tmpfs: mem_cgroup charge fault to vm_mm not current mm
[deliverable/linux.git] / mm / vmstat.c
CommitLineData
f6ac2354
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1/*
2 * linux/mm/vmstat.c
3 *
4 * Manages VM statistics
5 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds
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6 *
7 * zoned VM statistics
8 * Copyright (C) 2006 Silicon Graphics, Inc.,
9 * Christoph Lameter <christoph@lameter.com>
7cc36bbd 10 * Copyright (C) 2008-2014 Christoph Lameter
f6ac2354 11 */
8f32f7e5 12#include <linux/fs.h>
f6ac2354 13#include <linux/mm.h>
4e950f6f 14#include <linux/err.h>
2244b95a 15#include <linux/module.h>
5a0e3ad6 16#include <linux/slab.h>
df9ecaba 17#include <linux/cpu.h>
7cc36bbd 18#include <linux/cpumask.h>
c748e134 19#include <linux/vmstat.h>
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20#include <linux/proc_fs.h>
21#include <linux/seq_file.h>
22#include <linux/debugfs.h>
e8edc6e0 23#include <linux/sched.h>
f1a5ab12 24#include <linux/math64.h>
79da826a 25#include <linux/writeback.h>
36deb0be 26#include <linux/compaction.h>
6e543d57 27#include <linux/mm_inline.h>
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28#include <linux/page_ext.h>
29#include <linux/page_owner.h>
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30
31#include "internal.h"
f6ac2354 32
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33#ifdef CONFIG_VM_EVENT_COUNTERS
34DEFINE_PER_CPU(struct vm_event_state, vm_event_states) = {{0}};
35EXPORT_PER_CPU_SYMBOL(vm_event_states);
36
31f961a8 37static void sum_vm_events(unsigned long *ret)
f8891e5e 38{
9eccf2a8 39 int cpu;
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40 int i;
41
42 memset(ret, 0, NR_VM_EVENT_ITEMS * sizeof(unsigned long));
43
31f961a8 44 for_each_online_cpu(cpu) {
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45 struct vm_event_state *this = &per_cpu(vm_event_states, cpu);
46
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47 for (i = 0; i < NR_VM_EVENT_ITEMS; i++)
48 ret[i] += this->event[i];
49 }
50}
51
52/*
53 * Accumulate the vm event counters across all CPUs.
54 * The result is unavoidably approximate - it can change
55 * during and after execution of this function.
56*/
57void all_vm_events(unsigned long *ret)
58{
b5be1132 59 get_online_cpus();
31f961a8 60 sum_vm_events(ret);
b5be1132 61 put_online_cpus();
f8891e5e 62}
32dd66fc 63EXPORT_SYMBOL_GPL(all_vm_events);
f8891e5e 64
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65/*
66 * Fold the foreign cpu events into our own.
67 *
68 * This is adding to the events on one processor
69 * but keeps the global counts constant.
70 */
71void vm_events_fold_cpu(int cpu)
72{
73 struct vm_event_state *fold_state = &per_cpu(vm_event_states, cpu);
74 int i;
75
76 for (i = 0; i < NR_VM_EVENT_ITEMS; i++) {
77 count_vm_events(i, fold_state->event[i]);
78 fold_state->event[i] = 0;
79 }
80}
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81
82#endif /* CONFIG_VM_EVENT_COUNTERS */
83
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84/*
85 * Manage combined zone based / global counters
86 *
87 * vm_stat contains the global counters
88 */
a1cb2c60 89atomic_long_t vm_stat[NR_VM_ZONE_STAT_ITEMS] __cacheline_aligned_in_smp;
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90EXPORT_SYMBOL(vm_stat);
91
92#ifdef CONFIG_SMP
93
b44129b3 94int calculate_pressure_threshold(struct zone *zone)
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95{
96 int threshold;
97 int watermark_distance;
98
99 /*
100 * As vmstats are not up to date, there is drift between the estimated
101 * and real values. For high thresholds and a high number of CPUs, it
102 * is possible for the min watermark to be breached while the estimated
103 * value looks fine. The pressure threshold is a reduced value such
104 * that even the maximum amount of drift will not accidentally breach
105 * the min watermark
106 */
107 watermark_distance = low_wmark_pages(zone) - min_wmark_pages(zone);
108 threshold = max(1, (int)(watermark_distance / num_online_cpus()));
109
110 /*
111 * Maximum threshold is 125
112 */
113 threshold = min(125, threshold);
114
115 return threshold;
116}
117
b44129b3 118int calculate_normal_threshold(struct zone *zone)
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119{
120 int threshold;
121 int mem; /* memory in 128 MB units */
122
123 /*
124 * The threshold scales with the number of processors and the amount
125 * of memory per zone. More memory means that we can defer updates for
126 * longer, more processors could lead to more contention.
127 * fls() is used to have a cheap way of logarithmic scaling.
128 *
129 * Some sample thresholds:
130 *
131 * Threshold Processors (fls) Zonesize fls(mem+1)
132 * ------------------------------------------------------------------
133 * 8 1 1 0.9-1 GB 4
134 * 16 2 2 0.9-1 GB 4
135 * 20 2 2 1-2 GB 5
136 * 24 2 2 2-4 GB 6
137 * 28 2 2 4-8 GB 7
138 * 32 2 2 8-16 GB 8
139 * 4 2 2 <128M 1
140 * 30 4 3 2-4 GB 5
141 * 48 4 3 8-16 GB 8
142 * 32 8 4 1-2 GB 4
143 * 32 8 4 0.9-1GB 4
144 * 10 16 5 <128M 1
145 * 40 16 5 900M 4
146 * 70 64 7 2-4 GB 5
147 * 84 64 7 4-8 GB 6
148 * 108 512 9 4-8 GB 6
149 * 125 1024 10 8-16 GB 8
150 * 125 1024 10 16-32 GB 9
151 */
152
b40da049 153 mem = zone->managed_pages >> (27 - PAGE_SHIFT);
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154
155 threshold = 2 * fls(num_online_cpus()) * (1 + fls(mem));
156
157 /*
158 * Maximum threshold is 125
159 */
160 threshold = min(125, threshold);
161
162 return threshold;
163}
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164
165/*
df9ecaba 166 * Refresh the thresholds for each zone.
2244b95a 167 */
a6cccdc3 168void refresh_zone_stat_thresholds(void)
2244b95a 169{
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170 struct zone *zone;
171 int cpu;
172 int threshold;
173
ee99c71c 174 for_each_populated_zone(zone) {
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175 unsigned long max_drift, tolerate_drift;
176
b44129b3 177 threshold = calculate_normal_threshold(zone);
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178
179 for_each_online_cpu(cpu)
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180 per_cpu_ptr(zone->pageset, cpu)->stat_threshold
181 = threshold;
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182
183 /*
184 * Only set percpu_drift_mark if there is a danger that
185 * NR_FREE_PAGES reports the low watermark is ok when in fact
186 * the min watermark could be breached by an allocation
187 */
188 tolerate_drift = low_wmark_pages(zone) - min_wmark_pages(zone);
189 max_drift = num_online_cpus() * threshold;
190 if (max_drift > tolerate_drift)
191 zone->percpu_drift_mark = high_wmark_pages(zone) +
192 max_drift;
df9ecaba 193 }
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194}
195
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196void set_pgdat_percpu_threshold(pg_data_t *pgdat,
197 int (*calculate_pressure)(struct zone *))
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198{
199 struct zone *zone;
200 int cpu;
201 int threshold;
202 int i;
203
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204 for (i = 0; i < pgdat->nr_zones; i++) {
205 zone = &pgdat->node_zones[i];
206 if (!zone->percpu_drift_mark)
207 continue;
208
b44129b3 209 threshold = (*calculate_pressure)(zone);
bb0b6dff 210 for_each_online_cpu(cpu)
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211 per_cpu_ptr(zone->pageset, cpu)->stat_threshold
212 = threshold;
213 }
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214}
215
2244b95a 216/*
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217 * For use when we know that interrupts are disabled,
218 * or when we know that preemption is disabled and that
219 * particular counter cannot be updated from interrupt context.
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220 */
221void __mod_zone_page_state(struct zone *zone, enum zone_stat_item item,
6cdb18ad 222 long delta)
2244b95a 223{
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224 struct per_cpu_pageset __percpu *pcp = zone->pageset;
225 s8 __percpu *p = pcp->vm_stat_diff + item;
2244b95a 226 long x;
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227 long t;
228
229 x = delta + __this_cpu_read(*p);
2244b95a 230
12938a92 231 t = __this_cpu_read(pcp->stat_threshold);
2244b95a 232
12938a92 233 if (unlikely(x > t || x < -t)) {
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234 zone_page_state_add(x, zone, item);
235 x = 0;
236 }
12938a92 237 __this_cpu_write(*p, x);
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238}
239EXPORT_SYMBOL(__mod_zone_page_state);
240
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241/*
242 * Optimized increment and decrement functions.
243 *
244 * These are only for a single page and therefore can take a struct page *
245 * argument instead of struct zone *. This allows the inclusion of the code
246 * generated for page_zone(page) into the optimized functions.
247 *
248 * No overflow check is necessary and therefore the differential can be
249 * incremented or decremented in place which may allow the compilers to
250 * generate better code.
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251 * The increment or decrement is known and therefore one boundary check can
252 * be omitted.
253 *
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254 * NOTE: These functions are very performance sensitive. Change only
255 * with care.
256 *
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257 * Some processors have inc/dec instructions that are atomic vs an interrupt.
258 * However, the code must first determine the differential location in a zone
259 * based on the processor number and then inc/dec the counter. There is no
260 * guarantee without disabling preemption that the processor will not change
261 * in between and therefore the atomicity vs. interrupt cannot be exploited
262 * in a useful way here.
263 */
c8785385 264void __inc_zone_state(struct zone *zone, enum zone_stat_item item)
2244b95a 265{
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266 struct per_cpu_pageset __percpu *pcp = zone->pageset;
267 s8 __percpu *p = pcp->vm_stat_diff + item;
268 s8 v, t;
2244b95a 269
908ee0f1 270 v = __this_cpu_inc_return(*p);
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271 t = __this_cpu_read(pcp->stat_threshold);
272 if (unlikely(v > t)) {
273 s8 overstep = t >> 1;
df9ecaba 274
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275 zone_page_state_add(v + overstep, zone, item);
276 __this_cpu_write(*p, -overstep);
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277 }
278}
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279
280void __inc_zone_page_state(struct page *page, enum zone_stat_item item)
281{
282 __inc_zone_state(page_zone(page), item);
283}
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284EXPORT_SYMBOL(__inc_zone_page_state);
285
c8785385 286void __dec_zone_state(struct zone *zone, enum zone_stat_item item)
2244b95a 287{
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288 struct per_cpu_pageset __percpu *pcp = zone->pageset;
289 s8 __percpu *p = pcp->vm_stat_diff + item;
290 s8 v, t;
2244b95a 291
908ee0f1 292 v = __this_cpu_dec_return(*p);
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293 t = __this_cpu_read(pcp->stat_threshold);
294 if (unlikely(v < - t)) {
295 s8 overstep = t >> 1;
2244b95a 296
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297 zone_page_state_add(v - overstep, zone, item);
298 __this_cpu_write(*p, overstep);
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299 }
300}
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301
302void __dec_zone_page_state(struct page *page, enum zone_stat_item item)
303{
304 __dec_zone_state(page_zone(page), item);
305}
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306EXPORT_SYMBOL(__dec_zone_page_state);
307
4156153c 308#ifdef CONFIG_HAVE_CMPXCHG_LOCAL
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309/*
310 * If we have cmpxchg_local support then we do not need to incur the overhead
311 * that comes with local_irq_save/restore if we use this_cpu_cmpxchg.
312 *
313 * mod_state() modifies the zone counter state through atomic per cpu
314 * operations.
315 *
316 * Overstep mode specifies how overstep should handled:
317 * 0 No overstepping
318 * 1 Overstepping half of threshold
319 * -1 Overstepping minus half of threshold
320*/
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321static inline void mod_state(struct zone *zone, enum zone_stat_item item,
322 long delta, int overstep_mode)
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323{
324 struct per_cpu_pageset __percpu *pcp = zone->pageset;
325 s8 __percpu *p = pcp->vm_stat_diff + item;
326 long o, n, t, z;
327
328 do {
329 z = 0; /* overflow to zone counters */
330
331 /*
332 * The fetching of the stat_threshold is racy. We may apply
333 * a counter threshold to the wrong the cpu if we get
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334 * rescheduled while executing here. However, the next
335 * counter update will apply the threshold again and
336 * therefore bring the counter under the threshold again.
337 *
338 * Most of the time the thresholds are the same anyways
339 * for all cpus in a zone.
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340 */
341 t = this_cpu_read(pcp->stat_threshold);
342
343 o = this_cpu_read(*p);
344 n = delta + o;
345
346 if (n > t || n < -t) {
347 int os = overstep_mode * (t >> 1) ;
348
349 /* Overflow must be added to zone counters */
350 z = n + os;
351 n = -os;
352 }
353 } while (this_cpu_cmpxchg(*p, o, n) != o);
354
355 if (z)
356 zone_page_state_add(z, zone, item);
357}
358
359void mod_zone_page_state(struct zone *zone, enum zone_stat_item item,
6cdb18ad 360 long delta)
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361{
362 mod_state(zone, item, delta, 0);
363}
364EXPORT_SYMBOL(mod_zone_page_state);
365
366void inc_zone_state(struct zone *zone, enum zone_stat_item item)
367{
368 mod_state(zone, item, 1, 1);
369}
370
371void inc_zone_page_state(struct page *page, enum zone_stat_item item)
372{
373 mod_state(page_zone(page), item, 1, 1);
374}
375EXPORT_SYMBOL(inc_zone_page_state);
376
377void dec_zone_page_state(struct page *page, enum zone_stat_item item)
378{
379 mod_state(page_zone(page), item, -1, -1);
380}
381EXPORT_SYMBOL(dec_zone_page_state);
382#else
383/*
384 * Use interrupt disable to serialize counter updates
385 */
386void mod_zone_page_state(struct zone *zone, enum zone_stat_item item,
6cdb18ad 387 long delta)
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388{
389 unsigned long flags;
390
391 local_irq_save(flags);
392 __mod_zone_page_state(zone, item, delta);
393 local_irq_restore(flags);
394}
395EXPORT_SYMBOL(mod_zone_page_state);
396
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397void inc_zone_state(struct zone *zone, enum zone_stat_item item)
398{
399 unsigned long flags;
400
401 local_irq_save(flags);
402 __inc_zone_state(zone, item);
403 local_irq_restore(flags);
404}
405
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406void inc_zone_page_state(struct page *page, enum zone_stat_item item)
407{
408 unsigned long flags;
409 struct zone *zone;
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410
411 zone = page_zone(page);
412 local_irq_save(flags);
ca889e6c 413 __inc_zone_state(zone, item);
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414 local_irq_restore(flags);
415}
416EXPORT_SYMBOL(inc_zone_page_state);
417
418void dec_zone_page_state(struct page *page, enum zone_stat_item item)
419{
420 unsigned long flags;
2244b95a 421
2244b95a 422 local_irq_save(flags);
a302eb4e 423 __dec_zone_page_state(page, item);
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424 local_irq_restore(flags);
425}
426EXPORT_SYMBOL(dec_zone_page_state);
7c839120 427#endif
2244b95a 428
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429
430/*
431 * Fold a differential into the global counters.
432 * Returns the number of counters updated.
433 */
434static int fold_diff(int *diff)
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435{
436 int i;
7cc36bbd 437 int changes = 0;
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CL
438
439 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++)
7cc36bbd 440 if (diff[i]) {
4edb0748 441 atomic_long_add(diff[i], &vm_stat[i]);
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442 changes++;
443 }
444 return changes;
4edb0748
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445}
446
2244b95a 447/*
2bb921e5 448 * Update the zone counters for the current cpu.
a7f75e25 449 *
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450 * Note that refresh_cpu_vm_stats strives to only access
451 * node local memory. The per cpu pagesets on remote zones are placed
452 * in the memory local to the processor using that pageset. So the
453 * loop over all zones will access a series of cachelines local to
454 * the processor.
455 *
456 * The call to zone_page_state_add updates the cachelines with the
457 * statistics in the remote zone struct as well as the global cachelines
458 * with the global counters. These could cause remote node cache line
459 * bouncing and will have to be only done when necessary.
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460 *
461 * The function returns the number of global counters updated.
2244b95a 462 */
0eb77e98 463static int refresh_cpu_vm_stats(bool do_pagesets)
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464{
465 struct zone *zone;
466 int i;
a7f75e25 467 int global_diff[NR_VM_ZONE_STAT_ITEMS] = { 0, };
7cc36bbd 468 int changes = 0;
2244b95a 469
ee99c71c 470 for_each_populated_zone(zone) {
fbc2edb0 471 struct per_cpu_pageset __percpu *p = zone->pageset;
2244b95a 472
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473 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) {
474 int v;
2244b95a 475
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476 v = this_cpu_xchg(p->vm_stat_diff[i], 0);
477 if (v) {
a7f75e25 478
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479 atomic_long_add(v, &zone->vm_stat[i]);
480 global_diff[i] += v;
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481#ifdef CONFIG_NUMA
482 /* 3 seconds idle till flush */
fbc2edb0 483 __this_cpu_write(p->expire, 3);
4037d452 484#endif
2244b95a 485 }
fbc2edb0 486 }
4037d452 487#ifdef CONFIG_NUMA
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488 if (do_pagesets) {
489 cond_resched();
490 /*
491 * Deal with draining the remote pageset of this
492 * processor
493 *
494 * Check if there are pages remaining in this pageset
495 * if not then there is nothing to expire.
496 */
497 if (!__this_cpu_read(p->expire) ||
fbc2edb0 498 !__this_cpu_read(p->pcp.count))
0eb77e98 499 continue;
4037d452 500
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501 /*
502 * We never drain zones local to this processor.
503 */
504 if (zone_to_nid(zone) == numa_node_id()) {
505 __this_cpu_write(p->expire, 0);
506 continue;
507 }
4037d452 508
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509 if (__this_cpu_dec_return(p->expire))
510 continue;
4037d452 511
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512 if (__this_cpu_read(p->pcp.count)) {
513 drain_zone_pages(zone, this_cpu_ptr(&p->pcp));
514 changes++;
515 }
7cc36bbd 516 }
4037d452 517#endif
2244b95a 518 }
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519 changes += fold_diff(global_diff);
520 return changes;
2244b95a
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521}
522
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523/*
524 * Fold the data for an offline cpu into the global array.
525 * There cannot be any access by the offline cpu and therefore
526 * synchronization is simplified.
527 */
528void cpu_vm_stats_fold(int cpu)
529{
530 struct zone *zone;
531 int i;
532 int global_diff[NR_VM_ZONE_STAT_ITEMS] = { 0, };
533
534 for_each_populated_zone(zone) {
535 struct per_cpu_pageset *p;
536
537 p = per_cpu_ptr(zone->pageset, cpu);
538
539 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++)
540 if (p->vm_stat_diff[i]) {
541 int v;
542
543 v = p->vm_stat_diff[i];
544 p->vm_stat_diff[i] = 0;
545 atomic_long_add(v, &zone->vm_stat[i]);
546 global_diff[i] += v;
547 }
548 }
549
4edb0748 550 fold_diff(global_diff);
2bb921e5
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551}
552
40f4b1ea
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553/*
554 * this is only called if !populated_zone(zone), which implies no other users of
555 * pset->vm_stat_diff[] exsist.
556 */
5a883813
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557void drain_zonestat(struct zone *zone, struct per_cpu_pageset *pset)
558{
559 int i;
560
561 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++)
562 if (pset->vm_stat_diff[i]) {
563 int v = pset->vm_stat_diff[i];
564 pset->vm_stat_diff[i] = 0;
565 atomic_long_add(v, &zone->vm_stat[i]);
566 atomic_long_add(v, &vm_stat[i]);
567 }
568}
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569#endif
570
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571#ifdef CONFIG_NUMA
572/*
573 * zonelist = the list of zones passed to the allocator
574 * z = the zone from which the allocation occurred.
575 *
576 * Must be called with interrupts disabled.
78afd561
AK
577 *
578 * When __GFP_OTHER_NODE is set assume the node of the preferred
579 * zone is the local node. This is useful for daemons who allocate
580 * memory on behalf of other processes.
ca889e6c 581 */
78afd561 582void zone_statistics(struct zone *preferred_zone, struct zone *z, gfp_t flags)
ca889e6c 583{
18ea7e71 584 if (z->zone_pgdat == preferred_zone->zone_pgdat) {
ca889e6c
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585 __inc_zone_state(z, NUMA_HIT);
586 } else {
587 __inc_zone_state(z, NUMA_MISS);
18ea7e71 588 __inc_zone_state(preferred_zone, NUMA_FOREIGN);
ca889e6c 589 }
78afd561
AK
590 if (z->node == ((flags & __GFP_OTHER_NODE) ?
591 preferred_zone->node : numa_node_id()))
ca889e6c
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592 __inc_zone_state(z, NUMA_LOCAL);
593 else
594 __inc_zone_state(z, NUMA_OTHER);
595}
c2d42c16
AM
596
597/*
598 * Determine the per node value of a stat item.
599 */
600unsigned long node_page_state(int node, enum zone_stat_item item)
601{
602 struct zone *zones = NODE_DATA(node)->node_zones;
e87d59f7
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603 int i;
604 unsigned long count = 0;
c2d42c16 605
e87d59f7
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606 for (i = 0; i < MAX_NR_ZONES; i++)
607 count += zone_page_state(zones + i, item);
608
609 return count;
c2d42c16
AM
610}
611
ca889e6c
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612#endif
613
d7a5752c 614#ifdef CONFIG_COMPACTION
36deb0be 615
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616struct contig_page_info {
617 unsigned long free_pages;
618 unsigned long free_blocks_total;
619 unsigned long free_blocks_suitable;
620};
621
622/*
623 * Calculate the number of free pages in a zone, how many contiguous
624 * pages are free and how many are large enough to satisfy an allocation of
625 * the target size. Note that this function makes no attempt to estimate
626 * how many suitable free blocks there *might* be if MOVABLE pages were
627 * migrated. Calculating that is possible, but expensive and can be
628 * figured out from userspace
629 */
630static void fill_contig_page_info(struct zone *zone,
631 unsigned int suitable_order,
632 struct contig_page_info *info)
633{
634 unsigned int order;
635
636 info->free_pages = 0;
637 info->free_blocks_total = 0;
638 info->free_blocks_suitable = 0;
639
640 for (order = 0; order < MAX_ORDER; order++) {
641 unsigned long blocks;
642
643 /* Count number of free blocks */
644 blocks = zone->free_area[order].nr_free;
645 info->free_blocks_total += blocks;
646
647 /* Count free base pages */
648 info->free_pages += blocks << order;
649
650 /* Count the suitable free blocks */
651 if (order >= suitable_order)
652 info->free_blocks_suitable += blocks <<
653 (order - suitable_order);
654 }
655}
f1a5ab12
MG
656
657/*
658 * A fragmentation index only makes sense if an allocation of a requested
659 * size would fail. If that is true, the fragmentation index indicates
660 * whether external fragmentation or a lack of memory was the problem.
661 * The value can be used to determine if page reclaim or compaction
662 * should be used
663 */
56de7263 664static int __fragmentation_index(unsigned int order, struct contig_page_info *info)
f1a5ab12
MG
665{
666 unsigned long requested = 1UL << order;
667
668 if (!info->free_blocks_total)
669 return 0;
670
671 /* Fragmentation index only makes sense when a request would fail */
672 if (info->free_blocks_suitable)
673 return -1000;
674
675 /*
676 * Index is between 0 and 1 so return within 3 decimal places
677 *
678 * 0 => allocation would fail due to lack of memory
679 * 1 => allocation would fail due to fragmentation
680 */
681 return 1000 - div_u64( (1000+(div_u64(info->free_pages * 1000ULL, requested))), info->free_blocks_total);
682}
56de7263
MG
683
684/* Same as __fragmentation index but allocs contig_page_info on stack */
685int fragmentation_index(struct zone *zone, unsigned int order)
686{
687 struct contig_page_info info;
688
689 fill_contig_page_info(zone, order, &info);
690 return __fragmentation_index(order, &info);
691}
d7a5752c
MG
692#endif
693
0d6617c7 694#if defined(CONFIG_PROC_FS) || defined(CONFIG_SYSFS) || defined(CONFIG_NUMA)
fa25c503
KM
695#ifdef CONFIG_ZONE_DMA
696#define TEXT_FOR_DMA(xx) xx "_dma",
697#else
698#define TEXT_FOR_DMA(xx)
699#endif
700
701#ifdef CONFIG_ZONE_DMA32
702#define TEXT_FOR_DMA32(xx) xx "_dma32",
703#else
704#define TEXT_FOR_DMA32(xx)
705#endif
706
707#ifdef CONFIG_HIGHMEM
708#define TEXT_FOR_HIGHMEM(xx) xx "_high",
709#else
710#define TEXT_FOR_HIGHMEM(xx)
711#endif
712
713#define TEXTS_FOR_ZONES(xx) TEXT_FOR_DMA(xx) TEXT_FOR_DMA32(xx) xx "_normal", \
714 TEXT_FOR_HIGHMEM(xx) xx "_movable",
715
716const char * const vmstat_text[] = {
09316c09 717 /* enum zone_stat_item countes */
fa25c503 718 "nr_free_pages",
81c0a2bb 719 "nr_alloc_batch",
fa25c503
KM
720 "nr_inactive_anon",
721 "nr_active_anon",
722 "nr_inactive_file",
723 "nr_active_file",
724 "nr_unevictable",
725 "nr_mlock",
726 "nr_anon_pages",
727 "nr_mapped",
728 "nr_file_pages",
729 "nr_dirty",
730 "nr_writeback",
731 "nr_slab_reclaimable",
732 "nr_slab_unreclaimable",
733 "nr_page_table_pages",
734 "nr_kernel_stack",
735 "nr_unstable",
736 "nr_bounce",
737 "nr_vmscan_write",
49ea7eb6 738 "nr_vmscan_immediate_reclaim",
fa25c503
KM
739 "nr_writeback_temp",
740 "nr_isolated_anon",
741 "nr_isolated_file",
742 "nr_shmem",
743 "nr_dirtied",
744 "nr_written",
0d5d823a 745 "nr_pages_scanned",
fa25c503
KM
746
747#ifdef CONFIG_NUMA
748 "numa_hit",
749 "numa_miss",
750 "numa_foreign",
751 "numa_interleave",
752 "numa_local",
753 "numa_other",
754#endif
a528910e
JW
755 "workingset_refault",
756 "workingset_activate",
449dd698 757 "workingset_nodereclaim",
fa25c503 758 "nr_anon_transparent_hugepages",
d1ce749a 759 "nr_free_cma",
09316c09
KK
760
761 /* enum writeback_stat_item counters */
fa25c503
KM
762 "nr_dirty_threshold",
763 "nr_dirty_background_threshold",
764
765#ifdef CONFIG_VM_EVENT_COUNTERS
09316c09 766 /* enum vm_event_item counters */
fa25c503
KM
767 "pgpgin",
768 "pgpgout",
769 "pswpin",
770 "pswpout",
771
772 TEXTS_FOR_ZONES("pgalloc")
773
774 "pgfree",
775 "pgactivate",
776 "pgdeactivate",
777
778 "pgfault",
779 "pgmajfault",
854e9ed0 780 "pglazyfreed",
fa25c503
KM
781
782 TEXTS_FOR_ZONES("pgrefill")
904249aa
YH
783 TEXTS_FOR_ZONES("pgsteal_kswapd")
784 TEXTS_FOR_ZONES("pgsteal_direct")
fa25c503
KM
785 TEXTS_FOR_ZONES("pgscan_kswapd")
786 TEXTS_FOR_ZONES("pgscan_direct")
68243e76 787 "pgscan_direct_throttle",
fa25c503
KM
788
789#ifdef CONFIG_NUMA
790 "zone_reclaim_failed",
791#endif
792 "pginodesteal",
793 "slabs_scanned",
fa25c503
KM
794 "kswapd_inodesteal",
795 "kswapd_low_wmark_hit_quickly",
796 "kswapd_high_wmark_hit_quickly",
fa25c503
KM
797 "pageoutrun",
798 "allocstall",
799
800 "pgrotated",
801
5509a5d2
DH
802 "drop_pagecache",
803 "drop_slab",
804
03c5a6e1
MG
805#ifdef CONFIG_NUMA_BALANCING
806 "numa_pte_updates",
72403b4a 807 "numa_huge_pte_updates",
03c5a6e1
MG
808 "numa_hint_faults",
809 "numa_hint_faults_local",
810 "numa_pages_migrated",
811#endif
5647bc29
MG
812#ifdef CONFIG_MIGRATION
813 "pgmigrate_success",
814 "pgmigrate_fail",
815#endif
fa25c503 816#ifdef CONFIG_COMPACTION
397487db
MG
817 "compact_migrate_scanned",
818 "compact_free_scanned",
819 "compact_isolated",
fa25c503
KM
820 "compact_stall",
821 "compact_fail",
822 "compact_success",
698b1b30 823 "compact_daemon_wake",
fa25c503
KM
824#endif
825
826#ifdef CONFIG_HUGETLB_PAGE
827 "htlb_buddy_alloc_success",
828 "htlb_buddy_alloc_fail",
829#endif
830 "unevictable_pgs_culled",
831 "unevictable_pgs_scanned",
832 "unevictable_pgs_rescued",
833 "unevictable_pgs_mlocked",
834 "unevictable_pgs_munlocked",
835 "unevictable_pgs_cleared",
836 "unevictable_pgs_stranded",
fa25c503
KM
837
838#ifdef CONFIG_TRANSPARENT_HUGEPAGE
839 "thp_fault_alloc",
840 "thp_fault_fallback",
841 "thp_collapse_alloc",
842 "thp_collapse_alloc_failed",
122afea9
KS
843 "thp_split_page",
844 "thp_split_page_failed",
f9719a03 845 "thp_deferred_split_page",
122afea9 846 "thp_split_pmd",
d8a8e1f0
KS
847 "thp_zero_page_alloc",
848 "thp_zero_page_alloc_failed",
fa25c503 849#endif
09316c09
KK
850#ifdef CONFIG_MEMORY_BALLOON
851 "balloon_inflate",
852 "balloon_deflate",
853#ifdef CONFIG_BALLOON_COMPACTION
854 "balloon_migrate",
855#endif
856#endif /* CONFIG_MEMORY_BALLOON */
ec659934 857#ifdef CONFIG_DEBUG_TLBFLUSH
6df46865 858#ifdef CONFIG_SMP
9824cf97
DH
859 "nr_tlb_remote_flush",
860 "nr_tlb_remote_flush_received",
ec659934 861#endif /* CONFIG_SMP */
9824cf97
DH
862 "nr_tlb_local_flush_all",
863 "nr_tlb_local_flush_one",
ec659934 864#endif /* CONFIG_DEBUG_TLBFLUSH */
fa25c503 865
4f115147
DB
866#ifdef CONFIG_DEBUG_VM_VMACACHE
867 "vmacache_find_calls",
868 "vmacache_find_hits",
f5f302e2 869 "vmacache_full_flushes",
4f115147 870#endif
fa25c503
KM
871#endif /* CONFIG_VM_EVENTS_COUNTERS */
872};
0d6617c7 873#endif /* CONFIG_PROC_FS || CONFIG_SYSFS || CONFIG_NUMA */
fa25c503
KM
874
875
3c486871
AM
876#if (defined(CONFIG_DEBUG_FS) && defined(CONFIG_COMPACTION)) || \
877 defined(CONFIG_PROC_FS)
878static void *frag_start(struct seq_file *m, loff_t *pos)
879{
880 pg_data_t *pgdat;
881 loff_t node = *pos;
882
883 for (pgdat = first_online_pgdat();
884 pgdat && node;
885 pgdat = next_online_pgdat(pgdat))
886 --node;
887
888 return pgdat;
889}
890
891static void *frag_next(struct seq_file *m, void *arg, loff_t *pos)
892{
893 pg_data_t *pgdat = (pg_data_t *)arg;
894
895 (*pos)++;
896 return next_online_pgdat(pgdat);
897}
898
899static void frag_stop(struct seq_file *m, void *arg)
900{
901}
902
903/* Walk all the zones in a node and print using a callback */
904static void walk_zones_in_node(struct seq_file *m, pg_data_t *pgdat,
905 void (*print)(struct seq_file *m, pg_data_t *, struct zone *))
906{
907 struct zone *zone;
908 struct zone *node_zones = pgdat->node_zones;
909 unsigned long flags;
910
911 for (zone = node_zones; zone - node_zones < MAX_NR_ZONES; ++zone) {
912 if (!populated_zone(zone))
913 continue;
914
915 spin_lock_irqsave(&zone->lock, flags);
916 print(m, pgdat, zone);
917 spin_unlock_irqrestore(&zone->lock, flags);
918 }
919}
920#endif
921
d7a5752c 922#ifdef CONFIG_PROC_FS
467c996c
MG
923static void frag_show_print(struct seq_file *m, pg_data_t *pgdat,
924 struct zone *zone)
925{
926 int order;
927
928 seq_printf(m, "Node %d, zone %8s ", pgdat->node_id, zone->name);
929 for (order = 0; order < MAX_ORDER; ++order)
930 seq_printf(m, "%6lu ", zone->free_area[order].nr_free);
931 seq_putc(m, '\n');
932}
933
934/*
935 * This walks the free areas for each zone.
936 */
937static int frag_show(struct seq_file *m, void *arg)
938{
939 pg_data_t *pgdat = (pg_data_t *)arg;
940 walk_zones_in_node(m, pgdat, frag_show_print);
941 return 0;
942}
943
944static void pagetypeinfo_showfree_print(struct seq_file *m,
945 pg_data_t *pgdat, struct zone *zone)
946{
947 int order, mtype;
948
949 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++) {
950 seq_printf(m, "Node %4d, zone %8s, type %12s ",
951 pgdat->node_id,
952 zone->name,
953 migratetype_names[mtype]);
954 for (order = 0; order < MAX_ORDER; ++order) {
955 unsigned long freecount = 0;
956 struct free_area *area;
957 struct list_head *curr;
958
959 area = &(zone->free_area[order]);
960
961 list_for_each(curr, &area->free_list[mtype])
962 freecount++;
963 seq_printf(m, "%6lu ", freecount);
964 }
f6ac2354
CL
965 seq_putc(m, '\n');
966 }
467c996c
MG
967}
968
969/* Print out the free pages at each order for each migatetype */
970static int pagetypeinfo_showfree(struct seq_file *m, void *arg)
971{
972 int order;
973 pg_data_t *pgdat = (pg_data_t *)arg;
974
975 /* Print header */
976 seq_printf(m, "%-43s ", "Free pages count per migrate type at order");
977 for (order = 0; order < MAX_ORDER; ++order)
978 seq_printf(m, "%6d ", order);
979 seq_putc(m, '\n');
980
981 walk_zones_in_node(m, pgdat, pagetypeinfo_showfree_print);
982
983 return 0;
984}
985
986static void pagetypeinfo_showblockcount_print(struct seq_file *m,
987 pg_data_t *pgdat, struct zone *zone)
988{
989 int mtype;
990 unsigned long pfn;
991 unsigned long start_pfn = zone->zone_start_pfn;
108bcc96 992 unsigned long end_pfn = zone_end_pfn(zone);
467c996c
MG
993 unsigned long count[MIGRATE_TYPES] = { 0, };
994
995 for (pfn = start_pfn; pfn < end_pfn; pfn += pageblock_nr_pages) {
996 struct page *page;
997
998 if (!pfn_valid(pfn))
999 continue;
1000
1001 page = pfn_to_page(pfn);
eb33575c
MG
1002
1003 /* Watch for unexpected holes punched in the memmap */
1004 if (!memmap_valid_within(pfn, page, zone))
e80d6a24 1005 continue;
eb33575c 1006
a91c43c7
JK
1007 if (page_zone(page) != zone)
1008 continue;
1009
467c996c
MG
1010 mtype = get_pageblock_migratetype(page);
1011
e80d6a24
MG
1012 if (mtype < MIGRATE_TYPES)
1013 count[mtype]++;
467c996c
MG
1014 }
1015
1016 /* Print counts */
1017 seq_printf(m, "Node %d, zone %8s ", pgdat->node_id, zone->name);
1018 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++)
1019 seq_printf(m, "%12lu ", count[mtype]);
1020 seq_putc(m, '\n');
1021}
1022
1023/* Print out the free pages at each order for each migratetype */
1024static int pagetypeinfo_showblockcount(struct seq_file *m, void *arg)
1025{
1026 int mtype;
1027 pg_data_t *pgdat = (pg_data_t *)arg;
1028
1029 seq_printf(m, "\n%-23s", "Number of blocks type ");
1030 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++)
1031 seq_printf(m, "%12s ", migratetype_names[mtype]);
1032 seq_putc(m, '\n');
1033 walk_zones_in_node(m, pgdat, pagetypeinfo_showblockcount_print);
1034
1035 return 0;
1036}
1037
48c96a36
JK
1038#ifdef CONFIG_PAGE_OWNER
1039static void pagetypeinfo_showmixedcount_print(struct seq_file *m,
1040 pg_data_t *pgdat,
1041 struct zone *zone)
1042{
1043 struct page *page;
1044 struct page_ext *page_ext;
1045 unsigned long pfn = zone->zone_start_pfn, block_end_pfn;
1046 unsigned long end_pfn = pfn + zone->spanned_pages;
1047 unsigned long count[MIGRATE_TYPES] = { 0, };
1048 int pageblock_mt, page_mt;
1049 int i;
1050
1051 /* Scan block by block. First and last block may be incomplete */
1052 pfn = zone->zone_start_pfn;
1053
1054 /*
1055 * Walk the zone in pageblock_nr_pages steps. If a page block spans
1056 * a zone boundary, it will be double counted between zones. This does
1057 * not matter as the mixed block count will still be correct
1058 */
1059 for (; pfn < end_pfn; ) {
1060 if (!pfn_valid(pfn)) {
1061 pfn = ALIGN(pfn + 1, MAX_ORDER_NR_PAGES);
1062 continue;
1063 }
1064
1065 block_end_pfn = ALIGN(pfn + 1, pageblock_nr_pages);
1066 block_end_pfn = min(block_end_pfn, end_pfn);
1067
1068 page = pfn_to_page(pfn);
1069 pageblock_mt = get_pfnblock_migratetype(page, pfn);
1070
1071 for (; pfn < block_end_pfn; pfn++) {
1072 if (!pfn_valid_within(pfn))
1073 continue;
1074
1075 page = pfn_to_page(pfn);
a91c43c7
JK
1076
1077 if (page_zone(page) != zone)
1078 continue;
1079
48c96a36
JK
1080 if (PageBuddy(page)) {
1081 pfn += (1UL << page_order(page)) - 1;
1082 continue;
1083 }
1084
1085 if (PageReserved(page))
1086 continue;
1087
1088 page_ext = lookup_page_ext(page);
1089
1090 if (!test_bit(PAGE_EXT_OWNER, &page_ext->flags))
1091 continue;
1092
1093 page_mt = gfpflags_to_migratetype(page_ext->gfp_mask);
1094 if (pageblock_mt != page_mt) {
1095 if (is_migrate_cma(pageblock_mt))
1096 count[MIGRATE_MOVABLE]++;
1097 else
1098 count[pageblock_mt]++;
1099
1100 pfn = block_end_pfn;
1101 break;
1102 }
1103 pfn += (1UL << page_ext->order) - 1;
1104 }
1105 }
1106
1107 /* Print counts */
1108 seq_printf(m, "Node %d, zone %8s ", pgdat->node_id, zone->name);
1109 for (i = 0; i < MIGRATE_TYPES; i++)
1110 seq_printf(m, "%12lu ", count[i]);
1111 seq_putc(m, '\n');
1112}
1113#endif /* CONFIG_PAGE_OWNER */
1114
1115/*
1116 * Print out the number of pageblocks for each migratetype that contain pages
1117 * of other types. This gives an indication of how well fallbacks are being
1118 * contained by rmqueue_fallback(). It requires information from PAGE_OWNER
1119 * to determine what is going on
1120 */
1121static void pagetypeinfo_showmixedcount(struct seq_file *m, pg_data_t *pgdat)
1122{
1123#ifdef CONFIG_PAGE_OWNER
1124 int mtype;
1125
7dd80b8a 1126 if (!static_branch_unlikely(&page_owner_inited))
48c96a36
JK
1127 return;
1128
1129 drain_all_pages(NULL);
1130
1131 seq_printf(m, "\n%-23s", "Number of mixed blocks ");
1132 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++)
1133 seq_printf(m, "%12s ", migratetype_names[mtype]);
1134 seq_putc(m, '\n');
1135
1136 walk_zones_in_node(m, pgdat, pagetypeinfo_showmixedcount_print);
1137#endif /* CONFIG_PAGE_OWNER */
1138}
1139
467c996c
MG
1140/*
1141 * This prints out statistics in relation to grouping pages by mobility.
1142 * It is expensive to collect so do not constantly read the file.
1143 */
1144static int pagetypeinfo_show(struct seq_file *m, void *arg)
1145{
1146 pg_data_t *pgdat = (pg_data_t *)arg;
1147
41b25a37 1148 /* check memoryless node */
a47b53c5 1149 if (!node_state(pgdat->node_id, N_MEMORY))
41b25a37
KM
1150 return 0;
1151
467c996c
MG
1152 seq_printf(m, "Page block order: %d\n", pageblock_order);
1153 seq_printf(m, "Pages per block: %lu\n", pageblock_nr_pages);
1154 seq_putc(m, '\n');
1155 pagetypeinfo_showfree(m, pgdat);
1156 pagetypeinfo_showblockcount(m, pgdat);
48c96a36 1157 pagetypeinfo_showmixedcount(m, pgdat);
467c996c 1158
f6ac2354
CL
1159 return 0;
1160}
1161
8f32f7e5 1162static const struct seq_operations fragmentation_op = {
f6ac2354
CL
1163 .start = frag_start,
1164 .next = frag_next,
1165 .stop = frag_stop,
1166 .show = frag_show,
1167};
1168
8f32f7e5
AD
1169static int fragmentation_open(struct inode *inode, struct file *file)
1170{
1171 return seq_open(file, &fragmentation_op);
1172}
1173
1174static const struct file_operations fragmentation_file_operations = {
1175 .open = fragmentation_open,
1176 .read = seq_read,
1177 .llseek = seq_lseek,
1178 .release = seq_release,
1179};
1180
74e2e8e8 1181static const struct seq_operations pagetypeinfo_op = {
467c996c
MG
1182 .start = frag_start,
1183 .next = frag_next,
1184 .stop = frag_stop,
1185 .show = pagetypeinfo_show,
1186};
1187
74e2e8e8
AD
1188static int pagetypeinfo_open(struct inode *inode, struct file *file)
1189{
1190 return seq_open(file, &pagetypeinfo_op);
1191}
1192
1193static const struct file_operations pagetypeinfo_file_ops = {
1194 .open = pagetypeinfo_open,
1195 .read = seq_read,
1196 .llseek = seq_lseek,
1197 .release = seq_release,
1198};
1199
467c996c
MG
1200static void zoneinfo_show_print(struct seq_file *m, pg_data_t *pgdat,
1201 struct zone *zone)
f6ac2354 1202{
467c996c
MG
1203 int i;
1204 seq_printf(m, "Node %d, zone %8s", pgdat->node_id, zone->name);
1205 seq_printf(m,
1206 "\n pages free %lu"
1207 "\n min %lu"
1208 "\n low %lu"
1209 "\n high %lu"
08d9ae7c 1210 "\n scanned %lu"
467c996c 1211 "\n spanned %lu"
9feedc9d
JL
1212 "\n present %lu"
1213 "\n managed %lu",
88f5acf8 1214 zone_page_state(zone, NR_FREE_PAGES),
41858966
MG
1215 min_wmark_pages(zone),
1216 low_wmark_pages(zone),
1217 high_wmark_pages(zone),
0d5d823a 1218 zone_page_state(zone, NR_PAGES_SCANNED),
467c996c 1219 zone->spanned_pages,
9feedc9d
JL
1220 zone->present_pages,
1221 zone->managed_pages);
467c996c
MG
1222
1223 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++)
1224 seq_printf(m, "\n %-12s %lu", vmstat_text[i],
1225 zone_page_state(zone, i));
1226
1227 seq_printf(m,
3484b2de 1228 "\n protection: (%ld",
467c996c
MG
1229 zone->lowmem_reserve[0]);
1230 for (i = 1; i < ARRAY_SIZE(zone->lowmem_reserve); i++)
3484b2de 1231 seq_printf(m, ", %ld", zone->lowmem_reserve[i]);
467c996c
MG
1232 seq_printf(m,
1233 ")"
1234 "\n pagesets");
1235 for_each_online_cpu(i) {
1236 struct per_cpu_pageset *pageset;
467c996c 1237
99dcc3e5 1238 pageset = per_cpu_ptr(zone->pageset, i);
3dfa5721
CL
1239 seq_printf(m,
1240 "\n cpu: %i"
1241 "\n count: %i"
1242 "\n high: %i"
1243 "\n batch: %i",
1244 i,
1245 pageset->pcp.count,
1246 pageset->pcp.high,
1247 pageset->pcp.batch);
df9ecaba 1248#ifdef CONFIG_SMP
467c996c
MG
1249 seq_printf(m, "\n vm stats threshold: %d",
1250 pageset->stat_threshold);
df9ecaba 1251#endif
f6ac2354 1252 }
467c996c
MG
1253 seq_printf(m,
1254 "\n all_unreclaimable: %u"
556adecb
RR
1255 "\n start_pfn: %lu"
1256 "\n inactive_ratio: %u",
6e543d57 1257 !zone_reclaimable(zone),
556adecb
RR
1258 zone->zone_start_pfn,
1259 zone->inactive_ratio);
467c996c
MG
1260 seq_putc(m, '\n');
1261}
1262
1263/*
1264 * Output information about zones in @pgdat.
1265 */
1266static int zoneinfo_show(struct seq_file *m, void *arg)
1267{
1268 pg_data_t *pgdat = (pg_data_t *)arg;
1269 walk_zones_in_node(m, pgdat, zoneinfo_show_print);
f6ac2354
CL
1270 return 0;
1271}
1272
5c9fe628 1273static const struct seq_operations zoneinfo_op = {
f6ac2354
CL
1274 .start = frag_start, /* iterate over all zones. The same as in
1275 * fragmentation. */
1276 .next = frag_next,
1277 .stop = frag_stop,
1278 .show = zoneinfo_show,
1279};
1280
5c9fe628
AD
1281static int zoneinfo_open(struct inode *inode, struct file *file)
1282{
1283 return seq_open(file, &zoneinfo_op);
1284}
1285
1286static const struct file_operations proc_zoneinfo_file_operations = {
1287 .open = zoneinfo_open,
1288 .read = seq_read,
1289 .llseek = seq_lseek,
1290 .release = seq_release,
1291};
1292
79da826a
MR
1293enum writeback_stat_item {
1294 NR_DIRTY_THRESHOLD,
1295 NR_DIRTY_BG_THRESHOLD,
1296 NR_VM_WRITEBACK_STAT_ITEMS,
1297};
1298
f6ac2354
CL
1299static void *vmstat_start(struct seq_file *m, loff_t *pos)
1300{
2244b95a 1301 unsigned long *v;
79da826a 1302 int i, stat_items_size;
f6ac2354
CL
1303
1304 if (*pos >= ARRAY_SIZE(vmstat_text))
1305 return NULL;
79da826a
MR
1306 stat_items_size = NR_VM_ZONE_STAT_ITEMS * sizeof(unsigned long) +
1307 NR_VM_WRITEBACK_STAT_ITEMS * sizeof(unsigned long);
f6ac2354 1308
f8891e5e 1309#ifdef CONFIG_VM_EVENT_COUNTERS
79da826a 1310 stat_items_size += sizeof(struct vm_event_state);
f8891e5e 1311#endif
79da826a
MR
1312
1313 v = kmalloc(stat_items_size, GFP_KERNEL);
2244b95a
CL
1314 m->private = v;
1315 if (!v)
f6ac2354 1316 return ERR_PTR(-ENOMEM);
2244b95a
CL
1317 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++)
1318 v[i] = global_page_state(i);
79da826a
MR
1319 v += NR_VM_ZONE_STAT_ITEMS;
1320
1321 global_dirty_limits(v + NR_DIRTY_BG_THRESHOLD,
1322 v + NR_DIRTY_THRESHOLD);
1323 v += NR_VM_WRITEBACK_STAT_ITEMS;
1324
f8891e5e 1325#ifdef CONFIG_VM_EVENT_COUNTERS
79da826a
MR
1326 all_vm_events(v);
1327 v[PGPGIN] /= 2; /* sectors -> kbytes */
1328 v[PGPGOUT] /= 2;
f8891e5e 1329#endif
ff8b16d7 1330 return (unsigned long *)m->private + *pos;
f6ac2354
CL
1331}
1332
1333static void *vmstat_next(struct seq_file *m, void *arg, loff_t *pos)
1334{
1335 (*pos)++;
1336 if (*pos >= ARRAY_SIZE(vmstat_text))
1337 return NULL;
1338 return (unsigned long *)m->private + *pos;
1339}
1340
1341static int vmstat_show(struct seq_file *m, void *arg)
1342{
1343 unsigned long *l = arg;
1344 unsigned long off = l - (unsigned long *)m->private;
1345
1346 seq_printf(m, "%s %lu\n", vmstat_text[off], *l);
1347 return 0;
1348}
1349
1350static void vmstat_stop(struct seq_file *m, void *arg)
1351{
1352 kfree(m->private);
1353 m->private = NULL;
1354}
1355
b6aa44ab 1356static const struct seq_operations vmstat_op = {
f6ac2354
CL
1357 .start = vmstat_start,
1358 .next = vmstat_next,
1359 .stop = vmstat_stop,
1360 .show = vmstat_show,
1361};
1362
b6aa44ab
AD
1363static int vmstat_open(struct inode *inode, struct file *file)
1364{
1365 return seq_open(file, &vmstat_op);
1366}
1367
1368static const struct file_operations proc_vmstat_file_operations = {
1369 .open = vmstat_open,
1370 .read = seq_read,
1371 .llseek = seq_lseek,
1372 .release = seq_release,
1373};
f6ac2354
CL
1374#endif /* CONFIG_PROC_FS */
1375
df9ecaba 1376#ifdef CONFIG_SMP
373ccbe5 1377static struct workqueue_struct *vmstat_wq;
d1187ed2 1378static DEFINE_PER_CPU(struct delayed_work, vmstat_work);
77461ab3 1379int sysctl_stat_interval __read_mostly = HZ;
7cc36bbd 1380static cpumask_var_t cpu_stat_off;
d1187ed2
CL
1381
1382static void vmstat_update(struct work_struct *w)
1383{
0eb77e98 1384 if (refresh_cpu_vm_stats(true)) {
7cc36bbd
CL
1385 /*
1386 * Counters were updated so we expect more updates
1387 * to occur in the future. Keep on running the
1388 * update worker thread.
f01f17d3
MH
1389 * If we were marked on cpu_stat_off clear the flag
1390 * so that vmstat_shepherd doesn't schedule us again.
7cc36bbd 1391 */
f01f17d3
MH
1392 if (!cpumask_test_and_clear_cpu(smp_processor_id(),
1393 cpu_stat_off)) {
1394 queue_delayed_work_on(smp_processor_id(), vmstat_wq,
1395 this_cpu_ptr(&vmstat_work),
1396 round_jiffies_relative(sysctl_stat_interval));
1397 }
176bed1d 1398 } else {
7cc36bbd
CL
1399 /*
1400 * We did not update any counters so the app may be in
1401 * a mode where it does not cause counter updates.
1402 * We may be uselessly running vmstat_update.
1403 * Defer the checking for differentials to the
1404 * shepherd thread on a different processor.
1405 */
587198ba 1406 cpumask_set_cpu(smp_processor_id(), cpu_stat_off);
7cc36bbd
CL
1407 }
1408}
1409
0eb77e98
CL
1410/*
1411 * Switch off vmstat processing and then fold all the remaining differentials
1412 * until the diffs stay at zero. The function is used by NOHZ and can only be
1413 * invoked when tick processing is not active.
1414 */
7cc36bbd
CL
1415/*
1416 * Check if the diffs for a certain cpu indicate that
1417 * an update is needed.
1418 */
1419static bool need_update(int cpu)
1420{
1421 struct zone *zone;
1422
1423 for_each_populated_zone(zone) {
1424 struct per_cpu_pageset *p = per_cpu_ptr(zone->pageset, cpu);
1425
1426 BUILD_BUG_ON(sizeof(p->vm_stat_diff[0]) != 1);
1427 /*
1428 * The fast way of checking if there are any vmstat diffs.
1429 * This works because the diffs are byte sized items.
1430 */
1431 if (memchr_inv(p->vm_stat_diff, 0, NR_VM_ZONE_STAT_ITEMS))
1432 return true;
1433
1434 }
1435 return false;
1436}
1437
f01f17d3
MH
1438void quiet_vmstat(void)
1439{
1440 if (system_state != SYSTEM_RUNNING)
1441 return;
1442
1443 /*
1444 * If we are already in hands of the shepherd then there
1445 * is nothing for us to do here.
1446 */
1447 if (cpumask_test_and_set_cpu(smp_processor_id(), cpu_stat_off))
1448 return;
1449
1450 if (!need_update(smp_processor_id()))
1451 return;
1452
1453 /*
1454 * Just refresh counters and do not care about the pending delayed
1455 * vmstat_update. It doesn't fire that often to matter and canceling
1456 * it would be too expensive from this path.
1457 * vmstat_shepherd will take care about that for us.
1458 */
1459 refresh_cpu_vm_stats(false);
1460}
1461
7cc36bbd
CL
1462
1463/*
1464 * Shepherd worker thread that checks the
1465 * differentials of processors that have their worker
1466 * threads for vm statistics updates disabled because of
1467 * inactivity.
1468 */
1469static void vmstat_shepherd(struct work_struct *w);
1470
0eb77e98 1471static DECLARE_DEFERRABLE_WORK(shepherd, vmstat_shepherd);
7cc36bbd
CL
1472
1473static void vmstat_shepherd(struct work_struct *w)
1474{
1475 int cpu;
1476
1477 get_online_cpus();
1478 /* Check processors whose vmstat worker threads have been disabled */
f01f17d3
MH
1479 for_each_cpu(cpu, cpu_stat_off) {
1480 struct delayed_work *dw = &per_cpu(vmstat_work, cpu);
7cc36bbd 1481
f01f17d3
MH
1482 if (need_update(cpu)) {
1483 if (cpumask_test_and_clear_cpu(cpu, cpu_stat_off))
1484 queue_delayed_work_on(cpu, vmstat_wq, dw, 0);
1485 } else {
1486 /*
1487 * Cancel the work if quiet_vmstat has put this
1488 * cpu on cpu_stat_off because the work item might
1489 * be still scheduled
1490 */
1491 cancel_delayed_work(dw);
1492 }
1493 }
7cc36bbd
CL
1494 put_online_cpus();
1495
1496 schedule_delayed_work(&shepherd,
98f4ebb2 1497 round_jiffies_relative(sysctl_stat_interval));
d1187ed2
CL
1498}
1499
7cc36bbd 1500static void __init start_shepherd_timer(void)
d1187ed2 1501{
7cc36bbd
CL
1502 int cpu;
1503
1504 for_each_possible_cpu(cpu)
ccde8bd4 1505 INIT_DEFERRABLE_WORK(per_cpu_ptr(&vmstat_work, cpu),
7cc36bbd
CL
1506 vmstat_update);
1507
1508 if (!alloc_cpumask_var(&cpu_stat_off, GFP_KERNEL))
1509 BUG();
1510 cpumask_copy(cpu_stat_off, cpu_online_mask);
d1187ed2 1511
751e5f5c 1512 vmstat_wq = alloc_workqueue("vmstat", WQ_FREEZABLE|WQ_MEM_RECLAIM, 0);
7cc36bbd
CL
1513 schedule_delayed_work(&shepherd,
1514 round_jiffies_relative(sysctl_stat_interval));
d1187ed2
CL
1515}
1516
807a1bd2
TK
1517static void vmstat_cpu_dead(int node)
1518{
1519 int cpu;
1520
1521 get_online_cpus();
1522 for_each_online_cpu(cpu)
1523 if (cpu_to_node(cpu) == node)
1524 goto end;
1525
1526 node_clear_state(node, N_CPU);
1527end:
1528 put_online_cpus();
1529}
1530
df9ecaba
CL
1531/*
1532 * Use the cpu notifier to insure that the thresholds are recalculated
1533 * when necessary.
1534 */
0db0628d 1535static int vmstat_cpuup_callback(struct notifier_block *nfb,
df9ecaba
CL
1536 unsigned long action,
1537 void *hcpu)
1538{
d1187ed2
CL
1539 long cpu = (long)hcpu;
1540
df9ecaba 1541 switch (action) {
d1187ed2
CL
1542 case CPU_ONLINE:
1543 case CPU_ONLINE_FROZEN:
5ee28a44 1544 refresh_zone_stat_thresholds();
ad596925 1545 node_set_state(cpu_to_node(cpu), N_CPU);
7cc36bbd 1546 cpumask_set_cpu(cpu, cpu_stat_off);
d1187ed2
CL
1547 break;
1548 case CPU_DOWN_PREPARE:
1549 case CPU_DOWN_PREPARE_FROZEN:
afe2c511 1550 cancel_delayed_work_sync(&per_cpu(vmstat_work, cpu));
7cc36bbd 1551 cpumask_clear_cpu(cpu, cpu_stat_off);
d1187ed2
CL
1552 break;
1553 case CPU_DOWN_FAILED:
1554 case CPU_DOWN_FAILED_FROZEN:
7cc36bbd 1555 cpumask_set_cpu(cpu, cpu_stat_off);
d1187ed2 1556 break;
ce421c79 1557 case CPU_DEAD:
8bb78442 1558 case CPU_DEAD_FROZEN:
ce421c79 1559 refresh_zone_stat_thresholds();
807a1bd2 1560 vmstat_cpu_dead(cpu_to_node(cpu));
ce421c79
AW
1561 break;
1562 default:
1563 break;
df9ecaba
CL
1564 }
1565 return NOTIFY_OK;
1566}
1567
0db0628d 1568static struct notifier_block vmstat_notifier =
df9ecaba 1569 { &vmstat_cpuup_callback, NULL, 0 };
8f32f7e5 1570#endif
df9ecaba 1571
e2fc88d0 1572static int __init setup_vmstat(void)
df9ecaba 1573{
8f32f7e5 1574#ifdef CONFIG_SMP
0be94bad
SB
1575 cpu_notifier_register_begin();
1576 __register_cpu_notifier(&vmstat_notifier);
d1187ed2 1577
7cc36bbd 1578 start_shepherd_timer();
0be94bad 1579 cpu_notifier_register_done();
8f32f7e5
AD
1580#endif
1581#ifdef CONFIG_PROC_FS
1582 proc_create("buddyinfo", S_IRUGO, NULL, &fragmentation_file_operations);
74e2e8e8 1583 proc_create("pagetypeinfo", S_IRUGO, NULL, &pagetypeinfo_file_ops);
b6aa44ab 1584 proc_create("vmstat", S_IRUGO, NULL, &proc_vmstat_file_operations);
5c9fe628 1585 proc_create("zoneinfo", S_IRUGO, NULL, &proc_zoneinfo_file_operations);
8f32f7e5 1586#endif
df9ecaba
CL
1587 return 0;
1588}
1589module_init(setup_vmstat)
d7a5752c
MG
1590
1591#if defined(CONFIG_DEBUG_FS) && defined(CONFIG_COMPACTION)
d7a5752c
MG
1592
1593/*
1594 * Return an index indicating how much of the available free memory is
1595 * unusable for an allocation of the requested size.
1596 */
1597static int unusable_free_index(unsigned int order,
1598 struct contig_page_info *info)
1599{
1600 /* No free memory is interpreted as all free memory is unusable */
1601 if (info->free_pages == 0)
1602 return 1000;
1603
1604 /*
1605 * Index should be a value between 0 and 1. Return a value to 3
1606 * decimal places.
1607 *
1608 * 0 => no fragmentation
1609 * 1 => high fragmentation
1610 */
1611 return div_u64((info->free_pages - (info->free_blocks_suitable << order)) * 1000ULL, info->free_pages);
1612
1613}
1614
1615static void unusable_show_print(struct seq_file *m,
1616 pg_data_t *pgdat, struct zone *zone)
1617{
1618 unsigned int order;
1619 int index;
1620 struct contig_page_info info;
1621
1622 seq_printf(m, "Node %d, zone %8s ",
1623 pgdat->node_id,
1624 zone->name);
1625 for (order = 0; order < MAX_ORDER; ++order) {
1626 fill_contig_page_info(zone, order, &info);
1627 index = unusable_free_index(order, &info);
1628 seq_printf(m, "%d.%03d ", index / 1000, index % 1000);
1629 }
1630
1631 seq_putc(m, '\n');
1632}
1633
1634/*
1635 * Display unusable free space index
1636 *
1637 * The unusable free space index measures how much of the available free
1638 * memory cannot be used to satisfy an allocation of a given size and is a
1639 * value between 0 and 1. The higher the value, the more of free memory is
1640 * unusable and by implication, the worse the external fragmentation is. This
1641 * can be expressed as a percentage by multiplying by 100.
1642 */
1643static int unusable_show(struct seq_file *m, void *arg)
1644{
1645 pg_data_t *pgdat = (pg_data_t *)arg;
1646
1647 /* check memoryless node */
a47b53c5 1648 if (!node_state(pgdat->node_id, N_MEMORY))
d7a5752c
MG
1649 return 0;
1650
1651 walk_zones_in_node(m, pgdat, unusable_show_print);
1652
1653 return 0;
1654}
1655
1656static const struct seq_operations unusable_op = {
1657 .start = frag_start,
1658 .next = frag_next,
1659 .stop = frag_stop,
1660 .show = unusable_show,
1661};
1662
1663static int unusable_open(struct inode *inode, struct file *file)
1664{
1665 return seq_open(file, &unusable_op);
1666}
1667
1668static const struct file_operations unusable_file_ops = {
1669 .open = unusable_open,
1670 .read = seq_read,
1671 .llseek = seq_lseek,
1672 .release = seq_release,
1673};
1674
f1a5ab12
MG
1675static void extfrag_show_print(struct seq_file *m,
1676 pg_data_t *pgdat, struct zone *zone)
1677{
1678 unsigned int order;
1679 int index;
1680
1681 /* Alloc on stack as interrupts are disabled for zone walk */
1682 struct contig_page_info info;
1683
1684 seq_printf(m, "Node %d, zone %8s ",
1685 pgdat->node_id,
1686 zone->name);
1687 for (order = 0; order < MAX_ORDER; ++order) {
1688 fill_contig_page_info(zone, order, &info);
56de7263 1689 index = __fragmentation_index(order, &info);
f1a5ab12
MG
1690 seq_printf(m, "%d.%03d ", index / 1000, index % 1000);
1691 }
1692
1693 seq_putc(m, '\n');
1694}
1695
1696/*
1697 * Display fragmentation index for orders that allocations would fail for
1698 */
1699static int extfrag_show(struct seq_file *m, void *arg)
1700{
1701 pg_data_t *pgdat = (pg_data_t *)arg;
1702
1703 walk_zones_in_node(m, pgdat, extfrag_show_print);
1704
1705 return 0;
1706}
1707
1708static const struct seq_operations extfrag_op = {
1709 .start = frag_start,
1710 .next = frag_next,
1711 .stop = frag_stop,
1712 .show = extfrag_show,
1713};
1714
1715static int extfrag_open(struct inode *inode, struct file *file)
1716{
1717 return seq_open(file, &extfrag_op);
1718}
1719
1720static const struct file_operations extfrag_file_ops = {
1721 .open = extfrag_open,
1722 .read = seq_read,
1723 .llseek = seq_lseek,
1724 .release = seq_release,
1725};
1726
d7a5752c
MG
1727static int __init extfrag_debug_init(void)
1728{
bde8bd8a
S
1729 struct dentry *extfrag_debug_root;
1730
d7a5752c
MG
1731 extfrag_debug_root = debugfs_create_dir("extfrag", NULL);
1732 if (!extfrag_debug_root)
1733 return -ENOMEM;
1734
1735 if (!debugfs_create_file("unusable_index", 0444,
1736 extfrag_debug_root, NULL, &unusable_file_ops))
bde8bd8a 1737 goto fail;
d7a5752c 1738
f1a5ab12
MG
1739 if (!debugfs_create_file("extfrag_index", 0444,
1740 extfrag_debug_root, NULL, &extfrag_file_ops))
bde8bd8a 1741 goto fail;
f1a5ab12 1742
d7a5752c 1743 return 0;
bde8bd8a
S
1744fail:
1745 debugfs_remove_recursive(extfrag_debug_root);
1746 return -ENOMEM;
d7a5752c
MG
1747}
1748
1749module_init(extfrag_debug_init);
1750#endif
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