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Text File:

auto lo eth0 eth0.2 eth0.3
iface lo inet loopback
iface eth0 inet dhcp
iface eth0.2 inet static
      address 192.168.67.1
      network 192.168.67.0
      netmask 255.255.255.0
      broadcast 192.168.67.255
iface eth0.3 inet static
      address 192.168.68.1
      network 192.168.68.0
      netmask 255.255.255.0
      broadcast 192.168.68.255

Extarct only eth0 word only not eth0.2 or eth0.3 Desired:eth0 word,its line number

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If your grep version supports the -P flag:

grep -noP "(?<=^| )eth0(?=$| )" file.txt

Results:

1:eth0
3:eth0
share|improve this answer
    
Does grep really support lookaround? – Joey Oct 31 '12 at 6:23
    
@Joey: I can confirm that GNU grep does, but only with Perl regex enabled (the -P flag). Cool huh? – Steve Oct 31 '12 at 6:24
    
In FreeBSD, if you install the devel/pcre port, it gives you a pcregrep binary that functions like GNU grep's -P option. – ghoti Nov 1 '12 at 4:00
1  
By the way, +1. This would have been my answer if it wasn't here already. – ghoti Nov 1 '12 at 4:00

If I understood your requirement correctly:

awk 'NR>1 && / eth0 /{print "eth0", NR}' file
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$> ... | grep -P "eth0[^\.]" 
auto lo eth0 eth0.2 eth0.3
iface eth0 inet dhcp

Btw,, what do you mean by "extract eth0 word only"? There is -o flag, for example:

$> ... | grep -o -P "eth0[^\.]"
eth0 
eth0
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I guess op wanted to match non-aliased, non-lookback interface like:

awk '$1 == "iface" && $2 ~ /eth[0-9]+$/ { print $2}'

or even:

awk -vFS='[ .]' '$1 == "iface" && $2 ~ /^eth/ { print $2; exit}'
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Extarct only eth0 word only not eth0.2 or eth0.3 Desired:eth0 word,its line number

Do it with grep:

grep -on 'iface eth0 ' file

Output:

3:iface eth0 

Append | sed 's/iface //' to remove iface.

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$ awk -v iface="eth0" '$0 ~ "(^| )"iface"( |$)" { print NR, iface }' file
1 eth0
3 eth0
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