xref: /linux-6.15/kernel/rcu/tree.c (revision 9577df9a)
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