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I have a folder with 61 jpg's in the order Picture 002.jpg through Picture 062.jpg, I'd like to remove the "Picture" and properly rename the files 01 to 61 in the same order they're currently in. How can I do this in a bash script?

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up vote 1 down vote accepted
#!/bin/bash

x=1
for f in *
do
    if [ "$f" != "change_name.sh" ]; then
       new_name=`printf "%02d.jpg" $x`
       mv -v "$f" $new_name
       x=$((x+1))
    fi
done

Usage: save the script as change_name.sh in the same directory of your image and run.

You can ls your directory before running this script. If file names are ordered correctly, that's fine. Or you may change ls in the for loop ls|sort.

Hope this can help.

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2  
It is bad practice to go for f in $(ls), you should just use for f in *. – huon Jun 8 '12 at 2:52
    
@dbaupp Could you please explain it? For efficiency? Thanks. – Summer_More_More_Tea Jun 8 '12 at 2:54
1  
Efficiency (* doesn't fork any extra processes), and correctness (using ls will break if there are files with spaces or newlines in their names). – huon Jun 8 '12 at 2:59
    
@dbaupp Thanks. Update the script. :) – Summer_More_More_Tea Jun 8 '12 at 3:02
1  
When I run this I get mv: target '01.jpg' is not a directory mv: target '11.jpg' is not a directory mv: target '111.jpg' is not a directory mv: target '1111.jpg' is not a directory mv: target '11111.jpg' is not a directory mv: target '111111.jpg' is not a directory mv: target '1111111.jpg' is not a directory mv: target '11111111.jpg' is not a directory mv: target '111111111.jpg' is not a directory etc. – user768417 Jun 8 '12 at 3:03

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