32

Apparantly it will (in the 'future') not be possible anymore to use the following:

import numpy as np
np.array([0,1,2]) == None
> False
> FutureWarning: comparison to `None` will result in an elementwise object comparison in the future.

This also breaks the lazy loading pattern for numpy arrays:

import numpy as np
def f(a=None):
    if a == None: 
        a = <some default value>
    <function body>

What other possibilities allow you to still use lazy initialization?

0

1 Answer 1

63

You are looking for is:

if a is None:
    a = something else

The problem is that, by using the == operator, if the input element a is a numpy array, numpy will try to perform an element wise comparison and tell you that you cannot compare it.

For a a numpy array, a == None gives error, np.all(a == None) doesn't (but does not do what you expect). Instead a is None will work regardless the data type of a.

5
  • so from a Java point of view, the is is considered as a reference check whereas the == is considered as an equals() check (that could be overriden and if not overriden it's just a reference check)
    – Matthias
    Commented Nov 27, 2015 at 9:37
  • 1
    @Matthias Exactly. From a java point of view, the python's == would trigger java's .equals, which in numpy is overrided to perform a element-wise check. Python's is would be equivalent to check for reference in java (similar to using == with strings). However, for strings in python (i.e. a = 'hello'; b = 'hello'), the a is b would still return true, as both of them are the same constant ('hello'). Commented Nov 27, 2015 at 9:40
  • 1
    @Matthias have a look this excellent answer, for further detail of the is operator. Commented Nov 27, 2015 at 9:44
  • 1
    the last comparison will be true in Java as well (or is VM dependent?)
    – Matthias
    Commented Nov 27, 2015 at 9:46
  • @Matthias to be honest, it's been a long time without programming in Java, so it might be haha. Just wanted to point out the behaviour in python =P Commented Nov 27, 2015 at 9:48

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