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 writing a play 2.0 java application that allows users to upload files. Those files are stored on a third-party service I access using a Java library, the method I use in this API has the following signature:

void store(InputStream stream, String path, String contentType)

I've managed to make uploads working using the following simple controller:

public static Result uploadFile(String path) {
    MultipartFormData body = request().body().asMultipartFormData();
    FilePart filePart = body.getFile("files[]");
    InputStream is    = new FileInputStream(filePart.getFile())
    myApi.store(is,path,filePart.getContentType()); 
    return ok();
  }

My concern is that this solution is not efficient because by default the play framework stores all the data uploaded by the client in a temporary file on the server then calls my uploadFile() method in the controller.

In a traditional servlet application I would have written a servlet behaving this way:

myApi.store(request.getInputStream(), ...)

I have been searching everywhere and didn't find any solution. The closest example I found is Why makes calling error or done in a BodyParser's Iteratee the request hang in Play Framework 2.0? but I didn't found how to modify it to fit my needs.

Is there a way in play2 to achieve this behavior, i.e. having the data uploaded by the client to go "through" the web-application directly to another system ?

Thanks.

share|improve this question

1 Answer 1

up vote 8 down vote accepted

I've been able to stream data to my third-party API using the following Scala controller code:

def uploadFile() = 
    Action( parse.multipartFormData(myPartHandler) ) 
    {
      request => Ok("Done")
    }

def myPartHandler: BodyParsers.parse.Multipart.PartHandler[MultipartFormData.FilePart[Result]] = {
        parse.Multipart.handleFilePart {
          case parse.Multipart.FileInfo(partName, filename, contentType) =>
            //Still dirty: the path of the file is in the partName...
            String path = partName;

            //Set up the PipedOutputStream here, give the input stream to a worker thread
            val pos:PipedOutputStream = new PipedOutputStream();
            val pis:PipedInputStream  = new PipedInputStream(pos);
            val worker:UploadFileWorker = new UploadFileWorker(path,pis);
            worker.contentType = contentType.get;
            worker.start();

            //Read content to the POS
            Iteratee.fold[Array[Byte], PipedOutputStream](pos) { (os, data) =>
              os.write(data)
              os
            }.mapDone { os =>
              os.close()
              Ok("upload done")
            }
        }
   }

The UploadFileWorker is a really simple Java class that contains the call to the thrid-party API.

public class UploadFileWorker extends Thread {
String path;
PipedInputStream pis;

public String contentType = "";

public UploadFileWorker(String path, PipedInputStream pis) {
    super();
    this.path = path;
    this.pis = pis;
}

public void run() {
    try {
        myApi.store(pis, path, contentType);
        pis.close();
    } catch (Exception ex) {
        ex.printStackTrace();
        try {pis.close();} catch (Exception ex2) {}
    }
}

}

It's not completely perfect because I would have preferred to recover the path as a parameter to the Action but I haven't been able to do so. I thus have added a piece of javascript that updates the name of the input field (and thus the partName) and it does the trick.

share|improve this answer

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.