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Is there any method or quick way to check whether a number is an Integer ( belongs to Z field) in java

I thought of maybe subtracting it from the rounded number, but I didn't find any method that will help me with this.

Where should I check? Integer Api?

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1  
You are parsing number from String or you already have number in some float or double? –  Serhiy Mar 31 '11 at 15:47
3  
What do you mean "belongs to Z field"? –  notthetup Mar 31 '11 at 15:47
    
I have any number, it can be float ir double as well. –  Unknown user Mar 31 '11 at 15:51
    
Z field- It means that it is integer. –  Unknown user Mar 31 '11 at 15:52
3  
@ntt: N = natural numbers, Z = integer, Q = rational, R = real, C = complex –  MicSim Mar 31 '11 at 15:52

5 Answers 5

up vote 18 down vote accepted

Quick and dirty...

if (x == (int)x)
{
   ...
}

edit: This is assuming x is already in some other numeric form. If you're dealing with strings, look into Integer.parseInt.

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Normally I have a function isInteger(), which has try catch over Integer.parseInt, returning false in case exception is occurring. –  Serhiy Mar 31 '11 at 15:49
    
this is a good answer, and I upvoted it for that reason -- but still, make sure you understand the limitations of floating point representations! –  Alexander Questioning Bresee Mar 31 '11 at 16:03

One example more :)

double a = 1.00

if(floor(a) == a) {
   // a is an integer
} else {
   //a is not an integer.
}

In this example, ceil can be used and have the exact same effect.

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so will casting to (long) –  Peter Lawrey Mar 31 '11 at 16:43

if you're talking floating point values, you have to be very careful due to the nature of the format.

the best way that i know of doing this is deciding on some epsilon value, say, 0.000001f, and then doing something like this:

boolean nearZero(float f)
{
    return ((-episilon < f) && (f <epsilon)); 
}

then

if(nearZero(z-(int)z))
{ 
    //do stuff
}

essentially you're checking to see if z and the integer case of z have the same magnitude within some tolerance. This is necessary because floating are inherently imprecise.

NOTE, HOWEVER: this will probably break if your floats have magnitude greater than Integer.MAX_VALUE (2147483647), and you should be aware that it is by necessity impossible to check for integral-ness on floats above that value.

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1  
+1: You get round error on float for integers greater than 2^24 (about 16 million) If you use double you get round errors for integers gretaer than 2^53 (8 million trillion) –  Peter Lawrey Mar 31 '11 at 16:43

With Z I assume you mean Integers , i.e 3,-5,77 not 3.14, 4.02 etc.

A regular expression may help:

Pattern isInteger = Pattern.compile("\\d+");
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by Z he meant Integers, en.wikipedia.org/wiki/Integer <-- Z is the normal symbol used to represent the set. –  Alexander Questioning Bresee Mar 31 '11 at 15:57
    
But what if it's 4.00?? Will the expression work then? –  notthetup Mar 31 '11 at 16:04
    
A yes thanks, fixed the comment. Not sure about -'s –  sthysel Mar 31 '11 at 16:08
    
@notthetup - I don't think so. –  GKFX Sep 2 '13 at 12:29

change x to 1 and output is integer, else its not an integer add to count example whole numbers, decimal numbers etc.

   double x = 1.1;
   int count = 0;
   if (x == (int)x)
    {
       System.out.print("X is an integer: " + x + "\n");
       count += 1; 
       System.out.print("This has been added to the count " + count + "\n");
    }else
   {
       System.out.print("X is not an integer: " + x + "\n");
       System.out.print("This has not been added to the count " + count + "\n");


   }
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