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I am uploading files, in such a way the user does not need to hit the button 'Upload' after selecting the file. It works fine but I also need to send an extra parameter and, since I'm not into Javascript at all, I can not figure out how to send it.
The html:

<form enctype="multipart/form-data" target="_blank" name="send_img" id="send_img" method="post" action="img_upload.php">
    <input type="hidden" id="group_id" name="group_id" value="2" />
    <input type="file" class="hide" id="uploaded_file" name="uploaded_file" onChange="Handlechange();"/>
    <button type="submit" id="btn">Subir fotos!</button>
</form>

<div onclick="HandleBrowseClick();" id="fakeBrowse" >Load a picture</div>

The script:

<script language="JavaScript" type="text/javascript">
function HandleBrowseClick()
{
    var fileinput = document.getElementById("uploaded_file");
    fileinput.click();
}

function Handlechange()
{
    var fileinput = document.getElementById("uploaded_file");
    var textinput = document.getElementById("filename");
    textinput.value = fileinput.value;
}
</script>

I have no clue how to send the group_id variable (which I have in a php variable, so it can be echoed anywhere, even in the script). I tried many ways with no luck. So how can that variable to be passed and gotten in img_upload.php? I thought that:

var group_id = document.getElementById("group_id").value;

would make it but I was wrong :-/

What I also find interesting is that if I modify the form tag to action="img_upload.php?group_id=2", I can not get the parameter later in that file by doing $_GET['group_id'];

In img_upload.php I am taking this other variable and inserting it into a database. So it would be really cool if I can get that variable in such a way I can get it into a php variable (I tried to be as clear as possible in this last line).
I would also add what I get in Chrome Developer Tool:

Request Payload
------WebKitFormBoundarydOdbB5IQ8RbA8CRR
Content-Disposition: form-data; name="uploaded_file[]"; filename="photo-5.JPG"
Content-Type: image/jpeg


------WebKitFormBoundarydOdbB5IQ8RbA8CRR--

That's what makes me think the problem is in the data sending script

share|improve this question
    
Both methods should work. Show us the exact code of what you tried, please. Did you wait for DOMready before getting the group_id from the hidden input? –  Bergi Dec 23 '12 at 21:04
    
Since it's doing what it is supposed to do, I thought that's all I needed. What you see is pretty much what I have in the file. That said... No, I didn't wait for the DOMready. I'm going to work on that now! –  cbarg Dec 23 '12 at 21:06

1 Answer 1

When you click 'submit' all input fields will be submitted to the server using a HTTP POST.

On the server you can interpret the request with something like (java)

request.getAttribute('uploaded_file');

In PHP this would be something like:

$myFile = $_REQUEST['uploaded_file'];

See PHP manual.

Edit: your input tag is invalid (remove the "/"):

<input type="hidden" id="group_id" name="group_id" value="2">

Edit2:

Add the following (as a test):

<script type="text/javascript">
var el = document.getElementById('send_img');

el.addEventListener('submit', function(){
alert(document.getElementById("group_id").value);
return true;
}, false);
</script>
share|improve this answer
    
That's correct, but I need to get the variable into php so it can be easily inserted in a database. (I'm adding that detail) –  cbarg Dec 23 '12 at 21:08
    
I have that part. I just need to get the variable group_id. Thanks for taking the time to help me!!! –  cbarg Dec 23 '12 at 21:11
    
That would be $myGroupId = $_REQUEST['group_id']; But i don't really have experience with PHP. –  asgoth Dec 23 '12 at 21:13
    
As I added above, the problem is not in the receiving file but in the sending one, where the javascript part is. You can see that the parameter group_id is not passed. –  cbarg Dec 23 '12 at 21:22
    
Edited me answer. An valid input tag is like <input>, not <input/> –  asgoth Dec 23 '12 at 21:25

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