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  <li><img src="image1.png" /></li>
  <li><img src="image2.png" /></li>
  <li><img src="image3.png" /></li>
  <li><img src="image4.png" /></li>
  <li><img src="image5.png" /></li>
  <li><img src="image6.png" /></li>

... the images are all different sizes, I'd like to center them vertically.


$('ul li').css('paddingTop', height($("ul li").height() - ("li img") / (2)));
# padding-top = height of li - height of image / 2

.. but this isn't working.

share|improve this question
minus "('li img') / (2)" doesn't really mean anything. This partial-selector doesn't convey a value. – Sampson Dec 29 '09 at 17:50

3 Answers 3

up vote 6 down vote accepted

A Better Way?

If you're using jQuery, why not use one of the centering plugins?

// make sure li in this case is position:relative;
$("ul li img").center();

Present Problems

The following line has many problems:

height($("ul li").height() - ("li img") / (2))

height() is not a function, unless you've declared it elsewhere. If so, what is it suppose to do exactly? Note, I'm not referring to $.height(), which is a valid method in the jQuery Framework. Additionally, ("li img") is not a numerical value, so dividing it by 2 makes no sense.

Perhaps the following may be more helpful:

$("ul li img").each(function(){
  var pHeight = $(this).parent().height();
  var iHeight = $(this).height();
  var diff    = Math.round(pHeight - iHeight);
  $(this).parent().css("paddingTop", diff);
share|improve this answer
tried that plugin, not working :( – 3zzy Dec 29 '09 at 17:57
Actually the height, width, outerHeight, and outerWidth functions do exist. – czarchaic Dec 29 '09 at 17:57
padding-top = height of li - height of image / 2 – 3zzy Dec 29 '09 at 17:57
Make sure your li's have "position:relative". The plugin works. – Sampson Dec 29 '09 at 17:57
czarchaic, I said height() is a jQuery function, but not a native Javascript function. – Sampson Dec 29 '09 at 18:00

I think @Jonathan's answer is what you should follow ( centering plugin ) but here is your code cleaned up quite a bit:

$('ul li').each(function(){
   var $li = $(this), $img = $li.find('img');
   $img.css('padding-top', ($li.height() / 2) - ($img.height() / 2));

Of course, this will only work when the li has a fixed height in the CSS.

share|improve this answer
Dollar must be a PHP programmer ;) – Sampson Dec 29 '09 at 17:59
LOL, no, I always use dollar signs when storing a jQuery result set. So var domElement = $("h1")[0]; and var $resultSet = $("h1"); – Doug Neiner Dec 29 '09 at 18:00
Ah; in all my time using jQuery I've never seen that. Interesting. – Sampson Dec 29 '09 at 18:02
Oh, it works either way just fine. Its just a nice way of knowing what is a result set and what is a plain DOM element or normal JS variable. – Doug Neiner Dec 29 '09 at 18:04
thanks a lot, works fine. – pylover May 17 '13 at 21:37

Vertically center

$('ul li img').each(function(){
  var height=$(this).outerHeight(),
  $(this).css({marginTop: (li_height-height)/2+'px'});
share|improve this answer
The +'px' is not necessary. When you pass in a number, jQuery will automatically assume it is in pixels. – Doug Neiner Dec 29 '09 at 18:03

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