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Being the method fork(); within compute() how come that does not get called another degree of parallelism each time the method compute() occurs? Is there a boolean flag perhaps? EDIT:

overriding the method compute() of the class RecursiveTask: (pseudocode)

if {array.length<100)
do it
else
divide array by 2;
fork();
int righta = rightArray.compute();
int lefta =(Integer)leftArray.join();
return righta +lefta;

So basically this is the compute() method which gets called recursively and when fork() happens it makes it possible to use parallelism and process that task with another core. However being recursive fork() should be called all the times the method gets recursively called. So in the reality it does not happen (there would be no sense). Is it due to a boolean flag that says fork has already been activated?

Thanks in advance.

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1  
Unclear... Can you write some pseudo code showing the code path you don't understand and what you don't understand in it? –  fge May 31 '13 at 12:11
    
ok editing the answer –  Rollerball May 31 '13 at 12:25
    
fork() is only called if array.length >= 100. What more logic do you need? –  Lutz Horn May 31 '13 at 12:49
    
I get that. However I want to know only if there is a flag which says "After the first call to fork() don't change CPU anymore for the other calls.) –  Rollerball May 31 '13 at 12:52
    
What do you mean by "don't change CPU"? –  Lutz Horn May 31 '13 at 12:53

1 Answer 1

up vote 1 down vote accepted

Look at the API

 class Fibonacci extends RecursiveTask<Integer> {
   final int n;
   Fibonacci(int n) { this.n = n; }
   Integer compute() {
     if (n <= 1)
        return n;
     Fibonacci f1 = new Fibonacci(n - 1);
     f1.fork();
     Fibonacci f2 = new Fibonacci(n - 2);
     return f2.compute() + f1.join();
   }
 }

Each time compute() is called it will place another computation on another thread (or queue) via fork. compute continuously forks until there are no more n available to process. At this point compute will wait until the "right" side finishes while f1.join() waits for the "left" side to finish.

Whenever join is invoked it will actually make the joining thread execute lower level tasks (lower on the binary tree) giving you the parallelism you want

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with this "Each time compute() is called it will place another computation on another thread (or queue) via fork." you mean that every computation is done on a separate thread? –  Rollerball May 31 '13 at 15:28
    
what's the correlation between fork() and multi-core programming? –  Rollerball May 31 '13 at 15:29
    
The fork() will push the task on the fork join work queue for other threads to pick up. So if you have 5 threads and 10 forks 5 threads will execute and process the 10 forks concurrently (eventually). –  John Vint May 31 '13 at 15:36
    
you mean that every computation is done on a separate thread? Yes, it very well may be, or can be the current thread. All depends on the execution. –  John Vint May 31 '13 at 15:37
    
so where is the bit that calls the parallel cpu? if fork() does it should not switch cpu each time fork() is called()? thanks a lot. –  Rollerball May 31 '13 at 15:52

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