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I'am having some trouble when initializing a numpy array with numpy.NAN as below.

>>> import numpy
>>> a = numpy.zeros(2)
>>> a
array([ 0.,  0.])
>>> a[:] = numpy.NAN
>>> a
array([ nan,  nan])
>>> a[0] is numpy.NAN
False 

Why is that? I have tried to initilize a single variable with NAN and get var is numpy.NAN as True. What happends when NAN is assign to an array?

And another question is when some of the elements in the arrary is NAN, how can I distinguish them from others? Thanks a lot!

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4  
Try with numpy.isnan. –  Ashwini Chaudhary Mar 14 at 10:17

1 Answer 1

up vote 7 down vote accepted

It's a NaN. It's just that is doesn't work the way you think it does with NumPy arrays. When you assign

a[:] = numpy.NAN

NumPy doesn't actually fill a with references to the numpy.NAN object. Instead, it fills the array with doubles with NaN values at C level.

When you then access an array element with a[0], NumPy has no record of the original object used to initialize that cell. It just has the numeric value. It has to construct a new Python object to wrap that value, and the new wrapper is not the same object as numpy.NAN. Thus, the is check returns False.

Note that generally, comparing numbers with is is a bad idea anyway. Usually, what you want is ==, to compare their numeric values. However, == also returns False for NaNs, so what you need is numpy.isnan:

>>> numpy.isnan(a[0])
True
>>> numpy.isnan(a)
array([ True,  True], dtype=bool)
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