37

Is it possible to apply a CC translate X and Y on the same element?

If I try this the translateX is overridden by the translateY:

.something { 
        transform: translateX(-50%);
        transform: translateY(-50%);
}
  • possible duplicate of How to apply multiple transforms in CSS3? – Jeroen Apr 15 '15 at 11:05
  • I understand this is a demo, but just rememeber to include browser prefixing as well – jbutler483 Apr 15 '15 at 11:05
  • 2
    @Jeroen Not a duplicate, this is actually different. – mattytommo Apr 15 '15 at 11:05
  • 1
    @mattytommo Isn't it? Wouldn't .something { transform: translateX(-50%) translateY(-50%); } be a solution? – Jeroen Apr 15 '15 at 11:06
  • 2
    @Jeroen It would, but the real answer is the existence of the translate property which encompasses both axes, thus removing the need for duplicate properties. – mattytommo Apr 15 '15 at 11:12
67

You can do something like this

transform:translate(-50%,-50%);
8

In your case, you can apply both X and Y translations with the translate property :

transform: translate(tx[, ty]) /* one or two <translation-value> values */

[source: MDN]

for your example, it would look like this :

.something { 
  transform: translate(-50%,-50%);
}

DEMO:

div{
  position:absolute;
  top:50%; left:50%;
  width:100px; height:100px;
  transform: translate(-50%,-50%);
  background:tomato;
}
<div></div>


As stated by this answer How to apply multiple transforms in CSS3? you can apply several transforms on the same element by specifying them on the same declaration :

.something { 
  transform: translateX(-50%) translateY(-50%);
}
4

You can combine X and Y translates into a single expression:

transform: translate(10px, 20px); /* translate X by 10px, y by 20px */

And, in general, several transforms into a single rule:

transform: translateX(10px) translateY(20px) scale(1.5) rotate(45deg);

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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