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when I execute this function with ls | head, it hangs in the second child process after printing out the files and directories. Could someone tell me what I miss here? Thanks in advance

int unipipe(char* lhs[], char* rhs[])
{
    int pfd[2];
    int status, cid;
    pid_t pid;
    char buf;
    if((lhs != NULL) && (rhs != NULL))
    {
      if(pipe(pfd) != 0)
      {
        perror("pipe");
        return -1;
      }
    if((pid = fork()) < 0)
    {
        perror("fork");
        return -1;  
    }
    else if(pid == 0)
   {
       close(1); //close the unused read end
      dup2(pfd[1], STDOUT_FILENO);
      //execute the left-hand side command
      close(pfd[0]);
      execvp(lhs[0], lhs);
       _exit(EXIT_SUCCESS);
    }

   if(setpgid(pid, 0) < 0)
   {
     perror("setpgid"); 
     return -1;
   };

  cid = waitpid(pid, &status, 0);
  if((pid = fork()) == 0)
    {
        close(0);
        dup2(pfd[0], STDIN_FILENO);
        close(pfd[1]);  //close the unused write end
        execvp(rhs[0], rhs);
        _exit(EXIT_SUCCESS);
    } 
    else
    {
           waitpid(pid, &status, 0);
    }
}
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1  
where does function unipipe fit in with your example of ls | head? good luck. –  shellter May 25 '12 at 1:01
    
I have a function call parser which parse the command "ls | head " into two char pointer arrays: the lhs will be {"ls", null} and the rhs is {"head", null}. Thanks for your reply! –  jctank May 25 '12 at 1:14

2 Answers 2

You wait for the first process to exit before starting the second one. Each pipe has a buffer, and once this buffer is full, the I/O functions block, waiting for a few bytes to be read from the pipe so that more can "flow in". Chances are your first process is blocking on the pipe and therefore never exits.

I'd declare two variables of type pid_t, one for each child, and only wait for them both once both have been successfully started.

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Awesome! That works, thanks so much! –  jctank May 25 '12 at 4:44

to make your program running, you delete the first:

cid = waitpid(pid, &status, 0);

at:

else
{
       waitpid(pid, &status, 0);
}

you replace it with :

wait(); // for the fist child
wait(); // for the second child

your program will be running.

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