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For a list x of lists, when I want to get the first member of all the lists in x, I type x[:][0]. But it gives me the first list in x. Can someone explain why this is so?

Here is an example.

x=[[1,2],[3,4]]
print x[0][:]
print x[:][0]

I get same answer for both x[:][0] and x[0][:] I get the same answer, namely [1,2]. I am using Python 2.6.6.

Thanks in advance.

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1  
Why not just [x[0] for x in nested]? –  squiguy Nov 19 '13 at 6:28

6 Answers 6

up vote 3 down vote accepted

x[:] just returns the contents of x. So x[:][0] is the same as x[0]. There is no built-in support for slicing a list of lists "vertically". You have to use a list comprehension as suggested by @squiguy's comment.

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x[:] simply creates a shallow copy of x. For this reason, x[:][0] is the same as x[0][:] (both are the same as x[0]).

Numpy is perfect for what you're trying to do, though.

x = numpy.array([[1,2], [3,4]])
x[:,0]
x[0,:]
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Try This,

x=[[1,2],[3,4]]
print x[0][0]
print x[1][0]

or

for child in x:
    print child[0]
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To complement @BrenBarn answer, to solve your problem you could use:

first_numbers = [l[0] for l in x]
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You are almost using the numpy syntax

>>> import numpy as np
>>> x = np.array([[1,2],[3,4]])
>>> x[:,0]
array([1, 3])

If you want to do tricky things with arrays, consider whether you should be using numpy

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Use one of the below statements

print x[:][1]

or

print x[1][:]

or

print x[1]

all produces the same output.

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