Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to run two thread with different run method concurrently. Is it possible? I have simple code below but they don't work concurrently. I simply want to run first thread every 5 sec and second thread always.

public static int x = 0;

public static void main(String[] args) throws InterruptedException{

    Runnable r1 = new Runnable() {
        public void run() {
            x = x + 1;
            System.out.println("increment x");
        }
    };

    Runnable r2 = new Runnable() {
        public void run() {
            System.out.println("x is "+x);
        }
    };

    while(true){
        Thread t1 = new Thread(r1);
        Thread t2 = new Thread(r2);
        t1.start();
        t2.start();
        t1.sleep(5000);
    }
}
share|improve this question
    
a) You shouldn´t start running already threads in an endless loop. b) You aren´t synchronizing the access to x. c) Concurrent console output will result in problems. –  deviantfan Feb 22 '14 at 13:18
    
3) Thread.sleep() is static and lets the current thread, not the referenced thread sleep (as with static methods, there's no such thing) –  Silly Freak Feb 22 '14 at 13:33

4 Answers 4

up vote -1 down vote accepted
public class Test {
public static int x = 0;

public static void main(String[] args) throws InterruptedException{

    Runnable r1 = new Runnable() {
        public void run() {
            while(true){
            x = x + 1;
            System.out.println("increment x");
            try {
                Thread.sleep(5000);
            } catch (InterruptedException e) {
                // TODO Auto-generated catch block
                e.printStackTrace();
            }
            }
        }
    };

    Runnable r2 = new Runnable() {
        public void run() {
            while(true){
            System.out.println("x is "+x);
            }
        }
    };
        Thread t1 = new Thread(r1);
        Thread t2 = new Thread(r2);
        t1.start();
        t2.start();

// Thread.sleep(5000);

}

}

something like this.. but keep in mind points made above

share|improve this answer
1  
Please give an explanation. –  Sotirios Delimanolis Feb 22 '14 at 13:34
    
This is just to show how it is supposed to work. Accessing a static variable like that would probably result in errors. The same variable might be used at the same time by both threads leading to unpredictable result. To avoid that use synchronization as @JB explained below. –  user3340677 Feb 22 '14 at 13:59

Your run() methods only increment x, print it, and return. As soon as the run method returns, the thread stops running. If you want something to run forever, you need a loop inside the run() method.

Moreover, accessing a shared variable without any kind of synchronization won't lead to predictable results. Your x variable should at least be volatile. And finally, Thread.sleep() is a static method. It should thus be called using the class name:

Thread.sleep(5000L);

It makes the current thread sleep.

Here is an example where one thread increments x every 500 millis, one other thread prints x every 100 millis, and both threads are interrupted after 5 seconds:

public class ThreadExample {
    private static volatile int x;

    private static class Incrementer implements Runnable {
        @Override
        public void run() {
            while (!Thread.currentThread().isInterrupted()) {
                x++;
                try {
                    Thread.sleep(500L);
                }
                catch (InterruptedException e) {
                    return;
                }
            }
        }
    }

    private static class Reader implements Runnable {
        @Override
        public void run() {
            while (!Thread.currentThread().isInterrupted()) {
                System.out.println(x);
                try {
                    Thread.sleep(100L);
                }
                catch (InterruptedException e) {
                    return;
                }
            }
        }
    }

    public static void main(String[] args) throws InterruptedException {
        Thread t1 = new Thread(new Incrementer());
        Thread t2 = new Thread(new Reader());
        t1.start();
        t2.start();

        try {
            Thread.sleep(5000L);
        }
        finally {
            t1.interrupt();
            t2.interrupt();
        }
    }
}
share|improve this answer
    
But if i add while loop in the run methods, when first thread (t1) begin to run, the second (t2) will never begin to run. –  user1914367 Feb 22 '14 at 13:20
1  
Why do you think so? The whole point of threads is to be able to run concurrently. Your program currently starts dozens of threads, each doing one or two operations: increment x and print it. –  JB Nizet Feb 22 '14 at 13:22
    
Isn't that what you want? If not, please explain what you want. The first thread should increment the value evert 5 seconds and stop when? The second thread should print the value continuously and stop when? Should the thread stop running by themselves, or should the main thread ask them to stop, and if so, when? –  JB Nizet Feb 22 '14 at 14:15
    
See my edited answer for a thread-safe example running for 5 seconds. –  JB Nizet Feb 22 '14 at 14:31
    Thread t1;;
    Thread t2; 
while(true){
      t1 = new Thread(r1);
      t2= new Thread(r2);
      t1.start();
      t1.sleep(5000);
      t2.start();

}

you are adding code is right putting code up t1.sleep(5000) before t2.start().

share|improve this answer

In the while loop, you are each time creating new Threads then start each of them that's why you having such behaviour.

Then you will need to move the while loop inside the threads so they lool like below:

public static volatile int x = 0;

public static void main(String[] args) throws InterruptedException{

Runnable r1 = new Runnable() {
    public void run() {
      while (true) {
        x = x + 1;
        System.out.println("increment x");
        this.sleep(5000);
      }
    }
};

Runnable r2 = new Runnable() {
    public void run() {
      while(true){
        System.out.println("x is "+x);
      }
    }
};
 Thread t1 = new Thread(r1);
 Thread t2 = new Thread(r2);
 t1.start();
 t2.start();
}

Note also that your x variable should be accessed synchronously to see the correct value.

BR.

share|improve this answer
    
This code still has problem. At least variable x need to be either volatile or eventually AtomicInteger for thread synchronization. –  wonhee Feb 22 '14 at 13:36
1  
The goal of the synchronization is not to avoid deadlock. The goal is to be able to see the correct value. Code without synchronization will never deadlock. But it will display incorrect results. –  JB Nizet Feb 22 '14 at 13:42

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.