stree.c 64.6 KB
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/*
 *  Copyright 2000 by Hans Reiser, licensing governed by reiserfs/README
 */

/*
 *  Written by Anatoly P. Pinchuk pap@namesys.botik.ru
 *  Programm System Institute
 *  Pereslavl-Zalessky Russia
 */

/*
 *  This file contains functions dealing with S+tree
 *
 * B_IS_IN_TREE
 * copy_item_head
 * comp_short_keys
 * comp_keys
 * comp_short_le_keys
 * le_key2cpu_key
 * comp_le_keys
 * bin_search
 * get_lkey
 * get_rkey
 * key_in_buffer
 * decrement_bcount
 * reiserfs_check_path
 * pathrelse_and_restore
 * pathrelse
 * search_by_key_reada
 * search_by_key
 * search_for_position_by_key
 * comp_items
 * prepare_for_direct_item
 * prepare_for_direntry_item
 * prepare_for_delete_or_cut
 * calc_deleted_bytes_number
 * init_tb_struct
 * padd_item
 * reiserfs_delete_item
 * reiserfs_delete_solid_item
 * reiserfs_delete_object
 * maybe_indirect_to_direct
 * indirect_to_direct_roll_back
 * reiserfs_cut_from_item
 * truncate_directory
 * reiserfs_do_truncate
 * reiserfs_paste_into_item
 * reiserfs_insert_item
 */

#include <linux/time.h>
#include <linux/string.h>
#include <linux/pagemap.h>
#include <linux/reiserfs_fs.h>
#include <linux/buffer_head.h>
#include <linux/quotaops.h>

/* Does the buffer contain a disk block which is in the tree. */
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inline int B_IS_IN_TREE(const struct buffer_head *bh)
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{

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	RFALSE(B_LEVEL(bh) > MAX_HEIGHT,
	       "PAP-1010: block (%b) has too big level (%z)", bh, bh);
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	return (B_LEVEL(bh) != FREE_LEVEL);
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}

//
// to gets item head in le form
//
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inline void copy_item_head(struct item_head *p_v_to,
			   const struct item_head *p_v_from)
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{
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	memcpy(p_v_to, p_v_from, IH_SIZE);
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}

/* k1 is pointer to on-disk structure which is stored in little-endian
   form. k2 is pointer to cpu variable. For key of items of the same
   object this returns 0.
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   Returns: -1 if key1 < key2
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   0 if key1 == key2
   1 if key1 > key2 */
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inline int comp_short_keys(const struct reiserfs_key *le_key,
			   const struct cpu_key *cpu_key)
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{
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	__u32 n;
	n = le32_to_cpu(le_key->k_dir_id);
	if (n < cpu_key->on_disk_key.k_dir_id)
		return -1;
	if (n > cpu_key->on_disk_key.k_dir_id)
		return 1;
	n = le32_to_cpu(le_key->k_objectid);
	if (n < cpu_key->on_disk_key.k_objectid)
		return -1;
	if (n > cpu_key->on_disk_key.k_objectid)
		return 1;
	return 0;
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}

/* k1 is pointer to on-disk structure which is stored in little-endian
   form. k2 is pointer to cpu variable.
   Compare keys using all 4 key fields.
   Returns: -1 if key1 < key2 0
   if key1 = key2 1 if key1 > key2 */
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static inline int comp_keys(const struct reiserfs_key *le_key,
			    const struct cpu_key *cpu_key)
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{
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	int retval;

	retval = comp_short_keys(le_key, cpu_key);
	if (retval)
		return retval;
	if (le_key_k_offset(le_key_version(le_key), le_key) <
	    cpu_key_k_offset(cpu_key))
		return -1;
	if (le_key_k_offset(le_key_version(le_key), le_key) >
	    cpu_key_k_offset(cpu_key))
		return 1;

	if (cpu_key->key_length == 3)
		return 0;

	/* this part is needed only when tail conversion is in progress */
	if (le_key_k_type(le_key_version(le_key), le_key) <
	    cpu_key_k_type(cpu_key))
		return -1;

	if (le_key_k_type(le_key_version(le_key), le_key) >
	    cpu_key_k_type(cpu_key))
		return 1;
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	return 0;
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}

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inline int comp_short_le_keys(const struct reiserfs_key *key1,
			      const struct reiserfs_key *key2)
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{
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	__u32 *p_s_1_u32, *p_s_2_u32;
	int n_key_length = REISERFS_SHORT_KEY_LEN;

	p_s_1_u32 = (__u32 *) key1;
	p_s_2_u32 = (__u32 *) key2;
	for (; n_key_length--; ++p_s_1_u32, ++p_s_2_u32) {
		if (le32_to_cpu(*p_s_1_u32) < le32_to_cpu(*p_s_2_u32))
			return -1;
		if (le32_to_cpu(*p_s_1_u32) > le32_to_cpu(*p_s_2_u32))
			return 1;
	}
	return 0;
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}

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inline void le_key2cpu_key(struct cpu_key *to, const struct reiserfs_key *from)
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{
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	int version;
	to->on_disk_key.k_dir_id = le32_to_cpu(from->k_dir_id);
	to->on_disk_key.k_objectid = le32_to_cpu(from->k_objectid);

	// find out version of the key
	version = le_key_version(from);
	to->version = version;
	to->on_disk_key.k_offset = le_key_k_offset(version, from);
	to->on_disk_key.k_type = le_key_k_type(version, from);
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}

// this does not say which one is bigger, it only returns 1 if keys
// are not equal, 0 otherwise
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inline int comp_le_keys(const struct reiserfs_key *k1,
			const struct reiserfs_key *k2)
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{
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	return memcmp(k1, k2, sizeof(struct reiserfs_key));
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}

/**************************************************************************
 *  Binary search toolkit function                                        *
 *  Search for an item in the array by the item key                       *
 *  Returns:    1 if found,  0 if not found;                              *
 *        *p_n_pos = number of the searched element if found, else the    *
 *        number of the first element that is larger than p_v_key.        *
 **************************************************************************/
/* For those not familiar with binary search: n_lbound is the leftmost item that it
 could be, n_rbound the rightmost item that it could be.  We examine the item
 halfway between n_lbound and n_rbound, and that tells us either that we can increase
 n_lbound, or decrease n_rbound, or that we have found it, or if n_lbound <= n_rbound that
 there are no possible items, and we have not found it. With each examination we
 cut the number of possible items it could be by one more than half rounded down,
 or we find it. */
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static inline int bin_search(const void *p_v_key,	/* Key to search for.                   */
			     const void *p_v_base,	/* First item in the array.             */
			     int p_n_num,	/* Number of items in the array.        */
			     int p_n_width,	/* Item size in the array.
						   searched. Lest the reader be
						   confused, note that this is crafted
						   as a general function, and when it
						   is applied specifically to the array
						   of item headers in a node, p_n_width
						   is actually the item header size not
						   the item size.                      */
			     int *p_n_pos	/* Number of the searched for element. */
    )
{
	int n_rbound, n_lbound, n_j;

	for (n_j = ((n_rbound = p_n_num - 1) + (n_lbound = 0)) / 2;
	     n_lbound <= n_rbound; n_j = (n_rbound + n_lbound) / 2)
		switch (comp_keys
			((struct reiserfs_key *)((char *)p_v_base +
						 n_j * p_n_width),
			 (struct cpu_key *)p_v_key)) {
		case -1:
			n_lbound = n_j + 1;
			continue;
		case 1:
			n_rbound = n_j - 1;
			continue;
		case 0:
			*p_n_pos = n_j;
			return ITEM_FOUND;	/* Key found in the array.  */
		}

	/* bin_search did not find given key, it returns position of key,
	   that is minimal and greater than the given one. */
	*p_n_pos = n_lbound;
	return ITEM_NOT_FOUND;
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}

#ifdef CONFIG_REISERFS_CHECK
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extern struct tree_balance *cur_tb;
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#endif

/* Minimal possible key. It is never in the tree. */
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const struct reiserfs_key MIN_KEY = { 0, 0, {{0, 0},} };
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/* Maximal possible key. It is never in the tree. */
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static const struct reiserfs_key MAX_KEY = {
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	__constant_cpu_to_le32(0xffffffff),
	__constant_cpu_to_le32(0xffffffff),
	{{__constant_cpu_to_le32(0xffffffff),
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	  __constant_cpu_to_le32(0xffffffff)},}
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};
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/* Get delimiting key of the buffer by looking for it in the buffers in the path, starting from the bottom
   of the path, and going upwards.  We must check the path's validity at each step.  If the key is not in
   the path, there is no delimiting key in the tree (buffer is first or last buffer in tree), and in this
   case we return a special key, either MIN_KEY or MAX_KEY. */
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static inline const struct reiserfs_key *get_lkey(const struct treepath
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						  *p_s_chk_path,
						  const struct super_block
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						  *sb)
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{
	int n_position, n_path_offset = p_s_chk_path->path_length;
	struct buffer_head *p_s_parent;

	RFALSE(n_path_offset < FIRST_PATH_ELEMENT_OFFSET,
	       "PAP-5010: invalid offset in the path");

	/* While not higher in path than first element. */
	while (n_path_offset-- > FIRST_PATH_ELEMENT_OFFSET) {

		RFALSE(!buffer_uptodate
		       (PATH_OFFSET_PBUFFER(p_s_chk_path, n_path_offset)),
		       "PAP-5020: parent is not uptodate");

		/* Parent at the path is not in the tree now. */
		if (!B_IS_IN_TREE
		    (p_s_parent =
		     PATH_OFFSET_PBUFFER(p_s_chk_path, n_path_offset)))
			return &MAX_KEY;
		/* Check whether position in the parent is correct. */
		if ((n_position =
		     PATH_OFFSET_POSITION(p_s_chk_path,
					  n_path_offset)) >
		    B_NR_ITEMS(p_s_parent))
			return &MAX_KEY;
		/* Check whether parent at the path really points to the child. */
		if (B_N_CHILD_NUM(p_s_parent, n_position) !=
		    PATH_OFFSET_PBUFFER(p_s_chk_path,
					n_path_offset + 1)->b_blocknr)
			return &MAX_KEY;
		/* Return delimiting key if position in the parent is not equal to zero. */
		if (n_position)
			return B_N_PDELIM_KEY(p_s_parent, n_position - 1);
	}
	/* Return MIN_KEY if we are in the root of the buffer tree. */
	if (PATH_OFFSET_PBUFFER(p_s_chk_path, FIRST_PATH_ELEMENT_OFFSET)->
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	    b_blocknr == SB_ROOT_BLOCK(sb))
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		return &MIN_KEY;
	return &MAX_KEY;
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}

/* Get delimiting key of the buffer at the path and its right neighbor. */
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inline const struct reiserfs_key *get_rkey(const struct treepath *p_s_chk_path,
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					   const struct super_block *sb)
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{
	int n_position, n_path_offset = p_s_chk_path->path_length;
	struct buffer_head *p_s_parent;

	RFALSE(n_path_offset < FIRST_PATH_ELEMENT_OFFSET,
	       "PAP-5030: invalid offset in the path");

	while (n_path_offset-- > FIRST_PATH_ELEMENT_OFFSET) {

		RFALSE(!buffer_uptodate
		       (PATH_OFFSET_PBUFFER(p_s_chk_path, n_path_offset)),
		       "PAP-5040: parent is not uptodate");

		/* Parent at the path is not in the tree now. */
		if (!B_IS_IN_TREE
		    (p_s_parent =
		     PATH_OFFSET_PBUFFER(p_s_chk_path, n_path_offset)))
			return &MIN_KEY;
		/* Check whether position in the parent is correct. */
		if ((n_position =
		     PATH_OFFSET_POSITION(p_s_chk_path,
					  n_path_offset)) >
		    B_NR_ITEMS(p_s_parent))
			return &MIN_KEY;
		/* Check whether parent at the path really points to the child. */
		if (B_N_CHILD_NUM(p_s_parent, n_position) !=
		    PATH_OFFSET_PBUFFER(p_s_chk_path,
					n_path_offset + 1)->b_blocknr)
			return &MIN_KEY;
		/* Return delimiting key if position in the parent is not the last one. */
		if (n_position != B_NR_ITEMS(p_s_parent))
			return B_N_PDELIM_KEY(p_s_parent, n_position);
	}
	/* Return MAX_KEY if we are in the root of the buffer tree. */
	if (PATH_OFFSET_PBUFFER(p_s_chk_path, FIRST_PATH_ELEMENT_OFFSET)->
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	    b_blocknr == SB_ROOT_BLOCK(sb))
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		return &MAX_KEY;
	return &MIN_KEY;
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}

/* Check whether a key is contained in the tree rooted from a buffer at a path. */
/* This works by looking at the left and right delimiting keys for the buffer in the last path_element in
   the path.  These delimiting keys are stored at least one level above that buffer in the tree. If the
   buffer is the first or last node in the tree order then one of the delimiting keys may be absent, and in
   this case get_lkey and get_rkey return a special key which is MIN_KEY or MAX_KEY. */
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static inline int key_in_buffer(struct treepath *p_s_chk_path,	/* Path which should be checked.  */
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				const struct cpu_key *p_s_key,	/* Key which should be checked.   */
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				struct super_block *sb	/* Super block pointer.	   */
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    )
{
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	RFALSE(!p_s_key || p_s_chk_path->path_length < FIRST_PATH_ELEMENT_OFFSET
	       || p_s_chk_path->path_length > MAX_HEIGHT,
	       "PAP-5050: pointer to the key(%p) is NULL or invalid path length(%d)",
	       p_s_key, p_s_chk_path->path_length);
	RFALSE(!PATH_PLAST_BUFFER(p_s_chk_path)->b_bdev,
	       "PAP-5060: device must not be NODEV");

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	if (comp_keys(get_lkey(p_s_chk_path, sb), p_s_key) == 1)
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		/* left delimiting key is bigger, that the key we look for */
		return 0;
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	//  if ( comp_keys(p_s_key, get_rkey(p_s_chk_path, sb)) != -1 )
	if (comp_keys(get_rkey(p_s_chk_path, sb), p_s_key) != 1)
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		/* p_s_key must be less than right delimitiing key */
		return 0;
	return 1;
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}

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int reiserfs_check_path(struct treepath *p)
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{
	RFALSE(p->path_length != ILLEGAL_PATH_ELEMENT_OFFSET,
	       "path not properly relsed");
	return 0;
}
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/* Drop the reference to each buffer in a path and restore
 * dirty bits clean when preparing the buffer for the log.
 * This version should only be called from fix_nodes() */
void pathrelse_and_restore(struct super_block *sb,
			   struct treepath *p_s_search_path)
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{
	int n_path_offset = p_s_search_path->path_length;

	RFALSE(n_path_offset < ILLEGAL_PATH_ELEMENT_OFFSET,
	       "clm-4000: invalid path offset");

	while (n_path_offset > ILLEGAL_PATH_ELEMENT_OFFSET) {
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		struct buffer_head *bh;
		bh = PATH_OFFSET_PBUFFER(p_s_search_path, n_path_offset--);
		reiserfs_restore_prepared_buffer(sb, bh);
		brelse(bh);
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	}
	p_s_search_path->path_length = ILLEGAL_PATH_ELEMENT_OFFSET;
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}

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/* Drop the reference to each buffer in a path */
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void pathrelse(struct treepath *p_s_search_path)
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{
	int n_path_offset = p_s_search_path->path_length;
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	RFALSE(n_path_offset < ILLEGAL_PATH_ELEMENT_OFFSET,
	       "PAP-5090: invalid path offset");
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	while (n_path_offset > ILLEGAL_PATH_ELEMENT_OFFSET)
		brelse(PATH_OFFSET_PBUFFER(p_s_search_path, n_path_offset--));
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	p_s_search_path->path_length = ILLEGAL_PATH_ELEMENT_OFFSET;
}
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static int is_leaf(char *buf, int blocksize, struct buffer_head *bh)
{
	struct block_head *blkh;
	struct item_head *ih;
	int used_space;
	int prev_location;
	int i;
	int nr;

	blkh = (struct block_head *)buf;
	if (blkh_level(blkh) != DISK_LEAF_NODE_LEVEL) {
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		reiserfs_warning(NULL, "reiserfs-5080",
				 "this should be caught earlier");
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		return 0;
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	}
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	nr = blkh_nr_item(blkh);
	if (nr < 1 || nr > ((blocksize - BLKH_SIZE) / (IH_SIZE + MIN_ITEM_LEN))) {
		/* item number is too big or too small */
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		reiserfs_warning(NULL, "reiserfs-5081",
				 "nr_item seems wrong: %z", bh);
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		return 0;
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	}
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	ih = (struct item_head *)(buf + BLKH_SIZE) + nr - 1;
	used_space = BLKH_SIZE + IH_SIZE * nr + (blocksize - ih_location(ih));
	if (used_space != blocksize - blkh_free_space(blkh)) {
		/* free space does not match to calculated amount of use space */
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		reiserfs_warning(NULL, "reiserfs-5082",
				 "free space seems wrong: %z", bh);
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		return 0;
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	}
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	// FIXME: it is_leaf will hit performance too much - we may have
	// return 1 here

	/* check tables of item heads */
	ih = (struct item_head *)(buf + BLKH_SIZE);
	prev_location = blocksize;
	for (i = 0; i < nr; i++, ih++) {
		if (le_ih_k_type(ih) == TYPE_ANY) {
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			reiserfs_warning(NULL, "reiserfs-5083",
					 "wrong item type for item %h",
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					 ih);
			return 0;
		}
		if (ih_location(ih) >= blocksize
		    || ih_location(ih) < IH_SIZE * nr) {
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			reiserfs_warning(NULL, "reiserfs-5084",
					 "item location seems wrong: %h",
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					 ih);
			return 0;
		}
		if (ih_item_len(ih) < 1
		    || ih_item_len(ih) > MAX_ITEM_LEN(blocksize)) {
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			reiserfs_warning(NULL, "reiserfs-5085",
					 "item length seems wrong: %h",
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					 ih);
			return 0;
		}
		if (prev_location - ih_location(ih) != ih_item_len(ih)) {
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			reiserfs_warning(NULL, "reiserfs-5086",
					 "item location seems wrong "
					 "(second one): %h", ih);
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			return 0;
		}
		prev_location = ih_location(ih);
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	}

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	// one may imagine much more checks
	return 1;
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}

/* returns 1 if buf looks like an internal node, 0 otherwise */
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static int is_internal(char *buf, int blocksize, struct buffer_head *bh)
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{
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	struct block_head *blkh;
	int nr;
	int used_space;

	blkh = (struct block_head *)buf;
	nr = blkh_level(blkh);
	if (nr <= DISK_LEAF_NODE_LEVEL || nr > MAX_HEIGHT) {
		/* this level is not possible for internal nodes */
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		reiserfs_warning(NULL, "reiserfs-5087",
				 "this should be caught earlier");
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		return 0;
	}
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	nr = blkh_nr_item(blkh);
	if (nr > (blocksize - BLKH_SIZE - DC_SIZE) / (KEY_SIZE + DC_SIZE)) {
		/* for internal which is not root we might check min number of keys */
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		reiserfs_warning(NULL, "reiserfs-5088",
				 "number of key seems wrong: %z", bh);
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		return 0;
	}
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	used_space = BLKH_SIZE + KEY_SIZE * nr + DC_SIZE * (nr + 1);
	if (used_space != blocksize - blkh_free_space(blkh)) {
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		reiserfs_warning(NULL, "reiserfs-5089",
				 "free space seems wrong: %z", bh);
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		return 0;
	}
	// one may imagine much more checks
	return 1;
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}

// make sure that bh contains formatted node of reiserfs tree of
// 'level'-th level
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static int is_tree_node(struct buffer_head *bh, int level)
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{
511
	if (B_LEVEL(bh) != level) {
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		reiserfs_warning(NULL, "reiserfs-5090", "node level %d does "
				 "not match to the expected one %d",
514 515 516 517 518
				 B_LEVEL(bh), level);
		return 0;
	}
	if (level == DISK_LEAF_NODE_LEVEL)
		return is_leaf(bh->b_data, bh->b_size, bh);
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520
	return is_internal(bh->b_data, bh->b_size, bh);
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}

#define SEARCH_BY_KEY_READA 16

/* The function is NOT SCHEDULE-SAFE! */
526 527
static void search_by_key_reada(struct super_block *s,
				struct buffer_head **bh,
528
				b_blocknr_t *b, int num)
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{
530 531 532 533 534 535 536 537 538 539 540 541 542 543
	int i, j;

	for (i = 0; i < num; i++) {
		bh[i] = sb_getblk(s, b[i]);
	}
	for (j = 0; j < i; j++) {
		/*
		 * note, this needs attention if we are getting rid of the BKL
		 * you have to make sure the prepared bit isn't set on this buffer
		 */
		if (!buffer_uptodate(bh[j]))
			ll_rw_block(READA, 1, bh + j);
		brelse(bh[j]);
	}
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}

/**************************************************************************
 * Algorithm   SearchByKey                                                *
 *             look for item in the Disk S+Tree by its key                *
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 * Input:  sb   -  super block                                            *
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 *         p_s_key  - pointer to the key to search                        *
 * Output: ITEM_FOUND, ITEM_NOT_FOUND or IO_ERROR                         *
 *         p_s_search_path - path from the root to the needed leaf        *
 **************************************************************************/

/* This function fills up the path from the root to the leaf as it
   descends the tree looking for the key.  It uses reiserfs_bread to
   try to find buffers in the cache given their block number.  If it
   does not find them in the cache it reads them from disk.  For each
   node search_by_key finds using reiserfs_bread it then uses
   bin_search to look through that node.  bin_search will find the
   position of the block_number of the next node if it is looking
   through an internal node.  If it is looking through a leaf node
   bin_search will find the position of the item which has key either
   equal to given key, or which is the maximal key less than the given
   key.  search_by_key returns a path that must be checked for the
   correctness of the top of the path but need not be checked for the
   correctness of the bottom of the path */
/* The function is NOT SCHEDULE-SAFE! */
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int search_by_key(struct super_block *sb, const struct cpu_key *p_s_key,	/* Key to search. */
570
		  struct treepath *p_s_search_path,/* This structure was
571 572 573 574 575 576 577 578 579
						   allocated and initialized
						   by the calling
						   function. It is filled up
						   by this function.  */
		  int n_stop_level	/* How far down the tree to search. To
					   stop at leaf level - set to
					   DISK_LEAF_NODE_LEVEL */
    )
{
580
	b_blocknr_t n_block_number;
581
	int expected_level;
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	struct buffer_head *bh;
583 584 585 586 587
	struct path_element *p_s_last_element;
	int n_node_level, n_retval;
	int right_neighbor_of_leaf_node;
	int fs_gen;
	struct buffer_head *reada_bh[SEARCH_BY_KEY_READA];
588
	b_blocknr_t reada_blocks[SEARCH_BY_KEY_READA];
589
	int reada_count = 0;
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#ifdef CONFIG_REISERFS_CHECK
592
	int n_repeat_counter = 0;
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#endif

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	PROC_INFO_INC(sb, search_by_key);
596 597 598 599

	/* As we add each node to a path we increase its count.  This means that
	   we must be careful to release all nodes in a path before we either
	   discard the path struct or re-use the path struct, as we do here. */
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	pathrelse(p_s_search_path);
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603 604 605 606 607
	right_neighbor_of_leaf_node = 0;

	/* With each iteration of this loop we search through the items in the
	   current node, and calculate the next current node(next path element)
	   for the next iteration of this loop.. */
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	n_block_number = SB_ROOT_BLOCK(sb);
609 610
	expected_level = -1;
	while (1) {
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#ifdef CONFIG_REISERFS_CHECK
613
		if (!(++n_repeat_counter % 50000))
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			reiserfs_warning(sb, "PAP-5100",
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					 "%s: there were %d iterations of "
					 "while loop looking for key %K",
617 618
					 current->comm, n_repeat_counter,
					 p_s_key);
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#endif

621 622 623 624
		/* prep path to have another element added to it. */
		p_s_last_element =
		    PATH_OFFSET_PELEMENT(p_s_search_path,
					 ++p_s_search_path->path_length);
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		fs_gen = get_generation(sb);
626 627 628

		/* Read the next tree node, and set the last element in the path to
		   have a pointer to it. */
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		if ((bh = p_s_last_element->pe_buffer =
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		     sb_getblk(sb, n_block_number))) {
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			if (!buffer_uptodate(bh) && reada_count > 1)
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				search_by_key_reada(sb, reada_bh,
633
						    reada_blocks, reada_count);
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			ll_rw_block(READ, 1, &bh);
			wait_on_buffer(bh);
			if (!buffer_uptodate(bh))
637 638 639 640 641 642 643 644 645
				goto io_error;
		} else {
		      io_error:
			p_s_search_path->path_length--;
			pathrelse(p_s_search_path);
			return IO_ERROR;
		}
		reada_count = 0;
		if (expected_level == -1)
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			expected_level = SB_TREE_HEIGHT(sb);
647 648 649 650 651
		expected_level--;

		/* It is possible that schedule occurred. We must check whether the key
		   to search is still in the tree rooted from the current buffer. If
		   not then repeat search from the root. */
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		if (fs_changed(fs_gen, sb) &&
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		    (!B_IS_IN_TREE(bh) ||
		     B_LEVEL(bh) != expected_level ||
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		     !key_in_buffer(p_s_search_path, p_s_key, sb))) {
			PROC_INFO_INC(sb, search_by_key_fs_changed);
			PROC_INFO_INC(sb, search_by_key_restarted);
			PROC_INFO_INC(sb,
659
				      sbk_restarted[expected_level - 1]);
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			pathrelse(p_s_search_path);
661 662 663

			/* Get the root block number so that we can repeat the search
			   starting from the root. */
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			n_block_number = SB_ROOT_BLOCK(sb);
665 666 667 668 669 670
			expected_level = -1;
			right_neighbor_of_leaf_node = 0;

			/* repeat search from the root */
			continue;
		}
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672 673 674 675
		/* only check that the key is in the buffer if p_s_key is not
		   equal to the MAX_KEY. Latter case is only possible in
		   "finish_unfinished()" processing during mount. */
		RFALSE(comp_keys(&MAX_KEY, p_s_key) &&
J
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		       !key_in_buffer(p_s_search_path, p_s_key, sb),
677
		       "PAP-5130: key is not in the buffer");
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#ifdef CONFIG_REISERFS_CHECK
679 680
		if (cur_tb) {
			print_cur_tb("5140");
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681
			reiserfs_panic(sb, "PAP-5140",
J
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682
				       "schedule occurred in do_balance!");
683
		}
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684 685
#endif

686 687
		// make sure, that the node contents look like a node of
		// certain level
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		if (!is_tree_node(bh, expected_level)) {
J
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689
			reiserfs_error(sb, "vs-5150",
J
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690
				       "invalid format found in block %ld. "
J
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				       "Fsck?", bh->b_blocknr);
692 693 694
			pathrelse(p_s_search_path);
			return IO_ERROR;
		}
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696
		/* ok, we have acquired next formatted node in the tree */
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		n_node_level = B_LEVEL(bh);
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698

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		PROC_INFO_BH_STAT(sb, bh, n_node_level - 1);
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701 702 703
		RFALSE(n_node_level < n_stop_level,
		       "vs-5152: tree level (%d) is less than stop level (%d)",
		       n_node_level, n_stop_level);
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		n_retval = bin_search(p_s_key, B_N_PITEM_HEAD(bh, 0),
				      B_NR_ITEMS(bh),
707 708 709 710 711 712 713
				      (n_node_level ==
				       DISK_LEAF_NODE_LEVEL) ? IH_SIZE :
				      KEY_SIZE,
				      &(p_s_last_element->pe_position));
		if (n_node_level == n_stop_level) {
			return n_retval;
		}
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715 716 717 718 719 720 721 722 723 724 725 726 727
		/* we are not in the stop level */
		if (n_retval == ITEM_FOUND)
			/* item has been found, so we choose the pointer which is to the right of the found one */
			p_s_last_element->pe_position++;

		/* if item was not found we choose the position which is to
		   the left of the found item. This requires no code,
		   bin_search did it already. */

		/* So we have chosen a position in the current node which is
		   an internal node.  Now we calculate child block number by
		   position in the node. */
		n_block_number =
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728
		    B_N_CHILD_NUM(bh, p_s_last_element->pe_position);
729 730 731 732 733

		/* if we are going to read leaf nodes, try for read ahead as well */
		if ((p_s_search_path->reada & PATH_READA) &&
		    n_node_level == DISK_LEAF_NODE_LEVEL + 1) {
			int pos = p_s_last_element->pe_position;
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734
			int limit = B_NR_ITEMS(bh);
735 736 737 738 739 740 741 742
			struct reiserfs_key *le_key;

			if (p_s_search_path->reada & PATH_READA_BACK)
				limit = 0;
			while (reada_count < SEARCH_BY_KEY_READA) {
				if (pos == limit)
					break;
				reada_blocks[reada_count++] =
J
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743
				    B_N_CHILD_NUM(bh, pos);
744 745 746 747 748 749 750 751
				if (p_s_search_path->reada & PATH_READA_BACK)
					pos--;
				else
					pos++;

				/*
				 * check to make sure we're in the same object
				 */
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				le_key = B_N_PDELIM_KEY(bh, pos);
753 754 755 756 757
				if (le32_to_cpu(le_key->k_objectid) !=
				    p_s_key->on_disk_key.k_objectid) {
					break;
				}
			}
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758
		}
759
	}
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}

/* Form the path to an item and position in this item which contains
   file byte defined by p_s_key. If there is no such item
   corresponding to the key, we point the path to the item with
   maximal key less than p_s_key, and *p_n_pos_in_item is set to one
   past the last entry/byte in the item.  If searching for entry in a
   directory item, and it is not found, *p_n_pos_in_item is set to one
   entry more than the entry with maximal key which is less than the
   sought key.

   Note that if there is no entry in this same node which is one more,
   then we point to an imaginary entry.  for direct items, the
   position is in units of bytes, for indirect items the position is
   in units of blocknr entries, for directory items the position is in
   units of directory entries.  */

/* The function is NOT SCHEDULE-SAFE! */
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778
int search_for_position_by_key(struct super_block *sb,	/* Pointer to the super block.          */
779
			       const struct cpu_key *p_cpu_key,	/* Key to search (cpu variable)         */
780
			       struct treepath *p_s_search_path	/* Filled up by this function.          */
781 782 783 784 785 786 787 788 789 790
    )
{
	struct item_head *p_le_ih;	/* pointer to on-disk structure */
	int n_blk_size;
	loff_t item_offset, offset;
	struct reiserfs_dir_entry de;
	int retval;

	/* If searching for directory entry. */
	if (is_direntry_cpu_key(p_cpu_key))
J
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791
		return search_by_entry_key(sb, p_cpu_key, p_s_search_path,
792 793 794 795 796
					   &de);

	/* If not searching for directory entry. */

	/* If item is found. */
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797
	retval = search_item(sb, p_cpu_key, p_s_search_path);
798 799 800
	if (retval == IO_ERROR)
		return retval;
	if (retval == ITEM_FOUND) {
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801

802 803 804 805 806
		RFALSE(!ih_item_len
		       (B_N_PITEM_HEAD
			(PATH_PLAST_BUFFER(p_s_search_path),
			 PATH_LAST_POSITION(p_s_search_path))),
		       "PAP-5165: item length equals zero");
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807

808 809 810
		pos_in_item(p_s_search_path) = 0;
		return POSITION_FOUND;
	}
L
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811

812 813
	RFALSE(!PATH_LAST_POSITION(p_s_search_path),
	       "PAP-5170: position equals zero");
L
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814

815 816 817 818
	/* Item is not found. Set path to the previous item. */
	p_le_ih =
	    B_N_PITEM_HEAD(PATH_PLAST_BUFFER(p_s_search_path),
			   --PATH_LAST_POSITION(p_s_search_path));
J
Jeff Mahoney 已提交
819
	n_blk_size = sb->s_blocksize;
L
Linus Torvalds 已提交
820

821 822 823 824
	if (comp_short_keys(&(p_le_ih->ih_key), p_cpu_key)) {
		return FILE_NOT_FOUND;
	}
	// FIXME: quite ugly this far
L
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825

826 827
	item_offset = le_ih_k_offset(p_le_ih);
	offset = cpu_key_k_offset(p_cpu_key);
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828

829 830 831 832 833 834 835 836
	/* Needed byte is contained in the item pointed to by the path. */
	if (item_offset <= offset &&
	    item_offset + op_bytes_number(p_le_ih, n_blk_size) > offset) {
		pos_in_item(p_s_search_path) = offset - item_offset;
		if (is_indirect_le_ih(p_le_ih)) {
			pos_in_item(p_s_search_path) /= n_blk_size;
		}
		return POSITION_FOUND;
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837 838
	}

839 840 841 842 843 844 845 846 847 848
	/* Needed byte is not contained in the item pointed to by the
	   path. Set pos_in_item out of the item. */
	if (is_indirect_le_ih(p_le_ih))
		pos_in_item(p_s_search_path) =
		    ih_item_len(p_le_ih) / UNFM_P_SIZE;
	else
		pos_in_item(p_s_search_path) = ih_item_len(p_le_ih);

	return POSITION_NOT_FOUND;
}
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849 850

/* Compare given item and item pointed to by the path. */
851
int comp_items(const struct item_head *stored_ih, const struct treepath *p_s_path)
L
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852
{
J
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853
	struct buffer_head *bh = PATH_PLAST_BUFFER(p_s_path);
854
	struct item_head *ih;
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855

856
	/* Last buffer at the path is not in the tree. */
J
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857
	if (!B_IS_IN_TREE(bh))
858
		return 1;
L
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859

860
	/* Last path position is invalid. */
J
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861
	if (PATH_LAST_POSITION(p_s_path) >= B_NR_ITEMS(bh))
862
		return 1;
L
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863

864 865 866
	/* we need only to know, whether it is the same item */
	ih = get_ih(p_s_path);
	return memcmp(stored_ih, ih, IH_SIZE);
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867 868 869 870 871 872 873 874 875 876 877
}

/* unformatted nodes are not logged anymore, ever.  This is safe
** now
*/
#define held_by_others(bh) (atomic_read(&(bh)->b_count) > 1)

// block can not be forgotten as it is in I/O or held by someone
#define block_in_use(bh) (buffer_locked(bh) || (held_by_others(bh)))

// prepare for delete or cut of direct item
878
static inline int prepare_for_direct_item(struct treepath *path,
879 880 881
					  struct item_head *le_ih,
					  struct inode *inode,
					  loff_t new_file_length, int *cut_size)
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882
{
883 884 885 886 887 888 889 890 891
	loff_t round_len;

	if (new_file_length == max_reiserfs_offset(inode)) {
		/* item has to be deleted */
		*cut_size = -(IH_SIZE + ih_item_len(le_ih));
		return M_DELETE;
	}
	// new file gets truncated
	if (get_inode_item_key_version(inode) == KEY_FORMAT_3_6) {
892
		//
893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910
		round_len = ROUND_UP(new_file_length);
		/* this was n_new_file_length < le_ih ... */
		if (round_len < le_ih_k_offset(le_ih)) {
			*cut_size = -(IH_SIZE + ih_item_len(le_ih));
			return M_DELETE;	/* Delete this item. */
		}
		/* Calculate first position and size for cutting from item. */
		pos_in_item(path) = round_len - (le_ih_k_offset(le_ih) - 1);
		*cut_size = -(ih_item_len(le_ih) - pos_in_item(path));

		return M_CUT;	/* Cut from this item. */
	}

	// old file: items may have any length

	if (new_file_length < le_ih_k_offset(le_ih)) {
		*cut_size = -(IH_SIZE + ih_item_len(le_ih));
		return M_DELETE;	/* Delete this item. */
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	}
	/* Calculate first position and size for cutting from item. */
913 914 915 916
	*cut_size = -(ih_item_len(le_ih) -
		      (pos_in_item(path) =
		       new_file_length + 1 - le_ih_k_offset(le_ih)));
	return M_CUT;		/* Cut from this item. */
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917 918
}

919
static inline int prepare_for_direntry_item(struct treepath *path,
920 921 922 923
					    struct item_head *le_ih,
					    struct inode *inode,
					    loff_t new_file_length,
					    int *cut_size)
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924
{
925 926 927 928 929 930 931
	if (le_ih_k_offset(le_ih) == DOT_OFFSET &&
	    new_file_length == max_reiserfs_offset(inode)) {
		RFALSE(ih_entry_count(le_ih) != 2,
		       "PAP-5220: incorrect empty directory item (%h)", le_ih);
		*cut_size = -(IH_SIZE + ih_item_len(le_ih));
		return M_DELETE;	/* Delete the directory item containing "." and ".." entry. */
	}
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932

933 934 935 936 937 938 939 940 941 942 943 944 945
	if (ih_entry_count(le_ih) == 1) {
		/* Delete the directory item such as there is one record only
		   in this item */
		*cut_size = -(IH_SIZE + ih_item_len(le_ih));
		return M_DELETE;
	}

	/* Cut one record from the directory item. */
	*cut_size =
	    -(DEH_SIZE +
	      entry_length(get_last_bh(path), le_ih, pos_in_item(path)));
	return M_CUT;
}
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946

947 948
#define JOURNAL_FOR_FREE_BLOCK_AND_UPDATE_SD (2 * JOURNAL_PER_BALANCE_CNT + 1)

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949 950 951 952 953
/*  If the path points to a directory or direct item, calculate mode and the size cut, for balance.
    If the path points to an indirect item, remove some number of its unformatted nodes.
    In case of file truncate calculate whether this item must be deleted/truncated or last
    unformatted node of this item will be converted to a direct item.
    This function returns a determination of what balance mode the calling function should employ. */
954
static char prepare_for_delete_or_cut(struct reiserfs_transaction_handle *th, struct inode *inode, struct treepath *p_s_path, const struct cpu_key *p_s_item_key, int *p_n_removed,	/* Number of unformatted nodes which were removed
955 956 957 958
																						   from end of the file. */
				      int *p_n_cut_size, unsigned long long n_new_file_length	/* MAX_KEY_OFFSET in case of delete. */
    )
{
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959
	struct super_block *sb = inode->i_sb;
960
	struct item_head *p_le_ih = PATH_PITEM_HEAD(p_s_path);
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961
	struct buffer_head *bh = PATH_PLAST_BUFFER(p_s_path);
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962

963
	BUG_ON(!th->t_trans_id);
L
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965 966
	/* Stat_data item. */
	if (is_statdata_le_ih(p_le_ih)) {
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968 969
		RFALSE(n_new_file_length != max_reiserfs_offset(inode),
		       "PAP-5210: mode must be M_DELETE");
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971 972 973
		*p_n_cut_size = -(IH_SIZE + ih_item_len(p_le_ih));
		return M_DELETE;
	}
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975 976 977 978 979
	/* Directory item. */
	if (is_direntry_le_ih(p_le_ih))
		return prepare_for_direntry_item(p_s_path, p_le_ih, inode,
						 n_new_file_length,
						 p_n_cut_size);
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981 982 983 984 985 986 987
	/* Direct item. */
	if (is_direct_le_ih(p_le_ih))
		return prepare_for_direct_item(p_s_path, p_le_ih, inode,
					       n_new_file_length, p_n_cut_size);

	/* Case of an indirect item. */
	{
J
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	    int blk_size = sb->s_blocksize;
989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004
	    struct item_head s_ih;
	    int need_re_search;
	    int delete = 0;
	    int result = M_CUT;
	    int pos = 0;

	    if ( n_new_file_length == max_reiserfs_offset (inode) ) {
		/* prepare_for_delete_or_cut() is called by
		 * reiserfs_delete_item() */
		n_new_file_length = 0;
		delete = 1;
	    }

	    do {
		need_re_search = 0;
		*p_n_cut_size = 0;
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		bh = PATH_PLAST_BUFFER(p_s_path);
1006 1007
		copy_item_head(&s_ih, PATH_PITEM_HEAD(p_s_path));
		pos = I_UNFM_NUM(&s_ih);
1008

1009
		while (le_ih_k_offset (&s_ih) + (pos - 1) * blk_size > n_new_file_length) {
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1010 1011
		    __le32 *unfm;
		    __u32 block;
1012

1013 1014 1015 1016 1017 1018 1019
		    /* Each unformatted block deletion may involve one additional
		     * bitmap block into the transaction, thereby the initial
		     * journal space reservation might not be enough. */
		    if (!delete && (*p_n_cut_size) != 0 &&
			reiserfs_transaction_free_space(th) < JOURNAL_FOR_FREE_BLOCK_AND_UPDATE_SD) {
			break;
		    }
1020

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1021
		    unfm = (__le32 *)B_I_PITEM(bh, &s_ih) + pos - 1;
1022
		    block = get_block_num(unfm, 0);
1023

1024
		    if (block != 0) {
J
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1025
			reiserfs_prepare_for_journal(sb, bh, 1);
1026
			put_block_num(unfm, 0, 0);
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1027
			journal_mark_dirty(th, sb, bh);
1028 1029
			reiserfs_free_block(th, inode, block, 1);
		    }
1030

1031
		    cond_resched();
1032

1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050
		    if (item_moved (&s_ih, p_s_path))  {
			need_re_search = 1;
			break;
		    }

		    pos --;
		    (*p_n_removed) ++;
		    (*p_n_cut_size) -= UNFM_P_SIZE;

		    if (pos == 0) {
			(*p_n_cut_size) -= IH_SIZE;
			result = M_DELETE;
			break;
		    }
		}
		/* a trick.  If the buffer has been logged, this will do nothing.  If
		** we've broken the loop without logging it, it will restore the
		** buffer */
J
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1051
		reiserfs_restore_prepared_buffer(sb, bh);
1052
	    } while (need_re_search &&
J
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1053
		     search_for_position_by_key(sb, p_s_item_key, p_s_path) == POSITION_FOUND);
1054 1055 1056 1057 1058 1059 1060 1061
	    pos_in_item(p_s_path) = pos * UNFM_P_SIZE;

	    if (*p_n_cut_size == 0) {
		/* Nothing were cut. maybe convert last unformatted node to the
		 * direct item? */
		result = M_CONVERT;
	    }
	    return result;
1062
	}
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}

/* Calculate number of bytes which will be deleted or cut during balance */
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static int calc_deleted_bytes_number(struct tree_balance *tb, char c_mode)
1067 1068
{
	int n_del_size;
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1069
	struct item_head *p_le_ih = PATH_PITEM_HEAD(tb->tb_path);
1070 1071 1072 1073 1074 1075

	if (is_statdata_le_ih(p_le_ih))
		return 0;

	n_del_size =
	    (c_mode ==
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	     M_DELETE) ? ih_item_len(p_le_ih) : -tb->insert_size[0];
1077 1078 1079 1080 1081 1082 1083
	if (is_direntry_le_ih(p_le_ih)) {
		// return EMPTY_DIR_SIZE; /* We delete emty directoris only. */
		// we can't use EMPTY_DIR_SIZE, as old format dirs have a different
		// empty size.  ick. FIXME, is this right?
		//
		return n_del_size;
	}
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1085
	if (is_indirect_le_ih(p_le_ih))
J
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1086 1087
		n_del_size = (n_del_size / UNFM_P_SIZE) *
				(PATH_PLAST_BUFFER(tb->tb_path)->b_size);
1088
	return n_del_size;
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1089 1090
}

1091
static void init_tb_struct(struct reiserfs_transaction_handle *th,
J
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1092
			   struct tree_balance *tb,
J
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1093
			   struct super_block *sb,
1094
			   struct treepath *p_s_path, int n_size)
1095
{
L
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1096

1097
	BUG_ON(!th->t_trans_id);
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1098

J
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	memset(tb, '\0', sizeof(struct tree_balance));
	tb->transaction_handle = th;
	tb->tb_sb = sb;
	tb->tb_path = p_s_path;
1103 1104
	PATH_OFFSET_PBUFFER(p_s_path, ILLEGAL_PATH_ELEMENT_OFFSET) = NULL;
	PATH_OFFSET_POSITION(p_s_path, ILLEGAL_PATH_ELEMENT_OFFSET) = 0;
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1105
	tb->insert_size[0] = n_size;
1106
}
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1108
void padd_item(char *item, int total_length, int length)
L
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1109
{
1110
	int i;
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1112 1113
	for (i = total_length; i > length;)
		item[--i] = 0;
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1114 1115 1116 1117 1118
}

#ifdef REISERQUOTA_DEBUG
char key2type(struct reiserfs_key *ih)
{
1119 1120 1121 1122 1123 1124 1125 1126 1127
	if (is_direntry_le_key(2, ih))
		return 'd';
	if (is_direct_le_key(2, ih))
		return 'D';
	if (is_indirect_le_key(2, ih))
		return 'i';
	if (is_statdata_le_key(2, ih))
		return 's';
	return 'u';
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}

char head2type(struct item_head *ih)
{
1132 1133 1134 1135 1136 1137 1138 1139 1140
	if (is_direntry_le_ih(ih))
		return 'd';
	if (is_direct_le_ih(ih))
		return 'D';
	if (is_indirect_le_ih(ih))
		return 'i';
	if (is_statdata_le_ih(ih))
		return 's';
	return 'u';
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1141 1142 1143 1144
}
#endif

/* Delete object item. */
1145
int reiserfs_delete_item(struct reiserfs_transaction_handle *th, struct treepath *p_s_path,	/* Path to the deleted item. */
1146
			 const struct cpu_key *p_s_item_key,	/* Key to search for the deleted item.  */
1147 1148
			 struct inode *inode,	/* inode is here just to update
						 * i_blocks and quotas */
1149 1150
			 struct buffer_head *p_s_un_bh)
{				/* NULL or unformatted node pointer.    */
1151
	struct super_block *sb = inode->i_sb;
1152 1153 1154 1155 1156
	struct tree_balance s_del_balance;
	struct item_head s_ih;
	struct item_head *q_ih;
	int quota_cut_bytes;
	int n_ret_value, n_del_size, n_removed;
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#ifdef CONFIG_REISERFS_CHECK
1159 1160
	char c_mode;
	int n_iter = 0;
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1161 1162
#endif

1163
	BUG_ON(!th->t_trans_id);
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	init_tb_struct(th, &s_del_balance, sb, p_s_path,
1166
		       0 /*size is unknown */ );
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1168 1169
	while (1) {
		n_removed = 0;
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1170 1171

#ifdef CONFIG_REISERFS_CHECK
1172 1173
		n_iter++;
		c_mode =
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1174
#endif
1175
		    prepare_for_delete_or_cut(th, inode, p_s_path,
1176 1177
					      p_s_item_key, &n_removed,
					      &n_del_size,
1178
					      max_reiserfs_offset(inode));
1179 1180 1181 1182 1183 1184 1185 1186 1187 1188

		RFALSE(c_mode != M_DELETE, "PAP-5320: mode must be M_DELETE");

		copy_item_head(&s_ih, PATH_PITEM_HEAD(p_s_path));
		s_del_balance.insert_size[0] = n_del_size;

		n_ret_value = fix_nodes(M_DELETE, &s_del_balance, NULL, NULL);
		if (n_ret_value != REPEAT_SEARCH)
			break;

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1189
		PROC_INFO_INC(sb, delete_item_restarted);
1190 1191 1192

		// file system changed, repeat search
		n_ret_value =
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1193
		    search_for_position_by_key(sb, p_s_item_key, p_s_path);
1194 1195 1196
		if (n_ret_value == IO_ERROR)
			break;
		if (n_ret_value == FILE_NOT_FOUND) {
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1197
			reiserfs_warning(sb, "vs-5340",
1198 1199 1200 1201 1202
					 "no items of the file %K found",
					 p_s_item_key);
			break;
		}
	}			/* while (1) */
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1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218
	if (n_ret_value != CARRY_ON) {
		unfix_nodes(&s_del_balance);
		return 0;
	}
	// reiserfs_delete_item returns item length when success
	n_ret_value = calc_deleted_bytes_number(&s_del_balance, M_DELETE);
	q_ih = get_ih(p_s_path);
	quota_cut_bytes = ih_item_len(q_ih);

	/* hack so the quota code doesn't have to guess if the file
	 ** has a tail.  On tail insert, we allocate quota for 1 unformatted node.
	 ** We test the offset because the tail might have been
	 ** split into multiple items, and we only want to decrement for
	 ** the unfm node once
	 */
1219
	if (!S_ISLNK(inode->i_mode) && is_direct_le_ih(q_ih)) {
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1220 1221
		if ((le_ih_k_offset(q_ih) & (sb->s_blocksize - 1)) == 1) {
			quota_cut_bytes = sb->s_blocksize + UNFM_P_SIZE;
1222 1223 1224
		} else {
			quota_cut_bytes = 0;
		}
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1225 1226
	}

1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256
	if (p_s_un_bh) {
		int off;
		char *data;

		/* We are in direct2indirect conversion, so move tail contents
		   to the unformatted node */
		/* note, we do the copy before preparing the buffer because we
		 ** don't care about the contents of the unformatted node yet.
		 ** the only thing we really care about is the direct item's data
		 ** is in the unformatted node.
		 **
		 ** Otherwise, we would have to call reiserfs_prepare_for_journal on
		 ** the unformatted node, which might schedule, meaning we'd have to
		 ** loop all the way back up to the start of the while loop.
		 **
		 ** The unformatted node must be dirtied later on.  We can't be
		 ** sure here if the entire tail has been deleted yet.
		 **
		 ** p_s_un_bh is from the page cache (all unformatted nodes are
		 ** from the page cache) and might be a highmem page.  So, we
		 ** can't use p_s_un_bh->b_data.
		 ** -clm
		 */

		data = kmap_atomic(p_s_un_bh->b_page, KM_USER0);
		off = ((le_ih_k_offset(&s_ih) - 1) & (PAGE_CACHE_SIZE - 1));
		memcpy(data + off,
		       B_I_PITEM(PATH_PLAST_BUFFER(p_s_path), &s_ih),
		       n_ret_value);
		kunmap_atomic(data, KM_USER0);
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	}
1258 1259
	/* Perform balancing after all resources have been collected at once. */
	do_balance(&s_del_balance, NULL, NULL, M_DELETE);
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#ifdef REISERQUOTA_DEBUG
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	reiserfs_debug(sb, REISERFS_DEBUG_CODE,
1263
		       "reiserquota delete_item(): freeing %u, id=%u type=%c",
1264
		       quota_cut_bytes, inode->i_uid, head2type(&s_ih));
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1265
#endif
1266
	DQUOT_FREE_SPACE_NODIRTY(inode, quota_cut_bytes);
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1268 1269
	/* Return deleted body length */
	return n_ret_value;
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1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288
}

/* Summary Of Mechanisms For Handling Collisions Between Processes:

 deletion of the body of the object is performed by iput(), with the
 result that if multiple processes are operating on a file, the
 deletion of the body of the file is deferred until the last process
 that has an open inode performs its iput().

 writes and truncates are protected from collisions by use of
 semaphores.

 creates, linking, and mknod are protected from collisions with other
 processes by making the reiserfs_add_entry() the last step in the
 creation, and then rolling back all changes if there was a collision.
 - Hans
*/

/* this deletes item which never gets split */
1289 1290
void reiserfs_delete_solid_item(struct reiserfs_transaction_handle *th,
				struct inode *inode, struct reiserfs_key *key)
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{
1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306
	struct tree_balance tb;
	INITIALIZE_PATH(path);
	int item_len = 0;
	int tb_init = 0;
	struct cpu_key cpu_key;
	int retval;
	int quota_cut_bytes = 0;

	BUG_ON(!th->t_trans_id);

	le_key2cpu_key(&cpu_key, key);

	while (1) {
		retval = search_item(th->t_super, &cpu_key, &path);
		if (retval == IO_ERROR) {
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1307 1308 1309
			reiserfs_error(th->t_super, "vs-5350",
				       "i/o failure occurred trying "
				       "to delete %K", &cpu_key);
1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322
			break;
		}
		if (retval != ITEM_FOUND) {
			pathrelse(&path);
			// No need for a warning, if there is just no free space to insert '..' item into the newly-created subdir
			if (!
			    ((unsigned long long)
			     GET_HASH_VALUE(le_key_k_offset
					    (le_key_version(key), key)) == 0
			     && (unsigned long long)
			     GET_GENERATION_NUMBER(le_key_k_offset
						   (le_key_version(key),
						    key)) == 1))
J
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1323 1324
				reiserfs_warning(th->t_super, "vs-5355",
						 "%k not found", key);
1325 1326 1327 1328 1329 1330 1331 1332 1333
			break;
		}
		if (!tb_init) {
			tb_init = 1;
			item_len = ih_item_len(PATH_PITEM_HEAD(&path));
			init_tb_struct(th, &tb, th->t_super, &path,
				       -(IH_SIZE + item_len));
		}
		quota_cut_bytes = ih_item_len(PATH_PITEM_HEAD(&path));
L
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1335 1336 1337 1338 1339
		retval = fix_nodes(M_DELETE, &tb, NULL, NULL);
		if (retval == REPEAT_SEARCH) {
			PROC_INFO_INC(th->t_super, delete_solid_item_restarted);
			continue;
		}
L
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1340

1341 1342 1343
		if (retval == CARRY_ON) {
			do_balance(&tb, NULL, NULL, M_DELETE);
			if (inode) {	/* Should we count quota for item? (we don't count quotas for save-links) */
L
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1344
#ifdef REISERQUOTA_DEBUG
1345 1346 1347 1348
				reiserfs_debug(th->t_super, REISERFS_DEBUG_CODE,
					       "reiserquota delete_solid_item(): freeing %u id=%u type=%c",
					       quota_cut_bytes, inode->i_uid,
					       key2type(key));
L
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1349
#endif
1350 1351 1352 1353 1354 1355
				DQUOT_FREE_SPACE_NODIRTY(inode,
							 quota_cut_bytes);
			}
			break;
		}
		// IO_ERROR, NO_DISK_SPACE, etc
J
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1356
		reiserfs_warning(th->t_super, "vs-5360",
1357 1358 1359 1360
				 "could not delete %K due to fix_nodes failure",
				 &cpu_key);
		unfix_nodes(&tb);
		break;
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1361 1362
	}

1363
	reiserfs_check_path(&path);
L
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1364 1365
}

1366 1367
int reiserfs_delete_object(struct reiserfs_transaction_handle *th,
			   struct inode *inode)
L
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1368
{
1369 1370 1371 1372 1373 1374 1375 1376 1377 1378
	int err;
	inode->i_size = 0;
	BUG_ON(!th->t_trans_id);

	/* for directory this deletes item containing "." and ".." */
	err =
	    reiserfs_do_truncate(th, inode, NULL, 0 /*no timestamp updates */ );
	if (err)
		return err;

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1379
#if defined( USE_INODE_GENERATION_COUNTER )
1380 1381 1382 1383 1384
	if (!old_format_only(th->t_super)) {
		__le32 *inode_generation;

		inode_generation =
		    &REISERFS_SB(th->t_super)->s_rs->s_inode_generation;
1385
		le32_add_cpu(inode_generation, 1);
1386
	}
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/* USE_INODE_GENERATION_COUNTER */
#endif
1389
	reiserfs_delete_solid_item(th, inode, INODE_PKEY(inode));
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1391
	return err;
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1392 1393
}

1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422
static void unmap_buffers(struct page *page, loff_t pos)
{
	struct buffer_head *bh;
	struct buffer_head *head;
	struct buffer_head *next;
	unsigned long tail_index;
	unsigned long cur_index;

	if (page) {
		if (page_has_buffers(page)) {
			tail_index = pos & (PAGE_CACHE_SIZE - 1);
			cur_index = 0;
			head = page_buffers(page);
			bh = head;
			do {
				next = bh->b_this_page;

				/* we want to unmap the buffers that contain the tail, and
				 ** all the buffers after it (since the tail must be at the
				 ** end of the file).  We don't want to unmap file data
				 ** before the tail, since it might be dirty and waiting to
				 ** reach disk
				 */
				cur_index += bh->b_size;
				if (cur_index > tail_index) {
					reiserfs_unmap_buffer(bh);
				}
				bh = next;
			} while (bh != head);
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1423 1424 1425 1426
		}
	}
}

1427
static int maybe_indirect_to_direct(struct reiserfs_transaction_handle *th,
1428
				    struct inode *inode,
1429
				    struct page *page,
1430
				    struct treepath *p_s_path,
1431 1432 1433
				    const struct cpu_key *p_s_item_key,
				    loff_t n_new_file_size, char *p_c_mode)
{
1434
	struct super_block *sb = inode->i_sb;
J
Jeff Mahoney 已提交
1435
	int n_block_size = sb->s_blocksize;
1436 1437
	int cut_bytes;
	BUG_ON(!th->t_trans_id);
1438
	BUG_ON(n_new_file_size != inode->i_size);
L
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1440 1441 1442 1443
	/* the page being sent in could be NULL if there was an i/o error
	 ** reading in the last block.  The user will hit problems trying to
	 ** read the file, but for now we just skip the indirect2direct
	 */
1444 1445 1446
	if (atomic_read(&inode->i_count) > 1 ||
	    !tail_has_to_be_packed(inode) ||
	    !page || (REISERFS_I(inode)->i_flags & i_nopack_mask)) {
1447
		/* leave tail in an unformatted node */
1448 1449 1450 1451 1452 1453 1454
		*p_c_mode = M_SKIP_BALANCING;
		cut_bytes =
		    n_block_size - (n_new_file_size & (n_block_size - 1));
		pathrelse(p_s_path);
		return cut_bytes;
	}
	/* Permorm the conversion to a direct_item. */
1455 1456 1457
	/* return indirect_to_direct(inode, p_s_path, p_s_item_key,
				  n_new_file_size, p_c_mode); */
	return indirect2direct(th, inode, page, p_s_path, p_s_item_key,
1458 1459
			       n_new_file_size, p_c_mode);
}
L
Linus Torvalds 已提交
1460 1461 1462 1463 1464

/* we did indirect_to_direct conversion. And we have inserted direct
   item successesfully, but there were no disk space to cut unfm
   pointer being converted. Therefore we have to delete inserted
   direct item(s) */
1465
static void indirect_to_direct_roll_back(struct reiserfs_transaction_handle *th,
1466
					 struct inode *inode, struct treepath *path)
L
Linus Torvalds 已提交
1467
{
1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481
	struct cpu_key tail_key;
	int tail_len;
	int removed;
	BUG_ON(!th->t_trans_id);

	make_cpu_key(&tail_key, inode, inode->i_size + 1, TYPE_DIRECT, 4);	// !!!!
	tail_key.key_length = 4;

	tail_len =
	    (cpu_key_k_offset(&tail_key) & (inode->i_sb->s_blocksize - 1)) - 1;
	while (tail_len) {
		/* look for the last byte of the tail */
		if (search_for_position_by_key(inode->i_sb, &tail_key, path) ==
		    POSITION_NOT_FOUND)
J
Jeff Mahoney 已提交
1482 1483
			reiserfs_panic(inode->i_sb, "vs-5615",
				       "found invalid item");
1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499
		RFALSE(path->pos_in_item !=
		       ih_item_len(PATH_PITEM_HEAD(path)) - 1,
		       "vs-5616: appended bytes found");
		PATH_LAST_POSITION(path)--;

		removed =
		    reiserfs_delete_item(th, path, &tail_key, inode,
					 NULL /*unbh not needed */ );
		RFALSE(removed <= 0
		       || removed > tail_len,
		       "vs-5617: there was tail %d bytes, removed item length %d bytes",
		       tail_len, removed);
		tail_len -= removed;
		set_cpu_key_k_offset(&tail_key,
				     cpu_key_k_offset(&tail_key) - removed);
	}
J
Jeff Mahoney 已提交
1500 1501 1502
	reiserfs_warning(inode->i_sb, "reiserfs-5091", "indirect_to_direct "
			 "conversion has been rolled back due to "
			 "lack of disk space");
1503 1504
	//mark_file_without_tail (inode);
	mark_inode_dirty(inode);
L
Linus Torvalds 已提交
1505 1506 1507
}

/* (Truncate or cut entry) or delete object item. Returns < 0 on failure */
1508
int reiserfs_cut_from_item(struct reiserfs_transaction_handle *th,
1509
			   struct treepath *p_s_path,
1510
			   struct cpu_key *p_s_item_key,
1511
			   struct inode *inode,
1512
			   struct page *page, loff_t n_new_file_size)
L
Linus Torvalds 已提交
1513
{
1514
	struct super_block *sb = inode->i_sb;
1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530
	/* Every function which is going to call do_balance must first
	   create a tree_balance structure.  Then it must fill up this
	   structure by using the init_tb_struct and fix_nodes functions.
	   After that we can make tree balancing. */
	struct tree_balance s_cut_balance;
	struct item_head *p_le_ih;
	int n_cut_size = 0,	/* Amount to be cut. */
	    n_ret_value = CARRY_ON, n_removed = 0,	/* Number of the removed unformatted nodes. */
	    n_is_inode_locked = 0;
	char c_mode;		/* Mode of the balance. */
	int retval2 = -1;
	int quota_cut_bytes;
	loff_t tail_pos = 0;

	BUG_ON(!th->t_trans_id);

1531
	init_tb_struct(th, &s_cut_balance, inode->i_sb, p_s_path,
1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542
		       n_cut_size);

	/* Repeat this loop until we either cut the item without needing
	   to balance, or we fix_nodes without schedule occurring */
	while (1) {
		/* Determine the balance mode, position of the first byte to
		   be cut, and size to be cut.  In case of the indirect item
		   free unformatted nodes which are pointed to by the cut
		   pointers. */

		c_mode =
1543
		    prepare_for_delete_or_cut(th, inode, p_s_path,
1544 1545 1546 1547 1548 1549 1550 1551 1552
					      p_s_item_key, &n_removed,
					      &n_cut_size, n_new_file_size);
		if (c_mode == M_CONVERT) {
			/* convert last unformatted node to direct item or leave
			   tail in the unformatted node */
			RFALSE(n_ret_value != CARRY_ON,
			       "PAP-5570: can not convert twice");

			n_ret_value =
1553
			    maybe_indirect_to_direct(th, inode, page,
1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564
						     p_s_path, p_s_item_key,
						     n_new_file_size, &c_mode);
			if (c_mode == M_SKIP_BALANCING)
				/* tail has been left in the unformatted node */
				return n_ret_value;

			n_is_inode_locked = 1;

			/* removing of last unformatted node will change value we
			   have to return to truncate. Save it */
			retval2 = n_ret_value;
J
Jeff Mahoney 已提交
1565
			/*retval2 = sb->s_blocksize - (n_new_file_size & (sb->s_blocksize - 1)); */
1566 1567 1568 1569 1570 1571 1572 1573

			/* So, we have performed the first part of the conversion:
			   inserting the new direct item.  Now we are removing the
			   last unformatted node pointer. Set key to search for
			   it. */
			set_cpu_key_k_type(p_s_item_key, TYPE_INDIRECT);
			p_s_item_key->key_length = 4;
			n_new_file_size -=
J
Jeff Mahoney 已提交
1574
			    (n_new_file_size & (sb->s_blocksize - 1));
1575 1576 1577
			tail_pos = n_new_file_size;
			set_cpu_key_k_offset(p_s_item_key, n_new_file_size + 1);
			if (search_for_position_by_key
J
Jeff Mahoney 已提交
1578
			    (sb, p_s_item_key,
1579 1580 1581 1582
			     p_s_path) == POSITION_NOT_FOUND) {
				print_block(PATH_PLAST_BUFFER(p_s_path), 3,
					    PATH_LAST_POSITION(p_s_path) - 1,
					    PATH_LAST_POSITION(p_s_path) + 1);
J
Jeff Mahoney 已提交
1583
				reiserfs_panic(sb, "PAP-5580", "item to "
J
Jeff Mahoney 已提交
1584
					       "convert does not exist (%K)",
1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599
					       p_s_item_key);
			}
			continue;
		}
		if (n_cut_size == 0) {
			pathrelse(p_s_path);
			return 0;
		}

		s_cut_balance.insert_size[0] = n_cut_size;

		n_ret_value = fix_nodes(c_mode, &s_cut_balance, NULL, NULL);
		if (n_ret_value != REPEAT_SEARCH)
			break;

J
Jeff Mahoney 已提交
1600
		PROC_INFO_INC(sb, cut_from_item_restarted);
1601 1602

		n_ret_value =
J
Jeff Mahoney 已提交
1603
		    search_for_position_by_key(sb, p_s_item_key, p_s_path);
1604 1605
		if (n_ret_value == POSITION_FOUND)
			continue;
L
Linus Torvalds 已提交
1606

J
Jeff Mahoney 已提交
1607
		reiserfs_warning(sb, "PAP-5610", "item %K not found",
1608 1609 1610 1611 1612 1613 1614 1615 1616 1617
				 p_s_item_key);
		unfix_nodes(&s_cut_balance);
		return (n_ret_value == IO_ERROR) ? -EIO : -ENOENT;
	}			/* while */

	// check fix_nodes results (IO_ERROR or NO_DISK_SPACE)
	if (n_ret_value != CARRY_ON) {
		if (n_is_inode_locked) {
			// FIXME: this seems to be not needed: we are always able
			// to cut item
1618
			indirect_to_direct_roll_back(th, inode, p_s_path);
1619 1620
		}
		if (n_ret_value == NO_DISK_SPACE)
J
Jeff Mahoney 已提交
1621
			reiserfs_warning(sb, "reiserfs-5092",
J
Jeff Mahoney 已提交
1622
					 "NO_DISK_SPACE");
1623 1624
		unfix_nodes(&s_cut_balance);
		return -EIO;
L
Linus Torvalds 已提交
1625
	}
1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644

	/* go ahead and perform balancing */

	RFALSE(c_mode == M_PASTE || c_mode == M_INSERT, "invalid mode");

	/* Calculate number of bytes that need to be cut from the item. */
	quota_cut_bytes =
	    (c_mode ==
	     M_DELETE) ? ih_item_len(get_ih(p_s_path)) : -s_cut_balance.
	    insert_size[0];
	if (retval2 == -1)
		n_ret_value = calc_deleted_bytes_number(&s_cut_balance, c_mode);
	else
		n_ret_value = retval2;

	/* For direct items, we only change the quota when deleting the last
	 ** item.
	 */
	p_le_ih = PATH_PITEM_HEAD(s_cut_balance.tb_path);
1645
	if (!S_ISLNK(inode->i_mode) && is_direct_le_ih(p_le_ih)) {
1646
		if (c_mode == M_DELETE &&
J
Jeff Mahoney 已提交
1647
		    (le_ih_k_offset(p_le_ih) & (sb->s_blocksize - 1)) ==
1648 1649
		    1) {
			// FIXME: this is to keep 3.5 happy
1650
			REISERFS_I(inode)->i_first_direct_byte = U32_MAX;
J
Jeff Mahoney 已提交
1651
			quota_cut_bytes = sb->s_blocksize + UNFM_P_SIZE;
1652 1653 1654
		} else {
			quota_cut_bytes = 0;
		}
L
Linus Torvalds 已提交
1655 1656
	}
#ifdef CONFIG_REISERFS_CHECK
1657 1658 1659 1660 1661 1662 1663
	if (n_is_inode_locked) {
		struct item_head *le_ih =
		    PATH_PITEM_HEAD(s_cut_balance.tb_path);
		/* we are going to complete indirect2direct conversion. Make
		   sure, that we exactly remove last unformatted node pointer
		   of the item */
		if (!is_indirect_le_ih(le_ih))
J
Jeff Mahoney 已提交
1664
			reiserfs_panic(sb, "vs-5652",
1665 1666 1667
				       "item must be indirect %h", le_ih);

		if (c_mode == M_DELETE && ih_item_len(le_ih) != UNFM_P_SIZE)
J
Jeff Mahoney 已提交
1668
			reiserfs_panic(sb, "vs-5653", "completing "
J
Jeff Mahoney 已提交
1669 1670 1671
				       "indirect2direct conversion indirect "
				       "item %h being deleted must be of "
				       "4 byte long", le_ih);
1672 1673 1674

		if (c_mode == M_CUT
		    && s_cut_balance.insert_size[0] != -UNFM_P_SIZE) {
J
Jeff Mahoney 已提交
1675
			reiserfs_panic(sb, "vs-5654", "can not complete "
J
Jeff Mahoney 已提交
1676 1677
				       "indirect2direct conversion of %h "
				       "(CUT, insert_size==%d)",
1678 1679 1680 1681
				       le_ih, s_cut_balance.insert_size[0]);
		}
		/* it would be useful to make sure, that right neighboring
		   item is direct item of this file */
L
Linus Torvalds 已提交
1682 1683
	}
#endif
1684 1685 1686 1687 1688 1689 1690 1691 1692

	do_balance(&s_cut_balance, NULL, NULL, c_mode);
	if (n_is_inode_locked) {
		/* we've done an indirect->direct conversion.  when the data block
		 ** was freed, it was removed from the list of blocks that must
		 ** be flushed before the transaction commits, make sure to
		 ** unmap and invalidate it
		 */
		unmap_buffers(page, tail_pos);
1693
		REISERFS_I(inode)->i_flags &= ~i_pack_on_close_mask;
1694
	}
L
Linus Torvalds 已提交
1695
#ifdef REISERQUOTA_DEBUG
1696
	reiserfs_debug(inode->i_sb, REISERFS_DEBUG_CODE,
1697
		       "reiserquota cut_from_item(): freeing %u id=%u type=%c",
1698
		       quota_cut_bytes, inode->i_uid, '?');
L
Linus Torvalds 已提交
1699
#endif
1700
	DQUOT_FREE_SPACE_NODIRTY(inode, quota_cut_bytes);
1701
	return n_ret_value;
L
Linus Torvalds 已提交
1702 1703
}

1704 1705
static void truncate_directory(struct reiserfs_transaction_handle *th,
			       struct inode *inode)
L
Linus Torvalds 已提交
1706
{
1707 1708
	BUG_ON(!th->t_trans_id);
	if (inode->i_nlink)
J
Jeff Mahoney 已提交
1709
		reiserfs_error(inode->i_sb, "vs-5655", "link count != 0");
1710 1711 1712 1713 1714 1715 1716

	set_le_key_k_offset(KEY_FORMAT_3_5, INODE_PKEY(inode), DOT_OFFSET);
	set_le_key_k_type(KEY_FORMAT_3_5, INODE_PKEY(inode), TYPE_DIRENTRY);
	reiserfs_delete_solid_item(th, inode, INODE_PKEY(inode));
	reiserfs_update_sd(th, inode);
	set_le_key_k_offset(KEY_FORMAT_3_5, INODE_PKEY(inode), SD_OFFSET);
	set_le_key_k_type(KEY_FORMAT_3_5, INODE_PKEY(inode), TYPE_STAT_DATA);
L
Linus Torvalds 已提交
1717 1718
}

1719 1720
/* Truncate file to the new size. Note, this must be called with a transaction
   already started */
1721 1722
int reiserfs_do_truncate(struct reiserfs_transaction_handle *th,
			  struct inode *inode,	/* ->i_size contains new size */
1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740
			 struct page *page,	/* up to date for last block */
			 int update_timestamps	/* when it is called by
						   file_release to convert
						   the tail - no timestamps
						   should be updated */
    )
{
	INITIALIZE_PATH(s_search_path);	/* Path to the current object item. */
	struct item_head *p_le_ih;	/* Pointer to an item header. */
	struct cpu_key s_item_key;	/* Key to search for a previous file item. */
	loff_t n_file_size,	/* Old file size. */
	 n_new_file_size;	/* New file size. */
	int n_deleted;		/* Number of deleted or truncated bytes. */
	int retval;
	int err = 0;

	BUG_ON(!th->t_trans_id);
	if (!
1741 1742
	    (S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode)
	     || S_ISLNK(inode->i_mode)))
1743 1744
		return 0;

1745
	if (S_ISDIR(inode->i_mode)) {
1746
		// deletion of directory - no need to update timestamps
1747
		truncate_directory(th, inode);
1748 1749
		return 0;
	}
L
Linus Torvalds 已提交
1750

1751
	/* Get new file size. */
1752
	n_new_file_size = inode->i_size;
L
Linus Torvalds 已提交
1753

1754
	// FIXME: note, that key type is unimportant here
1755
	make_cpu_key(&s_item_key, inode, max_reiserfs_offset(inode),
1756
		     TYPE_DIRECT, 3);
L
Linus Torvalds 已提交
1757

1758
	retval =
1759
	    search_for_position_by_key(inode->i_sb, &s_item_key,
1760 1761
				       &s_search_path);
	if (retval == IO_ERROR) {
1762
		reiserfs_error(inode->i_sb, "vs-5657",
J
Jeff Mahoney 已提交
1763 1764
			       "i/o failure occurred trying to truncate %K",
			       &s_item_key);
1765 1766 1767 1768
		err = -EIO;
		goto out;
	}
	if (retval == POSITION_FOUND || retval == FILE_NOT_FOUND) {
1769
		reiserfs_error(inode->i_sb, "PAP-5660",
J
Jeff Mahoney 已提交
1770 1771
			       "wrong result %d of search for %K", retval,
			       &s_item_key);
1772 1773 1774 1775

		err = -EIO;
		goto out;
	}
L
Linus Torvalds 已提交
1776

1777 1778 1779 1780 1781 1782 1783 1784 1785
	s_search_path.pos_in_item--;

	/* Get real file size (total length of all file items) */
	p_le_ih = PATH_PITEM_HEAD(&s_search_path);
	if (is_statdata_le_ih(p_le_ih))
		n_file_size = 0;
	else {
		loff_t offset = le_ih_k_offset(p_le_ih);
		int bytes =
1786
		    op_bytes_number(p_le_ih, inode->i_sb->s_blocksize);
1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801

		/* this may mismatch with real file size: if last direct item
		   had no padding zeros and last unformatted node had no free
		   space, this file would have this file size */
		n_file_size = offset + bytes - 1;
	}
	/*
	 * are we doing a full truncate or delete, if so
	 * kick in the reada code
	 */
	if (n_new_file_size == 0)
		s_search_path.reada = PATH_READA | PATH_READA_BACK;

	if (n_file_size == 0 || n_file_size < n_new_file_size) {
		goto update_and_out;
L
Linus Torvalds 已提交
1802 1803
	}

1804 1805 1806 1807 1808 1809 1810
	/* Update key to search for the last file item. */
	set_cpu_key_k_offset(&s_item_key, n_file_size);

	do {
		/* Cut or delete file item. */
		n_deleted =
		    reiserfs_cut_from_item(th, &s_search_path, &s_item_key,
1811
					   inode, page, n_new_file_size);
1812
		if (n_deleted < 0) {
1813
			reiserfs_warning(inode->i_sb, "vs-5665",
J
Jeff Mahoney 已提交
1814
					 "reiserfs_cut_from_item failed");
1815 1816 1817
			reiserfs_check_path(&s_search_path);
			return 0;
		}
L
Linus Torvalds 已提交
1818

1819 1820 1821
		RFALSE(n_deleted > n_file_size,
		       "PAP-5670: reiserfs_cut_from_item: too many bytes deleted: deleted %d, file_size %lu, item_key %K",
		       n_deleted, n_file_size, &s_item_key);
L
Linus Torvalds 已提交
1822

1823 1824
		/* Change key to search the last file item. */
		n_file_size -= n_deleted;
L
Linus Torvalds 已提交
1825

1826
		set_cpu_key_k_offset(&s_item_key, n_file_size);
L
Linus Torvalds 已提交
1827

1828 1829 1830
		/* While there are bytes to truncate and previous file item is presented in the tree. */

		/*
1831
		 ** This loop could take a really long time, and could log
1832 1833 1834 1835 1836
		 ** many more blocks than a transaction can hold.  So, we do a polite
		 ** journal end here, and if the transaction needs ending, we make
		 ** sure the file is consistent before ending the current trans
		 ** and starting a new one
		 */
1837 1838
		if (journal_transaction_should_end(th, 0) ||
		    reiserfs_transaction_free_space(th) <= JOURNAL_FOR_FREE_BLOCK_AND_UPDATE_SD) {
1839
			int orig_len_alloc = th->t_blocks_allocated;
J
Jeff Mahoney 已提交
1840
			pathrelse(&s_search_path);
1841 1842

			if (update_timestamps) {
1843 1844
				inode->i_mtime = CURRENT_TIME_SEC;
				inode->i_ctime = CURRENT_TIME_SEC;
1845
			}
1846
			reiserfs_update_sd(th, inode);
1847

1848
			err = journal_end(th, inode->i_sb, orig_len_alloc);
1849 1850
			if (err)
				goto out;
1851
			err = journal_begin(th, inode->i_sb,
1852
					    JOURNAL_FOR_FREE_BLOCK_AND_UPDATE_SD + JOURNAL_PER_BALANCE_CNT * 4) ;
1853 1854
			if (err)
				goto out;
1855
			reiserfs_update_inode_transaction(inode);
1856 1857
		}
	} while (n_file_size > ROUND_UP(n_new_file_size) &&
1858
		 search_for_position_by_key(inode->i_sb, &s_item_key,
1859 1860 1861 1862 1863 1864 1865 1866 1867
					    &s_search_path) == POSITION_FOUND);

	RFALSE(n_file_size > ROUND_UP(n_new_file_size),
	       "PAP-5680: truncate did not finish: new_file_size %Ld, current %Ld, oid %d",
	       n_new_file_size, n_file_size, s_item_key.on_disk_key.k_objectid);

      update_and_out:
	if (update_timestamps) {
		// this is truncate, not file closing
1868 1869
		inode->i_mtime = CURRENT_TIME_SEC;
		inode->i_ctime = CURRENT_TIME_SEC;
L
Linus Torvalds 已提交
1870
	}
1871
	reiserfs_update_sd(th, inode);
L
Linus Torvalds 已提交
1872

1873 1874 1875 1876
      out:
	pathrelse(&s_search_path);
	return err;
}
L
Linus Torvalds 已提交
1877 1878 1879

#ifdef CONFIG_REISERFS_CHECK
// this makes sure, that we __append__, not overwrite or add holes
1880
static void check_research_for_paste(struct treepath *path,
1881
				     const struct cpu_key *p_s_key)
L
Linus Torvalds 已提交
1882
{
1883 1884 1885 1886 1887 1888 1889 1890 1891 1892
	struct item_head *found_ih = get_ih(path);

	if (is_direct_le_ih(found_ih)) {
		if (le_ih_k_offset(found_ih) +
		    op_bytes_number(found_ih,
				    get_last_bh(path)->b_size) !=
		    cpu_key_k_offset(p_s_key)
		    || op_bytes_number(found_ih,
				       get_last_bh(path)->b_size) !=
		    pos_in_item(path))
J
Jeff Mahoney 已提交
1893 1894 1895 1896
			reiserfs_panic(NULL, "PAP-5720", "found direct item "
				       "%h or position (%d) does not match "
				       "to key %K", found_ih,
				       pos_in_item(path), p_s_key);
1897 1898 1899 1900 1901 1902 1903 1904
	}
	if (is_indirect_le_ih(found_ih)) {
		if (le_ih_k_offset(found_ih) +
		    op_bytes_number(found_ih,
				    get_last_bh(path)->b_size) !=
		    cpu_key_k_offset(p_s_key)
		    || I_UNFM_NUM(found_ih) != pos_in_item(path)
		    || get_ih_free_space(found_ih) != 0)
J
Jeff Mahoney 已提交
1905 1906 1907
			reiserfs_panic(NULL, "PAP-5730", "found indirect "
				       "item (%h) or position (%d) does not "
				       "match to key (%K)",
1908 1909
				       found_ih, pos_in_item(path), p_s_key);
	}
L
Linus Torvalds 已提交
1910
}
1911
#endif				/* config reiserfs check */
L
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/* Paste bytes to the existing item. Returns bytes number pasted into the item. */
1914
int reiserfs_paste_into_item(struct reiserfs_transaction_handle *th, struct treepath *p_s_search_path,	/* Path to the pasted item.          */
1915 1916 1917 1918 1919 1920 1921 1922 1923 1924
			     const struct cpu_key *p_s_key,	/* Key to search for the needed item. */
			     struct inode *inode,	/* Inode item belongs to */
			     const char *p_c_body,	/* Pointer to the bytes to paste.    */
			     int n_pasted_size)
{				/* Size of pasted bytes.             */
	struct tree_balance s_paste_balance;
	int retval;
	int fs_gen;

	BUG_ON(!th->t_trans_id);
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1925

1926
	fs_gen = get_generation(inode->i_sb);
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#ifdef REISERQUOTA_DEBUG
1929 1930 1931 1932
	reiserfs_debug(inode->i_sb, REISERFS_DEBUG_CODE,
		       "reiserquota paste_into_item(): allocating %u id=%u type=%c",
		       n_pasted_size, inode->i_uid,
		       key2type(&(p_s_key->on_disk_key)));
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#endif

1935 1936 1937 1938 1939 1940
	if (DQUOT_ALLOC_SPACE_NODIRTY(inode, n_pasted_size)) {
		pathrelse(p_s_search_path);
		return -EDQUOT;
	}
	init_tb_struct(th, &s_paste_balance, th->t_super, p_s_search_path,
		       n_pasted_size);
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1941
#ifdef DISPLACE_NEW_PACKING_LOCALITIES
1942
	s_paste_balance.key = p_s_key->on_disk_key;
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1943 1944
#endif

1945 1946 1947
	/* DQUOT_* can schedule, must check before the fix_nodes */
	if (fs_changed(fs_gen, inode->i_sb)) {
		goto search_again;
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1948
	}
1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963

	while ((retval =
		fix_nodes(M_PASTE, &s_paste_balance, NULL,
			  p_c_body)) == REPEAT_SEARCH) {
	      search_again:
		/* file system changed while we were in the fix_nodes */
		PROC_INFO_INC(th->t_super, paste_into_item_restarted);
		retval =
		    search_for_position_by_key(th->t_super, p_s_key,
					       p_s_search_path);
		if (retval == IO_ERROR) {
			retval = -EIO;
			goto error_out;
		}
		if (retval == POSITION_FOUND) {
J
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1964 1965
			reiserfs_warning(inode->i_sb, "PAP-5710",
					 "entry or pasted byte (%K) exists",
1966 1967 1968 1969
					 p_s_key);
			retval = -EEXIST;
			goto error_out;
		}
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1970
#ifdef CONFIG_REISERFS_CHECK
1971
		check_research_for_paste(p_s_search_path, p_s_key);
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1972
#endif
1973
	}
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1974

1975 1976 1977 1978 1979 1980 1981 1982 1983 1984
	/* Perform balancing after all resources are collected by fix_nodes, and
	   accessing them will not risk triggering schedule. */
	if (retval == CARRY_ON) {
		do_balance(&s_paste_balance, NULL /*ih */ , p_c_body, M_PASTE);
		return 0;
	}
	retval = (retval == NO_DISK_SPACE) ? -ENOSPC : -EIO;
      error_out:
	/* this also releases the path */
	unfix_nodes(&s_paste_balance);
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1985
#ifdef REISERQUOTA_DEBUG
1986 1987 1988 1989
	reiserfs_debug(inode->i_sb, REISERFS_DEBUG_CODE,
		       "reiserquota paste_into_item(): freeing %u id=%u type=%c",
		       n_pasted_size, inode->i_uid,
		       key2type(&(p_s_key->on_disk_key)));
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1990
#endif
1991 1992
	DQUOT_FREE_SPACE_NODIRTY(inode, n_pasted_size);
	return retval;
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}

/* Insert new item into the buffer at the path. */
1996
int reiserfs_insert_item(struct reiserfs_transaction_handle *th, struct treepath *p_s_path,	/* Path to the inserteded item.         */
1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016
			 const struct cpu_key *key, struct item_head *p_s_ih,	/* Pointer to the item header to insert. */
			 struct inode *inode, const char *p_c_body)
{				/* Pointer to the bytes to insert.      */
	struct tree_balance s_ins_balance;
	int retval;
	int fs_gen = 0;
	int quota_bytes = 0;

	BUG_ON(!th->t_trans_id);

	if (inode) {		/* Do we count quotas for item? */
		fs_gen = get_generation(inode->i_sb);
		quota_bytes = ih_item_len(p_s_ih);

		/* hack so the quota code doesn't have to guess if the file has
		 ** a tail, links are always tails, so there's no guessing needed
		 */
		if (!S_ISLNK(inode->i_mode) && is_direct_le_ih(p_s_ih)) {
			quota_bytes = inode->i_sb->s_blocksize + UNFM_P_SIZE;
		}
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2017
#ifdef REISERQUOTA_DEBUG
2018 2019 2020
		reiserfs_debug(inode->i_sb, REISERFS_DEBUG_CODE,
			       "reiserquota insert_item(): allocating %u id=%u type=%c",
			       quota_bytes, inode->i_uid, head2type(p_s_ih));
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#endif
2022 2023 2024 2025 2026 2027
		/* We can't dirty inode here. It would be immediately written but
		 * appropriate stat item isn't inserted yet... */
		if (DQUOT_ALLOC_SPACE_NODIRTY(inode, quota_bytes)) {
			pathrelse(p_s_path);
			return -EDQUOT;
		}
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	}
2029 2030
	init_tb_struct(th, &s_ins_balance, th->t_super, p_s_path,
		       IH_SIZE + ih_item_len(p_s_ih));
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2031
#ifdef DISPLACE_NEW_PACKING_LOCALITIES
2032
	s_ins_balance.key = key->on_disk_key;
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2033
#endif
2034 2035 2036
	/* DQUOT_* can schedule, must check to be sure calling fix_nodes is safe */
	if (inode && fs_changed(fs_gen, inode->i_sb)) {
		goto search_again;
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Linus Torvalds 已提交
2037
	}
2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050

	while ((retval =
		fix_nodes(M_INSERT, &s_ins_balance, p_s_ih,
			  p_c_body)) == REPEAT_SEARCH) {
	      search_again:
		/* file system changed while we were in the fix_nodes */
		PROC_INFO_INC(th->t_super, insert_item_restarted);
		retval = search_item(th->t_super, key, p_s_path);
		if (retval == IO_ERROR) {
			retval = -EIO;
			goto error_out;
		}
		if (retval == ITEM_FOUND) {
J
Jeff Mahoney 已提交
2051
			reiserfs_warning(th->t_super, "PAP-5760",
2052 2053 2054 2055 2056
					 "key %K already exists in the tree",
					 key);
			retval = -EEXIST;
			goto error_out;
		}
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Linus Torvalds 已提交
2057 2058
	}

2059 2060 2061 2062 2063
	/* make balancing after all resources will be collected at a time */
	if (retval == CARRY_ON) {
		do_balance(&s_ins_balance, p_s_ih, p_c_body, M_INSERT);
		return 0;
	}
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Linus Torvalds 已提交
2064

2065 2066 2067 2068
	retval = (retval == NO_DISK_SPACE) ? -ENOSPC : -EIO;
      error_out:
	/* also releases the path */
	unfix_nodes(&s_ins_balance);
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Linus Torvalds 已提交
2069
#ifdef REISERQUOTA_DEBUG
2070 2071 2072
	reiserfs_debug(th->t_super, REISERFS_DEBUG_CODE,
		       "reiserquota insert_item(): freeing %u id=%u type=%c",
		       quota_bytes, inode->i_uid, head2type(p_s_ih));
L
Linus Torvalds 已提交
2073
#endif
2074 2075 2076
	if (inode)
		DQUOT_FREE_SPACE_NODIRTY(inode, quota_bytes);
	return retval;
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2077
}