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I'd like to upload a few files to a http server. Basically what i need is some sort of a post request to the server with a few parameters and the files. I've seen examples of just uploading files, but didn't find how to also pass additional parameters. So the question would be what's the simplest and free solution of doing this? Does anyone have any file upload examples that i could study? I've been googling for a few hours, but (maybe it's just one of those days) couldn't find exactly what i needed. The best solution would be something that doesn't involve any third party classes or libraries.

Thank you

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5 Answers 5

up vote 22 down vote accepted

You'd normally use java.net.URLConnection to fire HTTP requests. You'd also normally use multipart/form-data encoding for mixed POST content (binary and character data). Click the link, it contains information and an example how to compose a multipart/form-data request body. The specification is in more detail described in RFC2388.

Here's a kickoff example:

String urlToConnect = "http://example.com/upload";
String paramToSend = "fubar";
File fileToUpload = new File("/path/to/file.txt");
String boundary = Long.toHexString(System.currentTimeMillis()); // Just generate some unique random value.

URLConnection connection = new URL(urlToConnect).openConnection();
connection.setDoOutput(true); // This sets request method to POST.
connection.setRequestProperty("Content-Type", "multipart/form-data; boundary=" + boundary);
PrintWriter writer = null;
try {
    writer = new PrintWriter(new OutputStreamWriter(connection.getOutputStream(), "UTF-8"));

    writer.println("--" + boundary);
    writer.println("Content-Disposition: form-data; name=\"paramToSend\"");
    writer.println("Content-Type: text/plain; charset=UTF-8");
    writer.println();
    writer.println(paramToSend);

    writer.println("--" + boundary);
    writer.println("Content-Disposition: form-data; name=\"fileToUpload\"; filename=\"file.txt\"");
    writer.println("Content-Type: text/plain; charset=UTF-8");
    writer.println();
    BufferedReader reader = null;
    try {
        reader = new BufferedReader(new InputStreamReader(new FileInputStream(fileToUpload), "UTF-8"));
        for (String line; (line = reader.readLine()) != null;) {
            writer.println(line);
        }
    } finally {
        if (reader != null) try { reader.close(); } catch (IOException logOrIgnore) {}
    }

    writer.println("--" + boundary + "--");
} finally {
    if (writer != null) writer.close();
}

// Connection is lazily executed whenever you request any status.
int responseCode = ((HttpURLConnection) connection).getResponseCode();
System.out.println(responseCode); // Should be 200

This code is less verbose when you use a 3rd party library like Apache Commons HttpComponents Client.

The Apache Commons FileUpload as some incorrectly suggest here is only of interest in the server side. You can't use and don't need it at the client side.

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Thanks, i'll try it. The question is though about this line: writer.println(paramToSend); Shouldn't i use Encoder to encode this value? Or is it sent the way it is? –  Marius Mar 18 '10 at 12:07
    
No, it's multipart/form-data, not application/x-www-form-urlencoded. You however would like to specify the charset used. I've updated the answer accordingly. –  BalusC Mar 18 '10 at 12:18
    
Thanks, BalusC, for the information! –  Marius Mar 18 '10 at 12:23
    
I've just tried it. Something's wrong :( The PHP script on the other end sees the entire thing as a post parameter. It thinks that the "Content-type...etc." is the parameter and everything else is the value. I'm using linux, can it be an issue with println, since AFAIK these things should use \r\n endlines? Or is it just something missing? –  Marius Mar 18 '10 at 13:01
    
Never mind, i figured that content type shouldn't be written to the body and sent as a header so the following line fixed it: connection.setRequestProperty("Content-Type", "multipart/form-data; boundary=" + boundary); –  Marius Mar 18 '10 at 13:21

Here is how you would do it with Apache HttpClient (this solution is for those who don't mind using a 3rd party library):

    MultipartEntity entity = new MultipartEntity();
    entity.addPart("file", new FileBody(file));

    HttpPost request = new HttpPost(url);
    request.setEntity(entity);

    HttpClient client = new DefaultHttpClient();
    HttpResponse response = client.execute(request);
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It could depend on your framework. (for each of them could exist an easier solution).

But to answer your question: there are a lot of external libraries for this functionality. Look here how to use apache commons fileupload.

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let me know why you downvoted ... –  Karussell Aug 30 '12 at 13:54
    
I didn't downvote, but I would guess that it is for the same reason the other answer got downvoted. You answer how to receive an uploaded file using servlets, the question is asking how to send a file. And specifically, with additional data in the POST. In general, if you paraphrase or copy out the useful/relevant sections from the pages you link to it will make the answers more useful to readers and preserve the usefulness if the links ever go dead. –  Arkaine55 Oct 15 '14 at 14:13
protected void doPost(HttpServletRequest request,
        HttpServletResponse response) throws ServletException, IOException {

    boolean isMultipart = ServletFileUpload.isMultipartContent(request);

    if (!isMultipart) {
        return;
    }

    DiskFileItemFactory factory = new DiskFileItemFactory();

    factory.setSizeThreshold(MAX_MEMORY_SIZE);

    factory.setRepository(new File(System.getProperty("java.io.tmpdir")));

    String uploadFolder = getServletContext().getRealPath("")
            + File.separator + DATA_DIRECTORY;//DATA_DIRECTORY is directory where you upload this file on the server

    ServletFileUpload upload = new ServletFileUpload(factory);

    upload.setSizeMax(MAX_REQUEST_SIZE);//MAX_REQUEST_SIZE is the size which size you prefer

And use <form enctype="multipart/form-data"> and use <input type="file"> in the html

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Here is one way of doing this: http://commons.apache.org/fileupload/ . You can peek at the sources if you wish.

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4  
Wrong, he want to send a HTTP request to upload a file, not to parse an incoming HTTP request which contains an uploaded file. The Commons FileUpload only parses file upload requests. –  BalusC Mar 18 '10 at 12:02
    
-'zing because of the parse/send confusion. –  Diego Plentz Feb 6 '13 at 16:30

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