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So I've seen the following code during my revision. I know the wait() causes the parent to wait for the child to stop but I have a few questions regarding this.

Firstly, when the child is created, is my assumption corrected that the parent continues, changes the x value and THEN waits after the if-statement?

Secondly, when the child carries on execution and gets to wait(), what happens? Is this ignored as it has nothing to wait for?

       #include <sys/types.h>
       #include <stdio.h>
       #include <unistd.h>
       int main() {
         int x = 1;
          pid_t pid = fork();
         if (pid == 0) {
             x = x * 2;
         } else if (pid > 0) {
             x = 3;
         }
         wait();
         // Print the value of x to the console
         printf("%d\n",x);
       }
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Have you tried? Did the program seem to hang (regarding your second question)? –  Joachim Pileborg Apr 20 '13 at 0:39
    
Yes (regarding your first question). –  Bryan Olivier Apr 20 '13 at 0:49
    
The declaration of wait() is pid_t wait(int *stat_loc), and while it is permitted to pass 0 or NULL in place of a pointer, you do have to pass something as an argument. Of course, you'd need #include <sys/wait.h> included for the compiler to be able to warn you — but you should not be compiling code such that you can use functions without a prototype in scope. You don't need #include <sys/types.h> on current POSIX systems (it gets included automatically; it was necessary in original POSIX — 1988, 1990). –  Jonathan Leffler Apr 20 '13 at 2:20

1 Answer 1

up vote 0 down vote accepted

You can experiment calling wait() at the begin of child execution. Once there is no children in this process, the callling is simple ignored.

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