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Trying to simply get an image returned. But the following returns an error 'An error occured.' Is it possible I need to configure php on my server differently?

if ( isset ( $GLOBALS["HTTP_RAW_POST_DATA"] )) {
// get bytearray
$im = $GLOBALS["HTTP_RAW_POST_DATA"];

// add headers for download dialog-box
header('Content-Type: image/jpeg');
header("Content-Disposition: attachment; filename=".$_GET['name']);
echo $im;
}  else echo 'An error occured.';


?>
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1  
Short answer: $GLOBALS["HTTP_RAW_POST_DATA"] is not set. To see the long (and helpful) answer, you'll have to provide more info... For instance, how is this script being called? –  grossvogel Jun 25 '10 at 15:38

2 Answers 2

Maybe this helps:

The manual states that it's best to use php://input (man) to read the raw post data. Also, neither $HTTP_RAW_POST_DATA nor php://input will be available with enctype="multipart/form-data".

Ahh... enctype is different from Content-type. Being flash-phobic, I can't guess the inner workings of that actionscript, but this post suggests setting the Enctype header also:

jpgURLRequest.requestHeaders.push(new URLRequestHeader('Enctype', 'application/x-www-form-urlencoded');

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I'm using "Content-type", "application/octet-stream" –  eco_bach Jun 25 '10 at 16:00

grossvogel, in Actionscript

var header:URLRequestHeader = new URLRequestHeader ("Content-type", "application/octet-stream");
var jpgURLRequest:URLRequest = new URLRequest ("myPHPthatisbroken.php?name=myreturnedJpg.jpg");
jpgURLRequest.requestHeaders.push(header);  
jpgURLRequest.method = URLRequestMethod.POST;
jpgURLRequest.data = jpgStream;
navigateToURL(jpgURLRequest, "_blank");
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This probably should be added as part of the question.... I updated my answer based on this input, though. –  grossvogel Jun 25 '10 at 17:05

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