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When casting a NumPy Not-a-Number value as a boolean, it becomes True, e.g. as follows.

>>> import numpy as np
>>> bool(np.nan)
True

This is the exact opposite to what I would intuitively expect. Is there a sound principle underlying this behaviour?

(I suspect there might be as the same behaviour seems to occur in Octave.)

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My hunch: NaN is not equal to zero, so it's true when converted to boolean. If NaN were false, then conversion of floats to booleans would take two checks, one for zero and one for NaN. (But I suspect interpreting Numpy floats as booleans is not common practice anyway...) –  larsmans Mar 28 '13 at 15:50
4  
This is also the case in C (on which NumPy is based). From the standard: When any scalar value is converted to _Bool, the result is 0 if the value compares equal to 0; otherwise, the result is 1. Footnote 59 explicitly states that NaNs do not compare equal to 0 and thus convert to 1. –  jerry Mar 28 '13 at 15:57
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4 Answers

up vote 7 down vote accepted

This is in no way NumPy-specific, but is consistent with how Python treats NaNs:

In [1]: bool(float('nan'))
Out[1]: True

The rules are spelled out in the documentation.

I think it could be reasonably argued that the truth value of NaN should be False. However, this is not how the language works right now.

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Python truth-value testing states that the following values are considered False:

  • zero of any numeric type, for example, 0, 0L, 0.0, 0j.

Numpy probably chose to stick with this behaviour and prevent NaN from evaluating to False in a boolean context. Note however that you can use numpy.isnan to test for NaN.

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0.0 is the only falsy float value because that's what the language designers decided would be most useful. Numpy simply follows along. (It would be weird to have bool(np.nan) be False when bool(float('nan')) is True).

I think it is probably because that's how things work with integers. Admittedly, integers have no NaN or inf types of values, but I suppose that special cases aren't special enough to break the rules.

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It's not up to the language designers; the Numpy folks could have decided to make nan false as well. –  larsmans Mar 28 '13 at 15:52
    
@larsmans -- Fair enough. I didn't notice that numpy was part of the OP's question. I don't think that really changes anything though. It just makes sense for numpy to do what python does. –  mgilson Mar 28 '13 at 15:56
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Numpy follows the python standard for truth testing here, any numeric type evaluates to False if and only if its numerical value is zero.

Note that truth testing with NaN values can be unintuitive in other ways as well (e.g., nan == nan evaluates to False).

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I think you meant "... evaluates to False if ..." –  Warren Weckesser Mar 28 '13 at 17:25
    
@Warren -- indeed! Thanks. –  Kelsey Mar 29 '13 at 19:19
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