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I am dealing with a table called ipaddr with a column called destination and have entries in the column that look like and are of type varchar

tunnel://169.96.88.11:80/
url://169.96.88.30
169.96.88.59:443

These are all possibilities. I want to write a regex statement that returns true when it just matches the first three octets of the IP and nothing more. So, all three examples above match 169.96.88.

How do you write a regular expression so that I select rows in the table based on a specific ip address subnet?

select * from ipaddr where destination like '%169.96.88%'

That is, I am tying to collect all records that have a destination entry in the 169.96.88.* block.

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2 Answers 2

up vote 1 down vote accepted
SELECT *
FROM   ipaddr 
WHERE  destination ~ '(://|^)169\.96\.88\.[0-9]';

The pattern starts at the beginning of the string or with ://.
Then follows the network, a dot and at least one more digit.

Tested with PostgreSQL 9.1.4. Note that I use the now default standard_conforming_strings. Else you have to write:

WHERE  destination ~ E'(://|^)169\\.96\\.88\\.[0-9]';
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tunnel://\(\([[:digit:]]\{1,3\}[.]\)\{4\}\):80/ -> \2

This regular expression extracts the IP, and returns it as \2.

Depending on the software you are using, you use this regexp with minor changes '->' means 'return'.

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actually there many different character options before and after the ip entry for example url://169.96.88.11:443 is valid or 169.96.88.11:80 or 169.96.88.11 is all possibilities how do I write a regex that ignores the first characters up into the first number? –  user7980 Jul 19 '12 at 21:09
    
If there are many possibilities in place of 'tunnel', you replace 'tunnel' with \(tunnel|url|OTHER_STR\), but in this case you replace the final \2 with \3 –  alinsoar Jul 19 '12 at 22:04
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