118

I'm trying to generate a random number that must have a fixed length of exactly 6 digits.

I don't know if JavaScript has given below would ever create a number less than 6 digits?

Math.floor((Math.random()*1000000)+1);

I found this question and answer on StackOverflow here. But, it's unclear.

EDIT: I ran the above code a bunch of times, and Yes, it frequently creates numbers less than 6 digits. Is there a quick/fast way to make sure it's always exactly 6 digits?

2

25 Answers 25

257

console.log(Math.floor(100000 + Math.random() * 900000));

Will always create a number of 6 digits and it ensures the first digit will never be 0. The code in your question will create a number of less than 6 digits.

11
  • 18
    Hey, you added a good commment. I never want the first digit to be 0. Good point.
    – hypermiler
    Feb 16, 2014 at 21:13
  • 1
    @momomo how tho
    – Cilan
    Oct 2, 2016 at 3:56
  • 2
    you have to generate a random number from 0-9, n times. see posted answer by me
    – mjs
    Oct 2, 2016 at 18:50
  • 2
    Well you will be in trouble if the random number is 900000 (and you are adding 100000, making it equal to 1000000, which will be 7 digits). I would prefer the answer below by Maksim Gladkov to get the random number from 899999 instead of 900000). Dec 29, 2019 at 12:53
  • 2
    Math.random is 0 - 0.9999999999999999 so.. it wont hit 7 digits. console.log(Math.floor(100000 + 0 * 900000)); = 100000 console.log(Math.floor(100000 + 0.9999999999999999 * 900000)); = 999999
    – nawlbergs
    Mar 9, 2021 at 16:02
35

Only fully reliable answer that offers full randomness, without loss. The other ones prior to this answer all looses out depending on how many characters you want. The more you want, the more they lose randomness.

They achieve it by limiting the amount of numbers possible preceding the fixed length.

So for instance, a random number of fixed length 2 would be 10 - 99. For 3, 100 - 999. For 4, 1000 - 9999. For 5 10000 - 99999 and so on. As can be seen by the pattern, it suggests 10% loss of randomness because numbers prior to that are not possible. Why?

For really large numbers ( 18, 24, 48 ) 10% is still a lot of numbers to loose out on.

function generate(n) {
        var add = 1, max = 12 - add;   // 12 is the min safe number Math.random() can generate without it starting to pad the end with zeros.   
        
        if ( n > max ) {
                return generate(max) + generate(n - max);
        }
        
        max        = Math.pow(10, n+add);
        var min    = max/10; // Math.pow(10, n) basically
        var number = Math.floor( Math.random() * (max - min + 1) ) + min;
        
        return ("" + number).substring(add); 
}

The generator allows for ~infinite length without lossy precision and with minimal performance cost.

Example:

generate(2)
"03"
generate(2)
"72"
generate(2)
"20"
generate(3)
"301"
generate(3)
"436"
generate(3)
"015"

As you can see, even the zero are included initially which is an additional 10% loss just that, besides the fact that numbers prior to 10^n are not possible.

That is now a total of 20%.

Also, the other options have an upper limit on how many characters you can actually generate.

Example with cost:

var start = new Date(); var num = generate(1000); console.log('Time: ', new Date() - start, 'ms for', num)

Logs:

Time: 0 ms for 7884381040581542028523049580942716270617684062141718855897876833390671831652069714762698108211737288889182869856548142946579393971303478191296939612816492205372814129483213770914444439430297923875275475120712223308258993696422444618241506074080831777597175223850085606310877065533844577763231043780302367695330451000357920496047212646138908106805663879875404784849990477942580056343258756712280958474020627842245866908290819748829427029211991533809630060693336825924167793796369987750553539230834216505824880709596544701685608502486365633618424746636614437646240783649056696052311741095247677377387232206206230001648953246132624571185908487227730250573902216708727944082363775298758556612347564746106354407311558683595834088577220946790036272364740219788470832285646664462382109714500242379237782088931632873392735450875490295512846026376692233811845787949465417190308589695423418373731970944293954443996348633968914665773009376928939207861596826457540403314327582156399232931348229798533882278769760

More hardcore:

generate(100000).length === 100000 -> true
3
  • "must have a fixed length of exactly 6 digits" ... "I never want the first digit to be 0. Good point. – hypermiler". I admire your engineering and pushing the envelope, and I'm sure this answer might be useful to someone else, but just saying. On the downside, your algorithm is massively recursive so I'm not convinced it "allows for ~infinite length [...] with minimal performance cost".
    – randomsock
    Aug 20, 2019 at 17:23
  • @randomsock it is only recursive if you need more numbers than 12, in which case it will generate 12 numbers at a time. minimal performance cost, yes. The purpose of this is the use for random number strings, where randomness matters, or what the content looks like or not. zeros at start was ok for us. a valid random string is 0000000123 but this won't be generated in any of the other methods here, other than this one.
    – mjs
    Aug 21, 2019 at 13:29
  • This function sometimes generates numbers of length less than the specified length. i-e generate(6), also generates numbers of length 5. to fix: replace the last line with: return ("" + number).substring(0, length); Feb 14 at 9:25
20

I would go with this solution:

Math.floor(Math.random() * 899999 + 100000)
2
  • OK. I get it. YES. That will do it!
    – hypermiler
    Feb 16, 2014 at 21:11
  • Actually you can put 900000 instead of 899999 because Math.rand() will return a number in range [0,1[ that means 0 inclusive and 1 exclusive so it will never be equals to 1 as explained here
    – Hugo
    May 25 at 14:22
17

More generally, generating a random integer with fixed length can be done using Math.pow:

var randomFixedInteger = function (length) {
    return Math.floor(Math.pow(10, length-1) + Math.random() * (Math.pow(10, length) - Math.pow(10, length-1) - 1));
}

To answer the question: randomFixedInteger(6);

2
  • Best and most versatile answer.
    – Ansjovis86
    Apr 25, 2017 at 20:21
  • I think this wouldn't make some 0-first-padding number, something like 00382. So that wouldn't be exact random for all range.
    – kakadais
    Oct 10, 2018 at 14:56
12

You can use the below code to generate a random number that will always be 6 digits:

Math.random().toString().substr(2, 6)

Hope this works for everyone :)

Briefly how this works is Math.random() generates a random number between 0 and 1 which we convert to a string and using .toString() and take a 6 digit sample from said string using .substr() with the parameters 2, 6 to start the sample from the 2nd char and continue it for 6 characters.

This can be used for any length number.

If you want to do more reading on this here are some links to the docs to save you some googling:

Math.random(): https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Math/random

.toString(): https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Object/toString

.substr(): https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/substr

2
  • if Math.random() returns 0.5 you will get 1 digit result Jan 5 at 18:44
  • This can work then Math.random().toString().substr(2, 6).repeat(6).substr(2, 6); @KamilKiełczewski Feb 28 at 20:09
5
100000 + Math.floor(Math.random() * 900000);

will give a number from 100000 to 999999 (inclusive).

3
5

Based on link you've provided, right answer should be

Math.floor(Math.random()*899999+100000);

Math.random() returns float between 0 and 1, so minimum number will be 100000, max - 999999. Exactly 6 digits, as you wanted :)

0
5

short with arbitrary precision

below code ALWAYS generate string with n digits - solution in snippet use it

[...Array(n)].map(_=>Math.random()*10|0).join``

let gen = n=> [...Array(n)].map(_=>Math.random()*10|0).join``

// TEST: generate 6 digit number
// first number can't be zero - so we generate it separatley
let sixDigitStr = (1+Math.random()*9|0) + gen(5)
console.log( +(sixDigitStr) ) // + convert to num

1
3

Here is my function I use. n - string length you want to generate

function generateRandomNumber(n) {
  return Math.floor(Math.random() * (9 * Math.pow(10, n - 1))) + Math.pow(10, n - 1);
}

2

This is another random number generator that i use often, it also prevent the first digit from been zero(0)

  function randomNumber(length) {
    var text = "";
    var possible = "123456789";
    for (var i = 0; i < length; i++) {
      var sup = Math.floor(Math.random() * possible.length);
      text += i > 0 && sup == i ? "0" : possible.charAt(sup);
    }
    return Number(text);
  }

2
let length = 6;
("0".repeat(length) + Math.floor(Math.random() * 10 ** length)).slice(-length);

Math.random() - Returns floating point number between 0 - 1

10 ** length - Multiply it by the length so we can get 1 - 6 length numbers with decimals

Math.floor() - Returns above number to integer(Largest integer to the given number).

What if we get less than 6 digits number?

That's why you have to append 0s with it. "0".repeat() repeats the given string which is 0

So we may get more than 6 digits right? That's why we have to use "".slice() method. It returns the array within given indexes. By giving minus values, it counts from the last element.

1

I created the below function to generate random number of fix length:

function getRandomNum(length) {
    var randomNum = 
        (Math.pow(10,length).toString().slice(length-1) + 
        Math.floor((Math.random()*Math.pow(10,length))+1).toString()).slice(-length);
    return randomNum;
}

This will basically add 0's at the beginning to make the length of the number as required.

1
npm install --save randomatic

var randomize = require('randomatic');
randomize(pattern, length, options);

Example:

To generate a 10-character randomized string using all available characters:

randomize('*', 10);
//=> 'x2_^-5_T[$'

randomize('Aa0!', 10);
//=> 'LV3u~BSGhw'

a: Lowercase alpha characters (abcdefghijklmnopqrstuvwxyz'

A: Uppercase alpha characters (ABCDEFGHIJKLMNOPQRSTUVWXYZ')

0: Numeric characters (0123456789')

!: Special characters (~!@#$%^&()_+-={}[];\',.)

*: All characters (all of the above combined)

?: Custom characters (pass a string of custom characters to the options)

NPM repo

1

I use randojs to make the randomness simpler and more readable. you can pick a random int between 100000 and 999999 like this with randojs:

console.log(rando(100000, 999999));
<script src="https://randojs.com/1.0.0.js"></script>

0

I was thinking about the same today and then go with the solution.

var generateOTP = function(otpLength=6) {
  let baseNumber = Math.pow(10, otpLength -1 );
  let number = Math.floor(Math.random()*baseNumber);
  /*
  Check if number have 0 as first digit
  */
  if (number < baseNumber) {
    number += baseNumber;
  }
  return number;
};

Let me know if it has any bug. Thanks.

1
  • This has indeed a bug: you make it twice as likely to generate a number between 100000 and 199999 than any other number.
    – G. Sliepen
    Sep 23, 2018 at 18:22
0

"To Generate Random Number Using JS"

console.log(
Math.floor(Math.random() * 1000000)
);
<!DOCTYPE html>
<html>
<body>

<h2>JavaScript Math.random()</h2>

<p id="demo"></p>

</body>
</html>

0

This code provides nearly full randomness:

function generator() {
    const ran = () => [1, 2, 3, 4, 5, 6, 7, 8, 9, 0].sort((x, z) => {
        ren = Math.random();
        if (ren == 0.5) return 0;
        return ren > 0.5 ? 1 : -1
    })
    return Array(6).fill(null).map(x => ran()[(Math.random() * 9).toFixed()]).join('')
}

console.log(generator())

This code provides complete randomness:

function generator() {

    const ran1 = () => [1, 2, 3, 4, 5, 6, 7, 8, 9, 0].sort((x, z) => {
        ren = Math.random();
        if (ren == 0.5) return 0;
        return ren > 0.5 ? 1 : -1
    })
    const ran2 = () => ran1().sort((x, z) => {
        ren = Math.random();
        if (ren == 0.5) return 0;
        return ren > 0.5 ? 1 : -1
    })

    return Array(6).fill(null).map(x => ran2()[(Math.random() * 9).toFixed()]).join('')
}

console.log(generator())

0

  var number = Math.floor(Math.random() * 9000000000) + 1000000000;
    console.log(number);

This can be simplest way and reliable one.

0

For the length of 6, recursiveness doesn't matter a lot.

function random(len) {
  let result = Math.floor(Math.random() * Math.pow(10, len));

  return (result.toString().length < len) ? random(len) : result;
}

console.log(random(6));

0

In case you also want the first digit to be able to be 0 this is my solution:

const getRange = (size, start = 0) => Array(size).fill(0).map((_, i) => i + start);

const getRandomDigit = () => Math.floor(Math.random() * 10);

const generateVerificationCode = () => getRange(6).map(getRandomDigit).join('');

console.log(generateVerificationCode())

0

generate a random number that must have a fixed length of exactly 6 digits:

("000000"+Math.floor((Math.random()*1000000)+1)).slice(-6)
1
  • 2
    Hope It will solve issue but please add explanation of your code with it so user will get perfect understanding which he/she really wants. May 25, 2020 at 8:59
0
const generate = n => String(Math.ceil(Math.random() * 10**n)).padStart(n, '0')
// n being the length of the random number.

Use a parseInt() or Number() on the result if you want an integer. If you don't want the first integer to be a 0 then you could use padEnd() instead of padStart().

0

Generate a random number that will be 6 digits:

console.log(Math.floor(Math.random() * 900000));

Result = 500229

Generate a random number that will be 4 digits:

console.log(Math.floor(Math.random() * 9000));

Result = 8751

1
  • if Math.random() returns 0.00001 the result will have only 1 digit Jan 5 at 19:01
-1

You can use this module https://www.npmjs.com/package/uid, it generates variable length unique id

uid(10) => "hbswt489ts"
 uid() => "rhvtfnt" Defaults to 7

Or you can have a look at this module https://www.npmjs.com/package/shortid

const shortid = require('shortid');

console.log(shortid.generate());
// PPBqWA9

Hope it works for you :)

1
  • @OlegMikhailov Is it explained now, or still not informative? Dec 17, 2018 at 11:48
-2

parseInt(Math.random().toString().slice(2,Math.min(length+2, 18)), 10); // 18 -> due to max digits in Math.random

Update: This method has few flaws: - Sometimes the number of digits might be lesser if its left padded with zeroes.

3
  • 2
    This is wrong for several reasons. There is no guarantee that the slice you pick from the string does not start with zeroes. Also, avoid converting numbers to and from strings if there is a perfectly fine way to solve the issue with normal math functions.
    – G. Sliepen
    Sep 23, 2018 at 18:11
  • @G.Sliepen Thanks for correcting me. For my learning, could you also elaborate a little more on why numbers should not be from and to string? Any known flaws? Thanks Sep 25, 2018 at 7:27
  • 1
    Converting to and from strings is slow, and it is easy to forget about corner cases, for example: what if a number is negative, zero, is a floating point number, is being converted to exponential notation, and so on. For example, Math.random() might return 0 or 1 exactly, and these would be converted to the strings '0' or '1', and then .slice(2, ...) would return an empty string, and then parseInt() would return NaN.
    – G. Sliepen
    Sep 25, 2018 at 17:04

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