-1

I just want to find out why this piece of code throws an Error. The Error is :

"Exception in thread "Thread-1" java.lang.Error"

class Salmon extends Thread
{
    public static long id;
    public void run()
    {
        for(int i = 0;i<4; i++){
            if(i==2&& id ==Thread.currentThread().getId()){
            //if(i==2){
                new Thread(new Salmon()).start();
                throw new Error();
             }
             System.out.println(i + " ");
          }
     }
     public static void main(String[] args)
     {
         Thread t1 = new Salmon();
          id = t1.getId();
          t1.start();
      }
}
1
  • 1
    what the error you are getting – developer Jul 24 '12 at 17:16
7

Because you tell it to.

 if(i==2){
          new Thread(new Salmon()).start();
          throw new Error(); // <----
3
  • why then does it still throw the same error if the if condition is now if(i==2&& id ==Thread.currentThread().getId())? the Id's, as I checked were different and yet it still executes the conditions if the case was true. why? – helpdesk Jul 24 '12 at 17:18
  • You are telling it throw an error if i is equal to 2 and the id of the current thread is equal to the id of the current thread. Which will happen when i equals 2. Just take out the line throw new Error() if you do not want it to throw an error. – nook Jul 24 '12 at 17:21
  • but why does it still throw the error even when i equals 2 but the Thread.currentId() is not 2? – helpdesk Jul 24 '12 at 17:27
3

I think your question might be better specified "why does execution continue beyond new Thread(new Salmon()).start();? You're starting a new thread. When you call start(), execution of the run() method in the new thread continues in parallel with the continued execution after the immediately-returning start() method.

1

id == Thread.currentThread().getId() is always true for the first thread (t1) that you start from your main thread.

As soon as i reaches 2 in that thread, if(i == 2 && id == Thread.currentThread().getId()) will be true as well and the following code will be executed:

new Thread(new Salmon()).start();
throw new Error();

As already pointed out, new Thread(new Salmon()).start(); returns immediately (the newly created thread runs in parallel with t1) and t1 continues to the next line, which throws an exception.

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