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I have a class Note and a class Meeting. There is an ArrayList named noteList in class Note. When an object of Meeting is created it is then registered in the noteList.

I just want to demostrate in the main class that two objects of Meeting can be created at the same time (or at the close time). My program is:

public class Note{
    //some field and method hier
    public void add(Meeting m){
        notes.add(m);
    }
    private  static final List<Entry> notes =
        Collections.synchronizedList(new ArrayList<Entry>());
}

public class Meeting implements Runnable{
    public Meeting(Note note_1,Note note_2,Calendar calendar){
        note_1.add(this);
        note_2.add(this);}
        //some method
    }

    public class Test implements Runnable{
        public static void main(String[] args) {
            Note note_1 = new Note();                
            Note note_2 = new Note();
            Meeting m_1 = new Meeting(note_1,note_2);
            Meeting m_2 = new Meeting(note_2,note_1)
            Thread t1 = new Thread(m_1);
            Thread t2 = new Thread(m_2)
            t1.start();
            t2.start();
        }
        //t1,t2 are two thread and they start one to one(not at the same time).

I have read anywhere that wait(), notify() or notifyAll() can be used, but they must be used in a synchronized method. I have no synchronized methods in my program.

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In your code as written, m_1 is always created (instantiated) before m_2 though they will both exist simultaneously in memory until the GC decides to clean them up. Do you mean something else? In any case if you search for why double checked locking for singletons doesn't work you'll get a very good overview of synchronisation issues in Java. –  CurtainDog Jan 13 '11 at 2:55
    
I think there is a missing.I mean how can m_1 and m_2 be created(instantiated) at the same time(or at the close time) –  echo Jan 13 '11 at 9:45
    
You are using synchronized methods because synchronizedList() return a list which has all its method synchronized. –  Peter Lawrey Jan 13 '11 at 9:46
    
The reason why i use synchronizedList to ArrayList notes is that in class Note i want to output the element in notes every 5 minutes.I have a run() in class Note. i cannot paste the run() hier ,i shall add it to the question. –  echo Jan 13 '11 at 10:06
    
@echo Welcome to the community. I looked at the edit log on the question and I noted that you added a whole second question to the original post. If you have two questions (or arrive at a second follow up question) that are distinct in nature, you should strongly consider posting them as two questions. –  Tim Bender Jan 13 '11 at 10:49

3 Answers 3

This is as close as you are going to get to starting the two threads.

What you could do to synchronize the run methods even more is to have them wait on a CountDownLatch on the top of their run methods.

What this does is taking away the overhead of creating and starting Threads (the part that happens before your run method gets executed), and maybe also some freak scheduling oddities. You have no guarantee however, how concurrent the code after the latch will actually be executed.

CountDownLatch latch = new CountDownLatch(2);

Runnable r1 = new Meeting(latch);
Runnable r2 = new Meeting(latch);


// in Meeting

private final CountDownLatch latch;

public void run(){

   latch.countDown();
   latch.await();

   // other code
}
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1  
+1 See also, stackoverflow.com/questions/1909622 –  trashgod Jan 13 '11 at 3:23
    
You can only guarentee that one thread does not pass await until the second one has reach countDown. This ensures they are both start but one could stop running immediately after. –  Peter Lawrey Jan 13 '11 at 9:45
    
@Peter Lawrey: Yes, that is what I meant by "you have no guarantee however, how concurrent the code after the latch will actually be executed". All you can enforce is a strict ordering, if you want that. –  Thilo Jan 13 '11 at 10:09
    
+1 for showing a method which (with numerous repetition) could very likely cause concurrent execution. Note that a CyclicBarrier would also work in this case. –  Tim Bender Jan 13 '11 at 10:43

Unfortunately, there is no way to start two threads at the same time.

Let me explain better: first of all, the sequence t1.Start(); and t2.Start(); is executed with t1 first and, after that, t2. It means only that thread t1 is scheduled before thread 2, not actually started. The two methods take fractions of second each one, so the fact that they are in sequence cannot be seen by a human observer.

More, Java threads are scheduled, ie. assigned to be eventually executed. Even if you have a multi-core CPU, you are not sure that 1) the threads run in parallel (other system processes may interfere) and 2) the threads both start just after the Start() method is called.

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1  
You cannot start two threads at the same time, but you can synchronize in the run method. Of course, all you said about eventual execution still applies. But at least you can coordinate the sequence in which the run methods are executed, in case there is some inter-dependence. –  Thilo Jan 13 '11 at 2:50
    
When you are dealing with threads and/or multiple CPUs there is really no such thing as 'at the same time'. You need to clarify your question. –  EJP Jan 13 '11 at 5:25

They are starting at "close" to the same time. The point is that your code isn't blocking at t1.start().

You might be able to see this by adding a print statement at the top of the run() method of the Meeting class, and another print statement right after t2.start(). Something like this:

public class Meeting implements Runnable {
    private String name;
    public Meeting(String name) {
        this.name = name;
    }
    public void run() {
        System.out.println(name + " is running");
    }
}

public class Test {
    public static void main(String[] args) {
        Meeting m_1 = new Meeting("meeting 1");
        Meeting m_2 = new Meeting("meeting 2")
        Thread t1 = new Thread(m_1);
        Thread t2 = new Thread(m_2)
        t1.start();
        t2.start();
        System.out.println("this might print first!");
    }
}

// possible output:
> this might print first!
> meeting 1 is running
> meeting 2 is running
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