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I'm developing a website (using Drupal and php) that consists mostly of images. The images will all have a sepia filter applied to them when on the main page of the site.

I want to use imagefilter to generate the images as they're loaded to the main page, but when I apply/print the image after the filter, it prints garbage characters. I've tried adding

header(.........);

to the code, but just tells me the image is corrupt and can't be displayed properly. Below is my code:

//This is the path to the image, it's referenced by what I'm given from Drupal. 
//For Drupalites: I'm loading this manually from view_get_view_result
$image = imagecreatefromjpeg($nodes[0]->images['_original']); 
//Grayscale + colorize = Sepia.
imagefilter($image, IMG_FILTER_GRAYSCALE);
imagefilter($image, IMG_FILTER_COLORIZE, 90, 90, 0);
imagejpeg($image); //I don't want to save the image, so I don't pass a file name
imagedestroy($image);

Now, through a ton of work and annoyance, I CAN get this to work using CSS, but it's somewhat a hack and I'd like to avoid doing it that way if possible. I'd also like to mention that these images will be displayed on a page with other elements.

How can I get it to properly display my image filters? I've googled anything I can think of to no avail. The code above is copied from a site that displays images inline.

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Does the garbage have a JFIF somewhere at the start of it? –  Marc B Apr 20 '12 at 18:11
    
It does, yes. I'm not sure what that means, but good call! What now? ;) –  Brandon Apr 20 '12 at 18:18
    
that's part of the jpeg file format's "magic number". So at least you're getting jpeg data, if not useful jpeg data. did you have header('Content-type: image/jpeg') to tell the browser it's a jpeg file? –  Marc B Apr 20 '12 at 18:32
    
I don't for two reasons: When I learned of the header function (I'm still quite new to php and web development in general for that matter) I was under the impression that it could not be used when markup has already been written to the page which, in this case, it has and cannot be avoided. I did try it however, and when I did I got nothing output to the screen. Firebug shows this: <img src="bmdodo.net/bernardclark/"; alt="The image “bmdodo.net/bernardclark” cannot be displayed because it contains errors."> Where my image should be. The image does work properly. –  Brandon Apr 20 '12 at 18:39
    
If PHP is outputting a raw image, you can't surround that output with html. it has to be JPEG data and nothign else. Your container page would have <img src="yourscript.php">, and yourscript.php would be the code you posted above. –  Marc B Apr 20 '12 at 18:54
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