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I've implemented a pipe that's based on a shared memory , and I have a problem when I try to invoke fork with a main program .

The following main :

# include "my_shm_piper.h"
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <sys/wait.h>
#include <unistd.h>
#include <fcntl.h>
#include <sys/stat.h>
#include <sys/types.h>
#include <sys/shm.h>
#include <semaphore.h>
#include <sys/mman.h>
int main()
{
    int spd[2], pid, rb;
    char buff[4096];

    fork();  // that fork is okay , but if we put it after initPipe() , there's a deadlock

    initPipe();

    if (my_pipe(spd) < 0)
    {
        perror("my_pipe");
        exit(1);
    }

    if (fork()) 
    {
        rb = my_read(spd[0], buff, sizeof(buff));
        if (rb > 0)
            write(1, buff, rb);
    }

    else
    {
        my_write(spd[1], "hello world!\n", sizeof("hello world!\n"));
    }

    my_close(spd[0]);
    my_close(spd[1]);
    removePipe();
    return 0;
}

Is using on an Anonymous-pipe that's implemented using shared memory library.

When I put the 1st command of fork() , as above , then my program is working as expected , all the hello-world-s are presented .

But when I put the fork after initPipe() , there's deadlock , and the program hangs :

int main()

{
    int spd[2], pid, rb;
    char buff[4096];

    initPipe();
    fork();   // now the fork() is after the initialization ,and we have a deadlock

    if (my_pipe(spd) < 0)
    {
        perror("my_pipe");
        exit(1);
    }

        // from here the same as above 
}

I think that the initialization stage for the fork() is happening only once , and not twice , as in the first main() .

I guess that there's something wrong with the writing/reading stage , but I can't seem to find the exact source .

I'd appreciate for your help with the matter

Thanks

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Are you deadlocking on the actual call to fork(), or are you saying that you're just not printing your lines afterwards via the pipes? Have you tried simply checking to see if the call to fork is made successively by outputting a statement to stderr immediately after the fork call ? –  Jason Jul 28 '12 at 17:52
    
@Jason: I'm saying that in the 2nd main , only once the hello-world is presented , and the program continues , but nothing is happening . I thing that the read/writing is just hanging in there and waiting for something that would never happen . –  ron Jul 28 '12 at 17:54
    
Too hard to guess what's going on without looking at what initPipes() does; I'm assuming that the two forks are what you really intended. Have you tried using a debugger to see where the processes are hung? –  vanza Jul 28 '12 at 21:43
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2 Answers

up vote 2 down vote accepted

Ah. Tricky one, but I was bored enough to figure it out.

Basically, your waits and posts are not balanced. If you look at your read() function, you do two waits:

sem_wait (myPipe.mutex);
// some more code
if (sem_wait (myPipe.mutex))
  perror ("sem_wait");

But your write function only does one post.

But why does it work if the fork happens before initPipe()? Because you're initializing the semaphore to 1:

if (!sem_init (myPipe.mutex, 1, 1))

Since you're forking before the init, you have two different semaphores with value 1; each one will receive a post and two waits, so you're fine.

In the other case, you have a single semaphore with value 1, which will receive two posts and four waits. 1 + 2 < 4, so one of your readers will hang on sem_wait.

BTW, that's a pretty complicated way of writing pipe(2).

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Got it ,then just remove the if (sem_wait (myPipe.mutex)) perror ("sem_wait"); would suffice , I guess ...? 10x –  ron Jul 28 '12 at 23:11
    
That, and you shouldn't initialize your semaphore to 1. –  vanza Jul 28 '12 at 23:25
    
Frankly , something weird is happening : one time I get 1 hello-world and in another run I get 2 hello-world-s , alternating. –  ron Jul 28 '12 at 23:36
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Given the 'working' code, you have two pipes each has one reader and one write Given the 'notworking' code, you have one pipe with 2 readers and 2 writers and try to create the same unnamed pipe twice.

when 2 readers and 2 writers, The second creation of the same pipe will return -1 and errno set to EEXISTS.

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