31

I have an integer that is less then 100 and is printed to an HTML page with JavaScript. How do I format the integer so that it is exactly two digits long? For example:

01
02
03
...
09
10
11
12
...

1
  • 6
    @Rudie: it's the second sentence, right? – maerics Apr 25 '11 at 0:06

10 Answers 10

54

Update

This answer was written in 2011. See liubiantao's answer for the 2021 version.

Original

function pad(d) {
    return (d < 10) ? '0' + d.toString() : d.toString();
}

pad(1);  // 01
pad(9);  // 09
pad(10); // 10
3
  • what if negative? – 4 Leave Cover Feb 9 '17 at 7:25
  • Great help. Saves lots of time. – Mehadi Hassan Feb 27 '20 at 5:46
  • This works nicely for hexadecimal as well with one simple change: function pad(d) { return (d < 16) ? '0' + d.toString() : d.toString(); } – Kevin Jun 13 '20 at 22:07
28
String("0" + x).slice(-2);

where x is your number.

1
  • Props for brevity. I like how the length is parameterized so you can use it dynamically for higher order digit expansions. – Cody Jun 9 '20 at 18:47
17

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/padStart

String(number).padStart(2, '0')
2
  • ..only if you use ES2017. – WesternGun Sep 3 '18 at 13:09
  • cleanest answer – buddhiv Jun 12 '19 at 7:04
9

Just use the following short function to get the result you need:

function pad2(number) {
    return (number < 10 ? '0' : '') + number
}
4

A direct way to pad a number to the left in Javascript is to calculate the number of digits by log base 10. For example:

function padLeft(positiveInteger, totalDigits) {
  var padding = "00000000000000";
  var rounding = 1.000000000001;
  var currentDigits = positiveInteger > 0 ? 1 + Math.floor(rounding * (Math.log(positiveInteger) / Math.LN10)) : 1;
  return (padding + positiveInteger).substr(padding.length - (totalDigits - currentDigits));
}

The rounding factor fixes the problem that there is no way to get an exact log of powers of 10, for example Math.log(1000) / Math.LN10 == 2.9999999999999996 Of course one should add validation of the parameters.

2
// Return a string padded
function FormatMe(n) {
   return (n<10) ? '0'+n : n;
}
2
function padLeft(a, b) {
    var l = (a + '').length;
    if (l >= b) {
        return a + '';
    } else {
        var arr = [];
        for (var i = 0; i < b - l ;i++) {
            arr.push('0');
        }
        arr.push(a);
        return arr.join('');
    }
}
0

I use regex to format my time such as

const str = '12:5'

const final = str.replace(/\d+/g, (match, offset, string) => match < 10 ? '0' + match : match)

output: 12:05

1
  • let result = time.replace(/\d+/g, (match, offset, string) => Number(match) < 10 && (match[0] !== '0' || match === '0') ? '0' + match : match) – Salem Chen Apr 27 '18 at 15:02
0

I usually use this function.

function pad(n, len) {
    let l = Math.floor(len)
    let sn = '' + n
    let snl = sn.length
    if(snl >= l) return sn
    return '0'.repeat(l - snl) + sn
}


Usage Example

pad(1, 1)    // ==> returns '1' (string type)
pad(384, 5)  // ==> returns '00384'
pad(384, 4.5)// ==> returns '0384'
pad(5555, 2) // ==> returns '5555'
0

Improved version of previous answer:

var result = [...Array(12)].map((_, i) => zeroFill(i + 1, 2));

function zeroFill(num, size) {
  let s = num + '';
  while (s.length < size) s = `0${s}`;
  return s;
}
console.log(result)

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