5

I couldn't find a straightforward way to compare two (multidimensional in my case) arrays the in a lexicographic way.

Ie.

a = [1,2,3,4]
b = [4,0,1,6]

For a < b I want to get true where I get [true, false, false, true]
For a > b I want to get false where I get [false, true, true, false]

13

2 Answers 2

3

If the question is just about finding whether a is < or > than b, then the following should work.

def fn(a, b):
    # finds index of the first non matching element
    idx = np.where( (a>b) != (a<b) )[0][0]

    if a[idx] < b[idx]: print "a < b" 
    if a[idx] > b[idx]: print "a > b" 
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  • I edited your answer to remove == True, which is implied (and slow to run), and to spell ^ as != for clarity
    – Eric
    Apr 28, 2017 at 16:19
  • 1
    Presumably, you're using (a>b) != (a<b) over a != b in order to handle nans?
    – Eric
    Apr 28, 2017 at 16:20
0

Multiply with np.arange(4)[::-1] ** 2 and then sum over that axis.

1
  • Can you provide an example, please?
    – AkiRoss
    Sep 25, 2016 at 15:54

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