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Simplest code for array intersection in javascript
How to merge two arrays in Javascript

There are three arrays:

var items = Array(523,3452,334,31,5346);
var items_used = Array(3452,31,4123);
var items_new = Array();

First one is general, second is the items currenly in use. Third one includes all the items from the first array, witch are not mentioned in second.

How do I remove from the first array items, witch are used in second, and write the result to the third array?

We should get items_new = Array(523, 334, 5346). 3452 and 31 are removed, because they are mentioned in second array.

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marked as duplicate by Darin Dimitrov, McStretch, jessegavin, Neal, Oded May 6 '11 at 19:55

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.

4 Answers

up vote 5 down vote accepted

You could do this:

var items = Array(523,3452,334,31,5346);
var items_used = Array(3452,31,4123);
var items_compared = Array();

    $.each(items, function(i, val){
      if($.inArray(val, items_used) < 0)
          items_compared.push(val);
    });

That's it

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Interesting. Tryed, but it doesn't work for me. Some punctuation bug maybe? –  James May 6 '11 at 19:57
    
I tested it and is working fine. Are you sure you included jquery? –  Edgar Villegas Alvarado Mar 8 '12 at 12:57
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Why not a simple for loop?

for(var j = 0; j < items.length; j++)
{
    var found = false;
    for(var k = 0; k < items_used.length; k++)
    {
       if(items_used[k] == items[j])
       {
           found = true;
           break;
       }
    }

    if(!found)
       items_compared.push(items[j]);
}
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You didn't ask for fast. You simply asked for a solution. –  Tejs May 7 '11 at 2:16
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As a faster solution maybe :

var j, itemsHash = {};
for (j = 0; j < items.length; j++) {
  itemsHash[items[j]] = true;
}
for (j = 0; j < itemsUsed.length; j++) {
  itemsHash[itemsUsed[j]] = false;
}
for (j in itemsHash) {
   if (itemsHash[j]) {
     itemsCompared.push(j);
   }
}

runs in O(n) time, with a little more memory.

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Basically I would make the third have all elements in the first, then loop through the second array removing all of those elements found in the first.

var items_compared = items;
for(int i = 0; i < items_used.length; ++i)
{
    var indx = $.inArray(items_used[i], items_compared);
    if(indx != -1)
        items_compared.splice(indx, 1);
}
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