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Driving myself nuts. I am trying to get just the domain name (http://www.example.com) out of access.log. What the log looks like:

tail access.log 

Fri, 13 Jul 2012 20:32:03 -0700,INFO,6fgmd8fk,params,http://www.example.com/images/CIV-260.jpg|

I have tried many variations of this one-liner (with sed and awk):

tail -4 access.log |grep http |awk {'print $6'} |cut -c28- |awk '$1>".com"' |sort |uniq

http://www.example.com/2713-7807.jpg|
http://www.example.com/2713-7808.jpg|
http://barfoo.com/img/14616_20120711182527.jpg|
http://foobar.com/css/14616_20120713142151.css|

I am stuck.

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3 Answers 3

up vote 2 down vote accepted

Using grep:

grep -Po '(?<=http://)[^/]+' access.log | sort -u

If you want to have http:// as a part of domain name,

grep -Po 'http://[^/]+' access.log | sort -u
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this works great as well. Thanks so much. –  jdorfman Jul 14 '12 at 6:36
    
This actually worked out a lot better thanks! gist.github.com/3109778 –  jdorfman Jul 14 '12 at 7:01
1  
@jdorfman: Just an FYI, you can use tac to reverse the stream instead of sort -nr. –  Thor Jul 14 '12 at 8:10
    
@Thor thanks I will make sure to start using tac =) –  jdorfman Jul 14 '12 at 14:16

Maybe just

awk -F/ '{print $3}'

if you don't have more '/' than you example shows. Notice this is just the domain name, as your question asks.

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perfect thanks =) –  jdorfman Jul 14 '12 at 6:34

Using sed:

sed -n 's|.*\(http://[^/]*\)/.*|\1|p' access.log | sort -u
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