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I'm looking for a python library for finding the longest common substring from a set of python strings.

I'have read that it exist to way to solve this problem : - one using suffix trees - the other using dynamic programming.

The method implemented is not important. Otherwise, it is important to have a implementation that can be use for a set of strings and not only two strings

Thanks,

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Check here for Analysis of Longest common substring matching –  ARJUN Oct 21 at 6:07

5 Answers 5

up vote 30 down vote accepted

These paired functions will find the longest common string in any arbitrary array of strings:

def long_substr(data):
    substr = ''
    if len(data) > 1 and len(data[0]) > 0:
        for i in range(len(data[0])):
            for j in range(len(data[0])-i+1):
                if j > len(substr) and is_substr(data[0][i:i+j], data):
                    substr = data[0][i:i+j]
    return substr

def is_substr(find, data):
    if len(data) < 1 and len(find) < 1:
        return False
    for i in range(len(data)):
        if find not in data[i]:
            return False
    return True


print long_substr(['Oh, hello, my friend.',
                   'I prefer Jelly Belly beans.',
                   'When hell freezes over!'])

No doubt the algorithm could be improved and I've not had a lot of exposure to Python, so maybe it could be more efficient syntactically as well, but it should do the job.

EDIT: in-lined the second is_substr function as demonstrated by J.F. Sebastian. Usage remains the same. Note: no change to algorithm.

def long_substr(data):
    substr = ''
    if len(data) > 1 and len(data[0]) > 0:
        for i in range(len(data[0])):
            for j in range(len(data[0])-i+1):
                if j > len(substr) and all(data[0][i:i+j] in x for x in data):
                    substr = data[0][i:i+j]
    return substr

Hope this helps,

Jason.

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4  
Your algorithm has O(n1*n1*(n1 + ... + nK)) time complexity, but using suffix tree it can be reduced to Θ(n1 + ... + nK) en.wikipedia.org/wiki/… –  J.F. Sebastian May 24 '10 at 2:58
7  
is_common_substr = lambda s, strings: all(s in x for x in strings) –  J.F. Sebastian May 24 '10 at 3:07

You could use the SuffixTree module that is a wrapper based on an ANSI C implementation of generalised suffix trees. The module is easy to handle....

Take a look at: here

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# this does not increase asymptotical complexity
# but can still waste more time than it saves. TODO: profile
def shortest_of(strings):
    return min(strings, key=len)

def long_substr(strings):
    substr = ""
    if not strings:
        return substr
    reference = shortest_of(strings) #strings[0]
    length = len(reference)
    #find a suitable slice i:j
    for i in xrange(length):
        #only consider strings long at least len(substr) + 1
        for j in xrange(i + len(substr) + 1, length + 1):
            candidate = reference[i:j]  # ↓ is the slice recalculated every time?
            if all(candidate in text for text in strings):
                substr = candidate
    return substr

Disclaimer This adds very little to jtjacques' answer. However, hopefully, this should be more readable and faster and it didn't fit in a comment, hence why I'm posting this in an answer. I'm not satisfied about shortest_of, to be honest.

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Please check “functional” version of shortest_of. –  tzot Jun 22 '10 at 19:09
    
This misses the last character of the longest common substring if it is at the end of the reference string. It can be fixed by replacing for j in xrange(i + len(substr) + 1, length): with for j in xrange(i + len(substr) + 1, length + 1):. –  RafG Sep 27 '12 at 13:34

I prefer this for is_substr, as I find it a bit more readable and intuitive:

def is_substr(find, data):
  """
  inputs a substring to find, returns True only 
  if found for each data in data list
  """

  if len(find) < 1 or len(data) < 1:
    return False # expected input DNE

  is_found = True # and-ing to False anywhere in data will return False
  for i in data:
    print "Looking for substring %s in %s..." % (find, i)
    is_found = is_found and find in i
  return is_found
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def common_prefix(strings):
    """ Find the longest string that is a prefix of all the strings.
    """
    if not strings:
        return ''
    prefix = strings[0]
    for s in strings:
        if len(s) < len(prefix):
            prefix = prefix[:len(s)]
        if not prefix:
            return ''
        for i in range(len(prefix)):
            if prefix[i] != s[i]:
                prefix = prefix[:i]
                break
    return prefix

From http://bitbucket.org/ned/cog/src/tip/cogapp/whiteutils.py

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3  
Ned, check this answer out. –  slestak Aug 27 '12 at 16:39

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