Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Is it possible to tell the code to position by the center point of an element, rather than by the top-left point? If my parent element has

width: 500px;

and my child element has

/*some width, for this example let's say it's 200px*/
position: absolute;
left: 50%;

one would assume that based on the 50% positioning, the child element will be in the middle of the parent, leaving 150px of free space on each side. However, it is not, since it is the top-left point of the child that goes to 50% of the parent's width, therefore the whole child's width of 200px goes to the right from there, leaving 250px of free space on the left and only 50px on the right.

So, my question is, how to achieve center positioning?

I found this solution:

position: absolute;
width: 200px;
left: 50%;
margin-left: -100px;

but I don't like it because you need to edit it manually for each element's width - I would like something that works globally.

(For example, when I work in Adobe After Effects, I can set a position for an object and then set specific anchor point of that object that will be put to that position. If the canvas is 1280px wide, you position an object to 640px and you choose the center of the object to be your anchor point, then the whole object will be centered within the 1280px wide canvas.)

I would imagine something like this in CSS:

position: absolute;
left: 50%;
horizontal-anchor: center;

Similarly, horizontal-anchor: right would position the element by its right side, so the whole content would be to the left from the point of its parent's 50% width.

And, the same would apply for vertical-anchor, you get it.

So, is something like this possible using only CSS (no scripting)?

Thanks!

share|improve this question
up vote 16 down vote accepted

If the element must be absolutely positioned (so, margin: 0 auto; is of no use for centering), and scripting is out of the question, you could achieve this with CSS3 transforms.

.centered-block {
    width: 100px; 
    left: 50%; 
    -webkit-transform: translate(-50%, 0); 
    position: absolute;
}

See this fiddle for some examples. The important parts: left: 50%; pushes block halfway across its parent (so its left side is on the 50% mark, as you mentioned). transform: translate(-50%, 0); pulls the block half it's own width back along the x-axis (ie. to the left), which will place it right in the center of the parent.

Note that this is unlikely to be cross-browser compatible, and will still require a fall back of some sort for old browsers.

share|improve this answer
    
Thanks, that's it! – kaboom1 Mar 10 '13 at 23:16
    
@kaboom1 user beware: browser specific commands should be thoroughly tested. The good news is that there are usually equivalent properties for each browser out there. – Sandy Gifford Apr 21 '14 at 13:02
    
Good solution, but at least nowadays there is a certain amount of cross-browser compatibility; just add keys -ms-transform and transform with the same value. – Raphael yesterday

left:50% doesn't center the center of gravity of this div 50% to the left, it is the distance between the left border and the left border of the parent element, so basically you need to do some calculations.

left = Width(parent div) - [ Width(child div) + Width(left border) + Width(right border) ]

left = left / 2

So you can do a Javascript function...

function Position(var parentWidth, var childWith, var borderWidth)
{
      //Example parentWidth = 400, childWidth = 200, borderWidth = 1
      var left = (parentWidth - ( childWidth + borderWidth));
      left = left/2;
      document.getElementById("myDiv").style.left= left+"px";
}
share|improve this answer
    
Thanks, I know this would work, but you just denied the only two things I asked for - no need to manually accomodate it for each element's width and no scripting, just CSS. – kaboom1 Mar 10 '13 at 22:58

If adding another element is an option, consider the following:

(View the following code live here)

HTML:

<div class="anchor" id="el1">
    <div class="object">
    </div>
</div>
<div class="anchor" id="el2">
    <div class="object">
    </div>
</div>

CSS:

/* CSS for all objects */

div.object
{
    width:               100%;
    height:              100%;
    position:            absolute;
    left:                -50%;
    top:                 -50%; /* to anchor at the top center point (as opposed to true center) set this to 0 or remove it all together */
}

div.anchor
{
    position:            absolute; /* (or relative, never static) */
}


/* CSS for specific objects */

div#el1
{
    /* any positioning and dimensioning properties for element 1 should go here */
    left:                100px;
    top:                 300px;
    width:               200px;
    height:              200px;
}

div#el2
{
    /* any positioning and dimensioning properties for element 2 should go here */
    left:                400px;
    top:                 500px;
    width:               100px;
    height:              100px;
}

div#el1 > div.object
{
    /* all other properties for element 1 should go here */
    background-color:    purple;
}

div#el2 > div.object
{
    /* all other properties for element 2 should go here */
    background-color:    orange;
}

Essentially what we're doing is setting up one object to define the position, width and height of the element, and then placing another one inside of it that gets offset by 50%, and gets it's parent dimensions (ie width: 100%).

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.