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I have a 2d array in the numpy module that looks like:

data = array([[1,2,3],
              [4,5,6],
              [7,8,9]])

I want to get a slice of this array that only includes certain columns of element. For example I may want columns 0 and 2:

data = [[1,3],
        [4,6],
        [7,9]]

What is the most Pythonic way to do this? (No for loops please)

I thought this would work, but it results in a "TypeError: list indices must be integers, not tuple"

newArray = data[:,[0,2]]

Thanks.

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6 Answers 6

The error say it explicitely : data is not a numpy array but a list of lists.

try to convert it to an numpy array first :

numpy.array(data)[:,[0,2]]
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Nice catch! I bow to your psychic debugging abilities! :) –  Joe Kington Sep 9 '10 at 20:32

Actually, what you wrote should work just fine... What version of numpy are you using?

Just to verify, the following should work perfectly with any recent version of numpy:

import numpy as np
x = np.arange(9).reshape((3,3)) + 1
print x[:,[0,2]]

Which, for me, yields:

array([[1, 3],
       [4, 6],
       [7, 9]])

as it should...

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THis may not be what you are looking for but this is would do. zip(*x)[whatever columns you might need]

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If you'd want to slice 2D list the following function may help

def get_2d_list_slice(self, matrix, start_row, end_row, start_col, end_col):
    return [row[start_col:end_col] for row in matrix[start_row:end_row]]
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Beware that numpy only accept regular array with the same size for each elements. you can somehow use : [a[i][0:2] for i in xrange(len(a))] it's pretty ugly but it works.

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1  
Numpy accepts any combination of slices, integers and arrays. The arrays do not have to be the same size, but they should broadcast against each other. And I believe the expression you looking for is [[row[0], row[2]] for row in data]. –  Bi Rico Feb 1 '12 at 16:26

Python doesnt really do 2d arrays it does lists instead

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