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All I want to do is search a string for instances of two consecutive digits. If such an instance is found I want to group it, otherwise return none for that particular groups. I thought this would be trivial, but I can't understand where I'm going wrong. In the example below, removing the optional (?) character gets me the numbers, but in strings without numbers, the r evaluates to None, so r.groups() throws an exception.

p = re.compile(r'(\d{2})?')
r = p.search('wqddsel78ffgr')
print r.groups()
>>>(None, )    # why not ('78', )?

# --- update/clarification --- #

Thanks for the answers, but the explanations given are leaving me none-the-wiser. Here's a another go at pin-pointing exactly what it is I don't understand.

pattern = re.compile(r'z.*(A)?')
_string = "aazaa90aabcdefA"
result = pattern.search(_string)
result.group()
>>> zaa90aabcdefA
result.groups()
>>> (None, )

I understand why result.group() produces the result it does, but why doesn't result.groups() produce ('A', )? I thought it worked like this: once the regex hits the z it then matches right to the end of the line using .*. In spite of .* matching everything, the regex engine is aware that it passed over an optional group, and since ? means it will try to match if it can, it should work backwards to try and match. Replacing ? with + does return ('A', ). This suggests that ? won't try and match if it doesn't have to, but this seems to contrast with much of what I've read on the subject (esp. J. Friedl's excellent book).

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For me print r.groups() gives (None,) –  Eric Nov 7 '12 at 13:26
    
If you want return just match and not an array, you should use r.groups()[0] –  Ωmega Nov 7 '12 at 13:42
    
@Eric - quite right, edited accordingly. –  Paul Patterson Nov 7 '12 at 14:50

5 Answers 5

This works for me:

p = re.compile('\D*(\d{2})?')
r = p.search('wqddsel78ffgr')
print r.groups()  # ('78',)

r = p.search('wqddselffgr')
print r.groups()  # (None,)
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@Ωmega: \D is a shorthand for [^\d] –  Eric Nov 7 '12 at 13:32

Use regex pattern

(\d{2}|(?!.*\d{2}))

(see this demo)

If you want be sure there are exactly 2 consecutive digits and not 3 or more, go with

((?<!\d)\d{2}(?!\d)|(?!.*(?<!\d)\d{2}(?!\d)))

(see this demo)

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1  
This matches the empty string, so it just returns ('',). –  dbaupp Nov 7 '12 at 13:16
    
@dbaupp - It works for me... I have updated my answer with demo links –  Ωmega Nov 7 '12 at 13:22
    
Works for me too now! The version with just (\d{2}|) was the broken one. –  dbaupp Nov 7 '12 at 14:40
    
dbaupp - You have probably seen someone else answer then... –  Ωmega Nov 7 '12 at 15:45

The ? makes your regex match the empty string. If you omit it, you could just check the result like this:

p = re.compile(r'(\d{2})')
r = p.search('wqddsel78ffgr')
print r.groups() if r else ('',)
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Remember that you can search for all matches of a RE in a string easily using findall():

re.findall(r'\d{2}', 'wqddsel78ffgr') # => ['78']

If you don't need the positions where the match occurs, this seems like a simpler way to accomplish what you're doing.

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? - is 0 or 1 repetitions. So the regex processor first tries to find 0 repetitions, and... finds it :)

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2  
Wrong, if subtly. Regex processors are greedy, so they'd first try to find the 1 repetition, and only if that fails, accept the lack of a match. Otherwise, patterns that accept a cardinality of 0 would never match anything. –  millimoose Nov 7 '12 at 13:57
    
If that's the case, then why isn't my expression finding the single repetition of two consecutive numbers? –  Paul Patterson Nov 7 '12 at 14:48
1  
Because the number of repetitions is pointed - 0 or 1, python search from the begining of the string, and finds FIRST match in the begining of the string = 0 repetitoions of pattern, so for example: findall for this regexp gives: '','','','','','','','78','','','','','' is it greed or non-greed? Well yes and no, because 0 repetitions is pointed. So give me back my reputation, you are wrong, millimoose –  RaSergiy Nov 7 '12 at 19:42

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