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.

so, I have an assignment for my Operating Systems class wherein i am to create a ring of processes connected with pipes in order to pass messages between them. i found some example code which i was looking to adapt (or at least understand) for my needs. the example code (slightly modified) is:

/* Program 4.1 */
#include <stdio.h>
#include <stdlib.h>
#include <unistd.h>
#include <string.h>
#include <errno.h>

/* Sample C program for generating a unidirectional ring of processes.Invoke this program
 with a command-line arg ument indicating the number of processes on the ring.  Communication
 is done via pipes that connect the standard output of a process to the standard input of
 its successor on the ring.  After the ring is created, each process identifies itself with
 its process ID and the  process ID of its parent.  Each process then exits. */

void main(int argc,  char *argv[ ])
{
int master_pid = getpid();
printf("master pid: %i\n", master_pid);

int   i;             /* number of this process (starting with 1)   */
int   childpid;      /* indicates process should spawn another     */
int   nprocs;        /* total number of processes in ring          */
int   fd[2];         /* file descriptors returned by pipe          */
int   error;         /* return value from dup2 call                */
/* check command line for a valid number of processes to generate */
if ( (argc != 2) || ((nprocs = atoi (argv[1])) <= 0) ) {
    fprintf (stderr, "Usage: %s nprocs\n", argv[0]);
    exit(1);
}
/* connect std input to std output via a pipe */
if (pipe (fd) == -1) {
    perror("Could not create pipe");
    exit(1);
}
printf("%s\n", "test");
//this section is blocking printf()?
if ((dup2(fd[0], STDIN_FILENO) == -1) ||
    (dup2(fd[1], STDOUT_FILENO) == -1)) {
    perror("Could not dup pipes");
    exit(1);
}
printf("%s\n", "test");

if ((close(fd[0]) == -1) || (close(fd[1]) == -1)) {
    perror("Could not close extra descriptors");
    exit(1);
}
/* create the remaining processes with their connecting pipes */
for (i = 1; i < nprocs;  i++) {
    if (pipe (fd) == -1) {
        fprintf(stderr,"Could not create pipe %d: %s\n",
                i, strerror(errno));
        exit(1);
    }
    if ((childpid = fork()) == -1) {
        fprintf(stderr, "Could not create child %d: %s\n",
                i, strerror(errno));
        exit(1);
    }
    if (childpid > 0)        /* for parent process, reassign stdout */
        error = dup2(fd[1], STDOUT_FILENO);
    else
        error = dup2(fd[0], STDIN_FILENO);
    if (error == -1) {
        fprintf(stderr, "Could not dup pipes for iteration %d: %s\n",
                i, strerror(errno));
        exit(1);
    }
    if ((close(fd[0]) == -1) || (close(fd[1]) == -1)) {
        fprintf(stderr, "Could not close extra descriptors %d: %s\n",
                i, strerror(errno));
        exit(1);
    }
    if (childpid)
        break;
}

/* say hello to the world */
fprintf(stderr,"This is process %d with ID %d and parent id %d\n",
        i, (int)getpid(), (int)getppid());
wait(1);
exit (0);
}     /* end of main program here */

which outputs:

master pid: 30593
test
This is process 1 with ID 30593 and parent id 30286
This is process 2 with ID 30594 and parent id 30593

when i give is 2 as argv[1]

so, I'm wondering, why would the dup2 section prevent the printf() from executing? if i cant even print something, i'm not sure if i could even pass the message correctly. also, why would the fprintf() already there work, but not one that i would put there?

edit: i would take this to my professor/TA, but theyre both out of town and will be unreachable between now and the deadline...

share|improve this question

2 Answers 2

up vote 1 down vote accepted

printf prints to stdout, which is file descriptor 1 (or equivalently STDOUT_FILENO). dup2(3) is duplicating the pipe's file descriptor on top of the current stdout, which has the side effect of closing the current stdout. So, when you try to printf after calling that particular dup2, you're really printing the data into the pipe you just created, which doesn't go to your terminal output.

fprintf(stderr, ...) still works because that prints to stderr, not stdout, and the stderr file descriptor (2, or equivalently STDERR_FILENO) does not change during the program, so it continues to print out to the terminal.

share|improve this answer
    
wow, yeah, totally been staring at this code for WAY too long –  Drake Sep 20 '12 at 17:37

printf() does not send data to path 0, it sends buffered data using stdout. It would seem that when you disrupt path 0 by dup2'ing something to it, you're disrupting stdout in the process.

From the man page on dup2: dup2() makes newfd be the copy of oldfd, closing newfd first if necessary. Thus when you call dup2(fd[0], STDIN_FILENO) you are breaking stdout.

You state that fprintf() is working but printf() is not... what path are you using for fprintf()? If you're using stderr then it makes perfect sense that it would continue to work, since you haven't done anything with that path.

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.