPUs set\n"); 65 cpumask_setall(rcu_nocb_mask); 66 } 67 } 68 rcu_state.nocb_is_setup = true; 69 return 1; 70 } 71 __setup("rcu_nocbs", rcu_nocb_setup); 72 73 static int __init parse_rcu_nocb_poll(char *arg) 74 { 75 rcu_nocb_poll = true; 76 return 1; 77 } 78 __setup("rcu_nocb_poll", parse_rcu_nocb_poll); 79 80 /* 81 * Don't bother bypassing ->cblist if the call_rcu() rate is low. 82 * After all, the main point of bypassing is to avoid lock contention 83 * on ->nocb_lock, which only can happen at high call_rcu() rates. 84 */ 85 static int nocb_nobypass_lim_per_jiffy = 16 * 1000 / HZ; 86 module_param(nocb_nobypass_lim_per_jiffy, int, 0); 87 88 /* 89 * Acquire the specified rcu_data structure's ->nocb_bypass_lock. If the 90 * lock isn't immediately available, perform minimal sanity check. 91 */ 92 static void rcu_nocb_bypass_lock(struct rcu_data *rdp) 93 __acquires(&rdp->nocb_bypass_lock) 94 { 95 lockdep_assert_irqs_disabled(); 96 if (raw_spin_trylock(&rdp->nocb_bypass_lock)) 97 return; 98 /* 99 * Contention expected only when local enqueue collide with 100 * remote flush from kthreads. 101 */ 102 WARN_ON_ONCE(smp_processor_id() != rdp->cpu); 103 raw_spin_lock(&rdp->nocb_bypass_lock); 104 } 105 106 /* 107 * Conditionally acquire the specified rcu_data structure's 108 * ->nocb_bypass_lock. 109 */ 110 static bool rcu_nocb_bypass_trylock(struct rcu_data *rdp) 111 { 112 lockdep_assert_irqs_disabled(); 113 return raw_spin_trylock(&rdp->nocb_bypass_lock); 114 } 115 116 /* 117 * Release the specified rcu_data structure's ->nocb_bypass_lock. 118 */ 119 static void rcu_nocb_bypass_unlock(struct rcu_data *rdp) 120 __releases(&rdp->nocb_bypass_lock) 121 { 122 lockdep_assert_irqs_disabled(); 123 raw_spin_unlock(&rdp->nocb_bypass_lock); 124 } 125 126 /* 127 * Acquire the specified rcu_data structure's ->nocb_lock, but only 128 * if it corresponds to a no-CBs CPU. 129 */ 130 static void rcu_nocb_lock(struct rcu_data *rdp) 131 { 132 lockdep_assert_irqs_disabled(); 133 if (!rcu_rdp_is_offloaded(rdp)) 134 return; 135 raw_spin_lock(&rdp->nocb_lock); 136 } 137 138 /* 139 * Release the specified rcu_data structure's ->nocb_lock, but only 140 * if it corresponds to a no-CBs CPU. 141 */ 142 static void rcu_nocb_unlock(struct rcu_data *rdp) 143 { 144 if (rcu_rdp_is_offloaded(rdp)) { 145 lockdep_assert_irqs_disabled(); 146 raw_spin_unlock(&rdp->nocb_lock); 147 } 148 } 149 150 /* 151 * Release the specified rcu_data structure's ->nocb_lock and restore 152 * interrupts, but only if it corresponds to a no-CBs CPU. 153 */ 154 static void rcu_nocb_unlock_irqrestore(struct rcu_data *rdp, 155 unsigned long flags) 156 { 157 if (rcu_rdp_is_offloaded(rdp)) { 158 lockdep_assert_irqs_disabled(); 159 raw_spin_unlock_irqrestore(&rdp->nocb_lock, flags); 160 } else { 161 local_irq_restore(flags); 162 } 163 } 164 165 /* Lockdep check that ->cblist may be safely accessed. */ 166 static void rcu_lockdep_assert_cblist_protected(struct rcu_data *rdp) 167 { 168 lockdep_assert_irqs_disabled(); 169 if (rcu_rdp_is_offloaded(rdp)) 170 lockdep_assert_held(&rdp->nocb_lock); 171 } 172 173 static void rcu_nocb_cleanup_wake(struct swait_queue_head *sq) 174 { 175 if (swait_active(sq)) 176 swake_up_all(sq); 177 } 178 179 /* 180 * Wake up any no-CBs CPUs' kthreads that were waiting on the just-ended 181 * grace period. 182 */ 183 static void rcu_nocb_gp_cleanup(struct swait_queue_head *sq) 184 { 185 /* 186 * swait_active() can be checked first because of the following 187 * ordering, which pairs the smp_mb() in rcu_gp_cleanup() against 188 * the implicit barrier in prepare_to_swait()/set_current_state() 189 * on the nocb_gp_wait() side: 190 * 191 * rcu_gp_cleanup() nocb_gp_wait() 192 * --------------- -------------- 193 * WRITE_ONCE(root->gp_seq, new_gp_seq); swait_event_interruptible_exclusive(sq) 194 * smp_mb() prepare_to_swait() 195 * if swait_active(sq) list_add_tail(...) 196 * swake_up_all(sq) set_current_state() 197 * smp_mb() 198 * if (poll_state_synchronize_rcu_full()) 199 * ... 200 */ 201 rcu_nocb_cleanup_wake(sq); 202 } 203 204 static struct swait_queue_head *rcu_nocb_gp_get(struct rcu_node *rnp) 205 { 206 return &rnp->nocb_gp_wq[rcu_seq_ctr(rnp->gp_seq) & 0x1]; 207 } 208 209 static void rcu_init_one_nocb(struct rcu_node *rnp) 210 { 211 init_swait_queue_head(&rnp->nocb_gp_wq[0]); 212 init_swait_queue_head(&rnp->nocb_gp_wq[1]); 213 } 214 215 /* 216 * Wake NOCB rcuog kthreads on a leaf node so that they can advance 217 * callbacks that were waiting for the just-completed expedited GP. 218 * 219 * The rcuog kthread waiting for a grace period sleeps on the per-leaf-node 220 * ->nocb_gp_wq[] (not on its rdp_gp's ->nocb_gp_wq, which only signals that 221 * new callbacks have shown up), so this is the queue that must be woken. 222 * Both the even and odd waitqueues are woken because the expedited sequence 223 * does not share parity with the normal ->gp_seq the waiter indexed with. 224 */ 225 static void rcu_nocb_exp_cleanup(struct rcu_node *rnp) 226 { 227 /* 228 * swait_active() can be checked first because of the following 229 * ordering, which pairs the smp_mb() in rcu_exp_wait_wake() against 230 * the implicit barrier in prepare_to_swait()/set_current_state() 231 * on the nocb_gp_wait() side: 232 * 233 * rcu_exp_wait_wake() nocb_gp_wait() 234 * --------------- -------------- 235 * rcu_seq_end(&rcu_state.expedited_sequence); swait_event_interruptible_exclusive(sq) 236 * smp_mb() prepare_to_swait() 237 * if swait_active(sq) list_add_tail(...) 238 * swake_up_all(sq) set_current_state() 239 * smp_mb() 240 * if (poll_state_synchronize_rcu_full()) 241 * ... 242 */ 243 rcu_nocb_cleanup_wake(&rnp->nocb_gp_wq[0]); 244 rcu_nocb_cleanup_wake(&rnp->nocb_gp_wq[1]); 245 } 246 247 /* Clear any pending deferred wakeup timer (nocb_gp_lock must be held). */ 248 static void nocb_defer_wakeup_cancel(struct rcu_data *rdp_gp) 249 { 250 if (rdp_gp->nocb_defer_wakeup > RCU_NOCB_WAKE_NOT) { 251 WRITE_ONCE(rdp_gp->nocb_defer_wakeup, RCU_NOCB_WAKE_NOT); 252 timer_delete(&rdp_gp->nocb_timer); 253 } 254 } 255 256 static bool __wake_nocb_gp(struct rcu_data *rdp_gp, 257 struct rcu_data *rdp, 258 unsigned long flags) 259 __releases(rdp_gp->nocb_gp_lock) 260 { 261 bool needwake = false; 262 263 if (!READ_ONCE(rdp_gp->nocb_gp_kthread)) { 264 raw_spin_unlock_irqrestore(&rdp_gp->nocb_gp_lock, flags); 265 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 266 TPS("AlreadyAwake")); 267 return false; 268 } 269 270 nocb_defer_wakeup_cancel(rdp_gp); 271 272 if (READ_ONCE(rdp_gp->nocb_gp_sleep)) { 273 WRITE_ONCE(rdp_gp->nocb_gp_sleep, false); 274 needwake = true; 275 } 276 raw_spin_unlock_irqrestore(&rdp_gp->nocb_gp_lock, flags); 277 if (needwake) { 278 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("DoWake")); 279 swake_up_one(&rdp_gp->nocb_gp_wq); 280 } 281 282 return needwake; 283 } 284 285 /* 286 * Kick the GP kthread for this NOCB group. 287 */ 288 static bool wake_nocb_gp(struct rcu_data *rdp) 289 { 290 unsigned long flags; 291 struct rcu_data *rdp_gp = rdp->nocb_gp_rdp; 292 293 raw_spin_lock_irqsave(&rdp_gp->nocb_gp_lock, flags); 294 return __wake_nocb_gp(rdp_gp, rdp, flags); 295 } 296 297 #ifdef CONFIG_RCU_LAZY 298 /* 299 * LAZY_FLUSH_JIFFIES decides the maximum amount of time that 300 * can elapse before lazy callbacks are flushed. Lazy callbacks 301 * could be flushed much earlier for a number of other reasons 302 * however, LAZY_FLUSH_JIFFIES will ensure no lazy callbacks are 303 * left unsubmitted to RCU after those many jiffies. 304 */ 305 #define LAZY_FLUSH_JIFFIES (10 * HZ) 306 static unsigned long jiffies_lazy_flush = LAZY_FLUSH_JIFFIES; 307 308 // To be called only from test code. 309 void rcu_set_jiffies_lazy_flush(unsigned long jif) 310 { 311 jiffies_lazy_flush = jif; 312 } 313 EXPORT_SYMBOL(rcu_set_jiffies_lazy_flush); 314 315 unsigned long rcu_get_jiffies_lazy_flush(void) 316 { 317 return jiffies_lazy_flush; 318 } 319 EXPORT_SYMBOL(rcu_get_jiffies_lazy_flush); 320 #endif 321 322 /* 323 * Arrange to wake the GP kthread for this NOCB group at some future 324 * time when it is safe to do so. 325 */ 326 static void wake_nocb_gp_defer(struct rcu_data *rdp, int waketype, 327 const char *reason) 328 { 329 unsigned long flags; 330 struct rcu_data *rdp_gp = rdp->nocb_gp_rdp; 331 332 raw_spin_lock_irqsave(&rdp_gp->nocb_gp_lock, flags); 333 334 /* 335 * Bypass wakeup overrides previous deferments. In case of 336 * callback storms, no need to wake up too early. 337 */ 338 if (waketype == RCU_NOCB_WAKE_LAZY && 339 rdp_gp->nocb_defer_wakeup == RCU_NOCB_WAKE_NOT) { 340 mod_timer(&rdp_gp->nocb_timer, jiffies + rcu_get_jiffies_lazy_flush()); 341 WRITE_ONCE(rdp_gp->nocb_defer_wakeup, waketype); 342 } else if (waketype == RCU_NOCB_WAKE_BYPASS) { 343 mod_timer(&rdp_gp->nocb_timer, jiffies + 2); 344 WRITE_ONCE(rdp_gp->nocb_defer_wakeup, waketype); 345 } else { 346 if (rdp_gp->nocb_defer_wakeup < RCU_NOCB_WAKE) 347 mod_timer(&rdp_gp->nocb_timer, jiffies + 1); 348 if (rdp_gp->nocb_defer_wakeup < waketype) 349 WRITE_ONCE(rdp_gp->nocb_defer_wakeup, waketype); 350 } 351 352 raw_spin_unlock_irqrestore(&rdp_gp->nocb_gp_lock, flags); 353 354 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, reason); 355 } 356 357 /* 358 * Flush the ->nocb_bypass queue into ->cblist, enqueuing rhp if non-NULL. 359 * However, if there is a callback to be enqueued and if ->nocb_bypass 360 * proves to be initially empty, just return false because the no-CB GP 361 * kthread may need to be awakened in this case. 362 * 363 * Return true if there was something to be flushed and it succeeded, otherwise 364 * false. 365 * 366 * Note that this function always returns true if rhp is NULL. 367 */ 368 static bool rcu_nocb_do_flush_bypass(struct rcu_data *rdp, struct rcu_head *rhp_in, 369 unsigned long j, bool lazy) 370 { 371 struct rcu_cblist rcl; 372 struct rcu_head *rhp = rhp_in; 373 374 WARN_ON_ONCE(!rcu_rdp_is_offloaded(rdp)); 375 rcu_lockdep_assert_cblist_protected(rdp); 376 lockdep_assert_held(&rdp->nocb_bypass_lock); 377 if (rhp && !rcu_cblist_n_cbs(&rdp->nocb_bypass)) { 378 raw_spin_unlock(&rdp->nocb_bypass_lock); 379 return false; 380 } 381 /* Note: ->cblist.len already accounts for ->nocb_bypass contents. */ 382 if (rhp) 383 rcu_segcblist_inc_len(&rdp->cblist); /* Must precede enqueue. */ 384 385 /* 386 * If the new CB requested was a lazy one, queue it onto the main 387 * ->cblist so that we can take advantage of the grace-period that will 388 * happen regardless. But queue it onto the bypass list first so that 389 * the lazy CB is ordered with the existing CBs in the bypass list. 390 */ 391 if (lazy && rhp) { 392 rcu_cblist_enqueue(&rdp->nocb_bypass, rhp); 393 rhp = NULL; 394 } 395 rcu_cblist_flush_enqueue(&rcl, &rdp->nocb_bypass, rhp); 396 WRITE_ONCE(rdp->lazy_len, 0); 397 398 rcu_segcblist_insert_pend_cbs(&rdp->cblist, &rcl); 399 WRITE_ONCE(rdp->nocb_bypass_first, j); 400 rcu_nocb_bypass_unlock(rdp); 401 return true; 402 } 403 404 /* 405 * Flush the ->nocb_bypass queue into ->cblist, enqueuing rhp if non-NULL. 406 * However, if there is a callback to be enqueued and if ->nocb_bypass 407 * proves to be initially empty, just return false because the no-CB GP 408 * kthread may need to be awakened in this case. 409 * 410 * Note that this function always returns true if rhp is NULL. 411 */ 412 static bool rcu_nocb_flush_bypass(struct rcu_data *rdp, struct rcu_head *rhp, 413 unsigned long j, bool lazy) 414 { 415 if (!rcu_rdp_is_offloaded(rdp)) 416 return true; 417 rcu_lockdep_assert_cblist_protected(rdp); 418 rcu_nocb_bypass_lock(rdp); 419 return rcu_nocb_do_flush_bypass(rdp, rhp, j, lazy); 420 } 421 422 /* 423 * If the ->nocb_bypass_lock is immediately available, flush the 424 * ->nocb_bypass queue into ->cblist. 425 */ 426 static void rcu_nocb_try_flush_bypass(struct rcu_data *rdp, unsigned long j) 427 { 428 rcu_lockdep_assert_cblist_protected(rdp); 429 if (!rcu_rdp_is_offloaded(rdp) || 430 !rcu_nocb_bypass_trylock(rdp)) 431 return; 432 WARN_ON_ONCE(!rcu_nocb_do_flush_bypass(rdp, NULL, j, false)); 433 } 434 435 /* 436 * Determine if the bypass queue needs to be flushed based on time and size. 437 * For lazy-only bypass queues, use the lazy flush timeout; otherwise flush 438 * based on jiffy advancement. The flush_faster controls flush aggressiveness. 439 */ 440 static bool nocb_bypass_needs_flush(struct rcu_data *rdp, long bypass_ncbs, 441 long lazy_ncbs, unsigned long j, 442 bool flush_faster) 443 { 444 bool bypass_is_lazy; 445 unsigned long bypass_first; 446 unsigned long flush_timeout; 447 long qhimark_thresh; 448 449 if (!bypass_ncbs) 450 return false; 451 452 qhimark_thresh = flush_faster ? qhimark : 2 * qhimark; 453 if (bypass_ncbs >= qhimark_thresh) 454 return true; 455 456 bypass_first = READ_ONCE(rdp->nocb_bypass_first); 457 bypass_is_lazy = (bypass_ncbs == lazy_ncbs); 458 459 if (bypass_is_lazy) 460 flush_timeout = rcu_get_jiffies_lazy_flush(); 461 else 462 flush_timeout = flush_faster ? 0 : 1; 463 464 return time_after(j, bypass_first + flush_timeout); 465 } 466 467 /* 468 * See whether it is appropriate to use the ->nocb_bypass list in order 469 * to control contention on ->nocb_lock. A limited number of direct 470 * enqueues are permitted into ->cblist per jiffy. If ->nocb_bypass 471 * is non-empty, further callbacks must be placed into ->nocb_bypass, 472 * otherwise rcu_barrier() breaks. Use rcu_nocb_flush_bypass() to switch 473 * back to direct use of ->cblist. However, ->nocb_bypass should not be 474 * used if ->cblist is empty, because otherwise callbacks can be stranded 475 * on ->nocb_bypass because we cannot count on the current CPU ever again 476 * invoking call_rcu(). The general rule is that if ->nocb_bypass is 477 * non-empty, the corresponding no-CBs grace-period kthread must not be 478 * in an indefinite sleep state. 479 * 480 * Finally, it is not permitted to use the bypass during early boot, 481 * as doing so would confuse the auto-initialization code. Besides 482 * which, there is no point in worrying about lock contention while 483 * there is only one CPU in operation. 484 */ 485 static bool rcu_nocb_try_bypass(struct rcu_data *rdp, struct rcu_head *rhp, 486 bool *was_alldone, unsigned long flags, 487 bool lazy) 488 { 489 unsigned long c; 490 struct rcu_gp_seq cur_gp_seq; 491 unsigned long j = jiffies; 492 long ncbs = rcu_cblist_n_cbs(&rdp->nocb_bypass); 493 long lazy_len = READ_ONCE(rdp->lazy_len); 494 bool bypass_is_lazy = (ncbs == lazy_len); 495 496 lockdep_assert_irqs_disabled(); 497 498 // Pure softirq/rcuc based processing: no bypassing, no 499 // locking. 500 if (!rcu_rdp_is_offloaded(rdp)) { 501 *was_alldone = !rcu_segcblist_pend_cbs(&rdp->cblist); 502 return false; 503 } 504 505 // Don't use ->nocb_bypass during early boot. 506 if (rcu_scheduler_active != RCU_SCHEDULER_RUNNING) { 507 rcu_nocb_lock(rdp); 508 WARN_ON_ONCE(rcu_cblist_n_cbs(&rdp->nocb_bypass)); 509 *was_alldone = !rcu_segcblist_pend_cbs(&rdp->cblist); 510 return false; 511 } 512 513 // If we have advanced to a new jiffy, reset counts to allow 514 // moving back from ->nocb_bypass to ->cblist. 515 if (j == rdp->nocb_nobypass_last) { 516 c = rdp->nocb_nobypass_count + 1; 517 } else { 518 WRITE_ONCE(rdp->nocb_nobypass_last, j); 519 c = rdp->nocb_nobypass_count - nocb_nobypass_lim_per_jiffy; 520 if (ULONG_CMP_LT(rdp->nocb_nobypass_count, 521 nocb_nobypass_lim_per_jiffy)) 522 c = 0; 523 else if (c > nocb_nobypass_lim_per_jiffy) 524 c = nocb_nobypass_lim_per_jiffy; 525 } 526 WRITE_ONCE(rdp->nocb_nobypass_count, c); 527 528 // If there hasn't yet been all that many ->cblist enqueues 529 // this jiffy, tell the caller to enqueue onto ->cblist. But flush 530 // ->nocb_bypass first. 531 // Lazy CBs throttle this back and do immediate bypass queuing. 532 if (rdp->nocb_nobypass_count < nocb_nobypass_lim_per_jiffy && !lazy) { 533 rcu_nocb_lock(rdp); 534 *was_alldone = !rcu_segcblist_pend_cbs(&rdp->cblist); 535 if (*was_alldone) 536 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 537 TPS("FirstQ")); 538 539 WARN_ON_ONCE(!rcu_nocb_flush_bypass(rdp, NULL, j, false)); 540 WARN_ON_ONCE(rcu_cblist_n_cbs(&rdp->nocb_bypass)); 541 return false; // Caller must enqueue the callback. 542 } 543 544 // If ->nocb_bypass has been used too long or is too full, 545 // flush ->nocb_bypass to ->cblist. 546 if (nocb_bypass_needs_flush(rdp, ncbs, lazy_len, j, true)) { 547 rcu_nocb_lock(rdp); 548 *was_alldone = !rcu_segcblist_pend_cbs(&rdp->cblist); 549 550 if (!rcu_nocb_flush_bypass(rdp, rhp, j, lazy)) { 551 if (*was_alldone) 552 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 553 TPS("FirstQ")); 554 WARN_ON_ONCE(rcu_cblist_n_cbs(&rdp->nocb_bypass)); 555 return false; // Caller must enqueue the callback. 556 } 557 if (j != rdp->nocb_gp_adv_time && 558 rcu_segcblist_nextgp(&rdp->cblist, &cur_gp_seq) && 559 poll_state_synchronize_rcu_full(&cur_gp_seq)) { 560 rcu_advance_cbs_nowake(rdp->mynode, rdp); 561 rdp->nocb_gp_adv_time = j; 562 } 563 564 // The flush succeeded and we moved CBs into the regular list. 565 // Don't wait for the wake up timer as it may be too far ahead. 566 // Wake up the GP thread now instead, if the cblist was empty. 567 __call_rcu_nocb_wake(rdp, *was_alldone, flags); 568 569 return true; // Callback already enqueued. 570 } 571 572 // We need to use the bypass. 573 rcu_nocb_bypass_lock(rdp); 574 ncbs = rcu_cblist_n_cbs(&rdp->nocb_bypass); 575 rcu_segcblist_inc_len(&rdp->cblist); /* Must precede enqueue. */ 576 rcu_cblist_enqueue(&rdp->nocb_bypass, rhp); 577 578 if (lazy) 579 WRITE_ONCE(rdp->lazy_len, rdp->lazy_len + 1); 580 581 if (!ncbs) { 582 WRITE_ONCE(rdp->nocb_bypass_first, j); 583 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("FirstBQ")); 584 } 585 rcu_nocb_bypass_unlock(rdp); 586 587 // A wake up of the grace period kthread or timer adjustment 588 // needs to be done only if: 589 // 1. Bypass list was fully empty before (this is the first 590 // bypass list entry), or: 591 // 2. Both of these conditions are met: 592 // a. The bypass list previously had only lazy CBs, and: 593 // b. The new CB is non-lazy. 594 if (!ncbs || (bypass_is_lazy && !lazy)) { 595 // No-CBs GP kthread might be indefinitely asleep, if so, wake. 596 rcu_nocb_lock(rdp); // Rare during call_rcu() flood. 597 if (!rcu_segcblist_pend_cbs(&rdp->cblist)) { 598 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 599 TPS("FirstBQwake")); 600 __call_rcu_nocb_wake(rdp, true, flags); 601 } else { 602 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 603 TPS("FirstBQnoWake")); 604 rcu_nocb_unlock(rdp); 605 } 606 } 607 return true; // Callback already enqueued. 608 } 609 610 /* 611 * Awaken the no-CBs grace-period kthread if needed due to it legitimately 612 * being asleep. 613 */ 614 static void __call_rcu_nocb_wake(struct rcu_data *rdp, bool was_alldone, 615 unsigned long flags) 616 __releases(rdp->nocb_lock) 617 { 618 long bypass_len; 619 long lazy_len; 620 long len; 621 struct task_struct *t; 622 623 // If we are being polled or there is no kthread, just leave. 624 t = READ_ONCE(rdp->nocb_gp_kthread); 625 if (rcu_nocb_poll || !t) { 626 rcu_nocb_unlock(rdp); 627 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 628 TPS("WakeNotPoll")); 629 return; 630 } 631 // Need to actually to a wakeup. 632 len = rcu_segcblist_n_cbs(&rdp->cblist); 633 bypass_len = rcu_cblist_n_cbs(&rdp->nocb_bypass); 634 lazy_len = READ_ONCE(rdp->lazy_len); 635 if (was_alldone) { 636 rdp->qlen_last_fqs_check = len; 637 rcu_nocb_unlock(rdp); 638 // Only lazy CBs in bypass list 639 if (lazy_len && bypass_len == lazy_len) { 640 wake_nocb_gp_defer(rdp, RCU_NOCB_WAKE_LAZY, 641 TPS("WakeLazy")); 642 } else if (!irqs_disabled_flags(flags)) { 643 /* ... if queue was empty ... */ 644 wake_nocb_gp(rdp); 645 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 646 TPS("WakeEmpty")); 647 } else { 648 wake_nocb_gp_defer(rdp, RCU_NOCB_WAKE, 649 TPS("WakeEmptyIsDeferred")); 650 } 651 652 return; 653 } 654 655 rcu_nocb_unlock(rdp); 656 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("WakeNot")); 657 } 658 659 static void call_rcu_nocb(struct rcu_data *rdp, struct rcu_head *head, 660 unsigned long flags, bool lazy) 661 { 662 bool was_alldone; 663 664 if (!rcu_nocb_try_bypass(rdp, head, &was_alldone, flags, lazy)) { 665 /* Not enqueued on bypass but locked, do regular enqueue */ 666 rcutree_enqueue(rdp, head); 667 __call_rcu_nocb_wake(rdp, was_alldone, flags); /* unlocks */ 668 } 669 } 670 671 static void nocb_gp_toggle_rdp(struct rcu_data *rdp_gp, struct rcu_data *rdp) 672 { 673 struct rcu_segcblist *cblist = &rdp->cblist; 674 unsigned long flags; 675 676 /* 677 * Locking orders future de-offloaded callbacks enqueue against previous 678 * handling of this rdp. Ie: Make sure rcuog is done with this rdp before 679 * deoffloaded callbacks can be enqueued. 680 */ 681 raw_spin_lock_irqsave(&rdp->nocb_lock, flags); 682 if (!rcu_segcblist_test_flags(cblist, SEGCBLIST_OFFLOADED)) { 683 /* 684 * Offloading. Set our flag and notify the offload worker. 685 * We will handle this rdp until it ever gets de-offloaded. 686 */ 687 list_add_tail(&rdp->nocb_entry_rdp, &rdp_gp->nocb_head_rdp); 688 rcu_segcblist_set_flags(cblist, SEGCBLIST_OFFLOADED); 689 } else { 690 /* 691 * De-offloading. Clear our flag and notify the de-offload worker. 692 * We will ignore this rdp until it ever gets re-offloaded. 693 */ 694 list_del(&rdp->nocb_entry_rdp); 695 rcu_segcblist_clear_flags(cblist, SEGCBLIST_OFFLOADED); 696 } 697 raw_spin_unlock_irqrestore(&rdp->nocb_lock, flags); 698 } 699 700 static void nocb_gp_sleep(struct rcu_data *my_rdp, int cpu) 701 { 702 trace_rcu_nocb_wake(rcu_state.name, cpu, TPS("Sleep")); 703 swait_event_interruptible_exclusive(my_rdp->nocb_gp_wq, 704 !READ_ONCE(my_rdp->nocb_gp_sleep)); 705 trace_rcu_nocb_wake(rcu_state.name, cpu, TPS("EndSleep")); 706 } 707 708 /* 709 * No-CBs GP kthreads come here to wait for additional callbacks to show up 710 * or for grace periods to end. 711 */ 712 static noinline_for_stack void nocb_gp_wait(struct rcu_data *my_rdp) 713 { 714 bool bypass = false; 715 int __maybe_unused cpu = my_rdp->cpu; 716 unsigned long flags; 717 bool gotcbs = false; 718 unsigned long j = jiffies; 719 bool lazy = false; 720 bool needwait_gp = false; // This prevents actual uninitialized use. 721 bool needwake; 722 bool needwake_gp; 723 struct rcu_data *rdp, *rdp_toggling = NULL; 724 struct rcu_node *rnp; 725 struct rcu_gp_seq wait_gp_seq = {0}; // Suppress "use uninitialized" warning. 726 bool wasempty = false; 727 728 /* 729 * Each pass through the following loop checks for CBs and for the 730 * nearest grace period (if any) to wait for next. The CB kthreads 731 * and the global grace-period kthread are awakened if needed. 732 */ 733 WARN_ON_ONCE(my_rdp->nocb_gp_rdp != my_rdp); 734 /* 735 * An rcu_data structure is removed from the list after its 736 * CPU is de-offloaded and added to the list before that CPU is 737 * (re-)offloaded. If the following loop happens to be referencing 738 * that rcu_data structure during the time that the corresponding 739 * CPU is de-offloaded and then immediately re-offloaded, this 740 * loop's rdp pointer will be carried to the end of the list by 741 * the resulting pair of list operations. This can cause the loop 742 * to skip over some of the rcu_data structures that were supposed 743 * to have been scanned. Fortunately a new iteration through the 744 * entire loop is forced after a given CPU's rcu_data structure 745 * is added to the list, so the skipped-over rcu_data structures 746 * won't be ignored for long. 747 */ 748 list_for_each_entry(rdp, &my_rdp->nocb_head_rdp, nocb_entry_rdp) { 749 struct rcu_gp_seq cur_gp_seq; 750 long bypass_ncbs; 751 bool flush_bypass = false; 752 long lazy_ncbs; 753 754 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("Check")); 755 rcu_nocb_lock_irqsave(rdp, flags); 756 lockdep_assert_held(&rdp->nocb_lock); 757 bypass_ncbs = rcu_cblist_n_cbs(&rdp->nocb_bypass); 758 lazy_ncbs = READ_ONCE(rdp->lazy_len); 759 760 flush_bypass = nocb_bypass_needs_flush(rdp, bypass_ncbs, lazy_ncbs, j, false); 761 if (!flush_bypass && !bypass_ncbs && rcu_segcblist_empty(&rdp->cblist)) { 762 rcu_nocb_unlock_irqrestore(rdp, flags); 763 continue; /* No callbacks here, try next. */ 764 } 765 766 if (flush_bypass) { 767 // Bypass full or old, so flush it. 768 (void)rcu_nocb_try_flush_bypass(rdp, j); 769 bypass_ncbs = rcu_cblist_n_cbs(&rdp->nocb_bypass); 770 lazy_ncbs = READ_ONCE(rdp->lazy_len); 771 } 772 773 if (bypass_ncbs) { 774 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 775 bypass_ncbs == lazy_ncbs ? TPS("Lazy") : TPS("Bypass")); 776 if (bypass_ncbs == lazy_ncbs) 777 lazy = true; 778 else 779 bypass = true; 780 } 781 rnp = rdp->mynode; 782 783 // Advance callbacks if helpful and low contention. 784 needwake_gp = false; 785 if (!rcu_segcblist_restempty(&rdp->cblist, 786 RCU_NEXT_READY_TAIL) || 787 (rcu_segcblist_nextgp(&rdp->cblist, &cur_gp_seq) && 788 poll_state_synchronize_rcu_full(&cur_gp_seq))) { 789 raw_spin_lock_rcu_node(rnp); /* irqs disabled. */ 790 needwake_gp = rcu_advance_cbs(rnp, rdp); 791 wasempty = rcu_segcblist_restempty(&rdp->cblist, 792 RCU_NEXT_READY_TAIL); 793 raw_spin_unlock_rcu_node(rnp); /* irqs disabled. */ 794 } 795 WARN_ON_ONCE(wasempty && 796 !rcu_segcblist_restempty(&rdp->cblist, 797 RCU_NEXT_READY_TAIL)); 798 // Need to wait on some grace period? 799 if (rcu_segcblist_nextgp(&rdp->cblist, &cur_gp_seq)) { 800 /* 801 * Track the earliest pending normal and expedited GP 802 * across the group so the wait below can be released by 803 * whichever completes first. 804 */ 805 if (!needwait_gp || ULONG_CMP_LT(cur_gp_seq.norm, wait_gp_seq.norm)) 806 wait_gp_seq.norm = cur_gp_seq.norm; 807 if (!needwait_gp || ULONG_CMP_LT(cur_gp_seq.exp, wait_gp_seq.exp)) 808 wait_gp_seq.exp = cur_gp_seq.exp; 809 needwait_gp = true; 810 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, 811 TPS("NeedWaitGP")); 812 } 813 if (rcu_segcblist_ready_cbs(&rdp->cblist)) { 814 needwake = rdp->nocb_cb_sleep; 815 WRITE_ONCE(rdp->nocb_cb_sleep, false); 816 } else { 817 needwake = false; 818 } 819 rcu_nocb_unlock_irqrestore(rdp, flags); 820 if (needwake) { 821 swake_up_one(&rdp->nocb_cb_wq); 822 gotcbs = true; 823 } 824 if (needwake_gp) 825 rcu_gp_kthread_wake(); 826 } 827 828 my_rdp->nocb_gp_bypass = bypass; 829 my_rdp->nocb_gp_gp = needwait_gp; 830 if (needwait_gp) 831 my_rdp->nocb_gp_seq = wait_gp_seq; 832 833 // At least one child with non-empty ->nocb_bypass, so set 834 // timer in order to avoid stranding its callbacks. 835 if (!rcu_nocb_poll) { 836 // If bypass list only has lazy CBs. Add a deferred lazy wake up. 837 if (lazy && !bypass) { 838 wake_nocb_gp_defer(my_rdp, RCU_NOCB_WAKE_LAZY, 839 TPS("WakeLazyIsDeferred")); 840 // Otherwise add a deferred bypass wake up. 841 } else if (bypass) { 842 wake_nocb_gp_defer(my_rdp, RCU_NOCB_WAKE_BYPASS, 843 TPS("WakeBypassIsDeferred")); 844 } 845 } 846 847 if (rcu_nocb_poll) { 848 /* Polling, so trace if first poll in the series. */ 849 if (gotcbs) 850 trace_rcu_nocb_wake(rcu_state.name, cpu, TPS("Poll")); 851 if (list_empty(&my_rdp->nocb_head_rdp)) { 852 raw_spin_lock_irqsave(&my_rdp->nocb_gp_lock, flags); 853 if (!my_rdp->nocb_toggling_rdp) 854 WRITE_ONCE(my_rdp->nocb_gp_sleep, true); 855 raw_spin_unlock_irqrestore(&my_rdp->nocb_gp_lock, flags); 856 /* Wait for any offloading rdp */ 857 nocb_gp_sleep(my_rdp, cpu); 858 } else { 859 schedule_timeout_idle(1); 860 } 861 } else if (!needwait_gp) { 862 /* Wait for callbacks to appear. */ 863 nocb_gp_sleep(my_rdp, cpu); 864 } else { 865 rnp = my_rdp->mynode; 866 trace_rcu_this_gp(rnp, wait_gp_seq.norm, TPS("StartWait")); 867 swait_event_interruptible_exclusive( 868 rnp->nocb_gp_wq[rcu_seq_ctr(wait_gp_seq.norm) & 0x1], 869 poll_state_synchronize_rcu_full(&wait_gp_seq) || 870 !READ_ONCE(my_rdp->nocb_gp_sleep)); 871 trace_rcu_this_gp(rnp, wait_gp_seq.norm, TPS("EndWait")); 872 } 873 874 if (!rcu_nocb_poll) { 875 raw_spin_lock_irqsave(&my_rdp->nocb_gp_lock, flags); 876 // (De-)queue an rdp to/from the group if its nocb state is changing 877 rdp_toggling = my_rdp->nocb_toggling_rdp; 878 if (rdp_toggling) 879 my_rdp->nocb_toggling_rdp = NULL; 880 881 nocb_defer_wakeup_cancel(my_rdp); 882 WRITE_ONCE(my_rdp->nocb_gp_sleep, true); 883 raw_spin_unlock_irqrestore(&my_rdp->nocb_gp_lock, flags); 884 } else { 885 rdp_toggling = READ_ONCE(my_rdp->nocb_toggling_rdp); 886 if (rdp_toggling) { 887 /* 888 * Paranoid locking to make sure nocb_toggling_rdp is well 889 * reset *before* we (re)set SEGCBLIST_KTHREAD_GP or we could 890 * race with another round of nocb toggling for this rdp. 891 * Nocb locking should prevent from that already but we stick 892 * to paranoia, especially in rare path. 893 */ 894 raw_spin_lock_irqsave(&my_rdp->nocb_gp_lock, flags); 895 my_rdp->nocb_toggling_rdp = NULL; 896 raw_spin_unlock_irqrestore(&my_rdp->nocb_gp_lock, flags); 897 } 898 } 899 900 if (rdp_toggling) { 901 nocb_gp_toggle_rdp(my_rdp, rdp_toggling); 902 swake_up_one(&rdp_toggling->nocb_state_wq); 903 } 904 905 my_rdp->nocb_gp_seq.norm = -1; 906 my_rdp->nocb_gp_seq.exp = -1; 907 WARN_ON(signal_pending(current)); 908 } 909 910 /* 911 * No-CBs grace-period-wait kthread. There is one of these per group 912 * of CPUs, but only once at least one CPU in that group has come online 913 * at least once since boot. This kthread checks for newly posted 914 * callbacks from any of the CPUs it is responsible for, waits for a 915 * grace period, then awakens all of the rcu_nocb_cb_kthread() instances 916 * that then have callback-invocation work to do. 917 */ 918 static int rcu_nocb_gp_kthread(void *arg) 919 { 920 struct rcu_data *rdp = arg; 921 922 for (;;) { 923 WRITE_ONCE(rdp->nocb_gp_loops, rdp->nocb_gp_loops + 1); 924 nocb_gp_wait(rdp); 925 cond_resched_tasks_rcu_qs(); 926 } 927 return 0; 928 } 929 930 static inline bool nocb_cb_wait_cond(struct rcu_data *rdp) 931 { 932 return !READ_ONCE(rdp->nocb_cb_sleep) || kthread_should_park(); 933 } 934 935 /* 936 * Invoke any ready callbacks from the corresponding no-CBs CPU, 937 * then, if there are no more, wait for more to appear. 938 */ 939 static void nocb_cb_wait(struct rcu_data *rdp) 940 { 941 struct rcu_segcblist *cblist = &rdp->cblist; 942 struct rcu_gp_seq cur_gp_seq; 943 unsigned long flags; 944 bool needwake_gp = false; 945 struct rcu_node *rnp = rdp->mynode; 946 947 swait_event_interruptible_exclusive(rdp->nocb_cb_wq, 948 nocb_cb_wait_cond(rdp)); 949 if (kthread_should_park()) { 950 /* 951 * kthread_park() must be preceded by an rcu_barrier(). 952 * But yet another rcu_barrier() might have sneaked in between 953 * the barrier callback execution and the callbacks counter 954 * decrement. 955 */ 956 if (rdp->nocb_cb_sleep) { 957 rcu_nocb_lock_irqsave(rdp, flags); 958 WARN_ON_ONCE(rcu_segcblist_n_cbs(&rdp->cblist)); 959 rcu_nocb_unlock_irqrestore(rdp, flags); 960 kthread_parkme(); 961 } 962 } else if (READ_ONCE(rdp->nocb_cb_sleep)) { 963 WARN_ON(signal_pending(current)); 964 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("WokeEmpty")); 965 } 966 967 WARN_ON_ONCE(!rcu_rdp_is_offloaded(rdp)); 968 969 local_irq_save(flags); 970 rcu_momentary_eqs(); 971 local_irq_restore(flags); 972 /* 973 * Disable BH to provide the expected environment. Also, when 974 * transitioning to/from NOCB mode, a self-requeuing callback might 975 * be invoked from softirq. A short grace period could cause both 976 * instances of this callback would execute concurrently. 977 */ 978 local_bh_disable(); 979 rcu_do_batch(rdp); 980 local_bh_enable(); 981 lockdep_assert_irqs_enabled(); 982 rcu_nocb_lock_irqsave(rdp, flags); 983 if (rcu_segcblist_nextgp(cblist, &cur_gp_seq) && 984 poll_state_synchronize_rcu_full(&cur_gp_seq) && 985 raw_spin_trylock_rcu_node(rnp)) { /* irqs already disabled. */ 986 needwake_gp = rcu_advance_cbs(rdp->mynode, rdp); 987 raw_spin_unlock_rcu_node(rnp); /* irqs remain disabled. */ 988 } 989 990 if (!rcu_segcblist_ready_cbs(cblist)) { 991 WRITE_ONCE(rdp->nocb_cb_sleep, true); 992 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("CBSleep")); 993 } else { 994 WRITE_ONCE(rdp->nocb_cb_sleep, false); 995 } 996 997 rcu_nocb_unlock_irqrestore(rdp, flags); 998 if (needwake_gp) 999 rcu_gp_kthread_wake(); 1000 } 1001 1002 /* 1003 * Per-rcu_data kthread, but only for no-CBs CPUs. Repeatedly invoke 1004 * nocb_cb_wait() to do the dirty work. 1005 */ 1006 static int rcu_nocb_cb_kthread(void *arg) 1007 { 1008 struct rcu_data *rdp = arg; 1009 1010 // Each pass through this loop does one callback batch, and, 1011 // if there are no more ready callbacks, waits for them. 1012 for (;;) { 1013 nocb_cb_wait(rdp); 1014 cond_resched_tasks_rcu_qs(); 1015 } 1016 return 0; 1017 } 1018 1019 /* Is a deferred wakeup of rcu_nocb_kthread() required? */ 1020 static int rcu_nocb_need_deferred_wakeup(struct rcu_data *rdp, int level) 1021 { 1022 return READ_ONCE(rdp->nocb_defer_wakeup) >= level; 1023 } 1024 1025 /* Do a deferred wakeup of rcu_nocb_kthread(). */ 1026 static bool do_nocb_deferred_wakeup_common(struct rcu_data *rdp_gp, 1027 struct rcu_data *rdp, int level, 1028 unsigned long flags) 1029 __releases(rdp_gp->nocb_gp_lock) 1030 { 1031 int ret; 1032 1033 if (!rcu_nocb_need_deferred_wakeup(rdp_gp, level)) { 1034 raw_spin_unlock_irqrestore(&rdp_gp->nocb_gp_lock, flags); 1035 return false; 1036 } 1037 1038 ret = __wake_nocb_gp(rdp_gp, rdp, flags); 1039 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("DeferredWake")); 1040 1041 return ret; 1042 } 1043 1044 /* Do a deferred wakeup of rcu_nocb_kthread() from a timer handler. */ 1045 static void do_nocb_deferred_wakeup_timer(struct timer_list *t) 1046 { 1047 unsigned long flags; 1048 struct rcu_data *rdp = timer_container_of(rdp, t, nocb_timer); 1049 1050 WARN_ON_ONCE(rdp->nocb_gp_rdp != rdp); 1051 trace_rcu_nocb_wake(rcu_state.name, rdp->cpu, TPS("Timer")); 1052 1053 raw_spin_lock_irqsave(&rdp->nocb_gp_lock, flags); 1054 do_nocb_deferred_wakeup_common(rdp, rdp, RCU_NOCB_WAKE_BYPASS, flags); 1055 } 1056 1057 /* 1058 * Do a deferred wakeup of rcu_nocb_kthread() from fastpath. 1059 * This means we do an inexact common-case check. Note that if 1060 * we miss, ->nocb_timer will eventually clean things up. 1061 */ 1062 static bool do_nocb_deferred_wakeup(struct rcu_data *rdp) 1063 { 1064 unsigned long flags; 1065 struct rcu_data *rdp_gp = rdp->nocb_gp_rdp; 1066 1067 if (!rdp_gp || !rcu_nocb_need_deferred_wakeup(rdp_gp, RCU_NOCB_WAKE)) 1068 return false; 1069 1070 raw_spin_lock_irqsave(&rdp_gp->nocb_gp_lock, flags); 1071 return do_nocb_deferred_wakeup_common(rdp_gp, rdp, RCU_NOCB_WAKE, flags); 1072 } 1073 1074 void rcu_nocb_flush_deferred_wakeup(void) 1075 { 1076 do_nocb_deferred_wakeup(this_cpu_ptr(&rcu_data)); 1077 } 1078 EXPORT_SYMBOL_GPL(rcu_nocb_flush_deferred_wakeup); 1079 1080 static int rcu_nocb_queue_toggle_rdp(struct rcu_data *rdp) 1081 { 1082 struct rcu_data *rdp_gp = rdp->nocb_gp_rdp; 1083 bool wake_gp = false; 1084 unsigned long flags; 1085 1086 raw_spin_lock_irqsave(&rdp_gp->nocb_gp_lock, flags); 1087 // Queue this rdp for add/del to/from the list to iterate on rcuog 1088 WRITE_ONCE(rdp_gp->nocb_toggling_rdp, rdp); 1089 if (rdp_gp->nocb_gp_sleep) { 1090 rdp_gp->nocb_gp_sleep = false; 1091 wake_gp = true; 1092 } 1093 raw_spin_unlock_irqrestore(&rdp_gp->nocb_gp_lock, flags); 1094 1095 return wake_gp; 1096 } 1097 1098 static bool rcu_nocb_rdp_deoffload_wait_cond(struct rcu_data *rdp) 1099 { 1100 unsigned long flags; 1101 bool ret; 1102 1103 /* 1104 * Locking makes sure rcuog is done handling this rdp before deoffloaded 1105 * enqueue can happen. Also it keeps the SEGCBLIST_OFFLOADED flag stable 1106 * while the ->nocb_lock is held. 1107 */ 1108 raw_spin_lock_irqsave(&rdp->nocb_lock, flags); 1109 ret = !rcu_segcblist_test_flags(&rdp->cblist, SEGCBLIST_OFFLOADED); 1110 raw_spin_unlock_irqrestore(&rdp->nocb_lock, flags); 1111 1112 return ret; 1113 } 1114 1115 static int rcu_nocb_rdp_deoffload(struct rcu_data *rdp) 1116 { 1117 unsigned long flags; 1118 int wake_gp; 1119 struct rcu_data *rdp_gp = rdp->nocb_gp_rdp; 1120 1121 /* CPU must be offline, unless it's early boot */ 1122 WARN_ON_ONCE(cpu_online(rdp->cpu) && rdp->cpu != raw_smp_processor_id()); 1123 1124 pr_info("De-offloading %d\n", rdp->cpu); 1125 1126 /* Flush all callbacks from segcblist and bypass */ 1127 rcu_barrier(); 1128 1129 /* 1130 * Make sure the rcuoc kthread isn't in the middle of a nocb locked 1131 * sequence while offloading is deactivated, along with nocb locking. 1132 */ 1133 if (rdp->nocb_cb_kthread) 1134 kthread_park(rdp->nocb_cb_kthread); 1135 1136 rcu_nocb_lock_irqsave(rdp, flags); 1137 WARN_ON_ONCE(rcu_cblist_n_cbs(&rdp->nocb_bypass)); 1138 WARN_ON_ONCE(rcu_segcblist_n_cbs(&rdp->cblist)); 1139 rcu_nocb_unlock_irqrestore(rdp, flags); 1140 1141 wake_gp = rcu_nocb_queue_toggle_rdp(rdp); 1142 1143 mutex_lock(&rdp_gp->nocb_gp_kthread_mutex); 1144 1145 if (rdp_gp->nocb_gp_kthread) { 1146 if (wake_gp) 1147 wake_up_process(rdp_gp->nocb_gp_kthread); 1148 1149 swait_event_exclusive(rdp->nocb_state_wq, 1150 rcu_nocb_rdp_deoffload_wait_cond(rdp)); 1151 } else { 1152 /* 1153 * No kthread to clear the flags for us or remove the rdp from the nocb list 1154 * to iterate. Do it here instead. Locking doesn't look stricly necessary 1155 * but we stick to paranoia in this rare path. 1156 */ 1157 raw_spin_lock_irqsave(&rdp->nocb_lock, flags); 1158 rcu_segcblist_clear_flags(&rdp->cblist, SEGCBLIST_OFFLOADED); 1159 raw_spin_unlock_irqrestore(&rdp->nocb_lock, flags); 1160 1161 list_del(&rdp->nocb_entry_rdp); 1162 } 1163 1164 mutex_unlock(&rdp_gp->nocb_gp_kthread_mutex); 1165 1166 return 0; 1167 } 1168 1169 static bool rcu_nocb_rdp_offload_wait_cond(struct rcu_data *rdp) 1170 { 1171 unsigned long flags; 1172 bool ret; 1173 1174 raw_spin_lock_irqsave(&rdp->nocb_lock, flags); 1175 ret = rcu_segcblist_test_flags(&rdp->cblist, SEGCBLIST_OFFLOADED); 1176 raw_spin_unlock_irqrestore(&rdp->nocb_lock, flags); 1177 1178 return ret; 1179 } 1180 1181 static int rcu_nocb_rdp_offload(struct rcu_data *rdp) 1182 { 1183 int wake_gp; 1184 1185 WARN_ON_ONCE(cpu_online(rdp->cpu)); 1186 /* 1187 * For now we only support re-offload, ie: the rdp must have been 1188 * offloaded on boot first. 1189 */ 1190 if (!rdp->nocb_gp_rdp) 1191 return -EINVAL; 1192 1193 if (WARN_ON_ONCE(!rdp->nocb_gp_kthread)) 1194 return -EINVAL; 1195 1196 pr_info("Offloading %d\n", rdp->cpu); 1197 1198 WARN_ON_ONCE(rcu_cblist_n_cbs(&rdp->nocb_bypass)); 1199 WARN_ON_ONCE(rcu_segcblist_n_cbs(&rdp->cblist)); 1200 1201 wake_gp = rcu_nocb_queue_toggle_rdp(rdp); 1202 if (wake_gp) 1203 wake_up_process(rdp->nocb_gp_kthread); 1204 1205 swait_event_exclusive(rdp->nocb_state_wq, 1206 rcu_nocb_rdp_offload_wait_cond(rdp)); 1207 1208 kthread_unpark(rdp->nocb_cb_kthread); 1209 1210 return 0; 1211 } 1212 1213 /* Common helper for CPU offload/deoffload operations. */ 1214 static int rcu_nocb_cpu_toggle_offload(int cpu, bool offload) 1215 { 1216 struct rcu_data *rdp = per_cpu_ptr(&rcu_data, cpu); 1217 int ret = 0; 1218 1219 cpus_read_lock(); 1220 mutex_lock(&rcu_state.nocb_mutex); 1221 1222 /* Already in desired state, nothing to do. */ 1223 if (rcu_rdp_is_offloaded(rdp) == offload) 1224 goto out_unlock; 1225 1226 if (cpu_online(cpu)) { 1227 pr_info("NOCB: Cannot CB-%soffload online CPU %d\n", 1228 offload ? "" : "de", rdp->cpu); 1229 ret = -EINVAL; 1230 goto out_unlock; 1231 } 1232 1233 if (offload) { 1234 ret = rcu_nocb_rdp_offload(rdp); 1235 if (!ret) 1236 cpumask_set_cpu(cpu, rcu_nocb_mask); 1237 } else { 1238 ret = rcu_nocb_rdp_deoffload(rdp); 1239 if (!ret) 1240 cpumask_clear_cpu(cpu, rcu_nocb_mask); 1241 } 1242 1243 out_unlock: 1244 mutex_unlock(&rcu_state.nocb_mutex); 1245 cpus_read_unlock(); 1246 return ret; 1247 } 1248 1249 int rcu_nocb_cpu_deoffload(int cpu) 1250 { 1251 return rcu_nocb_cpu_toggle_offload(cpu, false /* de-offload */); 1252 } 1253 EXPORT_SYMBOL_GPL(rcu_nocb_cpu_deoffload); 1254 1255 int rcu_nocb_cpu_offload(int cpu) 1256 { 1257 return rcu_nocb_cpu_toggle_offload(cpu, true /* offload */); 1258 } 1259 EXPORT_SYMBOL_GPL(rcu_nocb_cpu_offload); 1260 1261 #ifdef CONFIG_RCU_LAZY 1262 static unsigned long 1263 lazy_rcu_shrink_count(struct shrinker *shrink, struct shrink_control *sc) 1264 { 1265 int cpu; 1266 unsigned long count = 0; 1267 1268 if (WARN_ON_ONCE(!cpumask_available(rcu_nocb_mask))) 1269 return 0; 1270 1271 /* Protect rcu_nocb_mask against concurrent (de-)offloading. */ 1272 if (!mutex_trylock(&rcu_state.nocb_mutex)) 1273 return 0; 1274 1275 /* Snapshot count of all CPUs */ 1276 for_each_cpu(cpu, rcu_nocb_mask) { 1277 struct rcu_data *rdp = per_cpu_ptr(&rcu_data, cpu); 1278 1279 count += READ_ONCE(rdp->lazy_len); 1280 } 1281 1282 mutex_unlock(&rcu_state.nocb_mutex); 1283 1284 return count ? count : SHRINK_EMPTY; 1285 } 1286 1287 static unsigned long 1288 lazy_rcu_shrink_scan(struct shrinker *shrink, struct shrink_control *sc) 1289 { 1290 int cpu; 1291 unsigned long flags; 1292 unsigned long count = 0; 1293 1294 if (WARN_ON_ONCE(!cpumask_available(rcu_nocb_mask))) 1295 return 0; 1296 /* 1297 * Protect against concurrent (de-)offloading. Otherwise nocb locking 1298 * may be ignored or imbalanced. 1299 */ 1300 if (!mutex_trylock(&rcu_state.nocb_mutex)) { 1301 /* 1302 * But really don't insist if nocb_mutex is contended since we 1303 * can't guarantee that it will never engage in a dependency 1304 * chain involving memory allocation. The lock is seldom contended 1305 * anyway. 1306 */ 1307 return 0; 1308 } 1309 1310 /* Snapshot count of all CPUs */ 1311 for_each_cpu(cpu, rcu_nocb_mask) { 1312 struct rcu_data *rdp = per_cpu_ptr(&rcu_data, cpu); 1313 int _count; 1314 1315 if (WARN_ON_ONCE(!rcu_rdp_is_offloaded(rdp))) 1316 continue; 1317 1318 if (!READ_ONCE(rdp->lazy_len)) 1319 continue; 1320 1321 rcu_nocb_lock_irqsave(rdp, flags); 1322 /* 1323 * Recheck under the nocb lock. Since we are not holding the bypass 1324 * lock we may still race with increments from the enqueuer but still 1325 * we know for sure if there is at least one lazy callback. 1326 */ 1327 _count = READ_ONCE(rdp->lazy_len); 1328 if (!_count) { 1329 rcu_nocb_unlock_irqrestore(rdp, flags); 1330 continue; 1331 } 1332 rcu_nocb_try_flush_bypass(rdp, jiffies); 1333 rcu_nocb_unlock_irqrestore(rdp, flags); 1334 wake_nocb_gp(rdp); 1335 sc->nr_to_scan -= _count; 1336 count += _count; 1337 if (sc->nr_to_scan <= 0) 1338 break; 1339 } 1340 1341 mutex_unlock(&rcu_state.nocb_mutex); 1342 1343 return count ? count : SHRINK_STOP; 1344 } 1345 #endif // #ifdef CONFIG_RCU_LAZY 1346 1347 void __init rcu_init_nohz(void) 1348 { 1349 int cpu; 1350 struct rcu_data *rdp; 1351 const struct cpumask *cpumask = NULL; 1352 struct shrinker * __maybe_unused lazy_rcu_shrinker; 1353 1354 #if defined(CONFIG_NO_HZ_FULL) 1355 if (tick_nohz_full_running && !cpumask_empty(tick_nohz_full_mask)) 1356 cpumask = tick_nohz_full_mask; 1357 #endif 1358 1359 if (IS_ENABLED(CONFIG_RCU_NOCB_CPU_DEFAULT_ALL) && 1360 !rcu_state.nocb_is_setup && !cpumask) 1361 cpumask = cpu_possible_mask; 1362 1363 if (cpumask) { 1364 if (!cpumask_available(rcu_nocb_mask)) { 1365 if (!zalloc_cpumask_var(&rcu_nocb_mask, GFP_KERNEL)) { 1366 pr_info("rcu_nocb_mask allocation failed, callback offloading disabled.\n"); 1367 return; 1368 } 1369 } 1370 1371 cpumask_or(rcu_nocb_mask, rcu_nocb_mask, cpumask); 1372 rcu_state.nocb_is_setup = true; 1373 } 1374 1375 if (!rcu_state.nocb_is_setup) 1376 return; 1377 1378 #ifdef CONFIG_RCU_LAZY 1379 lazy_rcu_shrinker = shrinker_alloc(0, "rcu-lazy"); 1380 if (!lazy_rcu_shrinker) { 1381 pr_err("Failed to allocate lazy_rcu shrinker!\n"); 1382 } else { 1383 lazy_rcu_shrinker->count_objects = lazy_rcu_shrink_count; 1384 lazy_rcu_shrinker->scan_objects = lazy_rcu_shrink_scan; 1385 1386 shrinker_register(lazy_rcu_shrinker); 1387 } 1388 #endif // #ifdef CONFIG_RCU_LAZY 1389 1390 if (!cpumask_subset(rcu_nocb_mask, cpu_possible_mask)) { 1391 pr_info("\tNote: kernel parameter 'rcu_nocbs=', 'nohz_full', or 'isolcpus=' contains nonexistent CPUs.\n"); 1392 cpumask_and(rcu_nocb_mask, cpu_possible_mask, 1393 rcu_nocb_mask); 1394 } 1395 if (cpumask_empty(rcu_nocb_mask)) 1396 pr_info("\tOffload RCU callbacks from CPUs: (none).\n"); 1397 else 1398 pr_info("\tOffload RCU callbacks from CPUs: %*pbl.\n", 1399 cpumask_pr_args(rcu_nocb_mask)); 1400 if (rcu_nocb_poll) 1401 pr_info("\tPoll for callbacks from no-CBs CPUs.\n"); 1402 1403 for_each_cpu(cpu, rcu_nocb_mask) { 1404 rdp = per_cpu_ptr(&rcu_data, cpu); 1405 if (rcu_segcblist_empty(&rdp->cblist)) 1406 rcu_segcblist_init(&rdp->cblist); 1407 rcu_segcblist_set_flags(&rdp->cblist, SEGCBLIST_OFFLOADED); 1408 } 1409 rcu_organize_nocb_kthreads(); 1410 } 1411 1412 /* Initialize per-rcu_data variables for no-CBs CPUs. */ 1413 static void __init rcu_boot_init_nocb_percpu_data(struct rcu_data *rdp) 1414 { 1415 init_swait_queue_head(&rdp->nocb_cb_wq); 1416 init_swait_queue_head(&rdp->nocb_gp_wq); 1417 init_swait_queue_head(&rdp->nocb_state_wq); 1418 raw_spin_lock_init(&rdp->nocb_lock); 1419 raw_spin_lock_init(&rdp->nocb_bypass_lock); 1420 raw_spin_lock_init(&rdp->nocb_gp_lock); 1421 timer_setup(&rdp->nocb_timer, do_nocb_deferred_wakeup_timer, 0); 1422 rcu_cblist_init(&rdp->nocb_bypass); 1423 WRITE_ONCE(rdp->lazy_len, 0); 1424 mutex_init(&rdp->nocb_gp_kthread_mutex); 1425 } 1426 1427 /* 1428 * If the specified CPU is a no-CBs CPU that does not already have its 1429 * rcuo CB kthread, spawn it. Additionally, if the rcuo GP kthread 1430 * for this CPU's group has not yet been created, spawn it as well. 1431 */ 1432 static void rcu_spawn_cpu_nocb_kthread(int cpu) 1433 { 1434 struct rcu_data *rdp = per_cpu_ptr(&rcu_data, cpu); 1435 struct rcu_data *rdp_gp; 1436 struct task_struct *t; 1437 struct sched_param sp; 1438 1439 if (!rcu_scheduler_fully_active || !rcu_state.nocb_is_setup) 1440 return; 1441 1442 /* If there already is an rcuo kthread, then nothing to do. */ 1443 if (rdp->nocb_cb_kthread) 1444 return; 1445 1446 /* If we didn't spawn the GP kthread first, reorganize! */ 1447 sp.sched_priority = kthread_prio; 1448 rdp_gp = rdp->nocb_gp_rdp; 1449 mutex_lock(&rdp_gp->nocb_gp_kthread_mutex); 1450 if (!rdp_gp->nocb_gp_kthread) { 1451 t = kthread_run(rcu_nocb_gp_kthread, rdp_gp, 1452 "rcuog/%d", rdp_gp->cpu); 1453 if (WARN_ONCE(IS_ERR(t), "%s: Could not start rcuo GP kthread, OOM is now expected behavior\n", __func__)) { 1454 mutex_unlock(&rdp_gp->nocb_gp_kthread_mutex); 1455 goto err; 1456 } 1457 WRITE_ONCE(rdp_gp->nocb_gp_kthread, t); 1458 if (kthread_prio) 1459 sched_setscheduler_nocheck(t, SCHED_FIFO, &sp); 1460 } 1461 mutex_unlock(&rdp_gp->nocb_gp_kthread_mutex); 1462 1463 /* Spawn the kthread for this CPU. */ 1464 t = kthread_create(rcu_nocb_cb_kthread, rdp, 1465 "rcuo%c/%d", rcu_state.abbr, cpu); 1466 if (WARN_ONCE(IS_ERR(t), "%s: Could not start rcuo CB kthread, OOM is now expected behavior\n", __func__)) 1467 goto err; 1468 1469 if (rcu_rdp_is_offloaded(rdp)) 1470 wake_up_process(t); 1471 else 1472 kthread_park(t); 1473 1474 if (IS_ENABLED(CONFIG_RCU_NOCB_CPU_CB_BOOST) && kthread_prio) 1475 sched_setscheduler_nocheck(t, SCHED_FIFO, &sp); 1476 1477 WRITE_ONCE(rdp->nocb_cb_kthread, t); 1478 WRITE_ONCE(rdp->nocb_gp_kthread, rdp_gp->nocb_gp_kthread); 1479 return; 1480 1481 err: 1482 /* 1483 * No need to protect against concurrent rcu_barrier() 1484 * because the number of callbacks should be 0 for a non-boot CPU, 1485 * therefore rcu_barrier() shouldn't even try to grab the nocb_lock. 1486 * But hold nocb_mutex to avoid nocb_lock imbalance from shrinker. 1487 */ 1488 WARN_ON_ONCE(system_state > SYSTEM_BOOTING && rcu_segcblist_n_cbs(&rdp->cblist)); 1489 mutex_lock(&rcu_state.nocb_mutex); 1490 if (rcu_rdp_is_offloaded(rdp)) { 1491 rcu_nocb_rdp_deoffload(rdp); 1492 cpumask_clear_cpu(cpu, rcu_nocb_mask); 1493 } 1494 mutex_unlock(&rcu_state.nocb_mutex); 1495 } 1496 1497 /* How many CB CPU IDs per GP kthread? Default of -1 for sqrt(nr_cpu_ids). */ 1498 static int rcu_nocb_gp_stride = -1; 1499 module_param(rcu_nocb_gp_stride, int, 0444); 1500 1501 /* 1502 * Initialize GP-CB relationships for all no-CBs CPU. 1503 */ 1504 static void __init rcu_organize_nocb_kthreads(void) 1505 { 1506 int cpu; 1507 bool firsttime = true; 1508 bool gotnocbs = false; 1509 bool gotnocbscbs = true; 1510 int ls = rcu_nocb_gp_stride; 1511 int nl = 0; /* Next GP kthread. */ 1512 struct rcu_data *rdp; 1513 struct rcu_data *rdp_gp = NULL; /* Suppress misguided gcc warn. */ 1514 1515 if (!cpumask_available(rcu_nocb_mask)) 1516 return; 1517 if (ls == -1) { 1518 ls = nr_cpu_ids / int_sqrt(nr_cpu_ids); 1519 rcu_nocb_gp_stride = ls; 1520 } 1521 1522 /* 1523 * Each pass through this loop sets up one rcu_data structure. 1524 * Should the corresponding CPU come online in the future, then 1525 * we will spawn the needed set of rcu_nocb_kthread() kthreads. 1526 */ 1527 for_each_possible_cpu(cpu) { 1528 rdp = per_cpu_ptr(&rcu_data, cpu); 1529 if (rdp->cpu >= nl) { 1530 /* New GP kthread, set up for CBs & next GP. */ 1531 gotnocbs = true; 1532 nl = DIV_ROUND_UP(rdp->cpu + 1, ls) * ls; 1533 rdp_gp = rdp; 1534 INIT_LIST_HEAD(&rdp->nocb_head_rdp); 1535 if (dump_tree) { 1536 if (!firsttime) 1537 pr_cont("%s\n", gotnocbscbs 1538 ? "" : " (self only)"); 1539 gotnocbscbs = false; 1540 firsttime = false; 1541 pr_alert("%s: No-CB GP kthread CPU %d:", 1542 __func__, cpu); 1543 } 1544 } else { 1545 /* Another CB kthread, link to previous GP kthread. */ 1546 gotnocbscbs = true; 1547 if (dump_tree) 1548 pr_cont(" %d", cpu); 1549 } 1550 rdp->nocb_gp_rdp = rdp_gp; 1551 if (cpumask_test_cpu(cpu, rcu_nocb_mask)) 1552 list_add_tail(&rdp->nocb_entry_rdp, &rdp_gp->nocb_head_rdp); 1553 } 1554 if (gotnocbs && dump_tree) 1555 pr_cont("%s\n", gotnocbscbs ? "" : " (self only)"); 1556 } 1557 1558 /* 1559 * Bind the current task to the offloaded CPUs. If there are no offloaded 1560 * CPUs, leave the task unbound. Splat if the bind attempt fails. 1561 */ 1562 void rcu_bind_current_to_nocb(void) 1563 { 1564 if (cpumask_available(rcu_nocb_mask) && !cpumask_empty(rcu_nocb_mask)) 1565 WARN_ON(sched_setaffinity(current->pid, rcu_nocb_mask)); 1566 } 1567 EXPORT_SYMBOL_GPL(rcu_bind_current_to_nocb); 1568 1569 // The ->on_cpu field is available only in CONFIG_SMP=y, so... 1570 #ifdef CONFIG_SMP 1571 static char *show_rcu_should_be_on_cpu(struct task_struct *tsp) 1572 { 1573 return tsp && task_is_running(tsp) && !tsp->on_cpu ? "!" : ""; 1574 } 1575 #else // #ifdef CONFIG_SMP 1576 static char *show_rcu_should_be_on_cpu(struct task_struct *tsp) 1577 { 1578 return ""; 1579 } 1580 #endif // #else #ifdef CONFIG_SMP 1581 1582 /* 1583 * Dump out nocb grace-period kthread state for the specified rcu_data 1584 * structure. 1585 */ 1586 static void show_rcu_nocb_gp_state(struct rcu_data *rdp) 1587 { 1588 struct rcu_node *rnp = rdp->mynode; 1589 1590 pr_info("nocb GP %d %c%c%c%c%c %c[%c%c] %c%c:%ld/%ld rnp %d:%d %lu %c CPU %d%s\n", 1591 rdp->cpu, 1592 "kK"[!!rdp->nocb_gp_kthread], 1593 "lL"[raw_spin_is_locked(&rdp->nocb_gp_lock)], 1594 "dD"[!!rdp->nocb_defer_wakeup], 1595 "tT"[timer_pending(&rdp->nocb_timer)], 1596 "sS"[!!rdp->nocb_gp_sleep], 1597 ".W"[swait_active(&rdp->nocb_gp_wq)], 1598 ".W"[swait_active(&rnp->nocb_gp_wq[0])], 1599 ".W"[swait_active(&rnp->nocb_gp_wq[1])], 1600 ".B"[!!rdp->nocb_gp_bypass], 1601 ".G"[!!rdp->nocb_gp_gp], 1602 (long)rdp->nocb_gp_seq.norm, 1603 (long)rdp->nocb_gp_seq.exp, 1604 rnp->grplo, rnp->grphi, READ_ONCE(rdp->nocb_gp_loops), 1605 rdp->nocb_gp_kthread ? task_state_to_char(rdp->nocb_gp_kthread) : '.', 1606 rdp->nocb_gp_kthread ? (int)task_cpu(rdp->nocb_gp_kthread) : -1, 1607 show_rcu_should_be_on_cpu(rdp->nocb_gp_kthread)); 1608 } 1609 1610 /* Dump out nocb kthread state for the specified rcu_data structure. */ 1611 static void show_rcu_nocb_state(struct rcu_data *rdp) 1612 { 1613 char bufd[22]; 1614 char bufw[64]; 1615 char bufr[64]; 1616 char bufn[22]; 1617 char bufb[22]; 1618 struct rcu_data *nocb_next_rdp; 1619 struct rcu_segcblist *rsclp = &rdp->cblist; 1620 bool waslocked; 1621 bool wassleep; 1622 1623 if (rdp->nocb_gp_rdp == rdp) 1624 show_rcu_nocb_gp_state(rdp); 1625 1626 if (!rcu_segcblist_is_offloaded(&rdp->cblist)) 1627 return; 1628 1629 nocb_next_rdp = list_next_or_null_rcu(&rdp->nocb_gp_rdp->nocb_head_rdp, 1630 &rdp->nocb_entry_rdp, 1631 typeof(*rdp), 1632 nocb_entry_rdp); 1633 1634 sprintf(bufd, "%ld", rsclp->seglen[RCU_DONE_TAIL]); 1635 sprintf(bufw, "%ld(%ld/%ld)", rsclp->seglen[RCU_WAIT_TAIL], 1636 rsclp->gp_seq[RCU_WAIT_TAIL].norm, 1637 rsclp->gp_seq[RCU_WAIT_TAIL].exp); 1638 sprintf(bufr, "%ld(%ld/%ld)", rsclp->seglen[RCU_NEXT_READY_TAIL], 1639 rsclp->gp_seq[RCU_NEXT_READY_TAIL].norm, 1640 rsclp->gp_seq[RCU_NEXT_READY_TAIL].exp); 1641 sprintf(bufn, "%ld", rsclp->seglen[RCU_NEXT_TAIL]); 1642 sprintf(bufb, "%ld", rcu_cblist_n_cbs(&rdp->nocb_bypass)); 1643 pr_info(" CB %d^%d->%d %c%c%c%c%c F%ld L%ld C%d %c%s%c%s%c%s%c%s%c%s q%ld %c CPU %d%s\n", 1644 rdp->cpu, rdp->nocb_gp_rdp->cpu, 1645 nocb_next_rdp ? nocb_next_rdp->cpu : -1, 1646 "kK"[!!rdp->nocb_cb_kthread], 1647 "bB"[raw_spin_is_locked(&rdp->nocb_bypass_lock)], 1648 "lL"[raw_spin_is_locked(&rdp->nocb_lock)], 1649 "sS"[!!rdp->nocb_cb_sleep], 1650 ".W"[swait_active(&rdp->nocb_cb_wq)], 1651 jiffies - rdp->nocb_bypass_first, 1652 jiffies - rdp->nocb_nobypass_last, 1653 rdp->nocb_nobypass_count, 1654 ".D"[rcu_segcblist_ready_cbs(rsclp)], 1655 rcu_segcblist_segempty(rsclp, RCU_DONE_TAIL) ? "" : bufd, 1656 ".W"[!rcu_segcblist_segempty(rsclp, RCU_WAIT_TAIL)], 1657 rcu_segcblist_segempty(rsclp, RCU_WAIT_TAIL) ? "" : bufw, 1658 ".R"[!rcu_segcblist_segempty(rsclp, RCU_NEXT_READY_TAIL)], 1659 rcu_segcblist_segempty(rsclp, RCU_NEXT_READY_TAIL) ? "" : bufr, 1660 ".N"[!rcu_segcblist_segempty(rsclp, RCU_NEXT_TAIL)], 1661 rcu_segcblist_segempty(rsclp, RCU_NEXT_TAIL) ? "" : bufn, 1662 ".B"[!!rcu_cblist_n_cbs(&rdp->nocb_bypass)], 1663 !rcu_cblist_n_cbs(&rdp->nocb_bypass) ? "" : bufb, 1664 rcu_segcblist_n_cbs(&rdp->cblist), 1665 rdp->nocb_cb_kthread ? task_state_to_char(rdp->nocb_cb_kthread) : '.', 1666 rdp->nocb_cb_kthread ? (int)task_cpu(rdp->nocb_cb_kthread) : -1, 1667 show_rcu_should_be_on_cpu(rdp->nocb_cb_kthread)); 1668 1669 /* It is OK for GP kthreads to have GP state. */ 1670 if (rdp->nocb_gp_rdp == rdp) 1671 return; 1672 1673 waslocked = raw_spin_is_locked(&rdp->nocb_gp_lock); 1674 wassleep = swait_active(&rdp->nocb_gp_wq); 1675 if (!rdp->nocb_gp_sleep && !waslocked && !wassleep) 1676 return; /* Nothing untoward. */ 1677 1678 pr_info(" nocb GP activity on CB-only CPU!!! %c%c%c %c\n", 1679 "lL"[waslocked], 1680 "dD"[!!rdp->nocb_defer_wakeup], 1681 "sS"[!!rdp->nocb_gp_sleep], 1682 ".W"[wassleep]); 1683 } 1684 1685 #else /* #ifdef CONFIG_RCU_NOCB_CPU */ 1686 1687 /* No ->nocb_lock to acquire. */ 1688 static void rcu_nocb_lock(struct rcu_data *rdp) 1689 { 1690 } 1691 1692 /* No ->nocb_lock to release. */ 1693 static void rcu_nocb_unlock(struct rcu_data *rdp) 1694 { 1695 } 1696 1697 /* No ->nocb_lock to release. */ 1698 static void rcu_nocb_unlock_irqrestore(struct rcu_data *rdp, 1699 unsigned long flags) 1700 { 1701 local_irq_restore(flags); 1702 } 1703 1704 /* Lockdep check that ->cblist may be safely accessed. */ 1705 static void rcu_lockdep_assert_cblist_protected(struct rcu_data *rdp) 1706 { 1707 lockdep_assert_irqs_disabled(); 1708 } 1709 1710 static void rcu_nocb_gp_cleanup(struct swait_queue_head *sq) 1711 { 1712 } 1713 1714 static struct swait_queue_head *rcu_nocb_gp_get(struct rcu_node *rnp) 1715 { 1716 return NULL; 1717 } 1718 1719 static void rcu_init_one_nocb(struct rcu_node *rnp) 1720 { 1721 } 1722 1723 static void rcu_nocb_exp_cleanup(struct rcu_node *rnp) 1724 { 1725 } 1726 1727 static bool wake_nocb_gp(struct rcu_data *rdp) 1728 { 1729 return false; 1730 } 1731 1732 static bool rcu_nocb_flush_bypass(struct rcu_data *rdp, struct rcu_head *rhp, 1733 unsigned long j, bool lazy) 1734 { 1735 return true; 1736 } 1737 1738 static void call_rcu_nocb(struct rcu_data *rdp, struct rcu_head *head, 1739 unsigned long flags, bool lazy) 1740 { 1741 WARN_ON_ONCE(1); /* Should be dead code! */ 1742 } 1743 1744 static void __call_rcu_nocb_wake(struct rcu_data *rdp, bool was_empty, 1745 unsigned long flags) 1746 { 1747 WARN_ON_ONCE(1); /* Should be dead code! */ 1748 } 1749 1750 static void __init rcu_boot_init_nocb_percpu_data(struct rcu_data *rdp) 1751 { 1752 } 1753 1754 static int rcu_nocb_need_deferred_wakeup(struct rcu_data *rdp, int level) 1755 { 1756 return false; 1757 } 1758 1759 static bool do_nocb_deferred_wakeup(struct rcu_data *rdp) 1760 { 1761 return false; 1762 } 1763 1764 static void rcu_spawn_cpu_nocb_kthread(int cpu) 1765 { 1766 } 1767 1768 static void show_rcu_nocb_state(struct rcu_data *rdp) 1769 { 1770 } 1771 1772 #endif /* #else #ifdef CONFIG_RCU_NOCB_CPU */ 1773