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Is there a character that does the same thing as the asterix mark in unix (*).. that is, ignore everything after that letter ? (Including special characters) For example, i want to match the following with just one regex expression

http://abc.com/blah
http://abc.com/blah/blah
http://abc.com/blah?blah/blah

Sorry, couldn't find this somewhere but i have a feeling it must be something elementary.

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3 Answers 3

You can use .* (a dot followed by a star). Dot means "match (almost) any character". Star means "zero or more times". It does not ignore anything, it matches anything. You could try this regular expression:

^http://abc\.com/blah.*$

Or perhaps just this (depending on how you are using it):

^http://abc\.com/blah

Note that it will also match http://abc.com/blahblah and will fail to match http://abc.com/./blah. If this is a problem, you might want to consider using a URL parsing library instead.

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Niche case, but your string will match "abcxcom/blah"; also. –  Graham Charles Oct 2 '11 at 6:06
    
thanks. I found this - stevenlevithan.com/demo/parseuri/js should do what i need. –  Illusionist Oct 2 '11 at 8:22

Yep, that would be ".*" -- the dot matches anything, and the asterisk means as many as you want.

So, in your example:

 http://abc[.]com/blah.*

You need the [.] in brackets so that it will match just the actual literal "dot".

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1  
It might be a good idea to include a start of string anchor too, to avoid accidentally matching http://example.com/redirect?url=http://abc.com/blah. –  Mark Byers Oct 2 '11 at 6:18
    
Yah, good catch. We're both air coding... –  Graham Charles Oct 2 '11 at 17:50

In which language are you writing you regex? If it's in Java the doc is here: http://download.oracle.com/javase/6/docs/api/java/util/regex/Pattern.html

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javascript ,and thanks –  Illusionist Oct 2 '11 at 8:23

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