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I am querying against a hive table that has a field out_url that has raw url encoding, like:

http%3A%2F%2Fwww.example.com%2Findex.php%3Fpage%3D260%26id%3D22

I want to extract only the domain, and that would be possible with `parse_url(out_url, 'HOST') if the url was not raw-encoded.

To get around this, I'm doing this ugly double regexp replacement like:

parse_url(regexp_replace(regexp_replace(out_url, '%3A', ':'), '%2F', '/'), 'HOST')

that converts the %3A to : and %2F to / and then extracts the domain. I understand that I could write a Java UDF to do this, but that's not a great option for me as I currently mostly suck at writing Java.

Ideas? Is it possible to write a Python UDF?

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1 Answer 1

there seems to be an easy way here which uses Java reflection: http://mail-archives.apache.org/mod_mbox/hive-user/201109.mbox/%3C15C962F3417BF94ABEAB2314AF92A16A1FF9CE@SVR-PR-MB2.cb.careerbuilder.com%3E

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Thanks for the answer, but the question requested a way of doing this without writing Java. –  idris Mar 20 '13 at 18:33
    
Sorry for that. My understanding was that you didn't want to write Java, but you would agree using Java code (just one line you have to copy in your hive query). –  benjguin Mar 22 '13 at 17:41

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