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I am looking for a concise JavaScript function which takes some values and returns the unique values sorted by the number of occurrences, the most frequent first.

For example, if the input is the array [3,2,2,2,2,1,2,1] then the output should be [2,1,3].

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3  
After you're done looking, start implementing :) –  Sergio Tulentsev Feb 14 '12 at 16:21
    
What other collections do you mean? There are only objects ({}) and arrays ([]), and I'm not sure how you'd apply this to objects. –  Matt Ball Feb 14 '12 at 16:23
    
Your probably right, I didn't think so much about that, I have removed that stuff from the original question. –  user1069609 Feb 14 '12 at 16:29

2 Answers 2

up vote 16 down vote accepted

Here's my first stab. I bet we can make it simpler, but this seems okay.

 function fancyUnique(arr) {

   var counts = {}; // store counts for each value
   var fancy = []; // put final results in this array
   var count = 0; // initialize count

   // create counts object to store counts for each value of arr
   for (var i = 0; i < arr.length; i++) {
     count = counts[arr[i]] || 0;  // use existing count or start at 0
     count++; // increment count
     counts[arr[i]] = count; // update counts object with latest count
   }

   // take all keys from counts object and add to array
   // also: object keys are string, so must parseInt()
   for (var key in counts) {
     fancy.push(parseInt(key, 10)); 
   }

   // sort results array in highest to lowest order
   return fancy.sort(function(a, b) { 
     return counts[b] - counts[a]; 
   })
 }


fancyUnique([22,22,1,1,1,1]) // [ 1, 22 ]
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I like it. I can't see any way to improve it actually. Did you just write that from scratch or is it from your lib? :) –  user1069609 Feb 14 '12 at 16:52
    
It's a little cryptic, e.g. what happens in the count = uniques[arr[i]] || 0; line, could you add a few comments please –  user1069609 Feb 14 '12 at 16:59
    
I will add a comment. It just says basically if there is no count yet for a specific value then initialize it at 0. –  Jamund Ferguson Feb 14 '12 at 18:13
24  
It works from gkoberger.github.com/stacksort? ! –  Remus Rusanu Mar 18 '13 at 19:08
    
Mm... stacksort took this: [[5,8,4,9], [12,32,6,5,8], [4,2]] and turned it into this: [5,12,4] using this answer. Little bit odd. –  nzifnab Mar 20 '13 at 21:40
var data=[3,2,2,2,2,1,2,1];
console.log(countUnique(data));

function countUnique(data){
  var count={};
  $(data).each(function(index){                      
       count[data[index]] = count[data[index]]+1 || 1;             
  });
  return count;
}

output= "Object {1: 2, 2: 5, 3: 1}"

This works for strings as well.

Reading the output can be done using the following loop

   for(var key in count)
    {
             console.log(key); // prints the index of the array
             console.log(count[key]); //prints the number of occurrences  

    }
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