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How do I find out which directories are responsible for chewing up all my inodes?

Ultimately the root directory will be responsible for the largest number of inodes, so I'm not sure exactly what sort of answer I want..

Basically, I'm running out of available inodes and need to find a unneeded directory to cull.

Thanks, and sorry for the vague question.

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2  
Wow, people running out of inodes? I haven't seen that since the early days of Usenet when you had to give an argument to mkfs to make it make more inodes - because a Usenet news spool had tons of tiny little files. –  Paul Tomblin Dec 7 '08 at 14:24
    
Yeah - certainly a reminder of times long past. –  Jonathan Leffler Dec 7 '08 at 15:47
4  
I think that's like saying, "Wow, you overflowed the stack, and there's so much memory available these days". There's often a good reason it's happening (particular script or directory) and that's what the OP is looking for. –  gbarry Dec 7 '08 at 19:00
    
@PaulTomblin: Shared Hosting. –  aditya menon Jan 27 at 12:20

8 Answers 8

up vote 16 down vote accepted

So basically you're looking for which directories have a lot of files? Here's a first stab at it:

find . -type d -print0 | xargs -0 -n1 count_files | sort -n

where "count_files" is a shell script that does (thanks Jonathan)

echo $(ls -a "$1" | wc -l) $1
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1  
no need for the '-l' parameter to ls - it will default to one-line-per-file output if stdout is not a tty. –  Alnitak Dec 7 '08 at 15:30
    
If the hidden files start with '.', this won't find them. I'd probably use - echo $1 $(ls -a "$1" | wc -l) - to generate directory name and count on one line (and I might well reverse the order to list count first). Note the careful use of quotes around the file name where it matters. –  Jonathan Leffler Dec 7 '08 at 15:53

If you don't want to make a new file (or can't because you ran out of inodes) you can run this query:

for i in `find . -type d `; do echo `ls -a $i | wc -l` $i; done | sort -n
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+1 nice one liner –  Thomas May 9 '12 at 20:58
4  
This should be the right answer as if you don't have any more inodes, you cannot create the shell script in Paul's answer... –  jtblin Feb 7 '13 at 2:05
    
What a life-saving line of commands. –  Alexander Wallin Apr 26 at 15:40
    
sort may create temporary files for sorting. So this may not be a bullet proof solution after all. –  donatello May 22 at 19:13

Provided methods with recursive ls are very slow. Just for quickly finding parent directory consuming most of inodes i used:

cd /partition_that_is_out_of_inodes
for i in *; do echo -e "$(find $i | wc -l)\t$i"; done | sort -n
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i found this solution worked better with odd filenames and gave a quicker response than Hannes solution. –  jammin Sep 1 at 8:07
1  
Without the ` | sort -n` part and just using for i in *; do echo -e "$(find $i | wc -l)\t$i"; done I found it to be even better, as each folder's result is output as soon as it is known, rather than waiting until the end to sort the results. This gives a more interactive experience and feedback on progress of the command –  BeowulfNode42 Sep 3 at 6:18

Here's a simple Perl script that'll do it:

#!/usr/bin/perl -w

use strict;

sub count_inodes($);
sub count_inodes($)
{
  my $dir = shift;
  if (opendir(my $dh, $dir)) {
    my $count = 0;
    while (defined(my $file = readdir($dh))) {
      next if ($file eq '.' || $file eq '..');
      $count++;
      my $path = $dir . '/' . $file;
      count_inodes($path) if (-d $path);
    }
    closedir($dh);
    printf "%7d\t%s\n", $count, $dir;
  } else {
    warn "couldn't open $dir - $!\n";
  }
}

push(@ARGV, '.') unless (@ARGV);
while (@ARGV) {
  count_inodes(shift);
}

If you want it to work like du (where each directory count also includes the recursive count of the subdirectory) then change the recursive function to return $count and then at the recursion point say:

$count += count_inodes($path) if (-d $path);
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This is my take on it. It's not so different from others, but the output is pretty and I think it counts more valid inodes than others (directories and symlinks). This counts the number of files in each subdirectory of the working directory; it sorts and formats the output into two columns; and it prints a grand total (shown as ".", the working directory). This will not follow symlinks but will count files and directories that begin with a dot. This does not count device nodes and special files like named pipes. Just remove the "-type l -o -type d -o -type f" test if you want to count those, too. Because this command is split up into two find commands it cannot correctly discriminate against directories mounted on other filesystems (the -mount option will not work). For example, this should really ignore "/proc" and "/sys" directories. You can see that in the case of running this command in "/" that including "/proc" and "/sys" grossly skews the grand total count.

for ii in $(find . -maxdepth 1 -type d); do 
    echo -e "${ii}\t$(find "${ii}" -type l -o -type d -o -type f | wc -l)"
done | sort -n -k 2 | column -t

Example:

# cd /
# for ii in $(find -maxdepth 1 -type d); do echo -e "${ii}\t$(find "${ii}" -type l -o -type d -o -type f | wc -l)"; done | sort -n -k 2 | column -t
./boot        1
./lost+found  1
./media       1
./mnt         1
./opt         1
./srv         1
./lib64       2
./tmp         5
./bin         107
./sbin        109
./home        146
./root        169
./dev         188
./run         226
./etc         1545
./var         3611
./sys         12421
./lib         17219
./proc        20824
./usr         56628
.             113207
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for i in dir.[01]
do
    find $i -printf "%i\n"|sort -u|wc -l|xargs echo $i --
done

dir.0 -- 27913
dir.1 -- 27913

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Welcome to SO, and thank you for providing an answer. –  Brian Jun 7 '13 at 23:26

The perl script is good, but beware symlinks- recurse only when -l filetest returns false or you will at best over-count, at worst recurse indefinitely (which could- minor concern- invoke Satan's 1000-year reign).

The whole idea of counting inodes in a file system tree falls apart when there are multiple links to more than a small percentage of the files.

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Just wanted to mention that you could also search indirectly using the directory size, for example:

find /path -type d -size +500k

Where 500k could be increased if you have a lot of large directories.

Note that this method is not recursive. This will only help you if you have a lot of files in one single directory, but not if the files are evenly distributed across its descendants.

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