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Is there a simple way, in a pretty standard UNIX environment with bash, to run a command to delete all but the most recent X files from a directory?

To give a bit more of a concrete example, imagine some cron job writing out a file (say, a log file or a tar-ed up backup) to a directory every hour. I'd like a way to have another cron job running which would remove the oldest files in that directory until there are less than, say, 5.

And just to be clear, there's only one file present, it should never be deleted.

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12 Answers

up vote 44 down vote accepted
(ls -t|head -n 5;ls)|sort|uniq -u|xargs rm

This version supports names with spaces:

(ls -t|head -n 5;ls)|sort|uniq -u|sed -e 's,.*,"&",g'|xargs rm
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12  
This command will not correctly handle files with spaces in the names. –  tylerl Apr 13 '10 at 20:33
    
To fix above use: (ls -t|head -n 5;ls)|sort|uniq -u|sed -e 's,.*,"&",g'|xargs rm –  BroiSatse Feb 5 at 14:24
    
This one fails if there are no files to delete. –  Mantas Jun 3 at 14:36
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Remove all but 5 (or whatever number) of the most recent files in a directory.

rm `ls -t | awk 'NR>5'`
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Concise and relatively readable. I like it! –  Doc Feb 6 at 20:34
2  
I needed this to only consider my archive files. change ls -t to ls -td *.bz2 –  Doc Feb 6 at 20:37
    
I used this for directories by changing it to rm -rf ls -t | awk 'NR>1' (I only wanted the most recent). Thanks! –  lohiaguitar91 yesterday
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If the filenames don't have spaces, this will work:

ls -C1 -t| awk 'NR>5'|xargs rm

If the filenames do have spaces, something like

ls -C1 -t | awk 'NR>5' | sed -e "s/^/rm '/" -e "s/$/'/" | sh

Basic logic:

  • get a listing of the files in time order, one column
  • get all but the first 5 (n=5 for this example)
  • first version: send those to rm
  • second version: gen a script that will remove them properly
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All these answers fail when there are directories in the current directory. Here's something that works:

find . -maxdepth 1 -type f | xargs -x ls -t | awk 'NR>5' | xargs -L1 rm

This:

  1. works when there are directories in the current directory

  2. tries to remove each file even if the previous one couldn't be removed (due to permissions, etc.)

  3. fails safe when the number of files in the current directory is excessive and xargs would normally screw you over (the -x)

  4. doesn't cater for spaces in filenames (perhaps you're using the wrong OS?)

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find . -maxdepth 1 -type f -printf '%T@ %p\0' | sort -r -z -n | awk 'BEGIN { RS="\0"; ORS="\0"; FS="" } NR > 5 { sub("^[0-9]*(.[0-9]*)? ", ""); print }' | xargs -0 rm -f

Requires GNU find for -printf, and GNU sort for -z, and GNU awk for "\0", and GNU xargs for -0, but handles files with embedded newlines or spaces.

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If you want to remove directories, just change the -f to a -d and add a -r to the rm. find . -maxdepth 1 -type d -printf '%T@ %p\0' | sort -r -z -n | awk 'BEGIN { RS="\0"; ORS="\0"; FS="" } NR > 5 { sub("^[0-9]*(.[0-9]*)? ", ""); print }' | xargs -0 rm -rf –  alex Jan 10 '11 at 19:19
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Ignoring newlines is ignoring security and good coding. wnoise had the only good answer. Here is a variation on his that puts the filenames in an array $x

while read -rd ''; do 
    x+=("${REPLY#* }"); 
done < <(find . -maxdepth 1 -printf '%T@ %p\0' | sort -r -z -n )
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Running on Debian (assume its the same on other distros I get: rm: cannot remove directory `..'

which is quite annoying..

Anyway I tweaked the above and also added grep to the command. In my case I have 6 backup files in a directory e.g. file1.tar file2.tar file3.tar etc and I want to delete only the oldest file (remove the first file in my case)

The script I ran to delete the oldest file was:

ls -C1 -t| grep file | awk 'NR>5'|xargs rm

This (as above) deletes the first of my files e.g. file1.tar this also leaves be with file2 file3 file4 file5 and file6

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With zsh

Assuming you don't care about present directories and you will not have more than 999 files (choose a bigger number if you want, or create a while loop).

[ 6 -le `ls *(.)|wc -l` ] && rm *(.om[6,999])

In *(.om[6,999]), the . means files, the o means sort order up, the m means by date of modification (put a for access time or c for inode change), the [6,999] chooses a range of file, so doesn't rm the 5 first.

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Simpler variant of thelsdj's answer:

ls -tr | head -n -5 | xargs rm

ls -tr displays all the files, oldest first (-t newest first, -r reverse).

head -n -5 displays all but the 5 last lines (ie the 5 newest files).

xargs rm calls rm for each selected file.

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Need to add --no-run-if-empty to xargs so that it doesn't fail when there are fewer than 5 files. –  Tom May 7 at 18:31
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ls | sort -r | tail -n+5 | xargs rm

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leaveCount=5
fileCount=$(ls -1 *.log | wc -l)
tailCount=$((fileCount - leaveCount))

# avoid negative tail argument
[[ $tailCount < 0 ]] && tailCount=0

ls -t *.log | tail -$tailCount | xargs rm -f
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ls -tQ | tail -n+3 | xargs rm

List filenames by modification time, quoting each filename. Exclude first 3 (3 most recent). Remove remaining.

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The -Q option doesn't seem to exist on my machine. –  pabuisson Feb 13 at 10:59
1  
Hmm, the option has been in GNU core utils for ~20 years, but is not mentioned in BSD variants. Are you on a mac? –  Mark Feb 14 at 2:59
    
I am indeed. Didn't think there was differences for this kind of really basic commands between up-to-date systems. Thanks for your answer ! –  pabuisson Feb 14 at 15:10
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