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I know, for example, that if I want to find lengths of all the occurrences of consecutive 'a's

in input = "1111aaaaa11111aaaaaaa111aaa", I can do

[len(s) for s in re.findall(r'a+', input)]


However, I'm not sure how to do this with a char variable. For instance,

CHAR = 'a'
[len(s) for s in re.findall(r'??????', input)]    # Trying to find occurrences of CHARs..

Is there a way to do this??

share|improve this question
up vote 1 down vote accepted

I think what you're asking for is:

[len(s) for s in re.findall(r'{}+'.format(CHAR), input)]

Except of course that this won't work if CHAR is a special value, like \. If that's an issue:

[len(s) for s in re.findall(r'{}+'.format(re.escape(CHAR)), input)]

If you want to match two or more instead of one or more, the syntax for that is {2,}. As the docs say:

{m,n} Causes the resulting RE to match from m to n repetitions of the preceding RE, attempting to match as many repetitions as possible. For example, a{3,5} will match from 3 to 5 'a' characters. Omitting m specifies a lower bound of zero, and omitting n specifies an infinite upper bound. As an example, a{4,}b will match aaaab or a thousand 'a' characters followed by a b, but not aaab

That gets a little ugly when we're using {} for string formatting, so let's switch to %-formatting:

[len(s) for s in re.findall(r'%s{2,}' % (re.escape(CHAR),), input)]

… or just simple concatenation:

[len(s) for s in re.findall(re.escape(CHAR) + r'{2,}', input)]
share|improve this answer
    
Sorry about the edit, meant to do that on mine :) – Andrew Clark Nov 12 '13 at 23:45
    
THanks!! Sorry, one more question: from your Regex findall, how to detect more than 2 consecutive characters? I thought r'{}1+' will work, but it doesnt :( – user2492270 Nov 13 '13 at 0:27
    
Why did you think 1+ would work? That gives you, e.g, a1+, which is an a followed by one or more 1. Let me edit the answer to explain how to do it. – abarnert Nov 13 '13 at 0:35

Here is a general solution that should work for strings of any length:

CHAR = 'a'
[len(s) for s in re.findall(r'(?:{})+'.format(re.escape(CHAR)), input)]

Or an alternative using itertools (single character only):

import itertools
[sum(1 for _ in g) for k, g in itertools.groupby(input) if k == CHAR]
share|improve this answer
    
If you're going the itertools route, it seems a shame to make each group into a list. Just write a trivial ilen function, or use the one from more-itertools, or inline it as sum(1 for _ in g). – abarnert Nov 12 '13 at 23:48
    
@abarnert yeah that is a good point, edited with your suggestion to avoid the temp list. – Andrew Clark Nov 12 '13 at 23:49

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