22

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.

  • is the part after decimal point optional? is 103.5 valid, or should it be 103.50? – Amarghosh Feb 9 '10 at 7:12
  • part after decimal is optional. – dev646 Feb 9 '10 at 7:19
39

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.

  • 1
    wow ... feeling better now... that was good... Thanx! – dev646 Feb 9 '10 at 8:19
  • 5
    regex used to test validity of string doesn't accept commas. Use /^[1-9]\d*(((,\d{3}){1})?(\.\d{0,2})?)$/ instead. – Redtopia Oct 28 '13 at 17:32
  • To /^\d+(?:\.\d{0,2})$/ I would add an interrogation at the end /^\d+(?:\.\d{0,2})?$/ so the decimal point is optional. – Rudolf Cicko Dec 20 '18 at 16:12
  • "1." such thing will pass the check – Blake Feb 26 at 13:53
27

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

  • Useful! Combined with the accepted answer, this turned out to be a good solution to a problem I was having. – Greg Pettit Nov 6 '12 at 16:21
  • 2
    ...except that it doesn't allow for numbers less than 1.00. – Andy E Jan 5 '13 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 Jun 7 '13 at 14:39
  • doesn't work for 123,999,999.99 – Dmitry Pavlov Aug 5 '15 at 15:34
  • How do you amend this recommendation for international currency formats, such as: 1.000,00 – Ben Coffin Apr 3 '17 at 18:31
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 );
  • 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 Feb 9 '10 at 7:38
  • Yes, you're right, Andy E has provided a better answer – meouw Feb 9 '10 at 7:58
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

 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">

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