36
import difflib

a='abcd'
b='ab123'
seq=difflib.SequenceMatcher(a=a.lower(),b=b.lower())
seq=difflib.SequenceMatcher(a,b)
d=seq.ratio()*100
print d

I used the above code but obtained output is 0.0. How can I get a valid answer?

1

2 Answers 2

58

You forgot the first parameter to SequenceMatcher.

>>> import difflib
>>> 
>>> a='abcd'
>>> b='ab123'
>>> seq=difflib.SequenceMatcher(None, a,b)
>>> d=seq.ratio()*100
>>> print d
44.4444444444

http://docs.python.org/library/difflib.html

6
  • Hey nice answer, is there any way to get the number of matches?
    – Mohsin
    Commented May 12, 2017 at 13:00
  • get_matching_blocks() Commented May 15, 2017 at 6:50
  • ya i got the all the strings, but it fails to find all the common strings even if you have autojunk set to false
    – Mohsin
    Commented May 15, 2017 at 7:05
  • get_matching_blocks() literally will return a list of matching blocks. Hence, by doing len() on that list, you get the number of matches. Isn't that what you wanted? It's what you asked for. Commented May 15, 2017 at 11:58
  • Ya but the algorithm fails for longer length strings
    – Mohsin
    Commented May 15, 2017 at 17:04
22

From the docs:

The SequenceMatcher class has this constructor:

class difflib.SequenceMatcher(isjunk=None, a='', b='', autojunk=True)

The problem in your code is that by doing

seq=difflib.SequenceMatcher(a,b)

you are passing a as value for isjunk and b as value for a, leaving the default '' value for b. This results in a ratio of 0.0.

One way to overcome this (already mentioned by Lennart) is to explicitly pass None as extra first parameter so all the keyword arguments get assigned the correct values.

However I just found, and wanted to mention another solution, that doesn't touch the isjunk argument but uses the set_seqs() method to specify the different sequences.

>>> import difflib
>>> a = 'abcd'
>>> b = 'ab123'
>>> seq = difflib.SequenceMatcher()
>>> seq.set_seqs(a.lower(), b.lower())
>>> d = seq.ratio()*100
>>> print d
44.44444444444444

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