Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to write a javascript function to resize an image based on a given area (or in my case (somewhat inaccurate) 'average dimension' since that's easier to think in terms of. Rather than feeding in maximum height and width, I want to feed in maximum area so that long or narrow images will appear visually to be roughly the same size.

enter image description here

I'm getting really caught on the math aspect of it, though... just how to logic it, as I haven't done much math of late.

Basically, given an aspect ratio I want to determine the maximum size within an area.

Something like this:

function resizeImgByArea(img, avgDimension){
    var w = $(img).width();
    var h = $(img).height();
    var ratio = w/h;
    var area = avgDimension * avgDimension;
    var targetHeight //something involving ratio and area
    var targetWidth //something involving ratio and area
    $(img).width(targetWidth);
    $(img).height(targetHeight);
}

Not sure if this is on topic here, but I'm not able to brain it.

share|improve this question

4 Answers 4

Are you looking for something like:

function resizeImgByArea(img, avgDimension) {
    var w = $(img).width();
    var h = $(img).height();
    var maxWidth = avgDimension;
    var maxHeight = avgDimension;
    var divisor;
    var targetWidth = w;
    var targetHeight = h;

    if (w > maxWidth || h > maxHeight) {
        // Set the divisor to whatever will make the new image fit the dimensions given
        if((w - maxWidth) > (h - maxHeight)) {
            divisor = w / maxWidth;
        }
        else {
            divisor = h / maxHeight;
        }

        targetWidth = w / divisor;
        targetHeight = h / divisor;
    }

    $(img).width(targetWidth);
    $(img).height(targetHeight);
}
share|improve this answer
    
no I don't want it to be set on maxHeight,or maxWidth.. rather to make an image as large as possible while maintaining the same aspect ratio given a maximum area.. in effect to get images that appear roughly the same size if they are narrow vs square –  Damon Sep 27 '11 at 16:08
    
So you want the image to fit into a square? If necessary, the image has to be clipped? –  John Kurlak Sep 27 '11 at 16:10
    
no I want it to have the same total area as a square, but allow it to extend outside of it. –  Damon Sep 27 '11 at 16:13
    
Or you want it so that (targetWidth+targetHeight)/2 == averageDimension and the original aspect ratio is maintained? –  John Kurlak Sep 27 '11 at 16:14
    
err.. that's not quite the same but it might work. basically trying to have the images be same aspect ratio as they were but have all of them appear to be roughly the same size; i figured area would be the simplest way to do that. –  Damon Sep 27 '11 at 16:52

It isn't that hard.

maxPix = average^2

maxPix = x * h + x * w

average^2 = x*h + x*w //: x

average^2/x = h+w

inverse and multiply with average^2

x = average^2 / (h+w)

then multiply h and w with x to get the new dimensions

share|improve this answer
    
thanks. is inverse and multiply its own operation, or is it describing what you did above? I haven't taken a math class in almost 10 years. –  Damon Sep 27 '11 at 16:49
    
Its describing what I do. So inversing is (I'm not a native english speaker) putting the value "under the line" so x inverted is 1/x and 1/2 inverted is 2 ... it's useful when you have a var to solve "under the line". You can simply invert all stuff. And then I multiply with average^2 to have the x alone –  Stephan Sep 28 '11 at 12:39

Sounds like you want to constrain the thumbnail's pixels to be as close as possible to the average area as all the other thumbnails, right?

So basically, given the h/w of the original image, and a target area A:

h * w = original image's pixel size (let's got with 640x480 = 307,200 pixels)
A = maximum number of pixels allowed (let's go for 100x100 = 10,000 pixels)

307,200 / 10,000 = 30x reduction

original aspect ratio = 640 / 480 = 1.3333 : 1

To calculate the new thumbnail's x/y size:

newX * newY = 10000
newX = newY * 1.333
(newY * 1.333) * newY = 10000
newY^2 * 1.333 = 10000
newY^2 = 10000 / 1.333
newY^2 = 7502
newY = 86.6 -> 87
newX = 87 * 1.333 = 115.97 -> 116

116 x 87 = 10,092 pixels

if we'd rounded down on the thumbnail sizes, we'd get 86x114 = 9,804 pixels

so... to convert your 640x480 image to a standard 10,000-ish pixel size, you need a new image size of 86-87 height and 114-116 width.

share|improve this answer
up vote 0 down vote accepted

Here is the function I came up with that's simpler than some mentioned and does what I need. It constrains to a set maxWidth, but not height because of the particular requirements I was using.. it would probly be appropriate to throw on a maxHeight as well as well as some cleanup, but it gets 'er done.

function resizeImgByArea(imgId, avgDimension){
   var node, w, h, oldArea, oldAvgDimension, multiplicator, targetHeight, targetWidth, defAvgDimension;
   node = $('#' + imgId);
   node.css('width', '').css('height', '');
   var maxW = $('#' + imgId).css('maxWidth');
   if (maxW){
       defAvgDimension = maxW;
   } else {
       defAvgDimension = 200;
   }
   avgDimension = (typeof avgDimension == "undefined")?'defAvgDimension':avgDimension;
   w = node.width();
   h = node.height();
   oldArea = w*h;
   oldAvgDimension = Math.sqrt(oldArea);
   if (oldAvgDimension > avgDimension){
       multiplicator = avgDimension / oldAvgDimension;
       targetHeight = h * multiplicator;
       targetWidth = w * multiplicator;
       node.width(targetWidth);
       node.height(targetHeight);
   }
}
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.