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How do I check if a variable is an integer in Javscript and throwing an alert to confirm it ? This doesn't work ?

<html>
<head>

<script type="text/javascript">

 var data = 22;

 alert(NaN(data));

</script>
</head>

</html>
share|improve this question
6  
@elclanrs: Please don't tell people to "just Google it". And if you do, at least provide a sample search! –  Elliot Bonneville Jan 31 '13 at 22:48
    
do you want to know if it is an integer or just a number (eg: 22.5)? –  Blake Regalia Jan 31 '13 at 22:50
2  
One posiblity here is to use parseInt. –  Westie Jan 31 '13 at 22:50
    
@elclanrs: Fair enough. :) –  Elliot Bonneville Jan 31 '13 at 22:51

11 Answers 11

up vote 38 down vote accepted

use the === operator as below

if (data === parseInt(data))
            alert("data is integer")
        else
            alert("data is not an integer")
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8  
this counts NaN as an integer. also performs worse against my method. jsperf.com/numbers-and-integers –  Blake Regalia Jan 31 '13 at 23:54
1  
if you run your example through the above code it alerts out a as an integer and the other as not an integer which is the case... in case of NaN also the type of NaN is different from the type of the return value of pareInt()..... –  pranag Feb 1 '13 at 15:21
1  
could you elaborate a bit? the "example" is only demonstrating that using parseInt yields worse performance than using typeof keyword and modulus operator. but I do see what you mean now about (NaN != NaN) –  Blake Regalia Feb 1 '13 at 22:35
    
parseInt(2.0) === 2.0 –  connorbode Jul 3 at 16:19
1  
@connorbode in javascript all numbers have the same type (there is no float or double), so 2.0 === 2 since the unnecessary decimal is just a different representation of the same number, thus parseInt(2.0) === 2.0 is equivalent to parseInt(2) === 2 which is true –  Michael Theriot Aug 21 at 9:38

That depends, do you also want to cast strings as potential integers as well?

This will do:

function isInt(value) {
  return !isNaN(value) && 
         parseInt(Number(value)) == value && 
         !isNaN(parseInt(value, 10));
}

Tests:

isInt(42)        // true
isInt("42")      // true
isInt(4e2)       // true
isInt("4e2")     // true
isInt(" 1 ")     // true
isInt("")        // false
isInt("  ")      // false
isInt(42.1)      // false
isInt(null)      // false
isInt(undefined) // false
isInt(NaN)       // false

Here's the fiddle: http://jsfiddle.net/opfyrqwp/2/

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4  
This should be the correct answer! –  Mārtiņš Briedis Feb 10 at 23:14
    
I think it should be return !isNaN(value) && parseInt(Number(value)) == value; otherwise '4e2' fails the test. –  Buzzy May 17 at 9:23
    
this checks for strings also. +1 –  chosta May 21 at 11:44
1  
Downvote : isInt("") returns true. –  Kraz Jul 11 at 20:20
    
@Kraz, updated with empty string case. –  krisk Jul 28 at 19:47

You could check if the number has a remainder:

var data = 22;

if(data % 1 === 0){
   // yes it's an integer.
}

Mind you, if your input could also be text and you want to check first it is not, then you can check the type first:

var data = 22;

if(typeof data === 'number'){
     // yes it is numeric

    if(data % 1 === 0){
       // yes it's an integer.
    }
}
share|improve this answer
    
Of yes, if it is zero you will get an division by zero error –  Erwinus Jan 31 '13 at 22:54
    
@Erwinus: Run 0 % 1 === 0 in the console. It returns true as 0 % 1 returns 0. –  François Wahl Jan 31 '13 at 22:55
    
Have you try it in IE ;-) –  Erwinus Jan 31 '13 at 22:58
    
@Erwinus: 0 % 1 returns 0 in IE9, IE8 and IE7 compatibility mode. –  François Wahl Jan 31 '13 at 23:00
13  
@Erwinus: I think you got your facts mixed up. A division by zero error is caused when you divide by zero not when you divide zero by a number. Nothing to do with the version of IE at all. –  François Wahl Jan 31 '13 at 23:06

Assuming you don't know anything about the variable in question, you should take this approach:

if(typeof data === 'number') {
    var remainder = (data % 1);
    if(remainder === 0) {
        // yes, it is an integer
    }
    else if(isNaN(remainder)) {
        // no, data is either: NaN, Infinity, or -Infinity
    }
    else {
        // no, it is a float (still a number though)
    }
}
else {
    // no way, it is not even a number
}

To put it simply:

if(typeof data==='number' && (data%1)===0) {
    // data is an integer
}
share|improve this answer
    
this will not work for 1.0 –  Radha Mohan Feb 6 at 11:19
2  
What do you mean? This checks for data types in javascript, "1.0" is a string, and is therefore not a number. Otherwise 1 will be the value of a variable if you set it thusly var my_var=1.0;, which is correctly identified by this function as an integer. –  Blake Regalia Feb 6 at 19:36

Check if the variable is equal to that same variable rounded to an integer, like this:

if(Math.round(data) != data) {
    alert("Variable is not an integer!");
}
share|improve this answer
    
Problem with this one is that it works with NaN as a value –  marksyzm Apr 2 at 9:00

First off, NaN is a "number" (yes I know it's weird, just roll with it), and not a "function".

You need to check both if the type of the variable is a number, and to check for integer I would use modulus.

alert(typeof data === 'number' && data%1 == 0);
share|improve this answer
    
should be: alert(typeof data == 'number' && (data == 0 || data % 1 == 0)); to avoid division by zero. –  Erwinus Jan 31 '13 at 22:57
6  
@Erwinus 0%1 is still division by 1. –  Phil Jan 31 '13 at 23:04

To check if integer like poster wants:

if (+data===parseInt(data)) {return true} else {return false}

notice + in front of data (converts string to number), and === for exact.

Here are examples:

data=10
+data===parseInt(data)
true

data="10"
+data===parseInt(data)
true

data="10.2"
+data===parseInt(data)
false
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1  
This seems like the smartest solution for my case (where I don't mind if it's an integer in a string). However: why not just go return (+data===parseInt(data))? –  Swiss Mister Jul 31 at 14:22

Be careful while using

num % 1

empty string ('') or boolean (true or false) will return as integer. You might not want to do that

false % 1 // true
'' % 1 //true

Number.isInteger(data)

Number.isInteger(22); //true
Number.isInteger(22.2); //false
Number.isInteger('22'); //false

build in function in the browser. Dosnt support older browsers

Alternatives:

Math.round(num)=== num

However, Math.round() also will fail for empty string and boolean

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You can use regexp for this:

function isInteger(n) {
    return (typeof n == 'number' && /^-?\d+$/.test(n+''));
}
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function isInteger(argument) { return argument == ~~argument; }

isInteger(1); // true
isInteger(0.1); // false
isInteger("1"); // true
isInteger("0.1"); // false

or:

function isInteger(argument) { return argument == argument + 0 && argument == ~~argument; }

isInteger(1); // true
isInteger(0.1); // false
isInteger("1"); // false
isInteger("0.1"); // false

share|improve this answer

You could use this function:

function isInteger(value) {
    return (value == parseInt(value));
}

It will return true even if the value is a string containing an integer value.
So, the results will be:

alert(isInteger(1)); // true
alert(isInteger(1.2)); // false
alert(isInteger("1")); // true
alert(isInteger("1.2")); // false
alert(isInteger("abc")); // false
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