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I say "class" because classes don't technically exist in JS. But here is my simplified class

function clsDragStack(divWithin,divConstrain,arrOptions){
    var _divWithin,_divCont,_divOption,_arrOptions;
    var _sourceStack=[];    // array to hold jQuery items referencing remaining source items. initally ALL items will be in this array.
    var _selectStack=[];    // array to hold jQuery items referencing items the user has selected.

    //start constructor

    _divWithin=divWithin;
    _arrOptions=arrOptions;
    _divCont = $('div[ID^="divContainer"]',divWithin);
    _divOption = $('div[ID^="divOption"]',divWithin);;

    initDraggables(divConstrain);

    //end constructor

    function initDraggables(divConstrain){
        var divDraggables = $(".draggableBasic",_divCont);                              //get all the draggable divs
        divDraggables.each(function(i){_sourceStack.push($(this));});          //add all the children to sourcestack
    };

    clsDragStack.prototype.selected = function (){
        return _selectStack;
    };
};

This probably won't do anything useful in isolation but it shows the bits of interest. Basically I have a column on the left (represented in the class by _sourceStack) The user can drag items from here to another column (represented by _selectStack). This all works fine, the _sourceStack and _selectStack arrays get shuffled around quite happily. However, when I try to access the contents of _selectStack from outside the class using ...

        var arrFields=selectStack.selected();

... for example - I seem to always get the original stack ie empty. If I try to access _sourceStack in the same way I get the original full list, as though no items have been moved. I can see _sourceStack and _selectStack being modified as I move items around.

Do I need to make a duplicate of the array in selected() before passing that back? Why can't I seem to pass the reference to this object? I've done an experiment with simple string arrays and it works fine. Is it because these are arrays of jQuery objects?

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2 Answers 2

All the code I have seen, defines prototype members outside of the function, e.g.:

function clsDragStack(divWithin,divConstrain,arrOptions){
     this._selectStack=[];
     //...
};

clsDragStack.prototype = {
    selected: function() {
        return this._selectStack;
    }

};

It should not matter what is contained in the array.

With your code, every time you create a new clsDragStack object, the prototype function selected is changed to return the _selectStack of the newest generated object. So every existing object will return the new (empty) array.

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Hmm if I use this it returns undefined. Whereas before it would actually return me an array, just an empty one. I tried removing the this. and it doesn't like that either and says _selectStack is undefined. –  El Ronnoco Nov 9 '10 at 9:30
    
@ElRonnoco: My bad, you have to define the array like so: this._selectStack=[];, see my updated code. –  Felix Kling Nov 9 '10 at 9:41
    
Defining my array in this way means that other references to it within the class fail :( It says _selectStack is undefined : Something else I don't understand about JS - great!! –  El Ronnoco Nov 9 '10 at 9:52
1  
@ElRonnoco: Yes, you have to change the other references. But this would be a proper way to define a class. this._selectStack would be a member variable and not just a variable in the constructor. Maybe this helps: developer.mozilla.org/en/JavaScript/Guide/Working_with_Objects –  Felix Kling Nov 9 '10 at 10:05
    
Thanks, I'll take a look. –  El Ronnoco Nov 9 '10 at 17:06

Ok. Here's how I did it. I replaced...

clsDragStack.prototype.selected = function (){
    return _selectStack;
};

with...

return {
    selected : function(){
        return _selectStack;
    }
};

..still within the main body of the class.

If anyone can explain to me what the hell is going on here I'd be very grateful! Especially what this return {name: function(){}}; structure is - and why in my original implementation it was returning the original array even though it had been modified??

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1  
return {name: function(){}}; returns an object with one property name that holds a function. –  Felix Kling Nov 9 '10 at 10:06
    
@Felix - Thanks, I think I get it. I'm still getting to grips with JS! –  El Ronnoco Nov 9 '10 at 17:07

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