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I have a list that looks something like this:

a = [('A', 'V', 'C'), ('A', 'D', 'D')]

And I want to create another list that transforms a into:

['AVC', 'ADD']

How would I go on to do this?

share|improve this question

Use str.join() in a list comprehension (works in both Python 2.x and 3.x):

>>> a = [('A', 'V', 'C'), ('A', 'D', 'D')]
>>> [''.join(x) for x in a]
['AVC', 'ADD']
share|improve this answer

You could map str.join to each tuple in a:

Python 2:

>>> map(''.join, a)
['AVC', 'ADD']

In Python 3, map is an iterable object so you'd need to materialise it as a list:

>>> list(map(''.join, a))
['AVC', 'ADD']
share|improve this answer
    
Returns a map object on my machine. – vaultah Jan 26 at 14:49
    
@vaultah was editing as you commented. – Peter Wood Jan 26 at 14:51

Using reduce is another option:

>>> a = [('A','V','C'), ('A','D','D')]

In Python 2:

>>> [reduce(lambda x, y: x + y , i) for i in a]
['AVC', 'ADD']

In Python 3 (Thanks for eugene's suggestion):

>>> from functools import reduce
>>> [reduce(lambda x, y: x + y , i) for i in a]
['AVC', 'ADD']
share|improve this answer
3  
A very inefficient option, though. – chepner Jan 26 at 14:36
3  
And In Python3 you'd need from functools import reduce. – eugene y Jan 26 at 14:41
    
@eugeney, just edited, thanks. – ccf Jan 26 at 16:30
1  
and you can replace your lambda with operator.concat – njzk2 Jan 26 at 17:13
2  
Because you are 1) repeated calling a user-defined function (cf. replacing lambda with operator.itemgetter for things like the key argument to sorted) and 2) allocating a new Python str object every for each character. join takes the list of strings, allocates a single string object for the result, and fills it in using its input. (That is, everything is done at the C level, not the Python level). – chepner Jan 26 at 17:19

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