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This question already has an answer here:

var items = Array(523,3452,334,31,...5346);

How do I get random item from items?

I am using jQuery, so answers involving jQuery are welcome.

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marked as duplicate by royhowie, Denys Séguret javascript May 22 '15 at 8:42

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

171  
the answer will not involve jQuery – Alnitak May 6 '11 at 17:51
13  
I've never seen so many absolutely identical responses to a question... – Blindy May 6 '11 at 17:52
5  
great minds, @Blindy – Kelly May 6 '11 at 17:54
8  
I found a way to involve jQuery!! (see my second answer) – Alnitak May 6 '11 at 18:10
30  
"I found a way to involve jQuery!!" Kill me now. – buley Mar 28 '14 at 13:51

13 Answers 13

up vote 582 down vote accepted
var item = items[Math.floor(Math.random()*items.length)];
share|improve this answer
    
If I copy/paste this into my source, I'm getting an 'Uncaught SyntaxError: Unexpected token' in my browser. Are there any rogue hidden characters that get copied from SO answers? – Abhranil Das Oct 1 '12 at 11:52
47  
Math.random() will never be 1, nor should it. The largest index should always be one less than the length, or else you'll get an undefined error. – Kelly Sep 16 '13 at 16:06
4  
Elegant solution. I tested it: var items = ["a","e","i","o","u"] var objResults = {} for(var i = 0; i < 1000000; i++){ var randomElement = items[Math.floor(Math.random()*items.length)] if (objResults[randomElement]){ objResults[randomElement]++ }else{ objResults[randomElement] = 1 } } console.log(objResults) The results are pretty randomized after 1000000 iterations: Object {u: 200222, o: 199543, a: 199936, e: 200183, i: 200116} – Johann Echavarria May 1 '14 at 22:17
    
I found a nice and simple way: javascript.about.com/library/blsort2.htm – Ankit Patial Jul 9 '14 at 7:28

If you really must use jQuery to solve this problem:

(function($) {
    $.rand = function(arg) {
        if ($.isArray(arg)) {
            return arg[$.rand(arg.length)];
        } else if (typeof arg === "number") {
            return Math.floor(Math.random() * arg);
        } else {
            return 4;  // chosen by fair dice roll
        }
    };
})(jQuery);

var items = [523, 3452, 334, 31, ..., 5346];
var item = $.rand(items);

This plugin will return a random element if given an array, or a value from [0 .. n) given a number, or given anything else, a guaranteed random value!

For extra fun, the array return is generated by calling the function recursively based on the array's length :)

Working demo at http://jsfiddle.net/2eyQX/

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56  
Must use jQuery. Haha. Hahaha! Ha... – neoascetic Feb 10 '14 at 13:45
    
@neoascetic the point of that line is that picking an element from an array is not a jQuery problem, it's generic JS. – Alnitak Feb 10 '14 at 13:51
12  
+1 for the fair dice roll! For those poor souls who don't get the joke. – The Guy with The Hat Aug 19 '14 at 13:16
    
Awesome pure jQuery solution! – superluminary Jul 14 '15 at 19:16
1  
this gives me cancer – geekazoid Sep 29 '15 at 18:01

Use underscore (or loDash :)):

var randomArray = [
   '#cc0000','#00cc00', '#0000cc'
];

// use _.sample
var randomElement = _.sample(randomArray);

// manually use _.random
var randomElement = randomArray[_.random(randomArray.length-1)];

Or to shuffle an entire array:

// use underscore's shuffle function
var firstRandomElement = _.shuffle(randomArray)[0];
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3  
_ is overkill .. imho – Abhishrek Dec 29 '12 at 16:38
9  
Using underscore or lodash for just one function would be overkill, but if you're doing any complicated js functionality then it can save hours or even days. – chim Jan 7 '13 at 9:43
1  
If the minimum value for underscore's random method is 0 it needs only the max value. Docs here – Aaron Apr 3 '13 at 19:06
14  
Nowadays underscore has also better choice for this _.sample([1, 2, 3, 4, 5, 6]) – Mikael Lepistö Dec 3 '13 at 8:43
1  
You will probably be using _ on any real project. It's not a bad thing. – superluminary Jul 14 '15 at 19:17
var random = items[Math.floor(Math.random()*items.length)]
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var rndval=items[Math.floor(Math.random()*items.length)];
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jQuery is JavaScript! It's just a JavaScript framework. So to find a random item, just use plain old JavaScript, for example,

var randomItem = items[Math.floor(Math.random()*items.length)]
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var items = Array(523,3452,334,31,...5346);

function rand(min, max) {
  var offset = min;
  var range = (max - min) + 1;

  var randomNumber = Math.floor( Math.random() * range) + offset;
  return randomNumber;
}


randomNumber = rand(0, items.length - 1);

randomItem = items[randomNumber];

credit:

Javascript Function: Random Number Generator

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1  
Thanks for this solution! – quardas Oct 31 '13 at 12:12

Here's yet another way:

function rand(items){
    return items[~~(Math.random() * items.length)];
}
share|improve this answer
1  
What is that crazy ~~? Never seen that in JS before. – hatboysam Nov 22 '14 at 22:20
2  
@hatboysam: do a search - it essentially converts the operand to the closest integer. – Dan Dascalescu Dec 16 '14 at 11:10

1. solution: define Array prototype

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

that will work on inline arrays

[2,3,5].random()

and of course predefined arrays

list = [2,3,5]
list.random()

2. solution: define custom function that accepts list and returns element

get_random = function (list) {
  return list[Math.floor((Math.random()*list.length))];
} 

get_random([2,3,5])
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// 1. Random shuffle items
items.sort(function() {return 0.5 - Math.random()})

// 2. Get first item
var item = items[0]

Shorter:

var item = items.sort(function() {return 0.5 - Math.random()})[0];
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3  
items[1] is the second item, the first is items[0]. – Linus Unnebäck Jul 14 '13 at 20:39
    
Oh, sorry. Of coz items[0] – Ivan Oct 20 '13 at 6:02
2  
This does not give you a uniform shuffle: sroucheray.org/blog/2009/11/… – rrauenza Aug 21 '14 at 20:29

If you are using node.js, you can use unique-random-array. It simply picks something random from an array.

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An alternate way would be to add a method to the Array prototype:

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

 var teams = ['patriots', 'colts', 'jets', 'texans', 'ravens', 'broncos']
 var chosen_team = teams.random(teams.length)
 alert(chosen_team)
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3  
arrays have a built-in length property - why pass it as a parameter?! – Alnitak Dec 24 '12 at 18:22
    
i guess my point is that you can pass in any length you want not just the length of the array - if you just wanted to randomize the first two entries you could put length as 2 without changing the method. I don't think there is a performance issue with passing the length property as a parameter but i may be wrong – James Daly Dec 24 '12 at 19:15
1  
It is generally not a good idea to extend host objects like this. You risk tripping over a future implementation of Array.random by the client that behaves differently than yours, breaking future code. You could at least check to make sure it doesn't exist before adding it. – Chris Baker Aug 19 '14 at 18:36
2  
How about some common sense from developers if ecmascript adds a random method to the array object within the next 10 years I'll give you a $100,000. It won't happen; Stop sounding like a stinky professor! Extending built in objects is just a preference and when done properly especially in a small project it's fine. – James Daly Aug 20 '14 at 2:03
Array.prototype.random = function () {
  return this[Math.random() * this.length | 0];
};

Array.prototype.pick = function (i) {
  return this.splice(i >= 0 ? i : Math.random() * this.length | 0, 1)[0];
};

Array.prototype.shuffle = function () {
  for (var i = this.length; i > 0; --i)
    this.push(this.splice(Math.random() * i | 0, 1)[0]);
  return this;
};
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