1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Sleepable Read-Copy Update mechanism for mutual exclusion.
4 *
5 * Copyright (C) IBM Corporation, 2006
6 * Copyright (C) Fujitsu, 2012
7 *
8 * Authors: Paul McKenney <paulmck@linux.ibm.com>
9 * Lai Jiangshan <laijs@cn.fujitsu.com>
10 *
11 * For detailed explanation of Read-Copy Update mechanism see -
12 * Documentation/RCU/ *.txt
13 *
14 */
15
16 #define pr_fmt(fmt) "rcu: " fmt
17
18 #include <linux/export.h>
19 #include <linux/mutex.h>
20 #include <linux/percpu.h>
21 #include <linux/preempt.h>
22 #include <linux/rcupdate_wait.h>
23 #include <linux/sched.h>
24 #include <linux/smp.h>
25 #include <linux/delay.h>
26 #include <linux/module.h>
27 #include <linux/slab.h>
28 #include <linux/srcu.h>
29
30 #include "rcu.h"
31 #include "rcu_segcblist.h"
32
33 /* Holdoff in nanoseconds for auto-expediting. */
34 #define DEFAULT_SRCU_EXP_HOLDOFF (25 * 1000)
35 static ulong exp_holdoff = DEFAULT_SRCU_EXP_HOLDOFF;
36 module_param(exp_holdoff, ulong, 0444);
37
38 /* Overflow-check frequency. N bits roughly says every 2**N grace periods. */
39 static ulong counter_wrap_check = (ULONG_MAX >> 2);
40 module_param(counter_wrap_check, ulong, 0444);
41
42 /*
43 * Control conversion to SRCU_SIZE_BIG:
44 * 0: Don't convert at all.
45 * 1: Convert at init_srcu_struct() time.
46 * 2: Convert when rcutorture invokes srcu_torture_stats_print().
47 * 3: Decide at boot time based on system shape (default).
48 * 0x1x: Convert when excessive contention encountered.
49 */
50 #define SRCU_SIZING_NONE 0
51 #define SRCU_SIZING_INIT 1
52 #define SRCU_SIZING_TORTURE 2
53 #define SRCU_SIZING_AUTO 3
54 #define SRCU_SIZING_CONTEND 0x10
55 #define SRCU_SIZING_IS(x) ((convert_to_big & ~SRCU_SIZING_CONTEND) == x)
56 #define SRCU_SIZING_IS_NONE() (SRCU_SIZING_IS(SRCU_SIZING_NONE))
57 #define SRCU_SIZING_IS_INIT() (SRCU_SIZING_IS(SRCU_SIZING_INIT))
58 #define SRCU_SIZING_IS_TORTURE() (SRCU_SIZING_IS(SRCU_SIZING_TORTURE))
59 #define SRCU_SIZING_IS_CONTEND() (convert_to_big & SRCU_SIZING_CONTEND)
60 static int convert_to_big = SRCU_SIZING_AUTO;
61 module_param(convert_to_big, int, 0444);
62
63 /* Number of CPUs to trigger init_srcu_struct()-time transition to big. */
64 static int big_cpu_lim __read_mostly = 128;
65 module_param(big_cpu_lim, int, 0444);
66
67 /* Contention events per jiffy to initiate transition to big. */
68 static int small_contention_lim __read_mostly = 100;
69 module_param(small_contention_lim, int, 0444);
70
71 /* Early-boot callback-management, so early that no lock is required! */
72 static LIST_HEAD(srcu_boot_list);
73 static bool __read_mostly srcu_init_done;
74
75 static void srcu_invoke_callbacks(struct work_struct *work);
76 static void srcu_reschedule(struct srcu_struct *ssp, unsigned long delay);
77 static void process_srcu(struct work_struct *work);
78 static void srcu_delay_timer(struct timer_list *t);
79
80 /* Wrappers for lock acquisition and release, see raw_spin_lock_rcu_node(). */
81 #define spin_lock_rcu_node(p) \
82 do { \
83 spin_lock(&ACCESS_PRIVATE(p, lock)); \
84 smp_mb__after_unlock_lock(); \
85 } while (0)
86
87 #define spin_unlock_rcu_node(p) spin_unlock(&ACCESS_PRIVATE(p, lock))
88
89 #define spin_lock_irq_rcu_node(p) \
90 do { \
91 spin_lock_irq(&ACCESS_PRIVATE(p, lock)); \
92 smp_mb__after_unlock_lock(); \
93 } while (0)
94
95 #define spin_unlock_irq_rcu_node(p) \
96 spin_unlock_irq(&ACCESS_PRIVATE(p, lock))
97
98 #define spin_lock_irqsave_rcu_node(p, flags) \
99 do { \
100 spin_lock_irqsave(&ACCESS_PRIVATE(p, lock), flags); \
101 smp_mb__after_unlock_lock(); \
102 } while (0)
103
104 #define spin_trylock_irqsave_rcu_node(p, flags) \
105 ({ \
106 bool ___locked = spin_trylock_irqsave(&ACCESS_PRIVATE(p, lock), flags); \
107 \
108 if (___locked) \
109 smp_mb__after_unlock_lock(); \
110 ___locked; \
111 })
112
113 #define spin_unlock_irqrestore_rcu_node(p, flags) \
114 spin_unlock_irqrestore(&ACCESS_PRIVATE(p, lock), flags) \
115
116 /*
117 * Initialize SRCU per-CPU data. Note that statically allocated
118 * srcu_struct structures might already have srcu_read_lock() and
119 * srcu_read_unlock() running against them. So if the is_static
120 * parameter is set, don't initialize ->srcu_ctrs[].srcu_locks and
121 * ->srcu_ctrs[].srcu_unlocks.
122 */
init_srcu_struct_data(struct srcu_struct * ssp)123 static void init_srcu_struct_data(struct srcu_struct *ssp)
124 {
125 int cpu;
126 struct srcu_data *sdp;
127
128 /*
129 * Initialize the per-CPU srcu_data array, which feeds into the
130 * leaves of the srcu_node tree.
131 */
132 for_each_possible_cpu(cpu) {
133 sdp = per_cpu_ptr(ssp->sda, cpu);
134 spin_lock_init(&ACCESS_PRIVATE(sdp, lock));
135 rcu_segcblist_init(&sdp->srcu_cblist);
136 sdp->srcu_cblist_invoking = false;
137 sdp->srcu_gp_seq_needed = ssp->srcu_sup->srcu_gp_seq;
138 sdp->srcu_gp_seq_needed_exp = ssp->srcu_sup->srcu_gp_seq;
139 sdp->srcu_barrier_head.next = &sdp->srcu_barrier_head;
140 sdp->mynode = NULL;
141 sdp->cpu = cpu;
142 INIT_WORK(&sdp->work, srcu_invoke_callbacks);
143 timer_setup(&sdp->delay_work, srcu_delay_timer, 0);
144 sdp->ssp = ssp;
145 }
146 }
147
148 /* Invalid seq state, used during snp node initialization */
149 #define SRCU_SNP_INIT_SEQ 0x2
150
151 /*
152 * Check whether sequence number corresponding to snp node,
153 * is invalid.
154 */
srcu_invl_snp_seq(unsigned long s)155 static inline bool srcu_invl_snp_seq(unsigned long s)
156 {
157 return s == SRCU_SNP_INIT_SEQ;
158 }
159
160 /*
161 * Allocated and initialize SRCU combining tree. Returns @true if
162 * allocation succeeded and @false otherwise.
163 */
init_srcu_struct_nodes(struct srcu_struct * ssp,gfp_t gfp_flags)164 static bool init_srcu_struct_nodes(struct srcu_struct *ssp, gfp_t gfp_flags)
165 {
166 int cpu;
167 int i;
168 int level = 0;
169 int levelspread[RCU_NUM_LVLS];
170 struct srcu_data *sdp;
171 struct srcu_node *snp;
172 struct srcu_node *snp_first;
173
174 /* Initialize geometry if it has not already been initialized. */
175 rcu_init_geometry();
176 ssp->srcu_sup->node = kzalloc_objs(*ssp->srcu_sup->node, rcu_num_nodes,
177 gfp_flags);
178 if (!ssp->srcu_sup->node)
179 return false;
180
181 /* Work out the overall tree geometry. */
182 ssp->srcu_sup->level[0] = &ssp->srcu_sup->node[0];
183 for (i = 1; i < rcu_num_lvls; i++)
184 ssp->srcu_sup->level[i] = ssp->srcu_sup->level[i - 1] + num_rcu_lvl[i - 1];
185 rcu_init_levelspread(levelspread, num_rcu_lvl);
186
187 /* Each pass through this loop initializes one srcu_node structure. */
188 srcu_for_each_node_breadth_first(ssp, snp) {
189 spin_lock_init(&ACCESS_PRIVATE(snp, lock));
190 BUILD_BUG_ON(ARRAY_SIZE(snp->srcu_have_cbs) !=
191 ARRAY_SIZE(snp->srcu_data_have_cbs));
192 for (i = 0; i < ARRAY_SIZE(snp->srcu_have_cbs); i++) {
193 snp->srcu_have_cbs[i] = SRCU_SNP_INIT_SEQ;
194 snp->srcu_data_have_cbs[i] = 0;
195 }
196 snp->srcu_gp_seq_needed_exp = SRCU_SNP_INIT_SEQ;
197 snp->grplo = -1;
198 snp->grphi = -1;
199 if (snp == &ssp->srcu_sup->node[0]) {
200 /* Root node, special case. */
201 snp->srcu_parent = NULL;
202 continue;
203 }
204
205 /* Non-root node. */
206 if (snp == ssp->srcu_sup->level[level + 1])
207 level++;
208 snp->srcu_parent = ssp->srcu_sup->level[level - 1] +
209 (snp - ssp->srcu_sup->level[level]) /
210 levelspread[level - 1];
211 }
212
213 /*
214 * Initialize the per-CPU srcu_data array, which feeds into the
215 * leaves of the srcu_node tree.
216 */
217 level = rcu_num_lvls - 1;
218 snp_first = ssp->srcu_sup->level[level];
219 for_each_possible_cpu(cpu) {
220 sdp = per_cpu_ptr(ssp->sda, cpu);
221 sdp->mynode = &snp_first[cpu / levelspread[level]];
222 for (snp = sdp->mynode; snp != NULL; snp = snp->srcu_parent) {
223 if (snp->grplo < 0)
224 snp->grplo = cpu;
225 snp->grphi = cpu;
226 }
227 sdp->grpmask = 1UL << (cpu - sdp->mynode->grplo);
228 }
229 smp_store_release(&ssp->srcu_sup->srcu_size_state, SRCU_SIZE_WAIT_BARRIER);
230 return true;
231 }
232
233 /*
234 * Initialize non-compile-time initialized fields, including the
235 * associated srcu_node and srcu_data structures. The is_static parameter
236 * tells us that ->sda has already been wired up to srcu_data.
237 */
init_srcu_struct_fields(struct srcu_struct * ssp,bool is_static)238 static int init_srcu_struct_fields(struct srcu_struct *ssp, bool is_static)
239 {
240 if (!is_static)
241 ssp->srcu_sup = kzalloc_obj(*ssp->srcu_sup);
242 if (!ssp->srcu_sup)
243 return -ENOMEM;
244 if (!is_static)
245 spin_lock_init(&ACCESS_PRIVATE(ssp->srcu_sup, lock));
246 ssp->srcu_sup->srcu_size_state = SRCU_SIZE_SMALL;
247 ssp->srcu_sup->node = NULL;
248 mutex_init(&ssp->srcu_sup->srcu_cb_mutex);
249 mutex_init(&ssp->srcu_sup->srcu_gp_mutex);
250 ssp->srcu_sup->srcu_gp_seq = SRCU_GP_SEQ_INITIAL_VAL;
251 ssp->srcu_sup->srcu_barrier_seq = 0;
252 mutex_init(&ssp->srcu_sup->srcu_barrier_mutex);
253 atomic_set(&ssp->srcu_sup->srcu_barrier_cpu_cnt, 0);
254 INIT_DELAYED_WORK(&ssp->srcu_sup->work, process_srcu);
255 ssp->srcu_sup->sda_is_static = is_static;
256 if (!is_static) {
257 ssp->sda = alloc_percpu(struct srcu_data);
258 ssp->srcu_ctrp = &ssp->sda->srcu_ctrs[0];
259 }
260 if (!ssp->sda)
261 goto err_free_sup;
262 init_srcu_struct_data(ssp);
263 ssp->srcu_sup->srcu_gp_seq_needed_exp = SRCU_GP_SEQ_INITIAL_VAL;
264 ssp->srcu_sup->srcu_last_gp_end = ktime_get_mono_fast_ns();
265 if (READ_ONCE(ssp->srcu_sup->srcu_size_state) == SRCU_SIZE_SMALL && SRCU_SIZING_IS_INIT()) {
266 if (!init_srcu_struct_nodes(ssp, is_static ? GFP_ATOMIC : GFP_KERNEL))
267 goto err_free_sda;
268 WRITE_ONCE(ssp->srcu_sup->srcu_size_state, SRCU_SIZE_BIG);
269 }
270 ssp->srcu_sup->srcu_ssp = ssp;
271 smp_store_release(&ssp->srcu_sup->srcu_gp_seq_needed,
272 SRCU_GP_SEQ_INITIAL_VAL); /* Init done. */
273 return 0;
274
275 err_free_sda:
276 if (!is_static) {
277 free_percpu(ssp->sda);
278 ssp->sda = NULL;
279 }
280 err_free_sup:
281 if (!is_static) {
282 kfree(ssp->srcu_sup);
283 ssp->srcu_sup = NULL;
284 }
285 return -ENOMEM;
286 }
287
288 #ifdef CONFIG_DEBUG_LOCK_ALLOC
289
290 static int
__init_srcu_struct_common(struct srcu_struct * ssp,const char * name,struct lock_class_key * key)291 __init_srcu_struct_common(struct srcu_struct *ssp, const char *name, struct lock_class_key *key)
292 {
293 /* Don't re-initialize a lock while it is held. */
294 debug_check_no_locks_freed((void *)ssp, sizeof(*ssp));
295 lockdep_init_map(&ssp->dep_map, name, key, 0);
296 return init_srcu_struct_fields(ssp, false);
297 }
298
__init_srcu_struct(struct srcu_struct * ssp,const char * name,struct lock_class_key * key)299 int __init_srcu_struct(struct srcu_struct *ssp, const char *name, struct lock_class_key *key)
300 {
301 ssp->srcu_reader_flavor = 0;
302 return __init_srcu_struct_common(ssp, name, key);
303 }
304 EXPORT_SYMBOL_GPL(__init_srcu_struct);
305
__init_srcu_struct_fast(struct srcu_struct * ssp,const char * name,struct lock_class_key * key)306 int __init_srcu_struct_fast(struct srcu_struct *ssp, const char *name, struct lock_class_key *key)
307 {
308 ssp->srcu_reader_flavor = SRCU_READ_FLAVOR_FAST;
309 return __init_srcu_struct_common(ssp, name, key);
310 }
311 EXPORT_SYMBOL_GPL(__init_srcu_struct_fast);
312
__init_srcu_struct_fast_updown(struct srcu_struct * ssp,const char * name,struct lock_class_key * key)313 int __init_srcu_struct_fast_updown(struct srcu_struct *ssp, const char *name,
314 struct lock_class_key *key)
315 {
316 ssp->srcu_reader_flavor = SRCU_READ_FLAVOR_FAST_UPDOWN;
317 return __init_srcu_struct_common(ssp, name, key);
318 }
319 EXPORT_SYMBOL_GPL(__init_srcu_struct_fast_updown);
320
321 #else /* #ifdef CONFIG_DEBUG_LOCK_ALLOC */
322
323 /**
324 * init_srcu_struct - initialize a sleep-RCU structure
325 * @ssp: structure to initialize.
326 *
327 * Use this in place of DEFINE_SRCU() and DEFINE_STATIC_SRCU()
328 * for non-static srcu_struct structures that are to be passed to
329 * srcu_read_lock(), srcu_read_lock_nmisafe(), and friends. It is necessary
330 * to invoke this on a given srcu_struct before passing that srcu_struct
331 * to any other function. Each srcu_struct represents a separate domain
332 * of SRCU protection.
333 */
init_srcu_struct(struct srcu_struct * ssp)334 int init_srcu_struct(struct srcu_struct *ssp)
335 {
336 ssp->srcu_reader_flavor = 0;
337 return init_srcu_struct_fields(ssp, false);
338 }
339 EXPORT_SYMBOL_GPL(init_srcu_struct);
340
341 /**
342 * init_srcu_struct_fast - initialize a fast-reader sleep-RCU structure
343 * @ssp: structure to initialize.
344 *
345 * Use this in place of DEFINE_SRCU_FAST() and DEFINE_STATIC_SRCU_FAST()
346 * for non-static srcu_struct structures that are to be passed to
347 * srcu_read_lock_fast() and friends. It is necessary to invoke this on a
348 * given srcu_struct before passing that srcu_struct to any other function.
349 * Each srcu_struct represents a separate domain of SRCU protection.
350 */
init_srcu_struct_fast(struct srcu_struct * ssp)351 int init_srcu_struct_fast(struct srcu_struct *ssp)
352 {
353 ssp->srcu_reader_flavor = SRCU_READ_FLAVOR_FAST;
354 return init_srcu_struct_fields(ssp, false);
355 }
356 EXPORT_SYMBOL_GPL(init_srcu_struct_fast);
357
358 /**
359 * init_srcu_struct_fast_updown - initialize a fast-reader up/down sleep-RCU structure
360 * @ssp: structure to initialize.
361 *
362 * Use this function in place of DEFINE_SRCU_FAST_UPDOWN() and
363 * DEFINE_STATIC_SRCU_FAST_UPDOWN() for non-static srcu_struct
364 * structures that are to be passed to srcu_read_lock_fast_updown(),
365 * srcu_down_read_fast(), and friends. It is necessary to invoke this on a
366 * given srcu_struct before passing that srcu_struct to any other function.
367 * Each srcu_struct represents a separate domain of SRCU protection.
368 */
init_srcu_struct_fast_updown(struct srcu_struct * ssp)369 int init_srcu_struct_fast_updown(struct srcu_struct *ssp)
370 {
371 ssp->srcu_reader_flavor = SRCU_READ_FLAVOR_FAST_UPDOWN;
372 return init_srcu_struct_fields(ssp, false);
373 }
374 EXPORT_SYMBOL_GPL(init_srcu_struct_fast_updown);
375
376 #endif /* #else #ifdef CONFIG_DEBUG_LOCK_ALLOC */
377
378 /*
379 * Initiate a transition to SRCU_SIZE_BIG with lock held.
380 */
__srcu_transition_to_big(struct srcu_struct * ssp)381 static void __srcu_transition_to_big(struct srcu_struct *ssp)
382 {
383 lockdep_assert_held(&ACCESS_PRIVATE(ssp->srcu_sup, lock));
384 smp_store_release(&ssp->srcu_sup->srcu_size_state, SRCU_SIZE_ALLOC);
385 }
386
387 /*
388 * Initiate an idempotent transition to SRCU_SIZE_BIG.
389 */
srcu_transition_to_big(struct srcu_struct * ssp)390 static void srcu_transition_to_big(struct srcu_struct *ssp)
391 {
392 unsigned long flags;
393
394 /* Double-checked locking on ->srcu_size-state. */
395 if (smp_load_acquire(&ssp->srcu_sup->srcu_size_state) != SRCU_SIZE_SMALL)
396 return;
397 spin_lock_irqsave_rcu_node(ssp->srcu_sup, flags);
398 if (smp_load_acquire(&ssp->srcu_sup->srcu_size_state) != SRCU_SIZE_SMALL) {
399 spin_unlock_irqrestore_rcu_node(ssp->srcu_sup, flags);
400 return;
401 }
402 __srcu_transition_to_big(ssp);
403 spin_unlock_irqrestore_rcu_node(ssp->srcu_sup, flags);
404 }
405
406 /*
407 * Check to see if the just-encountered contention event justifies
408 * a transition to SRCU_SIZE_BIG.
409 */
spin_lock_irqsave_check_contention(struct srcu_struct * ssp)410 static void spin_lock_irqsave_check_contention(struct srcu_struct *ssp)
411 {
412 unsigned long j;
413
414 if (!SRCU_SIZING_IS_CONTEND() || ssp->srcu_sup->srcu_size_state)
415 return;
416 j = jiffies;
417 if (ssp->srcu_sup->srcu_size_jiffies != j) {
418 ssp->srcu_sup->srcu_size_jiffies = j;
419 ssp->srcu_sup->srcu_n_lock_retries = 0;
420 }
421 if (++ssp->srcu_sup->srcu_n_lock_retries <= small_contention_lim)
422 return;
423 __srcu_transition_to_big(ssp);
424 }
425
426 /*
427 * Acquire the specified srcu_data structure's ->lock, but check for
428 * excessive contention, which results in initiation of a transition
429 * to SRCU_SIZE_BIG. But only if the srcutree.convert_to_big module
430 * parameter permits this.
431 */
spin_lock_irqsave_sdp_contention(struct srcu_data * sdp,unsigned long * flags)432 static void spin_lock_irqsave_sdp_contention(struct srcu_data *sdp, unsigned long *flags)
433 {
434 struct srcu_struct *ssp = sdp->ssp;
435
436 if (spin_trylock_irqsave_rcu_node(sdp, *flags))
437 return;
438 spin_lock_irqsave_rcu_node(ssp->srcu_sup, *flags);
439 spin_lock_irqsave_check_contention(ssp);
440 spin_unlock_irqrestore_rcu_node(ssp->srcu_sup, *flags);
441 spin_lock_irqsave_rcu_node(sdp, *flags);
442 }
443
444 /*
445 * Acquire the specified srcu_struct structure's ->lock, but check for
446 * excessive contention, which results in initiation of a transition
447 * to SRCU_SIZE_BIG. But only if the srcutree.convert_to_big module
448 * parameter permits this.
449 */
spin_lock_irqsave_ssp_contention(struct srcu_struct * ssp,unsigned long * flags)450 static void spin_lock_irqsave_ssp_contention(struct srcu_struct *ssp, unsigned long *flags)
451 {
452 if (spin_trylock_irqsave_rcu_node(ssp->srcu_sup, *flags))
453 return;
454 spin_lock_irqsave_rcu_node(ssp->srcu_sup, *flags);
455 spin_lock_irqsave_check_contention(ssp);
456 }
457
458 /*
459 * First-use initialization of statically allocated srcu_struct
460 * structure. Wiring up the combining tree is more than can be
461 * done with compile-time initialization, so this check is added
462 * to each update-side SRCU primitive. Use ssp->lock, which -is-
463 * compile-time initialized, to resolve races involving multiple
464 * CPUs trying to garner first-use privileges.
465 */
check_init_srcu_struct(struct srcu_struct * ssp)466 static void check_init_srcu_struct(struct srcu_struct *ssp)
467 {
468 unsigned long flags;
469
470 /* The smp_load_acquire() pairs with the smp_store_release(). */
471 if (!rcu_seq_state(smp_load_acquire(&ssp->srcu_sup->srcu_gp_seq_needed))) /*^^^*/
472 return; /* Already initialized. */
473 spin_lock_irqsave_rcu_node(ssp->srcu_sup, flags);
474 if (!rcu_seq_state(ssp->srcu_sup->srcu_gp_seq_needed)) {
475 spin_unlock_irqrestore_rcu_node(ssp->srcu_sup, flags);
476 return;
477 }
478 init_srcu_struct_fields(ssp, true);
479 spin_unlock_irqrestore_rcu_node(ssp->srcu_sup, flags);
480 }
481
482 /*
483 * Is the current or any upcoming grace period to be expedited?
484 */
srcu_gp_is_expedited(struct srcu_struct * ssp)485 static bool srcu_gp_is_expedited(struct srcu_struct *ssp)
486 {
487 struct srcu_usage *sup = ssp->srcu_sup;
488
489 return ULONG_CMP_LT(READ_ONCE(sup->srcu_gp_seq), READ_ONCE(sup->srcu_gp_seq_needed_exp));
490 }
491
492 /*
493 * Computes approximate total of the readers' ->srcu_ctrs[].srcu_locks
494 * values for the rank of per-CPU counters specified by idx, and returns
495 * true if the caller did the proper barrier (gp), and if the count of
496 * the locks matches that of the unlocks passed in.
497 */
srcu_readers_lock_idx(struct srcu_struct * ssp,int idx,bool gp,unsigned long unlocks)498 static bool srcu_readers_lock_idx(struct srcu_struct *ssp, int idx, bool gp, unsigned long unlocks)
499 {
500 int cpu;
501 unsigned long mask = 0;
502 unsigned long sum = 0;
503
504 for_each_possible_cpu(cpu) {
505 struct srcu_data *sdp = per_cpu_ptr(ssp->sda, cpu);
506
507 sum += atomic_long_read(&sdp->srcu_ctrs[idx].srcu_locks);
508 if (IS_ENABLED(CONFIG_PROVE_RCU))
509 mask = mask | READ_ONCE(sdp->srcu_reader_flavor);
510 }
511 WARN_ONCE(IS_ENABLED(CONFIG_PROVE_RCU) && (mask & (mask - 1)),
512 "Mixed reader flavors for srcu_struct at %ps.\n", ssp);
513 if (mask & SRCU_READ_FLAVOR_SLOWGP && !gp)
514 return false;
515 return sum == unlocks;
516 }
517
518 /*
519 * Returns approximate total of the readers' ->srcu_ctrs[].srcu_unlocks
520 * values for the rank of per-CPU counters specified by idx.
521 */
srcu_readers_unlock_idx(struct srcu_struct * ssp,int idx,unsigned long * rdm)522 static unsigned long srcu_readers_unlock_idx(struct srcu_struct *ssp, int idx, unsigned long *rdm)
523 {
524 int cpu;
525 unsigned long mask = ssp->srcu_reader_flavor;
526 unsigned long sum = 0;
527
528 for_each_possible_cpu(cpu) {
529 struct srcu_data *sdp = per_cpu_ptr(ssp->sda, cpu);
530
531 sum += atomic_long_read(&sdp->srcu_ctrs[idx].srcu_unlocks);
532 mask = mask | READ_ONCE(sdp->srcu_reader_flavor);
533 }
534 WARN_ONCE(IS_ENABLED(CONFIG_PROVE_RCU) && (mask & (mask - 1)),
535 "Mixed reader flavors for srcu_struct at %ps.\n", ssp);
536 *rdm = mask;
537 return sum;
538 }
539
540 /*
541 * Return true if the number of pre-existing readers is determined to
542 * be zero.
543 */
srcu_readers_active_idx_check(struct srcu_struct * ssp,int idx)544 static bool srcu_readers_active_idx_check(struct srcu_struct *ssp, int idx)
545 {
546 bool did_gp;
547 unsigned long rdm;
548 unsigned long unlocks;
549
550 unlocks = srcu_readers_unlock_idx(ssp, idx, &rdm);
551 did_gp = !!(rdm & SRCU_READ_FLAVOR_SLOWGP);
552
553 /*
554 * Make sure that a lock is always counted if the corresponding
555 * unlock is counted. Needs to be a smp_mb() as the read side may
556 * contain a read from a variable that is written to before the
557 * synchronize_srcu() in the write side. In this case smp_mb()s
558 * A and B (or X and Y) act like the store buffering pattern.
559 *
560 * This smp_mb() also pairs with smp_mb() C (or, in the case of X,
561 * Z) to prevent accesses after the synchronize_srcu() from being
562 * executed before the grace period ends.
563 */
564 if (!did_gp)
565 smp_mb(); /* A */
566 else if (srcu_gp_is_expedited(ssp))
567 synchronize_rcu_expedited(); /* X */
568 else
569 synchronize_rcu(); /* X */
570
571 /*
572 * If the locks are the same as the unlocks, then there must have
573 * been no readers on this index at some point in this function.
574 * But there might be more readers, as a task might have read
575 * the current ->srcu_ctrp but not yet have incremented its CPU's
576 * ->srcu_ctrs[idx].srcu_locks counter. In fact, it is possible
577 * that most of the tasks have been preempted between fetching
578 * ->srcu_ctrp and incrementing ->srcu_ctrs[idx].srcu_locks. And
579 * there could be almost (ULONG_MAX / sizeof(struct task_struct))
580 * tasks in a system whose address space was fully populated
581 * with memory. Call this quantity Nt.
582 *
583 * So suppose that the updater is preempted at this
584 * point in the code for a long time. That now-preempted
585 * updater has already flipped ->srcu_ctrp (possibly during
586 * the preceding grace period), done an smp_mb() (again,
587 * possibly during the preceding grace period), and summed up
588 * the ->srcu_ctrs[idx].srcu_unlocks counters. How many times
589 * can a given one of the aforementioned Nt tasks increment the
590 * old ->srcu_ctrp value's ->srcu_ctrs[idx].srcu_locks counter,
591 * in the absence of nesting?
592 *
593 * It can clearly do so once, given that it has already fetched
594 * the old value of ->srcu_ctrp and is just about to use that
595 * value to index its increment of ->srcu_ctrs[idx].srcu_locks.
596 * But as soon as it leaves that SRCU read-side critical section,
597 * it will increment ->srcu_ctrs[idx].srcu_unlocks, which must
598 * follow the updater's above read from that same value. Thus,
599 as soon the reading task does an smp_mb() and a later fetch from
600 * ->srcu_ctrp, that task will be guaranteed to get the new index.
601 * Except that the increment of ->srcu_ctrs[idx].srcu_unlocks
602 * in __srcu_read_unlock() is after the smp_mb(), and the fetch
603 * from ->srcu_ctrp in __srcu_read_lock() is before the smp_mb().
604 * Thus, that task might not see the new value of ->srcu_ctrp until
605 * the -second- __srcu_read_lock(), which in turn means that this
606 * task might well increment ->srcu_ctrs[idx].srcu_locks for the
607 * old value of ->srcu_ctrp twice, not just once.
608 *
609 * However, it is important to note that a given smp_mb() takes
610 * effect not just for the task executing it, but also for any
611 * later task running on that same CPU.
612 *
613 * That is, there can be almost Nt + Nc further increments
614 * of ->srcu_ctrs[idx].srcu_locks for the old index, where Nc
615 * is the number of CPUs. But this is OK because the size of
616 * the task_struct structure limits the value of Nt and current
617 * systems limit Nc to a few thousand.
618 *
619 * OK, but what about nesting? This does impose a limit on
620 * nesting of half of the size of the task_struct structure
621 * (measured in bytes), which should be sufficient. A late 2022
622 * TREE01 rcutorture run reported this size to be no less than
623 * 9408 bytes, allowing up to 4704 levels of nesting, which is
624 * comfortably beyond excessive. Especially on 64-bit systems,
625 * which are unlikely to be configured with an address space fully
626 * populated with memory, at least not anytime soon.
627 */
628 return srcu_readers_lock_idx(ssp, idx, did_gp, unlocks);
629 }
630
631 /**
632 * srcu_readers_active - returns true if there are readers. and false
633 * otherwise
634 * @ssp: which srcu_struct to count active readers (holding srcu_read_lock).
635 *
636 * Note that this is not an atomic primitive, and can therefore suffer
637 * severe errors when invoked on an active srcu_struct. That said, it
638 * can be useful as an error check at cleanup time.
639 */
srcu_readers_active(struct srcu_struct * ssp)640 static bool srcu_readers_active(struct srcu_struct *ssp)
641 {
642 int cpu;
643 unsigned long sum = 0;
644
645 for_each_possible_cpu(cpu) {
646 struct srcu_data *sdp = per_cpu_ptr(ssp->sda, cpu);
647
648 sum += atomic_long_read(&sdp->srcu_ctrs[0].srcu_locks);
649 sum += atomic_long_read(&sdp->srcu_ctrs[1].srcu_locks);
650 sum -= atomic_long_read(&sdp->srcu_ctrs[0].srcu_unlocks);
651 sum -= atomic_long_read(&sdp->srcu_ctrs[1].srcu_unlocks);
652 }
653 return sum;
654 }
655
656 /*
657 * We use an adaptive strategy for synchronize_srcu() and especially for
658 * synchronize_srcu_expedited(). We spin for a fixed time period
659 * (defined below, boot time configurable) to allow SRCU readers to exit
660 * their read-side critical sections. If there are still some readers
661 * after one jiffy, we repeatedly block for one jiffy time periods.
662 * The blocking time is increased as the grace-period age increases,
663 * with max blocking time capped at 10 jiffies.
664 */
665 #define SRCU_DEFAULT_RETRY_CHECK_DELAY 5
666
667 static ulong srcu_retry_check_delay = SRCU_DEFAULT_RETRY_CHECK_DELAY;
668 module_param(srcu_retry_check_delay, ulong, 0444);
669
670 #define SRCU_INTERVAL 1 // Base delay if no expedited GPs pending.
671 #define SRCU_MAX_INTERVAL 10 // Maximum incremental delay from slow readers.
672
673 #define SRCU_DEFAULT_MAX_NODELAY_PHASE_LO 3UL // Lowmark on default per-GP-phase
674 // no-delay instances.
675 #define SRCU_DEFAULT_MAX_NODELAY_PHASE_HI 1000UL // Highmark on default per-GP-phase
676 // no-delay instances.
677
678 #define SRCU_UL_CLAMP_LO(val, low) ((val) > (low) ? (val) : (low))
679 #define SRCU_UL_CLAMP_HI(val, high) ((val) < (high) ? (val) : (high))
680 #define SRCU_UL_CLAMP(val, low, high) SRCU_UL_CLAMP_HI(SRCU_UL_CLAMP_LO((val), (low)), (high))
681 // per-GP-phase no-delay instances adjusted to allow non-sleeping poll upto
682 // one jiffies time duration. Mult by 2 is done to factor in the srcu_get_delay()
683 // called from process_srcu().
684 #define SRCU_DEFAULT_MAX_NODELAY_PHASE_ADJUSTED \
685 (2UL * USEC_PER_SEC / HZ / SRCU_DEFAULT_RETRY_CHECK_DELAY)
686
687 // Maximum per-GP-phase consecutive no-delay instances.
688 #define SRCU_DEFAULT_MAX_NODELAY_PHASE \
689 SRCU_UL_CLAMP(SRCU_DEFAULT_MAX_NODELAY_PHASE_ADJUSTED, \
690 SRCU_DEFAULT_MAX_NODELAY_PHASE_LO, \
691 SRCU_DEFAULT_MAX_NODELAY_PHASE_HI)
692
693 static ulong srcu_max_nodelay_phase = SRCU_DEFAULT_MAX_NODELAY_PHASE;
694 module_param(srcu_max_nodelay_phase, ulong, 0444);
695
696 // Maximum consecutive no-delay instances.
697 #define SRCU_DEFAULT_MAX_NODELAY (SRCU_DEFAULT_MAX_NODELAY_PHASE > 100 ? \
698 SRCU_DEFAULT_MAX_NODELAY_PHASE : 100)
699
700 static ulong srcu_max_nodelay = SRCU_DEFAULT_MAX_NODELAY;
701 module_param(srcu_max_nodelay, ulong, 0444);
702
703 /*
704 * Return grace-period delay, zero if there are expedited grace
705 * periods pending, SRCU_INTERVAL otherwise.
706 */
srcu_get_delay(struct srcu_struct * ssp)707 static unsigned long srcu_get_delay(struct srcu_struct *ssp)
708 {
709 unsigned long gpstart;
710 unsigned long j;
711 unsigned long jbase = SRCU_INTERVAL;
712 struct srcu_usage *sup = ssp->srcu_sup;
713
714 lockdep_assert_held(&ACCESS_PRIVATE(ssp->srcu_sup, lock));
715 if (srcu_gp_is_expedited(ssp))
716 jbase = 0;
717 if (rcu_seq_state(READ_ONCE(sup->srcu_gp_seq))) {
718 j = jiffies - 1;
719 gpstart = READ_ONCE(sup->srcu_gp_start);
720 if (time_after(j, gpstart))
721 jbase += j - gpstart;
722 if (!jbase) {
723 ASSERT_EXCLUSIVE_WRITER(sup->srcu_n_exp_nodelay);
724 WRITE_ONCE(sup->srcu_n_exp_nodelay, READ_ONCE(sup->srcu_n_exp_nodelay) + 1);
725 if (READ_ONCE(sup->srcu_n_exp_nodelay) > srcu_max_nodelay_phase)
726 jbase = 1;
727 }
728 }
729 return jbase > SRCU_MAX_INTERVAL ? SRCU_MAX_INTERVAL : jbase;
730 }
731
732 /**
733 * cleanup_srcu_struct - deconstruct a sleep-RCU structure
734 * @ssp: structure to clean up.
735 *
736 * Must invoke this after you are finished using a given srcu_struct that
737 * was initialized via init_srcu_struct(), else you leak memory.
738 */
cleanup_srcu_struct(struct srcu_struct * ssp)739 void cleanup_srcu_struct(struct srcu_struct *ssp)
740 {
741 int cpu;
742 unsigned long delay;
743 struct srcu_usage *sup = ssp->srcu_sup;
744
745 spin_lock_irq_rcu_node(ssp->srcu_sup);
746 delay = srcu_get_delay(ssp);
747 spin_unlock_irq_rcu_node(ssp->srcu_sup);
748 if (WARN_ON(!delay))
749 return; /* Just leak it! */
750 if (WARN_ON(srcu_readers_active(ssp)))
751 return; /* Just leak it! */
752 flush_delayed_work(&sup->work);
753 for_each_possible_cpu(cpu) {
754 struct srcu_data *sdp = per_cpu_ptr(ssp->sda, cpu);
755
756 timer_delete_sync(&sdp->delay_work);
757 flush_work(&sdp->work);
758 if (WARN_ON(rcu_segcblist_n_cbs(&sdp->srcu_cblist)))
759 return; /* Forgot srcu_barrier(), so just leak it! */
760 }
761 if (WARN_ON(rcu_seq_state(READ_ONCE(sup->srcu_gp_seq)) != SRCU_STATE_IDLE) ||
762 WARN_ON(rcu_seq_current(&sup->srcu_gp_seq) != sup->srcu_gp_seq_needed) ||
763 WARN_ON(srcu_readers_active(ssp))) {
764 pr_info("%s: Active srcu_struct %p read state: %d gp state: %lu/%lu\n",
765 __func__, ssp, rcu_seq_state(READ_ONCE(sup->srcu_gp_seq)),
766 rcu_seq_current(&sup->srcu_gp_seq), sup->srcu_gp_seq_needed);
767 return; // Caller forgot to stop doing call_srcu()?
768 // Or caller invoked start_poll_synchronize_srcu()
769 // and then cleanup_srcu_struct() before that grace
770 // period ended?
771 }
772 kfree(sup->node);
773 sup->node = NULL;
774 sup->srcu_size_state = SRCU_SIZE_SMALL;
775 if (!sup->sda_is_static) {
776 free_percpu(ssp->sda);
777 ssp->sda = NULL;
778 kfree(sup);
779 ssp->srcu_sup = NULL;
780 }
781 }
782 EXPORT_SYMBOL_GPL(cleanup_srcu_struct);
783
784 /*
785 * Check for consistent reader flavor.
786 */
__srcu_check_read_flavor(struct srcu_struct * ssp,int read_flavor)787 void __srcu_check_read_flavor(struct srcu_struct *ssp, int read_flavor)
788 {
789 int old_read_flavor;
790 struct srcu_data *sdp;
791
792 /* NMI-unsafe use in NMI is a bad sign, as is multi-bit read_flavor values. */
793 WARN_ON_ONCE(read_flavor != SRCU_READ_FLAVOR_NMI &&
794 read_flavor != SRCU_READ_FLAVOR_FAST && in_nmi());
795 WARN_ON_ONCE(read_flavor & (read_flavor - 1));
796
797 sdp = raw_cpu_ptr(ssp->sda);
798 old_read_flavor = READ_ONCE(sdp->srcu_reader_flavor);
799 WARN_ON_ONCE(ssp->srcu_reader_flavor && read_flavor != ssp->srcu_reader_flavor);
800 WARN_ON_ONCE(old_read_flavor && ssp->srcu_reader_flavor &&
801 old_read_flavor != ssp->srcu_reader_flavor);
802 WARN_ON_ONCE(read_flavor == SRCU_READ_FLAVOR_FAST && !ssp->srcu_reader_flavor);
803 if (!old_read_flavor) {
804 old_read_flavor = cmpxchg(&sdp->srcu_reader_flavor, 0, read_flavor);
805 if (!old_read_flavor)
806 return;
807 }
808 WARN_ONCE(old_read_flavor != read_flavor, "CPU %d old state %d new state %d\n", sdp->cpu, old_read_flavor, read_flavor);
809 }
810 EXPORT_SYMBOL_GPL(__srcu_check_read_flavor);
811
812 /*
813 * Counts the new reader in the appropriate per-CPU element of the
814 * srcu_struct.
815 * Returns a guaranteed non-negative index that must be passed to the
816 * matching __srcu_read_unlock().
817 */
__srcu_read_lock(struct srcu_struct * ssp)818 int __srcu_read_lock(struct srcu_struct *ssp)
819 {
820 struct srcu_ctr __percpu *scp = READ_ONCE(ssp->srcu_ctrp);
821
822 this_cpu_inc(scp->srcu_locks.counter);
823 smp_mb(); /* B */ /* Avoid leaking the critical section. */
824 return __srcu_ptr_to_ctr(ssp, scp);
825 }
826 EXPORT_SYMBOL_GPL(__srcu_read_lock);
827
828 /*
829 * Removes the count for the old reader from the appropriate per-CPU
830 * element of the srcu_struct. Note that this may well be a different
831 * CPU than that which was incremented by the corresponding srcu_read_lock().
832 */
__srcu_read_unlock(struct srcu_struct * ssp,int idx)833 void __srcu_read_unlock(struct srcu_struct *ssp, int idx)
834 {
835 smp_mb(); /* C */ /* Avoid leaking the critical section. */
836 this_cpu_inc(__srcu_ctr_to_ptr(ssp, idx)->srcu_unlocks.counter);
837 }
838 EXPORT_SYMBOL_GPL(__srcu_read_unlock);
839
840 #ifdef CONFIG_NEED_SRCU_NMI_SAFE
841
842 /*
843 * Counts the new reader in the appropriate per-CPU element of the
844 * srcu_struct, but in an NMI-safe manner using RMW atomics.
845 * Returns an index that must be passed to the matching srcu_read_unlock().
846 */
__srcu_read_lock_nmisafe(struct srcu_struct * ssp)847 int __srcu_read_lock_nmisafe(struct srcu_struct *ssp)
848 {
849 struct srcu_ctr __percpu *scpp = READ_ONCE(ssp->srcu_ctrp);
850 struct srcu_ctr *scp = raw_cpu_ptr(scpp);
851
852 atomic_long_inc(&scp->srcu_locks);
853 smp_mb__after_atomic(); /* B */ /* Avoid leaking the critical section. */
854 return __srcu_ptr_to_ctr(ssp, scpp);
855 }
856 EXPORT_SYMBOL_GPL(__srcu_read_lock_nmisafe);
857
858 /*
859 * Removes the count for the old reader from the appropriate per-CPU
860 * element of the srcu_struct. Note that this may well be a different
861 * CPU than that which was incremented by the corresponding srcu_read_lock().
862 */
__srcu_read_unlock_nmisafe(struct srcu_struct * ssp,int idx)863 void __srcu_read_unlock_nmisafe(struct srcu_struct *ssp, int idx)
864 {
865 smp_mb__before_atomic(); /* C */ /* Avoid leaking the critical section. */
866 atomic_long_inc(&raw_cpu_ptr(__srcu_ctr_to_ptr(ssp, idx))->srcu_unlocks);
867 }
868 EXPORT_SYMBOL_GPL(__srcu_read_unlock_nmisafe);
869
870 #endif // CONFIG_NEED_SRCU_NMI_SAFE
871
872 /*
873 * Start an SRCU grace period.
874 */
srcu_gp_start(struct srcu_struct * ssp)875 static void srcu_gp_start(struct srcu_struct *ssp)
876 {
877 int state;
878
879 lockdep_assert_held(&ACCESS_PRIVATE(ssp->srcu_sup, lock));
880 WARN_ON_ONCE(ULONG_CMP_GE(ssp->srcu_sup->srcu_gp_seq, ssp->srcu_sup->srcu_gp_seq_needed));
881 WRITE_ONCE(ssp->srcu_sup->srcu_gp_start, jiffies);
882 WRITE_ONCE(ssp->srcu_sup->srcu_n_exp_nodelay, 0);
883 smp_mb(); /* Order prior store to ->srcu_gp_seq_needed vs. GP start. */
884 rcu_seq_start(&ssp->srcu_sup->srcu_gp_seq);
885 state = rcu_seq_state(ssp->srcu_sup->srcu_gp_seq);
886 WARN_ON_ONCE(state != SRCU_STATE_SCAN1);
887 }
888
889
srcu_delay_timer(struct timer_list * t)890 static void srcu_delay_timer(struct timer_list *t)
891 {
892 struct srcu_data *sdp = container_of(t, struct srcu_data, delay_work);
893
894 queue_work_on(sdp->cpu, rcu_gp_wq, &sdp->work);
895 }
896
srcu_queue_delayed_work_on(struct srcu_data * sdp,unsigned long delay)897 static void srcu_queue_delayed_work_on(struct srcu_data *sdp,
898 unsigned long delay)
899 {
900 if (!delay) {
901 queue_work_on(sdp->cpu, rcu_gp_wq, &sdp->work);
902 return;
903 }
904
905 timer_reduce(&sdp->delay_work, jiffies + delay);
906 }
907
908 /*
909 * Schedule callback invocation for the specified srcu_data structure,
910 * if possible, on the corresponding CPU.
911 */
srcu_schedule_cbs_sdp(struct srcu_data * sdp,unsigned long delay)912 static void srcu_schedule_cbs_sdp(struct srcu_data *sdp, unsigned long delay)
913 {
914 srcu_queue_delayed_work_on(sdp, delay);
915 }
916
917 /*
918 * Schedule callback invocation for all srcu_data structures associated
919 * with the specified srcu_node structure that have callbacks for the
920 * just-completed grace period, the one corresponding to idx. If possible,
921 * schedule this invocation on the corresponding CPUs.
922 */
srcu_schedule_cbs_snp(struct srcu_struct * ssp,struct srcu_node * snp,unsigned long mask,unsigned long delay)923 static void srcu_schedule_cbs_snp(struct srcu_struct *ssp, struct srcu_node *snp,
924 unsigned long mask, unsigned long delay)
925 {
926 int cpu;
927
928 for (cpu = snp->grplo; cpu <= snp->grphi; cpu++) {
929 if (!(mask & (1UL << (cpu - snp->grplo))))
930 continue;
931 srcu_schedule_cbs_sdp(per_cpu_ptr(ssp->sda, cpu), delay);
932 }
933 }
934
935 /*
936 * Note the end of an SRCU grace period. Initiates callback invocation
937 * and starts a new grace period if needed.
938 *
939 * The ->srcu_cb_mutex acquisition does not protect any data, but
940 * instead prevents more than one grace period from starting while we
941 * are initiating callback invocation. This allows the ->srcu_have_cbs[]
942 * array to have a finite number of elements.
943 */
srcu_gp_end(struct srcu_struct * ssp)944 static void srcu_gp_end(struct srcu_struct *ssp)
945 {
946 unsigned long cbdelay = 1;
947 bool cbs;
948 bool last_lvl;
949 int cpu;
950 unsigned long gpseq;
951 int idx;
952 unsigned long mask;
953 struct srcu_data *sdp;
954 unsigned long sgsne;
955 struct srcu_node *snp;
956 int ss_state;
957 struct srcu_usage *sup = ssp->srcu_sup;
958
959 /* Prevent more than one additional grace period. */
960 mutex_lock(&sup->srcu_cb_mutex);
961
962 /* End the current grace period. */
963 spin_lock_irq_rcu_node(sup);
964 idx = rcu_seq_state(sup->srcu_gp_seq);
965 WARN_ON_ONCE(idx != SRCU_STATE_SCAN2);
966 if (srcu_gp_is_expedited(ssp))
967 cbdelay = 0;
968
969 WRITE_ONCE(sup->srcu_last_gp_end, ktime_get_mono_fast_ns());
970 rcu_seq_end(&sup->srcu_gp_seq);
971 gpseq = rcu_seq_current(&sup->srcu_gp_seq);
972 if (ULONG_CMP_LT(sup->srcu_gp_seq_needed_exp, gpseq))
973 WRITE_ONCE(sup->srcu_gp_seq_needed_exp, gpseq);
974 spin_unlock_irq_rcu_node(sup);
975 mutex_unlock(&sup->srcu_gp_mutex);
976 /* A new grace period can start at this point. But only one. */
977
978 /* Initiate callback invocation as needed. */
979 ss_state = smp_load_acquire(&sup->srcu_size_state);
980 if (ss_state < SRCU_SIZE_WAIT_BARRIER) {
981 srcu_schedule_cbs_sdp(per_cpu_ptr(ssp->sda, get_boot_cpu_id()),
982 cbdelay);
983 } else {
984 idx = rcu_seq_ctr(gpseq) % ARRAY_SIZE(snp->srcu_have_cbs);
985 srcu_for_each_node_breadth_first(ssp, snp) {
986 spin_lock_irq_rcu_node(snp);
987 cbs = false;
988 last_lvl = snp >= sup->level[rcu_num_lvls - 1];
989 if (last_lvl)
990 cbs = ss_state < SRCU_SIZE_BIG || snp->srcu_have_cbs[idx] == gpseq;
991 snp->srcu_have_cbs[idx] = gpseq;
992 rcu_seq_set_state(&snp->srcu_have_cbs[idx], 1);
993 sgsne = snp->srcu_gp_seq_needed_exp;
994 if (srcu_invl_snp_seq(sgsne) || ULONG_CMP_LT(sgsne, gpseq))
995 WRITE_ONCE(snp->srcu_gp_seq_needed_exp, gpseq);
996 if (ss_state < SRCU_SIZE_BIG)
997 mask = ~0;
998 else
999 mask = snp->srcu_data_have_cbs[idx];
1000 snp->srcu_data_have_cbs[idx] = 0;
1001 spin_unlock_irq_rcu_node(snp);
1002 if (cbs)
1003 srcu_schedule_cbs_snp(ssp, snp, mask, cbdelay);
1004 }
1005 }
1006
1007 /* Occasionally prevent srcu_data counter wrap. */
1008 if (!(gpseq & counter_wrap_check))
1009 for_each_possible_cpu(cpu) {
1010 sdp = per_cpu_ptr(ssp->sda, cpu);
1011 spin_lock_irq_rcu_node(sdp);
1012 if (ULONG_CMP_GE(gpseq, sdp->srcu_gp_seq_needed + 100))
1013 sdp->srcu_gp_seq_needed = gpseq;
1014 if (ULONG_CMP_GE(gpseq, sdp->srcu_gp_seq_needed_exp + 100))
1015 sdp->srcu_gp_seq_needed_exp = gpseq;
1016 spin_unlock_irq_rcu_node(sdp);
1017 }
1018
1019 /* Callback initiation done, allow grace periods after next. */
1020 mutex_unlock(&sup->srcu_cb_mutex);
1021
1022 /* Start a new grace period if needed. */
1023 spin_lock_irq_rcu_node(sup);
1024 gpseq = rcu_seq_current(&sup->srcu_gp_seq);
1025 if (!rcu_seq_state(gpseq) &&
1026 ULONG_CMP_LT(gpseq, sup->srcu_gp_seq_needed)) {
1027 srcu_gp_start(ssp);
1028 spin_unlock_irq_rcu_node(sup);
1029 srcu_reschedule(ssp, 0);
1030 } else {
1031 spin_unlock_irq_rcu_node(sup);
1032 }
1033
1034 /* Transition to big if needed. */
1035 if (ss_state != SRCU_SIZE_SMALL && ss_state != SRCU_SIZE_BIG) {
1036 if (ss_state == SRCU_SIZE_ALLOC)
1037 init_srcu_struct_nodes(ssp, GFP_KERNEL);
1038 else
1039 smp_store_release(&sup->srcu_size_state, ss_state + 1);
1040 }
1041 }
1042
1043 /*
1044 * Funnel-locking scheme to scalably mediate many concurrent expedited
1045 * grace-period requests. This function is invoked for the first known
1046 * expedited request for a grace period that has already been requested,
1047 * but without expediting. To start a completely new grace period,
1048 * whether expedited or not, use srcu_funnel_gp_start() instead.
1049 */
srcu_funnel_exp_start(struct srcu_struct * ssp,struct srcu_node * snp,unsigned long s)1050 static void srcu_funnel_exp_start(struct srcu_struct *ssp, struct srcu_node *snp,
1051 unsigned long s)
1052 {
1053 unsigned long flags;
1054 unsigned long sgsne;
1055
1056 if (snp)
1057 for (; snp != NULL; snp = snp->srcu_parent) {
1058 sgsne = READ_ONCE(snp->srcu_gp_seq_needed_exp);
1059 if (WARN_ON_ONCE(rcu_seq_done(&ssp->srcu_sup->srcu_gp_seq, s)) ||
1060 (!srcu_invl_snp_seq(sgsne) && ULONG_CMP_GE(sgsne, s)))
1061 return;
1062 spin_lock_irqsave_rcu_node(snp, flags);
1063 sgsne = snp->srcu_gp_seq_needed_exp;
1064 if (!srcu_invl_snp_seq(sgsne) && ULONG_CMP_GE(sgsne, s)) {
1065 spin_unlock_irqrestore_rcu_node(snp, flags);
1066 return;
1067 }
1068 WRITE_ONCE(snp->srcu_gp_seq_needed_exp, s);
1069 spin_unlock_irqrestore_rcu_node(snp, flags);
1070 }
1071 spin_lock_irqsave_ssp_contention(ssp, &flags);
1072 if (ULONG_CMP_LT(ssp->srcu_sup->srcu_gp_seq_needed_exp, s))
1073 WRITE_ONCE(ssp->srcu_sup->srcu_gp_seq_needed_exp, s);
1074 spin_unlock_irqrestore_rcu_node(ssp->srcu_sup, flags);
1075 }
1076
1077 /*
1078 * Funnel-locking scheme to scalably mediate many concurrent grace-period
1079 * requests. The winner has to do the work of actually starting grace
1080 * period s. Losers must either ensure that their desired grace-period
1081 * number is recorded on at least their leaf srcu_node structure, or they
1082 * must take steps to invoke their own callbacks.
1083 *
1084 * Note that this function also does the work of srcu_funnel_exp_start(),
1085 * in some cases by directly invoking it.
1086 *
1087 * The srcu read lock should be hold around this function. And s is a seq snap
1088 * after holding that lock.
1089 */
srcu_funnel_gp_start(struct srcu_struct * ssp,struct srcu_data * sdp,unsigned long s,bool do_norm)1090 static void srcu_funnel_gp_start(struct srcu_struct *ssp, struct srcu_data *sdp,
1091 unsigned long s, bool do_norm)
1092 {
1093 unsigned long flags;
1094 int idx = rcu_seq_ctr(s) % ARRAY_SIZE(sdp->mynode->srcu_have_cbs);
1095 unsigned long sgsne;
1096 struct srcu_node *snp;
1097 struct srcu_node *snp_leaf;
1098 unsigned long snp_seq;
1099 struct srcu_usage *sup = ssp->srcu_sup;
1100
1101 /* Ensure that snp node tree is fully initialized before traversing it */
1102 if (smp_load_acquire(&sup->srcu_size_state) < SRCU_SIZE_WAIT_BARRIER)
1103 snp_leaf = NULL;
1104 else
1105 snp_leaf = sdp->mynode;
1106
1107 if (snp_leaf)
1108 /* Each pass through the loop does one level of the srcu_node tree. */
1109 for (snp = snp_leaf; snp != NULL; snp = snp->srcu_parent) {
1110 if (WARN_ON_ONCE(rcu_seq_done(&sup->srcu_gp_seq, s)) && snp != snp_leaf)
1111 return; /* GP already done and CBs recorded. */
1112 spin_lock_irqsave_rcu_node(snp, flags);
1113 snp_seq = snp->srcu_have_cbs[idx];
1114 if (!srcu_invl_snp_seq(snp_seq) && ULONG_CMP_GE(snp_seq, s)) {
1115 if (snp == snp_leaf && snp_seq == s)
1116 snp->srcu_data_have_cbs[idx] |= sdp->grpmask;
1117 spin_unlock_irqrestore_rcu_node(snp, flags);
1118 if (snp == snp_leaf && snp_seq != s) {
1119 srcu_schedule_cbs_sdp(sdp, do_norm ? SRCU_INTERVAL : 0);
1120 return;
1121 }
1122 if (!do_norm)
1123 srcu_funnel_exp_start(ssp, snp, s);
1124 return;
1125 }
1126 snp->srcu_have_cbs[idx] = s;
1127 if (snp == snp_leaf)
1128 snp->srcu_data_have_cbs[idx] |= sdp->grpmask;
1129 sgsne = snp->srcu_gp_seq_needed_exp;
1130 if (!do_norm && (srcu_invl_snp_seq(sgsne) || ULONG_CMP_LT(sgsne, s)))
1131 WRITE_ONCE(snp->srcu_gp_seq_needed_exp, s);
1132 spin_unlock_irqrestore_rcu_node(snp, flags);
1133 }
1134
1135 /* Top of tree, must ensure the grace period will be started. */
1136 spin_lock_irqsave_ssp_contention(ssp, &flags);
1137 if (ULONG_CMP_LT(sup->srcu_gp_seq_needed, s)) {
1138 /*
1139 * Record need for grace period s. Pair with load
1140 * acquire setting up for initialization.
1141 */
1142 smp_store_release(&sup->srcu_gp_seq_needed, s); /*^^^*/
1143 }
1144 if (!do_norm && ULONG_CMP_LT(sup->srcu_gp_seq_needed_exp, s))
1145 WRITE_ONCE(sup->srcu_gp_seq_needed_exp, s);
1146
1147 /* If grace period not already in progress, start it. */
1148 if (!WARN_ON_ONCE(rcu_seq_done(&sup->srcu_gp_seq, s)) &&
1149 rcu_seq_state(sup->srcu_gp_seq) == SRCU_STATE_IDLE) {
1150 srcu_gp_start(ssp);
1151
1152 // And how can that list_add() in the "else" clause
1153 // possibly be safe for concurrent execution? Well,
1154 // it isn't. And it does not have to be. After all, it
1155 // can only be executed during early boot when there is only
1156 // the one boot CPU running with interrupts still disabled.
1157 if (likely(srcu_init_done))
1158 queue_delayed_work(rcu_gp_wq, &sup->work,
1159 !!srcu_get_delay(ssp));
1160 else if (list_empty(&sup->work.work.entry))
1161 list_add(&sup->work.work.entry, &srcu_boot_list);
1162 }
1163 spin_unlock_irqrestore_rcu_node(sup, flags);
1164 }
1165
1166 /*
1167 * Wait until all readers counted by array index idx complete, but
1168 * loop an additional time if there is an expedited grace period pending.
1169 * The caller must ensure that ->srcu_ctrp is not changed while checking.
1170 */
try_check_zero(struct srcu_struct * ssp,int idx,int trycount)1171 static bool try_check_zero(struct srcu_struct *ssp, int idx, int trycount)
1172 {
1173 unsigned long curdelay;
1174
1175 spin_lock_irq_rcu_node(ssp->srcu_sup);
1176 curdelay = !srcu_get_delay(ssp);
1177 spin_unlock_irq_rcu_node(ssp->srcu_sup);
1178
1179 for (;;) {
1180 if (srcu_readers_active_idx_check(ssp, idx))
1181 return true;
1182 if ((--trycount + curdelay) <= 0)
1183 return false;
1184 udelay(srcu_retry_check_delay);
1185 }
1186 }
1187
1188 /*
1189 * Increment the ->srcu_ctrp counter so that future SRCU readers will
1190 * use the other rank of the ->srcu_(un)lock_count[] arrays. This allows
1191 * us to wait for pre-existing readers in a starvation-free manner.
1192 */
srcu_flip(struct srcu_struct * ssp)1193 static void srcu_flip(struct srcu_struct *ssp)
1194 {
1195 /*
1196 * Because the flip of ->srcu_ctrp is executed only if the
1197 * preceding call to srcu_readers_active_idx_check() found that
1198 * the ->srcu_ctrs[].srcu_unlocks and ->srcu_ctrs[].srcu_locks sums
1199 * matched and because that summing uses atomic_long_read(),
1200 * there is ordering due to a control dependency between that
1201 * summing and the WRITE_ONCE() in this call to srcu_flip().
1202 * This ordering ensures that if this updater saw a given reader's
1203 * increment from __srcu_read_lock(), that reader was using a value
1204 * of ->srcu_ctrp from before the previous call to srcu_flip(),
1205 * which should be quite rare. This ordering thus helps forward
1206 * progress because the grace period could otherwise be delayed
1207 * by additional calls to __srcu_read_lock() using that old (soon
1208 * to be new) value of ->srcu_ctrp.
1209 *
1210 * This sum-equality check and ordering also ensures that if
1211 * a given call to __srcu_read_lock() uses the new value of
1212 * ->srcu_ctrp, this updater's earlier scans cannot have seen
1213 * that reader's increments, which is all to the good, because
1214 * this grace period need not wait on that reader. After all,
1215 * if those earlier scans had seen that reader, there would have
1216 * been a sum mismatch and this code would not be reached.
1217 *
1218 * This means that the following smp_mb() is redundant, but
1219 * it stays until either (1) Compilers learn about this sort of
1220 * control dependency or (2) Some production workload running on
1221 * a production system is unduly delayed by this slowpath smp_mb().
1222 * Except for _lite() readers, where it is inoperative, which
1223 * means that it is a good thing that it is redundant.
1224 */
1225 smp_mb(); /* E */ /* Pairs with B and C. */
1226
1227 WRITE_ONCE(ssp->srcu_ctrp,
1228 &ssp->sda->srcu_ctrs[!(ssp->srcu_ctrp - &ssp->sda->srcu_ctrs[0])]);
1229
1230 /*
1231 * Ensure that if the updater misses an __srcu_read_unlock()
1232 * increment, that task's __srcu_read_lock() following its next
1233 * __srcu_read_lock() or __srcu_read_unlock() will see the above
1234 * counter update. Note that both this memory barrier and the
1235 * one in srcu_readers_active_idx_check() provide the guarantee
1236 * for __srcu_read_lock().
1237 *
1238 * Note that this is a performance optimization, in which we spend
1239 * an otherwise unnecessary smp_mb() in order to reduce the number
1240 * of full per-CPU-variable scans in srcu_readers_lock_idx() and
1241 * srcu_readers_unlock_idx(). But this performance optimization
1242 * is not so optimal for SRCU-fast, where we would be spending
1243 * not smp_mb(), but rather synchronize_rcu(). At the same time,
1244 * the overhead of the smp_mb() is in the noise, so there is no
1245 * point in omitting it in the SRCU-fast case. So the same code
1246 * is executed either way.
1247 */
1248 smp_mb(); /* D */ /* Pairs with C. */
1249 }
1250
1251 /*
1252 * If SRCU is likely idle, in other words, the next SRCU grace period
1253 * should be expedited, return true, otherwise return false. Except that
1254 * in the presence of _lite() readers, always return false.
1255 *
1256 * Note that it is OK for several current from-idle requests for a new
1257 * grace period from idle to specify expediting because they will all end
1258 * up requesting the same grace period anyhow. So no loss.
1259 *
1260 * Note also that if any CPU (including the current one) is still invoking
1261 * callbacks, this function will nevertheless say "idle". This is not
1262 * ideal, but the overhead of checking all CPUs' callback lists is even
1263 * less ideal, especially on large systems. Furthermore, the wakeup
1264 * can happen before the callback is fully removed, so we have no choice
1265 * but to accept this type of error.
1266 *
1267 * This function is also subject to counter-wrap errors, but let's face
1268 * it, if this function was preempted for enough time for the counters
1269 * to wrap, it really doesn't matter whether or not we expedite the grace
1270 * period. The extra overhead of a needlessly expedited grace period is
1271 * negligible when amortized over that time period, and the extra latency
1272 * of a needlessly non-expedited grace period is similarly negligible.
1273 */
srcu_should_expedite(struct srcu_struct * ssp)1274 static bool srcu_should_expedite(struct srcu_struct *ssp)
1275 {
1276 unsigned long curseq;
1277 unsigned long flags;
1278 struct srcu_data *sdp;
1279 unsigned long t;
1280 unsigned long tlast;
1281
1282 check_init_srcu_struct(ssp);
1283 /* If _lite() readers, don't do unsolicited expediting. */
1284 if (this_cpu_read(ssp->sda->srcu_reader_flavor) & SRCU_READ_FLAVOR_SLOWGP)
1285 return false;
1286 /* If the local srcu_data structure has callbacks, not idle. */
1287 sdp = raw_cpu_ptr(ssp->sda);
1288 spin_lock_irqsave_rcu_node(sdp, flags);
1289 if (rcu_segcblist_pend_cbs(&sdp->srcu_cblist)) {
1290 spin_unlock_irqrestore_rcu_node(sdp, flags);
1291 return false; /* Callbacks already present, so not idle. */
1292 }
1293 spin_unlock_irqrestore_rcu_node(sdp, flags);
1294
1295 /*
1296 * No local callbacks, so probabilistically probe global state.
1297 * Exact information would require acquiring locks, which would
1298 * kill scalability, hence the probabilistic nature of the probe.
1299 */
1300
1301 /* First, see if enough time has passed since the last GP. */
1302 t = ktime_get_mono_fast_ns();
1303 tlast = READ_ONCE(ssp->srcu_sup->srcu_last_gp_end);
1304 if (exp_holdoff == 0 ||
1305 time_in_range_open(t, tlast, tlast + exp_holdoff))
1306 return false; /* Too soon after last GP. */
1307
1308 /* Next, check for probable idleness. */
1309 curseq = rcu_seq_current(&ssp->srcu_sup->srcu_gp_seq);
1310 smp_mb(); /* Order ->srcu_gp_seq with ->srcu_gp_seq_needed. */
1311 if (ULONG_CMP_LT(curseq, READ_ONCE(ssp->srcu_sup->srcu_gp_seq_needed)))
1312 return false; /* Grace period in progress, so not idle. */
1313 smp_mb(); /* Order ->srcu_gp_seq with prior access. */
1314 if (curseq != rcu_seq_current(&ssp->srcu_sup->srcu_gp_seq))
1315 return false; /* GP # changed, so not idle. */
1316 return true; /* With reasonable probability, idle! */
1317 }
1318
1319 /*
1320 * SRCU callback function to leak a callback.
1321 */
srcu_leak_callback(struct rcu_head * rhp)1322 static void srcu_leak_callback(struct rcu_head *rhp)
1323 {
1324 }
1325
1326 /*
1327 * Start an SRCU grace period, and also queue the callback if non-NULL.
1328 */
srcu_gp_start_if_needed(struct srcu_struct * ssp,struct rcu_head * rhp,bool do_norm)1329 static unsigned long srcu_gp_start_if_needed(struct srcu_struct *ssp,
1330 struct rcu_head *rhp, bool do_norm)
1331 {
1332 unsigned long flags;
1333 int idx;
1334 bool needexp = false;
1335 bool needgp = false;
1336 unsigned long s;
1337 struct srcu_data *sdp;
1338 struct srcu_node *sdp_mynode;
1339 int ss_state;
1340
1341 check_init_srcu_struct(ssp);
1342 /*
1343 * While starting a new grace period, make sure we are in an
1344 * SRCU read-side critical section so that the grace-period
1345 * sequence number cannot wrap around in the meantime.
1346 */
1347 idx = __srcu_read_lock_nmisafe(ssp);
1348 ss_state = smp_load_acquire(&ssp->srcu_sup->srcu_size_state);
1349 if (ss_state < SRCU_SIZE_WAIT_CALL)
1350 sdp = per_cpu_ptr(ssp->sda, get_boot_cpu_id());
1351 else
1352 sdp = raw_cpu_ptr(ssp->sda);
1353 spin_lock_irqsave_sdp_contention(sdp, &flags);
1354 if (rhp)
1355 rcu_segcblist_enqueue(&sdp->srcu_cblist, rhp);
1356 /*
1357 * It's crucial to capture the snapshot 's' for acceleration before
1358 * reading the current gp_seq that is used for advancing. This is
1359 * essential because if the acceleration snapshot is taken after a
1360 * failed advancement attempt, there's a risk that a grace period may
1361 * conclude and a new one may start in the interim. If the snapshot is
1362 * captured after this sequence of events, the acceleration snapshot 's'
1363 * could be excessively advanced, leading to acceleration failure.
1364 * In such a scenario, an 'acceleration leak' can occur, where new
1365 * callbacks become indefinitely stuck in the RCU_NEXT_TAIL segment.
1366 * Also note that encountering advancing failures is a normal
1367 * occurrence when the grace period for RCU_WAIT_TAIL is in progress.
1368 *
1369 * To see this, consider the following events which occur if
1370 * rcu_seq_snap() were to be called after advance:
1371 *
1372 * 1) The RCU_WAIT_TAIL segment has callbacks (gp_num = X + 4) and the
1373 * RCU_NEXT_READY_TAIL also has callbacks (gp_num = X + 8).
1374 *
1375 * 2) The grace period for RCU_WAIT_TAIL is seen as started but not
1376 * completed so rcu_seq_current() returns X + SRCU_STATE_SCAN1.
1377 *
1378 * 3) This value is passed to rcu_segcblist_advance() which can't move
1379 * any segment forward and fails.
1380 *
1381 * 4) srcu_gp_start_if_needed() still proceeds with callback acceleration.
1382 * But then the call to rcu_seq_snap() observes the grace period for the
1383 * RCU_WAIT_TAIL segment as completed and the subsequent one for the
1384 * RCU_NEXT_READY_TAIL segment as started (ie: X + 4 + SRCU_STATE_SCAN1)
1385 * so it returns a snapshot of the next grace period, which is X + 12.
1386 *
1387 * 5) The value of X + 12 is passed to rcu_segcblist_accelerate() but the
1388 * freshly enqueued callback in RCU_NEXT_TAIL can't move to
1389 * RCU_NEXT_READY_TAIL which already has callbacks for a previous grace
1390 * period (gp_num = X + 8). So acceleration fails.
1391 */
1392 s = rcu_seq_snap(&ssp->srcu_sup->srcu_gp_seq);
1393 if (rhp) {
1394 rcu_segcblist_advance(&sdp->srcu_cblist,
1395 rcu_seq_current(&ssp->srcu_sup->srcu_gp_seq));
1396 /*
1397 * Acceleration can never fail because the base current gp_seq
1398 * used for acceleration is <= the value of gp_seq used for
1399 * advancing. This means that RCU_NEXT_TAIL segment will
1400 * always be able to be emptied by the acceleration into the
1401 * RCU_NEXT_READY_TAIL or RCU_WAIT_TAIL segments.
1402 */
1403 WARN_ON_ONCE(!rcu_segcblist_accelerate(&sdp->srcu_cblist, s));
1404 }
1405 if (ULONG_CMP_LT(sdp->srcu_gp_seq_needed, s)) {
1406 sdp->srcu_gp_seq_needed = s;
1407 needgp = true;
1408 }
1409 if (!do_norm && ULONG_CMP_LT(sdp->srcu_gp_seq_needed_exp, s)) {
1410 sdp->srcu_gp_seq_needed_exp = s;
1411 needexp = true;
1412 }
1413 spin_unlock_irqrestore_rcu_node(sdp, flags);
1414
1415 /* Ensure that snp node tree is fully initialized before traversing it */
1416 if (ss_state < SRCU_SIZE_WAIT_BARRIER)
1417 sdp_mynode = NULL;
1418 else
1419 sdp_mynode = sdp->mynode;
1420
1421 if (needgp)
1422 srcu_funnel_gp_start(ssp, sdp, s, do_norm);
1423 else if (needexp)
1424 srcu_funnel_exp_start(ssp, sdp_mynode, s);
1425 __srcu_read_unlock_nmisafe(ssp, idx);
1426 return s;
1427 }
1428
1429 /*
1430 * Enqueue an SRCU callback on the srcu_data structure associated with
1431 * the current CPU and the specified srcu_struct structure, initiating
1432 * grace-period processing if it is not already running.
1433 *
1434 * Note that all CPUs must agree that the grace period extended beyond
1435 * all pre-existing SRCU read-side critical section. On systems with
1436 * more than one CPU, this means that when "func()" is invoked, each CPU
1437 * is guaranteed to have executed a full memory barrier since the end of
1438 * its last corresponding SRCU read-side critical section whose beginning
1439 * preceded the call to call_srcu(). It also means that each CPU executing
1440 * an SRCU read-side critical section that continues beyond the start of
1441 * "func()" must have executed a memory barrier after the call_srcu()
1442 * but before the beginning of that SRCU read-side critical section.
1443 * Note that these guarantees include CPUs that are offline, idle, or
1444 * executing in user mode, as well as CPUs that are executing in the kernel.
1445 *
1446 * Furthermore, if CPU A invoked call_srcu() and CPU B invoked the
1447 * resulting SRCU callback function "func()", then both CPU A and CPU
1448 * B are guaranteed to execute a full memory barrier during the time
1449 * interval between the call to call_srcu() and the invocation of "func()".
1450 * This guarantee applies even if CPU A and CPU B are the same CPU (but
1451 * again only if the system has more than one CPU).
1452 *
1453 * Of course, these guarantees apply only for invocations of call_srcu(),
1454 * srcu_read_lock(), and srcu_read_unlock() that are all passed the same
1455 * srcu_struct structure.
1456 */
__call_srcu(struct srcu_struct * ssp,struct rcu_head * rhp,rcu_callback_t func,bool do_norm)1457 static void __call_srcu(struct srcu_struct *ssp, struct rcu_head *rhp,
1458 rcu_callback_t func, bool do_norm)
1459 {
1460 if (debug_rcu_head_queue(rhp)) {
1461 /* Probable double call_srcu(), so leak the callback. */
1462 WRITE_ONCE(rhp->func, srcu_leak_callback);
1463 WARN_ONCE(1, "call_srcu(): Leaked duplicate callback\n");
1464 return;
1465 }
1466 rhp->func = func;
1467 (void)srcu_gp_start_if_needed(ssp, rhp, do_norm);
1468 }
1469
1470 /**
1471 * call_srcu() - Queue a callback for invocation after an SRCU grace period
1472 * @ssp: srcu_struct in queue the callback
1473 * @rhp: structure to be used for queueing the SRCU callback.
1474 * @func: function to be invoked after the SRCU grace period
1475 *
1476 * The callback function will be invoked some time after a full SRCU
1477 * grace period elapses, in other words after all pre-existing SRCU
1478 * read-side critical sections have completed. However, the callback
1479 * function might well execute concurrently with other SRCU read-side
1480 * critical sections that started after call_srcu() was invoked. SRCU
1481 * read-side critical sections are delimited by srcu_read_lock() and
1482 * srcu_read_unlock(), and may be nested.
1483 *
1484 * The callback will be invoked from process context, but with bh
1485 * disabled. The callback function must therefore be fast and must
1486 * not block.
1487 *
1488 * See the description of call_rcu() for more detailed information on
1489 * memory ordering guarantees.
1490 */
call_srcu(struct srcu_struct * ssp,struct rcu_head * rhp,rcu_callback_t func)1491 void call_srcu(struct srcu_struct *ssp, struct rcu_head *rhp,
1492 rcu_callback_t func)
1493 {
1494 __call_srcu(ssp, rhp, func, true);
1495 }
1496 EXPORT_SYMBOL_GPL(call_srcu);
1497
1498 /*
1499 * Helper function for synchronize_srcu() and synchronize_srcu_expedited().
1500 */
__synchronize_srcu(struct srcu_struct * ssp,bool do_norm)1501 static void __synchronize_srcu(struct srcu_struct *ssp, bool do_norm)
1502 {
1503 struct rcu_synchronize rcu;
1504
1505 srcu_lock_sync(&ssp->dep_map);
1506
1507 RCU_LOCKDEP_WARN(lockdep_is_held(ssp) ||
1508 lock_is_held(&rcu_bh_lock_map) ||
1509 lock_is_held(&rcu_lock_map) ||
1510 lock_is_held(&rcu_sched_lock_map),
1511 "Illegal synchronize_srcu() in same-type SRCU (or in RCU) read-side critical section");
1512
1513 if (rcu_scheduler_active == RCU_SCHEDULER_INACTIVE)
1514 return;
1515 might_sleep();
1516 check_init_srcu_struct(ssp);
1517 init_completion(&rcu.completion);
1518 init_rcu_head_on_stack(&rcu.head);
1519 __call_srcu(ssp, &rcu.head, wakeme_after_rcu, do_norm);
1520 wait_for_completion(&rcu.completion);
1521 destroy_rcu_head_on_stack(&rcu.head);
1522
1523 /*
1524 * Make sure that later code is ordered after the SRCU grace
1525 * period. This pairs with the spin_lock_irq_rcu_node()
1526 * in srcu_invoke_callbacks(). Unlike Tree RCU, this is needed
1527 * because the current CPU might have been totally uninvolved with
1528 * (and thus unordered against) that grace period.
1529 */
1530 smp_mb();
1531 }
1532
1533 /**
1534 * synchronize_srcu_expedited - Brute-force SRCU grace period
1535 * @ssp: srcu_struct with which to synchronize.
1536 *
1537 * Wait for an SRCU grace period to elapse, but be more aggressive about
1538 * spinning rather than blocking when waiting.
1539 *
1540 * Note that synchronize_srcu_expedited() has the same deadlock and
1541 * memory-ordering properties as does synchronize_srcu().
1542 */
synchronize_srcu_expedited(struct srcu_struct * ssp)1543 void synchronize_srcu_expedited(struct srcu_struct *ssp)
1544 {
1545 __synchronize_srcu(ssp, rcu_gp_is_normal());
1546 }
1547 EXPORT_SYMBOL_GPL(synchronize_srcu_expedited);
1548
1549 /**
1550 * synchronize_srcu - wait for prior SRCU read-side critical-section completion
1551 * @ssp: srcu_struct with which to synchronize.
1552 *
1553 * Wait for the count to drain to zero of both indexes. To avoid the
1554 * possible starvation of synchronize_srcu(), it waits for the count of
1555 * the index=!(ssp->srcu_ctrp - &ssp->sda->srcu_ctrs[0]) to drain to zero
1556 * at first, and then flip the ->srcu_ctrp and wait for the count of the
1557 * other index.
1558 *
1559 * Can block; must be called from process context.
1560 *
1561 * Note that it is illegal to call synchronize_srcu() from the corresponding
1562 * SRCU read-side critical section; doing so will result in deadlock.
1563 * However, it is perfectly legal to call synchronize_srcu() on one
1564 * srcu_struct from some other srcu_struct's read-side critical section,
1565 * as long as the resulting graph of srcu_structs is acyclic.
1566 *
1567 * There are memory-ordering constraints implied by synchronize_srcu().
1568 * On systems with more than one CPU, when synchronize_srcu() returns,
1569 * each CPU is guaranteed to have executed a full memory barrier since
1570 * the end of its last corresponding SRCU read-side critical section
1571 * whose beginning preceded the call to synchronize_srcu(). In addition,
1572 * each CPU having an SRCU read-side critical section that extends beyond
1573 * the return from synchronize_srcu() is guaranteed to have executed a
1574 * full memory barrier after the beginning of synchronize_srcu() and before
1575 * the beginning of that SRCU read-side critical section. Note that these
1576 * guarantees include CPUs that are offline, idle, or executing in user mode,
1577 * as well as CPUs that are executing in the kernel.
1578 *
1579 * Furthermore, if CPU A invoked synchronize_srcu(), which returned
1580 * to its caller on CPU B, then both CPU A and CPU B are guaranteed
1581 * to have executed a full memory barrier during the execution of
1582 * synchronize_srcu(). This guarantee applies even if CPU A and CPU B
1583 * are the same CPU, but again only if the system has more than one CPU.
1584 *
1585 * Of course, these memory-ordering guarantees apply only when
1586 * synchronize_srcu(), srcu_read_lock(), and srcu_read_unlock() are
1587 * passed the same srcu_struct structure.
1588 *
1589 * Implementation of these memory-ordering guarantees is similar to
1590 * that of synchronize_rcu().
1591 *
1592 * If SRCU is likely idle as determined by srcu_should_expedite(),
1593 * expedite the first request. This semantic was provided by Classic SRCU,
1594 * and is relied upon by its users, so TREE SRCU must also provide it.
1595 * Note that detecting idleness is heuristic and subject to both false
1596 * positives and negatives.
1597 */
synchronize_srcu(struct srcu_struct * ssp)1598 void synchronize_srcu(struct srcu_struct *ssp)
1599 {
1600 if (srcu_should_expedite(ssp) || rcu_gp_is_expedited())
1601 synchronize_srcu_expedited(ssp);
1602 else
1603 __synchronize_srcu(ssp, true);
1604 }
1605 EXPORT_SYMBOL_GPL(synchronize_srcu);
1606
1607 /**
1608 * get_state_synchronize_srcu - Provide an end-of-grace-period cookie
1609 * @ssp: srcu_struct to provide cookie for.
1610 *
1611 * This function returns a cookie that can be passed to
1612 * poll_state_synchronize_srcu(), which will return true if a full grace
1613 * period has elapsed in the meantime. It is the caller's responsibility
1614 * to make sure that grace period happens, for example, by invoking
1615 * call_srcu() after return from get_state_synchronize_srcu().
1616 */
get_state_synchronize_srcu(struct srcu_struct * ssp)1617 unsigned long get_state_synchronize_srcu(struct srcu_struct *ssp)
1618 {
1619 // Any prior manipulation of SRCU-protected data must happen
1620 // before the load from ->srcu_gp_seq.
1621 smp_mb();
1622 return rcu_seq_snap(&ssp->srcu_sup->srcu_gp_seq);
1623 }
1624 EXPORT_SYMBOL_GPL(get_state_synchronize_srcu);
1625
1626 /**
1627 * start_poll_synchronize_srcu - Provide cookie and start grace period
1628 * @ssp: srcu_struct to provide cookie for.
1629 *
1630 * This function returns a cookie that can be passed to
1631 * poll_state_synchronize_srcu(), which will return true if a full grace
1632 * period has elapsed in the meantime. Unlike get_state_synchronize_srcu(),
1633 * this function also ensures that any needed SRCU grace period will be
1634 * started. This convenience does come at a cost in terms of CPU overhead.
1635 */
start_poll_synchronize_srcu(struct srcu_struct * ssp)1636 unsigned long start_poll_synchronize_srcu(struct srcu_struct *ssp)
1637 {
1638 return srcu_gp_start_if_needed(ssp, NULL, true);
1639 }
1640 EXPORT_SYMBOL_GPL(start_poll_synchronize_srcu);
1641
1642 /**
1643 * poll_state_synchronize_srcu - Has cookie's grace period ended?
1644 * @ssp: srcu_struct to provide cookie for.
1645 * @cookie: Return value from get_state_synchronize_srcu() or start_poll_synchronize_srcu().
1646 *
1647 * This function takes the cookie that was returned from either
1648 * get_state_synchronize_srcu() or start_poll_synchronize_srcu(), and
1649 * returns @true if an SRCU grace period elapsed since the time that the
1650 * cookie was created.
1651 *
1652 * Because cookies are finite in size, wrapping/overflow is possible.
1653 * This is more pronounced on 32-bit systems where cookies are 32 bits,
1654 * where in theory wrapping could happen in about 14 hours assuming
1655 * 25-microsecond expedited SRCU grace periods. However, a more likely
1656 * overflow lower bound is on the order of 24 days in the case of
1657 * one-millisecond SRCU grace periods. Of course, wrapping in a 64-bit
1658 * system requires geologic timespans, as in more than seven million years
1659 * even for expedited SRCU grace periods.
1660 *
1661 * Wrapping/overflow is much more of an issue for CONFIG_SMP=n systems
1662 * that also have CONFIG_PREEMPTION=n, which selects Tiny SRCU. This uses
1663 * a 16-bit cookie, which rcutorture routinely wraps in a matter of a
1664 * few minutes. If this proves to be a problem, this counter will be
1665 * expanded to the same size as for Tree SRCU.
1666 */
poll_state_synchronize_srcu(struct srcu_struct * ssp,unsigned long cookie)1667 bool poll_state_synchronize_srcu(struct srcu_struct *ssp, unsigned long cookie)
1668 {
1669 if (cookie != SRCU_GET_STATE_COMPLETED &&
1670 !rcu_seq_done_exact(&ssp->srcu_sup->srcu_gp_seq, cookie))
1671 return false;
1672 // Ensure that the end of the SRCU grace period happens before
1673 // any subsequent code that the caller might execute.
1674 smp_mb(); // ^^^
1675 return true;
1676 }
1677 EXPORT_SYMBOL_GPL(poll_state_synchronize_srcu);
1678
1679 /*
1680 * Callback function for srcu_barrier() use.
1681 */
srcu_barrier_cb(struct rcu_head * rhp)1682 static void srcu_barrier_cb(struct rcu_head *rhp)
1683 {
1684 struct srcu_data *sdp;
1685 struct srcu_struct *ssp;
1686
1687 rhp->next = rhp; // Mark the callback as having been invoked.
1688 sdp = container_of(rhp, struct srcu_data, srcu_barrier_head);
1689 ssp = sdp->ssp;
1690 if (atomic_dec_and_test(&ssp->srcu_sup->srcu_barrier_cpu_cnt))
1691 complete(&ssp->srcu_sup->srcu_barrier_completion);
1692 }
1693
1694 /*
1695 * Enqueue an srcu_barrier() callback on the specified srcu_data
1696 * structure's ->cblist. but only if that ->cblist already has at least one
1697 * callback enqueued. Note that if a CPU already has callbacks enqueue,
1698 * it must have already registered the need for a future grace period,
1699 * so all we need do is enqueue a callback that will use the same grace
1700 * period as the last callback already in the queue.
1701 */
srcu_barrier_one_cpu(struct srcu_struct * ssp,struct srcu_data * sdp)1702 static void srcu_barrier_one_cpu(struct srcu_struct *ssp, struct srcu_data *sdp)
1703 {
1704 spin_lock_irq_rcu_node(sdp);
1705 atomic_inc(&ssp->srcu_sup->srcu_barrier_cpu_cnt);
1706 sdp->srcu_barrier_head.func = srcu_barrier_cb;
1707 debug_rcu_head_queue(&sdp->srcu_barrier_head);
1708 if (!rcu_segcblist_entrain(&sdp->srcu_cblist,
1709 &sdp->srcu_barrier_head)) {
1710 debug_rcu_head_unqueue(&sdp->srcu_barrier_head);
1711 atomic_dec(&ssp->srcu_sup->srcu_barrier_cpu_cnt);
1712 }
1713 spin_unlock_irq_rcu_node(sdp);
1714 }
1715
1716 /**
1717 * srcu_barrier - Wait until all in-flight call_srcu() callbacks complete.
1718 * @ssp: srcu_struct on which to wait for in-flight callbacks.
1719 */
srcu_barrier(struct srcu_struct * ssp)1720 void srcu_barrier(struct srcu_struct *ssp)
1721 {
1722 int cpu;
1723 int idx;
1724 unsigned long s = rcu_seq_snap(&ssp->srcu_sup->srcu_barrier_seq);
1725
1726 check_init_srcu_struct(ssp);
1727 mutex_lock(&ssp->srcu_sup->srcu_barrier_mutex);
1728 if (rcu_seq_done(&ssp->srcu_sup->srcu_barrier_seq, s)) {
1729 smp_mb(); /* Force ordering following return. */
1730 mutex_unlock(&ssp->srcu_sup->srcu_barrier_mutex);
1731 return; /* Someone else did our work for us. */
1732 }
1733 rcu_seq_start(&ssp->srcu_sup->srcu_barrier_seq);
1734 init_completion(&ssp->srcu_sup->srcu_barrier_completion);
1735
1736 /* Initial count prevents reaching zero until all CBs are posted. */
1737 atomic_set(&ssp->srcu_sup->srcu_barrier_cpu_cnt, 1);
1738
1739 idx = __srcu_read_lock_nmisafe(ssp);
1740 if (smp_load_acquire(&ssp->srcu_sup->srcu_size_state) < SRCU_SIZE_WAIT_BARRIER)
1741 srcu_barrier_one_cpu(ssp, per_cpu_ptr(ssp->sda, get_boot_cpu_id()));
1742 else
1743 for_each_possible_cpu(cpu)
1744 srcu_barrier_one_cpu(ssp, per_cpu_ptr(ssp->sda, cpu));
1745 __srcu_read_unlock_nmisafe(ssp, idx);
1746
1747 /* Remove the initial count, at which point reaching zero can happen. */
1748 if (atomic_dec_and_test(&ssp->srcu_sup->srcu_barrier_cpu_cnt))
1749 complete(&ssp->srcu_sup->srcu_barrier_completion);
1750 wait_for_completion(&ssp->srcu_sup->srcu_barrier_completion);
1751
1752 rcu_seq_end(&ssp->srcu_sup->srcu_barrier_seq);
1753 mutex_unlock(&ssp->srcu_sup->srcu_barrier_mutex);
1754 }
1755 EXPORT_SYMBOL_GPL(srcu_barrier);
1756
1757 /* Callback for srcu_expedite_current() usage. */
srcu_expedite_current_cb(struct rcu_head * rhp)1758 static void srcu_expedite_current_cb(struct rcu_head *rhp)
1759 {
1760 unsigned long flags;
1761 bool needcb = false;
1762 struct srcu_data *sdp = container_of(rhp, struct srcu_data, srcu_ec_head);
1763
1764 spin_lock_irqsave_sdp_contention(sdp, &flags);
1765 if (sdp->srcu_ec_state == SRCU_EC_IDLE) {
1766 WARN_ON_ONCE(1);
1767 } else if (sdp->srcu_ec_state == SRCU_EC_PENDING) {
1768 sdp->srcu_ec_state = SRCU_EC_IDLE;
1769 } else {
1770 WARN_ON_ONCE(sdp->srcu_ec_state != SRCU_EC_REPOST);
1771 sdp->srcu_ec_state = SRCU_EC_PENDING;
1772 needcb = true;
1773 }
1774 spin_unlock_irqrestore_rcu_node(sdp, flags);
1775 // If needed, requeue ourselves as an expedited SRCU callback.
1776 if (needcb)
1777 __call_srcu(sdp->ssp, &sdp->srcu_ec_head, srcu_expedite_current_cb, false);
1778 }
1779
1780 /**
1781 * srcu_expedite_current - Expedite the current SRCU grace period
1782 * @ssp: srcu_struct to expedite.
1783 *
1784 * Cause the current SRCU grace period to become expedited. The grace
1785 * period following the current one might also be expedited. If there is
1786 * no current grace period, one might be created. If the current grace
1787 * period is currently sleeping, that sleep will complete before expediting
1788 * will take effect.
1789 */
srcu_expedite_current(struct srcu_struct * ssp)1790 void srcu_expedite_current(struct srcu_struct *ssp)
1791 {
1792 unsigned long flags;
1793 bool needcb = false;
1794 struct srcu_data *sdp;
1795
1796 migrate_disable();
1797 sdp = this_cpu_ptr(ssp->sda);
1798 spin_lock_irqsave_sdp_contention(sdp, &flags);
1799 if (sdp->srcu_ec_state == SRCU_EC_IDLE) {
1800 sdp->srcu_ec_state = SRCU_EC_PENDING;
1801 needcb = true;
1802 } else if (sdp->srcu_ec_state == SRCU_EC_PENDING) {
1803 sdp->srcu_ec_state = SRCU_EC_REPOST;
1804 } else {
1805 WARN_ON_ONCE(sdp->srcu_ec_state != SRCU_EC_REPOST);
1806 }
1807 spin_unlock_irqrestore_rcu_node(sdp, flags);
1808 // If needed, queue an expedited SRCU callback.
1809 if (needcb)
1810 __call_srcu(ssp, &sdp->srcu_ec_head, srcu_expedite_current_cb, false);
1811 migrate_enable();
1812 }
1813 EXPORT_SYMBOL_GPL(srcu_expedite_current);
1814
1815 /**
1816 * srcu_batches_completed - return batches completed.
1817 * @ssp: srcu_struct on which to report batch completion.
1818 *
1819 * Report the number of batches, correlated with, but not necessarily
1820 * precisely the same as, the number of grace periods that have elapsed.
1821 */
srcu_batches_completed(struct srcu_struct * ssp)1822 unsigned long srcu_batches_completed(struct srcu_struct *ssp)
1823 {
1824 return READ_ONCE(ssp->srcu_sup->srcu_gp_seq);
1825 }
1826 EXPORT_SYMBOL_GPL(srcu_batches_completed);
1827
1828 /*
1829 * Core SRCU state machine. Push state bits of ->srcu_gp_seq
1830 * to SRCU_STATE_SCAN2, and invoke srcu_gp_end() when scan has
1831 * completed in that state.
1832 */
srcu_advance_state(struct srcu_struct * ssp)1833 static void srcu_advance_state(struct srcu_struct *ssp)
1834 {
1835 int idx;
1836
1837 mutex_lock(&ssp->srcu_sup->srcu_gp_mutex);
1838
1839 /*
1840 * Because readers might be delayed for an extended period after
1841 * fetching ->srcu_ctrp for their index, at any point in time there
1842 * might well be readers using both idx=0 and idx=1. We therefore
1843 * need to wait for readers to clear from both index values before
1844 * invoking a callback.
1845 *
1846 * The load-acquire ensures that we see the accesses performed
1847 * by the prior grace period.
1848 */
1849 idx = rcu_seq_state(smp_load_acquire(&ssp->srcu_sup->srcu_gp_seq)); /* ^^^ */
1850 if (idx == SRCU_STATE_IDLE) {
1851 spin_lock_irq_rcu_node(ssp->srcu_sup);
1852 if (ULONG_CMP_GE(ssp->srcu_sup->srcu_gp_seq, ssp->srcu_sup->srcu_gp_seq_needed)) {
1853 WARN_ON_ONCE(rcu_seq_state(ssp->srcu_sup->srcu_gp_seq));
1854 spin_unlock_irq_rcu_node(ssp->srcu_sup);
1855 mutex_unlock(&ssp->srcu_sup->srcu_gp_mutex);
1856 return;
1857 }
1858 idx = rcu_seq_state(READ_ONCE(ssp->srcu_sup->srcu_gp_seq));
1859 if (idx == SRCU_STATE_IDLE)
1860 srcu_gp_start(ssp);
1861 spin_unlock_irq_rcu_node(ssp->srcu_sup);
1862 if (idx != SRCU_STATE_IDLE) {
1863 mutex_unlock(&ssp->srcu_sup->srcu_gp_mutex);
1864 return; /* Someone else started the grace period. */
1865 }
1866 }
1867
1868 if (rcu_seq_state(READ_ONCE(ssp->srcu_sup->srcu_gp_seq)) == SRCU_STATE_SCAN1) {
1869 idx = !(ssp->srcu_ctrp - &ssp->sda->srcu_ctrs[0]);
1870 if (!try_check_zero(ssp, idx, 1)) {
1871 mutex_unlock(&ssp->srcu_sup->srcu_gp_mutex);
1872 return; /* readers present, retry later. */
1873 }
1874 srcu_flip(ssp);
1875 spin_lock_irq_rcu_node(ssp->srcu_sup);
1876 rcu_seq_set_state(&ssp->srcu_sup->srcu_gp_seq, SRCU_STATE_SCAN2);
1877 ssp->srcu_sup->srcu_n_exp_nodelay = 0;
1878 spin_unlock_irq_rcu_node(ssp->srcu_sup);
1879 }
1880
1881 if (rcu_seq_state(READ_ONCE(ssp->srcu_sup->srcu_gp_seq)) == SRCU_STATE_SCAN2) {
1882
1883 /*
1884 * SRCU read-side critical sections are normally short,
1885 * so check at least twice in quick succession after a flip.
1886 */
1887 idx = !(ssp->srcu_ctrp - &ssp->sda->srcu_ctrs[0]);
1888 if (!try_check_zero(ssp, idx, 2)) {
1889 mutex_unlock(&ssp->srcu_sup->srcu_gp_mutex);
1890 return; /* readers present, retry later. */
1891 }
1892 ssp->srcu_sup->srcu_n_exp_nodelay = 0;
1893 srcu_gp_end(ssp); /* Releases ->srcu_gp_mutex. */
1894 }
1895 }
1896
1897 /*
1898 * Invoke a limited number of SRCU callbacks that have passed through
1899 * their grace period. If there are more to do, SRCU will reschedule
1900 * the workqueue. Note that needed memory barriers have been executed
1901 * in this task's context by srcu_readers_active_idx_check().
1902 */
srcu_invoke_callbacks(struct work_struct * work)1903 static void srcu_invoke_callbacks(struct work_struct *work)
1904 {
1905 long len;
1906 bool more;
1907 struct rcu_cblist ready_cbs;
1908 struct rcu_head *rhp;
1909 struct srcu_data *sdp;
1910 struct srcu_struct *ssp;
1911
1912 sdp = container_of(work, struct srcu_data, work);
1913
1914 ssp = sdp->ssp;
1915 rcu_cblist_init(&ready_cbs);
1916 spin_lock_irq_rcu_node(sdp);
1917 WARN_ON_ONCE(!rcu_segcblist_segempty(&sdp->srcu_cblist, RCU_NEXT_TAIL));
1918 rcu_segcblist_advance(&sdp->srcu_cblist,
1919 rcu_seq_current(&ssp->srcu_sup->srcu_gp_seq));
1920 /*
1921 * Although this function is theoretically re-entrant, concurrent
1922 * callbacks invocation is disallowed to avoid executing an SRCU barrier
1923 * too early.
1924 */
1925 if (sdp->srcu_cblist_invoking ||
1926 !rcu_segcblist_ready_cbs(&sdp->srcu_cblist)) {
1927 spin_unlock_irq_rcu_node(sdp);
1928 return; /* Someone else on the job or nothing to do. */
1929 }
1930
1931 /* We are on the job! Extract and invoke ready callbacks. */
1932 sdp->srcu_cblist_invoking = true;
1933 rcu_segcblist_extract_done_cbs(&sdp->srcu_cblist, &ready_cbs);
1934 len = ready_cbs.len;
1935 spin_unlock_irq_rcu_node(sdp);
1936 rhp = rcu_cblist_dequeue(&ready_cbs);
1937 for (; rhp != NULL; rhp = rcu_cblist_dequeue(&ready_cbs)) {
1938 debug_rcu_head_unqueue(rhp);
1939 debug_rcu_head_callback(rhp);
1940 local_bh_disable();
1941 rhp->func(rhp);
1942 local_bh_enable();
1943 }
1944 WARN_ON_ONCE(ready_cbs.len);
1945
1946 /*
1947 * Update counts, accelerate new callbacks, and if needed,
1948 * schedule another round of callback invocation.
1949 */
1950 spin_lock_irq_rcu_node(sdp);
1951 rcu_segcblist_add_len(&sdp->srcu_cblist, -len);
1952 sdp->srcu_cblist_invoking = false;
1953 more = rcu_segcblist_ready_cbs(&sdp->srcu_cblist);
1954 spin_unlock_irq_rcu_node(sdp);
1955 /* An SRCU barrier or callbacks from previous nesting work pending */
1956 if (more)
1957 srcu_schedule_cbs_sdp(sdp, 0);
1958 }
1959
1960 /*
1961 * Finished one round of SRCU grace period. Start another if there are
1962 * more SRCU callbacks queued, otherwise put SRCU into not-running state.
1963 */
srcu_reschedule(struct srcu_struct * ssp,unsigned long delay)1964 static void srcu_reschedule(struct srcu_struct *ssp, unsigned long delay)
1965 {
1966 bool pushgp = true;
1967
1968 spin_lock_irq_rcu_node(ssp->srcu_sup);
1969 if (ULONG_CMP_GE(ssp->srcu_sup->srcu_gp_seq, ssp->srcu_sup->srcu_gp_seq_needed)) {
1970 if (!WARN_ON_ONCE(rcu_seq_state(ssp->srcu_sup->srcu_gp_seq))) {
1971 /* All requests fulfilled, time to go idle. */
1972 pushgp = false;
1973 }
1974 } else if (!rcu_seq_state(ssp->srcu_sup->srcu_gp_seq)) {
1975 /* Outstanding request and no GP. Start one. */
1976 srcu_gp_start(ssp);
1977 }
1978 spin_unlock_irq_rcu_node(ssp->srcu_sup);
1979
1980 if (pushgp)
1981 queue_delayed_work(rcu_gp_wq, &ssp->srcu_sup->work, delay);
1982 }
1983
1984 /*
1985 * This is the work-queue function that handles SRCU grace periods.
1986 */
process_srcu(struct work_struct * work)1987 static void process_srcu(struct work_struct *work)
1988 {
1989 unsigned long curdelay;
1990 unsigned long j;
1991 struct srcu_struct *ssp;
1992 struct srcu_usage *sup;
1993
1994 sup = container_of(work, struct srcu_usage, work.work);
1995 ssp = sup->srcu_ssp;
1996
1997 srcu_advance_state(ssp);
1998 spin_lock_irq_rcu_node(ssp->srcu_sup);
1999 curdelay = srcu_get_delay(ssp);
2000 spin_unlock_irq_rcu_node(ssp->srcu_sup);
2001 if (curdelay) {
2002 WRITE_ONCE(sup->reschedule_count, 0);
2003 } else {
2004 j = jiffies;
2005 if (READ_ONCE(sup->reschedule_jiffies) == j) {
2006 ASSERT_EXCLUSIVE_WRITER(sup->reschedule_count);
2007 WRITE_ONCE(sup->reschedule_count, READ_ONCE(sup->reschedule_count) + 1);
2008 if (READ_ONCE(sup->reschedule_count) > srcu_max_nodelay)
2009 curdelay = 1;
2010 } else {
2011 WRITE_ONCE(sup->reschedule_count, 1);
2012 WRITE_ONCE(sup->reschedule_jiffies, j);
2013 }
2014 }
2015 srcu_reschedule(ssp, curdelay);
2016 }
2017
srcutorture_get_gp_data(struct srcu_struct * ssp,int * flags,unsigned long * gp_seq)2018 void srcutorture_get_gp_data(struct srcu_struct *ssp, int *flags,
2019 unsigned long *gp_seq)
2020 {
2021 *flags = 0;
2022 *gp_seq = rcu_seq_current(&ssp->srcu_sup->srcu_gp_seq);
2023 }
2024 EXPORT_SYMBOL_GPL(srcutorture_get_gp_data);
2025
2026 static const char * const srcu_size_state_name[] = {
2027 "SRCU_SIZE_SMALL",
2028 "SRCU_SIZE_ALLOC",
2029 "SRCU_SIZE_WAIT_BARRIER",
2030 "SRCU_SIZE_WAIT_CALL",
2031 "SRCU_SIZE_WAIT_CBS1",
2032 "SRCU_SIZE_WAIT_CBS2",
2033 "SRCU_SIZE_WAIT_CBS3",
2034 "SRCU_SIZE_WAIT_CBS4",
2035 "SRCU_SIZE_BIG",
2036 "SRCU_SIZE_???",
2037 };
2038
srcu_torture_stats_print(struct srcu_struct * ssp,char * tt,char * tf)2039 void srcu_torture_stats_print(struct srcu_struct *ssp, char *tt, char *tf)
2040 {
2041 int cpu;
2042 int idx;
2043 unsigned long s0 = 0, s1 = 0;
2044 int ss_state = READ_ONCE(ssp->srcu_sup->srcu_size_state);
2045 int ss_state_idx = ss_state;
2046
2047 idx = ssp->srcu_ctrp - &ssp->sda->srcu_ctrs[0];
2048 if (ss_state < 0 || ss_state >= ARRAY_SIZE(srcu_size_state_name))
2049 ss_state_idx = ARRAY_SIZE(srcu_size_state_name) - 1;
2050 pr_alert("%s%s Tree SRCU g%ld state %d (%s)",
2051 tt, tf, rcu_seq_current(&ssp->srcu_sup->srcu_gp_seq), ss_state,
2052 srcu_size_state_name[ss_state_idx]);
2053 if (!ssp->sda) {
2054 // Called after cleanup_srcu_struct(), perhaps.
2055 pr_cont(" No per-CPU srcu_data structures (->sda == NULL).\n");
2056 } else {
2057 pr_cont(" per-CPU(idx=%d):", idx);
2058 for_each_possible_cpu(cpu) {
2059 unsigned long l0, l1;
2060 unsigned long u0, u1;
2061 long c0, c1;
2062 struct srcu_data *sdp;
2063
2064 sdp = per_cpu_ptr(ssp->sda, cpu);
2065 u0 = data_race(atomic_long_read(&sdp->srcu_ctrs[!idx].srcu_unlocks));
2066 u1 = data_race(atomic_long_read(&sdp->srcu_ctrs[idx].srcu_unlocks));
2067
2068 /*
2069 * Make sure that a lock is always counted if the corresponding
2070 * unlock is counted.
2071 */
2072 smp_rmb();
2073
2074 l0 = data_race(atomic_long_read(&sdp->srcu_ctrs[!idx].srcu_locks));
2075 l1 = data_race(atomic_long_read(&sdp->srcu_ctrs[idx].srcu_locks));
2076
2077 c0 = l0 - u0;
2078 c1 = l1 - u1;
2079 pr_cont(" %d(%ld,%ld %c)",
2080 cpu, c0, c1,
2081 "C."[rcu_segcblist_empty(&sdp->srcu_cblist)]);
2082 s0 += c0;
2083 s1 += c1;
2084 }
2085 pr_cont(" T(%ld,%ld)\n", s0, s1);
2086 }
2087 if (SRCU_SIZING_IS_TORTURE())
2088 srcu_transition_to_big(ssp);
2089 }
2090 EXPORT_SYMBOL_GPL(srcu_torture_stats_print);
2091
srcu_bootup_announce(void)2092 static int __init srcu_bootup_announce(void)
2093 {
2094 pr_info("Hierarchical SRCU implementation.\n");
2095 if (exp_holdoff != DEFAULT_SRCU_EXP_HOLDOFF)
2096 pr_info("\tNon-default auto-expedite holdoff of %lu ns.\n", exp_holdoff);
2097 if (srcu_retry_check_delay != SRCU_DEFAULT_RETRY_CHECK_DELAY)
2098 pr_info("\tNon-default retry check delay of %lu us.\n", srcu_retry_check_delay);
2099 if (srcu_max_nodelay != SRCU_DEFAULT_MAX_NODELAY)
2100 pr_info("\tNon-default max no-delay of %lu.\n", srcu_max_nodelay);
2101 pr_info("\tMax phase no-delay instances is %lu.\n", srcu_max_nodelay_phase);
2102 return 0;
2103 }
2104 early_initcall(srcu_bootup_announce);
2105
srcu_init(void)2106 void __init srcu_init(void)
2107 {
2108 struct srcu_usage *sup;
2109
2110 /* Decide on srcu_struct-size strategy. */
2111 if (SRCU_SIZING_IS(SRCU_SIZING_AUTO)) {
2112 if (nr_cpu_ids >= big_cpu_lim) {
2113 convert_to_big = SRCU_SIZING_INIT; // Don't bother waiting for contention.
2114 pr_info("%s: Setting srcu_struct sizes to big.\n", __func__);
2115 } else {
2116 convert_to_big = SRCU_SIZING_NONE | SRCU_SIZING_CONTEND;
2117 pr_info("%s: Setting srcu_struct sizes based on contention.\n", __func__);
2118 }
2119 }
2120
2121 /*
2122 * Once that is set, call_srcu() can follow the normal path and
2123 * queue delayed work. This must follow RCU workqueues creation
2124 * and timers initialization.
2125 */
2126 srcu_init_done = true;
2127 while (!list_empty(&srcu_boot_list)) {
2128 sup = list_first_entry(&srcu_boot_list, struct srcu_usage,
2129 work.work.entry);
2130 list_del_init(&sup->work.work.entry);
2131 if (SRCU_SIZING_IS(SRCU_SIZING_INIT) &&
2132 sup->srcu_size_state == SRCU_SIZE_SMALL)
2133 sup->srcu_size_state = SRCU_SIZE_ALLOC;
2134 queue_work(rcu_gp_wq, &sup->work.work);
2135 }
2136 }
2137
2138 #ifdef CONFIG_MODULES
2139
2140 /* Initialize any global-scope srcu_struct structures used by this module. */
srcu_module_coming(struct module * mod)2141 static int srcu_module_coming(struct module *mod)
2142 {
2143 int i;
2144 struct srcu_struct *ssp;
2145 struct srcu_struct **sspp = mod->srcu_struct_ptrs;
2146
2147 for (i = 0; i < mod->num_srcu_structs; i++) {
2148 ssp = *(sspp++);
2149 ssp->sda = alloc_percpu(struct srcu_data);
2150 if (WARN_ON_ONCE(!ssp->sda))
2151 return -ENOMEM;
2152 ssp->srcu_ctrp = &ssp->sda->srcu_ctrs[0];
2153 }
2154 return 0;
2155 }
2156
2157 /* Clean up any global-scope srcu_struct structures used by this module. */
srcu_module_going(struct module * mod)2158 static void srcu_module_going(struct module *mod)
2159 {
2160 int i;
2161 struct srcu_struct *ssp;
2162 struct srcu_struct **sspp = mod->srcu_struct_ptrs;
2163
2164 for (i = 0; i < mod->num_srcu_structs; i++) {
2165 ssp = *(sspp++);
2166 if (!rcu_seq_state(smp_load_acquire(&ssp->srcu_sup->srcu_gp_seq_needed)) &&
2167 !WARN_ON_ONCE(!ssp->srcu_sup->sda_is_static))
2168 cleanup_srcu_struct(ssp);
2169 if (!WARN_ON(srcu_readers_active(ssp)))
2170 free_percpu(ssp->sda);
2171 }
2172 }
2173
2174 /* Handle one module, either coming or going. */
srcu_module_notify(struct notifier_block * self,unsigned long val,void * data)2175 static int srcu_module_notify(struct notifier_block *self,
2176 unsigned long val, void *data)
2177 {
2178 struct module *mod = data;
2179 int ret = 0;
2180
2181 switch (val) {
2182 case MODULE_STATE_COMING:
2183 ret = srcu_module_coming(mod);
2184 break;
2185 case MODULE_STATE_GOING:
2186 srcu_module_going(mod);
2187 break;
2188 default:
2189 break;
2190 }
2191 return ret;
2192 }
2193
2194 static struct notifier_block srcu_module_nb = {
2195 .notifier_call = srcu_module_notify,
2196 .priority = 0,
2197 };
2198
init_srcu_module_notifier(void)2199 static __init int init_srcu_module_notifier(void)
2200 {
2201 int ret;
2202
2203 ret = register_module_notifier(&srcu_module_nb);
2204 if (ret)
2205 pr_warn("Failed to register srcu module notifier\n");
2206 return ret;
2207 }
2208 late_initcall(init_srcu_module_notifier);
2209
2210 #endif /* #ifdef CONFIG_MODULES */
2211