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Trying to write a RE to recognize date format mm/dd in Python

reg = "((1[0-2])|(0?[1-9]))/((1[0-9])|(2[0-9])|(3[0-1])|(0?[0-9]))"
match = re.findall(reg, text, re.IGNORECASE)
print match

For text = '4/13' it gives me

[('4', '4', '', '13', '13', '', '', '')]

but not

'4/13'

Thanks, Cheng

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Possible duplicate of Converting string into datetime –  Jack Maney May 7 '12 at 15:04

2 Answers 2

up vote 1 down vote accepted

The other answers are more direct, but you could also add an extra pair of braces around your regex:

reg = "(((0?[1-9])|(1[0-2]))/((1[0-9])|(2[0-9])|(3[0-1])|(0?[0-9])))"

Now findall will give you:

[('4/13', '4', '4', '', '13', '13', '', '', '')]

You can now extract '4/13' from above.

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cool, it works. –  cheng May 7 '12 at 15:10
    
by the way, how do I get rid of the 4s and 13s? –  cheng May 7 '12 at 15:10
    
You can't, using findall in this case. findall finds all patterns within pairs of braces. So you end up with the outer pattern '4/13' you are looking for along with some inner patterns like '4', '13'... –  mohit6up May 7 '12 at 15:21

dont't use re.findall. use re.match:

reg = "((0?[1-9])|(1[0-2]))/((1[0-9])|(2[0-9])|(3[0-1])|(0?[0-9]))"
match = re.match(reg, text, re.IGNORECASE)
print match.group()
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