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According to w3schools, the relative position value is defined as follows.

relative - The element is positioned relative to its normal position, so "left:20" adds 20 pixels to the element's LEFT position.

I know that I can get the DOM object of whatever I positioned relatively and using that, I can get the left or top position w/ respect to the origin.

My question is, how can I get the "normal" position?

Thanks,

mj

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3 Answers 3

Maybe, I misunderstand your question, but wouldn't this just be simple subtraction of the relative offset?

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The relative offset could be something like left:-20 top:100. Subtract that from what? –  mj_ May 18 '11 at 13:48
1  
Find the position using JS - maybe this will help quirksmode.org/js/findpos.html –  AllisonC May 18 '11 at 13:54

"normal" position is where the element will be positioned with left:0; top:0;. You can get this position by substracting the offset from the current position (tested in Chrome):

<!DOCTYPE html>
<html>
<head>
<title>Example</title>
<style type="text/css">
#container { width: 100px; height: 100px; margin: 100px auto; border: 1px solid red; }
#item { position: relative; top: 10px; left: 10px; width: 80px; height: 80px; border: 1px solid green; }
</style>
<script type="text/javascript">
window.onload = function () {
  var container = document.getElementById('container');
  var item = document.getElementById('item');
  var computed = window.getComputedStyle(item);
  item.innerHTML = 'Normal: (' + (item.offsetLeft - parseInt(computed.left))
    + ', ' + (item.offsetTop - parseInt(computed.top) + ')');
};
</script>
</head>
<body>
<div id="container"><div id="item"></div></div>
</body>
</html>
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Is the container div required to make this work or can you get away with just a single "item" div? –  mj_ May 18 '11 at 14:03
    
The container is only for demo. –  AlexAtNet May 18 '11 at 18:06

to normal position just set position value to: static

position:static
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