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I have one list containing other lists, and want to make a new list from only the n'th item in the other lists.

my_list = [[1,2,3],['a','b','b'],[100,200,300]]

new_list = make_new_list(mylist, index=2)

new_list = [2,'b',200]

I know how to design a function which grabs all the second elements, but I also know there always exists some pythonic list comprehension which does this much more smoothly. What is the list comprehension?

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In Python, write what you think, it'll probably be correct :) –  Maroun Maroun May 6 '13 at 21:19
2  
In the 90% of programming languages indices start at 0, not 1 hence you should have written make_new_list(mylist, index=1). –  Bakuriu May 6 '13 at 21:22
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3 Answers

up vote 5 down vote accepted

it's pretty easy:

new_list = [x[1] for x in my_list]

Note that in python, the indexing starts with 0, so the second element is at index 1.

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I feel like we've had this answer a thousand times before, how do we make this more searchable? –  phant0m May 6 '13 at 21:23
    
@phant0m: maybe by adding links to some of the most rated list comprehension answers (1, 2) and to the relevant PEP 202. –  fgb May 6 '13 at 21:39
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You could do it with list comprehensions or you can use python's map function:

my_list = [[1,2,3],['a','b','b'],[100,200,300]]
newlist = map(lambda x: x[1], my_list)

if you want a function that does it:

my_func = lambda li, index: map(lambda x: x[index], li)
newlist = my_func(my_list, 1)
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Apart from the version using a list comprehension as suggested by mgilson, you could also use operator.itemgetter:

>>> from operator import itemgetter
>>> map(itemgetter(1), my_list)
[2, 'b', 200]

Some timing comparison:

>>> lis = [[1,2,3],['a','b','b'],[100,200,300]]*10**5

>>> %timeit [x[1] for x in lis]
10 loops, best of 3: 38.6 ms per loop

>>> %timeit map(itemgetter(1),lis)
10 loops, best of 3: 43.8 ms per loop

>>> %timeit map(lambda x: x[1], lis)
10 loops, best of 3: 82.9 ms per loop
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