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I have been working for a few hours on how to write a regex for a bash script that will only grab a group of more than 2 numbers. For example, if I had #jk2478_0.JPEG, I would only want to return 2478. I can return all of the numbers, but can't figure how to not include the 0 in the result for this example. Here is what I have so far.

i='#jk2478_0.JPEG';
f=`echo $i | sed s/[^0-9]*[^0-9]//g`
echo $f #24780
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3 Answers 3

up vote 1 down vote accepted
$ echo '#jk2478_0.JPEG,' | grep -E -o '[0-9]{2,}'
2478

-o means match only

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Worked like a charm. Thank you so much! –  Kevin Mann Feb 3 '13 at 6:31

Other way using sed

echo '#jk2478_0.JPEG,' | sed -re 's/(.*)([a-zA-Z]+)([0-9]+)(.*)/\3/'
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perhaps this?

f=`echo $i | sed s/.*([0-9]\{2,\}.*/\1/`
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