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Is it possible to do this?

double variable;
variable = 5;
/* the below should return true, since 5 is an int. 
if variable were to equal 5.7, then it would return false. */
if(variable == int) {
    //do stuff
}

I know the code probably doesn't go anything like that, but how does it go?

edit

I'm getting a lot of answers with hard code and no explanation of what the code is actually doing , i don't mean to sound rude but please elaborate on what exactly you are writing.

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1  
C# but similar in Java: stackoverflow.com/a/4077262/284240 (Integer.MAX_VALUE) –  Tim Schmelter Mar 27 '12 at 22:18
1  
What would you gain out of this? double and int are represented in memory differently, and you would use one or the other based on the context of your memory handling. –  Makoto Mar 27 '12 at 22:19
    
if(num % 1 == 0) –  user1181445 Mar 27 '12 at 22:19
    
@Legend, i would have done the same as you suggested; do you by chance know how the %1 compares efficiency-wise to the Math.floor(variable) other users suggested? –  G. Bach Mar 27 '12 at 22:26
3  
@Makoto It's a program to find pygatorean triples. Square roots can sometimes be double, but at the same time they can also sometimes be intergers. You get what I mean? –  JXPheonix Mar 27 '12 at 22:27

6 Answers 6

up vote 23 down vote accepted
if ((variable == Math.floor(variable)) && !Double.isInfinite(variable)) {
    // int
}

This checks if the integer value of the double is the same as the double.

Your variable could have an int or double value and Math.floor(variable) always has an int value, so if your variable is equal to Math.floor(variable) then it must have an int value.

This also doesn't work if the value of the variable is infinite or negative infinite hence adding 'as long as the variable isn't inifinite' to the condition.

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1  
"If the argument is NaN or an infinity or positive zero or negative zero, then the result is the same as the argument." docs.oracle.com/javase/6/docs/api/java/lang/… –  Tim Schmelter Mar 27 '12 at 22:27
1  
@TimSchmelter: good catch. It's also worth noting that NaN is not equal anything (including itself) but +/-Inf is equal to itself - so there are two edge cases! –  maerics Mar 27 '12 at 22:33
    
Both Skon and Fouad posted much better answers. –  Joel A. Christophel Nov 10 '13 at 6:04

Or you could use the modulo operator:

(d % 1) == 0

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I really love the simplicity of this solution. It's both easy to read and to implement. –  krispy Feb 27 at 21:03
    
Very intuitive solution –  Daniel San 2 days ago

Guava: DoubleMath.isMathematicalInteger. (Disclosure: I wrote it.) Or, if you aren't already importing Guava, x == Math.rint(x) is the fastest way to do it; rint is measurably faster than floor or ceil.

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Didn't know about Math.rint You're correct. It is way faster than Math.floor –  Lenny Markus Apr 20 '12 at 14:35
public static boolean isInt(double d)
{
    return d == (int) d;
}
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public static boolean isInteger(double d) {
  // Note that Double.NaN is not equal to anything, even itself.
  return (d == Math.floor(d)) && !Double.isInfinite(d);
}
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A more correct implementation would return false and you would have to write another method that takes int as argument and returns true. :D –  alfa Mar 27 '12 at 22:23
    
@alfa: lol, good one =) –  maerics Mar 27 '12 at 22:35

you could try in this way: get the integer value of the double, subtract this from the original double value, define a rounding range and tests if the absolute number of the new double value(without the integer part) is larger or smaller than your defined range. if it is smaller you can intend it it is an integer value. Example:

public final double testRange = 0.2;

public static boolean doubleIsInteger(double d){
    int i = (int)d;
    double abs = Math.abs(d-i);
    return abs <= testRange;
}

If you assign to d the value 33.15 the method return true. To have better results you can assign lower values to testRange (as 0.0002) at your discretion.

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