2260

What's the cleanest, most effective way to validate decimal numbers in JavaScript?

Bonus points for:

  1. Clarity. Solution should be clean and simple.
  2. Cross-platform.

Test cases:

01. IsNumeric('-1')      => true
02. IsNumeric('-1.5')    => true
03. IsNumeric('0')       => true
04. IsNumeric('0.42')    => true
05. IsNumeric('.42')     => true
06. IsNumeric('99,999')  => false
07. IsNumeric('0x89f')   => false
08. IsNumeric('#abcdef') => false
09. IsNumeric('1.2.3')   => false
10. IsNumeric('')        => false
11. IsNumeric('blah')    => false
  • 248
    Just a note 99,999 is a valid number in France, its the same as 99.999 in uk/ us format, so if you are reading in a string from say an input form then 99,999 may be true. – Re0sless Aug 20 '08 at 14:31
  • 5
    Also check out this post and the great comments. – powtac Nov 23 '09 at 18:05
  • 75
    Decimal comma is the standard in entire Europe and Russia (except UK) – Calmarius Feb 16 '11 at 14:29
  • 90
    jQuery 1.7 has introduced the jQuery.isNumeric utility function: api.jquery.com/jQuery.isNumeric – Ateş Göral Nov 16 '11 at 20:04
  • 24
    jQuery.isNumeric will fail the OP's seventh test case (IsNumeric('0x89f') => *false*). I'm not sure if I agree with this test case, however. – Tim Lehner Aug 27 '12 at 16:42

48 Answers 48

1

The following seems to works fine for many cases:

function isNumeric(num) {
    return (num > 0 || num === 0 || num === '0' || num < 0) && num !== true && isFinite(num);
}

This is built on top of this answer (which is for this answer too): https://stackoverflow.com/a/1561597/1985601

1
function isNumber(n) {
    return (n===n+''||n===n-0) && n*0==0 && /\S/.test(n);
}

Explanations:

(n===n-0||n===n+'') verifies if n is a number or a string (discards arrays, boolean, date, null, ...). You can replace (n===n-0||n===n+'') by n!==undefined && n!==null && (n.constructor===Number||n.constructor===String): significantly faster but less concise.

n*0==0 verifies if n is a finite number as isFinite(n) does. If you need to check strings that represent negative hexadecimal, just replace n*0==0 by something like n.toString().replace(/^\s*-/,'')*0==0.
It costs a little of course, so if you don't need it, don't use it.

/\S/.test(n) discards empty strings or strings, that contain only white-spaces (necessary since isFinite(n) or n*0==0 return a false positive in this case). You can reduce the number of call to .test(n) by using (n!=0||/0/.test(n)) instead of /\S/.test(n), or you can use a slightly faster but less concise test such as (n!=0||(n+'').indexOf('0')>=0): tiny improvement.

1

One can use a type-check library like https://github.com/arasatasaygin/is.js or just extract a check snippet from there (https://github.com/arasatasaygin/is.js/blob/master/is.js#L131):

is.nan = function(value) {    // NaN is number :) 
  return value !== value;
};
 // is a given value number?
is.number = function(value) {
    return !is.nan(value) && Object.prototype.toString.call(value) === '[object Number]';
};

In general if you need it to validate parameter types (on entry point of function call), you can go with JSDOC-compliant contracts (https://www.npmjs.com/package/bycontract):

/**
 * This is JSDOC syntax
 * @param {number|string} sum
 * @param {Object.<string, string>} payload
 * @param {function} cb
 */
function foo( sum, payload, cb ) {
  // Test if the contract is respected at entry point
  byContract( arguments, [ "number|string", "Object.<string, string>", "function" ] );
}
// Test it
foo( 100, { foo: "foo" }, function(){}); // ok
foo( 100, { foo: 100 }, function(){}); // exception
1

If you need to validate a special set of decimals y you can use this simple javascript:

http://codesheet.org/codesheet/x1kI7hAD

<input type="text" name="date" value="" pattern="[0-9]){1,2}(\.){1}([0-9]){2}" maxlength="6" placeholder="od npr.: 16.06" onchange="date(this);" />

The Javascript:

function date(inputField) {        
  var isValid = /^([0-9]){1,2}(\.){1}([0-9]){2}$/.test(inputField.value);   
  if (isValid) {
    inputField.style.backgroundColor = '#bfa';
  } else {
    inputField.style.backgroundColor = '#fba';
  }
  return isValid;
}
1

isNumeric=(el)=>{return Boolean(parseFloat(el)) && isFinite(el)}

Nothing very different but we can use Boolean constructor

1

Best way to do this is like this:

function isThisActuallyANumber(data){
    return ( typeof data === "number" && !isNaN(data) );
}
1

I think my code is perfect ...

/**
 * @param {string} s
 * @return {boolean}
 */
var isNumber = function(s) {
    return s.trim()!=="" && !isNaN(Number(s));
};

1

No need to use extra lib.

const IsNumeric = (...numbers) => {
  return numbers.reduce((pre, cur) => pre && !!(cur === 0 || +cur), true);
};

Test

> IsNumeric(1)
true
> IsNumeric(1,2,3)
true
> IsNumeric(1,2,3,0)
true
> IsNumeric(1,2,3,0,'')
false
> IsNumeric(1,2,3,0,'2')
true
> IsNumeric(1,2,3,0,'200')
true
> IsNumeric(1,2,3,0,'-200')
true
> IsNumeric(1,2,3,0,'-200','.32')
true
1

I have run the following below and it passes all the test cases...

It makes use of the different way in which parseFloat and Number handle their inputs...

function IsNumeric(_in) {
    return (parseFloat(_in) === Number(_in) && Number(_in) !== NaN);
}
  • I haven't tried this, but just a tip: you can reduce that to just return the if expression, e.g. return parseFloat... – Michael Haren Sep 27 '13 at 17:33
  • @Michael Haren, silly me, I just saw this link http://dl.dropboxusercontent.com/u/35146/js/tests/isNumber.html in the highest upvote(the one about 30+ test cases), explains a lot... – Aaron Gong Sep 27 '13 at 17:49
  • 1
    This is wrong, you cannot compare against NaN with ==, ===, !=, or !==, it always returns false. – Alexis Wilke Dec 15 '14 at 23:38
  • The tricky thing about NaN is that it is unequal to every JavaScript value, including itself. So anythingAtAll === NaN is false and anythingAtAll !== NaN is true. The way you test for NaN is to compare a value to itself: x !== x is true if x is NaN, and false otherwise. – jkdev Jul 14 '15 at 23:09
  • 1
    @jkdev You can also use isNaN(NaN) which will return true. This is a built-in function to JavaScript. developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Jacob Gunther Nov 9 '17 at 4:06
1

A simple and clean solution by leveraging language's dynamic type checking:

function IsNumeric (string) {
   if(string === ' '.repeat(string.length)){
     return false
   }
   return string - 0 === string * 1
}

if you don't care about white-spaces you can remove that " if "

see test cases below

function IsNumeric (string) {
   if(string === ' '.repeat(string.length)){
      return false
   }
   return string - 0 === string * 1
}


console.log('-1' + ' → ' + IsNumeric('-1'))    
console.log('-1.5' + ' → ' + IsNumeric('-1.5')) 
console.log('0' + ' → ' + IsNumeric('0'))     
console.log('0.42' + ' → ' + IsNumeric('0.42'))   
console.log('.42' + ' → ' + IsNumeric('.42'))    
console.log('99,999' + ' → ' + IsNumeric('99,999'))
console.log('0x89f' + ' → ' + IsNumeric('0x89f'))  
console.log('#abcdef' + ' → ' + IsNumeric('#abcdef'))
console.log('1.2.3' + ' → ' + IsNumeric('1.2.3')) 
console.log('' + ' → ' + IsNumeric(''))    
console.log('33 ' + ' → ' + IsNumeric('33 '))

0

I found simple solution, probably not best but it's working fine :)

So, what I do is next, I parse string to Int and check if length size of new variable which is now int type is same as length of original string variable. Logically if size is the same it means string is fully parsed to int and that is only possible if string is "made" only of numbers.

var val=1+$(e).val()+'';
var n=parseInt(val)+'';
if(val.length == n.length )alert('Is int');

You can easily put that code in function and instead of alert use return true if int. Remember, if you use dot or comma in string you are checking it's still false cos you are parsing to int.

Note: Adding 1+ on e.val so starting zero wouldn't be removed.

-1

I use this way to chack that varible is numeric:

v * 1 == v
  • 1
    Problem: false * 1 == false evaluates to true. – jkdev Jul 14 '15 at 23:45
-1
function isNumeric(n) {
    var isNumber = true;

    $.each(n.replace(/ /g,'').toString(), function(i, v){
        if(v!=',' && v!='.' && v!='-'){
            if(isNaN(v)){
               isNumber = false;
               return false;
            }
         }
     });

    return isNumber;
}

isNumeric(-3,4567.89);   // true <br>

isNumeric(3,4567.89);   // true <br>

isNumeric("-3,4567.89");   // true <br>

isNumeric(3d,4567.89);   // false
-1
$('.rsval').bind('keypress', function(e){  
        var asciiCodeOfNumbers = [48,46, 49, 50, 51, 52, 53, 54, 54, 55, 56, 57];
        var keynum = (!window.event) ? e.which : e.keyCode; 
        var splitn = this.value.split("."); 
        var decimal = splitn.length;
        var precision = splitn[1]; 
        if(decimal == 2 && precision.length >= 2  ) { console.log(precision , 'e');   e.preventDefault(); } 
        if( keynum == 46 ){  
            if(decimal > 2) { e.preventDefault(); }  
        } 
        if ($.inArray(keynum, asciiCodeOfNumbers) == -1)
            e.preventDefault();    
  });
-2

@Zoltan Lengyel 'other locales' comment (Apr 26 at 2:14) in @CMS Dec answer (2 '09 at 5:36):

I would recommend testing for typeof (n) === 'string':

    function isNumber(n) {
        if (typeof (n) === 'string') {
            n = n.replace(/,/, ".");
        }
        return !isNaN(parseFloat(n)) && isFinite(n);
    }

This extends Zoltans recommendation to not only be able to test "localized numbers" like isNumber('12,50') but also "pure" numbers like isNumber(2011).

-3

Well, I'm using this one I made...

It's been working so far:

function checkNumber(value) {
    if ( value % 1 == 0 )
        return true;
    else
        return false;
}

If you spot any problem with it, tell me, please.

Like any numbers should be divisible by one with nothing left, I figured I could just use the module, and if you try dividing a string into a number the result wouldn't be that. So.

  • 3
    What about 1.5? Also, the function's body has a lot of redundant code. You should directly return the expression's result, which will be a Boolean. – alex Aug 7 '13 at 22:06
-3

The following may work as well.

function isNumeric(v) {
         return v.length > 0 && !isNaN(v) && v.search(/[A-Z]|[#]/ig) == -1;
   };
  • 1
    This will only work if a string is passed to it. – alex Aug 7 '13 at 22:07
-4

Here I've collected the "good ones" from this page and put them into a simple test pattern for you to evaluate on your own.

For newbies, the console.log is a built in function (available in all modern browsers) that lets you output results to the JavaScript console (dig around, you'll find it) rather than having to output to your HTML page.

var isNumeric = function(val){
    // --------------------------
    // Recommended
    // --------------------------

    // jQuery - works rather well
    // See CMS's unit test also: http://dl.getdropbox.com/u/35146/js/tests/isNumber.html
    return !isNaN(parseFloat(val)) && isFinite(val);

    // Aquatic - good and fast, fails the "0x89f" test, but that test is questionable.
    //return parseFloat(val)==val;

    // --------------------------
    // Other quirky options
    // --------------------------
    // Fails on "", null, newline, tab negative.
    //return !isNaN(val);

    // user532188 - fails on "0x89f"
    //var n2 = val;
    //val = parseFloat(val);
    //return (val!='NaN' && n2==val);

    // Rafael - fails on negative + decimal numbers, may be good for isInt()?
    // return ( val % 1 == 0 ) ? true : false;

    // pottedmeat - good, but fails on stringy numbers, which may be a good thing for some folks?
    //return /^-?(0|[1-9]\d*|(?=\.))(\.\d+)?$/.test(val);

    // Haren - passes all
    // borrowed from http://www.codetoad.com/javascript/isnumeric.asp
    //var RE = /^-{0,1}\d*\.{0,1}\d+$/;
    //return RE.test(val);

    // YUI - good for strict adherance to number type. Doesn't let stringy numbers through.
    //return typeof val === 'number' && isFinite(val);

    // user189277 - fails on "" and "\n"
    //return ( val >=0 || val < 0);
}

var tests = [0, 1, "0", 0x0, 0x000, "0000", "0x89f", 8e5, 0x23, -0, 0.0, "1.0", 1.0, -1.5, 0.42, '075', "01", '-01', "0.", ".0", "a", "a2", true, false, "#000", '1.2.3', '#abcdef', '', "", "\n", "\t", '-', null, undefined];

for (var i=0; i<tests.length; i++){
    console.log( "test " + i + ":    " + tests[i] + "    \t   " + isNumeric(tests[i]) );
}

protected by Bo Persson Jan 6 '13 at 20:57

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