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There is one problem bother me for a long time.

In Python, the regex always match the longest string in the content.

For example, the content is below:

<test> A <br> B <br>

If I use the regex re.compile('/<test/>(\w\s)+/<br/>'), python match longest string which means <test> A <br> B <br>

How can I match the shortest string which is <test> A <br> ?

Thanks for your reading and reply.

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1  
Add a ? to your + to make it non-greedy (the it does not always match the longest string in the content) –  eumiro Dec 12 '11 at 8:29
    
Hi, I think that adding ? is not a good way to solve this problem. Because ? means 0 or 1 time(s), it's will match the longest string in this simple cause and other more complex cause, too. Thanks for your reply. –  Jimmy Dec 12 '11 at 8:42
1  
@Jimmy the ? has more than one meaning in regex and if you put it after a quantifier, then it does mean "Make this quantifier non-greedy" –  stema Dec 12 '11 at 8:53
    
Oh, I know what you mean, I will try later. I misunderstood your meaning. Sorry for that. –  Jimmy Dec 12 '11 at 9:05
1  
A universal useful principle in life is that it's highly informative to study a documentation before bumping into grotesquely-basic questions. A second useful principle on SO is that it's often very informative to make a search, particularly for questions asked one million times. –  eyquem Dec 12 '11 at 9:41

4 Answers 4

up vote 3 down vote accepted

Your regex looks really strange. I think you mean:

re.compile('/<test>[\w\s]+<br>/')

And in that case you can make it 'non-greedy' using a question mark:

re.compile('/<test>[\w\s]+?<br>/')
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Thank you very much, it's goes very well. –  Jimmy Dec 12 '11 at 9:10
    
@Dan Why the two / ? There's no tag PHP. - I wonder why [\w\s]+? instead of .+? , also, but it's Jimmy that must answer. –  eyquem Dec 12 '11 at 9:25

From the docs:

*?, +?, ??
The '*', '+', and '?' qualifiers are all greedy; they match as much text as possible. Sometimes this behaviour isn’t desired; if the RE <.*> is matched against '<H1>title</H1>', it will match the entire string, and not just '<H1>'. Adding '?' after the qualifier makes it perform the match in non-greedy or minimal fashion; as few characters as possible will be matched. Using .*? in the previous expression will match only '<H1>'.

But you shouldn't be using regular expressions for XML.

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You need to use non-greedy matching, which can be found in the manual (just search for non-greedy):

Regular expressions - Python documentation

In your case, I believe the correct regex would be: re.compile('/<test/>(\w\s)+?/<br/>')

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@downvoter, care to elaborate? –  Tomáš Plešek Dec 12 '11 at 8:33
    
I didn't downvote, but I assume because you adopted the wrong regex from the OP, (\w\s)+? is wrong, should be [\w\s]+? –  stema Dec 12 '11 at 8:40
    
Of course not. Elaborating would mean that their argument could be picked apart and they'd be made to look like a fool. Easier to just hit and run. –  Ignacio Vazquez-Abrams Dec 12 '11 at 8:40
    
@IgnacioVazquez-Abrams, sorry, everyone is able to cast every vote he wants for every reason he likes, I am not able to explain every vote on SO and belief me, there are a lot of votes I don't understand. –  stema Dec 12 '11 at 8:47
    
Ok, let's drop the discussion, I was just curious what was the reason. @stema: Maybe so, I didn't focus on the regex itself, more on the greedy/non-greedy part. You're right of course –  Tomáš Plešek Dec 12 '11 at 10:21
re.compile('/<test/>(\w\s)+?/<br/>')

Notice the ? after (\w\s)+

For more detail, see http://docs.python.org/howto/regex.html#greedy-versus-non-greedy

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