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Can anyone point me to some code to determine if a number in JavaScript is even or odd?

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3  
    
@DavidThomas I partly agree, but I have two caveats: 1. If I had to choose, I'd rather a beginner programmer knew about the % operator than &, and 2. While & is theoretically faster, it really doesn't matter. –  kojiro Aug 12 '12 at 23:11
1  
@kojiro: I'd rather more (valid) options be presented to a learner; plus I hadn't ever thought to use bitwise-& in this manner before, so it's an interesting take. Anyway, since it is a dupe, I've flagged for merger with the pre-existing question. Hopefully, then, the answers here (that particular answer at least), won't be lost. –  David Thomas Aug 12 '12 at 23:14
    
@kojiro I'm afraid to say that your fiddle is quite useless, since most of the computational time is taken by the function calls. But nobody will use a function call to determine if a number is odd or even... I made a third revision of your test, but I'm on my phone now... –  MaxArt Aug 13 '12 at 1:05
    
possible duplicate of Testing whether a value is odd or even –  bummi Mar 17 at 14:36

17 Answers 17

up vote 90 down vote accepted
function isOdd(num) { return num % 2;}
console.log("1 is odd " + isOdd(1) == true);
console.log("2 is odd " + isOdd(2) == false);
console.log("3 is odd " + isOdd(3) == true);
console.log("4 is odd " + isOdd(4) == false);
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31  
Note that this will return 0 or 1 (or NaN if you feed it something that isn't a number and can't be coerced into one), which will work fine for most situations. But if you want a real true or false: return (num % 2) == 1; –  T.J. Crowder Feb 16 '11 at 12:20
1  
yea good note about the NaN. But usually, you want javascript to be truthy or falsey, which is why i wrote it the way i did. –  Chii Feb 16 '11 at 12:24
4  
Just to clarify, the modulo operator (%) gives the remainder of a division. So 3%2 would be 3/2, leaving 1 as a remainder, therefore 3%2 will return 1. –  Abuh Feb 16 '11 at 12:24
2  
Further to what T.J. said, this will return a fraction if num isn't an integer. Which will still work if you compare isOdd(1.5)==true (because a fractional value is not equal to true), but it would be better if the function returned true or false as implied by the name "isOdd". –  nnnnnn Aug 13 '12 at 2:02

Use the bitwise AND operator.

function oddOrEven(x) {
  return ( x & 1 ) ? "odd" : "even";
}

If you don't want a string return value, but rather a boolean one, use this:

var isOdd = function(x) { return x & 1; };
var isEven  = function(x) { return !( x & 1 ); };
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+1, you're answer definitely beats mine, not to mention that you have the only answer that does not use X % Y! –  s0d4pop Aug 12 '12 at 22:52
    
I'm not sure if my test is accurate, but the bitwise AND seems to be 40 times slower than the modulo operator for a fixed number and 2 times slower for a random number: jsperf.com/odd-or-even –  Blender Aug 12 '12 at 22:59
3  
Note that this will return "odd" or "even" for numbers that are not either (e.g., 3.14). –  nnnnnn Aug 12 '12 at 23:02
1  
Or: function isEven(n){return !(n & 1);}. –  RobG Aug 12 '12 at 23:15
2  
@Gnuey Every number is comprised of a series of bits. All odd numbers have the least-significant (rightmost) bit set to 1, all even numbers 0. The x & 1 checks if the last bit is set in the number (because 1 Is a number with all bits set to 1 except for the least significant bit): If it is, the number is odd, otherwise even. –  0x499602D2 Aug 30 '13 at 13:01
function isEven(x) { return (x%2)==0; }
function isOdd(x) { return !isEven(x); }
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You could do something like this:

function isEven(value){
    if (value%2 == 0)
        return true;
    else
        return false;
}
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1  
..or what Chii said - haha –  TNC Feb 16 '11 at 12:21
5  
It doesn't seem like you know what a boolean is. if (condition) { answer=true; } else { answer=false; } is just a needlessly wordy version of answer = (bool) condition;. Reduce your function to function isEven(value) { return (bool) (value%2 == 0); } and we'll all be happy. –  awm Feb 16 '11 at 12:28
2  
No need to get snarky, because I program something differently. –  TNC Feb 16 '11 at 12:36
    
@awm - It seems like you don't know JavaScript. You can't cast to boolean with (bool) (that'll give an error) and in any case you don't need to: return value%2 == 0; will do the job since the == operator returns a boolean. –  nnnnnn Aug 13 '12 at 1:55
    
Wow, did I really write that? Yes, that's obviously wrong; should be something like answer = !!(condition). The point I was trying to make, of course is that you can just return value%2==0 and don't need to bother with the conditional. –  awm Aug 13 '12 at 4:53

Like many languages, Javascript has a modulus operator %, that finds the remainder of division. If there is no remainder after division by 2, a number is even:

// this expression is true if "number" is even, false otherwise
(number % 2 == 0)

This is a very common idiom for testing for even integers.

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However, modulus can be tricky/undefined for negative values .. be sure to consult the appropriate language specification. –  user166390 Aug 12 '12 at 22:54

Do I have to make an array really large that has a lot of even numbers

Oh goodness no. Use modulus (%). It gives you the remainder of the two numbers you are dividing.

Ex. 2 % 2 = 0 because 2/2 = 1 with 0 remainder.

Ex2. 3 % 2 = 1 because 3/2 = 1 with 1 remainder.

Ex3. -7 % 2 = -1 because -7/2 = -3 with -1 remainder.

This means if you mod any number x by 2, you get either 0 or 1 or -1. 0 would mean it's even. Anything else would mean it's odd.

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+1 for explaining how the operator works. –  bfavaretto Aug 12 '12 at 22:52
1  
"Anything else would mean it's odd." - Or that it's not an integer... –  nnnnnn Aug 12 '12 at 23:03

A simple function you can pass around. Uses the modulo operator % and the ternary operator ?.

var is_even = function(x) {
    return (x % 2) ? false: true; 
}

is_even(3)
false
is_even(6)
true
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Use my extensions :

Number.prototype.isEven=function(){
     return this % 2===0;
};

Number.prototype.isOdd=function(){
     return !this.isEven();
}

then

var a=5; 
 a.isEven();

==False

 a.isOdd();

==True

if you are not sure if it is a Number , test it by the following branching :

if(a.isOdd){
    a.isOdd();
}

UPDATE :

if you would not use variable :

(5).isOdd()
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You can use a for statement and a conditional to determine if a number or series of numbers is odd:

for (var i=1; i<=5; i++) 
if (i%2 !== 0) {
    console.log(i)
}

This will print every odd number between 1 and 5.

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This can be solved with a small snippet of code:

function isEven(value) {
    if (value%2 == 0)
    return true;
else
    return false;
}

Hope this helps :)

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or return value % 2 == 0 –  0x499602D2 Nov 30 '12 at 19:56

Subtract 2 to it recursively until you reach either -1 or 0 (only works for positive integers obviously) :)

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if (X % 2 === 0){
} else {
}

Replace X with your number (can come from a variable). The If statement runs when the number is even, the Else when it is odd.

If you just want to know if any given number is odd:

if (X % 2 !== 0){
}

Again, replace X with a number or variable.

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Just executed this one in Adobe Dreamweaver..it works perfectly. i used if (isNaN(mynmb))

to check if the given Value is a number or not, and i also used Math.abs(mynmb%2) to convert negative number to positive and calculate

    <!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>

</head>
<body bgcolor = "#FFFFCC">
    <h3 align ="center"> ODD OR EVEN </h3><table cellspacing = "2" cellpadding = "5" bgcolor="palegreen">
        <form name = formtwo>
            <td align = "center">
                <center><BR />Enter a number: 
                    <input type=text id="enter" name=enter maxlength="10" />
                    <input type=button name = b3 value = "Click Here" onClick = compute() />
                      <b>is<b> 
                <input type=text id="outtxt" name=output size="5" value="" disabled /> </b></b></center><b><b>
                <BR /><BR />
            </b></b></td></form>
        </table>

    <script type='text/javascript'>

        function compute()
        {
          var enter = document.getElementById("enter");
          var outtxt = document.getElementById("outtxt");

          var mynmb = enter.value;
          if (isNaN(mynmb)) 
          { 
            outtxt.value = "error !!!"; 
            alert( 'please enter a valid number');
            enter.focus();
            return;
          }
          else 
          { 
             if ( mynmb%2 == 0 ) { outtxt.value = "Even"; }  
             if ( Math.abs(mynmb%2) == 1 ) { outtxt.value = "Odd"; }
          }
        }

    </script>
</body>
</html>
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Every odd number when divided by two leaves remainder as 1 and every even number when divided by zero leaves a zero as remainder. Hence we can use this code

  function checker(number)  {
   return number%2==0?even:odd;
   }
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function isOdd(num) {
    return Math.floor((num - 1) / 2) === 0;
}
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How about this...

    var num = 3 //instead get your value here
    var aa = ["Even", "Odd"];

    alert(aa[num % 2]);
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This is what I did

//Array of numbers
var numbers = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10,32,23,643,67,5876,6345,34,3453];
//Array of even numbers
var evenNumbers = [];
//Array of odd numbers
var oddNumbers = [];

function classifyNumbers(arr){
  //go through the numbers one by one
  for(var i=0; i<=arr.length-1; i++){
     if (arr[i] % 2 == 0 ){
        //Push the number to the evenNumbers array
        evenNumbers.push(arr[i]);
     } else {
        //Push the number to the oddNumbers array
        oddNumbers.push(arr[i]);
     }
  }
}

classifyNumbers(numbers);

console.log('Even numbers: ' + evenNumbers);
console.log('Odd numbers: ' + oddNumbers);

For some reason I had to make sure the length of the array is less by one. When I don't do that, I get "undefined" in the last element of the oddNumbers array.

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It's because the condition is set to less to or equal "<=" to the length of the array. I removed the equal sign and is the result was as desired. –  Zakher Masri Mar 16 at 14:27

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