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.

Consider I have a Singleton class defined as follows.

public class MySingleton implements Serializable{
 private static MySingleton myInstance;

 private MySingleton(){

 }
  static{
    myInstance =new MySingleton();
 }
 public static MySingleton getInstance(){
    return MySingleton.myInstance;
 }
}

The above definition according to me satisfies the requirements of a Singleton.The only additional behaviour added is that the class implements serializable interface.

If another class X get the instance of the single and writes it to a file and at a later point deserializes it to obtain another instance we would have two instances which is against the Singleton principle.

How can I avoid this or am I wrong in above definition itself.

share|improve this question
    
Just for future reference, you can remove the static { } declaration if you change your singleton definition to: private static final MySingleton myInstance = new MySingleton(); –  Steven Oct 14 '10 at 6:44
    
Got more info about the [readResolve()] at this link lingpipe-blog.com/2009/08/10/… –  frictionlesspulley Mar 6 '11 at 2:17
    
I recently heard a talk by J0sh Bl0ch here where he explains the reas0n behind using the Enum singlet0n pattern youtube.com/… –  frictionlesspulley Oct 30 '12 at 23:50
    
The reason not to use readResolve starts at 28:52 in Josh Bloch's talk (linked by frictionlesspulley). –  ngreen Feb 13 at 22:18
add comment

5 Answers

up vote 9 down vote accepted

The best way to do this is to use the enum singleton pattern:

public enum MySingleton {
  INSTANCE;
}

This guarantees the singleton-ness of the object and provides serializability for you in such a way that you always get the same instance.

More generally, you can provide a readResolve() method like so:

protected Object readResolve() {
  return myInstance;
}
share|improve this answer
add comment

@ColinD is kind of right, but his answer also illustrates why singletons don't really jell with serialization.

Here's what happens when you serialize an enum value (see here).

The rules for serializing an enum instance differ from those for serializing an "ordinary" serializable object: the serialized form of an enum instance consists only of its enum constant name, along with information identifying its base enum type. Deserialization behavior differs as well--the class information is used to find the appropriate enum class, and the Enum.valueOf method is called with that class and the received constant name in order to obtain the enum constant to return.

So any additional state that you attach to your enum values does not survive serialization and deserialization.

You could do the same thing yourself, by adding custom serialization / deserialization code to your singleton classes. That code would need to either not record the singleton's state at all, or throw it away when the singleton is deserialized. Either way, you'd put the logic into a readResolve() method as explained by @ColinD's answer.

Now, I presume that the reason you want to serialize singletons is that you want to persist their state. Unfortunately, that presents a conceptual problem. Suppose that your application has instantiated the singleton in the normal course of events, and then it deserializes some object graph that includes a copy of a previous instance of the singleton. What can it do?

  • If it deserializes the singleton normally, it violates "singleton-ness".
  • If it doesn't then the application cannot access the singleton's previous state.
share|improve this answer
    
All good points. –  ColinD Oct 14 '10 at 5:40
add comment

The solution with enum won't work with Singletons managed by Spring, EJB, Guice or any other DI framework. It works only with enums, only because enum is treated specially by the serialization algorithm.

Firstly, singletons don't need serialization, because if you deserialized it, and then deserialized singleton != YourSingleton.getInstance(), it would mean that you have two instances of your singleton, which means that YourSingleton isn't singleton at all, which may lead to unpredictable bugs.

However sometimes you need to serialize non-singleton which contains a reference to singleton. The solution is easy:

class NonSingleton implements Serializable {
    private transient YourSingleton singleton = YourSingleton.getInstance();
    ...
}

With Spring:

@Configurable
class NonSingleton implements Serializable {
    @Autowired
    private transient YourSingleton singleton;
    ...
}
share|improve this answer
    
Both solutions I mentioned will guarantee that a deserialized singleton == YourSingleton.getInstance(). And yes, of course it won't work with DI managed singletons, because those aren't what's being discussed here at all. –  ColinD Oct 14 '10 at 13:41
add comment

I think Singletons can be serialized and here is the code on how to do it:


import java.io.Serializable;

public class MySingleton implements Serializable {

    private MySingleton(String name) {
        this.name = name;
    }

    private static MySingleton mySingleton;

    private String name;

    public String getName() {
        return name;
    }

    public void setName(String name) {
        this.name = name;
    }

    public static MySingleton getInstance(String name) {
        if(mySingleton == null) {
            System.out.println("in if...");
            mySingleton = new MySingleton(name);
        }

        return mySingleton;
    }
}

and here is "main" method which gets the instance of the Singleton class above, serializes and de-serializes it:



 public static void main (String[] args) {

        MySingleton m = MySingleton.getInstance("Akshay");

        try {
            ObjectOutputStream oos = new ObjectOutputStream(new FileOutputStream("D://temp.ser"));
            oos.writeObject(m);

            ObjectInputStream ois = new ObjectInputStream(new FileInputStream("D://temp.ser"));
            MySingleton m2 = (MySingleton) ois.readObject();
            System.out.println(m2.getName());
        } catch (IOException e) {
            e.printStackTrace();
        } catch (ClassNotFoundException e) {
            e.printStackTrace();
        }

    }

and output is:-

in if...

Akshay

Thanks.

share|improve this answer
    
But if you compare hashcodes of objects before and after serailization, they are different. Means two new instances get created for a Singleton class! To avoid this use readResolve method in your Singleton class like shown here: protected Object readResolve() { return getInstance(name); } –  Akshay Lokur Apr 29 at 7:53
    
Refer below link to know more about readResolve method: docs.oracle.com/javase/7/docs/platform/serialization/spec/… –  Akshay Lokur Apr 29 at 7:57
add comment

Singleton classes is just like a manager or controller and in general we do not want to save the state of any controller instead of the entity. Generally we need to save the object state of any entity not the controller.
Singleton is singleton for a single class loader not for multiple class loader. If a class is loaded in a classes loader then the other class loader will not know about it so it behaves like this.

share|improve this answer
add comment

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.