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What is the recommended way to zerofill a value in JavaScript? I imagine I could build a custom function to pad zeros on to a typecasted value, but I'm wondering if there is a more direct way to do this?

Note: By "zerofilled" I mean it in the database sense of the word (where a 6-digit zerofilled representation of the number 5 would be "000005").

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36 Answers 36

up vote 76 down vote accepted

Note to readers!

As commenters have pointed out, this solution is "clever", and as clever solutions often are, it's memory intensive and relatively slow. If performance is a concern for you, don't use this solution!

A simple function is all you need

function zeroFill( number, width )
{
  width -= number.toString().length;
  if ( width > 0 )
  {
    return new Array( width + (/\./.test( number ) ? 2 : 1) ).join( '0' ) + number;
  }
  return number + ""; // always return a string
}

you could bake this into a library if you want to conserve namespace or whatever. Like with jQuery's extend.

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5  
+1 that is a clever use of join –  Gabe Moothart Aug 12 '09 at 20:03
1  
Now you just need to take care of numbers like 50.1234 and you've got a readable version of my solution below! I did, however, assume that we were just left padding, not overall padding. –  coderjoe Aug 12 '09 at 20:16
4  
Not a fan of creating a new array each time you want to pad a value. Readers should be aware of the the potential memory and GC impact if they're doing large #'s of these (e.g. on a node.js server that's doing 1000's of these operations per second. @profitehlolz's answer would seem to be the better solution.) –  broofa Sep 24 '12 at 12:21
3  
This does not work for negative values: zeroFill(-10, 7) -> "0000-10" –  digitalbath Nov 7 '12 at 15:20

First parameter is any real number, second parameter is a positive integer specifying the minimum number of digits to the left of the decimal point and third parameter is an optional positive integer specifying the number if digits to the right of the decimal point.

function zPad(n, l, r){
    return(a=String(n).match(/(^-?)(\d*)\.?(\d*)/))?a[1]+(Array(l).join(0)+a[2]).slice(-Math.max(l,a[2].length))+('undefined'!==typeof r?(0<r?'.':'')+(a[3]+Array(r+1).join(0)).slice(0,r):a[3]?'.'+a[3]:''):0
}

so

           zPad(6, 2) === '06'
          zPad(-6, 2) === '-06'
       zPad(600.2, 2) === '600.2'
        zPad(-600, 2) === '-600'
         zPad(6.2, 3) === '006.2'
        zPad(-6.2, 3) === '-006.2'
      zPad(6.2, 3, 0) === '006'
        zPad(6, 2, 3) === '06.000'
    zPad(600.2, 2, 3) === '600.200'
zPad(-600.1499, 2, 3) === '-600.149'
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A little math can give you a one-line function:

function zeroFill( number, width ) {
  return Array(width - parseInt(Math.log(number)/Math.LN10) ).join('0') + number;
}

That's assuming that number is an integer no wider than width. If the calling routine can't make that guarantee, the function will need to make some checks:

function zeroFill( number, width ) {
    var n = width - parseInt(Math.log(number)/Math.LN10);
    return (n < 0) ? '' + number : Array(n).join('0') + number;
}
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function uint_zerofill(num, width) {
    var pad = ''; num += '';
    for (var i = num.length; i < width; i++)
        pad += '0';
    return pad + num;
}
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I can't believe all the complex answers on here...just use this:


var zerofilled = ('0000'+n).slice(-4);

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A simple short recursive function to achieve your proposal:

function padleft (YourNumber, OutputLength){
    if (YourNumber.length >= OutputLength) {
        return YourNumber;
    } else {
        return padleft("0" +YourNumber, OutputLength);
    }
}
  • YourNumber is the input number.
  • OutputLength is the preferred output number length (with 0 padding left).

This function will add 0 on the left if your input number length is shorter than the wanted output number length.

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was here looking for a standard. had the same idea as Paul and Jonathan... theirs are super cute, here's a horrible-cute version:

function zeroPad(n,l,i){
    return (i=n/Math.pow(10,l))*i>1?''+n:i.toFixed(l).replace('0.','');
}

works too (we're assuming integers, yes?)...

> zeroPad(Math.pow(2, 53), 20);
'00009007199254740992'
> zeroPad(-Math.pow(2, 53), 20);
'-00009007199254740992'
> zeroPad(Math.pow(2, 53), 10);
'9007199254740992'
> zeroPad(-Math.pow(2, 53), 10);
'-9007199254740992'
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I use this snipet to get a 5 digits representation

(value+100000).toString().slice(-5) // "00123" with value=123
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After a, long, long time of testing 15 different functions/methods found in this questions answers, I now know which is the best (the most versatile and quickest).

I took 15 functions/methods from the answers to this question and made a script to measure the time taken to execute 100 pads. Each pad would pad the number 9 with 2000 zeros. This may seem excessive, and it is, but it gives you a good idea about the scaling of the functions.

The code I used can be found here: https://gist.github.com/NextToNothing/6325915

Feel free to modify and test the code yourself.

In order to get the most versatile method, you have to use a loop. This is because with very large numbers others are likely to fail, whereas, this will succeed.

So, which loop to use? Well, that would be a while loop. A for loop is still fast, but a while loop is just slightly quicker(a couple of ms) - and cleaner.

Answers like those by Wilco, Aleksandar Toplek or Vitim.us will do the job perfectly.

Personally, I tried a different approach. I tried to use a recursive function to pad the string/number. It worked out better than methods joining an array but, still, didn't work as quick as a for loop.

My function is:

function pad(str, max, padder) {
  padder = typeof padder === "undefined" ? "0" : padder;
  return str.toString().length < max ? pad(padder.toString() + str, max, padder) : str;
}

You can use my function with, or without, setting the padding variable. So like this:

pad(1, 3); // Returns '001'
// - Or -
pad(1, 3, "x"); // Returns 'xx1'

Personally, after my tests, I would use a method with a while loop, like Aleksandar Toplek or Vitim.us. However, I would modify it slightly so that you are able to set the padding string.

So, I would use this code:

function padLeft(str, len, pad) {
    pad = typeof pad === "undefined" ? "0" : pad + "";
    str = str + "";
    while(str.length < len) {
        str = pad + str;
    }
    return str;
}

// Usage
padLeft(1, 3); // Returns '001'
// - Or -
padLeft(1, 3, "x"); // Returns 'xx1'

You could also use it as a prototype function, by using this code:

Number.prototype.padLeft = function(len, pad) {
    pad = typeof pad === "undefined" ? "0" : pad + "";
    var str = this + "";
    while(str.length < len) {
        str = pad + str;
    }
    return str;
}

// Usage
var num = 1;

num.padLeft(3); // Returns '001'
// - Or -
num.padLeft(3, "x"); // Returns 'xx1'
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A simple one for my use case (to fill milliseconds never > 999) You can adjust the number of zeros for yours or use a more generic way if required.

/**
 * @val integer
 * @zeros padding
 */
function zeroFill(val, zeros)
{
    var str = val.toString();
    if (str.length >= zeros)
        return str;
    str = "000" + str;
    return str.substring(str.length - zeros);
}
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If the fill number is known in advance not to exceed a certain value, there's another way to do this with no loops:

var fillZeroes = "00000000000000000000";  // max number of zero fill ever asked for in global

function zeroFill(number, width) {
    // make sure it's a string
    var input = number + "";  
    var prefix = "";
    if (input.charAt(0) === '-') {
        prefix = "-";
        input = input.slice(1);
        --width;
    }
    var fillAmt = Math.max(width - input.length, 0);
    return prefix + fillZeroes.slice(0, fillAmt) + input;
}

Test cases here: http://jsfiddle.net/jfriend00/N87mZ/

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1  
@BrockAdams - I wasn't sure whether calling zeroFill(-88, 5) should produce -00088 or -0088? I guess it depends upon whether you want the width argument to be the entire width of the number or just the number of digits (not including the negative sign). An implementer can easily switch the behavior to not include the negative sign by just removing the --width line of code. –  jfriend00 Jun 16 '13 at 3:07

The power of Math!

x = integer to pad
y = number of zeroes to pad

function zeroPad(x, y)
{
   y = Math.max(y-1,0);
   var n = (x / Math.pow(10,y)).toFixed(y);
   return n.replace('.','');  
}
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variable-length padding function

function addPaddingZeroes(value, nLength)
{
    var sValue = value + ''; //converts to string

    if(sValue.length>=nLength)
        return sValue;
    else
    {
        for(var nZero = 0; nZero < nLength; nZero++)
            sValue = "0" + sValue;
        return (sValue).substring(nLength - sValue.length, nLength);    
    }
}
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function numPadding (padding,i) {
    return padding.substr(0, padding.length - (Math.floor(i).toString().length)) + Math.floor(i );
}

numPadding("000000000",234); -> "000000234"

or

function numPadding (number, paddingChar,i) {
    var padding = new Array(number + 1).join(paddingChar);
    return padding.substr(0, padding.length - (Math.floor(i).toString().length)) + Math.floor(i );
}

numPadding(8 ,"0", 234); -> "00000234";
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I really don't know why, but no one did it in the most obvious way. Here it's my implementation.

Function:

/** Pad a number with 0 on the left */
function zeroPad(number, digits) {
    var num = number+"";
    while(num.length < digits){
        num='0'+num;
    }
    return num;
}

Prototype:

Number.prototype.zeroPad=function(digits){
    var num=this+"";
    while(num.length < digits){
        num='0'+num;
    }
    return(num);
};

Very straightforward, I can't see any way how this can be any simpler. For some reason I've seem many times here on SO, people just try to avoid 'for' and 'while' loops at any cost. Using regex will probably cost way more cycles for such a trivial 8 digit padding.

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Here's what I used to pad a number up to 7 characters.

new String("0000000" + number).slice(-7)

This approach will probably suffice for most people.

Edit: If you want to make it more generic you can do this:

new String(new Array(padding + 1).join("0") + number).slice(-padding)
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My solution

Number.prototype.PadLeft = function (length, digit) {
    var str = '' + this;
    while (str.length < length) {
        str = (digit || '0') + str;
    }
    return str;
};

Usage

var a = 567.25;
a.PadLeft(10); // 0000567.25

var b = 567.25;
b.PadLeft(20, '2'); // 22222222222222567.25
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Maybe I am to naive, but I think that this works in one simple and efficient line of code (for positive numbers):

padded = (value+Math.pow(10,total_length)+"").slice(1)

As long as you keep your length OK according to you set of values (as in any zero padding), this should work.

The steps are:

  1. Add the power of 10 with the correct number of 0's [69+1000 = 1069]
  2. Convert to string with +"" [1069 => "1069"]
  3. Slice the first 1, which resulted of first multiplication ["1069" => "069"]

For natural listings (files, dirs...) is quite useful.

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function numberPadding(n, p) {
  n = n.toString();
  var len = p - n.length;
  if (len > 0) {
    for (var i=0; i < len; i++) {
      n = '0' + n;
    }
  }
  return n;
}
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1  
Elegant & Simple. Don't complicate stuff without necessity. –  der Nov 14 '12 at 16:31

Simple way. You could add string multiplication for the pad and turn it into a function.

var pad = "000000";
var n = '5';
var result = (pad+n).slice(-pad.length);

As a function,

function paddy(n, p, c) {
    var pad_char = typeof c !== 'undefined' ? c : '0';
    var pad = new Array(1 + p).join(pad_char);
    return (pad + n).slice(-pad.length);
}
var fu = paddy(14, 5); // 00014
var bar = paddy(2, 4, '#'); // ###2
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35  
This is a very nice solution, best I've seen. For clarity, here's a simpler version I'm using to pad the minutes in time formatting: ('0'+minutes).slice(-2) –  Luke Ehresman Sep 14 '12 at 0:22
13  
This is 5 times slower than the implementation with a while loop: gist.github.com/4382935 –  superjoe30 Dec 26 '12 at 20:37
14  
This has a FATAL FLAW with larger than expected numbers -- which is an extremely common occurrence. For example, paddy (888, 2) yields 88 and not 888 as required. This answer also does not handle negative numbers. –  Brock Adams Jun 15 '13 at 22:20
1  
@BrockAdams, zerofill is typically used for fixed width number/formatting cases -- therefore I think it'd actually be less likely (or even a non-issue) if given a 3 digit number when trying to do 2 digit zerofill. –  Seaux Dec 8 '13 at 23:15
3  
Performance measure amongst three top answers here: jsperf.com/left-zero-pad –  tomsmeding Feb 21 at 16:36

Mnah... I have not seen a "ultimate" answer to this issue and if you are facing the same challenge I must save you some time by saying that saddly there's not built-in function for that on JavaScript; but there's this awesome function in PHP that does a great job on padding strings as well as numbers with single character or arbitrary strings so after some time of banging my head for not having the right tool on JS [mostly for zerofillin' numbers and usually for trimming strings to fit a fixed length] and excessive coding work I decided to write my own function that does the same ["almost the same", read on for detail] that the dream PHP function but in comfortable client-side JavaScript.

function str_pad(input,pad_length,pad_string,pad_type){
    var input=input.toString();
    var output="";
    if((input.length>pad_length)&&(pad_type=='STR_PAD_RIGHT')){var output=input.slice(0,pad_length);}
    else if((input.length>pad_length)&&(pad_type=='STR_PAD_LEFT')){var output=input.slice(input.length-pad_length,input.length);}
    else if((input.length<pad_length)&&(pad_type=='STR_PAD_RIGHT')){
        var caracteresNecesarios=pad_length-input.length;
        var rellenoEnteros=Math.floor(caracteresNecesarios/pad_string.length);
        var rellenoParte=caracteresNecesarios%pad_string.length;
        var output=input;
        for(var i=0;i<rellenoEnteros;i++){var output=output+pad_string;};
        var output=output+pad_string.slice(0,rellenoParte);
    }
    else if((input.length<pad_length)&&(pad_type=='STR_PAD_LEFT')){
        var caracteresNecesarios=pad_length-input.length;
        var rellenoEnteros=Math.floor(caracteresNecesarios/pad_string.length);
        var rellenoParte=caracteresNecesarios%pad_string.length;
        var output="";
        for(var i=0;i<rellenoEnteros;i++){var output=output+pad_string;};
        var output=output+pad_string.slice(0,rellenoParte);
        var output=output+input;
    }
    else if(input.length==pad_length){var output=input;};
    return output;
};

The only thing that my function does not do is the STR_PAD_BOTH behavior that I could add with some time and a more comfortable keyboard. You might call the function and test it; bet you'll love it if you don't mind that inner code uses one or two words in Spanish... not big deal I think. I did not added comments for "watermarking" my coding so you can seamless use it in your work nor I compressed the code for enhanced readability. Use it and test it like this and spread the code:

alert("str_pad('murcielago',20,'123','STR_PAD_RIGHT')="+str_pad('murcielago',20,'123','STR_PAD_RIGHT')+'.');
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Even later to the party.

function zfill(num, len) {
  return(0 > num ? "-" : "") + (Math.pow(10, len) <= Math.abs(num) ? "0" + Math.abs(num) : Math.pow(10, len) + Math.abs(num)).toString().substr(1)
}

This handles negatives and situations where the number is longer than the field width. And floating-point.

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Late to the party here, but I often use this construct for doing ad-hoc padding of some value n, known to be a positive, decimal:

(offset + n + '').substr(1);

Where offset is 10^^digits.

E.g. Padding to 5 digits, where n = 123:

(1e5 + 123 + '').substr(1); // => 00123

The hexidecimal version of this is slightly more verbose:

(0x100000 + 0x123).toString(16).substr(1); // => 00123

Note 1: I like @profitehlolz's solution as well, which is the string version of this, using slice()'s nifty negative-index feature.

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function zeroFill(number, width) {
    width -= (number.toString().length - /\./.test(number));
    if (width > 0) {
        return new Array(width + 1).join('0') + number;
    }
    return number + ""; // always return a string
}

Slight changes made to Peter's code. With his code if the input is (1.2, 3) the value returned should be 01.2 but it is returning 1.2. The changes here should correct that.

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The quick and dirty way:

y = (new Array(count + 1 - x.toString().length)).join('0') + x;

For x = 5 and count = 6 you'll have y = "000005"

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1  
I got y="0005" with the above, y = (new Array(count + 1 - x.toString().length)).join('0') + x; is what gave me y="000005" –  forforf May 23 '12 at 15:30
2  
@OrrSiloni: the shortest code solution is actually ('0000'+n).slice(-4) –  Seaux Dec 8 '13 at 23:17
function pad(toPad, padChar, length){
    return (String(toPad).length < length)
        ? new Array(length - String(toPad).length + 1).join(padChar) + String(toPad)
        : toPad;
}

pad(5, 0, 6) = 000005

pad('10', 0, 2) = 10 // don't pad if not necessary

pad('S', 'O', 2) = SO

...etc.

Cheers

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Yet another version :

function zPad(s,n){
    return (new Array(n+1).join('0')+s).substr(-Math.max(n,s.toString().length));
}
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To pad at the end of the number, use num.toFixed

for example:

  document.getElementById('el').value = amt.toFixed(2);

It's the simplest solution i've found, and it works.

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just wanted to make the comment (but i don't have enough points) that the highest voted answer fails with negative numbers and decimals

function padNumber(n,pad) {
    p = Math.pow(10,pad);
    a = Math.abs(n);
    g = (n<0);
    return (a < p) ?  ((g ? '-' : '') + (p+a).toString().substring(1)) : n;
}

padNumber( -31.235, 5);

"-00031.235"
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Some monkeypatching also works

String.prototype.padLeft = function (n, c) {
  if (isNaN(n))
    return null;
  c = c || "0";
  return (new Array(n).join(c).substring(0, this.length-n)) + this; 
};
var paddedValue = "123".padLeft(6); // returns "000123"
var otherPadded = "TEXT".padLeft(8, " "); // returns "    TEXT"
share|improve this answer
1  
-1 monkeypatching the toplevel namespacing in javascript is bad practice. –  Jeremy Wall Sep 7 '09 at 0:37
2  
True for Object and Array objects, but String is not bad –  Rodrigo Sep 11 '09 at 16:56

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