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as opposed to regex:'foo.+bar'

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up vote 5 down vote accepted

Use a group:

foo(.+?)bar

Then you will be able to refer to the group as $1 or \1, depending on the language and what you are doing with it.

As always, let me recommend Regular-Expressions.info for learning all about regexes.

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thank you! -marienbad – themirror Feb 23 '10 at 17:40
    
Not sure if not hungry notation (.*?) is available in all regex implementations. – lollinus Feb 23 '10 at 17:41

An alternative would be to use lookaround if the regex flavor you're using (which you didn't specify) supports it. .NET, Python do, Ruby and JavaScript don't (fully), for example:

(?<=foo).+(?=bar)

matches any number of characters if they are preceded by foo and followed by bar.

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perl and PHPs preg_ functions also support this. – Michael Speer Feb 23 '10 at 19:02
    
Yes, and I also forgot Java. – Tim Pietzcker Feb 23 '10 at 20:27

Just use:

/foo(.+)bar/
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You can use:

foo(.+?)bar

or

foo(.*?)bar

The 2nd one will work even when there is nothing between foo and bar

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