tree_plugin.h 90 KB

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  1. /*
  2. * Read-Copy Update mechanism for mutual exclusion (tree-based version)
  3. * Internal non-public definitions that provide either classic
  4. * or preemptible semantics.
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation; either version 2 of the License, or
  9. * (at your option) any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program; if not, you can access it online at
  18. * http://www.gnu.org/licenses/gpl-2.0.html.
  19. *
  20. * Copyright Red Hat, 2009
  21. * Copyright IBM Corporation, 2009
  22. *
  23. * Author: Ingo Molnar <mingo@elte.hu>
  24. * Paul E. McKenney <paulmck@linux.vnet.ibm.com>
  25. */
  26. #include <linux/delay.h>
  27. #include <linux/gfp.h>
  28. #include <linux/oom.h>
  29. #include <linux/smpboot.h>
  30. #include "../time/tick-internal.h"
  31. #ifdef CONFIG_RCU_BOOST
  32. #include "../locking/rtmutex_common.h"
  33. /*
  34. * Control variables for per-CPU and per-rcu_node kthreads. These
  35. * handle all flavors of RCU.
  36. */
  37. static DEFINE_PER_CPU(struct task_struct *, rcu_cpu_kthread_task);
  38. DEFINE_PER_CPU(unsigned int, rcu_cpu_kthread_status);
  39. DEFINE_PER_CPU(unsigned int, rcu_cpu_kthread_loops);
  40. DEFINE_PER_CPU(char, rcu_cpu_has_work);
  41. #else /* #ifdef CONFIG_RCU_BOOST */
  42. /*
  43. * Some architectures do not define rt_mutexes, but if !CONFIG_RCU_BOOST,
  44. * all uses are in dead code. Provide a definition to keep the compiler
  45. * happy, but add WARN_ON_ONCE() to complain if used in the wrong place.
  46. * This probably needs to be excluded from -rt builds.
  47. */
  48. #define rt_mutex_owner(a) ({ WARN_ON_ONCE(1); NULL; })
  49. #endif /* #else #ifdef CONFIG_RCU_BOOST */
  50. #ifdef CONFIG_RCU_NOCB_CPU
  51. static cpumask_var_t rcu_nocb_mask; /* CPUs to have callbacks offloaded. */
  52. static bool have_rcu_nocb_mask; /* Was rcu_nocb_mask allocated? */
  53. static bool __read_mostly rcu_nocb_poll; /* Offload kthread are to poll. */
  54. #endif /* #ifdef CONFIG_RCU_NOCB_CPU */
  55. /*
  56. * Check the RCU kernel configuration parameters and print informative
  57. * messages about anything out of the ordinary.
  58. */
  59. static void __init rcu_bootup_announce_oddness(void)
  60. {
  61. if (IS_ENABLED(CONFIG_RCU_TRACE))
  62. pr_info("\tRCU debugfs-based tracing is enabled.\n");
  63. if ((IS_ENABLED(CONFIG_64BIT) && RCU_FANOUT != 64) ||
  64. (!IS_ENABLED(CONFIG_64BIT) && RCU_FANOUT != 32))
  65. pr_info("\tCONFIG_RCU_FANOUT set to non-default value of %d\n",
  66. RCU_FANOUT);
  67. if (rcu_fanout_exact)
  68. pr_info("\tHierarchical RCU autobalancing is disabled.\n");
  69. if (IS_ENABLED(CONFIG_RCU_FAST_NO_HZ))
  70. pr_info("\tRCU dyntick-idle grace-period acceleration is enabled.\n");
  71. if (IS_ENABLED(CONFIG_PROVE_RCU))
  72. pr_info("\tRCU lockdep checking is enabled.\n");
  73. if (IS_ENABLED(CONFIG_RCU_TORTURE_TEST_RUNNABLE))
  74. pr_info("\tRCU torture testing starts during boot.\n");
  75. if (RCU_NUM_LVLS >= 4)
  76. pr_info("\tFour(or more)-level hierarchy is enabled.\n");
  77. if (RCU_FANOUT_LEAF != 16)
  78. pr_info("\tBuild-time adjustment of leaf fanout to %d.\n",
  79. RCU_FANOUT_LEAF);
  80. if (rcu_fanout_leaf != RCU_FANOUT_LEAF)
  81. pr_info("\tBoot-time adjustment of leaf fanout to %d.\n", rcu_fanout_leaf);
  82. if (nr_cpu_ids != NR_CPUS)
  83. pr_info("\tRCU restricting CPUs from NR_CPUS=%d to nr_cpu_ids=%d.\n", NR_CPUS, nr_cpu_ids);
  84. if (IS_ENABLED(CONFIG_RCU_BOOST))
  85. pr_info("\tRCU kthread priority: %d.\n", kthread_prio);
  86. }
  87. #ifdef CONFIG_PREEMPT_RCU
  88. RCU_STATE_INITIALIZER(rcu_preempt, 'p', call_rcu);
  89. static struct rcu_state *const rcu_state_p = &rcu_preempt_state;
  90. static struct rcu_data __percpu *const rcu_data_p = &rcu_preempt_data;
  91. static void rcu_report_exp_rnp(struct rcu_state *rsp, struct rcu_node *rnp,
  92. bool wake);
  93. /*
  94. * Tell them what RCU they are running.
  95. */
  96. static void __init rcu_bootup_announce(void)
  97. {
  98. pr_info("Preemptible hierarchical RCU implementation.\n");
  99. rcu_bootup_announce_oddness();
  100. }
  101. /* Flags for rcu_preempt_ctxt_queue() decision table. */
  102. #define RCU_GP_TASKS 0x8
  103. #define RCU_EXP_TASKS 0x4
  104. #define RCU_GP_BLKD 0x2
  105. #define RCU_EXP_BLKD 0x1
  106. /*
  107. * Queues a task preempted within an RCU-preempt read-side critical
  108. * section into the appropriate location within the ->blkd_tasks list,
  109. * depending on the states of any ongoing normal and expedited grace
  110. * periods. The ->gp_tasks pointer indicates which element the normal
  111. * grace period is waiting on (NULL if none), and the ->exp_tasks pointer
  112. * indicates which element the expedited grace period is waiting on (again,
  113. * NULL if none). If a grace period is waiting on a given element in the
  114. * ->blkd_tasks list, it also waits on all subsequent elements. Thus,
  115. * adding a task to the tail of the list blocks any grace period that is
  116. * already waiting on one of the elements. In contrast, adding a task
  117. * to the head of the list won't block any grace period that is already
  118. * waiting on one of the elements.
  119. *
  120. * This queuing is imprecise, and can sometimes make an ongoing grace
  121. * period wait for a task that is not strictly speaking blocking it.
  122. * Given the choice, we needlessly block a normal grace period rather than
  123. * blocking an expedited grace period.
  124. *
  125. * Note that an endless sequence of expedited grace periods still cannot
  126. * indefinitely postpone a normal grace period. Eventually, all of the
  127. * fixed number of preempted tasks blocking the normal grace period that are
  128. * not also blocking the expedited grace period will resume and complete
  129. * their RCU read-side critical sections. At that point, the ->gp_tasks
  130. * pointer will equal the ->exp_tasks pointer, at which point the end of
  131. * the corresponding expedited grace period will also be the end of the
  132. * normal grace period.
  133. */
  134. static void rcu_preempt_ctxt_queue(struct rcu_node *rnp, struct rcu_data *rdp)
  135. __releases(rnp->lock) /* But leaves rrupts disabled. */
  136. {
  137. int blkd_state = (rnp->gp_tasks ? RCU_GP_TASKS : 0) +
  138. (rnp->exp_tasks ? RCU_EXP_TASKS : 0) +
  139. (rnp->qsmask & rdp->grpmask ? RCU_GP_BLKD : 0) +
  140. (rnp->expmask & rdp->grpmask ? RCU_EXP_BLKD : 0);
  141. struct task_struct *t = current;
  142. /*
  143. * Decide where to queue the newly blocked task. In theory,
  144. * this could be an if-statement. In practice, when I tried
  145. * that, it was quite messy.
  146. */
  147. switch (blkd_state) {
  148. case 0:
  149. case RCU_EXP_TASKS:
  150. case RCU_EXP_TASKS + RCU_GP_BLKD:
  151. case RCU_GP_TASKS:
  152. case RCU_GP_TASKS + RCU_EXP_TASKS:
  153. /*
  154. * Blocking neither GP, or first task blocking the normal
  155. * GP but not blocking the already-waiting expedited GP.
  156. * Queue at the head of the list to avoid unnecessarily
  157. * blocking the already-waiting GPs.
  158. */
  159. list_add(&t->rcu_node_entry, &rnp->blkd_tasks);
  160. break;
  161. case RCU_EXP_BLKD:
  162. case RCU_GP_BLKD:
  163. case RCU_GP_BLKD + RCU_EXP_BLKD:
  164. case RCU_GP_TASKS + RCU_EXP_BLKD:
  165. case RCU_GP_TASKS + RCU_GP_BLKD + RCU_EXP_BLKD:
  166. case RCU_GP_TASKS + RCU_EXP_TASKS + RCU_GP_BLKD + RCU_EXP_BLKD:
  167. /*
  168. * First task arriving that blocks either GP, or first task
  169. * arriving that blocks the expedited GP (with the normal
  170. * GP already waiting), or a task arriving that blocks
  171. * both GPs with both GPs already waiting. Queue at the
  172. * tail of the list to avoid any GP waiting on any of the
  173. * already queued tasks that are not blocking it.
  174. */
  175. list_add_tail(&t->rcu_node_entry, &rnp->blkd_tasks);
  176. break;
  177. case RCU_EXP_TASKS + RCU_EXP_BLKD:
  178. case RCU_EXP_TASKS + RCU_GP_BLKD + RCU_EXP_BLKD:
  179. case RCU_GP_TASKS + RCU_EXP_TASKS + RCU_EXP_BLKD:
  180. /*
  181. * Second or subsequent task blocking the expedited GP.
  182. * The task either does not block the normal GP, or is the
  183. * first task blocking the normal GP. Queue just after
  184. * the first task blocking the expedited GP.
  185. */
  186. list_add(&t->rcu_node_entry, rnp->exp_tasks);
  187. break;
  188. case RCU_GP_TASKS + RCU_GP_BLKD:
  189. case RCU_GP_TASKS + RCU_EXP_TASKS + RCU_GP_BLKD:
  190. /*
  191. * Second or subsequent task blocking the normal GP.
  192. * The task does not block the expedited GP. Queue just
  193. * after the first task blocking the normal GP.
  194. */
  195. list_add(&t->rcu_node_entry, rnp->gp_tasks);
  196. break;
  197. default:
  198. /* Yet another exercise in excessive paranoia. */
  199. WARN_ON_ONCE(1);
  200. break;
  201. }
  202. /*
  203. * We have now queued the task. If it was the first one to
  204. * block either grace period, update the ->gp_tasks and/or
  205. * ->exp_tasks pointers, respectively, to reference the newly
  206. * blocked tasks.
  207. */
  208. if (!rnp->gp_tasks && (blkd_state & RCU_GP_BLKD))
  209. rnp->gp_tasks = &t->rcu_node_entry;
  210. if (!rnp->exp_tasks && (blkd_state & RCU_EXP_BLKD))
  211. rnp->exp_tasks = &t->rcu_node_entry;
  212. raw_spin_unlock_rcu_node(rnp); /* interrupts remain disabled. */
  213. /*
  214. * Report the quiescent state for the expedited GP. This expedited
  215. * GP should not be able to end until we report, so there should be
  216. * no need to check for a subsequent expedited GP. (Though we are
  217. * still in a quiescent state in any case.)
  218. */
  219. if (blkd_state & RCU_EXP_BLKD &&
  220. t->rcu_read_unlock_special.b.exp_need_qs) {
  221. t->rcu_read_unlock_special.b.exp_need_qs = false;
  222. rcu_report_exp_rdp(rdp->rsp, rdp, true);
  223. } else {
  224. WARN_ON_ONCE(t->rcu_read_unlock_special.b.exp_need_qs);
  225. }
  226. }
  227. /*
  228. * Record a preemptible-RCU quiescent state for the specified CPU. Note
  229. * that this just means that the task currently running on the CPU is
  230. * not in a quiescent state. There might be any number of tasks blocked
  231. * while in an RCU read-side critical section.
  232. *
  233. * As with the other rcu_*_qs() functions, callers to this function
  234. * must disable preemption.
  235. */
  236. static void rcu_preempt_qs(void)
  237. {
  238. if (__this_cpu_read(rcu_data_p->cpu_no_qs.s)) {
  239. trace_rcu_grace_period(TPS("rcu_preempt"),
  240. __this_cpu_read(rcu_data_p->gpnum),
  241. TPS("cpuqs"));
  242. __this_cpu_write(rcu_data_p->cpu_no_qs.b.norm, false);
  243. barrier(); /* Coordinate with rcu_preempt_check_callbacks(). */
  244. current->rcu_read_unlock_special.b.need_qs = false;
  245. }
  246. }
  247. /*
  248. * We have entered the scheduler, and the current task might soon be
  249. * context-switched away from. If this task is in an RCU read-side
  250. * critical section, we will no longer be able to rely on the CPU to
  251. * record that fact, so we enqueue the task on the blkd_tasks list.
  252. * The task will dequeue itself when it exits the outermost enclosing
  253. * RCU read-side critical section. Therefore, the current grace period
  254. * cannot be permitted to complete until the blkd_tasks list entries
  255. * predating the current grace period drain, in other words, until
  256. * rnp->gp_tasks becomes NULL.
  257. *
  258. * Caller must disable interrupts.
  259. */
  260. static void rcu_preempt_note_context_switch(void)
  261. {
  262. struct task_struct *t = current;
  263. struct rcu_data *rdp;
  264. struct rcu_node *rnp;
  265. if (t->rcu_read_lock_nesting > 0 &&
  266. !t->rcu_read_unlock_special.b.blocked) {
  267. /* Possibly blocking in an RCU read-side critical section. */
  268. rdp = this_cpu_ptr(rcu_state_p->rda);
  269. rnp = rdp->mynode;
  270. raw_spin_lock_rcu_node(rnp);
  271. t->rcu_read_unlock_special.b.blocked = true;
  272. t->rcu_blocked_node = rnp;
  273. /*
  274. * Verify the CPU's sanity, trace the preemption, and
  275. * then queue the task as required based on the states
  276. * of any ongoing and expedited grace periods.
  277. */
  278. WARN_ON_ONCE((rdp->grpmask & rcu_rnp_online_cpus(rnp)) == 0);
  279. WARN_ON_ONCE(!list_empty(&t->rcu_node_entry));
  280. trace_rcu_preempt_task(rdp->rsp->name,
  281. t->pid,
  282. (rnp->qsmask & rdp->grpmask)
  283. ? rnp->gpnum
  284. : rnp->gpnum + 1);
  285. rcu_preempt_ctxt_queue(rnp, rdp);
  286. } else if (t->rcu_read_lock_nesting < 0 &&
  287. t->rcu_read_unlock_special.s) {
  288. /*
  289. * Complete exit from RCU read-side critical section on
  290. * behalf of preempted instance of __rcu_read_unlock().
  291. */
  292. rcu_read_unlock_special(t);
  293. }
  294. /*
  295. * Either we were not in an RCU read-side critical section to
  296. * begin with, or we have now recorded that critical section
  297. * globally. Either way, we can now note a quiescent state
  298. * for this CPU. Again, if we were in an RCU read-side critical
  299. * section, and if that critical section was blocking the current
  300. * grace period, then the fact that the task has been enqueued
  301. * means that we continue to block the current grace period.
  302. */
  303. rcu_preempt_qs();
  304. }
  305. /*
  306. * Check for preempted RCU readers blocking the current grace period
  307. * for the specified rcu_node structure. If the caller needs a reliable
  308. * answer, it must hold the rcu_node's ->lock.
  309. */
  310. static int rcu_preempt_blocked_readers_cgp(struct rcu_node *rnp)
  311. {
  312. return rnp->gp_tasks != NULL;
  313. }
  314. /*
  315. * Advance a ->blkd_tasks-list pointer to the next entry, instead
  316. * returning NULL if at the end of the list.
  317. */
  318. static struct list_head *rcu_next_node_entry(struct task_struct *t,
  319. struct rcu_node *rnp)
  320. {
  321. struct list_head *np;
  322. np = t->rcu_node_entry.next;
  323. if (np == &rnp->blkd_tasks)
  324. np = NULL;
  325. return np;
  326. }
  327. /*
  328. * Return true if the specified rcu_node structure has tasks that were
  329. * preempted within an RCU read-side critical section.
  330. */
  331. static bool rcu_preempt_has_tasks(struct rcu_node *rnp)
  332. {
  333. return !list_empty(&rnp->blkd_tasks);
  334. }
  335. /*
  336. * Handle special cases during rcu_read_unlock(), such as needing to
  337. * notify RCU core processing or task having blocked during the RCU
  338. * read-side critical section.
  339. */
  340. void rcu_read_unlock_special(struct task_struct *t)
  341. {
  342. bool empty_exp;
  343. bool empty_norm;
  344. bool empty_exp_now;
  345. unsigned long flags;
  346. struct list_head *np;
  347. bool drop_boost_mutex = false;
  348. struct rcu_data *rdp;
  349. struct rcu_node *rnp;
  350. union rcu_special special;
  351. /* NMI handlers cannot block and cannot safely manipulate state. */
  352. if (in_nmi())
  353. return;
  354. local_irq_save(flags);
  355. /*
  356. * If RCU core is waiting for this CPU to exit its critical section,
  357. * report the fact that it has exited. Because irqs are disabled,
  358. * t->rcu_read_unlock_special cannot change.
  359. */
  360. special = t->rcu_read_unlock_special;
  361. if (special.b.need_qs) {
  362. rcu_preempt_qs();
  363. t->rcu_read_unlock_special.b.need_qs = false;
  364. if (!t->rcu_read_unlock_special.s) {
  365. local_irq_restore(flags);
  366. return;
  367. }
  368. }
  369. /*
  370. * Respond to a request for an expedited grace period, but only if
  371. * we were not preempted, meaning that we were running on the same
  372. * CPU throughout. If we were preempted, the exp_need_qs flag
  373. * would have been cleared at the time of the first preemption,
  374. * and the quiescent state would be reported when we were dequeued.
  375. */
  376. if (special.b.exp_need_qs) {
  377. WARN_ON_ONCE(special.b.blocked);
  378. t->rcu_read_unlock_special.b.exp_need_qs = false;
  379. rdp = this_cpu_ptr(rcu_state_p->rda);
  380. rcu_report_exp_rdp(rcu_state_p, rdp, true);
  381. if (!t->rcu_read_unlock_special.s) {
  382. local_irq_restore(flags);
  383. return;
  384. }
  385. }
  386. /* Hardware IRQ handlers cannot block, complain if they get here. */
  387. if (in_irq() || in_serving_softirq()) {
  388. lockdep_rcu_suspicious(__FILE__, __LINE__,
  389. "rcu_read_unlock() from irq or softirq with blocking in critical section!!!\n");
  390. pr_alert("->rcu_read_unlock_special: %#x (b: %d, enq: %d nq: %d)\n",
  391. t->rcu_read_unlock_special.s,
  392. t->rcu_read_unlock_special.b.blocked,
  393. t->rcu_read_unlock_special.b.exp_need_qs,
  394. t->rcu_read_unlock_special.b.need_qs);
  395. local_irq_restore(flags);
  396. return;
  397. }
  398. /* Clean up if blocked during RCU read-side critical section. */
  399. if (special.b.blocked) {
  400. t->rcu_read_unlock_special.b.blocked = false;
  401. /*
  402. * Remove this task from the list it blocked on. The task
  403. * now remains queued on the rcu_node corresponding to the
  404. * CPU it first blocked on, so there is no longer any need
  405. * to loop. Retain a WARN_ON_ONCE() out of sheer paranoia.
  406. */
  407. rnp = t->rcu_blocked_node;
  408. raw_spin_lock_rcu_node(rnp); /* irqs already disabled. */
  409. WARN_ON_ONCE(rnp != t->rcu_blocked_node);
  410. empty_norm = !rcu_preempt_blocked_readers_cgp(rnp);
  411. empty_exp = sync_rcu_preempt_exp_done(rnp);
  412. smp_mb(); /* ensure expedited fastpath sees end of RCU c-s. */
  413. np = rcu_next_node_entry(t, rnp);
  414. list_del_init(&t->rcu_node_entry);
  415. t->rcu_blocked_node = NULL;
  416. trace_rcu_unlock_preempted_task(TPS("rcu_preempt"),
  417. rnp->gpnum, t->pid);
  418. if (&t->rcu_node_entry == rnp->gp_tasks)
  419. rnp->gp_tasks = np;
  420. if (&t->rcu_node_entry == rnp->exp_tasks)
  421. rnp->exp_tasks = np;
  422. if (IS_ENABLED(CONFIG_RCU_BOOST)) {
  423. if (&t->rcu_node_entry == rnp->boost_tasks)
  424. rnp->boost_tasks = np;
  425. /* Snapshot ->boost_mtx ownership w/rnp->lock held. */
  426. drop_boost_mutex = rt_mutex_owner(&rnp->boost_mtx) == t;
  427. }
  428. /*
  429. * If this was the last task on the current list, and if
  430. * we aren't waiting on any CPUs, report the quiescent state.
  431. * Note that rcu_report_unblock_qs_rnp() releases rnp->lock,
  432. * so we must take a snapshot of the expedited state.
  433. */
  434. empty_exp_now = sync_rcu_preempt_exp_done(rnp);
  435. if (!empty_norm && !rcu_preempt_blocked_readers_cgp(rnp)) {
  436. trace_rcu_quiescent_state_report(TPS("preempt_rcu"),
  437. rnp->gpnum,
  438. 0, rnp->qsmask,
  439. rnp->level,
  440. rnp->grplo,
  441. rnp->grphi,
  442. !!rnp->gp_tasks);
  443. rcu_report_unblock_qs_rnp(rcu_state_p, rnp, flags);
  444. } else {
  445. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  446. }
  447. /* Unboost if we were boosted. */
  448. if (IS_ENABLED(CONFIG_RCU_BOOST) && drop_boost_mutex)
  449. rt_mutex_unlock(&rnp->boost_mtx);
  450. /*
  451. * If this was the last task on the expedited lists,
  452. * then we need to report up the rcu_node hierarchy.
  453. */
  454. if (!empty_exp && empty_exp_now)
  455. rcu_report_exp_rnp(rcu_state_p, rnp, true);
  456. } else {
  457. local_irq_restore(flags);
  458. }
  459. }
  460. /*
  461. * Dump detailed information for all tasks blocking the current RCU
  462. * grace period on the specified rcu_node structure.
  463. */
  464. static void rcu_print_detail_task_stall_rnp(struct rcu_node *rnp)
  465. {
  466. unsigned long flags;
  467. struct task_struct *t;
  468. raw_spin_lock_irqsave_rcu_node(rnp, flags);
  469. if (!rcu_preempt_blocked_readers_cgp(rnp)) {
  470. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  471. return;
  472. }
  473. t = list_entry(rnp->gp_tasks->prev,
  474. struct task_struct, rcu_node_entry);
  475. list_for_each_entry_continue(t, &rnp->blkd_tasks, rcu_node_entry)
  476. sched_show_task(t);
  477. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  478. }
  479. /*
  480. * Dump detailed information for all tasks blocking the current RCU
  481. * grace period.
  482. */
  483. static void rcu_print_detail_task_stall(struct rcu_state *rsp)
  484. {
  485. struct rcu_node *rnp = rcu_get_root(rsp);
  486. rcu_print_detail_task_stall_rnp(rnp);
  487. rcu_for_each_leaf_node(rsp, rnp)
  488. rcu_print_detail_task_stall_rnp(rnp);
  489. }
  490. static void rcu_print_task_stall_begin(struct rcu_node *rnp)
  491. {
  492. pr_err("\tTasks blocked on level-%d rcu_node (CPUs %d-%d):",
  493. rnp->level, rnp->grplo, rnp->grphi);
  494. }
  495. static void rcu_print_task_stall_end(void)
  496. {
  497. pr_cont("\n");
  498. }
  499. /*
  500. * Scan the current list of tasks blocked within RCU read-side critical
  501. * sections, printing out the tid of each.
  502. */
  503. static int rcu_print_task_stall(struct rcu_node *rnp)
  504. {
  505. struct task_struct *t;
  506. int ndetected = 0;
  507. if (!rcu_preempt_blocked_readers_cgp(rnp))
  508. return 0;
  509. rcu_print_task_stall_begin(rnp);
  510. t = list_entry(rnp->gp_tasks->prev,
  511. struct task_struct, rcu_node_entry);
  512. list_for_each_entry_continue(t, &rnp->blkd_tasks, rcu_node_entry) {
  513. pr_cont(" P%d", t->pid);
  514. ndetected++;
  515. }
  516. rcu_print_task_stall_end();
  517. return ndetected;
  518. }
  519. /*
  520. * Scan the current list of tasks blocked within RCU read-side critical
  521. * sections, printing out the tid of each that is blocking the current
  522. * expedited grace period.
  523. */
  524. static int rcu_print_task_exp_stall(struct rcu_node *rnp)
  525. {
  526. struct task_struct *t;
  527. int ndetected = 0;
  528. if (!rnp->exp_tasks)
  529. return 0;
  530. t = list_entry(rnp->exp_tasks->prev,
  531. struct task_struct, rcu_node_entry);
  532. list_for_each_entry_continue(t, &rnp->blkd_tasks, rcu_node_entry) {
  533. pr_cont(" P%d", t->pid);
  534. ndetected++;
  535. }
  536. return ndetected;
  537. }
  538. /*
  539. * Check that the list of blocked tasks for the newly completed grace
  540. * period is in fact empty. It is a serious bug to complete a grace
  541. * period that still has RCU readers blocked! This function must be
  542. * invoked -before- updating this rnp's ->gpnum, and the rnp's ->lock
  543. * must be held by the caller.
  544. *
  545. * Also, if there are blocked tasks on the list, they automatically
  546. * block the newly created grace period, so set up ->gp_tasks accordingly.
  547. */
  548. static void rcu_preempt_check_blocked_tasks(struct rcu_node *rnp)
  549. {
  550. WARN_ON_ONCE(rcu_preempt_blocked_readers_cgp(rnp));
  551. if (rcu_preempt_has_tasks(rnp))
  552. rnp->gp_tasks = rnp->blkd_tasks.next;
  553. WARN_ON_ONCE(rnp->qsmask);
  554. }
  555. /*
  556. * Check for a quiescent state from the current CPU. When a task blocks,
  557. * the task is recorded in the corresponding CPU's rcu_node structure,
  558. * which is checked elsewhere.
  559. *
  560. * Caller must disable hard irqs.
  561. */
  562. static void rcu_preempt_check_callbacks(void)
  563. {
  564. struct task_struct *t = current;
  565. if (t->rcu_read_lock_nesting == 0) {
  566. rcu_preempt_qs();
  567. return;
  568. }
  569. if (t->rcu_read_lock_nesting > 0 &&
  570. __this_cpu_read(rcu_data_p->core_needs_qs) &&
  571. __this_cpu_read(rcu_data_p->cpu_no_qs.b.norm))
  572. t->rcu_read_unlock_special.b.need_qs = true;
  573. }
  574. #ifdef CONFIG_RCU_BOOST
  575. static void rcu_preempt_do_callbacks(void)
  576. {
  577. rcu_do_batch(rcu_state_p, this_cpu_ptr(rcu_data_p));
  578. }
  579. #endif /* #ifdef CONFIG_RCU_BOOST */
  580. /*
  581. * Queue a preemptible-RCU callback for invocation after a grace period.
  582. */
  583. void call_rcu(struct rcu_head *head, rcu_callback_t func)
  584. {
  585. __call_rcu(head, func, rcu_state_p, -1, 0);
  586. }
  587. EXPORT_SYMBOL_GPL(call_rcu);
  588. /**
  589. * synchronize_rcu - wait until a grace period has elapsed.
  590. *
  591. * Control will return to the caller some time after a full grace
  592. * period has elapsed, in other words after all currently executing RCU
  593. * read-side critical sections have completed. Note, however, that
  594. * upon return from synchronize_rcu(), the caller might well be executing
  595. * concurrently with new RCU read-side critical sections that began while
  596. * synchronize_rcu() was waiting. RCU read-side critical sections are
  597. * delimited by rcu_read_lock() and rcu_read_unlock(), and may be nested.
  598. *
  599. * See the description of synchronize_sched() for more detailed information
  600. * on memory ordering guarantees.
  601. */
  602. void synchronize_rcu(void)
  603. {
  604. RCU_LOCKDEP_WARN(lock_is_held(&rcu_bh_lock_map) ||
  605. lock_is_held(&rcu_lock_map) ||
  606. lock_is_held(&rcu_sched_lock_map),
  607. "Illegal synchronize_rcu() in RCU read-side critical section");
  608. if (!rcu_scheduler_active)
  609. return;
  610. if (rcu_gp_is_expedited())
  611. synchronize_rcu_expedited();
  612. else
  613. wait_rcu_gp(call_rcu);
  614. }
  615. EXPORT_SYMBOL_GPL(synchronize_rcu);
  616. /*
  617. * Remote handler for smp_call_function_single(). If there is an
  618. * RCU read-side critical section in effect, request that the
  619. * next rcu_read_unlock() record the quiescent state up the
  620. * ->expmask fields in the rcu_node tree. Otherwise, immediately
  621. * report the quiescent state.
  622. */
  623. static void sync_rcu_exp_handler(void *info)
  624. {
  625. struct rcu_data *rdp;
  626. struct rcu_state *rsp = info;
  627. struct task_struct *t = current;
  628. /*
  629. * Within an RCU read-side critical section, request that the next
  630. * rcu_read_unlock() report. Unless this RCU read-side critical
  631. * section has already blocked, in which case it is already set
  632. * up for the expedited grace period to wait on it.
  633. */
  634. if (t->rcu_read_lock_nesting > 0 &&
  635. !t->rcu_read_unlock_special.b.blocked) {
  636. t->rcu_read_unlock_special.b.exp_need_qs = true;
  637. return;
  638. }
  639. /*
  640. * We are either exiting an RCU read-side critical section (negative
  641. * values of t->rcu_read_lock_nesting) or are not in one at all
  642. * (zero value of t->rcu_read_lock_nesting). Or we are in an RCU
  643. * read-side critical section that blocked before this expedited
  644. * grace period started. Either way, we can immediately report
  645. * the quiescent state.
  646. */
  647. rdp = this_cpu_ptr(rsp->rda);
  648. rcu_report_exp_rdp(rsp, rdp, true);
  649. }
  650. /**
  651. * synchronize_rcu_expedited - Brute-force RCU grace period
  652. *
  653. * Wait for an RCU-preempt grace period, but expedite it. The basic
  654. * idea is to IPI all non-idle non-nohz online CPUs. The IPI handler
  655. * checks whether the CPU is in an RCU-preempt critical section, and
  656. * if so, it sets a flag that causes the outermost rcu_read_unlock()
  657. * to report the quiescent state. On the other hand, if the CPU is
  658. * not in an RCU read-side critical section, the IPI handler reports
  659. * the quiescent state immediately.
  660. *
  661. * Although this is a greate improvement over previous expedited
  662. * implementations, it is still unfriendly to real-time workloads, so is
  663. * thus not recommended for any sort of common-case code. In fact, if
  664. * you are using synchronize_rcu_expedited() in a loop, please restructure
  665. * your code to batch your updates, and then Use a single synchronize_rcu()
  666. * instead.
  667. */
  668. void synchronize_rcu_expedited(void)
  669. {
  670. struct rcu_state *rsp = rcu_state_p;
  671. unsigned long s;
  672. /* If expedited grace periods are prohibited, fall back to normal. */
  673. if (rcu_gp_is_normal()) {
  674. wait_rcu_gp(call_rcu);
  675. return;
  676. }
  677. s = rcu_exp_gp_seq_snap(rsp);
  678. if (exp_funnel_lock(rsp, s))
  679. return; /* Someone else did our work for us. */
  680. rcu_exp_gp_seq_start(rsp);
  681. trace_rcu_exp_grace_period(rsp->name, s, TPS("start"));
  682. /* Initialize the rcu_node tree in preparation for the wait. */
  683. sync_rcu_exp_select_cpus(rsp, sync_rcu_exp_handler);
  684. /* Wait for ->blkd_tasks lists to drain, then wake everyone up. */
  685. rcu_exp_wait_wake(rsp, s);
  686. }
  687. EXPORT_SYMBOL_GPL(synchronize_rcu_expedited);
  688. /**
  689. * rcu_barrier - Wait until all in-flight call_rcu() callbacks complete.
  690. *
  691. * Note that this primitive does not necessarily wait for an RCU grace period
  692. * to complete. For example, if there are no RCU callbacks queued anywhere
  693. * in the system, then rcu_barrier() is within its rights to return
  694. * immediately, without waiting for anything, much less an RCU grace period.
  695. */
  696. void rcu_barrier(void)
  697. {
  698. _rcu_barrier(rcu_state_p);
  699. }
  700. EXPORT_SYMBOL_GPL(rcu_barrier);
  701. /*
  702. * Initialize preemptible RCU's state structures.
  703. */
  704. static void __init __rcu_init_preempt(void)
  705. {
  706. rcu_init_one(rcu_state_p);
  707. }
  708. /*
  709. * Check for a task exiting while in a preemptible-RCU read-side
  710. * critical section, clean up if so. No need to issue warnings,
  711. * as debug_check_no_locks_held() already does this if lockdep
  712. * is enabled.
  713. */
  714. void exit_rcu(void)
  715. {
  716. struct task_struct *t = current;
  717. if (likely(list_empty(&current->rcu_node_entry)))
  718. return;
  719. t->rcu_read_lock_nesting = 1;
  720. barrier();
  721. t->rcu_read_unlock_special.b.blocked = true;
  722. __rcu_read_unlock();
  723. }
  724. #else /* #ifdef CONFIG_PREEMPT_RCU */
  725. static struct rcu_state *const rcu_state_p = &rcu_sched_state;
  726. /*
  727. * Tell them what RCU they are running.
  728. */
  729. static void __init rcu_bootup_announce(void)
  730. {
  731. pr_info("Hierarchical RCU implementation.\n");
  732. rcu_bootup_announce_oddness();
  733. }
  734. /*
  735. * Because preemptible RCU does not exist, we never have to check for
  736. * CPUs being in quiescent states.
  737. */
  738. static void rcu_preempt_note_context_switch(void)
  739. {
  740. }
  741. /*
  742. * Because preemptible RCU does not exist, there are never any preempted
  743. * RCU readers.
  744. */
  745. static int rcu_preempt_blocked_readers_cgp(struct rcu_node *rnp)
  746. {
  747. return 0;
  748. }
  749. /*
  750. * Because there is no preemptible RCU, there can be no readers blocked.
  751. */
  752. static bool rcu_preempt_has_tasks(struct rcu_node *rnp)
  753. {
  754. return false;
  755. }
  756. /*
  757. * Because preemptible RCU does not exist, we never have to check for
  758. * tasks blocked within RCU read-side critical sections.
  759. */
  760. static void rcu_print_detail_task_stall(struct rcu_state *rsp)
  761. {
  762. }
  763. /*
  764. * Because preemptible RCU does not exist, we never have to check for
  765. * tasks blocked within RCU read-side critical sections.
  766. */
  767. static int rcu_print_task_stall(struct rcu_node *rnp)
  768. {
  769. return 0;
  770. }
  771. /*
  772. * Because preemptible RCU does not exist, we never have to check for
  773. * tasks blocked within RCU read-side critical sections that are
  774. * blocking the current expedited grace period.
  775. */
  776. static int rcu_print_task_exp_stall(struct rcu_node *rnp)
  777. {
  778. return 0;
  779. }
  780. /*
  781. * Because there is no preemptible RCU, there can be no readers blocked,
  782. * so there is no need to check for blocked tasks. So check only for
  783. * bogus qsmask values.
  784. */
  785. static void rcu_preempt_check_blocked_tasks(struct rcu_node *rnp)
  786. {
  787. WARN_ON_ONCE(rnp->qsmask);
  788. }
  789. /*
  790. * Because preemptible RCU does not exist, it never has any callbacks
  791. * to check.
  792. */
  793. static void rcu_preempt_check_callbacks(void)
  794. {
  795. }
  796. /*
  797. * Wait for an rcu-preempt grace period, but make it happen quickly.
  798. * But because preemptible RCU does not exist, map to rcu-sched.
  799. */
  800. void synchronize_rcu_expedited(void)
  801. {
  802. synchronize_sched_expedited();
  803. }
  804. EXPORT_SYMBOL_GPL(synchronize_rcu_expedited);
  805. /*
  806. * Because preemptible RCU does not exist, rcu_barrier() is just
  807. * another name for rcu_barrier_sched().
  808. */
  809. void rcu_barrier(void)
  810. {
  811. rcu_barrier_sched();
  812. }
  813. EXPORT_SYMBOL_GPL(rcu_barrier);
  814. /*
  815. * Because preemptible RCU does not exist, it need not be initialized.
  816. */
  817. static void __init __rcu_init_preempt(void)
  818. {
  819. }
  820. /*
  821. * Because preemptible RCU does not exist, tasks cannot possibly exit
  822. * while in preemptible RCU read-side critical sections.
  823. */
  824. void exit_rcu(void)
  825. {
  826. }
  827. #endif /* #else #ifdef CONFIG_PREEMPT_RCU */
  828. #ifdef CONFIG_RCU_BOOST
  829. #include "../locking/rtmutex_common.h"
  830. #ifdef CONFIG_RCU_TRACE
  831. static void rcu_initiate_boost_trace(struct rcu_node *rnp)
  832. {
  833. if (!rcu_preempt_has_tasks(rnp))
  834. rnp->n_balk_blkd_tasks++;
  835. else if (rnp->exp_tasks == NULL && rnp->gp_tasks == NULL)
  836. rnp->n_balk_exp_gp_tasks++;
  837. else if (rnp->gp_tasks != NULL && rnp->boost_tasks != NULL)
  838. rnp->n_balk_boost_tasks++;
  839. else if (rnp->gp_tasks != NULL && rnp->qsmask != 0)
  840. rnp->n_balk_notblocked++;
  841. else if (rnp->gp_tasks != NULL &&
  842. ULONG_CMP_LT(jiffies, rnp->boost_time))
  843. rnp->n_balk_notyet++;
  844. else
  845. rnp->n_balk_nos++;
  846. }
  847. #else /* #ifdef CONFIG_RCU_TRACE */
  848. static void rcu_initiate_boost_trace(struct rcu_node *rnp)
  849. {
  850. }
  851. #endif /* #else #ifdef CONFIG_RCU_TRACE */
  852. static void rcu_wake_cond(struct task_struct *t, int status)
  853. {
  854. /*
  855. * If the thread is yielding, only wake it when this
  856. * is invoked from idle
  857. */
  858. if (status != RCU_KTHREAD_YIELDING || is_idle_task(current))
  859. wake_up_process(t);
  860. }
  861. /*
  862. * Carry out RCU priority boosting on the task indicated by ->exp_tasks
  863. * or ->boost_tasks, advancing the pointer to the next task in the
  864. * ->blkd_tasks list.
  865. *
  866. * Note that irqs must be enabled: boosting the task can block.
  867. * Returns 1 if there are more tasks needing to be boosted.
  868. */
  869. static int rcu_boost(struct rcu_node *rnp)
  870. {
  871. unsigned long flags;
  872. struct task_struct *t;
  873. struct list_head *tb;
  874. if (READ_ONCE(rnp->exp_tasks) == NULL &&
  875. READ_ONCE(rnp->boost_tasks) == NULL)
  876. return 0; /* Nothing left to boost. */
  877. raw_spin_lock_irqsave_rcu_node(rnp, flags);
  878. /*
  879. * Recheck under the lock: all tasks in need of boosting
  880. * might exit their RCU read-side critical sections on their own.
  881. */
  882. if (rnp->exp_tasks == NULL && rnp->boost_tasks == NULL) {
  883. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  884. return 0;
  885. }
  886. /*
  887. * Preferentially boost tasks blocking expedited grace periods.
  888. * This cannot starve the normal grace periods because a second
  889. * expedited grace period must boost all blocked tasks, including
  890. * those blocking the pre-existing normal grace period.
  891. */
  892. if (rnp->exp_tasks != NULL) {
  893. tb = rnp->exp_tasks;
  894. rnp->n_exp_boosts++;
  895. } else {
  896. tb = rnp->boost_tasks;
  897. rnp->n_normal_boosts++;
  898. }
  899. rnp->n_tasks_boosted++;
  900. /*
  901. * We boost task t by manufacturing an rt_mutex that appears to
  902. * be held by task t. We leave a pointer to that rt_mutex where
  903. * task t can find it, and task t will release the mutex when it
  904. * exits its outermost RCU read-side critical section. Then
  905. * simply acquiring this artificial rt_mutex will boost task
  906. * t's priority. (Thanks to tglx for suggesting this approach!)
  907. *
  908. * Note that task t must acquire rnp->lock to remove itself from
  909. * the ->blkd_tasks list, which it will do from exit() if from
  910. * nowhere else. We therefore are guaranteed that task t will
  911. * stay around at least until we drop rnp->lock. Note that
  912. * rnp->lock also resolves races between our priority boosting
  913. * and task t's exiting its outermost RCU read-side critical
  914. * section.
  915. */
  916. t = container_of(tb, struct task_struct, rcu_node_entry);
  917. rt_mutex_init_proxy_locked(&rnp->boost_mtx, t);
  918. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  919. /* Lock only for side effect: boosts task t's priority. */
  920. rt_mutex_lock(&rnp->boost_mtx);
  921. rt_mutex_unlock(&rnp->boost_mtx); /* Then keep lockdep happy. */
  922. return READ_ONCE(rnp->exp_tasks) != NULL ||
  923. READ_ONCE(rnp->boost_tasks) != NULL;
  924. }
  925. /*
  926. * Priority-boosting kthread, one per leaf rcu_node.
  927. */
  928. static int rcu_boost_kthread(void *arg)
  929. {
  930. struct rcu_node *rnp = (struct rcu_node *)arg;
  931. int spincnt = 0;
  932. int more2boost;
  933. trace_rcu_utilization(TPS("Start boost kthread@init"));
  934. for (;;) {
  935. rnp->boost_kthread_status = RCU_KTHREAD_WAITING;
  936. trace_rcu_utilization(TPS("End boost kthread@rcu_wait"));
  937. rcu_wait(rnp->boost_tasks || rnp->exp_tasks);
  938. trace_rcu_utilization(TPS("Start boost kthread@rcu_wait"));
  939. rnp->boost_kthread_status = RCU_KTHREAD_RUNNING;
  940. more2boost = rcu_boost(rnp);
  941. if (more2boost)
  942. spincnt++;
  943. else
  944. spincnt = 0;
  945. if (spincnt > 10) {
  946. rnp->boost_kthread_status = RCU_KTHREAD_YIELDING;
  947. trace_rcu_utilization(TPS("End boost kthread@rcu_yield"));
  948. schedule_timeout_interruptible(2);
  949. trace_rcu_utilization(TPS("Start boost kthread@rcu_yield"));
  950. spincnt = 0;
  951. }
  952. }
  953. /* NOTREACHED */
  954. trace_rcu_utilization(TPS("End boost kthread@notreached"));
  955. return 0;
  956. }
  957. /*
  958. * Check to see if it is time to start boosting RCU readers that are
  959. * blocking the current grace period, and, if so, tell the per-rcu_node
  960. * kthread to start boosting them. If there is an expedited grace
  961. * period in progress, it is always time to boost.
  962. *
  963. * The caller must hold rnp->lock, which this function releases.
  964. * The ->boost_kthread_task is immortal, so we don't need to worry
  965. * about it going away.
  966. */
  967. static void rcu_initiate_boost(struct rcu_node *rnp, unsigned long flags)
  968. __releases(rnp->lock)
  969. {
  970. struct task_struct *t;
  971. if (!rcu_preempt_blocked_readers_cgp(rnp) && rnp->exp_tasks == NULL) {
  972. rnp->n_balk_exp_gp_tasks++;
  973. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  974. return;
  975. }
  976. if (rnp->exp_tasks != NULL ||
  977. (rnp->gp_tasks != NULL &&
  978. rnp->boost_tasks == NULL &&
  979. rnp->qsmask == 0 &&
  980. ULONG_CMP_GE(jiffies, rnp->boost_time))) {
  981. if (rnp->exp_tasks == NULL)
  982. rnp->boost_tasks = rnp->gp_tasks;
  983. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  984. t = rnp->boost_kthread_task;
  985. if (t)
  986. rcu_wake_cond(t, rnp->boost_kthread_status);
  987. } else {
  988. rcu_initiate_boost_trace(rnp);
  989. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  990. }
  991. }
  992. /*
  993. * Wake up the per-CPU kthread to invoke RCU callbacks.
  994. */
  995. static void invoke_rcu_callbacks_kthread(void)
  996. {
  997. unsigned long flags;
  998. local_irq_save(flags);
  999. __this_cpu_write(rcu_cpu_has_work, 1);
  1000. if (__this_cpu_read(rcu_cpu_kthread_task) != NULL &&
  1001. current != __this_cpu_read(rcu_cpu_kthread_task)) {
  1002. rcu_wake_cond(__this_cpu_read(rcu_cpu_kthread_task),
  1003. __this_cpu_read(rcu_cpu_kthread_status));
  1004. }
  1005. local_irq_restore(flags);
  1006. }
  1007. /*
  1008. * Is the current CPU running the RCU-callbacks kthread?
  1009. * Caller must have preemption disabled.
  1010. */
  1011. static bool rcu_is_callbacks_kthread(void)
  1012. {
  1013. return __this_cpu_read(rcu_cpu_kthread_task) == current;
  1014. }
  1015. #define RCU_BOOST_DELAY_JIFFIES DIV_ROUND_UP(CONFIG_RCU_BOOST_DELAY * HZ, 1000)
  1016. /*
  1017. * Do priority-boost accounting for the start of a new grace period.
  1018. */
  1019. static void rcu_preempt_boost_start_gp(struct rcu_node *rnp)
  1020. {
  1021. rnp->boost_time = jiffies + RCU_BOOST_DELAY_JIFFIES;
  1022. }
  1023. /*
  1024. * Create an RCU-boost kthread for the specified node if one does not
  1025. * already exist. We only create this kthread for preemptible RCU.
  1026. * Returns zero if all is well, a negated errno otherwise.
  1027. */
  1028. static int rcu_spawn_one_boost_kthread(struct rcu_state *rsp,
  1029. struct rcu_node *rnp)
  1030. {
  1031. int rnp_index = rnp - &rsp->node[0];
  1032. unsigned long flags;
  1033. struct sched_param sp;
  1034. struct task_struct *t;
  1035. if (rcu_state_p != rsp)
  1036. return 0;
  1037. if (!rcu_scheduler_fully_active || rcu_rnp_online_cpus(rnp) == 0)
  1038. return 0;
  1039. rsp->boost = 1;
  1040. if (rnp->boost_kthread_task != NULL)
  1041. return 0;
  1042. t = kthread_create(rcu_boost_kthread, (void *)rnp,
  1043. "rcub/%d", rnp_index);
  1044. if (IS_ERR(t))
  1045. return PTR_ERR(t);
  1046. raw_spin_lock_irqsave_rcu_node(rnp, flags);
  1047. rnp->boost_kthread_task = t;
  1048. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  1049. sp.sched_priority = kthread_prio;
  1050. sched_setscheduler_nocheck(t, SCHED_FIFO, &sp);
  1051. wake_up_process(t); /* get to TASK_INTERRUPTIBLE quickly. */
  1052. return 0;
  1053. }
  1054. static void rcu_kthread_do_work(void)
  1055. {
  1056. rcu_do_batch(&rcu_sched_state, this_cpu_ptr(&rcu_sched_data));
  1057. rcu_do_batch(&rcu_bh_state, this_cpu_ptr(&rcu_bh_data));
  1058. rcu_preempt_do_callbacks();
  1059. }
  1060. static void rcu_cpu_kthread_setup(unsigned int cpu)
  1061. {
  1062. struct sched_param sp;
  1063. sp.sched_priority = kthread_prio;
  1064. sched_setscheduler_nocheck(current, SCHED_FIFO, &sp);
  1065. }
  1066. static void rcu_cpu_kthread_park(unsigned int cpu)
  1067. {
  1068. per_cpu(rcu_cpu_kthread_status, cpu) = RCU_KTHREAD_OFFCPU;
  1069. }
  1070. static int rcu_cpu_kthread_should_run(unsigned int cpu)
  1071. {
  1072. return __this_cpu_read(rcu_cpu_has_work);
  1073. }
  1074. /*
  1075. * Per-CPU kernel thread that invokes RCU callbacks. This replaces the
  1076. * RCU softirq used in flavors and configurations of RCU that do not
  1077. * support RCU priority boosting.
  1078. */
  1079. static void rcu_cpu_kthread(unsigned int cpu)
  1080. {
  1081. unsigned int *statusp = this_cpu_ptr(&rcu_cpu_kthread_status);
  1082. char work, *workp = this_cpu_ptr(&rcu_cpu_has_work);
  1083. int spincnt;
  1084. for (spincnt = 0; spincnt < 10; spincnt++) {
  1085. trace_rcu_utilization(TPS("Start CPU kthread@rcu_wait"));
  1086. local_bh_disable();
  1087. *statusp = RCU_KTHREAD_RUNNING;
  1088. this_cpu_inc(rcu_cpu_kthread_loops);
  1089. local_irq_disable();
  1090. work = *workp;
  1091. *workp = 0;
  1092. local_irq_enable();
  1093. if (work)
  1094. rcu_kthread_do_work();
  1095. local_bh_enable();
  1096. if (*workp == 0) {
  1097. trace_rcu_utilization(TPS("End CPU kthread@rcu_wait"));
  1098. *statusp = RCU_KTHREAD_WAITING;
  1099. return;
  1100. }
  1101. }
  1102. *statusp = RCU_KTHREAD_YIELDING;
  1103. trace_rcu_utilization(TPS("Start CPU kthread@rcu_yield"));
  1104. schedule_timeout_interruptible(2);
  1105. trace_rcu_utilization(TPS("End CPU kthread@rcu_yield"));
  1106. *statusp = RCU_KTHREAD_WAITING;
  1107. }
  1108. /*
  1109. * Set the per-rcu_node kthread's affinity to cover all CPUs that are
  1110. * served by the rcu_node in question. The CPU hotplug lock is still
  1111. * held, so the value of rnp->qsmaskinit will be stable.
  1112. *
  1113. * We don't include outgoingcpu in the affinity set, use -1 if there is
  1114. * no outgoing CPU. If there are no CPUs left in the affinity set,
  1115. * this function allows the kthread to execute on any CPU.
  1116. */
  1117. static void rcu_boost_kthread_setaffinity(struct rcu_node *rnp, int outgoingcpu)
  1118. {
  1119. struct task_struct *t = rnp->boost_kthread_task;
  1120. unsigned long mask = rcu_rnp_online_cpus(rnp);
  1121. cpumask_var_t cm;
  1122. int cpu;
  1123. if (!t)
  1124. return;
  1125. if (!zalloc_cpumask_var(&cm, GFP_KERNEL))
  1126. return;
  1127. for (cpu = rnp->grplo; cpu <= rnp->grphi; cpu++, mask >>= 1)
  1128. if ((mask & 0x1) && cpu != outgoingcpu)
  1129. cpumask_set_cpu(cpu, cm);
  1130. if (cpumask_weight(cm) == 0)
  1131. cpumask_setall(cm);
  1132. set_cpus_allowed_ptr(t, cm);
  1133. free_cpumask_var(cm);
  1134. }
  1135. static struct smp_hotplug_thread rcu_cpu_thread_spec = {
  1136. .store = &rcu_cpu_kthread_task,
  1137. .thread_should_run = rcu_cpu_kthread_should_run,
  1138. .thread_fn = rcu_cpu_kthread,
  1139. .thread_comm = "rcuc/%u",
  1140. .setup = rcu_cpu_kthread_setup,
  1141. .park = rcu_cpu_kthread_park,
  1142. };
  1143. /*
  1144. * Spawn boost kthreads -- called as soon as the scheduler is running.
  1145. */
  1146. static void __init rcu_spawn_boost_kthreads(void)
  1147. {
  1148. struct rcu_node *rnp;
  1149. int cpu;
  1150. for_each_possible_cpu(cpu)
  1151. per_cpu(rcu_cpu_has_work, cpu) = 0;
  1152. BUG_ON(smpboot_register_percpu_thread(&rcu_cpu_thread_spec));
  1153. rcu_for_each_leaf_node(rcu_state_p, rnp)
  1154. (void)rcu_spawn_one_boost_kthread(rcu_state_p, rnp);
  1155. }
  1156. static void rcu_prepare_kthreads(int cpu)
  1157. {
  1158. struct rcu_data *rdp = per_cpu_ptr(rcu_state_p->rda, cpu);
  1159. struct rcu_node *rnp = rdp->mynode;
  1160. /* Fire up the incoming CPU's kthread and leaf rcu_node kthread. */
  1161. if (rcu_scheduler_fully_active)
  1162. (void)rcu_spawn_one_boost_kthread(rcu_state_p, rnp);
  1163. }
  1164. #else /* #ifdef CONFIG_RCU_BOOST */
  1165. static void rcu_initiate_boost(struct rcu_node *rnp, unsigned long flags)
  1166. __releases(rnp->lock)
  1167. {
  1168. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  1169. }
  1170. static void invoke_rcu_callbacks_kthread(void)
  1171. {
  1172. WARN_ON_ONCE(1);
  1173. }
  1174. static bool rcu_is_callbacks_kthread(void)
  1175. {
  1176. return false;
  1177. }
  1178. static void rcu_preempt_boost_start_gp(struct rcu_node *rnp)
  1179. {
  1180. }
  1181. static void rcu_boost_kthread_setaffinity(struct rcu_node *rnp, int outgoingcpu)
  1182. {
  1183. }
  1184. static void __init rcu_spawn_boost_kthreads(void)
  1185. {
  1186. }
  1187. static void rcu_prepare_kthreads(int cpu)
  1188. {
  1189. }
  1190. #endif /* #else #ifdef CONFIG_RCU_BOOST */
  1191. #if !defined(CONFIG_RCU_FAST_NO_HZ)
  1192. /*
  1193. * Check to see if any future RCU-related work will need to be done
  1194. * by the current CPU, even if none need be done immediately, returning
  1195. * 1 if so. This function is part of the RCU implementation; it is -not-
  1196. * an exported member of the RCU API.
  1197. *
  1198. * Because we not have RCU_FAST_NO_HZ, just check whether this CPU needs
  1199. * any flavor of RCU.
  1200. */
  1201. int rcu_needs_cpu(u64 basemono, u64 *nextevt)
  1202. {
  1203. *nextevt = KTIME_MAX;
  1204. return IS_ENABLED(CONFIG_RCU_NOCB_CPU_ALL)
  1205. ? 0 : rcu_cpu_has_callbacks(NULL);
  1206. }
  1207. /*
  1208. * Because we do not have RCU_FAST_NO_HZ, don't bother cleaning up
  1209. * after it.
  1210. */
  1211. static void rcu_cleanup_after_idle(void)
  1212. {
  1213. }
  1214. /*
  1215. * Do the idle-entry grace-period work, which, because CONFIG_RCU_FAST_NO_HZ=n,
  1216. * is nothing.
  1217. */
  1218. static void rcu_prepare_for_idle(void)
  1219. {
  1220. }
  1221. /*
  1222. * Don't bother keeping a running count of the number of RCU callbacks
  1223. * posted because CONFIG_RCU_FAST_NO_HZ=n.
  1224. */
  1225. static void rcu_idle_count_callbacks_posted(void)
  1226. {
  1227. }
  1228. #else /* #if !defined(CONFIG_RCU_FAST_NO_HZ) */
  1229. /*
  1230. * This code is invoked when a CPU goes idle, at which point we want
  1231. * to have the CPU do everything required for RCU so that it can enter
  1232. * the energy-efficient dyntick-idle mode. This is handled by a
  1233. * state machine implemented by rcu_prepare_for_idle() below.
  1234. *
  1235. * The following three proprocessor symbols control this state machine:
  1236. *
  1237. * RCU_IDLE_GP_DELAY gives the number of jiffies that a CPU is permitted
  1238. * to sleep in dyntick-idle mode with RCU callbacks pending. This
  1239. * is sized to be roughly one RCU grace period. Those energy-efficiency
  1240. * benchmarkers who might otherwise be tempted to set this to a large
  1241. * number, be warned: Setting RCU_IDLE_GP_DELAY too high can hang your
  1242. * system. And if you are -that- concerned about energy efficiency,
  1243. * just power the system down and be done with it!
  1244. * RCU_IDLE_LAZY_GP_DELAY gives the number of jiffies that a CPU is
  1245. * permitted to sleep in dyntick-idle mode with only lazy RCU
  1246. * callbacks pending. Setting this too high can OOM your system.
  1247. *
  1248. * The values below work well in practice. If future workloads require
  1249. * adjustment, they can be converted into kernel config parameters, though
  1250. * making the state machine smarter might be a better option.
  1251. */
  1252. #define RCU_IDLE_GP_DELAY 4 /* Roughly one grace period. */
  1253. #define RCU_IDLE_LAZY_GP_DELAY (6 * HZ) /* Roughly six seconds. */
  1254. static int rcu_idle_gp_delay = RCU_IDLE_GP_DELAY;
  1255. module_param(rcu_idle_gp_delay, int, 0644);
  1256. static int rcu_idle_lazy_gp_delay = RCU_IDLE_LAZY_GP_DELAY;
  1257. module_param(rcu_idle_lazy_gp_delay, int, 0644);
  1258. /*
  1259. * Try to advance callbacks for all flavors of RCU on the current CPU, but
  1260. * only if it has been awhile since the last time we did so. Afterwards,
  1261. * if there are any callbacks ready for immediate invocation, return true.
  1262. */
  1263. static bool __maybe_unused rcu_try_advance_all_cbs(void)
  1264. {
  1265. bool cbs_ready = false;
  1266. struct rcu_data *rdp;
  1267. struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);
  1268. struct rcu_node *rnp;
  1269. struct rcu_state *rsp;
  1270. /* Exit early if we advanced recently. */
  1271. if (jiffies == rdtp->last_advance_all)
  1272. return false;
  1273. rdtp->last_advance_all = jiffies;
  1274. for_each_rcu_flavor(rsp) {
  1275. rdp = this_cpu_ptr(rsp->rda);
  1276. rnp = rdp->mynode;
  1277. /*
  1278. * Don't bother checking unless a grace period has
  1279. * completed since we last checked and there are
  1280. * callbacks not yet ready to invoke.
  1281. */
  1282. if ((rdp->completed != rnp->completed ||
  1283. unlikely(READ_ONCE(rdp->gpwrap))) &&
  1284. rdp->nxttail[RCU_DONE_TAIL] != rdp->nxttail[RCU_NEXT_TAIL])
  1285. note_gp_changes(rsp, rdp);
  1286. if (cpu_has_callbacks_ready_to_invoke(rdp))
  1287. cbs_ready = true;
  1288. }
  1289. return cbs_ready;
  1290. }
  1291. /*
  1292. * Allow the CPU to enter dyntick-idle mode unless it has callbacks ready
  1293. * to invoke. If the CPU has callbacks, try to advance them. Tell the
  1294. * caller to set the timeout based on whether or not there are non-lazy
  1295. * callbacks.
  1296. *
  1297. * The caller must have disabled interrupts.
  1298. */
  1299. int rcu_needs_cpu(u64 basemono, u64 *nextevt)
  1300. {
  1301. struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);
  1302. unsigned long dj;
  1303. if (IS_ENABLED(CONFIG_RCU_NOCB_CPU_ALL)) {
  1304. *nextevt = KTIME_MAX;
  1305. return 0;
  1306. }
  1307. /* Snapshot to detect later posting of non-lazy callback. */
  1308. rdtp->nonlazy_posted_snap = rdtp->nonlazy_posted;
  1309. /* If no callbacks, RCU doesn't need the CPU. */
  1310. if (!rcu_cpu_has_callbacks(&rdtp->all_lazy)) {
  1311. *nextevt = KTIME_MAX;
  1312. return 0;
  1313. }
  1314. /* Attempt to advance callbacks. */
  1315. if (rcu_try_advance_all_cbs()) {
  1316. /* Some ready to invoke, so initiate later invocation. */
  1317. invoke_rcu_core();
  1318. return 1;
  1319. }
  1320. rdtp->last_accelerate = jiffies;
  1321. /* Request timer delay depending on laziness, and round. */
  1322. if (!rdtp->all_lazy) {
  1323. dj = round_up(rcu_idle_gp_delay + jiffies,
  1324. rcu_idle_gp_delay) - jiffies;
  1325. } else {
  1326. dj = round_jiffies(rcu_idle_lazy_gp_delay + jiffies) - jiffies;
  1327. }
  1328. *nextevt = basemono + dj * TICK_NSEC;
  1329. return 0;
  1330. }
  1331. /*
  1332. * Prepare a CPU for idle from an RCU perspective. The first major task
  1333. * is to sense whether nohz mode has been enabled or disabled via sysfs.
  1334. * The second major task is to check to see if a non-lazy callback has
  1335. * arrived at a CPU that previously had only lazy callbacks. The third
  1336. * major task is to accelerate (that is, assign grace-period numbers to)
  1337. * any recently arrived callbacks.
  1338. *
  1339. * The caller must have disabled interrupts.
  1340. */
  1341. static void rcu_prepare_for_idle(void)
  1342. {
  1343. bool needwake;
  1344. struct rcu_data *rdp;
  1345. struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);
  1346. struct rcu_node *rnp;
  1347. struct rcu_state *rsp;
  1348. int tne;
  1349. if (IS_ENABLED(CONFIG_RCU_NOCB_CPU_ALL) ||
  1350. rcu_is_nocb_cpu(smp_processor_id()))
  1351. return;
  1352. /* Handle nohz enablement switches conservatively. */
  1353. tne = READ_ONCE(tick_nohz_active);
  1354. if (tne != rdtp->tick_nohz_enabled_snap) {
  1355. if (rcu_cpu_has_callbacks(NULL))
  1356. invoke_rcu_core(); /* force nohz to see update. */
  1357. rdtp->tick_nohz_enabled_snap = tne;
  1358. return;
  1359. }
  1360. if (!tne)
  1361. return;
  1362. /*
  1363. * If a non-lazy callback arrived at a CPU having only lazy
  1364. * callbacks, invoke RCU core for the side-effect of recalculating
  1365. * idle duration on re-entry to idle.
  1366. */
  1367. if (rdtp->all_lazy &&
  1368. rdtp->nonlazy_posted != rdtp->nonlazy_posted_snap) {
  1369. rdtp->all_lazy = false;
  1370. rdtp->nonlazy_posted_snap = rdtp->nonlazy_posted;
  1371. invoke_rcu_core();
  1372. return;
  1373. }
  1374. /*
  1375. * If we have not yet accelerated this jiffy, accelerate all
  1376. * callbacks on this CPU.
  1377. */
  1378. if (rdtp->last_accelerate == jiffies)
  1379. return;
  1380. rdtp->last_accelerate = jiffies;
  1381. for_each_rcu_flavor(rsp) {
  1382. rdp = this_cpu_ptr(rsp->rda);
  1383. if (!*rdp->nxttail[RCU_DONE_TAIL])
  1384. continue;
  1385. rnp = rdp->mynode;
  1386. raw_spin_lock_rcu_node(rnp); /* irqs already disabled. */
  1387. needwake = rcu_accelerate_cbs(rsp, rnp, rdp);
  1388. raw_spin_unlock_rcu_node(rnp); /* irqs remain disabled. */
  1389. if (needwake)
  1390. rcu_gp_kthread_wake(rsp);
  1391. }
  1392. }
  1393. /*
  1394. * Clean up for exit from idle. Attempt to advance callbacks based on
  1395. * any grace periods that elapsed while the CPU was idle, and if any
  1396. * callbacks are now ready to invoke, initiate invocation.
  1397. */
  1398. static void rcu_cleanup_after_idle(void)
  1399. {
  1400. if (IS_ENABLED(CONFIG_RCU_NOCB_CPU_ALL) ||
  1401. rcu_is_nocb_cpu(smp_processor_id()))
  1402. return;
  1403. if (rcu_try_advance_all_cbs())
  1404. invoke_rcu_core();
  1405. }
  1406. /*
  1407. * Keep a running count of the number of non-lazy callbacks posted
  1408. * on this CPU. This running counter (which is never decremented) allows
  1409. * rcu_prepare_for_idle() to detect when something out of the idle loop
  1410. * posts a callback, even if an equal number of callbacks are invoked.
  1411. * Of course, callbacks should only be posted from within a trace event
  1412. * designed to be called from idle or from within RCU_NONIDLE().
  1413. */
  1414. static void rcu_idle_count_callbacks_posted(void)
  1415. {
  1416. __this_cpu_add(rcu_dynticks.nonlazy_posted, 1);
  1417. }
  1418. /*
  1419. * Data for flushing lazy RCU callbacks at OOM time.
  1420. */
  1421. static atomic_t oom_callback_count;
  1422. static DECLARE_WAIT_QUEUE_HEAD(oom_callback_wq);
  1423. /*
  1424. * RCU OOM callback -- decrement the outstanding count and deliver the
  1425. * wake-up if we are the last one.
  1426. */
  1427. static void rcu_oom_callback(struct rcu_head *rhp)
  1428. {
  1429. if (atomic_dec_and_test(&oom_callback_count))
  1430. wake_up(&oom_callback_wq);
  1431. }
  1432. /*
  1433. * Post an rcu_oom_notify callback on the current CPU if it has at
  1434. * least one lazy callback. This will unnecessarily post callbacks
  1435. * to CPUs that already have a non-lazy callback at the end of their
  1436. * callback list, but this is an infrequent operation, so accept some
  1437. * extra overhead to keep things simple.
  1438. */
  1439. static void rcu_oom_notify_cpu(void *unused)
  1440. {
  1441. struct rcu_state *rsp;
  1442. struct rcu_data *rdp;
  1443. for_each_rcu_flavor(rsp) {
  1444. rdp = raw_cpu_ptr(rsp->rda);
  1445. if (rdp->qlen_lazy != 0) {
  1446. atomic_inc(&oom_callback_count);
  1447. rsp->call(&rdp->oom_head, rcu_oom_callback);
  1448. }
  1449. }
  1450. }
  1451. /*
  1452. * If low on memory, ensure that each CPU has a non-lazy callback.
  1453. * This will wake up CPUs that have only lazy callbacks, in turn
  1454. * ensuring that they free up the corresponding memory in a timely manner.
  1455. * Because an uncertain amount of memory will be freed in some uncertain
  1456. * timeframe, we do not claim to have freed anything.
  1457. */
  1458. static int rcu_oom_notify(struct notifier_block *self,
  1459. unsigned long notused, void *nfreed)
  1460. {
  1461. int cpu;
  1462. /* Wait for callbacks from earlier instance to complete. */
  1463. wait_event(oom_callback_wq, atomic_read(&oom_callback_count) == 0);
  1464. smp_mb(); /* Ensure callback reuse happens after callback invocation. */
  1465. /*
  1466. * Prevent premature wakeup: ensure that all increments happen
  1467. * before there is a chance of the counter reaching zero.
  1468. */
  1469. atomic_set(&oom_callback_count, 1);
  1470. for_each_online_cpu(cpu) {
  1471. smp_call_function_single(cpu, rcu_oom_notify_cpu, NULL, 1);
  1472. cond_resched_rcu_qs();
  1473. }
  1474. /* Unconditionally decrement: no need to wake ourselves up. */
  1475. atomic_dec(&oom_callback_count);
  1476. return NOTIFY_OK;
  1477. }
  1478. static struct notifier_block rcu_oom_nb = {
  1479. .notifier_call = rcu_oom_notify
  1480. };
  1481. static int __init rcu_register_oom_notifier(void)
  1482. {
  1483. register_oom_notifier(&rcu_oom_nb);
  1484. return 0;
  1485. }
  1486. early_initcall(rcu_register_oom_notifier);
  1487. #endif /* #else #if !defined(CONFIG_RCU_FAST_NO_HZ) */
  1488. #ifdef CONFIG_RCU_FAST_NO_HZ
  1489. static void print_cpu_stall_fast_no_hz(char *cp, int cpu)
  1490. {
  1491. struct rcu_dynticks *rdtp = &per_cpu(rcu_dynticks, cpu);
  1492. unsigned long nlpd = rdtp->nonlazy_posted - rdtp->nonlazy_posted_snap;
  1493. sprintf(cp, "last_accelerate: %04lx/%04lx, nonlazy_posted: %ld, %c%c",
  1494. rdtp->last_accelerate & 0xffff, jiffies & 0xffff,
  1495. ulong2long(nlpd),
  1496. rdtp->all_lazy ? 'L' : '.',
  1497. rdtp->tick_nohz_enabled_snap ? '.' : 'D');
  1498. }
  1499. #else /* #ifdef CONFIG_RCU_FAST_NO_HZ */
  1500. static void print_cpu_stall_fast_no_hz(char *cp, int cpu)
  1501. {
  1502. *cp = '\0';
  1503. }
  1504. #endif /* #else #ifdef CONFIG_RCU_FAST_NO_HZ */
  1505. /* Initiate the stall-info list. */
  1506. static void print_cpu_stall_info_begin(void)
  1507. {
  1508. pr_cont("\n");
  1509. }
  1510. /*
  1511. * Print out diagnostic information for the specified stalled CPU.
  1512. *
  1513. * If the specified CPU is aware of the current RCU grace period
  1514. * (flavor specified by rsp), then print the number of scheduling
  1515. * clock interrupts the CPU has taken during the time that it has
  1516. * been aware. Otherwise, print the number of RCU grace periods
  1517. * that this CPU is ignorant of, for example, "1" if the CPU was
  1518. * aware of the previous grace period.
  1519. *
  1520. * Also print out idle and (if CONFIG_RCU_FAST_NO_HZ) idle-entry info.
  1521. */
  1522. static void print_cpu_stall_info(struct rcu_state *rsp, int cpu)
  1523. {
  1524. char fast_no_hz[72];
  1525. struct rcu_data *rdp = per_cpu_ptr(rsp->rda, cpu);
  1526. struct rcu_dynticks *rdtp = rdp->dynticks;
  1527. char *ticks_title;
  1528. unsigned long ticks_value;
  1529. if (rsp->gpnum == rdp->gpnum) {
  1530. ticks_title = "ticks this GP";
  1531. ticks_value = rdp->ticks_this_gp;
  1532. } else {
  1533. ticks_title = "GPs behind";
  1534. ticks_value = rsp->gpnum - rdp->gpnum;
  1535. }
  1536. print_cpu_stall_fast_no_hz(fast_no_hz, cpu);
  1537. pr_err("\t%d-%c%c%c: (%lu %s) idle=%03x/%llx/%d softirq=%u/%u fqs=%ld %s\n",
  1538. cpu,
  1539. "O."[!!cpu_online(cpu)],
  1540. "o."[!!(rdp->grpmask & rdp->mynode->qsmaskinit)],
  1541. "N."[!!(rdp->grpmask & rdp->mynode->qsmaskinitnext)],
  1542. ticks_value, ticks_title,
  1543. atomic_read(&rdtp->dynticks) & 0xfff,
  1544. rdtp->dynticks_nesting, rdtp->dynticks_nmi_nesting,
  1545. rdp->softirq_snap, kstat_softirqs_cpu(RCU_SOFTIRQ, cpu),
  1546. READ_ONCE(rsp->n_force_qs) - rsp->n_force_qs_gpstart,
  1547. fast_no_hz);
  1548. }
  1549. /* Terminate the stall-info list. */
  1550. static void print_cpu_stall_info_end(void)
  1551. {
  1552. pr_err("\t");
  1553. }
  1554. /* Zero ->ticks_this_gp for all flavors of RCU. */
  1555. static void zero_cpu_stall_ticks(struct rcu_data *rdp)
  1556. {
  1557. rdp->ticks_this_gp = 0;
  1558. rdp->softirq_snap = kstat_softirqs_cpu(RCU_SOFTIRQ, smp_processor_id());
  1559. }
  1560. /* Increment ->ticks_this_gp for all flavors of RCU. */
  1561. static void increment_cpu_stall_ticks(void)
  1562. {
  1563. struct rcu_state *rsp;
  1564. for_each_rcu_flavor(rsp)
  1565. raw_cpu_inc(rsp->rda->ticks_this_gp);
  1566. }
  1567. #ifdef CONFIG_RCU_NOCB_CPU
  1568. /*
  1569. * Offload callback processing from the boot-time-specified set of CPUs
  1570. * specified by rcu_nocb_mask. For each CPU in the set, there is a
  1571. * kthread created that pulls the callbacks from the corresponding CPU,
  1572. * waits for a grace period to elapse, and invokes the callbacks.
  1573. * The no-CBs CPUs do a wake_up() on their kthread when they insert
  1574. * a callback into any empty list, unless the rcu_nocb_poll boot parameter
  1575. * has been specified, in which case each kthread actively polls its
  1576. * CPU. (Which isn't so great for energy efficiency, but which does
  1577. * reduce RCU's overhead on that CPU.)
  1578. *
  1579. * This is intended to be used in conjunction with Frederic Weisbecker's
  1580. * adaptive-idle work, which would seriously reduce OS jitter on CPUs
  1581. * running CPU-bound user-mode computations.
  1582. *
  1583. * Offloading of callback processing could also in theory be used as
  1584. * an energy-efficiency measure because CPUs with no RCU callbacks
  1585. * queued are more aggressive about entering dyntick-idle mode.
  1586. */
  1587. /* Parse the boot-time rcu_nocb_mask CPU list from the kernel parameters. */
  1588. static int __init rcu_nocb_setup(char *str)
  1589. {
  1590. alloc_bootmem_cpumask_var(&rcu_nocb_mask);
  1591. have_rcu_nocb_mask = true;
  1592. cpulist_parse(str, rcu_nocb_mask);
  1593. return 1;
  1594. }
  1595. __setup("rcu_nocbs=", rcu_nocb_setup);
  1596. static int __init parse_rcu_nocb_poll(char *arg)
  1597. {
  1598. rcu_nocb_poll = 1;
  1599. return 0;
  1600. }
  1601. early_param("rcu_nocb_poll", parse_rcu_nocb_poll);
  1602. /*
  1603. * Wake up any no-CBs CPUs' kthreads that were waiting on the just-ended
  1604. * grace period.
  1605. */
  1606. static void rcu_nocb_gp_cleanup(struct swait_queue_head *sq)
  1607. {
  1608. swake_up_all(sq);
  1609. }
  1610. /*
  1611. * Set the root rcu_node structure's ->need_future_gp field
  1612. * based on the sum of those of all rcu_node structures. This does
  1613. * double-count the root rcu_node structure's requests, but this
  1614. * is necessary to handle the possibility of a rcu_nocb_kthread()
  1615. * having awakened during the time that the rcu_node structures
  1616. * were being updated for the end of the previous grace period.
  1617. */
  1618. static void rcu_nocb_gp_set(struct rcu_node *rnp, int nrq)
  1619. {
  1620. rnp->need_future_gp[(rnp->completed + 1) & 0x1] += nrq;
  1621. }
  1622. static struct swait_queue_head *rcu_nocb_gp_get(struct rcu_node *rnp)
  1623. {
  1624. return &rnp->nocb_gp_wq[rnp->completed & 0x1];
  1625. }
  1626. static void rcu_init_one_nocb(struct rcu_node *rnp)
  1627. {
  1628. init_swait_queue_head(&rnp->nocb_gp_wq[0]);
  1629. init_swait_queue_head(&rnp->nocb_gp_wq[1]);
  1630. }
  1631. #ifndef CONFIG_RCU_NOCB_CPU_ALL
  1632. /* Is the specified CPU a no-CBs CPU? */
  1633. bool rcu_is_nocb_cpu(int cpu)
  1634. {
  1635. if (have_rcu_nocb_mask)
  1636. return cpumask_test_cpu(cpu, rcu_nocb_mask);
  1637. return false;
  1638. }
  1639. #endif /* #ifndef CONFIG_RCU_NOCB_CPU_ALL */
  1640. /*
  1641. * Kick the leader kthread for this NOCB group.
  1642. */
  1643. static void wake_nocb_leader(struct rcu_data *rdp, bool force)
  1644. {
  1645. struct rcu_data *rdp_leader = rdp->nocb_leader;
  1646. if (!READ_ONCE(rdp_leader->nocb_kthread))
  1647. return;
  1648. if (READ_ONCE(rdp_leader->nocb_leader_sleep) || force) {
  1649. /* Prior smp_mb__after_atomic() orders against prior enqueue. */
  1650. WRITE_ONCE(rdp_leader->nocb_leader_sleep, false);
  1651. swake_up(&rdp_leader->nocb_wq);
  1652. }
  1653. }
  1654. /*
  1655. * Does the specified CPU need an RCU callback for the specified flavor
  1656. * of rcu_barrier()?
  1657. */
  1658. static bool rcu_nocb_cpu_needs_barrier(struct rcu_state *rsp, int cpu)
  1659. {
  1660. struct rcu_data *rdp = per_cpu_ptr(rsp->rda, cpu);
  1661. unsigned long ret;
  1662. #ifdef CONFIG_PROVE_RCU
  1663. struct rcu_head *rhp;
  1664. #endif /* #ifdef CONFIG_PROVE_RCU */
  1665. /*
  1666. * Check count of all no-CBs callbacks awaiting invocation.
  1667. * There needs to be a barrier before this function is called,
  1668. * but associated with a prior determination that no more
  1669. * callbacks would be posted. In the worst case, the first
  1670. * barrier in _rcu_barrier() suffices (but the caller cannot
  1671. * necessarily rely on this, not a substitute for the caller
  1672. * getting the concurrency design right!). There must also be
  1673. * a barrier between the following load an posting of a callback
  1674. * (if a callback is in fact needed). This is associated with an
  1675. * atomic_inc() in the caller.
  1676. */
  1677. ret = atomic_long_read(&rdp->nocb_q_count);
  1678. #ifdef CONFIG_PROVE_RCU
  1679. rhp = READ_ONCE(rdp->nocb_head);
  1680. if (!rhp)
  1681. rhp = READ_ONCE(rdp->nocb_gp_head);
  1682. if (!rhp)
  1683. rhp = READ_ONCE(rdp->nocb_follower_head);
  1684. /* Having no rcuo kthread but CBs after scheduler starts is bad! */
  1685. if (!READ_ONCE(rdp->nocb_kthread) && rhp &&
  1686. rcu_scheduler_fully_active) {
  1687. /* RCU callback enqueued before CPU first came online??? */
  1688. pr_err("RCU: Never-onlined no-CBs CPU %d has CB %p\n",
  1689. cpu, rhp->func);
  1690. WARN_ON_ONCE(1);
  1691. }
  1692. #endif /* #ifdef CONFIG_PROVE_RCU */
  1693. return !!ret;
  1694. }
  1695. /*
  1696. * Enqueue the specified string of rcu_head structures onto the specified
  1697. * CPU's no-CBs lists. The CPU is specified by rdp, the head of the
  1698. * string by rhp, and the tail of the string by rhtp. The non-lazy/lazy
  1699. * counts are supplied by rhcount and rhcount_lazy.
  1700. *
  1701. * If warranted, also wake up the kthread servicing this CPUs queues.
  1702. */
  1703. static void __call_rcu_nocb_enqueue(struct rcu_data *rdp,
  1704. struct rcu_head *rhp,
  1705. struct rcu_head **rhtp,
  1706. int rhcount, int rhcount_lazy,
  1707. unsigned long flags)
  1708. {
  1709. int len;
  1710. struct rcu_head **old_rhpp;
  1711. struct task_struct *t;
  1712. /* Enqueue the callback on the nocb list and update counts. */
  1713. atomic_long_add(rhcount, &rdp->nocb_q_count);
  1714. /* rcu_barrier() relies on ->nocb_q_count add before xchg. */
  1715. old_rhpp = xchg(&rdp->nocb_tail, rhtp);
  1716. WRITE_ONCE(*old_rhpp, rhp);
  1717. atomic_long_add(rhcount_lazy, &rdp->nocb_q_count_lazy);
  1718. smp_mb__after_atomic(); /* Store *old_rhpp before _wake test. */
  1719. /* If we are not being polled and there is a kthread, awaken it ... */
  1720. t = READ_ONCE(rdp->nocb_kthread);
  1721. if (rcu_nocb_poll || !t) {
  1722. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1723. TPS("WakeNotPoll"));
  1724. return;
  1725. }
  1726. len = atomic_long_read(&rdp->nocb_q_count);
  1727. if (old_rhpp == &rdp->nocb_head) {
  1728. if (!irqs_disabled_flags(flags)) {
  1729. /* ... if queue was empty ... */
  1730. wake_nocb_leader(rdp, false);
  1731. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1732. TPS("WakeEmpty"));
  1733. } else {
  1734. rdp->nocb_defer_wakeup = RCU_NOGP_WAKE;
  1735. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1736. TPS("WakeEmptyIsDeferred"));
  1737. }
  1738. rdp->qlen_last_fqs_check = 0;
  1739. } else if (len > rdp->qlen_last_fqs_check + qhimark) {
  1740. /* ... or if many callbacks queued. */
  1741. if (!irqs_disabled_flags(flags)) {
  1742. wake_nocb_leader(rdp, true);
  1743. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1744. TPS("WakeOvf"));
  1745. } else {
  1746. rdp->nocb_defer_wakeup = RCU_NOGP_WAKE_FORCE;
  1747. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1748. TPS("WakeOvfIsDeferred"));
  1749. }
  1750. rdp->qlen_last_fqs_check = LONG_MAX / 2;
  1751. } else {
  1752. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu, TPS("WakeNot"));
  1753. }
  1754. return;
  1755. }
  1756. /*
  1757. * This is a helper for __call_rcu(), which invokes this when the normal
  1758. * callback queue is inoperable. If this is not a no-CBs CPU, this
  1759. * function returns failure back to __call_rcu(), which can complain
  1760. * appropriately.
  1761. *
  1762. * Otherwise, this function queues the callback where the corresponding
  1763. * "rcuo" kthread can find it.
  1764. */
  1765. static bool __call_rcu_nocb(struct rcu_data *rdp, struct rcu_head *rhp,
  1766. bool lazy, unsigned long flags)
  1767. {
  1768. if (!rcu_is_nocb_cpu(rdp->cpu))
  1769. return false;
  1770. __call_rcu_nocb_enqueue(rdp, rhp, &rhp->next, 1, lazy, flags);
  1771. if (__is_kfree_rcu_offset((unsigned long)rhp->func))
  1772. trace_rcu_kfree_callback(rdp->rsp->name, rhp,
  1773. (unsigned long)rhp->func,
  1774. -atomic_long_read(&rdp->nocb_q_count_lazy),
  1775. -atomic_long_read(&rdp->nocb_q_count));
  1776. else
  1777. trace_rcu_callback(rdp->rsp->name, rhp,
  1778. -atomic_long_read(&rdp->nocb_q_count_lazy),
  1779. -atomic_long_read(&rdp->nocb_q_count));
  1780. /*
  1781. * If called from an extended quiescent state with interrupts
  1782. * disabled, invoke the RCU core in order to allow the idle-entry
  1783. * deferred-wakeup check to function.
  1784. */
  1785. if (irqs_disabled_flags(flags) &&
  1786. !rcu_is_watching() &&
  1787. cpu_online(smp_processor_id()))
  1788. invoke_rcu_core();
  1789. return true;
  1790. }
  1791. /*
  1792. * Adopt orphaned callbacks on a no-CBs CPU, or return 0 if this is
  1793. * not a no-CBs CPU.
  1794. */
  1795. static bool __maybe_unused rcu_nocb_adopt_orphan_cbs(struct rcu_state *rsp,
  1796. struct rcu_data *rdp,
  1797. unsigned long flags)
  1798. {
  1799. long ql = rsp->qlen;
  1800. long qll = rsp->qlen_lazy;
  1801. /* If this is not a no-CBs CPU, tell the caller to do it the old way. */
  1802. if (!rcu_is_nocb_cpu(smp_processor_id()))
  1803. return false;
  1804. rsp->qlen = 0;
  1805. rsp->qlen_lazy = 0;
  1806. /* First, enqueue the donelist, if any. This preserves CB ordering. */
  1807. if (rsp->orphan_donelist != NULL) {
  1808. __call_rcu_nocb_enqueue(rdp, rsp->orphan_donelist,
  1809. rsp->orphan_donetail, ql, qll, flags);
  1810. ql = qll = 0;
  1811. rsp->orphan_donelist = NULL;
  1812. rsp->orphan_donetail = &rsp->orphan_donelist;
  1813. }
  1814. if (rsp->orphan_nxtlist != NULL) {
  1815. __call_rcu_nocb_enqueue(rdp, rsp->orphan_nxtlist,
  1816. rsp->orphan_nxttail, ql, qll, flags);
  1817. ql = qll = 0;
  1818. rsp->orphan_nxtlist = NULL;
  1819. rsp->orphan_nxttail = &rsp->orphan_nxtlist;
  1820. }
  1821. return true;
  1822. }
  1823. /*
  1824. * If necessary, kick off a new grace period, and either way wait
  1825. * for a subsequent grace period to complete.
  1826. */
  1827. static void rcu_nocb_wait_gp(struct rcu_data *rdp)
  1828. {
  1829. unsigned long c;
  1830. bool d;
  1831. unsigned long flags;
  1832. bool needwake;
  1833. struct rcu_node *rnp = rdp->mynode;
  1834. raw_spin_lock_irqsave_rcu_node(rnp, flags);
  1835. needwake = rcu_start_future_gp(rnp, rdp, &c);
  1836. raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
  1837. if (needwake)
  1838. rcu_gp_kthread_wake(rdp->rsp);
  1839. /*
  1840. * Wait for the grace period. Do so interruptibly to avoid messing
  1841. * up the load average.
  1842. */
  1843. trace_rcu_future_gp(rnp, rdp, c, TPS("StartWait"));
  1844. for (;;) {
  1845. swait_event_interruptible(
  1846. rnp->nocb_gp_wq[c & 0x1],
  1847. (d = ULONG_CMP_GE(READ_ONCE(rnp->completed), c)));
  1848. if (likely(d))
  1849. break;
  1850. WARN_ON(signal_pending(current));
  1851. trace_rcu_future_gp(rnp, rdp, c, TPS("ResumeWait"));
  1852. }
  1853. trace_rcu_future_gp(rnp, rdp, c, TPS("EndWait"));
  1854. smp_mb(); /* Ensure that CB invocation happens after GP end. */
  1855. }
  1856. /*
  1857. * Leaders come here to wait for additional callbacks to show up.
  1858. * This function does not return until callbacks appear.
  1859. */
  1860. static void nocb_leader_wait(struct rcu_data *my_rdp)
  1861. {
  1862. bool firsttime = true;
  1863. bool gotcbs;
  1864. struct rcu_data *rdp;
  1865. struct rcu_head **tail;
  1866. wait_again:
  1867. /* Wait for callbacks to appear. */
  1868. if (!rcu_nocb_poll) {
  1869. trace_rcu_nocb_wake(my_rdp->rsp->name, my_rdp->cpu, "Sleep");
  1870. swait_event_interruptible(my_rdp->nocb_wq,
  1871. !READ_ONCE(my_rdp->nocb_leader_sleep));
  1872. /* Memory barrier handled by smp_mb() calls below and repoll. */
  1873. } else if (firsttime) {
  1874. firsttime = false; /* Don't drown trace log with "Poll"! */
  1875. trace_rcu_nocb_wake(my_rdp->rsp->name, my_rdp->cpu, "Poll");
  1876. }
  1877. /*
  1878. * Each pass through the following loop checks a follower for CBs.
  1879. * We are our own first follower. Any CBs found are moved to
  1880. * nocb_gp_head, where they await a grace period.
  1881. */
  1882. gotcbs = false;
  1883. for (rdp = my_rdp; rdp; rdp = rdp->nocb_next_follower) {
  1884. rdp->nocb_gp_head = READ_ONCE(rdp->nocb_head);
  1885. if (!rdp->nocb_gp_head)
  1886. continue; /* No CBs here, try next follower. */
  1887. /* Move callbacks to wait-for-GP list, which is empty. */
  1888. WRITE_ONCE(rdp->nocb_head, NULL);
  1889. rdp->nocb_gp_tail = xchg(&rdp->nocb_tail, &rdp->nocb_head);
  1890. gotcbs = true;
  1891. }
  1892. /*
  1893. * If there were no callbacks, sleep a bit, rescan after a
  1894. * memory barrier, and go retry.
  1895. */
  1896. if (unlikely(!gotcbs)) {
  1897. if (!rcu_nocb_poll)
  1898. trace_rcu_nocb_wake(my_rdp->rsp->name, my_rdp->cpu,
  1899. "WokeEmpty");
  1900. WARN_ON(signal_pending(current));
  1901. schedule_timeout_interruptible(1);
  1902. /* Rescan in case we were a victim of memory ordering. */
  1903. my_rdp->nocb_leader_sleep = true;
  1904. smp_mb(); /* Ensure _sleep true before scan. */
  1905. for (rdp = my_rdp; rdp; rdp = rdp->nocb_next_follower)
  1906. if (READ_ONCE(rdp->nocb_head)) {
  1907. /* Found CB, so short-circuit next wait. */
  1908. my_rdp->nocb_leader_sleep = false;
  1909. break;
  1910. }
  1911. goto wait_again;
  1912. }
  1913. /* Wait for one grace period. */
  1914. rcu_nocb_wait_gp(my_rdp);
  1915. /*
  1916. * We left ->nocb_leader_sleep unset to reduce cache thrashing.
  1917. * We set it now, but recheck for new callbacks while
  1918. * traversing our follower list.
  1919. */
  1920. my_rdp->nocb_leader_sleep = true;
  1921. smp_mb(); /* Ensure _sleep true before scan of ->nocb_head. */
  1922. /* Each pass through the following loop wakes a follower, if needed. */
  1923. for (rdp = my_rdp; rdp; rdp = rdp->nocb_next_follower) {
  1924. if (READ_ONCE(rdp->nocb_head))
  1925. my_rdp->nocb_leader_sleep = false;/* No need to sleep.*/
  1926. if (!rdp->nocb_gp_head)
  1927. continue; /* No CBs, so no need to wake follower. */
  1928. /* Append callbacks to follower's "done" list. */
  1929. tail = xchg(&rdp->nocb_follower_tail, rdp->nocb_gp_tail);
  1930. *tail = rdp->nocb_gp_head;
  1931. smp_mb__after_atomic(); /* Store *tail before wakeup. */
  1932. if (rdp != my_rdp && tail == &rdp->nocb_follower_head) {
  1933. /*
  1934. * List was empty, wake up the follower.
  1935. * Memory barriers supplied by atomic_long_add().
  1936. */
  1937. swake_up(&rdp->nocb_wq);
  1938. }
  1939. }
  1940. /* If we (the leader) don't have CBs, go wait some more. */
  1941. if (!my_rdp->nocb_follower_head)
  1942. goto wait_again;
  1943. }
  1944. /*
  1945. * Followers come here to wait for additional callbacks to show up.
  1946. * This function does not return until callbacks appear.
  1947. */
  1948. static void nocb_follower_wait(struct rcu_data *rdp)
  1949. {
  1950. bool firsttime = true;
  1951. for (;;) {
  1952. if (!rcu_nocb_poll) {
  1953. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1954. "FollowerSleep");
  1955. swait_event_interruptible(rdp->nocb_wq,
  1956. READ_ONCE(rdp->nocb_follower_head));
  1957. } else if (firsttime) {
  1958. /* Don't drown trace log with "Poll"! */
  1959. firsttime = false;
  1960. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu, "Poll");
  1961. }
  1962. if (smp_load_acquire(&rdp->nocb_follower_head)) {
  1963. /* ^^^ Ensure CB invocation follows _head test. */
  1964. return;
  1965. }
  1966. if (!rcu_nocb_poll)
  1967. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  1968. "WokeEmpty");
  1969. WARN_ON(signal_pending(current));
  1970. schedule_timeout_interruptible(1);
  1971. }
  1972. }
  1973. /*
  1974. * Per-rcu_data kthread, but only for no-CBs CPUs. Each kthread invokes
  1975. * callbacks queued by the corresponding no-CBs CPU, however, there is
  1976. * an optional leader-follower relationship so that the grace-period
  1977. * kthreads don't have to do quite so many wakeups.
  1978. */
  1979. static int rcu_nocb_kthread(void *arg)
  1980. {
  1981. int c, cl;
  1982. struct rcu_head *list;
  1983. struct rcu_head *next;
  1984. struct rcu_head **tail;
  1985. struct rcu_data *rdp = arg;
  1986. /* Each pass through this loop invokes one batch of callbacks */
  1987. for (;;) {
  1988. /* Wait for callbacks. */
  1989. if (rdp->nocb_leader == rdp)
  1990. nocb_leader_wait(rdp);
  1991. else
  1992. nocb_follower_wait(rdp);
  1993. /* Pull the ready-to-invoke callbacks onto local list. */
  1994. list = READ_ONCE(rdp->nocb_follower_head);
  1995. BUG_ON(!list);
  1996. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu, "WokeNonEmpty");
  1997. WRITE_ONCE(rdp->nocb_follower_head, NULL);
  1998. tail = xchg(&rdp->nocb_follower_tail, &rdp->nocb_follower_head);
  1999. /* Each pass through the following loop invokes a callback. */
  2000. trace_rcu_batch_start(rdp->rsp->name,
  2001. atomic_long_read(&rdp->nocb_q_count_lazy),
  2002. atomic_long_read(&rdp->nocb_q_count), -1);
  2003. c = cl = 0;
  2004. while (list) {
  2005. next = list->next;
  2006. /* Wait for enqueuing to complete, if needed. */
  2007. while (next == NULL && &list->next != tail) {
  2008. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  2009. TPS("WaitQueue"));
  2010. schedule_timeout_interruptible(1);
  2011. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu,
  2012. TPS("WokeQueue"));
  2013. next = list->next;
  2014. }
  2015. debug_rcu_head_unqueue(list);
  2016. local_bh_disable();
  2017. if (__rcu_reclaim(rdp->rsp->name, list))
  2018. cl++;
  2019. c++;
  2020. local_bh_enable();
  2021. list = next;
  2022. }
  2023. trace_rcu_batch_end(rdp->rsp->name, c, !!list, 0, 0, 1);
  2024. smp_mb__before_atomic(); /* _add after CB invocation. */
  2025. atomic_long_add(-c, &rdp->nocb_q_count);
  2026. atomic_long_add(-cl, &rdp->nocb_q_count_lazy);
  2027. rdp->n_nocbs_invoked += c;
  2028. }
  2029. return 0;
  2030. }
  2031. /* Is a deferred wakeup of rcu_nocb_kthread() required? */
  2032. static int rcu_nocb_need_deferred_wakeup(struct rcu_data *rdp)
  2033. {
  2034. return READ_ONCE(rdp->nocb_defer_wakeup);
  2035. }
  2036. /* Do a deferred wakeup of rcu_nocb_kthread(). */
  2037. static void do_nocb_deferred_wakeup(struct rcu_data *rdp)
  2038. {
  2039. int ndw;
  2040. if (!rcu_nocb_need_deferred_wakeup(rdp))
  2041. return;
  2042. ndw = READ_ONCE(rdp->nocb_defer_wakeup);
  2043. WRITE_ONCE(rdp->nocb_defer_wakeup, RCU_NOGP_WAKE_NOT);
  2044. wake_nocb_leader(rdp, ndw == RCU_NOGP_WAKE_FORCE);
  2045. trace_rcu_nocb_wake(rdp->rsp->name, rdp->cpu, TPS("DeferredWake"));
  2046. }
  2047. void __init rcu_init_nohz(void)
  2048. {
  2049. int cpu;
  2050. bool need_rcu_nocb_mask = true;
  2051. struct rcu_state *rsp;
  2052. #ifdef CONFIG_RCU_NOCB_CPU_NONE
  2053. need_rcu_nocb_mask = false;
  2054. #endif /* #ifndef CONFIG_RCU_NOCB_CPU_NONE */
  2055. #if defined(CONFIG_NO_HZ_FULL)
  2056. if (tick_nohz_full_running && cpumask_weight(tick_nohz_full_mask))
  2057. need_rcu_nocb_mask = true;
  2058. #endif /* #if defined(CONFIG_NO_HZ_FULL) */
  2059. if (!have_rcu_nocb_mask && need_rcu_nocb_mask) {
  2060. if (!zalloc_cpumask_var(&rcu_nocb_mask, GFP_KERNEL)) {
  2061. pr_info("rcu_nocb_mask allocation failed, callback offloading disabled.\n");
  2062. return;
  2063. }
  2064. have_rcu_nocb_mask = true;
  2065. }
  2066. if (!have_rcu_nocb_mask)
  2067. return;
  2068. #ifdef CONFIG_RCU_NOCB_CPU_ZERO
  2069. pr_info("\tOffload RCU callbacks from CPU 0\n");
  2070. cpumask_set_cpu(0, rcu_nocb_mask);
  2071. #endif /* #ifdef CONFIG_RCU_NOCB_CPU_ZERO */
  2072. #ifdef CONFIG_RCU_NOCB_CPU_ALL
  2073. pr_info("\tOffload RCU callbacks from all CPUs\n");
  2074. cpumask_copy(rcu_nocb_mask, cpu_possible_mask);
  2075. #endif /* #ifdef CONFIG_RCU_NOCB_CPU_ALL */
  2076. #if defined(CONFIG_NO_HZ_FULL)
  2077. if (tick_nohz_full_running)
  2078. cpumask_or(rcu_nocb_mask, rcu_nocb_mask, tick_nohz_full_mask);
  2079. #endif /* #if defined(CONFIG_NO_HZ_FULL) */
  2080. if (!cpumask_subset(rcu_nocb_mask, cpu_possible_mask)) {
  2081. pr_info("\tNote: kernel parameter 'rcu_nocbs=' contains nonexistent CPUs.\n");
  2082. cpumask_and(rcu_nocb_mask, cpu_possible_mask,
  2083. rcu_nocb_mask);
  2084. }
  2085. pr_info("\tOffload RCU callbacks from CPUs: %*pbl.\n",
  2086. cpumask_pr_args(rcu_nocb_mask));
  2087. if (rcu_nocb_poll)
  2088. pr_info("\tPoll for callbacks from no-CBs CPUs.\n");
  2089. for_each_rcu_flavor(rsp) {
  2090. for_each_cpu(cpu, rcu_nocb_mask)
  2091. init_nocb_callback_list(per_cpu_ptr(rsp->rda, cpu));
  2092. rcu_organize_nocb_kthreads(rsp);
  2093. }
  2094. }
  2095. /* Initialize per-rcu_data variables for no-CBs CPUs. */
  2096. static void __init rcu_boot_init_nocb_percpu_data(struct rcu_data *rdp)
  2097. {
  2098. rdp->nocb_tail = &rdp->nocb_head;
  2099. init_swait_queue_head(&rdp->nocb_wq);
  2100. rdp->nocb_follower_tail = &rdp->nocb_follower_head;
  2101. }
  2102. /*
  2103. * If the specified CPU is a no-CBs CPU that does not already have its
  2104. * rcuo kthread for the specified RCU flavor, spawn it. If the CPUs are
  2105. * brought online out of order, this can require re-organizing the
  2106. * leader-follower relationships.
  2107. */
  2108. static void rcu_spawn_one_nocb_kthread(struct rcu_state *rsp, int cpu)
  2109. {
  2110. struct rcu_data *rdp;
  2111. struct rcu_data *rdp_last;
  2112. struct rcu_data *rdp_old_leader;
  2113. struct rcu_data *rdp_spawn = per_cpu_ptr(rsp->rda, cpu);
  2114. struct task_struct *t;
  2115. /*
  2116. * If this isn't a no-CBs CPU or if it already has an rcuo kthread,
  2117. * then nothing to do.
  2118. */
  2119. if (!rcu_is_nocb_cpu(cpu) || rdp_spawn->nocb_kthread)
  2120. return;
  2121. /* If we didn't spawn the leader first, reorganize! */
  2122. rdp_old_leader = rdp_spawn->nocb_leader;
  2123. if (rdp_old_leader != rdp_spawn && !rdp_old_leader->nocb_kthread) {
  2124. rdp_last = NULL;
  2125. rdp = rdp_old_leader;
  2126. do {
  2127. rdp->nocb_leader = rdp_spawn;
  2128. if (rdp_last && rdp != rdp_spawn)
  2129. rdp_last->nocb_next_follower = rdp;
  2130. if (rdp == rdp_spawn) {
  2131. rdp = rdp->nocb_next_follower;
  2132. } else {
  2133. rdp_last = rdp;
  2134. rdp = rdp->nocb_next_follower;
  2135. rdp_last->nocb_next_follower = NULL;
  2136. }
  2137. } while (rdp);
  2138. rdp_spawn->nocb_next_follower = rdp_old_leader;
  2139. }
  2140. /* Spawn the kthread for this CPU and RCU flavor. */
  2141. t = kthread_run(rcu_nocb_kthread, rdp_spawn,
  2142. "rcuo%c/%d", rsp->abbr, cpu);
  2143. BUG_ON(IS_ERR(t));
  2144. WRITE_ONCE(rdp_spawn->nocb_kthread, t);
  2145. }
  2146. /*
  2147. * If the specified CPU is a no-CBs CPU that does not already have its
  2148. * rcuo kthreads, spawn them.
  2149. */
  2150. static void rcu_spawn_all_nocb_kthreads(int cpu)
  2151. {
  2152. struct rcu_state *rsp;
  2153. if (rcu_scheduler_fully_active)
  2154. for_each_rcu_flavor(rsp)
  2155. rcu_spawn_one_nocb_kthread(rsp, cpu);
  2156. }
  2157. /*
  2158. * Once the scheduler is running, spawn rcuo kthreads for all online
  2159. * no-CBs CPUs. This assumes that the early_initcall()s happen before
  2160. * non-boot CPUs come online -- if this changes, we will need to add
  2161. * some mutual exclusion.
  2162. */
  2163. static void __init rcu_spawn_nocb_kthreads(void)
  2164. {
  2165. int cpu;
  2166. for_each_online_cpu(cpu)
  2167. rcu_spawn_all_nocb_kthreads(cpu);
  2168. }
  2169. /* How many follower CPU IDs per leader? Default of -1 for sqrt(nr_cpu_ids). */
  2170. static int rcu_nocb_leader_stride = -1;
  2171. module_param(rcu_nocb_leader_stride, int, 0444);
  2172. /*
  2173. * Initialize leader-follower relationships for all no-CBs CPU.
  2174. */
  2175. static void __init rcu_organize_nocb_kthreads(struct rcu_state *rsp)
  2176. {
  2177. int cpu;
  2178. int ls = rcu_nocb_leader_stride;
  2179. int nl = 0; /* Next leader. */
  2180. struct rcu_data *rdp;
  2181. struct rcu_data *rdp_leader = NULL; /* Suppress misguided gcc warn. */
  2182. struct rcu_data *rdp_prev = NULL;
  2183. if (!have_rcu_nocb_mask)
  2184. return;
  2185. if (ls == -1) {
  2186. ls = int_sqrt(nr_cpu_ids);
  2187. rcu_nocb_leader_stride = ls;
  2188. }
  2189. /*
  2190. * Each pass through this loop sets up one rcu_data structure and
  2191. * spawns one rcu_nocb_kthread().
  2192. */
  2193. for_each_cpu(cpu, rcu_nocb_mask) {
  2194. rdp = per_cpu_ptr(rsp->rda, cpu);
  2195. if (rdp->cpu >= nl) {
  2196. /* New leader, set up for followers & next leader. */
  2197. nl = DIV_ROUND_UP(rdp->cpu + 1, ls) * ls;
  2198. rdp->nocb_leader = rdp;
  2199. rdp_leader = rdp;
  2200. } else {
  2201. /* Another follower, link to previous leader. */
  2202. rdp->nocb_leader = rdp_leader;
  2203. rdp_prev->nocb_next_follower = rdp;
  2204. }
  2205. rdp_prev = rdp;
  2206. }
  2207. }
  2208. /* Prevent __call_rcu() from enqueuing callbacks on no-CBs CPUs */
  2209. static bool init_nocb_callback_list(struct rcu_data *rdp)
  2210. {
  2211. if (!rcu_is_nocb_cpu(rdp->cpu))
  2212. return false;
  2213. /* If there are early-boot callbacks, move them to nocb lists. */
  2214. if (rdp->nxtlist) {
  2215. rdp->nocb_head = rdp->nxtlist;
  2216. rdp->nocb_tail = rdp->nxttail[RCU_NEXT_TAIL];
  2217. atomic_long_set(&rdp->nocb_q_count, rdp->qlen);
  2218. atomic_long_set(&rdp->nocb_q_count_lazy, rdp->qlen_lazy);
  2219. rdp->nxtlist = NULL;
  2220. rdp->qlen = 0;
  2221. rdp->qlen_lazy = 0;
  2222. }
  2223. rdp->nxttail[RCU_NEXT_TAIL] = NULL;
  2224. return true;
  2225. }
  2226. #else /* #ifdef CONFIG_RCU_NOCB_CPU */
  2227. static bool rcu_nocb_cpu_needs_barrier(struct rcu_state *rsp, int cpu)
  2228. {
  2229. WARN_ON_ONCE(1); /* Should be dead code. */
  2230. return false;
  2231. }
  2232. static void rcu_nocb_gp_cleanup(struct swait_queue_head *sq)
  2233. {
  2234. }
  2235. static void rcu_nocb_gp_set(struct rcu_node *rnp, int nrq)
  2236. {
  2237. }
  2238. static struct swait_queue_head *rcu_nocb_gp_get(struct rcu_node *rnp)
  2239. {
  2240. return NULL;
  2241. }
  2242. static void rcu_init_one_nocb(struct rcu_node *rnp)
  2243. {
  2244. }
  2245. static bool __call_rcu_nocb(struct rcu_data *rdp, struct rcu_head *rhp,
  2246. bool lazy, unsigned long flags)
  2247. {
  2248. return false;
  2249. }
  2250. static bool __maybe_unused rcu_nocb_adopt_orphan_cbs(struct rcu_state *rsp,
  2251. struct rcu_data *rdp,
  2252. unsigned long flags)
  2253. {
  2254. return false;
  2255. }
  2256. static void __init rcu_boot_init_nocb_percpu_data(struct rcu_data *rdp)
  2257. {
  2258. }
  2259. static int rcu_nocb_need_deferred_wakeup(struct rcu_data *rdp)
  2260. {
  2261. return false;
  2262. }
  2263. static void do_nocb_deferred_wakeup(struct rcu_data *rdp)
  2264. {
  2265. }
  2266. static void rcu_spawn_all_nocb_kthreads(int cpu)
  2267. {
  2268. }
  2269. static void __init rcu_spawn_nocb_kthreads(void)
  2270. {
  2271. }
  2272. static bool init_nocb_callback_list(struct rcu_data *rdp)
  2273. {
  2274. return false;
  2275. }
  2276. #endif /* #else #ifdef CONFIG_RCU_NOCB_CPU */
  2277. /*
  2278. * An adaptive-ticks CPU can potentially execute in kernel mode for an
  2279. * arbitrarily long period of time with the scheduling-clock tick turned
  2280. * off. RCU will be paying attention to this CPU because it is in the
  2281. * kernel, but the CPU cannot be guaranteed to be executing the RCU state
  2282. * machine because the scheduling-clock tick has been disabled. Therefore,
  2283. * if an adaptive-ticks CPU is failing to respond to the current grace
  2284. * period and has not be idle from an RCU perspective, kick it.
  2285. */
  2286. static void __maybe_unused rcu_kick_nohz_cpu(int cpu)
  2287. {
  2288. #ifdef CONFIG_NO_HZ_FULL
  2289. if (tick_nohz_full_cpu(cpu))
  2290. smp_send_reschedule(cpu);
  2291. #endif /* #ifdef CONFIG_NO_HZ_FULL */
  2292. }
  2293. #ifdef CONFIG_NO_HZ_FULL_SYSIDLE
  2294. static int full_sysidle_state; /* Current system-idle state. */
  2295. #define RCU_SYSIDLE_NOT 0 /* Some CPU is not idle. */
  2296. #define RCU_SYSIDLE_SHORT 1 /* All CPUs idle for brief period. */
  2297. #define RCU_SYSIDLE_LONG 2 /* All CPUs idle for long enough. */
  2298. #define RCU_SYSIDLE_FULL 3 /* All CPUs idle, ready for sysidle. */
  2299. #define RCU_SYSIDLE_FULL_NOTED 4 /* Actually entered sysidle state. */
  2300. /*
  2301. * Invoked to note exit from irq or task transition to idle. Note that
  2302. * usermode execution does -not- count as idle here! After all, we want
  2303. * to detect full-system idle states, not RCU quiescent states and grace
  2304. * periods. The caller must have disabled interrupts.
  2305. */
  2306. static void rcu_sysidle_enter(int irq)
  2307. {
  2308. unsigned long j;
  2309. struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);
  2310. /* If there are no nohz_full= CPUs, no need to track this. */
  2311. if (!tick_nohz_full_enabled())
  2312. return;
  2313. /* Adjust nesting, check for fully idle. */
  2314. if (irq) {
  2315. rdtp->dynticks_idle_nesting--;
  2316. WARN_ON_ONCE(rdtp->dynticks_idle_nesting < 0);
  2317. if (rdtp->dynticks_idle_nesting != 0)
  2318. return; /* Still not fully idle. */
  2319. } else {
  2320. if ((rdtp->dynticks_idle_nesting & DYNTICK_TASK_NEST_MASK) ==
  2321. DYNTICK_TASK_NEST_VALUE) {
  2322. rdtp->dynticks_idle_nesting = 0;
  2323. } else {
  2324. rdtp->dynticks_idle_nesting -= DYNTICK_TASK_NEST_VALUE;
  2325. WARN_ON_ONCE(rdtp->dynticks_idle_nesting < 0);
  2326. return; /* Still not fully idle. */
  2327. }
  2328. }
  2329. /* Record start of fully idle period. */
  2330. j = jiffies;
  2331. WRITE_ONCE(rdtp->dynticks_idle_jiffies, j);
  2332. smp_mb__before_atomic();
  2333. atomic_inc(&rdtp->dynticks_idle);
  2334. smp_mb__after_atomic();
  2335. WARN_ON_ONCE(atomic_read(&rdtp->dynticks_idle) & 0x1);
  2336. }
  2337. /*
  2338. * Unconditionally force exit from full system-idle state. This is
  2339. * invoked when a normal CPU exits idle, but must be called separately
  2340. * for the timekeeping CPU (tick_do_timer_cpu). The reason for this
  2341. * is that the timekeeping CPU is permitted to take scheduling-clock
  2342. * interrupts while the system is in system-idle state, and of course
  2343. * rcu_sysidle_exit() has no way of distinguishing a scheduling-clock
  2344. * interrupt from any other type of interrupt.
  2345. */
  2346. void rcu_sysidle_force_exit(void)
  2347. {
  2348. int oldstate = READ_ONCE(full_sysidle_state);
  2349. int newoldstate;
  2350. /*
  2351. * Each pass through the following loop attempts to exit full
  2352. * system-idle state. If contention proves to be a problem,
  2353. * a trylock-based contention tree could be used here.
  2354. */
  2355. while (oldstate > RCU_SYSIDLE_SHORT) {
  2356. newoldstate = cmpxchg(&full_sysidle_state,
  2357. oldstate, RCU_SYSIDLE_NOT);
  2358. if (oldstate == newoldstate &&
  2359. oldstate == RCU_SYSIDLE_FULL_NOTED) {
  2360. rcu_kick_nohz_cpu(tick_do_timer_cpu);
  2361. return; /* We cleared it, done! */
  2362. }
  2363. oldstate = newoldstate;
  2364. }
  2365. smp_mb(); /* Order initial oldstate fetch vs. later non-idle work. */
  2366. }
  2367. /*
  2368. * Invoked to note entry to irq or task transition from idle. Note that
  2369. * usermode execution does -not- count as idle here! The caller must
  2370. * have disabled interrupts.
  2371. */
  2372. static void rcu_sysidle_exit(int irq)
  2373. {
  2374. struct rcu_dynticks *rdtp = this_cpu_ptr(&rcu_dynticks);
  2375. /* If there are no nohz_full= CPUs, no need to track this. */
  2376. if (!tick_nohz_full_enabled())
  2377. return;
  2378. /* Adjust nesting, check for already non-idle. */
  2379. if (irq) {
  2380. rdtp->dynticks_idle_nesting++;
  2381. WARN_ON_ONCE(rdtp->dynticks_idle_nesting <= 0);
  2382. if (rdtp->dynticks_idle_nesting != 1)
  2383. return; /* Already non-idle. */
  2384. } else {
  2385. /*
  2386. * Allow for irq misnesting. Yes, it really is possible
  2387. * to enter an irq handler then never leave it, and maybe
  2388. * also vice versa. Handle both possibilities.
  2389. */
  2390. if (rdtp->dynticks_idle_nesting & DYNTICK_TASK_NEST_MASK) {
  2391. rdtp->dynticks_idle_nesting += DYNTICK_TASK_NEST_VALUE;
  2392. WARN_ON_ONCE(rdtp->dynticks_idle_nesting <= 0);
  2393. return; /* Already non-idle. */
  2394. } else {
  2395. rdtp->dynticks_idle_nesting = DYNTICK_TASK_EXIT_IDLE;
  2396. }
  2397. }
  2398. /* Record end of idle period. */
  2399. smp_mb__before_atomic();
  2400. atomic_inc(&rdtp->dynticks_idle);
  2401. smp_mb__after_atomic();
  2402. WARN_ON_ONCE(!(atomic_read(&rdtp->dynticks_idle) & 0x1));
  2403. /*
  2404. * If we are the timekeeping CPU, we are permitted to be non-idle
  2405. * during a system-idle state. This must be the case, because
  2406. * the timekeeping CPU has to take scheduling-clock interrupts
  2407. * during the time that the system is transitioning to full
  2408. * system-idle state. This means that the timekeeping CPU must
  2409. * invoke rcu_sysidle_force_exit() directly if it does anything
  2410. * more than take a scheduling-clock interrupt.
  2411. */
  2412. if (smp_processor_id() == tick_do_timer_cpu)
  2413. return;
  2414. /* Update system-idle state: We are clearly no longer fully idle! */
  2415. rcu_sysidle_force_exit();
  2416. }
  2417. /*
  2418. * Check to see if the current CPU is idle. Note that usermode execution
  2419. * does not count as idle. The caller must have disabled interrupts,
  2420. * and must be running on tick_do_timer_cpu.
  2421. */
  2422. static void rcu_sysidle_check_cpu(struct rcu_data *rdp, bool *isidle,
  2423. unsigned long *maxj)
  2424. {
  2425. int cur;
  2426. unsigned long j;
  2427. struct rcu_dynticks *rdtp = rdp->dynticks;
  2428. /* If there are no nohz_full= CPUs, don't check system-wide idleness. */
  2429. if (!tick_nohz_full_enabled())
  2430. return;
  2431. /*
  2432. * If some other CPU has already reported non-idle, if this is
  2433. * not the flavor of RCU that tracks sysidle state, or if this
  2434. * is an offline or the timekeeping CPU, nothing to do.
  2435. */
  2436. if (!*isidle || rdp->rsp != rcu_state_p ||
  2437. cpu_is_offline(rdp->cpu) || rdp->cpu == tick_do_timer_cpu)
  2438. return;
  2439. /* Verify affinity of current kthread. */
  2440. WARN_ON_ONCE(smp_processor_id() != tick_do_timer_cpu);
  2441. /* Pick up current idle and NMI-nesting counter and check. */
  2442. cur = atomic_read(&rdtp->dynticks_idle);
  2443. if (cur & 0x1) {
  2444. *isidle = false; /* We are not idle! */
  2445. return;
  2446. }
  2447. smp_mb(); /* Read counters before timestamps. */
  2448. /* Pick up timestamps. */
  2449. j = READ_ONCE(rdtp->dynticks_idle_jiffies);
  2450. /* If this CPU entered idle more recently, update maxj timestamp. */
  2451. if (ULONG_CMP_LT(*maxj, j))
  2452. *maxj = j;
  2453. }
  2454. /*
  2455. * Is this the flavor of RCU that is handling full-system idle?
  2456. */
  2457. static bool is_sysidle_rcu_state(struct rcu_state *rsp)
  2458. {
  2459. return rsp == rcu_state_p;
  2460. }
  2461. /*
  2462. * Return a delay in jiffies based on the number of CPUs, rcu_node
  2463. * leaf fanout, and jiffies tick rate. The idea is to allow larger
  2464. * systems more time to transition to full-idle state in order to
  2465. * avoid the cache thrashing that otherwise occur on the state variable.
  2466. * Really small systems (less than a couple of tens of CPUs) should
  2467. * instead use a single global atomically incremented counter, and later
  2468. * versions of this will automatically reconfigure themselves accordingly.
  2469. */
  2470. static unsigned long rcu_sysidle_delay(void)
  2471. {
  2472. if (nr_cpu_ids <= CONFIG_NO_HZ_FULL_SYSIDLE_SMALL)
  2473. return 0;
  2474. return DIV_ROUND_UP(nr_cpu_ids * HZ, rcu_fanout_leaf * 1000);
  2475. }
  2476. /*
  2477. * Advance the full-system-idle state. This is invoked when all of
  2478. * the non-timekeeping CPUs are idle.
  2479. */
  2480. static void rcu_sysidle(unsigned long j)
  2481. {
  2482. /* Check the current state. */
  2483. switch (READ_ONCE(full_sysidle_state)) {
  2484. case RCU_SYSIDLE_NOT:
  2485. /* First time all are idle, so note a short idle period. */
  2486. WRITE_ONCE(full_sysidle_state, RCU_SYSIDLE_SHORT);
  2487. break;
  2488. case RCU_SYSIDLE_SHORT:
  2489. /*
  2490. * Idle for a bit, time to advance to next state?
  2491. * cmpxchg failure means race with non-idle, let them win.
  2492. */
  2493. if (ULONG_CMP_GE(jiffies, j + rcu_sysidle_delay()))
  2494. (void)cmpxchg(&full_sysidle_state,
  2495. RCU_SYSIDLE_SHORT, RCU_SYSIDLE_LONG);
  2496. break;
  2497. case RCU_SYSIDLE_LONG:
  2498. /*
  2499. * Do an additional check pass before advancing to full.
  2500. * cmpxchg failure means race with non-idle, let them win.
  2501. */
  2502. if (ULONG_CMP_GE(jiffies, j + rcu_sysidle_delay()))
  2503. (void)cmpxchg(&full_sysidle_state,
  2504. RCU_SYSIDLE_LONG, RCU_SYSIDLE_FULL);
  2505. break;
  2506. default:
  2507. break;
  2508. }
  2509. }
  2510. /*
  2511. * Found a non-idle non-timekeeping CPU, so kick the system-idle state
  2512. * back to the beginning.
  2513. */
  2514. static void rcu_sysidle_cancel(void)
  2515. {
  2516. smp_mb();
  2517. if (full_sysidle_state > RCU_SYSIDLE_SHORT)
  2518. WRITE_ONCE(full_sysidle_state, RCU_SYSIDLE_NOT);
  2519. }
  2520. /*
  2521. * Update the sysidle state based on the results of a force-quiescent-state
  2522. * scan of the CPUs' dyntick-idle state.
  2523. */
  2524. static void rcu_sysidle_report(struct rcu_state *rsp, int isidle,
  2525. unsigned long maxj, bool gpkt)
  2526. {
  2527. if (rsp != rcu_state_p)
  2528. return; /* Wrong flavor, ignore. */
  2529. if (gpkt && nr_cpu_ids <= CONFIG_NO_HZ_FULL_SYSIDLE_SMALL)
  2530. return; /* Running state machine from timekeeping CPU. */
  2531. if (isidle)
  2532. rcu_sysidle(maxj); /* More idle! */
  2533. else
  2534. rcu_sysidle_cancel(); /* Idle is over. */
  2535. }
  2536. /*
  2537. * Wrapper for rcu_sysidle_report() when called from the grace-period
  2538. * kthread's context.
  2539. */
  2540. static void rcu_sysidle_report_gp(struct rcu_state *rsp, int isidle,
  2541. unsigned long maxj)
  2542. {
  2543. /* If there are no nohz_full= CPUs, no need to track this. */
  2544. if (!tick_nohz_full_enabled())
  2545. return;
  2546. rcu_sysidle_report(rsp, isidle, maxj, true);
  2547. }
  2548. /* Callback and function for forcing an RCU grace period. */
  2549. struct rcu_sysidle_head {
  2550. struct rcu_head rh;
  2551. int inuse;
  2552. };
  2553. static void rcu_sysidle_cb(struct rcu_head *rhp)
  2554. {
  2555. struct rcu_sysidle_head *rshp;
  2556. /*
  2557. * The following memory barrier is needed to replace the
  2558. * memory barriers that would normally be in the memory
  2559. * allocator.
  2560. */
  2561. smp_mb(); /* grace period precedes setting inuse. */
  2562. rshp = container_of(rhp, struct rcu_sysidle_head, rh);
  2563. WRITE_ONCE(rshp->inuse, 0);
  2564. }
  2565. /*
  2566. * Check to see if the system is fully idle, other than the timekeeping CPU.
  2567. * The caller must have disabled interrupts. This is not intended to be
  2568. * called unless tick_nohz_full_enabled().
  2569. */
  2570. bool rcu_sys_is_idle(void)
  2571. {
  2572. static struct rcu_sysidle_head rsh;
  2573. int rss = READ_ONCE(full_sysidle_state);
  2574. if (WARN_ON_ONCE(smp_processor_id() != tick_do_timer_cpu))
  2575. return false;
  2576. /* Handle small-system case by doing a full scan of CPUs. */
  2577. if (nr_cpu_ids <= CONFIG_NO_HZ_FULL_SYSIDLE_SMALL) {
  2578. int oldrss = rss - 1;
  2579. /*
  2580. * One pass to advance to each state up to _FULL.
  2581. * Give up if any pass fails to advance the state.
  2582. */
  2583. while (rss < RCU_SYSIDLE_FULL && oldrss < rss) {
  2584. int cpu;
  2585. bool isidle = true;
  2586. unsigned long maxj = jiffies - ULONG_MAX / 4;
  2587. struct rcu_data *rdp;
  2588. /* Scan all the CPUs looking for nonidle CPUs. */
  2589. for_each_possible_cpu(cpu) {
  2590. rdp = per_cpu_ptr(rcu_state_p->rda, cpu);
  2591. rcu_sysidle_check_cpu(rdp, &isidle, &maxj);
  2592. if (!isidle)
  2593. break;
  2594. }
  2595. rcu_sysidle_report(rcu_state_p, isidle, maxj, false);
  2596. oldrss = rss;
  2597. rss = READ_ONCE(full_sysidle_state);
  2598. }
  2599. }
  2600. /* If this is the first observation of an idle period, record it. */
  2601. if (rss == RCU_SYSIDLE_FULL) {
  2602. rss = cmpxchg(&full_sysidle_state,
  2603. RCU_SYSIDLE_FULL, RCU_SYSIDLE_FULL_NOTED);
  2604. return rss == RCU_SYSIDLE_FULL;
  2605. }
  2606. smp_mb(); /* ensure rss load happens before later caller actions. */
  2607. /* If already fully idle, tell the caller (in case of races). */
  2608. if (rss == RCU_SYSIDLE_FULL_NOTED)
  2609. return true;
  2610. /*
  2611. * If we aren't there yet, and a grace period is not in flight,
  2612. * initiate a grace period. Either way, tell the caller that
  2613. * we are not there yet. We use an xchg() rather than an assignment
  2614. * to make up for the memory barriers that would otherwise be
  2615. * provided by the memory allocator.
  2616. */
  2617. if (nr_cpu_ids > CONFIG_NO_HZ_FULL_SYSIDLE_SMALL &&
  2618. !rcu_gp_in_progress(rcu_state_p) &&
  2619. !rsh.inuse && xchg(&rsh.inuse, 1) == 0)
  2620. call_rcu(&rsh.rh, rcu_sysidle_cb);
  2621. return false;
  2622. }
  2623. /*
  2624. * Initialize dynticks sysidle state for CPUs coming online.
  2625. */
  2626. static void rcu_sysidle_init_percpu_data(struct rcu_dynticks *rdtp)
  2627. {
  2628. rdtp->dynticks_idle_nesting = DYNTICK_TASK_NEST_VALUE;
  2629. }
  2630. #else /* #ifdef CONFIG_NO_HZ_FULL_SYSIDLE */
  2631. static void rcu_sysidle_enter(int irq)
  2632. {
  2633. }
  2634. static void rcu_sysidle_exit(int irq)
  2635. {
  2636. }
  2637. static void rcu_sysidle_check_cpu(struct rcu_data *rdp, bool *isidle,
  2638. unsigned long *maxj)
  2639. {
  2640. }
  2641. static bool is_sysidle_rcu_state(struct rcu_state *rsp)
  2642. {
  2643. return false;
  2644. }
  2645. static void rcu_sysidle_report_gp(struct rcu_state *rsp, int isidle,
  2646. unsigned long maxj)
  2647. {
  2648. }
  2649. static void rcu_sysidle_init_percpu_data(struct rcu_dynticks *rdtp)
  2650. {
  2651. }
  2652. #endif /* #else #ifdef CONFIG_NO_HZ_FULL_SYSIDLE */
  2653. /*
  2654. * Is this CPU a NO_HZ_FULL CPU that should ignore RCU so that the
  2655. * grace-period kthread will do force_quiescent_state() processing?
  2656. * The idea is to avoid waking up RCU core processing on such a
  2657. * CPU unless the grace period has extended for too long.
  2658. *
  2659. * This code relies on the fact that all NO_HZ_FULL CPUs are also
  2660. * CONFIG_RCU_NOCB_CPU CPUs.
  2661. */
  2662. static bool rcu_nohz_full_cpu(struct rcu_state *rsp)
  2663. {
  2664. #ifdef CONFIG_NO_HZ_FULL
  2665. if (tick_nohz_full_cpu(smp_processor_id()) &&
  2666. (!rcu_gp_in_progress(rsp) ||
  2667. ULONG_CMP_LT(jiffies, READ_ONCE(rsp->gp_start) + HZ)))
  2668. return true;
  2669. #endif /* #ifdef CONFIG_NO_HZ_FULL */
  2670. return false;
  2671. }
  2672. /*
  2673. * Bind the grace-period kthread for the sysidle flavor of RCU to the
  2674. * timekeeping CPU.
  2675. */
  2676. static void rcu_bind_gp_kthread(void)
  2677. {
  2678. int __maybe_unused cpu;
  2679. if (!tick_nohz_full_enabled())
  2680. return;
  2681. #ifdef CONFIG_NO_HZ_FULL_SYSIDLE
  2682. cpu = tick_do_timer_cpu;
  2683. if (cpu >= 0 && cpu < nr_cpu_ids)
  2684. set_cpus_allowed_ptr(current, cpumask_of(cpu));
  2685. #else /* #ifdef CONFIG_NO_HZ_FULL_SYSIDLE */
  2686. housekeeping_affine(current);
  2687. #endif /* #else #ifdef CONFIG_NO_HZ_FULL_SYSIDLE */
  2688. }
  2689. /* Record the current task on dyntick-idle entry. */
  2690. static void rcu_dynticks_task_enter(void)
  2691. {
  2692. #if defined(CONFIG_TASKS_RCU) && defined(CONFIG_NO_HZ_FULL)
  2693. WRITE_ONCE(current->rcu_tasks_idle_cpu, smp_processor_id());
  2694. #endif /* #if defined(CONFIG_TASKS_RCU) && defined(CONFIG_NO_HZ_FULL) */
  2695. }
  2696. /* Record no current task on dyntick-idle exit. */
  2697. static void rcu_dynticks_task_exit(void)
  2698. {
  2699. #if defined(CONFIG_TASKS_RCU) && defined(CONFIG_NO_HZ_FULL)
  2700. WRITE_ONCE(current->rcu_tasks_idle_cpu, -1);
  2701. #endif /* #if defined(CONFIG_TASKS_RCU) && defined(CONFIG_NO_HZ_FULL) */
  2702. }