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I have images that will be quite big in dimension and I want to shrink them down with jQuery while keeping the proportions constrained, i.e. the same aspect ratio.

Can someone point me to some code, or explain the logic?

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1  
Can you elaborate why jQuery must be used? There's a CSS-only solution (see my answer): set its max-width and max-height to 100%. –  Dan Dascalescu Aug 31 '12 at 21:59
4  
Just in case anyone doesn't know, if you set only one dimension of the image (either width or height) it's resized proportionaly. It's been this way since the dawn of the web. For example: <img src='image.jpg' width=200> –  GetFree Jun 6 '13 at 7:21
    
Also, you might consider using something like slimmage.js to save bandwidth and mobile device RAM. –  Computer Linguist Jul 8 '13 at 16:18

11 Answers 11

up vote 83 down vote accepted

Have a look at this piece of code from http://ericjuden.com/2009/07/jquery-image-resize/

$(document).ready(function() {
    $('.story-small img').each(function() {
        var maxWidth = 100; // Max width for the image
        var maxHeight = 100;    // Max height for the image
        var ratio = 0;  // Used for aspect ratio
        var width = $(this).width();    // Current image width
        var height = $(this).height();  // Current image height

        // Check if the current width is larger than the max
        if(width > maxWidth){
            ratio = maxWidth / width;   // get ratio for scaling image
            $(this).css("width", maxWidth); // Set new width
            $(this).css("height", height * ratio);  // Scale height based on ratio
            height = height * ratio;    // Reset height to match scaled image
            width = width * ratio;    // Reset width to match scaled image
        }

        // Check if current height is larger than max
        if(height > maxHeight){
            ratio = maxHeight / height; // get ratio for scaling image
            $(this).css("height", maxHeight);   // Set new height
            $(this).css("width", width * ratio);    // Scale width based on ratio
            width = width * ratio;    // Reset width to match scaled image
            height = height * ratio;    // Reset height to match scaled image
        }
    });
});
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Thank you very much moin –  kobe Oct 19 '10 at 20:06
4  
Can this be done with CSS alone? (max-width, height:auto, etc?) –  Tronathan Nov 7 '11 at 20:01
7  
Not sure why jQuery is needed for this. Shrinking the image proportionally on the client can be done with CSS, and it's trivial: just set its max-width and max-height to 100%. jsfiddle.net/9EQ5c –  Dan Dascalescu Aug 31 '12 at 21:54
1  
@bguiz: might want to get phatmann below to pitch in. –  Dan Dascalescu Nov 17 '12 at 12:07
8  
This can not be done with CSS because of the IF STATEMENT. I believe the point is to fill in the thumbnail image. If the image is too tall, it has to be max width, if the image is too wide, it has to be max height. If you do CSS max-width, max-height, you will get thumbnails with whitespace instead of fully filled in –  ntgCleaner Mar 14 '13 at 21:38

I think this is a really cool method:

 /**
  * Conserve aspect ratio of the orignal region. Useful when shrinking/enlarging
  * images to fit into a certain area.
  *
  * @param {Number} srcWidth Source area width
  * @param {Number} srcHeight Source area height
  * @param {Number} maxWidth Fittable area maximum available width
  * @param {Number} maxHeight Fittable area maximum available height
  * @return {Object} { width, heigth }
  */
function calculateAspectRatioFit(srcWidth, srcHeight, maxWidth, maxHeight) {

    var ratio = Math.min(maxWidth / srcWidth, maxHeight / srcHeight);

    return { width: srcWidth*ratio, height: srcHeight*ratio };
 }
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6  
This is a great way of doing it. Upvote for not being more than a few lines. –  mattelliottIT Apr 7 '13 at 21:56
3  
Vastly superior answer! The correct answer falls flat on its face if the height AND the width are both larger. Really, good, also nice moustache. –  Starkers Nov 18 '13 at 9:31
    
+1 it's pretty neat. What about declaring the function such as function calculateAspectRatioFit(dimensions) { /* then use such as dimensions.maxWidth , dimensions.srcWidth ...*/ }, and then call it such as function({ maxWidth: someWidth, srcWidth: someOtherWith, maxHeight: someHeight, srcHeight: someOtherHeight }); ? this can be useful to avoid issues with parameters order. –  Adrien Be Nov 4 at 8:07
    
That would be ideal @AdrienBe but this question was answered more than a year ago and I think it is simple enough to adapt to personal customisations. :) –  Jason Nathan Nov 5 at 17:18
    
You can still edit it ;) –  Adrien Be Nov 5 at 17:25

If I understand the question correctly, you don't even need jQuery for this. Shrinking the image proportionally on the client can be done with CSS alone: just set its max-width and max-height to 100%.

<div style="height: 100px">
<img src="http://www.getdigital.de/images/produkte/t4/t4_css_sucks2.jpg"
    style="max-height: 100%; max-width: 100%">
</div>​

Here's the fiddle: http://jsfiddle.net/9EQ5c/

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2  
Saved me so much time. Exactly what I wanted. –  phatmann Nov 17 '12 at 11:16
1  
This is a much easier answer than above. Thanks. btw how did you get the "my answer" link to scroll down to your post? –  SnareChops Dec 31 '12 at 18:54
    
@SnareChops: it's simply an HTML anchor. –  Dan Dascalescu Jan 3 '13 at 11:31
1  
@Flimm Because spans aren't display: block by default. Just add display: block, or make it a div. –  mahemoff Jun 21 '13 at 14:58
2  
This should be the answer. A+ –  reflog Sep 14 at 7:46

actually i have just run into this problem and the solution I found was strangely simple and weird

$("#someimage").css({height:<some new height>})

and miraculously the image is resized to the new height and conserving the same ratio!

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i think this is useful - but i suppose it won't constrain the image if very very wide say, to a max width... –  stephendwolff Sep 21 '12 at 13:56

Does <img src="/path/to/pic.jpg" style="max-width:XXXpx; max-height:YYYpx;" > help?

Browser will take care of keeping aspect ratio intact.

i.e max-width kicks in when image width is greater than height and its height will be calculated proportionally. Similarly max-height will be in effect when height is greater than width.

You don't need any jQuery or javascript for this.

Supported by ie7+ and other browsers (http://caniuse.com/minmaxwh).

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Great tip! Just would put the CSS in a CSS file and not directly in the html code. –  tinytiger Jul 11 at 12:58
           $('#productThumb img').each(function() {
        var maxWidth = 140; // Max width for the image
        var maxHeight = 140;    // Max height for the image
        var ratio = 0;  // Used for aspect ratio
        var width = $(this).width();    // Current image width
        var height = $(this).height();  // Current image height
        // Check if the current width is larger than the max
        if(width > height){
            height = ( height / width ) * maxHeight;

        } else if(height > width){
            maxWidth = (width/height)* maxWidth;
        }
        $(this).css("width", maxWidth); // Set new width
        $(this).css("height", maxHeight);  // Scale height based on ratio
    });
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1  
Please consider adding an explanation, not only code when answering a post. –  jurgemaister May 15 '12 at 22:55
6  
@jurgemaister: The code itself is well commented. –  dotancohen Aug 27 '12 at 12:42

If the image is proportionate then this code will fill the wrapper with image. If image is not in proportion then extra width/height will get cropped.

    <script type="text/javascript">
        $(function(){
            $('#slider img').each(function(){
                var ReqWidth = 1000; // Max width for the image
                var ReqHeight = 300; // Max height for the image
                var width = $(this).width(); // Current image width
                var height = $(this).height(); // Current image height
                // Check if the current width is larger than the max
                if (width > height && height < ReqHeight) {

                    $(this).css("min-height", ReqHeight); // Set new height
                }
                else 
                    if (width > height && width < ReqWidth) {

                        $(this).css("min-width", ReqWidth); // Set new width
                    }
                    else 
                        if (width > height && width > ReqWidth) {

                            $(this).css("max-width", ReqWidth); // Set new width
                        }
                        else 
                            (height > width && width < ReqWidth)
                {

                    $(this).css("min-width", ReqWidth); // Set new width
                }
            });
        });
    </script>
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After some trial and error I came to this solution:

function center(img) {
    var div = img.parentNode;
    var divW = parseInt(div.style.width);
    var divH = parseInt(div.style.height);
    var srcW = img.width;
    var srcH = img.height;
    var ratio = Math.min(divW/srcW, divH/srcH);
    var newW = img.width * ratio;
    var newH = img.height * ratio;
    img.style.width  = newW + "px";
    img.style.height = newH + "px";
    img.style.marginTop = (divH-newH)/2 + "px";
    img.style.marginLeft = (divW-newW)/2 + "px";
}
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There are 4 parameters to this problem

  1. current image width iX
  2. current image height iY
  3. target viewport width cX
  4. target viewport height cY

And there are 3 different conditional parameters

  1. cX > cY ?
  2. iX > cX ?
  3. iY > cY ?

solution

  1. Find the smaller side of the target view port F
  2. Find the larger side of the current view port L
  3. Find the factor of both F/L = factor
  4. Multiply both sides of the current port with the factor ie, fX = iX * factor; fY = iY * factor

that's all you need to do.

//Pseudo code


iX;//current width of image in the client
iY;//current height of image in the client
cX;//configured width
cY;//configured height
fX;//final width
fY;//final height

1. check if iX,iY,cX,cY values are >0 and all values are not empty or not junk

2. lE = iX > iY ? iX: iY; //long edge

3. if ( cX < cY )
   then
4.      factor = cX/lE;     
   else
5.      factor = cY/lE;

6. fX = iX * factor ; fY = iY * factor ; 

This is a mature forum, I am not giving you code for that :)

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3  
Please don't post an answer without code. –  phatmann Nov 17 '12 at 11:10
1  
Posting the method behind this is great, but i mark you down for not actually helping the user by posting code. Seems a little obstructive –  Mat-visual Mar 11 '13 at 12:32
2  
"Can someone point me to some code, or explain the logic?" - Clearly he was ok with having only the method explained to him. Personally, I think that this would be the better way to assist someone, to help them understand the methods rather than have them copy and paste code. –  JessMcintosh Dec 19 '13 at 20:26

This totally worked for me for a draggable item - aspectRatio:true

.appendTo(divwrapper).resizable({
    aspectRatio: true,
    handles: 'se',
    stop: resizestop 
})
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Without additional temp-vars or brackets.

    var width= $(this).width(), height= $(this).height()
      , maxWidth=100, maxHeight= 100;

    if(width > maxWidth){
      height = Math.floor( maxWidth * height / width );
      width = maxWidth
      }
    if(height > maxHeight){
      width = Math.floor( maxHeight * width / height );
      height = maxHeight;
      }

Keep in Mind: Search engines don't like it, if width and height attribute does not fit the image, but they don't know JS.

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