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How can I obtain the number of overlapping regex matches using Python?

I've read and tried the suggestions from this, that and a few other questions, but found none that would work for my scenario. Here it is:

  • input example string: akka
  • search pattern: a.*k

A proper function should yield 2 as the number of matches, since there are two possible end positions (k letters).

The pattern might also be more complicated, for example a.*k.*a should also be matched twice in akka (since there are two k's in the middle).

share|improve this question
    
I think you mean non-overlapping regex matches. –  jcollado Feb 17 '12 at 8:10
    
@jcollado I think I mean overlapping. b.*o should be found 4 times in bboo. –  jankes Feb 17 '12 at 8:33
    
What's wrong with this answer? –  Kimvais Feb 17 '12 at 8:41
1  
This is pretty easy to do in Perl using just a single pattern match, but I can’t figure out how to make Python behave. For example: () = "bbboobbooo" =~ /(b.*o)(?{push @all, $1})(*FAIL)/g; printf "got %d matches: %s\n", scalar(@all), "@all"; in Perl will print out got 21 matches: bbboobbooo bbboobboo bbboobbo bbboo bbbo bboobbooo bboobboo bboobbo bboo bbo boobbooo boobboo boobbo boo bo bbooo bboo bbo booo boo bo. Is that what you’re looking for? –  tchrist Feb 17 '12 at 15:31
1  
@tchrist Wow... If it is that much simpler to do in perl, I'll use that launguage instead. (I hardly know any of those anyway...) –  jankes Feb 18 '12 at 15:46
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2 Answers

up vote 2 down vote accepted

Yes, it is ugly and unoptimized but it seems to be working. This is a simple try of all possible but unique variants

def myregex(pattern,text,dir=0):
    import re
    m = re.search(pattern, text)
    if m:
        yield m.group(0)
        if len(m.group('suffix')):
            for r in myregex(pattern, "%s%s%s" % (m.group('prefix'),m.group('suffix')[1:],m.group('end')),1):
                yield r
            if dir<1 :
                for r in myregex(pattern, "%s%s%s" % (m.group('prefix'),m.group('suffix')[:-1],m.group('end')),-1):
                    yield r


def myprocess(pattern, text):    
    parts = pattern.split("*")    
    for i in range(0, len(parts)-1 ):
        res=""
        for j in range(0, len(parts) ):
            if j==0:
                res+="(?P<prefix>"
            if j==i:
                res+=")(?P<suffix>"
            res+=parts[j]
            if j==i+1:
                res+=")(?P<end>"
            if j<len(parts)-1:
                if j==i:
                    res+=".*"
                else:
                    res+=".*?"
            else:
                res+=")"
        for r in myregex(res,text):
            yield r

def mycount(pattern, text):
    return set(myprocess(pattern, text))

test:

>>> mycount('a*b*c','abc')
set(['abc'])
>>> mycount('a*k','akka')
set(['akk', 'ak'])
>>> mycount('b*o','bboo')
set(['bbo', 'bboo', 'bo', 'boo'])
>>> mycount('b*o','bb123oo')
set(['b123o', 'bb123oo', 'bb123o', 'b123oo'])
>>> mycount('b*o','ffbfbfffofoff')
set(['bfbfffofo', 'bfbfffo', 'bfffofo', 'bfffo'])
share|improve this answer
    
Thank you very much for your time on this... However, there seems to be some indentation error(s?) in the definition of myprocess - I'm not sure how to fix this... –  jankes Feb 17 '12 at 12:27
    
@jankes Sorry, some indentation was corrupted after using code tag. Now it is correct. –  Shamanu4 Feb 17 '12 at 13:38
    
Thanks for fixing :) It is now much better - extra letters in the middle or after the matching part have no effect. But it still fails with extra characters at the beginning. –  jankes Feb 17 '12 at 13:49
    
@jankes One more fix done. waiting for other bugreports ) –  Shamanu4 Feb 17 '12 at 15:10
1  
I think it does the task really well now. But I've realized two things: 1) judging from @tchrist's comments, Python is not the best language for that task; 2) I actually need all - not only the unique matches. –  jankes Feb 18 '12 at 17:23
show 3 more comments

I think that what you're looking for is probably better done with a parsing library like lepl:

>>> from lepl import *
>>> parser = Literal('a') + Any()[:] + Literal('k')
>>> parser.config.no_full_first_match()
>>> list(parser.parse_all('akka'))
[['akk'], ['ak']]
>>> parser = Literal('a') + Any()[:] + Literal('k') + Any()[:] + Literal('a')
>>> list(parser.parse_all('akka'))
[['akka'], ['akka']]

I believe that the length of the output from parser.parse_all is what you're looking for.

Note that you need to use parser.config.no_full_first_match() to avoid errors if your pattern doesn't match the whole string.

Edit: Based on the comment from @Shamanu4, I see you want matching results starting from any position, you can do that as follows:

>>> text = 'bboo'
>>> parser = Literal('b') + Any()[:] + Literal('o')
>>> parser.config.no_full_first_match()
>>> substrings = [text[i:] for i in range(len(text))]
>>> matches = [list(parser.parse_all(substring)) for substring in substrings]
>>> matches = filter(None, matches) # Remove empty matches
>>> matches = list(itertools.chain.from_iterable(matches)) # Flatten results
>>> matches = list(itertools.chain.from_iterable(matches)) # Flatten results (again)
>>> matches
['bboo', 'bbo', 'boo', 'bo']
share|improve this answer
    
Thanks. Looks well with a.*k and a.*k.*a against akka, but fails with b.*o against bboo. –  jankes Feb 17 '12 at 9:20
    
@jankes In that case with parser = Literal('b') + Any()[:] + Literal('o') I get: [['bboo'], ['bbo']]. What would be the right answer? –  jcollado Feb 17 '12 at 9:55
2  
@jcollado the right answer should be [['bbo'],['bboo'],['boo'],['bo']] –  Shamanu4 Feb 17 '12 at 10:39
    
@Shamanu4 Thanks for your comment. I've updated the answer with the information you provided and now it works for the example. –  jcollado Feb 17 '12 at 11:26
    
Great, so far it seems to work. I hope it is efficient enough, though... –  jankes Feb 17 '12 at 13:04
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