Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I want to have the main process to run and create 4 subprocesses. Once they are created I want the main process to wait for them to finish.

This is my whole code:

#include <stdio.h>
#include <sys/types.h>
#include <sys/wait.h>


int main(){

    int i;
    int childID;
    int status;

    for (i=0;i<4;i++){
        childID=fork();
        if (childID==0){
            printf("[%d] I the child, will sleep\n", (int)getpid());
            sleep(1);
        }
    }

    if (!childID){
        wait(&status);
        printf("[%d] I the parent, have waited for my children!\n", (int)getpid());
    }

    return 0;
}

What I get instead is this:

..
[8508] I the child, will sleep
[8503] I the parent, have waited for my children!
[8511] I the child, will sleep
[8510] I the child, will sleep
[8509] I the child, will sleep
[8520] I the child, will sleep
[8511] I the parent, have waited for my children!
[8510] I the parent, have waited for my children!
(prompt stuck)

Why does the parent print out multiple times instead of once, in the end?

share|improve this question
1  
Your output does not match your code. Correct it please – Lelouch Lamperouge Oct 21 '11 at 22:59
    
The code you gave us has no statement that prints "I the parent, will wait for my children!". Is there more to the code? – murgatroid99 Oct 21 '11 at 23:02
1  
Besides the fact that your children will fork too, as mentioned in the answers, you are also only waiting for the last forked child, instead of all your children. – Shahbaz Oct 21 '11 at 23:06
    
Sorry for that. It's just that I swapped the position of wait() and printf at last minute and forgot to update the output as well. – Pithikos Oct 21 '11 at 23:08
up vote 3 down vote accepted

Is not the parent who writes multiple times, but the first 3 children. When you fork, the children gets an exact copy of the process including its address space, stack, registers, everything. That means that after the first fork both the parent and the new child will go through the for 3 more times creating 3 new childs. You should break out of the for when executing as the children for the desired effect:

    if (childID==0){
        printf("[%d] I the child, will sleep\n", (int)getpid());
        sleep(1);
        break;
    }
share|improve this answer
    
I was thinking that once fork() is run only the code after it will run. So as fork is inside the loop I was thinking that maybe it will bypass the whole loop and continue after it.. – Pithikos Oct 21 '11 at 23:44
    
The next iteration of the loop is "code after the fork()". – Russell Borogove Oct 22 '11 at 5:51

Look at the pids of the prints. 8510 and 8511 are children, not the original parent. When you fork in the loop, the children are also in that loop. Try putting a break; after the sleep(1).

share|improve this answer

When you run the loop, once you fork, the child sleeps during the first iteration after it is forked off, but then it forks off more processes. Since childID is no longer 0 for those processes, the do not call wait and so they do not reap their children. This means that when all of the wait calls are completed you will still have processes running, so the terminal will hang.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.