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The documentation for java.lang.Double.NaN says that it is

A constant holding a Not-a-Number (NaN) value of type double. It is equivalent to the value returned by Double.longBitsToDouble(0x7ff8000000000000L).

This seems to imply there are others. If so, how do I get hold of them, and can this be done portably?

To be clear, I would like to find the double values x such that

Double.doubleToRawLongBits(x) != Double.doubleToRawLongBits(Double.NaN)

and

Double.isNaN(x)

are both true.

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Do you mean are there other java.lang.*.NaN? –  Dominic Rodger Jan 28 '10 at 12:37
    
@Dominic: No - I've added what I think is a clarification to the question. –  Simon Nickerson Jan 28 '10 at 12:39

3 Answers 3

up vote 6 down vote accepted

You need doubleToRawLongBits rather than doubleToLongBits.

doubleToRawLongBits extracts the actual binary representation. doubleToLongBits doesn't, it converts all NaNs to the default NaN first.

double n = Double.longBitsToDouble(0x7ff8000000000000L); // default NaN
double n2 = Double.longBitsToDouble(0x7ff8000000000100L); // also a NaN, but M != 0

System.out.printf("%X\n", Double.doubleToLongBits(n));
System.out.printf("%X\n", Double.doubleToRawLongBits(n));
System.out.printf("%X\n", Double.doubleToLongBits(n2));
System.out.printf("%X\n", Double.doubleToRawLongBits(n2));

output:

7FF8000000000000
7FF8000000000000
7FF8000000000000
7FF8000000000100
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Thanks for the tip about doubleToRawLongBits! –  Simon Nickerson Jan 28 '10 at 14:05

Java uses IEEE 754 for its floating point numbers and therefore follows their rules.

According to the Wikipedia page on NaN it is defined like this:

A bit-wise example of a IEEE floating-point standard single precision NaN: x111 1111 1axx xxxx xxxx xxxx xxxx xxxx where x means don't care.

So there are quite a few bit-patterns all of which are NaN values.

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Thanks. Is this guaranteed to be portable across VMs? –  Simon Nickerson Jan 28 '10 at 12:41
1  
@simonn: that question would make me stop for a moment: How exactly do you want to make use of that fact? Do you try to submit in-band information inside the NaN value of a double? –  Joachim Sauer Jan 28 '10 at 12:44
    
Sort of. I am trying to emulate the semantics of a system where there are several different values which all act like NaN, but they are distinguishable. –  Simon Nickerson Jan 28 '10 at 13:34
    
Just as a side-note: I've since learned that distinguishing different NaN values is not portable in Java. Some implementations may support it, others may collapse all NaN values to a small set of "legit" ones. That may happen at any time, including simple assignments. –  Joachim Sauer Aug 9 '11 at 7:46

IEEE 754 defines a NaN as a number with all exponent bits which are 1 and a non zero number in the mantissa.

So for a single-precision number you are looking for:

S     E            M
x  11111111   xxxxxx....xxx (with M != 0)

Java handles this like so:

Double n = Double.longBitsToDouble(0x7ff8000000000000L); // default NaN
Double n2 = Double.longBitsToDouble(0x7ff8000000000100L); // also a NaN, but M != 0

System.out.println(n.isNaN()); // true
System.out.println(n2.isNaN()); // true
System.out.println(n2 != Double.doubleToLongBits(Double.NaN)); // true

To sum, you can use any NaN you want which conforms to the rules aforementioned (all bits 1 in exponent and mantissa != 0).

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The last statement makes no sense. Double.doubleToLongBits(...) is a long, which is implicitly converted to double, autoboxed and compared by reference to n2. –  finnw Jan 28 '10 at 13:21
    
Possibly in the last line should be Double.doubleToLongBits(n2) != Double.doubleToLongBits(Double.NaN) ? –  Simon Nickerson Jan 28 '10 at 13:32
    
That prints false, because doubleToLongBits converts all NaN s to the same value. But it's true if you use doubleToRawLongBits. –  finnw Jan 28 '10 at 13:51
    
I was wrong about the reference comparison (I just looked at the bytecode.) The long is converted to double, but n2 is auto-unboxed and normal double comparison is applied. –  finnw Jan 28 '10 at 14:01

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