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I have a Java application that inputs images, gives a number of options to edit them (crop, resize) and then exports them to local storage.

I currently trying to attach a server to this application using java.net but running to several issues as I have never done this before.

  1. I have a button on the GUI that activates the Server, so the app can receive commands - The issue is the server uses a while loop that doesn't stop until it disconnects with the client, this means the program can't run until then. I am assuming that it requires creating a new thread but how do I send commands to the app without creating a new instance?
  2. I would like to send images from the client to the application through the server. The client currently using JFileChooser to pick an image but how do I send it down the stream and recreate it at the other end?

My code is just a modified version of this client and server. It just removes the echo feature and runs a method based on the string sent by the client. (e.g. Client sends "open" to server - the server runs open(){} method.

Edit: Code:

This is the server code. The ImageGUI is the GUI with all the commands and holds the openImage method. private int portNumber = 8888;

public Server() {

    try (
    // Create Server socket
    ServerSocket theServer = new ServerSocket(portNumber);
            // Create socket for client
            Socket clientSocket = theServer.accept();
            // Use to write to client
            PrintWriter out = new PrintWriter(
                    clientSocket.getOutputStream(), true);
            // Used to read from client
            BufferedReader in = new BufferedReader(new InputStreamReader(
                    clientSocket.getInputStream()));) {
        // Waits for Client commands
        String clientCommand;
        while ((clientCommand = in.readLine()) != null) {
            if (clientCommand.contains("open")) {
                // Runs open method in ImageGUI
                new ImageGUI().openImage(); // I don't want this because it
                                            // will create another GUI
                                            // I want to run the openImage()
                                            // in the GUI already open
            }
        }

    } catch (IOException e) {
        e.printStackTrace();
    }

}
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Show us some code. –  Tichodroma Feb 19 '14 at 15:41
    
but how do I send commands to the app without creating a new instance Huh? –  SLaks Feb 19 '14 at 15:43
    
I've added a comment in the code to explain what I mean. –  user2916314 Feb 19 '14 at 15:53

2 Answers 2

You probably do want to run your server's accept() loop in its own thread.

Your server GUI's 'start server' button will start this thread. Make sure you also have a 'stop server' button which tells the server thread to quit. Also tell the server thread to quit when the user quits the app.

You're going to need to decide on a protocol for sending the images.

It could be as simple as pushing the bytes from the image file down the socket, then closing the socket -- or it could be something more complicated, like wrapping chunks of bytes in headers that say how large the packet is, what it's for, etc.

Or it could be a pre-existing protocol that someone else has invented - in which case you can use a library implementation. Many people would use HTTP for this purpose.

share|improve this answer
    
Thanks, I have a few more follow up questions. The images are being edited in OpenCV's Mat format but being displayed using BufferedImages, what method of transferring the images do you recommend? How can I make a button stop the server? –  user2916314 Feb 19 '14 at 16:07
    
When the button is clicked, call serverThread.stop(). Any decent example of a server implementation will have a stop() method. –  slim Feb 19 '14 at 16:15
    
As for getting from BufferedImage to something to write to the network -- use the same method you would use to write to a file, but instead of using a FileOutputStream, write to whatever protocol you choose. –  slim Feb 19 '14 at 16:16
    
Thanks, so I need to initialise the Thread first then Start it and stop it when a button is clicked. Because I create it when I press the button –  user2916314 Feb 19 '14 at 16:34
    
Doesn't matter when you initialise it, as long as it's before you start it! –  slim Feb 19 '14 at 16:36
  1. You can use a shared BlockingQueue to send and consume commands.

    BlockingQueue are thread safe. Use take() to make your server wait for the next command and use add() from your main thread to add a command to the queue.

    You can then use a class, an enum or even strings to represent commands and send them from your main thread to your server thread.

  2. To send images, use OutputStream from the client (echoSocket.getOutputStream()) to write data. Server side, use InputStream (clientSocket.getInputStream()) to receive data.

    For example:

    // Client side
    int returnVal = chooser.showOpenDialog(parent);
    if(returnVal == JFileChooser.APPROVE_OPTION) {
        File imageFile = chooser.getSelectedFile();
    
        try(FileInputStream imageInputStream = new FileInputStream(imageFile);
            OutputStream serverOutputStream = echoSocket.getOutputStream()) {
            int[] buffer = new int[1024];
            int readCount = imageInputStream.read(buffer);
            while(readCount > 0) {
                serverOutputStream.write(buffer, 0, readCount);
                readCount = imageInputStream.read(buffer);
            }
        }
    }
    

    And:

    // Server side
    File folder = new File("/tmp/");
    File imageFile = new File(folder, "image.jpg");
    
    try(InputStream clientInputStream = clientSocket.getInputStream();
            FileOutputStream imageOutputStream = new FileOutputStream(imageFile)) {
            int[] buffer = new int[1024];
            int readCount = clientInputStream.read(buffer);
            while(readCount > 0) {
                imageOutputStream.write(buffer, 0, readCount);
                readCount = clientInputStream.read(buffer);
            }
        }
    }
    
share|improve this answer
    
Great thanks, I'll give this a try. –  user2916314 Feb 19 '14 at 16:58

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