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My method is as follows

  def myMethod(myDouble: Double): Double = myDouble match {
    case Double.NaN => ...
    case _ => ...
  }

The IntelliJ debugger is showing NaN but this is not being picked up in my pattern matching. Are there possible cases I am omitting

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3 Answers 3

up vote 24 down vote accepted

It is a general rule how 64-bit floating point numbers are compared according to IEEE 754 (not Scala or even Java related, see NaN):

double n1 = Double.NaN;
double n2 = Double.NaN;
System.out.println(n1 == n2);     //false

The idea is that NaN is a marker value for unknown or indeterminate. Comparing two unknown values should always yields false as they are well... unknown.


If you want to use pattern matching with NaN, try this:

myDouble match {
    case x if x.isNaN => ...
    case _ => ...
}

But I think pattern matching will use strict double comparison so be careful with this construct.

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+1 for pointing out that NaN != NaN in many (if not all) programming languages that expose this value to the programmer. –  Ray Toal Aug 2 '11 at 6:57
1  
Note that if most numbers are not NaN, .isNaN is only about half as fast as java.lang.Double.isNaN, so the latter should be preferred in tight loops. (The match is as fast as an if statement.) For clarity (i.e. everywhere except tight performance-critical loops), the .isNaN form is probably best. –  Rex Kerr Aug 2 '11 at 16:12

You can write an extractor (updated according to bse's comment):

object NaN {
  def unapply(d:Double) = d.isNaN
}


0.0/0.0 match {
  case NaN() => println("NaN")
  case x => println("boring " + x)
}
//--> NaN
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1  
The extractor can be even simpler: object NaN { def unapply(d:Double) = d.isNaN }. It can be used like this: 0.0/0.0 match { case NaN() => print("NaN") } –  bseibold Aug 2 '11 at 13:51
    
@bse: Thanks, I updated my answer. –  Landei Aug 2 '11 at 13:56

Tomasz is correct. You should use isNaN instead.

scala> Double.NaN.isNaN
res0: Boolean = true
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