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Consider a snippet from a class :

    // tail call to show
void showNextPoint(){
    Point p = new Point();
    p.x = 10;
    p.y = 12;
    show(p);
}

// multiple calls to show
void showPoints(){
    Point p = new Point();
    p.x = 10;   p.y = 12;
    show(p);
    p.x = 20;   p.y = 22;
    show(p);
    p.x = 30;   p.y = 32;
    show(p);
}

void show(Point p){
    // use p in some way
    // can p's state be changed safely ?
            // can a new thread be started to work with p safely ?      
}

In a multithreaded use-case , can the object p be considered as published safely from the showPoints() or showNextPoint() ? What conditions must hold true in show() for this ?

If show(Point p) is guaranteed 1) not to start a new thread and 2) not to change p's state , can the showPoints() method be considered as safely publishing p ?

share|improve this question
up vote 3 down vote accepted

The show() method gets a reference to a Point p. If the caller afterwards makes a change to p, it is making a change to the same Object. If show() changes p in any way then it is updating the same p object that the caller is using. If a thread is forked that has this p then you have a race condition as to which update to p is performed in which order.

Point p = new Point(1, 2);
show(p);
// p.x == 100 here

void show(Point p) {
   p.x = 100;
}

You asked:

void show(Point p){
    // use p in some way
    // can p's state be changed safely ?
    // can a new thread be started to work with p safely ?      
}

It cannot be changed safely without affecting the caller's object, no. A new thread also cannot make changes to p without it affecting the caller's object when memory synchronization happens.

In a multithreaded use-case , can the object p be considered as published safely from the showPoints() or showNextPoint() ? What conditions must hold true in show() for this ?

It all depends on how you've written the code -- what the contracts are. If a method makes changes to an object then it should be documented. If the caller does not wish this then either you should pass in a copy of a Point object that the method could "own" or the method itself should copy Point itself.

The complications around synchronizing changes to object is one of the reasons why many Java objects are immutable. You may consider doing this to Point. Make it so the x and y values cannot be changed which means that the show method and any threads it spawn can safely use the argument without worrying about changed being made to it from the caller.

Edit:

If show(Point p) is guaranteed 1) not to start a new thread and 2) not to change p's state , can the showPoints() method be considered as safely publishing p ?

@JohnVint had some better points about this but I thought I'd add my thoughts. I'm not sure what you are asking here and I'm not sure what you think "safely publishing" implies. The devil is in the details. If show() doesn't start a new thread then yes, the code you have posted will work and it's okay to use the same mutable Point object.

Any method that takes an object argument but does not change the object in any way can say that it is "safely using" (I guess) the object. Since showPoints() constructed the object and has the only reference to it then that is certainly safe as well. It's when p gets modified and there is another thread involved that everything changes.

share|improve this answer
    
I didn't read his showPoints() clear enough in which wouldn't apply as much to my answer. I wanted to reword my comment. Basically the only way it would be safely published is if a thread wasnt created before any of the Points were created. Otherwise your answer pretty much addresses it all – John Vint Mar 7 '12 at 20:46
    
@JohnVint Yokay. I still think you should make it an answer. I often say something like "@Jim's answer was good but I'd like to add..." sort of answers. I think good for posterity. – Gray Mar 7 '12 at 20:48
    
@Gray, can you please comment on the questions I mention towards the end ? My thoughts are on the lines that if as long as no thread is started from within show() , the publication as such is safe , even if the object as a whole is running on multiple threads. – Bhaskar Mar 7 '12 at 22:27
    
@JohnVint, would be glad to hear your comments/answers. – Bhaskar Mar 7 '12 at 22:27
    
@Bhaskar I've edited my answer to address your last question. – Gray Mar 7 '12 at 22:34

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