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When I alert the value .position().left, it returns 0 on Chrome. With other browsers it returns the actual number. Why does this happen?

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Please post more code, specifically what element you are calling position on, and perhaps some HTML/CSS to see what could be going wrong. –  Doug Neiner Jan 31 '10 at 20:02

8 Answers 8

up vote 31 down vote accepted

Webkit based browsers (like Chrome and Safari) can access images width and height properties only after images have been fully loaded. Other browsers can access this information as soon as just the DOM is loaded (they don't need to load the images entirely to know their size).

So, if you have images in your page, with Webkit based browsers you should access offset information after the $(window).load event fires, and not after the $(document).ready event.

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And sometimes even then it doesn't work. Another option is to manually set the image sizes in your css. –  Will Shaver Nov 10 '11 at 19:31
And apparently webkit can only access text width and height properties after window.load as well. Seems silly that even Internet Explorer can get it right. The last one I thought would get it wrong was webkit. –  Dennis Day Sep 23 '14 at 21:54

Webkit can be too fast sometimes, but it's often taken care of in jQuery. You can debug using something like:

var v, elem = $('.myElement');
window.setTimeout(function() {
    v = elem.position().left;
    if (v) {
        return false;
    window.setTimeout(arguments.callee, 1);
}, 1);

This will check if and when the position is available. If you are logging "0" in infinity, the position().left is "never" available and you need to debug elsewhere.

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great, thanks for help David. –  goksel Feb 2 '10 at 18:19
Thanks - this was also the reason why jQuery.offset() was returning incorrect (nonzero) values - it looks like my CSS positioning was causing Chrome to lay out the document twice (or something). Calling offset too soon returned the position of the elements as they would be without CSS. –  Justin Jan 27 '11 at 12:48
+1 I had this problem yesterday. Position was incorrect even in a simple $(function(){console.log($('img').position().top);}); but was correct when using the same code in a click event later. –  andyb Mar 27 '11 at 8:57

By reading comments from, there are several ways to fix this. The one I found working is

Ajaho [Moderator] :This plugin function fixes problems with wrong position in Chrome

jQuery.fn.aPosition = function() {
    thisLeft = this.offset().left;
    thisTop = this.offset().top;
    thisParent = this.parent();

    parentLeft = thisParent.offset().left;
    parentTop = thisParent.offset().top;

    return {
        left: thisLeft-parentLeft,
        top: thisTop-parentTop
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I had the same problem..

I fixed it using: .offset().left instead. But be aware that are not the same:

.position().left worked in Chrome in some tests I did, using a similar approach than David (the value was available since the first try).

In my "real" application failed even reading the position on click event (which may eliminate any loading speed problem). Some comments (in other forum) say it may be related to the use of display:inline-block. However I couldn't reproduce the problem using inline-block. So it may be other thing.

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Perhaps a bit outdated since the questions dates from 2010 but this did the trick for my positioning problems in Chrome:

  p = $('element').offset();
  // et cetera
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use jQuery(window).load() instead of jQuery(document).ready()

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For me it worked by placing the javascript code in a document ready just before the closing of the body tag

That way it executes the code after it has loaded everything

        <div class='footer'>footer</div>

        <script type='text/javascript>
              var footer_position = $(".footer").offset().top;
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I use this function to correct it.

function getElementPosition(id) {
          var offsetTrail = document.getElementById(id);
          var offsetBottom = 0;
          var offsetTop = 0;
          while (offsetTrail) {
              offsetBottom += offsetTrail.offsetBottom;
              offsetTop += offsetTrail.offsetTop;
              offsetTrail = offsetTrail.offsetParent;

          return {
              bottom: offsetBottom,
              toppos: offsetTop
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