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I'm taking Java lessons. We're now into threads. It is the first time I'm experiencing multithreading so please excuse me if the question is very dumb :)

I've the following program:

public class Foo extends Thread {
    private int x = 2;

    public static void main(String[]args) {
        new Foo().fun();
    }

    Foo () {
        x = 5;
        start();
    }

    public void fun() {
        x = x - 1;
        System.out.println(x);
    }
    public void run() {
        x = x * 2;
    }
}

When I run the program I get 4 as output. Will the output of the above program always be 4?

share|improve this question
    
Is this homework? – Simon G. Apr 4 '11 at 16:36
    
The text of mine has this in exercise but not a homework. – user691451 Apr 4 '11 at 16:39

It will NOT always be 4.

If the Foo run() method executes before the main thread runs fun(), it will be 9.

If the Foo run() method executes whilst main is running fun(), it will be 8.

If main() completes before Foo starts, it will be 4

share|improve this answer
    
Cool. thanks. Can you please explain the "8 as output" part ? – user691451 Apr 4 '11 at 16:36
1  
I got it. If the x = x * 2 happens after x = 5 but before the print. Am I right ? – user691451 Apr 4 '11 at 16:40
    
Its worth noting that because the thread is started in the constructor, the thread could see x as 5, 2, or 0 (or 4 is started after fun() has started) – Peter Lawrey Apr 4 '11 at 16:55
    
Peter, can you please elaborate ? – user691451 Apr 4 '11 at 16:59
1  
If run reads x before the first line of fun and writes its double back to x between the two lines of fun, then the output would be 5*2 = 10. – Paŭlo Ebermann Apr 4 '11 at 20:24

No, not always. Because in ctor you calling start() method, there's race condition between call to fun from main thread and run which will change value of x from Thread.start.

But, actually, without presence of proper synchronization there no guarantees on what output will be, irrelevant to the order in which fun and run will be called. Because synchronization ensures visibility of changes to threads, output can be 4 even if run will finish before fun gets called.

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Thanks your sir. This site is so fast :) – user691451 Apr 4 '11 at 16:38

As you said you are learning multi-threading, you must know that you can never predict the sequence of execution of different threads.

This is a very simple program where the main thread will almost always finish first - but important thing to remember is you can never be sure in complex multi-threaded scenarios. In fact, you chose mult-threaded approach mostly in scenarios when one thread isn't dependent on execution of another.

btw try changing constructor this way:

Foo () {
        x = 5;
        start();
        Thread.sleep(2 * 1000);
    }

you may get different result.

share|improve this answer

Simon's answer is correct with a caveat. Java has some caching of variable values. If a variable is not set as volatile or if you don't use an atomic value, you may get the cached value instead of the most recent value.

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yes it will always be 4. i see no reason for it not to be 4

you only run fun() and never run()

read java Thread man

share|improve this answer
3  
but the constructor is calling start which calls run. – user691451 Apr 4 '11 at 16:35
    
yes, but never it is never instantiated as a thread – Neal Apr 4 '11 at 16:36
    
there is nothing special to be done to instantiate a Thread, just call new as with regular classes. The Javadoc you cite shows an example to this as well. – Péter Török Apr 4 '11 at 16:41

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