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i am using an upload script, allowing the use of the "data" value to post additional information to the "upload.php" file. The description is as following :

data String, Function, Object ''

If given as string is used for sending additional parameters in GET to the php script. If given as function must return a url formated string. This function is excecuted on the start upload event, so the data are created when Upload button is pressed. If given as object must have this format {getvar:value, anothergetvar:value....}. This is similar to jQuery Ajax data.

I've got the following Code :

<script type="text/javascript">
$('#uploader_div').ajaxupload({
url:'upload.php',
language: 'de_DE',
data: "<?php echo $_GET['id']?>"
});
</script>

In my Source code, the value is parsed correctly and spits out "55" which is right cause i am on customer-ID 55 profile page. Now i want to get the data value in the "upload.php" i used :

$data = $_GET['data'] print_r($data)

and it doesnt return anything.

What can i do to get the value correct?

share|improve this question
    
try $data = $_REQUEST['data'] ; – Satya Oct 10 '12 at 12:23
    
I'm against @Satya's recommendation on $_REQUEST. There are ways without that variable. – mauris Oct 10 '12 at 12:25
    
I am open to your suggestions Mauris , what I wrote is just one way, not the only way :) – Satya Oct 10 '12 at 12:32
    
If every field in your form is setup like this name='data[id]' then instead of passing the entire $_REQUEST array you can send just $_REQUEST['data']. – Pitchinnate Oct 10 '12 at 12:36

I suppose $.ajaxupload works similar to $.ajax, which means that you send data in a wrong way. It should be done like this:

data: {
    id: 13
}

And you can get get your data like this in the PHP script:

$id = $_GET['id'];

Or with POST, if you use POST.

share|improve this answer

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