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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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100  
the answer will not involve jQuery –  Alnitak May 6 '11 at 17:51
9  
I've never seen so many absolutely identical responses to a question... –  Blindy May 6 '11 at 17:52
4  
great minds, @Blindy –  Kelly May 6 '11 at 17:54
5  
I found a way to involve jQuery!! (see my second answer) –  Alnitak May 6 '11 at 18:10
9  
"I found a way to involve jQuery!!" Kill me now. –  buley Mar 28 at 13:51

12 Answers 12

up vote 363 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
    
Only using the array length will result in never actually selecting the last item in the array, except in the extremely rare situation when the random number selected is 1.0000. See stackoverflow.com/a/16111426/303694 –  Denis Gorbachev Sep 16 '13 at 14:17
24  
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
2  
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 at 22:17
    
I found a nice and simple way: javascript.about.com/library/blsort2.htm –  Ankit Patial Jul 9 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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13  
Must use jQuery. Haha. Hahaha! Ha... –  neoascetic Feb 10 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 at 13:51
3  
+1 for the fair dice roll! For those poor souls who don't get the joke. –  The Guy with The Elf Hat Aug 19 at 13:16
var rndval=items[Math.floor(Math.random()*items.length)];
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var random = items[Math.floor(Math.random()*items.length)]
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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];
share|improve this answer
1  
_ is overkill .. imho –  darkyen00 Dec 29 '12 at 16:38
3  
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
9  
Nowadays underscore has also better choice for this _.sample([1, 2, 3, 4, 5, 6]) –  Mikael Lepistö Dec 3 '13 at 8:43

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)]
share|improve this answer
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: http://www.earn-web-cash.com/2008/02/24/random-number-function/

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Thanks for this solution! –  quardas Oct 31 '13 at 12:12
// 1. Random shuffle items
items.sort(function() {return 0.5 - Math.random()})

// 2. Get first item
var item = items[1]

Shorter:

var item = items.sort(function() {return 0.5 - Math.random()})[1];
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2  
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
1  
This does not give you a uniform shuffle: sroucheray.org/blog/2009/11/… –  rrauenza Aug 21 at 20:29

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
    
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 at 18:36
1  
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 at 2:03

Here's yet another way:

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

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])
share|improve this answer
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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