74

I want to generate a random string that has to have 5 letters from a-z and 3 numbers.

How can I do this with javascript?

I've got the following script, but it doesn't meet my requirements.

        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);
        }
  • 6
    If it meets your requirement, what's the question then? Also, your forced password requirement is a bad idea. – Rob W Mar 15 '12 at 12:22
  • 6
    xkcd.com/936 – MatuDuke Mar 15 '12 at 12:33

15 Answers 15

279

Forcing a fixed number of characters is a bad idea. It doesn't improve the quality of the password. Worse, it reduces the number of possible passwords, so that hacking by bruteforcing becomes easier.

To generate a random word consisting of alphanumeric characters, use:

var randomstring = Math.random().toString(36).slice(-8);

How does it work?

Math.random()                        // Generate random number, eg: 0.123456
             .toString(36)           // Convert  to base-36 : "0.4fzyo82mvyr"
                          .slice(-8);// Cut off last 8 characters : "yo82mvyr"

Documentation for the Number.prototype.toString and string.prototype.slice methods.

  • 26
    +1 love the base 36 trick – James Montagne Mar 15 '12 at 12:38
  • 6
    I agree, but sometimes you dont get to decide ;) – ffffff01 Mar 15 '12 at 12:40
  • 3
    I would like to mention that this method generate numerous duplicates. 1% for 1.000 passwords generated are duplicates, 10% for 10.000, 57% for 100.000, and more than 95% for 1.000.000. See this test – zessx Jun 12 '14 at 14:25
  • 28
    DO NOT USE THIS: Since the number is converted from binary to decimal, and there is not enough bits to "fill up" the full decimal space, the last digit will only be selected from a certain set of values. For example, on my computer, the last digit is only ever "i", "r", and "9". Use this instead: Math.random().toString(36).substr(2, 8) – Joel Jan 19 '16 at 12:59
  • 2
    @ShishirGupta .toString only accepts a base up to and including 36. This answer is meant as a one-liner for a non-cryptographic random string. If you want to have capitals as well, use Math.random (or crypto.getRandomValues if available) and map the result to a-z, A-Z, 0-9. For instance using saaj's answer below. – Rob W Jun 2 '16 at 10:37
35

A little more maintainable and secure approach.

var Password = {
 
  _pattern : /[a-zA-Z0-9_\-\+\.]/,
  
  
  _getRandomByte : function()
  {
    // http://caniuse.com/#feat=getrandomvalues
    if(window.crypto && window.crypto.getRandomValues) 
    {
      var result = new Uint8Array(1);
      window.crypto.getRandomValues(result);
      return result[0];
    }
    else if(window.msCrypto && window.msCrypto.getRandomValues) 
    {
      var result = new Uint8Array(1);
      window.msCrypto.getRandomValues(result);
      return result[0];
    }
    else
    {
      return Math.floor(Math.random() * 256);
    }
  },
  
  generate : function(length)
  {
    return Array.apply(null, {'length': length})
      .map(function()
      {
        var result;
        while(true) 
        {
          result = String.fromCharCode(this._getRandomByte());
          if(this._pattern.test(result))
          {
            return result;
          }
        }        
      }, this)
      .join('');  
  }    
    
};
<input type='text' id='p'/><br/>
<input type='button' value ='generate' onclick='document.getElementById("p").value = Password.generate(16)'>

  • 2
    except that it only works in the browser. – askmike Oct 1 '16 at 11:24
  • Furthermore this doesn't always add a number to the generated code and the OP wants minimum 3. – qwertzman Oct 18 '16 at 18:15
  • Found a library that support window.crypto.getRandomValues and works in node.js as well github.com/bermi/password-generator – Eugene Jan 26 '18 at 13:44
  • Just wanted to say I needed something to generate passwords in a pinch and this was perfect. Thank you! – Kyle K Apr 17 at 19:49
19

Many answers (including the original of this one) don't address the letter- and number-count requirements of the OP. Below are two solutions: general (no min letters/numbers), and with rules.

General:

I believe this is better general solution than the above, because:

  • it's more secure than accepted/highest-voted answer, and also more versatile, because it supports any char set in a case-sensitive manner
  • it's more concise than other answers (for general solution, 3 lines max; can be one-liner)
  • it uses only native Javascript- no installation or other libs required

Note that

  • for this to work on IE, the Array.fill() prototype must be polyfilled
  • if available, better to use window.crypto.getRandomValues() instead of Math.random() (thanks @BenjaminH for pointing out)

Three-liner:

var pwdChars = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz";
var pwdLen = 10;
var randPassword = Array(pwdLen).fill(pwdChars).map(function(x) { return x[Math.floor(Math.random() * x.length)] }).join('');

Or, as one-liner:

var randPassword = Array(10).fill("0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz").map(function(x) { return x[Math.floor(Math.random() * x.length)] }).join('');

With Letter / Number Rules

Now, a variation on the above. This will generate three random strings from the given charsets (letter, number, either) and then scramble the result.

Please note the below uses sort() for illustrative purposes only. For production use, replace the below sort() function with a shuffle function such as Durstenfeld.

First, as a function:

function randPassword(letters, numbers, either) {
  var chars = [
   "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz", // letters
   "0123456789", // numbers
   "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789" // either
  ];

  return [letters, numbers, either].map(function(len, i) {
    return Array(len).fill(chars[i]).map(function(x) {
      return x[Math.floor(Math.random() * x.length)];
    }).join('');
  }).concat().join('').split('').sort(function(){
    return 0.5-Math.random();
  }).join('')
}

// invoke like so: randPassword(5,3,2);

Same thing, as a 2-liner (admittedly, very long and ugly lines-- and won't be a 1-liner if you use a proper shuffle function. Not recommended but sometimes it's fun anyway) :

var chars = ["ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz","0123456789", "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789"];
var randPwd = [5,3,2].map(function(len, i) { return Array(len).fill(chars[i]).map(function(x) { return x[Math.floor(Math.random() * x.length)] }).join('') }).concat().join('').split('').sort(function(){return 0.5-Math.random()}).join('');
  • Good answer, but the capital letter Y will never appear in any password you generate. – Ryan Shillington Mar 31 '17 at 2:52
  • 1
    Thanks. I used the charset in the OP question but looks like it was flawed. Updated now. – mwag Apr 1 '17 at 4:08
  • You say "it's more secure than accepted/highest-voted answer". Could you please elaborate on the reason? – BenjaminH Apr 29 '17 at 15:03
  • Also the use of Math.random() can be predictable. So for generating passwords better use a function like window.crypto.getRandomValues. – BenjaminH Apr 29 '17 at 15:04
  • 1
    The reason it is more secure is because it supports is a higher number of possible characters in the output than using toString(36). With a fixed output length (e.g. of 8), if you have a max of 36 chars to choose from, you have far fewer permutations than if you have 62 chars (as in the example) or better yet, the whole 95 printable (ascii) chars, or if using unicode, an even higher number of possibilities per byte. – mwag May 1 '17 at 16:52
8

This isn't exactly optimized, but it should work.

var chars = "ABCDEFGHIJKLMNOPQRSTUVWXTZabcdefghiklmnopqrstuvwxyz";
var string_length = 8;
var randomstring = '';
var charCount = 0;
var numCount = 0;

for (var i=0; i<string_length; i++) {
    // If random bit is 0, there are less than 3 digits already saved, and there are not already 5 characters saved, generate a numeric value. 
    if((Math.floor(Math.random() * 2) == 0) && numCount < 3 || charCount >= 5) {
        var rnum = Math.floor(Math.random() * 10);
        randomstring += rnum;
        numCount += 1;
    } else {
        // If any of the above criteria fail, go ahead and generate an alpha character from the chars string
        var rnum = Math.floor(Math.random() * chars.length);
        randomstring += chars.substring(rnum,rnum+1);
        charCount += 1;
    }
}

alert(randomstring);

​ ​ ​

Here's a jsfiddle for you to test on: http://jsfiddle.net/sJGW4/3/

  • 1
    chars.substring(rnum, rnum+1) is just like chars.charAt(rnum) – Mad Echet Apr 15 '14 at 15:02
6

I have written a small one inspired from your answer:

(function(){g=function(){c='0123456789abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ';p='';for(i=0;i<8;i++){p+=c.charAt(Math.floor(Math.random()*62));}return p;};p=g();while(!/[A-Z]/.test(p)||!/[0-9]/.test(p)||!/[a-z]/.test(p)){p=g();}return p;})()

This function returns the password and can be used in bookmarklet like:

javascript:alert(TheCodeOfTheFunction);
6

For someone who is looking for a simplest script. No while (true), no if/else, no declaration.

Base on mwag's answer, but this one uses crypto.getRandomValues, a stronger random than Math.random.

Array(20)
  .fill('0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz~!@-#$')
  .map(x => x[Math.floor(crypto.getRandomValues(new Uint32Array(1))[0] / (0xffffffff + 1) * x.length)])
  .join('');

See this for the magic of 0xffffffff.


Open the console and test yourself:

for (let i = 0 ; i < 100; i++)
  console.log(
    Array(20)
    .fill('0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz~!@-#$')
    .map(x => x[Math.floor(crypto.getRandomValues(new Uint32Array(1))[0] / (0xffffffff + 1) * x.length)])
    .join('')
  )

If you consider the performance, you might try this:

var generate = (
  length = 20,
  wishlist = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz~!@-#$"
) => Array(length)
      .fill('') // fill an empty will reduce memory usage
      .map(() => wishlist[Math.floor(crypto.getRandomValues(new Uint32Array(1))[0] / (0xffffffff + 1) * wishlist.length)])
      .join('');

// Generate 100 passwords
for (var i = 0; i < 100; i++) console.log(generate());
  • 1
    This is not giving consistently 20 length passwords, because of an undefined offset. The + 1 part is not necessary and can be removed. – bryc Jul 7 at 10:45
  • Good catch @bryc. Updated. Thanks. – Ninh Pham Jul 7 at 15:15
5

In case you need a password generated with at least 1 number, 1 upper case character, and 1 lower case character:

function generatePassword(passwordLength) {
  var numberChars = "0123456789";
  var upperChars = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
  var lowerChars = "abcdefghijklmnopqrstuvwxyz";
  var allChars = numberChars + upperChars + lowerChars;
  var randPasswordArray = Array(passwordLength);
  randPasswordArray[0] = numberChars;
  randPasswordArray[1] = upperChars;
  randPasswordArray[2] = lowerChars;
  randPasswordArray = randPasswordArray.fill(allChars, 3);
  return shuffleArray(randPasswordArray.map(function(x) { return x[Math.floor(Math.random() * x.length)] })).join('');
}

function shuffleArray(array) {
  for (var i = array.length - 1; i > 0; i--) {
    var j = Math.floor(Math.random() * (i + 1));
    var temp = array[i];
    array[i] = array[j];
    array[j] = temp;
  }
  return array;
}

alert(generatePassword(12));

Here's the fiddle if you want to play/test: http://jsfiddle.net/sJGW4/155/

Props to @mwag for giving me the start to create this.

  • 1
    You're missing lowercase j :P Otherwise, good stuff right here. Modified it a bit to meet my requirements though. – Igor Yavych Aug 17 '17 at 22:11
4

As @RobW notes, restricting the password to a fixed number of characters as proposed in the OP scheme is a bad idea. But worse, answers that propose code based on Math.random are, well, a really bad idea.

Let's start with the bad idea. The OP code is randomly selecting a string of 8 characters from a set of 62. Restricting the random string to 5 letters and 3 numbers means the resulting passwords will have, at best, 28.5 bits of entropy (as opposed to a potential of 47.6 bits if the distribution restriction of 5 letters and 3 numbers were removed). That's not very good. But in reality, the situation is even worse. The at best aspect of the code is destroyed by the use of Math.random as the means of generating entropy for the passwords. Math.random is a pseudo random number generator. Due to the deterministic nature of pseudo random number generators the entropy of the resulting passwords is really bad , rendering any such proposed solution a really bad idea. Assuming these passwords are being doled out to end users (o/w what's the point), an active adversary that receives such a password has very good chance of predicting future passwords doled out to other users, and that's probably not a good thing.

But back to the just bad idea. Assume a cryptographically strong pseudo random number generator is used instead of Math.random. Why would you restrict the passwords to 28.5 bits? As noted, that's not very good. Presumably the 5 letters, 3 numbers scheme is to assist users in managing randomly doled out passwords. But let's face it, you have to balance ease of use against value of use, and 28.5 bits of entropy isn't much value in defense against an active adversary.

But enough of the bad. Let's propose a path forward. I'll use the JavaScript EntropyString library which "efficiently generates cryptographically strong random strings of specified entropy from various character sets". Rather than the OP 62 characters, I'll use a character set with 32 characters chosen to reduce the use of easily confused characters or the formation of English words. And rather than the 5 letter, 3 number scheme (which has too little entropy), I'll proclaim the password will have 60 bits of entropy (this is the balance of ease versus value).

import {Random, charSet32} from 'entropy-string'
const random = new Random(charSet32)
const string = random.string(60)

"Q7LfR8Jn7RDp"

Note the argument to random.string is the desired bits of entropy as opposed to more commonly seen solutions to random string generation that specify passing in a string length (which is both misguided and typically underspecified, but that's another story).

2
var letters = ['a','b','c','d','e','f','g','h','i','k','l','m','n','o','p','q','r','s','t','u','v','w','x','y','z'];
    var numbers = [0,1,2,3,4,5,6,7,8,9];
    var randomstring = '';

        for(var i=0;i<5;i++){
            var rlet = Math.floor(Math.random()*letters.length);
            randomstring += letters[rlet];
        }
        for(var i=0;i<3;i++){
            var rnum = Math.floor(Math.random()*numbers.length);
            randomstring += numbers[rnum];
        }
     alert(randomstring);
2

I wouldn't recommend using a forced password as it restricts the User's Security but any way, there are a few ways of doing it -

Traditional JavaScript Method -

Math.random().toString(36).slice(-8);

Using Random String

Install random string:

npm install randomstring

Using it in App.js -

var randStr = require('randomstring');

var yourString = randStr.generate(8);

The Value of your password is being hold in the variable yourString.

Don't Use A Forced Password!

Forced Password can harm your security as all the passwords would be under the same character set, which might easily be breached!

1

And finally, without using floating point hacks:

function genpasswd(n) {
    // 36 ** 11 > Number.MAX_SAFE_INTEGER
    if (n > 10)
        throw new Error('Too big n for this function');
    var x = "0000000000" + Math.floor(Number.MAX_SAFE_INTEGER * Math.random()).toString(36);
    return x.slice(-n);
}
1

My Crypto based take on the problem. Using ES6 and omitting any browser feature checks. Any comments on security or performance?

const generatePassword = (
  passwordLength = 12,
  passwordChars = '0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz',
) =>
  [...window.crypto.getRandomValues(new Uint32Array(passwordLength))]
    .map(x => passwordChars[x % passwordChars.length])
    .join('');
0

There is a random password string generator with selected length

let input = document.querySelector("textarea");
let button = document.querySelector("button");
let length = document.querySelector("input");

function generatePassword(n) 
{
	let pwd = "";

  while(!pwd || pwd.length < n)
  {
  	pwd += Math.random().toString(36).slice(-22);
  }
  
  return pwd.substring(0, n);
}

button.addEventListener("click", function()
{
	input.value = generatePassword(length.value);
});
<div>password:</div>
<div><textarea cols="70" rows="10"></textarea></div>
<div>length:</div>
<div><input type="number" value="200"></div>
<br>
<button>gen</button>

0

Secure password with one upperCase char.

let once = false;

    let newPassword = Math.random().toString(36).substr(2, 8).split('').map((char) => {
                    if(!Number(char) && !once){
                        once = true;
                        return char.toUpperCase();
                    }
                    return char;
                }).join('');

    console.log(newPassword)
0

Try this, it works. Download script to your javascript application and call function randomPassword() https://gist.github.com/enishant/4ba920c71f338e83c7089dc5d6f33a64

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