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I want a 5 character string composed of characters picked randomly from the set [a-zA-Z0-9].

What's the best way to do this with JavaScript?

share|improve this question
Warning: None of the answers have a true-random result! They are only pseudo-random. When using random strings for protection or security, don't use any of them!!! Try one of these api's: –  Ron van der Heijden May 29 '13 at 11:33
Math.random().toString(36).replace(/[^a-z]+/g, '') –  Muaz Khan Sep 14 '13 at 14:47
Please put the solution in a solution. –  chryss Sep 24 '13 at 4:36
Math.random().toString(36).replace(/[^a-z]+/g, '').substr(0, 5); –  frieder Aug 15 '14 at 9:28
@MuazKhan @frieder the result range is [a-zA-Z0-9] so why the [^a-z]? Also, what about random uppercase letters? –  ring0 Feb 5 at 7:47

30 Answers 30

up vote 639 down vote accepted

I think this will work for you:

function makeid()
    var text = "";
    var possible = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789";

    for( var i=0; i < 5; i++ )
        text += possible.charAt(Math.floor(Math.random() * possible.length));

    return text;
share|improve this answer
This is fine for short strings, but beware, using += on strings like this causes it to have O(n^2) behavior. If you want to create longer strings, you should create an array of individual characters and join them together at the end. –  dan_waterworth May 10 '12 at 10:55
@dan_waterworth It probably doesn't matter in almost any case:… –  Alex Reece Jan 10 '13 at 20:55
@dan_waterworth, Actually, += is often faster for some reason, even used inside loops - –  xfix May 1 '13 at 12:29
@JonathanPaulson Show me the numbers. See the previous comment with a jsperf link or or etc. Also, this question involves only 5 concatenations. –  Alex Reece May 7 '13 at 22:34
I stand corrected –  Jonathan Paulson May 8 '13 at 0:14
share|improve this answer
Math.random().toString(36).substr(2, 5), because .substring(7) causes it to be longer than 5 characters. Full points, still! –  dragon May 7 '12 at 8:13
@Scoop The toString method of a number type in javascript takes an optional parameter to convert the number into a given base. If you pass two, for example, you'll see your number represented in binary. Similar to hex (base 16), base 36 uses letters to represent digits beyond 9. By converting a random number to base 36, you'll wind up with a bunch of seemingly random letters and numbers. –  Chris Baker Jan 3 '13 at 20:45
Looks beautiful but in few cases this generates empty string! If random returns 0, 0.5, 0.25, 0.125... will result in empty or short string. –  gertas Mar 15 '13 at 19:55
@gertas This can be avoided by (Math.random() + 1).toString(36).substring(7); –  George Reith Aug 11 '13 at 17:17
Guy, this is virtually useless. Run it just 1000000 times and you generally get around 110000 repeat occurrences: var values = {}, i = 0, duplicateCount = 0, val; while (i < 1000000) { val = Math.random().toString(36).substring(7); if (values[val]) { duplicateCount++; } values[val] = 1; i++; } console.log("TOTAL DUPLICATES", duplicateCount); –  hacklikecrack Dec 1 '13 at 15:04

Here's an improvement on doubletap's excellent answer. The original has two drawbacks which are addressed here:

First, as others have mentioned, it has a small probability of producing short strings or even an empty string (if the random number is 0), which may break your application. Here is a solution:

(Math.random().toString(36)+'00000000000000000').slice(2, N+2)

Second, both the original and the solution above limit the string size N to 16 characters. The following will return a string of size N for any N (but note that using N > 16 will not increase the randomness or decrease the probability of collisions):

Array(N+1).join((Math.random().toString(36)+'00000000000000000').slice(2, 18)).slice(0, N)


  1. Pick a random number in the range [0,1), i.e. between 0 (inclusive) and 1 (exclusive).
  2. Convert the number to a base-36 string, i.e. using characters 0-9 and a-z.
  3. Pad with zeros (solves the first issue).
  4. Slice off the leading '0.' prefix and extra padding zeros.
  5. Repeat the string enough times to have at least N characters in it (by Joining empty strings with the shorter random string used as the delimiter).
  6. Slice exactly N characters from the string.

Further thoughts:

  • This solution does not use uppercase letters, but in almost all cases (no pun intended) it does not matter.
  • All returned strings have an equal probability of being returned, at least as far as the results returned by Math.random() are evenly distributed (this is not cryptographic-strength randomness, in any case).
  • Not all possible strings of size N may be returned. In the second solution this is obvious (since the smaller string is simply being duplicated), but also in the original answer this is true since in the conversion to base-36 the last few bits may not be part of the original random bits. Specifically, if you look at the result of Math.random().toString(36), you'll notice the last character is not evenly distributed. Again, in almost all cases it does not matter, but we slice the final string from the beginning rather than the end of the random string so that short strings (e.g. N=1) aren't affected.


Here are a couple other functional-style one-liners I came up with. They differ from the solution above in that:

  • They use an explicit arbitrary alphabet (more generic, and suitable to the original question which asked for both uppercase and lowercase letters).
  • All strings of length N have an equal probability of being returned (i.e. strings contain no repetitions).
  • They are based on a map function, rather than the toString(36) trick, which makes them more straightforward and easy to understand.

So, say your alphabet of choice is

var s = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789";

Then these two are equivalent to each other, so you can pick whichever is more intuitive to you:

Array(N).join().split(',').map(function() { return s.charAt(Math.floor(Math.random() * s.length)); }).join('');


Array.apply(null, Array(N)).map(function() { return s.charAt(Math.floor(Math.random() * s.length)); }).join('');


I seems like qubyte and Martijn de Milliano came up with solutions similar to the latter (kudos!), which I somehow missed. Since they don't look as short at a glance, I'll leave it here anyway in case someone really wants a one-liner :-)

Also, replaced 'new Array' with 'Array' in all solutions to shave off a few more bytes.

share|improve this answer
Why not just add 1? (Math.random()+1).toString(36).substring(7); –  mike Jan 8 at 10:00
Because adding 1 doesn't solve either of the two issues discussed here. For example, (1).toString(36).substring(7) produces an empty string. –  amichair Jan 19 at 11:36

Something like this should work

function randomString(len, charSet) {
    charSet = charSet || 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789';
    var randomString = '';
    for (var i = 0; i < len; i++) {
    	var randomPoz = Math.floor(Math.random() * charSet.length);
    	randomString += charSet.substring(randomPoz,randomPoz+1);
    return randomString;

Call with default charset [a-zA-Z0-9] or send in your own:

var randomValue = randomString(5);

var randomValue = randomString(5, 'PICKCHARSFROMTHISSET');
share|improve this answer
A variant of example here can be found here: –  David Aug 31 '12 at 18:17
might as well just decrement len directly in a while loop –  drzaus Mar 6 '13 at 14:59
Thanks, I just posted below a coffeescript variation of this example: –  Dinis Cruz Oct 31 '14 at 20:20
function randomstring(L){
    var s= '';
    var randomchar=function(){
    	var n= Math.floor(Math.random()*62);
    	if(n<10) return n; //1-10
    	if(n<36) return String.fromCharCode(n+55); //A-Z
    	return String.fromCharCode(n+61); //a-z
    while(s.length< L) s+= randomchar();
    return s;


share|improve this answer
+1 for not including a character-list. :) –  TumbleCow Nov 13 '12 at 10:05
I like this the best. You could easily modify to accept extra parameters and return only nums, lowers, or caps. I don't think the ultra-compressed style is necessary while(s.length< L) s+= randomchar(); –  mastaBlasta Jan 17 '14 at 19:24
Also while(L--) will do it –  vsync Jun 17 '14 at 12:30

Math.random is bad for this kind of thing

Option 1

If you're able to do this server-side, just use the crypto module

var crypto = require("crypto");
var id = crypto.randomBytes(20).toString('hex');

// "bb5dc8842ca31d4603d6aa11448d1654"

The resulting string will be twice as long as the random bytes you generate; each byte encoded to hex is 2 characters. 20 bytes will be 40 characters of hex.

Option 2

If you have to do this client-side, perhaps try the uuid module

var uuid = require("uuid");
var id = uuid.v4();

// "110ec58a-a0f2-4ac4-8393-c866d813b8d1"

Option 3

If you have to do this client-side and you don't have to support old browsers, you can do it without dependencies

// str generateId(int len);
//   len - must be an even number (default: 40)
function generateId(len) {
  var arr = new Uint8Array((len || 40) / 2);
  return [], function(n) { return n.toString(16); }).join("");

Ok, let's check it out !

// "82defcf324571e70b0521d79cce2bf3fffccd69"

// "c1a050a4cd1556948d41"

Browser requirements

Browser    Minimum Version
Chrome     11.0
Firefox    21.0
IE         11.0
Opera      15.0
Safari     5.1
share|improve this answer
Note that for version 4 UUIDs, not all the characters are random. From Wikipedia: "Version 4 UUIDs have the form xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx where x is any hexadecimal digit and y is one of 8, 9, A, or B". (…) –  wmassingham Aug 2 at 23:56
@wmassingham, I'm not sure I understand the purpose of your comment. Do you mean to imply something the concern of uniqueness due to some fixed characters in a v4 uuid ? –  naomik Aug 3 at 22:18
Exactly. While a UUID is fine for assigning an ID to a thing, using it as a string of random characters isn't a great idea for this (and probably other) reasons. –  wmassingham Aug 4 at 17:42
where is the part where you answer the question (5 char random string) ? besides no one said it had to be a secure random. –  WKx Sep 3 at 1:20

The simplest way is:

(new Date%9e6).toString(36)

This generate random strings of 5 characters based on the current time. Example output is 4mtxj or 4mv90 or 4mwp1

The problem with this is that if you call it two times on the same second, it will generate the same string.

The safer way is:


This will generate a random string of 4 or 5 characters, always diferent. Example output is like 30jzm or 1r591 or 4su1a

In both ways the first part generate a random number. The .toString(36) part cast the number to a base36 (alphadecimal) representation of it.

share|improve this answer
I'm not quite sure how this answers the question; This is a 7 year old question with many valid answers already. If you choose to provide a new answer, you should really take extra care to make sure that your answer is well explained and documented. –  Claies Mar 11 at 22:01
If you use Date, why don't you just use it like: (+new Date).toString(36) –  Edifice Jul 15 at 13:47

I know everyone has got it right already, but i felt like having a go at this one in the most lightweight way possible(light on code, not CPU):

function rand(length,current){
 current = current ? current : '';
 return length ? rand( --length , "0123456789ABCDEFGHIJKLMNOPQRSTUVWXTZabcdefghiklmnopqrstuvwxyz".charAt( Math.floor( Math.random() * 60 ) ) + current ) : current;


It takes a bit of time to wrap your head around, but I think it really shows how awesome javascript's syntax is.

share|improve this answer
If you're trying to keep the code short, why write current = current ? current : ''; when you can write current = current || ''; –  CaffGeek Aug 8 '11 at 13:45
since we're talking micro optimization here i would actually suggest to skip the variable assignment entirely if not necessary: current || (current = ''); –  Thomas Heymann Dec 13 '13 at 10:36

Here are some one liners for making random strings of any length. The length is determined by new Array(5) can be changed to any number.

Including 0-9a-z

var str = new Array(5).join().replace(/(.|$)/g, function(){return ((Math.random()*36)|0).toString(36);})

Including 0-9a-zA-Z

var str = new Array(5).join().replace(/(.|$)/g, function(){return ((Math.random()*36)|0).toString(36)[Math.random()<.5?"toString":"toUpperCase"]();});
share|improve this answer

Random String Generator (Alpha-Numeric | Alpha | Numeric)

 * Info:
 * Use:       randomString(length [,"A"] [,"N"] );
 * Default:   return a random alpha-numeric string
 * Arguments: If you use the optional "A", "N" flags:
 *            "A" (Alpha flag)   return random a-Z string
 *            "N" (Numeric flag) return random 0-9 string
function randomString(len, an){
    an = an&&an.toLowerCase();
    var str="", i=0, min=an=="a"?10:0, max=an=="n"?10:62;
      var r = Math.random()*(max-min)+min <<0;
      str += String.fromCharCode(r+=r>9?r<36?55:61:48);
    return str;
randomString(10);        // "4Z8iNQag9v"
randomString(10, "A");   // "aUkZuHNcWw"
randomString(10, "N");   // "9055739230"

Have fun. jsBin demo

While the above code uses additional checks for the desired output (A/N, A, N). let's break it down the to the essentials (Alpha-Numeric only) for a better understanding:

  • Create a function that accepts an argument (desired length of the random String result)
  • Create an empty string like var str = ""; to concatenate random characters
  • Inside a loop create a rand index number from 0 to 61 (0..9+A..Z+a..z = 62)
  • Create a conditional logic to Adjust/fix rand (since it's 0..61) incrementing it by some number (see examples below) to get back the right CharCode number and the related Character.
  • Inside the loop concatenate to str a String.fromCharCode( incremented rand )

Let's picture the Character table and their codes range:

_____0....9______A..........Z______a..........z___________  Character
     | 10 |      |    26    |      |    26    |             Tot = 62 characters
    48....57    65..........90    97..........122           CharCode ranges

Math.floor( Math.random * 62 ) gives a range from 0..61 (what we need). How to fix (increment) the random to get the correct charCode ranges?

      |   rand   | charCode |  (0..61)rand += fix            = charCode ranges |
0..9  |   0..9   |  48..57  |  rand += 48                    =     48..57      |
A..Z  |  10..35  |  65..90  |  rand += 55 /*  90-35 = 55 */  =     65..90      |
a..z  |  36..61  |  97..122 |  rand += 61 /* 122-61 = 61 */  =     97..122     |

The conditional operation logic from the table above:

   rand += rand>9 ? ( rand<36 ? 55 : 61 ) : 48 ;
// rand +=  true  ? (  true   ? 55 else 61 ) else 48 ;

If you followed the above explanation you should be able to create this alpha-numeric snippet:

jsBin demo

function randomString( len ) {
  var str = "";                                         // String result
  for(var i=0; i<len; i++){                             // Loop `len` times
    var rand = Math.floor( Math.random() * 62 );        // random: 0..61
    var charCode = rand+= rand>9? (rand<36?55:61) : 48; // Get correct charCode
    str += String.fromCharCode( charCode );             // add Character to str
  return str;       // After all loops are done, return the concatenated string

console.log( randomString(10) ); // "7GL9F0ne6t"

Or if you will:

function randomString( n ) {
  var r="";
  return r;
share|improve this answer

Here's the method I created.
It will create a string containing both uppercase and lowercase characters.
In addition I've included the function that will created an alphanumeric string too.

Working examples: (alpha only) (alphanumeric)

function randString(x){
    var s = "";
        var r = Math.random();
        s+= String.fromCharCode(Math.floor(r*26) + (r>0.5?97:65));
    return s;

Upgrade July 2015
This does the same thing but makes more sense and includes all letters.

var s = "";
    v = Math.random()<0.5?32:0;
    s += String.fromCharCode(Math.round(Math.random()*((122-v)-(97-v))+(97-v)));
share|improve this answer
With this function, you can never get an uppercase letter greater than 'M' or a lowercase letter lesser than 'n'. –  erkanyildiz Jan 21 at 14:21
Really? ooh! will probably test it more then. Hmm, however, given it's a random string and we don't really care what letters are in it (as long as they are random) then it still does what we want it to do which is all that matters but yes, will provide an upgrade, thanks. –  Adam Jul 27 at 11:50

In case anyone is interested in a one-liner (although not formatted as such for your convenience) that allocates the memory at once (but note that for small strings it really does not matter) here is how to do it:

Array.apply(0, Array(5)).map(function() {
    return (function(charset){
        return charset.charAt(Math.floor(Math.random() * charset.length))

You can replace 5 by the length of the string you want. Thanks to @AriyaHidayat in this post for the solution to the map function not working on the sparse array created by Array(5).

share|improve this answer
Every javascript program is a 'one-liner' if you format it as such –  hacklikecrack Dec 1 '13 at 14:56
Even jQuery can be in one line... –  JCCM Sep 4 at 13:41

You can loop through an array of items and recursively add them to a string variable, for instance if you wanted a random DNA sequence:

function randomDNA(len) {
  len = len || 100
  var nuc = new Array("A", "T", "C", "G")
  var i = 0
  var n = 0
  s = ''
  while (i<=len-1)
      n = Math.floor(Math.random()*4)
      s+= nuc[n]
return s
share|improve this answer
function randomString (strLength, charSet) {
    var result = [];

    strLength = strLength || 5;
    charSet = charSet || 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789';

    while (--strLength) {
        result.push(charSet.charAt(Math.floor(Math.random() * charSet.length)));

    return result.join('');

This is as clean as it will get. It is fast too,

share|improve this answer
For me this always generates random strings with strLength - 1 :-/ –  xanderiel Nov 22 '13 at 11:43
Switching from --strLength to strLength--fixes it for me. –  xanderiel Nov 22 '13 at 11:43

I loved the brievety of doubletap's Math.random().toString(36).substring(7) answer, but not that it had so many collisions as hacklikecrack correctly pointed out. It generated 11-chacter strings but has a duplicate rate of 11% in a sample size of 1 million.

Here's a longer (but still short) and slower alternative that had only 133 duplicates in a sample space of 1 million. In rare cases the string will still be shorter than 11 chars:

    .reduce(function(p,c){return (p<<5)-p+c})).toString(36).substr(0,11);
share|improve this answer

Assuming you use underscorejs it's possible to elegantly generate random string in just two lines:

var possible = 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789';
var random = _.sample(possible, 5).join('');
share|improve this answer

This works for sure

<script language="javascript" type="text/javascript">
function randomString() {
 var chars = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXTZabcdefghiklmnopqrstuvwxyz";
 var string_length = 8;
 var randomstring = '';
 for (var i=0; i<string_length; i++) {
  var rnum = Math.floor(Math.random() * chars.length);
  randomstring += chars.substring(rnum,rnum+1);
 document.randform.randomfield.value = randomstring;
share|improve this answer

Generate 10 characters long string. Length is set by parameter (default 10).

function random_string_generator(len) {
var len = len || 10;
var str = '';
var i = 0;

for(i=0; i<len; i++) {
    switch(Math.floor(Math.random()*3+1)) {
        case 1: // digit
            str += (Math.floor(Math.random()*9)).toString();

        case 2: // small letter
            str += String.fromCharCode(Math.floor(Math.random()*26) + 97); //'a'.charCodeAt(0));

        case 3: // big letter
            str += String.fromCharCode(Math.floor(Math.random()*26) + 65); //'A'.charCodeAt(0));

return str;
share|improve this answer

Here is a test script for the #1 answer (thank you

the script runs makeid() 1 million times and as you can see 5 isnt a very unique. running it with a char length of 10 is quite reliable. I've ran it about 50 times and haven't seen a duplicate yet :-)

note: node stack size limit exceeds around 4 million so you cant run this 5 million times it wont ever finish.

function makeid()
    var text = "";
    var possible = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789";

    for( var i=0; i < 5; i++ )
        text += possible.charAt(Math.floor(Math.random() * possible.length));

    return text;

ids ={}
count = 0
for (var i = 0; i < 1000000; i++) {
    tempId = makeid();
    if (typeof ids[tempId] !== 'undefined') {
        if (ids[tempId] === 2) {
            count ++;
        ids[tempId] = 1;
console.log("there are "+count+ ' duplicate ids');
share|improve this answer

Expanding on Doubletap's elegant example by answering the issues Gertas and Dragon brought up. Simply add in a while loop to test for those rare null circumstances, and limit the characters to five.

function rndStr() {
    while (x.length!=5){
    return x;

Here's a jsfiddle alerting you with a result:

share|improve this answer

How about this compact little trick?

var possible = 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789';
var stringLength = 5;

var randomString = Array.apply(null, new Array(stringLength)).map(function () {
    return possible[Math.floor(Math.random() * possible.length)];

You need the Array.apply there to trick the empty array into being an array of undefineds.

share|improve this answer

If a library is a possibility, Chance.js might be of help:

share|improve this answer
",,,,,".replace(/,/g,function (){return "AzByC0xDwEv9FuGt8HsIrJ7qKpLo6MnNmO5lPkQj4RiShT3gUfVe2WdXcY1bZa".charAt(Math.floor(Math.random()*62))});
share|improve this answer
too much regex. Too slow. –  brunoais Sep 3 '14 at 8:48
"12345".split('').map(function(){return 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789'.charAt(Math.floor(62*Math.random()));}).join('');


String.prototype.rand = function() {return this.split('').map(function(){return 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789'.charAt(Math.floor(62*Math.random()));}).join('');};

will generate a random alpha-numeric string with the length of the first/calling string

share|improve this answer
-1; Do not change objects you don't own. –  brunoais Sep 3 '14 at 8:51

Also based upon doubletap's answer, this one handles any length of random required characters (lower only), and keeps generating random numbers until enough characters have been collected.

function randomChars(len) {
    var chars = '';

    while (chars.length < len) {
        chars += Math.random().toString(36).substring(2);

    // Remove unnecessary additional characters.
    return chars.substring(0, len);
share|improve this answer

Another nice way to randomize a string from the characters A-Za-z0-9:

function randomString(length) {
    if ( length <= 0 ) return "";
    var getChunk = function(){
        var i, //index iterator
            rand = Math.random()*10e16, //execute random once
            bin = rand.toString(2).substr(2,10), //random binary sequence
            lcase = (rand.toString(36)+"0000000000").substr(0,10), //lower case random string
            ucase = lcase.toUpperCase(), //upper case random string
            a = [lcase,ucase], //position them in an array in index 0 and 1
            str = ""; //the chunk string
        b = rand.toString(2).substr(2,10);
        for ( i=0; i<10; i++ )
            str += a[bin[i]][i]; //gets the next character, depends on the bit in the same position as the character - that way it will decide what case to put next
        return str;
    str = ""; //the result string
    while ( str.length < length  )
        str += getChunk();
    str = str.substr(0,length);
    return str;
share|improve this answer

This is what I used. A combination of a couple here. I use it in a loop, and each ID it produces is unique. It might not be 5 characters, but it's guaranteed unique.

var newId =
    "randomid_" +
    (Math.random() / +new Date()).toString(36).replace(/[^a-z]+/g, '');
share|improve this answer
For what it's worth, this is not guaranteed unique, it is just very likely to be unique. Consider that Math.random() might return zero twice. Moreover, if two different base-36 numbers being fed into .replace(/[^a-z]+/g, ''); have the same sequence of non-numeric characters (e.g. abc1 and abc2), they will return the same ID. –  Milosz Dec 11 '13 at 23:47

This stores 5 alphanumeric characters in variable c.

for(var c = ''; c.length < 5;) c += Math.random().toString(36).substr(2, 1)
share|improve this answer
This answer was automatically flagged as Low Quality because it is 100% code. Could you please add an explanation as to why the code works or how it solves the question? –  Mr. Llama Jun 30 '14 at 19:13
fixed. thank you –  Collin Anderson Jun 30 '14 at 19:35

Here is an example in CoffeeScript:

String::add_Random_Letters   = (size )->
                                         charSet = 'abcdefghijklmnopqrstuvwxyz'
                                         @ + (charSet[Math.floor(Math.random() * charSet.length)]  for i in [1..size]).join('')

which can be used

value = "abc_"
value_with_exta_5_random_letters = value.add_Random_Letters(5)
share|improve this answer

This is for firefox chrome code (addons and the like)

It can save you a few hours of research.

function randomBytes( amount )
    let bytes = Cc[ ';1' ]

        .getService         ( Ci.nsIRandomGenerator )
        .generateRandomBytes( amount, ''            )

    return bytes.reduce( bytes2Number )

    function bytes2Number( previousValue, currentValue, index, array )
      return Math.pow( 256, index ) * currentValue + previousValue

Use it as:

let   strlen   = 5
    , radix    = 36
    , filename = randomBytes( strlen ).toString( radix ).splice( - strlen )
share|improve this answer

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