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Say I have an array of [34, 35, 45, 48, 49] and another array of [48, 55]. How can I get a resulting array of [34, 35, 45, 48, 49, 55]?

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8  
That's called a union, not a difference. –  BoltClock Sep 2 '10 at 18:00
1  
Note that you don't need jQuery. This can be done in JavaScript, as shown below. –  justkt Sep 2 '10 at 18:07
    
To remove or not to remove the jquery tag... hmm –  palswim Sep 2 '10 at 18:42

13 Answers 13

up vote 21 down vote accepted

If you don't need to keep the order, and consider 45 and "45" to be the same:

function union_arrays (x, y) {
  var obj = {};
  for (var i = x.length-1; i >= 0; -- i)
     obj[x[i]] = x[i];
  for (var i = y.length-1; i >= 0; -- i)
     obj[y[i]] = y[i];
  var res = []
  for (var k in obj) {
    if (obj.hasOwnProperty(k))  // <-- optional
      res.push(obj[k]);
  }
  return res;
}

alert(union_arrays([34,35,45,48,49], [44,55]));
// shows [49, 48, 45, 35, 34, 55, 44]
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Quite elegant. I like this. –  Peter Ajtai Sep 2 '10 at 18:29
    
don't care about the order. this worked fine. thx –  CFNinja Sep 2 '10 at 19:26
    
This will fail for arrays of objects. union_arrays([{a:1}], [{b:2}]) will return [{b:2}]. –  JoeCoder Jul 4 at 14:39

If you use the library underscore you can write like this

_.union([34,35,45,48,49], [48,55]);
// [34, 35, 45, 48, 49, 55]

Ref: http://documentcloud.github.com/underscore/#union

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I'm probably wasting time on a dead thread here. I just had to implement this and went looking to see if I was wasting my time.

I really like KennyTM's answer. That's just how I would attack the problem. Merge the keys into a hash to naturally eliminate duplicates and then extract the keys. If you actually have jQuery you can leverage its goodies to make this a 2 line problem and then roll it into an extension. The each() in jQuery will take care of not iterating over items where hasOwnProperty() is false.

jQuery.fn.extend({
    union: function(array1, array2) {
        var hash = {}, union = [];
        $.each($.merge($.merge([], array1), array2), function (index, value) { hash[value] = value; });
        $.each(hash, function (key, value) { union.push(key); } );
        return union;
    }
});

Note that both of the original arrays are left intact. Then you call it like this:

var union = $.union(array1, array2);
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I think this is the best answer there is because this function appears to work in O(2n) (faster due to the two non-nested for loops) as opposed to the rest which appear to work in a O(n^2) (slower) fashion. –  Hengjie Mar 2 '13 at 0:31
    
Hengjie, Really O(2n)? I think, $.merge has O(n) or even O(n*n) not O(1). This can be optimized to O(3n) if fill hash separately without merges –  vp_arth Sep 23 '13 at 5:47
1  
@Hengjie: Kenny's answer is O(3n) –  Kumar Harsh Jan 19 at 10:30
function unique(arrayName)
            {
                var newArray=new Array();
                label:for(var i=0; i<arrayName.length;i++ )
                {  
                    for(var j=0; j<newArray.length;j++ )
                    {
                        if(newArray[j]==arrayName[i]) 
                            continue label;
                    }
                    newArray[newArray.length] = arrayName[i];
                }
                return newArray;
            }

var arr1 = new Array(0,2,4,4,4,4,4,5,5,6,6,6,7,7,8,9,5,1,2,3,0);
var arr2= new Array(3,5,8,1,2,32,1,2,1,2,4,7,8,9,1,2,1,2,3,4,5);
var union = unique(arr1.concat(arr2));
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Maybe I'm just confused, but how would this work? You're passing arr3, but there is no arr3, and even if there was it doesn't look like it's actually a union on arr1 | arr2 like he requested? –  Angelo R. Sep 2 '10 at 18:06
2  
I'm confused how this would not work? –  Byron Cobb Sep 2 '10 at 18:07
1  
@Angelo R.: you're right: "there is no arr3." –  BoltClock Sep 2 '10 at 18:10
    
var arr2 = []; if (currTaskIDs != '') { if( $.inArray(currTaskIDs, arr2) == -1) { arr2.push(currTaskIDs); } arr2 = unique(arr2.concat(arr)); } } now, currTaskIDs is = 34,35,45,48,49 if i select say 50, it removes all of them and just displays 50 –  CFNinja Sep 2 '10 at 18:11
    
by the way, if i just use this: var currTaskIDs = $("#taskIDList").val(); // begin: create the task list: if (currTaskIDs != '') { if( $.inArray(currTaskIDs, arr) == -1) { arr.push(currTaskIDs); } arr = unique(arr); } it works perfectly first time. if i add another value to my currTaskIDs, then it becomes something like : 34,35,45,48,49,50,34,35,45,48,49,50,38 –  CFNinja Sep 2 '10 at 18:14

I would first concatenate the arrays, then I would return only the unique value.

You have to create your own function to return unique values. Since it is a useful function, you might as well add it in as a functionality of the Array.

In your case with arrays array1 and array2 it would look like this:

  1. array1.concat(array2) - concatenate the two arrays
  2. array1.concat(array2).unique() - return only the unique values. Here unique() is a method you added to the prototype for Array.

The whole thing would look like this:

jsFiddle example

Array.prototype.unique = function () {
    var r = new Array();
    o:for(var i = 0, n = this.length; i < n; i++)
    {
        for(var x = 0, y = r.length; x < y; x++)
        {
            if(r[x]==this[i])
            {
                continue o;
            }
        }
        r[r.length] = this[i];
    }
    return r;
}
    var array1 = [34,35,45,48,49];
    var array2 = [34,35,45,48,49,55];

      // concatenate the arrays then return only the unique values
    alert(array1.concat(array2).unique());
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I prefer to use if(r.indexOf(this[i])!==-1) continue; instead inner loop and r.push(this[i]) instead r[r.length]=this[i] here –  vp_arth Sep 23 '13 at 5:14

First set your two arrays. Merge them into a new array. Make the new array unique and then sort it.

var first = [34,35,45,48,49];
    var second = [48,55];
    var third = $.merge( $.merge([],first), second);
    var elem = $.unique(third).sort();
    alert(elem);
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4  
Careful with sort! [500, 3, 9].sort() will produce [3, 500, 9]! ... It's lexographic: jsfiddle.net/NLW4v –  Peter Ajtai Sep 2 '10 at 18:20
    
look for sort on w3schools, they have a tweak for numebrs. –  Sirber Sep 2 '10 at 18:42
    
this is wrong!!, wont always work, try on [1,1,2,2,3,3,4,4,5,5,1,'a','b',1,1,1,1,2,2,2,2,'a','b']; –  Praveen Prasad Apr 25 '11 at 5:07
    
@Praveen Prasad if you look at his example, he does not mention sorting characters and/or strings –  karrr May 31 '11 at 2:23
4  
I wonder whether this would work, cos the jQuery.unique method is only supposed to work on arrays of DOM elements, not strings or numbers. –  Anand S Dec 19 '12 at 7:41

Adapted from: http://stackoverflow.com/a/4026828/1830259

Array.prototype.union = function(a) 
{
    var r = this.slice(0);
    a.forEach(function(i) { if (r.indexOf(i) < 0) r.push(i); });
    return r;
};

Array.prototype.diff = function(a)
{
    return this.filter(function(i) {return a.indexOf(i) < 0;});
};

var s1 = [1, 2, 3, 4];
var s2 = [3, 4, 5, 6];

console.log("s1: " + s1);
console.log("s2: " + s2);
console.log("s1.union(s2): " + s1.union(s2));
console.log("s2.union(s1): " + s2.union(s1));
console.log("s1.diff(s2): " + s1.diff(s2));
console.log("s2.diff(s1): " + s2.diff(s1));

// Output:
// s1: 1,2,3,4
// s2: 3,4,5,6
// s1.union(s2): 1,2,3,4,5,6
// s2.union(s1): 3,4,5,6,1,2
// s1.diff(s2): 1,2
// s2.diff(s1): 5,6 
share|improve this answer
function unionArrays() {
    var args = arguments,
    l = args.length,
    obj = {},
    res = [],
    i, j, k;

    while (l--) {
        k = args[l];
        i = k.length;

        while (i--) {
            j = k[i];
            if (!obj[j]) {
                obj[j] = 1;
                res.push(j);
            }
        }   
    }

    return res;
}

Somewhat similar in approach to alejandro's method, but a little shorter and should work with any number of arrays.

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I like Peter Ajtai's concat-then-unique solution, but the code's not very clear. Here's a nicer alternative:

function unique(x) {
  return x.filter(function(elem, index) { return x.indexOf(elem) === index; });
};
function union(x, y) {
  return unique(x.concat(y));
};

Since indexOf returns the index of the first occurence, we check this against the current element's index (the second parameter to the filter predicate).

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function unionArray(arrayA, arrayB) {
  var obj = {},
      i = arrayA.length,
      j = arrayB.length,
      newArray = [];
  while (i--) {
    if (!(arrayA[i] in obj)) {
      obj[arrayA[i]] = true;
      newArray.push(arrayA[i]);
    }
  }
  while (j--) {
    if (!(arrayB[j] in obj)) {
      obj[arrayB[j]] = true;
      newArray.push(arrayB[j]);
    }
  }
  return newArray;
}
unionArray([34, 35, 45, 48, 49], [44, 55]);

Faster http://jsperf.com/union-array-faster

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You can use a jQuery plugin: jQuery Array Utilities

For example the code below

$.union([1, 2, 2, 3], [2, 3, 4, 5, 5])

will return [1,2,3,4,5]

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Just wrote before for the same reason (works with any amount of arrays):

/**
 * Returns with the union of the given arrays.
 *
 * @param Any amount of arrays to be united.
 * @returns {array} The union array.
 */
function uniteArrays()
{
    var union = [];
    for (var argumentIndex = 0; argumentIndex < arguments.length; argumentIndex++)
    {
        eachArgument = arguments[argumentIndex];
        if (typeof eachArgument !== 'array')
        {
            eachArray = eachArgument;
            for (var index = 0; index < eachArray.length; index++)
            {
                eachValue = eachArray[index];
                if (arrayHasValue(union, eachValue) == false)
                union.push(eachValue);
            }
        }
    }

    return union;
}    

function arrayHasValue(array, value)
{ return array.indexOf(value) != -1; }
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I think it would be simplest to create a new array, adding the unique values only as determined by indexOf.

This seems to me to be the most straightforward solution, though I don't know if it is the most efficient. Collation is not preserved.

var a = [34, 35, 45, 48, 49],
    b = [48, 55];

var c = union(a, b);

function union(a, b) { // will work for n >= 2 inputs
    var newArray = [];

    //cycle through input arrays
    for (var i = 0, l = arguments.length; i < l; i++) {

        //cycle through each input arrays elements
        var array = arguments[i];
        for (var ii = 0, ll = array.length; ii < ll; ii++) {
            var val = array[ii];

            //only add elements to the new array if they are unique
            if (newArray.indexOf(val) < 0) newArray.push(val);
        }
    }
    return newArray;
}
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