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.

I have two arrays:

var array_old = [{id:"5436", title:"I Like you boy"}, {id:"5437", title:"Hello how are you"}];
var array_new = [{id:"5436", title:"I Like you boy"}, {id:"1132", title:"I'm fine"}];

$.each(array_old, function(id, array)
{
    if(!$.inArray(array['id'], array_new, 1)>-1){
        alert(array['id'] + " does not exist in array_new");
    }
});

I want to check if the IDs of array_old exist in array_new, so I'm expecting the code to output "5437 does not exist in array_new" in this example.

I can't find any function that would allow me to do that, so how should I do it?

share|improve this question
    
What's the question??? Are you saying that you're expecting it to alert(), but it's not doing it? Because it sure does: jsfiddle.net/VHb3Q –  meetamit Nov 20 '12 at 23:50
    
@meetamit it also says that 5436 does not exist, but it does exist, so the script is not working –  Tebb Nov 20 '12 at 23:56
    
Are you expect the arrays to be in the same order? Would it be OK to sort them? –  Bergi Nov 21 '12 at 0:01
add comment

4 Answers

http://jsfiddle.net/tppiotrowski/VHb3Q/2/

var array_old = [{
    id: "5436",
    title: "I Like you boy"},
{
    id: "5437",
    title: "Hello how are you"}];
var array_new = [{
    id: "5436",
    title: "I Like you boy"},
{
    id: "1132",
    title: "I'm fine"}];

$.each(array_old, function(old_index, old_obj) {
    var old_id = old_obj['id'];
    var found = false;
    $.each(array_new, function(new_index, new_obj) {
        if (new_obj['id'] == old_id) {
            found = true;
        }
    });
    if (!found) {
        alert(old_id + " does not exist in array_new");
    }
});​
share|improve this answer
add comment

Depends on how big your arrays are - you might want to use a more performant solution.

  • The easiest solution (which both you and @Tebb found) has Θ(n*m)
  • If you would optimize this a bit (breaking out if you did [not] found the element - see @gonchuki), you are still at O(n*m)
  • You could assume that both arrays are in the same order, and run only one loop: O(min(n,m)). If you'd need to sort them before that, you'd get O(n*log n+m*log m).
  • Best would be using a hash table for O(1) lookup, resulting in O(n+m). You can easily use a JS object for that:
var counts = {};
for (var i=0; i<array_new.length; i++)
    counts[array_new[i].id] = (counts[array_new[i].id] || 0) + 1;

return array_old.every(function(item) {
    return item.id in counts && counts[item.id]--;
});

(Demo)

share|improve this answer
    
could you implement this in a jsfiddle? –  delinquentme Jun 14 '13 at 18:52
    
jsfiddle.net/t3Ary/3 <<< I'm getting output .. but I don't follow why to place in the given KV pairs in counts? –  delinquentme Jun 14 '13 at 21:49
    
The most I can come up with is the "return array_old.every" gives us a value whether an item is indexed in counts ... But the current version returns false ... which isn't wildly useful –  delinquentme Jun 14 '13 at 22:09
    
It doesn't place the KV pairs in counts, but only the keys (ids) which you were looking for. It counts them per id (usually will be resulting in 1), and then requires for each item in the array_old to have a positive count (and decrements it to detect multiple occurrences). It returns false if the arrays do not match, and true otherwise. –  Bergi Jun 15 '13 at 12:48
add comment

I found a way myself, but I don't know if this is the best way to do it:

var array_old = [{id: "5436",title: "I Like you boy"},{id: "5437",title: "Hello how are you"},{id: "5438",title: "Hello how are you2"}];
var array_new = [{id: "5436",title: "I Like you boy"},{id: "1132",title: "I'm fine"}];

$.each(array_old, function(id, array){

    found = 0;

    $.each(array_new, function(id2, array2) {

        if(array['id']==array2['id'])
        {
            found++;
        }

    });

    if(found==0)
    {
        alert(array['id']+' does not exist in array_new');
    }

});

http://jsfiddle.net/FAb3k/2/

share|improve this answer
    
that solution looks acceptable. you may want to say var found = 0; to keep the variable in the local scope thus preventing it from polluting the global namespace. –  teddybeard Nov 21 '12 at 0:00
    
you can break the each loop using return false to improve performance also when the value is found –  charlietfl Nov 21 '12 at 0:55
add comment

Throwing in a wild alternative just because it works and it's ultimately easier to read (no idea about performance, but let's skip that since I'm doing it to show another way to do it)

var ids_old = $.map(array_old, function(item) { return item.id; });
var ids_new = $.map(array_new, function(item) { return item.id; });

var duplicates = $.grep(ids_old, function(i, id) { 
    return $.inArray(id, ids_new) !== -1;
});

Be aware that the end result is that you get a list of the duplicate IDs themselves, this other alternative lets you collect the item itself:

var ids_new = $.map(array_new, function(item) { return item.id; });

var duplicates = $.grep(array_old, function(i, item) { 
    return $.inArray(item.id, ids_new) !== -1;
});

Bonus points: even if his example is pure jQuery, notice that on ECMAScript5 compliant browsers you can use the native array counterparts to achieve the same result.

share|improve this answer
add comment

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.