0

I have a div that I show and position over another element. When I apply a CSS transform to the entire body, the position isn't calculated correctly anymore. Here's the javascript:

function Start() {

  $('#ScaleBodyBtn').click(function() {

    $('body').css({
      'transform': 'scale(1.5)',
      'transform-origin': 'top left'
    });
  });

  $('#ShowOverlayBtn').click(function() {

    var ThePosition = $('#ShowOverlayBtn').offset();

    $('#Overlay').css({
      'top': ThePosition.top,
      'left': ThePosition.left
    }).show();

  });
}

$(Start);

Here's the HTML/CSS

<input id="ScaleBodyBtn" type="button" value="scale body" />
<input id="ShowOverlayBtn" type="button" value="show overlay" />
<div id="Overlay"></div>

#ShowOverlayBtn,
#ScaleBodyBtn {
  clear: both;
  display: block;
  margin: 50px 30px;
}

#Overlay {
  display: none;
  background: red;
  height: 50px;
  width: 50px;
  position: absolute;
}

And here's the jsFiddle that replicates the problem. You click Show Overlay and it appears right over the button. Refresh and press Scale Body first and this time when you click on the Show Overlay button the red div is not in the correct place.

What do I need to change to fix this?

0

Your position is calculated ok.

But your overlay is inside the body, and so it is also affected by the transform that you set in it.

Set it on another, untransformed div, and you are ok.

function Start() {

  $('#ScaleBodyBtn').click(function() {

    $('#body').css({
      'transform': 'scale(1.5)',
      'transform-origin': 'top left'
    });
  });

  $('#ShowOverlayBtn').click(function() {

    var ThePosition = $('#ShowOverlayBtn').offset();

    $('#Overlay').css({
      'top': ThePosition.top,
      'left': ThePosition.left
    }).show();

  });
}

$(Start);
#ShowOverlayBtn,
#ScaleBodyBtn {
  clear: both;
  display: block;
  margin: 50px 30px;
}

#Overlay {
  display: none;
  background: red;
  height: 50px;
  width: 50px;
  position: absolute;
}

#body2 {
   position: absolute;
   left: 0px;
   top: 0px;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div id="body">
<input id="ScaleBodyBtn" type="button" value="scale body" />
<input id="ShowOverlayBtn" type="button" value="show overlay" />
</div>
<div id="body2">
<div id="Overlay"></div>
</div>

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.