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This question already has an answer here:

string: XXaaaXXbbbXXcccXXdddOO

I want to match the minimal string that begin with 'XX' and end with 'OO'.

So I write the non-greedy reg: r'XX.*?OO'

>>> str = 'XXaaaXXbbbXXcccXXdddOO'
>>> re.findall(r'XX.*?OO', str)
['XXaaaXXbbbXXcccXXdddOO']

I thought it will return ['XXdddOO'] but it was so 'greedy'.

Then I know I must be mistaken, because the qualifier above will firstly match the 'XX' and then show it's 'non-greedy'.

But I still want to figure out how can I get my result ['XXdddOO'] straightly. Any reply appreciated.

Till now, the key point is actually not about non-greedy , or in other words, it is about the non-greedy in my eyes: it should match as few characters as possible between the left qualifier(XX) and the right qualifier(OO). And of course the fact is that the string is processed from left to right.

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marked as duplicate by Kobi, devnull, Lev Levitsky, Karl Nicoll, Ismael Jan 25 '14 at 13:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Perhaps re.findall(r'XX[^X]*OO', str)? – devnull Jan 25 '14 at 11:15
    
There's nothing about being greedy in your regex; the non-greedy quantifier would have had an effect if you had input like XXaaaOOXXbbbOOXXcccOOXXdddOO. – devnull Jan 25 '14 at 11:17
    
possible duplicate of Difference between .*? and .* for regex – Kobi Jan 25 '14 at 11:37
    
@devnull I know I am confused by some concepts, but I want to realize the 'greedy' in my subconscious. And if the input is XXaaaXXbbbXXcccXXdXddOO, then re.findall(r'XX[^X]*OO', str) will not work. – joooohnli Jan 25 '14 at 11:47
    
@joooohnli Yes, it's evident that you're getting confused. Please refer to the linked question to get a better handle on greedy vs. non-greedy regular expressions. – devnull Jan 25 '14 at 11:54

How about:

.*(XX.*?OO)

The match will be in group 1.

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this works, thank you! sorry for no vote up due to not enough reputation~@M42 – joooohnli Jan 25 '14 at 12:51
    
@joooohnli: Thank you, glad it helped. You may accept the answer. – Toto Jan 25 '14 at 12:54

Regex work from left to the right: non-greedy means that it will match XXaaaXXdddOO and not XXaaaXXdddOOiiiOO. If your data structure is that fixed, you could do:

XX[a-z]{3}OO

to select all patterns like XXiiiOO (it can be adjusted to fit your your needs, with XX[^X]+?OO for instance selecting everything in between the last XX pair before an OO up to that OO: for example in XXiiiXXdddFFcccOOlll it would match XXdddFFcccOO)

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Indeed, issue is not with greedy/non-greedy… Solution suggested by @devnull should work, provided you want to avoid even a single X between your XX and OO groups.

Else, you’ll have to use a lookahead (i.e. a piece of regex that will go “scooting” the string ahead, and check whether it can be fulfilled, but without actually consuming any char). Something like that:

re.findall(r'XX(?:.(?!XX))*?OO', str)

With this negative lookahead, you match (non-greedily) any char (.) not followed by XX

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negative lookahead, that's it! thank you so much!@mont29 – joooohnli Jan 25 '14 at 12:42

The behaviour is due to the fact that the string is processed from left to right. A way to avoid the problem is to use a negated character class:

XX(?:(?=([^XO]+|O(?!O)|X(?!X)))\1)+OO
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