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Say I have this piece of code

for (int n = 0; n < 4; ++n)
{
   if (fork())
   {
      // do something
      // if some condition is met
      // kill the parent
      // else, just return 
   }
   else
      printf("cannot get a process\n");
}

Would I be creating 4 child-processes running in parallel? Or would I be creating 4 of them running one after the other (because the loop in the parent won't advance until the child-process returns) ?

Thank you

P.S: I do realise this might be a bad practice (ie., killing the parent from a child causes zombies to go around, but let's ignore that for now!).

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Do you realize that every child that is created will invoke printf("cannot get a process\n");? Fork returns 0 in the child. –  William Pursell Oct 3 '12 at 15:34
    
@WilliamPursell Sorry, why's that? None of the child-processes should get to the 'printf' statement, because that's only executed if fork() failed. And at the end of the if-block, I did say kill the parent or just return (meaning kill the child) –  user1508893 Oct 3 '12 at 15:36
    
Because fork returns 0 in the child, the child's pid in the parent, and -1 if it fails. –  William Pursell Oct 3 '12 at 15:46
    
Killing the parent does not cause zombies. When the parent dies, the child is immediately inherited by init which will immediately remove the child from the process table when it terminates preventing it from persisting as a zombie. –  William Pursell Oct 3 '12 at 16:13

1 Answer 1

up vote 1 down vote accepted

Re-writing your code as:

for( int n = 0; n < 4; ++n ) {
    switch( fork()) { 
        case 0: /* child */
            /* Do stuff */
            exit( 0 );
        case -1:
            perror( "fork" );
            exit( 1 );
        default:  /* parent */
            /* do stuff, but don't wait() or terminate */
    } 
}

The children will indeed run in parallel. Although it is entirely possible that one child will run quickly and terminate before the next runs, in which case the children are effectively running serially. If the parent waits on a child, they will run serially. Also, note that if the parent does not wait() here, and does not wait outside the loop, the children will become zombies when they terminate. As soon as the parent terminates, the zombie children will be inherited by init, which will wait on them and remove them from the process table (so they will cease to be zombies.)

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I think I understand more of what you said now, thanks! But I still need to clear up something that I'm unclear about. Will mark this as 'Answered' soon. Thanks again! –  user1508893 Oct 3 '12 at 17:03
    
For some reason, this won't compile! paste.ubuntu.com/1258628 –  user1508893 Oct 3 '12 at 18:42
1  
Add a semi-colon to do a no-op if you do not replace the comment with code. eg default: ; –  William Pursell Oct 3 '12 at 19:02
    
Ah, I see. (Java doesn't require this!) –  user1508893 Oct 3 '12 at 19:27

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