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I have a text file with the following strings, each in a separate line

Host: 22.44.55.33 (x.y.z)   Status: Up

what I need to extract from lines is the string between the brackets x.y.z .

How can I do this using grep in Linux?

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2 Answers 2

echo "Host: 22.44.55.33 (x.y.z)   Status: Up" | egrep -o "\([^)]*\)"
(x.y.z)

The re \([^)]*\) means that you need (, then any symbols except ) and then ). The -o key of grep says that grep needs to print only that part of the input text that matches the regular expression.

If you want only that lines that have "Host: Up" inside, you can use assertions:

$ cat 1.txt 
(1.2.3.4) Host: Up
(5.6.7.8) Host: Down
(9.1.2.3) Host: Up

$ grep -oP '\([^)]*\)(?=.*Host: Up)' 1.txt
(1.2.3.4)
(9.1.2.3)

The main point here is (?=.*Host: Up) that says that you want Host: Up in the line.

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Guessing that the "Status: Up" part is important, the sed solution by @legoscia would be more useful. But I didn't know about the -o option, so +1. –  Axel Jul 26 '12 at 13:22
    
Axel: what do you mean? –  Igor Chubin Jul 26 '12 at 13:25
    
Well, even if not explicitly stated in the OP's question, this looks like trying to build a list of the servers that have "Status: Up". When using egrep like this, you'd have to grep two times whereas with the answer given by legoscia, you can have the result in a single step. –  Axel Jul 27 '12 at 6:01
    
@Axel: With grep it is not a problem at all to get the result in one step, but how you can get the result in one step with the answer given by legoscia? –  Igor Chubin Jul 27 '12 at 7:02
    
You don't need cat: grep -oP '\([^)]*\)(?=.*Host: Up)' 1.txt (partmaps.org/era/unix/award.html#cat) –  Matteo Jul 27 '12 at 7:25

You need sed, not egrep - sed can edit the text, while egrep can only choose lines of text and print them unchanged. Something like this:

sed -e 's/^Host:.*(\([^)]*\)).*$/\1/' < inputfile.txt
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