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I am working on lists of list

input:

x = [['a','a','a'],['b','b','b'],['c','c','c'],['d','d','d']]

and am looking for an output:

s = ['a_b_c_d','a_b_c_d','a_b_c_d']

Kindly let me know how can I do this using list comprehension.

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3  
What have you tried? – Felix Kling May 2 '12 at 12:46
4  
I assume the fourth 'a_b_c_d' is a typo? – NPE May 2 '12 at 12:48
    
['_'.join(l[0] for l in x)] * len(x) But, why? – Marcin May 2 '12 at 12:53
    
@Marcin Submit that as a solution, we are still not sure exactly what the OP wants. – jamylak May 2 '12 at 12:55
1  
I removed the fourth 'a_b_c_d' since the OP accepted an answer which had 3. – jamylak May 3 '12 at 7:08
up vote 12 down vote accepted
>>> x = [['a','a','a'],['b','b','b'],['c','c','c'],['d','d','d']]
>>> map('_'.join, zip(*x))
['a_b_c_d', 'a_b_c_d', 'a_b_c_d']

… although @aix's list comprehension is more list-comprehensible.

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3  
I think this is a very good use case for map. It should also be faster than the list comprehension because the method call is pushed to the C side. One thing to note though is that this returns an iterable instead of a list in Python 3. – Niklas B. May 2 '12 at 13:11
In [6]: x = [['a','a','a'],['b','b','b'],['c','c','c'],['d','d','d']]

In [7]: ['_'.join(s) for s in zip(*x)]
Out[7]: ['a_b_c_d', 'a_b_c_d', 'a_b_c_d']

As requested, this uses a list comprehension. See @eumiro's answer for a map()-based solution that I think is just as good.

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It does not produce the result the OP wants though... your result contains 3 elements instead of 4. – Felix Kling May 2 '12 at 12:47
4  
@FelixKling: I think that's a typo. See my comment to the question. – NPE May 2 '12 at 12:49

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