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Does making a class field volatile prevent all memory visibility issues with it in a concurrent situation ? Is it possible that for below class , a thread that gets a reference of a Test object sees x as 0 first ( the default value of int ) and then 10 ? I am thinking this to be possible if and only if the Constructor of Test gives away this reference without completing ( improper publishing ) . Can someone validate/correct me ?

class Test {
    volatile int x = 10;            
}

Second question: what if it was final int x=10; ?

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2 Answers 2

up vote 5 down vote accepted

You are actually not guaranteed to see x = 10 according to the JMM.

For example if you have

Test test =  null;

Thread 1 -> test = new Test();
Thread 2 -> test.x  == // even though test != null, x can be seen as 0 if the
                       // write of x hasn't yet occur

Now if you had

class Test{
  int y = 3;
  volatile x = 10;
}

If thread-2 reads x == 10 thread-2 is guaranteed to read y == 3

To answer your second question.

Having a final field will issue a storestore after the constructor and before publishing so having the field final will actually ensure you see x = 10.

Edit: As yshavit noted. You lose the happens-before relationship I mention in my first example with final fields, that is as yshavit put it if thread-2 reads x == 10 it may not read y == 3 where x is a final field.

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Referring to your first code snippet , if the reference test is declared final , then can it be guarenteed that Thread 2 sees test.x as 10 , provided test != null is true ? –  Bhaskar Jan 6 '12 at 22:41
1  
But just to clarify, if x is final then you lose the guarantee that if thread-2 reads x == 10 it must also read y == 3. –  yshavit Jan 6 '12 at 22:41
1  
@Bhaskar Yes, unless this is leaked from the constructor in Test. If you leak this, all bets are off. –  yshavit Jan 6 '12 at 22:42
    
@yshavit thats a good point, I'll include it in my answer. –  John Vint Jan 6 '12 at 22:59
    
@JohnVint Just to elaborate slightly for clarity, you only lose the happens-before guarantee of volatile with final if you leak this in the constructor. If you do not leak the object then there are additional guarantees provided by final as explained here. –  increment1 Jan 7 '12 at 0:26

Even in a single threaded implementation, you are not guaranteed to see x = 10 if you leak this in the constructor. So the issue you can experience here is not directly a concurrency issue, but an order of execution issue (depending on when you leak this). E.g. if you leak this in a parent constructor for instace:

public class TestParent
{
  public TestParent()
  {
    if (this instanceof TestChild)
    {
      TestChild child = (TestChild) this;
      System.out.println(child.field);  // will print 0 when TestChild is instantiated.
    }
  }
}


public class TestChild extends TestParent
{
  volatile int field = 10;
}

public static void main(String[] args)
{
  TestChild child = new TestChild();
  System.out.println(child.field);

  // The above results in 0 (from TestParent constructor) then 10 being printed.
}

Final fields, on the other hand, are guaranteed to have the assigned initial value so long as that assignment is done on the declaring line (if you make the field final but initialize it in the constructor then you can still leak this before and show the uninitialized value.

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That's when instance initialization blocks come handy, you can do funky multi-line assigments/computations before any constructor gets called :) –  Unai Vivi Dec 28 '13 at 18:25

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