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I am new to Linux shell and I found a way to get the name of the file I want:

ls *.*g -S| grep -v ^d | head -1

I am going to be repeating this for a number of file. I am trying to copy this file to another directory (cp command?). But the below code is failing.

I am trying this, but its not working:

cp ls -S| grep -v ^d | head -1 ../directory

Also, I was wondering how to loop through directorys that are in a particular directory.

Any help is much appreciated.

Thanks, Bryan

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up vote 3 down vote accepted
cp $(ls *.*g -S| grep -v ^d | head -1) ../directory
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note that you won't be able to grep for ^d, since ls is used without -l – kurumi Feb 22 '11 at 0:51
    
@kurumi your comment seems more appropriate aimed at the OP. Unfortunately he does not give us the file names he is looking for but he says that pipeline works so I have no choice but to believe him. The main point of this answer regardless of his implementation is command substitution via $() – SiegeX Feb 22 '11 at 5:16
cp "$(find . -type f -name "*.*" -printf "%f:%s\n" | sort -t":" -k2 -n | awk -F":" 'END{print $1}')" ../directory

Use quotes in case there are white spaces in your file. add -maxdepth 1 if you don't want to recurse subdirectories

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