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This is how I first tried:

$('#thumbnail').imgAreaSelect({ 
    x1: 5,
    y1: 5,
    x2: $('#thumbnail').width(),
    y2: $('#thumbnail').width()*0.66,
    aspectRatio: '1:0.66'
});

But some of the cropped image stay off the overflow...

This seems to make a preselection for most of the image resolutions I tried...

var thwidth = $('#thumbnail').width();
var thheight = $('#thumbnail').height();
aspectRatio = 0.66;

$('#thumbnail').imgAreaSelect({ 
    x1: 5,
    y1: 5,
    x2: thwidth - 80,
    y2: (thwidth - 80) * aspectRatio,
    aspectRatio: '1:0.66'
});

But it won't select the maximum possible; plus it looks a bit dirty to me...

How can I select the biggest (centereded, if posible) width/height coordinates that respects the aspect ratio? (in this case: 1:0.66)

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2 Answers 2

up vote 5 down vote accepted
+100

Try this code

        var selWidth = 500;

        var photo = $('#photo'),
           photoWidth = parseInt($('#photo').width()),
           maxWidth = Math.min(selWidth, photoWidth)
           aspectRatio = 0.66,
           maxHeight = maxWidth * aspectRatio,
           yTop = parseInt(photo.height()) / 2 - maxHeight / 2;

        $('img#photo').imgAreaSelect({
           x1: photoWidth / 2 - maxWidth / 2,
           y1: yTop,
           x2: (photoWidth / 2 - maxWidth / 2) + maxWidth,
           y2: yTop + maxHeight
        });

jsfiddle This code creates a centered selection area with given aspect ratio and max width. If max width exceeds that of the image, it uses image's width as max width. Please note that it works with jquery 1.8.3 which I think is because of the imageareaselect plugin not being compatible with newest jquery verions (I'm not sure though).


Update

I've improved the code to include the cases of height overflwo and aspectRatio > 1. I hope this works in all conditions :)

        var selWidth = 350;

        var photo = $('#photo'),
           photoWidth = parseInt($('#photo').width()),
           photoHeight = parseInt($('#photo').height()),
           maxWidth = Math.min(selWidth, photoWidth),
           aspectRatio = 0.66,
           maxHeight = maxWidth * aspectRatio;

        if (maxHeight > photoHeight) {
           maxHeight = photoHeight;
           maxWidth = maxHeight * ( 1 / aspectRatio);
        }

        var yTop = photoHeight / 2 - maxHeight / 2;

        $('img#photo').imgAreaSelect({
           x1: photoWidth / 2 - maxWidth / 2,
           y1: yTop,
           x2: (photoWidth / 2 - maxWidth / 2) + maxWidth,
           y2: yTop + maxHeight
        });
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Upvote for the max width. Good call. :) Would this script work with an aspect ratio > 1? (e.g. portrait mode thumbs) –  MildlySerious Apr 17 '13 at 12:12
    
Hi there! thanks for your time! I am about to test.. what I don't understad why is var selWidth a constant (And wich width represents, at all)? –  Toni Michel Caubet Apr 17 '13 at 12:15
    
It is supposed to be a maximum size for the area to crop out of the image. If the image is way larger, it would just select the middle 500px portion. –  MildlySerious Apr 17 '13 at 12:19
1  
selWidth defines selection area width. if you set selWidth too large, it'll just select the whole image's widht. If you don't want to set it manually, just do maxWidth = photoWidth where you find appropriate. –  Ejay Apr 17 '13 at 12:21
    
I see, I replaced it with my own biggest posible with. This works great! thanks! –  Toni Michel Caubet Apr 17 '13 at 15:02

I prepared this little fiddle. It took me a little longer than Ejay, but I included a visual demonstration.

After calculating the position and width of the thumb, you could call it simple as that. (Using variable names from the fiddle)

$('#thumbnail').imgAreaSelect({ 
    x1: thumbX,
    y1: thumbY,
    x2: thumbX+thumbW,
    y2: thumbY+thumbH,
});
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