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I have a directory with lots of files. I want to keep only the 6 newest. I guess I can look at their creation date and run rm on all those that are too old, but is the a better way for doing this? Maybe some linux command I could use?

Thanks!

:)

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Check out find. –  squiguy Feb 22 '13 at 8:14
    
How does find /my/path -type f -mtime +6 -exec rm {} \; look? –  user1856596 Feb 22 '13 at 8:15
1  
Bad. If the last 6 files are ober 6 days old, they'll all be deleted. If the last 6 days created a billion files, none will be deleted. Also,-delete is simpler than -exec rm P{ ]\; –  sehe Feb 22 '13 at 8:17
    
@user1856596 that will get the files modified in the last 6 days, what you want (according to your question) is those modified after the most recent 6 files –  hd1 Feb 22 '13 at 8:18
3  
In that case, the find command seems ok. Oh, the art of specifying requirements :) –  sehe Feb 22 '13 at 8:20

2 Answers 2

rm -v $(ls -t mysvc-*.log | tail -n +7)
  • ls -t, list sorted by time
  • tail -n +7, +7 here means length-7, so all but first 7 lines
  • $() makes a list of strings from the enclosed command output
  • rm to remove the files, of course
  • Beware files with space in their names, $() splits on any white-space!
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Would you explain that command please? I am not a Linux pro :). Thanks –  user1856596 Feb 22 '13 at 8:24
1  
Thanks @JanHudec :) @user1856596 Beware of filenames with whitespace characters (or other funnies) here, though: the find command would be a lot safer in practice –  sehe Feb 22 '13 at 9:37

Here's my take on it, as a script. It does handle spaces in file names even if it is a bit of a hack.

#!/bin/bash

eval set -- $(ls -t1  | sed -e 's/.*/"&"/')

if [[ $# -gt 6 ]] ; then
    shift 6
    while [[ $# -gt 0 ]] ; do
        echo "remove this file: $1" # rm "$1"
        shift
    done
fi

The second option to ls up there is a "one" for one file name per line. Doesn't actually seem to matter, though, since that appears to be the default when ls isn't feeding a tty.

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