34

Given two arrays of unequal length:

var arr1 = ["mike", "sue", "tom", "kathy", "henry"]; //arr1.length = 5
var arr2 = ["howey", "jim", "sue", "jennifer", "kathy", "hank", "alex"]; //arr2.length = 7

How can I find the values common to both arrays? In this case "sue" and "kathy" should be returned.

marked as duplicate by Sachin, Andrew Whitaker, Rachel Gallen, von v., 一二三 Apr 26 '13 at 2:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Do you want sue and kathy to be in your results in this case? – ggbranch Apr 26 '13 at 1:16
  • I am looking to find the matches, correct. – Justin Apr 26 '13 at 1:18
44

Here is an intersection function based on Array.prototype.filter

function intersect(a, b) {
    var t;
    if (b.length > a.length) t = b, b = a, a = t; // indexOf to loop over shorter
    return a.filter(function (e) {
        return b.indexOf(e) > -1;
    });
}

var arr1 = ["mike", "sue", "tom", "kathy", "henry"];
    arr2 = ["howey", "jim", "sue", "jennifer", "kathy", "hank", "alex"];

intersect(arr1, arr2); // ["sue", "kathy"]

You might also want to consider the following

var arr1 = ['sue', 'sue', 'kathy'],
    arr2 = ['kathy', 'kathy', 'sue'];

The above would now give ["sue", "sue", "kathy"]. If you don't want duplicates you could do a further filter on this. This would also standardise results. i.e.

return a
    .filter(/* .. */) // same as before
    .filter(function (e, i, c) { // extra step to remove duplicates
        return c.indexOf(e) === i;
    });

Adding this will now return the same result as the previous arrays (["sue", "kathy"]), even though there were duplicates.

  • 1
    Thanks Paul for giving both the remove dupes and regular options, Nice bit of code. – JimTheDev Jan 26 '14 at 6:14
  • I dont believe this will work if one of the two arrays is empty, it will return a false positive...I simply did a check added a check for .length – afreeland Aug 5 '14 at 14:36
  • 8
    Arghh.. I hate if (condition) return true; construction.. Why not return condition;? – vp_arth Apr 14 '15 at 8:45
  • 1
    @vp_arth to make it more obvious what's going on, of course feel free to modify it if you decide to use the code – Paul S. Apr 14 '15 at 11:05
  • [1],[1,1] shouldn't it return [1] ? – Microsmsm Feb 17 '17 at 18:38
40

You could use Array.filter:

var result = arr1.filter(function(n) {
  return arr2.indexOf(n) > -1;
});
  • 1
    Why not just return arr2.indexOf(n) !== -1? You're making a new array either way. – Blender Apr 26 '13 at 1:17
  • 1
    @alex filter() returns array of matched values, while forEach does not return anything. – Nitin Jadhav Jul 7 '15 at 5:55
  • 2
    This should be marked as the accepted answer – scottmgerstl Jun 5 '18 at 2:51
19

You want to find the intersection of two arrays?

You could use Underscore's intersection(). This will give you a list of values present in both arrays.

var commonValues = _.intersection(arr1, arr2);

jsFiddle.

If you didn't want to use a library, it'd be trivial to implement...

var commonValues = arr1.filter(function(value) { 
                                   return arr2.indexOf(value) > -1;
                               });

jsFiddle.

If Array.prototype.filter() and Array.prototype.indexOf() are not supported in your target platforms...

var commonValues = [];
var i, j;
var arr1Length = arr1.length;
var arr2Length = arr2.length;

for (i = 0; i < arr1Length; i++) {
    for (j = 0; j < arr2Length; j++) {
        if (arr1[i] === arr2[j]) {
            commonValues.push(arr1[i]);
        }
    }
}

jsFiddle.

  • Reading this made me start thinking.. what should the expected result of an intersection be if you have "sue" appearing multiple times in one/both of the arrays? – Paul S. Apr 26 '13 at 1:38
  • @PaulS. Interesting thoughts. I guess this would add it multiple times if it were in the source array multiple times. If it were an issue, you could use a drop duplicates type method on the result (or factor it as you went in the above code). – alex Apr 26 '13 at 1:40
8

Iterate over one of the arrays and compare the objects with the other:

var results = [];

for (var i = 0; i < arr1.length; i++) {
    if (arr2.indexOf(arr1[i]) !== -1) {
        results.push(arr1[i]);
    }
}

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