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Given this specific line pulled from ifconfig, in my case:

inet 192.168.2.13 netmask 0xffffff00 broadcast 192.168.2.255

How could one extract the 192.168.2.13 part (the local IP address), presumably with regex?

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2  
what about IPv6 addresses? –  Spudley Jul 14 '12 at 10:26
    
This was only gonna be used on an internal network where I knew that I would be using IPv4. –  JJ56 Jul 14 '12 at 10:28

6 Answers 6

up vote 6 down vote accepted
line='inet 192.168.2.13 netmask 0xffffff00 broadcast 192.168.2.255'

Here's one way using grep:

echo "$line" | grep -oE "[0-9]{1,3}\.[0-9]{1,3}\.[0-9]{1,3}\.[0-9]{1,3}"

Results:

192.168.2.13
192.168.2.255

Here are some simpler alternatives, as per the comments:

Using awk:

echo "$line" | awk '{ print $2 }'

Using cut:

echo "$line" | cut -d " " -f 2

Results:

192.168.2.13
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Thanks very much, but this matches the broadcast too –  JJ56 Jul 14 '12 at 10:34
    
@JJ56, perhaps using awk is the better option then –  Steve Jul 14 '12 at 10:35
    
Thanks, awk works fantastic! –  JJ56 Jul 14 '12 at 10:49
    
for mac or most linux, egrep -o works instead of grep -oP –  Kevin Jan 28 at 0:01
    
@Kevin: Yes, egrep would suffice. I have edited the answer to reflect this. Thanks. –  Steve Jan 28 at 1:02

use this regex ((25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\.){3}(25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)(?=\s*netmask)

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Once again, unless I'm doing something wrong this gives the whole line –  JJ56 Jul 14 '12 at 10:27
    
This should help you: regexr.com/38l27 –  CenterOrbit Mar 30 at 20:07

[0-9]{1,3}\.[0-9]{1,3}\.[0-9]{1,3}\.[0-9]{1,3}

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Sorry, but how would I put this into grep? Using echo '[the line]' | grep -P '[your answer]' gives me the whole line :\ –  JJ56 Jul 14 '12 at 10:26
    
you match 3 digit separeted by dot, this is not ip, and you catch broadcast –  burning_LEGION Jul 14 '12 at 10:31

One way using sed. First instruction deletes all characters until first digit in the line, and second instruction saves first IP in group 1 (\1) and replaces all the line with it:

sed -e 's/^[^0-9]*//; s/\(\([0-9]\{1,3\}\.\)\{3\}[0-9]\{1,3\}\).*/\1/'
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This code works nicely and easy too

ifconfig | grep Bcast > /tmp/ip1
cat /tmp/ip1 | awk '{ print $2 }' > /tmp/ip2
sed -i 's/addr://' /tmp/ip2
IPADDRESS=$(cat /tmp/ip2)
echo "$IPADDRESS"

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you can use egrep (which is basically the same as grep -E)
in egrep there are named groups for character classes, e.g.: "digit"
(which makes the command longer in this case - but you get the point...)

another thing that is good to know is that you can use brackets to repeat a pattern

ifconfig | egrep '([0-9]{1,3}\.){3}[0-9]{1,3}'

or

ifconfig | egrep '([[:digit:]]{1,3}\.){3}[[:digit:]]{1,3}'


if you only care about the actual IP address use the parameter -o to limit output to the matched pattern instead of the whole line:

ifconfig | egrep -o '([[:digit:]]{1,3}\.){3}[[:digit:]]{1,3}'

...and if you don't want BCast addresses and such you may use this grep:

ifconfig | egrep -o 'addr:([[:digit:]]{1,3}\.){3}[[:digit:]]{1,3}' | egrep -o '[[:digit:]].*'

I assumed you were talking about IPv4 addresses only

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