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Problems seems to be that your function definition is part of your first if code block here – try placing it outside of the conditional block: if (…) { // … } function flip (…) { // … }


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Thanks to the comment by CBroe I found that by removing the content header it solved my error. the correct code is <?php $src = '../../Uploads/Gallery/drafting_site_bg_200.jpg'; $new_img = '../../Uploads/Gallery/copy_bg_200.jpg'; $image = imagecreatefromjpeg($src); $image = flip($image,1,0); // flips horizontal //$image = flip($image,0,1); // flips ...


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I'm thinking... of course it can't be displayed, it's a url not an image... duh?! With this line header("Content-type: image/jpeg"); you are telling the browser that the data he receives after this was that of a JPEG image – so if you’re not intending to send image data after that, that line has no place being there. Simply remove it, so that PHP ...


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First you dont need html, because your output is an jpeg. You missed the @ on @imagecreatefromjpeg. But your problem is the output file name which doesnt work together with header. The image will created sucessfully, but you get an error. imagejpeg filename The path to save the file to. If not set or NULL, the raw image stream will be outputted directly. ...


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This link should help you out. https://community.apachefriends.org/f/viewtopic.php?p=136656


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Well, figured it out... not sure whether this is best practise or not (and probably using ImageMagick, the result would obtain better quality, from what I've heard). I'll post it anyway, in case someone else would ever need a solution like this. $pathToImage = $_POST['pathToImage']; $posBg = $_POST['posBg']; $posTop = $_POST['posTop']; $posLeft = ...



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