1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Data Access Monitor
4 *
5 * Author: SeongJae Park <sj@kernel.org>
6 */
7
8 #define pr_fmt(fmt) "damon: " fmt
9
10 #include <linux/damon.h>
11 #include <linux/delay.h>
12 #include <linux/kthread.h>
13 #include <linux/memcontrol.h>
14 #include <linux/mm.h>
15 #include <linux/psi.h>
16 #include <linux/slab.h>
17 #include <linux/string.h>
18 #include <linux/string_choices.h>
19
20 #define CREATE_TRACE_POINTS
21 #include <trace/events/damon.h>
22
23 static DEFINE_MUTEX(damon_lock);
24 static int nr_running_ctxs;
25 static bool running_exclusive_ctxs;
26
27 static DEFINE_MUTEX(damon_ops_lock);
28 static struct damon_operations damon_registered_ops[NR_DAMON_OPS];
29
30 static struct kmem_cache *damon_region_cache __ro_after_init;
31
32 /* Should be called under damon_ops_lock with id smaller than NR_DAMON_OPS */
__damon_is_registered_ops(enum damon_ops_id id)33 static bool __damon_is_registered_ops(enum damon_ops_id id)
34 {
35 struct damon_operations empty_ops = {};
36
37 if (!memcmp(&empty_ops, &damon_registered_ops[id], sizeof(empty_ops)))
38 return false;
39 return true;
40 }
41
42 /**
43 * damon_is_registered_ops() - Check if a given damon_operations is registered.
44 * @id: Id of the damon_operations to check if registered.
45 *
46 * Return: true if the ops is set, false otherwise.
47 */
damon_is_registered_ops(enum damon_ops_id id)48 bool damon_is_registered_ops(enum damon_ops_id id)
49 {
50 bool registered;
51
52 if (id >= NR_DAMON_OPS)
53 return false;
54 mutex_lock(&damon_ops_lock);
55 registered = __damon_is_registered_ops(id);
56 mutex_unlock(&damon_ops_lock);
57 return registered;
58 }
59
60 /**
61 * damon_register_ops() - Register a monitoring operations set to DAMON.
62 * @ops: monitoring operations set to register.
63 *
64 * This function registers a monitoring operations set of valid &struct
65 * damon_operations->id so that others can find and use them later.
66 *
67 * Return: 0 on success, negative error code otherwise.
68 */
damon_register_ops(struct damon_operations * ops)69 int damon_register_ops(struct damon_operations *ops)
70 {
71 int err = 0;
72
73 if (ops->id >= NR_DAMON_OPS)
74 return -EINVAL;
75
76 mutex_lock(&damon_ops_lock);
77 /* Fail for already registered ops */
78 if (__damon_is_registered_ops(ops->id))
79 err = -EINVAL;
80 else
81 damon_registered_ops[ops->id] = *ops;
82 mutex_unlock(&damon_ops_lock);
83 return err;
84 }
85
86 /**
87 * damon_select_ops() - Select a monitoring operations to use with the context.
88 * @ctx: monitoring context to use the operations.
89 * @id: id of the registered monitoring operations to select.
90 *
91 * This function finds registered monitoring operations set of @id and make
92 * @ctx to use it.
93 *
94 * Return: 0 on success, negative error code otherwise.
95 */
damon_select_ops(struct damon_ctx * ctx,enum damon_ops_id id)96 int damon_select_ops(struct damon_ctx *ctx, enum damon_ops_id id)
97 {
98 int err = 0;
99
100 if (id >= NR_DAMON_OPS)
101 return -EINVAL;
102
103 mutex_lock(&damon_ops_lock);
104 if (!__damon_is_registered_ops(id))
105 err = -EINVAL;
106 else
107 ctx->ops = damon_registered_ops[id];
108 mutex_unlock(&damon_ops_lock);
109 return err;
110 }
111
112 /*
113 * Construct a damon_region struct
114 *
115 * Returns the pointer to the new struct if success, or NULL otherwise
116 */
damon_new_region(unsigned long start,unsigned long end)117 struct damon_region *damon_new_region(unsigned long start, unsigned long end)
118 {
119 struct damon_region *region;
120
121 region = kmem_cache_alloc(damon_region_cache, GFP_KERNEL);
122 if (!region)
123 return NULL;
124
125 region->ar.start = start;
126 region->ar.end = end;
127 region->nr_accesses = 0;
128 region->nr_accesses_bp = 0;
129 INIT_LIST_HEAD(®ion->list);
130
131 region->age = 0;
132 region->last_nr_accesses = 0;
133
134 return region;
135 }
136
damon_add_region(struct damon_region * r,struct damon_target * t)137 void damon_add_region(struct damon_region *r, struct damon_target *t)
138 {
139 list_add_tail(&r->list, &t->regions_list);
140 t->nr_regions++;
141 }
142
damon_del_region(struct damon_region * r,struct damon_target * t)143 static void damon_del_region(struct damon_region *r, struct damon_target *t)
144 {
145 list_del(&r->list);
146 t->nr_regions--;
147 }
148
damon_free_region(struct damon_region * r)149 static void damon_free_region(struct damon_region *r)
150 {
151 kmem_cache_free(damon_region_cache, r);
152 }
153
damon_destroy_region(struct damon_region * r,struct damon_target * t)154 void damon_destroy_region(struct damon_region *r, struct damon_target *t)
155 {
156 damon_del_region(r, t);
157 damon_free_region(r);
158 }
159
damon_is_last_region(struct damon_region * r,struct damon_target * t)160 static bool damon_is_last_region(struct damon_region *r,
161 struct damon_target *t)
162 {
163 return list_is_last(&r->list, &t->regions_list);
164 }
165
166 /*
167 * Check whether a region is intersecting an address range
168 *
169 * Returns true if it is.
170 */
damon_intersect(struct damon_region * r,struct damon_addr_range * re)171 static bool damon_intersect(struct damon_region *r,
172 struct damon_addr_range *re)
173 {
174 return !(r->ar.end <= re->start || re->end <= r->ar.start);
175 }
176
177 /*
178 * Fill holes in regions with new regions.
179 */
damon_fill_regions_holes(struct damon_region * first,struct damon_region * last,struct damon_target * t)180 static int damon_fill_regions_holes(struct damon_region *first,
181 struct damon_region *last, struct damon_target *t)
182 {
183 struct damon_region *r = first;
184
185 damon_for_each_region_from(r, t) {
186 struct damon_region *next, *newr;
187
188 if (r == last)
189 break;
190 next = damon_next_region(r);
191 if (r->ar.end != next->ar.start) {
192 newr = damon_new_region(r->ar.end, next->ar.start);
193 if (!newr)
194 return -ENOMEM;
195 damon_insert_region(newr, r, next, t);
196 }
197 }
198 return 0;
199 }
200
201 /*
202 * damon_set_regions() - Set regions of a target for given address ranges.
203 * @t: the given target.
204 * @ranges: array of new monitoring target ranges.
205 * @nr_ranges: length of @ranges.
206 * @min_region_sz: minimum region size.
207 *
208 * This function adds new regions to, or modify existing regions of a
209 * monitoring target to fit in specific ranges.
210 *
211 * Return: 0 if success, or negative error code otherwise.
212 */
damon_set_regions(struct damon_target * t,struct damon_addr_range * ranges,unsigned int nr_ranges,unsigned long min_region_sz)213 int damon_set_regions(struct damon_target *t, struct damon_addr_range *ranges,
214 unsigned int nr_ranges, unsigned long min_region_sz)
215 {
216 struct damon_region *r, *next;
217 unsigned int i;
218 int err;
219
220 /* Remove regions which are not in the new ranges */
221 damon_for_each_region_safe(r, next, t) {
222 for (i = 0; i < nr_ranges; i++) {
223 if (damon_intersect(r, &ranges[i]))
224 break;
225 }
226 if (i == nr_ranges)
227 damon_destroy_region(r, t);
228 }
229
230 r = damon_first_region(t);
231 /* Add new regions or resize existing regions to fit in the ranges */
232 for (i = 0; i < nr_ranges; i++) {
233 struct damon_region *first = NULL, *last, *newr;
234 struct damon_addr_range *range;
235
236 range = &ranges[i];
237 /* Get the first/last regions intersecting with the range */
238 damon_for_each_region_from(r, t) {
239 if (damon_intersect(r, range)) {
240 if (!first)
241 first = r;
242 last = r;
243 }
244 if (r->ar.start >= range->end)
245 break;
246 }
247 if (!first) {
248 /* no region intersects with this range */
249 newr = damon_new_region(
250 ALIGN_DOWN(range->start,
251 min_region_sz),
252 ALIGN(range->end, min_region_sz));
253 if (!newr)
254 return -ENOMEM;
255 damon_insert_region(newr, damon_prev_region(r), r, t);
256 } else {
257 /* resize intersecting regions to fit in this range */
258 first->ar.start = ALIGN_DOWN(range->start,
259 min_region_sz);
260 last->ar.end = ALIGN(range->end, min_region_sz);
261
262 /* fill possible holes in the range */
263 err = damon_fill_regions_holes(first, last, t);
264 if (err)
265 return err;
266 }
267 }
268 return 0;
269 }
270
damos_new_filter(enum damos_filter_type type,bool matching,bool allow)271 struct damos_filter *damos_new_filter(enum damos_filter_type type,
272 bool matching, bool allow)
273 {
274 struct damos_filter *filter;
275
276 filter = kmalloc_obj(*filter);
277 if (!filter)
278 return NULL;
279 filter->type = type;
280 filter->matching = matching;
281 filter->allow = allow;
282 INIT_LIST_HEAD(&filter->list);
283 return filter;
284 }
285
286 /**
287 * damos_filter_for_ops() - Return if the filter is ops-handled one.
288 * @type: type of the filter.
289 *
290 * Return: true if the filter of @type needs to be handled by ops layer, false
291 * otherwise.
292 */
damos_filter_for_ops(enum damos_filter_type type)293 bool damos_filter_for_ops(enum damos_filter_type type)
294 {
295 switch (type) {
296 case DAMOS_FILTER_TYPE_ADDR:
297 case DAMOS_FILTER_TYPE_TARGET:
298 return false;
299 default:
300 break;
301 }
302 return true;
303 }
304
damos_add_filter(struct damos * s,struct damos_filter * f)305 void damos_add_filter(struct damos *s, struct damos_filter *f)
306 {
307 if (damos_filter_for_ops(f->type))
308 list_add_tail(&f->list, &s->ops_filters);
309 else
310 list_add_tail(&f->list, &s->core_filters);
311 }
312
damos_del_filter(struct damos_filter * f)313 static void damos_del_filter(struct damos_filter *f)
314 {
315 list_del(&f->list);
316 }
317
damos_free_filter(struct damos_filter * f)318 static void damos_free_filter(struct damos_filter *f)
319 {
320 kfree(f);
321 }
322
damos_destroy_filter(struct damos_filter * f)323 void damos_destroy_filter(struct damos_filter *f)
324 {
325 damos_del_filter(f);
326 damos_free_filter(f);
327 }
328
damos_new_quota_goal(enum damos_quota_goal_metric metric,unsigned long target_value)329 struct damos_quota_goal *damos_new_quota_goal(
330 enum damos_quota_goal_metric metric,
331 unsigned long target_value)
332 {
333 struct damos_quota_goal *goal;
334
335 goal = kmalloc_obj(*goal);
336 if (!goal)
337 return NULL;
338 goal->metric = metric;
339 goal->target_value = target_value;
340 INIT_LIST_HEAD(&goal->list);
341 return goal;
342 }
343
damos_add_quota_goal(struct damos_quota * q,struct damos_quota_goal * g)344 void damos_add_quota_goal(struct damos_quota *q, struct damos_quota_goal *g)
345 {
346 list_add_tail(&g->list, &q->goals);
347 }
348
damos_del_quota_goal(struct damos_quota_goal * g)349 static void damos_del_quota_goal(struct damos_quota_goal *g)
350 {
351 list_del(&g->list);
352 }
353
damos_free_quota_goal(struct damos_quota_goal * g)354 static void damos_free_quota_goal(struct damos_quota_goal *g)
355 {
356 kfree(g);
357 }
358
damos_destroy_quota_goal(struct damos_quota_goal * g)359 void damos_destroy_quota_goal(struct damos_quota_goal *g)
360 {
361 damos_del_quota_goal(g);
362 damos_free_quota_goal(g);
363 }
364
365 /* initialize fields of @quota that normally API users wouldn't set */
damos_quota_init(struct damos_quota * quota)366 static struct damos_quota *damos_quota_init(struct damos_quota *quota)
367 {
368 quota->esz = 0;
369 quota->total_charged_sz = 0;
370 quota->total_charged_ns = 0;
371 quota->charged_sz = 0;
372 quota->charged_from = 0;
373 quota->charge_target_from = NULL;
374 quota->charge_addr_from = 0;
375 quota->esz_bp = 0;
376 return quota;
377 }
378
damon_new_scheme(struct damos_access_pattern * pattern,enum damos_action action,unsigned long apply_interval_us,struct damos_quota * quota,struct damos_watermarks * wmarks,int target_nid)379 struct damos *damon_new_scheme(struct damos_access_pattern *pattern,
380 enum damos_action action,
381 unsigned long apply_interval_us,
382 struct damos_quota *quota,
383 struct damos_watermarks *wmarks,
384 int target_nid)
385 {
386 struct damos *scheme;
387
388 scheme = kmalloc_obj(*scheme);
389 if (!scheme)
390 return NULL;
391 scheme->pattern = *pattern;
392 scheme->action = action;
393 scheme->apply_interval_us = apply_interval_us;
394 /*
395 * next_apply_sis will be set when kdamond starts. While kdamond is
396 * running, it will also updated when it is added to the DAMON context,
397 * or damon_attrs are updated.
398 */
399 scheme->next_apply_sis = 0;
400 scheme->walk_completed = false;
401 INIT_LIST_HEAD(&scheme->core_filters);
402 INIT_LIST_HEAD(&scheme->ops_filters);
403 scheme->stat = (struct damos_stat){};
404 scheme->max_nr_snapshots = 0;
405 INIT_LIST_HEAD(&scheme->list);
406
407 scheme->quota = *(damos_quota_init(quota));
408 /* quota.goals should be separately set by caller */
409 INIT_LIST_HEAD(&scheme->quota.goals);
410
411 scheme->wmarks = *wmarks;
412 scheme->wmarks.activated = true;
413
414 scheme->migrate_dests = (struct damos_migrate_dests){};
415 scheme->target_nid = target_nid;
416
417 return scheme;
418 }
419
damos_set_next_apply_sis(struct damos * s,struct damon_ctx * ctx)420 static void damos_set_next_apply_sis(struct damos *s, struct damon_ctx *ctx)
421 {
422 unsigned long sample_interval = ctx->attrs.sample_interval ?
423 ctx->attrs.sample_interval : 1;
424 unsigned long apply_interval = s->apply_interval_us ?
425 s->apply_interval_us : ctx->attrs.aggr_interval;
426
427 s->next_apply_sis = ctx->passed_sample_intervals +
428 apply_interval / sample_interval;
429 }
430
damon_add_scheme(struct damon_ctx * ctx,struct damos * s)431 void damon_add_scheme(struct damon_ctx *ctx, struct damos *s)
432 {
433 list_add_tail(&s->list, &ctx->schemes);
434 damos_set_next_apply_sis(s, ctx);
435 }
436
damon_del_scheme(struct damos * s)437 static void damon_del_scheme(struct damos *s)
438 {
439 list_del(&s->list);
440 }
441
damon_free_scheme(struct damos * s)442 static void damon_free_scheme(struct damos *s)
443 {
444 kfree(s);
445 }
446
damon_destroy_scheme(struct damos * s)447 void damon_destroy_scheme(struct damos *s)
448 {
449 struct damos_quota_goal *g, *g_next;
450 struct damos_filter *f, *next;
451
452 damos_for_each_quota_goal_safe(g, g_next, &s->quota)
453 damos_destroy_quota_goal(g);
454
455 damos_for_each_core_filter_safe(f, next, s)
456 damos_destroy_filter(f);
457
458 damos_for_each_ops_filter_safe(f, next, s)
459 damos_destroy_filter(f);
460
461 kfree(s->migrate_dests.node_id_arr);
462 kfree(s->migrate_dests.weight_arr);
463 damon_del_scheme(s);
464 damon_free_scheme(s);
465 }
466
467 /*
468 * Construct a damon_target struct
469 *
470 * Returns the pointer to the new struct if success, or NULL otherwise
471 */
damon_new_target(void)472 struct damon_target *damon_new_target(void)
473 {
474 struct damon_target *t;
475
476 t = kmalloc_obj(*t);
477 if (!t)
478 return NULL;
479
480 t->pid = NULL;
481 t->nr_regions = 0;
482 INIT_LIST_HEAD(&t->regions_list);
483 INIT_LIST_HEAD(&t->list);
484 t->obsolete = false;
485
486 return t;
487 }
488
damon_add_target(struct damon_ctx * ctx,struct damon_target * t)489 void damon_add_target(struct damon_ctx *ctx, struct damon_target *t)
490 {
491 list_add_tail(&t->list, &ctx->adaptive_targets);
492 }
493
damon_targets_empty(struct damon_ctx * ctx)494 bool damon_targets_empty(struct damon_ctx *ctx)
495 {
496 return list_empty(&ctx->adaptive_targets);
497 }
498
damon_del_target(struct damon_target * t)499 static void damon_del_target(struct damon_target *t)
500 {
501 list_del(&t->list);
502 }
503
damon_free_target(struct damon_target * t)504 void damon_free_target(struct damon_target *t)
505 {
506 struct damon_region *r, *next;
507
508 damon_for_each_region_safe(r, next, t)
509 damon_free_region(r);
510 kfree(t);
511 }
512
damon_destroy_target(struct damon_target * t,struct damon_ctx * ctx)513 void damon_destroy_target(struct damon_target *t, struct damon_ctx *ctx)
514 {
515
516 if (ctx && ctx->ops.cleanup_target)
517 ctx->ops.cleanup_target(t);
518
519 damon_del_target(t);
520 damon_free_target(t);
521 }
522
damon_nr_regions(struct damon_target * t)523 unsigned int damon_nr_regions(struct damon_target *t)
524 {
525 return t->nr_regions;
526 }
527
damon_new_ctx(void)528 struct damon_ctx *damon_new_ctx(void)
529 {
530 struct damon_ctx *ctx;
531
532 ctx = kzalloc_obj(*ctx);
533 if (!ctx)
534 return NULL;
535
536 init_completion(&ctx->kdamond_started);
537
538 ctx->attrs.sample_interval = 5 * 1000;
539 ctx->attrs.aggr_interval = 100 * 1000;
540 ctx->attrs.ops_update_interval = 60 * 1000 * 1000;
541
542 ctx->passed_sample_intervals = 0;
543 /* These will be set from kdamond_init_ctx() */
544 ctx->next_aggregation_sis = 0;
545 ctx->next_ops_update_sis = 0;
546
547 mutex_init(&ctx->kdamond_lock);
548 INIT_LIST_HEAD(&ctx->call_controls);
549 mutex_init(&ctx->call_controls_lock);
550 mutex_init(&ctx->walk_control_lock);
551
552 ctx->attrs.min_nr_regions = 10;
553 ctx->attrs.max_nr_regions = 1000;
554
555 ctx->addr_unit = 1;
556 ctx->min_region_sz = DAMON_MIN_REGION_SZ;
557
558 INIT_LIST_HEAD(&ctx->adaptive_targets);
559 INIT_LIST_HEAD(&ctx->schemes);
560
561 return ctx;
562 }
563
damon_destroy_targets(struct damon_ctx * ctx)564 static void damon_destroy_targets(struct damon_ctx *ctx)
565 {
566 struct damon_target *t, *next_t;
567
568 damon_for_each_target_safe(t, next_t, ctx)
569 damon_destroy_target(t, ctx);
570 }
571
damon_destroy_ctx(struct damon_ctx * ctx)572 void damon_destroy_ctx(struct damon_ctx *ctx)
573 {
574 struct damos *s, *next_s;
575
576 damon_destroy_targets(ctx);
577
578 damon_for_each_scheme_safe(s, next_s, ctx)
579 damon_destroy_scheme(s);
580
581 kfree(ctx);
582 }
583
damon_attrs_equals(const struct damon_attrs * attrs1,const struct damon_attrs * attrs2)584 static bool damon_attrs_equals(const struct damon_attrs *attrs1,
585 const struct damon_attrs *attrs2)
586 {
587 const struct damon_intervals_goal *ig1 = &attrs1->intervals_goal;
588 const struct damon_intervals_goal *ig2 = &attrs2->intervals_goal;
589
590 return attrs1->sample_interval == attrs2->sample_interval &&
591 attrs1->aggr_interval == attrs2->aggr_interval &&
592 attrs1->ops_update_interval == attrs2->ops_update_interval &&
593 attrs1->min_nr_regions == attrs2->min_nr_regions &&
594 attrs1->max_nr_regions == attrs2->max_nr_regions &&
595 ig1->access_bp == ig2->access_bp &&
596 ig1->aggrs == ig2->aggrs &&
597 ig1->min_sample_us == ig2->min_sample_us &&
598 ig1->max_sample_us == ig2->max_sample_us;
599 }
600
damon_age_for_new_attrs(unsigned int age,struct damon_attrs * old_attrs,struct damon_attrs * new_attrs)601 static unsigned int damon_age_for_new_attrs(unsigned int age,
602 struct damon_attrs *old_attrs, struct damon_attrs *new_attrs)
603 {
604 return age * old_attrs->aggr_interval / new_attrs->aggr_interval;
605 }
606
607 /* convert access ratio in bp (per 10,000) to nr_accesses */
damon_accesses_bp_to_nr_accesses(unsigned int accesses_bp,struct damon_attrs * attrs)608 static unsigned int damon_accesses_bp_to_nr_accesses(
609 unsigned int accesses_bp, struct damon_attrs *attrs)
610 {
611 return accesses_bp * damon_max_nr_accesses(attrs) / 10000;
612 }
613
614 /*
615 * Convert nr_accesses to access ratio in bp (per 10,000).
616 *
617 * Callers should ensure attrs.aggr_interval is not zero, like
618 * damon_update_monitoring_results() does . Otherwise, divide-by-zero would
619 * happen.
620 */
damon_nr_accesses_to_accesses_bp(unsigned int nr_accesses,struct damon_attrs * attrs)621 static unsigned int damon_nr_accesses_to_accesses_bp(
622 unsigned int nr_accesses, struct damon_attrs *attrs)
623 {
624 return nr_accesses * 10000 / damon_max_nr_accesses(attrs);
625 }
626
damon_nr_accesses_for_new_attrs(unsigned int nr_accesses,struct damon_attrs * old_attrs,struct damon_attrs * new_attrs)627 static unsigned int damon_nr_accesses_for_new_attrs(unsigned int nr_accesses,
628 struct damon_attrs *old_attrs, struct damon_attrs *new_attrs)
629 {
630 return damon_accesses_bp_to_nr_accesses(
631 damon_nr_accesses_to_accesses_bp(
632 nr_accesses, old_attrs),
633 new_attrs);
634 }
635
damon_update_monitoring_result(struct damon_region * r,struct damon_attrs * old_attrs,struct damon_attrs * new_attrs,bool aggregating)636 static void damon_update_monitoring_result(struct damon_region *r,
637 struct damon_attrs *old_attrs, struct damon_attrs *new_attrs,
638 bool aggregating)
639 {
640 if (!aggregating) {
641 r->nr_accesses = damon_nr_accesses_for_new_attrs(
642 r->nr_accesses, old_attrs, new_attrs);
643 r->nr_accesses_bp = r->nr_accesses * 10000;
644 } else {
645 /*
646 * if this is called in the middle of the aggregation, reset
647 * the aggregations we made so far for this aggregation
648 * interval. In other words, make the status like
649 * kdamond_reset_aggregated() is called.
650 */
651 r->last_nr_accesses = damon_nr_accesses_for_new_attrs(
652 r->last_nr_accesses, old_attrs, new_attrs);
653 r->nr_accesses_bp = r->last_nr_accesses * 10000;
654 r->nr_accesses = 0;
655 }
656 r->age = damon_age_for_new_attrs(r->age, old_attrs, new_attrs);
657 }
658
659 /*
660 * region->nr_accesses is the number of sampling intervals in the last
661 * aggregation interval that access to the region has found, and region->age is
662 * the number of aggregation intervals that its access pattern has maintained.
663 * For the reason, the real meaning of the two fields depend on current
664 * sampling interval and aggregation interval. This function updates
665 * ->nr_accesses and ->age of given damon_ctx's regions for new damon_attrs.
666 */
damon_update_monitoring_results(struct damon_ctx * ctx,struct damon_attrs * new_attrs,bool aggregating)667 static void damon_update_monitoring_results(struct damon_ctx *ctx,
668 struct damon_attrs *new_attrs, bool aggregating)
669 {
670 struct damon_attrs *old_attrs = &ctx->attrs;
671 struct damon_target *t;
672 struct damon_region *r;
673
674 /* if any interval is zero, simply forgive conversion */
675 if (!old_attrs->sample_interval || !old_attrs->aggr_interval ||
676 !new_attrs->sample_interval ||
677 !new_attrs->aggr_interval)
678 return;
679
680 damon_for_each_target(t, ctx)
681 damon_for_each_region(r, t)
682 damon_update_monitoring_result(
683 r, old_attrs, new_attrs, aggregating);
684 }
685
686 /*
687 * damon_valid_intervals_goal() - return if the intervals goal of @attrs is
688 * valid.
689 */
damon_valid_intervals_goal(struct damon_attrs * attrs)690 static bool damon_valid_intervals_goal(struct damon_attrs *attrs)
691 {
692 struct damon_intervals_goal *goal = &attrs->intervals_goal;
693
694 /* tuning is disabled */
695 if (!goal->aggrs)
696 return true;
697 if (goal->min_sample_us > goal->max_sample_us)
698 return false;
699 if (attrs->sample_interval < goal->min_sample_us ||
700 goal->max_sample_us < attrs->sample_interval)
701 return false;
702 return true;
703 }
704
705 /**
706 * damon_set_attrs() - Set attributes for the monitoring.
707 * @ctx: monitoring context
708 * @attrs: monitoring attributes
709 *
710 * This function should be called while the kdamond is not running, an access
711 * check results aggregation is not ongoing (e.g., from damon_call().
712 *
713 * Every time interval is in micro-seconds.
714 *
715 * Return: 0 on success, negative error code otherwise.
716 */
damon_set_attrs(struct damon_ctx * ctx,struct damon_attrs * attrs)717 int damon_set_attrs(struct damon_ctx *ctx, struct damon_attrs *attrs)
718 {
719 unsigned long sample_interval = attrs->sample_interval ?
720 attrs->sample_interval : 1;
721 struct damos *s;
722 bool aggregating = ctx->passed_sample_intervals <
723 ctx->next_aggregation_sis;
724
725 if (!damon_valid_intervals_goal(attrs))
726 return -EINVAL;
727
728 if (attrs->min_nr_regions < 3)
729 return -EINVAL;
730 if (attrs->min_nr_regions > attrs->max_nr_regions)
731 return -EINVAL;
732 if (attrs->sample_interval > attrs->aggr_interval)
733 return -EINVAL;
734
735 /* calls from core-external doesn't set this. */
736 if (!attrs->aggr_samples)
737 attrs->aggr_samples = attrs->aggr_interval / sample_interval;
738
739 ctx->next_aggregation_sis = ctx->passed_sample_intervals +
740 attrs->aggr_interval / sample_interval;
741 ctx->next_ops_update_sis = ctx->passed_sample_intervals +
742 attrs->ops_update_interval / sample_interval;
743
744 damon_update_monitoring_results(ctx, attrs, aggregating);
745 ctx->attrs = *attrs;
746
747 damon_for_each_scheme(s, ctx)
748 damos_set_next_apply_sis(s, ctx);
749
750 return 0;
751 }
752
753 /**
754 * damon_set_schemes() - Set data access monitoring based operation schemes.
755 * @ctx: monitoring context
756 * @schemes: array of the schemes
757 * @nr_schemes: number of entries in @schemes
758 *
759 * This function should not be called while the kdamond of the context is
760 * running.
761 */
damon_set_schemes(struct damon_ctx * ctx,struct damos ** schemes,ssize_t nr_schemes)762 void damon_set_schemes(struct damon_ctx *ctx, struct damos **schemes,
763 ssize_t nr_schemes)
764 {
765 struct damos *s, *next;
766 ssize_t i;
767
768 damon_for_each_scheme_safe(s, next, ctx)
769 damon_destroy_scheme(s);
770 for (i = 0; i < nr_schemes; i++)
771 damon_add_scheme(ctx, schemes[i]);
772 }
773
damos_nth_quota_goal(int n,struct damos_quota * q)774 static struct damos_quota_goal *damos_nth_quota_goal(
775 int n, struct damos_quota *q)
776 {
777 struct damos_quota_goal *goal;
778 int i = 0;
779
780 damos_for_each_quota_goal(goal, q) {
781 if (i++ == n)
782 return goal;
783 }
784 return NULL;
785 }
786
damos_commit_quota_goal_union(struct damos_quota_goal * dst,struct damos_quota_goal * src)787 static void damos_commit_quota_goal_union(
788 struct damos_quota_goal *dst, struct damos_quota_goal *src)
789 {
790 switch (dst->metric) {
791 case DAMOS_QUOTA_NODE_MEM_USED_BP:
792 case DAMOS_QUOTA_NODE_MEM_FREE_BP:
793 dst->nid = src->nid;
794 break;
795 case DAMOS_QUOTA_NODE_MEMCG_USED_BP:
796 case DAMOS_QUOTA_NODE_MEMCG_FREE_BP:
797 dst->nid = src->nid;
798 dst->memcg_id = src->memcg_id;
799 break;
800 default:
801 break;
802 }
803 }
804
damos_commit_quota_goal(struct damos_quota_goal * dst,struct damos_quota_goal * src)805 static void damos_commit_quota_goal(
806 struct damos_quota_goal *dst, struct damos_quota_goal *src)
807 {
808 dst->metric = src->metric;
809 dst->target_value = src->target_value;
810 if (dst->metric == DAMOS_QUOTA_USER_INPUT)
811 dst->current_value = src->current_value;
812 /* keep last_psi_total as is, since it will be updated in next cycle */
813 damos_commit_quota_goal_union(dst, src);
814 }
815
816 /**
817 * damos_commit_quota_goals() - Commit DAMOS quota goals to another quota.
818 * @dst: The commit destination DAMOS quota.
819 * @src: The commit source DAMOS quota.
820 *
821 * Copies user-specified parameters for quota goals from @src to @dst. Users
822 * should use this function for quota goals-level parameters update of running
823 * DAMON contexts, instead of manual in-place updates.
824 *
825 * This function should be called from parameters-update safe context, like
826 * damon_call().
827 */
damos_commit_quota_goals(struct damos_quota * dst,struct damos_quota * src)828 int damos_commit_quota_goals(struct damos_quota *dst, struct damos_quota *src)
829 {
830 struct damos_quota_goal *dst_goal, *next, *src_goal, *new_goal;
831 int i = 0, j = 0;
832
833 damos_for_each_quota_goal_safe(dst_goal, next, dst) {
834 src_goal = damos_nth_quota_goal(i++, src);
835 if (src_goal)
836 damos_commit_quota_goal(dst_goal, src_goal);
837 else
838 damos_destroy_quota_goal(dst_goal);
839 }
840 damos_for_each_quota_goal_safe(src_goal, next, src) {
841 if (j++ < i)
842 continue;
843 new_goal = damos_new_quota_goal(
844 src_goal->metric, src_goal->target_value);
845 if (!new_goal)
846 return -ENOMEM;
847 damos_commit_quota_goal(new_goal, src_goal);
848 damos_add_quota_goal(dst, new_goal);
849 }
850 return 0;
851 }
852
damos_commit_quota(struct damos_quota * dst,struct damos_quota * src)853 static int damos_commit_quota(struct damos_quota *dst, struct damos_quota *src)
854 {
855 int err;
856
857 dst->reset_interval = src->reset_interval;
858 dst->ms = src->ms;
859 dst->sz = src->sz;
860 err = damos_commit_quota_goals(dst, src);
861 if (err)
862 return err;
863 dst->weight_sz = src->weight_sz;
864 dst->weight_nr_accesses = src->weight_nr_accesses;
865 dst->weight_age = src->weight_age;
866 return 0;
867 }
868
damos_nth_core_filter(int n,struct damos * s)869 static struct damos_filter *damos_nth_core_filter(int n, struct damos *s)
870 {
871 struct damos_filter *filter;
872 int i = 0;
873
874 damos_for_each_core_filter(filter, s) {
875 if (i++ == n)
876 return filter;
877 }
878 return NULL;
879 }
880
damos_nth_ops_filter(int n,struct damos * s)881 static struct damos_filter *damos_nth_ops_filter(int n, struct damos *s)
882 {
883 struct damos_filter *filter;
884 int i = 0;
885
886 damos_for_each_ops_filter(filter, s) {
887 if (i++ == n)
888 return filter;
889 }
890 return NULL;
891 }
892
damos_commit_filter_arg(struct damos_filter * dst,struct damos_filter * src)893 static void damos_commit_filter_arg(
894 struct damos_filter *dst, struct damos_filter *src)
895 {
896 switch (dst->type) {
897 case DAMOS_FILTER_TYPE_MEMCG:
898 dst->memcg_id = src->memcg_id;
899 break;
900 case DAMOS_FILTER_TYPE_ADDR:
901 dst->addr_range = src->addr_range;
902 break;
903 case DAMOS_FILTER_TYPE_TARGET:
904 dst->target_idx = src->target_idx;
905 break;
906 case DAMOS_FILTER_TYPE_HUGEPAGE_SIZE:
907 dst->sz_range = src->sz_range;
908 break;
909 default:
910 break;
911 }
912 }
913
damos_commit_filter(struct damos_filter * dst,struct damos_filter * src)914 static void damos_commit_filter(
915 struct damos_filter *dst, struct damos_filter *src)
916 {
917 dst->type = src->type;
918 dst->matching = src->matching;
919 dst->allow = src->allow;
920 damos_commit_filter_arg(dst, src);
921 }
922
damos_commit_core_filters(struct damos * dst,struct damos * src)923 static int damos_commit_core_filters(struct damos *dst, struct damos *src)
924 {
925 struct damos_filter *dst_filter, *next, *src_filter, *new_filter;
926 int i = 0, j = 0;
927
928 damos_for_each_core_filter_safe(dst_filter, next, dst) {
929 src_filter = damos_nth_core_filter(i++, src);
930 if (src_filter)
931 damos_commit_filter(dst_filter, src_filter);
932 else
933 damos_destroy_filter(dst_filter);
934 }
935
936 damos_for_each_core_filter_safe(src_filter, next, src) {
937 if (j++ < i)
938 continue;
939
940 new_filter = damos_new_filter(
941 src_filter->type, src_filter->matching,
942 src_filter->allow);
943 if (!new_filter)
944 return -ENOMEM;
945 damos_commit_filter_arg(new_filter, src_filter);
946 damos_add_filter(dst, new_filter);
947 }
948 return 0;
949 }
950
damos_commit_ops_filters(struct damos * dst,struct damos * src)951 static int damos_commit_ops_filters(struct damos *dst, struct damos *src)
952 {
953 struct damos_filter *dst_filter, *next, *src_filter, *new_filter;
954 int i = 0, j = 0;
955
956 damos_for_each_ops_filter_safe(dst_filter, next, dst) {
957 src_filter = damos_nth_ops_filter(i++, src);
958 if (src_filter)
959 damos_commit_filter(dst_filter, src_filter);
960 else
961 damos_destroy_filter(dst_filter);
962 }
963
964 damos_for_each_ops_filter_safe(src_filter, next, src) {
965 if (j++ < i)
966 continue;
967
968 new_filter = damos_new_filter(
969 src_filter->type, src_filter->matching,
970 src_filter->allow);
971 if (!new_filter)
972 return -ENOMEM;
973 damos_commit_filter_arg(new_filter, src_filter);
974 damos_add_filter(dst, new_filter);
975 }
976 return 0;
977 }
978
979 /**
980 * damos_filters_default_reject() - decide whether to reject memory that didn't
981 * match with any given filter.
982 * @filters: Given DAMOS filters of a group.
983 */
damos_filters_default_reject(struct list_head * filters)984 static bool damos_filters_default_reject(struct list_head *filters)
985 {
986 struct damos_filter *last_filter;
987
988 if (list_empty(filters))
989 return false;
990 last_filter = list_last_entry(filters, struct damos_filter, list);
991 return last_filter->allow;
992 }
993
damos_set_filters_default_reject(struct damos * s)994 static void damos_set_filters_default_reject(struct damos *s)
995 {
996 if (!list_empty(&s->ops_filters))
997 s->core_filters_default_reject = false;
998 else
999 s->core_filters_default_reject =
1000 damos_filters_default_reject(&s->core_filters);
1001 s->ops_filters_default_reject =
1002 damos_filters_default_reject(&s->ops_filters);
1003 }
1004
damos_commit_dests(struct damos_migrate_dests * dst,struct damos_migrate_dests * src)1005 static int damos_commit_dests(struct damos_migrate_dests *dst,
1006 struct damos_migrate_dests *src)
1007 {
1008 if (dst->nr_dests != src->nr_dests) {
1009 kfree(dst->node_id_arr);
1010 kfree(dst->weight_arr);
1011
1012 dst->node_id_arr = kmalloc_array(src->nr_dests,
1013 sizeof(*dst->node_id_arr), GFP_KERNEL);
1014 if (!dst->node_id_arr) {
1015 dst->weight_arr = NULL;
1016 return -ENOMEM;
1017 }
1018
1019 dst->weight_arr = kmalloc_array(src->nr_dests,
1020 sizeof(*dst->weight_arr), GFP_KERNEL);
1021 if (!dst->weight_arr) {
1022 /* ->node_id_arr will be freed by scheme destruction */
1023 return -ENOMEM;
1024 }
1025 }
1026
1027 dst->nr_dests = src->nr_dests;
1028 for (int i = 0; i < src->nr_dests; i++) {
1029 dst->node_id_arr[i] = src->node_id_arr[i];
1030 dst->weight_arr[i] = src->weight_arr[i];
1031 }
1032
1033 return 0;
1034 }
1035
damos_commit_filters(struct damos * dst,struct damos * src)1036 static int damos_commit_filters(struct damos *dst, struct damos *src)
1037 {
1038 int err;
1039
1040 err = damos_commit_core_filters(dst, src);
1041 if (err)
1042 return err;
1043 err = damos_commit_ops_filters(dst, src);
1044 if (err)
1045 return err;
1046 damos_set_filters_default_reject(dst);
1047 return 0;
1048 }
1049
damon_nth_scheme(int n,struct damon_ctx * ctx)1050 static struct damos *damon_nth_scheme(int n, struct damon_ctx *ctx)
1051 {
1052 struct damos *s;
1053 int i = 0;
1054
1055 damon_for_each_scheme(s, ctx) {
1056 if (i++ == n)
1057 return s;
1058 }
1059 return NULL;
1060 }
1061
damos_commit(struct damos * dst,struct damos * src)1062 static int damos_commit(struct damos *dst, struct damos *src)
1063 {
1064 int err;
1065
1066 dst->pattern = src->pattern;
1067 dst->action = src->action;
1068 dst->apply_interval_us = src->apply_interval_us;
1069
1070 err = damos_commit_quota(&dst->quota, &src->quota);
1071 if (err)
1072 return err;
1073
1074 dst->wmarks = src->wmarks;
1075 dst->target_nid = src->target_nid;
1076
1077 err = damos_commit_dests(&dst->migrate_dests, &src->migrate_dests);
1078 if (err)
1079 return err;
1080
1081 err = damos_commit_filters(dst, src);
1082 if (err)
1083 return err;
1084
1085 dst->max_nr_snapshots = src->max_nr_snapshots;
1086 return 0;
1087 }
1088
damon_commit_schemes(struct damon_ctx * dst,struct damon_ctx * src)1089 static int damon_commit_schemes(struct damon_ctx *dst, struct damon_ctx *src)
1090 {
1091 struct damos *dst_scheme, *next, *src_scheme, *new_scheme;
1092 int i = 0, j = 0, err;
1093
1094 damon_for_each_scheme_safe(dst_scheme, next, dst) {
1095 src_scheme = damon_nth_scheme(i++, src);
1096 if (src_scheme) {
1097 err = damos_commit(dst_scheme, src_scheme);
1098 if (err)
1099 return err;
1100 } else {
1101 damon_destroy_scheme(dst_scheme);
1102 }
1103 }
1104
1105 damon_for_each_scheme_safe(src_scheme, next, src) {
1106 if (j++ < i)
1107 continue;
1108 new_scheme = damon_new_scheme(&src_scheme->pattern,
1109 src_scheme->action,
1110 src_scheme->apply_interval_us,
1111 &src_scheme->quota, &src_scheme->wmarks,
1112 NUMA_NO_NODE);
1113 if (!new_scheme)
1114 return -ENOMEM;
1115 err = damos_commit(new_scheme, src_scheme);
1116 if (err) {
1117 damon_destroy_scheme(new_scheme);
1118 return err;
1119 }
1120 damon_add_scheme(dst, new_scheme);
1121 }
1122 return 0;
1123 }
1124
damon_nth_target(int n,struct damon_ctx * ctx)1125 static struct damon_target *damon_nth_target(int n, struct damon_ctx *ctx)
1126 {
1127 struct damon_target *t;
1128 int i = 0;
1129
1130 damon_for_each_target(t, ctx) {
1131 if (i++ == n)
1132 return t;
1133 }
1134 return NULL;
1135 }
1136
1137 /*
1138 * The caller should ensure the regions of @src are
1139 * 1. valid (end >= src) and
1140 * 2. sorted by starting address.
1141 *
1142 * If @src has no region, @dst keeps current regions.
1143 */
damon_commit_target_regions(struct damon_target * dst,struct damon_target * src,unsigned long src_min_region_sz)1144 static int damon_commit_target_regions(struct damon_target *dst,
1145 struct damon_target *src, unsigned long src_min_region_sz)
1146 {
1147 struct damon_region *src_region;
1148 struct damon_addr_range *ranges;
1149 int i = 0, err;
1150
1151 damon_for_each_region(src_region, src)
1152 i++;
1153 if (!i)
1154 return 0;
1155
1156 ranges = kmalloc_objs(*ranges, i, GFP_KERNEL | __GFP_NOWARN);
1157 if (!ranges)
1158 return -ENOMEM;
1159 i = 0;
1160 damon_for_each_region(src_region, src)
1161 ranges[i++] = src_region->ar;
1162 err = damon_set_regions(dst, ranges, i, src_min_region_sz);
1163 kfree(ranges);
1164 return err;
1165 }
1166
damon_commit_target(struct damon_target * dst,bool dst_has_pid,struct damon_target * src,bool src_has_pid,unsigned long src_min_region_sz)1167 static int damon_commit_target(
1168 struct damon_target *dst, bool dst_has_pid,
1169 struct damon_target *src, bool src_has_pid,
1170 unsigned long src_min_region_sz)
1171 {
1172 int err;
1173
1174 err = damon_commit_target_regions(dst, src, src_min_region_sz);
1175 if (err)
1176 return err;
1177 if (dst_has_pid)
1178 put_pid(dst->pid);
1179 if (src_has_pid)
1180 get_pid(src->pid);
1181 dst->pid = src->pid;
1182 return 0;
1183 }
1184
damon_commit_targets(struct damon_ctx * dst,struct damon_ctx * src)1185 static int damon_commit_targets(
1186 struct damon_ctx *dst, struct damon_ctx *src)
1187 {
1188 struct damon_target *dst_target, *next, *src_target, *new_target;
1189 int i = 0, j = 0, err;
1190
1191 damon_for_each_target_safe(dst_target, next, dst) {
1192 src_target = damon_nth_target(i++, src);
1193 /*
1194 * If src target is obsolete, do not commit the parameters to
1195 * the dst target, and further remove the dst target.
1196 */
1197 if (src_target && !src_target->obsolete) {
1198 err = damon_commit_target(
1199 dst_target, damon_target_has_pid(dst),
1200 src_target, damon_target_has_pid(src),
1201 src->min_region_sz);
1202 if (err)
1203 return err;
1204 } else {
1205 struct damos *s;
1206
1207 damon_destroy_target(dst_target, dst);
1208 damon_for_each_scheme(s, dst) {
1209 if (s->quota.charge_target_from == dst_target) {
1210 s->quota.charge_target_from = NULL;
1211 s->quota.charge_addr_from = 0;
1212 }
1213 }
1214 }
1215 }
1216
1217 damon_for_each_target_safe(src_target, next, src) {
1218 if (j++ < i)
1219 continue;
1220 /* target to remove has no matching dst */
1221 if (src_target->obsolete)
1222 return -EINVAL;
1223 new_target = damon_new_target();
1224 if (!new_target)
1225 return -ENOMEM;
1226 err = damon_commit_target(new_target, false,
1227 src_target, damon_target_has_pid(src),
1228 src->min_region_sz);
1229 if (err) {
1230 damon_destroy_target(new_target, NULL);
1231 return err;
1232 }
1233 damon_add_target(dst, new_target);
1234 }
1235 return 0;
1236 }
1237
1238 /**
1239 * damon_commit_ctx() - Commit parameters of a DAMON context to another.
1240 * @dst: The commit destination DAMON context.
1241 * @src: The commit source DAMON context.
1242 *
1243 * This function copies user-specified parameters from @src to @dst and update
1244 * the internal status and results accordingly. Users should use this function
1245 * for context-level parameters update of running context, instead of manual
1246 * in-place updates.
1247 *
1248 * This function should be called from parameters-update safe context, like
1249 * damon_call().
1250 */
damon_commit_ctx(struct damon_ctx * dst,struct damon_ctx * src)1251 int damon_commit_ctx(struct damon_ctx *dst, struct damon_ctx *src)
1252 {
1253 int err;
1254
1255 if (!is_power_of_2(src->min_region_sz))
1256 return -EINVAL;
1257
1258 err = damon_commit_schemes(dst, src);
1259 if (err)
1260 return err;
1261 err = damon_commit_targets(dst, src);
1262 if (err)
1263 return err;
1264 /*
1265 * schemes and targets should be updated first, since
1266 * 1. damon_set_attrs() updates monitoring results of targets and
1267 * next_apply_sis of schemes, and
1268 * 2. ops update should be done after pid handling is done (target
1269 * committing require putting pids).
1270 */
1271 if (!damon_attrs_equals(&dst->attrs, &src->attrs)) {
1272 err = damon_set_attrs(dst, &src->attrs);
1273 if (err)
1274 return err;
1275 }
1276 dst->ops = src->ops;
1277 dst->addr_unit = src->addr_unit;
1278 dst->min_region_sz = src->min_region_sz;
1279
1280 return 0;
1281 }
1282
1283 /**
1284 * damon_nr_running_ctxs() - Return number of currently running contexts.
1285 */
damon_nr_running_ctxs(void)1286 int damon_nr_running_ctxs(void)
1287 {
1288 int nr_ctxs;
1289
1290 mutex_lock(&damon_lock);
1291 nr_ctxs = nr_running_ctxs;
1292 mutex_unlock(&damon_lock);
1293
1294 return nr_ctxs;
1295 }
1296
1297 /* Returns the size upper limit for each monitoring region */
damon_region_sz_limit(struct damon_ctx * ctx)1298 static unsigned long damon_region_sz_limit(struct damon_ctx *ctx)
1299 {
1300 struct damon_target *t;
1301 struct damon_region *r;
1302 unsigned long sz = 0;
1303
1304 damon_for_each_target(t, ctx) {
1305 damon_for_each_region(r, t)
1306 sz += damon_sz_region(r);
1307 }
1308
1309 if (ctx->attrs.min_nr_regions)
1310 sz /= ctx->attrs.min_nr_regions;
1311 if (sz < ctx->min_region_sz)
1312 sz = ctx->min_region_sz;
1313
1314 return sz;
1315 }
1316
1317 static int kdamond_fn(void *data);
1318
1319 /*
1320 * __damon_start() - Starts monitoring with given context.
1321 * @ctx: monitoring context
1322 *
1323 * This function should be called while damon_lock is hold.
1324 *
1325 * Return: 0 on success, negative error code otherwise.
1326 */
__damon_start(struct damon_ctx * ctx)1327 static int __damon_start(struct damon_ctx *ctx)
1328 {
1329 int err = -EBUSY;
1330
1331 mutex_lock(&ctx->kdamond_lock);
1332 if (!ctx->kdamond) {
1333 err = 0;
1334 reinit_completion(&ctx->kdamond_started);
1335 ctx->kdamond = kthread_run(kdamond_fn, ctx, "kdamond.%d",
1336 nr_running_ctxs);
1337 if (IS_ERR(ctx->kdamond)) {
1338 err = PTR_ERR(ctx->kdamond);
1339 ctx->kdamond = NULL;
1340 } else {
1341 wait_for_completion(&ctx->kdamond_started);
1342 }
1343 }
1344 mutex_unlock(&ctx->kdamond_lock);
1345
1346 return err;
1347 }
1348
1349 /**
1350 * damon_start() - Starts the monitorings for a given group of contexts.
1351 * @ctxs: an array of the pointers for contexts to start monitoring
1352 * @nr_ctxs: size of @ctxs
1353 * @exclusive: exclusiveness of this contexts group
1354 *
1355 * This function starts a group of monitoring threads for a group of monitoring
1356 * contexts. One thread per each context is created and run in parallel. The
1357 * caller should handle synchronization between the threads by itself. If
1358 * @exclusive is true and a group of threads that created by other
1359 * 'damon_start()' call is currently running, this function does nothing but
1360 * returns -EBUSY.
1361 *
1362 * Return: 0 on success, negative error code otherwise.
1363 */
damon_start(struct damon_ctx ** ctxs,int nr_ctxs,bool exclusive)1364 int damon_start(struct damon_ctx **ctxs, int nr_ctxs, bool exclusive)
1365 {
1366 int i;
1367 int err = 0;
1368
1369 mutex_lock(&damon_lock);
1370 if ((exclusive && nr_running_ctxs) ||
1371 (!exclusive && running_exclusive_ctxs)) {
1372 mutex_unlock(&damon_lock);
1373 return -EBUSY;
1374 }
1375
1376 for (i = 0; i < nr_ctxs; i++) {
1377 err = __damon_start(ctxs[i]);
1378 if (err)
1379 break;
1380 nr_running_ctxs++;
1381 }
1382 if (exclusive && nr_running_ctxs)
1383 running_exclusive_ctxs = true;
1384 mutex_unlock(&damon_lock);
1385
1386 return err;
1387 }
1388
1389 /*
1390 * __damon_stop() - Stops monitoring of a given context.
1391 * @ctx: monitoring context
1392 *
1393 * Return: 0 on success, negative error code otherwise.
1394 */
__damon_stop(struct damon_ctx * ctx)1395 static int __damon_stop(struct damon_ctx *ctx)
1396 {
1397 struct task_struct *tsk;
1398
1399 mutex_lock(&ctx->kdamond_lock);
1400 tsk = ctx->kdamond;
1401 if (tsk) {
1402 get_task_struct(tsk);
1403 mutex_unlock(&ctx->kdamond_lock);
1404 kthread_stop_put(tsk);
1405 return 0;
1406 }
1407 mutex_unlock(&ctx->kdamond_lock);
1408
1409 return -EPERM;
1410 }
1411
1412 /**
1413 * damon_stop() - Stops the monitorings for a given group of contexts.
1414 * @ctxs: an array of the pointers for contexts to stop monitoring
1415 * @nr_ctxs: size of @ctxs
1416 *
1417 * Return: 0 on success, negative error code otherwise.
1418 */
damon_stop(struct damon_ctx ** ctxs,int nr_ctxs)1419 int damon_stop(struct damon_ctx **ctxs, int nr_ctxs)
1420 {
1421 int i, err = 0;
1422
1423 for (i = 0; i < nr_ctxs; i++) {
1424 /* nr_running_ctxs is decremented in kdamond_fn */
1425 err = __damon_stop(ctxs[i]);
1426 if (err)
1427 break;
1428 }
1429 return err;
1430 }
1431
1432 /**
1433 * damon_is_running() - Returns if a given DAMON context is running.
1434 * @ctx: The DAMON context to see if running.
1435 *
1436 * Return: true if @ctx is running, false otherwise.
1437 */
damon_is_running(struct damon_ctx * ctx)1438 bool damon_is_running(struct damon_ctx *ctx)
1439 {
1440 bool running;
1441
1442 mutex_lock(&ctx->kdamond_lock);
1443 running = ctx->kdamond != NULL;
1444 mutex_unlock(&ctx->kdamond_lock);
1445 return running;
1446 }
1447
1448 /**
1449 * damon_kdamond_pid() - Return pid of a given DAMON context's worker thread.
1450 * @ctx: The DAMON context of the question.
1451 *
1452 * Return: pid if @ctx is running, negative error code otherwise.
1453 */
damon_kdamond_pid(struct damon_ctx * ctx)1454 int damon_kdamond_pid(struct damon_ctx *ctx)
1455 {
1456 int pid = -EINVAL;
1457
1458 mutex_lock(&ctx->kdamond_lock);
1459 if (ctx->kdamond)
1460 pid = ctx->kdamond->pid;
1461 mutex_unlock(&ctx->kdamond_lock);
1462 return pid;
1463 }
1464
1465 /*
1466 * damon_call_handle_inactive_ctx() - handle DAMON call request that added to
1467 * an inactive context.
1468 * @ctx: The inactive DAMON context.
1469 * @control: Control variable of the call request.
1470 *
1471 * This function is called in a case that @control is added to @ctx but @ctx is
1472 * not running (inactive). See if @ctx handled @control or not, and cleanup
1473 * @control if it was not handled.
1474 *
1475 * Returns 0 if @control was handled by @ctx, negative error code otherwise.
1476 */
damon_call_handle_inactive_ctx(struct damon_ctx * ctx,struct damon_call_control * control)1477 static int damon_call_handle_inactive_ctx(
1478 struct damon_ctx *ctx, struct damon_call_control *control)
1479 {
1480 struct damon_call_control *c;
1481
1482 mutex_lock(&ctx->call_controls_lock);
1483 list_for_each_entry(c, &ctx->call_controls, list) {
1484 if (c == control) {
1485 list_del(&control->list);
1486 mutex_unlock(&ctx->call_controls_lock);
1487 return -EINVAL;
1488 }
1489 }
1490 mutex_unlock(&ctx->call_controls_lock);
1491 return 0;
1492 }
1493
1494 /**
1495 * damon_call() - Invoke a given function on DAMON worker thread (kdamond).
1496 * @ctx: DAMON context to call the function for.
1497 * @control: Control variable of the call request.
1498 *
1499 * Ask DAMON worker thread (kdamond) of @ctx to call a function with an
1500 * argument data that respectively passed via &damon_call_control->fn and
1501 * &damon_call_control->data of @control. If &damon_call_control->repeat of
1502 * @control is unset, further wait until the kdamond finishes handling of the
1503 * request. Otherwise, return as soon as the request is made.
1504 *
1505 * The kdamond executes the function with the argument in the main loop, just
1506 * after a sampling of the iteration is finished. The function can hence
1507 * safely access the internal data of the &struct damon_ctx without additional
1508 * synchronization. The return value of the function will be saved in
1509 * &damon_call_control->return_code.
1510 *
1511 * Return: 0 on success, negative error code otherwise.
1512 */
damon_call(struct damon_ctx * ctx,struct damon_call_control * control)1513 int damon_call(struct damon_ctx *ctx, struct damon_call_control *control)
1514 {
1515 if (!control->repeat)
1516 init_completion(&control->completion);
1517 control->canceled = false;
1518 INIT_LIST_HEAD(&control->list);
1519
1520 mutex_lock(&ctx->call_controls_lock);
1521 list_add_tail(&control->list, &ctx->call_controls);
1522 mutex_unlock(&ctx->call_controls_lock);
1523 if (!damon_is_running(ctx))
1524 return damon_call_handle_inactive_ctx(ctx, control);
1525 if (control->repeat)
1526 return 0;
1527 wait_for_completion(&control->completion);
1528 if (control->canceled)
1529 return -ECANCELED;
1530 return 0;
1531 }
1532
1533 /**
1534 * damos_walk() - Invoke a given functions while DAMOS walk regions.
1535 * @ctx: DAMON context to call the functions for.
1536 * @control: Control variable of the walk request.
1537 *
1538 * Ask DAMON worker thread (kdamond) of @ctx to call a function for each region
1539 * that the kdamond will apply DAMOS action to, and wait until the kdamond
1540 * finishes handling of the request.
1541 *
1542 * The kdamond executes the given function in the main loop, for each region
1543 * just after it applied any DAMOS actions of @ctx to it. The invocation is
1544 * made only within one &damos->apply_interval_us since damos_walk()
1545 * invocation, for each scheme. The given callback function can hence safely
1546 * access the internal data of &struct damon_ctx and &struct damon_region that
1547 * each of the scheme will apply the action for next interval, without
1548 * additional synchronizations against the kdamond. If every scheme of @ctx
1549 * passed at least one &damos->apply_interval_us, kdamond marks the request as
1550 * completed so that damos_walk() can wakeup and return.
1551 *
1552 * Return: 0 on success, negative error code otherwise.
1553 */
damos_walk(struct damon_ctx * ctx,struct damos_walk_control * control)1554 int damos_walk(struct damon_ctx *ctx, struct damos_walk_control *control)
1555 {
1556 init_completion(&control->completion);
1557 control->canceled = false;
1558 mutex_lock(&ctx->walk_control_lock);
1559 if (ctx->walk_control) {
1560 mutex_unlock(&ctx->walk_control_lock);
1561 return -EBUSY;
1562 }
1563 ctx->walk_control = control;
1564 mutex_unlock(&ctx->walk_control_lock);
1565 if (!damon_is_running(ctx)) {
1566 mutex_lock(&ctx->walk_control_lock);
1567 if (ctx->walk_control == control)
1568 ctx->walk_control = NULL;
1569 mutex_unlock(&ctx->walk_control_lock);
1570 return -EINVAL;
1571 }
1572 wait_for_completion(&control->completion);
1573 if (control->canceled)
1574 return -ECANCELED;
1575 return 0;
1576 }
1577
1578 /*
1579 * Warn and fix corrupted ->nr_accesses[_bp] for investigations and preventing
1580 * the problem being propagated.
1581 */
damon_warn_fix_nr_accesses_corruption(struct damon_region * r)1582 static void damon_warn_fix_nr_accesses_corruption(struct damon_region *r)
1583 {
1584 if (r->nr_accesses_bp == r->nr_accesses * 10000)
1585 return;
1586 WARN_ONCE(true, "invalid nr_accesses_bp at reset: %u %u\n",
1587 r->nr_accesses_bp, r->nr_accesses);
1588 r->nr_accesses_bp = r->nr_accesses * 10000;
1589 }
1590
1591 /*
1592 * Reset the aggregated monitoring results ('nr_accesses' of each region).
1593 */
kdamond_reset_aggregated(struct damon_ctx * c)1594 static void kdamond_reset_aggregated(struct damon_ctx *c)
1595 {
1596 struct damon_target *t;
1597 unsigned int ti = 0; /* target's index */
1598
1599 damon_for_each_target(t, c) {
1600 struct damon_region *r;
1601
1602 damon_for_each_region(r, t) {
1603 trace_damon_aggregated(ti, r, damon_nr_regions(t));
1604 damon_warn_fix_nr_accesses_corruption(r);
1605 r->last_nr_accesses = r->nr_accesses;
1606 r->nr_accesses = 0;
1607 }
1608 ti++;
1609 }
1610 }
1611
damon_get_intervals_score(struct damon_ctx * c)1612 static unsigned long damon_get_intervals_score(struct damon_ctx *c)
1613 {
1614 struct damon_target *t;
1615 struct damon_region *r;
1616 unsigned long sz_region, max_access_events = 0, access_events = 0;
1617 unsigned long target_access_events;
1618 unsigned long goal_bp = c->attrs.intervals_goal.access_bp;
1619
1620 damon_for_each_target(t, c) {
1621 damon_for_each_region(r, t) {
1622 sz_region = damon_sz_region(r);
1623 max_access_events += sz_region * c->attrs.aggr_samples;
1624 access_events += sz_region * r->nr_accesses;
1625 }
1626 }
1627 target_access_events = max_access_events * goal_bp / 10000;
1628 target_access_events = target_access_events ? : 1;
1629 return access_events * 10000 / target_access_events;
1630 }
1631
1632 static unsigned long damon_feed_loop_next_input(unsigned long last_input,
1633 unsigned long score);
1634
damon_get_intervals_adaptation_bp(struct damon_ctx * c)1635 static unsigned long damon_get_intervals_adaptation_bp(struct damon_ctx *c)
1636 {
1637 unsigned long score_bp, adaptation_bp;
1638
1639 score_bp = damon_get_intervals_score(c);
1640 adaptation_bp = damon_feed_loop_next_input(100000000, score_bp) /
1641 10000;
1642 /*
1643 * adaptation_bp ranges from 1 to 20,000. Avoid too rapid reduction of
1644 * the intervals by rescaling [1,10,000] to [5000, 10,000].
1645 */
1646 if (adaptation_bp <= 10000)
1647 adaptation_bp = 5000 + adaptation_bp / 2;
1648 return adaptation_bp;
1649 }
1650
kdamond_tune_intervals(struct damon_ctx * c)1651 static void kdamond_tune_intervals(struct damon_ctx *c)
1652 {
1653 unsigned long adaptation_bp;
1654 struct damon_attrs new_attrs;
1655 struct damon_intervals_goal *goal;
1656
1657 adaptation_bp = damon_get_intervals_adaptation_bp(c);
1658 if (adaptation_bp == 10000)
1659 return;
1660
1661 new_attrs = c->attrs;
1662 goal = &c->attrs.intervals_goal;
1663 new_attrs.sample_interval = min(goal->max_sample_us,
1664 c->attrs.sample_interval * adaptation_bp / 10000);
1665 new_attrs.sample_interval = max(goal->min_sample_us,
1666 new_attrs.sample_interval);
1667 new_attrs.aggr_interval = new_attrs.sample_interval *
1668 c->attrs.aggr_samples;
1669 trace_damon_monitor_intervals_tune(new_attrs.sample_interval);
1670 damon_set_attrs(c, &new_attrs);
1671 }
1672
1673 static void damon_split_region_at(struct damon_target *t,
1674 struct damon_region *r, unsigned long sz_r);
1675
__damos_valid_target(struct damon_region * r,struct damos * s)1676 static bool __damos_valid_target(struct damon_region *r, struct damos *s)
1677 {
1678 unsigned long sz;
1679 unsigned int nr_accesses = r->nr_accesses_bp / 10000;
1680
1681 sz = damon_sz_region(r);
1682 return s->pattern.min_sz_region <= sz &&
1683 sz <= s->pattern.max_sz_region &&
1684 s->pattern.min_nr_accesses <= nr_accesses &&
1685 nr_accesses <= s->pattern.max_nr_accesses &&
1686 s->pattern.min_age_region <= r->age &&
1687 r->age <= s->pattern.max_age_region;
1688 }
1689
damos_valid_target(struct damon_ctx * c,struct damon_target * t,struct damon_region * r,struct damos * s)1690 static bool damos_valid_target(struct damon_ctx *c, struct damon_target *t,
1691 struct damon_region *r, struct damos *s)
1692 {
1693 bool ret = __damos_valid_target(r, s);
1694
1695 if (!ret || !s->quota.esz || !c->ops.get_scheme_score)
1696 return ret;
1697
1698 return c->ops.get_scheme_score(c, t, r, s) >= s->quota.min_score;
1699 }
1700
1701 /*
1702 * damos_skip_charged_region() - Check if the given region or starting part of
1703 * it is already charged for the DAMOS quota.
1704 * @t: The target of the region.
1705 * @rp: The pointer to the region.
1706 * @s: The scheme to be applied.
1707 * @min_region_sz: minimum region size.
1708 *
1709 * If a quota of a scheme has exceeded in a quota charge window, the scheme's
1710 * action would applied to only a part of the target access pattern fulfilling
1711 * regions. To avoid applying the scheme action to only already applied
1712 * regions, DAMON skips applying the scheme action to the regions that charged
1713 * in the previous charge window.
1714 *
1715 * This function checks if a given region should be skipped or not for the
1716 * reason. If only the starting part of the region has previously charged,
1717 * this function splits the region into two so that the second one covers the
1718 * area that not charged in the previous charge widnow and saves the second
1719 * region in *rp and returns false, so that the caller can apply DAMON action
1720 * to the second one.
1721 *
1722 * Return: true if the region should be entirely skipped, false otherwise.
1723 */
damos_skip_charged_region(struct damon_target * t,struct damon_region ** rp,struct damos * s,unsigned long min_region_sz)1724 static bool damos_skip_charged_region(struct damon_target *t,
1725 struct damon_region **rp, struct damos *s,
1726 unsigned long min_region_sz)
1727 {
1728 struct damon_region *r = *rp;
1729 struct damos_quota *quota = &s->quota;
1730 unsigned long sz_to_skip;
1731
1732 /* Skip previously charged regions */
1733 if (quota->charge_target_from) {
1734 if (t != quota->charge_target_from)
1735 return true;
1736 if (r == damon_last_region(t)) {
1737 quota->charge_target_from = NULL;
1738 quota->charge_addr_from = 0;
1739 return true;
1740 }
1741 if (quota->charge_addr_from &&
1742 r->ar.end <= quota->charge_addr_from)
1743 return true;
1744
1745 if (quota->charge_addr_from && r->ar.start <
1746 quota->charge_addr_from) {
1747 sz_to_skip = ALIGN_DOWN(quota->charge_addr_from -
1748 r->ar.start, min_region_sz);
1749 if (!sz_to_skip) {
1750 if (damon_sz_region(r) <= min_region_sz)
1751 return true;
1752 sz_to_skip = min_region_sz;
1753 }
1754 damon_split_region_at(t, r, sz_to_skip);
1755 r = damon_next_region(r);
1756 *rp = r;
1757 }
1758 quota->charge_target_from = NULL;
1759 quota->charge_addr_from = 0;
1760 }
1761 return false;
1762 }
1763
damos_update_stat(struct damos * s,unsigned long sz_tried,unsigned long sz_applied,unsigned long sz_ops_filter_passed)1764 static void damos_update_stat(struct damos *s,
1765 unsigned long sz_tried, unsigned long sz_applied,
1766 unsigned long sz_ops_filter_passed)
1767 {
1768 s->stat.nr_tried++;
1769 s->stat.sz_tried += sz_tried;
1770 if (sz_applied)
1771 s->stat.nr_applied++;
1772 s->stat.sz_applied += sz_applied;
1773 s->stat.sz_ops_filter_passed += sz_ops_filter_passed;
1774 }
1775
damos_filter_match(struct damon_ctx * ctx,struct damon_target * t,struct damon_region * r,struct damos_filter * filter,unsigned long min_region_sz)1776 static bool damos_filter_match(struct damon_ctx *ctx, struct damon_target *t,
1777 struct damon_region *r, struct damos_filter *filter,
1778 unsigned long min_region_sz)
1779 {
1780 bool matched = false;
1781 struct damon_target *ti;
1782 int target_idx = 0;
1783 unsigned long start, end;
1784
1785 switch (filter->type) {
1786 case DAMOS_FILTER_TYPE_TARGET:
1787 damon_for_each_target(ti, ctx) {
1788 if (ti == t)
1789 break;
1790 target_idx++;
1791 }
1792 matched = target_idx == filter->target_idx;
1793 break;
1794 case DAMOS_FILTER_TYPE_ADDR:
1795 start = ALIGN_DOWN(filter->addr_range.start, min_region_sz);
1796 end = ALIGN_DOWN(filter->addr_range.end, min_region_sz);
1797
1798 /* inside the range */
1799 if (start <= r->ar.start && r->ar.end <= end) {
1800 matched = true;
1801 break;
1802 }
1803 /* outside of the range */
1804 if (r->ar.end <= start || end <= r->ar.start) {
1805 matched = false;
1806 break;
1807 }
1808 /* start before the range and overlap */
1809 if (r->ar.start < start) {
1810 damon_split_region_at(t, r, start - r->ar.start);
1811 matched = false;
1812 break;
1813 }
1814 /* start inside the range */
1815 damon_split_region_at(t, r, end - r->ar.start);
1816 matched = true;
1817 break;
1818 default:
1819 return false;
1820 }
1821
1822 return matched == filter->matching;
1823 }
1824
damos_core_filter_out(struct damon_ctx * ctx,struct damon_target * t,struct damon_region * r,struct damos * s)1825 static bool damos_core_filter_out(struct damon_ctx *ctx, struct damon_target *t,
1826 struct damon_region *r, struct damos *s)
1827 {
1828 struct damos_filter *filter;
1829
1830 s->core_filters_allowed = false;
1831 damos_for_each_core_filter(filter, s) {
1832 if (damos_filter_match(ctx, t, r, filter, ctx->min_region_sz)) {
1833 if (filter->allow)
1834 s->core_filters_allowed = true;
1835 return !filter->allow;
1836 }
1837 }
1838 return s->core_filters_default_reject;
1839 }
1840
1841 /*
1842 * damos_walk_call_walk() - Call &damos_walk_control->walk_fn.
1843 * @ctx: The context of &damon_ctx->walk_control.
1844 * @t: The monitoring target of @r that @s will be applied.
1845 * @r: The region of @t that @s will be applied.
1846 * @s: The scheme of @ctx that will be applied to @r.
1847 *
1848 * This function is called from kdamond whenever it asked the operation set to
1849 * apply a DAMOS scheme action to a region. If a DAMOS walk request is
1850 * installed by damos_walk() and not yet uninstalled, invoke it.
1851 */
damos_walk_call_walk(struct damon_ctx * ctx,struct damon_target * t,struct damon_region * r,struct damos * s,unsigned long sz_filter_passed)1852 static void damos_walk_call_walk(struct damon_ctx *ctx, struct damon_target *t,
1853 struct damon_region *r, struct damos *s,
1854 unsigned long sz_filter_passed)
1855 {
1856 struct damos_walk_control *control;
1857
1858 if (s->walk_completed)
1859 return;
1860
1861 control = ctx->walk_control;
1862 if (!control)
1863 return;
1864
1865 control->walk_fn(control->data, ctx, t, r, s, sz_filter_passed);
1866 }
1867
1868 /*
1869 * damos_walk_complete() - Complete DAMOS walk request if all walks are done.
1870 * @ctx: The context of &damon_ctx->walk_control.
1871 * @s: A scheme of @ctx that all walks are now done.
1872 *
1873 * This function is called when kdamond finished applying the action of a DAMOS
1874 * scheme to all regions that eligible for the given &damos->apply_interval_us.
1875 * If every scheme of @ctx including @s now finished walking for at least one
1876 * &damos->apply_interval_us, this function makrs the handling of the given
1877 * DAMOS walk request is done, so that damos_walk() can wake up and return.
1878 */
damos_walk_complete(struct damon_ctx * ctx,struct damos * s)1879 static void damos_walk_complete(struct damon_ctx *ctx, struct damos *s)
1880 {
1881 struct damos *siter;
1882 struct damos_walk_control *control;
1883
1884 control = ctx->walk_control;
1885 if (!control)
1886 return;
1887
1888 s->walk_completed = true;
1889 /* if all schemes completed, signal completion to walker */
1890 damon_for_each_scheme(siter, ctx) {
1891 if (!siter->walk_completed)
1892 return;
1893 }
1894 damon_for_each_scheme(siter, ctx)
1895 siter->walk_completed = false;
1896
1897 complete(&control->completion);
1898 ctx->walk_control = NULL;
1899 }
1900
1901 /*
1902 * damos_walk_cancel() - Cancel the current DAMOS walk request.
1903 * @ctx: The context of &damon_ctx->walk_control.
1904 *
1905 * This function is called when @ctx is deactivated by DAMOS watermarks, DAMOS
1906 * walk is requested but there is no DAMOS scheme to walk for, or the kdamond
1907 * is already out of the main loop and therefore gonna be terminated, and hence
1908 * cannot continue the walks. This function therefore marks the walk request
1909 * as canceled, so that damos_walk() can wake up and return.
1910 */
damos_walk_cancel(struct damon_ctx * ctx)1911 static void damos_walk_cancel(struct damon_ctx *ctx)
1912 {
1913 struct damos_walk_control *control;
1914
1915 mutex_lock(&ctx->walk_control_lock);
1916 control = ctx->walk_control;
1917 mutex_unlock(&ctx->walk_control_lock);
1918
1919 if (!control)
1920 return;
1921 control->canceled = true;
1922 complete(&control->completion);
1923 mutex_lock(&ctx->walk_control_lock);
1924 ctx->walk_control = NULL;
1925 mutex_unlock(&ctx->walk_control_lock);
1926 }
1927
damos_apply_scheme(struct damon_ctx * c,struct damon_target * t,struct damon_region * r,struct damos * s)1928 static void damos_apply_scheme(struct damon_ctx *c, struct damon_target *t,
1929 struct damon_region *r, struct damos *s)
1930 {
1931 struct damos_quota *quota = &s->quota;
1932 unsigned long sz = damon_sz_region(r);
1933 struct timespec64 begin, end;
1934 unsigned long sz_applied = 0;
1935 unsigned long sz_ops_filter_passed = 0;
1936 /*
1937 * We plan to support multiple context per kdamond, as DAMON sysfs
1938 * implies with 'nr_contexts' file. Nevertheless, only single context
1939 * per kdamond is supported for now. So, we can simply use '0' context
1940 * index here.
1941 */
1942 unsigned int cidx = 0;
1943 struct damos *siter; /* schemes iterator */
1944 unsigned int sidx = 0;
1945 struct damon_target *titer; /* targets iterator */
1946 unsigned int tidx = 0;
1947 bool do_trace = false;
1948
1949 /* get indices for trace_damos_before_apply() */
1950 if (trace_damos_before_apply_enabled()) {
1951 damon_for_each_scheme(siter, c) {
1952 if (siter == s)
1953 break;
1954 sidx++;
1955 }
1956 damon_for_each_target(titer, c) {
1957 if (titer == t)
1958 break;
1959 tidx++;
1960 }
1961 do_trace = true;
1962 }
1963
1964 if (c->ops.apply_scheme) {
1965 if (quota->esz && quota->charged_sz + sz > quota->esz) {
1966 sz = ALIGN_DOWN(quota->esz - quota->charged_sz,
1967 c->min_region_sz);
1968 if (!sz)
1969 goto update_stat;
1970 damon_split_region_at(t, r, sz);
1971 }
1972 if (damos_core_filter_out(c, t, r, s))
1973 return;
1974 ktime_get_coarse_ts64(&begin);
1975 trace_damos_before_apply(cidx, sidx, tidx, r,
1976 damon_nr_regions(t), do_trace);
1977 sz_applied = c->ops.apply_scheme(c, t, r, s,
1978 &sz_ops_filter_passed);
1979 damos_walk_call_walk(c, t, r, s, sz_ops_filter_passed);
1980 ktime_get_coarse_ts64(&end);
1981 quota->total_charged_ns += timespec64_to_ns(&end) -
1982 timespec64_to_ns(&begin);
1983 quota->charged_sz += sz;
1984 if (quota->esz && quota->charged_sz >= quota->esz) {
1985 quota->charge_target_from = t;
1986 quota->charge_addr_from = r->ar.end + 1;
1987 }
1988 }
1989 if (s->action != DAMOS_STAT)
1990 r->age = 0;
1991
1992 update_stat:
1993 damos_update_stat(s, sz, sz_applied, sz_ops_filter_passed);
1994 }
1995
damon_do_apply_schemes(struct damon_ctx * c,struct damon_target * t,struct damon_region * r)1996 static void damon_do_apply_schemes(struct damon_ctx *c,
1997 struct damon_target *t,
1998 struct damon_region *r)
1999 {
2000 struct damos *s;
2001
2002 damon_for_each_scheme(s, c) {
2003 struct damos_quota *quota = &s->quota;
2004
2005 if (c->passed_sample_intervals < s->next_apply_sis)
2006 continue;
2007
2008 if (!s->wmarks.activated)
2009 continue;
2010
2011 /* Check the quota */
2012 if (quota->esz && quota->charged_sz >= quota->esz)
2013 continue;
2014
2015 if (damos_skip_charged_region(t, &r, s, c->min_region_sz))
2016 continue;
2017
2018 if (s->max_nr_snapshots &&
2019 s->max_nr_snapshots <= s->stat.nr_snapshots)
2020 continue;
2021
2022 if (damos_valid_target(c, t, r, s))
2023 damos_apply_scheme(c, t, r, s);
2024
2025 if (damon_is_last_region(r, t))
2026 s->stat.nr_snapshots++;
2027 }
2028 }
2029
2030 /*
2031 * damon_feed_loop_next_input() - get next input to achieve a target score.
2032 * @last_input The last input.
2033 * @score Current score that made with @last_input.
2034 *
2035 * Calculate next input to achieve the target score, based on the last input
2036 * and current score. Assuming the input and the score are positively
2037 * proportional, calculate how much compensation should be added to or
2038 * subtracted from the last input as a proportion of the last input. Avoid
2039 * next input always being zero by setting it non-zero always. In short form
2040 * (assuming support of float and signed calculations), the algorithm is as
2041 * below.
2042 *
2043 * next_input = max(last_input * ((goal - current) / goal + 1), 1)
2044 *
2045 * For simple implementation, we assume the target score is always 10,000. The
2046 * caller should adjust @score for this.
2047 *
2048 * Returns next input that assumed to achieve the target score.
2049 */
damon_feed_loop_next_input(unsigned long last_input,unsigned long score)2050 static unsigned long damon_feed_loop_next_input(unsigned long last_input,
2051 unsigned long score)
2052 {
2053 const unsigned long goal = 10000;
2054 /* Set minimum input as 10000 to avoid compensation be zero */
2055 const unsigned long min_input = 10000;
2056 unsigned long score_goal_diff, compensation;
2057 bool over_achieving = score > goal;
2058
2059 if (score == goal)
2060 return last_input;
2061 if (score >= goal * 2)
2062 return min_input;
2063
2064 if (over_achieving)
2065 score_goal_diff = score - goal;
2066 else
2067 score_goal_diff = goal - score;
2068
2069 if (last_input < ULONG_MAX / score_goal_diff)
2070 compensation = last_input * score_goal_diff / goal;
2071 else
2072 compensation = last_input / goal * score_goal_diff;
2073
2074 if (over_achieving)
2075 return max(last_input - compensation, min_input);
2076 if (last_input < ULONG_MAX - compensation)
2077 return last_input + compensation;
2078 return ULONG_MAX;
2079 }
2080
2081 #ifdef CONFIG_PSI
2082
damos_get_some_mem_psi_total(void)2083 static u64 damos_get_some_mem_psi_total(void)
2084 {
2085 if (static_branch_likely(&psi_disabled))
2086 return 0;
2087 return div_u64(psi_system.total[PSI_AVGS][PSI_MEM * 2],
2088 NSEC_PER_USEC);
2089 }
2090
2091 #else /* CONFIG_PSI */
2092
damos_get_some_mem_psi_total(void)2093 static inline u64 damos_get_some_mem_psi_total(void)
2094 {
2095 return 0;
2096 };
2097
2098 #endif /* CONFIG_PSI */
2099
2100 #ifdef CONFIG_NUMA
damos_get_node_mem_bp(struct damos_quota_goal * goal)2101 static __kernel_ulong_t damos_get_node_mem_bp(
2102 struct damos_quota_goal *goal)
2103 {
2104 struct sysinfo i;
2105 __kernel_ulong_t numerator;
2106
2107 si_meminfo_node(&i, goal->nid);
2108 if (goal->metric == DAMOS_QUOTA_NODE_MEM_USED_BP)
2109 numerator = i.totalram - i.freeram;
2110 else /* DAMOS_QUOTA_NODE_MEM_FREE_BP */
2111 numerator = i.freeram;
2112 return numerator * 10000 / i.totalram;
2113 }
2114
damos_get_node_memcg_used_bp(struct damos_quota_goal * goal)2115 static unsigned long damos_get_node_memcg_used_bp(
2116 struct damos_quota_goal *goal)
2117 {
2118 struct mem_cgroup *memcg;
2119 struct lruvec *lruvec;
2120 unsigned long used_pages, numerator;
2121 struct sysinfo i;
2122
2123 memcg = mem_cgroup_get_from_id(goal->memcg_id);
2124 if (!memcg) {
2125 if (goal->metric == DAMOS_QUOTA_NODE_MEMCG_USED_BP)
2126 return 0;
2127 else /* DAMOS_QUOTA_NODE_MEMCG_FREE_BP */
2128 return 10000;
2129 }
2130
2131 mem_cgroup_flush_stats(memcg);
2132 lruvec = mem_cgroup_lruvec(memcg, NODE_DATA(goal->nid));
2133 used_pages = lruvec_page_state(lruvec, NR_ACTIVE_ANON);
2134 used_pages += lruvec_page_state(lruvec, NR_INACTIVE_ANON);
2135 used_pages += lruvec_page_state(lruvec, NR_ACTIVE_FILE);
2136 used_pages += lruvec_page_state(lruvec, NR_INACTIVE_FILE);
2137
2138 mem_cgroup_put(memcg);
2139
2140 si_meminfo_node(&i, goal->nid);
2141 if (goal->metric == DAMOS_QUOTA_NODE_MEMCG_USED_BP)
2142 numerator = used_pages;
2143 else /* DAMOS_QUOTA_NODE_MEMCG_FREE_BP */
2144 numerator = i.totalram - used_pages;
2145 return numerator * 10000 / i.totalram;
2146 }
2147 #else
damos_get_node_mem_bp(struct damos_quota_goal * goal)2148 static __kernel_ulong_t damos_get_node_mem_bp(
2149 struct damos_quota_goal *goal)
2150 {
2151 return 0;
2152 }
2153
damos_get_node_memcg_used_bp(struct damos_quota_goal * goal)2154 static unsigned long damos_get_node_memcg_used_bp(
2155 struct damos_quota_goal *goal)
2156 {
2157 return 0;
2158 }
2159 #endif
2160
2161 /*
2162 * Returns LRU-active or inactive memory to total LRU memory size ratio.
2163 */
damos_get_in_active_mem_bp(bool active_ratio)2164 static unsigned int damos_get_in_active_mem_bp(bool active_ratio)
2165 {
2166 unsigned long active, inactive, total;
2167
2168 /* This should align with /proc/meminfo output */
2169 active = global_node_page_state(NR_LRU_BASE + LRU_ACTIVE_ANON) +
2170 global_node_page_state(NR_LRU_BASE + LRU_ACTIVE_FILE);
2171 inactive = global_node_page_state(NR_LRU_BASE + LRU_INACTIVE_ANON) +
2172 global_node_page_state(NR_LRU_BASE + LRU_INACTIVE_FILE);
2173 total = active + inactive;
2174 if (active_ratio)
2175 return active * 10000 / total;
2176 return inactive * 10000 / total;
2177 }
2178
damos_set_quota_goal_current_value(struct damos_quota_goal * goal)2179 static void damos_set_quota_goal_current_value(struct damos_quota_goal *goal)
2180 {
2181 u64 now_psi_total;
2182
2183 switch (goal->metric) {
2184 case DAMOS_QUOTA_USER_INPUT:
2185 /* User should already set goal->current_value */
2186 break;
2187 case DAMOS_QUOTA_SOME_MEM_PSI_US:
2188 now_psi_total = damos_get_some_mem_psi_total();
2189 goal->current_value = now_psi_total - goal->last_psi_total;
2190 goal->last_psi_total = now_psi_total;
2191 break;
2192 case DAMOS_QUOTA_NODE_MEM_USED_BP:
2193 case DAMOS_QUOTA_NODE_MEM_FREE_BP:
2194 goal->current_value = damos_get_node_mem_bp(goal);
2195 break;
2196 case DAMOS_QUOTA_NODE_MEMCG_USED_BP:
2197 case DAMOS_QUOTA_NODE_MEMCG_FREE_BP:
2198 goal->current_value = damos_get_node_memcg_used_bp(goal);
2199 break;
2200 case DAMOS_QUOTA_ACTIVE_MEM_BP:
2201 case DAMOS_QUOTA_INACTIVE_MEM_BP:
2202 goal->current_value = damos_get_in_active_mem_bp(
2203 goal->metric == DAMOS_QUOTA_ACTIVE_MEM_BP);
2204 break;
2205 default:
2206 break;
2207 }
2208 }
2209
2210 /* Return the highest score since it makes schemes least aggressive */
damos_quota_score(struct damos_quota * quota)2211 static unsigned long damos_quota_score(struct damos_quota *quota)
2212 {
2213 struct damos_quota_goal *goal;
2214 unsigned long highest_score = 0;
2215
2216 damos_for_each_quota_goal(goal, quota) {
2217 damos_set_quota_goal_current_value(goal);
2218 highest_score = max(highest_score,
2219 goal->current_value * 10000 /
2220 goal->target_value);
2221 }
2222
2223 return highest_score;
2224 }
2225
2226 /*
2227 * Called only if quota->ms, or quota->sz are set, or quota->goals is not empty
2228 */
damos_set_effective_quota(struct damos_quota * quota)2229 static void damos_set_effective_quota(struct damos_quota *quota)
2230 {
2231 unsigned long throughput;
2232 unsigned long esz = ULONG_MAX;
2233
2234 if (!quota->ms && list_empty("a->goals)) {
2235 quota->esz = quota->sz;
2236 return;
2237 }
2238
2239 if (!list_empty("a->goals)) {
2240 unsigned long score = damos_quota_score(quota);
2241
2242 quota->esz_bp = damon_feed_loop_next_input(
2243 max(quota->esz_bp, 10000UL),
2244 score);
2245 esz = quota->esz_bp / 10000;
2246 }
2247
2248 if (quota->ms) {
2249 if (quota->total_charged_ns)
2250 throughput = mult_frac(quota->total_charged_sz, 1000000,
2251 quota->total_charged_ns);
2252 else
2253 throughput = PAGE_SIZE * 1024;
2254 esz = min(throughput * quota->ms, esz);
2255 }
2256
2257 if (quota->sz && quota->sz < esz)
2258 esz = quota->sz;
2259
2260 quota->esz = esz;
2261 }
2262
damos_trace_esz(struct damon_ctx * c,struct damos * s,struct damos_quota * quota)2263 static void damos_trace_esz(struct damon_ctx *c, struct damos *s,
2264 struct damos_quota *quota)
2265 {
2266 unsigned int cidx = 0, sidx = 0;
2267 struct damos *siter;
2268
2269 damon_for_each_scheme(siter, c) {
2270 if (siter == s)
2271 break;
2272 sidx++;
2273 }
2274 trace_damos_esz(cidx, sidx, quota->esz);
2275 }
2276
damos_adjust_quota(struct damon_ctx * c,struct damos * s)2277 static void damos_adjust_quota(struct damon_ctx *c, struct damos *s)
2278 {
2279 struct damos_quota *quota = &s->quota;
2280 struct damon_target *t;
2281 struct damon_region *r;
2282 unsigned long cumulated_sz, cached_esz;
2283 unsigned int score, max_score = 0;
2284
2285 if (!quota->ms && !quota->sz && list_empty("a->goals))
2286 return;
2287
2288 /* First charge window */
2289 if (!quota->total_charged_sz && !quota->charged_from) {
2290 quota->charged_from = jiffies;
2291 damos_set_effective_quota(quota);
2292 }
2293
2294 /* New charge window starts */
2295 if (time_after_eq(jiffies, quota->charged_from +
2296 msecs_to_jiffies(quota->reset_interval))) {
2297 if (quota->esz && quota->charged_sz >= quota->esz)
2298 s->stat.qt_exceeds++;
2299 quota->total_charged_sz += quota->charged_sz;
2300 quota->charged_from = jiffies;
2301 quota->charged_sz = 0;
2302 if (trace_damos_esz_enabled())
2303 cached_esz = quota->esz;
2304 damos_set_effective_quota(quota);
2305 if (trace_damos_esz_enabled() && quota->esz != cached_esz)
2306 damos_trace_esz(c, s, quota);
2307 }
2308
2309 if (!c->ops.get_scheme_score)
2310 return;
2311
2312 /* Fill up the score histogram */
2313 memset(c->regions_score_histogram, 0,
2314 sizeof(*c->regions_score_histogram) *
2315 (DAMOS_MAX_SCORE + 1));
2316 damon_for_each_target(t, c) {
2317 damon_for_each_region(r, t) {
2318 if (!__damos_valid_target(r, s))
2319 continue;
2320 score = c->ops.get_scheme_score(c, t, r, s);
2321 c->regions_score_histogram[score] +=
2322 damon_sz_region(r);
2323 if (score > max_score)
2324 max_score = score;
2325 }
2326 }
2327
2328 /* Set the min score limit */
2329 for (cumulated_sz = 0, score = max_score; ; score--) {
2330 cumulated_sz += c->regions_score_histogram[score];
2331 if (cumulated_sz >= quota->esz || !score)
2332 break;
2333 }
2334 quota->min_score = score;
2335 }
2336
damos_trace_stat(struct damon_ctx * c,struct damos * s)2337 static void damos_trace_stat(struct damon_ctx *c, struct damos *s)
2338 {
2339 unsigned int cidx = 0, sidx = 0;
2340 struct damos *siter;
2341
2342 if (!trace_damos_stat_after_apply_interval_enabled())
2343 return;
2344
2345 damon_for_each_scheme(siter, c) {
2346 if (siter == s)
2347 break;
2348 sidx++;
2349 }
2350 trace_damos_stat_after_apply_interval(cidx, sidx, &s->stat);
2351 }
2352
kdamond_apply_schemes(struct damon_ctx * c)2353 static void kdamond_apply_schemes(struct damon_ctx *c)
2354 {
2355 struct damon_target *t;
2356 struct damon_region *r, *next_r;
2357 struct damos *s;
2358 unsigned long sample_interval = c->attrs.sample_interval ?
2359 c->attrs.sample_interval : 1;
2360 bool has_schemes_to_apply = false;
2361
2362 damon_for_each_scheme(s, c) {
2363 if (c->passed_sample_intervals < s->next_apply_sis)
2364 continue;
2365
2366 if (!s->wmarks.activated)
2367 continue;
2368
2369 has_schemes_to_apply = true;
2370
2371 damos_adjust_quota(c, s);
2372 }
2373
2374 if (!has_schemes_to_apply)
2375 return;
2376
2377 mutex_lock(&c->walk_control_lock);
2378 damon_for_each_target(t, c) {
2379 if (c->ops.target_valid && c->ops.target_valid(t) == false)
2380 continue;
2381
2382 damon_for_each_region_safe(r, next_r, t)
2383 damon_do_apply_schemes(c, t, r);
2384 }
2385
2386 damon_for_each_scheme(s, c) {
2387 if (c->passed_sample_intervals < s->next_apply_sis)
2388 continue;
2389 damos_walk_complete(c, s);
2390 s->next_apply_sis = c->passed_sample_intervals +
2391 (s->apply_interval_us ? s->apply_interval_us :
2392 c->attrs.aggr_interval) / sample_interval;
2393 s->last_applied = NULL;
2394 damos_trace_stat(c, s);
2395 }
2396 mutex_unlock(&c->walk_control_lock);
2397 }
2398
2399 /*
2400 * Merge two adjacent regions into one region
2401 */
damon_merge_two_regions(struct damon_target * t,struct damon_region * l,struct damon_region * r)2402 static void damon_merge_two_regions(struct damon_target *t,
2403 struct damon_region *l, struct damon_region *r)
2404 {
2405 unsigned long sz_l = damon_sz_region(l), sz_r = damon_sz_region(r);
2406
2407 l->nr_accesses = (l->nr_accesses * sz_l + r->nr_accesses * sz_r) /
2408 (sz_l + sz_r);
2409 l->nr_accesses_bp = l->nr_accesses * 10000;
2410 l->age = (l->age * sz_l + r->age * sz_r) / (sz_l + sz_r);
2411 l->ar.end = r->ar.end;
2412 damon_destroy_region(r, t);
2413 }
2414
2415 /*
2416 * Merge adjacent regions having similar access frequencies
2417 *
2418 * t target affected by this merge operation
2419 * thres '->nr_accesses' diff threshold for the merge
2420 * sz_limit size upper limit of each region
2421 */
damon_merge_regions_of(struct damon_target * t,unsigned int thres,unsigned long sz_limit)2422 static void damon_merge_regions_of(struct damon_target *t, unsigned int thres,
2423 unsigned long sz_limit)
2424 {
2425 struct damon_region *r, *prev = NULL, *next;
2426
2427 damon_for_each_region_safe(r, next, t) {
2428 if (abs(r->nr_accesses - r->last_nr_accesses) > thres)
2429 r->age = 0;
2430 else if ((r->nr_accesses == 0) != (r->last_nr_accesses == 0))
2431 r->age = 0;
2432 else
2433 r->age++;
2434
2435 if (prev && prev->ar.end == r->ar.start &&
2436 abs(prev->nr_accesses - r->nr_accesses) <= thres &&
2437 damon_sz_region(prev) + damon_sz_region(r) <= sz_limit)
2438 damon_merge_two_regions(t, prev, r);
2439 else
2440 prev = r;
2441 }
2442 }
2443
2444 /*
2445 * Merge adjacent regions having similar access frequencies
2446 *
2447 * threshold '->nr_accesses' diff threshold for the merge
2448 * sz_limit size upper limit of each region
2449 *
2450 * This function merges monitoring target regions which are adjacent and their
2451 * access frequencies are similar. This is for minimizing the monitoring
2452 * overhead under the dynamically changeable access pattern. If a merge was
2453 * unnecessarily made, later 'kdamond_split_regions()' will revert it.
2454 *
2455 * The total number of regions could be higher than the user-defined limit,
2456 * max_nr_regions for some cases. For example, the user can update
2457 * max_nr_regions to a number that lower than the current number of regions
2458 * while DAMON is running. For such a case, repeat merging until the limit is
2459 * met while increasing @threshold up to possible maximum level.
2460 */
kdamond_merge_regions(struct damon_ctx * c,unsigned int threshold,unsigned long sz_limit)2461 static void kdamond_merge_regions(struct damon_ctx *c, unsigned int threshold,
2462 unsigned long sz_limit)
2463 {
2464 struct damon_target *t;
2465 unsigned int nr_regions;
2466 unsigned int max_thres;
2467
2468 max_thres = c->attrs.aggr_interval /
2469 (c->attrs.sample_interval ? c->attrs.sample_interval : 1);
2470 do {
2471 nr_regions = 0;
2472 damon_for_each_target(t, c) {
2473 damon_merge_regions_of(t, threshold, sz_limit);
2474 nr_regions += damon_nr_regions(t);
2475 }
2476 threshold = max(1, threshold * 2);
2477 } while (nr_regions > c->attrs.max_nr_regions &&
2478 threshold / 2 < max_thres);
2479 }
2480
2481 /*
2482 * Split a region in two
2483 *
2484 * r the region to be split
2485 * sz_r size of the first sub-region that will be made
2486 */
damon_split_region_at(struct damon_target * t,struct damon_region * r,unsigned long sz_r)2487 static void damon_split_region_at(struct damon_target *t,
2488 struct damon_region *r, unsigned long sz_r)
2489 {
2490 struct damon_region *new;
2491
2492 new = damon_new_region(r->ar.start + sz_r, r->ar.end);
2493 if (!new)
2494 return;
2495
2496 r->ar.end = new->ar.start;
2497
2498 new->age = r->age;
2499 new->last_nr_accesses = r->last_nr_accesses;
2500 new->nr_accesses_bp = r->nr_accesses_bp;
2501 new->nr_accesses = r->nr_accesses;
2502
2503 damon_insert_region(new, r, damon_next_region(r), t);
2504 }
2505
2506 /* Split every region in the given target into 'nr_subs' regions */
damon_split_regions_of(struct damon_target * t,int nr_subs,unsigned long min_region_sz)2507 static void damon_split_regions_of(struct damon_target *t, int nr_subs,
2508 unsigned long min_region_sz)
2509 {
2510 struct damon_region *r, *next;
2511 unsigned long sz_region, sz_sub = 0;
2512 int i;
2513
2514 damon_for_each_region_safe(r, next, t) {
2515 sz_region = damon_sz_region(r);
2516
2517 for (i = 0; i < nr_subs - 1 &&
2518 sz_region > 2 * min_region_sz; i++) {
2519 /*
2520 * Randomly select size of left sub-region to be at
2521 * least 10 percent and at most 90% of original region
2522 */
2523 sz_sub = ALIGN_DOWN(damon_rand(1, 10) *
2524 sz_region / 10, min_region_sz);
2525 /* Do not allow blank region */
2526 if (sz_sub == 0 || sz_sub >= sz_region)
2527 continue;
2528
2529 damon_split_region_at(t, r, sz_sub);
2530 sz_region = sz_sub;
2531 }
2532 }
2533 }
2534
2535 /*
2536 * Split every target region into randomly-sized small regions
2537 *
2538 * This function splits every target region into random-sized small regions if
2539 * current total number of the regions is equal or smaller than half of the
2540 * user-specified maximum number of regions. This is for maximizing the
2541 * monitoring accuracy under the dynamically changeable access patterns. If a
2542 * split was unnecessarily made, later 'kdamond_merge_regions()' will revert
2543 * it.
2544 */
kdamond_split_regions(struct damon_ctx * ctx)2545 static void kdamond_split_regions(struct damon_ctx *ctx)
2546 {
2547 struct damon_target *t;
2548 unsigned int nr_regions = 0;
2549 static unsigned int last_nr_regions;
2550 int nr_subregions = 2;
2551
2552 damon_for_each_target(t, ctx)
2553 nr_regions += damon_nr_regions(t);
2554
2555 if (nr_regions > ctx->attrs.max_nr_regions / 2)
2556 return;
2557
2558 /* Maybe the middle of the region has different access frequency */
2559 if (last_nr_regions == nr_regions &&
2560 nr_regions < ctx->attrs.max_nr_regions / 3)
2561 nr_subregions = 3;
2562
2563 damon_for_each_target(t, ctx)
2564 damon_split_regions_of(t, nr_subregions, ctx->min_region_sz);
2565
2566 last_nr_regions = nr_regions;
2567 }
2568
2569 /*
2570 * Check whether current monitoring should be stopped
2571 *
2572 * The monitoring is stopped when either the user requested to stop, or all
2573 * monitoring targets are invalid.
2574 *
2575 * Returns true if need to stop current monitoring.
2576 */
kdamond_need_stop(struct damon_ctx * ctx)2577 static bool kdamond_need_stop(struct damon_ctx *ctx)
2578 {
2579 struct damon_target *t;
2580
2581 if (kthread_should_stop())
2582 return true;
2583
2584 if (!ctx->ops.target_valid)
2585 return false;
2586
2587 damon_for_each_target(t, ctx) {
2588 if (ctx->ops.target_valid(t))
2589 return false;
2590 }
2591
2592 return true;
2593 }
2594
damos_get_wmark_metric_value(enum damos_wmark_metric metric,unsigned long * metric_value)2595 static int damos_get_wmark_metric_value(enum damos_wmark_metric metric,
2596 unsigned long *metric_value)
2597 {
2598 switch (metric) {
2599 case DAMOS_WMARK_FREE_MEM_RATE:
2600 *metric_value = global_zone_page_state(NR_FREE_PAGES) * 1000 /
2601 totalram_pages();
2602 return 0;
2603 default:
2604 break;
2605 }
2606 return -EINVAL;
2607 }
2608
2609 /*
2610 * Returns zero if the scheme is active. Else, returns time to wait for next
2611 * watermark check in micro-seconds.
2612 */
damos_wmark_wait_us(struct damos * scheme)2613 static unsigned long damos_wmark_wait_us(struct damos *scheme)
2614 {
2615 unsigned long metric;
2616
2617 if (damos_get_wmark_metric_value(scheme->wmarks.metric, &metric))
2618 return 0;
2619
2620 /* higher than high watermark or lower than low watermark */
2621 if (metric > scheme->wmarks.high || scheme->wmarks.low > metric) {
2622 if (scheme->wmarks.activated)
2623 pr_debug("deactivate a scheme (%d) for %s wmark\n",
2624 scheme->action,
2625 str_high_low(metric > scheme->wmarks.high));
2626 scheme->wmarks.activated = false;
2627 return scheme->wmarks.interval;
2628 }
2629
2630 /* inactive and higher than middle watermark */
2631 if ((scheme->wmarks.high >= metric && metric >= scheme->wmarks.mid) &&
2632 !scheme->wmarks.activated)
2633 return scheme->wmarks.interval;
2634
2635 if (!scheme->wmarks.activated)
2636 pr_debug("activate a scheme (%d)\n", scheme->action);
2637 scheme->wmarks.activated = true;
2638 return 0;
2639 }
2640
kdamond_usleep(unsigned long usecs)2641 static void kdamond_usleep(unsigned long usecs)
2642 {
2643 if (usecs >= USLEEP_RANGE_UPPER_BOUND)
2644 schedule_timeout_idle(usecs_to_jiffies(usecs));
2645 else
2646 usleep_range_idle(usecs, usecs + 1);
2647 }
2648
2649 /*
2650 * kdamond_call() - handle damon_call_control objects.
2651 * @ctx: The &struct damon_ctx of the kdamond.
2652 * @cancel: Whether to cancel the invocation of the function.
2653 *
2654 * If there are &struct damon_call_control requests that registered via
2655 * &damon_call() on @ctx, do or cancel the invocation of the function depending
2656 * on @cancel. @cancel is set when the kdamond is already out of the main loop
2657 * and therefore will be terminated.
2658 */
kdamond_call(struct damon_ctx * ctx,bool cancel)2659 static void kdamond_call(struct damon_ctx *ctx, bool cancel)
2660 {
2661 struct damon_call_control *control, *next;
2662 LIST_HEAD(controls);
2663
2664 mutex_lock(&ctx->call_controls_lock);
2665 list_splice_tail_init(&ctx->call_controls, &controls);
2666 mutex_unlock(&ctx->call_controls_lock);
2667
2668 list_for_each_entry_safe(control, next, &controls, list) {
2669 if (!control->repeat || cancel)
2670 list_del(&control->list);
2671
2672 if (cancel)
2673 control->canceled = true;
2674 else
2675 control->return_code = control->fn(control->data);
2676
2677 if (!control->repeat)
2678 complete(&control->completion);
2679 else if (control->canceled && control->dealloc_on_cancel)
2680 kfree(control);
2681 }
2682
2683 mutex_lock(&ctx->call_controls_lock);
2684 list_splice_tail(&controls, &ctx->call_controls);
2685 mutex_unlock(&ctx->call_controls_lock);
2686 }
2687
2688 /* Returns negative error code if it's not activated but should return */
kdamond_wait_activation(struct damon_ctx * ctx)2689 static int kdamond_wait_activation(struct damon_ctx *ctx)
2690 {
2691 struct damos *s;
2692 unsigned long wait_time;
2693 unsigned long min_wait_time = 0;
2694 bool init_wait_time = false;
2695
2696 while (!kdamond_need_stop(ctx)) {
2697 damon_for_each_scheme(s, ctx) {
2698 wait_time = damos_wmark_wait_us(s);
2699 if (!init_wait_time || wait_time < min_wait_time) {
2700 init_wait_time = true;
2701 min_wait_time = wait_time;
2702 }
2703 }
2704 if (!min_wait_time)
2705 return 0;
2706
2707 kdamond_usleep(min_wait_time);
2708
2709 kdamond_call(ctx, false);
2710 damos_walk_cancel(ctx);
2711 }
2712 return -EBUSY;
2713 }
2714
kdamond_init_ctx(struct damon_ctx * ctx)2715 static void kdamond_init_ctx(struct damon_ctx *ctx)
2716 {
2717 unsigned long sample_interval = ctx->attrs.sample_interval ?
2718 ctx->attrs.sample_interval : 1;
2719 unsigned long apply_interval;
2720 struct damos *scheme;
2721
2722 ctx->passed_sample_intervals = 0;
2723 ctx->next_aggregation_sis = ctx->attrs.aggr_interval / sample_interval;
2724 ctx->next_ops_update_sis = ctx->attrs.ops_update_interval /
2725 sample_interval;
2726 ctx->next_intervals_tune_sis = ctx->next_aggregation_sis *
2727 ctx->attrs.intervals_goal.aggrs;
2728
2729 damon_for_each_scheme(scheme, ctx) {
2730 apply_interval = scheme->apply_interval_us ?
2731 scheme->apply_interval_us : ctx->attrs.aggr_interval;
2732 scheme->next_apply_sis = apply_interval / sample_interval;
2733 damos_set_filters_default_reject(scheme);
2734 }
2735 }
2736
2737 /*
2738 * The monitoring daemon that runs as a kernel thread
2739 */
kdamond_fn(void * data)2740 static int kdamond_fn(void *data)
2741 {
2742 struct damon_ctx *ctx = data;
2743 unsigned int max_nr_accesses = 0;
2744 unsigned long sz_limit = 0;
2745
2746 pr_debug("kdamond (%d) starts\n", current->pid);
2747
2748 complete(&ctx->kdamond_started);
2749 kdamond_init_ctx(ctx);
2750
2751 if (ctx->ops.init)
2752 ctx->ops.init(ctx);
2753 ctx->regions_score_histogram = kmalloc_array(DAMOS_MAX_SCORE + 1,
2754 sizeof(*ctx->regions_score_histogram), GFP_KERNEL);
2755 if (!ctx->regions_score_histogram)
2756 goto done;
2757
2758 sz_limit = damon_region_sz_limit(ctx);
2759
2760 while (!kdamond_need_stop(ctx)) {
2761 /*
2762 * ctx->attrs and ctx->next_{aggregation,ops_update}_sis could
2763 * be changed from kdamond_call(). Read the values here, and
2764 * use those for this iteration. That is, damon_set_attrs()
2765 * updated new values are respected from next iteration.
2766 */
2767 unsigned long next_aggregation_sis = ctx->next_aggregation_sis;
2768 unsigned long next_ops_update_sis = ctx->next_ops_update_sis;
2769 unsigned long sample_interval = ctx->attrs.sample_interval;
2770
2771 if (kdamond_wait_activation(ctx))
2772 break;
2773
2774 if (ctx->ops.prepare_access_checks)
2775 ctx->ops.prepare_access_checks(ctx);
2776
2777 kdamond_usleep(sample_interval);
2778 ctx->passed_sample_intervals++;
2779
2780 if (ctx->ops.check_accesses)
2781 max_nr_accesses = ctx->ops.check_accesses(ctx);
2782
2783 if (ctx->passed_sample_intervals >= next_aggregation_sis)
2784 kdamond_merge_regions(ctx,
2785 max_nr_accesses / 10,
2786 sz_limit);
2787
2788 /*
2789 * do kdamond_call() and kdamond_apply_schemes() after
2790 * kdamond_merge_regions() if possible, to reduce overhead
2791 */
2792 kdamond_call(ctx, false);
2793 if (!list_empty(&ctx->schemes))
2794 kdamond_apply_schemes(ctx);
2795 else
2796 damos_walk_cancel(ctx);
2797
2798 sample_interval = ctx->attrs.sample_interval ?
2799 ctx->attrs.sample_interval : 1;
2800 if (ctx->passed_sample_intervals >= next_aggregation_sis) {
2801 if (ctx->attrs.intervals_goal.aggrs &&
2802 ctx->passed_sample_intervals >=
2803 ctx->next_intervals_tune_sis) {
2804 /*
2805 * ctx->next_aggregation_sis might be updated
2806 * from kdamond_call(). In the case,
2807 * damon_set_attrs() which will be called from
2808 * kdamond_tune_interval() may wrongly think
2809 * this is in the middle of the current
2810 * aggregation, and make aggregation
2811 * information reset for all regions. Then,
2812 * following kdamond_reset_aggregated() call
2813 * will make the region information invalid,
2814 * particularly for ->nr_accesses_bp.
2815 *
2816 * Reset ->next_aggregation_sis to avoid that.
2817 * It will anyway correctly updated after this
2818 * if clause.
2819 */
2820 ctx->next_aggregation_sis =
2821 next_aggregation_sis;
2822 ctx->next_intervals_tune_sis +=
2823 ctx->attrs.aggr_samples *
2824 ctx->attrs.intervals_goal.aggrs;
2825 kdamond_tune_intervals(ctx);
2826 sample_interval = ctx->attrs.sample_interval ?
2827 ctx->attrs.sample_interval : 1;
2828
2829 }
2830 ctx->next_aggregation_sis = next_aggregation_sis +
2831 ctx->attrs.aggr_interval / sample_interval;
2832
2833 kdamond_reset_aggregated(ctx);
2834 kdamond_split_regions(ctx);
2835 }
2836
2837 if (ctx->passed_sample_intervals >= next_ops_update_sis) {
2838 ctx->next_ops_update_sis = next_ops_update_sis +
2839 ctx->attrs.ops_update_interval /
2840 sample_interval;
2841 if (ctx->ops.update)
2842 ctx->ops.update(ctx);
2843 sz_limit = damon_region_sz_limit(ctx);
2844 }
2845 }
2846 done:
2847 damon_destroy_targets(ctx);
2848
2849 kfree(ctx->regions_score_histogram);
2850 kdamond_call(ctx, true);
2851 damos_walk_cancel(ctx);
2852
2853 pr_debug("kdamond (%d) finishes\n", current->pid);
2854 mutex_lock(&ctx->kdamond_lock);
2855 ctx->kdamond = NULL;
2856 mutex_unlock(&ctx->kdamond_lock);
2857
2858 mutex_lock(&damon_lock);
2859 nr_running_ctxs--;
2860 if (!nr_running_ctxs && running_exclusive_ctxs)
2861 running_exclusive_ctxs = false;
2862 mutex_unlock(&damon_lock);
2863
2864 return 0;
2865 }
2866
walk_system_ram(struct resource * res,void * arg)2867 static int walk_system_ram(struct resource *res, void *arg)
2868 {
2869 struct damon_addr_range *a = arg;
2870
2871 if (a->end - a->start < resource_size(res)) {
2872 a->start = res->start;
2873 a->end = res->end;
2874 }
2875 return 0;
2876 }
2877
2878 /*
2879 * Find biggest 'System RAM' resource and store its start and end address in
2880 * @start and @end, respectively. If no System RAM is found, returns false.
2881 */
damon_find_biggest_system_ram(unsigned long * start,unsigned long * end)2882 static bool damon_find_biggest_system_ram(unsigned long *start,
2883 unsigned long *end)
2884
2885 {
2886 struct damon_addr_range arg = {};
2887
2888 walk_system_ram_res(0, ULONG_MAX, &arg, walk_system_ram);
2889 if (arg.end <= arg.start)
2890 return false;
2891
2892 *start = arg.start;
2893 *end = arg.end;
2894 return true;
2895 }
2896
2897 /**
2898 * damon_set_region_biggest_system_ram_default() - Set the region of the given
2899 * monitoring target as requested, or biggest 'System RAM'.
2900 * @t: The monitoring target to set the region.
2901 * @start: The pointer to the start address of the region.
2902 * @end: The pointer to the end address of the region.
2903 * @min_region_sz: Minimum region size.
2904 *
2905 * This function sets the region of @t as requested by @start and @end. If the
2906 * values of @start and @end are zero, however, this function finds the biggest
2907 * 'System RAM' resource and sets the region to cover the resource. In the
2908 * latter case, this function saves the start and end addresses of the resource
2909 * in @start and @end, respectively.
2910 *
2911 * Return: 0 on success, negative error code otherwise.
2912 */
damon_set_region_biggest_system_ram_default(struct damon_target * t,unsigned long * start,unsigned long * end,unsigned long min_region_sz)2913 int damon_set_region_biggest_system_ram_default(struct damon_target *t,
2914 unsigned long *start, unsigned long *end,
2915 unsigned long min_region_sz)
2916 {
2917 struct damon_addr_range addr_range;
2918
2919 if (*start > *end)
2920 return -EINVAL;
2921
2922 if (!*start && !*end &&
2923 !damon_find_biggest_system_ram(start, end))
2924 return -EINVAL;
2925
2926 addr_range.start = *start;
2927 addr_range.end = *end;
2928 return damon_set_regions(t, &addr_range, 1, min_region_sz);
2929 }
2930
2931 /*
2932 * damon_moving_sum() - Calculate an inferred moving sum value.
2933 * @mvsum: Inferred sum of the last @len_window values.
2934 * @nomvsum: Non-moving sum of the last discrete @len_window window values.
2935 * @len_window: The number of last values to take care of.
2936 * @new_value: New value that will be added to the pseudo moving sum.
2937 *
2938 * Moving sum (moving average * window size) is good for handling noise, but
2939 * the cost of keeping past values can be high for arbitrary window size. This
2940 * function implements a lightweight pseudo moving sum function that doesn't
2941 * keep the past window values.
2942 *
2943 * It simply assumes there was no noise in the past, and get the no-noise
2944 * assumed past value to drop from @nomvsum and @len_window. @nomvsum is a
2945 * non-moving sum of the last window. For example, if @len_window is 10 and we
2946 * have 25 values, @nomvsum is the sum of the 11th to 20th values of the 25
2947 * values. Hence, this function simply drops @nomvsum / @len_window from
2948 * given @mvsum and add @new_value.
2949 *
2950 * For example, if @len_window is 10 and @nomvsum is 50, the last 10 values for
2951 * the last window could be vary, e.g., 0, 10, 0, 10, 0, 10, 0, 0, 0, 20. For
2952 * calculating next moving sum with a new value, we should drop 0 from 50 and
2953 * add the new value. However, this function assumes it got value 5 for each
2954 * of the last ten times. Based on the assumption, when the next value is
2955 * measured, it drops the assumed past value, 5 from the current sum, and add
2956 * the new value to get the updated pseduo-moving average.
2957 *
2958 * This means the value could have errors, but the errors will be disappeared
2959 * for every @len_window aligned calls. For example, if @len_window is 10, the
2960 * pseudo moving sum with 11th value to 19th value would have an error. But
2961 * the sum with 20th value will not have the error.
2962 *
2963 * Return: Pseudo-moving average after getting the @new_value.
2964 */
damon_moving_sum(unsigned int mvsum,unsigned int nomvsum,unsigned int len_window,unsigned int new_value)2965 static unsigned int damon_moving_sum(unsigned int mvsum, unsigned int nomvsum,
2966 unsigned int len_window, unsigned int new_value)
2967 {
2968 return mvsum - nomvsum / len_window + new_value;
2969 }
2970
2971 /**
2972 * damon_update_region_access_rate() - Update the access rate of a region.
2973 * @r: The DAMON region to update for its access check result.
2974 * @accessed: Whether the region has accessed during last sampling interval.
2975 * @attrs: The damon_attrs of the DAMON context.
2976 *
2977 * Update the access rate of a region with the region's last sampling interval
2978 * access check result.
2979 *
2980 * Usually this will be called by &damon_operations->check_accesses callback.
2981 */
damon_update_region_access_rate(struct damon_region * r,bool accessed,struct damon_attrs * attrs)2982 void damon_update_region_access_rate(struct damon_region *r, bool accessed,
2983 struct damon_attrs *attrs)
2984 {
2985 unsigned int len_window = 1;
2986
2987 /*
2988 * sample_interval can be zero, but cannot be larger than
2989 * aggr_interval, owing to validation of damon_set_attrs().
2990 */
2991 if (attrs->sample_interval)
2992 len_window = damon_max_nr_accesses(attrs);
2993 r->nr_accesses_bp = damon_moving_sum(r->nr_accesses_bp,
2994 r->last_nr_accesses * 10000, len_window,
2995 accessed ? 10000 : 0);
2996
2997 if (accessed)
2998 r->nr_accesses++;
2999 }
3000
3001 /**
3002 * damon_initialized() - Return if DAMON is ready to be used.
3003 *
3004 * Return: true if DAMON is ready to be used, false otherwise.
3005 */
damon_initialized(void)3006 bool damon_initialized(void)
3007 {
3008 return damon_region_cache != NULL;
3009 }
3010
damon_init(void)3011 static int __init damon_init(void)
3012 {
3013 damon_region_cache = KMEM_CACHE(damon_region, 0);
3014 if (unlikely(!damon_region_cache)) {
3015 pr_err("creating damon_region_cache fails\n");
3016 return -ENOMEM;
3017 }
3018
3019 return 0;
3020 }
3021
3022 subsys_initcall(damon_init);
3023
3024 #include "tests/core-kunit.h"
3025