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I am uploading image in android. Currently my code only uploads file but I also want to send some parameter. I am trying following

FileInputStream fileInputStream = new FileInputStream(sourceFile);
        URL url = new URL(upLoadServerUri);
        conn = (HttpURLConnection) url.openConnection(); // Open a HTTP  connection to  the URL
        conn.setDoInput(true); // Allow Inputs
        conn.setDoOutput(true); // Allow Outputs
        conn.setUseCaches(false); // Don't use a Cached Copy
        conn.setRequestMethod("POST");
        conn.setRequestProperty("Connection", "Keep-Alive");
        conn.setRequestProperty("ENCTYPE", "multipart/form-data");
        conn.setRequestProperty("Content-Type", "multipart/form-data;boundary=" + boundary);
        conn.setRequestProperty("uploaded_file", fileName);
        dos = new DataOutputStream(conn.getOutputStream());

        dos.writeBytes(twoHyphens + boundary + lineEnd);
        dos.writeBytes("Content-Disposition: form-data; name=\"uploaded_file\";filename=\""+ fileName + "\"" + lineEnd);
        dos.writeBytes(lineEnd);

        //Sending data
        dos.writeBytes(twoHyphens + boundary + lineEnd);
        dos.writeBytes("Content-Disposition: form-data; name=\"paramName\"" + lineEnd);
        dos.writeBytes(lineEnd);
        dos.writeBytes(globalUID);

and on the server side I am using php. here is how I am trying to get that parameter

$param = $_POST["paramName"];
target_path1 = "./places_photos/" . $param;

But my current code does upload file but it does not send parameters. How can I send parameters and how can I get them on server side?

Update

Currently, the image is saved in places_photos directory which is mentioned in $target_path1 variable. What I want is to save that image in user's directory and that directory is named as user id. But unfortunately I am not getting userid on server side. How can I send userid to server along with file?

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4 Answers 4

There should be another lineEnd added after this:

dos.writeBytes(twoHyphens + boundary + lineEnd);
    dos.writeBytes("Content-Disposition: form-data; name=\"paramName\"" + lineEnd);
    dos.writeBytes(lineEnd);
    dos.writeBytes(globalUID);
    dos.writeBytes(lineEnd); <-- add this

Also make sure you add the end of the multipart boundary (the line that starts with '--') In your case, add this:

dos.writeBytes(twoHyphens + boundary + twoHyphens + lineEnd);
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This is not working either. Any other solution? –  2619 Jun 23 '12 at 3:33
    
Can you use a tool like Firebug, or Wireshark, and trace what is the form post being sent to the server? The multi-part/form-data is very finicky about new lines and boundary being 100% correct. –  azgolfer Jun 25 '12 at 17:32
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Set a cookie with userid in it. On server you can retrieve the cookie and check userid. (Though note that this is not secure and neither passsing userid parameter)

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What you mention that is one option but this app requirement is to send parameter to the server with file upload. :( –  2619 Jun 23 '12 at 5:39
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Do you want to "make" the php know your file name?? if your answer is yes, so you can make some changes on your code.

(i assume you have created a buffer of maximum size and read file and write it into form)

first change you don't need this to send paramName:

//Sending data
dos.writeBytes(twoHyphens + boundary + lineEnd);
dos.writeBytes("Content-Disposition: form-data; name=\"paramName\"" + lineEnd);
dos.writeBytes(lineEnd);
dos.writeBytes(globalUID);

just do this:

dos.writeBytes(lineEnd);
dos.writeBytes(twoHyphens + boundary + twoHyphens + lineEnd);

and in your php, change your code:

$param = $_POST["paramName"];

to

$param = basename( $_FILES['uploaded_file']['name']);

you can check this article

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I want to send parameter to the server. My php already know the filename of the file. –  2619 Jun 23 '12 at 3:00
    
if you just want to send parameter to the server you can execute a HTTP POST Request with HttpClient –  yosafatade Jul 4 '12 at 15:08
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Your code is a bit confusing, double check your variables... for instance your target_path1 doesn't have a $ in front, check to see whether any of the other sever variables return any valid output.

If all fails however, you can rename the file being uploaded - including the parameters in the file name and renaming it at the server side again after extracting the parameters.

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