1235

Consider:

var myArray = ['January', 'February', 'March'];

How can I select a random value from this array using JavaScript?

Improve this question
0

28 Answers 28

Reset to default
2275

It's a simple one-liner:

const randomElement = array[Math.floor(Math.random() * array.length)];

For example:

const months = ["January", "February", "March", "April", "May", "June", "July"];

const random = Math.floor(Math.random() * months.length);
console.log(random, months[random]);

Improve this answer
5
  • 10
    @SapphireSun this is correct. Note the Math.floor(Math.random(...)) call, which rounds down.
    – ashes999
    Jan 19, 2014 at 12:43
  • 56
    Ahh, I've learned something new. I was discussing the case where it equals EXACTLY 1, but apparently (according to W3Schools) Math.random is between 0 inclusive and 1 exclusive. My bad.
    – SapphireSun
    Jan 20, 2014 at 0:14
  • 14
    I might be wrong, but I recall var rand = myArray[Math.random() * myArray.length>>0] being slightly faster
    – user3546284
    Jul 22, 2016 at 12:34
  • 5
    I prefer this variant: var rand = myArray[Math.random() * myArray.length | 0]
    – np42
    Aug 29, 2018 at 15:54
  • Be aware that this function returns undefined as soon as you pass an empty array. It might be helpful to throw an exception in that case.
    – Froxx
    Jun 21, 2022 at 23:38
128

If you've already got underscore or lodash included in your project you can use _.sample.

// will return one item randomly from the array
_.sample(['January', 'February', 'March']);

If you need to get more than one item randomly, you can pass that as a second argument in underscore:

// will return two items randomly from the array using underscore
_.sample(['January', 'February', 'March'], 2);

or use the _.sampleSize method in lodash:

// will return two items randomly from the array using lodash
_.sampleSize(['January', 'February', 'March'], 2);
Improve this answer
1
  • 3
    When using typescript: Be aware that the return type would be "string | undefined" instead of "string" given a string array.
    – Stephan Schielke
    May 6, 2020 at 18:18
61

You may consider defining a function on the Array prototype, in order to create a method [].sample() which returns a random element.

First, to define the prototype function, place this snippet in your code:

Array.prototype.sample = function(){
  return this[Math.floor(Math.random()*this.length)];
}

Later, to sample a random element from the array, just call .sample():

[1,2,3,4].sample() //=> a random element

I'm releasing these code snippets into the public domain, under the terms of the CC0 1.0 license.

Improve this answer
5
  • 1
    And this does what?
    – Ken Sharp
    Jan 23, 2018 at 1:26
  • 4
    @KenSharp it allows you to call .sample() on any array to get a random item
    – Ben Aubin
    Jan 23, 2018 at 2:07
  • 31
    Extending native object types should be avoided. I have deleted my answer, seeing it was upvoted a lot, but promoting bad practice. For more discussion on this issue see e.g. stackoverflow.com/questions/14034180/… and eslint.org/docs/rules/no-extend-native
    – Markus Amalthea Magnuson
    Dec 6, 2019 at 17:23
  • 4
    @MarkusAmaltheaMagnuson That's a good point. However, defining custom methods on prototypes isn't necessarily an issue, especially if done so sparingly and outside of library code. The prototype provides an alternative solution that is quite pretty (in my subjective opinion) and exposes sometimes-overlooked but interesting parts of the language, at least when used sparingly. For nearly all application code, this won't cause issues, so it comes down to a matter of taste.
    – Ben Aubin
    Jun 10, 2021 at 21:18
  • See my own answer on extending the instance instead of the prototype.
    – Manngo
    Jan 7, 2022 at 8:19
49

~~ is much faster than Math.Floor(), so when it comes to performance optimization while producing output using UI elements, ~~ wins the game. MORE INFO

var rand = myArray[~~(Math.random() * myArray.length)];

But if you know that the array is going to have millions of elements then you might want to reconsider between Bitwise Operator and Math.Floor(), as bitwise operators behave weirdly with large numbers. See below example explained with the output.

var number = Math.floor(14444323231.2); // => 14444323231
var number = 14444323231.2 | 0; // => 1559421343
Improve this answer
5
  • 1
    Link is dead, however interesting post and I shall be using this more than Math.floor now :)
    – alistair
    Aug 25, 2019 at 8:12
  • 8
    using "bitwise not" operator, while faster, is not that readable, so you have to choose what is more important to you
    – Maciej Urbański
    Aug 29, 2019 at 17:55
  • double tilda - interesting... I learned something new.
    – Gel
    Sep 27, 2021 at 16:53
  • For those who want to understand what it means, ~ is a bitwise not, which reverses the 1s and 0s in a binary number. As with all bitwise operators, it first converts the number into a 32 bit integer, which all you really want. Using ~~ restores the original as a 32-bit integer.
    – Manngo
    Oct 26, 2021 at 20:15
  • As for Math.floor(), All functions have an overhead which includes storing and restoring the original state. Generally, optimising compilers will look for opportunities to copy the code in place to avoid that overhead, but, with a dynamic language such as JavaScript, it’s harder to predict.
    – Manngo
    Oct 26, 2021 at 20:18
42

The shortest version: 

var myArray = ['January', 'February', 'March']; 
var rand = myArray[(Math.random() * myArray.length) | 0]
console.log(rand)

Improve this answer
4
  • 6
    What does | 0 do?
    – Ken Sharp
    Jan 23, 2018 at 1:27
  • 6
    It will turn Float to Int, same as Math.floor.
    – foxiris
    Jan 23, 2018 at 5:47
  • 6
    @KenSharp | 0 itself is a bitwise operation that does nothing, but in javascript floats are converted to ints before any bitwise operation. So it's something like how + '' doesn't really do anything but can be used to convert things to strings.
    – dshepherd
    Sep 19, 2018 at 7:26
  • 3
    It's not the same as Math.floor but it is the correct thing to do here. It's an operator so it's faster than Math.floor if only because at any time while running some code can do Math.floor = someOtherFunction and they can't do the same for '|'. On the other hand as for Math.floor and | being different try Math.floor(-1.5) vs -1.5 | 0. By the way you don't need the parentheses. | has a very low precedence.
    – gman
    Jun 5, 2019 at 2:59
23

Say you want to choose a random item that is different from the last time (not really random, but still a common requirement)...

/**
 * Return a random element from an array that is
 * different than `last` (as long as the array has > 1 items). 
 * Return null if the array is empty.
*/
function getRandomDifferent(arr, last = undefined) {
  if (arr.length === 0) {
    return null;
  } else if (arr.length === 1) {
    return arr[0];
  } else {
    let num = 0;
    do {
      num = Math.floor(Math.random() * arr.length);
    } while (arr[num] === last);
    return arr[num];
  }
}

Implement like this:

const arr = [1,2,3];
const r1 = getRandomDifferent(arr);
const r2 = getRandomDifferent(arr, r1); // r2 is different than r1.
Improve this answer
0
13

If you have fixed values (like a month name list) and want a one-line solution

var result = ['January', 'February', 'March'][Math.floor(Math.random() * 3)]

The second part of the array is an access operation as described in Why does [5,6,8,7][1,2] = 8 in JavaScript?

Improve this answer
6
  • 11
    Such code is a bad and harmful practice. It should never be used in production. It has low readability and it has a hardcoded array length. The person changing the array input may forget to edit the length hardcoded in the end.
    – Seagull
    Sep 5, 2018 at 22:50
  • 1
    @Seagull OP never asked for an specific environment. Also this comment is meaningless as it could be applied to almost all the answers in this question ;)
    – I.G. Pascual
    Sep 6, 2018 at 14:36
  • But most people arrive to this question from Google search and the may use the solution in other scenarios than original OP.
    – Seagull
    Sep 9, 2018 at 17:10
  • 2
    I like the readability of this, just came to the same solution myself
    – Rauli Rajande
    Nov 28, 2020 at 20:44
  • 1
    I fully agree, having to hardcode the array length this way is simply very bad coding, asking for maintenance issues...
    – Will59
    Dec 29, 2020 at 9:00
13

If you want to write it on one line, like Pascual's solution, another solution would be to write it using ES6's find function (based on the fact, that the probability of randomly selecting one out of n items is 1/n):

var item = ['A', 'B', 'C', 'D'].find((_, i, ar) => Math.random() < 1 / (ar.length - i));
console.log(item);

Use that approach for testing purposes and if there is a good reason to not save the array in a seperate variable only. Otherwise the other answers (floor(random()*length and using a seperate function) are your way to go.

Improve this answer
0
13

Many of the offered solutions add a method to a specific Array which restricts it's use to just that array. This solution is reusable code that works for any array and can be made type safe.

TypeScript

export function randChoice<T>(arr: Array<T>): T {
  return arr[Math.floor(Math.random() * arr.length)]
}

JavaScript

function randChoice(arr) {
  return arr[Math.floor(Math.random() * arr.length)]
}
Improve this answer
8

Editing Array prototype can be harmful. Here it is a simple function to do the job.

function getArrayRandomElement (arr) {
  if (arr && arr.length) {
    return arr[Math.floor(Math.random() * arr.length)];
  }
  // The undefined will be returned if the empty array was passed
}

Usage:

// Example 1
var item = getArrayRandomElement(['January', 'February', 'March']);

// Example 2
var myArray = ['January', 'February', 'March'];
var item = getArrayRandomElement(myArray);
Improve this answer
8

Faker.js has many utility functions for generating random test data. It is a good option in the context of a test suite:

const faker = require('faker');
faker.helpers.arrayElement(['January', 'February', 'March']);

As commenters have mentioned, you generally should not use this library in production code.

Improve this answer
5
  • 17
    For a simple problem like this, adding a dependency for an entire library is unnecessary and adds to code bloat. If anything, you could potentially recommend the actual method from Faker which selects a random array element.
    – Pixxl
    Dec 21, 2017 at 17:41
  • 2
    "Simple problem" like this one are usually solved by libraries that provide a simple solution to a problem that hundred of persons already had to face with. Those libraries are usually robust and well debugged and deals with various caveats we don't want to re-implement. It would be typically the situation where I would recommend to use a library.
    – smonff
    May 16, 2018 at 7:59
  • Than you should just copy that one method from the library and put it in a utils file
    – Rick Bross
    Oct 1, 2018 at 4:51
  • The advice that libraries should be assessed for cost/benefit WRT page weight when they are shipped to a web browser is sound advice and I whole-heartedly agree that shipping Faker.js to a browser would be ridiculous. However, the question does not mention which JS runtime is being used. For a NodeJS-based runtime heavier dependencies are perfectly reasonable which is the case for where I am using Faker.js - in Cucumber JS test suites.
    – Nathan
    Oct 3, 2018 at 22:02
  • 1
    I'm working on tests that already use faker.js so this is a helpful answer to me.
    – Chris
    Jul 18, 2022 at 18:41
7

If you need to fetch a random item more than once, then, obviously you would use a function. One way is to make that function a method of the Array.prototype, but that will normally get you shouted down for tampering with built in prototypes.

However, you can add the method to the specific array itself:

var months = ['January', 'February', 'March'];
months.random = function() {
    return this[Math.floor(Math.random()*this.length)];
};

That way you can use months.random() as often as you like without interfering with the generic Array.prototype.

As with any random function, you run the risk of getting the same value successively. If you don’t want that, you will need to track the previous value with another property:

months.random=function() {
    var random;
    while((random=this[Math.floor(Math.random()*this.length)]) == this.previous);
    this.previous=random;
    return random;
};

If you’re going to do this sort of thing often, and you don’t want to tamper with Array.prototype, you can do something like this:

function randomValue() {
    return this[Math.floor(Math.random()*this.length)];
}

var data = [ … ];
var moreData = [ … ];

data.random=randomValue;
moreData.random=randomValue;
Improve this answer
5

To get crypto-strong random item form array use

let rndItem = a=> a[rnd()*a.length|0];
let rnd = ()=> crypto.getRandomValues(new Uint32Array(1))[0]/2**32;

var myArray = ['January', 'February', 'March'];

console.log( rndItem(myArray) )

Improve this answer
4

Recursive, standalone function which can return any number of items (identical to lodash.sampleSize):

function getRandomElementsFromArray(array, numberOfRandomElementsToExtract = 1) {
    const elements = [];

    function getRandomElement(arr) {
        if (elements.length < numberOfRandomElementsToExtract) {
            const index = Math.floor(Math.random() * arr.length)
            const element = arr.splice(index, 1)[0];

            elements.push(element)

            return getRandomElement(arr)
        } else {
            return elements
        }
    }

    return getRandomElement([...array])
}
Improve this answer
2

This is similar to, but more general than, @Jacob Relkin's solution:

This is ES2015:

const randomChoice = arr => {
    const randIndex = Math.floor(Math.random() * arr.length);
    return arr[randIndex];
};

The code works by selecting a random number between 0 and the length of the array, then returning the item at that index.

Improve this answer
2

var item = myArray[Math.floor(Math.random()*myArray.length)];

or equivalent shorter version:

var item = myArray[(Math.random()*myArray.length)|0];

Sample code:

var myArray = ['January', 'February', 'March'];    
var item = myArray[(Math.random()*myArray.length)|0];
console.log('item:', item);

Improve this answer
2

Simple Function :

var myArray = ['January', 'February', 'March'];
function random(array) {
     return array[Math.floor(Math.random() * array.length)]
}
random(myArray);

OR

var myArray = ['January', 'February', 'March'];
function random() {
     return myArray[Math.floor(Math.random() * myArray.length)]
}
random();

OR

var myArray = ['January', 'February', 'March'];
function random() {
     return myArray[Math.floor(Math.random() * myArray.length)]
}
random();
Improve this answer
1
  • It would be better to set the myArrayy variable inside your function as to not pollute the global namespace.
    – Neil Meyer
    Mar 19, 2018 at 8:07
0

In my opinion, better than messing around with prototypes , or declaring it just in time, I prefer exposing it to window:

window.choice = function() {
  if (!this.length || this.length == 0) return;
  if (this.length == 1) return this[0];
  return this[Math.floor(Math.random()*this.length)];
}

Now anywhere on your app you call it like:

var rand = window.choice.call(array)

This way you can still use for(x in array) loop properly

Improve this answer
3
  • 1
    I wasn't here when anyone downvoted it, and I didn't downvote it, but my guess is that exposing it to window is basically declaring a global variable. See: stackoverflow.com/questions/2613310/…
    – Chris
    Apr 8, 2015 at 21:30
  • 1
    You shouldn't ever use for...in on arrays, or even in general. You run the risk of walking the prototype chain. It's also meant for all properties of an object, not all indices in an array. If you want to use an iterator on an array, use for (var i = 0; i < foo.length; i++){}. Even better, use something like Array.prototype.forEach instead.
    – Robert
    Jan 18, 2016 at 20:20
  • 1
    I do not prefer this because it pollutes the global scope. You could say this might be the only one to be there, but it will give habits of violating that good practice.
    – Jekk
    Nov 15, 2016 at 5:43
0

I've found a way around the top answer's complications, just by concatenating the variable rand to another variable that allows that number to be displayed inside the calling of myArray[];. By deleting the new array created and toying around with it's complications, I've come up with a working solution:

<!DOCTYPE html>
<html>
<body>

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

<script>

var myArray = ['January', 'February', 'March', 'April', 'May'];    

var rand = Math.floor(Math.random() * myArray.length);

var concat = myArray[rand];

function random() {
   document.getElementById("demo").innerHTML = (concat);
}
</script>

<button onClick="random();">
Working Random Array generator
</button>

</body>
</html>
Improve this answer
2
  • I'm confused why concat is ever changing here... random itself isn't changing it, and nothing else is getting called more than once....
    – Joshua Grosso
    Sep 1, 2016 at 0:54
  • 1
    This solution doesn't entirely make sense. Why are you creating a variable called concat?
    – superluminary
    May 15, 2017 at 12:55
0 

static generateMonth() { 
const theDate = ['January', 'February', 'March']; 
const randomNumber = Math.floor(Math.random()*3);
return theDate[randomNumber];
};

You set a constant variable to the array, you then have another constant that chooses randomly between the three objects in the array and then the function simply returns the results.

Improve this answer
0

Looking for a true one-liner I came to this:

['January', 'February', 'March'].reduce((a, c, i, o) => { return o[Math.floor(Math.random() * Math.floor(o.length))]; })
Improve this answer
0

By adding a method on prototype of array you can get random values easly.

In this example you can get single or multiple random values from array.

You can run to test code by clicking snippet button.

Array.prototype.random = function(n){
  if(n&&n>1){
    const a = [];
    for(let i = 0;i<n;i++){
      a.push(this[Math.floor(Math.random()*this.length)]);
    }
    return a;
  } else {
    return this[Math.floor(Math.random()*this.length)];
  }
}

const mySampleArray =  ['a','b','c','d','e','f','g','h'];

mySampleArray.random(); // return any random value etc. 'a', 'b'
mySampleArray.random(3); //retun an array with random values etc: ['b','f','a'] , ['d','b','d']

alert(mySampleArray.random());
alert(mySampleArray.random(3));

Improve this answer
0

Method 1:

  • Use Math.random() function to get the random number between(0-1, 1 exclusive).
  • Multiply it by the array length to get the numbers between(0-arrayLength).
  • Use Math.floor() to get the index ranging from(0 to arrayLength-1).

const arr = ["foo","bar"];
const randomlyPickedString=arr[Math.floor(Math.random() * arr.length)]; console.log(randomlyPickedString);

Method 2:

  • The random(a, b) method is used to generates a number between(a to b, b exclusive).
  • Taking the floor value to range the numbers from (1 to arrayLength).
  • Subtract 1 to get the index ranging from(0 to arrayLength-1).

const arr = ["foo","bar"];
const randomlyPickedString=arr[Math.floor(random(1, 5))-1]; console.log(randomlyPickedString);

Improve this answer
-1

A generic way to get random element(s):

let some_array = ['Jan', 'Feb', 'Mar', 'Apr', 'May'];
let months = random_elems(some_array, 3);

console.log(months);

function random_elems(arr, count) {
  let len = arr.length;
  let lookup = {};
  let tmp = [];

  if (count > len)
    count = len;

  for (let i = 0; i < count; i++) {
    let index;
    do {
      index = ~~(Math.random() * len);
    } while (index in lookup);
    lookup[index] = null;
    tmp.push(arr[index]);
  }

  return tmp;
}

Improve this answer
-2

Here is an example of how to do it:

$scope.ctx.skills = data.result.skills;
    $scope.praiseTextArray = [
    "Hooray",
    "You\'re ready to move to a new skill", 
    "Yahoo! You completed a problem", 
    "You\'re doing great",  
    "You succeeded", 
    "That was a brave effort trying new problems", 
    "Your brain was working hard",
    "All your hard work is paying off",
    "Very nice job!, Let\'s see what you can do next",
    "Well done",
    "That was excellent work",
    "Awesome job",
    "You must feel good about doing such a great job",
    "Right on",
    "Great thinking",
    "Wonderful work",
    "You were right on top of that one",
    "Beautiful job",
    "Way to go",
    "Sensational effort"
  ];

  $scope.praiseTextWord = $scope.praiseTextArray[Math.floor(Math.random()*$scope.praiseTextArray.length)];
Improve this answer
0
-3

Create one random value and pass to array

Please try following code..

//For Search textbox random value
var myPlaceHolderArray = ['Hotels in New York...', 'Hotels in San Francisco...', 'Hotels Near Disney World...', 'Hotels in Atlanta...'];
var rand = Math.floor(Math.random() * myPlaceHolderArray.length);
var Placeholdervalue = myPlaceHolderArray[rand];

alert(Placeholdervalue);
Improve this answer
1
  • 6
    This answer uses the same solution as the already accepted answer. You should refrain from adding the same solution twice and instead only bring up possible other alternatives that would contribute more to the conversation.
    – Pixxl
    Dec 21, 2017 at 17:44
-3

randojs makes this a little more simple and readable:

console.log( rando(['January', 'February', 'March']).value );
<script src="https://randojs.com/1.0.0.js"></script>

Improve this answer
1
  • 1
    some people aren't a fan of sourcing in libraries for code they could write themselves, even if it would make things faster and more readable. if the library goes down for some reason, your website now has a glitch. randojs doesn't go down, but they don't know that because it's not as well known as libraries like jQuery for example
    – Aaron Plocharczyk
    Feb 21, 2020 at 2:56
-7

I am really surprised nobody tried to use native random values:

array[Date.now()%array.length]

It will not work for array length over 160000000000, but I am sure you will never create arrays like this

UPD

As far as you question is how to pick random value from array called myArray (with len=3), the solution should be:

myArray[Date.now()%myArray.length]
Improve this answer
10
  • I didn’t downvote you, but I can’t see how your solution is in any related to the question. I assume other’s can’t either.
    – Manngo
    Jan 7, 2022 at 8:17
  • 3
    @EgorRandomize these Date-values are highly deterministic. That is the oppositve of random. Again: Yes, as a user you get perceived randomness, but it has nothing to do with actual randomness. (Btw: I didn't even downvote ^^)
    – nuts
    Feb 15, 2022 at 17:18
  • 2
    Downvoted, because it's not random, and not an appropriate answer.
    – Brad
    Oct 30, 2022 at 0:09
  • 4
    @Egor Do we really need proof beyond the obvious that time is deterministic? Fine... call it in a loop and watch all the repeated values you get. It's a bad side effect that will bite you at some point... if not today, it will in the future. It's like, what, 15 extra characters of typing to do it the right way?
    – Brad
    Nov 9, 2022 at 20:05
  • 4
    @Egor The question is generic and highly referenced. It simply asks how to get a random value from an array. Your answer does not return a random value from an array. You asked for proof that your answer is not random. I gave it to you, with a very clear and common example. If your answer had some tradeoff of determinism-for-other-goodness, and if you called out that tradeoff in your answer, it'd be appropriate. Instead, you've tacked on a bad answer to a decade-old question, that has no advantage over one of the several good answers already posted. Hence, my downvote.
    – Brad
    Nov 10, 2022 at 5:38

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