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Have a look at this snippet in Java:

double alpha = alphaFactors.get(0, q);
double beta = betaFactors.get(0, q);
if ((alpha + beta) > Double.NEGATIVE_INFINITY) {
    initialDistributionStripe.put(new IntWritable(q),
                                  new DoubleWritable(alpha + beta));
}

To avoid garbage values, I want to add to the initialDistributionStripe map the sum (alpha + beta) if and only if it is larger than Double.NEGATIVE_INFINITY, and is not equal to NaN.

I believe what I am doing is correct and I don't need to explicitly check for 'NaN' because according to the IEEE 754 and Java spec, any comparisons against NaN result in false. So if alpha + beta is NaN, then ((alpha + beta) > Double.NEGATIVE_INFINITY) will be false.

Is my reasoning correct?

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3 Answers 3

up vote 0 down vote accepted

So if alpha + beta is NaN, then ((alpha + beta) > Double.NEGATIVE_INFINITY) will be false

That's correct.

If you want to be explicit about it, you could add && !Double.isNaN(alpha + beta) (Keep in mind that alpha + beta != Double.NaN is true even though alpha + beta is indeed Double.NaN).

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Are you to referring to static public boolean isNaN(double v) in Double? Creating an object to perform a test on primitives is ugly even if it worked. ;) –  Peter Lawrey Aug 22 '11 at 10:25
    
Ah, wasn't aware about the static version of the isNaN. Thanks, updated. –  aioobe Aug 22 '11 at 10:30
    
There is only a static version, so you don't want the () after Double ;) –  Peter Lawrey Aug 22 '11 at 10:41
1  
sigh... thanks again –  aioobe Aug 22 '11 at 10:42

I would explicitly check for NaN anyway with isNaN(). Safer.

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Using > is definitely clearer imo. –  aioobe Aug 22 '11 at 10:23
    
Yes, that's why I edited it :) –  m0skit0 Aug 22 '11 at 10:24

Perhaps the following is clearer even if it does the same thing.

if (alpha > Double.NEGATIVE_INFINITY && beta > Double.NEGATIVE_INFINITY)

Otherwise your logic appears to be correct.

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