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What is the most efficient way to select 2 unique random elements from an array (ie, make sure the same element is not selected twice).

I have so far:

var elem1;
var elem2;

elem1 = elemList[Math.ceil(Math.random() * elemList.length)];
do {
  elem2 = elemList[Math.ceil(Math.random() * elemList.length)];
} while(elem1 == elem2)

But this often hangs my page load.

Any better solution?

Extra question, how do I extend this to n elements

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6 Answers 6

up vote 8 down vote accepted

do NOT use loops and comparisons. Instead

  • shuffle the array
  • take first two elements
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This would be slower for large input arrays. –  Dogbert Mar 15 '12 at 12:27
    
@Dogbert: definitely. On the other side, it would be interesting to know exactly how much slower for how large arrays. Care to jsperf this? –  georg Mar 15 '12 at 12:37
    
My array is quite big (500+ objects), as @Dogbert said, wouldnt this approach be less efficient? –  zsquare Mar 15 '12 at 12:37
1  
@thg435 Saying "500 objects isn't big at all" is like saying "500 lengths of string aren't very long". –  supermasher Feb 20 '14 at 12:45
1  
@supermasher: I don't understand what you said. –  georg Feb 20 '14 at 12:48

Your code will hang when the list contains only one item. Instead of using ==, I recommend to use ===, which looks more suitable in this case.

Also, use Math.floor instead of Math.ceil. The length property is equal to <highest index> + 1.

var elem1;
var elem2;
var elemListLength = elemList.length;

elem1 = elemList[Math.floor(Math.random() * elemListLength)];
if (elemListLength > 1) {
    do {
      elem2 = elemList[Math.floor(Math.random() * elemListLength)];
    } while(elem1 == elem2);
}
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My code hangs when there are more than one element also, will try with your code. –  zsquare Mar 15 '12 at 12:21
    
Also, any ideas how to extend it to picking n random elements? –  zsquare Mar 15 '12 at 12:21
1  
@zsquare The code and algorithm is similar to this one Generating unique random numbers (integers) between 0 and 'x' –  Rob W Mar 15 '12 at 12:24

http://underscorejs.org/#sample

_.sample(list, [n])

Produce a random sample from the list. Pass a number to return n random elements from the list. Otherwise a single random item will be returned.

_.sample([1, 2, 3, 4, 5, 6]);
=> 4

_.sample([1, 2, 3, 4, 5, 6], 3);
=> [1, 6, 2]

Looking at the source it uses shuffle just like @thg435 suggested.

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If you want to get n random elements you could create a shuffled version of your list and then return the first n elements of the shuffled array as a result.

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If I have a big array, would this method still be faster than picking n random elements? –  zsquare Mar 15 '12 at 12:35
    
This depends on your value of n in relation to the size of your array. If they are almost the same then shuffling will probably be faster. –  sietschie Mar 15 '12 at 12:43
    
my array is 500 plus, and I need 2 elements :) –  zsquare Mar 15 '12 at 12:48

On what Rob W told you, I'll add that a different solution would be to find a random point and for the second point find a random offset from the point:

var elem1;
var elem2;
var elemListLength = elemList.length;

var ix = Math.floor(Math.random() * elemListLength);
elem1 = elemList[ix];

if (elemListLength > 1) {
    elem2 = elemList[(ix + 1 + Math.floor(Math.random() * (elemListLength - 1))) % elemListLength];
}

We add 1 because the current element can't be reselected and subtract 1 because one element has already been selected.

For example, an array of three elements (0, 1, 2). We randomly select the element 1. Now the "good" offset value are 0 and 1, with offset 0 giving the element 2 and offset 1 giving the element 0.

Note that this will give you two random elements with different INDEX, not with different VALUE!

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Any advantages of this method over the orignal? –  zsquare Mar 15 '12 at 12:48
    
@zsquare No while cycle. It will give a correct couple of elements in constant deterministic time. And I consider it more elegant :-) :-) But in truth nothing really important. Speed isn't a problem in this case. –  xanatos Mar 15 '12 at 12:51
    
Upvotes for constant deterministic time :) –  zsquare Mar 15 '12 at 12:52
    
there is an error though, (elem1 + 1 + Math.floor(Math.random() * (elemListLength - 1))) % elemListLength elem1 is an object, you need to save the older index instead –  zsquare Mar 15 '12 at 13:00
    
@zsquare Right corrected –  xanatos Mar 15 '12 at 13:04

If you shuffle the array and splice the number of elements you want to return, the return value will contain as many items as it can, if you ask for more items than are in the array. You can shuffle the actual array or a copy, with slice().

Array.prototype.getRandom= function(num, cut){
    var A= cut? this:this.slice(0);
    A.sort(function(){
        return .5-Math.random();
    });
    return A.splice(0, num);
}
var a1= [1, 2, 3, 4, 5];
a1.getRandom(2)
>>[4, 2]

If you want to remove the selected items from the original array, so that a second call will not include the elements the first call returned, pass a second argument: getRandom(3,true);

window.Memry=window.Memry || {};
Memry.a1= [1, 2, 3, 4, 5, 6, 7, 8, 9, 10];

Memry.a1.getRandom(3,true);
>>[5,10,7]
Memry.a1.getRandom(3,true);
>>[3,9,6]
Memry.a1.getRandom(3,true);
>>[8,4,1]
Memry.a1.getRandom(3,true);
>>[2]
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