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In the following code, I am trying to print the thread name and the hash code value of the vector object but the output is not as expected. Also, the singleton is broken since hash code values are not consistent for the vector object.

public class ThreadTestVector implements Runnable {

private static Vector<String> vector;

public static synchronized Vector<String> getInstance() {
    if (vector == null) {
        vector = new Vector<String>();
    }
    return vector;
}

@Override
public synchronized void run() {

    Vector<String> vector = getInstance();

    for (int i = 0; i < 10; i++) {
        vector.add(Thread.currentThread().getName());
    }
    for (int i = 0; i < vector.size(); i++) {
        System.out.println(vector.get(i) + " Hash Code "
                + vector.hashCode());
    }
    // clear the vector for values already printed
    vector.clear();
}

public static void main(String[] args) throws Exception {
    Runnable r = new ThreadTestVector();
    Runnable r1 = new ThreadTestVector();
    Runnable r2 = new ThreadTestVector();
    Runnable r3 = new ThreadTestVector();
    Thread t1 = new Thread(r);
    Thread t2 = new Thread(r1);
    Thread t3 = new Thread(r2);
    Thread t4 = new Thread(r3);
    t1.start();
    // Thread.sleep(100);
    t2.start();
    // Thread.sleep(100);
    t3.start();
    // Thread.sleep(100);
    t4.start();

}

}

On execution following output pattern is produced
Thread-0 Hash Code 924221025
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code -119973247
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-1 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-2 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-3 Hash Code 1030242113
Thread-0 Hash Code 1901327073
Thread-0 Hash Code 1030242113
Thread-0 Hash Code 1030242113

Which is all jumbled up and hash code values are also different.

How to fix it so that output is printed in a synchronized manner and hash code values are consistent?

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up vote 1 down vote accepted

You should synchronize vector

if (vector != null) {
 synchronized(vector) {
for (int i = 0; i < 10; i++) {
        vector.add(Thread.currentThread().getName());
    }
    for (int i = 0; i < vector.size(); i++) {
        System.out.println(vector.get(i) + " Hash Code "
                + vector.hashCode());
    }
    // clear the vector for values already printed
    vector.clear();
}
}
share|improve this answer
    
thanks! It does fix the problem. Could you please explain why synchronizing the run method was not helping? – Nishant Oct 24 '13 at 9:40
1  
you should synchronize the Object which will be accessed by different thread simultaneously. Otherwise, you can not protect it – yushulx Oct 24 '13 at 9:42

Hash code values are different because a Vector's hash code is computed from its contents.

So it is not surprising you're getting differents values for your hashcode.

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