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I am trying to make a regex that will find certain cases of incorrectly entered fractions, and return the numerator and denominator as groups.

These cases involve a space between the slash and a number: such as either 1 /2 or 1/ 2.

I use a logical-or operator in the regex, since I'd rather not have 2 separate patterns to check for:

r'(\d) /(\d)|(\d)/ (\d)'

(I'm not using \d+ since I'm more interested in the numbers directly bordering the division sign, though \d+ would work as well).

The problem is, when it matches one of the cases, say the second (1/ 2), looking at all the groups gives (None, None, '1', '2'), but I would like to have a regex that only returns 2 groups--in both cases, I would like the groups to be ('1', '2'). Is this possible?

Edit: I would also like it to return groups ('1', '2') for the case 1 / 2, but to not capture anything for well-formed fractions like 1/2.

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What is the required outputs for 1/2 and 1 / 2? –  Naveed S Feb 6 '13 at 5:08
    
Good point, updated question. –  Bird Jaguar IV Feb 6 '13 at 14:22

2 Answers 2

up vote 3 down vote accepted

(\d)(?: /|/ | / )(\d) should do it (and only return incorrectly entered fractions). Notice the use of no-capture groups.

Edit: updated with comments below.

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What does the first non-capture group do? Just make the | work for the two non-captures? –  Bird Jaguar IV Feb 6 '13 at 14:08
    
I updated the question in response to Naveed's comment, but I think this is the way I'll go (but adding the case for 1 / 2, i.e. (\d)(?:(?: /)|(?:/ )|(?: / ))(\d)). If you can update it, I'll accept. –  Bird Jaguar IV Feb 6 '13 at 14:35
    
At least get rid of the inner groups: (\d)(?: /|/ | / )(\d). –  Tim Pietzcker Feb 6 '13 at 14:37
    
I updated it, thanks for the tip Tim, I wasn't sure of operator order. –  Nick Garvey Feb 6 '13 at 18:48

What about just using (\d)\s*/\s*(\d)?

That way you will always have only two groups:

>>> import re
>>> regex = r'(\d)\s*/\s*(\d)'
>>> re.findall(regex, '1/2')
[('1', '2')]
>>> re.findall(regex, '1 /2')
[('1', '2')]
>>> re.findall(regex, '1/ 2')
[('1', '2')]
>>> re.findall(regex, '1 / 2')
[('1', '2')]
>>>
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I like this one because of the generality. Unfortunately it's twice as slow as the other answer when doing substitutions, which wouldn't be a problem but all the regex's that I'm doing are starting to add up in my application... –  Bird Jaguar IV Feb 6 '13 at 15:13

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