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I have made a simple function that adapts the size of an image according to the size of the window. I can't determine when exactly, but sometimes the img does not fill the width of the screen, but continues to stick to the height. Any idea why this could be?

If i console log (iRatio <= wRatio) anything seems to fit, but the shown result is incorrect.

The img is set as postion: absolute; with: 100%; top:0; left:0; in the css. $win contains $(window) and $img the background image

function autoImageSize($img, $win){
        var wHeight = $win.height(),
            wWidth = $win.width(),
            iHeight = $img.height(),
            iWidth = $img.width(),
            iRatio = iWidth / iHeight, 
            wRatio = wWidth / wHeight;

          if(iRatio <= wRatio){
            $img.css({
               width: "100%", 
               height: "auto",
               top: "-" + ((iHeight - wHeight)/2) + "px",
               left: 0
            });
          }else{
            $img.css({
               width: "auto", 
               height: "100%",
               top: 0,
               left: "-" + ((iWidth - wWidth)/2) + "px"
             });
          }

          return [$img.width(), $img.height()];
};
share|improve this question
    
I think you mean ...and $img the background image. –  Alexander Wallin Feb 2 '11 at 18:10
    
yes thank you i have corrected it –  meo Feb 2 '11 at 18:12

2 Answers 2

up vote 0 down vote accepted

the problem was:

left: "-" + ((iWidth - wWidth)/2) + "px"

and

top: "-" + ((iHeight - wHeight)/2) + "px"

this is a stupid way to do a negation, sometimes the result was --somenumber px. i fixed the problem by doing this operation only wen the iHeight is smaller then the wHeight oder the iWidth is smaller then wWidth and by calculating the negation with a multiplication by -1.

share|improve this answer

When you are setting the image's width to 100% it will fill up to its parent's width. As is the case with the height of 100%, but there the parent also needs a fixed height in pixels (as far as I know).

Instead of setting the height to 100% you should calculate the width matching the height of the window using the image's ratio:

var toWidth = $win.height() * iRatio;
$img.width(toWidth);
share|improve this answer
    
Please provide some feedback when voting down. –  Alexander Wallin Feb 2 '11 at 18:48
    
this does not solve the problem. The paret is a div in position fixed that has top:0; left:0; right:0; bottom: 0; but anyway the downvote is not from me. –  meo Feb 3 '11 at 8:53
    
If I get this right, your image will sometimes not stretch to the full width or height of its parent and cover the whole window? height: 100% needs the parent element to have a fixed height in pixels, namely the windows height. Am I getting it wrong? –  Alexander Wallin Feb 3 '11 at 12:15
    
no sometimes it does not strech to the full width. You get something wrong. When you set a div as postion fixed and and top, right, bottom and left to 0 it fills the screen. No matter what the parent element is. The image is inside this div. –  meo Feb 3 '11 at 12:25
    
I did not know that! You might want to add that to your question. Can you provide a demonstration of you problem? Is the ratio intact or is it stretched vertically? –  Alexander Wallin Feb 3 '11 at 12:34

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