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How to check whether input value is integer or float?

Suppose 312/100=3.12,Here i need check whether 3.12 is float or integer.

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please define float and integet in your words. I didn't downvote though –  Jigar Joshi Jan 18 '11 at 18:22
    
We need more information to be able to help you. Some types would help. For example, the 3.12 you provide above. Is that coming in as a String? Or, are you dividing 2 ints and want to know if the answer is an int? Help us help you. –  rfeak Jan 18 '11 at 18:22
    
Hi,Why down vote for java freshers.both are int values.I am looking any predefined method to check the result value is either floating or int. –  user569125 Jan 18 '11 at 18:27
    
It's not clear from the question whether you want to check whether the resulting value itself is an integer or the variable that holds it is. –  Ariel Jan 18 '11 at 18:27
    
i have to check on result value. –  user569125 Jan 18 '11 at 18:30

5 Answers 5

up vote 9 down vote accepted

You should check that fractional part of the number is 0. Use

x==Math.ceil(x)

or

x==Math.round(x)

or something like that

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How about this. using the modulo operator

if(a%b==0) 
{
    System.out.println("b is a factor of a. i.e. the result of a/b is going to be an integer");
}
else
{
    System.out.println("b is NOT a factor of a");
}
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+1 This seems to be the best solution. If you divide two really big numbers, you can't tell for sure if the result is really an int, or just very close to it, so the approaches with ceil, floor or round might fail. –  Landei Jan 18 '11 at 19:30
    
I agree but since the OP had already accepted the answer, i didn't bother to respone :-(. Also this is the commonsense way of doing it and hence intuitive and simple to maintain –  Pangea Jan 18 '11 at 19:35
    
You should be clear what to divide by. –  orbfish Mar 1 at 23:01
if (value == Math.round(value)) {
    System.out.println("Integer");
} else {
    System.out.println("Not an integer");
}
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The ceil and floor methods will help you determine if the number is a whole number.

However if you want to determine if the number can be represented by an int value.

if(value == (int) value)

or a long (64-bit integer)

if(value == (long) value)

or can be safely represented by a float without a loss of precision

if(value == (float) value)

BTW: don't use a 32-bit float unless you have to. In 99% of cases a 64-bit double is a better choice.

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do this to distinct that:

for example your number is 3.1214 and store in num and you don't know kind of num:

num = 3.1214 cast num to int; int x = (int)num; if(x == num) { num is a integer.

} else num is float; }

in this example we understand that num is not integer.

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