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I need to get the filename from the URL address.

Here is the criteria:

It need to return empty string "" in following scenarios:

http://somedomain.com
http://www.somedomain.com
http://somedomain.com/
http://www.somedomain.com/

And return filename.php in the following scenarios:

http://somedomain.com/filename.php?query
http://www.somedomain.com/filename.php?query
http://somedomain.com/filename.php#query
http://www.somedomain.com/filename.php#query

I found this regular expression

[\w_.-]*?(?=[\?\#])|[\w_.-]*$ from here

however it returns somedomain.com on input http://somedomain.com. I can't figure out how to modify it to ignore the domain when there is no / at the end of it.

If it is difficult to do with regular expressions, I will appreciate a JavaScript solution as well.

Thanx in advance.

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3 Answers 3

up vote 15 down vote accepted

Assuming you are writing script in a browser, there is already a full-featured URL parser for you to take advantage of, without having to write unreliable incomplete regexen. Use an HTMLAnchorElement to read the location-like properties host, pathname, search, hash etc.:

var a= document.createElement('a');
a.href= 'http://somedomain.com/dirname/filename.php?query';
var filename= a.pathname.split('/').pop(); // filename.php
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thank you. I did not know about pathname, etc properties –  miki725 Dec 28 '10 at 22:02

This will put the filename in $1: [^:]+://[^/]+/?([^?#]*)

(p.s. http://rentzsch.github.com/JSRegexTeststand/ is your friend for this sort of test)

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Thank you. This works great however I ended up using a solution by bobince. I though it was simpler. –  miki725 Dec 28 '10 at 22:03

Use this tweaked version of the Reg ex:(added \/ to the existing one)

[\w_.-]*?(?=[\/\?\#])|[\w_.-]*$
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