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I wrote the following sed one liner for substituting the 3rd portion of an IP address.

sed 's/192\.168\.[0-9]*\.\([0-9]*\)/192.168.15.\1/g'

192.168.0.1
192.168.15.1

I want to make it lazy so it would replace 192.168.0 with 192.168.15 by using ?? which is extended regexp but when I supply the '-r' option I get the following error.

$ sed -r 's/192\.168\.[0-9]*\.\([0-9]*\)/192.168.15.\1/g'
sed: -e expression #1, char 44: invalid reference \1 on `s' command's RHS

Can you explain what is going on here and how to make an expression lazy whilst using capture groups?

Note: I can achieve the example using many different approaches, my question isn't how to solve the example. I am interesting in using sed with exteneded regexp and capture groups.

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1  
N.B. sed -r 's/192\.168(\.[0-9]*){2}/192.168.15\1/g' achieves the same result, the back reference \1 returns the second of the two (\.[0-9]*){2} and avoids the duplication of the regexp. – potong Oct 29 '12 at 23:27
    
That is cleaner, also helps when making expression lazy sed -r 's/192\.168(\.??[0-9]*){2}/192.168.15\1/g' as it deals with the trailing . for the 3 portion case. – iiSeymour Oct 30 '12 at 8:06
up vote 4 down vote accepted

There is no need to escape braces because ([0-9]*) is valid statement matching group of symbols.

$> echo "192.168.0.1" | sed -r 's/192\.168\.[0-9]*\.([0-9]*)/192\.168\.15\.\1/g'
192.168.15.1
share|improve this answer
    
Note that if you're replacing in a file, using -ir may not work. If that's the case, you need to pass the options separately, as in sed -i -r 's/.../.../ file' (or using the spelled out versions: sed --in-place --regexp-extended 's/.../.../ file'). – waldyrious Aug 20 '15 at 16:43

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