2

I am trying to send the following but I get the following error below. TableUser implements serializable but it seems that the issue is the the FXCollections, but I don't know how to serialize that.

Here is the TableUser class.

package application;

import java.io.Serializable;


public class TableUser implements Serializable{

    private static final long serialVersionUID = 1L;
    private String username = "";

    public TableUser(String name) {
        this.username = name;
    }

    public String getUsername(){
        return username;
    }

    public void setUsername(String user){
        username = user;
    }

}






//NOT apart of TableUser - This is the code that isn't working
private static ObservableList<TableUser> clientList = FXCollections.observableArrayList(); 

Object[] data = new Object[2];
        data[0] = "CLIENTS";
        data[1] = clientList;

        for(int i = 0; i < clients.size(); i++){
            clients.get(i).sendData(data);
        }


//I don't know if this helps but here is the sendData method
protected void sendData(Object[] data){
        try {
            oos.writeObject(data); //ServerMultiClient.java:286
            oos.reset();
        } catch (IOException e) {
            e.printStackTrace();
        }
    }


//This is from the Client application that is also part of the issue
if((fromServer = (Object[]) ois.readObject()) != null){ //Controller.java:109


java.io.WriteAbortedException: writing aborted; java.io.NotSerializableException: com.sun.javafx.collections.ObservableListWrapper
    at java.io.ObjectInputStream.readObject0(Unknown Source)
    at java.io.ObjectInputStream.readArray(Unknown Source)
    at java.io.ObjectInputStream.readObject0(Unknown Source)
    at java.io.ObjectInputStream.readObject(Unknown Source)
    at application.ChatRoomController$2.run(Controller.java:109)
    at java.lang.Thread.run(Unknown Source)
Caused by: java.io.NotSerializableException: com.sun.javafx.collections.ObservableListWrapper
    at java.io.ObjectOutputStream.writeObject0(Unknown Source)
    at java.io.ObjectOutputStream.writeArray(Unknown Source)
    at java.io.ObjectOutputStream.writeObject0(Unknown Source)
    at java.io.ObjectOutputStream.writeObject(Unknown Source)
    at application.ServerMultiClient.sendData(ServerMultiClient.java:286)
    at application.ServerMultiClient.run(ServerMultiClient.java:236)
  • Just in case you haven't tried it, xmlEncoder works with observable lists. I do encode them into zip files for size and maybe speed. You may have to change the private static, I don't remember. – brian Jan 9 '14 at 18:08
1

Given that ObservableListWrapper is not serializable you could try looping through your TableUser objects, and adding them one by one to data

Something like this:

Object[] data = new Object[clientList.size()+1];
data[0] = "CLIENTS";
int counter = 1;
for(TableUser tu: clientList) {
    data[counter] = tu;
    counter++;
}
| improve this answer | |
1

A NotSerializableException is thrown when an object that is trying to be serialized has not implemented the Serializable class. In your case, since it is telling you that ObservableListWrapper is not serializable, I would infer that clientList is not serializable.

Instead of using a JavaFX ObservableList, you can use a list, such as java.util.ArrayList, which happens to implement Serializable.

| improve this answer | |
  • In order to have to table update it has to be an Observable list. :\ – Michael Scott Jan 9 '14 at 1:44
  • 1
    You can use FXCollections.observableList(List) to convert a list to an observable list. – mattbdean Jan 10 '14 at 23:57
  • @thatJavaNerd I use FXCollections.observableList(List), but it doesn't update as "true" ObservableList would update. It looks like it waits for another event to happen, and then it updates. – Bartic Jan 15 '16 at 12:15
  • But the data written to disk (so the data in a file on disk) is not 'Observed' you just have to transform it form FXCollections.observableList <---> ArrayList<Object> at reading / writing time – irJvV May 12 '17 at 11:31

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.