Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm now saving the snapshot this way:

            vidBmpHolder.draw(main.media.videoLocal);
            var jpgEncoder:JPGEncoder = new JPGEncoder(85);
            var jpgStream:ByteArray = jpgEncoder.encode(vidBmpHolder);
            var loader:URLLoader = new URLLoader();
            var header:URLRequestHeader = new URLRequestHeader("Content-type", "application/octet-stream");
            var request:URLRequest = new URLRequest("http://domain.name/savesnapshot.php");
            request.requestHeaders.push(header);
            request.method = URLRequestMethod.POST;
            request.data = jpgStream;
            loader.load(request);

But I want to save additional information :

key=value

Is there a work around?

share|improve this question
    
could you please show me how does the savesnapshot.php looks like? Thanks! –  daniel.sedlacek Jan 21 '11 at 11:12

2 Answers 2

up vote 0 down vote accepted

You can try to add the key value pair at the url, for instance:

new URLRequest("http://domain.name/savesnapshot.php?filename=image1.jpg");

and then, on the php side:

$file_name = $_GET['filename'];

EDIT: Added server side php script.

<?php

$file_name = "image.jpg";

//here you access your file name passed in the url.
if( isset( $_GET["filename"] ) ) $file_name = $_GET["filename"];

$file = fopen($file_name, "w+") or die("Can't open file");

//here you access the bytearray data send form flash
$image_bytes = $GLOBALS["HTTP_RAW_POST_DATA"];

//create the image file
$fwrite = fwrite( $file, $image_bytes );

if ($fwrite === false) echo "Error writing to file: ".$file_name;

fclose($file);

?>
share|improve this answer
    
How to retrieve the image data then? –  fms Jan 20 '11 at 16:01
    
@fms: You would use post as you did before. I will edit the answer to include the php side script, or a quick example at least. –  goliatone Jan 23 '11 at 15:12

The proper way is to use URLVariables.

var variables : URLVariables = new URLVariables();
variables.foo= "foo";
variables.bar = "bar";
variables.jpgStream = Base64.encodeByteArray(jpgStream);
request.data = variables;

Note the Base64 encoding, and choose an appropriate library to do this. This should eliminate the need for the header you set.

Then everything should appear as

$foo = $_POST["foo"];
$bar = $_POST["bar"];
$jpgStream = base64_decode($_POST["jpgStream"]);

You may need to do this as multipart, though. Search around for the AS3 UploadPostHelper class, which contains an example.

share|improve this answer
1  
Why Base64 is necessary here? –  yoyo Jan 21 '11 at 6:11
    
Normal POSTs are sent as content-type 'application/x-www-form-urlencoded' when you have key/value pairs, so all key values are supposed to be URL encoded. Base64 accomplishes this if you have binary data, and prevents URLVariables from percent encoding all the binary data. The best way to handle large blobs of binary data, though, is do the post as multipart. To accomplish this in AS3, you need a class like UploadPostHelper since calculating all of the boundaries is a pain. –  MPD Jan 21 '11 at 15:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.