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I have an array of image URL's and I wish to load these, in order to get the proper dimensions and then do stuff with them / output as needed.

Here's my code for handling that (loops an array of image URL's):

for (var i = 0; i < data.IMAGES.length; i++) {

    var img = $("<img />").attr('src', data.IMAGES[i].url)
    .load(function() {

        if (!this.complete || typeof this.naturalWidth == "undefined" || this.naturalWidth == 0) {

            console.log("Error");

        } else {

            // This does output, but not correctly...

            if ( this.width > 299 ) {
                cache.$shareImages.append('<div class="share-image">' + img + '</div>');
            }

        }

    });
}

jQuery seems to append the content, but does so in a way which is odd. Here's an example of the output generated:

<div class="share-image">[object Object]</div>

I want to output the img tag itself that was created dynamically.

Why is this happening and how to solve it?

Thanks, Mikey.

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2 Answers 2

up vote 2 down vote accepted

You're doing a string concatenation with:

 '<div class="share-image">' + img + '</div>'

...so it basically does a toString() on img, producing [object Object].

Perhaps you could try:

$('<div class="share-image"></div>').append(this).appendTo(cache.$shareImages);

EDIT: Note that the .load() handlers will run asynchronously after the loop has finished, at which point the img variable will be set to whatever img element was created last in the loop. So within the load use this to refer to the particular img just loaded.

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Weirdly, this seems to output an image, but only the last in the array. Is it overwriting itself somehow? –  Michael Giovanni Pumo May 20 '13 at 12:13
    
See my update. You've hit upon a common problem with event handlers assigned in a loop. –  nnnnnn May 20 '13 at 12:19
    
Excellent! Your edit made this work. Referencing 'this' did the trick (and your method of using append() of course). Thanks! –  Michael Giovanni Pumo May 20 '13 at 12:20
1  
You're welcome. Sorry I wasn't paying enough attention to pick up the second problem until you mentioned it. –  nnnnnn May 20 '13 at 12:21

You need to chain the .append(), append the image to the newly created div , and then append that to your target

$('<div class="share-image"></div>').append(this).appendTo(cache.$shareImages);

Working Example: http://jsfiddle.net/blowsie/UCx73/

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That's not quite right: the OP is trying to make the img a child of the div, but your code appends the img as a sibling of the div. –  nnnnnn May 20 '13 at 12:11
    
@nnnnnn well spotted –  Blowsie May 20 '13 at 13:57

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