1296

I'm hoping there's something in the same conceptual space as the old VB6 IsNumeric() function?

| |
  • 3
    See this related question, which I asked some time ago. – Michael Haren Oct 6 '08 at 19:17
  • 41
    If you go to this question, try to skip past all the RegEx answers. That's just NOT the way to do it. – Joel Coehoorn Oct 6 '08 at 19:20
  • 14
    Unless one wants to do exactly that: To check whether a given string has a format of a valid stream of digits. Why should it be wrong then? – SasQ May 18 '14 at 23:53
  • 20
    The selected answer is incorrect!!! See its comments, but basically it fails with e.g. isNaN(""), isNaN(" "), isNaN(false), etc. It returns false for these, implying that they are numbers. – Andrew Oct 5 '17 at 20:42
  • 2
    so the selected answer is incorrect, regexp is not the way to do that neither. Which one is correct then? – vir us May 9 at 8:10

37 Answers 37

2485

2nd October 2020: note that many bare-bones approaches are fraught with subtle bugs (eg. whitespace, implicit partial parsing, radix, coercion of arrays etc.) that many of the answers here fail to take into account. The following implementation might work for you, but note that it does not cater for number separators other than the decimal point ".":

function isNumeric(str) {
  if (typeof str != "string") return false // we only process strings!  
  return !isNaN(str) && // use type coercion to parse the _entirety_ of the string (`parseFloat` alone does not do this)...
         !isNaN(parseFloat(str)) // ...and ensure strings of whitespace fail
}

To check if a variable (including a string) is a number, check if it is not a number:

This works regardless of whether the variable content is a string or number.

isNaN(num)         // returns true if the variable does NOT contain a valid number

Examples

isNaN(123)         // false
isNaN('123')       // false
isNaN('1e10000')   // false (This translates to Infinity, which is a number)
isNaN('foo')       // true
isNaN('10px')      // true

Of course, you can negate this if you need to. For example, to implement the IsNumeric example you gave:

function isNumeric(num){
  return !isNaN(num)
}

To convert a string containing a number into a number:

Only works if the string only contains numeric characters, else it returns NaN.

+num               // returns the numeric value of the string, or NaN 
                   // if the string isn't purely numeric characters

Examples

+'12'              // 12
+'12.'             // 12
+'12..'            // NaN
+'.12'             // 0.12
+'..12'            // NaN
+'foo'             // NaN
+'12px'            // NaN

To convert a string loosely to a number

Useful for converting '12px' to 12, for example:

parseInt(num)      // extracts a numeric value from the 
                   // start of the string, or NaN.

Examples

parseInt('12')     // 12
parseInt('aaa')    // NaN
parseInt('12px')   // 12
parseInt('foo2')   // NaN      These last two may be different
parseInt('12a5')   // 12       from what you expected to see. 

Floats

Bear in mind that, unlike +num, parseInt (as the name suggests) will convert a float into an integer by chopping off everything following the decimal point (if you want to use parseInt() because of this behaviour, you're probably better off using another method instead):

+'12.345'          // 12.345
parseInt(12.345)   // 12
parseInt('12.345') // 12

Empty strings

Empty strings may be a little counter-intuitive. +num converts empty strings or strings with spaces to zero, and isNaN() assumes the same:

+''                // 0
+'   '             // 0
isNaN('')          // false
isNaN('   ')       // false

But parseInt() does not agree:

parseInt('')       // NaN
parseInt('   ')    // NaN
| |
  • 140
    A very important note about parseInt is that it will allow you to specify a radix for converting the string to an int. This is a big gotcha as it tries to guess a radix for you if you don't supply it. So, for example: parseInt("17") results in 17 (decimal, 10), but parseInt("08") results in 0 (octal, 8). So, unless you intend otherwise, it is safest to use parseInt(number, 10), specifying 10 as the radix explicitly. – Adam Raney Apr 28 '09 at 22:48
  • 39
    Note that !isNaN(undefined) returns false. – David Hellsing Nov 6 '10 at 5:34
  • 130
    This is just plain wrong - how did it get so many upvotes? You cannot use isNaN "To check to see if a variable is not a number". "not a number" is not the same as "IEEE-794 NaN", which is what isNaN tests for. In particular, this usage fails when testing booleans and empty strings, at least. See developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…. – EML Dec 30 '13 at 0:33
  • 49
    The fastest possible way to check if something is a number is the "equal to self" check: var n = 'a'; if (+n === +n) { // is number } It is ~3994% faster than isNaN in the latest version of Chrome. See the performance test here: jsperf.com/isnan-vs-typeof/5 – Kevin Jurkowski Jan 22 '14 at 0:59
  • 25
    ** Warning ** This answer is wrong. Use at your own risk. Example: isNaN(1 + false + parseInt("1.do you trust your users?")) – keithpjolley May 31 '17 at 14:50
63

If you're just trying to check if a string is a whole number (no decimal places), regex is a good way to go. Other methods such as isNaN are too complicated for something so simple.

    function isNumeric(value) {
        return /^-?\d+$/.test(value);
    }
    
    console.log(isNumeric('abcd'));         // false
    console.log(isNumeric('123a'));         // false
    console.log(isNumeric('1'));            // true
    console.log(isNumeric('1234567890'));   // true
    console.log(isNumeric('-23'));          // true
    console.log(isNumeric(1234));           // true
    console.log(isNumeric('123.4'));        // false
    console.log(isNumeric(''));             // false
    console.log(isNumeric(undefined));      // false
    console.log(isNumeric(null));           // false

To only allow positive whole numbers use this:

    function isNumeric(value) {
        return /^\d+$/.test(value);
    }

    console.log(isNumeric('123'));          // true
    console.log(isNumeric('-23'));          // false
| |
  • 12
    console.log(isNumeric('-1')); – yongnan Nov 13 '14 at 1:02
  • 5
    console.log(isNumeric('2e2')); – Gaël Barbin Mar 2 '15 at 15:27
  • 15
    Perhaps just rename "isNumeric" to "hasOnlyDigits". in many cases, that is exactly the check you are looking for. – gus3001 Oct 9 '17 at 20:39
  • 2
    This is what I was looking for, the equivalent to php ctype_digit – Miguel Pynto Sep 20 '19 at 11:17
  • I think this is the best approach – Laszlo Sarvold Sep 17 at 14:06
58

And you could go the RegExp-way:

var num = "987238";

if(num.match(/^-?\d+$/)){
  //valid integer (positive or negative)
}else if(num.match(/^\d+\.\d+$/)){
  //valid float
}else{
  //not valid number
}
| |
  • 42
    In this case, RegExp == bad – Joel Coehoorn Oct 6 '08 at 19:27
  • 10
    This fails on hexadecimal numbers (0x12, for example), floats without a leading zero (.42, for example) and negative numbers. – Ori Apr 18 '12 at 1:25
  • 17
    @JoelCoehoorn Care to elaborate on why RegExp == bad here? Seems to be a valid use case to me. – computrius Dec 30 '14 at 16:02
  • 6
    There are more ways than it seems to build a number (hex numbers in another comment are just one example), and there are many numbers that may not be considered valid (overflow the type, too precise, etc). Also, regex is both slower and more complicated than just using the built-in mechanisms – Joel Coehoorn Dec 30 '14 at 18:18
  • 1
    should also match scientific notation... 1e10 etc. – Joseph Merdrignac Oct 30 '17 at 21:45
44

The accepted answer for this question has quite a few flaws (as highlighted by couple of other users). This is one of the easiest & proven way to approach it in javascript:

function isNumeric(n) {
  return !isNaN(parseFloat(n)) && isFinite(n);
}

Below are some good test cases:

console.log(isNumeric(12345678912345678912)); // true
console.log(isNumeric('2 '));                 // true
console.log(isNumeric('-32.2 '));             // true
console.log(isNumeric(-32.2));                // true
console.log(isNumeric(undefined));            // false

// the accepted answer fails at these tests:
console.log(isNumeric(''));                   // false
console.log(isNumeric(null));                 // false
console.log(isNumeric([]));                   // false
| |
  • parseFloat is insufficient for this application because it will return a valid number parsed so far, when it encounters the first character that cannot be parsed as a number. eg. parseFloat('1.1ea10') === 1.1. – Ben Aston Oct 2 at 10:35
40

If you really want to make sure that a string contains only a number, any number (integer or floating point), and exactly a number, you cannot use parseInt()/ parseFloat(), Number(), or !isNaN() by themselves. Note that !isNaN() is actually returning true when Number() would return a number, and false when it would return NaN, so I will exclude it from the rest of the discussion.

The problem with parseFloat() is that it will return a number if the string contains any number, even if the string doesn't contain only and exactly a number:

parseFloat("2016-12-31")  // returns 2016
parseFloat("1-1") // return 1
parseFloat("1.2.3") // returns 1.2

The problem with Number() is that it will return a number in cases where the passed value is not a number at all!

Number("") // returns 0
Number(" ") // returns 0
Number(" \u00A0   \t\n\r") // returns 0

The problem with rolling your own regex is that unless you create the exact regex for matching a floating point number as Javascript recognizes it you are going to miss cases or recognize cases where you shouldn't. And even if you can roll your own regex, why? There are simpler built-in ways to do it.

However, it turns out that Number() (and isNaN()) does the right thing for every case where parseFloat() returns a number when it shouldn't, and vice versa. So to find out if a string is really exactly and only a number, call both functions and see if they both return true:

function isNumber(str) {
  if (typeof str != "string") return false // we only process strings!
  // could also coerce to string: str = ""+str
  return !isNaN(str) && !isNaN(parseFloat(str))
}
| |
  • 2
    This returns true when the string has leading or trailing spaces. ' 1', '2 ' and ' 3 ' all return true. – Rudey Feb 22 '17 at 20:07
  • Adding something like this to the return-statement would solve that: && !/^\s+|\s+$/g.test(str) – Ultroman the Tacoman May 15 '17 at 13:07
  • 2
    @RuudLenders - most people won't care if there are trailing spaces that get lopped off to make the string a valid number, because its easy to accidentally put in the extra spaces in lots of interfaces. – Ian Nov 3 '17 at 19:34
  • 4
    That's true in case the number string is coming from user input. But I thought I should mention spaces anyway, because I think most people who need an isNumber function aren't dealing with user interfaces. Also, a good number input won't allow spaces to begin with. – Rudey Nov 4 '17 at 21:25
24

Try the isNan function:

The isNaN() function determines whether a value is an illegal number (Not-a-Number).

This function returns true if the value equates to NaN. Otherwise it returns false.

This function is different from the Number specific Number.isNaN() method.

  The global isNaN() function, converts the tested value to a Number, then tests it.

Number.isNan() does not convert the values to a Number, and will not return true for any value that is not of the type Number...

| |
  • 2
    Make sure you add a check for the empty string. isNaN('') returns false but you probably want it to return true in this case. – Michael Haren Oct 6 '08 at 19:44
  • 3
    isFinite is a better check - it deals with the wierd corner case of Infinity – JonnyRaa Jan 20 '15 at 12:02
  • 3
    @MichaelHaren Not good enough! isNaN() returns false for ANY string containing only whitespace characters, including things like '\u00A0'. – Michael Mar 2 '16 at 22:13
  • 2
    WARNING: Does not work for the values: null, "" (empty string) and false. – Jenny O'Reilly Jul 27 '17 at 8:02
  • I realize this answer was given 11 years ago and a few minutes before the accepted one, but like it or not, the accepted answer has WAY more conversation around it, so this answer doesn't really add anything to answering the question. I would kindly suggest deleting it, to avoid distracting new readers. I also think you'll get the Disciplined badge if you do that. – Dan Dascalescu Oct 6 '19 at 6:15
14

Old question, but there are several points missing in the given answers.

Scientific notation.

!isNaN('1e+30') is true, however in most of the cases when people ask for numbers, they do not want to match things like 1e+30.

Large floating numbers may behave weird

Observe (using Node.js):

> var s = Array(16 + 1).join('9')
undefined
> s.length
16
> s
'9999999999999999'
> !isNaN(s)
true
> Number(s)
10000000000000000
> String(Number(s)) === s
false
>

On the other hand:

> var s = Array(16 + 1).join('1')
undefined
> String(Number(s)) === s
true
> var s = Array(15 + 1).join('9')
undefined
> String(Number(s)) === s
true
>

So, if one expects String(Number(s)) === s, then better limit your strings to 15 digits at most (after omitting leading zeros).

Infinity

> typeof Infinity
'number'
> !isNaN('Infinity')
true
> isFinite('Infinity')
false
>

Given all that, checking that the given string is a number satisfying all of the following:

  • non scientific notation
  • predictable conversion to Number and back to String
  • finite

is not such an easy task. Here is a simple version:

  function isNonScientificNumberString(o) {
    if (!o || typeof o !== 'string') {
      // Should not be given anything but strings.
      return false;
    }
    return o.length <= 15 && o.indexOf('e+') < 0 && o.indexOf('E+') < 0 && !isNaN(o) && isFinite(o);
  }

However, even this one is far from complete. Leading zeros are not handled here, but they do screw the length test.

| |
  • 2
    "however in most of the cases when people ask for numbers, they do not want to match things like 1e+30" Why would you say this? If someone wants to know if a string contains a number, it seems to me that they would want to know if it contains a number, and 1e+30 is a number. Certainly if I were testing a string for a numeric value in JavaScript, I would want that to match. – Dan Jones Jan 4 '17 at 17:42
14

I have tested and Michael's solution is best. Vote for his answer above (search this page for "If you really want to make sure that a string" to find it). In essence, his answer is this:

function isNumeric(num){
  num = "" + num; //coerce num to be a string
  return !isNaN(num) && !isNaN(parseFloat(num));
}

It works for every test case, which I documented here: https://jsfiddle.net/wggehvp9/5/

Many of the other solutions fail for these edge cases: ' ', null, "", true, and []. In theory, you could use them, with proper error handling, for example:

return !isNaN(num);

or

return (+num === +num);

with special handling for /\s/, null, "", true, false, [] (and others?)

| |
  • 1
    This still returns true with trailing/leading spaces. Adding something like this to the return-statement would solve that: && !/^\s+|\s+$/g.test(str) – Ultroman the Tacoman May 15 '17 at 13:13
  • 2
    So ' 123' should be false, not a number, while '1234' should be a number? I like how it is, so that " 123" is a number, but that may be up to the discretion of the developer if leading or trailing spaces should change the value. – JohnP2 Jun 14 '17 at 19:10
9

You can use the result of Number when passing an argument to its constructor.

If the argument (a string) cannot be converted into a number, it returns NaN, so you can determinate if the string provided was a valid number or not.

Notes: Note when passing empty string or '\t\t' and '\n\t' as Number will return 0; Passing true will return 1 and false returns 0.

    Number('34.00') // 34
    Number('-34') // -34
    Number('123e5') // 12300000
    Number('123e-5') // 0.00123
    Number('999999999999') // 999999999999
    Number('9999999999999999') // 10000000000000000 (integer accuracy up to 15 digit)
    Number('0xFF') // 255
    Number('Infinity') // Infinity  

    Number('34px') // NaN
    Number('xyz') // NaN
    Number('true') // NaN
    Number('false') // NaN

    // cavets
    Number('    ') // 0
    Number('\t\t') // 0
    Number('\n\t') // 0
| |
  • The Number constructor is exactly the same as +x. – GregRos Dec 28 '18 at 21:56
  • As a side note, keep in mind that the ES6 Number() handles float numbers as well, like Number.parseFloat() not Number.parseInt() – zurfyx Jan 20 at 20:27
7

Maybe there are one or two people coming across this question who need a much stricter check than usual (like I did). In that case, this might be useful:

if(str === String(Number(str))) {
  // it's a "perfectly formatted" number
}

Beware! This will reject strings like .1, 40.000, 080, 00.1. It's very picky - the string must match the "most minimal perfect form" of the number for this test to pass.

It uses the String and Number constructor to cast the string to a number and back again and thus checks if the JavaScript engine's "perfect minimal form" (the one it got converted to with the initial Number constructor) matches the original string.

| |
  • 2
    Thanks @JoeRocc. I needed this too, but just for integers, so I added: (str === String(Math.round(Number(str)))). – keithpjolley May 31 '17 at 14:43
  • Be aware that "Infinity", "-Infinity", and "NaN" pass this test. However, this can be fixed using an additional Number.isFinite test. – GregRos Dec 28 '18 at 21:53
  • 1
    This is exactly the same as str === ("" + +str). It basically checks whether the string is the result of stringifying a JS number. Knowing this, we can also see a problem: the test passes for 0.000001 but fails for 0.0000001, which is when 1e-7 passes instead. The same for very big numbers. – GregRos Dec 28 '18 at 22:19
  • This answer is incorrect. 1e10 is "perfectly valid and formatted", and yet fails this algorithm. – Ben Aston Oct 2 at 10:52
5

Why is jQuery's implementation not good enough?

function isNumeric(a) {
    var b = a && a.toString();
    return !$.isArray(a) && b - parseFloat(b) + 1 >= 0;
};

Michael suggested something like this (although I've stolen "user1691651 - John"'s altered version here):

function isNumeric(num){
    num = "" + num; //coerce num to be a string
    return !isNaN(num) && !isNaN(parseFloat(num));
}

The following is a solution with most likely bad performance, but solid results. It is a contraption made from the jQuery 1.12.4 implementation and Michael's answer, with an extra check for leading/trailing spaces (because Michael's version returns true for numerics with leading/trailing spaces):

function isNumeric(a) {
    var str = a + "";
    var b = a && a.toString();
    return !$.isArray(a) && b - parseFloat(b) + 1 >= 0 &&
           !/^\s+|\s+$/g.test(str) &&
           !isNaN(str) && !isNaN(parseFloat(str));
};

The latter version has two new variables, though. One could get around one of those, by doing:

function isNumeric(a) {
    if ($.isArray(a)) return false;
    var b = a && a.toString();
    a = a + "";
    return b - parseFloat(b) + 1 >= 0 &&
            !/^\s+|\s+$/g.test(a) &&
            !isNaN(a) && !isNaN(parseFloat(a));
};

I haven't tested any of these very much, by other means than manually testing the few use-cases I'll be hitting with my current predicament, which is all very standard stuff. This is a "standing-on-the-shoulders-of-giants" situation.

| |
5

It is not valid for TypeScript as:

declare function isNaN(number: number): boolean;

For TypeScript you can use:

/^\d+$/.test(key)

| |
  • /^\d+$/.test("-1") // false To use isNaN with non-numbers in TS, you can just cast the value to any, or use one of the other more comprehensive solutions here that make use of Number, parseFloat, etc. – John Montgomery Jul 13 at 17:51
5

2019: Including ES3, ES6 and TypeScript Examples

Maybe this has been rehashed too many times, however I fought with this one today too and wanted to post my answer, as I didn't see any other answer that does it as simply or thoroughly:

ES3

var isNumeric = function(num){
    return (typeof(num) === 'number' || typeof(num) === "string" && num.trim() !== '') && !isNaN(num);  
}

ES6

const isNumeric = (num) => (typeof(num) === 'number' || typeof(num) === "string" && num.trim() !== '') && !isNaN(num);

Typescript

const isNumeric = (num: any) => (typeof(num) === 'number' || typeof(num) === "string" && num.trim() !== '') && !isNaN(num as number);

This seems quite simple and covers all the bases I saw on the many other posts and thought up myself:

// Positive Cases
console.log(0, isNumeric(0) === true);
console.log(1, isNumeric(1) === true);
console.log(1234567890, isNumeric(1234567890) === true);
console.log('1234567890', isNumeric('1234567890') === true);
console.log('0', isNumeric('0') === true);
console.log('1', isNumeric('1') === true);
console.log('1.1', isNumeric('1.1') === true);
console.log('-1', isNumeric('-1') === true);
console.log('-1.2354', isNumeric('-1.2354') === true);
console.log('-1234567890', isNumeric('-1234567890') === true);
console.log(-1, isNumeric(-1) === true);
console.log(-32.1, isNumeric(-32.1) === true);
console.log('0x1', isNumeric('0x1') === true);  // Valid number in hex
// Negative Cases
console.log(true, isNumeric(true) === false);
console.log(false, isNumeric(false) === false);
console.log('1..1', isNumeric('1..1') === false);
console.log('1,1', isNumeric('1,1') === false);
console.log('-32.1.12', isNumeric('-32.1.12') === false);
console.log('[blank]', isNumeric('') === false);
console.log('[spaces]', isNumeric('   ') === false);
console.log('null', isNumeric(null) === false);
console.log('undefined', isNumeric(undefined) === false);
console.log([], isNumeric([]) === false);
console.log('NaN', isNumeric(NaN) === false);

You can also try your own isNumeric function and just past in these use cases and scan for "true" for all of them.

Or, to see the values that each return:

Results of each test against <code>isNumeric()</code>

| |
5

2019: Practical and tight numerical validity check

Often, a 'valid number' means a Javascript number excluding NaN and Infinity, ie a 'finite number'.

To check the numerical validity of a value (from an external source for example), you can define in ESlint Airbnb style :

/**
 * Returns true if 'candidate' is a finite number or a string referring (not just 'including') a finite number
 * To keep in mind:
 *   Number(true) = 1
 *   Number('') = 0
 *   Number("   10  ") = 10
 *   !isNaN(true) = true
 *   parseFloat('10 a') = 10
 *
 * @param {?} candidate
 * @return {boolean}
 */
function isReferringFiniteNumber(candidate) {
  if (typeof (candidate) === 'number') return Number.isFinite(candidate);
  if (typeof (candidate) === 'string') {
    return (candidate.trim() !== '') && Number.isFinite(Number(candidate));
  }
  return false;
}

and use it this way:

if (isReferringFiniteNumber(theirValue)) {
  myCheckedValue = Number(theirValue);
} else {
  console.warn('The provided value doesn\'t refer to a finite number');
}
| |
  • Excellent. Thanks! 👋 – GollyJer Jul 26 at 17:41
4

parseInt(), but be aware that this function is a bit different in the sense that it for example returns 100 for parseInt("100px").

| |
4

Quote:

isNaN(num) // returns true if the variable does NOT contain a valid number

is not entirely true if you need to check for leading/trailing spaces - for example when a certain quantity of digits is required, and you need to get, say, '1111' and not ' 111' or '111 ' for perhaps a PIN input.

Better to use:

var num = /^\d+$/.test(num)
| |
  • The values '-1', '0.1' and '1e10' all return false. Furthermore, values larger than positive infinity or smaller than negative infinity return true, while they probably should return false. – Rudey Feb 22 '17 at 20:11
4

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

It's been working so far:

function checkNumber(value) {
    return value % 1 == 0;
}

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

| |
  • 13
    This gives the wrong result for the empty string, empty array, false, and null. – Ori Apr 18 '12 at 1:23
  • 2
    Shouldn't it be a triple equal? – toasted_flakes May 9 '13 at 15:44
  • 1
    In my application we are only allowing a-z A-Z and 0-9 characters. I found the above worked unless the string began with 0xnn and then it would return it as numeric when it shouldn't have.I've posted in a comment below so the formatting is intact. – rwheadon Jul 8 '14 at 15:10
  • 6
    you could just do 'return value % 1 === 0' – Brian Schermerhorn Jul 10 '15 at 21:42
  • Just do return !isNaN(parseInt(value, 10)); – DarkNeuron Oct 25 '19 at 13:45
3

If anyone ever gets this far down, I spent some time hacking on this trying to patch moment.js (https://github.com/moment/moment). Here's something that I took away from it:

function isNumeric(val) {
    var _val = +val;
    return (val !== val + 1) //infinity check
        && (_val === +val) //Cute coercion check
        && (typeof val !== 'object') //Array/object check
}

Handles the following cases:

True! :

isNumeric("1"))
isNumeric(1e10))
isNumeric(1E10))
isNumeric(+"6e4"))
isNumeric("1.2222"))
isNumeric("-1.2222"))
isNumeric("-1.222200000000000000"))
isNumeric("1.222200000000000000"))
isNumeric(1))
isNumeric(0))
isNumeric(-0))
isNumeric(1010010293029))
isNumeric(1.100393830000))
isNumeric(Math.LN2))
isNumeric(Math.PI))
isNumeric(5e10))

False! :

isNumeric(NaN))
isNumeric(Infinity))
isNumeric(-Infinity))
isNumeric())
isNumeric(undefined))
isNumeric('[1,2,3]'))
isNumeric({a:1,b:2}))
isNumeric(null))
isNumeric([1]))
isNumeric(new Date()))

Ironically, the one I am struggling with the most:

isNumeric(new Number(1)) => false

Any suggestions welcome. :]

| |
  • 2
    What about isNumeric(' ') and isNumeric('')? – Alex Cory Jan 31 '17 at 4:00
  • I would add && (val.replace(/\s/g,'') !== '') //Empty && (val.slice(-1) !== '.') //Decimal without Number in order to adress the above mentioned issue and one I had myself. – frankenapps Jan 15 '18 at 19:08
3

Using plain JavaScript:

Number.isNaN(Number('1')); // false
Number.isNaN(Number('asdf')); // true

Using Lodash:

_.isNaN(_.toNumber('1')); // false
_.isNaN(_.toNumber('asdf')); // true
| |
3
function isNumberCandidate(s) {
  const str = (''+ s).trim();
  if (str.length === 0) return false;
  return !isNaN(+str);
}

console.log(isNumberCandidate('1'));       // true
console.log(isNumberCandidate('a'));       // false
console.log(isNumberCandidate('000'));     // true
console.log(isNumberCandidate('1a'));      // false 
console.log(isNumberCandidate('1e'));      // false
console.log(isNumberCandidate('1e-1'));    // true
console.log(isNumberCandidate('123.3'));   // true
console.log(isNumberCandidate(''));        // false
console.log(isNumberCandidate(' '));       // false
console.log(isNumberCandidate(1));         // true
console.log(isNumberCandidate(0));         // true
console.log(isNumberCandidate(NaN));       // false
console.log(isNumberCandidate(undefined)); // false
console.log(isNumberCandidate(null));      // false
console.log(isNumberCandidate(-1));        // true
console.log(isNumberCandidate('-1'));      // true
console.log(isNumberCandidate('-1.2'));    // true
console.log(isNumberCandidate(0.0000001)); // true
console.log(isNumberCandidate('0.0000001')); // true
console.log(isNumberCandidate(Infinity));    // true
console.log(isNumberCandidate(-Infinity));    // true

console.log(isNumberCandidate('Infinity'));  // true

if (isNumberCandidate(s)) {
  // use +s as a number
  +s ...
}
| |
  • Thank you, Great Answer! – M.Abulsoud Mar 27 '19 at 16:43
3

This appears to catch the seemingly infinite number of edge cases:

function isNumber(x, noStr) {
    /*

        - Returns true if x is either a finite number type or a string containing only a number
        - If empty string supplied, fall back to explicit false
        - Pass true for noStr to return false when typeof x is "string", off by default

        isNumber(); // false
        isNumber([]); // false
        isNumber([1]); // false
        isNumber([1,2]); // false
        isNumber(''); // false
        isNumber(null); // false
        isNumber({}); // false
        isNumber(true); // false
        isNumber('true'); // false
        isNumber('false'); // false
        isNumber('123asdf'); // false
        isNumber('123.asdf'); // false
        isNumber(undefined); // false
        isNumber(Number.POSITIVE_INFINITY); // false
        isNumber(Number.NEGATIVE_INFINITY); // false
        isNumber('Infinity'); // false
        isNumber('-Infinity'); // false
        isNumber(Number.NaN); // false
        isNumber(new Date('December 17, 1995 03:24:00')); // false
        isNumber(0); // true
        isNumber('0'); // true
        isNumber(123); // true
        isNumber(123.456); // true
        isNumber(-123.456); // true
        isNumber(-.123456); // true
        isNumber('123'); // true
        isNumber('123.456'); // true
        isNumber('.123'); // true
        isNumber(.123); // true
        isNumber(Number.MAX_SAFE_INTEGER); // true
        isNumber(Number.MAX_VALUE); // true
        isNumber(Number.MIN_VALUE); // true
        isNumber(new Number(123)); // true
    */

    return (
        (typeof x === 'number' || x instanceof Number || (!noStr && x && typeof x === 'string' && !isNaN(x))) &&
        isFinite(x)
    ) || false;
};
| |
2

PFB the working solution:

 function(check){ 
    check = check + "";
    var isNumber =   check.trim().length>0? !isNaN(check):false;
    return isNumber;
    }
| |
2

I recently wrote an article about ways to ensure a variable is a valid number: https://github.com/jehugaleahsa/artifacts/blob/master/2018/typescript_num_hack.md The article explains how to ensure floating point or integer, if that's important (+x vs ~~x).

The article assumes the variable is a string or a number to begin with and trim is available/polyfilled. It wouldn't be hard to extend it to handle other types, as well. Here's the meat of it:

// Check for a valid float
if (x == null
    || ("" + x).trim() === ""
    || isNaN(+x)) {
    return false;  // not a float
}

// Check for a valid integer
if (x == null
    || ("" + x).trim() === ""
    || ~~x !== +x) {
    return false;  // not an integer
}
| |
2

Save yourself the headache of trying to find a "built-in" solution.

There isn't a good answer, and the hugely upvoted answer in this thread is wrong.

npm install is-number

In JavaScript, it's not always as straightforward as it should be to reliably check if a value is a number. It's common for devs to use +, -, or Number() to cast a string value to a number (for example, when values are returned from user input, regex matches, parsers, etc). But there are many non-intuitive edge cases that yield unexpected results:

console.log(+[]); //=> 0
console.log(+''); //=> 0
console.log(+'   '); //=> 0
console.log(typeof NaN); //=> 'number'
| |
2

This is built on some of the previous answers and comments. The following covers all the edge cases and fairly concise as well:

const isNumRegEx = /^-?(\d*\.)?\d+$/;

function isNumeric(n, allowScientificNotation = false) {
    return allowScientificNotation ? 
                !Number.isNaN(parseFloat(n)) && Number.isFinite(n) :
                isNumRegEx.test(n);
}
| |
2

I used this function as a form validation tool, and I didn't want users to be able to write exponential function, so I came up with this function:

<script>

    function isNumber(value, acceptScientificNotation) {

        if(true !== acceptScientificNotation){
            return /^-{0,1}\d+(\.\d+)?$/.test(value);
        }

        if (true === Array.isArray(value)) {
            return false;
        }
        return !isNaN(parseInt(value, 10));
    }


    console.log(isNumber(""));              // false
    console.log(isNumber(false));           // false
    console.log(isNumber(true));            // false
    console.log(isNumber("0"));             // true
    console.log(isNumber("0.1"));           // true
    console.log(isNumber("12"));            // true
    console.log(isNumber("-12"));           // true
    console.log(isNumber(-45));             // true
    console.log(isNumber({jo: "pi"}));      // false
    console.log(isNumber([]));              // false
    console.log(isNumber([78, 79]));        // false
    console.log(isNumber(NaN));             // false
    console.log(isNumber(Infinity));        // false
    console.log(isNumber(undefined));       // false
    console.log(isNumber("0,1"));           // false



    console.log(isNumber("1e-1"));          // false
    console.log(isNumber("1e-1", true));    // true
</script>
| |
1

My attempt at a slightly confusing, Pherhaps not the best solution

function isInt(a){
    return a === ""+~~a
}


console.log(isInt('abcd'));         // false
console.log(isInt('123a'));         // false
console.log(isInt('1'));            // true
console.log(isInt('0'));            // true
console.log(isInt('-0'));           // false
console.log(isInt('01'));           // false
console.log(isInt('10'));           // true
console.log(isInt('-1234567890'));  // true
console.log(isInt(1234));           // false
console.log(isInt('123.4'));        // false
console.log(isInt(''));             // false

// other types then string returns false
console.log(isInt(5));              // false
console.log(isInt(undefined));      // false
console.log(isInt(null));           // false
console.log(isInt('0x1'));          // false
console.log(isInt(Infinity));       // false
| |
  • It's not too bad, two bad it does not work for any non-decimal notation, such as (1) scientific notation and (2) not-base-10 notation, such as octal (042) and hexadecimal (0x45f) – Domi Apr 29 '17 at 8:58
  • This does not answer the question of looking for a numeric value, it only looks for an int. – Jeremy Oct 25 '19 at 21:53
0

In my application we are only allowing a-z A-Z and 0-9 characters. I found the answer above using " string % 1 === 0" worked unless the string began with 0xnn (like 0x10) and then it would return it as numeric when we didn't want it to. The following simple trap in my numeric check seems to do the trick in our specific cases.

function isStringNumeric(str_input){   
    //concat a temporary 1 during the modulus to keep a beginning hex switch combination from messing us up   
    //very simple and as long as special characters (non a-z A-Z 0-9) are trapped it is fine   
    return '1'.concat(str_input) % 1 === 0;}

Warning : This might be exploiting a longstanding bug in Javascript and Actionscript [Number("1" + the_string) % 1 === 0)], I can't speak for that, but it is exactly what we needed.

| |
  • Why would that be a bug in JavaScript? – Bergi Jul 8 '14 at 15:29
  • I simply don't see the same behavior with a similar solution in perl or C, and since I'm not a programming language developer for javascript or actionscript I don't know whether the behavior I am experiencing is truly intentional or not. – rwheadon Jul 8 '14 at 16:16
  • Well, javascript is a bit sloppy about implicit type casting, but once you know that you can easily understand how it works. You're casting strings to numbers (by invocing the numerical % 1 operation on them), and that will interpret the string as a hex or float literal. – Bergi Jul 8 '14 at 16:23
0

My solution:

// returns true for positive ints; 
// no scientific notation, hexadecimals or floating point dots

var isPositiveInt = function(str) { 
   var result = true, chr;
   for (var i = 0, n = str.length; i < n; i++) {
       chr = str.charAt(i);
       if ((chr < "0" || chr > "9") && chr != ",") { //not digit or thousands separator
         result = false;
         break;
       };
       if (i == 0 && (chr == "0" || chr == ",")) {  //should not start with 0 or ,
         result = false;
         break;
       };
   };
   return result;
 };

You can add additional conditions inside the loop, to fit you particular needs.

| |
0

You could make use of types, like with the flow library, to get static, compile time checking. Of course not terribly useful for user input.

// @flow

function acceptsNumber(value: number) {
  // ...
}

acceptsNumber(42);       // Works!
acceptsNumber(3.14);     // Works!
acceptsNumber(NaN);      // Works!
acceptsNumber(Infinity); // Works!
acceptsNumber("foo");    // Error!
| |

Not the answer you're looking for? Browse other questions tagged or ask your own question.