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I have several .jpg images in a folder that have names like:

20140331_134927.jpg
20140331_124933.jpg
20140331_124933.jpg
etc..

I want to rename them to something like:

Agra-1.jpg
Agra-2.jpg
Agra-3.jpg
etc..

I tried running the following script (stored as my.sh):

for files in *.jpg; do
    i=1
    echo mv "$files" "Agra-$i.jpg"
    i=$((i+1))
done

However, if I were to run that without the echo, all files would be renamed to "Agra-1.jpg"

Why does this not work as I expect and how should this be written?

share|improve this question
    
What did you expect? –  devnull Apr 3 '14 at 12:10
3  
You say i=1 within the loop. –  devnull Apr 3 '14 at 12:10
    
I expected the file names to be incremented as displayed above. –  Raphael Rafatpanah Apr 3 '14 at 12:11
1  
With 1K+ rep, you seem to be trolling now. If you assign a variable within a loop, how would you expect it be incremented? –  devnull Apr 3 '14 at 12:12

2 Answers 2

up vote 5 down vote accepted

Put the assignment out of the loop:

i=1    # only once
for files in *.jpg; do
    mv "$files" "Agra-$i.jpg"
    let i++
done
share|improve this answer

Here is an example - you should declare the counter variable outside of the loop otherwise it will be reset to its initial value on each iteration:

Inside loop:

$ for file in *; do i=1; echo $i; (( i++ )); done
1
1
1

Outside loop:

$ i=1
$ for file in *; do echo $i; (( i++ )); done
1
2
3
share|improve this answer

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