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what is the problem with the following code?

see here:


$(document).ready( function() {

    $('#diag1').css('background-color', '#f4f');

    $('#cnt1').css('background-color', '#4ff');

        drop: function( event, ui ) {                



<div id="cnt1">ddd</div>
<div id="diag1">Dialog 1</div>

If I drop the smaller div on the bigger one it hides away. Why?

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Looks like a z-index issue. –  Bot Mar 1 '12 at 16:50
this line: $(this).append(ui.draggable); --- also take a look about chaining in jquery you dont need to define the selector for jquery functions all the time. you can do $('.selector').css().parent().find().whatever() –  ggzone Mar 1 '12 at 16:50
1 –  Roko C. Buljan Mar 1 '12 at 16:52

4 Answers 4

up vote 1 down vote accepted

Nothing really other than you've coded it so that when the div is dropped, it becomes a child of the larger div and then based on the positioning it ends up off screen. See what happens when you reposition the larger div: jsFiddle

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It doesn't dissapear. It is appended to where you dropped, but it keeps the old position values and ends offscreen. You should try using position: absolute on diag1, so the droppable doesn't use position: relative. Now the position coordinates are always going to be measured against the top left of the document, instead of the container.

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or add

$('#diag1').css('position', 'absolute');

I am not 100% sure , is this what you are looking for ?

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if all you want to do is keep the draggable in view, then just remove the following


as mentioned the append and positioning is causing the issue.

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