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Say we have these two Runnables:

class R1 implements Runnable {
    public void run() { … }
    …
}

class R2 implements Runnable {
    public void run() { … }
    …
}

Then what's the difference between this:

public static void main() {
    R1 r1 = new R1();
    R2 r2 = new R2();

    r1.run();
    r2.run();
}

And this:

public static void main() {
    R1 r1 = new R1();
    R2 r2 = new R2();
    Thread t1 = new Thread(r1);
    Thread t2 = new Thread(r2);

    t1.start();
    t2.start();
}
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2  
You cann't extend Runnable, Runnable is always implemented.It's an interface. –  nIcE cOw Dec 20 '11 at 17:53

10 Answers 10

up vote 101 down vote accepted

First example: No multiple threads. Both execute in single (existing) thread. No thread creation.

R1 r1 = new R1();
R2 r2 = new R2();

r1 and r2 are just two different objects of the class that implements the Runnable interfaces which have that run() method. When you call r1.run() you are executing it in the current thread.

Second example: Two separate threads.

Thread t1 = new Thread(r1);
Thread t2 = new Thread(r2);

t1 and t2 are the objects of the class Thread. When you call t1.start(), it starts a new thread and calls the run() method of r1 internally to execute it within that new thread.

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1  
Couuld I consider that before we call Thread#start() ,nothing really relative to os thread happens? It is only a java object. –  Jaskey Dec 6 '14 at 9:38
    
That's correct according to the documentation. Check the thread object initialization code, which conforms to the documentation. Also in the source code, it's the start(), which is calling a natvie method, which must be making the os thread related things happen. –  Bhesh Gurung yesterday
    
Thread constructor docs is here. Thread object initialization source is here. start() method source is here. –  Bhesh Gurung yesterday

If you just invoke run() directly, it's executed on the calling thread, just like any other method call. Thread.start() is required to actually create a new thread so that the runnable's run method is executed in parallel.

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In the first case you are just invoking the run() function of the r1 adn r2 objects.

In the second case you're actually creating 2 new Threads! ;) start() will call run() at same point!

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5  
Actually, start() won't call run(): if it did, then the run() method would get executed by the same thread that called start(). What start() will do is create a thread which will call the run() method. –  Bruno Reis Dec 22 '11 at 4:44

Thread.start() code registers the Thread with scheduler and the scheduler calls the run() method. Also, Thread is class while Runnable is an interface.

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Actually thread.start() creates a new thread and have its own execution scenario. thread.start() calls the run method asyc.when come to running state.

but thread.run() not creating any new thread, instead it execute the run method in the current running thread.

So guys if you are using thread.run() then think that what is the use of multi-threading if you want only one thread execute all run method.

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If you do run() in main method, the thread of main method will run the run method instead of the thread you require to run.

The start() method creates new thread and for which the run() method has to be done

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The 'main method' has nothing to do with it. –  EJP Oct 28 '13 at 9:25
1  
@EJP, by main the writer meant the calling method. His answer is quite good. +1 ;-) –  dom_beau Mar 7 '14 at 13:46
    
This must be marked as the accepted answer. –  Shirgill Ansari Mar 31 at 15:28
    
@dom_beau If that's what he meant he should have said so. What he did say was incorrect. There is nothing 'quite good' about this answer. It's just a confused mess. –  EJP May 26 at 12:27

The difference is that Thread.start() starts a thread, while Runnable.run() just calls a method.

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7  
Why would an 80k user give an answer like this two years after way better answers have been given and accepted? –  Sebastian Oct 28 '13 at 9:39
1  
@Sebastian I don't accept your hypothesis. Specifically, the accepted answer is verbose and poor quality, and I don't see any other answers expressed better than this one. –  EJP Nov 1 '13 at 23:28

invoke run() is executing on the calling thread, like any other method call. whereas Thread.start() creates a new thread. invoking run() is a programmatic bug.

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The points, that the members made are all right so I just want to add something. The thing is that JAVA supports no Multi-inheritance. But What is if you want to derive a class B from another class A, but you can only derive from one Class. The problem now is how to "derive" from both classes: A and Thread. Therefore you can use the Runnable Interface.

public class ThreadTest{
   public void method(){
      Thread myThread = new Thread(new B());
      myThread.start;
   }
}

public class B extends A implements Runnable{...
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The separate start() and run() methods in the Thread class provide two ways to create threaded programs. The start() method starts the execution of the new thread and calls the run() method. The start() method returns immediately and the new thread normally continues until the run() method returns.

The Thread class' run() method does nothing, so sub-classes should override the method with code to execute in the second thread. If a Thread is instantiated with a Runnable argument, the thread's run() method executes the run() method of the Runnable object in the new thread instead.

Depending on the nature of your threaded program, calling the Thread run() method directly can give the same output as calling via the start() method, but in the latter case the code is actually executed in a new thread.

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