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/url?q=http://it.wikipedia.org/wiki/Spider-Man_(film)&sa=U&ei=iavVUKuFGsrNswbz74GQBA&ved=0CBYQFjAA&usg=AFQjCNEth5YspFPWp6CInyAfknlEvVgIfA

I need to get just

http://it.wikipedia.org/wiki/Spider-Man_(film)

I tried with \?q=(.*)& but it consider last occurrence of &, so I get

http://it.wikipedia.org/wiki/Spider-Man_(film)&sa=U&ei=iavVUKuFGsrNswbz74GQBA&ved=0CBYQFjAA

http://rubular.com/r/yBiGIMQTUV

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4 Answers 4

up vote 2 down vote accepted

You need to use reluctant matching to match till the first &. With greedy matching (i.e. using * instead of *?), your pattern will match as long string as possible so as to satisfy the complete pattern.

So use this: -

\?q=(.*?)&

Or you can also use character class with negated & which matches every character except &: -

\?q=([^&]*)

Note that, if you don't want your (.*?) to match empty string, then you should use + quantifier. It matches 1 or more occurrence.

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Why when a complemented character class does the job -- and is more efficient? –  fge Dec 22 '12 at 13:46
    
@fge.. Yeah, I have given that option also. Preferrable I like that way too. –  Rohit Jain Dec 22 '12 at 13:47
    
Would be nice to know what's more efficient, but I don't think that ([^&]*) would be more efficient that just doing it lazy. –  Javier Diaz Dec 22 '12 at 13:50
    
@JavierDiaz.. I don't think that would affect much on the efficiency. Because there would be no back-tracking in both cases. It's just the taste of an individual. Whatever fits to your style go with it. Readability is the major concern. –  Rohit Jain Dec 22 '12 at 13:51

Try:

\?q=([^&]+)

and capture the first group.

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You just need to make the * operator lazy, and you do it by adding a ? after it. So it would be .*?

Lazy (or non greedy) means that will stop after the first occurrence of that match, instead of the last one.

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If your in python then sub(r'(\/url\?q\=)|[&][\S]*','',url) should do your work

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