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This question already has an answer here:

I've got directory with files like:

dump_2014_12_21_1001.7z
dump_2014_12_21_1122.7z
dump_2014_12_21_1207.7z
dump_2014_12_21_1334.7z

Number of files may be different.

I need to write bash script to delete all files except newest one?

marked as duplicate by fredtantini, Vorsprung, tripleee, user987339, CRABOLO Dec 31 '14 at 7:58

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  • num=$(ls /tmp/ | wc -l) num=$((num-1)) (ls -lt /tmp/ | tail -n $num;ls) | sort|uniq -u|xargs rm – user3301252 Dec 22 '14 at 14:02
1

Please don't use that num=$(ls /tmp/ | wc -l) num=$((num-1)) (ls -lt /tmp/ | tail -n $num;ls) | sort|uniq -u|xargs rm you posted.

Your filenames are very glob-friendly, you don't need to sort them again. Here's a better solution:

unset oldfile
for file in *.7z; do
  [[ $oldfile ]] && rm "$oldfile"
  oldfile=$file
done
  • Or: shopt -s nullglob; files=( *.7z ); (( ${#files[@]}>1 )) && rm -- "${files[@]:1}". Provided there are not too many files. – gniourf_gniourf Dec 22 '14 at 20:21

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