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I have severals divs and an array. I insert each of the divs (id) in the aray with a function. If I apply that function to new divs, the array will start with index value 0, intead of keeping the last index value.

Here is a fiddle: http://jsfiddle.net/nQWfG/

assign('.firstround');

Assigns index values of 0, 1, 2.

assign('.secondround');

Assigns index values of 0, 1, 2 again, and I want them to be 3, 4, 5.

EDIT

The reason I am doing this two times is because $('.secondround') divs will be loaded time later via ajax.

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5 Answers 5

up vote 0 down vote accepted

Just define a global index: http://jsfiddle.net/nQWfG/2/

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It was that simple. –  Alvaro Sep 3 '12 at 10:40

Simplest way:

assign('.firstround, .secondround');

EDIT

You can also add using Array.push

myArray.push($('#' + index));

instead of

myArray[index] = $('#' + index);
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I think, this is only an example an he really needs the separate calls (e.g. when used in a click event handler). –  LeJared Sep 3 '12 at 8:22
    
I can't do that as my assign('.secondround'); will be assigned to (later) ajax loaded divs –  Alvaro Sep 3 '12 at 8:22
    
@Alvaro, I said it was the simplest way but I had the feeling it was not gonna be what you wanted, worth a try though –  Alexander Sep 3 '12 at 8:29

I think you need to have a var outside of the function to keep track of that, and increment it instead of using the index of the each function. It's the way 'each' works.

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This line is the problem:

myArray[index] = $('#' + index);

index is the index of the element in the set of elements matched by the selector.

Once you run your first selector through your function, myArray contains 3 elements indexed 0, 1 and 2. Next time around, you just re-assign three new elements to the same indices, as the selector only changed the matched elements, not their relative indices.

I'm not entirely sure what you're trying to do, but I would use myArray.push() along with .index() to do what I think you're trying to do:

Demo: http://jsfiddle.net/nQWfG/4/


A better approach would be to use jQuery objects:

var $elements = $('.firstround, .secondround').each(function(index) {
    $(this).text(index);
});

$elements.eq(1).css('background', 'red');
$elements.eq(4).css('background', 'green');​

Demo: http://jsfiddle.net/nQWfG/6/

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I am trying to include elements loaded later via ajax to the array ('.secondround' in the example), will this solution work with those? –  Alvaro Sep 3 '12 at 8:28
    
jQuery objects don't monitor the DOM for newly inserted elements. You'd have to call this selector after the new elements are loaded via AJAX. –  Blender Sep 3 '12 at 8:29
    
So if in the first solution I apply assign('.secondround'); when ajax has finished, will it work? I can't use ajax in jsffidle. –  Alvaro Sep 3 '12 at 8:37
    
I would not suggest that you use your current code. –  Blender Sep 3 '12 at 8:38

check this out:

http://jsfiddle.net/nQWfG/10/

var obj = function(){
     this.init();   
};

obj.prototype = $.extend(true, obj.prototype, {

    myArray: new Array(),
    index: 0,

    init: function(){
        // initiate first round
        this.assign('.firstround');
        // on .button click go ajax
        $('.button').on('click', this.ajaxFunction);
    },

    assign: function(element){
        var context = this;
            $(element).each(function() {
                $(this).text(context.index).attr('id', context.index);
                context.myArray[context.index] = $('#' + context.index);
                context.index++;
        });
    },

    ajaxFunction: function(){
        var context = this;
        $.ajax({
          type: "POST",
          url: "some.php",
          data: { name: "John", location: "Boston" },
          success: context.ajaxSuccess,
          error: context.ajaxError
        });
    },

    ajaxSuccess: function(){
        // on ajax succes initiate second round
        console.log("success");
        this.assign('.secondround');
    },

    ajaxError: function(){
        console.log("error");
    },
});

$(function () {
        var page= new obj();              
        return obj;
});
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Wow, thanks, too much things here I didn't know. Let me try it. –  Alvaro Sep 3 '12 at 8:46

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