1 /* 2 * Read-Copy Update mechanism for mutual exclusion 3 * 4 * This program is free software; you can redistribute it and/or modify 5 * it under the terms of the GNU General Public License as published by 6 * the Free Software Foundation; either version 2 of the License, or 7 * (at your option) any later version. 8 * 9 * This program is distributed in the hope that it will be useful, 10 * but WITHOUT ANY WARRANTY; without even the implied warranty of 11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 12 * GNU General Public License for more details. 13 * 14 * You should have received a copy of the GNU General Public License 15 * along with this program; if not, you can access it online at 16 * http://www.gnu.org/licenses/gpl-2.0.html. 17 * 18 * Copyright IBM Corporation, 2008 19 * 20 * Authors: Dipankar Sarma <[email protected]> 21 * Manfred Spraul <[email protected]> 22 * Paul E. McKenney <[email protected]> Hierarchical version 23 * 24 * Based on the original work by Paul McKenney <[email protected]> 25 * and inputs from Rusty Russell, Andrea Arcangeli and Andi Kleen. 26 * 27 * For detailed explanation of Read-Copy Update mechanism see - 28 * Documentation/RCU 29 */ 30 #include <linux/types.h> 31 #include <linux/kernel.h> 32 #include <linux/init.h> 33 #include <linux/spinlock.h> 34 #include <linux/smp.h> 35 #include <linux/rcupdate_wait.h> 36 #include <linux/interrupt.h> 37 #include <linux/sched.h> 38 #include <linux/sched/debug.h> 39 #include <linux/nmi.h> 40 #include <linux/atomic.h> 41 #include <linux/bitops.h> 42 #include <linux/export.h> 43 #include <linux/completion.h> 44 #include <linux/moduleparam.h> 45 #include <linux/percpu.h> 46 #include <linux/notifier.h> 47 #include <linux/cpu.h> 48 #include <linux/mutex.h> 49 #include <linux/time.h> 50 #include <linux/kernel_stat.h> 51 #include <linux/wait.h> 52 #include <linux/kthread.h> 53 #include <uapi/linux/sched/types.h> 54 #include <linux/prefetch.h> 55 #include <linux/delay.h> 56 #include <linux/stop_machine.h> 57 #include <linux/random.h> 58 #include <linux/trace_events.h> 59 #include <linux/suspend.h> 60 61 #include "tree.h" 62 #include "rcu.h" 63 64 #ifdef MODULE_PARAM_PREFIX 65 #undef MODULE_PARAM_PREFIX 66 #endif 67 #define MODULE_PARAM_PREFIX "rcutree." 68 69 /* Data structures. */ 70 71 /* 72 * In order to export the rcu_state name to the tracing tools, it 73 * needs to be added in the __tracepoint_string section. 74 * This requires defining a separate variable tp_<sname>_varname 75 * that points to the string being used, and this will allow 76 * the tracing userspace tools to be able to decipher the string 77 * address to the matching string. 78 */ 79 #ifdef CONFIG_TRACING 80 # define DEFINE_RCU_TPS(sname) \ 81 static char sname##_varname[] = #sname; \ 82 static const char *tp_##sname##_varname __used __tracepoint_string = sname##_varname; 83 # define RCU_STATE_NAME(sname) sname##_varname 84 #else 85 # define DEFINE_RCU_TPS(sname) 86 # define RCU_STATE_NAME(sname) __stringify(sname) 87 #endif 88 89 #define RCU_STATE_INITIALIZER(sname, sabbr, cr) \ 90 DEFINE_RCU_TPS(sname) \ 91 static DEFINE_PER_CPU_SHARED_ALIGNED(struct rcu_data, sname##_data); \ 92 struct rcu_state sname##_state = { \ 93 .level = { &sname##_state.node[0] }, \ 94 .rda = &sname##_data, \ 95 .call = cr, \ 96 .gp_state = RCU_GP_IDLE, \ 97 .gpnum = 0UL - 300UL, \ 98 .completed = 0UL - 300UL, \ 99 .orphan_lock = __RAW_SPIN_LOCK_UNLOCKED(&sname##_state.orphan_lock), \ 100 .orphan_nxttail = &sname##_state.orphan_nxtlist, \ 101 .orphan_donetail = &sname##_state.orphan_donelist, \ 102 .barrier_mutex = __MUTEX_INITIALIZER(sname##_state.barrier_mutex), \ 103 .name = RCU_STATE_NAME(sname), \ 104 .abbr = sabbr, \ 105 .exp_mutex = __MUTEX_INITIALIZER(sname##_state.exp_mutex), \ 106 .exp_wake_mutex = __MUTEX_INITIALIZER(sname##_state.exp_wake_mutex), \ 107 } 108 109 RCU_STATE_INITIALIZER(rcu_sched, 's', call_rcu_sched); 110 RCU_STATE_INITIALIZER(rcu_bh, 'b', call_rcu_bh); 111 112 static struct rcu_state *const rcu_state_p; 113 LIST_HEAD(rcu_struct_flavors); 114 115 /* Dump rcu_node combining tree at boot to verify correct setup. */ 116 static bool dump_tree; 117 module_param(dump_tree, bool, 0444); 118 /* Control rcu_node-tree auto-balancing at boot time. */ 119 static bool rcu_fanout_exact; 120 module_param(rcu_fanout_exact, bool, 0444); 121 /* Increase (but not decrease) the RCU_FANOUT_LEAF at boot time. */ 122 static int rcu_fanout_leaf = RCU_FANOUT_LEAF; 123 module_param(rcu_fanout_leaf, int, 0444); 124 int rcu_num_lvls __read_mostly = RCU_NUM_LVLS; 125 /* Number of rcu_nodes at specified level. */ 126 static int num_rcu_lvl[] = NUM_RCU_LVL_INIT; 127 int rcu_num_nodes __read_mostly = NUM_RCU_NODES; /* Total # rcu_nodes in use. */ 128 /* panic() on RCU Stall sysctl. */ 129 int sysctl_panic_on_rcu_stall __read_mostly; 130 131 /* 132 * The rcu_scheduler_active variable is initialized to the value 133 * RCU_SCHEDULER_INACTIVE and transitions RCU_SCHEDULER_INIT just before the 134 * first task is spawned. So when this variable is RCU_SCHEDULER_INACTIVE, 135 * RCU can assume that there is but one task, allowing RCU to (for example) 136 * optimize synchronize_rcu() to a simple barrier(). When this variable 137 * is RCU_SCHEDULER_INIT, RCU must actually do all the hard work required 138 * to detect real grace periods. This variable is also used to suppress 139 * boot-time false positives from lockdep-RCU error checking. Finally, it 140 * transitions from RCU_SCHEDULER_INIT to RCU_SCHEDULER_RUNNING after RCU 141 * is fully initialized, including all of its kthreads having been spawned. 142 */ 143 int rcu_scheduler_active __read_mostly; 144 EXPORT_SYMBOL_GPL(rcu_scheduler_active); 145 146 /* 147 * The rcu_scheduler_fully_active variable transitions from zero to one 148 * during the early_initcall() processing, which is after the scheduler 149 * is capable of creating new tasks. So RCU processing (for example, 150 * creating tasks for RCU priority boosting) must be delayed until after 151 * rcu_scheduler_fully_active transitions from zero to one. We also 152 * currently delay invocation of any RCU callbacks until after this point. 153 * 154 * It might later prove better for people registering RCU callbacks during 155 * early boot to take responsibility for these callbacks, but one step at 156 * a time. 157 */ 158 static int rcu_scheduler_fully_active __read_mostly; 159 160 static void rcu_init_new_rnp(struct rcu_node *rnp_leaf); 161 static void rcu_cleanup_dead_rnp(struct rcu_node *rnp_leaf); 162 static void rcu_boost_kthread_setaffinity(struct rcu_node *rnp, int outgoingcpu); 163 static void invoke_rcu_core(void); 164 static void invoke_rcu_callbacks(struct rcu_state *rsp, struct rcu_data *rdp); 165 static void rcu_report_exp_rdp(struct rcu_state *rsp, 166 struct rcu_data *rdp, bool wake); 167 static void sync_sched_exp_online_cleanup(int cpu); 168 169 /* rcuc/rcub kthread realtime priority */ 170 #ifdef CONFIG_RCU_KTHREAD_PRIO 171 static int kthread_prio = CONFIG_RCU_KTHREAD_PRIO; 172 #else /* #ifdef CONFIG_RCU_KTHREAD_PRIO */ 173 static int kthread_prio = IS_ENABLED(CONFIG_RCU_BOOST) ? 1 : 0; 174 #endif /* #else #ifdef CONFIG_RCU_KTHREAD_PRIO */ 175 module_param(kthread_prio, int, 0644); 176 177 /* Delay in jiffies for grace-period initialization delays, debug only. */ 178 179 #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_PREINIT 180 static int gp_preinit_delay = CONFIG_RCU_TORTURE_TEST_SLOW_PREINIT_DELAY; 181 module_param(gp_preinit_delay, int, 0644); 182 #else /* #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_PREINIT */ 183 static const int gp_preinit_delay; 184 #endif /* #else #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_PREINIT */ 185 186 #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_INIT 187 static int gp_init_delay = CONFIG_RCU_TORTURE_TEST_SLOW_INIT_DELAY; 188 module_param(gp_init_delay, int, 0644); 189 #else /* #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_INIT */ 190 static const int gp_init_delay; 191 #endif /* #else #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_INIT */ 192 193 #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_CLEANUP 194 static int gp_cleanup_delay = CONFIG_RCU_TORTURE_TEST_SLOW_CLEANUP_DELAY; 195 module_param(gp_cleanup_delay, int, 0644); 196 #else /* #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_CLEANUP */ 197 static const int gp_cleanup_delay; 198 #endif /* #else #ifdef CONFIG_RCU_TORTURE_TEST_SLOW_CLEANUP */ 199 200 /* 201 * Number of grace periods between delays, normalized by the duration of 202 * the delay. The longer the the delay, the more the grace periods between 203 * each delay. The reason for this normalization is that it means that, 204 * for non-zero delays, the overall slowdown of grace periods is constant 205 * regardless of the duration of the delay. This arrangement balances 206 * the need for long delays to increase some race probabilities with the 207 * need for fast grace periods to increase other race probabilities. 208 */ 209 #define PER_RCU_NODE_PERIOD 3 /* Number of grace periods between delays. */ 210 211 /* 212 * Track the rcutorture test sequence number and the update version 213 * number within a given test. The rcutorture_testseq is incremented 214 * on every rcutorture module load and unload, so has an odd value 215 * when a test is running. The rcutorture_vernum is set to zero 216 * when rcutorture starts and is incremented on each rcutorture update. 217 * These variables enable correlating rcutorture output with the 218 * RCU tracing information. 219 */ 220 unsigned long rcutorture_testseq; 221 unsigned long rcutorture_vernum; 222 223 /* 224 * Compute the mask of online CPUs for the specified rcu_node structure. 225 * This will not be stable unless the rcu_node structure's ->lock is 226 * held, but the bit corresponding to the current CPU will be stable 227 * in most contexts. 228 */ 229 unsigned long rcu_rnp_online_cpus(struct rcu_node *rnp) 230 { 231 return READ_ONCE(rnp->qsmaskinitnext); 232 } 233 234 /* 235 * Return true if an RCU grace period is in progress. The READ_ONCE()s 236 * permit this function to be invoked without holding the root rcu_node 237 * structure's ->lock, but of course results can be subject to change. 238 */ 239 static int rcu_gp_in_progress(struct rcu_state *rsp) 240 { 241 return READ_ONCE(rsp->completed) != READ_ONCE(rsp->gpnum); 242 } 243 244 /* 245 * Note a quiescent state. Because we do not need to know 246 * how many quiescent states passed, just if there was at least 247 * one since the start of the grace period, this just sets a flag. 248 * The caller must have disabled preemption. 249 */ 250 void rcu_sched_qs(void) 251 { 252 if (!__this_cpu_read(rcu_sched_data.cpu_no_qs.s)) 253 return; 254 trace_rcu_grace_period(TPS("rcu_sched"), 255 __this_cpu_read(rcu_sched_data.gpnum), 256 TPS("cpuqs")); 257 __this_cpu_write(rcu_sched_data.cpu_no_qs.b.norm, false); 258 if (!__this_cpu_read(rcu_sched_data.cpu_no_qs.b.exp)) 259 return; 260 __this_cpu_write(rcu_sched_data.cpu_no_qs.b.exp, false); 261 rcu_report_exp_rdp(&rcu_sched_state, 262 this_cpu_ptr(&rcu_sched_data), true); 263 } 264 265 void rcu_bh_qs(void) 266 { 267 if (__this_cpu_read(rcu_bh_data.cpu_no_qs.s)) { 268 trace_rcu_grace_period(TPS("rcu_bh"), 269 __this_cpu_read(rcu_bh_data.gpnum), 270 TPS("cpuqs")); 271 __this_cpu_write(rcu_bh_data.cpu_no_qs.b.norm, false); 272 } 273 } 274 275 /* 276 * Steal a bit from the bottom of ->dynticks for idle entry/exit 277 * control. Initially this is for TLB flushing. 278 */ 279 #define RCU_DYNTICK_CTRL_MASK 0x1 280 #define RCU_DYNTICK_CTRL_CTR (RCU_DYNTICK_CTRL_MASK + 1) 281 #ifndef rcu_eqs_special_exit 282 #define rcu_eqs_special_exit() do { } while (0) 283 #endif 284 285 static DEFINE_PER_CPU(struct rcu_dynticks, rcu_dynticks) = { 286 .dynticks_nesting = DYNTICK_TASK_EXIT_IDLE, 287 .dynticks = ATOMIC_INIT(RCU_DYNTICK_CTRL_CTR), 288 #ifdef CONFIG_NO_HZ_FULL_SYSIDLE 289 .dynticks_idle_nesting = DYNTICK_TASK_NEST_VALUE, 290 .dynticks_idle = ATOMIC_INIT(1), 291 #endif /* #ifdef CONFIG_NO_HZ_FULL_SYSIDLE */ 292 }; 293 294 /* 295 * Record entry into an extended quiescent state. This is only to be 296 * called when not already in an extended quiescent state. 297 */ 298 static void rcu_dynticks_eqs_enter(void) 299 { 300 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 301 int seq; 302 303 /* 304 * CPUs seeing atomic_add_return() must see prior RCU read-side 305 * critical sections, and we also must force ordering with the 306 * next idle sojourn. 307 */ 308 seq = atomic_add_return(RCU_DYNTICK_CTRL_CTR, &rdtp->dynticks); 309 /* Better be in an extended quiescent state! */ 310 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 311 (seq & RCU_DYNTICK_CTRL_CTR)); 312 /* Better not have special action (TLB flush) pending! */ 313 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 314 (seq & RCU_DYNTICK_CTRL_MASK)); 315 } 316 317 /* 318 * Record exit from an extended quiescent state. This is only to be 319 * called from an extended quiescent state. 320 */ 321 static void rcu_dynticks_eqs_exit(void) 322 { 323 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 324 int seq; 325 326 /* 327 * CPUs seeing atomic_add_return() must see prior idle sojourns, 328 * and we also must force ordering with the next RCU read-side 329 * critical section. 330 */ 331 seq = atomic_add_return(RCU_DYNTICK_CTRL_CTR, &rdtp->dynticks); 332 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 333 !(seq & RCU_DYNTICK_CTRL_CTR)); 334 if (seq & RCU_DYNTICK_CTRL_MASK) { 335 atomic_andnot(RCU_DYNTICK_CTRL_MASK, &rdtp->dynticks); 336 smp_mb__after_atomic(); /* _exit after clearing mask. */ 337 /* Prefer duplicate flushes to losing a flush. */ 338 rcu_eqs_special_exit(); 339 } 340 } 341 342 /* 343 * Reset the current CPU's ->dynticks counter to indicate that the 344 * newly onlined CPU is no longer in an extended quiescent state. 345 * This will either leave the counter unchanged, or increment it 346 * to the next non-quiescent value. 347 * 348 * The non-atomic test/increment sequence works because the upper bits 349 * of the ->dynticks counter are manipulated only by the corresponding CPU, 350 * or when the corresponding CPU is offline. 351 */ 352 static void rcu_dynticks_eqs_online(void) 353 { 354 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 355 356 if (atomic_read(&rdtp->dynticks) & RCU_DYNTICK_CTRL_CTR) 357 return; 358 atomic_add(RCU_DYNTICK_CTRL_CTR, &rdtp->dynticks); 359 } 360 361 /* 362 * Is the current CPU in an extended quiescent state? 363 * 364 * No ordering, as we are sampling CPU-local information. 365 */ 366 bool rcu_dynticks_curr_cpu_in_eqs(void) 367 { 368 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 369 370 return !(atomic_read(&rdtp->dynticks) & RCU_DYNTICK_CTRL_CTR); 371 } 372 373 /* 374 * Snapshot the ->dynticks counter with full ordering so as to allow 375 * stable comparison of this counter with past and future snapshots. 376 */ 377 int rcu_dynticks_snap(struct rcu_dynticks *rdtp) 378 { 379 int snap = atomic_add_return(0, &rdtp->dynticks); 380 381 return snap & ~RCU_DYNTICK_CTRL_MASK; 382 } 383 384 /* 385 * Return true if the snapshot returned from rcu_dynticks_snap() 386 * indicates that RCU is in an extended quiescent state. 387 */ 388 static bool rcu_dynticks_in_eqs(int snap) 389 { 390 return !(snap & RCU_DYNTICK_CTRL_CTR); 391 } 392 393 /* 394 * Return true if the CPU corresponding to the specified rcu_dynticks 395 * structure has spent some time in an extended quiescent state since 396 * rcu_dynticks_snap() returned the specified snapshot. 397 */ 398 static bool rcu_dynticks_in_eqs_since(struct rcu_dynticks *rdtp, int snap) 399 { 400 return snap != rcu_dynticks_snap(rdtp); 401 } 402 403 /* 404 * Do a double-increment of the ->dynticks counter to emulate a 405 * momentary idle-CPU quiescent state. 406 */ 407 static void rcu_dynticks_momentary_idle(void) 408 { 409 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 410 int special = atomic_add_return(2 * RCU_DYNTICK_CTRL_CTR, 411 &rdtp->dynticks); 412 413 /* It is illegal to call this from idle state. */ 414 WARN_ON_ONCE(!(special & RCU_DYNTICK_CTRL_CTR)); 415 } 416 417 /* 418 * Set the special (bottom) bit of the specified CPU so that it 419 * will take special action (such as flushing its TLB) on the 420 * next exit from an extended quiescent state. Returns true if 421 * the bit was successfully set, or false if the CPU was not in 422 * an extended quiescent state. 423 */ 424 bool rcu_eqs_special_set(int cpu) 425 { 426 int old; 427 int new; 428 struct rcu_dynticks *rdtp = &per_cpu(rcu_dynticks, cpu); 429 430 do { 431 old = atomic_read(&rdtp->dynticks); 432 if (old & RCU_DYNTICK_CTRL_CTR) 433 return false; 434 new = old | RCU_DYNTICK_CTRL_MASK; 435 } while (atomic_cmpxchg(&rdtp->dynticks, old, new) != old); 436 return true; 437 } 438 439 /* 440 * Let the RCU core know that this CPU has gone through the scheduler, 441 * which is a quiescent state. This is called when the need for a 442 * quiescent state is urgent, so we burn an atomic operation and full 443 * memory barriers to let the RCU core know about it, regardless of what 444 * this CPU might (or might not) do in the near future. 445 * 446 * We inform the RCU core by emulating a zero-duration dyntick-idle 447 * period, which we in turn do by incrementing the ->dynticks counter 448 * by two. 449 * 450 * The caller must have disabled interrupts. 451 */ 452 static void rcu_momentary_dyntick_idle(void) 453 { 454 struct rcu_data *rdp; 455 int resched_mask; 456 struct rcu_state *rsp; 457 458 /* 459 * Yes, we can lose flag-setting operations. This is OK, because 460 * the flag will be set again after some delay. 461 */ 462 resched_mask = raw_cpu_read(rcu_dynticks.rcu_sched_qs_mask); 463 raw_cpu_write(rcu_dynticks.rcu_sched_qs_mask, 0); 464 465 /* Find the flavor that needs a quiescent state. */ 466 for_each_rcu_flavor(rsp) { 467 rdp = raw_cpu_ptr(rsp->rda); 468 if (!(resched_mask & rsp->flavor_mask)) 469 continue; 470 smp_mb(); /* rcu_sched_qs_mask before cond_resched_completed. */ 471 if (READ_ONCE(rdp->mynode->completed) != 472 READ_ONCE(rdp->cond_resched_completed)) 473 continue; 474 475 /* 476 * Pretend to be momentarily idle for the quiescent state. 477 * This allows the grace-period kthread to record the 478 * quiescent state, with no need for this CPU to do anything 479 * further. 480 */ 481 rcu_dynticks_momentary_idle(); 482 break; 483 } 484 } 485 486 /* 487 * Note a context switch. This is a quiescent state for RCU-sched, 488 * and requires special handling for preemptible RCU. 489 * The caller must have disabled interrupts. 490 */ 491 void rcu_note_context_switch(void) 492 { 493 barrier(); /* Avoid RCU read-side critical sections leaking down. */ 494 trace_rcu_utilization(TPS("Start context switch")); 495 rcu_sched_qs(); 496 rcu_preempt_note_context_switch(); 497 if (unlikely(raw_cpu_read(rcu_dynticks.rcu_sched_qs_mask))) 498 rcu_momentary_dyntick_idle(); 499 trace_rcu_utilization(TPS("End context switch")); 500 barrier(); /* Avoid RCU read-side critical sections leaking up. */ 501 } 502 EXPORT_SYMBOL_GPL(rcu_note_context_switch); 503 504 /* 505 * Register a quiescent state for all RCU flavors. If there is an 506 * emergency, invoke rcu_momentary_dyntick_idle() to do a heavy-weight 507 * dyntick-idle quiescent state visible to other CPUs (but only for those 508 * RCU flavors in desperate need of a quiescent state, which will normally 509 * be none of them). Either way, do a lightweight quiescent state for 510 * all RCU flavors. 511 * 512 * The barrier() calls are redundant in the common case when this is 513 * called externally, but just in case this is called from within this 514 * file. 515 * 516 */ 517 void rcu_all_qs(void) 518 { 519 unsigned long flags; 520 521 barrier(); /* Avoid RCU read-side critical sections leaking down. */ 522 if (unlikely(raw_cpu_read(rcu_dynticks.rcu_sched_qs_mask))) { 523 local_irq_save(flags); 524 rcu_momentary_dyntick_idle(); 525 local_irq_restore(flags); 526 } 527 if (unlikely(raw_cpu_read(rcu_sched_data.cpu_no_qs.b.exp))) { 528 /* 529 * Yes, we just checked a per-CPU variable with preemption 530 * enabled, so we might be migrated to some other CPU at 531 * this point. That is OK because in that case, the 532 * migration will supply the needed quiescent state. 533 * We might end up needlessly disabling preemption and 534 * invoking rcu_sched_qs() on the destination CPU, but 535 * the probability and cost are both quite low, so this 536 * should not be a problem in practice. 537 */ 538 preempt_disable(); 539 rcu_sched_qs(); 540 preempt_enable(); 541 } 542 this_cpu_inc(rcu_dynticks.rcu_qs_ctr); 543 barrier(); /* Avoid RCU read-side critical sections leaking up. */ 544 } 545 EXPORT_SYMBOL_GPL(rcu_all_qs); 546 547 static long blimit = 10; /* Maximum callbacks per rcu_do_batch. */ 548 static long qhimark = 10000; /* If this many pending, ignore blimit. */ 549 static long qlowmark = 100; /* Once only this many pending, use blimit. */ 550 551 module_param(blimit, long, 0444); 552 module_param(qhimark, long, 0444); 553 module_param(qlowmark, long, 0444); 554 555 static ulong jiffies_till_first_fqs = ULONG_MAX; 556 static ulong jiffies_till_next_fqs = ULONG_MAX; 557 static bool rcu_kick_kthreads; 558 559 module_param(jiffies_till_first_fqs, ulong, 0644); 560 module_param(jiffies_till_next_fqs, ulong, 0644); 561 module_param(rcu_kick_kthreads, bool, 0644); 562 563 /* 564 * How long the grace period must be before we start recruiting 565 * quiescent-state help from rcu_note_context_switch(). 566 */ 567 static ulong jiffies_till_sched_qs = HZ / 20; 568 module_param(jiffies_till_sched_qs, ulong, 0644); 569 570 static bool rcu_start_gp_advanced(struct rcu_state *rsp, struct rcu_node *rnp, 571 struct rcu_data *rdp); 572 static void force_qs_rnp(struct rcu_state *rsp, 573 int (*f)(struct rcu_data *rsp, bool *isidle, 574 unsigned long *maxj), 575 bool *isidle, unsigned long *maxj); 576 static void force_quiescent_state(struct rcu_state *rsp); 577 static int rcu_pending(void); 578 579 /* 580 * Return the number of RCU batches started thus far for debug & stats. 581 */ 582 unsigned long rcu_batches_started(void) 583 { 584 return rcu_state_p->gpnum; 585 } 586 EXPORT_SYMBOL_GPL(rcu_batches_started); 587 588 /* 589 * Return the number of RCU-sched batches started thus far for debug & stats. 590 */ 591 unsigned long rcu_batches_started_sched(void) 592 { 593 return rcu_sched_state.gpnum; 594 } 595 EXPORT_SYMBOL_GPL(rcu_batches_started_sched); 596 597 /* 598 * Return the number of RCU BH batches started thus far for debug & stats. 599 */ 600 unsigned long rcu_batches_started_bh(void) 601 { 602 return rcu_bh_state.gpnum; 603 } 604 EXPORT_SYMBOL_GPL(rcu_batches_started_bh); 605 606 /* 607 * Return the number of RCU batches completed thus far for debug & stats. 608 */ 609 unsigned long rcu_batches_completed(void) 610 { 611 return rcu_state_p->completed; 612 } 613 EXPORT_SYMBOL_GPL(rcu_batches_completed); 614 615 /* 616 * Return the number of RCU-sched batches completed thus far for debug & stats. 617 */ 618 unsigned long rcu_batches_completed_sched(void) 619 { 620 return rcu_sched_state.completed; 621 } 622 EXPORT_SYMBOL_GPL(rcu_batches_completed_sched); 623 624 /* 625 * Return the number of RCU BH batches completed thus far for debug & stats. 626 */ 627 unsigned long rcu_batches_completed_bh(void) 628 { 629 return rcu_bh_state.completed; 630 } 631 EXPORT_SYMBOL_GPL(rcu_batches_completed_bh); 632 633 /* 634 * Return the number of RCU expedited batches completed thus far for 635 * debug & stats. Odd numbers mean that a batch is in progress, even 636 * numbers mean idle. The value returned will thus be roughly double 637 * the cumulative batches since boot. 638 */ 639 unsigned long rcu_exp_batches_completed(void) 640 { 641 return rcu_state_p->expedited_sequence; 642 } 643 EXPORT_SYMBOL_GPL(rcu_exp_batches_completed); 644 645 /* 646 * Return the number of RCU-sched expedited batches completed thus far 647 * for debug & stats. Similar to rcu_exp_batches_completed(). 648 */ 649 unsigned long rcu_exp_batches_completed_sched(void) 650 { 651 return rcu_sched_state.expedited_sequence; 652 } 653 EXPORT_SYMBOL_GPL(rcu_exp_batches_completed_sched); 654 655 /* 656 * Force a quiescent state. 657 */ 658 void rcu_force_quiescent_state(void) 659 { 660 force_quiescent_state(rcu_state_p); 661 } 662 EXPORT_SYMBOL_GPL(rcu_force_quiescent_state); 663 664 /* 665 * Force a quiescent state for RCU BH. 666 */ 667 void rcu_bh_force_quiescent_state(void) 668 { 669 force_quiescent_state(&rcu_bh_state); 670 } 671 EXPORT_SYMBOL_GPL(rcu_bh_force_quiescent_state); 672 673 /* 674 * Force a quiescent state for RCU-sched. 675 */ 676 void rcu_sched_force_quiescent_state(void) 677 { 678 force_quiescent_state(&rcu_sched_state); 679 } 680 EXPORT_SYMBOL_GPL(rcu_sched_force_quiescent_state); 681 682 /* 683 * Show the state of the grace-period kthreads. 684 */ 685 void show_rcu_gp_kthreads(void) 686 { 687 struct rcu_state *rsp; 688 689 for_each_rcu_flavor(rsp) { 690 pr_info("%s: wait state: %d ->state: %#lx\n", 691 rsp->name, rsp->gp_state, rsp->gp_kthread->state); 692 /* sched_show_task(rsp->gp_kthread); */ 693 } 694 } 695 EXPORT_SYMBOL_GPL(show_rcu_gp_kthreads); 696 697 /* 698 * Record the number of times rcutorture tests have been initiated and 699 * terminated. This information allows the debugfs tracing stats to be 700 * correlated to the rcutorture messages, even when the rcutorture module 701 * is being repeatedly loaded and unloaded. In other words, we cannot 702 * store this state in rcutorture itself. 703 */ 704 void rcutorture_record_test_transition(void) 705 { 706 rcutorture_testseq++; 707 rcutorture_vernum = 0; 708 } 709 EXPORT_SYMBOL_GPL(rcutorture_record_test_transition); 710 711 /* 712 * Send along grace-period-related data for rcutorture diagnostics. 713 */ 714 void rcutorture_get_gp_data(enum rcutorture_type test_type, int *flags, 715 unsigned long *gpnum, unsigned long *completed) 716 { 717 struct rcu_state *rsp = NULL; 718 719 switch (test_type) { 720 case RCU_FLAVOR: 721 rsp = rcu_state_p; 722 break; 723 case RCU_BH_FLAVOR: 724 rsp = &rcu_bh_state; 725 break; 726 case RCU_SCHED_FLAVOR: 727 rsp = &rcu_sched_state; 728 break; 729 default: 730 break; 731 } 732 if (rsp != NULL) { 733 *flags = READ_ONCE(rsp->gp_flags); 734 *gpnum = READ_ONCE(rsp->gpnum); 735 *completed = READ_ONCE(rsp->completed); 736 return; 737 } 738 *flags = 0; 739 *gpnum = 0; 740 *completed = 0; 741 } 742 EXPORT_SYMBOL_GPL(rcutorture_get_gp_data); 743 744 /* 745 * Record the number of writer passes through the current rcutorture test. 746 * This is also used to correlate debugfs tracing stats with the rcutorture 747 * messages. 748 */ 749 void rcutorture_record_progress(unsigned long vernum) 750 { 751 rcutorture_vernum++; 752 } 753 EXPORT_SYMBOL_GPL(rcutorture_record_progress); 754 755 /* 756 * Does the CPU have callbacks ready to be invoked? 757 */ 758 static int 759 cpu_has_callbacks_ready_to_invoke(struct rcu_data *rdp) 760 { 761 return &rdp->nxtlist != rdp->nxttail[RCU_DONE_TAIL] && 762 rdp->nxttail[RCU_NEXT_TAIL] != NULL; 763 } 764 765 /* 766 * Return the root node of the specified rcu_state structure. 767 */ 768 static struct rcu_node *rcu_get_root(struct rcu_state *rsp) 769 { 770 return &rsp->node[0]; 771 } 772 773 /* 774 * Is there any need for future grace periods? 775 * Interrupts must be disabled. If the caller does not hold the root 776 * rnp_node structure's ->lock, the results are advisory only. 777 */ 778 static int rcu_future_needs_gp(struct rcu_state *rsp) 779 { 780 struct rcu_node *rnp = rcu_get_root(rsp); 781 int idx = (READ_ONCE(rnp->completed) + 1) & 0x1; 782 int *fp = &rnp->need_future_gp[idx]; 783 784 return READ_ONCE(*fp); 785 } 786 787 /* 788 * Does the current CPU require a not-yet-started grace period? 789 * The caller must have disabled interrupts to prevent races with 790 * normal callback registry. 791 */ 792 static bool 793 cpu_needs_another_gp(struct rcu_state *rsp, struct rcu_data *rdp) 794 { 795 int i; 796 797 if (rcu_gp_in_progress(rsp)) 798 return false; /* No, a grace period is already in progress. */ 799 if (rcu_future_needs_gp(rsp)) 800 return true; /* Yes, a no-CBs CPU needs one. */ 801 if (!rdp->nxttail[RCU_NEXT_TAIL]) 802 return false; /* No, this is a no-CBs (or offline) CPU. */ 803 if (*rdp->nxttail[RCU_NEXT_READY_TAIL]) 804 return true; /* Yes, CPU has newly registered callbacks. */ 805 for (i = RCU_WAIT_TAIL; i < RCU_NEXT_TAIL; i++) 806 if (rdp->nxttail[i - 1] != rdp->nxttail[i] && 807 ULONG_CMP_LT(READ_ONCE(rsp->completed), 808 rdp->nxtcompleted[i])) 809 return true; /* Yes, CBs for future grace period. */ 810 return false; /* No grace period needed. */ 811 } 812 813 /* 814 * rcu_eqs_enter_common - current CPU is moving towards extended quiescent state 815 * 816 * If the new value of the ->dynticks_nesting counter now is zero, 817 * we really have entered idle, and must do the appropriate accounting. 818 * The caller must have disabled interrupts. 819 */ 820 static void rcu_eqs_enter_common(long long oldval, bool user) 821 { 822 struct rcu_state *rsp; 823 struct rcu_data *rdp; 824 RCU_TRACE(struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);) 825 826 trace_rcu_dyntick(TPS("Start"), oldval, rdtp->dynticks_nesting); 827 if (IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 828 !user && !is_idle_task(current)) { 829 struct task_struct *idle __maybe_unused = 830 idle_task(smp_processor_id()); 831 832 trace_rcu_dyntick(TPS("Error on entry: not idle task"), oldval, 0); 833 rcu_ftrace_dump(DUMP_ORIG); 834 WARN_ONCE(1, "Current pid: %d comm: %s / Idle pid: %d comm: %s", 835 current->pid, current->comm, 836 idle->pid, idle->comm); /* must be idle task! */ 837 } 838 for_each_rcu_flavor(rsp) { 839 rdp = this_cpu_ptr(rsp->rda); 840 do_nocb_deferred_wakeup(rdp); 841 } 842 rcu_prepare_for_idle(); 843 rcu_dynticks_eqs_enter(); 844 rcu_dynticks_task_enter(); 845 846 /* 847 * It is illegal to enter an extended quiescent state while 848 * in an RCU read-side critical section. 849 */ 850 RCU_LOCKDEP_WARN(lock_is_held(&rcu_lock_map), 851 "Illegal idle entry in RCU read-side critical section."); 852 RCU_LOCKDEP_WARN(lock_is_held(&rcu_bh_lock_map), 853 "Illegal idle entry in RCU-bh read-side critical section."); 854 RCU_LOCKDEP_WARN(lock_is_held(&rcu_sched_lock_map), 855 "Illegal idle entry in RCU-sched read-side critical section."); 856 } 857 858 /* 859 * Enter an RCU extended quiescent state, which can be either the 860 * idle loop or adaptive-tickless usermode execution. 861 */ 862 static void rcu_eqs_enter(bool user) 863 { 864 long long oldval; 865 struct rcu_dynticks *rdtp; 866 867 rdtp = this_cpu_ptr(&rcu_dynticks); 868 oldval = rdtp->dynticks_nesting; 869 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 870 (oldval & DYNTICK_TASK_NEST_MASK) == 0); 871 if ((oldval & DYNTICK_TASK_NEST_MASK) == DYNTICK_TASK_NEST_VALUE) { 872 rdtp->dynticks_nesting = 0; 873 rcu_eqs_enter_common(oldval, user); 874 } else { 875 rdtp->dynticks_nesting -= DYNTICK_TASK_NEST_VALUE; 876 } 877 } 878 879 /** 880 * rcu_idle_enter - inform RCU that current CPU is entering idle 881 * 882 * Enter idle mode, in other words, -leave- the mode in which RCU 883 * read-side critical sections can occur. (Though RCU read-side 884 * critical sections can occur in irq handlers in idle, a possibility 885 * handled by irq_enter() and irq_exit().) 886 * 887 * We crowbar the ->dynticks_nesting field to zero to allow for 888 * the possibility of usermode upcalls having messed up our count 889 * of interrupt nesting level during the prior busy period. 890 */ 891 void rcu_idle_enter(void) 892 { 893 unsigned long flags; 894 895 local_irq_save(flags); 896 rcu_eqs_enter(false); 897 rcu_sysidle_enter(0); 898 local_irq_restore(flags); 899 } 900 EXPORT_SYMBOL_GPL(rcu_idle_enter); 901 902 #ifdef CONFIG_NO_HZ_FULL 903 /** 904 * rcu_user_enter - inform RCU that we are resuming userspace. 905 * 906 * Enter RCU idle mode right before resuming userspace. No use of RCU 907 * is permitted between this call and rcu_user_exit(). This way the 908 * CPU doesn't need to maintain the tick for RCU maintenance purposes 909 * when the CPU runs in userspace. 910 */ 911 void rcu_user_enter(void) 912 { 913 rcu_eqs_enter(1); 914 } 915 #endif /* CONFIG_NO_HZ_FULL */ 916 917 /** 918 * rcu_irq_exit - inform RCU that current CPU is exiting irq towards idle 919 * 920 * Exit from an interrupt handler, which might possibly result in entering 921 * idle mode, in other words, leaving the mode in which read-side critical 922 * sections can occur. The caller must have disabled interrupts. 923 * 924 * This code assumes that the idle loop never does anything that might 925 * result in unbalanced calls to irq_enter() and irq_exit(). If your 926 * architecture violates this assumption, RCU will give you what you 927 * deserve, good and hard. But very infrequently and irreproducibly. 928 * 929 * Use things like work queues to work around this limitation. 930 * 931 * You have been warned. 932 */ 933 void rcu_irq_exit(void) 934 { 935 long long oldval; 936 struct rcu_dynticks *rdtp; 937 938 RCU_LOCKDEP_WARN(!irqs_disabled(), "rcu_irq_exit() invoked with irqs enabled!!!"); 939 rdtp = this_cpu_ptr(&rcu_dynticks); 940 oldval = rdtp->dynticks_nesting; 941 rdtp->dynticks_nesting--; 942 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 943 rdtp->dynticks_nesting < 0); 944 if (rdtp->dynticks_nesting) 945 trace_rcu_dyntick(TPS("--="), oldval, rdtp->dynticks_nesting); 946 else 947 rcu_eqs_enter_common(oldval, true); 948 rcu_sysidle_enter(1); 949 } 950 951 /* 952 * Wrapper for rcu_irq_exit() where interrupts are enabled. 953 */ 954 void rcu_irq_exit_irqson(void) 955 { 956 unsigned long flags; 957 958 local_irq_save(flags); 959 rcu_irq_exit(); 960 local_irq_restore(flags); 961 } 962 963 /* 964 * rcu_eqs_exit_common - current CPU moving away from extended quiescent state 965 * 966 * If the new value of the ->dynticks_nesting counter was previously zero, 967 * we really have exited idle, and must do the appropriate accounting. 968 * The caller must have disabled interrupts. 969 */ 970 static void rcu_eqs_exit_common(long long oldval, int user) 971 { 972 RCU_TRACE(struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);) 973 974 rcu_dynticks_task_exit(); 975 rcu_dynticks_eqs_exit(); 976 rcu_cleanup_after_idle(); 977 trace_rcu_dyntick(TPS("End"), oldval, rdtp->dynticks_nesting); 978 if (IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 979 !user && !is_idle_task(current)) { 980 struct task_struct *idle __maybe_unused = 981 idle_task(smp_processor_id()); 982 983 trace_rcu_dyntick(TPS("Error on exit: not idle task"), 984 oldval, rdtp->dynticks_nesting); 985 rcu_ftrace_dump(DUMP_ORIG); 986 WARN_ONCE(1, "Current pid: %d comm: %s / Idle pid: %d comm: %s", 987 current->pid, current->comm, 988 idle->pid, idle->comm); /* must be idle task! */ 989 } 990 } 991 992 /* 993 * Exit an RCU extended quiescent state, which can be either the 994 * idle loop or adaptive-tickless usermode execution. 995 */ 996 static void rcu_eqs_exit(bool user) 997 { 998 struct rcu_dynticks *rdtp; 999 long long oldval; 1000 1001 rdtp = this_cpu_ptr(&rcu_dynticks); 1002 oldval = rdtp->dynticks_nesting; 1003 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && oldval < 0); 1004 if (oldval & DYNTICK_TASK_NEST_MASK) { 1005 rdtp->dynticks_nesting += DYNTICK_TASK_NEST_VALUE; 1006 } else { 1007 rdtp->dynticks_nesting = DYNTICK_TASK_EXIT_IDLE; 1008 rcu_eqs_exit_common(oldval, user); 1009 } 1010 } 1011 1012 /** 1013 * rcu_idle_exit - inform RCU that current CPU is leaving idle 1014 * 1015 * Exit idle mode, in other words, -enter- the mode in which RCU 1016 * read-side critical sections can occur. 1017 * 1018 * We crowbar the ->dynticks_nesting field to DYNTICK_TASK_NEST to 1019 * allow for the possibility of usermode upcalls messing up our count 1020 * of interrupt nesting level during the busy period that is just 1021 * now starting. 1022 */ 1023 void rcu_idle_exit(void) 1024 { 1025 unsigned long flags; 1026 1027 local_irq_save(flags); 1028 rcu_eqs_exit(false); 1029 rcu_sysidle_exit(0); 1030 local_irq_restore(flags); 1031 } 1032 EXPORT_SYMBOL_GPL(rcu_idle_exit); 1033 1034 #ifdef CONFIG_NO_HZ_FULL 1035 /** 1036 * rcu_user_exit - inform RCU that we are exiting userspace. 1037 * 1038 * Exit RCU idle mode while entering the kernel because it can 1039 * run a RCU read side critical section anytime. 1040 */ 1041 void rcu_user_exit(void) 1042 { 1043 rcu_eqs_exit(1); 1044 } 1045 #endif /* CONFIG_NO_HZ_FULL */ 1046 1047 /** 1048 * rcu_irq_enter - inform RCU that current CPU is entering irq away from idle 1049 * 1050 * Enter an interrupt handler, which might possibly result in exiting 1051 * idle mode, in other words, entering the mode in which read-side critical 1052 * sections can occur. The caller must have disabled interrupts. 1053 * 1054 * Note that the Linux kernel is fully capable of entering an interrupt 1055 * handler that it never exits, for example when doing upcalls to 1056 * user mode! This code assumes that the idle loop never does upcalls to 1057 * user mode. If your architecture does do upcalls from the idle loop (or 1058 * does anything else that results in unbalanced calls to the irq_enter() 1059 * and irq_exit() functions), RCU will give you what you deserve, good 1060 * and hard. But very infrequently and irreproducibly. 1061 * 1062 * Use things like work queues to work around this limitation. 1063 * 1064 * You have been warned. 1065 */ 1066 void rcu_irq_enter(void) 1067 { 1068 struct rcu_dynticks *rdtp; 1069 long long oldval; 1070 1071 RCU_LOCKDEP_WARN(!irqs_disabled(), "rcu_irq_enter() invoked with irqs enabled!!!"); 1072 rdtp = this_cpu_ptr(&rcu_dynticks); 1073 oldval = rdtp->dynticks_nesting; 1074 rdtp->dynticks_nesting++; 1075 WARN_ON_ONCE(IS_ENABLED(CONFIG_RCU_EQS_DEBUG) && 1076 rdtp->dynticks_nesting == 0); 1077 if (oldval) 1078 trace_rcu_dyntick(TPS("++="), oldval, rdtp->dynticks_nesting); 1079 else 1080 rcu_eqs_exit_common(oldval, true); 1081 rcu_sysidle_exit(1); 1082 } 1083 1084 /* 1085 * Wrapper for rcu_irq_enter() where interrupts are enabled. 1086 */ 1087 void rcu_irq_enter_irqson(void) 1088 { 1089 unsigned long flags; 1090 1091 local_irq_save(flags); 1092 rcu_irq_enter(); 1093 local_irq_restore(flags); 1094 } 1095 1096 /** 1097 * rcu_nmi_enter - inform RCU of entry to NMI context 1098 * 1099 * If the CPU was idle from RCU's viewpoint, update rdtp->dynticks and 1100 * rdtp->dynticks_nmi_nesting to let the RCU grace-period handling know 1101 * that the CPU is active. This implementation permits nested NMIs, as 1102 * long as the nesting level does not overflow an int. (You will probably 1103 * run out of stack space first.) 1104 */ 1105 void rcu_nmi_enter(void) 1106 { 1107 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 1108 int incby = 2; 1109 1110 /* Complain about underflow. */ 1111 WARN_ON_ONCE(rdtp->dynticks_nmi_nesting < 0); 1112 1113 /* 1114 * If idle from RCU viewpoint, atomically increment ->dynticks 1115 * to mark non-idle and increment ->dynticks_nmi_nesting by one. 1116 * Otherwise, increment ->dynticks_nmi_nesting by two. This means 1117 * if ->dynticks_nmi_nesting is equal to one, we are guaranteed 1118 * to be in the outermost NMI handler that interrupted an RCU-idle 1119 * period (observation due to Andy Lutomirski). 1120 */ 1121 if (rcu_dynticks_curr_cpu_in_eqs()) { 1122 rcu_dynticks_eqs_exit(); 1123 incby = 1; 1124 } 1125 rdtp->dynticks_nmi_nesting += incby; 1126 barrier(); 1127 } 1128 1129 /** 1130 * rcu_nmi_exit - inform RCU of exit from NMI context 1131 * 1132 * If we are returning from the outermost NMI handler that interrupted an 1133 * RCU-idle period, update rdtp->dynticks and rdtp->dynticks_nmi_nesting 1134 * to let the RCU grace-period handling know that the CPU is back to 1135 * being RCU-idle. 1136 */ 1137 void rcu_nmi_exit(void) 1138 { 1139 struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks); 1140 1141 /* 1142 * Check for ->dynticks_nmi_nesting underflow and bad ->dynticks. 1143 * (We are exiting an NMI handler, so RCU better be paying attention 1144 * to us!) 1145 */ 1146 WARN_ON_ONCE(rdtp->dynticks_nmi_nesting <= 0); 1147 WARN_ON_ONCE(rcu_dynticks_curr_cpu_in_eqs()); 1148 1149 /* 1150 * If the nesting level is not 1, the CPU wasn't RCU-idle, so 1151 * leave it in non-RCU-idle state. 1152 */ 1153 if (rdtp->dynticks_nmi_nesting != 1) { 1154 rdtp->dynticks_nmi_nesting -= 2; 1155 return; 1156 } 1157 1158 /* This NMI interrupted an RCU-idle CPU, restore RCU-idleness. */ 1159 rdtp->dynticks_nmi_nesting = 0; 1160 rcu_dynticks_eqs_enter(); 1161 } 1162 1163 /** 1164 * __rcu_is_watching - are RCU read-side critical sections safe? 1165 * 1166 * Return true if RCU is watching the running CPU, which means that 1167 * this CPU can safely enter RCU read-side critical sections. Unlike 1168 * rcu_is_watching(), the caller of __rcu_is_watching() must have at 1169 * least disabled preemption. 1170 */ 1171 bool notrace __rcu_is_watching(void) 1172 { 1173 return !rcu_dynticks_curr_cpu_in_eqs(); 1174 } 1175 1176 /** 1177 * rcu_is_watching - see if RCU thinks that the current CPU is idle 1178 * 1179 * If the current CPU is in its idle loop and is neither in an interrupt 1180 * or NMI handler, return true. 1181 */ 1182 bool notrace rcu_is_watching(void) 1183 { 1184 bool ret; 1185 1186 preempt_disable_notrace(); 1187 ret = __rcu_is_watching(); 1188 preempt_enable_notrace(); 1189 return ret; 1190 } 1191 EXPORT_SYMBOL_GPL(rcu_is_watching); 1192 1193 #if defined(CONFIG_PROVE_RCU) && defined(CONFIG_HOTPLUG_CPU) 1194 1195 /* 1196 * Is the current CPU online? Disable preemption to avoid false positives 1197 * that could otherwise happen due to the current CPU number being sampled, 1198 * this task being preempted, its old CPU being taken offline, resuming 1199 * on some other CPU, then determining that its old CPU is now offline. 1200 * It is OK to use RCU on an offline processor during initial boot, hence 1201 * the check for rcu_scheduler_fully_active. Note also that it is OK 1202 * for a CPU coming online to use RCU for one jiffy prior to marking itself 1203 * online in the cpu_online_mask. Similarly, it is OK for a CPU going 1204 * offline to continue to use RCU for one jiffy after marking itself 1205 * offline in the cpu_online_mask. This leniency is necessary given the 1206 * non-atomic nature of the online and offline processing, for example, 1207 * the fact that a CPU enters the scheduler after completing the teardown 1208 * of the CPU. 1209 * 1210 * This is also why RCU internally marks CPUs online during in the 1211 * preparation phase and offline after the CPU has been taken down. 1212 * 1213 * Disable checking if in an NMI handler because we cannot safely report 1214 * errors from NMI handlers anyway. 1215 */ 1216 bool rcu_lockdep_current_cpu_online(void) 1217 { 1218 struct rcu_data *rdp; 1219 struct rcu_node *rnp; 1220 bool ret; 1221 1222 if (in_nmi()) 1223 return true; 1224 preempt_disable(); 1225 rdp = this_cpu_ptr(&rcu_sched_data); 1226 rnp = rdp->mynode; 1227 ret = (rdp->grpmask & rcu_rnp_online_cpus(rnp)) || 1228 !rcu_scheduler_fully_active; 1229 preempt_enable(); 1230 return ret; 1231 } 1232 EXPORT_SYMBOL_GPL(rcu_lockdep_current_cpu_online); 1233 1234 #endif /* #if defined(CONFIG_PROVE_RCU) && defined(CONFIG_HOTPLUG_CPU) */ 1235 1236 /** 1237 * rcu_is_cpu_rrupt_from_idle - see if idle or immediately interrupted from idle 1238 * 1239 * If the current CPU is idle or running at a first-level (not nested) 1240 * interrupt from idle, return true. The caller must have at least 1241 * disabled preemption. 1242 */ 1243 static int rcu_is_cpu_rrupt_from_idle(void) 1244 { 1245 return __this_cpu_read(rcu_dynticks.dynticks_nesting) <= 1; 1246 } 1247 1248 /* 1249 * Snapshot the specified CPU's dynticks counter so that we can later 1250 * credit them with an implicit quiescent state. Return 1 if this CPU 1251 * is in dynticks idle mode, which is an extended quiescent state. 1252 */ 1253 static int dyntick_save_progress_counter(struct rcu_data *rdp, 1254 bool *isidle, unsigned long *maxj) 1255 { 1256 rdp->dynticks_snap = rcu_dynticks_snap(rdp->dynticks); 1257 rcu_sysidle_check_cpu(rdp, isidle, maxj); 1258 if (rcu_dynticks_in_eqs(rdp->dynticks_snap)) { 1259 trace_rcu_fqs(rdp->rsp->name, rdp->gpnum, rdp->cpu, TPS("dti")); 1260 if (ULONG_CMP_LT(READ_ONCE(rdp->gpnum) + ULONG_MAX / 4, 1261 rdp->mynode->gpnum)) 1262 WRITE_ONCE(rdp->gpwrap, true); 1263 return 1; 1264 } 1265 return 0; 1266 } 1267 1268 /* 1269 * Return true if the specified CPU has passed through a quiescent 1270 * state by virtue of being in or having passed through an dynticks 1271 * idle state since the last call to dyntick_save_progress_counter() 1272 * for this same CPU, or by virtue of having been offline. 1273 */ 1274 static int rcu_implicit_dynticks_qs(struct rcu_data *rdp, 1275 bool *isidle, unsigned long *maxj) 1276 { 1277 unsigned long jtsq; 1278 int *rcrmp; 1279 unsigned long rjtsc; 1280 struct rcu_node *rnp; 1281 1282 /* 1283 * If the CPU passed through or entered a dynticks idle phase with 1284 * no active irq/NMI handlers, then we can safely pretend that the CPU 1285 * already acknowledged the request to pass through a quiescent 1286 * state. Either way, that CPU cannot possibly be in an RCU 1287 * read-side critical section that started before the beginning 1288 * of the current RCU grace period. 1289 */ 1290 if (rcu_dynticks_in_eqs_since(rdp->dynticks, rdp->dynticks_snap)) { 1291 trace_rcu_fqs(rdp->rsp->name, rdp->gpnum, rdp->cpu, TPS("dti")); 1292 rdp->dynticks_fqs++; 1293 return 1; 1294 } 1295 1296 /* Compute and saturate jiffies_till_sched_qs. */ 1297 jtsq = jiffies_till_sched_qs; 1298 rjtsc = rcu_jiffies_till_stall_check(); 1299 if (jtsq > rjtsc / 2) { 1300 WRITE_ONCE(jiffies_till_sched_qs, rjtsc); 1301 jtsq = rjtsc / 2; 1302 } else if (jtsq < 1) { 1303 WRITE_ONCE(jiffies_till_sched_qs, 1); 1304 jtsq = 1; 1305 } 1306 1307 /* 1308 * Has this CPU encountered a cond_resched_rcu_qs() since the 1309 * beginning of the grace period? For this to be the case, 1310 * the CPU has to have noticed the current grace period. This 1311 * might not be the case for nohz_full CPUs looping in the kernel. 1312 */ 1313 rnp = rdp->mynode; 1314 if (time_after(jiffies, rdp->rsp->gp_start + jtsq) && 1315 READ_ONCE(rdp->rcu_qs_ctr_snap) != per_cpu(rcu_dynticks.rcu_qs_ctr, rdp->cpu) && 1316 READ_ONCE(rdp->gpnum) == rnp->gpnum && !rdp->gpwrap) { 1317 trace_rcu_fqs(rdp->rsp->name, rdp->gpnum, rdp->cpu, TPS("rqc")); 1318 return 1; 1319 } 1320 1321 /* Check for the CPU being offline. */ 1322 if (!(rdp->grpmask & rcu_rnp_online_cpus(rnp))) { 1323 trace_rcu_fqs(rdp->rsp->name, rdp->gpnum, rdp->cpu, TPS("ofl")); 1324 rdp->offline_fqs++; 1325 return 1; 1326 } 1327 1328 /* 1329 * A CPU running for an extended time within the kernel can 1330 * delay RCU grace periods. When the CPU is in NO_HZ_FULL mode, 1331 * even context-switching back and forth between a pair of 1332 * in-kernel CPU-bound tasks cannot advance grace periods. 1333 * So if the grace period is old enough, make the CPU pay attention. 1334 * Note that the unsynchronized assignments to the per-CPU 1335 * rcu_sched_qs_mask variable are safe. Yes, setting of 1336 * bits can be lost, but they will be set again on the next 1337 * force-quiescent-state pass. So lost bit sets do not result 1338 * in incorrect behavior, merely in a grace period lasting 1339 * a few jiffies longer than it might otherwise. Because 1340 * there are at most four threads involved, and because the 1341 * updates are only once every few jiffies, the probability of 1342 * lossage (and thus of slight grace-period extension) is 1343 * quite low. 1344 * 1345 * Note that if the jiffies_till_sched_qs boot/sysfs parameter 1346 * is set too high, we override with half of the RCU CPU stall 1347 * warning delay. 1348 */ 1349 rcrmp = &per_cpu(rcu_dynticks.rcu_sched_qs_mask, rdp->cpu); 1350 if (time_after(jiffies, rdp->rsp->gp_start + jtsq) || 1351 time_after(jiffies, rdp->rsp->jiffies_resched)) { 1352 if (!(READ_ONCE(*rcrmp) & rdp->rsp->flavor_mask)) { 1353 WRITE_ONCE(rdp->cond_resched_completed, 1354 READ_ONCE(rdp->mynode->completed)); 1355 smp_mb(); /* ->cond_resched_completed before *rcrmp. */ 1356 WRITE_ONCE(*rcrmp, 1357 READ_ONCE(*rcrmp) + rdp->rsp->flavor_mask); 1358 } 1359 rdp->rsp->jiffies_resched += 5; /* Re-enable beating. */ 1360 } 1361 1362 /* 1363 * If more than halfway to RCU CPU stall-warning time, do 1364 * a resched_cpu() to try to loosen things up a bit. 1365 */ 1366 if (jiffies - rdp->rsp->gp_start > rcu_jiffies_till_stall_check() / 2) 1367 resched_cpu(rdp->cpu); 1368 1369 return 0; 1370 } 1371 1372 static void record_gp_stall_check_time(struct rcu_state *rsp) 1373 { 1374 unsigned long j = jiffies; 1375 unsigned long j1; 1376 1377 rsp->gp_start = j; 1378 smp_wmb(); /* Record start time before stall time. */ 1379 j1 = rcu_jiffies_till_stall_check(); 1380 WRITE_ONCE(rsp->jiffies_stall, j + j1); 1381 rsp->jiffies_resched = j + j1 / 2; 1382 rsp->n_force_qs_gpstart = READ_ONCE(rsp->n_force_qs); 1383 } 1384 1385 /* 1386 * Convert a ->gp_state value to a character string. 1387 */ 1388 static const char *gp_state_getname(short gs) 1389 { 1390 if (gs < 0 || gs >= ARRAY_SIZE(gp_state_names)) 1391 return "???"; 1392 return gp_state_names[gs]; 1393 } 1394 1395 /* 1396 * Complain about starvation of grace-period kthread. 1397 */ 1398 static void rcu_check_gp_kthread_starvation(struct rcu_state *rsp) 1399 { 1400 unsigned long gpa; 1401 unsigned long j; 1402 1403 j = jiffies; 1404 gpa = READ_ONCE(rsp->gp_activity); 1405 if (j - gpa > 2 * HZ) { 1406 pr_err("%s kthread starved for %ld jiffies! g%lu c%lu f%#x %s(%d) ->state=%#lx\n", 1407 rsp->name, j - gpa, 1408 rsp->gpnum, rsp->completed, 1409 rsp->gp_flags, 1410 gp_state_getname(rsp->gp_state), rsp->gp_state, 1411 rsp->gp_kthread ? rsp->gp_kthread->state : ~0); 1412 if (rsp->gp_kthread) { 1413 sched_show_task(rsp->gp_kthread); 1414 wake_up_process(rsp->gp_kthread); 1415 } 1416 } 1417 } 1418 1419 /* 1420 * Dump stacks of all tasks running on stalled CPUs. First try using 1421 * NMIs, but fall back to manual remote stack tracing on architectures 1422 * that don't support NMI-based stack dumps. The NMI-triggered stack 1423 * traces are more accurate because they are printed by the target CPU. 1424 */ 1425 static void rcu_dump_cpu_stacks(struct rcu_state *rsp) 1426 { 1427 int cpu; 1428 unsigned long flags; 1429 struct rcu_node *rnp; 1430 1431 rcu_for_each_leaf_node(rsp, rnp) { 1432 raw_spin_lock_irqsave_rcu_node(rnp, flags); 1433 for_each_leaf_node_possible_cpu(rnp, cpu) 1434 if (rnp->qsmask & leaf_node_cpu_bit(rnp, cpu)) 1435 if (!trigger_single_cpu_backtrace(cpu)) 1436 dump_cpu_task(cpu); 1437 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 1438 } 1439 } 1440 1441 /* 1442 * If too much time has passed in the current grace period, and if 1443 * so configured, go kick the relevant kthreads. 1444 */ 1445 static void rcu_stall_kick_kthreads(struct rcu_state *rsp) 1446 { 1447 unsigned long j; 1448 1449 if (!rcu_kick_kthreads) 1450 return; 1451 j = READ_ONCE(rsp->jiffies_kick_kthreads); 1452 if (time_after(jiffies, j) && rsp->gp_kthread && 1453 (rcu_gp_in_progress(rsp) || READ_ONCE(rsp->gp_flags))) { 1454 WARN_ONCE(1, "Kicking %s grace-period kthread\n", rsp->name); 1455 rcu_ftrace_dump(DUMP_ALL); 1456 wake_up_process(rsp->gp_kthread); 1457 WRITE_ONCE(rsp->jiffies_kick_kthreads, j + HZ); 1458 } 1459 } 1460 1461 static inline void panic_on_rcu_stall(void) 1462 { 1463 if (sysctl_panic_on_rcu_stall) 1464 panic("RCU Stall\n"); 1465 } 1466 1467 static void print_other_cpu_stall(struct rcu_state *rsp, unsigned long gpnum) 1468 { 1469 int cpu; 1470 long delta; 1471 unsigned long flags; 1472 unsigned long gpa; 1473 unsigned long j; 1474 int ndetected = 0; 1475 struct rcu_node *rnp = rcu_get_root(rsp); 1476 long totqlen = 0; 1477 1478 /* Kick and suppress, if so configured. */ 1479 rcu_stall_kick_kthreads(rsp); 1480 if (rcu_cpu_stall_suppress) 1481 return; 1482 1483 /* Only let one CPU complain about others per time interval. */ 1484 1485 raw_spin_lock_irqsave_rcu_node(rnp, flags); 1486 delta = jiffies - READ_ONCE(rsp->jiffies_stall); 1487 if (delta < RCU_STALL_RAT_DELAY || !rcu_gp_in_progress(rsp)) { 1488 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 1489 return; 1490 } 1491 WRITE_ONCE(rsp->jiffies_stall, 1492 jiffies + 3 * rcu_jiffies_till_stall_check() + 3); 1493 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 1494 1495 /* 1496 * OK, time to rat on our buddy... 1497 * See Documentation/RCU/stallwarn.txt for info on how to debug 1498 * RCU CPU stall warnings. 1499 */ 1500 pr_err("INFO: %s detected stalls on CPUs/tasks:", 1501 rsp->name); 1502 print_cpu_stall_info_begin(); 1503 rcu_for_each_leaf_node(rsp, rnp) { 1504 raw_spin_lock_irqsave_rcu_node(rnp, flags); 1505 ndetected += rcu_print_task_stall(rnp); 1506 if (rnp->qsmask != 0) { 1507 for_each_leaf_node_possible_cpu(rnp, cpu) 1508 if (rnp->qsmask & leaf_node_cpu_bit(rnp, cpu)) { 1509 print_cpu_stall_info(rsp, cpu); 1510 ndetected++; 1511 } 1512 } 1513 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 1514 } 1515 1516 print_cpu_stall_info_end(); 1517 for_each_possible_cpu(cpu) 1518 totqlen += per_cpu_ptr(rsp->rda, cpu)->qlen; 1519 pr_cont("(detected by %d, t=%ld jiffies, g=%ld, c=%ld, q=%lu)\n", 1520 smp_processor_id(), (long)(jiffies - rsp->gp_start), 1521 (long)rsp->gpnum, (long)rsp->completed, totqlen); 1522 if (ndetected) { 1523 rcu_dump_cpu_stacks(rsp); 1524 1525 /* Complain about tasks blocking the grace period. */ 1526 rcu_print_detail_task_stall(rsp); 1527 } else { 1528 if (READ_ONCE(rsp->gpnum) != gpnum || 1529 READ_ONCE(rsp->completed) == gpnum) { 1530 pr_err("INFO: Stall ended before state dump start\n"); 1531 } else { 1532 j = jiffies; 1533 gpa = READ_ONCE(rsp->gp_activity); 1534 pr_err("All QSes seen, last %s kthread activity %ld (%ld-%ld), jiffies_till_next_fqs=%ld, root ->qsmask %#lx\n", 1535 rsp->name, j - gpa, j, gpa, 1536 jiffies_till_next_fqs, 1537 rcu_get_root(rsp)->qsmask); 1538 /* In this case, the current CPU might be at fault. */ 1539 sched_show_task(current); 1540 } 1541 } 1542 1543 rcu_check_gp_kthread_starvation(rsp); 1544 1545 panic_on_rcu_stall(); 1546 1547 force_quiescent_state(rsp); /* Kick them all. */ 1548 } 1549 1550 static void print_cpu_stall(struct rcu_state *rsp) 1551 { 1552 int cpu; 1553 unsigned long flags; 1554 struct rcu_node *rnp = rcu_get_root(rsp); 1555 long totqlen = 0; 1556 1557 /* Kick and suppress, if so configured. */ 1558 rcu_stall_kick_kthreads(rsp); 1559 if (rcu_cpu_stall_suppress) 1560 return; 1561 1562 /* 1563 * OK, time to rat on ourselves... 1564 * See Documentation/RCU/stallwarn.txt for info on how to debug 1565 * RCU CPU stall warnings. 1566 */ 1567 pr_err("INFO: %s self-detected stall on CPU", rsp->name); 1568 print_cpu_stall_info_begin(); 1569 print_cpu_stall_info(rsp, smp_processor_id()); 1570 print_cpu_stall_info_end(); 1571 for_each_possible_cpu(cpu) 1572 totqlen += per_cpu_ptr(rsp->rda, cpu)->qlen; 1573 pr_cont(" (t=%lu jiffies g=%ld c=%ld q=%lu)\n", 1574 jiffies - rsp->gp_start, 1575 (long)rsp->gpnum, (long)rsp->completed, totqlen); 1576 1577 rcu_check_gp_kthread_starvation(rsp); 1578 1579 rcu_dump_cpu_stacks(rsp); 1580 1581 raw_spin_lock_irqsave_rcu_node(rnp, flags); 1582 if (ULONG_CMP_GE(jiffies, READ_ONCE(rsp->jiffies_stall))) 1583 WRITE_ONCE(rsp->jiffies_stall, 1584 jiffies + 3 * rcu_jiffies_till_stall_check() + 3); 1585 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 1586 1587 panic_on_rcu_stall(); 1588 1589 /* 1590 * Attempt to revive the RCU machinery by forcing a context switch. 1591 * 1592 * A context switch would normally allow the RCU state machine to make 1593 * progress and it could be we're stuck in kernel space without context 1594 * switches for an entirely unreasonable amount of time. 1595 */ 1596 resched_cpu(smp_processor_id()); 1597 } 1598 1599 static void check_cpu_stall(struct rcu_state *rsp, struct rcu_data *rdp) 1600 { 1601 unsigned long completed; 1602 unsigned long gpnum; 1603 unsigned long gps; 1604 unsigned long j; 1605 unsigned long js; 1606 struct rcu_node *rnp; 1607 1608 if ((rcu_cpu_stall_suppress && !rcu_kick_kthreads) || 1609 !rcu_gp_in_progress(rsp)) 1610 return; 1611 rcu_stall_kick_kthreads(rsp); 1612 j = jiffies; 1613 1614 /* 1615 * Lots of memory barriers to reject false positives. 1616 * 1617 * The idea is to pick up rsp->gpnum, then rsp->jiffies_stall, 1618 * then rsp->gp_start, and finally rsp->completed. These values 1619 * are updated in the opposite order with memory barriers (or 1620 * equivalent) during grace-period initialization and cleanup. 1621 * Now, a false positive can occur if we get an new value of 1622 * rsp->gp_start and a old value of rsp->jiffies_stall. But given 1623 * the memory barriers, the only way that this can happen is if one 1624 * grace period ends and another starts between these two fetches. 1625 * Detect this by comparing rsp->completed with the previous fetch 1626 * from rsp->gpnum. 1627 * 1628 * Given this check, comparisons of jiffies, rsp->jiffies_stall, 1629 * and rsp->gp_start suffice to forestall false positives. 1630 */ 1631 gpnum = READ_ONCE(rsp->gpnum); 1632 smp_rmb(); /* Pick up ->gpnum first... */ 1633 js = READ_ONCE(rsp->jiffies_stall); 1634 smp_rmb(); /* ...then ->jiffies_stall before the rest... */ 1635 gps = READ_ONCE(rsp->gp_start); 1636 smp_rmb(); /* ...and finally ->gp_start before ->completed. */ 1637 completed = READ_ONCE(rsp->completed); 1638 if (ULONG_CMP_GE(completed, gpnum) || 1639 ULONG_CMP_LT(j, js) || 1640 ULONG_CMP_GE(gps, js)) 1641 return; /* No stall or GP completed since entering function. */ 1642 rnp = rdp->mynode; 1643 if (rcu_gp_in_progress(rsp) && 1644 (READ_ONCE(rnp->qsmask) & rdp->grpmask)) { 1645 1646 /* We haven't checked in, so go dump stack. */ 1647 print_cpu_stall(rsp); 1648 1649 } else if (rcu_gp_in_progress(rsp) && 1650 ULONG_CMP_GE(j, js + RCU_STALL_RAT_DELAY)) { 1651 1652 /* They had a few time units to dump stack, so complain. */ 1653 print_other_cpu_stall(rsp, gpnum); 1654 } 1655 } 1656 1657 /** 1658 * rcu_cpu_stall_reset - prevent further stall warnings in current grace period 1659 * 1660 * Set the stall-warning timeout way off into the future, thus preventing 1661 * any RCU CPU stall-warning messages from appearing in the current set of 1662 * RCU grace periods. 1663 * 1664 * The caller must disable hard irqs. 1665 */ 1666 void rcu_cpu_stall_reset(void) 1667 { 1668 struct rcu_state *rsp; 1669 1670 for_each_rcu_flavor(rsp) 1671 WRITE_ONCE(rsp->jiffies_stall, jiffies + ULONG_MAX / 2); 1672 } 1673 1674 /* 1675 * Initialize the specified rcu_data structure's default callback list 1676 * to empty. The default callback list is the one that is not used by 1677 * no-callbacks CPUs. 1678 */ 1679 static void init_default_callback_list(struct rcu_data *rdp) 1680 { 1681 int i; 1682 1683 rdp->nxtlist = NULL; 1684 for (i = 0; i < RCU_NEXT_SIZE; i++) 1685 rdp->nxttail[i] = &rdp->nxtlist; 1686 } 1687 1688 /* 1689 * Initialize the specified rcu_data structure's callback list to empty. 1690 */ 1691 static void init_callback_list(struct rcu_data *rdp) 1692 { 1693 if (init_nocb_callback_list(rdp)) 1694 return; 1695 init_default_callback_list(rdp); 1696 } 1697 1698 /* 1699 * Determine the value that ->completed will have at the end of the 1700 * next subsequent grace period. This is used to tag callbacks so that 1701 * a CPU can invoke callbacks in a timely fashion even if that CPU has 1702 * been dyntick-idle for an extended period with callbacks under the 1703 * influence of RCU_FAST_NO_HZ. 1704 * 1705 * The caller must hold rnp->lock with interrupts disabled. 1706 */ 1707 static unsigned long rcu_cbs_completed(struct rcu_state *rsp, 1708 struct rcu_node *rnp) 1709 { 1710 /* 1711 * If RCU is idle, we just wait for the next grace period. 1712 * But we can only be sure that RCU is idle if we are looking 1713 * at the root rcu_node structure -- otherwise, a new grace 1714 * period might have started, but just not yet gotten around 1715 * to initializing the current non-root rcu_node structure. 1716 */ 1717 if (rcu_get_root(rsp) == rnp && rnp->gpnum == rnp->completed) 1718 return rnp->completed + 1; 1719 1720 /* 1721 * Otherwise, wait for a possible partial grace period and 1722 * then the subsequent full grace period. 1723 */ 1724 return rnp->completed + 2; 1725 } 1726 1727 /* 1728 * Trace-event helper function for rcu_start_future_gp() and 1729 * rcu_nocb_wait_gp(). 1730 */ 1731 static void trace_rcu_future_gp(struct rcu_node *rnp, struct rcu_data *rdp, 1732 unsigned long c, const char *s) 1733 { 1734 trace_rcu_future_grace_period(rdp->rsp->name, rnp->gpnum, 1735 rnp->completed, c, rnp->level, 1736 rnp->grplo, rnp->grphi, s); 1737 } 1738 1739 /* 1740 * Start some future grace period, as needed to handle newly arrived 1741 * callbacks. The required future grace periods are recorded in each 1742 * rcu_node structure's ->need_future_gp field. Returns true if there 1743 * is reason to awaken the grace-period kthread. 1744 * 1745 * The caller must hold the specified rcu_node structure's ->lock. 1746 */ 1747 static bool __maybe_unused 1748 rcu_start_future_gp(struct rcu_node *rnp, struct rcu_data *rdp, 1749 unsigned long *c_out) 1750 { 1751 unsigned long c; 1752 int i; 1753 bool ret = false; 1754 struct rcu_node *rnp_root = rcu_get_root(rdp->rsp); 1755 1756 /* 1757 * Pick up grace-period number for new callbacks. If this 1758 * grace period is already marked as needed, return to the caller. 1759 */ 1760 c = rcu_cbs_completed(rdp->rsp, rnp); 1761 trace_rcu_future_gp(rnp, rdp, c, TPS("Startleaf")); 1762 if (rnp->need_future_gp[c & 0x1]) { 1763 trace_rcu_future_gp(rnp, rdp, c, TPS("Prestartleaf")); 1764 goto out; 1765 } 1766 1767 /* 1768 * If either this rcu_node structure or the root rcu_node structure 1769 * believe that a grace period is in progress, then we must wait 1770 * for the one following, which is in "c". Because our request 1771 * will be noticed at the end of the current grace period, we don't 1772 * need to explicitly start one. We only do the lockless check 1773 * of rnp_root's fields if the current rcu_node structure thinks 1774 * there is no grace period in flight, and because we hold rnp->lock, 1775 * the only possible change is when rnp_root's two fields are 1776 * equal, in which case rnp_root->gpnum might be concurrently 1777 * incremented. But that is OK, as it will just result in our 1778 * doing some extra useless work. 1779 */ 1780 if (rnp->gpnum != rnp->completed || 1781 READ_ONCE(rnp_root->gpnum) != READ_ONCE(rnp_root->completed)) { 1782 rnp->need_future_gp[c & 0x1]++; 1783 trace_rcu_future_gp(rnp, rdp, c, TPS("Startedleaf")); 1784 goto out; 1785 } 1786 1787 /* 1788 * There might be no grace period in progress. If we don't already 1789 * hold it, acquire the root rcu_node structure's lock in order to 1790 * start one (if needed). 1791 */ 1792 if (rnp != rnp_root) 1793 raw_spin_lock_rcu_node(rnp_root); 1794 1795 /* 1796 * Get a new grace-period number. If there really is no grace 1797 * period in progress, it will be smaller than the one we obtained 1798 * earlier. Adjust callbacks as needed. Note that even no-CBs 1799 * CPUs have a ->nxtcompleted[] array, so no no-CBs checks needed. 1800 */ 1801 c = rcu_cbs_completed(rdp->rsp, rnp_root); 1802 for (i = RCU_DONE_TAIL; i < RCU_NEXT_TAIL; i++) 1803 if (ULONG_CMP_LT(c, rdp->nxtcompleted[i])) 1804 rdp->nxtcompleted[i] = c; 1805 1806 /* 1807 * If the needed for the required grace period is already 1808 * recorded, trace and leave. 1809 */ 1810 if (rnp_root->need_future_gp[c & 0x1]) { 1811 trace_rcu_future_gp(rnp, rdp, c, TPS("Prestartedroot")); 1812 goto unlock_out; 1813 } 1814 1815 /* Record the need for the future grace period. */ 1816 rnp_root->need_future_gp[c & 0x1]++; 1817 1818 /* If a grace period is not already in progress, start one. */ 1819 if (rnp_root->gpnum != rnp_root->completed) { 1820 trace_rcu_future_gp(rnp, rdp, c, TPS("Startedleafroot")); 1821 } else { 1822 trace_rcu_future_gp(rnp, rdp, c, TPS("Startedroot")); 1823 ret = rcu_start_gp_advanced(rdp->rsp, rnp_root, rdp); 1824 } 1825 unlock_out: 1826 if (rnp != rnp_root) 1827 raw_spin_unlock_rcu_node(rnp_root); 1828 out: 1829 if (c_out != NULL) 1830 *c_out = c; 1831 return ret; 1832 } 1833 1834 /* 1835 * Clean up any old requests for the just-ended grace period. Also return 1836 * whether any additional grace periods have been requested. Also invoke 1837 * rcu_nocb_gp_cleanup() in order to wake up any no-callbacks kthreads 1838 * waiting for this grace period to complete. 1839 */ 1840 static int rcu_future_gp_cleanup(struct rcu_state *rsp, struct rcu_node *rnp) 1841 { 1842 int c = rnp->completed; 1843 int needmore; 1844 struct rcu_data *rdp = this_cpu_ptr(rsp->rda); 1845 1846 rnp->need_future_gp[c & 0x1] = 0; 1847 needmore = rnp->need_future_gp[(c + 1) & 0x1]; 1848 trace_rcu_future_gp(rnp, rdp, c, 1849 needmore ? TPS("CleanupMore") : TPS("Cleanup")); 1850 return needmore; 1851 } 1852 1853 /* 1854 * Awaken the grace-period kthread for the specified flavor of RCU. 1855 * Don't do a self-awaken, and don't bother awakening when there is 1856 * nothing for the grace-period kthread to do (as in several CPUs 1857 * raced to awaken, and we lost), and finally don't try to awaken 1858 * a kthread that has not yet been created. 1859 */ 1860 static void rcu_gp_kthread_wake(struct rcu_state *rsp) 1861 { 1862 if (current == rsp->gp_kthread || 1863 !READ_ONCE(rsp->gp_flags) || 1864 !rsp->gp_kthread) 1865 return; 1866 swake_up(&rsp->gp_wq); 1867 } 1868 1869 /* 1870 * If there is room, assign a ->completed number to any callbacks on 1871 * this CPU that have not already been assigned. Also accelerate any 1872 * callbacks that were previously assigned a ->completed number that has 1873 * since proven to be too conservative, which can happen if callbacks get 1874 * assigned a ->completed number while RCU is idle, but with reference to 1875 * a non-root rcu_node structure. This function is idempotent, so it does 1876 * not hurt to call it repeatedly. Returns an flag saying that we should 1877 * awaken the RCU grace-period kthread. 1878 * 1879 * The caller must hold rnp->lock with interrupts disabled. 1880 */ 1881 static bool rcu_accelerate_cbs(struct rcu_state *rsp, struct rcu_node *rnp, 1882 struct rcu_data *rdp) 1883 { 1884 unsigned long c; 1885 int i; 1886 bool ret; 1887 1888 /* If the CPU has no callbacks, nothing to do. */ 1889 if (!rdp->nxttail[RCU_NEXT_TAIL] || !*rdp->nxttail[RCU_DONE_TAIL]) 1890 return false; 1891 1892 /* 1893 * Starting from the sublist containing the callbacks most 1894 * recently assigned a ->completed number and working down, find the 1895 * first sublist that is not assignable to an upcoming grace period. 1896 * Such a sublist has something in it (first two tests) and has 1897 * a ->completed number assigned that will complete sooner than 1898 * the ->completed number for newly arrived callbacks (last test). 1899 * 1900 * The key point is that any later sublist can be assigned the 1901 * same ->completed number as the newly arrived callbacks, which 1902 * means that the callbacks in any of these later sublist can be 1903 * grouped into a single sublist, whether or not they have already 1904 * been assigned a ->completed number. 1905 */ 1906 c = rcu_cbs_completed(rsp, rnp); 1907 for (i = RCU_NEXT_TAIL - 1; i > RCU_DONE_TAIL; i--) 1908 if (rdp->nxttail[i] != rdp->nxttail[i - 1] && 1909 !ULONG_CMP_GE(rdp->nxtcompleted[i], c)) 1910 break; 1911 1912 /* 1913 * If there are no sublist for unassigned callbacks, leave. 1914 * At the same time, advance "i" one sublist, so that "i" will 1915 * index into the sublist where all the remaining callbacks should 1916 * be grouped into. 1917 */ 1918 if (++i >= RCU_NEXT_TAIL) 1919 return false; 1920 1921 /* 1922 * Assign all subsequent callbacks' ->completed number to the next 1923 * full grace period and group them all in the sublist initially 1924 * indexed by "i". 1925 */ 1926 for (; i <= RCU_NEXT_TAIL; i++) { 1927 rdp->nxttail[i] = rdp->nxttail[RCU_NEXT_TAIL]; 1928 rdp->nxtcompleted[i] = c; 1929 } 1930 /* Record any needed additional grace periods. */ 1931 ret = rcu_start_future_gp(rnp, rdp, NULL); 1932 1933 /* Trace depending on how much we were able to accelerate. */ 1934 if (!*rdp->nxttail[RCU_WAIT_TAIL]) 1935 trace_rcu_grace_period(rsp->name, rdp->gpnum, TPS("AccWaitCB")); 1936 else 1937 trace_rcu_grace_period(rsp->name, rdp->gpnum, TPS("AccReadyCB")); 1938 return ret; 1939 } 1940 1941 /* 1942 * Move any callbacks whose grace period has completed to the 1943 * RCU_DONE_TAIL sublist, then compact the remaining sublists and 1944 * assign ->completed numbers to any callbacks in the RCU_NEXT_TAIL 1945 * sublist. This function is idempotent, so it does not hurt to 1946 * invoke it repeatedly. As long as it is not invoked -too- often... 1947 * Returns true if the RCU grace-period kthread needs to be awakened. 1948 * 1949 * The caller must hold rnp->lock with interrupts disabled. 1950 */ 1951 static bool rcu_advance_cbs(struct rcu_state *rsp, struct rcu_node *rnp, 1952 struct rcu_data *rdp) 1953 { 1954 int i, j; 1955 1956 /* If the CPU has no callbacks, nothing to do. */ 1957 if (!rdp->nxttail[RCU_NEXT_TAIL] || !*rdp->nxttail[RCU_DONE_TAIL]) 1958 return false; 1959 1960 /* 1961 * Find all callbacks whose ->completed numbers indicate that they 1962 * are ready to invoke, and put them into the RCU_DONE_TAIL sublist. 1963 */ 1964 for (i = RCU_WAIT_TAIL; i < RCU_NEXT_TAIL; i++) { 1965 if (ULONG_CMP_LT(rnp->completed, rdp->nxtcompleted[i])) 1966 break; 1967 rdp->nxttail[RCU_DONE_TAIL] = rdp->nxttail[i]; 1968 } 1969 /* Clean up any sublist tail pointers that were misordered above. */ 1970 for (j = RCU_WAIT_TAIL; j < i; j++) 1971 rdp->nxttail[j] = rdp->nxttail[RCU_DONE_TAIL]; 1972 1973 /* Copy down callbacks to fill in empty sublists. */ 1974 for (j = RCU_WAIT_TAIL; i < RCU_NEXT_TAIL; i++, j++) { 1975 if (rdp->nxttail[j] == rdp->nxttail[RCU_NEXT_TAIL]) 1976 break; 1977 rdp->nxttail[j] = rdp->nxttail[i]; 1978 rdp->nxtcompleted[j] = rdp->nxtcompleted[i]; 1979 } 1980 1981 /* Classify any remaining callbacks. */ 1982 return rcu_accelerate_cbs(rsp, rnp, rdp); 1983 } 1984 1985 /* 1986 * Update CPU-local rcu_data state to record the beginnings and ends of 1987 * grace periods. The caller must hold the ->lock of the leaf rcu_node 1988 * structure corresponding to the current CPU, and must have irqs disabled. 1989 * Returns true if the grace-period kthread needs to be awakened. 1990 */ 1991 static bool __note_gp_changes(struct rcu_state *rsp, struct rcu_node *rnp, 1992 struct rcu_data *rdp) 1993 { 1994 bool ret; 1995 bool need_gp; 1996 1997 /* Handle the ends of any preceding grace periods first. */ 1998 if (rdp->completed == rnp->completed && 1999 !unlikely(READ_ONCE(rdp->gpwrap))) { 2000 2001 /* No grace period end, so just accelerate recent callbacks. */ 2002 ret = rcu_accelerate_cbs(rsp, rnp, rdp); 2003 2004 } else { 2005 2006 /* Advance callbacks. */ 2007 ret = rcu_advance_cbs(rsp, rnp, rdp); 2008 2009 /* Remember that we saw this grace-period completion. */ 2010 rdp->completed = rnp->completed; 2011 trace_rcu_grace_period(rsp->name, rdp->gpnum, TPS("cpuend")); 2012 } 2013 2014 if (rdp->gpnum != rnp->gpnum || unlikely(READ_ONCE(rdp->gpwrap))) { 2015 /* 2016 * If the current grace period is waiting for this CPU, 2017 * set up to detect a quiescent state, otherwise don't 2018 * go looking for one. 2019 */ 2020 rdp->gpnum = rnp->gpnum; 2021 trace_rcu_grace_period(rsp->name, rdp->gpnum, TPS("cpustart")); 2022 need_gp = !!(rnp->qsmask & rdp->grpmask); 2023 rdp->cpu_no_qs.b.norm = need_gp; 2024 rdp->rcu_qs_ctr_snap = __this_cpu_read(rcu_dynticks.rcu_qs_ctr); 2025 rdp->core_needs_qs = need_gp; 2026 zero_cpu_stall_ticks(rdp); 2027 WRITE_ONCE(rdp->gpwrap, false); 2028 } 2029 return ret; 2030 } 2031 2032 static void note_gp_changes(struct rcu_state *rsp, struct rcu_data *rdp) 2033 { 2034 unsigned long flags; 2035 bool needwake; 2036 struct rcu_node *rnp; 2037 2038 local_irq_save(flags); 2039 rnp = rdp->mynode; 2040 if ((rdp->gpnum == READ_ONCE(rnp->gpnum) && 2041 rdp->completed == READ_ONCE(rnp->completed) && 2042 !unlikely(READ_ONCE(rdp->gpwrap))) || /* w/out lock. */ 2043 !raw_spin_trylock_rcu_node(rnp)) { /* irqs already off, so later. */ 2044 local_irq_restore(flags); 2045 return; 2046 } 2047 needwake = __note_gp_changes(rsp, rnp, rdp); 2048 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2049 if (needwake) 2050 rcu_gp_kthread_wake(rsp); 2051 } 2052 2053 static void rcu_gp_slow(struct rcu_state *rsp, int delay) 2054 { 2055 if (delay > 0 && 2056 !(rsp->gpnum % (rcu_num_nodes * PER_RCU_NODE_PERIOD * delay))) 2057 schedule_timeout_uninterruptible(delay); 2058 } 2059 2060 /* 2061 * Initialize a new grace period. Return false if no grace period required. 2062 */ 2063 static bool rcu_gp_init(struct rcu_state *rsp) 2064 { 2065 unsigned long oldmask; 2066 struct rcu_data *rdp; 2067 struct rcu_node *rnp = rcu_get_root(rsp); 2068 2069 WRITE_ONCE(rsp->gp_activity, jiffies); 2070 raw_spin_lock_irq_rcu_node(rnp); 2071 if (!READ_ONCE(rsp->gp_flags)) { 2072 /* Spurious wakeup, tell caller to go back to sleep. */ 2073 raw_spin_unlock_irq_rcu_node(rnp); 2074 return false; 2075 } 2076 WRITE_ONCE(rsp->gp_flags, 0); /* Clear all flags: New grace period. */ 2077 2078 if (WARN_ON_ONCE(rcu_gp_in_progress(rsp))) { 2079 /* 2080 * Grace period already in progress, don't start another. 2081 * Not supposed to be able to happen. 2082 */ 2083 raw_spin_unlock_irq_rcu_node(rnp); 2084 return false; 2085 } 2086 2087 /* Advance to a new grace period and initialize state. */ 2088 record_gp_stall_check_time(rsp); 2089 /* Record GP times before starting GP, hence smp_store_release(). */ 2090 smp_store_release(&rsp->gpnum, rsp->gpnum + 1); 2091 trace_rcu_grace_period(rsp->name, rsp->gpnum, TPS("start")); 2092 raw_spin_unlock_irq_rcu_node(rnp); 2093 2094 /* 2095 * Apply per-leaf buffered online and offline operations to the 2096 * rcu_node tree. Note that this new grace period need not wait 2097 * for subsequent online CPUs, and that quiescent-state forcing 2098 * will handle subsequent offline CPUs. 2099 */ 2100 rcu_for_each_leaf_node(rsp, rnp) { 2101 rcu_gp_slow(rsp, gp_preinit_delay); 2102 raw_spin_lock_irq_rcu_node(rnp); 2103 if (rnp->qsmaskinit == rnp->qsmaskinitnext && 2104 !rnp->wait_blkd_tasks) { 2105 /* Nothing to do on this leaf rcu_node structure. */ 2106 raw_spin_unlock_irq_rcu_node(rnp); 2107 continue; 2108 } 2109 2110 /* Record old state, apply changes to ->qsmaskinit field. */ 2111 oldmask = rnp->qsmaskinit; 2112 rnp->qsmaskinit = rnp->qsmaskinitnext; 2113 2114 /* If zero-ness of ->qsmaskinit changed, propagate up tree. */ 2115 if (!oldmask != !rnp->qsmaskinit) { 2116 if (!oldmask) /* First online CPU for this rcu_node. */ 2117 rcu_init_new_rnp(rnp); 2118 else if (rcu_preempt_has_tasks(rnp)) /* blocked tasks */ 2119 rnp->wait_blkd_tasks = true; 2120 else /* Last offline CPU and can propagate. */ 2121 rcu_cleanup_dead_rnp(rnp); 2122 } 2123 2124 /* 2125 * If all waited-on tasks from prior grace period are 2126 * done, and if all this rcu_node structure's CPUs are 2127 * still offline, propagate up the rcu_node tree and 2128 * clear ->wait_blkd_tasks. Otherwise, if one of this 2129 * rcu_node structure's CPUs has since come back online, 2130 * simply clear ->wait_blkd_tasks (but rcu_cleanup_dead_rnp() 2131 * checks for this, so just call it unconditionally). 2132 */ 2133 if (rnp->wait_blkd_tasks && 2134 (!rcu_preempt_has_tasks(rnp) || 2135 rnp->qsmaskinit)) { 2136 rnp->wait_blkd_tasks = false; 2137 rcu_cleanup_dead_rnp(rnp); 2138 } 2139 2140 raw_spin_unlock_irq_rcu_node(rnp); 2141 } 2142 2143 /* 2144 * Set the quiescent-state-needed bits in all the rcu_node 2145 * structures for all currently online CPUs in breadth-first order, 2146 * starting from the root rcu_node structure, relying on the layout 2147 * of the tree within the rsp->node[] array. Note that other CPUs 2148 * will access only the leaves of the hierarchy, thus seeing that no 2149 * grace period is in progress, at least until the corresponding 2150 * leaf node has been initialized. 2151 * 2152 * The grace period cannot complete until the initialization 2153 * process finishes, because this kthread handles both. 2154 */ 2155 rcu_for_each_node_breadth_first(rsp, rnp) { 2156 rcu_gp_slow(rsp, gp_init_delay); 2157 raw_spin_lock_irq_rcu_node(rnp); 2158 rdp = this_cpu_ptr(rsp->rda); 2159 rcu_preempt_check_blocked_tasks(rnp); 2160 rnp->qsmask = rnp->qsmaskinit; 2161 WRITE_ONCE(rnp->gpnum, rsp->gpnum); 2162 if (WARN_ON_ONCE(rnp->completed != rsp->completed)) 2163 WRITE_ONCE(rnp->completed, rsp->completed); 2164 if (rnp == rdp->mynode) 2165 (void)__note_gp_changes(rsp, rnp, rdp); 2166 rcu_preempt_boost_start_gp(rnp); 2167 trace_rcu_grace_period_init(rsp->name, rnp->gpnum, 2168 rnp->level, rnp->grplo, 2169 rnp->grphi, rnp->qsmask); 2170 raw_spin_unlock_irq_rcu_node(rnp); 2171 cond_resched_rcu_qs(); 2172 WRITE_ONCE(rsp->gp_activity, jiffies); 2173 } 2174 2175 return true; 2176 } 2177 2178 /* 2179 * Helper function for wait_event_interruptible_timeout() wakeup 2180 * at force-quiescent-state time. 2181 */ 2182 static bool rcu_gp_fqs_check_wake(struct rcu_state *rsp, int *gfp) 2183 { 2184 struct rcu_node *rnp = rcu_get_root(rsp); 2185 2186 /* Someone like call_rcu() requested a force-quiescent-state scan. */ 2187 *gfp = READ_ONCE(rsp->gp_flags); 2188 if (*gfp & RCU_GP_FLAG_FQS) 2189 return true; 2190 2191 /* The current grace period has completed. */ 2192 if (!READ_ONCE(rnp->qsmask) && !rcu_preempt_blocked_readers_cgp(rnp)) 2193 return true; 2194 2195 return false; 2196 } 2197 2198 /* 2199 * Do one round of quiescent-state forcing. 2200 */ 2201 static void rcu_gp_fqs(struct rcu_state *rsp, bool first_time) 2202 { 2203 bool isidle = false; 2204 unsigned long maxj; 2205 struct rcu_node *rnp = rcu_get_root(rsp); 2206 2207 WRITE_ONCE(rsp->gp_activity, jiffies); 2208 rsp->n_force_qs++; 2209 if (first_time) { 2210 /* Collect dyntick-idle snapshots. */ 2211 if (is_sysidle_rcu_state(rsp)) { 2212 isidle = true; 2213 maxj = jiffies - ULONG_MAX / 4; 2214 } 2215 force_qs_rnp(rsp, dyntick_save_progress_counter, 2216 &isidle, &maxj); 2217 rcu_sysidle_report_gp(rsp, isidle, maxj); 2218 } else { 2219 /* Handle dyntick-idle and offline CPUs. */ 2220 isidle = true; 2221 force_qs_rnp(rsp, rcu_implicit_dynticks_qs, &isidle, &maxj); 2222 } 2223 /* Clear flag to prevent immediate re-entry. */ 2224 if (READ_ONCE(rsp->gp_flags) & RCU_GP_FLAG_FQS) { 2225 raw_spin_lock_irq_rcu_node(rnp); 2226 WRITE_ONCE(rsp->gp_flags, 2227 READ_ONCE(rsp->gp_flags) & ~RCU_GP_FLAG_FQS); 2228 raw_spin_unlock_irq_rcu_node(rnp); 2229 } 2230 } 2231 2232 /* 2233 * Clean up after the old grace period. 2234 */ 2235 static void rcu_gp_cleanup(struct rcu_state *rsp) 2236 { 2237 unsigned long gp_duration; 2238 bool needgp = false; 2239 int nocb = 0; 2240 struct rcu_data *rdp; 2241 struct rcu_node *rnp = rcu_get_root(rsp); 2242 struct swait_queue_head *sq; 2243 2244 WRITE_ONCE(rsp->gp_activity, jiffies); 2245 raw_spin_lock_irq_rcu_node(rnp); 2246 gp_duration = jiffies - rsp->gp_start; 2247 if (gp_duration > rsp->gp_max) 2248 rsp->gp_max = gp_duration; 2249 2250 /* 2251 * We know the grace period is complete, but to everyone else 2252 * it appears to still be ongoing. But it is also the case 2253 * that to everyone else it looks like there is nothing that 2254 * they can do to advance the grace period. It is therefore 2255 * safe for us to drop the lock in order to mark the grace 2256 * period as completed in all of the rcu_node structures. 2257 */ 2258 raw_spin_unlock_irq_rcu_node(rnp); 2259 2260 /* 2261 * Propagate new ->completed value to rcu_node structures so 2262 * that other CPUs don't have to wait until the start of the next 2263 * grace period to process their callbacks. This also avoids 2264 * some nasty RCU grace-period initialization races by forcing 2265 * the end of the current grace period to be completely recorded in 2266 * all of the rcu_node structures before the beginning of the next 2267 * grace period is recorded in any of the rcu_node structures. 2268 */ 2269 rcu_for_each_node_breadth_first(rsp, rnp) { 2270 raw_spin_lock_irq_rcu_node(rnp); 2271 WARN_ON_ONCE(rcu_preempt_blocked_readers_cgp(rnp)); 2272 WARN_ON_ONCE(rnp->qsmask); 2273 WRITE_ONCE(rnp->completed, rsp->gpnum); 2274 rdp = this_cpu_ptr(rsp->rda); 2275 if (rnp == rdp->mynode) 2276 needgp = __note_gp_changes(rsp, rnp, rdp) || needgp; 2277 /* smp_mb() provided by prior unlock-lock pair. */ 2278 nocb += rcu_future_gp_cleanup(rsp, rnp); 2279 sq = rcu_nocb_gp_get(rnp); 2280 raw_spin_unlock_irq_rcu_node(rnp); 2281 rcu_nocb_gp_cleanup(sq); 2282 cond_resched_rcu_qs(); 2283 WRITE_ONCE(rsp->gp_activity, jiffies); 2284 rcu_gp_slow(rsp, gp_cleanup_delay); 2285 } 2286 rnp = rcu_get_root(rsp); 2287 raw_spin_lock_irq_rcu_node(rnp); /* Order GP before ->completed update. */ 2288 rcu_nocb_gp_set(rnp, nocb); 2289 2290 /* Declare grace period done. */ 2291 WRITE_ONCE(rsp->completed, rsp->gpnum); 2292 trace_rcu_grace_period(rsp->name, rsp->completed, TPS("end")); 2293 rsp->gp_state = RCU_GP_IDLE; 2294 rdp = this_cpu_ptr(rsp->rda); 2295 /* Advance CBs to reduce false positives below. */ 2296 needgp = rcu_advance_cbs(rsp, rnp, rdp) || needgp; 2297 if (needgp || cpu_needs_another_gp(rsp, rdp)) { 2298 WRITE_ONCE(rsp->gp_flags, RCU_GP_FLAG_INIT); 2299 trace_rcu_grace_period(rsp->name, 2300 READ_ONCE(rsp->gpnum), 2301 TPS("newreq")); 2302 } 2303 raw_spin_unlock_irq_rcu_node(rnp); 2304 } 2305 2306 /* 2307 * Body of kthread that handles grace periods. 2308 */ 2309 static int __noreturn rcu_gp_kthread(void *arg) 2310 { 2311 bool first_gp_fqs; 2312 int gf; 2313 unsigned long j; 2314 int ret; 2315 struct rcu_state *rsp = arg; 2316 struct rcu_node *rnp = rcu_get_root(rsp); 2317 2318 rcu_bind_gp_kthread(); 2319 for (;;) { 2320 2321 /* Handle grace-period start. */ 2322 for (;;) { 2323 trace_rcu_grace_period(rsp->name, 2324 READ_ONCE(rsp->gpnum), 2325 TPS("reqwait")); 2326 rsp->gp_state = RCU_GP_WAIT_GPS; 2327 swait_event_interruptible(rsp->gp_wq, 2328 READ_ONCE(rsp->gp_flags) & 2329 RCU_GP_FLAG_INIT); 2330 rsp->gp_state = RCU_GP_DONE_GPS; 2331 /* Locking provides needed memory barrier. */ 2332 if (rcu_gp_init(rsp)) 2333 break; 2334 cond_resched_rcu_qs(); 2335 WRITE_ONCE(rsp->gp_activity, jiffies); 2336 WARN_ON(signal_pending(current)); 2337 trace_rcu_grace_period(rsp->name, 2338 READ_ONCE(rsp->gpnum), 2339 TPS("reqwaitsig")); 2340 } 2341 2342 /* Handle quiescent-state forcing. */ 2343 first_gp_fqs = true; 2344 j = jiffies_till_first_fqs; 2345 if (j > HZ) { 2346 j = HZ; 2347 jiffies_till_first_fqs = HZ; 2348 } 2349 ret = 0; 2350 for (;;) { 2351 if (!ret) { 2352 rsp->jiffies_force_qs = jiffies + j; 2353 WRITE_ONCE(rsp->jiffies_kick_kthreads, 2354 jiffies + 3 * j); 2355 } 2356 trace_rcu_grace_period(rsp->name, 2357 READ_ONCE(rsp->gpnum), 2358 TPS("fqswait")); 2359 rsp->gp_state = RCU_GP_WAIT_FQS; 2360 ret = swait_event_interruptible_timeout(rsp->gp_wq, 2361 rcu_gp_fqs_check_wake(rsp, &gf), j); 2362 rsp->gp_state = RCU_GP_DOING_FQS; 2363 /* Locking provides needed memory barriers. */ 2364 /* If grace period done, leave loop. */ 2365 if (!READ_ONCE(rnp->qsmask) && 2366 !rcu_preempt_blocked_readers_cgp(rnp)) 2367 break; 2368 /* If time for quiescent-state forcing, do it. */ 2369 if (ULONG_CMP_GE(jiffies, rsp->jiffies_force_qs) || 2370 (gf & RCU_GP_FLAG_FQS)) { 2371 trace_rcu_grace_period(rsp->name, 2372 READ_ONCE(rsp->gpnum), 2373 TPS("fqsstart")); 2374 rcu_gp_fqs(rsp, first_gp_fqs); 2375 first_gp_fqs = false; 2376 trace_rcu_grace_period(rsp->name, 2377 READ_ONCE(rsp->gpnum), 2378 TPS("fqsend")); 2379 cond_resched_rcu_qs(); 2380 WRITE_ONCE(rsp->gp_activity, jiffies); 2381 ret = 0; /* Force full wait till next FQS. */ 2382 j = jiffies_till_next_fqs; 2383 if (j > HZ) { 2384 j = HZ; 2385 jiffies_till_next_fqs = HZ; 2386 } else if (j < 1) { 2387 j = 1; 2388 jiffies_till_next_fqs = 1; 2389 } 2390 } else { 2391 /* Deal with stray signal. */ 2392 cond_resched_rcu_qs(); 2393 WRITE_ONCE(rsp->gp_activity, jiffies); 2394 WARN_ON(signal_pending(current)); 2395 trace_rcu_grace_period(rsp->name, 2396 READ_ONCE(rsp->gpnum), 2397 TPS("fqswaitsig")); 2398 ret = 1; /* Keep old FQS timing. */ 2399 j = jiffies; 2400 if (time_after(jiffies, rsp->jiffies_force_qs)) 2401 j = 1; 2402 else 2403 j = rsp->jiffies_force_qs - j; 2404 } 2405 } 2406 2407 /* Handle grace-period end. */ 2408 rsp->gp_state = RCU_GP_CLEANUP; 2409 rcu_gp_cleanup(rsp); 2410 rsp->gp_state = RCU_GP_CLEANED; 2411 } 2412 } 2413 2414 /* 2415 * Start a new RCU grace period if warranted, re-initializing the hierarchy 2416 * in preparation for detecting the next grace period. The caller must hold 2417 * the root node's ->lock and hard irqs must be disabled. 2418 * 2419 * Note that it is legal for a dying CPU (which is marked as offline) to 2420 * invoke this function. This can happen when the dying CPU reports its 2421 * quiescent state. 2422 * 2423 * Returns true if the grace-period kthread must be awakened. 2424 */ 2425 static bool 2426 rcu_start_gp_advanced(struct rcu_state *rsp, struct rcu_node *rnp, 2427 struct rcu_data *rdp) 2428 { 2429 if (!rsp->gp_kthread || !cpu_needs_another_gp(rsp, rdp)) { 2430 /* 2431 * Either we have not yet spawned the grace-period 2432 * task, this CPU does not need another grace period, 2433 * or a grace period is already in progress. 2434 * Either way, don't start a new grace period. 2435 */ 2436 return false; 2437 } 2438 WRITE_ONCE(rsp->gp_flags, RCU_GP_FLAG_INIT); 2439 trace_rcu_grace_period(rsp->name, READ_ONCE(rsp->gpnum), 2440 TPS("newreq")); 2441 2442 /* 2443 * We can't do wakeups while holding the rnp->lock, as that 2444 * could cause possible deadlocks with the rq->lock. Defer 2445 * the wakeup to our caller. 2446 */ 2447 return true; 2448 } 2449 2450 /* 2451 * Similar to rcu_start_gp_advanced(), but also advance the calling CPU's 2452 * callbacks. Note that rcu_start_gp_advanced() cannot do this because it 2453 * is invoked indirectly from rcu_advance_cbs(), which would result in 2454 * endless recursion -- or would do so if it wasn't for the self-deadlock 2455 * that is encountered beforehand. 2456 * 2457 * Returns true if the grace-period kthread needs to be awakened. 2458 */ 2459 static bool rcu_start_gp(struct rcu_state *rsp) 2460 { 2461 struct rcu_data *rdp = this_cpu_ptr(rsp->rda); 2462 struct rcu_node *rnp = rcu_get_root(rsp); 2463 bool ret = false; 2464 2465 /* 2466 * If there is no grace period in progress right now, any 2467 * callbacks we have up to this point will be satisfied by the 2468 * next grace period. Also, advancing the callbacks reduces the 2469 * probability of false positives from cpu_needs_another_gp() 2470 * resulting in pointless grace periods. So, advance callbacks 2471 * then start the grace period! 2472 */ 2473 ret = rcu_advance_cbs(rsp, rnp, rdp) || ret; 2474 ret = rcu_start_gp_advanced(rsp, rnp, rdp) || ret; 2475 return ret; 2476 } 2477 2478 /* 2479 * Report a full set of quiescent states to the specified rcu_state data 2480 * structure. Invoke rcu_gp_kthread_wake() to awaken the grace-period 2481 * kthread if another grace period is required. Whether we wake 2482 * the grace-period kthread or it awakens itself for the next round 2483 * of quiescent-state forcing, that kthread will clean up after the 2484 * just-completed grace period. Note that the caller must hold rnp->lock, 2485 * which is released before return. 2486 */ 2487 static void rcu_report_qs_rsp(struct rcu_state *rsp, unsigned long flags) 2488 __releases(rcu_get_root(rsp)->lock) 2489 { 2490 WARN_ON_ONCE(!rcu_gp_in_progress(rsp)); 2491 WRITE_ONCE(rsp->gp_flags, READ_ONCE(rsp->gp_flags) | RCU_GP_FLAG_FQS); 2492 raw_spin_unlock_irqrestore_rcu_node(rcu_get_root(rsp), flags); 2493 rcu_gp_kthread_wake(rsp); 2494 } 2495 2496 /* 2497 * Similar to rcu_report_qs_rdp(), for which it is a helper function. 2498 * Allows quiescent states for a group of CPUs to be reported at one go 2499 * to the specified rcu_node structure, though all the CPUs in the group 2500 * must be represented by the same rcu_node structure (which need not be a 2501 * leaf rcu_node structure, though it often will be). The gps parameter 2502 * is the grace-period snapshot, which means that the quiescent states 2503 * are valid only if rnp->gpnum is equal to gps. That structure's lock 2504 * must be held upon entry, and it is released before return. 2505 */ 2506 static void 2507 rcu_report_qs_rnp(unsigned long mask, struct rcu_state *rsp, 2508 struct rcu_node *rnp, unsigned long gps, unsigned long flags) 2509 __releases(rnp->lock) 2510 { 2511 unsigned long oldmask = 0; 2512 struct rcu_node *rnp_c; 2513 2514 /* Walk up the rcu_node hierarchy. */ 2515 for (;;) { 2516 if (!(rnp->qsmask & mask) || rnp->gpnum != gps) { 2517 2518 /* 2519 * Our bit has already been cleared, or the 2520 * relevant grace period is already over, so done. 2521 */ 2522 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2523 return; 2524 } 2525 WARN_ON_ONCE(oldmask); /* Any child must be all zeroed! */ 2526 rnp->qsmask &= ~mask; 2527 trace_rcu_quiescent_state_report(rsp->name, rnp->gpnum, 2528 mask, rnp->qsmask, rnp->level, 2529 rnp->grplo, rnp->grphi, 2530 !!rnp->gp_tasks); 2531 if (rnp->qsmask != 0 || rcu_preempt_blocked_readers_cgp(rnp)) { 2532 2533 /* Other bits still set at this level, so done. */ 2534 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2535 return; 2536 } 2537 mask = rnp->grpmask; 2538 if (rnp->parent == NULL) { 2539 2540 /* No more levels. Exit loop holding root lock. */ 2541 2542 break; 2543 } 2544 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2545 rnp_c = rnp; 2546 rnp = rnp->parent; 2547 raw_spin_lock_irqsave_rcu_node(rnp, flags); 2548 oldmask = rnp_c->qsmask; 2549 } 2550 2551 /* 2552 * Get here if we are the last CPU to pass through a quiescent 2553 * state for this grace period. Invoke rcu_report_qs_rsp() 2554 * to clean up and start the next grace period if one is needed. 2555 */ 2556 rcu_report_qs_rsp(rsp, flags); /* releases rnp->lock. */ 2557 } 2558 2559 /* 2560 * Record a quiescent state for all tasks that were previously queued 2561 * on the specified rcu_node structure and that were blocking the current 2562 * RCU grace period. The caller must hold the specified rnp->lock with 2563 * irqs disabled, and this lock is released upon return, but irqs remain 2564 * disabled. 2565 */ 2566 static void rcu_report_unblock_qs_rnp(struct rcu_state *rsp, 2567 struct rcu_node *rnp, unsigned long flags) 2568 __releases(rnp->lock) 2569 { 2570 unsigned long gps; 2571 unsigned long mask; 2572 struct rcu_node *rnp_p; 2573 2574 if (rcu_state_p == &rcu_sched_state || rsp != rcu_state_p || 2575 rnp->qsmask != 0 || rcu_preempt_blocked_readers_cgp(rnp)) { 2576 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2577 return; /* Still need more quiescent states! */ 2578 } 2579 2580 rnp_p = rnp->parent; 2581 if (rnp_p == NULL) { 2582 /* 2583 * Only one rcu_node structure in the tree, so don't 2584 * try to report up to its nonexistent parent! 2585 */ 2586 rcu_report_qs_rsp(rsp, flags); 2587 return; 2588 } 2589 2590 /* Report up the rest of the hierarchy, tracking current ->gpnum. */ 2591 gps = rnp->gpnum; 2592 mask = rnp->grpmask; 2593 raw_spin_unlock_rcu_node(rnp); /* irqs remain disabled. */ 2594 raw_spin_lock_rcu_node(rnp_p); /* irqs already disabled. */ 2595 rcu_report_qs_rnp(mask, rsp, rnp_p, gps, flags); 2596 } 2597 2598 /* 2599 * Record a quiescent state for the specified CPU to that CPU's rcu_data 2600 * structure. This must be called from the specified CPU. 2601 */ 2602 static void 2603 rcu_report_qs_rdp(int cpu, struct rcu_state *rsp, struct rcu_data *rdp) 2604 { 2605 unsigned long flags; 2606 unsigned long mask; 2607 bool needwake; 2608 struct rcu_node *rnp; 2609 2610 rnp = rdp->mynode; 2611 raw_spin_lock_irqsave_rcu_node(rnp, flags); 2612 if (rdp->cpu_no_qs.b.norm || rdp->gpnum != rnp->gpnum || 2613 rnp->completed == rnp->gpnum || rdp->gpwrap) { 2614 2615 /* 2616 * The grace period in which this quiescent state was 2617 * recorded has ended, so don't report it upwards. 2618 * We will instead need a new quiescent state that lies 2619 * within the current grace period. 2620 */ 2621 rdp->cpu_no_qs.b.norm = true; /* need qs for new gp. */ 2622 rdp->rcu_qs_ctr_snap = __this_cpu_read(rcu_dynticks.rcu_qs_ctr); 2623 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2624 return; 2625 } 2626 mask = rdp->grpmask; 2627 if ((rnp->qsmask & mask) == 0) { 2628 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 2629 } else { 2630 rdp->core_needs_qs = false; 2631 2632 /* 2633 * This GP can't end until cpu checks in, so all of our 2634 * callbacks can be processed during the next GP. 2635 */ 2636 needwake = rcu_accelerate_cbs(rsp, rnp, rdp); 2637 2638 rcu_report_qs_rnp(mask, rsp, rnp, rnp->gpnum, flags); 2639 /* ^^^ Released rnp->lock */ 2640 if (needwake) 2641 rcu_gp_kthread_wake(rsp); 2642 } 2643 } 2644 2645 /* 2646 * Check to see if there is a new grace period of which this CPU 2647 * is not yet aware, and if so, set up local rcu_data state for it. 2648 * Otherwise, see if this CPU has just passed through its first 2649 * quiescent state for this grace period, and record that fact if so. 2650 */ 2651 static void 2652 rcu_check_quiescent_state(struct rcu_state *rsp, struct rcu_data *rdp) 2653 { 2654 /* Check for grace-period ends and beginnings. */ 2655 note_gp_changes(rsp, rdp); 2656 2657 /* 2658 * Does this CPU still need to do its part for current grace period? 2659 * If no, return and let the other CPUs do their part as well. 2660 */ 2661 if (!rdp->core_needs_qs) 2662 return; 2663 2664 /* 2665 * Was there a quiescent state since the beginning of the grace 2666 * period? If no, then exit and wait for the next call. 2667 */ 2668 if (rdp->cpu_no_qs.b.norm) 2669 return; 2670 2671 /* 2672 * Tell RCU we are done (but rcu_report_qs_rdp() will be the 2673 * judge of that). 2674 */ 2675 rcu_report_qs_rdp(rdp->cpu, rsp, rdp); 2676 } 2677 2678 /* 2679 * Send the specified CPU's RCU callbacks to the orphanage. The 2680 * specified CPU must be offline, and the caller must hold the 2681 * ->orphan_lock. 2682 */ 2683 static void 2684 rcu_send_cbs_to_orphanage(int cpu, struct rcu_state *rsp, 2685 struct rcu_node *rnp, struct rcu_data *rdp) 2686 { 2687 /* No-CBs CPUs do not have orphanable callbacks. */ 2688 if (!IS_ENABLED(CONFIG_HOTPLUG_CPU) || rcu_is_nocb_cpu(rdp->cpu)) 2689 return; 2690 2691 /* 2692 * Orphan the callbacks. First adjust the counts. This is safe 2693 * because _rcu_barrier() excludes CPU-hotplug operations, so it 2694 * cannot be running now. Thus no memory barrier is required. 2695 */ 2696 if (rdp->nxtlist != NULL) { 2697 rsp->qlen_lazy += rdp->qlen_lazy; 2698 rsp->qlen += rdp->qlen; 2699 rdp->n_cbs_orphaned += rdp->qlen; 2700 rdp->qlen_lazy = 0; 2701 WRITE_ONCE(rdp->qlen, 0); 2702 } 2703 2704 /* 2705 * Next, move those callbacks still needing a grace period to 2706 * the orphanage, where some other CPU will pick them up. 2707 * Some of the callbacks might have gone partway through a grace 2708 * period, but that is too bad. They get to start over because we 2709 * cannot assume that grace periods are synchronized across CPUs. 2710 * We don't bother updating the ->nxttail[] array yet, instead 2711 * we just reset the whole thing later on. 2712 */ 2713 if (*rdp->nxttail[RCU_DONE_TAIL] != NULL) { 2714 *rsp->orphan_nxttail = *rdp->nxttail[RCU_DONE_TAIL]; 2715 rsp->orphan_nxttail = rdp->nxttail[RCU_NEXT_TAIL]; 2716 *rdp->nxttail[RCU_DONE_TAIL] = NULL; 2717 } 2718 2719 /* 2720 * Then move the ready-to-invoke callbacks to the orphanage, 2721 * where some other CPU will pick them up. These will not be 2722 * required to pass though another grace period: They are done. 2723 */ 2724 if (rdp->nxtlist != NULL) { 2725 *rsp->orphan_donetail = rdp->nxtlist; 2726 rsp->orphan_donetail = rdp->nxttail[RCU_DONE_TAIL]; 2727 } 2728 2729 /* 2730 * Finally, initialize the rcu_data structure's list to empty and 2731 * disallow further callbacks on this CPU. 2732 */ 2733 init_callback_list(rdp); 2734 rdp->nxttail[RCU_NEXT_TAIL] = NULL; 2735 } 2736 2737 /* 2738 * Adopt the RCU callbacks from the specified rcu_state structure's 2739 * orphanage. The caller must hold the ->orphan_lock. 2740 */ 2741 static void rcu_adopt_orphan_cbs(struct rcu_state *rsp, unsigned long flags) 2742 { 2743 int i; 2744 struct rcu_data *rdp = raw_cpu_ptr(rsp->rda); 2745 2746 /* No-CBs CPUs are handled specially. */ 2747 if (!IS_ENABLED(CONFIG_HOTPLUG_CPU) || 2748 rcu_nocb_adopt_orphan_cbs(rsp, rdp, flags)) 2749 return; 2750 2751 /* Do the accounting first. */ 2752 rdp->qlen_lazy += rsp->qlen_lazy; 2753 rdp->qlen += rsp->qlen; 2754 rdp->n_cbs_adopted += rsp->qlen; 2755 if (rsp->qlen_lazy != rsp->qlen) 2756 rcu_idle_count_callbacks_posted(); 2757 rsp->qlen_lazy = 0; 2758 rsp->qlen = 0; 2759 2760 /* 2761 * We do not need a memory barrier here because the only way we 2762 * can get here if there is an rcu_barrier() in flight is if 2763 * we are the task doing the rcu_barrier(). 2764 */ 2765 2766 /* First adopt the ready-to-invoke callbacks. */ 2767 if (rsp->orphan_donelist != NULL) { 2768 *rsp->orphan_donetail = *rdp->nxttail[RCU_DONE_TAIL]; 2769 *rdp->nxttail[RCU_DONE_TAIL] = rsp->orphan_donelist; 2770 for (i = RCU_NEXT_SIZE - 1; i >= RCU_DONE_TAIL; i--) 2771 if (rdp->nxttail[i] == rdp->nxttail[RCU_DONE_TAIL]) 2772 rdp->nxttail[i] = rsp->orphan_donetail; 2773 rsp->orphan_donelist = NULL; 2774 rsp->orphan_donetail = &rsp->orphan_donelist; 2775 } 2776 2777 /* And then adopt the callbacks that still need a grace period. */ 2778 if (rsp->orphan_nxtlist != NULL) { 2779 *rdp->nxttail[RCU_NEXT_TAIL] = rsp->orphan_nxtlist; 2780 rdp->nxttail[RCU_NEXT_TAIL] = rsp->orphan_nxttail; 2781 rsp->orphan_nxtlist = NULL; 2782 rsp->orphan_nxttail = &rsp->orphan_nxtlist; 2783 } 2784 } 2785 2786 /* 2787 * Trace the fact that this CPU is going offline. 2788 */ 2789 static void rcu_cleanup_dying_cpu(struct rcu_state *rsp) 2790 { 2791 RCU_TRACE(unsigned long mask;) 2792 RCU_TRACE(struct rcu_data *rdp = this_cpu_ptr(rsp->rda);) 2793 RCU_TRACE(struct rcu_node *rnp = rdp->mynode;) 2794 2795 if (!IS_ENABLED(CONFIG_HOTPLUG_CPU)) 2796 return; 2797 2798 RCU_TRACE(mask = rdp->grpmask;) 2799 trace_rcu_grace_period(rsp->name, 2800 rnp->gpnum + 1 - !!(rnp->qsmask & mask), 2801 TPS("cpuofl")); 2802 } 2803 2804 /* 2805 * All CPUs for the specified rcu_node structure have gone offline, 2806 * and all tasks that were preempted within an RCU read-side critical 2807 * section while running on one of those CPUs have since exited their RCU 2808 * read-side critical section. Some other CPU is reporting this fact with 2809 * the specified rcu_node structure's ->lock held and interrupts disabled. 2810 * This function therefore goes up the tree of rcu_node structures, 2811 * clearing the corresponding bits in the ->qsmaskinit fields. Note that 2812 * the leaf rcu_node structure's ->qsmaskinit field has already been 2813 * updated 2814 * 2815 * This function does check that the specified rcu_node structure has 2816 * all CPUs offline and no blocked tasks, so it is OK to invoke it 2817 * prematurely. That said, invoking it after the fact will cost you 2818 * a needless lock acquisition. So once it has done its work, don't 2819 * invoke it again. 2820 */ 2821 static void rcu_cleanup_dead_rnp(struct rcu_node *rnp_leaf) 2822 { 2823 long mask; 2824 struct rcu_node *rnp = rnp_leaf; 2825 2826 if (!IS_ENABLED(CONFIG_HOTPLUG_CPU) || 2827 rnp->qsmaskinit || rcu_preempt_has_tasks(rnp)) 2828 return; 2829 for (;;) { 2830 mask = rnp->grpmask; 2831 rnp = rnp->parent; 2832 if (!rnp) 2833 break; 2834 raw_spin_lock_rcu_node(rnp); /* irqs already disabled. */ 2835 rnp->qsmaskinit &= ~mask; 2836 rnp->qsmask &= ~mask; 2837 if (rnp->qsmaskinit) { 2838 raw_spin_unlock_rcu_node(rnp); 2839 /* irqs remain disabled. */ 2840 return; 2841 } 2842 raw_spin_unlock_rcu_node(rnp); /* irqs remain disabled. */ 2843 } 2844 } 2845 2846 /* 2847 * The CPU has been completely removed, and some other CPU is reporting 2848 * this fact from process context. Do the remainder of the cleanup, 2849 * including orphaning the outgoing CPU's RCU callbacks, and also 2850 * adopting them. There can only be one CPU hotplug operation at a time, 2851 * so no other CPU can be attempting to update rcu_cpu_kthread_task. 2852 */ 2853 static void rcu_cleanup_dead_cpu(int cpu, struct rcu_state *rsp) 2854 { 2855 unsigned long flags; 2856 struct rcu_data *rdp = per_cpu_ptr(rsp->rda, cpu); 2857 struct rcu_node *rnp = rdp->mynode; /* Outgoing CPU's rdp & rnp. */ 2858 2859 if (!IS_ENABLED(CONFIG_HOTPLUG_CPU)) 2860 return; 2861 2862 /* Adjust any no-longer-needed kthreads. */ 2863 rcu_boost_kthread_setaffinity(rnp, -1); 2864 2865 /* Orphan the dead CPU's callbacks, and adopt them if appropriate. */ 2866 raw_spin_lock_irqsave(&rsp->orphan_lock, flags); 2867 rcu_send_cbs_to_orphanage(cpu, rsp, rnp, rdp); 2868 rcu_adopt_orphan_cbs(rsp, flags); 2869 raw_spin_unlock_irqrestore(&rsp->orphan_lock, flags); 2870 2871 WARN_ONCE(rdp->qlen != 0 || rdp->nxtlist != NULL, 2872 "rcu_cleanup_dead_cpu: Callbacks on offline CPU %d: qlen=%lu, nxtlist=%p\n", 2873 cpu, rdp->qlen, rdp->nxtlist); 2874 } 2875 2876 /* 2877 * Invoke any RCU callbacks that have made it to the end of their grace 2878 * period. Thottle as specified by rdp->blimit. 2879 */ 2880 static void rcu_do_batch(struct rcu_state *rsp, struct rcu_data *rdp) 2881 { 2882 unsigned long flags; 2883 struct rcu_head *next, *list, **tail; 2884 long bl, count, count_lazy; 2885 int i; 2886 2887 /* If no callbacks are ready, just return. */ 2888 if (!cpu_has_callbacks_ready_to_invoke(rdp)) { 2889 trace_rcu_batch_start(rsp->name, rdp->qlen_lazy, rdp->qlen, 0); 2890 trace_rcu_batch_end(rsp->name, 0, !!READ_ONCE(rdp->nxtlist), 2891 need_resched(), is_idle_task(current), 2892 rcu_is_callbacks_kthread()); 2893 return; 2894 } 2895 2896 /* 2897 * Extract the list of ready callbacks, disabling to prevent 2898 * races with call_rcu() from interrupt handlers. 2899 */ 2900 local_irq_save(flags); 2901 WARN_ON_ONCE(cpu_is_offline(smp_processor_id())); 2902 bl = rdp->blimit; 2903 trace_rcu_batch_start(rsp->name, rdp->qlen_lazy, rdp->qlen, bl); 2904 list = rdp->nxtlist; 2905 rdp->nxtlist = *rdp->nxttail[RCU_DONE_TAIL]; 2906 *rdp->nxttail[RCU_DONE_TAIL] = NULL; 2907 tail = rdp->nxttail[RCU_DONE_TAIL]; 2908 for (i = RCU_NEXT_SIZE - 1; i >= 0; i--) 2909 if (rdp->nxttail[i] == rdp->nxttail[RCU_DONE_TAIL]) 2910 rdp->nxttail[i] = &rdp->nxtlist; 2911 local_irq_restore(flags); 2912 2913 /* Invoke callbacks. */ 2914 count = count_lazy = 0; 2915 while (list) { 2916 next = list->next; 2917 prefetch(next); 2918 debug_rcu_head_unqueue(list); 2919 if (__rcu_reclaim(rsp->name, list)) 2920 count_lazy++; 2921 list = next; 2922 /* Stop only if limit reached and CPU has something to do. */ 2923 if (++count >= bl && 2924 (need_resched() || 2925 (!is_idle_task(current) && !rcu_is_callbacks_kthread()))) 2926 break; 2927 } 2928 2929 local_irq_save(flags); 2930 trace_rcu_batch_end(rsp->name, count, !!list, need_resched(), 2931 is_idle_task(current), 2932 rcu_is_callbacks_kthread()); 2933 2934 /* Update count, and requeue any remaining callbacks. */ 2935 if (list != NULL) { 2936 *tail = rdp->nxtlist; 2937 rdp->nxtlist = list; 2938 for (i = 0; i < RCU_NEXT_SIZE; i++) 2939 if (&rdp->nxtlist == rdp->nxttail[i]) 2940 rdp->nxttail[i] = tail; 2941 else 2942 break; 2943 } 2944 smp_mb(); /* List handling before counting for rcu_barrier(). */ 2945 rdp->qlen_lazy -= count_lazy; 2946 WRITE_ONCE(rdp->qlen, rdp->qlen - count); 2947 rdp->n_cbs_invoked += count; 2948 2949 /* Reinstate batch limit if we have worked down the excess. */ 2950 if (rdp->blimit == LONG_MAX && rdp->qlen <= qlowmark) 2951 rdp->blimit = blimit; 2952 2953 /* Reset ->qlen_last_fqs_check trigger if enough CBs have drained. */ 2954 if (rdp->qlen == 0 && rdp->qlen_last_fqs_check != 0) { 2955 rdp->qlen_last_fqs_check = 0; 2956 rdp->n_force_qs_snap = rsp->n_force_qs; 2957 } else if (rdp->qlen < rdp->qlen_last_fqs_check - qhimark) 2958 rdp->qlen_last_fqs_check = rdp->qlen; 2959 WARN_ON_ONCE((rdp->nxtlist == NULL) != (rdp->qlen == 0)); 2960 2961 local_irq_restore(flags); 2962 2963 /* Re-invoke RCU core processing if there are callbacks remaining. */ 2964 if (cpu_has_callbacks_ready_to_invoke(rdp)) 2965 invoke_rcu_core(); 2966 } 2967 2968 /* 2969 * Check to see if this CPU is in a non-context-switch quiescent state 2970 * (user mode or idle loop for rcu, non-softirq execution for rcu_bh). 2971 * Also schedule RCU core processing. 2972 * 2973 * This function must be called from hardirq context. It is normally 2974 * invoked from the scheduling-clock interrupt. 2975 */ 2976 void rcu_check_callbacks(int user) 2977 { 2978 trace_rcu_utilization(TPS("Start scheduler-tick")); 2979 increment_cpu_stall_ticks(); 2980 if (user || rcu_is_cpu_rrupt_from_idle()) { 2981 2982 /* 2983 * Get here if this CPU took its interrupt from user 2984 * mode or from the idle loop, and if this is not a 2985 * nested interrupt. In this case, the CPU is in 2986 * a quiescent state, so note it. 2987 * 2988 * No memory barrier is required here because both 2989 * rcu_sched_qs() and rcu_bh_qs() reference only CPU-local 2990 * variables that other CPUs neither access nor modify, 2991 * at least not while the corresponding CPU is online. 2992 */ 2993 2994 rcu_sched_qs(); 2995 rcu_bh_qs(); 2996 2997 } else if (!in_softirq()) { 2998 2999 /* 3000 * Get here if this CPU did not take its interrupt from 3001 * softirq, in other words, if it is not interrupting 3002 * a rcu_bh read-side critical section. This is an _bh 3003 * critical section, so note it. 3004 */ 3005 3006 rcu_bh_qs(); 3007 } 3008 rcu_preempt_check_callbacks(); 3009 if (rcu_pending()) 3010 invoke_rcu_core(); 3011 if (user) 3012 rcu_note_voluntary_context_switch(current); 3013 trace_rcu_utilization(TPS("End scheduler-tick")); 3014 } 3015 3016 /* 3017 * Scan the leaf rcu_node structures, processing dyntick state for any that 3018 * have not yet encountered a quiescent state, using the function specified. 3019 * Also initiate boosting for any threads blocked on the root rcu_node. 3020 * 3021 * The caller must have suppressed start of new grace periods. 3022 */ 3023 static void force_qs_rnp(struct rcu_state *rsp, 3024 int (*f)(struct rcu_data *rsp, bool *isidle, 3025 unsigned long *maxj), 3026 bool *isidle, unsigned long *maxj) 3027 { 3028 int cpu; 3029 unsigned long flags; 3030 unsigned long mask; 3031 struct rcu_node *rnp; 3032 3033 rcu_for_each_leaf_node(rsp, rnp) { 3034 cond_resched_rcu_qs(); 3035 mask = 0; 3036 raw_spin_lock_irqsave_rcu_node(rnp, flags); 3037 if (rnp->qsmask == 0) { 3038 if (rcu_state_p == &rcu_sched_state || 3039 rsp != rcu_state_p || 3040 rcu_preempt_blocked_readers_cgp(rnp)) { 3041 /* 3042 * No point in scanning bits because they 3043 * are all zero. But we might need to 3044 * priority-boost blocked readers. 3045 */ 3046 rcu_initiate_boost(rnp, flags); 3047 /* rcu_initiate_boost() releases rnp->lock */ 3048 continue; 3049 } 3050 if (rnp->parent && 3051 (rnp->parent->qsmask & rnp->grpmask)) { 3052 /* 3053 * Race between grace-period 3054 * initialization and task exiting RCU 3055 * read-side critical section: Report. 3056 */ 3057 rcu_report_unblock_qs_rnp(rsp, rnp, flags); 3058 /* rcu_report_unblock_qs_rnp() rlses ->lock */ 3059 continue; 3060 } 3061 } 3062 for_each_leaf_node_possible_cpu(rnp, cpu) { 3063 unsigned long bit = leaf_node_cpu_bit(rnp, cpu); 3064 if ((rnp->qsmask & bit) != 0) { 3065 if (f(per_cpu_ptr(rsp->rda, cpu), isidle, maxj)) 3066 mask |= bit; 3067 } 3068 } 3069 if (mask != 0) { 3070 /* Idle/offline CPUs, report (releases rnp->lock. */ 3071 rcu_report_qs_rnp(mask, rsp, rnp, rnp->gpnum, flags); 3072 } else { 3073 /* Nothing to do here, so just drop the lock. */ 3074 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 3075 } 3076 } 3077 } 3078 3079 /* 3080 * Force quiescent states on reluctant CPUs, and also detect which 3081 * CPUs are in dyntick-idle mode. 3082 */ 3083 static void force_quiescent_state(struct rcu_state *rsp) 3084 { 3085 unsigned long flags; 3086 bool ret; 3087 struct rcu_node *rnp; 3088 struct rcu_node *rnp_old = NULL; 3089 3090 /* Funnel through hierarchy to reduce memory contention. */ 3091 rnp = __this_cpu_read(rsp->rda->mynode); 3092 for (; rnp != NULL; rnp = rnp->parent) { 3093 ret = (READ_ONCE(rsp->gp_flags) & RCU_GP_FLAG_FQS) || 3094 !raw_spin_trylock(&rnp->fqslock); 3095 if (rnp_old != NULL) 3096 raw_spin_unlock(&rnp_old->fqslock); 3097 if (ret) { 3098 rsp->n_force_qs_lh++; 3099 return; 3100 } 3101 rnp_old = rnp; 3102 } 3103 /* rnp_old == rcu_get_root(rsp), rnp == NULL. */ 3104 3105 /* Reached the root of the rcu_node tree, acquire lock. */ 3106 raw_spin_lock_irqsave_rcu_node(rnp_old, flags); 3107 raw_spin_unlock(&rnp_old->fqslock); 3108 if (READ_ONCE(rsp->gp_flags) & RCU_GP_FLAG_FQS) { 3109 rsp->n_force_qs_lh++; 3110 raw_spin_unlock_irqrestore_rcu_node(rnp_old, flags); 3111 return; /* Someone beat us to it. */ 3112 } 3113 WRITE_ONCE(rsp->gp_flags, READ_ONCE(rsp->gp_flags) | RCU_GP_FLAG_FQS); 3114 raw_spin_unlock_irqrestore_rcu_node(rnp_old, flags); 3115 rcu_gp_kthread_wake(rsp); 3116 } 3117 3118 /* 3119 * This does the RCU core processing work for the specified rcu_state 3120 * and rcu_data structures. This may be called only from the CPU to 3121 * whom the rdp belongs. 3122 */ 3123 static void 3124 __rcu_process_callbacks(struct rcu_state *rsp) 3125 { 3126 unsigned long flags; 3127 bool needwake; 3128 struct rcu_data *rdp = raw_cpu_ptr(rsp->rda); 3129 3130 WARN_ON_ONCE(rdp->beenonline == 0); 3131 3132 /* Update RCU state based on any recent quiescent states. */ 3133 rcu_check_quiescent_state(rsp, rdp); 3134 3135 /* Does this CPU require a not-yet-started grace period? */ 3136 local_irq_save(flags); 3137 if (cpu_needs_another_gp(rsp, rdp)) { 3138 raw_spin_lock_rcu_node(rcu_get_root(rsp)); /* irqs disabled. */ 3139 needwake = rcu_start_gp(rsp); 3140 raw_spin_unlock_irqrestore_rcu_node(rcu_get_root(rsp), flags); 3141 if (needwake) 3142 rcu_gp_kthread_wake(rsp); 3143 } else { 3144 local_irq_restore(flags); 3145 } 3146 3147 /* If there are callbacks ready, invoke them. */ 3148 if (cpu_has_callbacks_ready_to_invoke(rdp)) 3149 invoke_rcu_callbacks(rsp, rdp); 3150 3151 /* Do any needed deferred wakeups of rcuo kthreads. */ 3152 do_nocb_deferred_wakeup(rdp); 3153 } 3154 3155 /* 3156 * Do RCU core processing for the current CPU. 3157 */ 3158 static __latent_entropy void rcu_process_callbacks(struct softirq_action *unused) 3159 { 3160 struct rcu_state *rsp; 3161 3162 if (cpu_is_offline(smp_processor_id())) 3163 return; 3164 trace_rcu_utilization(TPS("Start RCU core")); 3165 for_each_rcu_flavor(rsp) 3166 __rcu_process_callbacks(rsp); 3167 trace_rcu_utilization(TPS("End RCU core")); 3168 } 3169 3170 /* 3171 * Schedule RCU callback invocation. If the specified type of RCU 3172 * does not support RCU priority boosting, just do a direct call, 3173 * otherwise wake up the per-CPU kernel kthread. Note that because we 3174 * are running on the current CPU with softirqs disabled, the 3175 * rcu_cpu_kthread_task cannot disappear out from under us. 3176 */ 3177 static void invoke_rcu_callbacks(struct rcu_state *rsp, struct rcu_data *rdp) 3178 { 3179 if (unlikely(!READ_ONCE(rcu_scheduler_fully_active))) 3180 return; 3181 if (likely(!rsp->boost)) { 3182 rcu_do_batch(rsp, rdp); 3183 return; 3184 } 3185 invoke_rcu_callbacks_kthread(); 3186 } 3187 3188 static void invoke_rcu_core(void) 3189 { 3190 if (cpu_online(smp_processor_id())) 3191 raise_softirq(RCU_SOFTIRQ); 3192 } 3193 3194 /* 3195 * Handle any core-RCU processing required by a call_rcu() invocation. 3196 */ 3197 static void __call_rcu_core(struct rcu_state *rsp, struct rcu_data *rdp, 3198 struct rcu_head *head, unsigned long flags) 3199 { 3200 bool needwake; 3201 3202 /* 3203 * If called from an extended quiescent state, invoke the RCU 3204 * core in order to force a re-evaluation of RCU's idleness. 3205 */ 3206 if (!rcu_is_watching()) 3207 invoke_rcu_core(); 3208 3209 /* If interrupts were disabled or CPU offline, don't invoke RCU core. */ 3210 if (irqs_disabled_flags(flags) || cpu_is_offline(smp_processor_id())) 3211 return; 3212 3213 /* 3214 * Force the grace period if too many callbacks or too long waiting. 3215 * Enforce hysteresis, and don't invoke force_quiescent_state() 3216 * if some other CPU has recently done so. Also, don't bother 3217 * invoking force_quiescent_state() if the newly enqueued callback 3218 * is the only one waiting for a grace period to complete. 3219 */ 3220 if (unlikely(rdp->qlen > rdp->qlen_last_fqs_check + qhimark)) { 3221 3222 /* Are we ignoring a completed grace period? */ 3223 note_gp_changes(rsp, rdp); 3224 3225 /* Start a new grace period if one not already started. */ 3226 if (!rcu_gp_in_progress(rsp)) { 3227 struct rcu_node *rnp_root = rcu_get_root(rsp); 3228 3229 raw_spin_lock_rcu_node(rnp_root); 3230 needwake = rcu_start_gp(rsp); 3231 raw_spin_unlock_rcu_node(rnp_root); 3232 if (needwake) 3233 rcu_gp_kthread_wake(rsp); 3234 } else { 3235 /* Give the grace period a kick. */ 3236 rdp->blimit = LONG_MAX; 3237 if (rsp->n_force_qs == rdp->n_force_qs_snap && 3238 *rdp->nxttail[RCU_DONE_TAIL] != head) 3239 force_quiescent_state(rsp); 3240 rdp->n_force_qs_snap = rsp->n_force_qs; 3241 rdp->qlen_last_fqs_check = rdp->qlen; 3242 } 3243 } 3244 } 3245 3246 /* 3247 * RCU callback function to leak a callback. 3248 */ 3249 static void rcu_leak_callback(struct rcu_head *rhp) 3250 { 3251 } 3252 3253 /* 3254 * Helper function for call_rcu() and friends. The cpu argument will 3255 * normally be -1, indicating "currently running CPU". It may specify 3256 * a CPU only if that CPU is a no-CBs CPU. Currently, only _rcu_barrier() 3257 * is expected to specify a CPU. 3258 */ 3259 static void 3260 __call_rcu(struct rcu_head *head, rcu_callback_t func, 3261 struct rcu_state *rsp, int cpu, bool lazy) 3262 { 3263 unsigned long flags; 3264 struct rcu_data *rdp; 3265 3266 /* Misaligned rcu_head! */ 3267 WARN_ON_ONCE((unsigned long)head & (sizeof(void *) - 1)); 3268 3269 if (debug_rcu_head_queue(head)) { 3270 /* Probable double call_rcu(), so leak the callback. */ 3271 WRITE_ONCE(head->func, rcu_leak_callback); 3272 WARN_ONCE(1, "__call_rcu(): Leaked duplicate callback\n"); 3273 return; 3274 } 3275 head->func = func; 3276 head->next = NULL; 3277 local_irq_save(flags); 3278 rdp = this_cpu_ptr(rsp->rda); 3279 3280 /* Add the callback to our list. */ 3281 if (unlikely(rdp->nxttail[RCU_NEXT_TAIL] == NULL) || cpu != -1) { 3282 int offline; 3283 3284 if (cpu != -1) 3285 rdp = per_cpu_ptr(rsp->rda, cpu); 3286 if (likely(rdp->mynode)) { 3287 /* Post-boot, so this should be for a no-CBs CPU. */ 3288 offline = !__call_rcu_nocb(rdp, head, lazy, flags); 3289 WARN_ON_ONCE(offline); 3290 /* Offline CPU, _call_rcu() illegal, leak callback. */ 3291 local_irq_restore(flags); 3292 return; 3293 } 3294 /* 3295 * Very early boot, before rcu_init(). Initialize if needed 3296 * and then drop through to queue the callback. 3297 */ 3298 BUG_ON(cpu != -1); 3299 WARN_ON_ONCE(!rcu_is_watching()); 3300 if (!likely(rdp->nxtlist)) 3301 init_default_callback_list(rdp); 3302 } 3303 WRITE_ONCE(rdp->qlen, rdp->qlen + 1); 3304 if (lazy) 3305 rdp->qlen_lazy++; 3306 else 3307 rcu_idle_count_callbacks_posted(); 3308 smp_mb(); /* Count before adding callback for rcu_barrier(). */ 3309 *rdp->nxttail[RCU_NEXT_TAIL] = head; 3310 rdp->nxttail[RCU_NEXT_TAIL] = &head->next; 3311 3312 if (__is_kfree_rcu_offset((unsigned long)func)) 3313 trace_rcu_kfree_callback(rsp->name, head, (unsigned long)func, 3314 rdp->qlen_lazy, rdp->qlen); 3315 else 3316 trace_rcu_callback(rsp->name, head, rdp->qlen_lazy, rdp->qlen); 3317 3318 /* Go handle any RCU core processing required. */ 3319 __call_rcu_core(rsp, rdp, head, flags); 3320 local_irq_restore(flags); 3321 } 3322 3323 /* 3324 * Queue an RCU-sched callback for invocation after a grace period. 3325 */ 3326 void call_rcu_sched(struct rcu_head *head, rcu_callback_t func) 3327 { 3328 __call_rcu(head, func, &rcu_sched_state, -1, 0); 3329 } 3330 EXPORT_SYMBOL_GPL(call_rcu_sched); 3331 3332 /* 3333 * Queue an RCU callback for invocation after a quicker grace period. 3334 */ 3335 void call_rcu_bh(struct rcu_head *head, rcu_callback_t func) 3336 { 3337 __call_rcu(head, func, &rcu_bh_state, -1, 0); 3338 } 3339 EXPORT_SYMBOL_GPL(call_rcu_bh); 3340 3341 /* 3342 * Queue an RCU callback for lazy invocation after a grace period. 3343 * This will likely be later named something like "call_rcu_lazy()", 3344 * but this change will require some way of tagging the lazy RCU 3345 * callbacks in the list of pending callbacks. Until then, this 3346 * function may only be called from __kfree_rcu(). 3347 */ 3348 void kfree_call_rcu(struct rcu_head *head, 3349 rcu_callback_t func) 3350 { 3351 __call_rcu(head, func, rcu_state_p, -1, 1); 3352 } 3353 EXPORT_SYMBOL_GPL(kfree_call_rcu); 3354 3355 /* 3356 * Because a context switch is a grace period for RCU-sched and RCU-bh, 3357 * any blocking grace-period wait automatically implies a grace period 3358 * if there is only one CPU online at any point time during execution 3359 * of either synchronize_sched() or synchronize_rcu_bh(). It is OK to 3360 * occasionally incorrectly indicate that there are multiple CPUs online 3361 * when there was in fact only one the whole time, as this just adds 3362 * some overhead: RCU still operates correctly. 3363 */ 3364 static inline int rcu_blocking_is_gp(void) 3365 { 3366 int ret; 3367 3368 might_sleep(); /* Check for RCU read-side critical section. */ 3369 preempt_disable(); 3370 ret = num_online_cpus() <= 1; 3371 preempt_enable(); 3372 return ret; 3373 } 3374 3375 /** 3376 * synchronize_sched - wait until an rcu-sched grace period has elapsed. 3377 * 3378 * Control will return to the caller some time after a full rcu-sched 3379 * grace period has elapsed, in other words after all currently executing 3380 * rcu-sched read-side critical sections have completed. These read-side 3381 * critical sections are delimited by rcu_read_lock_sched() and 3382 * rcu_read_unlock_sched(), and may be nested. Note that preempt_disable(), 3383 * local_irq_disable(), and so on may be used in place of 3384 * rcu_read_lock_sched(). 3385 * 3386 * This means that all preempt_disable code sequences, including NMI and 3387 * non-threaded hardware-interrupt handlers, in progress on entry will 3388 * have completed before this primitive returns. However, this does not 3389 * guarantee that softirq handlers will have completed, since in some 3390 * kernels, these handlers can run in process context, and can block. 3391 * 3392 * Note that this guarantee implies further memory-ordering guarantees. 3393 * On systems with more than one CPU, when synchronize_sched() returns, 3394 * each CPU is guaranteed to have executed a full memory barrier since the 3395 * end of its last RCU-sched read-side critical section whose beginning 3396 * preceded the call to synchronize_sched(). In addition, each CPU having 3397 * an RCU read-side critical section that extends beyond the return from 3398 * synchronize_sched() is guaranteed to have executed a full memory barrier 3399 * after the beginning of synchronize_sched() and before the beginning of 3400 * that RCU read-side critical section. Note that these guarantees include 3401 * CPUs that are offline, idle, or executing in user mode, as well as CPUs 3402 * that are executing in the kernel. 3403 * 3404 * Furthermore, if CPU A invoked synchronize_sched(), which returned 3405 * to its caller on CPU B, then both CPU A and CPU B are guaranteed 3406 * to have executed a full memory barrier during the execution of 3407 * synchronize_sched() -- even if CPU A and CPU B are the same CPU (but 3408 * again only if the system has more than one CPU). 3409 * 3410 * This primitive provides the guarantees made by the (now removed) 3411 * synchronize_kernel() API. In contrast, synchronize_rcu() only 3412 * guarantees that rcu_read_lock() sections will have completed. 3413 * In "classic RCU", these two guarantees happen to be one and 3414 * the same, but can differ in realtime RCU implementations. 3415 */ 3416 void synchronize_sched(void) 3417 { 3418 RCU_LOCKDEP_WARN(lock_is_held(&rcu_bh_lock_map) || 3419 lock_is_held(&rcu_lock_map) || 3420 lock_is_held(&rcu_sched_lock_map), 3421 "Illegal synchronize_sched() in RCU-sched read-side critical section"); 3422 if (rcu_blocking_is_gp()) 3423 return; 3424 if (rcu_gp_is_expedited()) 3425 synchronize_sched_expedited(); 3426 else 3427 wait_rcu_gp(call_rcu_sched); 3428 } 3429 EXPORT_SYMBOL_GPL(synchronize_sched); 3430 3431 /** 3432 * synchronize_rcu_bh - wait until an rcu_bh grace period has elapsed. 3433 * 3434 * Control will return to the caller some time after a full rcu_bh grace 3435 * period has elapsed, in other words after all currently executing rcu_bh 3436 * read-side critical sections have completed. RCU read-side critical 3437 * sections are delimited by rcu_read_lock_bh() and rcu_read_unlock_bh(), 3438 * and may be nested. 3439 * 3440 * See the description of synchronize_sched() for more detailed information 3441 * on memory ordering guarantees. 3442 */ 3443 void synchronize_rcu_bh(void) 3444 { 3445 RCU_LOCKDEP_WARN(lock_is_held(&rcu_bh_lock_map) || 3446 lock_is_held(&rcu_lock_map) || 3447 lock_is_held(&rcu_sched_lock_map), 3448 "Illegal synchronize_rcu_bh() in RCU-bh read-side critical section"); 3449 if (rcu_blocking_is_gp()) 3450 return; 3451 if (rcu_gp_is_expedited()) 3452 synchronize_rcu_bh_expedited(); 3453 else 3454 wait_rcu_gp(call_rcu_bh); 3455 } 3456 EXPORT_SYMBOL_GPL(synchronize_rcu_bh); 3457 3458 /** 3459 * get_state_synchronize_rcu - Snapshot current RCU state 3460 * 3461 * Returns a cookie that is used by a later call to cond_synchronize_rcu() 3462 * to determine whether or not a full grace period has elapsed in the 3463 * meantime. 3464 */ 3465 unsigned long get_state_synchronize_rcu(void) 3466 { 3467 /* 3468 * Any prior manipulation of RCU-protected data must happen 3469 * before the load from ->gpnum. 3470 */ 3471 smp_mb(); /* ^^^ */ 3472 3473 /* 3474 * Make sure this load happens before the purportedly 3475 * time-consuming work between get_state_synchronize_rcu() 3476 * and cond_synchronize_rcu(). 3477 */ 3478 return smp_load_acquire(&rcu_state_p->gpnum); 3479 } 3480 EXPORT_SYMBOL_GPL(get_state_synchronize_rcu); 3481 3482 /** 3483 * cond_synchronize_rcu - Conditionally wait for an RCU grace period 3484 * 3485 * @oldstate: return value from earlier call to get_state_synchronize_rcu() 3486 * 3487 * If a full RCU grace period has elapsed since the earlier call to 3488 * get_state_synchronize_rcu(), just return. Otherwise, invoke 3489 * synchronize_rcu() to wait for a full grace period. 3490 * 3491 * Yes, this function does not take counter wrap into account. But 3492 * counter wrap is harmless. If the counter wraps, we have waited for 3493 * more than 2 billion grace periods (and way more on a 64-bit system!), 3494 * so waiting for one additional grace period should be just fine. 3495 */ 3496 void cond_synchronize_rcu(unsigned long oldstate) 3497 { 3498 unsigned long newstate; 3499 3500 /* 3501 * Ensure that this load happens before any RCU-destructive 3502 * actions the caller might carry out after we return. 3503 */ 3504 newstate = smp_load_acquire(&rcu_state_p->completed); 3505 if (ULONG_CMP_GE(oldstate, newstate)) 3506 synchronize_rcu(); 3507 } 3508 EXPORT_SYMBOL_GPL(cond_synchronize_rcu); 3509 3510 /** 3511 * get_state_synchronize_sched - Snapshot current RCU-sched state 3512 * 3513 * Returns a cookie that is used by a later call to cond_synchronize_sched() 3514 * to determine whether or not a full grace period has elapsed in the 3515 * meantime. 3516 */ 3517 unsigned long get_state_synchronize_sched(void) 3518 { 3519 /* 3520 * Any prior manipulation of RCU-protected data must happen 3521 * before the load from ->gpnum. 3522 */ 3523 smp_mb(); /* ^^^ */ 3524 3525 /* 3526 * Make sure this load happens before the purportedly 3527 * time-consuming work between get_state_synchronize_sched() 3528 * and cond_synchronize_sched(). 3529 */ 3530 return smp_load_acquire(&rcu_sched_state.gpnum); 3531 } 3532 EXPORT_SYMBOL_GPL(get_state_synchronize_sched); 3533 3534 /** 3535 * cond_synchronize_sched - Conditionally wait for an RCU-sched grace period 3536 * 3537 * @oldstate: return value from earlier call to get_state_synchronize_sched() 3538 * 3539 * If a full RCU-sched grace period has elapsed since the earlier call to 3540 * get_state_synchronize_sched(), just return. Otherwise, invoke 3541 * synchronize_sched() to wait for a full grace period. 3542 * 3543 * Yes, this function does not take counter wrap into account. But 3544 * counter wrap is harmless. If the counter wraps, we have waited for 3545 * more than 2 billion grace periods (and way more on a 64-bit system!), 3546 * so waiting for one additional grace period should be just fine. 3547 */ 3548 void cond_synchronize_sched(unsigned long oldstate) 3549 { 3550 unsigned long newstate; 3551 3552 /* 3553 * Ensure that this load happens before any RCU-destructive 3554 * actions the caller might carry out after we return. 3555 */ 3556 newstate = smp_load_acquire(&rcu_sched_state.completed); 3557 if (ULONG_CMP_GE(oldstate, newstate)) 3558 synchronize_sched(); 3559 } 3560 EXPORT_SYMBOL_GPL(cond_synchronize_sched); 3561 3562 /* Adjust sequence number for start of update-side operation. */ 3563 static void rcu_seq_start(unsigned long *sp) 3564 { 3565 WRITE_ONCE(*sp, *sp + 1); 3566 smp_mb(); /* Ensure update-side operation after counter increment. */ 3567 WARN_ON_ONCE(!(*sp & 0x1)); 3568 } 3569 3570 /* Adjust sequence number for end of update-side operation. */ 3571 static void rcu_seq_end(unsigned long *sp) 3572 { 3573 smp_mb(); /* Ensure update-side operation before counter increment. */ 3574 WRITE_ONCE(*sp, *sp + 1); 3575 WARN_ON_ONCE(*sp & 0x1); 3576 } 3577 3578 /* Take a snapshot of the update side's sequence number. */ 3579 static unsigned long rcu_seq_snap(unsigned long *sp) 3580 { 3581 unsigned long s; 3582 3583 s = (READ_ONCE(*sp) + 3) & ~0x1; 3584 smp_mb(); /* Above access must not bleed into critical section. */ 3585 return s; 3586 } 3587 3588 /* 3589 * Given a snapshot from rcu_seq_snap(), determine whether or not a 3590 * full update-side operation has occurred. 3591 */ 3592 static bool rcu_seq_done(unsigned long *sp, unsigned long s) 3593 { 3594 return ULONG_CMP_GE(READ_ONCE(*sp), s); 3595 } 3596 3597 /* 3598 * Check to see if there is any immediate RCU-related work to be done 3599 * by the current CPU, for the specified type of RCU, returning 1 if so. 3600 * The checks are in order of increasing expense: checks that can be 3601 * carried out against CPU-local state are performed first. However, 3602 * we must check for CPU stalls first, else we might not get a chance. 3603 */ 3604 static int __rcu_pending(struct rcu_state *rsp, struct rcu_data *rdp) 3605 { 3606 struct rcu_node *rnp = rdp->mynode; 3607 3608 rdp->n_rcu_pending++; 3609 3610 /* Check for CPU stalls, if enabled. */ 3611 check_cpu_stall(rsp, rdp); 3612 3613 /* Is this CPU a NO_HZ_FULL CPU that should ignore RCU? */ 3614 if (rcu_nohz_full_cpu(rsp)) 3615 return 0; 3616 3617 /* Is the RCU core waiting for a quiescent state from this CPU? */ 3618 if (rcu_scheduler_fully_active && 3619 rdp->core_needs_qs && rdp->cpu_no_qs.b.norm && 3620 rdp->rcu_qs_ctr_snap == __this_cpu_read(rcu_dynticks.rcu_qs_ctr)) { 3621 rdp->n_rp_core_needs_qs++; 3622 } else if (rdp->core_needs_qs && !rdp->cpu_no_qs.b.norm) { 3623 rdp->n_rp_report_qs++; 3624 return 1; 3625 } 3626 3627 /* Does this CPU have callbacks ready to invoke? */ 3628 if (cpu_has_callbacks_ready_to_invoke(rdp)) { 3629 rdp->n_rp_cb_ready++; 3630 return 1; 3631 } 3632 3633 /* Has RCU gone idle with this CPU needing another grace period? */ 3634 if (cpu_needs_another_gp(rsp, rdp)) { 3635 rdp->n_rp_cpu_needs_gp++; 3636 return 1; 3637 } 3638 3639 /* Has another RCU grace period completed? */ 3640 if (READ_ONCE(rnp->completed) != rdp->completed) { /* outside lock */ 3641 rdp->n_rp_gp_completed++; 3642 return 1; 3643 } 3644 3645 /* Has a new RCU grace period started? */ 3646 if (READ_ONCE(rnp->gpnum) != rdp->gpnum || 3647 unlikely(READ_ONCE(rdp->gpwrap))) { /* outside lock */ 3648 rdp->n_rp_gp_started++; 3649 return 1; 3650 } 3651 3652 /* Does this CPU need a deferred NOCB wakeup? */ 3653 if (rcu_nocb_need_deferred_wakeup(rdp)) { 3654 rdp->n_rp_nocb_defer_wakeup++; 3655 return 1; 3656 } 3657 3658 /* nothing to do */ 3659 rdp->n_rp_need_nothing++; 3660 return 0; 3661 } 3662 3663 /* 3664 * Check to see if there is any immediate RCU-related work to be done 3665 * by the current CPU, returning 1 if so. This function is part of the 3666 * RCU implementation; it is -not- an exported member of the RCU API. 3667 */ 3668 static int rcu_pending(void) 3669 { 3670 struct rcu_state *rsp; 3671 3672 for_each_rcu_flavor(rsp) 3673 if (__rcu_pending(rsp, this_cpu_ptr(rsp->rda))) 3674 return 1; 3675 return 0; 3676 } 3677 3678 /* 3679 * Return true if the specified CPU has any callback. If all_lazy is 3680 * non-NULL, store an indication of whether all callbacks are lazy. 3681 * (If there are no callbacks, all of them are deemed to be lazy.) 3682 */ 3683 static bool __maybe_unused rcu_cpu_has_callbacks(bool *all_lazy) 3684 { 3685 bool al = true; 3686 bool hc = false; 3687 struct rcu_data *rdp; 3688 struct rcu_state *rsp; 3689 3690 for_each_rcu_flavor(rsp) { 3691 rdp = this_cpu_ptr(rsp->rda); 3692 if (!rdp->nxtlist) 3693 continue; 3694 hc = true; 3695 if (rdp->qlen != rdp->qlen_lazy || !all_lazy) { 3696 al = false; 3697 break; 3698 } 3699 } 3700 if (all_lazy) 3701 *all_lazy = al; 3702 return hc; 3703 } 3704 3705 /* 3706 * Helper function for _rcu_barrier() tracing. If tracing is disabled, 3707 * the compiler is expected to optimize this away. 3708 */ 3709 static void _rcu_barrier_trace(struct rcu_state *rsp, const char *s, 3710 int cpu, unsigned long done) 3711 { 3712 trace_rcu_barrier(rsp->name, s, cpu, 3713 atomic_read(&rsp->barrier_cpu_count), done); 3714 } 3715 3716 /* 3717 * RCU callback function for _rcu_barrier(). If we are last, wake 3718 * up the task executing _rcu_barrier(). 3719 */ 3720 static void rcu_barrier_callback(struct rcu_head *rhp) 3721 { 3722 struct rcu_data *rdp = container_of(rhp, struct rcu_data, barrier_head); 3723 struct rcu_state *rsp = rdp->rsp; 3724 3725 if (atomic_dec_and_test(&rsp->barrier_cpu_count)) { 3726 _rcu_barrier_trace(rsp, "LastCB", -1, rsp->barrier_sequence); 3727 complete(&rsp->barrier_completion); 3728 } else { 3729 _rcu_barrier_trace(rsp, "CB", -1, rsp->barrier_sequence); 3730 } 3731 } 3732 3733 /* 3734 * Called with preemption disabled, and from cross-cpu IRQ context. 3735 */ 3736 static void rcu_barrier_func(void *type) 3737 { 3738 struct rcu_state *rsp = type; 3739 struct rcu_data *rdp = raw_cpu_ptr(rsp->rda); 3740 3741 _rcu_barrier_trace(rsp, "IRQ", -1, rsp->barrier_sequence); 3742 atomic_inc(&rsp->barrier_cpu_count); 3743 rsp->call(&rdp->barrier_head, rcu_barrier_callback); 3744 } 3745 3746 /* 3747 * Orchestrate the specified type of RCU barrier, waiting for all 3748 * RCU callbacks of the specified type to complete. 3749 */ 3750 static void _rcu_barrier(struct rcu_state *rsp) 3751 { 3752 int cpu; 3753 struct rcu_data *rdp; 3754 unsigned long s = rcu_seq_snap(&rsp->barrier_sequence); 3755 3756 _rcu_barrier_trace(rsp, "Begin", -1, s); 3757 3758 /* Take mutex to serialize concurrent rcu_barrier() requests. */ 3759 mutex_lock(&rsp->barrier_mutex); 3760 3761 /* Did someone else do our work for us? */ 3762 if (rcu_seq_done(&rsp->barrier_sequence, s)) { 3763 _rcu_barrier_trace(rsp, "EarlyExit", -1, rsp->barrier_sequence); 3764 smp_mb(); /* caller's subsequent code after above check. */ 3765 mutex_unlock(&rsp->barrier_mutex); 3766 return; 3767 } 3768 3769 /* Mark the start of the barrier operation. */ 3770 rcu_seq_start(&rsp->barrier_sequence); 3771 _rcu_barrier_trace(rsp, "Inc1", -1, rsp->barrier_sequence); 3772 3773 /* 3774 * Initialize the count to one rather than to zero in order to 3775 * avoid a too-soon return to zero in case of a short grace period 3776 * (or preemption of this task). Exclude CPU-hotplug operations 3777 * to ensure that no offline CPU has callbacks queued. 3778 */ 3779 init_completion(&rsp->barrier_completion); 3780 atomic_set(&rsp->barrier_cpu_count, 1); 3781 get_online_cpus(); 3782 3783 /* 3784 * Force each CPU with callbacks to register a new callback. 3785 * When that callback is invoked, we will know that all of the 3786 * corresponding CPU's preceding callbacks have been invoked. 3787 */ 3788 for_each_possible_cpu(cpu) { 3789 if (!cpu_online(cpu) && !rcu_is_nocb_cpu(cpu)) 3790 continue; 3791 rdp = per_cpu_ptr(rsp->rda, cpu); 3792 if (rcu_is_nocb_cpu(cpu)) { 3793 if (!rcu_nocb_cpu_needs_barrier(rsp, cpu)) { 3794 _rcu_barrier_trace(rsp, "OfflineNoCB", cpu, 3795 rsp->barrier_sequence); 3796 } else { 3797 _rcu_barrier_trace(rsp, "OnlineNoCB", cpu, 3798 rsp->barrier_sequence); 3799 smp_mb__before_atomic(); 3800 atomic_inc(&rsp->barrier_cpu_count); 3801 __call_rcu(&rdp->barrier_head, 3802 rcu_barrier_callback, rsp, cpu, 0); 3803 } 3804 } else if (READ_ONCE(rdp->qlen)) { 3805 _rcu_barrier_trace(rsp, "OnlineQ", cpu, 3806 rsp->barrier_sequence); 3807 smp_call_function_single(cpu, rcu_barrier_func, rsp, 1); 3808 } else { 3809 _rcu_barrier_trace(rsp, "OnlineNQ", cpu, 3810 rsp->barrier_sequence); 3811 } 3812 } 3813 put_online_cpus(); 3814 3815 /* 3816 * Now that we have an rcu_barrier_callback() callback on each 3817 * CPU, and thus each counted, remove the initial count. 3818 */ 3819 if (atomic_dec_and_test(&rsp->barrier_cpu_count)) 3820 complete(&rsp->barrier_completion); 3821 3822 /* Wait for all rcu_barrier_callback() callbacks to be invoked. */ 3823 wait_for_completion(&rsp->barrier_completion); 3824 3825 /* Mark the end of the barrier operation. */ 3826 _rcu_barrier_trace(rsp, "Inc2", -1, rsp->barrier_sequence); 3827 rcu_seq_end(&rsp->barrier_sequence); 3828 3829 /* Other rcu_barrier() invocations can now safely proceed. */ 3830 mutex_unlock(&rsp->barrier_mutex); 3831 } 3832 3833 /** 3834 * rcu_barrier_bh - Wait until all in-flight call_rcu_bh() callbacks complete. 3835 */ 3836 void rcu_barrier_bh(void) 3837 { 3838 _rcu_barrier(&rcu_bh_state); 3839 } 3840 EXPORT_SYMBOL_GPL(rcu_barrier_bh); 3841 3842 /** 3843 * rcu_barrier_sched - Wait for in-flight call_rcu_sched() callbacks. 3844 */ 3845 void rcu_barrier_sched(void) 3846 { 3847 _rcu_barrier(&rcu_sched_state); 3848 } 3849 EXPORT_SYMBOL_GPL(rcu_barrier_sched); 3850 3851 /* 3852 * Propagate ->qsinitmask bits up the rcu_node tree to account for the 3853 * first CPU in a given leaf rcu_node structure coming online. The caller 3854 * must hold the corresponding leaf rcu_node ->lock with interrrupts 3855 * disabled. 3856 */ 3857 static void rcu_init_new_rnp(struct rcu_node *rnp_leaf) 3858 { 3859 long mask; 3860 struct rcu_node *rnp = rnp_leaf; 3861 3862 for (;;) { 3863 mask = rnp->grpmask; 3864 rnp = rnp->parent; 3865 if (rnp == NULL) 3866 return; 3867 raw_spin_lock_rcu_node(rnp); /* Interrupts already disabled. */ 3868 rnp->qsmaskinit |= mask; 3869 raw_spin_unlock_rcu_node(rnp); /* Interrupts remain disabled. */ 3870 } 3871 } 3872 3873 /* 3874 * Do boot-time initialization of a CPU's per-CPU RCU data. 3875 */ 3876 static void __init 3877 rcu_boot_init_percpu_data(int cpu, struct rcu_state *rsp) 3878 { 3879 unsigned long flags; 3880 struct rcu_data *rdp = per_cpu_ptr(rsp->rda, cpu); 3881 struct rcu_node *rnp = rcu_get_root(rsp); 3882 3883 /* Set up local state, ensuring consistent view of global state. */ 3884 raw_spin_lock_irqsave_rcu_node(rnp, flags); 3885 rdp->grpmask = leaf_node_cpu_bit(rdp->mynode, cpu); 3886 rdp->dynticks = &per_cpu(rcu_dynticks, cpu); 3887 WARN_ON_ONCE(rdp->dynticks->dynticks_nesting != DYNTICK_TASK_EXIT_IDLE); 3888 WARN_ON_ONCE(rcu_dynticks_in_eqs(rcu_dynticks_snap(rdp->dynticks))); 3889 rdp->cpu = cpu; 3890 rdp->rsp = rsp; 3891 rcu_boot_init_nocb_percpu_data(rdp); 3892 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 3893 } 3894 3895 /* 3896 * Initialize a CPU's per-CPU RCU data. Note that only one online or 3897 * offline event can be happening at a given time. Note also that we 3898 * can accept some slop in the rsp->completed access due to the fact 3899 * that this CPU cannot possibly have any RCU callbacks in flight yet. 3900 */ 3901 static void 3902 rcu_init_percpu_data(int cpu, struct rcu_state *rsp) 3903 { 3904 unsigned long flags; 3905 struct rcu_data *rdp = per_cpu_ptr(rsp->rda, cpu); 3906 struct rcu_node *rnp = rcu_get_root(rsp); 3907 3908 /* Set up local state, ensuring consistent view of global state. */ 3909 raw_spin_lock_irqsave_rcu_node(rnp, flags); 3910 rdp->qlen_last_fqs_check = 0; 3911 rdp->n_force_qs_snap = rsp->n_force_qs; 3912 rdp->blimit = blimit; 3913 if (!rdp->nxtlist) 3914 init_callback_list(rdp); /* Re-enable callbacks on this CPU. */ 3915 rdp->dynticks->dynticks_nesting = DYNTICK_TASK_EXIT_IDLE; 3916 rcu_sysidle_init_percpu_data(rdp->dynticks); 3917 rcu_dynticks_eqs_online(); 3918 raw_spin_unlock_rcu_node(rnp); /* irqs remain disabled. */ 3919 3920 /* 3921 * Add CPU to leaf rcu_node pending-online bitmask. Any needed 3922 * propagation up the rcu_node tree will happen at the beginning 3923 * of the next grace period. 3924 */ 3925 rnp = rdp->mynode; 3926 raw_spin_lock_rcu_node(rnp); /* irqs already disabled. */ 3927 if (!rdp->beenonline) 3928 WRITE_ONCE(rsp->ncpus, READ_ONCE(rsp->ncpus) + 1); 3929 rdp->beenonline = true; /* We have now been online. */ 3930 rdp->gpnum = rnp->completed; /* Make CPU later note any new GP. */ 3931 rdp->completed = rnp->completed; 3932 rdp->cpu_no_qs.b.norm = true; 3933 rdp->rcu_qs_ctr_snap = per_cpu(rcu_dynticks.rcu_qs_ctr, cpu); 3934 rdp->core_needs_qs = false; 3935 trace_rcu_grace_period(rsp->name, rdp->gpnum, TPS("cpuonl")); 3936 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 3937 } 3938 3939 int rcutree_prepare_cpu(unsigned int cpu) 3940 { 3941 struct rcu_state *rsp; 3942 3943 for_each_rcu_flavor(rsp) 3944 rcu_init_percpu_data(cpu, rsp); 3945 3946 rcu_prepare_kthreads(cpu); 3947 rcu_spawn_all_nocb_kthreads(cpu); 3948 3949 return 0; 3950 } 3951 3952 static void rcutree_affinity_setting(unsigned int cpu, int outgoing) 3953 { 3954 struct rcu_data *rdp = per_cpu_ptr(rcu_state_p->rda, cpu); 3955 3956 rcu_boost_kthread_setaffinity(rdp->mynode, outgoing); 3957 } 3958 3959 int rcutree_online_cpu(unsigned int cpu) 3960 { 3961 sync_sched_exp_online_cleanup(cpu); 3962 rcutree_affinity_setting(cpu, -1); 3963 return 0; 3964 } 3965 3966 int rcutree_offline_cpu(unsigned int cpu) 3967 { 3968 rcutree_affinity_setting(cpu, cpu); 3969 return 0; 3970 } 3971 3972 3973 int rcutree_dying_cpu(unsigned int cpu) 3974 { 3975 struct rcu_state *rsp; 3976 3977 for_each_rcu_flavor(rsp) 3978 rcu_cleanup_dying_cpu(rsp); 3979 return 0; 3980 } 3981 3982 int rcutree_dead_cpu(unsigned int cpu) 3983 { 3984 struct rcu_state *rsp; 3985 3986 for_each_rcu_flavor(rsp) { 3987 rcu_cleanup_dead_cpu(cpu, rsp); 3988 do_nocb_deferred_wakeup(per_cpu_ptr(rsp->rda, cpu)); 3989 } 3990 return 0; 3991 } 3992 3993 /* 3994 * Mark the specified CPU as being online so that subsequent grace periods 3995 * (both expedited and normal) will wait on it. Note that this means that 3996 * incoming CPUs are not allowed to use RCU read-side critical sections 3997 * until this function is called. Failing to observe this restriction 3998 * will result in lockdep splats. 3999 */ 4000 void rcu_cpu_starting(unsigned int cpu) 4001 { 4002 unsigned long flags; 4003 unsigned long mask; 4004 struct rcu_data *rdp; 4005 struct rcu_node *rnp; 4006 struct rcu_state *rsp; 4007 4008 for_each_rcu_flavor(rsp) { 4009 rdp = per_cpu_ptr(rsp->rda, cpu); 4010 rnp = rdp->mynode; 4011 mask = rdp->grpmask; 4012 raw_spin_lock_irqsave_rcu_node(rnp, flags); 4013 rnp->qsmaskinitnext |= mask; 4014 rnp->expmaskinitnext |= mask; 4015 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 4016 } 4017 } 4018 4019 #ifdef CONFIG_HOTPLUG_CPU 4020 /* 4021 * The CPU is exiting the idle loop into the arch_cpu_idle_dead() 4022 * function. We now remove it from the rcu_node tree's ->qsmaskinit 4023 * bit masks. 4024 * The CPU is exiting the idle loop into the arch_cpu_idle_dead() 4025 * function. We now remove it from the rcu_node tree's ->qsmaskinit 4026 * bit masks. 4027 */ 4028 static void rcu_cleanup_dying_idle_cpu(int cpu, struct rcu_state *rsp) 4029 { 4030 unsigned long flags; 4031 unsigned long mask; 4032 struct rcu_data *rdp = per_cpu_ptr(rsp->rda, cpu); 4033 struct rcu_node *rnp = rdp->mynode; /* Outgoing CPU's rdp & rnp. */ 4034 4035 /* Remove outgoing CPU from mask in the leaf rcu_node structure. */ 4036 mask = rdp->grpmask; 4037 raw_spin_lock_irqsave_rcu_node(rnp, flags); /* Enforce GP memory-order guarantee. */ 4038 rnp->qsmaskinitnext &= ~mask; 4039 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 4040 } 4041 4042 void rcu_report_dead(unsigned int cpu) 4043 { 4044 struct rcu_state *rsp; 4045 4046 /* QS for any half-done expedited RCU-sched GP. */ 4047 preempt_disable(); 4048 rcu_report_exp_rdp(&rcu_sched_state, 4049 this_cpu_ptr(rcu_sched_state.rda), true); 4050 preempt_enable(); 4051 for_each_rcu_flavor(rsp) 4052 rcu_cleanup_dying_idle_cpu(cpu, rsp); 4053 } 4054 #endif 4055 4056 static int rcu_pm_notify(struct notifier_block *self, 4057 unsigned long action, void *hcpu) 4058 { 4059 switch (action) { 4060 case PM_HIBERNATION_PREPARE: 4061 case PM_SUSPEND_PREPARE: 4062 if (nr_cpu_ids <= 256) /* Expediting bad for large systems. */ 4063 rcu_expedite_gp(); 4064 break; 4065 case PM_POST_HIBERNATION: 4066 case PM_POST_SUSPEND: 4067 if (nr_cpu_ids <= 256) /* Expediting bad for large systems. */ 4068 rcu_unexpedite_gp(); 4069 break; 4070 default: 4071 break; 4072 } 4073 return NOTIFY_OK; 4074 } 4075 4076 /* 4077 * Spawn the kthreads that handle each RCU flavor's grace periods. 4078 */ 4079 static int __init rcu_spawn_gp_kthread(void) 4080 { 4081 unsigned long flags; 4082 int kthread_prio_in = kthread_prio; 4083 struct rcu_node *rnp; 4084 struct rcu_state *rsp; 4085 struct sched_param sp; 4086 struct task_struct *t; 4087 4088 /* Force priority into range. */ 4089 if (IS_ENABLED(CONFIG_RCU_BOOST) && kthread_prio < 1) 4090 kthread_prio = 1; 4091 else if (kthread_prio < 0) 4092 kthread_prio = 0; 4093 else if (kthread_prio > 99) 4094 kthread_prio = 99; 4095 if (kthread_prio != kthread_prio_in) 4096 pr_alert("rcu_spawn_gp_kthread(): Limited prio to %d from %d\n", 4097 kthread_prio, kthread_prio_in); 4098 4099 rcu_scheduler_fully_active = 1; 4100 for_each_rcu_flavor(rsp) { 4101 t = kthread_create(rcu_gp_kthread, rsp, "%s", rsp->name); 4102 BUG_ON(IS_ERR(t)); 4103 rnp = rcu_get_root(rsp); 4104 raw_spin_lock_irqsave_rcu_node(rnp, flags); 4105 rsp->gp_kthread = t; 4106 if (kthread_prio) { 4107 sp.sched_priority = kthread_prio; 4108 sched_setscheduler_nocheck(t, SCHED_FIFO, &sp); 4109 } 4110 raw_spin_unlock_irqrestore_rcu_node(rnp, flags); 4111 wake_up_process(t); 4112 } 4113 rcu_spawn_nocb_kthreads(); 4114 rcu_spawn_boost_kthreads(); 4115 return 0; 4116 } 4117 early_initcall(rcu_spawn_gp_kthread); 4118 4119 /* 4120 * This function is invoked towards the end of the scheduler's 4121 * initialization process. Before this is called, the idle task might 4122 * contain synchronous grace-period primitives (during which time, this idle 4123 * task is booting the system, and such primitives are no-ops). After this 4124 * function is called, any synchronous grace-period primitives are run as 4125 * expedited, with the requesting task driving the grace period forward. 4126 * A later core_initcall() rcu_exp_runtime_mode() will switch to full 4127 * runtime RCU functionality. 4128 */ 4129 void rcu_scheduler_starting(void) 4130 { 4131 WARN_ON(num_online_cpus() != 1); 4132 WARN_ON(nr_context_switches() > 0); 4133 rcu_test_sync_prims(); 4134 rcu_scheduler_active = RCU_SCHEDULER_INIT; 4135 rcu_test_sync_prims(); 4136 } 4137 4138 /* 4139 * Compute the per-level fanout, either using the exact fanout specified 4140 * or balancing the tree, depending on the rcu_fanout_exact boot parameter. 4141 */ 4142 static void __init rcu_init_levelspread(int *levelspread, const int *levelcnt) 4143 { 4144 int i; 4145 4146 if (rcu_fanout_exact) { 4147 levelspread[rcu_num_lvls - 1] = rcu_fanout_leaf; 4148 for (i = rcu_num_lvls - 2; i >= 0; i--) 4149 levelspread[i] = RCU_FANOUT; 4150 } else { 4151 int ccur; 4152 int cprv; 4153 4154 cprv = nr_cpu_ids; 4155 for (i = rcu_num_lvls - 1; i >= 0; i--) { 4156 ccur = levelcnt[i]; 4157 levelspread[i] = (cprv + ccur - 1) / ccur; 4158 cprv = ccur; 4159 } 4160 } 4161 } 4162 4163 /* 4164 * Helper function for rcu_init() that initializes one rcu_state structure. 4165 */ 4166 static void __init rcu_init_one(struct rcu_state *rsp) 4167 { 4168 static const char * const buf[] = RCU_NODE_NAME_INIT; 4169 static const char * const fqs[] = RCU_FQS_NAME_INIT; 4170 static struct lock_class_key rcu_node_class[RCU_NUM_LVLS]; 4171 static struct lock_class_key rcu_fqs_class[RCU_NUM_LVLS]; 4172 static u8 fl_mask = 0x1; 4173 4174 int levelcnt[RCU_NUM_LVLS]; /* # nodes in each level. */ 4175 int levelspread[RCU_NUM_LVLS]; /* kids/node in each level. */ 4176 int cpustride = 1; 4177 int i; 4178 int j; 4179 struct rcu_node *rnp; 4180 4181 BUILD_BUG_ON(RCU_NUM_LVLS > ARRAY_SIZE(buf)); /* Fix buf[] init! */ 4182 4183 /* Silence gcc 4.8 false positive about array index out of range. */ 4184 if (rcu_num_lvls <= 0 || rcu_num_lvls > RCU_NUM_LVLS) 4185 panic("rcu_init_one: rcu_num_lvls out of range"); 4186 4187 /* Initialize the level-tracking arrays. */ 4188 4189 for (i = 0; i < rcu_num_lvls; i++) 4190 levelcnt[i] = num_rcu_lvl[i]; 4191 for (i = 1; i < rcu_num_lvls; i++) 4192 rsp->level[i] = rsp->level[i - 1] + levelcnt[i - 1]; 4193 rcu_init_levelspread(levelspread, levelcnt); 4194 rsp->flavor_mask = fl_mask; 4195 fl_mask <<= 1; 4196 4197 /* Initialize the elements themselves, starting from the leaves. */ 4198 4199 for (i = rcu_num_lvls - 1; i >= 0; i--) { 4200 cpustride *= levelspread[i]; 4201 rnp = rsp->level[i]; 4202 for (j = 0; j < levelcnt[i]; j++, rnp++) { 4203 raw_spin_lock_init(&ACCESS_PRIVATE(rnp, lock)); 4204 lockdep_set_class_and_name(&ACCESS_PRIVATE(rnp, lock), 4205 &rcu_node_class[i], buf[i]); 4206 raw_spin_lock_init(&rnp->fqslock); 4207 lockdep_set_class_and_name(&rnp->fqslock, 4208 &rcu_fqs_class[i], fqs[i]); 4209 rnp->gpnum = rsp->gpnum; 4210 rnp->completed = rsp->completed; 4211 rnp->qsmask = 0; 4212 rnp->qsmaskinit = 0; 4213 rnp->grplo = j * cpustride; 4214 rnp->grphi = (j + 1) * cpustride - 1; 4215 if (rnp->grphi >= nr_cpu_ids) 4216 rnp->grphi = nr_cpu_ids - 1; 4217 if (i == 0) { 4218 rnp->grpnum = 0; 4219 rnp->grpmask = 0; 4220 rnp->parent = NULL; 4221 } else { 4222 rnp->grpnum = j % levelspread[i - 1]; 4223 rnp->grpmask = 1UL << rnp->grpnum; 4224 rnp->parent = rsp->level[i - 1] + 4225 j / levelspread[i - 1]; 4226 } 4227 rnp->level = i; 4228 INIT_LIST_HEAD(&rnp->blkd_tasks); 4229 rcu_init_one_nocb(rnp); 4230 init_waitqueue_head(&rnp->exp_wq[0]); 4231 init_waitqueue_head(&rnp->exp_wq[1]); 4232 init_waitqueue_head(&rnp->exp_wq[2]); 4233 init_waitqueue_head(&rnp->exp_wq[3]); 4234 spin_lock_init(&rnp->exp_lock); 4235 } 4236 } 4237 4238 init_swait_queue_head(&rsp->gp_wq); 4239 init_swait_queue_head(&rsp->expedited_wq); 4240 rnp = rsp->level[rcu_num_lvls - 1]; 4241 for_each_possible_cpu(i) { 4242 while (i > rnp->grphi) 4243 rnp++; 4244 per_cpu_ptr(rsp->rda, i)->mynode = rnp; 4245 rcu_boot_init_percpu_data(i, rsp); 4246 } 4247 list_add(&rsp->flavors, &rcu_struct_flavors); 4248 } 4249 4250 /* 4251 * Compute the rcu_node tree geometry from kernel parameters. This cannot 4252 * replace the definitions in tree.h because those are needed to size 4253 * the ->node array in the rcu_state structure. 4254 */ 4255 static void __init rcu_init_geometry(void) 4256 { 4257 ulong d; 4258 int i; 4259 int rcu_capacity[RCU_NUM_LVLS]; 4260 4261 /* 4262 * Initialize any unspecified boot parameters. 4263 * The default values of jiffies_till_first_fqs and 4264 * jiffies_till_next_fqs are set to the RCU_JIFFIES_TILL_FORCE_QS 4265 * value, which is a function of HZ, then adding one for each 4266 * RCU_JIFFIES_FQS_DIV CPUs that might be on the system. 4267 */ 4268 d = RCU_JIFFIES_TILL_FORCE_QS + nr_cpu_ids / RCU_JIFFIES_FQS_DIV; 4269 if (jiffies_till_first_fqs == ULONG_MAX) 4270 jiffies_till_first_fqs = d; 4271 if (jiffies_till_next_fqs == ULONG_MAX) 4272 jiffies_till_next_fqs = d; 4273 4274 /* If the compile-time values are accurate, just leave. */ 4275 if (rcu_fanout_leaf == RCU_FANOUT_LEAF && 4276 nr_cpu_ids == NR_CPUS) 4277 return; 4278 pr_info("RCU: Adjusting geometry for rcu_fanout_leaf=%d, nr_cpu_ids=%d\n", 4279 rcu_fanout_leaf, nr_cpu_ids); 4280 4281 /* 4282 * The boot-time rcu_fanout_leaf parameter must be at least two 4283 * and cannot exceed the number of bits in the rcu_node masks. 4284 * Complain and fall back to the compile-time values if this 4285 * limit is exceeded. 4286 */ 4287 if (rcu_fanout_leaf < 2 || 4288 rcu_fanout_leaf > sizeof(unsigned long) * 8) { 4289 rcu_fanout_leaf = RCU_FANOUT_LEAF; 4290 WARN_ON(1); 4291 return; 4292 } 4293 4294 /* 4295 * Compute number of nodes that can be handled an rcu_node tree 4296 * with the given number of levels. 4297 */ 4298 rcu_capacity[0] = rcu_fanout_leaf; 4299 for (i = 1; i < RCU_NUM_LVLS; i++) 4300 rcu_capacity[i] = rcu_capacity[i - 1] * RCU_FANOUT; 4301 4302 /* 4303 * The tree must be able to accommodate the configured number of CPUs. 4304 * If this limit is exceeded, fall back to the compile-time values. 4305 */ 4306 if (nr_cpu_ids > rcu_capacity[RCU_NUM_LVLS - 1]) { 4307 rcu_fanout_leaf = RCU_FANOUT_LEAF; 4308 WARN_ON(1); 4309 return; 4310 } 4311 4312 /* Calculate the number of levels in the tree. */ 4313 for (i = 0; nr_cpu_ids > rcu_capacity[i]; i++) { 4314 } 4315 rcu_num_lvls = i + 1; 4316 4317 /* Calculate the number of rcu_nodes at each level of the tree. */ 4318 for (i = 0; i < rcu_num_lvls; i++) { 4319 int cap = rcu_capacity[(rcu_num_lvls - 1) - i]; 4320 num_rcu_lvl[i] = DIV_ROUND_UP(nr_cpu_ids, cap); 4321 } 4322 4323 /* Calculate the total number of rcu_node structures. */ 4324 rcu_num_nodes = 0; 4325 for (i = 0; i < rcu_num_lvls; i++) 4326 rcu_num_nodes += num_rcu_lvl[i]; 4327 } 4328 4329 /* 4330 * Dump out the structure of the rcu_node combining tree associated 4331 * with the rcu_state structure referenced by rsp. 4332 */ 4333 static void __init rcu_dump_rcu_node_tree(struct rcu_state *rsp) 4334 { 4335 int level = 0; 4336 struct rcu_node *rnp; 4337 4338 pr_info("rcu_node tree layout dump\n"); 4339 pr_info(" "); 4340 rcu_for_each_node_breadth_first(rsp, rnp) { 4341 if (rnp->level != level) { 4342 pr_cont("\n"); 4343 pr_info(" "); 4344 level = rnp->level; 4345 } 4346 pr_cont("%d:%d ^%d ", rnp->grplo, rnp->grphi, rnp->grpnum); 4347 } 4348 pr_cont("\n"); 4349 } 4350 4351 void __init rcu_init(void) 4352 { 4353 int cpu; 4354 4355 rcu_early_boot_tests(); 4356 4357 rcu_bootup_announce(); 4358 rcu_init_geometry(); 4359 rcu_init_one(&rcu_bh_state); 4360 rcu_init_one(&rcu_sched_state); 4361 if (dump_tree) 4362 rcu_dump_rcu_node_tree(&rcu_sched_state); 4363 __rcu_init_preempt(); 4364 open_softirq(RCU_SOFTIRQ, rcu_process_callbacks); 4365 4366 /* 4367 * We don't need protection against CPU-hotplug here because 4368 * this is called early in boot, before either interrupts 4369 * or the scheduler are operational. 4370 */ 4371 pm_notifier(rcu_pm_notify, 0); 4372 for_each_online_cpu(cpu) { 4373 rcutree_prepare_cpu(cpu); 4374 rcu_cpu_starting(cpu); 4375 } 4376 } 4377 4378 #include "tree_exp.h" 4379 #include "tree_plugin.h" 4380