284

I got this code to covert size in bytes via PHP.

Now I want to convert those sizes to human readable sizes using JavaScript. I tried to convert this code to JavaScript, which looks like this:

function formatSizeUnits(bytes){
  if      (bytes >= 1073741824) { bytes = (bytes / 1073741824).toFixed(2) + " GB"; }
  else if (bytes >= 1048576)    { bytes = (bytes / 1048576).toFixed(2) + " MB"; }
  else if (bytes >= 1024)       { bytes = (bytes / 1024).toFixed(2) + " KB"; }
  else if (bytes > 1)           { bytes = bytes + " bytes"; }
  else if (bytes == 1)          { bytes = bytes + " byte"; }
  else                          { bytes = "0 bytes"; }
  return bytes;
}

Is this the correct way of doing this? Is there an easier way?

  • 5
    This actually converts to GiB, MiB, and KiB. This is standard for file sizes, but not always for device sizes. – David Schwartz Apr 9 '13 at 11:40

17 Answers 17

821

From this: (source)

function bytesToSize(bytes) {
   var sizes = ['Bytes', 'KB', 'MB', 'GB', 'TB'];
   if (bytes == 0) return '0 Byte';
   var i = parseInt(Math.floor(Math.log(bytes) / Math.log(1024)));
   return Math.round(bytes / Math.pow(1024, i), 2) + ' ' + sizes[i];
}

Note : This is original code, Please use fixed version below. Aliceljm does not active her copied code anymore


Now, Fixed version unminified, and ES6'ed: (by community)

function formatBytes(bytes, decimals = 2) {
    if (bytes === 0) return '0 Bytes';

    const k = 1024;
    const dm = decimals < 0 ? 0 : decimals;
    const sizes = ['Bytes', 'KB', 'MB', 'GB', 'TB', 'PB', 'EB', 'ZB', 'YB'];

    const i = Math.floor(Math.log(bytes) / Math.log(k));

    return parseFloat((bytes / Math.pow(k, i)).toFixed(dm)) + ' ' + sizes[i];
}

Now, Fixed version : (by Stackoverflow's community, + Minified by JSCompress)

function formatBytes(a,b=2){if(0===a)return"0 Bytes";const c=0>b?0:b,d=Math.floor(Math.log(a)/Math.log(1024));return parseFloat((a/Math.pow(1024,d)).toFixed(c))+" "+["Bytes","KB","MB","GB","TB","PB","EB","ZB","YB"][d]}

Usage :

// formatBytes(bytes,decimals)

formatBytes(1024);       // 1 KB
formatBytes('1024');     // 1 KB
formatBytes(1234);       // 1.21 KB
formatBytes(1234, 3);    // 1.205 KB

Demo / source :

function formatBytes(bytes, decimals = 2) {
    if (bytes === 0) return '0 Bytes';

    const k = 1024;
    const dm = decimals < 0 ? 0 : decimals;
    const sizes = ['Bytes', 'KB', 'MB', 'GB', 'TB', 'PB', 'EB', 'ZB', 'YB'];

    const i = Math.floor(Math.log(bytes) / Math.log(k));

    return parseFloat((bytes / Math.pow(k, i)).toFixed(dm)) + ' ' + sizes[i];
}

// ** Demo code **
var p = document.querySelector('p'),
    input = document.querySelector('input');
    
function setText(v){
    p.innerHTML = formatBytes(v);
}
// bind 'input' event
input.addEventListener('input', function(){ 
    setText( this.value )
})
// set initial text
setText(input.value);
<input type="text" value="1000">
<p></p>

PS : Change k = 1000 or sizes = ["..."] as you want (bits or bytes)

| improve this answer | |
  • 8
    (1) why bytes = 0 is "n/a"? Isn't it just "0 B"? (2) Math.round doesn't have precision parameter. I'd better use (bytes / Math.pow(1024, i)).toPrecision(3) – disfated Sep 21 '13 at 15:50
  • 4
    toFixed(n) is probably more appropriate than toPrecision(n) to have a consistant precision for all the values. And to avoid trailing zeros (ex: bytesToSize(1000) // return "1.00 KB") we could use parseFloat(x). I suggest to replace the last line by: return parseFloat((bytes / Math.pow(k, i)).toFixed(2)) + ' ' + sizes[i];. With the previous change the results are: bytesToSize(1000) // return "1 KB" / bytesToSize(1100) // return "1.1 KB" / bytesToSize(1110) // return "1.11 KB / bytesToSize(1111) // also return "1.11 KB" – MathieuLescure Mar 25 '15 at 15:19
  • 3
    I believe plural form is used for 0: '0 Bytes' – nima May 5 '16 at 9:41
  • 15
    I'd say minify is nice, but in a stackexchange answer it is better to have the more verbose and readable code. – donquixote Jun 1 '17 at 17:12
  • 3
    KB = Kelvin bytes in SI units. which is nonsensical. It should be kB. – Brennan T Jul 10 '17 at 21:33
47
function formatBytes(bytes) {
    var marker = 1024; // Change to 1000 if required
    var decimal = 3; // Change as required
    var kiloBytes = marker; // One Kilobyte is 1024 bytes
    var megaBytes = marker * marker; // One MB is 1024 KB
    var gigaBytes = marker * marker * marker; // One GB is 1024 MB
    var teraBytes = marker * marker * marker * marker; // One TB is 1024 GB

    // return bytes if less than a KB
    if(bytes < kiloBytes) return bytes + " Bytes";
    // return KB if less than a MB
    else if(bytes < megaBytes) return(bytes / kiloBytes).toFixed(decimal) + " KB";
    // return MB if less than a GB
    else if(bytes < gigaBytes) return(bytes / megaBytes).toFixed(decimal) + " MB";
    // return GB if less than a TB
    else return(bytes / gigaBytes).toFixed(decimal) + " GB";
}
| improve this answer | |
36
const units = ['bytes', 'KB', 'MB', 'GB', 'TB', 'PB', 'EB', 'ZB', 'YB'];

function niceBytes(x){

  let l = 0, n = parseInt(x, 10) || 0;

  while(n >= 1024 && ++l){
      n = n/1024;
  }
  //include a decimal point and a tenths-place digit if presenting 
  //less than ten of KB or greater units
  return(n.toFixed(n < 10 && l > 0 ? 1 : 0) + ' ' + units[l]);
}

Results:

niceBytes(435)                 // 435 bytes
niceBytes(3398)                // 3.3 KB
niceBytes(490398)              // 479 KB
niceBytes(6544528)             // 6.2 MB
niceBytes(23483023)            // 22 MB
niceBytes(3984578493)          // 3.7 GB
niceBytes(30498505889)         // 28 GB
niceBytes(9485039485039445)    // 8.4 PB
| improve this answer | |
16

You can use the filesizejs library.

| improve this answer | |
  • I guess this library gives the accurate representation, since 1024 bytes is 1 KB, not 1000 bytes (as provided by some other solutions here). Thanks @maurocchi – W.M. Aug 12 '16 at 15:04
  • 3
    @W.M. that statement is not true. 1kB = 1000 bytes. There are 1024 bytes in a Kibibyte. There has been confusion in the past so these two terms precisely explain the difference in size. – Brennan T Jul 10 '17 at 21:22
  • 2
    @BrennanT It depends how old you are. 1KB used to be 1024 bytes and most people over a certain age still see it as such. – kojow7 Nov 19 '17 at 21:46
15

There are 2 real ways to represent sizes when related to bytes, they are SI units (10^3) or IEC units (2^10). There is also JEDEC but their method is ambiguous and confusing. I noticed the other examples have errors such as using KB instead of kB to represent a kilobyte so I decided to write a function that will solve each of these cases using the range of currently accepted units of measure.

There is a formatting bit at the end that will make the number look a bit better (at least to my eye) feel free to remove that formatting if it doesn't suit your purpose.

Enjoy.

// pBytes: the size in bytes to be converted.
// pUnits: 'si'|'iec' si units means the order of magnitude is 10^3, iec uses 2^10

function prettyNumber(pBytes, pUnits) {
    // Handle some special cases
    if(pBytes == 0) return '0 Bytes';
    if(pBytes == 1) return '1 Byte';
    if(pBytes == -1) return '-1 Byte';

    var bytes = Math.abs(pBytes)
    if(pUnits && pUnits.toLowerCase() && pUnits.toLowerCase() == 'si') {
        // SI units use the Metric representation based on 10^3 as a order of magnitude
        var orderOfMagnitude = Math.pow(10, 3);
        var abbreviations = ['Bytes', 'kB', 'MB', 'GB', 'TB', 'PB', 'EB', 'ZB', 'YB'];
    } else {
        // IEC units use 2^10 as an order of magnitude
        var orderOfMagnitude = Math.pow(2, 10);
        var abbreviations = ['Bytes', 'KiB', 'MiB', 'GiB', 'TiB', 'PiB', 'EiB', 'ZiB', 'YiB'];
    }
    var i = Math.floor(Math.log(bytes) / Math.log(orderOfMagnitude));
    var result = (bytes / Math.pow(orderOfMagnitude, i));

    // This will get the sign right
    if(pBytes < 0) {
        result *= -1;
    }

    // This bit here is purely for show. it drops the percision on numbers greater than 100 before the units.
    // it also always shows the full number of bytes if bytes is the unit.
    if(result >= 99.995 || i==0) {
        return result.toFixed(0) + ' ' + abbreviations[i];
    } else {
        return result.toFixed(2) + ' ' + abbreviations[i];
    }
}
| improve this answer | |
14

Here's a one liner:

val => ['Bytes','Kb','Mb','Gb','Tb'][Math.floor(Math.log2(val)/10)]

Or even:

val => 'BKMGT'[~~(Math.log2(val)/10)]

| improve this answer | |
  • Nice !, But if 1k is 1024 not 1000 ? – l2aelba Feb 23 '17 at 14:41
  • 2
    This calculation is treating 1k as 2^10, 1m as 2^20 and so on. if you want 1k to be 1000 you can change it a bit to use log10. – iDaN5x Feb 24 '17 at 20:24
  • 1
    Here's a version that treats 1K as 1000: val => 'BKMGT'[~~(Math.log10(val)/3)] – iDaN5x Feb 25 '17 at 12:08
  • 1
    This is nice! I expanded on this to return the full string I wanted from my function: i = ~~(Math.log2(b)/10); return (b/Math.pow(1024,i)).toFixed(2) + ("KMGTPEZY"[i-1]||"") + "B" – v0rtex Sep 6 '18 at 15:54
4

Using bitwise operation would be a better solution. Try this

function formatSizeUnits(bytes)
{
    if ( ( bytes >> 30 ) & 0x3FF )
        bytes = ( bytes >>> 30 ) + '.' + ( bytes & (3*0x3FF )) + 'GB' ;
    else if ( ( bytes >> 20 ) & 0x3FF )
        bytes = ( bytes >>> 20 ) + '.' + ( bytes & (2*0x3FF ) ) + 'MB' ;
    else if ( ( bytes >> 10 ) & 0x3FF )
        bytes = ( bytes >>> 10 ) + '.' + ( bytes & (0x3FF ) ) + 'KB' ;
    else if ( ( bytes >> 1 ) & 0x3FF )
        bytes = ( bytes >>> 1 ) + 'Bytes' ;
    else
        bytes = bytes + 'Byte' ;
    return bytes ;
}
| improve this answer | |
  • 1
    Obtain the remaining bytes. That will provide the decimal portion. – Buzz LIghtyear Apr 9 '13 at 12:30
  • 1
    Its 1024. If you require 100 shift the bits accordingly. – Buzz LIghtyear Apr 9 '13 at 12:36
  • 2
    link – Buzz LIghtyear Apr 9 '13 at 13:46
  • 3
    Please do not grab code from the internet without understanding it or at least testing it. This is a good example of code that is simply wrong. Try running it by passing it 3 (returns "1Bytes") or 400000. – Amir Haghighat Oct 30 '13 at 0:52
  • 11
    Dear Amir Haghighat, this is a basic code solely written by me. In javasript post 32 bits of integer value the code will not work since integer is only four bytes. These are basic programming infos that you should be knowing. Stackoverflow is meant only for guiding people and not spoon feeding. – Buzz LIghtyear Nov 6 '13 at 7:38
4

According to Aliceljm's answer, I removed 0 after decimal:

function formatBytes(bytes, decimals) {
    if(bytes== 0)
    {
        return "0 Byte";
    }
    var k = 1024; //Or 1 kilo = 1000
    var sizes = ["Bytes", "KB", "MB", "GB", "TB", "PB"];
    var i = Math.floor(Math.log(bytes) / Math.log(k));
    return parseFloat((bytes / Math.pow(k, i)).toFixed(decimals)) + " " + sizes[i];
}
| improve this answer | |
3

function bytesToSize(bytes) {
  var sizes = ['B', 'K', 'M', 'G', 'T', 'P'];
  for (var i = 0; i < sizes.length; i++) {
    if (bytes <= 1024) {
      return bytes + ' ' + sizes[i];
    } else {
      bytes = parseFloat(bytes / 1024).toFixed(2)
    }
  }
  return bytes + ' P';
}

console.log(bytesToSize(234));
console.log(bytesToSize(2043));
console.log(bytesToSize(20433242));
console.log(bytesToSize(2043324243));
console.log(bytesToSize(2043324268233));
console.log(bytesToSize(2043324268233343));

| improve this answer | |
2

I originally used @Aliceljm's answer for a file upload project I was working on, but recently ran into an issue where a file was 0.98kb but being read as 1.02mb. Here's the updated code I'm now using.

function formatBytes(bytes){
  var kb = 1024;
  var ndx = Math.floor( Math.log(bytes) / Math.log(kb) );
  var fileSizeTypes = ["bytes", "kb", "mb", "gb", "tb", "pb", "eb", "zb", "yb"];

  return {
    size: +(bytes / kb / kb).toFixed(2),
    type: fileSizeTypes[ndx]
  };
}

The above would then be called after a file was added like so

// In this case `file.size` equals `26060275` 
formatBytes(file.size);
// returns `{ size: 24.85, type: "mb" }`

Granted, Windows reads the file as being 24.8mb but I'm fine with the extra precision.

| improve this answer | |
2

This solution builds upon previous solutions, but takes into account both metric and binary units:

function formatBytes(bytes, decimals, binaryUnits) {
    if(bytes == 0) {
        return '0 Bytes';
    }
    var unitMultiple = (binaryUnits) ? 1024 : 1000; 
    var unitNames = (unitMultiple === 1024) ? // 1000 bytes in 1 Kilobyte (KB) or 1024 bytes for the binary version (KiB)
        ['Bytes', 'KiB', 'MiB', 'GiB', 'TiB', 'PiB', 'EiB', 'ZiB', 'YiB']: 
        ['Bytes', 'KB', 'MB', 'GB', 'TB', 'PB', 'EB', 'ZB', 'YB'];
    var unitChanges = Math.floor(Math.log(bytes) / Math.log(unitMultiple));
    return parseFloat((bytes / Math.pow(unitMultiple, unitChanges)).toFixed(decimals || 0)) + ' ' + unitNames[unitChanges];
}

Examples:

formatBytes(293489203947847, 1);    // 293.5 TB
formatBytes(1234, 0);   // 1 KB
formatBytes(4534634523453678343456, 2); // 4.53 ZB
formatBytes(4534634523453678343456, 2, true));  // 3.84 ZiB
formatBytes(4566744, 1);    // 4.6 MB
formatBytes(534, 0);    // 534 Bytes
formatBytes(273403407, 0);  // 273 MB
| improve this answer | |
2

var SIZES = ['Bytes', 'KB', 'MB', 'GB', 'TB', 'PB', 'EB', 'ZB', 'YB'];

function formatBytes(bytes, decimals) {
  for(var i = 0, r = bytes, b = 1024; r > b; i++) r /= b;
  return `${parseFloat(r.toFixed(decimals))} ${SIZES[i]}`;
}

| improve this answer | |
1

I am updating @Aliceljm answer here. Since the decimal place matters for 1,2 digit numbers, I am round off the first decimal place and keep the first decimal place. For 3 digit number, I am round off the units place and ignoring the all decimal places.

getMultiplers : function(bytes){
    var unit = 1000 ;
    if (bytes < unit) return bytes ;
    var exp = Math.floor(Math.log(bytes) / Math.log(unit));
    var pre = "kMGTPE".charAt(exp-1);
    var result = bytes / Math.pow(unit, exp);
    if(result/100 < 1)
        return (Math.round( result * 10 ) / 10) +pre;
    else
        return Math.round(result) + pre;
}
| improve this answer | |
0

This is how a byte should be shown to a human:

function bytesToHuman(bytes, decimals = 2) {
  // https://en.wikipedia.org/wiki/Orders_of_magnitude_(data)
  const units = ["bytes", "KiB", "MiB", "GiB", "TiB", "PiB", "EiB"]; // etc

  let i = 0;
  let h = 0;

  let c = 1 / 1023; // change it to 1024 and see the diff

  for (; h < c && i < units.length; i++) {
    if ((h = Math.pow(1024, i) / bytes) >= c) {
      break;
    }
  }

  // remove toFixed and let `locale` controls formatting
  return (1 / h).toFixed(decimals).toLocaleString() + " " + units[i];
}

// test
for (let i = 0; i < 9; i++) {
  let val = i * Math.pow(10, i);
  console.log(val.toLocaleString() + " bytes is the same as " + bytesToHuman(val));

}

// let's fool around
console.log(bytesToHuman(1023));
console.log(bytesToHuman(1024));
console.log(bytesToHuman(1025));
| improve this answer | |
0

I just wanted to share my input. I had this problem so my solution is this. This will convert lower units to higher units and vice versa just supply the argument toUnit and fromUnit

export function fileSizeConverter(size: number, fromUnit: string, toUnit: string ): number | string {
  const units: string[] = ['B', 'KB', 'MB', 'GB', 'TB'];
  const from = units.indexOf(fromUnit.toUpperCase());
  const to = units.indexOf(toUnit.toUpperCase());
  const BASE_SIZE = 1024;
  let result: number | string = 0;

  if (from < 0 || to < 0 ) { return result = 'Error: Incorrect units'; }

  result = from < to ? size / (BASE_SIZE ** to) : size * (BASE_SIZE ** from);

  return result.toFixed(2);
}

I got the idea from here

| improve this answer | |
0
function bytes2Size(byteVal){
    var units=["Bytes", "KB", "MB", "GB", "TB"];
    var kounter=0;
    var kb= 1024;
    var div=byteVal/1;
    while(div>=kb){
        kounter++;
        div= div/kb;
    }
    return div.toFixed(1) + " " + units[kounter];
}
| improve this answer | |
  • This function is easy-to-understand and follow - you can implement it in any language. It's a repeated division of the byte value until you attain the byte level (unit) that is greater than 1kb – Kjut Apr 11 at 3:27
  • Just a quick note, There are differences between binary prefixes. Some follow SI base 10 rule and some follow base 2. You can read more here. However, if you consider k to be 1024, instead of dividsion, you can simply use shift operator like byteVal >> 10 . Also you would better use Math.trunc() to cast real numbers to integers instead ofdivision by 1. – Cunning Apr 11 at 5:59
  • Please don't post only code as answer, but also provide an explanation what your code does and how it solves the problem of the question. Answers with an explanation are usually of higher quality, and are more likely to attract upvotes. – Mark Rotteveel Apr 11 at 7:09
-7

Try this simple workaround.

var files = $("#file").get(0).files;               
                var size = files[0].size;
                if (size >= 5000000) {
alert("File size is greater than or equal to 5 MB");
}
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.