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I am using the following to find the image within .content and apply it's width to the .project parent width.

    $('.content').find('img').each(function () {
         var $this = $(this), width = $this.width();
         {
            $(this).closest('.project').css("width", width);
        }
    });

My problem is that it doesn't find the largest image in the .content and sometimes applies a width that is smaller than the largest image and is creating problems with my layout.

Any help would be great. Thanks.


Edit

Woops, detail is wrong, the answers are great! I just need to apply the max width the parent project div.

Building off Sudhir's answer.

This doesn't work, should it work?

 $(document).ready(function() {
var max_width = 0;
$('.content').find('img').each(function(){
        var this_width = $(this).width();
        if (this_width > max_width) max_width = this_width;
});
$(this).closest('.project').css('width', max_width + 'px');
});

Example of the layout. There are many projects.

<div class="container">

    <div class="project">
        <div class="content">
            <img src="small.jpg"  height="100" width="100" />
            <img src="large.jpg"  height="400" width="600" />
            <img src="medium.jpg"  height="400" width="600" />

        </div>

        <div class="meta">Other content here.

        </div>
    </div>



    <div class="project">
        <div class="content">
            <img src="small.jpg"  height="100" width="100" />
            <img src="large.jpg"  height="400" width="600" />

       </div>

        <div class="meta">Other content here.

        </div>
    </div>

share|improve this question
    
I'm having trouble picturing what the layout of the Div's is on your site. Do you have lots of .content divs each with their own .project div? Or is there one .content div with .project divs inside it each with images inside them? Could you post an example of the HTML layout please. –  Tim Mar 4 '12 at 13:37
    
Yep each .content div has it's own parent .project div as well. Hows that @Tim I hope that makes sense, many .projects within a larger container. –  uriah Mar 4 '12 at 13:50

6 Answers 6

up vote 9 down vote accepted
+50

You can't do this on document ready event. You have to do this on window load because all images must be loaded to get the dimensions.

$(window).load(function(){
    $('.project').each(function(){
        var maxWidth = 0;
        $(this).find('.content img').each(function(){
            var w = $(this).width();
            if (w > maxWidth) { 
              maxWidth = w;
            }
        });
        if (maxWidth) {
          $(this).css({width:maxWidth});
        }
    });       
});
share|improve this answer
    
Thats great @kitgui.com . My only problem is that if there is no image found it defaults to 0px. Which breaks the layout again. But should I write an additional script to look for projects without images. –  uriah Mar 4 '12 at 23:07
    
right, my point was to show you it was window load as the main issue, not anything else. you can fix as you need. this is for demonstration purposes. I'll put a boolean for you if you just for shtz and giggles –  Jason Sebring Mar 4 '12 at 23:11
    
Thank you very much, do you know if there is a way to avoid the window load issue? –  uriah Mar 5 '12 at 5:12
    
Yes, you could put a load event for each image individually and give it context of its ".project" and "maxWidth" by using the data property. This becomes a little tricky if images are cached and don't fire as Chrome sometimes does. The less headache way is to rely on window load but it can seem slower. You could also result to putting divs wrapped around the images and use overflow hidden and give it an expected average dimension. Then you can adjust on load. At least users won't notice as much. –  Jason Sebring Mar 5 '12 at 5:31
    
@kitgui.com If I remember right, you cannot have 'load' events on images in older MSIE versions –  HerrSerker Mar 7 '12 at 14:52

Do you mean something like this:


var max_width = 0;
$('.content').find('img').each(function(){
        var this_width = $(this).width();
        if (this_width > max_width) max_width = this_width;
});
$('.project').css('width', max_width + 'px');

Hope it helps

share|improve this answer
    
This works well, except it's applying the same width to each .project. Rather than finding the largest image within the project and applying the largest with to that project. Like how .closest worked before. –  uriah Mar 2 '12 at 4:44

To get maximum width of something just iterate with this function:

var getMaxWidth = function ($elms) {
    var maxWidth = 0;
    $elms.each(function () {
        var width = $(this).width();
        if (width > maxWidth) {
            maxWidth = width;
        }
    });
    return maxWidth;
};
share|improve this answer
    
You forgot to initialise the width variable. :-) –  GregL Mar 2 '12 at 4:30
    
Yup, good catch!. Fixed. –  elclanrs Mar 2 '12 at 4:32

The example in the jQuery plugin authoring guide is very similar to what you're looking for:

$.fn.maxWidth = function() {
  var max = 0;

  this.each(function() {
    max = Math.max(max, $(this).width());
  });

  return max;
};

Use it like so:

var maxWidth = $('.content img').maxWidth();
share|improve this answer

This works, I don't know if you want it super compressed though:

function findmax() { 
    max=Math.max(max,parseInt($(this).css('width'))); }
function sum() {
    max=0;
    $(this).children('img').each(findmax);
    $(this).parent().css('width',max+'px'); }
var max;
$('.content').each(sum);
share|improve this answer

You're looping through all images, so the width of your container will always be the same as your last image. You should check the width of the current image and compare it to the width of the widest image found at that point and adjust the width accordingly.

Edit

Try this:

$('.content').each(function () {
    var max_width = 0;
    $(this).find('img').each(function () {
        if ($(this).width() > max_width) {
            max_width = $(this).width();
        }
    });

    $(this).width(max_width);

});

Crazy with the nested $(this)'s but I think it should work.

share|improve this answer

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