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ls displays the files available in a directory. I want the file names to be displayed based on the length of the file name.

Any help will be highly appreciated. Thanks in Advance

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4 Answers 4

You can do like this

for i in `ls`; do LEN=`expr length $i`; echo $LEN $i; done | sort -n
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I think it is sorting based on file size , I want it to be sorted based on the length of filename – Zama Ques Mar 26 '12 at 8:49
sorry about that. let me get the right one and repost – Raghuram Mar 26 '12 at 8:59
Added the new code...check now – Raghuram Mar 26 '12 at 9:10

The simplest way is just:

$ ls | perl -e 'print sort { length($b) <=> length($a) } <>'
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Raghuram's answer above didn't work for me on FreeBSD in bash shell, but this one did. Gotta love perl. Thanks. – Joshua Huber May 23 at 1:38

make test files:

mkdir -p test; cd test 
touch short-file-name  medium-file-name  loooong-file-name

the script:

ls |awk '{print length($0)"\t"$0}' |sort -n |cut --complement -f1


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The first two solution works fine . Thanks all for the response. – Zama Ques Mar 26 '12 at 12:50
for i in *; do printf "%d\t%s\n" "${#i}" "$i"; done | sort -n | cut -f2-
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