linux 2.6.16.38 w/ vs2.0.3-rc1
[linux-2.6.git] / mm / vmscan.c
1 /*
2  *  linux/mm/vmscan.c
3  *
4  *  Copyright (C) 1991, 1992, 1993, 1994  Linus Torvalds
5  *
6  *  Swap reorganised 29.12.95, Stephen Tweedie.
7  *  kswapd added: 7.1.96  sct
8  *  Removed kswapd_ctl limits, and swap out as many pages as needed
9  *  to bring the system back to freepages.high: 2.4.97, Rik van Riel.
10  *  Zone aware kswapd started 02/00, Kanoj Sarcar (kanoj@sgi.com).
11  *  Multiqueue VM started 5.8.00, Rik van Riel.
12  */
13
14 #include <linux/mm.h>
15 #include <linux/module.h>
16 #include <linux/slab.h>
17 #include <linux/kernel_stat.h>
18 #include <linux/swap.h>
19 #include <linux/pagemap.h>
20 #include <linux/init.h>
21 #include <linux/highmem.h>
22 #include <linux/file.h>
23 #include <linux/writeback.h>
24 #include <linux/blkdev.h>
25 #include <linux/buffer_head.h>  /* for try_to_release_page(),
26                                         buffer_heads_over_limit */
27 #include <linux/mm_inline.h>
28 #include <linux/pagevec.h>
29 #include <linux/backing-dev.h>
30 #include <linux/rmap.h>
31 #include <linux/topology.h>
32 #include <linux/cpu.h>
33 #include <linux/cpuset.h>
34 #include <linux/notifier.h>
35 #include <linux/rwsem.h>
36
37 #include <asm/tlbflush.h>
38 #include <asm/div64.h>
39
40 #include <linux/swapops.h>
41
42 /* possible outcome of pageout() */
43 typedef enum {
44         /* failed to write page out, page is locked */
45         PAGE_KEEP,
46         /* move page to the active list, page is locked */
47         PAGE_ACTIVATE,
48         /* page has been sent to the disk successfully, page is unlocked */
49         PAGE_SUCCESS,
50         /* page is clean and locked */
51         PAGE_CLEAN,
52 } pageout_t;
53
54 struct scan_control {
55         /* Ask refill_inactive_zone, or shrink_cache to scan this many pages */
56         unsigned long nr_to_scan;
57
58         /* Incremented by the number of inactive pages that were scanned */
59         unsigned long nr_scanned;
60
61         /* Incremented by the number of pages reclaimed */
62         unsigned long nr_reclaimed;
63
64         unsigned long nr_mapped;        /* From page_state */
65
66         /* Ask shrink_caches, or shrink_zone to scan at this priority */
67         unsigned int priority;
68
69         /* This context's GFP mask */
70         gfp_t gfp_mask;
71
72         int may_writepage;
73
74         /* Can pages be swapped as part of reclaim? */
75         int may_swap;
76
77         /* This context's SWAP_CLUSTER_MAX. If freeing memory for
78          * suspend, we effectively ignore SWAP_CLUSTER_MAX.
79          * In this context, it doesn't matter that we scan the
80          * whole list at once. */
81         int swap_cluster_max;
82 };
83
84 /*
85  * The list of shrinker callbacks used by to apply pressure to
86  * ageable caches.
87  */
88 struct shrinker {
89         shrinker_t              shrinker;
90         struct list_head        list;
91         int                     seeks;  /* seeks to recreate an obj */
92         long                    nr;     /* objs pending delete */
93 };
94
95 #define lru_to_page(_head) (list_entry((_head)->prev, struct page, lru))
96
97 #ifdef ARCH_HAS_PREFETCH
98 #define prefetch_prev_lru_page(_page, _base, _field)                    \
99         do {                                                            \
100                 if ((_page)->lru.prev != _base) {                       \
101                         struct page *prev;                              \
102                                                                         \
103                         prev = lru_to_page(&(_page->lru));              \
104                         prefetch(&prev->_field);                        \
105                 }                                                       \
106         } while (0)
107 #else
108 #define prefetch_prev_lru_page(_page, _base, _field) do { } while (0)
109 #endif
110
111 #ifdef ARCH_HAS_PREFETCHW
112 #define prefetchw_prev_lru_page(_page, _base, _field)                   \
113         do {                                                            \
114                 if ((_page)->lru.prev != _base) {                       \
115                         struct page *prev;                              \
116                                                                         \
117                         prev = lru_to_page(&(_page->lru));              \
118                         prefetchw(&prev->_field);                       \
119                 }                                                       \
120         } while (0)
121 #else
122 #define prefetchw_prev_lru_page(_page, _base, _field) do { } while (0)
123 #endif
124
125 /*
126  * From 0 .. 100.  Higher means more swappy.
127  */
128 int vm_swappiness = 60;
129 static long total_memory;
130
131 static LIST_HEAD(shrinker_list);
132 static DECLARE_RWSEM(shrinker_rwsem);
133
134 /*
135  * Add a shrinker callback to be called from the vm
136  */
137 struct shrinker *set_shrinker(int seeks, shrinker_t theshrinker)
138 {
139         struct shrinker *shrinker;
140
141         shrinker = kmalloc(sizeof(*shrinker), GFP_KERNEL);
142         if (shrinker) {
143                 shrinker->shrinker = theshrinker;
144                 shrinker->seeks = seeks;
145                 shrinker->nr = 0;
146                 down_write(&shrinker_rwsem);
147                 list_add_tail(&shrinker->list, &shrinker_list);
148                 up_write(&shrinker_rwsem);
149         }
150         return shrinker;
151 }
152 EXPORT_SYMBOL(set_shrinker);
153
154 /*
155  * Remove one
156  */
157 void remove_shrinker(struct shrinker *shrinker)
158 {
159         down_write(&shrinker_rwsem);
160         list_del(&shrinker->list);
161         up_write(&shrinker_rwsem);
162         kfree(shrinker);
163 }
164 EXPORT_SYMBOL(remove_shrinker);
165
166 #define SHRINK_BATCH 128
167 /*
168  * Call the shrink functions to age shrinkable caches
169  *
170  * Here we assume it costs one seek to replace a lru page and that it also
171  * takes a seek to recreate a cache object.  With this in mind we age equal
172  * percentages of the lru and ageable caches.  This should balance the seeks
173  * generated by these structures.
174  *
175  * If the vm encounted mapped pages on the LRU it increase the pressure on
176  * slab to avoid swapping.
177  *
178  * We do weird things to avoid (scanned*seeks*entries) overflowing 32 bits.
179  *
180  * `lru_pages' represents the number of on-LRU pages in all the zones which
181  * are eligible for the caller's allocation attempt.  It is used for balancing
182  * slab reclaim versus page reclaim.
183  *
184  * Returns the number of slab objects which we shrunk.
185  */
186 int shrink_slab(unsigned long scanned, gfp_t gfp_mask, unsigned long lru_pages)
187 {
188         struct shrinker *shrinker;
189         int ret = 0;
190
191         if (scanned == 0)
192                 scanned = SWAP_CLUSTER_MAX;
193
194         if (!down_read_trylock(&shrinker_rwsem))
195                 return 1;       /* Assume we'll be able to shrink next time */
196
197         list_for_each_entry(shrinker, &shrinker_list, list) {
198                 unsigned long long delta;
199                 unsigned long total_scan;
200                 unsigned long max_pass = (*shrinker->shrinker)(0, gfp_mask);
201
202                 delta = (4 * scanned) / shrinker->seeks;
203                 delta *= max_pass;
204                 do_div(delta, lru_pages + 1);
205                 shrinker->nr += delta;
206                 if (shrinker->nr < 0) {
207                         printk(KERN_ERR "%s: nr=%ld\n",
208                                         __FUNCTION__, shrinker->nr);
209                         shrinker->nr = max_pass;
210                 }
211
212                 /*
213                  * Avoid risking looping forever due to too large nr value:
214                  * never try to free more than twice the estimate number of
215                  * freeable entries.
216                  */
217                 if (shrinker->nr > max_pass * 2)
218                         shrinker->nr = max_pass * 2;
219
220                 total_scan = shrinker->nr;
221                 shrinker->nr = 0;
222
223                 while (total_scan >= SHRINK_BATCH) {
224                         long this_scan = SHRINK_BATCH;
225                         int shrink_ret;
226                         int nr_before;
227
228                         nr_before = (*shrinker->shrinker)(0, gfp_mask);
229                         shrink_ret = (*shrinker->shrinker)(this_scan, gfp_mask);
230                         if (shrink_ret == -1)
231                                 break;
232                         if (shrink_ret < nr_before)
233                                 ret += nr_before - shrink_ret;
234                         mod_page_state(slabs_scanned, this_scan);
235                         total_scan -= this_scan;
236
237                         cond_resched();
238                 }
239
240                 shrinker->nr += total_scan;
241         }
242         up_read(&shrinker_rwsem);
243         return ret;
244 }
245
246 /* Called without lock on whether page is mapped, so answer is unstable */
247 static inline int page_mapping_inuse(struct page *page)
248 {
249         struct address_space *mapping;
250
251         /* Page is in somebody's page tables. */
252         if (page_mapped(page))
253                 return 1;
254
255         /* Be more reluctant to reclaim swapcache than pagecache */
256         if (PageSwapCache(page))
257                 return 1;
258
259         mapping = page_mapping(page);
260         if (!mapping)
261                 return 0;
262
263         /* File is mmap'd by somebody? */
264         return mapping_mapped(mapping);
265 }
266
267 static inline int is_page_cache_freeable(struct page *page)
268 {
269         return page_count(page) - !!PagePrivate(page) == 2;
270 }
271
272 static int may_write_to_queue(struct backing_dev_info *bdi)
273 {
274         if (current->flags & PF_SWAPWRITE)
275                 return 1;
276         if (!bdi_write_congested(bdi))
277                 return 1;
278         if (bdi == current->backing_dev_info)
279                 return 1;
280         return 0;
281 }
282
283 /*
284  * We detected a synchronous write error writing a page out.  Probably
285  * -ENOSPC.  We need to propagate that into the address_space for a subsequent
286  * fsync(), msync() or close().
287  *
288  * The tricky part is that after writepage we cannot touch the mapping: nothing
289  * prevents it from being freed up.  But we have a ref on the page and once
290  * that page is locked, the mapping is pinned.
291  *
292  * We're allowed to run sleeping lock_page() here because we know the caller has
293  * __GFP_FS.
294  */
295 static void handle_write_error(struct address_space *mapping,
296                                 struct page *page, int error)
297 {
298         lock_page(page);
299         if (page_mapping(page) == mapping) {
300                 if (error == -ENOSPC)
301                         set_bit(AS_ENOSPC, &mapping->flags);
302                 else
303                         set_bit(AS_EIO, &mapping->flags);
304         }
305         unlock_page(page);
306 }
307
308 /*
309  * pageout is called by shrink_list() for each dirty page. Calls ->writepage().
310  */
311 static pageout_t pageout(struct page *page, struct address_space *mapping)
312 {
313         /*
314          * If the page is dirty, only perform writeback if that write
315          * will be non-blocking.  To prevent this allocation from being
316          * stalled by pagecache activity.  But note that there may be
317          * stalls if we need to run get_block().  We could test
318          * PagePrivate for that.
319          *
320          * If this process is currently in generic_file_write() against
321          * this page's queue, we can perform writeback even if that
322          * will block.
323          *
324          * If the page is swapcache, write it back even if that would
325          * block, for some throttling. This happens by accident, because
326          * swap_backing_dev_info is bust: it doesn't reflect the
327          * congestion state of the swapdevs.  Easy to fix, if needed.
328          * See swapfile.c:page_queue_congested().
329          */
330         if (!is_page_cache_freeable(page))
331                 return PAGE_KEEP;
332         if (!mapping) {
333                 /*
334                  * Some data journaling orphaned pages can have
335                  * page->mapping == NULL while being dirty with clean buffers.
336                  */
337                 if (PagePrivate(page)) {
338                         if (try_to_free_buffers(page)) {
339                                 ClearPageDirty(page);
340                                 printk("%s: orphaned page\n", __FUNCTION__);
341                                 return PAGE_CLEAN;
342                         }
343                 }
344                 return PAGE_KEEP;
345         }
346         if (mapping->a_ops->writepage == NULL)
347                 return PAGE_ACTIVATE;
348         if (!may_write_to_queue(mapping->backing_dev_info))
349                 return PAGE_KEEP;
350
351         if (clear_page_dirty_for_io(page)) {
352                 int res;
353                 struct writeback_control wbc = {
354                         .sync_mode = WB_SYNC_NONE,
355                         .nr_to_write = SWAP_CLUSTER_MAX,
356                         .nonblocking = 1,
357                         .for_reclaim = 1,
358                 };
359
360                 SetPageReclaim(page);
361                 res = mapping->a_ops->writepage(page, &wbc);
362                 if (res < 0)
363                         handle_write_error(mapping, page, res);
364                 if (res == AOP_WRITEPAGE_ACTIVATE) {
365                         ClearPageReclaim(page);
366                         return PAGE_ACTIVATE;
367                 }
368                 if (!PageWriteback(page)) {
369                         /* synchronous write or broken a_ops? */
370                         ClearPageReclaim(page);
371                 }
372
373                 return PAGE_SUCCESS;
374         }
375
376         return PAGE_CLEAN;
377 }
378
379 static int remove_mapping(struct address_space *mapping, struct page *page)
380 {
381         if (!mapping)
382                 return 0;               /* truncate got there first */
383
384         write_lock_irq(&mapping->tree_lock);
385
386         /*
387          * The non-racy check for busy page.  It is critical to check
388          * PageDirty _after_ making sure that the page is freeable and
389          * not in use by anybody.       (pagecache + us == 2)
390          */
391         if (unlikely(page_count(page) != 2))
392                 goto cannot_free;
393         smp_rmb();
394         if (unlikely(PageDirty(page)))
395                 goto cannot_free;
396
397         if (PageSwapCache(page)) {
398                 swp_entry_t swap = { .val = page_private(page) };
399                 __delete_from_swap_cache(page);
400                 write_unlock_irq(&mapping->tree_lock);
401                 swap_free(swap);
402                 __put_page(page);       /* The pagecache ref */
403                 return 1;
404         }
405
406         __remove_from_page_cache(page);
407         write_unlock_irq(&mapping->tree_lock);
408         __put_page(page);
409         return 1;
410
411 cannot_free:
412         write_unlock_irq(&mapping->tree_lock);
413         return 0;
414 }
415
416 /*
417  * shrink_list adds the number of reclaimed pages to sc->nr_reclaimed
418  */
419 static int shrink_list(struct list_head *page_list, struct scan_control *sc)
420 {
421         LIST_HEAD(ret_pages);
422         struct pagevec freed_pvec;
423         int pgactivate = 0;
424         int reclaimed = 0;
425
426         cond_resched();
427
428         pagevec_init(&freed_pvec, 1);
429         while (!list_empty(page_list)) {
430                 struct address_space *mapping;
431                 struct page *page;
432                 int may_enter_fs;
433                 int referenced;
434
435                 cond_resched();
436
437                 page = lru_to_page(page_list);
438                 list_del(&page->lru);
439
440                 if (TestSetPageLocked(page))
441                         goto keep;
442
443                 BUG_ON(PageActive(page));
444
445                 sc->nr_scanned++;
446
447                 if (!sc->may_swap && page_mapped(page))
448                         goto keep_locked;
449
450                 /* Double the slab pressure for mapped and swapcache pages */
451                 if (page_mapped(page) || PageSwapCache(page))
452                         sc->nr_scanned++;
453
454                 if (PageWriteback(page))
455                         goto keep_locked;
456
457                 referenced = page_referenced(page, 1);
458                 /* In active use or really unfreeable?  Activate it. */
459                 if (referenced && page_mapping_inuse(page))
460                         goto activate_locked;
461
462 #ifdef CONFIG_SWAP
463                 /*
464                  * Anonymous process memory has backing store?
465                  * Try to allocate it some swap space here.
466                  */
467                 if (PageAnon(page) && !PageSwapCache(page)) {
468                         if (!sc->may_swap)
469                                 goto keep_locked;
470                         if (!add_to_swap(page, GFP_ATOMIC))
471                                 goto activate_locked;
472                 }
473 #endif /* CONFIG_SWAP */
474
475                 mapping = page_mapping(page);
476                 may_enter_fs = (sc->gfp_mask & __GFP_FS) ||
477                         (PageSwapCache(page) && (sc->gfp_mask & __GFP_IO));
478
479                 /*
480                  * The page is mapped into the page tables of one or more
481                  * processes. Try to unmap it here.
482                  */
483                 if (page_mapped(page) && mapping) {
484                         /*
485                          * No unmapping if we do not swap
486                          */
487                         if (!sc->may_swap)
488                                 goto keep_locked;
489
490                         switch (try_to_unmap(page, 0)) {
491                         case SWAP_FAIL:
492                                 goto activate_locked;
493                         case SWAP_AGAIN:
494                                 goto keep_locked;
495                         case SWAP_SUCCESS:
496                                 ; /* try to free the page below */
497                         }
498                 }
499
500                 if (PageDirty(page)) {
501                         if (referenced)
502                                 goto keep_locked;
503                         if (!may_enter_fs)
504                                 goto keep_locked;
505                         if (!sc->may_writepage)
506                                 goto keep_locked;
507
508                         /* Page is dirty, try to write it out here */
509                         switch(pageout(page, mapping)) {
510                         case PAGE_KEEP:
511                                 goto keep_locked;
512                         case PAGE_ACTIVATE:
513                                 goto activate_locked;
514                         case PAGE_SUCCESS:
515                                 if (PageWriteback(page) || PageDirty(page))
516                                         goto keep;
517                                 /*
518                                  * A synchronous write - probably a ramdisk.  Go
519                                  * ahead and try to reclaim the page.
520                                  */
521                                 if (TestSetPageLocked(page))
522                                         goto keep;
523                                 if (PageDirty(page) || PageWriteback(page))
524                                         goto keep_locked;
525                                 mapping = page_mapping(page);
526                         case PAGE_CLEAN:
527                                 ; /* try to free the page below */
528                         }
529                 }
530
531                 /*
532                  * If the page has buffers, try to free the buffer mappings
533                  * associated with this page. If we succeed we try to free
534                  * the page as well.
535                  *
536                  * We do this even if the page is PageDirty().
537                  * try_to_release_page() does not perform I/O, but it is
538                  * possible for a page to have PageDirty set, but it is actually
539                  * clean (all its buffers are clean).  This happens if the
540                  * buffers were written out directly, with submit_bh(). ext3
541                  * will do this, as well as the blockdev mapping. 
542                  * try_to_release_page() will discover that cleanness and will
543                  * drop the buffers and mark the page clean - it can be freed.
544                  *
545                  * Rarely, pages can have buffers and no ->mapping.  These are
546                  * the pages which were not successfully invalidated in
547                  * truncate_complete_page().  We try to drop those buffers here
548                  * and if that worked, and the page is no longer mapped into
549                  * process address space (page_count == 1) it can be freed.
550                  * Otherwise, leave the page on the LRU so it is swappable.
551                  */
552                 if (PagePrivate(page)) {
553                         if (!try_to_release_page(page, sc->gfp_mask))
554                                 goto activate_locked;
555                         if (!mapping && page_count(page) == 1)
556                                 goto free_it;
557                 }
558
559                 if (!remove_mapping(mapping, page))
560                         goto keep_locked;
561
562 free_it:
563                 unlock_page(page);
564                 reclaimed++;
565                 if (!pagevec_add(&freed_pvec, page))
566                         __pagevec_release_nonlru(&freed_pvec);
567                 continue;
568
569 activate_locked:
570                 SetPageActive(page);
571                 pgactivate++;
572 keep_locked:
573                 unlock_page(page);
574 keep:
575                 list_add(&page->lru, &ret_pages);
576                 BUG_ON(PageLRU(page));
577         }
578         list_splice(&ret_pages, page_list);
579         if (pagevec_count(&freed_pvec))
580                 __pagevec_release_nonlru(&freed_pvec);
581         mod_page_state(pgactivate, pgactivate);
582         sc->nr_reclaimed += reclaimed;
583         return reclaimed;
584 }
585
586 #ifdef CONFIG_MIGRATION
587 static inline void move_to_lru(struct page *page)
588 {
589         list_del(&page->lru);
590         if (PageActive(page)) {
591                 /*
592                  * lru_cache_add_active checks that
593                  * the PG_active bit is off.
594                  */
595                 ClearPageActive(page);
596                 lru_cache_add_active(page);
597         } else {
598                 lru_cache_add(page);
599         }
600         put_page(page);
601 }
602
603 /*
604  * Add isolated pages on the list back to the LRU.
605  *
606  * returns the number of pages put back.
607  */
608 int putback_lru_pages(struct list_head *l)
609 {
610         struct page *page;
611         struct page *page2;
612         int count = 0;
613
614         list_for_each_entry_safe(page, page2, l, lru) {
615                 move_to_lru(page);
616                 count++;
617         }
618         return count;
619 }
620
621 /*
622  * Non migratable page
623  */
624 int fail_migrate_page(struct page *newpage, struct page *page)
625 {
626         return -EIO;
627 }
628 EXPORT_SYMBOL(fail_migrate_page);
629
630 /*
631  * swapout a single page
632  * page is locked upon entry, unlocked on exit
633  */
634 static int swap_page(struct page *page)
635 {
636         struct address_space *mapping = page_mapping(page);
637
638         if (page_mapped(page) && mapping)
639                 if (try_to_unmap(page, 1) != SWAP_SUCCESS)
640                         goto unlock_retry;
641
642         if (PageDirty(page)) {
643                 /* Page is dirty, try to write it out here */
644                 switch(pageout(page, mapping)) {
645                 case PAGE_KEEP:
646                 case PAGE_ACTIVATE:
647                         goto unlock_retry;
648
649                 case PAGE_SUCCESS:
650                         goto retry;
651
652                 case PAGE_CLEAN:
653                         ; /* try to free the page below */
654                 }
655         }
656
657         if (PagePrivate(page)) {
658                 if (!try_to_release_page(page, GFP_KERNEL) ||
659                     (!mapping && page_count(page) == 1))
660                         goto unlock_retry;
661         }
662
663         if (remove_mapping(mapping, page)) {
664                 /* Success */
665                 unlock_page(page);
666                 return 0;
667         }
668
669 unlock_retry:
670         unlock_page(page);
671
672 retry:
673         return -EAGAIN;
674 }
675 EXPORT_SYMBOL(swap_page);
676
677 /*
678  * Page migration was first developed in the context of the memory hotplug
679  * project. The main authors of the migration code are:
680  *
681  * IWAMOTO Toshihiro <iwamoto@valinux.co.jp>
682  * Hirokazu Takahashi <taka@valinux.co.jp>
683  * Dave Hansen <haveblue@us.ibm.com>
684  * Christoph Lameter <clameter@sgi.com>
685  */
686
687 /*
688  * Remove references for a page and establish the new page with the correct
689  * basic settings to be able to stop accesses to the page.
690  */
691 int migrate_page_remove_references(struct page *newpage,
692                                 struct page *page, int nr_refs)
693 {
694         struct address_space *mapping = page_mapping(page);
695         struct page **radix_pointer;
696
697         /*
698          * Avoid doing any of the following work if the page count
699          * indicates that the page is in use or truncate has removed
700          * the page.
701          */
702         if (!mapping || page_mapcount(page) + nr_refs != page_count(page))
703                 return -EAGAIN;
704
705         /*
706          * Establish swap ptes for anonymous pages or destroy pte
707          * maps for files.
708          *
709          * In order to reestablish file backed mappings the fault handlers
710          * will take the radix tree_lock which may then be used to stop
711          * processses from accessing this page until the new page is ready.
712          *
713          * A process accessing via a swap pte (an anonymous page) will take a
714          * page_lock on the old page which will block the process until the
715          * migration attempt is complete. At that time the PageSwapCache bit
716          * will be examined. If the page was migrated then the PageSwapCache
717          * bit will be clear and the operation to retrieve the page will be
718          * retried which will find the new page in the radix tree. Then a new
719          * direct mapping may be generated based on the radix tree contents.
720          *
721          * If the page was not migrated then the PageSwapCache bit
722          * is still set and the operation may continue.
723          */
724         if (try_to_unmap(page, 1) == SWAP_FAIL)
725                 /* A vma has VM_LOCKED set -> Permanent failure */
726                 return -EPERM;
727
728         /*
729          * Give up if we were unable to remove all mappings.
730          */
731         if (page_mapcount(page))
732                 return -EAGAIN;
733
734         write_lock_irq(&mapping->tree_lock);
735
736         radix_pointer = (struct page **)radix_tree_lookup_slot(
737                                                 &mapping->page_tree,
738                                                 page_index(page));
739
740         if (!page_mapping(page) || page_count(page) != nr_refs ||
741                         *radix_pointer != page) {
742                 write_unlock_irq(&mapping->tree_lock);
743                 return -EAGAIN;
744         }
745
746         /*
747          * Now we know that no one else is looking at the page.
748          *
749          * Certain minimal information about a page must be available
750          * in order for other subsystems to properly handle the page if they
751          * find it through the radix tree update before we are finished
752          * copying the page.
753          */
754         get_page(newpage);
755         newpage->index = page->index;
756         newpage->mapping = page->mapping;
757         if (PageSwapCache(page)) {
758                 SetPageSwapCache(newpage);
759                 set_page_private(newpage, page_private(page));
760         }
761
762         *radix_pointer = newpage;
763         __put_page(page);
764         write_unlock_irq(&mapping->tree_lock);
765
766         return 0;
767 }
768 EXPORT_SYMBOL(migrate_page_remove_references);
769
770 /*
771  * Copy the page to its new location
772  */
773 void migrate_page_copy(struct page *newpage, struct page *page)
774 {
775         copy_highpage(newpage, page);
776
777         if (PageError(page))
778                 SetPageError(newpage);
779         if (PageReferenced(page))
780                 SetPageReferenced(newpage);
781         if (PageUptodate(page))
782                 SetPageUptodate(newpage);
783         if (PageActive(page))
784                 SetPageActive(newpage);
785         if (PageChecked(page))
786                 SetPageChecked(newpage);
787         if (PageMappedToDisk(page))
788                 SetPageMappedToDisk(newpage);
789
790         if (PageDirty(page)) {
791                 clear_page_dirty_for_io(page);
792                 set_page_dirty(newpage);
793         }
794
795         ClearPageSwapCache(page);
796         ClearPageActive(page);
797         ClearPagePrivate(page);
798         set_page_private(page, 0);
799         page->mapping = NULL;
800
801         /*
802          * If any waiters have accumulated on the new page then
803          * wake them up.
804          */
805         if (PageWriteback(newpage))
806                 end_page_writeback(newpage);
807 }
808 EXPORT_SYMBOL(migrate_page_copy);
809
810 /*
811  * Common logic to directly migrate a single page suitable for
812  * pages that do not use PagePrivate.
813  *
814  * Pages are locked upon entry and exit.
815  */
816 int migrate_page(struct page *newpage, struct page *page)
817 {
818         int rc;
819
820         BUG_ON(PageWriteback(page));    /* Writeback must be complete */
821
822         rc = migrate_page_remove_references(newpage, page, 2);
823
824         if (rc)
825                 return rc;
826
827         migrate_page_copy(newpage, page);
828
829         /*
830          * Remove auxiliary swap entries and replace
831          * them with real ptes.
832          *
833          * Note that a real pte entry will allow processes that are not
834          * waiting on the page lock to use the new page via the page tables
835          * before the new page is unlocked.
836          */
837         remove_from_swap(newpage);
838         return 0;
839 }
840 EXPORT_SYMBOL(migrate_page);
841
842 /*
843  * migrate_pages
844  *
845  * Two lists are passed to this function. The first list
846  * contains the pages isolated from the LRU to be migrated.
847  * The second list contains new pages that the pages isolated
848  * can be moved to. If the second list is NULL then all
849  * pages are swapped out.
850  *
851  * The function returns after 10 attempts or if no pages
852  * are movable anymore because to has become empty
853  * or no retryable pages exist anymore.
854  *
855  * Return: Number of pages not migrated when "to" ran empty.
856  */
857 int migrate_pages(struct list_head *from, struct list_head *to,
858                   struct list_head *moved, struct list_head *failed)
859 {
860         int retry;
861         int nr_failed = 0;
862         int pass = 0;
863         struct page *page;
864         struct page *page2;
865         int swapwrite = current->flags & PF_SWAPWRITE;
866         int rc;
867
868         if (!swapwrite)
869                 current->flags |= PF_SWAPWRITE;
870
871 redo:
872         retry = 0;
873
874         list_for_each_entry_safe(page, page2, from, lru) {
875                 struct page *newpage = NULL;
876                 struct address_space *mapping;
877
878                 cond_resched();
879
880                 rc = 0;
881                 if (page_count(page) == 1)
882                         /* page was freed from under us. So we are done. */
883                         goto next;
884
885                 if (to && list_empty(to))
886                         break;
887
888                 /*
889                  * Skip locked pages during the first two passes to give the
890                  * functions holding the lock time to release the page. Later we
891                  * use lock_page() to have a higher chance of acquiring the
892                  * lock.
893                  */
894                 rc = -EAGAIN;
895                 if (pass > 2)
896                         lock_page(page);
897                 else
898                         if (TestSetPageLocked(page))
899                                 goto next;
900
901                 /*
902                  * Only wait on writeback if we have already done a pass where
903                  * we we may have triggered writeouts for lots of pages.
904                  */
905                 if (pass > 0) {
906                         wait_on_page_writeback(page);
907                 } else {
908                         if (PageWriteback(page))
909                                 goto unlock_page;
910                 }
911
912                 /*
913                  * Anonymous pages must have swap cache references otherwise
914                  * the information contained in the page maps cannot be
915                  * preserved.
916                  */
917                 if (PageAnon(page) && !PageSwapCache(page)) {
918                         if (!add_to_swap(page, GFP_KERNEL)) {
919                                 rc = -ENOMEM;
920                                 goto unlock_page;
921                         }
922                 }
923
924                 if (!to) {
925                         rc = swap_page(page);
926                         goto next;
927                 }
928
929                 newpage = lru_to_page(to);
930                 lock_page(newpage);
931
932                 /*
933                  * Pages are properly locked and writeback is complete.
934                  * Try to migrate the page.
935                  */
936                 mapping = page_mapping(page);
937                 if (!mapping)
938                         goto unlock_both;
939
940                 if (mapping->a_ops->migratepage) {
941                         /*
942                          * Most pages have a mapping and most filesystems
943                          * should provide a migration function. Anonymous
944                          * pages are part of swap space which also has its
945                          * own migration function. This is the most common
946                          * path for page migration.
947                          */
948                         rc = mapping->a_ops->migratepage(newpage, page);
949                         goto unlock_both;
950                 }
951
952                 /* Make sure the dirty bit is up to date */
953                 if (try_to_unmap(page, 1) == SWAP_FAIL) {
954                         rc = -EPERM;
955                         goto unlock_both;
956                 }
957
958                 if (page_mapcount(page)) {
959                         rc = -EAGAIN;
960                         goto unlock_both;
961                 }
962
963                 /*
964                  * Default handling if a filesystem does not provide
965                  * a migration function. We can only migrate clean
966                  * pages so try to write out any dirty pages first.
967                  */
968                 if (PageDirty(page)) {
969                         switch (pageout(page, mapping)) {
970                         case PAGE_KEEP:
971                         case PAGE_ACTIVATE:
972                                 goto unlock_both;
973
974                         case PAGE_SUCCESS:
975                                 unlock_page(newpage);
976                                 goto next;
977
978                         case PAGE_CLEAN:
979                                 ; /* try to migrate the page below */
980                         }
981                 }
982
983                 /*
984                  * Buffers are managed in a filesystem specific way.
985                  * We must have no buffers or drop them.
986                  */
987                 if (!page_has_buffers(page) ||
988                     try_to_release_page(page, GFP_KERNEL)) {
989                         rc = migrate_page(newpage, page);
990                         goto unlock_both;
991                 }
992
993                 /*
994                  * On early passes with mapped pages simply
995                  * retry. There may be a lock held for some
996                  * buffers that may go away. Later
997                  * swap them out.
998                  */
999                 if (pass > 4) {
1000                         /*
1001                          * Persistently unable to drop buffers..... As a
1002                          * measure of last resort we fall back to
1003                          * swap_page().
1004                          */
1005                         unlock_page(newpage);
1006                         newpage = NULL;
1007                         rc = swap_page(page);
1008                         goto next;
1009                 }
1010
1011 unlock_both:
1012                 unlock_page(newpage);
1013
1014 unlock_page:
1015                 unlock_page(page);
1016
1017 next:
1018                 if (rc == -EAGAIN) {
1019                         retry++;
1020                 } else if (rc) {
1021                         /* Permanent failure */
1022                         list_move(&page->lru, failed);
1023                         nr_failed++;
1024                 } else {
1025                         if (newpage) {
1026                                 /* Successful migration. Return page to LRU */
1027                                 move_to_lru(newpage);
1028                         }
1029                         list_move(&page->lru, moved);
1030                 }
1031         }
1032         if (retry && pass++ < 10)
1033                 goto redo;
1034
1035         if (!swapwrite)
1036                 current->flags &= ~PF_SWAPWRITE;
1037
1038         return nr_failed + retry;
1039 }
1040
1041 /*
1042  * Isolate one page from the LRU lists and put it on the
1043  * indicated list with elevated refcount.
1044  *
1045  * Result:
1046  *  0 = page not on LRU list
1047  *  1 = page removed from LRU list and added to the specified list.
1048  */
1049 int isolate_lru_page(struct page *page)
1050 {
1051         int ret = 0;
1052
1053         if (PageLRU(page)) {
1054                 struct zone *zone = page_zone(page);
1055                 spin_lock_irq(&zone->lru_lock);
1056                 if (TestClearPageLRU(page)) {
1057                         ret = 1;
1058                         get_page(page);
1059                         if (PageActive(page))
1060                                 del_page_from_active_list(zone, page);
1061                         else
1062                                 del_page_from_inactive_list(zone, page);
1063                 }
1064                 spin_unlock_irq(&zone->lru_lock);
1065         }
1066
1067         return ret;
1068 }
1069 #endif
1070
1071 /*
1072  * zone->lru_lock is heavily contended.  Some of the functions that
1073  * shrink the lists perform better by taking out a batch of pages
1074  * and working on them outside the LRU lock.
1075  *
1076  * For pagecache intensive workloads, this function is the hottest
1077  * spot in the kernel (apart from copy_*_user functions).
1078  *
1079  * Appropriate locks must be held before calling this function.
1080  *
1081  * @nr_to_scan: The number of pages to look through on the list.
1082  * @src:        The LRU list to pull pages off.
1083  * @dst:        The temp list to put pages on to.
1084  * @scanned:    The number of pages that were scanned.
1085  *
1086  * returns how many pages were moved onto *@dst.
1087  */
1088 static int isolate_lru_pages(int nr_to_scan, struct list_head *src,
1089                              struct list_head *dst, int *scanned)
1090 {
1091         int nr_taken = 0;
1092         struct page *page;
1093         int scan = 0;
1094
1095         while (scan++ < nr_to_scan && !list_empty(src)) {
1096                 page = lru_to_page(src);
1097                 prefetchw_prev_lru_page(page, src, flags);
1098
1099                 if (!TestClearPageLRU(page))
1100                         BUG();
1101                 list_del(&page->lru);
1102                 if (get_page_testone(page)) {
1103                         /*
1104                          * It is being freed elsewhere
1105                          */
1106                         __put_page(page);
1107                         SetPageLRU(page);
1108                         list_add(&page->lru, src);
1109                         continue;
1110                 } else {
1111                         list_add(&page->lru, dst);
1112                         nr_taken++;
1113                 }
1114         }
1115
1116         *scanned = scan;
1117         return nr_taken;
1118 }
1119
1120 /*
1121  * shrink_cache() adds the number of pages reclaimed to sc->nr_reclaimed
1122  */
1123 static void shrink_cache(struct zone *zone, struct scan_control *sc)
1124 {
1125         LIST_HEAD(page_list);
1126         struct pagevec pvec;
1127         int max_scan = sc->nr_to_scan;
1128
1129         pagevec_init(&pvec, 1);
1130
1131         lru_add_drain();
1132         spin_lock_irq(&zone->lru_lock);
1133         while (max_scan > 0) {
1134                 struct page *page;
1135                 int nr_taken;
1136                 int nr_scan;
1137                 int nr_freed;
1138
1139                 nr_taken = isolate_lru_pages(sc->swap_cluster_max,
1140                                              &zone->inactive_list,
1141                                              &page_list, &nr_scan);
1142                 zone->nr_inactive -= nr_taken;
1143                 zone->pages_scanned += nr_scan;
1144                 spin_unlock_irq(&zone->lru_lock);
1145
1146                 if (nr_taken == 0)
1147                         goto done;
1148
1149                 max_scan -= nr_scan;
1150                 nr_freed = shrink_list(&page_list, sc);
1151
1152                 local_irq_disable();
1153                 if (current_is_kswapd()) {
1154                         __mod_page_state_zone(zone, pgscan_kswapd, nr_scan);
1155                         __mod_page_state(kswapd_steal, nr_freed);
1156                 } else
1157                         __mod_page_state_zone(zone, pgscan_direct, nr_scan);
1158                 __mod_page_state_zone(zone, pgsteal, nr_freed);
1159
1160                 spin_lock(&zone->lru_lock);
1161                 /*
1162                  * Put back any unfreeable pages.
1163                  */
1164                 while (!list_empty(&page_list)) {
1165                         page = lru_to_page(&page_list);
1166                         if (TestSetPageLRU(page))
1167                                 BUG();
1168                         list_del(&page->lru);
1169                         if (PageActive(page))
1170                                 add_page_to_active_list(zone, page);
1171                         else
1172                                 add_page_to_inactive_list(zone, page);
1173                         if (!pagevec_add(&pvec, page)) {
1174                                 spin_unlock_irq(&zone->lru_lock);
1175                                 __pagevec_release(&pvec);
1176                                 spin_lock_irq(&zone->lru_lock);
1177                         }
1178                 }
1179         }
1180         spin_unlock_irq(&zone->lru_lock);
1181 done:
1182         pagevec_release(&pvec);
1183 }
1184
1185 /*
1186  * This moves pages from the active list to the inactive list.
1187  *
1188  * We move them the other way if the page is referenced by one or more
1189  * processes, from rmap.
1190  *
1191  * If the pages are mostly unmapped, the processing is fast and it is
1192  * appropriate to hold zone->lru_lock across the whole operation.  But if
1193  * the pages are mapped, the processing is slow (page_referenced()) so we
1194  * should drop zone->lru_lock around each page.  It's impossible to balance
1195  * this, so instead we remove the pages from the LRU while processing them.
1196  * It is safe to rely on PG_active against the non-LRU pages in here because
1197  * nobody will play with that bit on a non-LRU page.
1198  *
1199  * The downside is that we have to touch page->_count against each page.
1200  * But we had to alter page->flags anyway.
1201  */
1202 static void
1203 refill_inactive_zone(struct zone *zone, struct scan_control *sc)
1204 {
1205         int pgmoved;
1206         int pgdeactivate = 0;
1207         int pgscanned;
1208         int nr_pages = sc->nr_to_scan;
1209         LIST_HEAD(l_hold);      /* The pages which were snipped off */
1210         LIST_HEAD(l_inactive);  /* Pages to go onto the inactive_list */
1211         LIST_HEAD(l_active);    /* Pages to go onto the active_list */
1212         struct page *page;
1213         struct pagevec pvec;
1214         int reclaim_mapped = 0;
1215
1216         if (unlikely(sc->may_swap)) {
1217                 long mapped_ratio;
1218                 long distress;
1219                 long swap_tendency;
1220
1221                 /*
1222                  * `distress' is a measure of how much trouble we're having
1223                  * reclaiming pages.  0 -> no problems.  100 -> great trouble.
1224                  */
1225                 distress = 100 >> zone->prev_priority;
1226
1227                 /*
1228                  * The point of this algorithm is to decide when to start
1229                  * reclaiming mapped memory instead of just pagecache.  Work out
1230                  * how much memory
1231                  * is mapped.
1232                  */
1233                 mapped_ratio = (sc->nr_mapped * 100) / total_memory;
1234
1235                 /*
1236                  * Now decide how much we really want to unmap some pages.  The
1237                  * mapped ratio is downgraded - just because there's a lot of
1238                  * mapped memory doesn't necessarily mean that page reclaim
1239                  * isn't succeeding.
1240                  *
1241                  * The distress ratio is important - we don't want to start
1242                  * going oom.
1243                  *
1244                  * A 100% value of vm_swappiness overrides this algorithm
1245                  * altogether.
1246                  */
1247                 swap_tendency = mapped_ratio / 2 + distress + vm_swappiness;
1248
1249                 /*
1250                  * Now use this metric to decide whether to start moving mapped
1251                  * memory onto the inactive list.
1252                  */
1253                 if (swap_tendency >= 100)
1254                         reclaim_mapped = 1;
1255         }
1256
1257         lru_add_drain();
1258         spin_lock_irq(&zone->lru_lock);
1259         pgmoved = isolate_lru_pages(nr_pages, &zone->active_list,
1260                                     &l_hold, &pgscanned);
1261         zone->pages_scanned += pgscanned;
1262         zone->nr_active -= pgmoved;
1263         spin_unlock_irq(&zone->lru_lock);
1264
1265         while (!list_empty(&l_hold)) {
1266                 cond_resched();
1267                 page = lru_to_page(&l_hold);
1268                 list_del(&page->lru);
1269                 if (page_mapped(page)) {
1270                         if (!reclaim_mapped ||
1271                             (total_swap_pages == 0 && PageAnon(page)) ||
1272                             page_referenced(page, 0)) {
1273                                 list_add(&page->lru, &l_active);
1274                                 continue;
1275                         }
1276                 }
1277                 list_add(&page->lru, &l_inactive);
1278         }
1279
1280         pagevec_init(&pvec, 1);
1281         pgmoved = 0;
1282         spin_lock_irq(&zone->lru_lock);
1283         while (!list_empty(&l_inactive)) {
1284                 page = lru_to_page(&l_inactive);
1285                 prefetchw_prev_lru_page(page, &l_inactive, flags);
1286                 if (TestSetPageLRU(page))
1287                         BUG();
1288                 if (!TestClearPageActive(page))
1289                         BUG();
1290                 list_move(&page->lru, &zone->inactive_list);
1291                 pgmoved++;
1292                 if (!pagevec_add(&pvec, page)) {
1293                         zone->nr_inactive += pgmoved;
1294                         spin_unlock_irq(&zone->lru_lock);
1295                         pgdeactivate += pgmoved;
1296                         pgmoved = 0;
1297                         if (buffer_heads_over_limit)
1298                                 pagevec_strip(&pvec);
1299                         __pagevec_release(&pvec);
1300                         spin_lock_irq(&zone->lru_lock);
1301                 }
1302         }
1303         zone->nr_inactive += pgmoved;
1304         pgdeactivate += pgmoved;
1305         if (buffer_heads_over_limit) {
1306                 spin_unlock_irq(&zone->lru_lock);
1307                 pagevec_strip(&pvec);
1308                 spin_lock_irq(&zone->lru_lock);
1309         }
1310
1311         pgmoved = 0;
1312         while (!list_empty(&l_active)) {
1313                 page = lru_to_page(&l_active);
1314                 prefetchw_prev_lru_page(page, &l_active, flags);
1315                 if (TestSetPageLRU(page))
1316                         BUG();
1317                 BUG_ON(!PageActive(page));
1318                 list_move(&page->lru, &zone->active_list);
1319                 pgmoved++;
1320                 if (!pagevec_add(&pvec, page)) {
1321                         zone->nr_active += pgmoved;
1322                         pgmoved = 0;
1323                         spin_unlock_irq(&zone->lru_lock);
1324                         __pagevec_release(&pvec);
1325                         spin_lock_irq(&zone->lru_lock);
1326                 }
1327         }
1328         zone->nr_active += pgmoved;
1329         spin_unlock(&zone->lru_lock);
1330
1331         __mod_page_state_zone(zone, pgrefill, pgscanned);
1332         __mod_page_state(pgdeactivate, pgdeactivate);
1333         local_irq_enable();
1334
1335         pagevec_release(&pvec);
1336 }
1337
1338 /*
1339  * This is a basic per-zone page freer.  Used by both kswapd and direct reclaim.
1340  */
1341 static void
1342 shrink_zone(struct zone *zone, struct scan_control *sc)
1343 {
1344         unsigned long nr_active;
1345         unsigned long nr_inactive;
1346
1347         atomic_inc(&zone->reclaim_in_progress);
1348
1349         /*
1350          * Add one to `nr_to_scan' just to make sure that the kernel will
1351          * slowly sift through the active list.
1352          */
1353         zone->nr_scan_active += (zone->nr_active >> sc->priority) + 1;
1354         nr_active = zone->nr_scan_active;
1355         if (nr_active >= sc->swap_cluster_max)
1356                 zone->nr_scan_active = 0;
1357         else
1358                 nr_active = 0;
1359
1360         zone->nr_scan_inactive += (zone->nr_inactive >> sc->priority) + 1;
1361         nr_inactive = zone->nr_scan_inactive;
1362         if (nr_inactive >= sc->swap_cluster_max)
1363                 zone->nr_scan_inactive = 0;
1364         else
1365                 nr_inactive = 0;
1366
1367         while (nr_active || nr_inactive) {
1368                 if (nr_active) {
1369                         sc->nr_to_scan = min(nr_active,
1370                                         (unsigned long)sc->swap_cluster_max);
1371                         nr_active -= sc->nr_to_scan;
1372                         refill_inactive_zone(zone, sc);
1373                 }
1374
1375                 if (nr_inactive) {
1376                         sc->nr_to_scan = min(nr_inactive,
1377                                         (unsigned long)sc->swap_cluster_max);
1378                         nr_inactive -= sc->nr_to_scan;
1379                         shrink_cache(zone, sc);
1380                 }
1381         }
1382
1383         throttle_vm_writeout();
1384
1385         atomic_dec(&zone->reclaim_in_progress);
1386 }
1387
1388 /*
1389  * This is the direct reclaim path, for page-allocating processes.  We only
1390  * try to reclaim pages from zones which will satisfy the caller's allocation
1391  * request.
1392  *
1393  * We reclaim from a zone even if that zone is over pages_high.  Because:
1394  * a) The caller may be trying to free *extra* pages to satisfy a higher-order
1395  *    allocation or
1396  * b) The zones may be over pages_high but they must go *over* pages_high to
1397  *    satisfy the `incremental min' zone defense algorithm.
1398  *
1399  * Returns the number of reclaimed pages.
1400  *
1401  * If a zone is deemed to be full of pinned pages then just give it a light
1402  * scan then give up on it.
1403  */
1404 static void
1405 shrink_caches(struct zone **zones, struct scan_control *sc)
1406 {
1407         int i;
1408
1409         for (i = 0; zones[i] != NULL; i++) {
1410                 struct zone *zone = zones[i];
1411
1412                 if (!populated_zone(zone))
1413                         continue;
1414
1415                 if (!cpuset_zone_allowed(zone, __GFP_HARDWALL))
1416                         continue;
1417
1418                 zone->temp_priority = sc->priority;
1419                 if (zone->prev_priority > sc->priority)
1420                         zone->prev_priority = sc->priority;
1421
1422                 if (zone->all_unreclaimable && sc->priority != DEF_PRIORITY)
1423                         continue;       /* Let kswapd poll it */
1424
1425                 shrink_zone(zone, sc);
1426         }
1427 }
1428  
1429 /*
1430  * This is the main entry point to direct page reclaim.
1431  *
1432  * If a full scan of the inactive list fails to free enough memory then we
1433  * are "out of memory" and something needs to be killed.
1434  *
1435  * If the caller is !__GFP_FS then the probability of a failure is reasonably
1436  * high - the zone may be full of dirty or under-writeback pages, which this
1437  * caller can't do much about.  We kick pdflush and take explicit naps in the
1438  * hope that some of these pages can be written.  But if the allocating task
1439  * holds filesystem locks which prevent writeout this might not work, and the
1440  * allocation attempt will fail.
1441  */
1442 int try_to_free_pages(struct zone **zones, gfp_t gfp_mask)
1443 {
1444         int priority;
1445         int ret = 0;
1446         int total_scanned = 0, total_reclaimed = 0;
1447         struct reclaim_state *reclaim_state = current->reclaim_state;
1448         struct scan_control sc;
1449         unsigned long lru_pages = 0;
1450         int i;
1451
1452         sc.gfp_mask = gfp_mask;
1453         sc.may_writepage = !laptop_mode;
1454         sc.may_swap = 1;
1455
1456         inc_page_state(allocstall);
1457
1458         for (i = 0; zones[i] != NULL; i++) {
1459                 struct zone *zone = zones[i];
1460
1461                 if (!cpuset_zone_allowed(zone, __GFP_HARDWALL))
1462                         continue;
1463
1464                 zone->temp_priority = DEF_PRIORITY;
1465                 lru_pages += zone->nr_active + zone->nr_inactive;
1466         }
1467
1468         for (priority = DEF_PRIORITY; priority >= 0; priority--) {
1469                 sc.nr_mapped = read_page_state(nr_mapped);
1470                 sc.nr_scanned = 0;
1471                 sc.nr_reclaimed = 0;
1472                 sc.priority = priority;
1473                 sc.swap_cluster_max = SWAP_CLUSTER_MAX;
1474                 if (!priority)
1475                         disable_swap_token();
1476                 shrink_caches(zones, &sc);
1477                 shrink_slab(sc.nr_scanned, gfp_mask, lru_pages);
1478                 if (reclaim_state) {
1479                         sc.nr_reclaimed += reclaim_state->reclaimed_slab;
1480                         reclaim_state->reclaimed_slab = 0;
1481                 }
1482                 total_scanned += sc.nr_scanned;
1483                 total_reclaimed += sc.nr_reclaimed;
1484                 if (total_reclaimed >= sc.swap_cluster_max) {
1485                         ret = 1;
1486                         goto out;
1487                 }
1488
1489                 /*
1490                  * Try to write back as many pages as we just scanned.  This
1491                  * tends to cause slow streaming writers to write data to the
1492                  * disk smoothly, at the dirtying rate, which is nice.   But
1493                  * that's undesirable in laptop mode, where we *want* lumpy
1494                  * writeout.  So in laptop mode, write out the whole world.
1495                  */
1496                 if (total_scanned > sc.swap_cluster_max + sc.swap_cluster_max/2) {
1497                         wakeup_pdflush(laptop_mode ? 0 : total_scanned);
1498                         sc.may_writepage = 1;
1499                 }
1500
1501                 /* Take a nap, wait for some writeback to complete */
1502                 if (sc.nr_scanned && priority < DEF_PRIORITY - 2)
1503                         blk_congestion_wait(WRITE, HZ/10);
1504         }
1505 out:
1506         for (i = 0; zones[i] != 0; i++) {
1507                 struct zone *zone = zones[i];
1508
1509                 if (!cpuset_zone_allowed(zone, __GFP_HARDWALL))
1510                         continue;
1511
1512                 zone->prev_priority = zone->temp_priority;
1513         }
1514         return ret;
1515 }
1516
1517 /*
1518  * For kswapd, balance_pgdat() will work across all this node's zones until
1519  * they are all at pages_high.
1520  *
1521  * If `nr_pages' is non-zero then it is the number of pages which are to be
1522  * reclaimed, regardless of the zone occupancies.  This is a software suspend
1523  * special.
1524  *
1525  * Returns the number of pages which were actually freed.
1526  *
1527  * There is special handling here for zones which are full of pinned pages.
1528  * This can happen if the pages are all mlocked, or if they are all used by
1529  * device drivers (say, ZONE_DMA).  Or if they are all in use by hugetlb.
1530  * What we do is to detect the case where all pages in the zone have been
1531  * scanned twice and there has been zero successful reclaim.  Mark the zone as
1532  * dead and from now on, only perform a short scan.  Basically we're polling
1533  * the zone for when the problem goes away.
1534  *
1535  * kswapd scans the zones in the highmem->normal->dma direction.  It skips
1536  * zones which have free_pages > pages_high, but once a zone is found to have
1537  * free_pages <= pages_high, we scan that zone and the lower zones regardless
1538  * of the number of free pages in the lower zones.  This interoperates with
1539  * the page allocator fallback scheme to ensure that aging of pages is balanced
1540  * across the zones.
1541  */
1542 static int balance_pgdat(pg_data_t *pgdat, int nr_pages, int order)
1543 {
1544         int to_free = nr_pages;
1545         int all_zones_ok;
1546         int priority;
1547         int i;
1548         int total_scanned, total_reclaimed;
1549         struct reclaim_state *reclaim_state = current->reclaim_state;
1550         struct scan_control sc;
1551
1552 loop_again:
1553         total_scanned = 0;
1554         total_reclaimed = 0;
1555         sc.gfp_mask = GFP_KERNEL;
1556         sc.may_writepage = !laptop_mode;
1557         sc.may_swap = 1;
1558         sc.nr_mapped = read_page_state(nr_mapped);
1559
1560         inc_page_state(pageoutrun);
1561
1562         for (i = 0; i < pgdat->nr_zones; i++) {
1563                 struct zone *zone = pgdat->node_zones + i;
1564
1565                 zone->temp_priority = DEF_PRIORITY;
1566         }
1567
1568         for (priority = DEF_PRIORITY; priority >= 0; priority--) {
1569                 int end_zone = 0;       /* Inclusive.  0 = ZONE_DMA */
1570                 unsigned long lru_pages = 0;
1571
1572                 /* The swap token gets in the way of swapout... */
1573                 if (!priority)
1574                         disable_swap_token();
1575
1576                 all_zones_ok = 1;
1577
1578                 if (nr_pages == 0) {
1579                         /*
1580                          * Scan in the highmem->dma direction for the highest
1581                          * zone which needs scanning
1582                          */
1583                         for (i = pgdat->nr_zones - 1; i >= 0; i--) {
1584                                 struct zone *zone = pgdat->node_zones + i;
1585
1586                                 if (!populated_zone(zone))
1587                                         continue;
1588
1589                                 if (zone->all_unreclaimable &&
1590                                                 priority != DEF_PRIORITY)
1591                                         continue;
1592
1593                                 if (!zone_watermark_ok(zone, order,
1594                                                 zone->pages_high, 0, 0)) {
1595                                         end_zone = i;
1596                                         goto scan;
1597                                 }
1598                         }
1599                         goto out;
1600                 } else {
1601                         end_zone = pgdat->nr_zones - 1;
1602                 }
1603 scan:
1604                 for (i = 0; i <= end_zone; i++) {
1605                         struct zone *zone = pgdat->node_zones + i;
1606
1607                         lru_pages += zone->nr_active + zone->nr_inactive;
1608                 }
1609
1610                 /*
1611                  * Now scan the zone in the dma->highmem direction, stopping
1612                  * at the last zone which needs scanning.
1613                  *
1614                  * We do this because the page allocator works in the opposite
1615                  * direction.  This prevents the page allocator from allocating
1616                  * pages behind kswapd's direction of progress, which would
1617                  * cause too much scanning of the lower zones.
1618                  */
1619                 for (i = 0; i <= end_zone; i++) {
1620                         struct zone *zone = pgdat->node_zones + i;
1621                         int nr_slab;
1622
1623                         if (!populated_zone(zone))
1624                                 continue;
1625
1626                         if (zone->all_unreclaimable && priority != DEF_PRIORITY)
1627                                 continue;
1628
1629                         if (nr_pages == 0) {    /* Not software suspend */
1630                                 if (!zone_watermark_ok(zone, order,
1631                                                 zone->pages_high, end_zone, 0))
1632                                         all_zones_ok = 0;
1633                         }
1634                         zone->temp_priority = priority;
1635                         if (zone->prev_priority > priority)
1636                                 zone->prev_priority = priority;
1637                         sc.nr_scanned = 0;
1638                         sc.nr_reclaimed = 0;
1639                         sc.priority = priority;
1640                         sc.swap_cluster_max = nr_pages? nr_pages : SWAP_CLUSTER_MAX;
1641                         shrink_zone(zone, &sc);
1642                         reclaim_state->reclaimed_slab = 0;
1643                         nr_slab = shrink_slab(sc.nr_scanned, GFP_KERNEL,
1644                                                 lru_pages);
1645                         sc.nr_reclaimed += reclaim_state->reclaimed_slab;
1646                         total_reclaimed += sc.nr_reclaimed;
1647                         total_scanned += sc.nr_scanned;
1648                         if (zone->all_unreclaimable)
1649                                 continue;
1650                         if (nr_slab == 0 && zone->pages_scanned >=
1651                                     (zone->nr_active + zone->nr_inactive) * 4)
1652                                 zone->all_unreclaimable = 1;
1653                         /*
1654                          * If we've done a decent amount of scanning and
1655                          * the reclaim ratio is low, start doing writepage
1656                          * even in laptop mode
1657                          */
1658                         if (total_scanned > SWAP_CLUSTER_MAX * 2 &&
1659                             total_scanned > total_reclaimed+total_reclaimed/2)
1660                                 sc.may_writepage = 1;
1661                 }
1662                 if (nr_pages && to_free > total_reclaimed)
1663                         continue;       /* swsusp: need to do more work */
1664                 if (all_zones_ok)
1665                         break;          /* kswapd: all done */
1666                 /*
1667                  * OK, kswapd is getting into trouble.  Take a nap, then take
1668                  * another pass across the zones.
1669                  */
1670                 if (total_scanned && priority < DEF_PRIORITY - 2)
1671                         blk_congestion_wait(WRITE, HZ/10);
1672
1673                 /*
1674                  * We do this so kswapd doesn't build up large priorities for
1675                  * example when it is freeing in parallel with allocators. It
1676                  * matches the direct reclaim path behaviour in terms of impact
1677                  * on zone->*_priority.
1678                  */
1679                 if ((total_reclaimed >= SWAP_CLUSTER_MAX) && (!nr_pages))
1680                         break;
1681         }
1682 out:
1683         for (i = 0; i < pgdat->nr_zones; i++) {
1684                 struct zone *zone = pgdat->node_zones + i;
1685
1686                 zone->prev_priority = zone->temp_priority;
1687         }
1688         if (!all_zones_ok) {
1689                 cond_resched();
1690                 goto loop_again;
1691         }
1692
1693         return total_reclaimed;
1694 }
1695
1696 /*
1697  * The background pageout daemon, started as a kernel thread
1698  * from the init process. 
1699  *
1700  * This basically trickles out pages so that we have _some_
1701  * free memory available even if there is no other activity
1702  * that frees anything up. This is needed for things like routing
1703  * etc, where we otherwise might have all activity going on in
1704  * asynchronous contexts that cannot page things out.
1705  *
1706  * If there are applications that are active memory-allocators
1707  * (most normal use), this basically shouldn't matter.
1708  */
1709 static int kswapd(void *p)
1710 {
1711         unsigned long order;
1712         pg_data_t *pgdat = (pg_data_t*)p;
1713         struct task_struct *tsk = current;
1714         DEFINE_WAIT(wait);
1715         struct reclaim_state reclaim_state = {
1716                 .reclaimed_slab = 0,
1717         };
1718         cpumask_t cpumask;
1719
1720         daemonize("kswapd%d", pgdat->node_id);
1721         cpumask = node_to_cpumask(pgdat->node_id);
1722         if (!cpus_empty(cpumask))
1723                 set_cpus_allowed(tsk, cpumask);
1724         current->reclaim_state = &reclaim_state;
1725
1726         /*
1727          * Tell the memory management that we're a "memory allocator",
1728          * and that if we need more memory we should get access to it
1729          * regardless (see "__alloc_pages()"). "kswapd" should
1730          * never get caught in the normal page freeing logic.
1731          *
1732          * (Kswapd normally doesn't need memory anyway, but sometimes
1733          * you need a small amount of memory in order to be able to
1734          * page out something else, and this flag essentially protects
1735          * us from recursively trying to free more memory as we're
1736          * trying to free the first piece of memory in the first place).
1737          */
1738         tsk->flags |= PF_MEMALLOC | PF_SWAPWRITE | PF_KSWAPD;
1739
1740         order = 0;
1741         for ( ; ; ) {
1742                 unsigned long new_order;
1743
1744                 try_to_freeze();
1745
1746                 prepare_to_wait(&pgdat->kswapd_wait, &wait, TASK_INTERRUPTIBLE);
1747                 new_order = pgdat->kswapd_max_order;
1748                 pgdat->kswapd_max_order = 0;
1749                 if (order < new_order) {
1750                         /*
1751                          * Don't sleep if someone wants a larger 'order'
1752                          * allocation
1753                          */
1754                         order = new_order;
1755                 } else {
1756                         schedule();
1757                         order = pgdat->kswapd_max_order;
1758                 }
1759                 finish_wait(&pgdat->kswapd_wait, &wait);
1760
1761                 balance_pgdat(pgdat, 0, order);
1762         }
1763         return 0;
1764 }
1765
1766 /*
1767  * A zone is low on free memory, so wake its kswapd task to service it.
1768  */
1769 void wakeup_kswapd(struct zone *zone, int order)
1770 {
1771         pg_data_t *pgdat;
1772
1773         if (!populated_zone(zone))
1774                 return;
1775
1776         pgdat = zone->zone_pgdat;
1777         if (zone_watermark_ok(zone, order, zone->pages_low, 0, 0))
1778                 return;
1779         if (pgdat->kswapd_max_order < order)
1780                 pgdat->kswapd_max_order = order;
1781         if (!cpuset_zone_allowed(zone, __GFP_HARDWALL))
1782                 return;
1783         if (!waitqueue_active(&pgdat->kswapd_wait))
1784                 return;
1785         wake_up_interruptible(&pgdat->kswapd_wait);
1786 }
1787
1788 #ifdef CONFIG_PM
1789 /*
1790  * Try to free `nr_pages' of memory, system-wide.  Returns the number of freed
1791  * pages.
1792  */
1793 int shrink_all_memory(int nr_pages)
1794 {
1795         pg_data_t *pgdat;
1796         int nr_to_free = nr_pages;
1797         int ret = 0;
1798         struct reclaim_state reclaim_state = {
1799                 .reclaimed_slab = 0,
1800         };
1801
1802         current->reclaim_state = &reclaim_state;
1803         for_each_pgdat(pgdat) {
1804                 int freed;
1805                 freed = balance_pgdat(pgdat, nr_to_free, 0);
1806                 ret += freed;
1807                 nr_to_free -= freed;
1808                 if (nr_to_free <= 0)
1809                         break;
1810         }
1811         current->reclaim_state = NULL;
1812         return ret;
1813 }
1814 #endif
1815
1816 #ifdef CONFIG_HOTPLUG_CPU
1817 /* It's optimal to keep kswapds on the same CPUs as their memory, but
1818    not required for correctness.  So if the last cpu in a node goes
1819    away, we get changed to run anywhere: as the first one comes back,
1820    restore their cpu bindings. */
1821 static int __devinit cpu_callback(struct notifier_block *nfb,
1822                                   unsigned long action,
1823                                   void *hcpu)
1824 {
1825         pg_data_t *pgdat;
1826         cpumask_t mask;
1827
1828         if (action == CPU_ONLINE) {
1829                 for_each_pgdat(pgdat) {
1830                         mask = node_to_cpumask(pgdat->node_id);
1831                         if (any_online_cpu(mask) != NR_CPUS)
1832                                 /* One of our CPUs online: restore mask */
1833                                 set_cpus_allowed(pgdat->kswapd, mask);
1834                 }
1835         }
1836         return NOTIFY_OK;
1837 }
1838 #endif /* CONFIG_HOTPLUG_CPU */
1839
1840 static int __init kswapd_init(void)
1841 {
1842         pg_data_t *pgdat;
1843         swap_setup();
1844         for_each_pgdat(pgdat)
1845                 pgdat->kswapd
1846                 = find_task_by_real_pid(kernel_thread(kswapd, pgdat, CLONE_KERNEL));
1847         total_memory = nr_free_pagecache_pages();
1848         hotcpu_notifier(cpu_callback, 0);
1849         return 0;
1850 }
1851
1852 module_init(kswapd_init)
1853
1854 #ifdef CONFIG_NUMA
1855 /*
1856  * Zone reclaim mode
1857  *
1858  * If non-zero call zone_reclaim when the number of free pages falls below
1859  * the watermarks.
1860  *
1861  * In the future we may add flags to the mode. However, the page allocator
1862  * should only have to check that zone_reclaim_mode != 0 before calling
1863  * zone_reclaim().
1864  */
1865 int zone_reclaim_mode __read_mostly;
1866
1867 #define RECLAIM_OFF 0
1868 #define RECLAIM_ZONE (1<<0)     /* Run shrink_cache on the zone */
1869 #define RECLAIM_WRITE (1<<1)    /* Writeout pages during reclaim */
1870 #define RECLAIM_SWAP (1<<2)     /* Swap pages out during reclaim */
1871 #define RECLAIM_SLAB (1<<3)     /* Do a global slab shrink if the zone is out of memory */
1872
1873 /*
1874  * Mininum time between zone reclaim scans
1875  */
1876 int zone_reclaim_interval __read_mostly = 30*HZ;
1877
1878 /*
1879  * Priority for ZONE_RECLAIM. This determines the fraction of pages
1880  * of a node considered for each zone_reclaim. 4 scans 1/16th of
1881  * a zone.
1882  */
1883 #define ZONE_RECLAIM_PRIORITY 4
1884
1885 /*
1886  * Try to free up some pages from this zone through reclaim.
1887  */
1888 int zone_reclaim(struct zone *zone, gfp_t gfp_mask, unsigned int order)
1889 {
1890         int nr_pages;
1891         struct task_struct *p = current;
1892         struct reclaim_state reclaim_state;
1893         struct scan_control sc;
1894         cpumask_t mask;
1895         int node_id;
1896
1897         if (time_before(jiffies,
1898                 zone->last_unsuccessful_zone_reclaim + zone_reclaim_interval))
1899                         return 0;
1900
1901         if (!(gfp_mask & __GFP_WAIT) ||
1902                 zone->all_unreclaimable ||
1903                 atomic_read(&zone->reclaim_in_progress) > 0 ||
1904                 (p->flags & PF_MEMALLOC))
1905                         return 0;
1906
1907         node_id = zone->zone_pgdat->node_id;
1908         mask = node_to_cpumask(node_id);
1909         if (!cpus_empty(mask) && node_id != numa_node_id())
1910                 return 0;
1911
1912         sc.may_writepage = !!(zone_reclaim_mode & RECLAIM_WRITE);
1913         sc.may_swap = !!(zone_reclaim_mode & RECLAIM_SWAP);
1914         sc.nr_scanned = 0;
1915         sc.nr_reclaimed = 0;
1916         sc.priority = ZONE_RECLAIM_PRIORITY + 1;
1917         sc.nr_mapped = read_page_state(nr_mapped);
1918         sc.gfp_mask = gfp_mask;
1919
1920         disable_swap_token();
1921
1922         nr_pages = 1 << order;
1923         if (nr_pages > SWAP_CLUSTER_MAX)
1924                 sc.swap_cluster_max = nr_pages;
1925         else
1926                 sc.swap_cluster_max = SWAP_CLUSTER_MAX;
1927
1928         cond_resched();
1929         /*
1930          * We need to be able to allocate from the reserves for RECLAIM_SWAP
1931          * and we also need to be able to write out pages for RECLAIM_WRITE
1932          * and RECLAIM_SWAP.
1933          */
1934         p->flags |= PF_MEMALLOC | PF_SWAPWRITE;
1935         reclaim_state.reclaimed_slab = 0;
1936         p->reclaim_state = &reclaim_state;
1937
1938         /*
1939          * Free memory by calling shrink zone with increasing priorities
1940          * until we have enough memory freed.
1941          */
1942         do {
1943                 sc.priority--;
1944                 shrink_zone(zone, &sc);
1945
1946         } while (sc.nr_reclaimed < nr_pages && sc.priority > 0);
1947
1948         if (sc.nr_reclaimed < nr_pages && (zone_reclaim_mode & RECLAIM_SLAB)) {
1949                 /*
1950                  * shrink_slab does not currently allow us to determine
1951                  * how many pages were freed in the zone. So we just
1952                  * shake the slab and then go offnode for a single allocation.
1953                  *
1954                  * shrink_slab will free memory on all zones and may take
1955                  * a long time.
1956                  */
1957                 shrink_slab(sc.nr_scanned, gfp_mask, order);
1958         }
1959
1960         p->reclaim_state = NULL;
1961         current->flags &= ~(PF_MEMALLOC | PF_SWAPWRITE);
1962
1963         if (sc.nr_reclaimed == 0)
1964                 zone->last_unsuccessful_zone_reclaim = jiffies;
1965
1966         return sc.nr_reclaimed >= nr_pages;
1967 }
1968 #endif
1969