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I need some help trying to select a certain part of a string with regular expression.

Here is the string.

http://site.com/bathroom.jpg&h=165&w=204&zc=1&q=90&a=c

And I need to select "&h=165&w=204&zc=1&q=90&a=c" part of it out.

Would regular expression be the best approach to this and if so, how?

Thanks...

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1  
Shouldn't that actually be a ? to start the query string, not a &? Also, what language are you using? –  Wiseguy Nov 29 '11 at 19:28
    
Yeah, what language are you using? And, is this the URL of the page the person is actually on, or is this a URL that's stored somewhere that you need to parse? Because if it's the URL of the page, you will be able to prob use $_SERVER variables –  Steph Rose Nov 29 '11 at 19:33

2 Answers 2

up vote 1 down vote accepted

Find the first & and take everything starting from it. The regex:

&.*
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Thank you...I had & and didn't think to put .* –  Rick Nov 29 '11 at 19:44

use substring like

function getSecondPart(str) {
    return str.split('jpg')[1];
}
// use the function:
alert(getSecondPart("http://site.com/bathroom.jpg&h=165&w=204&zc=1&q=90&a=c"));
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