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path: root/fs/ubifs/commit.c
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/*
 * This file is part of UBIFS.
 *
 * Copyright (C) 2006-2008 Nokia Corporation.
 *
 * This program is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 as published by
 * the Free Software Foundation.
 *
 * This program is distributed in the hope that it will be useful, but WITHOUT
 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
 * more details.
 *
 * You should have received a copy of the GNU General Public License along with
 * this program; if not, write to the Free Software Foundation, Inc., 51
 * Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
 *
 * Authors: Adrian Hunter
 *          Artem Bityutskiy (Битюцкий Артём)
 */

/*
 * This file implements functions that manage the running of the commit process.
 * Each affected module has its own functions to accomplish their part in the
 * commit and those functions are called here.
 *
 * The commit is the process whereby all updates to the index and LEB properties
 * are written out together and the journal becomes empty. This keeps the
 * file system consistent - at all times the state can be recreated by reading
 * the index and LEB properties and then replaying the journal.
 *
 * The commit is split into two parts named "commit start" and "commit end".
 * During commit start, the commit process has exclusive access to the journal
 * by holding the commit semaphore down for writing. As few I/O operations as
 * possible are performed during commit start, instead the nodes that are to be
 * written are merely identified. During commit end, the commit semaphore is no
 * longer held and the journal is again in operation, allowing users to continue
 * to use the file system while the bulk of the commit I/O is performed. The
 * purpose of this two-step approach is to prevent the commit from causing any
 * latency blips. Note that in any case, the commit does not prevent lookups
 * (as permitted by the TNC mutex), or access to VFS data structures e.g. page
 * cache.
 */

#include <linux/freezer.h>
#include <linux/kthread.h>
#include "ubifs.h"

/**
 * do_commit - commit the journal.
 * @c: UBIFS file-system description object
 *
 * This function implements UBIFS commit. It has to be called with commit lock
 * locked. Returns zero in case of success and a negative error code in case of
 * failure.
 */
static int do_commit(struct ubifs_info *c)
{
	int err, new_ltail_lnum, old_ltail_lnum, i;
	struct ubifs_zbranch zroot;
	struct ubifs_lp_stats lst;

	dbg_cmt("start");
	if (c->ro_media) {
		err = -EROFS;
		goto out_up;
	}

	/* Sync all write buffers (necessary for recovery) */
	for (i = 0; i < c->jhead_cnt; i++) {
		err = ubifs_wbuf_sync(&c->jheads[i].wbuf);
		if (err)
			goto out_up;
	}

	c->cmt_no += 1;
	err = ubifs_gc_start_commit(c);
	if (err)
		goto out_up;
	err = dbg_check_lprops(c);
	if (err)
		goto out_up;
	err = ubifs_log_start_commit(c, &new_ltail_lnum);
	if (err)
		goto out_up;
	err = ubifs_tnc_start_commit(c, &zroot);
	if (err)
		goto out_up;
	err = ubifs_lpt_start_commit(c);
	if (err)
		goto out_up;
	err = ubifs_orphan_start_commit(c);
	if (err)
		goto out_up;

	ubifs_get_lp_stats(c, &lst);

	up_write(&c->commit_sem);

	err = ubifs_tnc_end_commit(c);
	if (err)
		goto out;
	err = ubifs_lpt_end_commit(c);
	if (err)
		goto out;
	err = ubifs_orphan_end_commit(c);
	if (err)
		goto out;
	old_ltail_lnum = c->ltail_lnum;
	err = ubifs_log_end_commit(c, new_ltail_lnum);
	if (err)
		goto out;
	err = dbg_check_old_index(c, &zroot);
	if (err)
		goto out;

	mutex_lock(&c->mst_mutex);
	c->mst_node->cmt_no      = cpu_to_le64(c->cmt_no);
	c->mst_node->log_lnum    = cpu_to_le32(new_ltail_lnum);
	c->mst_node->root_lnum   = cpu_to_le32(zroot.lnum);
	c->mst_node->root_offs   = cpu_to_le32(zroot.offs);
	c->mst_node->root_len    = cpu_to_le32(zroot.len);
	c->mst_node->ihead_lnum  = cpu_to_le32(c->ihead_lnum);
	c->mst_node->ihead_offs  = cpu_to_le32(c->ihead_offs);
	c->mst_node->index_size  = cpu_to_le64(c->old_idx_sz);
	c->mst_node->lpt_lnum    = cpu_to_le32(c->lpt_lnum);
	c->mst_node->lpt_offs    = cpu_to_le32(c->lpt_offs);
	c->mst_node->nhead_lnum  = cpu_to_le32(c->nhead_lnum);
	c->mst_node->nhead_offs  = cpu_to_le32(c->nhead_offs);
	c->mst_node->ltab_lnum   = cpu_to_le32(c->ltab_lnum);
	c->mst_node->ltab_offs   = cpu_to_le32(c->ltab_offs);
	c->mst_node->lsave_lnum  = cpu_to_le32(c->lsave_lnum);
	c->mst_node->lsave_offs  = cpu_to_le32(c->lsave_offs);
	c->mst_node->lscan_lnum  = cpu_to_le32(c->lscan_lnum);
	c->mst_node->empty_lebs  = cpu_to_le32(lst.empty_lebs);
	c->mst_node->idx_lebs    = cpu_to_le32(lst.idx_lebs);
	c->mst_node->total_free  = cpu_to_le64(lst.total_free);
	c->mst_node->total_dirty = cpu_to_le64(lst.total_dirty);
	c->mst_node->total_used  = cpu_to_le64(lst.total_used);
	c->mst_node->total_dead  = cpu_to_le64(lst.total_dead);
	c->mst_node->total_dark  = cpu_to_le64(lst.total_dark);
	if (c->no_orphs)
		c->mst_node->flags |= cpu_to_le32(UBIFS_MST_NO_ORPHS);
	else
		c->mst_node->flags &= ~cpu_to_le32(UBIFS_MST_NO_ORPHS);
	err = ubifs_write_master(c);
	mutex_unlock(&c->mst_mutex);
	if (err)
		goto out;

	err = ubifs_log_post_commit(c, old_ltail_lnum);
	if (err)
		goto out;
	err = ubifs_gc_end_commit(c);
	if (err)
		goto out;
	err = ubifs_lpt_post_commit(c);
	if (err)
		goto out;

	spin_lock(&c->cs_lock);
	c->cmt_state = COMMIT_RESTING;
	wake_up(&c->cmt_wq);
	dbg_cmt("commit end");
	spin_unlock(&c->cs_lock);

	return 0;

out_up:
	up_write(&c->commit_sem);
out:
	ubifs_err("commit failed, error %d", err);
	spin_lock(&c->cs_lock);
	c->cmt_state = COMMIT_BROKEN;
	wake_up(&c->cmt_wq);
	spin_unlock(&c->cs_lock);
	ubifs_ro_mode(c, err);
	return err;
}

/**
 * run_bg_commit - run background commit if it is needed.
 * @c: UBIFS file-system description object
 *
 * This function runs background commit if it is needed. Returns zero in case
 * of success and a negative error code in case of failure.
 */
static int run_bg_commit(struct ubifs_info *c)
{
	spin_lock(&c->cs_lock);
	/*
	 * Run background commit only if background commit was requested or if
	 * commit is required.
	 */
	if (c->cmt_state != COMMIT_BACKGROUND &&
	    c->cmt_state != COMMIT_REQUIRED)
		goto out;
	spin_unlock(&c->cs_lock);

	down_write(&c->commit_sem);
	spin_lock(&c->cs_lock);
	if (c->cmt_state == COMMIT_REQUIRED)
		c->cmt_state = COMMIT_RUNNING_REQUIRED;
	else if (c->cmt_state == COMMIT_BACKGROUND)
		c->cmt_state = COMMIT_RUNNING_BACKGROUND;
	else
		goto out_cmt_unlock;
	spin_unlock(&c->cs_lock);

	return do_commit(c);

out_cmt_unlock:
	up_write(&c->commit_sem);
out:
	spin_unlock(&c->cs_lock);
	return 0;
}

/**
 * ubifs_bg_thread - UBIFS background thread function.
 * @info: points to the file-system description object
 *
 * This function implements various file-system background activities:
 * o when a write-buffer timer expires it synchronizes the appropriate
 *   write-buffer;
 * o when the journal is about to be full, it starts in-advance commit.
 *
 * Note, other stuff like background garbage collection may be added here in
 * future.
 */
int ubifs_bg_thread(void *info)
{
	int err;
	struct ubifs_info *c = info;

	dbg_msg("background thread \"%s\" started, PID %d",
		c->bgt_name, current->pid);
	set_freezable();

	while (1) {
		if (kthread_should_stop())
			break;

		if (try_to_freeze())
			continue;

		set_current_state(TASK_INTERRUPTIBLE);
		/* Check if there is something to do */
		if (!c->need_bgt) {
			/*
			 * Nothing prevents us from going sleep now and
			 * be never woken up and block the task which
			 * could wait in 'kthread_stop()' forever.
			 */
			if (kthread_should_stop())
				break;
			schedule();
			continue;
		} else
			__set_current_state(TASK_RUNNING);

		c->need_bgt = 0;
		err = ubifs_bg_wbufs_sync(c);
		if (err)
			ubifs_ro_mode(c, err);

		run_bg_commit(c);
		cond_resched();
	}

	dbg_msg("background thread \"%s\" stops", c->bgt_name);
	return 0;
}

/**
 * ubifs_commit_required - set commit state to "required".
 * @c: UBIFS file-system description object
 *
 * This function is called if a commit is required but cannot be done from the
 * calling function, so it is just flagged instead.
 */
void ubifs_commit_required(struct ubifs_info *c)
{
	spin_lock(&c->cs_lock);
	switch (c->cmt_state) {
	case COMMIT_RESTING:
	case COMMIT_BACKGROUND:
		dbg_cmt("old: %s, new: %s", dbg_cstate(c->cmt_state),
			dbg_cstate(COMMIT_REQUIRED));
		c->cmt_state = COMMIT_REQUIRED;
		break;
	case COMMIT_RUNNING_BACKGROUND:
		dbg_cmt("old: %s, new: %s", dbg_cstate(c->cmt_state),
			dbg_cstate(COMMIT_RUNNING_REQUIRED));
		c->cmt_state = COMMIT_RUNNING_REQUIRED;
		break;
	case COMMIT_REQUIRED:
	case COMMIT_RUNNING_REQUIRED:
	case COMMIT_BROKEN:
		break;
	}
	spin_unlock(&c->cs_lock);
}

/**
 * ubifs_request_bg_commit - notify the background thread to do a commit.
 * @c: UBIFS file-system description object
 *
 * This function is called if the journal is full enough to make a commit
 * worthwhile, so background thread is kicked to start it.
 */
void ubifs_request_bg_commit(struct ubifs_info *c)
{
	spin_lock(&c->cs_lock);
	if (c->cmt_state == COMMIT_RESTING) {
		dbg_cmt("old: %s, new: %s", dbg_cstate(c->cmt_state),
			dbg_cstate(COMMIT_BACKGROUND));
		c->cmt_state = COMMIT_BACKGROUND;
		spin_unlock(&c->cs_lock);
		ubifs_wake_up_bgt(c);
	} else
		spin_unlock(&c->cs_lock);
}

/**
 * wait_for_commit - wait for commit.
 * @c: UBIFS file-system description object
 *
 * This function sleeps until the commit operation is no longer running.
 */
static int wait_for_commit(struct ubifs_info *c)
{
	dbg_cmt("pid %d goes sleep", current->pid);

	/*
	 * The following sleeps if the condition is false, and will be woken
	 * when the commit ends. It is possible, although very unlikely, that we
	 * will wake up and see the subsequent commit running, rather than the
	 * one we were waiting for, and go back to sleep.  However, we will be
	 * woken again, so there is no danger of sleeping forever.
	 */
	wait_event(c->cmt_wq, c->cmt_state != COMMIT_RUNNING_BACKGROUND &&
			      c->cmt_state != COMMIT_RUNNING_REQUIRED);
	dbg_cmt("commit finished, pid %d woke up", current->pid);
	return 0;
}

/**
 * ubifs_run_commit - run or wait for commit.
 * @c: UBIFS file-system description object
 *
 * This function runs commit and returns zero in case of success and a negative
 * error code in case of failure.
 */
int ubifs_run_commit(struct ubifs_info *c)
{
	int err = 0;

	spin_lock(&c->cs_lock);
	if (c->cmt_state == COMMIT_BROKEN) {
		err = -EINVAL;
		goto out;
	}

	if (c->cmt_state == COMMIT_RUNNING_BACKGROUND)
		/*
		 * We set the commit state to 'running required' to indicate
		 * that we want it to complete as quickly as possible.
		 */
		c->cmt_state = COMMIT_RUNNING_REQUIRED;

	if (c->cmt_state == COMMIT_RUNNING_REQUIRED) {
		spin_unlock(&c->cs_lock);
		return wait_for_commit(c);
	}
	spin_unlock(&c->cs_lock);

	/* Ok, the commit is indeed needed */

	down_write(&c->commit_sem);
	spin_lock(&c->cs_lock);
	/*
	 * Since we unlocked 'c->cs_lock', the state may have changed, so
	 * re-check it.
	 */
	if (c->cmt_state == COMMIT_BROKEN) {
		err = -EINVAL;
		goto out_cmt_unlock;
	}

	if (c->cmt_state == COMMIT_RUNNING_BACKGROUND)
		c->cmt_state = COMMIT_RUNNING_REQUIRED;

	if (c->cmt_state == COMMIT_RUNNING_REQUIRED) {
		up_write(&c->commit_sem);
		spin_unlock(&c->cs_lock);
		return wait_for_commit(c);
	}
	c->cmt_state = COMMIT_RUNNING_REQUIRED;
	spin_unlock(&c->cs_lock);

	err = do_commit(c);
	return err;

out_cmt_unlock:
	up_write(&c->commit_sem);
out:
	spin_unlock(&c->cs_lock);
	return err;
}

/**
 * ubifs_gc_should_commit - determine if it is time for GC to run commit.
 * @c: UBIFS file-system description object
 *
 * This function is called by garbage collection to determine if commit should
 * be run. If commit state is @COMMIT_BACKGROUND, which means that the journal
 * is full enough to start commit, this function returns true. It is not
 * absolutely necessary to commit yet, but it feels like this should be better
 * then to keep doing GC. This function returns %1 if GC has to initiate commit
 * and %0 if not.
 */
int ubifs_gc_should_commit(struct ubifs_info *c)
{
	int ret = 0;

	spin_lock(&c->cs_lock);
	if (c->cmt_state == COMMIT_BACKGROUND) {
		dbg_cmt("commit required now");
		c->cmt_state = COMMIT_REQUIRED;
	} else
		dbg_cmt("commit not requested");
	if (c->cmt_state == COMMIT_REQUIRED)
		ret = 1;
	spin_unlock(&c->cs_lock);
	return ret;
}

#ifdef CONFIG_UBIFS_FS_DEBUG

/**
 * struct idx_node - hold index nodes during index tree traversal.
 * @list: list
 * @iip: index in parent (slot number of this indexing node in the parent
 *       indexing node)
 * @upper_key: all keys in this indexing node have to be less or equivalent to
 *             this key
 * @idx: index node (8-byte aligned because all node structures must be 8-byte
 *       aligned)
 */
struct idx_node {
	struct list_head list;
	int iip;
	union ubifs_key upper_key;
	struct ubifs_idx_node idx __attribute__((aligned(8)));
};

/**
 * dbg_old_index_check_init - get information for the next old index check.
 * @c: UBIFS file-system description object
 * @zroot: root of the index
 *
 * This function records information about the index that will be needed for the
 * next old index check i.e. 'dbg_check_old_index()'.
 *
 * This function returns %0 on success and a negative error code on failure.
 */
int dbg_old_index_check_init(struct ubifs_info *c, struct ubifs_zbranch *zroot)
{
	struct ubifs_idx_node *idx;
	int lnum, offs, len, err = 0;
	struct ubifs_debug_info *d = c->dbg;

	d->old_zroot = *zroot;
	lnum = d->old_zroot.lnum;
	offs = d->old_zroot.offs;
	len = d->old_zroot.len;

	idx = kmalloc(c->max_idx_node_sz, GFP_NOFS);
	if (!idx)
		return -ENOMEM;

	err = ubifs_read_node(c, idx, UBIFS_IDX_NODE, len, lnum, offs);
	if (err)
		goto out;

	d->old_zroot_level = le16_to_cpu(idx->level);
	d->old_zroot_sqnum = le64_to_cpu(idx->ch.sqnum);
out:
	kfree(idx);
	return err;
}

/**
 * dbg_check_old_index - check the old copy of the index.
 * @c: UBIFS file-system description object
 * @zroot: root of the new index
 *
 * In order to be able to recover from an unclean unmount, a complete copy of
 * the index must exist on flash. This is the "old" index. The commit process
 * must write the "new" index to flash without overwriting or destroying any
 * part of the old index. This function is run at commit end in order to check
 * that the old index does indeed exist completely intact.
 *
 * This function returns %0 on success and a negative error code on failure.
 */
int dbg_check_old_index(struct ubifs_info *c, struct ubifs_zbranch *zroot)
{
	int lnum, offs, len, err = 0, uninitialized_var(last_level), child_cnt;
	int first = 1, iip;
	struct ubifs_debug_info *d = c->dbg;
	union ubifs_key uninitialized_var(lower_key), upper_key, l_key, u_key;
	unsigned long long uninitialized_var(last_sqnum);
	struct ubifs_idx_node *idx;
	struct list_head list;
	struct idx_node *i;
	size_t sz;

	if (!(ubifs_chk_flags & UBIFS_CHK_OLD_IDX))
		goto out;

	INIT_LIST_HEAD(&list);

	sz = sizeof(struct idx_node) + ubifs_idx_node_sz(c, c->fanout) -
	     UBIFS_IDX_NODE_SZ;

	/* Start at the old zroot */
	lnum = d->old_zroot.lnum;
	offs = d->old_zroot.offs;
	len = d->old_zroot.len;
	iip = 0;

	/*
	 * Traverse the index tree preorder depth-first i.e. do a node and then
	 * its subtrees from left to right.
	 */
	while (1) {
		struct ubifs_branch *br;

		/* Get the next index node */
		i = kmalloc(sz, GFP_NOFS);
		if (!i) {
			err = -ENOMEM;
			goto out_free;
		}
		i->iip = iip;
		/* Keep the index nodes on our path in a linked list */
		list_add_tail(&i->list, &list);
		/* Read the index node */
		idx = &i->idx;
		err = ubifs_read_node(c, idx, UBIFS_IDX_NODE, len, lnum, offs);
		if (err)
			goto out_free;
		/* Validate index node */
		child_cnt = le16_to_cpu(idx->child_cnt);
		if (child_cnt < 1 || child_cnt > c->fanout) {
			err = 1;
			goto out_dump;
		}
		if (first) {
			first = 0;
			/* Check root level and sqnum */
			if (le16_to_cpu(idx->level) != d->old_zroot_level) {
				err = 2;
				goto out_dump;
			}
			if (le64_to_cpu(idx->ch.sqnum) != d->old_zroot_sqnum) {
				err = 3;
				goto out_dump;
			}
			/* Set last values as though root had a parent */
			last_level = le16_to_cpu(idx->level) + 1;
			last_sqnum = le64_to_cpu(idx->ch.sqnum) + 1;
			key_read(c, ubifs_idx_key(c, idx), &lower_key);
			highest_ino_key(c, &upper_key, INUM_WATERMARK);
		}
		key_copy(c, &upper_key, &i->upper_key);
		if (le16_to_cpu(idx->level) != last_level - 1) {
			err = 3;
			goto out_dump;
		}
		/*
		 * The index is always written bottom up hence a child's sqnum
		 * is always less than the parents.
		 */
		if (le64_to_cpu(idx->ch.sqnum) >= last_sqnum) {
			err = 4;
			goto out_dump;
		}
		/* Check key range */
		key_read(c, ubifs_idx_key(c, idx), &l_key);
		br = ubifs_idx_branch(c, idx, child_cnt - 1);
		key_read(c, &br->key, &u_key);
		if (keys_cmp(c, &lower_key, &l_key) > 0) {
			err = 5;
			goto out_dump;
		}
		if (keys_cmp(c, &upper_key, &u_key) < 0) {
			err = 6;
			goto out_dump;
		}
		if (keys_cmp(c, &upper_key, &u_key) == 0)
			if (!is_hash_key(c, &u_key)) {
				err = 7;
				goto out_dump;
			}
		/* Go to next index node */
		if (le16_to_cpu(idx->level) == 0) {
			/* At the bottom, so go up until can go right */
			while (1) {
				/* Drop the bottom of the list */
				list_del(&i->list);
				kfree(i);
				/* No more list means we are done */
				if (list_empty(&list))
					goto out;
				/* Look at the new bottom */
				i = list_entry(list.prev, struct idx_node,
					       list);
				idx = &i->idx;
				/* Can we go right */
				if (iip + 1 < le16_to_cpu(idx->child_cnt)) {
					iip = iip + 1;
					break;
				} else
					/* Nope, so go up again */
					iip = i->iip;
			}
		} else
			/* Go down left */
			iip = 0;
		/*
		 * We have the parent in 'idx' and now we set up for reading the
		 * child pointed to by slot 'iip'.
		 */
		last_level = le16_to_cpu(idx->level);
		last_sqnum = le64_to_cpu(idx->ch.sqnum);
		br = ubifs_idx_branch(c, idx, iip);
		lnum = le32_to_cpu(br->lnum);
		offs = le32_to_cpu(br->offs);
		len = le32_to_cpu(br->len);
		key_read(c, &br->key, &lower_key);
		if (iip + 1 < le16_to_cpu(idx->child_cnt)) {
			br = ubifs_idx_branch(c, idx, iip + 1);
			key_read(c, &br->key, &upper_key);
		} else
			key_copy(c, &i->upper_key, &upper_key);
	}
out:
	err = dbg_old_index_check_init(c, zroot);
	if (err)
		goto out_free;

	return 0;

out_dump:
	dbg_err("dumping index node (iip=%d)", i->iip);
	dbg_dump_node(c, idx);
	list_del(&i->list);
	kfree(i);
	if (!list_empty(&list)) {
		i = list_entry(list.prev, struct idx_node, list);
		dbg_err("dumping parent index node");
		dbg_dump_node(c, &i->idx);
	}
out_free:
	while (!list_empty(&list)) {
		i = list_entry(list.next, struct idx_node, list);
		list_del(&i->list);
		kfree(i);
	}
	ubifs_err("failed, error %d", err);
	if (err > 0)
		err = -EINVAL;
	return err;
}

#endif /* CONFIG_UBIFS_FS_DEBUG */
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/*
 *  linux/mm/oom_kill.c
 * 
 *  Copyright (C)  1998,2000  Rik van Riel
 *	Thanks go out to Claus Fischer for some serious inspiration and
 *	for goading me into coding this file...
 *
 *  The routines in this file are used to kill a process when
 *  we're seriously out of memory. This gets called from __alloc_pages()
 *  in mm/page_alloc.c when we really run out of memory.
 *
 *  Since we won't call these routines often (on a well-configured
 *  machine) this file will double as a 'coding guide' and a signpost
 *  for newbie kernel hackers. It features several pointers to major
 *  kernel subsystems and hints as to where to find out what things do.
 */

#include <linux/oom.h>
#include <linux/mm.h>
#include <linux/err.h>
#include <linux/sched.h>
#include <linux/swap.h>
#include <linux/timex.h>
#include <linux/jiffies.h>
#include <linux/cpuset.h>
#include <linux/module.h>
#include <linux/notifier.h>
#include <linux/memcontrol.h>

int sysctl_panic_on_oom;
int sysctl_oom_kill_allocating_task;
int sysctl_oom_dump_tasks;
static DEFINE_SPINLOCK(zone_scan_mutex);
/* #define DEBUG */

/**
 * badness - calculate a numeric value for how bad this task has been
 * @p: task struct of which task we should calculate
 * @uptime: current uptime in seconds
 * @mem: target memory controller
 *
 * The formula used is relatively simple and documented inline in the
 * function. The main rationale is that we want to select a good task
 * to kill when we run out of memory.
 *
 * Good in this context means that:
 * 1) we lose the minimum amount of work done
 * 2) we recover a large amount of memory
 * 3) we don't kill anything innocent of eating tons of memory
 * 4) we want to kill the minimum amount of processes (one)
 * 5) we try to kill the process the user expects us to kill, this
 *    algorithm has been meticulously tuned to meet the principle
 *    of least surprise ... (be careful when you change it)
 */

unsigned long badness(struct task_struct *p, unsigned long uptime)
{
	unsigned long points, cpu_time, run_time, s;
	struct mm_struct *mm;
	struct task_struct *child;

	task_lock(p);
	mm = p->mm;
	if (!mm) {
		task_unlock(p);
		return 0;
	}

	/*
	 * The memory size of the process is the basis for the badness.
	 */
	points = mm->total_vm;

	/*
	 * After this unlock we can no longer dereference local variable `mm'
	 */
	task_unlock(p);

	/*
	 * swapoff can easily use up all memory, so kill those first.
	 */
	if (p->flags & PF_SWAPOFF)
		return ULONG_MAX;

	/*
	 * Processes which fork a lot of child processes are likely
	 * a good choice. We add half the vmsize of the children if they
	 * have an own mm. This prevents forking servers to flood the
	 * machine with an endless amount of children. In case a single
	 * child is eating the vast majority of memory, adding only half
	 * to the parents will make the child our kill candidate of choice.
	 */
	list_for_each_entry(child, &p->children, sibling) {
		task_lock(child);
		if (child->mm != mm && child->mm)
			points += child->mm->total_vm/2 + 1;
		task_unlock(child);
	}

	/*
	 * CPU time is in tens of seconds and run time is in thousands
         * of seconds. There is no particular reason for this other than
         * that it turned out to work very well in practice.
	 */
	cpu_time = (cputime_to_jiffies(p->utime) + cputime_to_jiffies(p->stime))
		>> (SHIFT_HZ + 3);

	if (uptime >= p->start_time.tv_sec)
		run_time = (uptime - p->start_time.tv_sec) >> 10;
	else
		run_time = 0;

	s = int_sqrt(cpu_time);
	if (s)
		points /= s;
	s = int_sqrt(int_sqrt(run_time));
	if (s)
		points /= s;

	/*
	 * Niced processes are most likely less important, so double
	 * their badness points.
	 */
	if (task_nice(p) > 0)
		points *= 2;

	/*
	 * Superuser processes are usually more important, so we make it
	 * less likely that we kill those.
	 */
	if (__capable(p, CAP_SYS_ADMIN) || __capable(p, CAP_SYS_RESOURCE))
		points /= 4;

	/*
	 * We don't want to kill a process with direct hardware access.
	 * Not only could that mess up the hardware, but usually users
	 * tend to only have this flag set on applications they think
	 * of as important.
	 */
	if (__capable(p, CAP_SYS_RAWIO))
		points /= 4;

	/*
	 * If p's nodes don't overlap ours, it may still help to kill p
	 * because p may have allocated or otherwise mapped memory on
	 * this node before. However it will be less likely.
	 */
	if (!cpuset_mems_allowed_intersects(current, p))
		points /= 8;

	/*
	 * Adjust the score by oomkilladj.
	 */
	if (p->oomkilladj) {
		if (p->oomkilladj > 0) {
			if (!points)
				points = 1;
			points <<= p->oomkilladj;
		} else
			points >>= -(p->oomkilladj);
	}

#ifdef DEBUG
	printk(KERN_DEBUG "OOMkill: task %d (%s) got %lu points\n",
	p->pid, p->comm, points);
#endif
	return points;
}

/*
 * Determine the type of allocation constraint.
 */
static inline enum oom_constraint constrained_alloc(struct zonelist *zonelist,
						    gfp_t gfp_mask)
{
#ifdef CONFIG_NUMA
	struct zone *zone;
	struct zoneref *z;
	enum zone_type high_zoneidx = gfp_zone(gfp_mask);
	nodemask_t nodes = node_states[N_HIGH_MEMORY];

	for_each_zone_zonelist(zone, z, zonelist, high_zoneidx)
		if (cpuset_zone_allowed_softwall(zone, gfp_mask))
			node_clear(zone_to_nid(zone), nodes);
		else
			return CONSTRAINT_CPUSET;

	if (!nodes_empty(nodes))
		return CONSTRAINT_MEMORY_POLICY;
#endif

	return CONSTRAINT_NONE;
}

/*
 * Simple selection loop. We chose the process with the highest
 * number of 'points'. We expect the caller will lock the tasklist.
 *
 * (not docbooked, we don't want this one cluttering up the manual)
 */
static struct task_struct *select_bad_process(unsigned long *ppoints,
						struct mem_cgroup *mem)
{
	struct task_struct *g, *p;
	struct task_struct *chosen = NULL;
	struct timespec uptime;
	*ppoints = 0;

	do_posix_clock_monotonic_gettime(&uptime);
	do_each_thread(g, p) {
		unsigned long points;

		/*
		 * skip kernel threads and tasks which have already released
		 * their mm.
		 */
		if (!p->mm)
			continue;
		/* skip the init task */
		if (is_global_init(p))
			continue;
		if (mem && !task_in_mem_cgroup(p, mem))
			continue;

		/*
		 * This task already has access to memory reserves and is
		 * being killed. Don't allow any other task access to the
		 * memory reserve.
		 *
		 * Note: this may have a chance of deadlock if it gets
		 * blocked waiting for another task which itself is waiting
		 * for memory. Is there a better alternative?
		 */
		if (test_tsk_thread_flag(p, TIF_MEMDIE))
			return ERR_PTR(-1UL);

		/*
		 * This is in the process of releasing memory so wait for it
		 * to finish before killing some other task by mistake.
		 *
		 * However, if p is the current task, we allow the 'kill' to
		 * go ahead if it is exiting: this will simply set TIF_MEMDIE,
		 * which will allow it to gain access to memory reserves in
		 * the process of exiting and releasing its resources.
		 * Otherwise we could get an easy OOM deadlock.
		 */
		if (p->flags & PF_EXITING) {
			if (p != current)
				return ERR_PTR(-1UL);

			chosen = p;
			*ppoints = ULONG_MAX;
		}

		if (p->oomkilladj == OOM_DISABLE)
			continue;

		points = badness(p, uptime.tv_sec);
		if (points > *ppoints || !chosen) {
			chosen = p;
			*ppoints = points;
		}
	} while_each_thread(g, p);

	return chosen;
}

/**
 * dump_tasks - dump current memory state of all system tasks
 * @mem: target memory controller
 *
 * Dumps the current memory state of all system tasks, excluding kernel threads.
 * State information includes task's pid, uid, tgid, vm size, rss, cpu, oom_adj
 * score, and name.
 *
 * If the actual is non-NULL, only tasks that are a member of the mem_cgroup are
 * shown.
 *
 * Call with tasklist_lock read-locked.
 */
static void dump_tasks(const struct mem_cgroup *mem)
{
	struct task_struct *g, *p;

	printk(KERN_INFO "[ pid ]   uid  tgid total_vm      rss cpu oom_adj "
	       "name\n");
	do_each_thread(g, p) {
		/*
		 * total_vm and rss sizes do not exist for tasks with a
		 * detached mm so there's no need to report them.
		 */
		if (!p->mm)
			continue;
		if (mem && !task_in_mem_cgroup(p, mem))
			continue;

		task_lock(p);
		printk(KERN_INFO "[%5d] %5d %5d %8lu %8lu %3d     %3d %s\n",
		       p->pid, p->uid, p->tgid, p->mm->total_vm,
		       get_mm_rss(p->mm), (int)task_cpu(p), p->oomkilladj,
		       p->comm);
		task_unlock(p);
	} while_each_thread(g, p);
}

/*
 * Send SIGKILL to the selected  process irrespective of  CAP_SYS_RAW_IO
 * flag though it's unlikely that  we select a process with CAP_SYS_RAW_IO
 * set.
 */
static void __oom_kill_task(struct task_struct *p, int verbose)
{
	if (is_global_init(p)) {
		WARN_ON(1);
		printk(KERN_WARNING "tried to kill init!\n");
		return;
	}

	if (!p->mm) {
		WARN_ON(1);
		printk(KERN_WARNING "tried to kill an mm-less task!\n");
		return;
	}

	if (verbose)
		printk(KERN_ERR "Killed process %d (%s)\n",
				task_pid_nr(p), p->comm);

	/*
	 * We give our sacrificial lamb high priority and access to
	 * all the memory it needs. That way it should be able to
	 * exit() and clear out its resources quickly...
	 */
	p->rt.time_slice = HZ;
	set_tsk_thread_flag(p, TIF_MEMDIE);

	force_sig(SIGKILL, p);
}

static int oom_kill_task(struct task_struct *p)
{
	struct mm_struct *mm;
	struct task_struct *g, *q;

	mm = p->mm;

	/* WARNING: mm may not be dereferenced since we did not obtain its
	 * value from get_task_mm(p).  This is OK since all we need to do is
	 * compare mm to q->mm below.
	 *
	 * Furthermore, even if mm contains a non-NULL value, p->mm may
	 * change to NULL at any time since we do not hold task_lock(p).
	 * However, this is of no concern to us.
	 */

	if (mm == NULL)
		return 1;

	/*
	 * Don't kill the process if any threads are set to OOM_DISABLE
	 */
	do_each_thread(g, q) {
		if (q->mm == mm && q->oomkilladj == OOM_DISABLE)
			return 1;
	} while_each_thread(g, q);

	__oom_kill_task(p, 1);

	/*
	 * kill all processes that share the ->mm (i.e. all threads),
	 * but are in a different thread group. Don't let them have access
	 * to memory reserves though, otherwise we might deplete all memory.
	 */
	do_each_thread(g, q) {
		if (q->mm == mm && !same_thread_group(q, p))
			force_sig(SIGKILL, q);
	} while_each_thread(g, q);

	return 0;
}

static int oom_kill_process(struct task_struct *p, gfp_t gfp_mask, int order,
			    unsigned long points, struct mem_cgroup *mem,
			    const char *message)
{
	struct task_struct *c;

	if (printk_ratelimit()) {
		printk(KERN_WARNING "%s invoked oom-killer: "
			"gfp_mask=0x%x, order=%d, oomkilladj=%d\n",
			current->comm, gfp_mask, order, current->oomkilladj);
		dump_stack();
		show_mem();
		if (sysctl_oom_dump_tasks)
			dump_tasks(mem);
	}

	/*
	 * If the task is already exiting, don't alarm the sysadmin or kill
	 * its children or threads, just set TIF_MEMDIE so it can die quickly
	 */
	if (p->flags & PF_EXITING) {
		__oom_kill_task(p, 0);
		return 0;
	}

	printk(KERN_ERR "%s: kill process %d (%s) score %li or a child\n",
					message, task_pid_nr(p), p->comm, points);

	/* Try to kill a child first */
	list_for_each_entry(c, &p->children, sibling) {
		if (c->mm == p->mm)
			continue;
		if (!oom_kill_task(c))
			return 0;
	}
	return oom_kill_task(p);
}

#ifdef CONFIG_CGROUP_MEM_RES_CTLR
void mem_cgroup_out_of_memory(struct mem_cgroup *mem, gfp_t gfp_mask)
{
	unsigned long points = 0;
	struct task_struct *p;

	cgroup_lock();
	read_lock(&tasklist_lock);
retry:
	p = select_bad_process(&points, mem);
	if (PTR_ERR(p) == -1UL)
		goto out;

	if (!p)
		p = current;

	if (oom_kill_process(p, gfp_mask, 0, points, mem,
				"Memory cgroup out of memory"))
		goto retry;
out:
	read_unlock(&tasklist_lock);
	cgroup_unlock();
}
#endif

static BLOCKING_NOTIFIER_HEAD(oom_notify_list);

int register_oom_notifier(struct notifier_block *nb)
{
	return blocking_notifier_chain_register(&oom_notify_list, nb);
}
EXPORT_SYMBOL_GPL(register_oom_notifier);

int unregister_oom_notifier(struct notifier_block *nb)
{
	return blocking_notifier_chain_unregister(&oom_notify_list, nb);
}
EXPORT_SYMBOL_GPL(unregister_oom_notifier);

/*
 * Try to acquire the OOM killer lock for the zones in zonelist.  Returns zero
 * if a parallel OOM killing is already taking place that includes a zone in
 * the zonelist.  Otherwise, locks all zones in the zonelist and returns 1.
 */
int try_set_zone_oom(struct zonelist *zonelist, gfp_t gfp_mask)
{
	struct zoneref *z;
	struct zone *zone;
	int ret = 1;

	spin_lock(&zone_scan_mutex);
	for_each_zone_zonelist(zone, z, zonelist, gfp_zone(gfp_mask)) {
		if (zone_is_oom_locked(zone)) {
			ret = 0;
			goto out;
		}
	}

	for_each_zone_zonelist(zone, z, zonelist, gfp_zone(gfp_mask)) {
		/*
		 * Lock each zone in the zonelist under zone_scan_mutex so a
		 * parallel invocation of try_set_zone_oom() doesn't succeed
		 * when it shouldn't.
		 */
		zone_set_flag(zone, ZONE_OOM_LOCKED);
	}

out:
	spin_unlock(&zone_scan_mutex);
	return ret;
}

/*
 * Clears the ZONE_OOM_LOCKED flag for all zones in the zonelist so that failed
 * allocation attempts with zonelists containing them may now recall the OOM
 * killer, if necessary.
 */
void clear_zonelist_oom(struct zonelist *zonelist, gfp_t gfp_mask)
{
	struct zoneref *z;
	struct zone *zone;

	spin_lock(&zone_scan_mutex);
	for_each_zone_zonelist(zone, z, zonelist, gfp_zone(gfp_mask)) {
		zone_clear_flag(zone, ZONE_OOM_LOCKED);
	}
	spin_unlock(&zone_scan_mutex);
}

/**
 * out_of_memory - kill the "best" process when we run out of memory
 * @zonelist: zonelist pointer
 * @gfp_mask: memory allocation flags
 * @order: amount of memory being requested as a power of 2
 *
 * If we run out of memory, we have the choice between either
 * killing a random task (bad), letting the system crash (worse)
 * OR try to be smart about which process to kill. Note that we
 * don't have to be perfect here, we just have to be good.
 */
void out_of_memory(struct zonelist *zonelist, gfp_t gfp_mask, int order)
{
	struct task_struct *p;
	unsigned long points = 0;
	unsigned long freed = 0;
	enum oom_constraint constraint;

	blocking_notifier_call_chain(&oom_notify_list, 0, &freed);
	if (freed > 0)
		/* Got some memory back in the last second. */
		return;

	if (sysctl_panic_on_oom == 2)
		panic("out of memory. Compulsory panic_on_oom is selected.\n");

	/*
	 * Check if there were limitations on the allocation (only relevant for
	 * NUMA) that may require different handling.
	 */
	constraint = constrained_alloc(zonelist, gfp_mask);
	read_lock(&tasklist_lock);

	switch (constraint) {
	case CONSTRAINT_MEMORY_POLICY:
		oom_kill_process(current, gfp_mask, order, points, NULL,
				"No available memory (MPOL_BIND)");
		break;

	case CONSTRAINT_NONE:
		if (sysctl_panic_on_oom)
			panic("out of memory. panic_on_oom is selected\n");
		/* Fall-through */
	case CONSTRAINT_CPUSET:
		if (sysctl_oom_kill_allocating_task) {
			oom_kill_process(current, gfp_mask, order, points, NULL,
					"Out of memory (oom_kill_allocating_task)");
			break;
		}
retry:
		/*
		 * Rambo mode: Shoot down a process and hope it solves whatever
		 * issues we may have.
		 */
		p = select_bad_process(&points, NULL);

		if (PTR_ERR(p) == -1UL)
			goto out;

		/* Found nothing?!?! Either we hang forever, or we panic. */
		if (!p) {
			read_unlock(&tasklist_lock);
			panic("Out of memory and no killable processes...\n");
		}

		if (oom_kill_process(p, gfp_mask, order, points, NULL,
				     "Out of memory"))
			goto retry;

		break;
	}

out:
	read_unlock(&tasklist_lock);

	/*
	 * Give "p" a good chance of killing itself before we
	 * retry to allocate memory unless "p" is current
	 */
	if (!test_thread_flag(TIF_MEMDIE))
		schedule_timeout_uninterruptible(1);
}