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I have a list

[[0, 3], [5, 1], [2, 1], [4, 5]]

which I have made into an array using numpy.array:

[[0 3]
 [5 1]
 [2 1]
 [4 5]]

How do I sort this like a table? In particular, I want to sort by the second column in ascending order and then resolve any ties by having the first column sorted in ascending order. Thus I desire:

[[2 1]
 [5 1]
 [0 3]
 [4 5]]

Any help would be greatly appreciated!

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4 Answers 4

up vote 4 down vote accepted

See http://docs.scipy.org/doc/numpy/reference/generated/numpy.lexsort.html#numpy.lexsort

Specifically in your case,

import numpy as np
x = np.array([[0,3],[5,1],[2,1],[4,5]])
x[np.lexsort((x[:,0],x[:,1]))]

outputs

array([[2,1],[5,1],[0,3],[4,5]])
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Hi, thanks for the solution. I like this the best because it shows me that by replacing x[:,0] with x[::-1,0], I am able to reverse the direction of the second sorting (of the first column). Many thanks all! –  Derek Nov 16 '11 at 23:50

If you want to sort using a single column only (e.g., second column), you can do something like:

from operator import itemgetter
a = [[0, 3], [5, 1], [2, 1], [4, 5]]
a_sorted = sorted(a, key=itemgetter(1))

If there are more than one key, then use numpy.lexsort() as pointed out in the other answers.

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Another way of doing this - slice out the bits of data you want, get the sort indices using argsort, then use the result of that to slice your original array:

a = np.array([[0, 3], [5, 1], [2, 1], [4, 5]])

subarray = a[:,1] # 3,1,1,5

indices = np.argsort(subarray) # Returns array([1,2,0,3])

result = a[indices]

Or, all in one go:

a[np.argsort(a[:,1])]
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2  
This doesn't sort the ties necessarily (1st column in ascending order). –  Bruno Nov 16 '11 at 15:00
    
True - lexsort looks like a better option here –  FredL Nov 17 '11 at 14:36

You can use numpy.lexsort():

>>> a = numpy.array([[0, 3], [5, 1], [2, 1], [4, 5]])
>>> a[numpy.lexsort(a.T)]
array([[2, 1],
       [5, 1],
       [0, 3],
       [4, 5]])
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