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I'm currently writing a bash script for renaming files. Every file looks like this *_#.ext where * can be anything and # a 9 digits number. In this example, ill stick with 3 digits instead.

Here is a basic example of what it should do:

Input: example1_123.jpg
Output: example1.jpg

Simple enough? Right:

#!/bin/bash
filename="example1_123.jpg"
echo ${filename/_[0-9][0-9][0-9]/}

Output: example1.jpg

This works... as long as the input isn't something like this filename: example2_123.jpg_987.jpg

The file will be renamed to example2.jpg_987.jpg instead of example2_123.jpg.jpg

i tried using $ for end of line, but this breaks it, as $ is used for variables:

#!/bin/bash
filename="example2_123.jpg_987.jpg"
echo ${filename/_[0-9][0-9][0-9].jpg$/}.${filename/*./}

Output: example2_123.jpg_987.jpg.jpg \$ also doesn't work. I'm clueless...

Can anyone help me getting it to work the way I need it to?

P.S. [0-9]{3} instead of [0-9][0-9][0-9] also breaks it. If someone knows how to shorten it, please say so :)

share|improve this question
up vote 2 down vote accepted

Use:

target=$(echo $f | sed 's,_[0-9]\+\(\.[a-z]\+\)$,\1')

This will do what you want.

fg@erwin ~ $ f=example2_123.jpg_987.png
fg@erwin ~ $ target=$(echo $f | sed 's,_[0-9]\+\(\.[a-z]\+\)$,\1,')
fg@erwin ~ $ echo $target
example2_123.jpg.png
fg@erwin ~ $ f=example1_123.png
fg@erwin ~ $ target=$(echo $f | sed 's,_[0-9]\+\(\.[a-z]\+\)$,\1,')
fg@erwin ~ $ echo $target
example1.png

Surround $(...) with double quotes should you have space names in $f.

This is sed, therefore a classical regex dialect, therefore grouping, alternatives and quantifiers (well, except *) all need to be preceded with a backslash... The "canonical" regex really is:

_[0-9]+(\.[a-z]+)$
share|improve this answer
    
thanks. this worked as well, though... as i need i noticed that (jpg|png|gif) is also unsupported (probably due to |)... alternatives? – David Dec 22 '11 at 12:44
    
Most probably because bash uses old-style regexes. I'd use a combination of echo | sed really, since bash is really limited. To do what you do would need backreference support. – fge Dec 22 '11 at 12:45
    
See post edit for the solution you seek – fge Dec 22 '11 at 12:50
    
PERFECT! thanks a lot – David Dec 22 '11 at 12:53

$ is not used by bash, bash uses the % prefix:

echo ${filename/%_[0-9][0-9][0-9].jpg/}.${filename/*./}
share|improve this answer
    
This works so long as it's always _ followed by 3 digits. – Sorpigal Dec 22 '11 at 12:39
    
thanks! this is what i needed! though, as the extension isn't restricted to only jpg, i need a usable regex replacement for this as well. unfortunately, (jpg|png|gif) doesn't work and breaks again :( – David Dec 22 '11 at 12:39

I think this is what you want:

filename="example2_123.jpg_987.jpg"
echo ${filename//_[0-9][0-9][0-9]/}

So all _NNN will be replaced. The output above is: example2.jpg.jpg

share|improve this answer

Try ${filename%_[0-9]*.*}.${filename##*.}" as in this example:

for filename in example1_123.jpg example2_123.jpg_987.jpg example2_4.jpg_1.jpg ; do
    echo "$filename -> ${filename%_[0-9]*.*}.${filename##*.}"
done

This will output

example1_123.jpg -> example1.jpg
example2_123.jpg_987.jpg -> example2_123.jpg.jpg
example2_4.jpg_1.jpg -> example2_4.jpg.jpg

Thus always removing the final _ followed by any digits.

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