2597

I'd like to round at most 2 decimal places, but only if necessary.

Input:

10
1.7777777
9.1

Output:

10
1.78
9.1

How can I do this in JavaScript?

  • 17
    I made a fiddle with many of the techniques offered as solutions here ... so you can compare: fiddle – dsdsdsdsd Nov 18 '13 at 9:45
  • 31
    No one seems to be aware of Number.EPSILON. Use Math.round( num * 100 + Number.EPSILON ) / 100. – cronvel Jan 18 '17 at 9:59
  • 3
    For new readers, you can't do this unless you have a string type result. Floating point maths on binary internal representations of numbers means there are always numbers that cannot be represented as neat decimals. – Walf Feb 20 '18 at 1:42
  • 9
    @cronvel Can you explain the reason of using Number.EPSILON here? – Bruce Sun Oct 19 '18 at 3:10
  • 4
    I fell down the rabbit hole and tested some of the more interesting answers on this page (first page only). Here's a Codepen. Hint: the more upvotes the answer has, the lower are chances it works properly. – Adam Jagosz Aug 28 '19 at 16:39

73 Answers 73

1 2 3
1

Here's my solution to this problem:

function roundNumber(number, precision = 0) {
var num = number.toString().replace(",", "");
var integer, decimal, significantDigit;

if (num.indexOf(".") > 0 && num.substring(num.indexOf(".") + 1).length > precision && precision > 0) {
    integer = parseInt(num).toString();
    decimal = num.substring(num.indexOf(".") + 1);
    significantDigit = Number(decimal.substr(precision, 1));

    if (significantDigit >= 5) {
        decimal = (Number(decimal.substr(0, precision)) + 1).toString();
        return integer + "." + decimal;
    } else {
        decimal = (Number(decimal.substr(0, precision)) + 1).toString();
        return integer + "." + decimal;
    }
}
else if (num.indexOf(".") > 0) {
    integer = parseInt(num).toString();
    decimal = num.substring(num.indexOf(".") + 1);
    significantDigit = num.substring(num.length - 1, 1);

    if (significantDigit >= 5) {
        decimal = (Number(decimal) + 1).toString();
        return integer + "." + decimal;
    } else {            
        return integer + "." + decimal;
    }
} 

return number;
}
1

I have found this works for all my use cases:

const round = (value, decimalPlaces = 0) => {
    const multiplier = Math.pow(10, decimalPlaces);
    return Math.round(value * multiplier + Number.EPSILON) / multiplier;
};

Keep in mind that is ES6. An ES5 equiv. would be very easy to code though so I'm not gonna add it.

1

Mathematic floor and round definitions

enter image description here

lead us to

let round= x=> ( x+0.005 - (x+0.005)%0.01 +'' ).replace(/(\...)(.*)/,'$1');

// for case like 1.384 we need to use regexp to get only 2 digits after dot
// and cut off machine-error (epsilon)

console.log(round(10));
console.log(round(1.7777777));
console.log(round(1.7747777));
console.log(round(1.384));

0

Node.js

This did the trick for me on Node.js in a matter of seconds:

npm install math

Source: http://mathjs.org/examples/basic_usage.js.html

  • 2
    In the end, for plain numbers, it's using the Math.round(v*100)/100 trick. github.com/josdejong/mathjs/blob/master/lib/function/arithmetic/… – lapo Jan 28 '15 at 17:27
  • Thanks for adding lapo, so a computer scientist will want to know on how that actually is implemented. Yet - a developer will be happy with the concept of information hiding and does not need to care. – meshfields Apr 7 '15 at 14:35
  • @StephanKristyn as pointed out by James, while this will work for most cases, it will not work for 1.005 which will end up coming out to be 1 instead of 1.01. Therefore a developer should not be happy with this. – mash Jul 31 '16 at 13:34
  • math.js should have you covered no? mathjs.org/docs/datatypes/fractions.html – meshfields Jul 31 '16 at 20:15
0
number=(parseInt((number +0.005)*100))/100;     

add 0.005 if you want to normal round (2 decimals)

8.123 +0.005=> 8.128*100=>812/100=>8.12   

8.126 +0.005=> 8.131*100=>813/100=>8.13   
0

Using Brian Ustas's solution:

function roundDecimal(value, precision) {
    var multiplier = Math.pow(10, precision);
    return Math.round(value * multiplier) / multiplier;
}
0

I created this function, for rounding a number. The value can be a string (ex. '1.005') or a number 1.005 that will be 1 by default and if you specify the decimal to be 2, the result will be 1.01

round(value: string | number, decimals: number | string = "0"): number | null {
    return +( Math.round(Number(value + "e+"+decimals)) + "e-" + decimals);
}

Usage: round(1.005, 2) // 1.01 or Usage: round('1.005', 2) //1.01

  • is this a TypeScript question? – Adam Jagosz Aug 28 '19 at 10:46
0

Quick helper function where rounging is You default rounding: let rounding=4;

let round=(number)=>{ let multiply=Math.pow(10,rounding);  return Math.round(number*multiply)/multiply};

console.log(round(0.040579431));

=> 0.0406

0

There is a solution working for all numbers, give it a try. expression is given below.

Math.round((num + 0.00001) * 100) / 100. Try Math.round((1.005 + 0.00001) * 100) / 100 and Math.round((1.0049 + 0.00001) * 100) / 100

I recently tested every possible solution and finally arrived at the output after trying almost 10 times. Here is a screenshot of issue arised during caculations, Screen Capture.

head over to the amount field, It's returning almost infinite. I gave a try to toFixed() method but it's not working for some cases(i.e try with PI) and finally derived s solution given above.

0

Slight modification of this answer that seems to work well.

Function

function roundToStep(value, stepParam) {
   var step = stepParam || 1.0;
   var inv = 1.0 / step;
   return Math.round(value * inv) / inv;
}

Usage

roundToStep(2.55) = 3
roundToStep(2.55, 0.1) = 2.6
roundToStep(2.55, 0.01) = 2.55
-1

Please use the below function if you don't want to round off.

function ConvertToDecimal(num) {
  num = num.toString(); // If it's not already a String
  num = num.slice(0, (num.indexOf(".")) + 3); // With 3 exposing the hundredths place    
alert('M : ' + Number(num)); // If you need it back as a Number     
}
  • You should have the desired decimal places be a second parameter of the function that "defaults" to 2 or 3 decimal places. – Joshua Pinter Jun 22 '16 at 22:36
-1

I tried my very own code, try this

function AmountDispalyFormat(value) {
    value = value.toFixed(3);
    var amount = value.toString().split('.');
    var result = 0;
    if (amount.length > 1) {
        var secondValue = parseInt(amount[1].toString().slice(0, 2));
        if (amount[1].toString().length > 2) {
            if (parseInt(amount[1].toString().slice(2, 3)) > 4) {
                secondValue++;
                if (secondValue == 100) {
                    amount[0] = parseInt(amount[0]) + 1;
                    secondValue = 0;
                }
            }
        }

        if (secondValue.toString().length == 1) {
            secondValue = "0" + secondValue;
        }
        result = parseFloat(amount[0] + "." + secondValue);
    } else {
        result = parseFloat(amount);
    }
    return result;
}
-9

I still don't think anyone gave him the answer to how to only do the rounding if needed. The easiest way I see to do it is to check if there is even a decimal in the number, like so:

var num = 3.21;
if ( (num+"").indexOf('.') >= 0 ) { //at least assert to string first...
    // whatever code you decide to use to round
}
  • 3
    indexOf is not a method on numbers, first of all. – Ry- Aug 17 '13 at 15:10
  • 3
    The Question asked how to round numbers not just check if they need to be rounded. – Jason Foglia Oct 14 '13 at 18:34
1 2 3

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