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I have a string which has below value

String1=winos-app-1.2.0-4.20120308.InLinuxOS.x86_64

I need to extract only version from this string which is "1.2.0-4"

I have tried regular expression as mentioned below with sed

sed -ne 's/[^0-9]*\(\([0-9]\.\)\{0,1\}[0-9][^.]\).*/\1/p'

but I am only getting result "1.2.0-", missing number after "-" which is 4. I tried correcting it but it is returning null.

Kindly, advise

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5 Answers

how about grep:

grep -Po "(?<=-)[\d.-]*(?=.\d{8})"
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This should work, and should also account for any of the version numbers being more than one digit long.

String1=winos-app-1.2.0-4.20120308.InLinuxOS.x86_64
sed -n 's/[^0-9]*\(\([0-9]\+\.\)\{0,2\}[0-9]\+-[0-9]\+\).*/\1/p' <<< "$String1"
1.2.0-4

BTW, this will also match version strings like (which from your question is not clear if you want this behavior or not):

1-1
1.2-1

If you want to enforce w.x.y-z, you could use this:

sed -n 's/[^0-9]*\(\([0-9]\+\.\)\{2\}[0-9]\+-[0-9]\+\).*/\1/p' <<< "$String1"
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Thank You ! very much. Could you also suggest a reg ex for checking versions What if I like to check any version in 1.0.0 release may be "1.0.0-1" or "1.0.0-2" or "1.0.0-3" and I just need to check for what update version is it "-1 or -2 or -3" "1.0.0-1 or 1.0.0-2 or 1.0.0-3" what regex can I use ? "sed -ne s/1.0.0\-[0-9]\1/p" would this work ? Thanks ! sed -n 's/1.0.0\-[0-9]' –  user2150307 Mar 11 '13 at 15:07
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sed -n 's/^.*-\([0-9.]*-[0-9]*\)\..*$/\1/p'
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Can you try this?

[^0-9]*\(\([0-9]\.\)\{0,2\}[0-9][^.]\).*

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You could also try parameter expansion:

string1=winos-app-1.2.0-4.20120308.InLinuxOS.x86_64
string2=${string1%".${string1#*-*-*-*.}"}
version=${string2#*-*-}
printf "%s\n" "$version"
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