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I have an object image I can do things like image.top and it will return a value, or I can do image.myPoints[0].left and it will return a value. I basically have this image object that stores values for me. I want to be able to put multiple image objects in an array so i could do something like this:

$("#toPinpoint").mapImage({
                useAjax: false,
                pinpoints: [ { "top": 50,
                           "left": 280,
                           "width": 200,
                           "height": 200},
                         { "top": 0,
                           "left": 0,
                           "width": 300,
                           "height": 74 } ] 
            });

I use this function to create the object, the pinpoints get added on to the object. When the mapImage function is called this is what happens:

    $.fn.mapImage = function(options){



    //Set user input options and defaults
    var optionConfig = $.extend({}, $.fn.mapImage.defaults, options);

    image=this;
    this.image = this;

    // Assign defaults
    this.previewMode = optionConfig.previewMode;
    this.pinpoints = optionConfig.pinpoints;
    image.pinpoints = optionConfig.pinpoints;
    image.pinpointCount = 0;
    image.selected = 0;
    ...}

This sets the image properties and now I want to modify the properities with my application then SAVE these image objects into an array.

My problem with this is that the array is loading up with image objects, but it seems to fill the whole array with the object i just pushed in, so it doesnt save my old image objects. For example, if i do myArray[0].myPoints[0].left , lets say it retruns 30, and then i push another image object that has myPoints[0].left equal to 20, the first image object I have in the array turns into 20 instead of saving it as 30. If theres a good way of solving this issue it would be greatly appreciated. Thank you!

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I can't seem to replicate this. Can you post a more detailed code example? When you say "pop" another image, do you mean push? Because they have the opposite result. –  Andrew Marshall Feb 16 '11 at 5:50
    
@Andrew Marshall: I meant push sorry, and yes I will put a more detailed example up –  anthonypliu Feb 16 '11 at 5:53
1  
Your anti-patterns are showing: image = this; this.image = this; Hi, I'm a circular reference! –  ken Feb 16 '11 at 6:51

3 Answers 3

Using array.push(x) should add x to the end of array. However, it will not create a copy of x, so if you then change an attribute of x and push() it again, your array will contain two instances of x with the updated attribute - I suspect this is what you are seeing. (That is, you may be changing the top property of your image and push()ing it again, instead of creating a whole new image to push()).

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I think your absolutely right, but how would I go about fixing this? how do i create a new instance of this object every time I add it –  anthonypliu Feb 16 '11 at 5:54
    
Depends on how you're currently creating the object. It should be something like var secondImage = new MyImage();. I say "MyImage" rather than "Image" since the latter is already an existing DOM object in javascript. (Once again it'd be helpful to put up a more extensive code sample to get a better idea of what you've currently got :)) –  Andrew Marshall Feb 16 '11 at 6:03
    
You need to "new" the image, not the array. How do you create the first image? –  levik Feb 16 '11 at 6:04
    
i have updated it with a better example, this is pretty much my code now –  anthonypliu Feb 16 '11 at 6:24
var myArray = new Array();

You need to use the "new" keyword.

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I thought this at first too, but omitting the new keyword seems to work properly and passes lint. –  Andrew Marshall Feb 16 '11 at 5:51
    
Just because it passes lint doesn't mean it's the intended usage, and its unwise to use constructor functions without the new keyword. –  ken Feb 16 '11 at 6:49
    
I know, I wouldn't recommend using it without the new, and was surprised to see that it worked and passed lint, because it just seems so horribly wrong to me. –  Andrew Marshall Feb 16 '11 at 7:36

I think you're making this more complicated than need be.

(function($){
  $.fn.mapImage = function(options) {
    var defaults = { /* your defaults here */ };

    // Merge default options with passed in options and store
    options = ($.extend({}, defaults, options));

    // Do other stuff
  };
})(jQuery);

// Backup current pinpoints and modify the current one
$('#toPinpoints').data('pinpoints-backup', $('#toPinpoints').data('pinpoints').splice());
$('#toPinpoints').data('pinpoints')[0].top = 100;

// Push a new array of pinpoints
$('#toPinpoints').data('pinpoints').push({"top": 100, "left": 50, "width": 200, "height": 150});

Be careful with jQuery.extend() as it does not operate recursively, so any arrays that are within the defaults sub-array will be completely overwritten by those in the options array, not merged.

If you'll need to access the pinpoints data later, you may wish to use jQuery.data() by doing something like this.data($.extend({}, $.fn.mapImage.defaults, options)); instead of reassigning the options variable. The pinpoints for a given element could then be accessed anywhere by $('#toPinpoint').data('pinpoints') which will return the same array you passed in via options to mapImage(). You could then traverse all the pinpoints with jQuery.each().

If I'm missing something in what you're trying to do, please let me know.

share|improve this answer
    
Hey, that definitely makes sense, but now how can I add multiple pinpoints to an array? This gives me a set of pinpoints, now lets say I want to modify all these pinpoints' values and then push it into an array, so I have the OLD values and the NEW values –  anthonypliu Feb 16 '11 at 19:50
    
You can store anything in jQuery.data(), look at the API doc for it. Calling .data('pinpoints')[0].top = 100 should modify the current value. You can add new pinpoints via .data('pinpoints').push(newPinpoints). If you need to make a backup of current data, you could do .data('pinpoints-backup', .data('pinpoints).splice()). (Note that I'm omitting the this keyword before .data() as you could be doing it outside and need to use a selector) –  Andrew Marshall Feb 16 '11 at 19:59
    
To be clear, myArray.splice() returns a copy of myArray. –  Andrew Marshall Feb 16 '11 at 20:00
    
(I've edited my answer per my comment) (Sorry for the multiple comments in a row) –  Andrew Marshall Feb 16 '11 at 20:06

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