1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * linux/mm/vmstat.c 4 * 5 * Manages VM statistics 6 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds 7 * 8 * zoned VM statistics 9 * Copyright (C) 2006 Silicon Graphics, Inc., 10 * Christoph Lameter <christoph@lameter.com> 11 * Copyright (C) 2008-2014 Christoph Lameter 12 */ 13 #include <linux/fs.h> 14 #include <linux/mm.h> 15 #include <linux/err.h> 16 #include <linux/module.h> 17 #include <linux/slab.h> 18 #include <linux/cpu.h> 19 #include <linux/cpumask.h> 20 #include <linux/vmstat.h> 21 #include <linux/proc_fs.h> 22 #include <linux/seq_file.h> 23 #include <linux/debugfs.h> 24 #include <linux/sched.h> 25 #include <linux/math64.h> 26 #include <linux/writeback.h> 27 #include <linux/compaction.h> 28 #include <linux/mm_inline.h> 29 #include <linux/page_owner.h> 30 #include <linux/sched/isolation.h> 31 32 #include "internal.h" 33 34 #ifdef CONFIG_NUMA 35 int sysctl_vm_numa_stat = ENABLE_NUMA_STAT; 36 37 /* zero numa counters within a zone */ 38 static void zero_zone_numa_counters(struct zone *zone) 39 { 40 int item, cpu; 41 42 for (item = 0; item < NR_VM_NUMA_EVENT_ITEMS; item++) { 43 atomic_long_set(&zone->vm_numa_event[item], 0); 44 for_each_online_cpu(cpu) { 45 per_cpu_ptr(zone->per_cpu_zonestats, cpu)->vm_numa_event[item] 46 = 0; 47 } 48 } 49 } 50 51 /* zero numa counters of all the populated zones */ 52 static void zero_zones_numa_counters(void) 53 { 54 struct zone *zone; 55 56 for_each_populated_zone(zone) 57 zero_zone_numa_counters(zone); 58 } 59 60 /* zero global numa counters */ 61 static void zero_global_numa_counters(void) 62 { 63 int item; 64 65 for (item = 0; item < NR_VM_NUMA_EVENT_ITEMS; item++) 66 atomic_long_set(&vm_numa_event[item], 0); 67 } 68 69 static void invalid_numa_statistics(void) 70 { 71 zero_zones_numa_counters(); 72 zero_global_numa_counters(); 73 } 74 75 static DEFINE_MUTEX(vm_numa_stat_lock); 76 77 int sysctl_vm_numa_stat_handler(struct ctl_table *table, int write, 78 void *buffer, size_t *length, loff_t *ppos) 79 { 80 int ret, oldval; 81 82 mutex_lock(&vm_numa_stat_lock); 83 if (write) 84 oldval = sysctl_vm_numa_stat; 85 ret = proc_dointvec_minmax(table, write, buffer, length, ppos); 86 if (ret || !write) 87 goto out; 88 89 if (oldval == sysctl_vm_numa_stat) 90 goto out; 91 else if (sysctl_vm_numa_stat == ENABLE_NUMA_STAT) { 92 static_branch_enable(&vm_numa_stat_key); 93 pr_info("enable numa statistics\n"); 94 } else { 95 static_branch_disable(&vm_numa_stat_key); 96 invalid_numa_statistics(); 97 pr_info("disable numa statistics, and clear numa counters\n"); 98 } 99 100 out: 101 mutex_unlock(&vm_numa_stat_lock); 102 return ret; 103 } 104 #endif 105 106 #ifdef CONFIG_VM_EVENT_COUNTERS 107 DEFINE_PER_CPU(struct vm_event_state, vm_event_states) = {{0}}; 108 EXPORT_PER_CPU_SYMBOL(vm_event_states); 109 110 static void sum_vm_events(unsigned long *ret) 111 { 112 int cpu; 113 int i; 114 115 memset(ret, 0, NR_VM_EVENT_ITEMS * sizeof(unsigned long)); 116 117 for_each_online_cpu(cpu) { 118 struct vm_event_state *this = &per_cpu(vm_event_states, cpu); 119 120 for (i = 0; i < NR_VM_EVENT_ITEMS; i++) 121 ret[i] += this->event[i]; 122 } 123 } 124 125 /* 126 * Accumulate the vm event counters across all CPUs. 127 * The result is unavoidably approximate - it can change 128 * during and after execution of this function. 129 */ 130 void all_vm_events(unsigned long *ret) 131 { 132 cpus_read_lock(); 133 sum_vm_events(ret); 134 cpus_read_unlock(); 135 } 136 EXPORT_SYMBOL_GPL(all_vm_events); 137 138 /* 139 * Fold the foreign cpu events into our own. 140 * 141 * This is adding to the events on one processor 142 * but keeps the global counts constant. 143 */ 144 void vm_events_fold_cpu(int cpu) 145 { 146 struct vm_event_state *fold_state = &per_cpu(vm_event_states, cpu); 147 int i; 148 149 for (i = 0; i < NR_VM_EVENT_ITEMS; i++) { 150 count_vm_events(i, fold_state->event[i]); 151 fold_state->event[i] = 0; 152 } 153 } 154 155 #endif /* CONFIG_VM_EVENT_COUNTERS */ 156 157 /* 158 * Manage combined zone based / global counters 159 * 160 * vm_stat contains the global counters 161 */ 162 atomic_long_t vm_zone_stat[NR_VM_ZONE_STAT_ITEMS] __cacheline_aligned_in_smp; 163 atomic_long_t vm_node_stat[NR_VM_NODE_STAT_ITEMS] __cacheline_aligned_in_smp; 164 atomic_long_t vm_numa_event[NR_VM_NUMA_EVENT_ITEMS] __cacheline_aligned_in_smp; 165 EXPORT_SYMBOL(vm_zone_stat); 166 EXPORT_SYMBOL(vm_node_stat); 167 168 #ifdef CONFIG_NUMA 169 static void fold_vm_zone_numa_events(struct zone *zone) 170 { 171 unsigned long zone_numa_events[NR_VM_NUMA_EVENT_ITEMS] = { 0, }; 172 int cpu; 173 enum numa_stat_item item; 174 175 for_each_online_cpu(cpu) { 176 struct per_cpu_zonestat *pzstats; 177 178 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu); 179 for (item = 0; item < NR_VM_NUMA_EVENT_ITEMS; item++) 180 zone_numa_events[item] += xchg(&pzstats->vm_numa_event[item], 0); 181 } 182 183 for (item = 0; item < NR_VM_NUMA_EVENT_ITEMS; item++) 184 zone_numa_event_add(zone_numa_events[item], zone, item); 185 } 186 187 void fold_vm_numa_events(void) 188 { 189 struct zone *zone; 190 191 for_each_populated_zone(zone) 192 fold_vm_zone_numa_events(zone); 193 } 194 #endif 195 196 #ifdef CONFIG_SMP 197 198 int calculate_pressure_threshold(struct zone *zone) 199 { 200 int threshold; 201 int watermark_distance; 202 203 /* 204 * As vmstats are not up to date, there is drift between the estimated 205 * and real values. For high thresholds and a high number of CPUs, it 206 * is possible for the min watermark to be breached while the estimated 207 * value looks fine. The pressure threshold is a reduced value such 208 * that even the maximum amount of drift will not accidentally breach 209 * the min watermark 210 */ 211 watermark_distance = low_wmark_pages(zone) - min_wmark_pages(zone); 212 threshold = max(1, (int)(watermark_distance / num_online_cpus())); 213 214 /* 215 * Maximum threshold is 125 216 */ 217 threshold = min(125, threshold); 218 219 return threshold; 220 } 221 222 int calculate_normal_threshold(struct zone *zone) 223 { 224 int threshold; 225 int mem; /* memory in 128 MB units */ 226 227 /* 228 * The threshold scales with the number of processors and the amount 229 * of memory per zone. More memory means that we can defer updates for 230 * longer, more processors could lead to more contention. 231 * fls() is used to have a cheap way of logarithmic scaling. 232 * 233 * Some sample thresholds: 234 * 235 * Threshold Processors (fls) Zonesize fls(mem)+1 236 * ------------------------------------------------------------------ 237 * 8 1 1 0.9-1 GB 4 238 * 16 2 2 0.9-1 GB 4 239 * 20 2 2 1-2 GB 5 240 * 24 2 2 2-4 GB 6 241 * 28 2 2 4-8 GB 7 242 * 32 2 2 8-16 GB 8 243 * 4 2 2 <128M 1 244 * 30 4 3 2-4 GB 5 245 * 48 4 3 8-16 GB 8 246 * 32 8 4 1-2 GB 4 247 * 32 8 4 0.9-1GB 4 248 * 10 16 5 <128M 1 249 * 40 16 5 900M 4 250 * 70 64 7 2-4 GB 5 251 * 84 64 7 4-8 GB 6 252 * 108 512 9 4-8 GB 6 253 * 125 1024 10 8-16 GB 8 254 * 125 1024 10 16-32 GB 9 255 */ 256 257 mem = zone_managed_pages(zone) >> (27 - PAGE_SHIFT); 258 259 threshold = 2 * fls(num_online_cpus()) * (1 + fls(mem)); 260 261 /* 262 * Maximum threshold is 125 263 */ 264 threshold = min(125, threshold); 265 266 return threshold; 267 } 268 269 /* 270 * Refresh the thresholds for each zone. 271 */ 272 void refresh_zone_stat_thresholds(void) 273 { 274 struct pglist_data *pgdat; 275 struct zone *zone; 276 int cpu; 277 int threshold; 278 279 /* Zero current pgdat thresholds */ 280 for_each_online_pgdat(pgdat) { 281 for_each_online_cpu(cpu) { 282 per_cpu_ptr(pgdat->per_cpu_nodestats, cpu)->stat_threshold = 0; 283 } 284 } 285 286 for_each_populated_zone(zone) { 287 struct pglist_data *pgdat = zone->zone_pgdat; 288 unsigned long max_drift, tolerate_drift; 289 290 threshold = calculate_normal_threshold(zone); 291 292 for_each_online_cpu(cpu) { 293 int pgdat_threshold; 294 295 per_cpu_ptr(zone->per_cpu_zonestats, cpu)->stat_threshold 296 = threshold; 297 298 /* Base nodestat threshold on the largest populated zone. */ 299 pgdat_threshold = per_cpu_ptr(pgdat->per_cpu_nodestats, cpu)->stat_threshold; 300 per_cpu_ptr(pgdat->per_cpu_nodestats, cpu)->stat_threshold 301 = max(threshold, pgdat_threshold); 302 } 303 304 /* 305 * Only set percpu_drift_mark if there is a danger that 306 * NR_FREE_PAGES reports the low watermark is ok when in fact 307 * the min watermark could be breached by an allocation 308 */ 309 tolerate_drift = low_wmark_pages(zone) - min_wmark_pages(zone); 310 max_drift = num_online_cpus() * threshold; 311 if (max_drift > tolerate_drift) 312 zone->percpu_drift_mark = high_wmark_pages(zone) + 313 max_drift; 314 } 315 } 316 317 void set_pgdat_percpu_threshold(pg_data_t *pgdat, 318 int (*calculate_pressure)(struct zone *)) 319 { 320 struct zone *zone; 321 int cpu; 322 int threshold; 323 int i; 324 325 for (i = 0; i < pgdat->nr_zones; i++) { 326 zone = &pgdat->node_zones[i]; 327 if (!zone->percpu_drift_mark) 328 continue; 329 330 threshold = (*calculate_pressure)(zone); 331 for_each_online_cpu(cpu) 332 per_cpu_ptr(zone->per_cpu_zonestats, cpu)->stat_threshold 333 = threshold; 334 } 335 } 336 337 /* 338 * For use when we know that interrupts are disabled, 339 * or when we know that preemption is disabled and that 340 * particular counter cannot be updated from interrupt context. 341 */ 342 void __mod_zone_page_state(struct zone *zone, enum zone_stat_item item, 343 long delta) 344 { 345 struct per_cpu_zonestat __percpu *pcp = zone->per_cpu_zonestats; 346 s8 __percpu *p = pcp->vm_stat_diff + item; 347 long x; 348 long t; 349 350 /* 351 * Accurate vmstat updates require a RMW. On !PREEMPT_RT kernels, 352 * atomicity is provided by IRQs being disabled -- either explicitly 353 * or via local_lock_irq. On PREEMPT_RT, local_lock_irq only disables 354 * CPU migrations and preemption potentially corrupts a counter so 355 * disable preemption. 356 */ 357 preempt_disable_nested(); 358 359 x = delta + __this_cpu_read(*p); 360 361 t = __this_cpu_read(pcp->stat_threshold); 362 363 if (unlikely(abs(x) > t)) { 364 zone_page_state_add(x, zone, item); 365 x = 0; 366 } 367 __this_cpu_write(*p, x); 368 369 preempt_enable_nested(); 370 } 371 EXPORT_SYMBOL(__mod_zone_page_state); 372 373 void __mod_node_page_state(struct pglist_data *pgdat, enum node_stat_item item, 374 long delta) 375 { 376 struct per_cpu_nodestat __percpu *pcp = pgdat->per_cpu_nodestats; 377 s8 __percpu *p = pcp->vm_node_stat_diff + item; 378 long x; 379 long t; 380 381 if (vmstat_item_in_bytes(item)) { 382 /* 383 * Only cgroups use subpage accounting right now; at 384 * the global level, these items still change in 385 * multiples of whole pages. Store them as pages 386 * internally to keep the per-cpu counters compact. 387 */ 388 VM_WARN_ON_ONCE(delta & (PAGE_SIZE - 1)); 389 delta >>= PAGE_SHIFT; 390 } 391 392 /* See __mod_node_page_state */ 393 preempt_disable_nested(); 394 395 x = delta + __this_cpu_read(*p); 396 397 t = __this_cpu_read(pcp->stat_threshold); 398 399 if (unlikely(abs(x) > t)) { 400 node_page_state_add(x, pgdat, item); 401 x = 0; 402 } 403 __this_cpu_write(*p, x); 404 405 preempt_enable_nested(); 406 } 407 EXPORT_SYMBOL(__mod_node_page_state); 408 409 /* 410 * Optimized increment and decrement functions. 411 * 412 * These are only for a single page and therefore can take a struct page * 413 * argument instead of struct zone *. This allows the inclusion of the code 414 * generated for page_zone(page) into the optimized functions. 415 * 416 * No overflow check is necessary and therefore the differential can be 417 * incremented or decremented in place which may allow the compilers to 418 * generate better code. 419 * The increment or decrement is known and therefore one boundary check can 420 * be omitted. 421 * 422 * NOTE: These functions are very performance sensitive. Change only 423 * with care. 424 * 425 * Some processors have inc/dec instructions that are atomic vs an interrupt. 426 * However, the code must first determine the differential location in a zone 427 * based on the processor number and then inc/dec the counter. There is no 428 * guarantee without disabling preemption that the processor will not change 429 * in between and therefore the atomicity vs. interrupt cannot be exploited 430 * in a useful way here. 431 */ 432 void __inc_zone_state(struct zone *zone, enum zone_stat_item item) 433 { 434 struct per_cpu_zonestat __percpu *pcp = zone->per_cpu_zonestats; 435 s8 __percpu *p = pcp->vm_stat_diff + item; 436 s8 v, t; 437 438 /* See __mod_node_page_state */ 439 preempt_disable_nested(); 440 441 v = __this_cpu_inc_return(*p); 442 t = __this_cpu_read(pcp->stat_threshold); 443 if (unlikely(v > t)) { 444 s8 overstep = t >> 1; 445 446 zone_page_state_add(v + overstep, zone, item); 447 __this_cpu_write(*p, -overstep); 448 } 449 450 preempt_enable_nested(); 451 } 452 453 void __inc_node_state(struct pglist_data *pgdat, enum node_stat_item item) 454 { 455 struct per_cpu_nodestat __percpu *pcp = pgdat->per_cpu_nodestats; 456 s8 __percpu *p = pcp->vm_node_stat_diff + item; 457 s8 v, t; 458 459 VM_WARN_ON_ONCE(vmstat_item_in_bytes(item)); 460 461 /* See __mod_node_page_state */ 462 preempt_disable_nested(); 463 464 v = __this_cpu_inc_return(*p); 465 t = __this_cpu_read(pcp->stat_threshold); 466 if (unlikely(v > t)) { 467 s8 overstep = t >> 1; 468 469 node_page_state_add(v + overstep, pgdat, item); 470 __this_cpu_write(*p, -overstep); 471 } 472 473 preempt_enable_nested(); 474 } 475 476 void __inc_zone_page_state(struct page *page, enum zone_stat_item item) 477 { 478 __inc_zone_state(page_zone(page), item); 479 } 480 EXPORT_SYMBOL(__inc_zone_page_state); 481 482 void __inc_node_page_state(struct page *page, enum node_stat_item item) 483 { 484 __inc_node_state(page_pgdat(page), item); 485 } 486 EXPORT_SYMBOL(__inc_node_page_state); 487 488 void __dec_zone_state(struct zone *zone, enum zone_stat_item item) 489 { 490 struct per_cpu_zonestat __percpu *pcp = zone->per_cpu_zonestats; 491 s8 __percpu *p = pcp->vm_stat_diff + item; 492 s8 v, t; 493 494 /* See __mod_node_page_state */ 495 preempt_disable_nested(); 496 497 v = __this_cpu_dec_return(*p); 498 t = __this_cpu_read(pcp->stat_threshold); 499 if (unlikely(v < - t)) { 500 s8 overstep = t >> 1; 501 502 zone_page_state_add(v - overstep, zone, item); 503 __this_cpu_write(*p, overstep); 504 } 505 506 preempt_enable_nested(); 507 } 508 509 void __dec_node_state(struct pglist_data *pgdat, enum node_stat_item item) 510 { 511 struct per_cpu_nodestat __percpu *pcp = pgdat->per_cpu_nodestats; 512 s8 __percpu *p = pcp->vm_node_stat_diff + item; 513 s8 v, t; 514 515 VM_WARN_ON_ONCE(vmstat_item_in_bytes(item)); 516 517 /* See __mod_node_page_state */ 518 preempt_disable_nested(); 519 520 v = __this_cpu_dec_return(*p); 521 t = __this_cpu_read(pcp->stat_threshold); 522 if (unlikely(v < - t)) { 523 s8 overstep = t >> 1; 524 525 node_page_state_add(v - overstep, pgdat, item); 526 __this_cpu_write(*p, overstep); 527 } 528 529 preempt_enable_nested(); 530 } 531 532 void __dec_zone_page_state(struct page *page, enum zone_stat_item item) 533 { 534 __dec_zone_state(page_zone(page), item); 535 } 536 EXPORT_SYMBOL(__dec_zone_page_state); 537 538 void __dec_node_page_state(struct page *page, enum node_stat_item item) 539 { 540 __dec_node_state(page_pgdat(page), item); 541 } 542 EXPORT_SYMBOL(__dec_node_page_state); 543 544 #ifdef CONFIG_HAVE_CMPXCHG_LOCAL 545 /* 546 * If we have cmpxchg_local support then we do not need to incur the overhead 547 * that comes with local_irq_save/restore if we use this_cpu_cmpxchg. 548 * 549 * mod_state() modifies the zone counter state through atomic per cpu 550 * operations. 551 * 552 * Overstep mode specifies how overstep should handled: 553 * 0 No overstepping 554 * 1 Overstepping half of threshold 555 * -1 Overstepping minus half of threshold 556 */ 557 static inline void mod_zone_state(struct zone *zone, 558 enum zone_stat_item item, long delta, int overstep_mode) 559 { 560 struct per_cpu_zonestat __percpu *pcp = zone->per_cpu_zonestats; 561 s8 __percpu *p = pcp->vm_stat_diff + item; 562 long n, t, z; 563 s8 o; 564 565 o = this_cpu_read(*p); 566 do { 567 z = 0; /* overflow to zone counters */ 568 569 /* 570 * The fetching of the stat_threshold is racy. We may apply 571 * a counter threshold to the wrong the cpu if we get 572 * rescheduled while executing here. However, the next 573 * counter update will apply the threshold again and 574 * therefore bring the counter under the threshold again. 575 * 576 * Most of the time the thresholds are the same anyways 577 * for all cpus in a zone. 578 */ 579 t = this_cpu_read(pcp->stat_threshold); 580 581 n = delta + (long)o; 582 583 if (abs(n) > t) { 584 int os = overstep_mode * (t >> 1) ; 585 586 /* Overflow must be added to zone counters */ 587 z = n + os; 588 n = -os; 589 } 590 } while (!this_cpu_try_cmpxchg(*p, &o, n)); 591 592 if (z) 593 zone_page_state_add(z, zone, item); 594 } 595 596 void mod_zone_page_state(struct zone *zone, enum zone_stat_item item, 597 long delta) 598 { 599 mod_zone_state(zone, item, delta, 0); 600 } 601 EXPORT_SYMBOL(mod_zone_page_state); 602 603 void inc_zone_page_state(struct page *page, enum zone_stat_item item) 604 { 605 mod_zone_state(page_zone(page), item, 1, 1); 606 } 607 EXPORT_SYMBOL(inc_zone_page_state); 608 609 void dec_zone_page_state(struct page *page, enum zone_stat_item item) 610 { 611 mod_zone_state(page_zone(page), item, -1, -1); 612 } 613 EXPORT_SYMBOL(dec_zone_page_state); 614 615 static inline void mod_node_state(struct pglist_data *pgdat, 616 enum node_stat_item item, int delta, int overstep_mode) 617 { 618 struct per_cpu_nodestat __percpu *pcp = pgdat->per_cpu_nodestats; 619 s8 __percpu *p = pcp->vm_node_stat_diff + item; 620 long n, t, z; 621 s8 o; 622 623 if (vmstat_item_in_bytes(item)) { 624 /* 625 * Only cgroups use subpage accounting right now; at 626 * the global level, these items still change in 627 * multiples of whole pages. Store them as pages 628 * internally to keep the per-cpu counters compact. 629 */ 630 VM_WARN_ON_ONCE(delta & (PAGE_SIZE - 1)); 631 delta >>= PAGE_SHIFT; 632 } 633 634 o = this_cpu_read(*p); 635 do { 636 z = 0; /* overflow to node counters */ 637 638 /* 639 * The fetching of the stat_threshold is racy. We may apply 640 * a counter threshold to the wrong the cpu if we get 641 * rescheduled while executing here. However, the next 642 * counter update will apply the threshold again and 643 * therefore bring the counter under the threshold again. 644 * 645 * Most of the time the thresholds are the same anyways 646 * for all cpus in a node. 647 */ 648 t = this_cpu_read(pcp->stat_threshold); 649 650 n = delta + (long)o; 651 652 if (abs(n) > t) { 653 int os = overstep_mode * (t >> 1) ; 654 655 /* Overflow must be added to node counters */ 656 z = n + os; 657 n = -os; 658 } 659 } while (!this_cpu_try_cmpxchg(*p, &o, n)); 660 661 if (z) 662 node_page_state_add(z, pgdat, item); 663 } 664 665 void mod_node_page_state(struct pglist_data *pgdat, enum node_stat_item item, 666 long delta) 667 { 668 mod_node_state(pgdat, item, delta, 0); 669 } 670 EXPORT_SYMBOL(mod_node_page_state); 671 672 void inc_node_state(struct pglist_data *pgdat, enum node_stat_item item) 673 { 674 mod_node_state(pgdat, item, 1, 1); 675 } 676 677 void inc_node_page_state(struct page *page, enum node_stat_item item) 678 { 679 mod_node_state(page_pgdat(page), item, 1, 1); 680 } 681 EXPORT_SYMBOL(inc_node_page_state); 682 683 void dec_node_page_state(struct page *page, enum node_stat_item item) 684 { 685 mod_node_state(page_pgdat(page), item, -1, -1); 686 } 687 EXPORT_SYMBOL(dec_node_page_state); 688 #else 689 /* 690 * Use interrupt disable to serialize counter updates 691 */ 692 void mod_zone_page_state(struct zone *zone, enum zone_stat_item item, 693 long delta) 694 { 695 unsigned long flags; 696 697 local_irq_save(flags); 698 __mod_zone_page_state(zone, item, delta); 699 local_irq_restore(flags); 700 } 701 EXPORT_SYMBOL(mod_zone_page_state); 702 703 void inc_zone_page_state(struct page *page, enum zone_stat_item item) 704 { 705 unsigned long flags; 706 struct zone *zone; 707 708 zone = page_zone(page); 709 local_irq_save(flags); 710 __inc_zone_state(zone, item); 711 local_irq_restore(flags); 712 } 713 EXPORT_SYMBOL(inc_zone_page_state); 714 715 void dec_zone_page_state(struct page *page, enum zone_stat_item item) 716 { 717 unsigned long flags; 718 719 local_irq_save(flags); 720 __dec_zone_page_state(page, item); 721 local_irq_restore(flags); 722 } 723 EXPORT_SYMBOL(dec_zone_page_state); 724 725 void inc_node_state(struct pglist_data *pgdat, enum node_stat_item item) 726 { 727 unsigned long flags; 728 729 local_irq_save(flags); 730 __inc_node_state(pgdat, item); 731 local_irq_restore(flags); 732 } 733 EXPORT_SYMBOL(inc_node_state); 734 735 void mod_node_page_state(struct pglist_data *pgdat, enum node_stat_item item, 736 long delta) 737 { 738 unsigned long flags; 739 740 local_irq_save(flags); 741 __mod_node_page_state(pgdat, item, delta); 742 local_irq_restore(flags); 743 } 744 EXPORT_SYMBOL(mod_node_page_state); 745 746 void inc_node_page_state(struct page *page, enum node_stat_item item) 747 { 748 unsigned long flags; 749 struct pglist_data *pgdat; 750 751 pgdat = page_pgdat(page); 752 local_irq_save(flags); 753 __inc_node_state(pgdat, item); 754 local_irq_restore(flags); 755 } 756 EXPORT_SYMBOL(inc_node_page_state); 757 758 void dec_node_page_state(struct page *page, enum node_stat_item item) 759 { 760 unsigned long flags; 761 762 local_irq_save(flags); 763 __dec_node_page_state(page, item); 764 local_irq_restore(flags); 765 } 766 EXPORT_SYMBOL(dec_node_page_state); 767 #endif 768 769 /* 770 * Fold a differential into the global counters. 771 * Returns the number of counters updated. 772 */ 773 static int fold_diff(int *zone_diff, int *node_diff) 774 { 775 int i; 776 int changes = 0; 777 778 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) 779 if (zone_diff[i]) { 780 atomic_long_add(zone_diff[i], &vm_zone_stat[i]); 781 changes++; 782 } 783 784 for (i = 0; i < NR_VM_NODE_STAT_ITEMS; i++) 785 if (node_diff[i]) { 786 atomic_long_add(node_diff[i], &vm_node_stat[i]); 787 changes++; 788 } 789 return changes; 790 } 791 792 /* 793 * Update the zone counters for the current cpu. 794 * 795 * Note that refresh_cpu_vm_stats strives to only access 796 * node local memory. The per cpu pagesets on remote zones are placed 797 * in the memory local to the processor using that pageset. So the 798 * loop over all zones will access a series of cachelines local to 799 * the processor. 800 * 801 * The call to zone_page_state_add updates the cachelines with the 802 * statistics in the remote zone struct as well as the global cachelines 803 * with the global counters. These could cause remote node cache line 804 * bouncing and will have to be only done when necessary. 805 * 806 * The function returns the number of global counters updated. 807 */ 808 static int refresh_cpu_vm_stats(bool do_pagesets) 809 { 810 struct pglist_data *pgdat; 811 struct zone *zone; 812 int i; 813 int global_zone_diff[NR_VM_ZONE_STAT_ITEMS] = { 0, }; 814 int global_node_diff[NR_VM_NODE_STAT_ITEMS] = { 0, }; 815 int changes = 0; 816 817 for_each_populated_zone(zone) { 818 struct per_cpu_zonestat __percpu *pzstats = zone->per_cpu_zonestats; 819 #ifdef CONFIG_NUMA 820 struct per_cpu_pages __percpu *pcp = zone->per_cpu_pageset; 821 #endif 822 823 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) { 824 int v; 825 826 v = this_cpu_xchg(pzstats->vm_stat_diff[i], 0); 827 if (v) { 828 829 atomic_long_add(v, &zone->vm_stat[i]); 830 global_zone_diff[i] += v; 831 #ifdef CONFIG_NUMA 832 /* 3 seconds idle till flush */ 833 __this_cpu_write(pcp->expire, 3); 834 #endif 835 } 836 } 837 #ifdef CONFIG_NUMA 838 839 if (do_pagesets) { 840 cond_resched(); 841 /* 842 * Deal with draining the remote pageset of this 843 * processor 844 * 845 * Check if there are pages remaining in this pageset 846 * if not then there is nothing to expire. 847 */ 848 if (!__this_cpu_read(pcp->expire) || 849 !__this_cpu_read(pcp->count)) 850 continue; 851 852 /* 853 * We never drain zones local to this processor. 854 */ 855 if (zone_to_nid(zone) == numa_node_id()) { 856 __this_cpu_write(pcp->expire, 0); 857 continue; 858 } 859 860 if (__this_cpu_dec_return(pcp->expire)) 861 continue; 862 863 if (__this_cpu_read(pcp->count)) { 864 drain_zone_pages(zone, this_cpu_ptr(pcp)); 865 changes++; 866 } 867 } 868 #endif 869 } 870 871 for_each_online_pgdat(pgdat) { 872 struct per_cpu_nodestat __percpu *p = pgdat->per_cpu_nodestats; 873 874 for (i = 0; i < NR_VM_NODE_STAT_ITEMS; i++) { 875 int v; 876 877 v = this_cpu_xchg(p->vm_node_stat_diff[i], 0); 878 if (v) { 879 atomic_long_add(v, &pgdat->vm_stat[i]); 880 global_node_diff[i] += v; 881 } 882 } 883 } 884 885 changes += fold_diff(global_zone_diff, global_node_diff); 886 return changes; 887 } 888 889 /* 890 * Fold the data for an offline cpu into the global array. 891 * There cannot be any access by the offline cpu and therefore 892 * synchronization is simplified. 893 */ 894 void cpu_vm_stats_fold(int cpu) 895 { 896 struct pglist_data *pgdat; 897 struct zone *zone; 898 int i; 899 int global_zone_diff[NR_VM_ZONE_STAT_ITEMS] = { 0, }; 900 int global_node_diff[NR_VM_NODE_STAT_ITEMS] = { 0, }; 901 902 for_each_populated_zone(zone) { 903 struct per_cpu_zonestat *pzstats; 904 905 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu); 906 907 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) { 908 if (pzstats->vm_stat_diff[i]) { 909 int v; 910 911 v = pzstats->vm_stat_diff[i]; 912 pzstats->vm_stat_diff[i] = 0; 913 atomic_long_add(v, &zone->vm_stat[i]); 914 global_zone_diff[i] += v; 915 } 916 } 917 #ifdef CONFIG_NUMA 918 for (i = 0; i < NR_VM_NUMA_EVENT_ITEMS; i++) { 919 if (pzstats->vm_numa_event[i]) { 920 unsigned long v; 921 922 v = pzstats->vm_numa_event[i]; 923 pzstats->vm_numa_event[i] = 0; 924 zone_numa_event_add(v, zone, i); 925 } 926 } 927 #endif 928 } 929 930 for_each_online_pgdat(pgdat) { 931 struct per_cpu_nodestat *p; 932 933 p = per_cpu_ptr(pgdat->per_cpu_nodestats, cpu); 934 935 for (i = 0; i < NR_VM_NODE_STAT_ITEMS; i++) 936 if (p->vm_node_stat_diff[i]) { 937 int v; 938 939 v = p->vm_node_stat_diff[i]; 940 p->vm_node_stat_diff[i] = 0; 941 atomic_long_add(v, &pgdat->vm_stat[i]); 942 global_node_diff[i] += v; 943 } 944 } 945 946 fold_diff(global_zone_diff, global_node_diff); 947 } 948 949 /* 950 * this is only called if !populated_zone(zone), which implies no other users of 951 * pset->vm_stat_diff[] exist. 952 */ 953 void drain_zonestat(struct zone *zone, struct per_cpu_zonestat *pzstats) 954 { 955 unsigned long v; 956 int i; 957 958 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) { 959 if (pzstats->vm_stat_diff[i]) { 960 v = pzstats->vm_stat_diff[i]; 961 pzstats->vm_stat_diff[i] = 0; 962 zone_page_state_add(v, zone, i); 963 } 964 } 965 966 #ifdef CONFIG_NUMA 967 for (i = 0; i < NR_VM_NUMA_EVENT_ITEMS; i++) { 968 if (pzstats->vm_numa_event[i]) { 969 v = pzstats->vm_numa_event[i]; 970 pzstats->vm_numa_event[i] = 0; 971 zone_numa_event_add(v, zone, i); 972 } 973 } 974 #endif 975 } 976 #endif 977 978 #ifdef CONFIG_NUMA 979 /* 980 * Determine the per node value of a stat item. This function 981 * is called frequently in a NUMA machine, so try to be as 982 * frugal as possible. 983 */ 984 unsigned long sum_zone_node_page_state(int node, 985 enum zone_stat_item item) 986 { 987 struct zone *zones = NODE_DATA(node)->node_zones; 988 int i; 989 unsigned long count = 0; 990 991 for (i = 0; i < MAX_NR_ZONES; i++) 992 count += zone_page_state(zones + i, item); 993 994 return count; 995 } 996 997 /* Determine the per node value of a numa stat item. */ 998 unsigned long sum_zone_numa_event_state(int node, 999 enum numa_stat_item item) 1000 { 1001 struct zone *zones = NODE_DATA(node)->node_zones; 1002 unsigned long count = 0; 1003 int i; 1004 1005 for (i = 0; i < MAX_NR_ZONES; i++) 1006 count += zone_numa_event_state(zones + i, item); 1007 1008 return count; 1009 } 1010 1011 /* 1012 * Determine the per node value of a stat item. 1013 */ 1014 unsigned long node_page_state_pages(struct pglist_data *pgdat, 1015 enum node_stat_item item) 1016 { 1017 long x = atomic_long_read(&pgdat->vm_stat[item]); 1018 #ifdef CONFIG_SMP 1019 if (x < 0) 1020 x = 0; 1021 #endif 1022 return x; 1023 } 1024 1025 unsigned long node_page_state(struct pglist_data *pgdat, 1026 enum node_stat_item item) 1027 { 1028 VM_WARN_ON_ONCE(vmstat_item_in_bytes(item)); 1029 1030 return node_page_state_pages(pgdat, item); 1031 } 1032 #endif 1033 1034 #ifdef CONFIG_COMPACTION 1035 1036 struct contig_page_info { 1037 unsigned long free_pages; 1038 unsigned long free_blocks_total; 1039 unsigned long free_blocks_suitable; 1040 }; 1041 1042 /* 1043 * Calculate the number of free pages in a zone, how many contiguous 1044 * pages are free and how many are large enough to satisfy an allocation of 1045 * the target size. Note that this function makes no attempt to estimate 1046 * how many suitable free blocks there *might* be if MOVABLE pages were 1047 * migrated. Calculating that is possible, but expensive and can be 1048 * figured out from userspace 1049 */ 1050 static void fill_contig_page_info(struct zone *zone, 1051 unsigned int suitable_order, 1052 struct contig_page_info *info) 1053 { 1054 unsigned int order; 1055 1056 info->free_pages = 0; 1057 info->free_blocks_total = 0; 1058 info->free_blocks_suitable = 0; 1059 1060 for (order = 0; order <= MAX_ORDER; order++) { 1061 unsigned long blocks; 1062 1063 /* 1064 * Count number of free blocks. 1065 * 1066 * Access to nr_free is lockless as nr_free is used only for 1067 * diagnostic purposes. Use data_race to avoid KCSAN warning. 1068 */ 1069 blocks = data_race(zone->free_area[order].nr_free); 1070 info->free_blocks_total += blocks; 1071 1072 /* Count free base pages */ 1073 info->free_pages += blocks << order; 1074 1075 /* Count the suitable free blocks */ 1076 if (order >= suitable_order) 1077 info->free_blocks_suitable += blocks << 1078 (order - suitable_order); 1079 } 1080 } 1081 1082 /* 1083 * A fragmentation index only makes sense if an allocation of a requested 1084 * size would fail. If that is true, the fragmentation index indicates 1085 * whether external fragmentation or a lack of memory was the problem. 1086 * The value can be used to determine if page reclaim or compaction 1087 * should be used 1088 */ 1089 static int __fragmentation_index(unsigned int order, struct contig_page_info *info) 1090 { 1091 unsigned long requested = 1UL << order; 1092 1093 if (WARN_ON_ONCE(order > MAX_ORDER)) 1094 return 0; 1095 1096 if (!info->free_blocks_total) 1097 return 0; 1098 1099 /* Fragmentation index only makes sense when a request would fail */ 1100 if (info->free_blocks_suitable) 1101 return -1000; 1102 1103 /* 1104 * Index is between 0 and 1 so return within 3 decimal places 1105 * 1106 * 0 => allocation would fail due to lack of memory 1107 * 1 => allocation would fail due to fragmentation 1108 */ 1109 return 1000 - div_u64( (1000+(div_u64(info->free_pages * 1000ULL, requested))), info->free_blocks_total); 1110 } 1111 1112 /* 1113 * Calculates external fragmentation within a zone wrt the given order. 1114 * It is defined as the percentage of pages found in blocks of size 1115 * less than 1 << order. It returns values in range [0, 100]. 1116 */ 1117 unsigned int extfrag_for_order(struct zone *zone, unsigned int order) 1118 { 1119 struct contig_page_info info; 1120 1121 fill_contig_page_info(zone, order, &info); 1122 if (info.free_pages == 0) 1123 return 0; 1124 1125 return div_u64((info.free_pages - 1126 (info.free_blocks_suitable << order)) * 100, 1127 info.free_pages); 1128 } 1129 1130 /* Same as __fragmentation index but allocs contig_page_info on stack */ 1131 int fragmentation_index(struct zone *zone, unsigned int order) 1132 { 1133 struct contig_page_info info; 1134 1135 fill_contig_page_info(zone, order, &info); 1136 return __fragmentation_index(order, &info); 1137 } 1138 #endif 1139 1140 #if defined(CONFIG_PROC_FS) || defined(CONFIG_SYSFS) || \ 1141 defined(CONFIG_NUMA) || defined(CONFIG_MEMCG) 1142 #ifdef CONFIG_ZONE_DMA 1143 #define TEXT_FOR_DMA(xx) xx "_dma", 1144 #else 1145 #define TEXT_FOR_DMA(xx) 1146 #endif 1147 1148 #ifdef CONFIG_ZONE_DMA32 1149 #define TEXT_FOR_DMA32(xx) xx "_dma32", 1150 #else 1151 #define TEXT_FOR_DMA32(xx) 1152 #endif 1153 1154 #ifdef CONFIG_HIGHMEM 1155 #define TEXT_FOR_HIGHMEM(xx) xx "_high", 1156 #else 1157 #define TEXT_FOR_HIGHMEM(xx) 1158 #endif 1159 1160 #ifdef CONFIG_ZONE_DEVICE 1161 #define TEXT_FOR_DEVICE(xx) xx "_device", 1162 #else 1163 #define TEXT_FOR_DEVICE(xx) 1164 #endif 1165 1166 #define TEXTS_FOR_ZONES(xx) TEXT_FOR_DMA(xx) TEXT_FOR_DMA32(xx) xx "_normal", \ 1167 TEXT_FOR_HIGHMEM(xx) xx "_movable", \ 1168 TEXT_FOR_DEVICE(xx) 1169 1170 const char * const vmstat_text[] = { 1171 /* enum zone_stat_item counters */ 1172 "nr_free_pages", 1173 "nr_zone_inactive_anon", 1174 "nr_zone_active_anon", 1175 "nr_zone_inactive_file", 1176 "nr_zone_active_file", 1177 "nr_zone_unevictable", 1178 "nr_zone_write_pending", 1179 "nr_mlock", 1180 "nr_bounce", 1181 #if IS_ENABLED(CONFIG_ZSMALLOC) 1182 "nr_zspages", 1183 #endif 1184 "nr_free_cma", 1185 #ifdef CONFIG_UNACCEPTED_MEMORY 1186 "nr_unaccepted", 1187 #endif 1188 1189 /* enum numa_stat_item counters */ 1190 #ifdef CONFIG_NUMA 1191 "numa_hit", 1192 "numa_miss", 1193 "numa_foreign", 1194 "numa_interleave", 1195 "numa_local", 1196 "numa_other", 1197 #endif 1198 1199 /* enum node_stat_item counters */ 1200 "nr_inactive_anon", 1201 "nr_active_anon", 1202 "nr_inactive_file", 1203 "nr_active_file", 1204 "nr_unevictable", 1205 "nr_slab_reclaimable", 1206 "nr_slab_unreclaimable", 1207 "nr_isolated_anon", 1208 "nr_isolated_file", 1209 "workingset_nodes", 1210 "workingset_refault_anon", 1211 "workingset_refault_file", 1212 "workingset_activate_anon", 1213 "workingset_activate_file", 1214 "workingset_restore_anon", 1215 "workingset_restore_file", 1216 "workingset_nodereclaim", 1217 "nr_anon_pages", 1218 "nr_mapped", 1219 "nr_file_pages", 1220 "nr_dirty", 1221 "nr_writeback", 1222 "nr_writeback_temp", 1223 "nr_shmem", 1224 "nr_shmem_hugepages", 1225 "nr_shmem_pmdmapped", 1226 "nr_file_hugepages", 1227 "nr_file_pmdmapped", 1228 "nr_anon_transparent_hugepages", 1229 "nr_vmscan_write", 1230 "nr_vmscan_immediate_reclaim", 1231 "nr_dirtied", 1232 "nr_written", 1233 "nr_throttled_written", 1234 "nr_kernel_misc_reclaimable", 1235 "nr_foll_pin_acquired", 1236 "nr_foll_pin_released", 1237 "nr_kernel_stack", 1238 #if IS_ENABLED(CONFIG_SHADOW_CALL_STACK) 1239 "nr_shadow_call_stack", 1240 #endif 1241 "nr_page_table_pages", 1242 "nr_sec_page_table_pages", 1243 #ifdef CONFIG_SWAP 1244 "nr_swapcached", 1245 #endif 1246 #ifdef CONFIG_NUMA_BALANCING 1247 "pgpromote_success", 1248 "pgpromote_candidate", 1249 #endif 1250 1251 /* enum writeback_stat_item counters */ 1252 "nr_dirty_threshold", 1253 "nr_dirty_background_threshold", 1254 1255 #if defined(CONFIG_VM_EVENT_COUNTERS) || defined(CONFIG_MEMCG) 1256 /* enum vm_event_item counters */ 1257 "pgpgin", 1258 "pgpgout", 1259 "pswpin", 1260 "pswpout", 1261 1262 TEXTS_FOR_ZONES("pgalloc") 1263 TEXTS_FOR_ZONES("allocstall") 1264 TEXTS_FOR_ZONES("pgskip") 1265 1266 "pgfree", 1267 "pgactivate", 1268 "pgdeactivate", 1269 "pglazyfree", 1270 1271 "pgfault", 1272 "pgmajfault", 1273 "pglazyfreed", 1274 1275 "pgrefill", 1276 "pgreuse", 1277 "pgsteal_kswapd", 1278 "pgsteal_direct", 1279 "pgsteal_khugepaged", 1280 "pgdemote_kswapd", 1281 "pgdemote_direct", 1282 "pgdemote_khugepaged", 1283 "pgscan_kswapd", 1284 "pgscan_direct", 1285 "pgscan_khugepaged", 1286 "pgscan_direct_throttle", 1287 "pgscan_anon", 1288 "pgscan_file", 1289 "pgsteal_anon", 1290 "pgsteal_file", 1291 1292 #ifdef CONFIG_NUMA 1293 "zone_reclaim_failed", 1294 #endif 1295 "pginodesteal", 1296 "slabs_scanned", 1297 "kswapd_inodesteal", 1298 "kswapd_low_wmark_hit_quickly", 1299 "kswapd_high_wmark_hit_quickly", 1300 "pageoutrun", 1301 1302 "pgrotated", 1303 1304 "drop_pagecache", 1305 "drop_slab", 1306 "oom_kill", 1307 1308 #ifdef CONFIG_NUMA_BALANCING 1309 "numa_pte_updates", 1310 "numa_huge_pte_updates", 1311 "numa_hint_faults", 1312 "numa_hint_faults_local", 1313 "numa_pages_migrated", 1314 #endif 1315 #ifdef CONFIG_MIGRATION 1316 "pgmigrate_success", 1317 "pgmigrate_fail", 1318 "thp_migration_success", 1319 "thp_migration_fail", 1320 "thp_migration_split", 1321 #endif 1322 #ifdef CONFIG_COMPACTION 1323 "compact_migrate_scanned", 1324 "compact_free_scanned", 1325 "compact_isolated", 1326 "compact_stall", 1327 "compact_fail", 1328 "compact_success", 1329 "compact_daemon_wake", 1330 "compact_daemon_migrate_scanned", 1331 "compact_daemon_free_scanned", 1332 #endif 1333 1334 #ifdef CONFIG_HUGETLB_PAGE 1335 "htlb_buddy_alloc_success", 1336 "htlb_buddy_alloc_fail", 1337 #endif 1338 #ifdef CONFIG_CMA 1339 "cma_alloc_success", 1340 "cma_alloc_fail", 1341 #endif 1342 "unevictable_pgs_culled", 1343 "unevictable_pgs_scanned", 1344 "unevictable_pgs_rescued", 1345 "unevictable_pgs_mlocked", 1346 "unevictable_pgs_munlocked", 1347 "unevictable_pgs_cleared", 1348 "unevictable_pgs_stranded", 1349 1350 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 1351 "thp_fault_alloc", 1352 "thp_fault_fallback", 1353 "thp_fault_fallback_charge", 1354 "thp_collapse_alloc", 1355 "thp_collapse_alloc_failed", 1356 "thp_file_alloc", 1357 "thp_file_fallback", 1358 "thp_file_fallback_charge", 1359 "thp_file_mapped", 1360 "thp_split_page", 1361 "thp_split_page_failed", 1362 "thp_deferred_split_page", 1363 "thp_split_pmd", 1364 "thp_scan_exceed_none_pte", 1365 "thp_scan_exceed_swap_pte", 1366 "thp_scan_exceed_share_pte", 1367 #ifdef CONFIG_HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD 1368 "thp_split_pud", 1369 #endif 1370 "thp_zero_page_alloc", 1371 "thp_zero_page_alloc_failed", 1372 "thp_swpout", 1373 "thp_swpout_fallback", 1374 #endif 1375 #ifdef CONFIG_MEMORY_BALLOON 1376 "balloon_inflate", 1377 "balloon_deflate", 1378 #ifdef CONFIG_BALLOON_COMPACTION 1379 "balloon_migrate", 1380 #endif 1381 #endif /* CONFIG_MEMORY_BALLOON */ 1382 #ifdef CONFIG_DEBUG_TLBFLUSH 1383 "nr_tlb_remote_flush", 1384 "nr_tlb_remote_flush_received", 1385 "nr_tlb_local_flush_all", 1386 "nr_tlb_local_flush_one", 1387 #endif /* CONFIG_DEBUG_TLBFLUSH */ 1388 1389 #ifdef CONFIG_SWAP 1390 "swap_ra", 1391 "swap_ra_hit", 1392 #ifdef CONFIG_KSM 1393 "ksm_swpin_copy", 1394 #endif 1395 #endif 1396 #ifdef CONFIG_KSM 1397 "cow_ksm", 1398 #endif 1399 #ifdef CONFIG_ZSWAP 1400 "zswpin", 1401 "zswpout", 1402 #endif 1403 #ifdef CONFIG_X86 1404 "direct_map_level2_splits", 1405 "direct_map_level3_splits", 1406 #endif 1407 #ifdef CONFIG_PER_VMA_LOCK_STATS 1408 "vma_lock_success", 1409 "vma_lock_abort", 1410 "vma_lock_retry", 1411 "vma_lock_miss", 1412 #endif 1413 #endif /* CONFIG_VM_EVENT_COUNTERS || CONFIG_MEMCG */ 1414 }; 1415 #endif /* CONFIG_PROC_FS || CONFIG_SYSFS || CONFIG_NUMA || CONFIG_MEMCG */ 1416 1417 #if (defined(CONFIG_DEBUG_FS) && defined(CONFIG_COMPACTION)) || \ 1418 defined(CONFIG_PROC_FS) 1419 static void *frag_start(struct seq_file *m, loff_t *pos) 1420 { 1421 pg_data_t *pgdat; 1422 loff_t node = *pos; 1423 1424 for (pgdat = first_online_pgdat(); 1425 pgdat && node; 1426 pgdat = next_online_pgdat(pgdat)) 1427 --node; 1428 1429 return pgdat; 1430 } 1431 1432 static void *frag_next(struct seq_file *m, void *arg, loff_t *pos) 1433 { 1434 pg_data_t *pgdat = (pg_data_t *)arg; 1435 1436 (*pos)++; 1437 return next_online_pgdat(pgdat); 1438 } 1439 1440 static void frag_stop(struct seq_file *m, void *arg) 1441 { 1442 } 1443 1444 /* 1445 * Walk zones in a node and print using a callback. 1446 * If @assert_populated is true, only use callback for zones that are populated. 1447 */ 1448 static void walk_zones_in_node(struct seq_file *m, pg_data_t *pgdat, 1449 bool assert_populated, bool nolock, 1450 void (*print)(struct seq_file *m, pg_data_t *, struct zone *)) 1451 { 1452 struct zone *zone; 1453 struct zone *node_zones = pgdat->node_zones; 1454 unsigned long flags; 1455 1456 for (zone = node_zones; zone - node_zones < MAX_NR_ZONES; ++zone) { 1457 if (assert_populated && !populated_zone(zone)) 1458 continue; 1459 1460 if (!nolock) 1461 spin_lock_irqsave(&zone->lock, flags); 1462 print(m, pgdat, zone); 1463 if (!nolock) 1464 spin_unlock_irqrestore(&zone->lock, flags); 1465 } 1466 } 1467 #endif 1468 1469 #ifdef CONFIG_PROC_FS 1470 static void frag_show_print(struct seq_file *m, pg_data_t *pgdat, 1471 struct zone *zone) 1472 { 1473 int order; 1474 1475 seq_printf(m, "Node %d, zone %8s ", pgdat->node_id, zone->name); 1476 for (order = 0; order <= MAX_ORDER; ++order) 1477 /* 1478 * Access to nr_free is lockless as nr_free is used only for 1479 * printing purposes. Use data_race to avoid KCSAN warning. 1480 */ 1481 seq_printf(m, "%6lu ", data_race(zone->free_area[order].nr_free)); 1482 seq_putc(m, '\n'); 1483 } 1484 1485 /* 1486 * This walks the free areas for each zone. 1487 */ 1488 static int frag_show(struct seq_file *m, void *arg) 1489 { 1490 pg_data_t *pgdat = (pg_data_t *)arg; 1491 walk_zones_in_node(m, pgdat, true, false, frag_show_print); 1492 return 0; 1493 } 1494 1495 static void pagetypeinfo_showfree_print(struct seq_file *m, 1496 pg_data_t *pgdat, struct zone *zone) 1497 { 1498 int order, mtype; 1499 1500 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++) { 1501 seq_printf(m, "Node %4d, zone %8s, type %12s ", 1502 pgdat->node_id, 1503 zone->name, 1504 migratetype_names[mtype]); 1505 for (order = 0; order <= MAX_ORDER; ++order) { 1506 unsigned long freecount = 0; 1507 struct free_area *area; 1508 struct list_head *curr; 1509 bool overflow = false; 1510 1511 area = &(zone->free_area[order]); 1512 1513 list_for_each(curr, &area->free_list[mtype]) { 1514 /* 1515 * Cap the free_list iteration because it might 1516 * be really large and we are under a spinlock 1517 * so a long time spent here could trigger a 1518 * hard lockup detector. Anyway this is a 1519 * debugging tool so knowing there is a handful 1520 * of pages of this order should be more than 1521 * sufficient. 1522 */ 1523 if (++freecount >= 100000) { 1524 overflow = true; 1525 break; 1526 } 1527 } 1528 seq_printf(m, "%s%6lu ", overflow ? ">" : "", freecount); 1529 spin_unlock_irq(&zone->lock); 1530 cond_resched(); 1531 spin_lock_irq(&zone->lock); 1532 } 1533 seq_putc(m, '\n'); 1534 } 1535 } 1536 1537 /* Print out the free pages at each order for each migatetype */ 1538 static void pagetypeinfo_showfree(struct seq_file *m, void *arg) 1539 { 1540 int order; 1541 pg_data_t *pgdat = (pg_data_t *)arg; 1542 1543 /* Print header */ 1544 seq_printf(m, "%-43s ", "Free pages count per migrate type at order"); 1545 for (order = 0; order <= MAX_ORDER; ++order) 1546 seq_printf(m, "%6d ", order); 1547 seq_putc(m, '\n'); 1548 1549 walk_zones_in_node(m, pgdat, true, false, pagetypeinfo_showfree_print); 1550 } 1551 1552 static void pagetypeinfo_showblockcount_print(struct seq_file *m, 1553 pg_data_t *pgdat, struct zone *zone) 1554 { 1555 int mtype; 1556 unsigned long pfn; 1557 unsigned long start_pfn = zone->zone_start_pfn; 1558 unsigned long end_pfn = zone_end_pfn(zone); 1559 unsigned long count[MIGRATE_TYPES] = { 0, }; 1560 1561 for (pfn = start_pfn; pfn < end_pfn; pfn += pageblock_nr_pages) { 1562 struct page *page; 1563 1564 page = pfn_to_online_page(pfn); 1565 if (!page) 1566 continue; 1567 1568 if (page_zone(page) != zone) 1569 continue; 1570 1571 mtype = get_pageblock_migratetype(page); 1572 1573 if (mtype < MIGRATE_TYPES) 1574 count[mtype]++; 1575 } 1576 1577 /* Print counts */ 1578 seq_printf(m, "Node %d, zone %8s ", pgdat->node_id, zone->name); 1579 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++) 1580 seq_printf(m, "%12lu ", count[mtype]); 1581 seq_putc(m, '\n'); 1582 } 1583 1584 /* Print out the number of pageblocks for each migratetype */ 1585 static void pagetypeinfo_showblockcount(struct seq_file *m, void *arg) 1586 { 1587 int mtype; 1588 pg_data_t *pgdat = (pg_data_t *)arg; 1589 1590 seq_printf(m, "\n%-23s", "Number of blocks type "); 1591 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++) 1592 seq_printf(m, "%12s ", migratetype_names[mtype]); 1593 seq_putc(m, '\n'); 1594 walk_zones_in_node(m, pgdat, true, false, 1595 pagetypeinfo_showblockcount_print); 1596 } 1597 1598 /* 1599 * Print out the number of pageblocks for each migratetype that contain pages 1600 * of other types. This gives an indication of how well fallbacks are being 1601 * contained by rmqueue_fallback(). It requires information from PAGE_OWNER 1602 * to determine what is going on 1603 */ 1604 static void pagetypeinfo_showmixedcount(struct seq_file *m, pg_data_t *pgdat) 1605 { 1606 #ifdef CONFIG_PAGE_OWNER 1607 int mtype; 1608 1609 if (!static_branch_unlikely(&page_owner_inited)) 1610 return; 1611 1612 drain_all_pages(NULL); 1613 1614 seq_printf(m, "\n%-23s", "Number of mixed blocks "); 1615 for (mtype = 0; mtype < MIGRATE_TYPES; mtype++) 1616 seq_printf(m, "%12s ", migratetype_names[mtype]); 1617 seq_putc(m, '\n'); 1618 1619 walk_zones_in_node(m, pgdat, true, true, 1620 pagetypeinfo_showmixedcount_print); 1621 #endif /* CONFIG_PAGE_OWNER */ 1622 } 1623 1624 /* 1625 * This prints out statistics in relation to grouping pages by mobility. 1626 * It is expensive to collect so do not constantly read the file. 1627 */ 1628 static int pagetypeinfo_show(struct seq_file *m, void *arg) 1629 { 1630 pg_data_t *pgdat = (pg_data_t *)arg; 1631 1632 /* check memoryless node */ 1633 if (!node_state(pgdat->node_id, N_MEMORY)) 1634 return 0; 1635 1636 seq_printf(m, "Page block order: %d\n", pageblock_order); 1637 seq_printf(m, "Pages per block: %lu\n", pageblock_nr_pages); 1638 seq_putc(m, '\n'); 1639 pagetypeinfo_showfree(m, pgdat); 1640 pagetypeinfo_showblockcount(m, pgdat); 1641 pagetypeinfo_showmixedcount(m, pgdat); 1642 1643 return 0; 1644 } 1645 1646 static const struct seq_operations fragmentation_op = { 1647 .start = frag_start, 1648 .next = frag_next, 1649 .stop = frag_stop, 1650 .show = frag_show, 1651 }; 1652 1653 static const struct seq_operations pagetypeinfo_op = { 1654 .start = frag_start, 1655 .next = frag_next, 1656 .stop = frag_stop, 1657 .show = pagetypeinfo_show, 1658 }; 1659 1660 static bool is_zone_first_populated(pg_data_t *pgdat, struct zone *zone) 1661 { 1662 int zid; 1663 1664 for (zid = 0; zid < MAX_NR_ZONES; zid++) { 1665 struct zone *compare = &pgdat->node_zones[zid]; 1666 1667 if (populated_zone(compare)) 1668 return zone == compare; 1669 } 1670 1671 return false; 1672 } 1673 1674 static void zoneinfo_show_print(struct seq_file *m, pg_data_t *pgdat, 1675 struct zone *zone) 1676 { 1677 int i; 1678 seq_printf(m, "Node %d, zone %8s", pgdat->node_id, zone->name); 1679 if (is_zone_first_populated(pgdat, zone)) { 1680 seq_printf(m, "\n per-node stats"); 1681 for (i = 0; i < NR_VM_NODE_STAT_ITEMS; i++) { 1682 unsigned long pages = node_page_state_pages(pgdat, i); 1683 1684 if (vmstat_item_print_in_thp(i)) 1685 pages /= HPAGE_PMD_NR; 1686 seq_printf(m, "\n %-12s %lu", node_stat_name(i), 1687 pages); 1688 } 1689 } 1690 seq_printf(m, 1691 "\n pages free %lu" 1692 "\n boost %lu" 1693 "\n min %lu" 1694 "\n low %lu" 1695 "\n high %lu" 1696 "\n spanned %lu" 1697 "\n present %lu" 1698 "\n managed %lu" 1699 "\n cma %lu", 1700 zone_page_state(zone, NR_FREE_PAGES), 1701 zone->watermark_boost, 1702 min_wmark_pages(zone), 1703 low_wmark_pages(zone), 1704 high_wmark_pages(zone), 1705 zone->spanned_pages, 1706 zone->present_pages, 1707 zone_managed_pages(zone), 1708 zone_cma_pages(zone)); 1709 1710 seq_printf(m, 1711 "\n protection: (%ld", 1712 zone->lowmem_reserve[0]); 1713 for (i = 1; i < ARRAY_SIZE(zone->lowmem_reserve); i++) 1714 seq_printf(m, ", %ld", zone->lowmem_reserve[i]); 1715 seq_putc(m, ')'); 1716 1717 /* If unpopulated, no other information is useful */ 1718 if (!populated_zone(zone)) { 1719 seq_putc(m, '\n'); 1720 return; 1721 } 1722 1723 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) 1724 seq_printf(m, "\n %-12s %lu", zone_stat_name(i), 1725 zone_page_state(zone, i)); 1726 1727 #ifdef CONFIG_NUMA 1728 for (i = 0; i < NR_VM_NUMA_EVENT_ITEMS; i++) 1729 seq_printf(m, "\n %-12s %lu", numa_stat_name(i), 1730 zone_numa_event_state(zone, i)); 1731 #endif 1732 1733 seq_printf(m, "\n pagesets"); 1734 for_each_online_cpu(i) { 1735 struct per_cpu_pages *pcp; 1736 struct per_cpu_zonestat __maybe_unused *pzstats; 1737 1738 pcp = per_cpu_ptr(zone->per_cpu_pageset, i); 1739 seq_printf(m, 1740 "\n cpu: %i" 1741 "\n count: %i" 1742 "\n high: %i" 1743 "\n batch: %i", 1744 i, 1745 pcp->count, 1746 pcp->high, 1747 pcp->batch); 1748 #ifdef CONFIG_SMP 1749 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, i); 1750 seq_printf(m, "\n vm stats threshold: %d", 1751 pzstats->stat_threshold); 1752 #endif 1753 } 1754 seq_printf(m, 1755 "\n node_unreclaimable: %u" 1756 "\n start_pfn: %lu", 1757 pgdat->kswapd_failures >= MAX_RECLAIM_RETRIES, 1758 zone->zone_start_pfn); 1759 seq_putc(m, '\n'); 1760 } 1761 1762 /* 1763 * Output information about zones in @pgdat. All zones are printed regardless 1764 * of whether they are populated or not: lowmem_reserve_ratio operates on the 1765 * set of all zones and userspace would not be aware of such zones if they are 1766 * suppressed here (zoneinfo displays the effect of lowmem_reserve_ratio). 1767 */ 1768 static int zoneinfo_show(struct seq_file *m, void *arg) 1769 { 1770 pg_data_t *pgdat = (pg_data_t *)arg; 1771 walk_zones_in_node(m, pgdat, false, false, zoneinfo_show_print); 1772 return 0; 1773 } 1774 1775 static const struct seq_operations zoneinfo_op = { 1776 .start = frag_start, /* iterate over all zones. The same as in 1777 * fragmentation. */ 1778 .next = frag_next, 1779 .stop = frag_stop, 1780 .show = zoneinfo_show, 1781 }; 1782 1783 #define NR_VMSTAT_ITEMS (NR_VM_ZONE_STAT_ITEMS + \ 1784 NR_VM_NUMA_EVENT_ITEMS + \ 1785 NR_VM_NODE_STAT_ITEMS + \ 1786 NR_VM_WRITEBACK_STAT_ITEMS + \ 1787 (IS_ENABLED(CONFIG_VM_EVENT_COUNTERS) ? \ 1788 NR_VM_EVENT_ITEMS : 0)) 1789 1790 static void *vmstat_start(struct seq_file *m, loff_t *pos) 1791 { 1792 unsigned long *v; 1793 int i; 1794 1795 if (*pos >= NR_VMSTAT_ITEMS) 1796 return NULL; 1797 1798 BUILD_BUG_ON(ARRAY_SIZE(vmstat_text) < NR_VMSTAT_ITEMS); 1799 fold_vm_numa_events(); 1800 v = kmalloc_array(NR_VMSTAT_ITEMS, sizeof(unsigned long), GFP_KERNEL); 1801 m->private = v; 1802 if (!v) 1803 return ERR_PTR(-ENOMEM); 1804 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) 1805 v[i] = global_zone_page_state(i); 1806 v += NR_VM_ZONE_STAT_ITEMS; 1807 1808 #ifdef CONFIG_NUMA 1809 for (i = 0; i < NR_VM_NUMA_EVENT_ITEMS; i++) 1810 v[i] = global_numa_event_state(i); 1811 v += NR_VM_NUMA_EVENT_ITEMS; 1812 #endif 1813 1814 for (i = 0; i < NR_VM_NODE_STAT_ITEMS; i++) { 1815 v[i] = global_node_page_state_pages(i); 1816 if (vmstat_item_print_in_thp(i)) 1817 v[i] /= HPAGE_PMD_NR; 1818 } 1819 v += NR_VM_NODE_STAT_ITEMS; 1820 1821 global_dirty_limits(v + NR_DIRTY_BG_THRESHOLD, 1822 v + NR_DIRTY_THRESHOLD); 1823 v += NR_VM_WRITEBACK_STAT_ITEMS; 1824 1825 #ifdef CONFIG_VM_EVENT_COUNTERS 1826 all_vm_events(v); 1827 v[PGPGIN] /= 2; /* sectors -> kbytes */ 1828 v[PGPGOUT] /= 2; 1829 #endif 1830 return (unsigned long *)m->private + *pos; 1831 } 1832 1833 static void *vmstat_next(struct seq_file *m, void *arg, loff_t *pos) 1834 { 1835 (*pos)++; 1836 if (*pos >= NR_VMSTAT_ITEMS) 1837 return NULL; 1838 return (unsigned long *)m->private + *pos; 1839 } 1840 1841 static int vmstat_show(struct seq_file *m, void *arg) 1842 { 1843 unsigned long *l = arg; 1844 unsigned long off = l - (unsigned long *)m->private; 1845 1846 seq_puts(m, vmstat_text[off]); 1847 seq_put_decimal_ull(m, " ", *l); 1848 seq_putc(m, '\n'); 1849 1850 if (off == NR_VMSTAT_ITEMS - 1) { 1851 /* 1852 * We've come to the end - add any deprecated counters to avoid 1853 * breaking userspace which might depend on them being present. 1854 */ 1855 seq_puts(m, "nr_unstable 0\n"); 1856 } 1857 return 0; 1858 } 1859 1860 static void vmstat_stop(struct seq_file *m, void *arg) 1861 { 1862 kfree(m->private); 1863 m->private = NULL; 1864 } 1865 1866 static const struct seq_operations vmstat_op = { 1867 .start = vmstat_start, 1868 .next = vmstat_next, 1869 .stop = vmstat_stop, 1870 .show = vmstat_show, 1871 }; 1872 #endif /* CONFIG_PROC_FS */ 1873 1874 #ifdef CONFIG_SMP 1875 static DEFINE_PER_CPU(struct delayed_work, vmstat_work); 1876 int sysctl_stat_interval __read_mostly = HZ; 1877 1878 #ifdef CONFIG_PROC_FS 1879 static void refresh_vm_stats(struct work_struct *work) 1880 { 1881 refresh_cpu_vm_stats(true); 1882 } 1883 1884 int vmstat_refresh(struct ctl_table *table, int write, 1885 void *buffer, size_t *lenp, loff_t *ppos) 1886 { 1887 long val; 1888 int err; 1889 int i; 1890 1891 /* 1892 * The regular update, every sysctl_stat_interval, may come later 1893 * than expected: leaving a significant amount in per_cpu buckets. 1894 * This is particularly misleading when checking a quantity of HUGE 1895 * pages, immediately after running a test. /proc/sys/vm/stat_refresh, 1896 * which can equally be echo'ed to or cat'ted from (by root), 1897 * can be used to update the stats just before reading them. 1898 * 1899 * Oh, and since global_zone_page_state() etc. are so careful to hide 1900 * transiently negative values, report an error here if any of 1901 * the stats is negative, so we know to go looking for imbalance. 1902 */ 1903 err = schedule_on_each_cpu(refresh_vm_stats); 1904 if (err) 1905 return err; 1906 for (i = 0; i < NR_VM_ZONE_STAT_ITEMS; i++) { 1907 /* 1908 * Skip checking stats known to go negative occasionally. 1909 */ 1910 switch (i) { 1911 case NR_ZONE_WRITE_PENDING: 1912 case NR_FREE_CMA_PAGES: 1913 continue; 1914 } 1915 val = atomic_long_read(&vm_zone_stat[i]); 1916 if (val < 0) { 1917 pr_warn("%s: %s %ld\n", 1918 __func__, zone_stat_name(i), val); 1919 } 1920 } 1921 for (i = 0; i < NR_VM_NODE_STAT_ITEMS; i++) { 1922 /* 1923 * Skip checking stats known to go negative occasionally. 1924 */ 1925 switch (i) { 1926 case NR_WRITEBACK: 1927 continue; 1928 } 1929 val = atomic_long_read(&vm_node_stat[i]); 1930 if (val < 0) { 1931 pr_warn("%s: %s %ld\n", 1932 __func__, node_stat_name(i), val); 1933 } 1934 } 1935 if (write) 1936 *ppos += *lenp; 1937 else 1938 *lenp = 0; 1939 return 0; 1940 } 1941 #endif /* CONFIG_PROC_FS */ 1942 1943 static void vmstat_update(struct work_struct *w) 1944 { 1945 if (refresh_cpu_vm_stats(true)) { 1946 /* 1947 * Counters were updated so we expect more updates 1948 * to occur in the future. Keep on running the 1949 * update worker thread. 1950 */ 1951 queue_delayed_work_on(smp_processor_id(), mm_percpu_wq, 1952 this_cpu_ptr(&vmstat_work), 1953 round_jiffies_relative(sysctl_stat_interval)); 1954 } 1955 } 1956 1957 /* 1958 * Check if the diffs for a certain cpu indicate that 1959 * an update is needed. 1960 */ 1961 static bool need_update(int cpu) 1962 { 1963 pg_data_t *last_pgdat = NULL; 1964 struct zone *zone; 1965 1966 for_each_populated_zone(zone) { 1967 struct per_cpu_zonestat *pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu); 1968 struct per_cpu_nodestat *n; 1969 1970 /* 1971 * The fast way of checking if there are any vmstat diffs. 1972 */ 1973 if (memchr_inv(pzstats->vm_stat_diff, 0, sizeof(pzstats->vm_stat_diff))) 1974 return true; 1975 1976 if (last_pgdat == zone->zone_pgdat) 1977 continue; 1978 last_pgdat = zone->zone_pgdat; 1979 n = per_cpu_ptr(zone->zone_pgdat->per_cpu_nodestats, cpu); 1980 if (memchr_inv(n->vm_node_stat_diff, 0, sizeof(n->vm_node_stat_diff))) 1981 return true; 1982 } 1983 return false; 1984 } 1985 1986 /* 1987 * Switch off vmstat processing and then fold all the remaining differentials 1988 * until the diffs stay at zero. The function is used by NOHZ and can only be 1989 * invoked when tick processing is not active. 1990 */ 1991 void quiet_vmstat(void) 1992 { 1993 if (system_state != SYSTEM_RUNNING) 1994 return; 1995 1996 if (!delayed_work_pending(this_cpu_ptr(&vmstat_work))) 1997 return; 1998 1999 if (!need_update(smp_processor_id())) 2000 return; 2001 2002 /* 2003 * Just refresh counters and do not care about the pending delayed 2004 * vmstat_update. It doesn't fire that often to matter and canceling 2005 * it would be too expensive from this path. 2006 * vmstat_shepherd will take care about that for us. 2007 */ 2008 refresh_cpu_vm_stats(false); 2009 } 2010 2011 /* 2012 * Shepherd worker thread that checks the 2013 * differentials of processors that have their worker 2014 * threads for vm statistics updates disabled because of 2015 * inactivity. 2016 */ 2017 static void vmstat_shepherd(struct work_struct *w); 2018 2019 static DECLARE_DEFERRABLE_WORK(shepherd, vmstat_shepherd); 2020 2021 static void vmstat_shepherd(struct work_struct *w) 2022 { 2023 int cpu; 2024 2025 cpus_read_lock(); 2026 /* Check processors whose vmstat worker threads have been disabled */ 2027 for_each_online_cpu(cpu) { 2028 struct delayed_work *dw = &per_cpu(vmstat_work, cpu); 2029 2030 /* 2031 * In kernel users of vmstat counters either require the precise value and 2032 * they are using zone_page_state_snapshot interface or they can live with 2033 * an imprecision as the regular flushing can happen at arbitrary time and 2034 * cumulative error can grow (see calculate_normal_threshold). 2035 * 2036 * From that POV the regular flushing can be postponed for CPUs that have 2037 * been isolated from the kernel interference without critical 2038 * infrastructure ever noticing. Skip regular flushing from vmstat_shepherd 2039 * for all isolated CPUs to avoid interference with the isolated workload. 2040 */ 2041 if (cpu_is_isolated(cpu)) 2042 continue; 2043 2044 if (!delayed_work_pending(dw) && need_update(cpu)) 2045 queue_delayed_work_on(cpu, mm_percpu_wq, dw, 0); 2046 2047 cond_resched(); 2048 } 2049 cpus_read_unlock(); 2050 2051 schedule_delayed_work(&shepherd, 2052 round_jiffies_relative(sysctl_stat_interval)); 2053 } 2054 2055 static void __init start_shepherd_timer(void) 2056 { 2057 int cpu; 2058 2059 for_each_possible_cpu(cpu) 2060 INIT_DEFERRABLE_WORK(per_cpu_ptr(&vmstat_work, cpu), 2061 vmstat_update); 2062 2063 schedule_delayed_work(&shepherd, 2064 round_jiffies_relative(sysctl_stat_interval)); 2065 } 2066 2067 static void __init init_cpu_node_state(void) 2068 { 2069 int node; 2070 2071 for_each_online_node(node) { 2072 if (!cpumask_empty(cpumask_of_node(node))) 2073 node_set_state(node, N_CPU); 2074 } 2075 } 2076 2077 static int vmstat_cpu_online(unsigned int cpu) 2078 { 2079 refresh_zone_stat_thresholds(); 2080 2081 if (!node_state(cpu_to_node(cpu), N_CPU)) { 2082 node_set_state(cpu_to_node(cpu), N_CPU); 2083 } 2084 2085 return 0; 2086 } 2087 2088 static int vmstat_cpu_down_prep(unsigned int cpu) 2089 { 2090 cancel_delayed_work_sync(&per_cpu(vmstat_work, cpu)); 2091 return 0; 2092 } 2093 2094 static int vmstat_cpu_dead(unsigned int cpu) 2095 { 2096 const struct cpumask *node_cpus; 2097 int node; 2098 2099 node = cpu_to_node(cpu); 2100 2101 refresh_zone_stat_thresholds(); 2102 node_cpus = cpumask_of_node(node); 2103 if (!cpumask_empty(node_cpus)) 2104 return 0; 2105 2106 node_clear_state(node, N_CPU); 2107 2108 return 0; 2109 } 2110 2111 #endif 2112 2113 struct workqueue_struct *mm_percpu_wq; 2114 2115 void __init init_mm_internals(void) 2116 { 2117 int ret __maybe_unused; 2118 2119 mm_percpu_wq = alloc_workqueue("mm_percpu_wq", WQ_MEM_RECLAIM, 0); 2120 2121 #ifdef CONFIG_SMP 2122 ret = cpuhp_setup_state_nocalls(CPUHP_MM_VMSTAT_DEAD, "mm/vmstat:dead", 2123 NULL, vmstat_cpu_dead); 2124 if (ret < 0) 2125 pr_err("vmstat: failed to register 'dead' hotplug state\n"); 2126 2127 ret = cpuhp_setup_state_nocalls(CPUHP_AP_ONLINE_DYN, "mm/vmstat:online", 2128 vmstat_cpu_online, 2129 vmstat_cpu_down_prep); 2130 if (ret < 0) 2131 pr_err("vmstat: failed to register 'online' hotplug state\n"); 2132 2133 cpus_read_lock(); 2134 init_cpu_node_state(); 2135 cpus_read_unlock(); 2136 2137 start_shepherd_timer(); 2138 #endif 2139 #ifdef CONFIG_PROC_FS 2140 proc_create_seq("buddyinfo", 0444, NULL, &fragmentation_op); 2141 proc_create_seq("pagetypeinfo", 0400, NULL, &pagetypeinfo_op); 2142 proc_create_seq("vmstat", 0444, NULL, &vmstat_op); 2143 proc_create_seq("zoneinfo", 0444, NULL, &zoneinfo_op); 2144 #endif 2145 } 2146 2147 #if defined(CONFIG_DEBUG_FS) && defined(CONFIG_COMPACTION) 2148 2149 /* 2150 * Return an index indicating how much of the available free memory is 2151 * unusable for an allocation of the requested size. 2152 */ 2153 static int unusable_free_index(unsigned int order, 2154 struct contig_page_info *info) 2155 { 2156 /* No free memory is interpreted as all free memory is unusable */ 2157 if (info->free_pages == 0) 2158 return 1000; 2159 2160 /* 2161 * Index should be a value between 0 and 1. Return a value to 3 2162 * decimal places. 2163 * 2164 * 0 => no fragmentation 2165 * 1 => high fragmentation 2166 */ 2167 return div_u64((info->free_pages - (info->free_blocks_suitable << order)) * 1000ULL, info->free_pages); 2168 2169 } 2170 2171 static void unusable_show_print(struct seq_file *m, 2172 pg_data_t *pgdat, struct zone *zone) 2173 { 2174 unsigned int order; 2175 int index; 2176 struct contig_page_info info; 2177 2178 seq_printf(m, "Node %d, zone %8s ", 2179 pgdat->node_id, 2180 zone->name); 2181 for (order = 0; order <= MAX_ORDER; ++order) { 2182 fill_contig_page_info(zone, order, &info); 2183 index = unusable_free_index(order, &info); 2184 seq_printf(m, "%d.%03d ", index / 1000, index % 1000); 2185 } 2186 2187 seq_putc(m, '\n'); 2188 } 2189 2190 /* 2191 * Display unusable free space index 2192 * 2193 * The unusable free space index measures how much of the available free 2194 * memory cannot be used to satisfy an allocation of a given size and is a 2195 * value between 0 and 1. The higher the value, the more of free memory is 2196 * unusable and by implication, the worse the external fragmentation is. This 2197 * can be expressed as a percentage by multiplying by 100. 2198 */ 2199 static int unusable_show(struct seq_file *m, void *arg) 2200 { 2201 pg_data_t *pgdat = (pg_data_t *)arg; 2202 2203 /* check memoryless node */ 2204 if (!node_state(pgdat->node_id, N_MEMORY)) 2205 return 0; 2206 2207 walk_zones_in_node(m, pgdat, true, false, unusable_show_print); 2208 2209 return 0; 2210 } 2211 2212 static const struct seq_operations unusable_sops = { 2213 .start = frag_start, 2214 .next = frag_next, 2215 .stop = frag_stop, 2216 .show = unusable_show, 2217 }; 2218 2219 DEFINE_SEQ_ATTRIBUTE(unusable); 2220 2221 static void extfrag_show_print(struct seq_file *m, 2222 pg_data_t *pgdat, struct zone *zone) 2223 { 2224 unsigned int order; 2225 int index; 2226 2227 /* Alloc on stack as interrupts are disabled for zone walk */ 2228 struct contig_page_info info; 2229 2230 seq_printf(m, "Node %d, zone %8s ", 2231 pgdat->node_id, 2232 zone->name); 2233 for (order = 0; order <= MAX_ORDER; ++order) { 2234 fill_contig_page_info(zone, order, &info); 2235 index = __fragmentation_index(order, &info); 2236 seq_printf(m, "%2d.%03d ", index / 1000, index % 1000); 2237 } 2238 2239 seq_putc(m, '\n'); 2240 } 2241 2242 /* 2243 * Display fragmentation index for orders that allocations would fail for 2244 */ 2245 static int extfrag_show(struct seq_file *m, void *arg) 2246 { 2247 pg_data_t *pgdat = (pg_data_t *)arg; 2248 2249 walk_zones_in_node(m, pgdat, true, false, extfrag_show_print); 2250 2251 return 0; 2252 } 2253 2254 static const struct seq_operations extfrag_sops = { 2255 .start = frag_start, 2256 .next = frag_next, 2257 .stop = frag_stop, 2258 .show = extfrag_show, 2259 }; 2260 2261 DEFINE_SEQ_ATTRIBUTE(extfrag); 2262 2263 static int __init extfrag_debug_init(void) 2264 { 2265 struct dentry *extfrag_debug_root; 2266 2267 extfrag_debug_root = debugfs_create_dir("extfrag", NULL); 2268 2269 debugfs_create_file("unusable_index", 0444, extfrag_debug_root, NULL, 2270 &unusable_fops); 2271 2272 debugfs_create_file("extfrag_index", 0444, extfrag_debug_root, NULL, 2273 &extfrag_fops); 2274 2275 return 0; 2276 } 2277 2278 module_init(extfrag_debug_init); 2279 #endif 2280