281

What's the shortest way (within reason) to generate a random alpha-numeric (uppercase, lowercase, and numbers) string in JavaScript to use as a probably-unique identifier?

6
  • 27
    Shortest way? Is this a code golf question? May 23, 2012 at 19:55
  • 5
    Haha, no! This isn't a contest for who can pack their code the tightest. I've seen some solutions that list the entire character set in a string, which seemed wasteful. Just looking for something not much longer than it needs to be.
    – Pavel
    May 23, 2012 at 20:02
  • 5
    @Pavel that's what code golf is....
    – Naftali
    May 23, 2012 at 20:04
  • 2
    @Pavel stackoverflow.com/questions/1349404/… Jul 24, 2014 at 5:42
  • 11
    @neal removing redundancy is good engineering practice, code golf is writing the smallest amount of code (often involving single character variables, side effects, and other poor practices). They're similar but very distinct. Jan 9, 2016 at 16:53

22 Answers 22

431

I just came across this as a really nice and elegant solution:

Math.random().toString(36).slice(2)

Notes on this implementation:

  • This will produce a string anywhere between zero and 12 characters long, usually 11 characters, due to the fact that floating point stringification removes trailing zeros.
  • It won't generate capital letters, only lower-case and numbers.
  • Because the randomness comes from Math.random(), the output may be predictable and therefore not necessarily unique.
  • Even assuming an ideal implementation, the output has at most 52 bits of entropy, which means you can expect a duplicate after around 70M strings generated.
15
  • 4
    Use slice(2) instead of substr(2,16): jacklmoore.com/notes/substring-substr-slice-javascript May 19, 2013 at 2:57
  • 1
    @kimos Good catch. One way to solve that is to just try again. For example: function rStr() { var s=Math.random().toString(36).slice(2); return s.length===16 ? s : rStr(); } Feb 21, 2014 at 14:23
  • 9
    Do you have a busy site? Then sometimes it will generate a random number less than 0.000001. The toString() for a lower number is something like 3.4854687E-7 and your random alphanumeric string will be 4854687E-7 which is no longer alphanumeric. That no longer meets OP's requirements May 13, 2014 at 23:08
  • 1
    Can you explain how this works? Why are you passing 36 to toString?
    – user3871
    Feb 26, 2015 at 2:46
  • 2
    toString takeas a radix param, the "base" in which the integer is translated to string. The easiest to grasp this, I think is var a = 5;a.toString(2) ; will return the number 5 in binary format, so 101. full docs at: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… Feb 26, 2015 at 9:31
355

If you only want to allow specific characters, you could also do it like this:

function randomString(length, chars) {
    var result = '';
    for (var i = length; i > 0; --i) result += chars[Math.floor(Math.random() * chars.length)];
    return result;
}
var rString = randomString(32, '0123456789abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ');

Here's a jsfiddle to demonstrate: http://jsfiddle.net/wSQBx/

Another way to do it could be to use a special string that tells the function what types of characters to use. You could do that like this:

function randomString(length, chars) {
    var mask = '';
    if (chars.indexOf('a') > -1) mask += 'abcdefghijklmnopqrstuvwxyz';
    if (chars.indexOf('A') > -1) mask += 'ABCDEFGHIJKLMNOPQRSTUVWXYZ';
    if (chars.indexOf('#') > -1) mask += '0123456789';
    if (chars.indexOf('!') > -1) mask += '~`!@#$%^&*()_+-={}[]:";\'<>?,./|\\';
    var result = '';
    for (var i = length; i > 0; --i) result += mask[Math.floor(Math.random() * mask.length)];
    return result;
}

console.log(randomString(16, 'aA'));
console.log(randomString(32, '#aA'));
console.log(randomString(64, '#A!'));

Fiddle: http://jsfiddle.net/wSQBx/2/

Alternatively, to use the base36 method as described below you could do something like this:

function randomString(length) {
    return Math.round((Math.pow(36, length + 1) - Math.random() * Math.pow(36, length))).toString(36).slice(1);
}
15
  • I really like the second approach. I tried using it, and it seems to have some problems. As you can see from THIS screenshot, it sometimes generates strings that aren't the specified length. I put your randomString(..) function in a for(var i=0;i<50;i++){} loop that generated 50 random strings, and the last one is three characters long. I also told it to write to the document 50 times like so: document.write(randomString(8, '#aA!') + "</br>");
    – Matthew
    Jul 15, 2014 at 3:24
  • 1
    @Matthew That might be your browser picking up an unintentional false tag in the output string. Check the output source and see if there are a few wayward <'s and >'s in there causing trouble.
    – Nimphious
    Jul 24, 2014 at 13:49
  • 3
    Well, there is a statistical bug here. Math.round(Math.random() * (chars.length - 1)) will give half probability for [0] and for [chars.length-1] than for the rest of characters, as to round to them are needed respectively a number in intervals [0, 0.5) and [chars.length-2+0.5, chars.length-1) of size 0.5, while the rest of characters need [index-0.5, index+0.5) of size 1. The correct indexing function should be: parseInt(Math.random() * chars.length) as the upper bound for random() is excluded and chars.length will be no reached: w3schools.com/jsref/jsref_random.asp
    – axelbrz
    Apr 6, 2015 at 10:33
  • 5
    @Nimphious Please give me your references. Math.random() will never return 1. It's returning value is in [0, 1) that means 0 is included and 1 is excluded. Here are four different and important independent sources: Mozilla: goo.gl/BQGZiG ; Microsoft MSDN (IE): goo.gl/MPuCJM ; w3schools: goo.gl/qXrK7P ; Stackoverflow: goo.gl/CUoyIT (num being 1) and goo.gl/D9az3C and goo.gl/0mERDq . What are you sources to assume 1 is a possible value for Math.random() ? Because it's not.
    – axelbrz
    Apr 14, 2015 at 3:22
  • 5
    I took the liberty to fix the statistical bug in the code. Because this is the top result on google for 'random javascript string' its a shame to have a buggy answer.
    – Iftah
    Dec 1, 2015 at 10:21
46

UPDATED: One-liner solution, for random 20 characters (alphanumeric lowercase):

Array.from(Array(20), () => Math.floor(Math.random() * 36).toString(36)).join('');

Or shorter with lodash:

_.times(20, () => _.random(35).toString(36)).join('');
0
39

Another variation of answer suggested by JAR.JAR.beans

(Math.random()*1e32).toString(36)

By changing multiplicator 1e32 you can change length of random string.

4
  • 2
    Nice answer, that helped me. with 1e32 ive got 19 chars long string and with 1e64 ive got 40. Thanks a lot!
    – Bogdan Le
    Jul 13, 2015 at 18:55
  • 3
    @BogdanLewis Note that string length it is not guaranteed. Meaning 1e64 not always produce 40 characters length string, however it will be close to 40.
    – he-yaeh
    Jul 13, 2015 at 19:21
  • i got it! i was looking for simple solution that generates long random strings (close to 40 chars)
    – Bogdan Le
    Jul 13, 2015 at 19:43
  • good answer . however, it does not generate CAPITAL (uppercase) letters Nov 20, 2016 at 19:25
24

Or to build upon what Jar Jar suggested, this is what I used on a recent project (to overcome length restrictions):

var randomString = function (len, bits)
{
    bits = bits || 36;
    var outStr = "", newStr;
    while (outStr.length < len)
    {
        newStr = Math.random().toString(bits).slice(2);
        outStr += newStr.slice(0, Math.min(newStr.length, (len - outStr.length)));
    }
    return outStr.toUpperCase();
};

Use:

randomString(12, 16); // 12 hexadecimal characters
randomString(200); // 200 alphanumeric characters
23

This is cleaner

Math.random().toString(36).substr(2, length)

Example

Math.random().toString(36).substr(2, 5)
2
  • 5
    This doesn't seem to work for length > 16
    – thailey01
    Nov 20, 2016 at 21:04
  • 1
    but you can do your logic something like this... console.log(Math.random().toString(36).substring(2, 15) + Math.random().toString(36).substring(2, 15)) + Math.random().toString(36).substring(2, 15)); :-) Apr 22, 2019 at 11:29
21

I think the following is the simplest solution which allows for a given length:

Array(myLength).fill(0).map(x => Math.random().toString(36).charAt(2)).join('')

It depends on the arrow function syntax.

0
20
function randomString(len) {
    var p = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789";
    return [...Array(len)].reduce(a=>a+p[~~(Math.random()*p.length)],'');
}

Summary:

  1. Create an array of the size we want (because there's no range(len) equivalent in javascript.
  2. For each element in the array: pick a random character from p and add it to a string
  3. Return the generated string.

Some explanation:

[...Array(len)]

Array(len) or new Array(len) creates an array with undefined pointer(s). One-liners are going to be harder to pull off. The Spread syntax conveniently defines the pointers (now they point to undefined objects!).

.reduce(

Reduce the array to, in this case, a single string. The reduce functionality is common in most languages and worth learning.

a=>a+...

We're using an arrow function.

a is the accumulator. In this case it's the end-result string we're going to return when we're done (you know it's a string because the second argument to the reduce function, the initialValue is an empty string: ''). So basically: convert each element in the array with p[~~(Math.random()*p.length)], append the result to the a string and give me a when you're done.

p[...]

p is the string of characters we're selecting from. You can access chars in a string like an index (E.g., "abcdefg"[3] gives us "d")

~~(Math.random()*p.length)

Math.random() returns a floating point between [0, 1) Math.floor(Math.random()*max) is the de facto standard for getting a random integer in javascript. ~ is the bitwise NOT operator in javascript. ~~ is a shorter, arguably sometimes faster, and definitely funner way to say Math.floor( Here's some info

1
  • 1
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value. Jun 21, 2017 at 20:09
9

for 32 characters:

for(var c = ''; c.length < 32;) c += Math.random().toString(36).substr(2, 1)
6

Random character:

String.fromCharCode(i); //where is an int

Random int:

Math.floor(Math.random()*100);

Put it all together:

function randomNum(hi){
    return Math.floor(Math.random()*hi);
} 
function randomChar(){
    return String.fromCharCode(randomNum(100));
}
function randomString(length){
   var str = "";
   for(var i = 0; i < length; ++i){
        str += randomChar();
   }
   return str;
}
var RandomString = randomString(32); //32 length string

Fiddle: http://jsfiddle.net/maniator/QZ9J2/

3
  • This includes a whole bunch of non-alphanumeric characters. An example (what I got on the first try): M&I56aP=H K?<T*, ;0'9_c5Tb Dec 8, 2014 at 14:42
  • i got ] 4INBKJ\`_5.(/"__X,,K"\)] many chars are not usable and were stripped by SO
    – RozzA
    Jan 18, 2017 at 21:27
  • Null bytes (String.fromCharCode(0)) cause all sorts of problems in many languages/databases/environments. Codes 33-126 produce the visible ASCII characters.
    – JasonWoof
    Apr 3, 2018 at 2:12
6

Using lodash:

function createRandomString(length) {
        var chars = "abcdefghijklmnopqrstufwxyzABCDEFGHIJKLMNOPQRSTUFWXYZ1234567890"
        var pwd = _.sampleSize(chars, length || 12)  // lodash v4: use _.sampleSize
        return pwd.join("")
    }
document.write(createRandomString(8))
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.11/lodash.min.js"></script>

5
  • 2
    _.sample() returns only one char. I think you mean _.sampleSize()
    – karliwson
    Apr 20, 2017 at 18:19
  • 2
    Using lodash to generate a random CSS hex color: _.sampleSize("abcdef0123456789", 6).join("") Oct 5, 2017 at 4:29
  • _.sample signature changed in lodash v4.
    – alexloehr
    Oct 5, 2017 at 10:03
  • It's not a good idea to use _.sampleSize to generate random strings. It will only generate unique elements (it will never repeat a character). This reduces the entropy.
    – matangover
    Dec 13, 2021 at 11:04
  • Also, in the above example if length > 62 the returned string will always be 62 characters long, due to the size of chars.
    – matangover
    Dec 13, 2021 at 11:10
4

Random Key Generator

keyLength argument is the character length you want for the key

function keyGen(keyLength) {
    var i, key = "", characters = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789";

    var charactersLength = characters.length;

    for (i = 0; i < keyLength; i++) {
        key += characters.substr(Math.floor((Math.random() * charactersLength) + 1), 1);
    }

    return key;
}


keyGen(12)
"QEt9mYBiTpYD"
3
var randomString = function(length) {
  var str = '';
  var chars ='0123456789ABCDEFGHIJKLMNOPQRSTUVWXTZabcdefghiklmnopqrstuvwxyz'.split(
      '');
  var charsLen = chars.length;
  if (!length) {
    length = ~~(Math.random() * charsLen);
  }
  for (var i = 0; i < length; i++) {
    str += chars[~~(Math.random() * charsLen)];
  }
  return str;
};
2

When I saw this question I thought of when I had to generate UUIDs. I can't take credit for the code, as I am sure I found it here on stackoverflow. If you dont want the dashes in your string then take out the dashes. Here is the function:

function generateUUID() {
    var d = new Date().getTime();
    var uuid = 'xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx'.replace(/[xy]/g,function(c) {
        var r = (d + Math.random()*16)%16 | 0;
        d = Math.floor(d/16);
        return (c=='x' ? r : (r&0x7|0x8)).toString(16);
    });
    return uuid.toUpperCase();
}

Fiddle: http://jsfiddle.net/nlviands/fNPvf/11227/

2
  • You of course can shorten or lengthen the string to have as many or as few characters as you want.
    – nlv
    Jan 19, 2015 at 18:36
  • 1
    Here is where I most likely found the code: stackoverflow.com/a/8809472/988540
    – nlv
    Jan 19, 2015 at 18:45
2

This function should give a random string in any length.

function randString(length) {
    var l = length > 25 ? 25 : length;
    var str = Math.random().toString(36).substr(2, l);
    if(str.length >= length){
        return str;
    }
    return str.concat(this.randString(length - str.length));
}

I've tested it with the following test that succeeded.

function test(){
    for(var x = 0; x < 300000; x++){
        if(randString(x).length != x){
            throw new Error('invalid result for len ' + x);
        }
    }
}

The reason i have chosen 25 is since that in practice the length of the string returned from Math.random().toString(36).substr(2, 25) has length 25. This number can be changed as you wish.

This function is recursive and hence calling the function with very large values can result with Maximum call stack size exceeded. From my testing i was able to get string in the length of 300,000 characters.

This function can be converted to a tail recursion by sending the string to the function as a second parameter. I'm not sure if JS uses Tail call optimization

2

A simple function that takes the length

getRandomToken(len: number): string {
  return Math.random().toString(36).substr(2, len);
}

Ff you pass 6 it will generate 6 digit alphanumeric number

1

Nice and simple, and not limited to a certain number of characters:

let len = 20, str = "";
while(str.length < len) str += Math.random().toString(36).substr(2);
str = str.substr(0, len);
1

One could just use lodash uniqueId:

    _.uniqueId([prefix=''])

Generates a unique ID. If prefix is given, the ID is appended to it.

0

Here's a simple code to generate random string alphabet. Have a look how this code works.

go(lenthOfStringToPrint); - Use this function to generate the final string.

var letters = {
  1: ["q","w","e","r","t","y","u","i","o","p","a","s","d","f","g","h","j","k","l","z","x","c","v","b","n","m"],
  2: ["Q","W","E","R","T","Y","U","I","O","P","A","S","D","F","G","H","J","K","L","Z","X","C","V","B","N","M"]
},i,letter,final="";
random = (max,min) => {
  return Math.floor(Math.random()*(max-min+1)+min);
}
function go(length) {
  final="",letter="";
  for (i=1; i<=length; i++){
    letter = letters[random(0,3)][random(0,25)];
    final+=letter;
  }
  return final;
}
0

I used @Nimphious excellent second approach and found that occasionally the string returned was numeric - not alphanumeric. The solution I used was to test using !isNaN and use recursion to call the function again. Why bother? I was using this function to create object keys, if all the keys are alphanumeric everything sorts properly but if you use numbers as keys mixed with alphanumeric (strings) looping through the object will produce a different order to original order.

function newRandomString(length, chars) {
  var mask = '';
  if (chars.indexOf('a') > -1) mask += 'abcdefghijklmnopqrstuvwxyz';
  if (chars.indexOf('A') > -1) mask += 'ABCDEFGHIJKLMNOPQRSTUVWXYZ';
  if (chars.indexOf('#') > -1) mask += '0123456789';
  if (chars.indexOf('$') > -1) mask += '0123456789';

  var result = '';
  for (var i = length; i > 0; --i) result += mask[Math.floor(Math.random() * 
  mask.length)];
  /*    
        we need a string not a number !isNaN(result)) will return true if '1234' or '3E77'
        because if we're looping through object keys (created by newRandomString()) and 
        a number is used and all the other keys are strings then the number will 
        be first even if it was the 2nd or third key in object
  */
  //use recursion to try again
  if(!isNaN(result)){
    console.log('found a number....:'+result);
    return newRandomString(length, chars)
  }else{
    return result;
  }
};

var i=0;
while (i < 1000) {
  var a = newRandomString(4, '#$aA');
  console.log(i+' - '+a);
  //now we're using recursion this won't occur
  if(!isNaN(a)){
    console.log('=============='+i+' - '+a);
  }
  i++;
}

console.log('3E77:'+!isNaN('3E77'));//true
console.log('1234:'+!isNaN('1234'));//true
console.log('ab34:'+!isNaN('ab34'));//false
0

After looking at solutions in answers to this question and other sources, this is the solution that is simplest while allowing for modification of the included characters and selection in the length of the returned result.

// generate random string of n characters
function randomString(length) {
    const characters = '0123456789abcdefghijklmnopqrstuvwxyz'; // characters used in string
    let result = ''; // initialize the result variable passed out of the function
    for (let i = length; i > 0; i--) {
        result += characters[Math.floor(Math.random() * characters.length)];
    }
    return result;
}

console.log(randomString(6));
-1

Use md5 library: https://github.com/blueimp/JavaScript-MD5

The shortest way:

md5(Math.random())

If you want to limit the size to 5:

md5(Math.random()).substr(0, 5)

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