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This question already has an answer here:

I have two strings a and b with me. I want a regular expression pattern such it will match the longest possible substring of b with a from the beginning of a.

For example,

a = "aaaabaaa"
b = "aaazb"
answer_i_need = "aaa"

example 2,

a = "aaaabaaa"
b = "aaaa"
answer_i_need = "aaaa"      

example 2,

a = "aaaabaaa"
b = "baaa"
answer_i_need = "" 

I know the option of finding all substrings of b and check whether it matches with a, but it will take too long as the strings are very very long and I am using Python. To be honest I am not sure whether it is possible, anyway I would be very thankful if I could find one such a solution.

Edit: In this question the OP needs an elegant answer, while I am dealing with very long strings( almost 100,000 characters) , so I would like to know the most efficient answer possible.

share|improve this question

marked as duplicate by femtoRgon, askewchan, Jean-Bernard Pellerin, Vishal, CloudyMarble May 17 '13 at 4:24

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I am sorry, I didn't come across that question,let me read it and reply.. – coding_pleasures May 16 '13 at 15:41
    
@DSM to be honest, I didn't find the answer I as looking for in that link because the OP needs an elegant answer while I need an efficient one. So most of the answers posted there weren't clear on how they efficient they are. – coding_pleasures May 16 '13 at 16:29
    
@coding_pleasures So look at those answers, and test them yourself to see which is fastest on your data. If we all test it for you, we might get different results in different cases. – askewchan May 16 '13 at 19:18
    
@DSM your answer os.path.commonprefix() was perfect for my needs. – coding_pleasures May 18 '13 at 14:50
    
Fine idea to use os.path.commonprefix(), I didn't know its existence. However, according to tests I did on two strings of length 1000 and 4720`000, commonprefix() takes around 15% more time to execute than my solution. I suppose you say that it fulfills your needs for other reason than efficiency. – eyquem May 18 '13 at 16:19

I think your are complicating things. I love regexes but I don't find we must try to use them for tasks they aren't fitted to.

Your problem is easy solved like follows:

import re


def longest_common_beginning(a,b):
    i = 0
    for i in xrange(min(len(a),len(b))):
        if a[i]!=b[i]:
            return a[:i]
    else:
        return a[:i+1]

for a,b,ain in (("aaaabaaa","aaazb","aaa"),
                ("aaaabaaa","aaaa", "aaaa"),
                ("aaaabaaa","baaa","")):
    x = longest_common_beginning(a,b)  
    print ('a   : %r\n'
           'b   : %r\n'
           'ain : %r\n'
           'x   : %r   ain==x is %s\n'
           % (a,b,ain,x,ain==x))

i=0 is needed for the cases in which one of a or b is an empty string.

share|improve this answer
    
Thanks for answering, but unfortunately this answer is little too inefficient when the strings become very long( about 100,000 char long). That's why I was hoping regex might help me in this regard. – coding_pleasures May 16 '13 at 17:07
1  
I think regexes are completely out of subject for the problem. And I have no other idea, not only how faster, but even how differently from my code it could be done. I've just tried to use enumerate() or izip() in my code, but it's slower. I'm eager to see someone to propose a better solution than me. The only possibility that remains, in my opinion, is to code the function in C – eyquem May 16 '13 at 17:57
    
As @eyquem says, I don't think you'll improve performance by using a regex here. For a regex to solve this, it will have to do a lot of backtracking. A simple loop like the one above seems like the best choice. – Francis Gagnon May 16 '13 at 18:05
    
The thread mentioned by @DSM shows a nice regex solution to this. You will code less, but it will be much slower than a simple loop like the one above. – Francis Gagnon May 16 '13 at 18:09
    
@Francis Yes, I've read the answers in the cited thread, and they say that their solutions are not efficient. So I think one must not wait more after a better magical solution using regex. – eyquem May 16 '13 at 18:13

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