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I am new to Java and I'm attending a Concurrent Programming course. I am desperately trying to get a minimal working example that can help to demonstrate concepts I have learnt like using 'synchronized' keyword and sharing an object across threads. Have been searching, but could not get a basic framework. Java programmers, kindly help.

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2 Answers 2

up vote 2 down vote accepted

Here is a very shot example of sharing an array between two threads. Usually you will see all zeros, but sometimes things get screwy and you see other numbers.

final int[] arr = new int[100];
Thread one = new Thread() {
    public void run() {
        // synchronized (arr) {
            for (int i = 0; i < arr.length * 100000; i++) {
                arr[i % arr.length]--;
            }
        // }
    }
};
Thread two = new Thread() {
    public void run() {
        // synchronized (arr) {
            for (int i = 0; i < arr.length * 100000; i++) {
                arr[i % arr.length]++;
            }
        //}
    }
};
one.start();
two.start();
one.join();
two.join();
for (int i = 0; i < arr.length; i++) {
    System.out.println(arr[i]);
}

But, if you synchronize on arr around the looping you will always see all 0s in the print out. If you uncomment the synchronized block, the code will run without error.

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2  
You can also get rid of the errors by synchronizing on arr for just the increment and decrement lines: pastebin.com/vN4E527P This underscores the fact that the only thread-unsafe parts are those two lines. –  Daniel Trebbien Aug 31 '10 at 3:00
    
Sometimes I am getting a string of random numbers. I am puzzled. Can u kindly explain the working? –  devnull Aug 31 '10 at 3:30
    
Shouldn't arr[i % arr.length]-- and arr[i % arr.length]++ balance out as it is being executed the same number of times? In other words shouldn't the result be zero always? –  devnull Aug 31 '10 at 3:31
1  
@n0vi Yea, that is exactly why this is a great example of problems caused by sharing objects over multiple threads. What happens is the two threads try to increment and decrement the same item in the array at the same time, and one overwrites the other, so you don't see all 0 like you should. –  jjnguy Aug 31 '10 at 12:23
    
thanks a ton for the explanation and the example. –  devnull Sep 1 '10 at 7:01

A simple example. Hope you like soccer (or football). :)

public class Game {

 public static void main(String[] args) {
  Ball gameBall = new Ball();
  Runnable playerOne = new Player("Pasha", gameBall);
  Runnable playerTwo = new Player("Maxi", gameBall);

  new Thread(playerOne).start();
  new Thread(playerTwo).start();
 }

}

public class Player implements Runnable {

 private final String name;
 private final Ball ball;

 public Player(String aName, Ball aBall) {
  name = aName;
  ball = aBall;
 }

 @Override
 public void run() {
  while(true) {
   ball.kick(name);
  }
 }

}

public class Ball {

private String log;

 public Ball() {
  log = "";
 }

 //Removing the synchronized keyword will cause a race condition.
 public synchronized void kick(String aPlayerName) {
  log += aPlayerName + " ";
 }

 public String getLog() {
  return log;
 }

}
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How does this show a race condition? –  jjnguy Aug 31 '10 at 2:05
    
Instantiate a few more Player objects to make it more obvious. –  Mike Aug 31 '10 at 2:07
    
As far as I can see, it will alternate between player names. But, not necessarily every other, because that's just how context switching works. –  jjnguy Aug 31 '10 at 2:09
    
Instantiate a few more, remove the synchronized keyword. ThreadA moves into call System.out.println(). ThreadB does so shortly after. Blammo. –  Mike Aug 31 '10 at 2:10
    
@Mike, Ok, I will try it myself before I criticize. –  jjnguy Aug 31 '10 at 2:12

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