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I need a java regex to extract parts of a URL.

For example, take the following URLs:

http://localhost:81/example
https://test.com/test
http://test.com/

I would want my regex expression to return:

http://localhost:81
https://test.com
http://test.com

I will be using this in a Java patcher.

This is what I have so far, problem is it takes the whole URLs:

^https?:\/\/(?!.*:\/\/)\S+
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I wouldn't use a regex for this... I would just look for the first / after the first :// using basic String functions (assuming you know all your URLs will contain a ://)... –  jahroy Feb 13 '13 at 20:40
    
I won't be using a Java program for this. I will need to provide a regex expression to a program that will use the expression. –  user2019260 Feb 13 '13 at 20:46
1  
Maybe give regular-expressions.info a look? This is a pretty simple regex problem and that can help you get started. –  CorrugatedAir Feb 13 '13 at 20:48
    
this is what I have so far ^https?:\/\/(?!.*:\/\/)\S+ the problem is it takes in the end too after the port –  user2019260 Feb 13 '13 at 20:56

4 Answers 4

up vote 1 down vote accepted

Building off your attempt, try this:

^https?://[^/]+

I'm assuming that you want to capture everything until the first / after http://? (That's what I was getting from your examples - if not, please post some more).

Are these URLs given as one input, or are each a different string?

Edit: It was pointed out that there were unnecessary escapes, so fixed to a more condensed version

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+1 but there is no need to escape / in regex since it is not meta-character. This version ^https?://[^/] should do the trick (based on OP examples). –  Pshemo Feb 13 '13 at 21:23
    
@Pshemo - thanks. I probably should have caught that, but I just wanted to build on what the OP came up with. Updated. –  CorrugatedAir Feb 13 '13 at 21:49
    
@CorrugatedAir update seems very similar to #OscarMederos answer –  Tom Sarduy Feb 13 '13 at 22:09
    
@TomSarduy It's the same answer I posted originally, minus the extra escape characters that were pointed out in the comments above –  CorrugatedAir Feb 14 '13 at 12:28
import Java.net.URL

//snip

URL url = new URL(urlString);
return url.getProtocol() + "://" + url.getAuthority();

The right tool for the right job.

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nice, that's much better than a regex approach. –  David M Feb 13 '13 at 20:44
    
I won't be using a Java program for this. I will need to provide a regex expression to a program that will use the expression. –  user2019260 Feb 13 '13 at 20:47
    
@user2019260 hmm .. (.*://.*?)(?:/|$) –  Explosion Pills Feb 13 '13 at 20:55
    
This is what I have so far ^https?:\/\/(?!.*:\/\/)\S+ problem is it takes in the end of the URL too after the port –  user2019260 Feb 13 '13 at 20:56

A simple one: ^(https?://[^/]+)

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Language independent answer:

For the whitespace: replace /^\s+/ with the empty string.

For removing the path information from the URL, if you can assume there aren't any slashes in the path (i.e. you're not dealing with http://localhost:81/foo/bar/baz), replace /\/[^\/]+$/ with the empty string. If there might be more slashes, you might try something like replacing /(^\s*.*:\/\/[^\/]+)\/.*/ with $1.

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