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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*
share|improve this question
141  
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
4  
Also check out this post and the great comments. –  powtac Nov 23 '09 at 18:05
37  
Decimal comma is the standard in entire Europe and Russia (except UK) –  Calmarius Feb 16 '11 at 14:29
68  
jQuery 1.7 has introduced the jQuery.isNumeric utility function: api.jquery.com/jQuery.isNumeric –  Ates Goral Nov 16 '11 at 20:04
13  
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

33 Answers 33

up vote 1931 down vote accepted

@Joel's answer is pretty close, but it will fail in the following cases:

// Whitespace strings:
IsNumeric(' ') == true;
IsNumeric('\t\t') == true;
IsNumeric('\n\r') == true;

// Number literals:
IsNumeric(-1) == false;
IsNumeric(0) == false;
IsNumeric(1.1) == false;
IsNumeric(8e5) == false;

Some time ago I had to implement an IsNumeric function, to find out if a variable contained a numeric value, regardless its type, it could be a String containing a numeric value (I had to consider also exponential notation, etc.), a Number object, virtually anything could be passed to that function, I couldn't make any type assumption, taking care of type coercion (eg. +true == 1; but true shouldn't be considered as "numeric").

I think is worth sharing this set of +30 unit tests made to numerous function implementations, and also share the one that passes all my tests:

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

Update : Here's how jQuery does it now (Mid-2014) :

isNumeric: function( obj ) {
    return !jQuery.isArray( obj ) && (obj - parseFloat( obj ) + 1) >= 0;
}

P.S. isNaN & isFinite have a confusing behavior due to forced conversion to number. In ES6, Number.isNaN & Number.isFinite would fix these issues. Keep that in mind when using them.

share|improve this answer
41  
Great answer, thanks for sharing the tests too. –  barfoon Aug 19 '10 at 19:52
87  
that's the most beautiful thing i've ever seen; thanks for sharing it! –  jah Dec 20 '10 at 15:20
14  
This answer is correct. stackoverflow.com/questions/18082/… Joel's answer is wrong. How could a wrong answer gathered more votes than the right one? –  Arvin Feb 12 '11 at 0:07
19  
this fails with other locales where we use decimal commas, but add `n = n.replace(/,/,".");' before the return to fix it. –  Zoltan Lengyel Apr 26 '11 at 2:14
26  
By the way, the unit tests are now being used by the jQuery project –  CMS Jan 31 '12 at 19:13

Arrrgh! Don't listen to the regular expression answers. RegEx is icky for this, and I'm not talking just performance. It's so easy to make subtle, impossible to spot mistakes with your regular expression.

If you can't use isNaN(), this should work much better:

function IsNumeric(input)
{
    return (input - 0) == input && (''+input).replace(/^\s+|\s+$/g, "").length > 0;
}

Here's how it works:

The (input - 0) expression forces JavaScript to do type coercion on your input value; it must first be interpreted as a number for the subtraction operation. If that conversion to a number fails, the expression will result in NaN. This numeric result is then compared to the original value you passed in. Since the left hand side is now numeric, type coercion is again used. Now that the input from both sides was coerced to the same type from the same original value, you would think they should always be the same (always true). However, there's a special rule that says NaN is never equal to NaN, and so a value that can't be converted to a number (and only values that cannot be converted to numbers) will result in false.

The check on the length is for a special case involving empty strings. Also note that it falls down on your 0x89f test, but that's because in many environments that's an okay way to define a number literal. If you want to catch that specific scenario you could add an additional check. Even better, if that's your reason for not using isNaN() then just wrap your own function around isNaN() that can also do the additional check.

In summary, if you want to know if a value can be converted to a number, actually try to convert it to a number.


I went back and did some research for why a whitespace string did not have the expected output, and I think I get it now: an empty string is coerced to 0 rather than NaN. Simply trimming the string before the length check will handle this case. Note that I opted for a regex-based trim rather than the .trim() function in order to support IE8 (and yes, I'm aware of the irony in starting my answer by dissing regex and then using one in the code, even if only in a limited way). About this time next year when Windows XP is no longer supported I'll come back and update it to use the .trim() function (and remove these two sentences... if I remember).

Running the unit tests against the new code and it only fails on the infinity and boolean literals, and the only time that should be a problem is if you're generating code (really, who would type in a literal and check if it's numeric? You should know), and that would be some strange code to generate.

But, again, the only reason ever to use this is if for some reason you have to avoid isNaN().

share|improve this answer
24  
This fails on whitespace strings, eg IsNumeric(' '), IsNumeric('\n\t'), etc all return true –  Crescent Fresh Dec 2 '09 at 4:36
25  
It will also fail on Number literals IsNumeric(5) == false; check the set of unit tests I posted, this function is the number 16 on the test suite. stackoverflow.com/questions/18082/… –  CMS Dec 2 '09 at 5:52
10  
I can't believe no one pointed out the use of a regular expression (replace) after warning about not using regular expressions... Granted, a whitespace replace is simpler than a number parse, but it's still definitely "icky". –  Patrick M Jun 20 '13 at 14:41
1  
@Oriol That's a big problem... with no security fixes released after that date, getting away from XP should be a priority. –  Joel Coehoorn Oct 20 '13 at 4:38
function IsNumeric(num) {
     return (num >=0 || num < 0);
}

This works for 0x23 type numbers as well.

share|improve this answer
9  
IsNumeric(''), IsNumeric(' '), IsNumeric(true), IsNumeric(false), IsNumeric(null) return true instead of false. –  Oriol Sep 7 '13 at 16:29

Yahoo! UI uses this:

isNumber: function(o) {
    return typeof o === 'number' && isFinite(o);
}
share|improve this answer
16  
That is more checking the variable type as opposed to the contents of the number. It will also fail on numbers created with new Number(1). –  alex Jun 23 '11 at 5:33

This way seems to work well:

function IsNumeric(input){
    var RE = /^-{0,1}\d*\.{0,1}\d+$/;
    return (RE.test(input));
}

And to test it:

// alert(TestIsNumeric());

function TestIsNumeric(){
    var results = ''
    results += (IsNumeric('-1')?"Pass":"Fail") + ": IsNumeric('-1') => true\n";
    results += (IsNumeric('-1.5')?"Pass":"Fail") + ": IsNumeric('-1.5') => true\n";
    results += (IsNumeric('0')?"Pass":"Fail") + ": IsNumeric('0') => true\n";
    results += (IsNumeric('0.42')?"Pass":"Fail") + ": IsNumeric('0.42') => true\n";
    results += (IsNumeric('.42')?"Pass":"Fail") + ": IsNumeric('.42') => true\n";
    results += (!IsNumeric('99,999')?"Pass":"Fail") + ": IsNumeric('99,999') => false\n";
    results += (!IsNumeric('0x89f')?"Pass":"Fail") + ": IsNumeric('0x89f') => false\n";
    results += (!IsNumeric('#abcdef')?"Pass":"Fail") + ": IsNumeric('#abcdef') => false\n";
    results += (!IsNumeric('1.2.3')?"Pass":"Fail") + ": IsNumeric('1.2.3') => false\n";
    results += (!IsNumeric('')?"Pass":"Fail") + ": IsNumeric('') => false\n";
    results += (!IsNumeric('blah')?"Pass":"Fail") + ": IsNumeric('blah') => false\n";

    return results;
}

I borrowed that regex from http://www.codetoad.com/javascript/isnumeric.asp. Explanation:

/^ match beginning of string
-{0,1} optional negative sign
\d* optional digits
\.{0,1} optional decimal point
\d+ at least one digit
$/ match end of string
share|improve this answer
1  
//ALSO SHOULD BE ADDED TO YOUR TEST results += (!IsNumeric('-')?"Pass":"Fail") + ": IsNumeric('-') => false\n"; results += (!IsNumeric('01')?"Pass":"Fail") + ": IsNumeric('01') => false\n"; results += (!IsNumeric('-01')?"Pass":"Fail") + ": IsNumeric('-01') => false\n"; results += (!IsNumeric('000')?"Pass":"Fail") + ": IsNumeric('000') => false\n"; –  Dan Jan 28 '10 at 1:47

Yeah, the built-in isNaN(object) will be much faster than any regex parsing, because it's built-in and compiled, instead of interpreted on the fly.

Although the results are somewhat different to what you're looking for (try it):

                                              // IS NUMERIC
document.write(!isNaN('-1') + "<br />");      // true
document.write(!isNaN('-1.5') + "<br />");    // true
document.write(!isNaN('0') + "<br />");       // true
document.write(!isNaN('0.42') + "<br />");    // true
document.write(!isNaN('.42') + "<br />");     // true
document.write(!isNaN('99,999') + "<br />");  // false
document.write(!isNaN('0x89f') + "<br />");   // true
document.write(!isNaN('#abcdef') + "<br />"); // false
document.write(!isNaN('1.2.3') + "<br />");   // false
document.write(!isNaN('') + "<br />");        // true
document.write(!isNaN('blah') + "<br />");    // false
share|improve this answer

The accepted answer failed your test #7 and I guess it's because you changed your mind. So this is a response to the accepted answer, with which I had issues.

During some projects I have needed to validate some data and be as certain as possible that it is a javascript numerical value that can be used in mathematical operations.

jQuery, and some other javascript libraries already include such a function, usually called isNumeric. There is also a post on stackoverflow that has been widely accepted as the answer, the same general routine that the afore mentioned libraries are using.

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

First, the code above would return true if the argument was an array of length 1, and that single element was of a type deemed as numeric by the above logic. In my opinion, if it's an array then its not numeric.

To alleviate this problem, I added a check to discount arrays from the logic

function isNumber(n) {
  return Object.prototype.toString.call(n) !== '[object Array]' &&!isNaN(parseFloat(n)) && isFinite(n);
}

Of course, you could also use Array.isArray, jquery $.isArray or prototype Object.isArray instead of Object.prototype.toString.call(n) !== '[object Array]'

My second issue was that Negative Hexadecimal integer literal strings ("-0xA" -> -10) were not being counted as numeric. However, Positive Hexadecimal integer literal strings ("0xA" -> 10) were treated as numeric. I needed both to be valid numeric.

I then modified the logic to take this into account.

function isNumber(n) {
  return Object.prototype.toString.call(n) !== '[object Array]' &&!isNaN(parseFloat(n)) && isFinite(n.toString().replace(/^-/, ''));
}

If you are worried about the creation of the regex each time the function is called then you could rewrite it within a closure, something like this

var isNumber = (function () {
  var rx = /^-/;

  return function (n) {
      return Object.prototype.toString.call(n) !== '[object Array]' &&!isNaN(parseFloat(n)) && isFinite(n.toString().replace(rx, ''));
  };
}());

I then took CMSs +30 test cases and cloned the testing on jsfiddle added my extra test cases and my above described solution.

It may not replace the widely accepted/used answer but if this is more of what you are expecting as results from your isNumeric function then hopefully this will be of some help.

EDIT: As pointed out by Bergi, there are other possible objects that could be considered numeric and it would be better to whitelist than blacklist. With this in mind I would add to the criteria.

I want my isNumeric function to consider only Numbers or Strings

With this in mind, it would be better to use

function isNumber(n) {
  return (Object.prototype.toString.call(n) === '[object Number]' || Object.prototype.toString.call(n) === '[object String]') &&!isNaN(parseFloat(n)) && isFinite(n.toString().replace(/^-/, ''));
}
share|improve this answer
1  
This is in my view the most shielded function; the last one. The accepted answer cover probably 99.99% of all cases but this one have probably 100% of a) cases with a small overhead. –  Samuel Jan 7 at 3:59

Use the function isNaN. I believe if you test for !isNaN(yourstringhere) it works fine for any of these situations.

share|improve this answer

Since jQuery 1.7, you can use jQuery.isNumeric():

$.isNumeric('-1');      // true
$.isNumeric('-1.5');    // true
$.isNumeric('0');       // true
$.isNumeric('0.42');    // true
$.isNumeric('.42');     // true
$.isNumeric('0x89f');   // true (valid hexa number)
$.isNumeric('99,999');  // false
$.isNumeric('#abcdef'); // false
$.isNumeric('1.2.3');   // false
$.isNumeric('');        // false
$.isNumeric('blah');    // false

Just note that unlike what you said, 0x89f is a valid number (hexa)

share|improve this answer

It can be done without RegExp as

function IsNumeric(data){
    return parseFloat(data)==data;
}
share|improve this answer
1  
shouldnt it === –  powtac Nov 23 '09 at 18:04
5  
If we are using == , it will return true even for numbers presented as strings. So the "42" will be counted as valid number in case of "==" and will be counted as invalid in case of === –  Aquatic Nov 25 '09 at 18:38

To me, this is the best way:

isNumber : function(v){
   return typeof v === 'number' && isFinite(v);
}
share|improve this answer
return (input - 0) == input && input.length > 0;

didn't work for me. When I put in an alert and tested, input.length was 'undefined'. I think there is no property to check integer length. So what I did was

var temp = '' + input;
return (input - 0) == input && temp.length > 0;

It worked fine.

share|improve this answer

An integer value can be verified by:

function isNumeric(value) {
    var bool = isNaN(+value));
    bool = bool || (value.indexOf('.') != -1);
    bool = bool || (value.indexOf(",") != -1);
    return !bool;
};

This way is easier and faster! All tests are checked!

share|improve this answer

Only problem I had with @CMS's answer is the exclusion of NaN and Infinity, which are useful numbers for many situations. One way to check for NaN's is to check for numeric values that don't equal themselves, NaN != NaN! So there are really 3 tests you'd like to deal with ...

function isNumber(n) {
  n = parseFloat(n);
  return !isNaN(n) || n != n;
}
function isFiniteNumber(n) {
  n = parseFloat(n);
  return !isNaN(n) && isFinite(n);
}    
function isComparableNumber(n) {
  n = parseFloat(n);
  return (n >=0 || n < 0);
}

isFiniteNumber('NaN')
false
isFiniteNumber('OxFF')
true
isNumber('NaN')
true
isNumber(1/0-1/0)
true
isComparableNumber('NaN')
false
isComparableNumber('Infinity')
true

My isComparableNumber is pretty close to another elegant answer, but handles hex and other string representations of numbers.

share|improve this answer

My solution,

function isNumeric(input) {
    var number = /^\-{0,1}(?:[0-9]+){0,1}(?:\.[0-9]+){0,1}$/i;
    var regex = RegExp(number);
    return regex.test(input) && input.length>0;
}

It appears to work in every situation, but I might be wrong.

share|improve this answer

If I'm not mistaken, this should match any valid JavaScript number value, excluding constants (Infinity, NaN) and the sign operators +/- (because they are not actually part of the number as far as I concerned, they are separate operators):

I needed this for a tokenizer, where sending the number to JavaScript for evaluation wasn't an option... It's definitely not the shortest possible regular expression, but I believe it catches all the finer subtleties of JavaScript's number syntax.

/^(?:(?:(?:[1-9]\d*|\d)\.\d*|(?:[1-9]\d*|\d)?\.\d+|(?:[1-9]\d*|\d))(?:[e]\d+)?|0[0-7]+|0x[0-9a-f]+)$/i

Valid numbers would include:

  • 0
  • 00
  • 01
  • 10
  • 0e1
  • 0e01
  • .0
  • 0.
  • .0e1
  • 0.e1
  • 0.e00
  • 0xf
  • 0Xf

Invalid numbers would be

  • 00e1
  • 01e1
  • 00.0
  • 00x0
  • .
  • .e0
share|improve this answer

Here's a lil bit improved version (probably the fastest way out there) that I use instead of exact jQuery's variant, I really don't know why don't they use this one:

function isNumeric(val) {
    return !isNaN(+val) && isFinite(val);
}

The downside of jQuery's version is that if you pass a string with leading numerics and trailing letters like "123abc" the parseFloat | parseInt will extract the numeric fraction out and return 123, BUT, the second guard isFinite will fail it anyway. With the unary + operator it will die on the very first guard since + throws NaN for such hybrids :) A little performance yet I think a solid semantic gain.

share|improve this answer
1  
Beware the unary '+' will invoke valueOf() on an object - see this jsfiddle. Also this also fails for leading whitespace, as does the leading answer. –  earcam Sep 24 '13 at 23:34

This should work. Some of the functions provided here are flawed, also should be faster than any other function here.

        function isNumeric(n)
        {
            var n2 = n;
            n = parseFloat(n);
            return (n!='NaN' && n2==n);
        }

Explained:

Create a copy of itself, then converts the number into float, then compares itself with the original number, if it is still a number, (whether integer or float) , and matches the original number, that means, it is indeed a number.

It works with numeric strings as well as plain numbers. Does not work with hexadecimal numbers.

Warning: use at your own risk, no guarantees.

share|improve this answer
3  
use at your own risk, no guarantees I wouldn't use code that the author isn't confident about ;) –  alex Aug 7 '13 at 22:00

I'd like to add the following:

1. IsNumeric('0x89f') => true
2. IsNumeric('075') => true

Positive hex numbers start with 0x and negative hex numbers start with -0x. Positive oct numbers start with 0 and negative oct numbers start with -0. This one takes most of what has already been mentioned into consideration, but includes hex and octal numbers, negative scientific, Infinity and has removed decimal scientific (4e3.2 is not valid).

function IsNumeric(input){
  var RE = /^-?(0|INF|(0[1-7][0-7]*)|(0x[0-9a-fA-F]+)|((0|[1-9][0-9]*|(?=[\.,]))([\.,][0-9]+)?([eE]-?\d+)?))$/;
  return (RE.test(input));
}
share|improve this answer

I'm using simpler solution:

function isNumber(num) {
    return parseFloat(num).toString() == num
}
share|improve this answer
4  
this will fail on anything with superfluous 0's in the end. example: "10.0" –  Janus Troelsen Sep 28 '12 at 22:13

I realize the original question did not mention jQuery, but if you do use jQuery, you can do:

$.isNumeric(val)

Simple.

https://api.jquery.com/jQuery.isNumeric/ (as of jQuery 1.7)

share|improve this answer

A couple of tests to add:

IsNumeric('01.05') => false
IsNumeric('1.') => false
IsNumeric('.') => false

I came up with this:

function IsNumeric(input) {
    return /^-?(0|[1-9]\d*|(?=\.))(\.\d+)?$/.test(input);
}

The solution covers:

  • An optional negative sign at the beginning
  • A single zero, or one or more digits not starting with 0, or nothing so long as a period follows
  • A period that is followed by 1 or more numbers
share|improve this answer

@CMS' answer: Your snippet failed on whitespace cases on my machine using nodejs. So I combined it with @joel's answer to the following:

is_float = function(v) {
    return !isNaN(v) && isFinite(v) &&
        (typeof(v) == 'number' || v.replace(/^\s+|\s+$/g, '').length > 0);
}

I unittested it with those cases that are floats:

var t = [
        0,
        1.2123,
        '0',
        '2123.4',
        -1,
        '-1',
        -123.423,
        '-123.432',
        07,
        0xad,
        '07',
        '0xad'
    ];

and those cases that are no floats (including empty whitespaces and objects / arrays):

    var t = [
        'hallo',
        [],
        {},
        'jklsd0',
        '',
        "\t",
        "\n",
        ' '
    ];

Everything works as expected here. Maybe this helps.

Full source code for this can be found here.

share|improve this answer

knockoutJs Inbuild library validation functions

By extending it the field get validated

1.) number

self.number = ko.observable(numberValue).extend({ number: true});

TestCase

numberValue = '0.0'    --> true
numberValue = '0'      --> true
numberValue = '25'     --> true
numberValue = '-1'     --> true
numberValue = '-3.5'   --> true
numberValue = '11.112' --> true
numberValue = '0x89f'  --> false
numberValue = ''       --> false
numberValue = 'sfsd'   --> false
numberValue = 'dg##$'  --> false

2.)digit

self.number = ko.observable(numberValue).extend({ digit: true});

TestCase

numberValue = '0'      --> true
numberValue = '25'     --> true
numberValue = '0.0'    --> false
numberValue = '-1'     --> false
numberValue = '-3.5'   --> false
numberValue = '11.112' --> false
numberValue = '0x89f'  --> false
numberValue = ''       --> false
numberValue = 'sfsd'   --> false
numberValue = 'dg##$'  --> false

2.)min and max

self.number = ko.observable(numberValue).extend({ min: 5}).extend({ max: 10});

This field accept value between 5 and 10 only

TestCase

numberValue = '5'    --> true
numberValue = '6'    --> true
numberValue = '6.5'  --> true
numberValue = '9'    --> true
numberValue = '11'   --> false
numberValue = '0'    --> false
numberValue = ''    --> false
share|improve this answer

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) {
    if (parseFloat(_in) === Number(_in) && Number(_in) !== NaN)
        return true;
     return false;
}
share|improve this answer

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): http://stackoverflow.com/a/1561597/1985601

share|improve this answer

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.

share|improve this answer

I realize this has been answered many times, but the following is a decent candidate which can be useful in some scenarios.

it should be noted that it assumes that '.42' is NOT a number, and '4.' is NOT a number, so this should be taken into account.

function isDecimal(x) {
  return return '' + x === '' + +x;
}

function isInteger(x) {
  return return '' + x === '' + parseInt(x);
}

The isDecimal passes the following test:

function testIsNumber(f) {
  return f('-1') && f('-1.5') && f('0') && f('0.42')
    && !f('.42') && !f('99,999') && !f('0x89f')
    && !f('#abcdef') && !f('1.2.3') && !f('') && !f('blah');
}

The idea here is that every number or integer has one "canonical" string representation, and every non-canonical representation should be rejected. So we cast to a number and back, and see if the result is the original string.

Whether these functions are useful for you depends on the use case. One feature is that distinct strings represent distinct numbers (if both pass the isNumber() test).

This is relevant e.g. for numbers as object property names.

var obj = {};
obj['4'] = 'canonical 4';
obj['04'] = 'alias of 4';
obj[4];  // prints 'canonical 4' to the console.
share|improve this answer

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 normal 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]) );
}
share|improve this answer

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.

share|improve this answer
2  
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

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

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