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How do I use list comprehension for doing this:

MCs= [['foo', 180.9], ['bar', 163.5], ['noo', 140.3]] 

Want

[['foo'], ['bar'], ['noo']] 

using

MCs = [list(x[0]) for x in MCs]

I get this:

  [['f', 'o', 'o'], ['b', 'a', 'r'], ['n', 'o', 'o']] 
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6 Answers 6

up vote 6 down vote accepted

You only need this:

MCs = [[x[0]] for x in MCs]

Strings are iterable, and list(iterable) returns a list of elements yielded by the argument (i.e. characters, in this case).

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That's because x[0] is e.g. 'foo' and list turns an iterable into a list containing the items of the iterable - iterating a string yields its characters one at a time. It's unrelated to the list comprehension, the same thing would happen if you used list('foo'). To make a singleton list, just wrap the expression in square brackes, i.e. [[mc[0]] for mc in mcs].

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Use this:

[[x[0]] for x in MCs]

list(c) takes a collection of something and makes it into a list. A string is a collection of characters, so that's what you get, a list of characters.

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Try this for your answer.

[[x[0],] for x in MCs]

So dissecting what your list comprehension:

for x in  [['foo', 180.9], ['bar', 163.5], ['noo', 140.3]]:
# x = ['foo', 180.9] first time through
# x[0] = 'foo'
# list(x[0]) = ['f','o','o']
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To get precisely what you ask for do this:

>>> [[x[0]] for x in MCs]
[['foo'], ['bar'], ['noo']]

But perhaps what you really want is this:

>>> [x[0] for x in MCs]
['foo', 'bar', 'noo']
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Using zip:

[[x] for x in zip(*MCs)[0]]
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