35

Please help with me writing a JavaScript Validation for currency/money field.

So please provide any regular expressions if u have :)

Also, for my region, don't need any currency symbols like '$' in the field.

Only decimals are to be included for validation as special chars., along with numbers.

2
  • is the part after decimal point optional? is 103.5 valid, or should it be 103.50?
    – Amarghosh
    Commented Feb 9, 2010 at 7:12
  • part after decimal is optional.
    – dev646
    Commented Feb 9, 2010 at 7:19

6 Answers 6

47

You could use a regexp:

var regex  = /^\d+(?:\.\d{0,2})$/;
var numStr = "123.20";
if (regex.test(numStr))
    alert("Number is valid");

If you're not looking to be as strict with the decimal places you might find it easier to use the unary (+) operator to cast to a number to check it's validity:

var numStr = "123.20";
var numNum = +numStr; // gives 123.20

If the number string is invalid, it will return NaN (Not a Number), something you can test for easily:

var numStr = "ab123c";
var numNum = +numStr;
if (isNaN(numNum))
    alert("numNum is not a number");

It will, of course, allow a user to add more decimal places but you can chop any extra off using number.toFixed(2) to round to 2 decimal places. parseFloat is much less strict with input and will pluck the first number it can find out of a string, as long as that string starts with a number, eg. parseFloat("123abc") would yield 123.

6
  • 6
    regex used to test validity of string doesn't accept commas. Use /^[1-9]\d*(((,\d{3}){1})?(\.\d{0,2})?)$/ instead.
    – Redtopia
    Commented Oct 28, 2013 at 17:32
  • To /^\d+(?:\.\d{0,2})$/ I would add an interrogation at the end /^\d+(?:\.\d{0,2})?$/ so the decimal point is optional.
    – Rudy
    Commented Dec 20, 2018 at 16:12
  • "1." such thing will pass the check
    – Blake
    Commented Feb 26, 2019 at 13:53
  • Your regex says the '.' is mandatory. Which I don't think it ought to be. If the '.00' part is left off, the string is still a valid dollar amount. For example, $100.00 is a valid dollar amount; so is $100
    – Ringo
    Commented Sep 28, 2019 at 7:46
  • 2
    This regex worked better for me: /^\d+\.?\d{0,2}?$/ Optional '.' and optional mantissa.
    – Ringo
    Commented Sep 28, 2019 at 7:50
36

I built my answer from the accepted answer.

var regex = /^[1-9]\d*(((,\d{3}){1})?(\.\d{0,2})?)$/;

^[1-9] The number must start with 1-9
\d* The number can then have any number of any digits
(...)$ look at the next group from the end (...)$
(...)?(...)? Look for two groups optionally. The first is for the comma, the second is for the decimal.
(,\d{3}){1} Look for one occurance of a comma followed by exactly three digits
\.\d{0,2} Look for a decimal followed by zero, one, or two digits.

This regex works off of these rules:

  • Valid values are numbers 0-9, comma and decimal point.
  • If a customer enters more than one decimal point or more than one comma, the value is invalid and will not be accepted.

  • Examples of invalid input values

    • 1.2.3
    • 1,2,4
  • Examples of valid input values
    • 1.23
    • 1,000
    • 3967.
    • 23
    • 1.2
    • 999,999.99

An example can be seen here: http://jsfiddle.net/rat141312/Jpxu6/1/

UPDATE

by changing the [1-9] in the regex to [0-9] any number less than 1 can also be validated. Example: 0.42, 007

8
  • 1
    Useful! Combined with the accepted answer, this turned out to be a good solution to a problem I was having. Commented Nov 6, 2012 at 16:21
  • 2
    ...except that it doesn't allow for numbers less than 1.00.
    – Andy E
    Commented Jan 5, 2013 at 11:50
  • 2
    Andy, saw your comment late. You're right :( no values less than 1 allowed. By changing the 1-9 to 0-9 it will work.
    – Sababado
    Commented Jun 7, 2013 at 14:39
  • 1
    Thank you! This works great for validating on the fly.
    – GCD
    Commented Nov 30, 2017 at 16:13
  • 1
    @BenCoffin I'd recommend a different regex for each type of currency you're validating. Otherwise this blurb will get even more complex than it needs to be and at two or three different currencies it just won't be worth it to try to combine all in one. Sorry for the incredible delay in response, I was taking a nap.
    – Sababado
    Commented Mar 4, 2020 at 18:06
1
/[1-9]\d*(?:\.\d{0,2})?/

[1-9] - must start with 1 to 9
\d* - any number of other digits
(?: )? - non capturing optional group
\. - a decimal point
\d{0,2} - 0 to 2 digits

does that work for you? or maybe parseFloat:

var float = parseFloat( input );
1
  • 2
    I don't think parseFloat or parseInt are that great for validation, they will parse strings like "123abc" as "123". Also, your regex tests true on the following string: "a01.9bc", you need to add ^ and $ to match the beginning and end of the string respectively. Actually, even then a string like "0.91" won't work.
    – Andy E
    Commented Feb 9, 2010 at 7:38
1

 let amount = document.querySelector('#amount'), preAmount = amount.value;
        amount.addEventListener('input', function(){
            if(isNaN(Number(amount.value))){
                amount.value = preAmount;
                return;
            }

            let numberAfterDecimal = amount.value.split(".")[1];
            if(numberAfterDecimal && numberAfterDecimal.length > 3){
                amount.value = Number(amount.value).toFixed(3);;
            }
            preAmount = amount.value;
        })
<input type="text" id="amount">

0

For me its working fine for Indian currency in INR

var regex = /^[1-9]{0,2}(,{0,1})(\d{2},)*(\d{3})*(?:\.\d{0,2})$/;
var a = '1,111.11';
regex.test(a); 
0

Now I use this:

let func = function (vStr) {
    let v0 = Number(vStr);
    let v1 = Number(v0.toFixed(2));
    return v0 === v1;
};

Note that, NaN === NaN returns false. Maybe some substitution for '$' and ',' before parsing is needed, for other cases. And there is a problem of precision for very large number, longer than 16 digits. As well as values of '0x3a', '68n' is considered valid.

Nowadays, <input> of type="number", with step='.01' may be more proper.

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