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I have a double in Java and I want to check if it is NaN. What is the best way to do this?

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up vote 263 down vote accepted

Use the static Double.isNaN(double) method, or your Double's .isNaN() method.

// 1. static method
if (Double.isNaN(doubleValue)) {
    ...
}
// 2. object's method
if (doubleObject.isNan()) {
    ...
}

Simply doing:

if (var == Double.NaN) {
    ...
}

is not sufficient due to how the IEEE standard for NaN and floating point numbers is defined.

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35  
Another way to do this would be v != v. Only NaN compares false with itself. Don't do that though, isNaN is a million times better. :) – Joren Sep 21 '09 at 20:15
8  
This did not work for me. Double.isNaN(var) worked though – fiacobelli May 23 '13 at 4:13
1  
@Joren, better late than never: 'isNaN' is indeed better to use than v != v for readability. But the source code of the isNaN method is exactly the same as saying v != v. Source: static public boolean isNaN(double v) { return (v != v); } – Rolf ツ Dec 10 '14 at 19:50
1  
Double.isNaN should be (true) nice answer – Oliver Shaw Apr 24 '15 at 18:41
    
Double.isNaN(yourVariable) work – Kiem Nguyen May 19 '15 at 18:29

Try Double.isNaN():

Returns true if this Double value is a Not-a-Number (NaN), false otherwise.

Note that [double.isNaN()] will not work, because unboxed doubles do not have methods associated with them.

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I thought you couldn't call methods on primitive types in Java. It really needs to be Double.isNan() and not double.IsNan(), right? – Joren Sep 21 '09 at 20:41
    
Joren, he's relying on autoboxing (double getting converted to Double by the compiler/runtime); new feature from 1.5 onwards. Little risk going this direction; going from Double to double creates risk of NullPointerExceptions. – M1EK Sep 21 '09 at 21:01
    
I thought autoboxing only worked on using the double as an argument, adding it to a collection, and the like. Try declaring double x and then asking x to isNaN() - gives me a compiler error. – Carl Sep 22 '09 at 2:23
    
Really, I suspect Andrew just missed the shift key typing the first "double". – Carl Sep 22 '09 at 2:25

Check the Javadoc for the Double API.

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2  
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. – Michael Berkowski Dec 24 '14 at 3:08
    
@MichaelBerkowski Funny how the link is now broken (404) – Alex L. Oct 12 '15 at 19:23

You can check for NaN by using var != var. NaN does not equal NaN.

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1  
Can someone explain the downvote? I know, this way is very bad, and isNan is better for readability, but it works, right? And the isNan method uses this to check for NaN. – Alex L. Oct 12 '15 at 19:20
    
I'm guessing the downvote was because this way is very bad, and isNaN is better for readability. – Edward Falk Jan 22 at 17:06

You mentioned "test" in the question. This is how I would test with JUnit 4.x:

import static org.junit.Assert.*;
import org.junit.*;

import static java.lang.Double.*;

public class DoubleNanTests {

    @Test
    public void blahBlahBlahShouldCreateAnInvalidValue() {
        double badDouble = NaN; // obtain double from unit under test
        assertTrue("result should be an invalid value, but isn't", isNaN(badDouble) );
    }
}
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You can also check this way

if(String.valueOf(yourDoubleValue).equals("NaN")){
//do your work
}
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Looks like something I would write in my first month of programming :D – Buffalo Dec 10 '15 at 9:28

Beginners needs practical examples. so try the following code.

public class Not_a_Number {

public static void main(String[] args) {
    // TODO Auto-generated method stub

    String message = "0.0/0.0 is NaN.\nsimilarly Math.sqrt(-1) is NaN.";        
    String dottedLine = "------------------------------------------------";     

    Double numerator = -2.0;
    Double denominator = -2.0;      
    while (denominator <= 1) {
        Double x = numerator/denominator;           
        Double y = new Double (x);
        boolean z = y.isNaN();
        System.out.println("y =  " + y);
        System.out.println("z =  " + z);
        if (z == true){
            System.out.println(message);                
        }
        else {
            System.out.println("Hi, everyone"); 
        }
        numerator = numerator + 1;
        denominator = denominator +1;
        System.out.println(dottedLine);         
    } // end of while

} // end of main

} // end of class
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This example does too much, and it's not clear what you were trying to show. This is just a bunch of fragmented code. – JD Hooper Sep 7 '15 at 14:56
    
As the OP, who was a beginner when this question was asked back in '09, I can assure you that the accepted answer was far more helpful than this "practical" example would have been. – Eric Wilson Sep 28 '15 at 18:26

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