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	free_pages_and_swap_cache limits release_pages to PAGEVEC_SIZE chunks.
This is not a big deal for the normal release path but it completely kills
memcg uncharge batching which reduces res_counter spin_lock contention.
Dave has noticed this with his page fault scalability test case on a large
machine when the lock was basically dominating on all CPUs:
    80.18%    80.18%  [kernel]               [k] _raw_spin_lock
                  |
                  --- _raw_spin_lock
                     |
                     |--66.59%-- res_counter_uncharge_until
                     |          res_counter_uncharge
                     |          uncharge_batch
                     |          uncharge_list
                     |          mem_cgroup_uncharge_list
                     |          release_pages
                     |          free_pages_and_swap_cache
                     |          tlb_flush_mmu_free
                     |          |
                     |          |--90.12%-- unmap_single_vma
                     |          |          unmap_vmas
                     |          |          unmap_region
                     |          |          do_munmap
                     |          |          vm_munmap
                     |          |          sys_munmap
                     |          |          system_call_fastpath
                     |          |          __GI___munmap
                     |          |
                     |           --9.88%-- tlb_flush_mmu
                     |                     tlb_finish_mmu
                     |                     unmap_region
                     |                     do_munmap
                     |                     vm_munmap
                     |                     sys_munmap
                     |                     system_call_fastpath
                     |                     __GI___munmap
In his case the load was running in the root memcg and that part has been
handled by reverting 05b8430123 ("mm: memcontrol: use root_mem_cgroup
res_counter") because this is a clear regression, but the problem remains
inside dedicated memcgs.
There is no reason to limit release_pages to PAGEVEC_SIZE batches other
than lru_lock held times.  This logic, however, can be moved inside the
function.  mem_cgroup_uncharge_list and free_hot_cold_page_list do not
hold any lock for the whole pages_to_free list so it is safe to call them
in a single run.
The release_pages() code was previously breaking the lru_lock each
PAGEVEC_SIZE pages (ie, 14 pages).  However this code has no usage of
pagevecs so switch to breaking the lock at least every SWAP_CLUSTER_MAX
(32) pages.  This means that the lock acquisition frequency is
approximately halved and the max hold times are approximately doubled.
The now unneeded batching is removed from free_pages_and_swap_cache().
Also update the grossly out-of-date release_pages documentation.
Signed-off-by: Michal Hocko <mhocko@suse.cz>
Signed-off-by: Johannes Weiner <hannes@cmpxchg.org>
Reported-by: Dave Hansen <dave@sr71.net>
Cc: Vladimir Davydov <vdavydov@parallels.com>
Cc: Greg Thelen <gthelen@google.com>
Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
Signed-off-by: Linus Torvalds <torvalds@linux-foundation.org>
		
	
			
		
			
				
	
	
		
			493 lines
		
	
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			493 lines
		
	
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
/*
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 *  linux/mm/swap_state.c
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 *
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 *  Copyright (C) 1991, 1992, 1993, 1994  Linus Torvalds
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 *  Swap reorganised 29.12.95, Stephen Tweedie
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 *
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 *  Rewritten to use page cache, (C) 1998 Stephen Tweedie
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 */
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#include <linux/mm.h>
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#include <linux/gfp.h>
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#include <linux/kernel_stat.h>
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#include <linux/swap.h>
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#include <linux/swapops.h>
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#include <linux/init.h>
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#include <linux/pagemap.h>
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#include <linux/backing-dev.h>
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#include <linux/blkdev.h>
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#include <linux/pagevec.h>
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#include <linux/migrate.h>
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#include <linux/page_cgroup.h>
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#include <asm/pgtable.h>
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/*
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 * swapper_space is a fiction, retained to simplify the path through
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 * vmscan's shrink_page_list.
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 */
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static const struct address_space_operations swap_aops = {
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	.writepage	= swap_writepage,
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	.set_page_dirty	= swap_set_page_dirty,
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#ifdef CONFIG_MIGRATION
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	.migratepage	= migrate_page,
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#endif
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};
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static struct backing_dev_info swap_backing_dev_info = {
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	.name		= "swap",
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	.capabilities	= BDI_CAP_NO_ACCT_AND_WRITEBACK | BDI_CAP_SWAP_BACKED,
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};
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struct address_space swapper_spaces[MAX_SWAPFILES] = {
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	[0 ... MAX_SWAPFILES - 1] = {
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		.page_tree	= RADIX_TREE_INIT(GFP_ATOMIC|__GFP_NOWARN),
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		.i_mmap_writable = ATOMIC_INIT(0),
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		.a_ops		= &swap_aops,
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		.backing_dev_info = &swap_backing_dev_info,
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	}
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};
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#define INC_CACHE_INFO(x)	do { swap_cache_info.x++; } while (0)
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static struct {
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	unsigned long add_total;
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	unsigned long del_total;
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	unsigned long find_success;
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	unsigned long find_total;
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} swap_cache_info;
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unsigned long total_swapcache_pages(void)
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{
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	int i;
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	unsigned long ret = 0;
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	for (i = 0; i < MAX_SWAPFILES; i++)
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		ret += swapper_spaces[i].nrpages;
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	return ret;
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}
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static atomic_t swapin_readahead_hits = ATOMIC_INIT(4);
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void show_swap_cache_info(void)
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{
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	printk("%lu pages in swap cache\n", total_swapcache_pages());
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	printk("Swap cache stats: add %lu, delete %lu, find %lu/%lu\n",
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		swap_cache_info.add_total, swap_cache_info.del_total,
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		swap_cache_info.find_success, swap_cache_info.find_total);
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	printk("Free swap  = %ldkB\n",
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		get_nr_swap_pages() << (PAGE_SHIFT - 10));
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	printk("Total swap = %lukB\n", total_swap_pages << (PAGE_SHIFT - 10));
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}
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/*
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 * __add_to_swap_cache resembles add_to_page_cache_locked on swapper_space,
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 * but sets SwapCache flag and private instead of mapping and index.
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 */
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int __add_to_swap_cache(struct page *page, swp_entry_t entry)
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{
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	int error;
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	struct address_space *address_space;
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	VM_BUG_ON_PAGE(!PageLocked(page), page);
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	VM_BUG_ON_PAGE(PageSwapCache(page), page);
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	VM_BUG_ON_PAGE(!PageSwapBacked(page), page);
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	page_cache_get(page);
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	SetPageSwapCache(page);
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	set_page_private(page, entry.val);
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	address_space = swap_address_space(entry);
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	spin_lock_irq(&address_space->tree_lock);
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	error = radix_tree_insert(&address_space->page_tree,
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					entry.val, page);
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	if (likely(!error)) {
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		address_space->nrpages++;
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		__inc_zone_page_state(page, NR_FILE_PAGES);
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		INC_CACHE_INFO(add_total);
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	}
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	spin_unlock_irq(&address_space->tree_lock);
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	if (unlikely(error)) {
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		/*
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		 * Only the context which have set SWAP_HAS_CACHE flag
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		 * would call add_to_swap_cache().
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		 * So add_to_swap_cache() doesn't returns -EEXIST.
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		 */
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		VM_BUG_ON(error == -EEXIST);
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		set_page_private(page, 0UL);
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		ClearPageSwapCache(page);
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		page_cache_release(page);
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	}
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	return error;
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}
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int add_to_swap_cache(struct page *page, swp_entry_t entry, gfp_t gfp_mask)
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{
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	int error;
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	error = radix_tree_maybe_preload(gfp_mask);
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	if (!error) {
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		error = __add_to_swap_cache(page, entry);
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		radix_tree_preload_end();
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	}
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	return error;
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}
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/*
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 * This must be called only on pages that have
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 * been verified to be in the swap cache.
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 */
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void __delete_from_swap_cache(struct page *page)
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{
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	swp_entry_t entry;
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	struct address_space *address_space;
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	VM_BUG_ON_PAGE(!PageLocked(page), page);
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	VM_BUG_ON_PAGE(!PageSwapCache(page), page);
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	VM_BUG_ON_PAGE(PageWriteback(page), page);
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	entry.val = page_private(page);
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	address_space = swap_address_space(entry);
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	radix_tree_delete(&address_space->page_tree, page_private(page));
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	set_page_private(page, 0);
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	ClearPageSwapCache(page);
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	address_space->nrpages--;
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	__dec_zone_page_state(page, NR_FILE_PAGES);
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	INC_CACHE_INFO(del_total);
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}
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/**
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 * add_to_swap - allocate swap space for a page
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 * @page: page we want to move to swap
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 *
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 * Allocate swap space for the page and add the page to the
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 * swap cache.  Caller needs to hold the page lock. 
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 */
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int add_to_swap(struct page *page, struct list_head *list)
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{
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	swp_entry_t entry;
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	int err;
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	VM_BUG_ON_PAGE(!PageLocked(page), page);
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	VM_BUG_ON_PAGE(!PageUptodate(page), page);
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	entry = get_swap_page();
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	if (!entry.val)
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		return 0;
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	if (unlikely(PageTransHuge(page)))
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		if (unlikely(split_huge_page_to_list(page, list))) {
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			swapcache_free(entry);
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			return 0;
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		}
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	/*
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	 * Radix-tree node allocations from PF_MEMALLOC contexts could
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	 * completely exhaust the page allocator. __GFP_NOMEMALLOC
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	 * stops emergency reserves from being allocated.
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	 *
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	 * TODO: this could cause a theoretical memory reclaim
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	 * deadlock in the swap out path.
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	 */
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	/*
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	 * Add it to the swap cache and mark it dirty
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	 */
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	err = add_to_swap_cache(page, entry,
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			__GFP_HIGH|__GFP_NOMEMALLOC|__GFP_NOWARN);
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	if (!err) {	/* Success */
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		SetPageDirty(page);
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		return 1;
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	} else {	/* -ENOMEM radix-tree allocation failure */
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		/*
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		 * add_to_swap_cache() doesn't return -EEXIST, so we can safely
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		 * clear SWAP_HAS_CACHE flag.
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		 */
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		swapcache_free(entry);
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		return 0;
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	}
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}
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/*
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 * This must be called only on pages that have
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 * been verified to be in the swap cache and locked.
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 * It will never put the page into the free list,
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 * the caller has a reference on the page.
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 */
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void delete_from_swap_cache(struct page *page)
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{
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	swp_entry_t entry;
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	struct address_space *address_space;
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	entry.val = page_private(page);
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	address_space = swap_address_space(entry);
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	spin_lock_irq(&address_space->tree_lock);
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	__delete_from_swap_cache(page);
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	spin_unlock_irq(&address_space->tree_lock);
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	swapcache_free(entry);
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	page_cache_release(page);
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}
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/* 
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 * If we are the only user, then try to free up the swap cache. 
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 * 
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 * Its ok to check for PageSwapCache without the page lock
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 * here because we are going to recheck again inside
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 * try_to_free_swap() _with_ the lock.
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 * 					- Marcelo
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 */
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static inline void free_swap_cache(struct page *page)
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{
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	if (PageSwapCache(page) && !page_mapped(page) && trylock_page(page)) {
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		try_to_free_swap(page);
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		unlock_page(page);
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	}
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}
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/* 
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 * Perform a free_page(), also freeing any swap cache associated with
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 * this page if it is the last user of the page.
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 */
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void free_page_and_swap_cache(struct page *page)
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{
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	free_swap_cache(page);
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	page_cache_release(page);
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}
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/*
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 * Passed an array of pages, drop them all from swapcache and then release
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 * them.  They are removed from the LRU and freed if this is their last use.
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 */
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void free_pages_and_swap_cache(struct page **pages, int nr)
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{
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	struct page **pagep = pages;
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	int i;
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	lru_add_drain();
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	for (i = 0; i < nr; i++)
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		free_swap_cache(pagep[i]);
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	release_pages(pagep, nr, false);
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}
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/*
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 * Lookup a swap entry in the swap cache. A found page will be returned
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 * unlocked and with its refcount incremented - we rely on the kernel
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 * lock getting page table operations atomic even if we drop the page
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 * lock before returning.
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 */
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struct page * lookup_swap_cache(swp_entry_t entry)
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{
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	struct page *page;
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	page = find_get_page(swap_address_space(entry), entry.val);
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	if (page) {
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		INC_CACHE_INFO(find_success);
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		if (TestClearPageReadahead(page))
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			atomic_inc(&swapin_readahead_hits);
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	}
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	INC_CACHE_INFO(find_total);
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	return page;
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}
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/* 
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 * Locate a page of swap in physical memory, reserving swap cache space
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 * and reading the disk if it is not already cached.
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 * A failure return means that either the page allocation failed or that
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 * the swap entry is no longer in use.
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 */
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struct page *read_swap_cache_async(swp_entry_t entry, gfp_t gfp_mask,
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			struct vm_area_struct *vma, unsigned long addr)
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{
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	struct page *found_page, *new_page = NULL;
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	int err;
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	do {
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		/*
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		 * First check the swap cache.  Since this is normally
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		 * called after lookup_swap_cache() failed, re-calling
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		 * that would confuse statistics.
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		 */
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		found_page = find_get_page(swap_address_space(entry),
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					entry.val);
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		if (found_page)
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			break;
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		/*
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		 * Get a new page to read into from swap.
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		 */
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		if (!new_page) {
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			new_page = alloc_page_vma(gfp_mask, vma, addr);
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			if (!new_page)
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				break;		/* Out of memory */
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		}
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		/*
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		 * call radix_tree_preload() while we can wait.
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		 */
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		err = radix_tree_maybe_preload(gfp_mask & GFP_KERNEL);
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		if (err)
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			break;
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		/*
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		 * Swap entry may have been freed since our caller observed it.
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		 */
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		err = swapcache_prepare(entry);
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		if (err == -EEXIST) {
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			radix_tree_preload_end();
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			/*
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			 * We might race against get_swap_page() and stumble
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			 * across a SWAP_HAS_CACHE swap_map entry whose page
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			 * has not been brought into the swapcache yet, while
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			 * the other end is scheduled away waiting on discard
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			 * I/O completion at scan_swap_map().
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			 *
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			 * In order to avoid turning this transitory state
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			 * into a permanent loop around this -EEXIST case
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			 * if !CONFIG_PREEMPT and the I/O completion happens
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			 * to be waiting on the CPU waitqueue where we are now
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			 * busy looping, we just conditionally invoke the
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			 * scheduler here, if there are some more important
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			 * tasks to run.
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			 */
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			cond_resched();
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			continue;
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		}
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		if (err) {		/* swp entry is obsolete ? */
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			radix_tree_preload_end();
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			break;
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		}
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		/* May fail (-ENOMEM) if radix-tree node allocation failed. */
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		__set_page_locked(new_page);
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		SetPageSwapBacked(new_page);
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		err = __add_to_swap_cache(new_page, entry);
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		if (likely(!err)) {
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			radix_tree_preload_end();
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			/*
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			 * Initiate read into locked page and return.
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			 */
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			lru_cache_add_anon(new_page);
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			swap_readpage(new_page);
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			return new_page;
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		}
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		radix_tree_preload_end();
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		ClearPageSwapBacked(new_page);
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		__clear_page_locked(new_page);
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		/*
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		 * add_to_swap_cache() doesn't return -EEXIST, so we can safely
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		 * clear SWAP_HAS_CACHE flag.
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		 */
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		swapcache_free(entry);
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	} while (err != -ENOMEM);
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	if (new_page)
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		page_cache_release(new_page);
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						|
	return found_page;
 | 
						|
}
 | 
						|
 | 
						|
static unsigned long swapin_nr_pages(unsigned long offset)
 | 
						|
{
 | 
						|
	static unsigned long prev_offset;
 | 
						|
	unsigned int pages, max_pages, last_ra;
 | 
						|
	static atomic_t last_readahead_pages;
 | 
						|
 | 
						|
	max_pages = 1 << ACCESS_ONCE(page_cluster);
 | 
						|
	if (max_pages <= 1)
 | 
						|
		return 1;
 | 
						|
 | 
						|
	/*
 | 
						|
	 * This heuristic has been found to work well on both sequential and
 | 
						|
	 * random loads, swapping to hard disk or to SSD: please don't ask
 | 
						|
	 * what the "+ 2" means, it just happens to work well, that's all.
 | 
						|
	 */
 | 
						|
	pages = atomic_xchg(&swapin_readahead_hits, 0) + 2;
 | 
						|
	if (pages == 2) {
 | 
						|
		/*
 | 
						|
		 * We can have no readahead hits to judge by: but must not get
 | 
						|
		 * stuck here forever, so check for an adjacent offset instead
 | 
						|
		 * (and don't even bother to check whether swap type is same).
 | 
						|
		 */
 | 
						|
		if (offset != prev_offset + 1 && offset != prev_offset - 1)
 | 
						|
			pages = 1;
 | 
						|
		prev_offset = offset;
 | 
						|
	} else {
 | 
						|
		unsigned int roundup = 4;
 | 
						|
		while (roundup < pages)
 | 
						|
			roundup <<= 1;
 | 
						|
		pages = roundup;
 | 
						|
	}
 | 
						|
 | 
						|
	if (pages > max_pages)
 | 
						|
		pages = max_pages;
 | 
						|
 | 
						|
	/* Don't shrink readahead too fast */
 | 
						|
	last_ra = atomic_read(&last_readahead_pages) / 2;
 | 
						|
	if (pages < last_ra)
 | 
						|
		pages = last_ra;
 | 
						|
	atomic_set(&last_readahead_pages, pages);
 | 
						|
 | 
						|
	return pages;
 | 
						|
}
 | 
						|
 | 
						|
/**
 | 
						|
 * swapin_readahead - swap in pages in hope we need them soon
 | 
						|
 * @entry: swap entry of this memory
 | 
						|
 * @gfp_mask: memory allocation flags
 | 
						|
 * @vma: user vma this address belongs to
 | 
						|
 * @addr: target address for mempolicy
 | 
						|
 *
 | 
						|
 * Returns the struct page for entry and addr, after queueing swapin.
 | 
						|
 *
 | 
						|
 * Primitive swap readahead code. We simply read an aligned block of
 | 
						|
 * (1 << page_cluster) entries in the swap area. This method is chosen
 | 
						|
 * because it doesn't cost us any seek time.  We also make sure to queue
 | 
						|
 * the 'original' request together with the readahead ones...
 | 
						|
 *
 | 
						|
 * This has been extended to use the NUMA policies from the mm triggering
 | 
						|
 * the readahead.
 | 
						|
 *
 | 
						|
 * Caller must hold down_read on the vma->vm_mm if vma is not NULL.
 | 
						|
 */
 | 
						|
struct page *swapin_readahead(swp_entry_t entry, gfp_t gfp_mask,
 | 
						|
			struct vm_area_struct *vma, unsigned long addr)
 | 
						|
{
 | 
						|
	struct page *page;
 | 
						|
	unsigned long entry_offset = swp_offset(entry);
 | 
						|
	unsigned long offset = entry_offset;
 | 
						|
	unsigned long start_offset, end_offset;
 | 
						|
	unsigned long mask;
 | 
						|
	struct blk_plug plug;
 | 
						|
 | 
						|
	mask = swapin_nr_pages(offset) - 1;
 | 
						|
	if (!mask)
 | 
						|
		goto skip;
 | 
						|
 | 
						|
	/* Read a page_cluster sized and aligned cluster around offset. */
 | 
						|
	start_offset = offset & ~mask;
 | 
						|
	end_offset = offset | mask;
 | 
						|
	if (!start_offset)	/* First page is swap header. */
 | 
						|
		start_offset++;
 | 
						|
 | 
						|
	blk_start_plug(&plug);
 | 
						|
	for (offset = start_offset; offset <= end_offset ; offset++) {
 | 
						|
		/* Ok, do the async read-ahead now */
 | 
						|
		page = read_swap_cache_async(swp_entry(swp_type(entry), offset),
 | 
						|
						gfp_mask, vma, addr);
 | 
						|
		if (!page)
 | 
						|
			continue;
 | 
						|
		if (offset != entry_offset)
 | 
						|
			SetPageReadahead(page);
 | 
						|
		page_cache_release(page);
 | 
						|
	}
 | 
						|
	blk_finish_plug(&plug);
 | 
						|
 | 
						|
	lru_add_drain();	/* Push any new pages onto the LRU now */
 | 
						|
skip:
 | 
						|
	return read_swap_cache_async(entry, gfp_mask, vma, addr);
 | 
						|
}
 |