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The situation is the following:

  1. I have an object with lots of setters and getters.
  2. Instance of this object is created in a one particular thread where all values are set. Initially I create an "empty" object using new statement and only then I call some setters methods based on some complicated legacy logic.
  3. Only then this object became available to all other threads that use only getters.

The question: Do I have to make all variables of this class volatile or not?

Concerns:

  • Creation of a new instance of the object and setting all its values is separated in time.
  • But all other threads have no idea about this new instance until all values are set. So other threads shall not have a cache of not fully initialized object. Isn't it?

Note: I am aware about builder pattern, but I cannot apply it there for several other reasons :(

EDITED: As I feel two answers from Mathias and axtavt do not match very well, I would like to add an example:

Let's say we have a foo class:

class Foo {
public int x=0;
}

and two threads are using it as described above:

// Thread 1 init the value:
Foo f = new Foo();
f.x = 5;
values.add(f); // Publication via thread-safe collection like Vector or Collections.synchronizedList(new ArrayList(...)) or ConcurrentHashMap?.

// Thread 2
if (values.size()>0){        
   System.out.println(values.get(0).x); // always 5 ?
}

As I understood Mathias, it can print out 0 on some JVM according to JLS. As I understood axtavt it will always print 5.

What is your opinion?

-- Regards, Dmitriy

share|improve this question
    
I cannot decide which answer is correct. Would like to hear opinion of other participants. – Dime Jul 12 '11 at 13:03

In this case you need to use safe publication idioms when making your object available to other threads, namely (from Java Concurrency in Practice):

  • Initializing an object reference from a static initializer;
  • Storing a reference to it into a volatile field or AtomicReference;
  • Storing a reference to it into a final field of a properly constructed object; or
  • Storing a reference to it into a field that is properly guarded by a lock.

If you use safe publication, you don't need to declare fields volatile.

However, if you don't use it, declaring fields volatile (theoretically) won't help, because memory barriers incurred by volatile are one-side: volatile write can be reordered with non-volatile actions after it.

So, volatile ensures correctness in the following case:

class Foo {
    public int x;
}
volatile Foo foo;

// Thread 1
Foo f = new Foo();
f.x = 42;
foo = f; // Safe publication via volatile reference

// Thread 2
if (foo != null)
     System.out.println(foo.x); // Guaranteed to see 42

but don't work in this case:

class Foo {
    public volatile int x;
}
Foo foo;

// Thread 1
Foo f = new Foo();
// Volatile doesn't prevent reordering of the following actions!!!
f.x = 42;
foo = f;

// Thread 2
if (foo != null)
     System.out.println(foo.x); // NOT guaranteed to see 42, 
                                // since f.x = 42 can happen after foo = f

From the theoretical point of view, in the first sample there is a transitive happens-before relationship

f.x = 42 happens before foo = f happens before read of foo.x 

In the second example f.x = 42 and read of foo.x are not linked by happens-before relationship, therefore they can be executed in any order.

share|improve this answer
    
Sorry, I did not get your statment "declaring fields volatile (theoretically) won't help, because memory barriers icurred by volatile are one-side." Could you please explain what does "one-side" mean? Thank you. – Dime Jul 12 '11 at 8:49
    
I think it is clear that the poster does none of these things and wants to know if his code is safe. Safe publication seems to be derived practices from the Java concurrency model in JLS chapter 17. – Mathias Schwarz Jul 12 '11 at 8:50
    
@Dime: I made examples more clear. – axtavt Jul 12 '11 at 9:06
    
@axatavt: Yep. Thank you. Now I get it. In my question I meant the first case. – Dime Jul 12 '11 at 9:14
1  
@Dime: Yes. My point is that 1) with safe publication you don't need volatile fields 2) without safe publication volatile fields won't help – axtavt Jul 12 '11 at 12:36

You do not need to declare you field volatile of its value is set before the start method is called on the threads that read the field.

The reason is that in that case the setting is in a happens-before relation (as defined in the Java Language Specification) with the read in the other thread.

The relevant rules from the JLS are:

  • Each action in a thread happens-before every action in that thread that comes later in the program's order
  • A call to start on a thread happens-before any action in the started thread.

However, if you start the other threads before setting the field, then you must declare the field volatile. The JLS does not allow you to assume that the thread will not cache the value before it reads it for the first time, even if that may be the case on a particular version of the JVM.

share|improve this answer
    
1  
Incorrect. Declaring fields volatile in this case makes no sense and won't help, since publication of the object can be reordered with volatile writes of its fields. – axtavt Jul 12 '11 at 8:59
1  
@Dime: Because non-volatile write (unsafe publication of the object) can be reordered with the previous volatile writes (initialization of the fields), see my answer. – axtavt Jul 12 '11 at 9:09
1  
@axtavt: The rule about thread starting in the JLS effectively gives us another safe publication idiom: writing to the object before starting another thread to read from it. It's not a very general idiom, though, since we so rarely create threads. – Tom Anderson Jul 12 '11 at 12:23
1  
My statement is simply that without the volatile modifier I cannot identify a happens-before relation between the write and the read. If you can then my statement is wrong. – Mathias Schwarz Jul 12 '11 at 12:49

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