Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
var store = ['1','2','2','3','4'];

I want to find out that 2 appear the most in the array. How do I go about doing that?

share|improve this question
3  
is that array always sorted (as it is in your example)? –  Thilo Sep 24 '10 at 3:02
1  
See here for my pseudo-code answer: stackoverflow.com/questions/3774757/… –  paxdiablo Sep 24 '10 at 3:06
1  
If the answer to @Thilo's question is yes, same elements will always be grouped together. This allows you to loop through the list once comparing each item to the previous one and keeping a count of how many same elements you've encountered and the highest run encountered along the way. At the end of the loop, you'll have your answer. This will run in linear time. If the answer to @Thilo's question is no, then sort the list first, followed by the strategy above. –  Asaph Sep 24 '10 at 3:09
    
@Asaph: if the array is not sorted, codaddict's algorithm is better than sorting (if you can spare the extra memory for the frequency counters) –  Thilo Sep 24 '10 at 3:12
    
@Thilo: True. It's a little better. But sorting is not such a big expense. @codaddict's algorithm runs in linear space and linear time. My suggestion runs in constant space and O(n log n + n) time, depending on sorting algorithm. –  Asaph Sep 24 '10 at 3:22

7 Answers 7

up vote 14 down vote accepted

I would do something like:

var store = ['1','2','2','3','4'];
var frequency = {};  // array of frequency.
var max = 0;  // holds the max frequency.
var result;   // holds the max frequency element.
for(var v in store) {
        frequency[store[v]]=(frequency[store[v]] || 0)+1; // increment frequency.
        if(frequency[store[v]] > max) { // is this frequency > max so far ?
                max = frequency[store[v]];  // update max.
                result = store[v];          // update result.
        }
}
share|improve this answer
    
+1 For a better implementation of what I said :P –  Jamie Wong Sep 24 '10 at 3:09
1  
+1 - Very nice... But I would use a for loop to block corner cases where the array object has properties: jsfiddle.net/9eJd3 –  Peter Ajtai Sep 24 '10 at 3:21
    
I'd suggest the addition of if (store.hasOwnProperty(v)) in case someone has decided to modify Object or Array's prototype, as folks seem to be somewhat keen on that doing around here ;P –  Dagg Nabbit Sep 24 '10 at 3:26
    
@no - That's not good enough, since store can have its own properties that are not values of the array. ( jsfiddle.net/vR5JK ). A for loop will do the trick though, since anything outside the values in the array are not included in store[0] to store[store.length] –  Peter Ajtai Sep 24 '10 at 3:29
    
Ooops, by for loop I meant for(var v=0; v < store.length; ++v){...}. –  Peter Ajtai Sep 24 '10 at 3:33

Make a histogram, find the key for the maximum number in the histogram.

var hist = [];
for (var i = 0; i < store.length; i++) {
  var n = store[i];
  if (hist[n] === undefined) hist[n] = 0;
  else hist[n]++;
}

var best_count = hist[store[0]];
var best = store[0];
for (var i = 0; i < store.length; i++) {
  if (hist[store[i]] > best_count) {
    best_count = hist[store[i]];
    best = store[i];
  }
}

alert(best + ' occurs the most at ' + best_count + ' occurrences');

This assumes either there are no ties, or you don't care which is selected.

share|improve this answer
1  
Not necessary if the array is sorted, though. Then it can be a single-pass operation. –  Thilo Sep 24 '10 at 3:09
1  
As a side note, this is called the mode of the distribution. –  André Caron Sep 24 '10 at 3:09

If the array is sorted this should work:

function popular(array) { 
   if (array.length == 0) return [null, 0];
   var n = max = 1, maxNum = array[0], pv, cv;

   for(var i = 0; i < array.length; i++, pv = array[i-1], cv = array[i]) {
      if (pv == cv) { 
        if (++n >= max) {
           max = n; maxNum = cv;
        }
      } else n = 1;
   }

   return [maxNum, max];
};

popular([1,2,2,3,4,9,9,9,9,1,1])
[9, 4]

popular([1,2,2,3,4,9,9,9,9,1,1,10,10,10,10,10])
[10, 5]
share|improve this answer
    
The values don't need to be ordered, just grouped. Fewer comparisons arise if the current mode candidate's frequency is checked if (pv != cv). –  greybeard Mar 10 at 7:53

This version will quit looking when the count exceeds the number of items not yet counted.

It works without sorting the array.

Array.prototype.most= function(){
    var L= this.length, freq= [], unique= [], 
    tem, max= 1, index, count;
    while(L>= max){
        tem= this[--L];
        if(unique.indexOf(tem)== -1){
            unique.push(tem);
            index= -1, count= 0;
            while((index= this.indexOf(tem, index+1))!= -1){
                ++count;
            }
            if(count> max){
                freq= [tem];
                max= count;
            }
            else if(count== max) freq.push(tem);
        }
    }
    return [freq, max];
}

    //test
    var A= ["apples","oranges","oranges","oranges","bananas",
   "bananas","oranges","bananas"];
    alert(A.most()) // [oranges,4]

    A.push("bananas");
    alert(A.most()) // [bananas,oranges,4]
share|improve this answer

If you have really large data, you may need something like the count-min sketch.

share|improve this answer

If the array contains strings try this solution

    function GetMaxFrequency (array) {
    var store = array;
    var frequency = [];  // array of frequency.
    var result;   // holds the max frequency element.

    for(var v in store) {
        var target = store[v];
        var numOccurences = $.grep(store, function (elem) {
        return elem === target;
        }).length;
        frequency.push(numOccurences);

    }
    maxValue = Math.max.apply(this, frequency);
    result = store[$.inArray(maxValue,frequency)];
    return result;
}
var store = ['ff','cc','cc','ff','ff','ff','ff','ff','ff','yahya','yahya','cc','yahya'];
alert(GetMaxFrequency(store));
share|improve this answer

I solved it this way for finding the most common integer

function mostCommon(arr) {
    // finds the first most common integer, doesn't account for 2 equally common integers (a tie)

    freq = [];

    // set all frequency counts to 0
    for(i = 0; i < arr[arr.length-1]; i++) {
      freq[i] = 0;
    }

    // use index in freq to represent the number, and the value at the index represent the frequency count 
    for(i = 0; i < arr.length; i++) {
      freq[arr[i]]++; 
    }

    // find biggest number's index, that's the most frequent integer
    mostCommon = freq[0];
    for(i = 0; i < freq.length; i++) {
      if(freq[i] > mostCommon) {
        mostCommon = i;
      }
    }

    return mostCommon;
} 
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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