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I'm having a regex blackout here. How do I capture a negative lookbehind pattern again?

I'm trying to remove the scheme (including ://) of a uri unless it is http/https. I'm half way there (or I thought I was, the pattern below doesn't even compile), but I forgot how to actually capture the negative pattern:

preg_replace( '~^(?<!https?)://~', '', $uri );

How can I do this, again?

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Why do you want to remove it? That would change the semantics of the URI. –  Gumbo Apr 1 '11 at 10:46
    
I'm validating a url, and want to prepend http:// if the user has not provided this. However, if user provided ftp:// as a scheme http://ftp://somedomain.com will actually return a valid host with Zend_Uri (the component I'll be using to validate with), namely: ftp. Hope it makes sense, what I'm saying here. :) –  Decent Dabbler Apr 1 '11 at 10:49
    
@fireeyedboy: Then why don’t you rather check whether it contains a scheme at all? –  Gumbo Apr 1 '11 at 10:52
    
@Gumbo: because if a user provided https as a scheme, I don't want to replace it with http. Or am I misunderstanding what you are trying to get at? –  Decent Dabbler Apr 1 '11 at 10:54
    
@fireeyedboy: You should not remove anything but add a http:// only if the URI does not have a scheme at all. –  Gumbo Apr 1 '11 at 11:07

2 Answers 2

up vote 1 down vote accepted
preg_replace('#^((?:.(?<!http))+://)#i', '', $uri);
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Nice one! Althought Gumbo has convinced me of another approach to reach my goals, this does demonstrate what I was looking for initially. I've tried to incorporate https as well with preg_replace('#^((?:.(?<!http|https))+://)#i', '', $uri);, and it works. Very nice! Thanks. –  Decent Dabbler Apr 1 '11 at 12:37

Just a quick thought:

preg_replace ('#^((http[s]{0,1}://)|([a-z]+://))#i', '$2', $uri);
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1  
You can write [s]{0,1} as s?. –  Gumbo Apr 1 '11 at 11:06
    
I had to look a few times at it to see why this is actually working, but that's pretty clever actually. And it does what I need. Thanks! –  Decent Dabbler Apr 1 '11 at 11:08
    
@Gumbo: true, I've changed it to this: 'preg_replace('#^(https?://)|([a-z]+://)#i', '$1', $url); actually. –  Decent Dabbler Apr 1 '11 at 11:09
    
@Gumbo I just thought it was more readable this way. Same goes for enclosing parens your eye catches ( | ) more. –  vbence Apr 1 '11 at 11:27

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