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I'm trying to work out how to enlarge all elements on a page, but keep the centre of enlargement in the centre of the window.

On this page, once the image reaches the top or the left side of the window the centre of enlargement changes. It also changes when you move the image. (exactly what you would expect)

I'm thinking I'd need to take a completely different approach to achieve what I want. But I'm not sure what that approach is..

Any ideas?

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Ah I see, that's really interesting. It's because you're adding 1/4, so you need to subtract 1/5. –  Acorn May 30 '10 at 21:52
1  
Yes, the percentage is being calculated on the new dimensions instead of the original. So you need to figure out the proper percentage to get back to the original. Luckily, with a 20% decrease, its a clean 25% increase to return. –  user113716 May 30 '10 at 21:56

2 Answers 2

up vote 3 down vote accepted

Well, here's my take.

Only thing is that I ditched the containers you were using. Is that cheating? Seems like they were only there to get the image centered. No need.

This works as expected with no side effects.

Here's a working demo you can test:

http://jsfiddle.net/YFPRB/1/

(You need to click on the pane with the baboon first.)

HTML

<body>

<img src="http://cdn.sstatic.net/stackoverflow/img/apple-touch-icon.png" />

</body>

CSS

html, body {
    width: 100%;
    height: 100%;
    overflow: hidden;
}​

jQuery

EDIT: Thanks to @stagas for the reminder to clean up redundancies.

 var $img = $('img');  // Cache the image. Better for performance.

  $img.draggable();


  $img.css({left: ($('body').width() / 2) - ($img.width() / 2)})
      .css({top: ($('body').height() / 2) - ($img.height() / 2)})


  $(document).keydown(function(event) {

      if (event.keyCode == 38) {
          var adjustment = 1.25;
      } else if (event.keyCode == 40)  {
          var adjustment = 0.8;
      } else {
          return;
      }

      var offset = $img.offset();  

      var width = $img.width();
      var height = $img.height();

      var newWidth = width * adjustment;
      var newHeight = height * adjustment;

      var diffWidth = newWidth - width;
      var diffHeight = newHeight - height;

      var hcenter = $('body').width() / 2;
      var vcenter = $('body').height() / 2;

      var leftPercent = (hcenter - offset.left) / width;
      var topPercent = (vcenter - offset.top) / height;

      $img.offset({top: offset.top - (diffHeight * topPercent), left: offset.left - (diffWidth * leftPercent)});

      $img.width(newWidth).height(newHeight);

    });​
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1  
@Acorn - Ah, I see. I would assume that it is based on the percentage of the image that is off center as to how much of the position should shift left/right or top/bottom. Just a guess though. Is that the direction you're going? –  user113716 May 30 '10 at 22:48
1  
@Acorn - Well, I updated my answer (and the jsFiddle) with a partial solution. It seems to work until the image goes off the page. Then it gets off a bit. Hope it helps a little anyway. –  user113716 May 30 '10 at 23:09
1  
@Acorn - Part of the trouble is this line xr = (cx-width)/width; (as well as the height version). The value will be the same every time as all the values are constant. (cx-width) is effectively the remainder space to the left of the image when the right side of the image is on the center line. And dividing that remainder by the width of the image just tells us how much of the image (or white space) would be visible if we effectively moved the image over by the amount of its width. I think what I had was on the right track, but the calculations became skewed when it went off page. –  user113716 May 31 '10 at 0:30
1  
@Acorn - I think I've got it. jsfiddle.net/dEhgV/10 I just added a little CSS to the body & html. Seems to work now. The numbers were skewed before because the document was resizing when the image exceeded the bounds of the page. Shouldn't now. –  user113716 May 31 '10 at 0:42
1  
@stagas - I do think there may be a small issue, actually. If you zoom in and out a lot, the center point does start to shift a little. (Likely because positioning is percentage based, and needs to round sometimes. Solution would probably be to update a stored reference point any time the user drags the image. That could then be used to "recalibrate" the center when zooming. I'll probably do an update sometime today. –  user113716 May 31 '10 at 11:19

This is what I came up, it works as you say except the image will always go to the center after zooming in or out:

$('document').ready(function() {
    zoomimg=$('#zoomimg'); // we store this in a variable since we don't need to traverse the DOM every time -- this is faster

    var viewportWidth = $(window).width();
    var viewportHeight = window.innerHeight ? window.innerHeight : $(window).height(); // this is to work with Opera
    zoomimg.css({'position': 'absolute', 'left': (viewportWidth/2)-(zoomimg.width()/2), 'top' : (viewportHeight/2)-(zoomimg.height()/2)}).draggable();


    $(document).keydown(function(event) {
        event = event || window.event;

        var viewportWidth = $(window).width();
        var viewportHeight = window.innerHeight ? window.innerHeight : $(window).height(); // this is to work with Opera

        if (event.keyCode == 38) {

            width = zoomimg.width();
            height = zoomimg.height();

            zoomimg.width(width*1.2).height(height*1.2);

            var viewportWidth = $(window).width();
            var viewportHeight = window.innerHeight ? window.innerHeight : $(window).height();
            zoomimg.css({'left': (viewportWidth/2)-(zoomimg.width()/2), 'top' : (viewportHeight/2)-(zoomimg.height()/2)});


        } else if (event.keyCode == 40) {

            width = zoomimg.width();
            height = zoomimg.height();

            zoomimg.width(width*0.8).height(height*0.8);

            var viewportWidth = $(window).width();
            var viewportHeight = window.innerHeight ? window.innerHeight : $(window).height();
            zoomimg.css({'left': (viewportWidth/2)-(zoomimg.width()/2), 'top' : (viewportHeight/2)-(zoomimg.height()/2)});

        } else {

            return

        }
    });

});

You should put an ID 'zoomimg' on the tag for it to work, and overflow:hidden on the #container . Also ditch that display:table and display:table-cell they're useless now that we center with Javascript. Also, pressing the down arrow key will cause the container to scroll down, so you should use other keys, as the arrows are reserved by the browser for scrolling the viewport.

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This is amazing! I'm going through the code now trying to get my head around everything. –  Acorn May 30 '10 at 21:44

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