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just wondering if there is any clever way to do the following.

I have an N dimensional array representing a 3x3 grid

grid = [[1,2,3],
        [4,5,6],
        [7,8,9]]

In order to get the first row I do the following:

grid[0][0:3]
>> [1,2,3]

In order to get the first column I would like to do something like this (even though it is not possible):

grid[0:3][0]
>> [1,4,7]

Does NumPy support anything similar to this by chance?


Any ideas?

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3 Answers 3

up vote 10 down vote accepted

Yes, there is something like that in Numpy:

import numpy as np

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

grid[0,:]
# array([1, 2, 3])

grid[:,0]
# array([1, 4, 7])
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To get the columns in Python you could use:

[row[0] for row in grid]
>>> [1,4,7]

You could rewrite your code for getting the row as

grid[0][:]

because [:] just copies the whole array, no need to add the indices.

However, depending on what you want to achieve, I'd say it's better to just write a small matrix class to hide this implementation stuff.

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3  
Don't write your own matrix classes. Use good matrix classes already provided. –  eumiro Jan 24 '11 at 10:31
    
@eumiro: You're absolutely right. Do you have a specific class in mind? –  Georg Schölly Jan 24 '11 at 12:04
    
Numpy. See my post. –  eumiro Jan 24 '11 at 12:10
    
@eumiro: Numpy seems to be a little overkill in many cases to me. As far as I can see one even has to install a binary. –  Georg Schölly Jan 24 '11 at 12:26
    
there is a debian/ubuntu/(other) package for numpy. Once installed, serves always. –  eumiro Jan 24 '11 at 12:33

You can use zip to transpose a matrix represented as a list of lists:

>>> zip(*grid)[0]
(1, 4, 7)

Anything more than just that, and I'd use Numpy.

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