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I've got log file with lines like:

07:44:24||||234.234.234.234|123.123.123.123|www.website.pl/some,site.html|a:0:{}

How do I obtain only www.website.pl/some,site.html from all lines?

Can this be done with "sed" or other command?

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3 Answers 3

up vote 1 down vote accepted

Yes, with awk.

Simply process your file with

awk -F '|' '{print $7}'

A little transcript on your example line:

$ echo '07:44:24||||234.234.234.234|123.123.123.123|www.website.pl/some,site.html|a:0:{}' | awk -F '|' '{print $7}'
www.website.pl/some,site.html

CAVEAT This assumes there are no other pipes in your file except those used for delimters.

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thats it! thanks –  Kamilos May 22 '12 at 6:46

Cut also supports delimiter and field(s) selection.

$ cut -d\| -f7
07:44:24||||234.234.234.234|123.123.123.123|www.website.pl/some,site.html|a:0:{}
www.website.pl/some,site.html
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This might work for you:

echo '07:44:24||||234.234.234.234|123.123.123.123|www.website.pl/some,site.html|a:0:{}'|
sed 's/^\(\([^|]*\)|\)\{7\}.*/\2/'
www.website.pl/some,site.html

Or if the sites all begin www:

echo '07:44:24||||234.234.234.234|123.123.123.123|www.website.pl/some,site.html|a:0:{}'|
sed 's/.*\(www[^|]*\).*/\1/'
www.website.pl/some,site.html
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