I have an array as follows:

var myArray = [3, 6, 8, 9, 16, 17, 19, 37]

I am needing to remove outliers as well as group the remaining data into any distinctive groups that appear. In this case 37 would be removed as an outlier and [3, 6, 8, 9] would be returned as the first group and [16, 17, 19] would be returned as the second.

Here is a second example

var mySecondArray = [80, 90, 100, 200, 280, 281, 287, 500, 510, 520, 800]

200 and 800 would be removed as an outlier, [80, 90, 100] would be the first group, [280, 281, 287] would be the second and [500, 510, 520] as the third.

I already have written code that works to remove outliers on the outside which is simple enough using the first and third quartile. In other words it would have no problem removing 800 from the mySecondArray as an outlier. But it would not remove 280 as an outlier.

I suppose that an outlier could then be defined as a group with less than n members so the real issue is what is an efficient method to divide up this data into an appropriate number of groups?

Any help is much appreciated!

  • you're probably looking for K-means clustering – Kyle Falconer Aug 23 '16 at 23:30
  • So is your n == 10 here? – Redu Aug 23 '16 at 23:34
  • No, if n was 10 then everything would be an outlier in my examples :) n would probably be 3 in my examples. In other words a group with 2 or less items is an outlier. – abagshaw Aug 23 '16 at 23:35
  • @KyleFalconer thanks for pointing me towards that - K-means looks like pretty much what I'm looking for. The only thing is that it looks like for a given implementation you have to specify how many groups you want to get out and also the distance between them. Is there no way to have it detect that for you based on the data present? – abagshaw Aug 23 '16 at 23:42
  • Usually an outlier is a point greater than Q3 + 1.5 IQR or lower than Q1 - 1.5 IQR. I don't understand how you want to determine the groups. – Oriol Aug 23 '16 at 23:59
up vote 1 down vote accepted

jsFiddle Demo

This is just a simple implementation, it may not be the perfect solution to this set of problems but it should suffice for your example - it may work beyond that as well.

By looking at the average distance between your numbers, and comparing that distance to the distance on either side of each number, it should be possible to remove outliers. Thus following, the same metric can be used for grouping.

function Sum(arr){
	return arr.filter(i => !isNaN(i)).reduce((p,c) => p+c,0);
};
function Avg(arr){
	return Sum(arr) / arr.length;
}
function groupby(arr,dist){
  var groups = [];
  var group = [];
  for(var i = 0; i < arr.length; i++){
    group.push(arr[i]);
    if(arr[i+1] == undefined)continue;
    if(arr[i+1] - arr[i] > dist){
      groups.push(group);
      group = [];
    }
  }
  groups.push(group);
  return groups;
}
function groupOutlier(arr){
  var distbefore = arr.map((c,i,a) => i == 0 ? undefined : c - a[i-1]);
  var distafter = arr.map((c,i,a) => i == a.length-1 ? undefined : a[i+1] - c);

  var avgdist = Avg(distafter);

  var result = arr.filter((c,i,a) => !(distbefore[i] == undefined ? distafter[i] > avgdist : (distafter[i] == undefined ? distbefore[i] > avgdist : distbefore[i] > avgdist && distafter[i] > avgdist)));
  
  return groupby(result,avgdist);
}

var myArray = [3, 6, 8, 9, 16, 17, 19, 37];

console.log(groupOutlier(myArray));

var mySecondArray = [80, 90, 100, 200, 280, 281, 287, 500, 510, 520, 800]

console.log(groupOutlier(mySecondArray));

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