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I have a global static variable that is a semaphore , since I'm writing a library and not a program .

Within a main() program that uses the library there are invokes of fork() , and reading & writing into/from a pipe , based on a shared memory .

For example , this is main() that uses my library :

#include <stdio.h>
#include <stdlib.h>
#include "my_pipe_shared_memory_based.h"
int main()

{
    int spd, pid, rb;
    char buff[4096];
    my_new_init();

    if (my_new_fifo("tmp_shm_pipe",0666) < 0)
    {
        perror("my_new_fifo");
        exit(1);
    }

    if (fork()) 
    {
        spd = my_new_open("tmp_shm_pipe", O_RDONLY, 0600);
        if (spd < 0)
        {
            perror("PARENT: my_new_open");
            exit(1);
        }
        rb = my_new_read(spd, buff, sizeof(buff));
        if (rb > 0)
            write(1, buff, rb);
    }

    else
    {
        spd = my_new_open("tmp_shm_pipe", O_WRONLY, 0600);
        if (spd < 0)
        {
            perror("SON: my_new_open");
            exit(1);
        }
        my_new_write(spd, "hello world!\n", sizeof("hello world!\n"));
    }

    my_new_close(spd);
    my_new_un_link("tmp_shm_pipe");
    my_new_finish();

    return 0;
}

Now , I want to use a semaphore before each time that a process is reading and/or writing in the methods :

  1. my_new_write()

  2. my_new_read()

Now , the question is , how can I check the state of the semaphore each time in the requested methods above (e.g. my_new_write & my_new_read) , so I can let the process do his thing , or block it , if another process is currently reading/writing ?

Thanks

share|improve this question
    
You semaphore "mySemaphore" is not visible across different processes. See my answer. –  João Fernandes Jul 19 '12 at 12:57
    
You can also simply try to replace "S_IRUSR | S_IWUSR" with "S_IRWXO" in the sem_open call. It should work, although I'm not absolutely sure :) –  João Fernandes Jul 19 '12 at 13:01
    
@JoãoFernandes: Tried that , still the output is just: Output: and not :Output:hello world! . Any other idea maybe ? thanks –  ron Jul 19 '12 at 13:04
    
Have you verified that your semaphore is being initialized correctly and also --once--, not once per process? What are the return codes for each and every one of your semaphore operations? –  San Jacinto Jul 19 '12 at 13:25
    
@SanJacinto: Yes , I doubled checked that . It starts from zero (0) and goes 1 and then back to zero . Never more than 1 or less than 0 . –  ron Jul 19 '12 at 13:28

2 Answers 2

up vote 2 down vote accepted

The key thing here is that you have to make sure that the semaphore ensuring mutual exclusion is visible by both processes. To do that, you need to allocate shared memory and initialize the semaphore before forking. For this task you can for instance use mmap. Example (without any error checking):

sem_t *sem = mmap(NULL, sizeof(sem_t),
                  PROT_READ | PROT_WRITE, MAP_ANONYMOUS | MAP_SHARED, 0, 0);

After this, use sem_init to initialize the semaphore and make sure that the second argument, pshared, is nonzero. Manual says:

If pshared is nonzero, then the semaphore is shared between processes, and should be located in a region of shared memory (see shm_open(3), mmap(2), and shmget(2)). (Since a child created by fork(2) inherits its parent's memory mappings, it can also access the semaphore.) Any process that can access the shared memory region can operate on the semaphore using sem_post(3), sem_wait(3), etc.

Finally, fork the process and use sem_wait and sem_post normally.

EDIT:

Really, try to replace this:

mySemaphore = sem_open("mySemaphore", O_CREAT, S_IRUSR | S_IWUSR);

With this:

mySemaphore = mmap(NULL, sizeof(sem_t),
                   PROT_READ | PROT_WRITE, MAP_ANONYMOUS | MAP_SHARED, 0, 0);
sem_init(mySemaphore, 1, 1);

in function my_new_open

share|improve this answer
    
Already did that , please see my edited code . 10x . –  ron Jul 19 '12 at 12:54
    
It seems like you are creating the shared memory region correctly, but definitely not the semaphore. –  João Fernandes Jul 19 '12 at 13:06
    
Yeah , something is wrong with it , can't understand what .. –  ron Jul 19 '12 at 13:08
    
Please read my edit. –  João Fernandes Jul 19 '12 at 13:09
    
That line sem_init(mySemaphore, 1, 1); causes a deadlock , the program doesn't stop running . weird ..I even can't debug the code , since I'm forking in main() . I checked the man of sem_init and the last 1 (right most operand) is supposed indeed be 1 for mutual exclusion , however is still in a deadlock . –  ron Jul 19 '12 at 13:15

Isn't the sem_trywait() and sem_wait() the things you're looking for ? Call them with the semaphore handle and you will know their state.

http://pubs.opengroup.org/onlinepubs/7908799/xsh/sem_trywait.html

Not sure about semaphores, but the pthread_cond_timedwait() with a mutex may also allow you to check the state of synchronization without blocking the thread (or giving the timeout).

share|improve this answer
    
Victor ,I tried them already (the threads , I mean) .And now I tried with sem_wait & sem_post but the code is still not synchronized . Any idea idea ? should I post the code maybe ? thanks –  ron Jul 19 '12 at 12:24
    
Definitely, post the read/write functions and we'll have a look. –  Viktor Latypov Jul 19 '12 at 12:37
    
Done , I posted 3 methods : open , read , and write .thanks . –  ron Jul 19 '12 at 12:46

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