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I would like to format a price in JavaScript.
I'd like a function which takes a float as an argument and returns a string formatted like this:

"$ 2,500.00"

What's the best way to do this?

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5  
There is no built-in function formatNumber in javascript –  zerkms Feb 16 '12 at 20:39
184  
Please, to anyone reading this in the future, do not use float to store currency. You will loose precision and data. You should store it as a integer number of cents (or pennies etc.) and then convert prior to output. –  Philip Whitehouse Mar 4 '12 at 13:35
3  
@user1308743 Float doesn't store decimal places. It stores numbers using a value, base and offset. 0.01 is not actually representable. See: en.wikipedia.org/wiki/Floating_point#Accuracy_problems –  Philip Whitehouse Jun 10 '12 at 11:11
3  
@user1308743: Imagine you represent a very big number (lets say you are a lucky guy and it is your bank account balance). Would you really want to loose money because of a precision deficiency ? –  ereOn Aug 6 '12 at 9:14
24  
So why hasn't anyone suggested the following? (2500).toLocaleString("en-GB", {style: "currency", currency: "GBP", minimumFractionDigits: 2}) developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… –  Nick Grealy Sep 25 '13 at 1:41

55 Answers 55

http://code.google.com/p/javascript-number-formatter/ :

  • Short, fast, flexible yet standalone. Only 75 lines including MIT license info, blank lines & comments.
  • Accept standard number formatting like #,##0.00 or with negation -000.####.
  • Accept any country format like # ##0,00, #,###.##, #'###.## or any type of non-numbering symbol.
  • Accept any numbers of digit grouping. #,##,#0.000 or #,###0.## are all valid.
  • Accept any redundant/fool-proof formatting. ##,###,##.# or 0#,#00#.###0# are all OK.
  • Auto number rounding.
  • Simple interface, just supply mask & value like this: format( "0.0000", 3.141592)

UPDATE This is my home grown pp utilities for most common tasks:

var NumUtil = {};

/**
  Petty print 'num' wth exactly 'signif' digits.
  pp(123.45, 2) == "120"
  pp(0.012343, 3) == "0.0123"
  pp(1.2, 3) == "1.20"
*/
NumUtil.pp = function(num, signif) {
    if (typeof(num) !== "number")
        throw 'NumUtil.pp: num is not a number!';
    if (isNaN(num))
        throw 'NumUtil.pp: num is NaN!';
    if (num < 1e-15 || num > 1e15)
        return num;
    var r = Math.log(num)/Math.LN10;
    var dot = Math.floor(r) - (signif-1);
    r = r - Math.floor(r) + (signif-1);
    r = Math.round(Math.exp(r * Math.LN10)).toString();
    if (dot >= 0) {
        for (; dot > 0; dot -= 1)
            r += "0";
        return r;
    } else if (-dot >= r.length) {
        var p = "0.";
        for (; -dot > r.length; dot += 1) {
            p += "0";
        }
        return p+r;
    } else {
        return r.substring(0, r.length + dot) + "." + r.substring(r.length + dot);
    }
}

/** Append leading zeros up to 2 digits. */
NumUtil.align2 = function(v) {
    if (v < 10)
        return "0"+v;
    return ""+v;
}
/** Append leading zeros up to 3 digits. */
NumUtil.align3 = function(v) {
    if (v < 10)
        return "00"+v;
    else if (v < 100)
        return "0"+v;
    return ""+v;
}

NumUtil.integer = {};

/** Round to integer and group by 3 digits. */
NumUtil.integer.pp = function(num) {
    if (typeof(num) !== "number") {
        console.log("%s", new Error().stack);
        throw 'NumUtil.integer.pp: num is not a number!';
    }
    if (isNaN(num))
        throw 'NumUtil.integer.pp: num is NaN!';
    if (num > 1e15)
        return num;
    if (num < 0)
        throw 'Negative num!';
    num = Math.round(num);
    var group = num % 1000;
    var integ = Math.floor(num / 1000);
    if (integ === 0) {
        return group;
    }
    num = NumUtil.align3(group);
    while (true) {
        group = integ % 1000;
        integ = Math.floor(integ / 1000);
        if (integ === 0)
            return group + " " + num;
        num = NumUtil.align3(group) + " " + num;
    }
    return num;
}

NumUtil.currency = {};

/** Round to coins and group by 3 digits. */
NumUtil.currency.pp = function(amount) {
    if (typeof(amount) !== "number")
        throw 'NumUtil.currency.pp: amount is not a number!';
    if (isNaN(amount))
        throw 'NumUtil.currency.pp: amount is NaN!';
    if (amount > 1e15)
        return amount;
    if (amount < 0)
        throw 'Negative amount!';
    if (amount < 1e-2)
        return 0;
    var v = Math.round(amount*100);
    var integ = Math.floor(v / 100);
    var frac = NumUtil.align2(v % 100);
    var group = integ % 1000;
    integ = Math.floor(integ / 1000);
    if (integ === 0) {
        return group + "." + frac;
    }
    amount = NumUtil.align3(group);
    while (true) {
        group = integ % 1000;
        integ = Math.floor(integ / 1000);
        if (integ === 0)
            return group + " " + amount + "." + frac;
        amount = NumUtil.align3(group) + " " + amount;
    }
    return amount;
}
share|improve this answer

A function to handle currency output, including negatives.

Sample Output:
$5.23
-$5.23

function formatCurrency(total) {
    var neg = false;
    if(total < 0) {
        neg = true;
        total = Math.abs(total);
    }
    return (neg ? "-$" : '$') + parseFloat(total, 10).toFixed(2).replace(/(\d)(?=(\d{3})+\.)/g, "$1,").toString();
}
share|improve this answer

This answer meets the following criteria:

  • Does not depend on an external dependency.
  • Does support localization.
  • Does have tests/proofs.
  • Does use simple and best coding practices (no complicated regex's, uses standard coding patterns).

This code is built on concepts from other answers. It's execution speed should be among the better posted here if that's a concern.

var decimalCharacter = Number("1.1").toLocaleString().substr(1,1);
var defaultCurrencyMarker = "$";
function formatCurrency(number, currencyMarker) {
    if (typeof number != "number")
        number = parseFloat(number, 10);

    // if NaN is passed in or comes from the parseFloat, set it to 0.
    if (isNaN(number))
        number = 0;

    var sign = number < 0 ? "-" : "";
    number = Math.abs(number);  // so our signage goes before the $ symbol.

    var integral = Math.floor(number);
    var formattedIntegral = integral.toLocaleString();

    // IE returns "##.00" while others return "##"
    formattedIntegral = formattedIntegral.split(decimalCharacter)[0];

    var decimal = Math.round((number - integral) * 100);
    return sign + (currencyMarker || defaultCurrencyMarker) +
        formattedIntegral  +
        decimalCharacter +
        decimal.toString() + (decimal < 10 ? "0" : "");
}

These tests only work on a US locale machine. This decision was made for simplicity and because this could cause of crappy input (bad auto-localization) allowing for crappy output issues.

var tests = [
    // [ input, expected result ]
    [123123, "$123,123.00"],    // no decimal
    [123123.123, "$123,123.12"],    // decimal rounded down
    [123123.126, "$123,123.13"],    // decimal rounded up
    [123123.4, "$123,123.40"],  // single decimal
    ["123123", "$123,123.00"],  // repeat subset of the above using string input.
    ["123123.123", "$123,123.12"],
    ["123123.126", "$123,123.13"],
    [-123, "-$123.00"]  // negatives
];

for (var testIndex=0; testIndex < tests.length; testIndex++) {
    var test = tests[testIndex];
    var formatted = formatCurrency(test[0]);
    if (formatted == test[1]) {
        console.log("Test passed, \"" + test[0] + "\" resulted in \"" + formatted + "\"");
    } else {
        console.error("Test failed. Expected \"" + test[1] + "\", got \"" + formatted + "\"");
    }
}
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Code from Jonathan M looks to complicated for me so I rewrote it and got about 30% on FF v30 and 60% on Chrome v35 speed boost (http://jsperf.com/number-formating2):

Number.prototype.formatNumber = function(decPlaces, thouSeparator, decSeparator) {
    decPlaces = isNaN(decPlaces = Math.abs(decPlaces)) ? 2 : decPlaces;
    decSeparator = decSeparator == undefined ? "." : decSeparator;
    thouSeparator = thouSeparator == undefined ? "," : thouSeparator;

    var n = this.toFixed(decPlaces);
    if (decPlaces) {
        var i = n.substr(0, n.length - (decPlaces + 1));
        var j = decSeparator + n.substr(-decPlaces);
    } else {
        i = n;
        j = '';
    }

    function reverse(str) {
        var sr = '';
        for (var l = str.length - 1; l >= 0; l--) {
            sr += str.charAt(l);
        }
        return sr;
    }

    if (parseInt(i)) {
        i = reverse(reverse(i).replace(/(\d{3})(?=\d)/g, "$1" + thouSeparator));
    }
    return i+j;
};

Usage:

var sum = 123456789.5698;
var formatted = '$' + sum.formatNumber(2,',','.'); // "$123,456,789.57"
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Intl.NumberFormat

var number = 3500;
alert(new Intl.NumberFormat().format(number));
// → "3,500" if in US English locale

or phpjs.com/functions/number_format

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https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/NumberFormat Example: Using locales

This example shows some of the variations in localized number formats. In order to get the format of the language used in the user interface of your application, make sure to specify that language (and possibly some fallback languages) using the locales argument:

var number = 123456.789;

// German uses comma as decimal separator and period for thousands console.log(new Intl.NumberFormat('de-DE').format(number)); // → 123.456,789

// Arabic in most Arabic speaking countries uses real Arabic digits console.log(new Intl.NumberFormat('ar-EG').format(number)); // → ١٢٣٤٥٦٫٧٨٩

// India uses thousands/lakh/crore separators console.log(new Intl.NumberFormat('en-IN').format(number));

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You should use an internationalization tool for solving this problem, because if you don't you need to hard code a lot of locale specific code and the amount of permutations is endless. I use l10ns. With L10ns you can just define your message string to be a currency amount:

{price, currency, local, symbol}

Compile the message:

$ l10ns compile

And require it and use it:

var l = requireLocalizations('en-US');
var carPrice = l('PRIZES__CAR_PRICE', { price: {
  code: 'USD',
  amount: 349
}});
// use carPrice...

PS. Don't forget that English uses parenthesis ($#,##0.00) for negative amounts.

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There is no equivalent of "formatNumber" in JavaScript. You can write it yourself or find a library that already does this.

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Here is a mootools 1.2 implementation from the code provided by XMLilley...

Number.implement('format', function(decPlaces, thouSeparator, decSeparator){
decPlaces = isNaN(decPlaces = Math.abs(decPlaces)) ? 2 : decPlaces;
decSeparator = decSeparator === undefined ? '.' : decSeparator;
thouSeparator = thouSeparator === undefined ? ',' : thouSeparator;

var num = this,
    sign = num < 0 ? '-' : '',
    i = parseInt(num = Math.abs(+num || 0).toFixed(decPlaces)) + '',
    j = (j = i.length) > 3 ? j % 3 : 0;

return sign + (j ? i.substr(0, j) + thouSeparator : '') + i.substr(j).replace(/(\d{3})(?=\d)/g, '$1' + thouSeparator) + (decPlaces ? decSeparator + Math.abs(num - i).toFixed(decPlaces).slice(2) : '');
});
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Here is the short and best one to convert numbers into currency format:

function toCurrency(amount){
    return amount.replace(/(\d)(?=(\d\d\d)+(?!\d))/g, "$1,");
}

// usage: toCurrency(3939920.3030);

Cheers! Anunay

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You should never hard code your solution, because it will cause maintenance issues as you add more locales. And you should always use a internationalization tools for this problem, because the complexity of number formatting is very high as you add more and more locales. Just think about how to format the same amount but instead use arabic numerals? Or format the same amount on german locale? they use different symbols for thousand separator and fraction separator.

As for internationalization tool, I use l10ns (http://l10ns.org).

You just write your getter for your localized string.

var l = requireLocalizations('en-US');
var string = l('CURRENCY_AMOUNT', {
  price: {
    code: 'USD', //ISO currency code
    amount: 2500
  }
});

console.log(string) // Outputs '$ 2,500.00'

And define your return message in their translation interface tool.

{price, number, ¤ #,##0.00}

The third argument above is called a decimal pattern. And it lets you define almost any kind of format you want(We use decimal pattern because you want a space between the symbol and the amount). But for currency please use some default decimal pattern defined by CLDR. CLDR is a data repository that many organizations such as Google, IBM, Yahoo etc. is using for getting localization data. And one of the localization data we can get is to format currency amount. Their default decimal pattern for the English language is ¤#,##0.00. And we can use this pattern by simply input the following text on the translation interface.

{price, currency, local, symbol}

For more information please check out their documentation.

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This is a terse solution that uses toLocaleString(), which has been supported since Javascript version 1.0. This example designates the currency to U.S. Dollars, but could be switched to pounds by using 'GBP' instead of 'USD'.

var formatMoney = function (value) {
    // Convert the value to a floating point number in case it arrives as a string.
    var numeric = parseFloat(value);
    // Specify the local currency.
    return numeric.toLocaleString('USD', { style: 'currency', currency: "USD", minimumFractionDigits: 2, maximumFractionDigits: 2 });
}

See https://marcoscaceres.github.io/jsi18n/#localize_currency for additional details.

share|improve this answer
1  
Safari 8.0.6 it wasn't trimming decimals, inserting "$", or adding commas –  godmode Jun 9 at 13:53

This might work:

function format_currency(v, number_of_decimals, decimal_separator, currency_sign){
  return (isNaN(v)? v : currency_sign + parseInt(v||0).toLocaleString() + decimal_separator + (v*1).toFixed(number_of_decimals).slice(-number_of_decimals));
}

No loops, no regexes, no arrays, no exotic conditionals.

share|improve this answer

A quiker way with regexp ?

Number.prototype.toMonetaryString=function(){var n=this.toFixed(2),m;
// var=this.toFixed(2).replace(/\./,','); for comma separator
// with a space for thousands separator
  while ((m=n.replace(/(\d)(\d\d\d)\b/g,'$1 $2'))!=n) n=m; 
  return m;
}
String.prototype.fromMonetaryToNumber=function(s){
  return this.replace(/[^\d-]+/g,'')/100;
}   
share|improve this answer
String.prototype.toPrice = function () {
    var v;
    if (/^\d+(,\d+)$/.test(this))
        v = this.replace(/,/, '.');
    else if (/^\d+((,\d{3})*(\.\d+)?)?$/.test(this))
        v = this.replace(/,/g, "");
    else if (/^\d+((.\d{3})*(,\d+)?)?$/.test(this))
        v = this.replace(/\./g, "").replace(/,/, ".");
    var x = parseFloat(v).toFixed(2).toString().split("."),
    x1 = x[0],
    x2 = ((x.length == 2) ? "." + x[1] : ".00"),
    exp = /^([0-9]+)(\d{3})/;
    while (exp.test(x1))
        x1 = x1.replace(exp, "$1" + "," + "$2");
    return x1 + x2;
}

alert("123123".toPrice()); //123,123.00
alert("123123,316".toPrice()); //123,123.32
alert("12,312,313.33213".toPrice()); //12,312,313.33
alert("123.312.321,32132".toPrice()); //123,312,321.32
share|improve this answer

Coffeescript for Patrick's popular answer above:

Number::formatMoney = (decimalPlaces, decimalChar, thousandsChar) ->  
  n = this  
  c = decimalPlaces  
  d = decimalChar  
  t = thousandsChar  
  c = (if isNaN(c = Math.abs(c)) then 2 else c)  
  d = (if d is undefined then "." else d)  
  t = (if t is undefined then "," else t)  
  s = (if n < 0 then "-" else "")  
  i = parseInt(n = Math.abs(+n or 0).toFixed(c)) + ""  
  j = (if (j = i.length) > 3 then j % 3 else 0)  
  s + (if j then i.substr(0, j) + t else "") + i.substr(j).replace(/(\d{3})(?=\d)/g, "$1" + t) + (if c then d + Math.abs(n - i).toFixed(c).slice(2) else "")  
share|improve this answer

I like the shortest answer by VisionN except when I need to modify it for a number without decimal point ($123 instead of $123.00) it does not work, so instead of quick copy/paste I need to decipher arcane syntax of the JavaScript regex.

Here is the original solution

n.toFixed(2).replace(/\d(?=(\d{3})+\.)/g, '$&,');

I'll make it a bit longer:

var re = /\d(?=(\d{3})+\.)/g;
var subst = '$&,';
n.toFixed(2).replace(re, subst);

Re part here (search part in string replace) means

  1. Find all digits (\d)
  2. Followed by (?= ...) (lookahead)
  3. One or more groups (...)+
  4. Of exactly 3 digits (\d{3})
  5. Ending with a dot (\.)
  6. Do it for all occurrences (g)

Subst part here means

  1. Every time there is a match replace it with itself ($&) followed by a comma.

As we use string.replace all other text in the string remains the same and only found digits (those that are followed by 3,6,9,etc other digits) get an additional comma.

So in a number 1234567.89 digits 1 and 4 meet the condition (1234567.89) and are replaced with "1," and "4," resulting in 1,234,567.89.

If we don't need the decimal point in dollar amount at all (i.e. $123 instead of $123.00), we may change the regex like this:

var re2 = /\d(?=(\d{3})+$)/g;

It relies on the end of line ($) instead of a dot (\.) and the final expression will be (notice also toFixed(0)):

n.toFixed(0).replace(/\d(?=(\d{3})+$)/g, '$&,');

This expression will give

1234567.89 -> 1,234,567

Also instead of end of line ($) in the regex above you may opt for a word boundary as well (\b).

My apology in advance if I misinterpreted any part of regex handling.

share|improve this answer

many of the answers had helpful ideas, but none of them could fit my needs. So I used all the ideas and build this example:

function Format_Numb( fmt){
    var decimals = isNaN(decimals) ? 2 : Math.abs(decimals);
    if(typeof decSgn==="undefined") decSgn = ".";
    if(typeof kommaSgn==="undefined") kommaSgn= ",";

    var s3digits=/(\d{1,3}(?=(\d{3})+(?=[.]|$))|(?:[.]\d*))/g;
    var dflt_nk="00000000".substring(0,decimals);

    //--------------------------------
    // handler for pattern: "%m"
    var _f_money= function( v_in){
                var v=v_in.toFixed(decimals);
                var add_nk=",00";
                var arr=    v.split(".");
                return     arr[0].toString().replace(s3digits, function ($0) {
                                    return ($0.charAt(0)==".")
                                        ? ((add_nk=""),(kommaSgn + $0.substring(1)))
                                        : ($0 + decSgn);
                        })
                        + (    (decimals > 0)
                                ?    (    kommaSgn
                                        + (
                                            (arr.length > 1)
                                            ? arr[1]
                                            : dflt_nk
                                        )
                                    )
                                :    ""                    
                        );
    }

    // handler for pattern: "%<len>[.<prec>]f"
    var _f_flt= function( v_in,l,prec){
        var v=(typeof prec !== "undefined") ? v_in.toFixed(prec):v_in;
        return ((typeof l !== "undefined")&&( (l=l-v.length) > 0))
                ?(Array(l+1).join(" ") + v)
                :v;
    }

    // handler for pattern: "%<len>x"
    var _f_hex= function( v_in,l,flUpper){
        var v=    Math.round(v_in).toString(16);
        if(flUpper)    v=v.toUpperCase();
        return ((typeof l !== "undefined")&&( (l=l-v.length) > 0))
                ?(Array(l+1).join("0") + v)
                :v;        
    }

    //...can be extended..., just add the function, f.e.:    var _f_octal= function( v_in,...){
    //--------------------------------

    if( typeof(fmt)!=="undefined"){
        //...can be extended..., just add the char,f.e."O":    MFX -> MFXO
        var rpatt=/(?:%([^%"MFX]*)([MFX]))|(?:"([^"]*)")|("|%%)/gi;
        var _qu=    "\"";
        var _mask_qu=    "\\\"";
        var str=    fmt.toString().replace( rpatt,function($0,$1,$2,$3,$4){
                                var f;
                                if(typeof $1 !== "undefined"){
                                    switch($2.toUpperCase()){
                                        case "M":    f= "_f_money(v)";    break;
                                        case "F":    var    n_dig0,n_dig1;
                                                var    re_flt=/^(?:(\d))*(?:[.](\d))*$/;
                                                $1.replace(re_flt,function($0,$1,$2){
                                                    n_dig0=$1;
                                                    n_dig1=$2;
                                                });
                                                f= "_f_flt(v," + n_dig0 + "," + n_dig1 + ")";    break;
                                        case "X":    var    n_dig="undefined";
                                                var    re_flt=/^(\d*)$/;
                                                $1.replace(re_flt,function($0){
                                                    if($0!="")n_dig=$0;
                                                });
                                                f= "_f_hex(v," + n_dig + "," + ($2=="X") + ")";    break;
                                        //...can be extended..., f.e.:    case "O":
                                    }
                                    return "\"+"+f+"+\"";
                                } else if(typeof $3 !== "undefined"){
                                    return _mask_qu + $3 + _mask_qu;
                                } else {
                                    return ($4==_qu)?_mask_qu:$4.charAt(0);
                                }
                            });
        var cmd=        "return function(v){"
                +        "if(typeof v === \"undefined\")return \"\";"    //null returned as empty string
                +        "if(!v.toFixed)return v.toString();"        //not numb returned as string
                +        "return \"" + str + "\";"
                +    "}";

        //...can be extended..., just add the function name in the 2 places:
        return new Function( "_f_money,_f_flt,_f_hex", cmd)(_f_money,_f_flt,_f_hex);
    }
}

First, I needed a C-style format-string-definition that should be flexible, but very easy to use and I defined it in following way; patterns:

%[<len>][.<prec>]f        float, example "%f", "%8.2d", "%.3f"
%m                        money
%[<len>]x                 hexadecimal lower case, example "%x", "%8x"
%[<len>]X                 hexadecimal upper case, example "%X", "%8X"

because there is no need to format others then to Euro for me, I implemented only "%m". But it's easy to extend this... Like in C the format string is a string containing the patterns, f.e. for Euro: "%m €" (returns strings like "8.129,33 €")

Beside the flexibility I needed a very fast solution for processing tables. That means, that when processing thousands of cells the processing of format string must not be done more than once. A call like "format( value, fmt)" is not acceptable for me, but this must be splitted in two steps:

// var formatter = Format_Numb( "%m €");  
//simple example for Euro...

//   but we use a complex example: 

var formatter = Format_Numb("a%%%3mxx \"zz\"%8.2f°\"  >0x%8X<");

// formatter is now a function, which can be used more than once (this is an example, that can be tested:) 

var v1= formatter( 1897654.8198344); 

var v2= formatter( 4.2); 

... (and thousands of rows)

Also for performance, _f_money enclosures the regexp;

Third, a call like "format( value, fmt)" is not acceptable because: Although it should be possible to format different collections of objects (f.e. cells of a column) with different masks, I don't want to have something to handle format strings at the point of processing. At this point I only want TO USE formatting, like in

for( var cell in cells){ do_something( cell.col.formatter( cell.value)); }

What format - maybe it's defined in an ini, in a xml for each column or somewhere else ..., but analyzing and setting formats or dealing with internationalizaton is processed in totally another place, and there I want to assign the formatter to the collection without thinking about performance issues:

col.formatter = Format_Numb( _getFormatForColumn(...) );

Fourth, I wanted an "tolerant" solution, so passing f.e. a string instead of a number should return simply the string, but "null" should return en empty string.

(Also formatting "%4.2f" must not cut something if the value is too big.)

And last but not least - it should be readable and easy extendable, WITHOUT having any effects in performance... For example, if somebody needs "octal values", please refer to lines with "...can be extended..." - I think that should be a very easy task.

My overall focus lay on performance. Each "processing routine" (f.e. _f_money) can be encapsulated optimized or exchanged with other ideas in this or other threads without change of the "prepare routines" (analyze format strings and creation of the functions), which must only processed once and in that sense are not so performance critical like the conversion calls of thousands of numbers.

For all, who prefer methods of numbers:

Number.prototype.format_euro=( function(formatter){
    return function(){ return formatter(this); }})
    (Format_Numb( "%m €"));

var v_euro= (8192.3282).format_euro(); //results: 8.192,33 €

Number.prototype.format_hex= (function(formatter){
    return function(){ return formatter(this); }})
    (Format_Numb( "%4x"));

var v_hex= (4.3282).format_hex();

Although I tested something there may be a lot of bugs in the code. So it's not a ready module, but just an idea and a starting point for non-js-experts like me. The code contains many and little modified ideas from a lot of stackoverflow-posts; sorry I can't reference all of them, but thanks to all the experts.

share|improve this answer
function getMoney(A){
    var a = new Number(A);
    var b = a.toFixed(2); //get 12345678.90
    a = parseInt(a); // get 12345678
    b = (b-a).toPrecision(2); //get 0.90
    b = parseFloat(b).toFixed(2); //in case we get 0.0, we pad it out to 0.00
    a = a.toLocaleString();//put in commas - IE also puts in .00, so we'll get 12,345,678.00
    //if IE (our number ends in .00)
    if(a < 1 && a.lastIndexOf('.00') == (a.length - 3))
    {
        a=a.substr(0, a.length-3); //delete the .00
    }
    return a+b.substr(1);//remove the 0 from b, then return a + b = 12,345,678.90
}
alert(getMoney(12345678.9));

This works in FF and IE

share|improve this answer

Because why not add another answer. I based this heavily on the answer from VisioN.

function format (val) {
  val = (+val).toLocaleString();
  val = (+val).toFixed(2);
  val += "";
  return val.replace(/(\d)(?=(\d{3})+(?:\.\d+)?$)/g, "$1" + format.thousands);
}
(function (isUS) {
  format.decimal =   isUS ? "." : ",";
  format.thousands = isUS ? "," : ".";
}(("" + (+(0.00).toLocaleString()).toFixed(2)).indexOf(".") > 0));

I tested with inputs:

[   ""
  , "1"
  , "12"
  , "123"
  , "1234"
  , "12345"
  , "123456"
  , "1234567"
  , "12345678"
  , "123456789"
  , "1234567890"
  , ".12"
  , "1.12"
  , "12.12"
  , "123.12"
  , "1234.12"
  , "12345.12"
  , "123456.12"
  , "1234567.12"
  , "12345678.12"
  , "123456789.12"
  , "1234567890.12"
  , "1234567890.123"
  , "1234567890.125"
].forEach(function (item) {
  console.log(format(item));
});

And got these results:

0.00
1.00
12.00
123.00
1,234.00
12,345.00
123,456.00
1,234,567.00
12,345,678.00
123,456,789.00
1,234,567,890.00
0.12
1.12
12.12
123.12
1,234.12
12,345.12
123,456.12
1,234,567.12
12,345,678.12
123,456,789.12
1,234,567,890.12
1,234,567,890.12
1,234,567,890.13

Just for fun.

share|improve this answer

I like it simple:

function formatPriceUSD(price) {
    var strPrice = price.toFixed(2).toString();
    var a = strPrice.split('');

    if (price > 1000000000)
        a.splice(a.length - 12, 0, ',');

    if (price > 1000000)
        a.splice(a.length - 9, 0, ',');

    if (price > 1000)
        a.splice(a.length - 6, 0, ',');

    return '$' + a.join("");
}
share|improve this answer

There are already good answers. Here's simple attempt for fun:

function currencyFormat(no) {
  var ar = (+no).toFixed(2).split('.');
  return [
      numberFormat(ar[0]|0),
      '.', 
      ar[1]
  ].join('');
}


function numberFormat(no) {
  var str = no + '';
  var ar = [];
  var i  = str.length -1;

  while( i >= 0 ) {
    ar.push( (str[i-2]||'') + (str[i-1]|| '')+ (str[i]|| ''));
    i= i-3;
  }
  return ar.reverse().join(',');  
}

The run some examples

console.log(
  currencyFormat(1),
  currencyFormat(1200),
  currencyFormat(123),
  currencyFormat(9870000),
  currencyFormat(12345),
  currencyFormat(123456.232)
)
share|improve this answer

Minimalistic approach that just meets the original requirements:

function formatMoney(n) {
    return "$ " + (Math.round(n * 100) / 100).toLocaleString();
}

@Daniel Magliola: You're right, the above was a hasty, incomplete implementation. Here's the corrected implementation:

function formatMoney(n) {
    return "$ " + n.toLocaleString().split(".")[0] + "."
        + n.toFixed(2).split(".")[1];
}
share|improve this answer
1  
Sorry, no. That will remove extra decimal places, but it won't fix to 2 decimal positions. "25" will be "$ 25" with your code, not "$ 25.00" –  Daniel Magliola Sep 29 '08 at 19:22
1  
Still wrong! You're using toLocaleString, which can make the decimal separator "," instead of ".", and assuming it's "." –  Daniel Magliola Oct 2 '08 at 19:13

Here's mine...

function thousandCommas(num) {
  num = num.toString().split('.');
  var ints = num[0].split('').reverse();
  for (var out=[],len=ints.length,i=0; i < len; i++) {
    if (i > 0 && (i % 3) === 0) out.push(',');
    out.push(ints[i]);
  }
  out = out.reverse() && out.join('');
  if (num.length === 2) out += '.' + num[1];
  return out;
}
share|improve this answer

here is a quick way by using regexp and replace.

function formatCurrency( number, dp, ts ) {
  var num = parseFloat( number ); //convert to float
  var pw; //for IE
  dp = parseInt( dp, 10 ); //decimal point
  dp = isNaN( dp ) ? 2 : dp; //default 2 decimal point
  ts = ts || ','; //thousands separator

  return num != number ? 
    false : //return false for NaN
    ( ( 0.9 ).toFixed( 0 ) == '1' ? //for cater IE toFixed bug
        num.toFixed( dp ) : //format to fix n decimal point with round up
        ( Math.round( num * ( pw = Math.pow( 10, dp ) || 1 ) ) / pw ).toFixed( dp ) //for fix ie toFixed bug on round up value like 0.9 in toFixed
    ).replace( /^(-?\d{1,3})((\d{3})*)(\.\d+)?$/, function( all, first, subsequence, dmp, dec ) { //separate string into different parts
      return ( first || '' ) + subsequence.replace( /(\d{3})/g, ts + '$1' ) + ( dec || '' ); //add thousands seperator and re-join all parts
    } );
}
share|improve this answer
2  
please provide an example on how to use the function. –  jao Nov 16 '12 at 13:30

protected by VisioN Feb 11 '13 at 9:46

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