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I am trying out the difflib library. I have two lists: L_1 and L_2 containing strings. I want to know, if those sequences are similar (order is not important).

L_1 = ["Bob", "Mary", "Hans"]
L_2 = ["Bob", "Marie", "Háns"]

should be ok. But

L_1 = ["Nirdosch", "Mary", "Rolf"]
L_2 = ["Bob", "Marie", "Háns"]

should not be ok.

I came up with the idea of iterating over the first list L_1 and to match every element of L_1 by the method

difflib.get_close_matches()

against the second list L_2. If there was a match with a ratio bigger then let's say 0.7 remove it from L_2 and continue. But I doubt it is a good plan. Is there a better one?

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1 Answer 1

up vote 3 down vote accepted

I would do something like:

import difflib

L_1 = ["Bob", "Mary", "Hans"]
L_2 = ["Bob", "Marie", "Hans"]

def similiarity(L_1, L_2):
    L_1 = set(intern(w) for w in L_1)
    L_2 = set(intern(w) for w in L_2)

    to_match = L_1.difference( L_2)
    against = L_2.difference(L_1)
    for w in to_match:
        res = difflib.get_close_matches(w, against)
        if len(res):
            against.remove( res[0] )
    return (len(L_2)-len(against)) / (len(L_1))

print similiarity(L_1,L_2)
share|improve this answer
    
Nice solution - however I would in general implement my own comparison based on the Levenshtein distance. –  Andreas Jung Mar 30 '11 at 17:06
    
I thought difflib uses Levenshtein under the hood –  fabrizioM Mar 30 '11 at 17:13
    
First: Thanks for your answer! I read up on intern(), but I didn't really get what it means. Would you be so kind and give me a hint? –  Aufwind Mar 30 '11 at 17:31
    
if you create two strings with the same value, those strings are different objects. With intern the second time you try to create a string that have already been created, it will return the same string object. In this way comparing two strings is just a matter of object address, constant, no matter how long is the string –  fabrizioM Mar 30 '11 at 17:40
    
Thank you very much! –  Aufwind Mar 30 '11 at 17:43

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