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I am having trouble figuring out why I make a set from a NumPy array, Python swaps the order of elements:

import numpy as np
A = np.array([2])
B = np.array([2, 8])
setA = set(A)
setB = set(B)

In [6]: A
Out[6]: [2]

In [7]: B
Out[7]: [2, 8]

In [8]: setA
Out[8]: set([2])

In [9]: setB
Out[9]: set([8, 2])

In [10]: list(setA.union(setB))
Out[10]: [8, 2]

In [11]: np.union1d(A,B).tolist()
Out[11]: [2, 8]

Why isn't the order wouldn't be maintained when I created set(B)?

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1  
print set([8,2]) == set([2,8]) –  Joran Beasley Dec 7 '12 at 23:04
    
I agree that it in some sense it doesn't matter, but nonetheless I still think that why is a valid question... –  Andy Hayden Dec 7 '12 at 23:09
    
why is complicated and has to do with the hashing methodology. –  Félix Cantournet Dec 8 '12 at 1:27

2 Answers 2

sets by definition have no order - they are instead created so as to optimize certain operations such as those testing for containment. Therefore, you should never rely on order preservation when you create / add elements to a set.

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Sets are unordered collections of unique elements, so set([2,8]) and set([8, 2]) are exactly the same. Why do you care? Maybe a set is not what you need...

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Doh! That makes sense. Order does make a difference, so I might have to use another approach. Thanks. –  aindap Dec 9 '12 at 0:38

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