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I am looking for a regex to parse the part between a = and an & to get the first url variable.

Example url:

http://vandooren.be?v=123456&test=123

I need to get the 123456 from the string.

My last try was

var pattern:RegExp = /\=|\&/;
var result:Array = pattern.exec(dg.selectedItem.link[0]);
trace(result.index, " - ", result);

But i am still getting errors.

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Is there a URI/URL(Parser) class? Otherwise, you can split at ? take the last token, then split along &, then for each token, find the one starting with the name and split along =. –  nhahtdh Aug 7 '12 at 6:55
    
yes i will get the variable from the url so stupid i didn't think about this –  Toon Van Dooren Aug 7 '12 at 7:08

2 Answers 2

up vote 1 down vote accepted

try this follow code.

var myPattern:RegExp = /(?<==).+(?=&)/;   
var str:String = "http://vandooren.be?v=123456&test=123";
var result:Array = myPattern.exec(str);
trace(result[0]); //123456

var myPattern:RegExp = /(?<==).+(?=&)/;   
var str:String = "youtube.com/watch?v=nCgQDjiotG0&feature=youtube_gdata";
var result:Array = myPattern.exec(str);
trace(result[0]); //nCgQDjiotG0

Assertions

foo(?=bar)  Lookahead assertion. The pattern foo will only match if followed by a match of pattern bar.
foo(?!bar)  Negative lookahead assertion. The pattern foo will only match if not followed by a match of pattern bar.
(?<=foo)bar Lookbehind assertion. The pattern bar will only match if preceeded by a match of pattern foo.
(?<!foo)bar Negative lookbehind assertion. The pattern bar will only match if not preceeded by a match of pattern foo.
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it works on that url but when i get an url like this 'youtube.com/watch?v=nCgQDjiotG0&feature=youtube_gdata'; it returns null –  Toon Van Dooren Aug 7 '12 at 7:29
    
my answer edited. it works well a following url 'youtube.com/watch?v=nCgQDjiotG0&feature=youtube_gdata' recheck please. –  bitmapdata.com Aug 7 '12 at 7:31
    
I am getting TypeError: Error #1009: Cannot access a property or method of a null object reference. I just copied what u gave in then i retyped it myself and it worked :) ty –  Toon Van Dooren Aug 7 '12 at 7:38
    
I don't understand. no Problem. carefully rechek please sir. –  bitmapdata.com Aug 7 '12 at 7:41
    
probably one of many problems with copy/paste :) thx alot –  Toon Van Dooren Aug 7 '12 at 7:44

Try this:

(?<==)[^&]*(?=&)

This regex will match whatever is after the '=' and before the first next '&'.

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this gives an error in flex :| i tried something similar before turns out it needs to meet certain conditions –  Toon Van Dooren Aug 7 '12 at 7:08

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