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.

I'm trying to run twinkle command line from a child process. For example like this:

int hangup() {
write_on_display("line3", "            ");
write_on_display("hide_icon", "DIALTONE");
write_on_display("hide_icon", "BACKLIGHT");

int pid = fork();
if (pid == 0) {
    int res = execl("/usr/bin/twinkle", " ", "--immediate", "--cmd",
            "answerbye", (char *) NULL);
    _exit(0);
} else {
    perror("hangup");
    return 0;
}
return 1;
}

but twinkle becomes zombie:

10020 pts/1    Z+     0:00 [twinkle] <defunct>
10040 pts/1    Z+     0:00 [twinkle] <defunct>
10053 pts/1    Z+     0:00 [twinkle] <defunct>
10064 pts/1    Z+     0:00 [twinkle] <defunct>
10097 pts/1    Z+     0:00 [twinkle] <defunct>
10108 pts/1    Z+     0:00 [twinkle] <defunct>
10130 pts/1    Z+     0:00 [twinkle] <defunct>

I tried to set signal(SIGCHLD, SIG_IGN); but without success. Actually I think that the child process dies, before twinkle had finished.

Running twinkle from command line like:

twinkle --immediate --call 100

does not make zombie - twinkle closes properly. What I'm missing there?

share|improve this question

2 Answers 2

The parent process needs to call waitpid() with process id of the child. From the linked reference page:

All of these system calls are used to wait for state changes in a child of the calling process, and obtain information about the child whose state has changed. A state change is considered to be: the child terminated; the child was stopped by a signal; or the child was resumed by a signal. In the case of a terminated child, performing a wait allows the system to release the resources associated with the child; if a wait is not performed, then the terminated child remains in a "zombie" state (see NOTES below).

For example:

pid_t pid = fork();
if (0 == pid)
{
    /* Child process. */
}
else
{
    /* Parent process, wait for child to complete. */
    int status;
    waitpid(pid, &status, 0);
}
share|improve this answer
    
Just a sidenote: IIRC, the code after execl will not be executed unless execl produces an error. –  Jite Dec 6 '12 at 15:11
    
@Jite, correct. The exit(0); disappears if execl() is successful. –  hmjd Dec 6 '12 at 15:14

Yes, but I need parent and child to work asynchronous.

Actually I found my mistake. So, if somebody have similar problem, with a signal handler function like this:

void catch_child(int sig_num)
{
    /* when we get here, we know there's a zombie child waiting */
    int child_status;

    wait(&child_status);

}

and signal(SIGCHLD, catch_child)

in the main() function everything works.

PP Here: is a very good explanation.

share|improve this answer
    
That is a good idea to catch the "child process end" signal in the parent process, and to wait for it there. Does it really work? –  BЈовић Dec 10 '12 at 7:53

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.