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I have a simple page which loads links, the links change the look of an image. I want an ajax call to process the image (pixelate it or something or other) and then update the results within a div, but its not diplaying properly, just a collection of e.g. ��� X!t��⤹9�Ej_5��-

I have tried using header('Content-Type: image/jpg'); at the top of the page containing the div to be populated but that results in "This image cannot be displayed as it has errors"

here is the php:

$im = '/path/to/image.jpg';
if($_GET[filter]=="pixelate"){
imagefilter($im, IMG_FILTER_PIXELATE, 3, true);
imagejpeg($im);
}

AJAX

function addFilter(filter,color)
{
$.ajax({

 type: "GET",
 url: 'filters.php',
 data: {filter: filter, color: color},
 success: function(data) {
       // data is ur summary
      $('#result').html(data);
 }

});

}

And HTML

<div style="width:600px; height:400px;" id="result"></div>
<a href="#" onclick="addFilter('pixelate','')">pixelate</a>

QUESTION How do I get image to display? Do I have to copy the image to a temp dir to show it as actualy image?

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Why not just change the img src with the link you are hovering over using jQuery? –  Steven May 23 '13 at 10:34
    
@Steven Not sure what you mean? –  Darren Sweeney May 23 '13 at 10:34
    
You have an DIV containig an image - right?`And you want to change this image when you click a link? –  Steven May 23 '13 at 10:37

1 Answer 1

Change:

$im = '/path/to/image.jpg';
if($_GET[filter]=="pixelate"){
    imagefilter($im, IMG_FILTER_PIXELATE, 3, true);
    imagejpeg($im);
}

To:

if($_GET[filter]=="pixelate"){
    $im = @imagecreatefromjpeg('/path/to/image.jpg');
    if ($im) {
        imagefilter($im, IMG_FILTER_PIXELATE, 3, true);
        header('Content-Type: image/jpg');
        imagejpeg($im);
        imagedestroy($im);
        exit;
    } else {
       echo 'Unable to create image from jpeg.';
       exit;
    }
}
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