Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This question already has an answer here:

Nagios lets me configure child_processes_fork_twice=<0/1>.

The documentation says

This option determines whether or not Nagios will fork() child processes twice when it executes host and service checks. By default, Nagios fork()s twice. However, if the use_large_installation_tweaks option is enabled, it will only fork() once.

As far as I know fork() will spawn a new child process. Why would I want to do that twice?

share|improve this question

marked as duplicate by alk Jan 18 at 16:57

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
@larsmans Thank you for that link. It wasn't on my list when I was researching the question first. I just learned a lot there and placed some upvotes. –  DerMike Jun 7 '12 at 13:31

5 Answers 5

up vote 11 down vote accepted

In Linux, a daemon is typically created by forking twice with the intermediate process exiting after forking the grandchild. This has the effect of orphaning the grandchild process. As a result, it becomes the responsibility of the OS to clean up after it if it terminates. The reason has to do with what are known as zombie processes which continue to live and consume resources after exiting because their parent, who'd normally be responsible for the cleaning up, has also died.

share|improve this answer
8  
I fail to see how this is better than forking just once. I think the real reason has something to do with sessions and controlling terminals, not orphaning, but I may be mistaken... –  R.. Jun 7 '12 at 15:09

All right, so now first of all: what is a zombie process?

It's a process that is dead, but its parent was busy doing some other work, hence it could not collect the child's exit status.

In some cases, the child runs for a very long time, the parent cannot wait for that long, and will continue with it's work (note that the parent doesn't die, but continues its remaining tasks but doesn't care about the child).

In this way, a zombie process is created.


Now let's get down to business. How does forking twice help here?

The important thing to note is that the grandchild does the work which the parent process wants its child to do.

Now the first time fork is called, the first child simply forks again and exits. This way, the parent doesn't have to wait for a long time to collect the child's exit status (since the child's only job is to create another child and exit). So, the first child doesn't become a zombie.

As for the grandchild, its parent has already died. Hence the grandchild will be adopted by the init process, which always collects the exit status of all its child processes. So, now the parent doesn't have to wait for very long, and no zombie process will be created.


There are other ways to avoid a zombie process; this is just a common technique.


Hope this helps!

share|improve this answer
#include<stdio.h>
#include<unistd.h>
#include<stdlib.h>
#include<sys/types.h>
int main()
{
    pid_t p1,p2;
    p1=fork();
    if(p1!=0)
    {
        printf("p1 process id is  %d",getpid());
        wait();
        system("ps");
    }
    else
    {
        p2=fork();
        if(p2!=0) 
        {
            printf("p2 process id is  %d",getpid());
            exit(0);
        }
        else
        {
            printf("p3 process id is  %d",getpid());
        }
        exit(0);
    }
}
share|improve this answer
3  
An explanation would be nice. –  Okuma.Scott May 29 '14 at 16:43
    
Op is actually asking why the program is written like the way you have written –  darknight Sep 18 '14 at 15:45

Unix Programming Faq §1.6.2:

1.6.2 How do I prevent them from occuring?

You need to ensure that your parent process calls wait() (or waitpid(), wait3(), etc.) for every child process that terminates; or, on some systems, you can instruct the system that you are uninterested in child exit states.

Another approach is to fork() twice, and have the immediate child process exit straight away. This causes the grandchild process to be orphaned, so the init process is responsible for cleaning it up. For code to do this, see the function fork2() in the examples section.

To ignore child exit states, you need to do the following (check your system's manpages to see if this works):

     struct sigaction sa;
     sa.sa_handler = SIG_IGN;
 #ifdef SA_NOCLDWAIT
     sa.sa_flags = SA_NOCLDWAIT;
 #else
     sa.sa_flags = 0;
 #endif
     sigemptyset(&sa.sa_mask);
     sigaction(SIGCHLD, &sa, NULL);

If this is successful, then the wait() functions are prevented from working; if any of them are called, they will wait until all child processes have terminated, then return failure with errno == ECHILD.

The other technique is to catch the SIGCHLD signal, and have the signal handler call waitpid() or wait3(). See the examples section for a complete program.

share|improve this answer
2  
This only makes sense if the parent process is going to stick around after the child (or grandchild) is started. If the entire program is the daemon and the parent is going to exit immediately anyway, I see no benefit to the double fork, at least not with respect to orphaning the process. –  R.. Jun 7 '12 at 15:10

Also from the documentation,

Normally Nagios will fork() twice when it executes host and service checks. This is done to (1) ensure a high level of resistance against plugins that go awry and segfault and (2) make the OS deal with cleaning up the grandchild process once it exits.

share|improve this answer

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