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I need to write a program that is creating a N amount of sub processes and every single one of them adds one to a shared memory variable. My idea is to use semaphores and shared memory, but the processes are not waiting for each other and the shared memory variable is also not working as I want it.

mydefs.h

#ifndef __MYDEFS__H__
#define __MYDEFS__H__
// Includes
#include <stdio.h>
#include <unistd.h>
#include <semaphore.h>
#include <stdlib.h>
#include <signal.h>
#include <errno.h>
#include <memory.h>
#include <sys/ipc.h>
#include <sys/msg.h>
#include <sys/types.h>
#include <sys/shm.h>
#endif // __MYDEFS__H__

main.c

#include "mydefs.h"
#define PROC_COUNT 3
#define INITAL_MARKER_VALUE 0
#define PID_LEN 32

char mypid[PID_LEN];

int main()
{
    int i, shm_id;
    sem_t mutex;
    if(sem_init(&mutex,1,1) < 0)
    {
        perror("semaphore initilization");
        exit(0);
    }
    shm_id = shmget(IPC_PRIVATE, 4*sizeof(int), IPC_CREAT | 0666);
    if (shm_id < 0) {
         printf("shmget error\n");
    }
    int *shmpointer = shmat(shm_id,0,0);
    memset(mypid, 0, sizeof(mypid));
    sprintf(mypid, "%06d", getpid());

    for(i = 0; i < PROC_COUNT; i++)
    {
        if (fork() == 0)
        {
            while(sem_wait(&mutex)!=0);
            execl("slaveproc", "slaveproc", mypid, (char *)0);
            shmpointer += 1;
            sem_post(&mutex);
            perror("\n Can't exec slave program. Cause ");
            exit(1);
        }
    }
    sleep(1);
    printf("%d\n", *shmpointer);
    return 0;
}

slaveproc.c

#include "mydefs.h"

int marker; // Marker value

int main(int argc, char *argv[])
{
    master_pid = atoi(argv[1]);
    printf("\n --------------------------------------");
    printf("\n I'm the slave proc!");
    printf("\n My pid: %d", getpid());
    printf("\n My master's pid: %d", master_pid);
    printf("\n --------------------------------------");
    for(;;) pause();
        return 0;
}
  • 1
    It's not clear what your problem is. How did you come to the conclusion that "processes are not waiting for each other" and what exactly do you mean by "not working as I want"? Please describe exactly the expected output and the actual output. But for starters you have code after the execl that which will never get executed unless execl fails - execl does not return on success. So in the success case shmpointer will not be incremented and sem_post will not be called. – kaylum Oct 6 '15 at 22:10
  • Furthermore, having a sleep in the parent is no guarantee that all the child processes have completed when the printf is run. It may be ok for a quick test but would require proper synchronisation in the parent for production code. – kaylum Oct 6 '15 at 22:14
1

The problem (or at least "a problem") is that mutex is not in shared memory: it's allocated on the stack. When you fork(), the new process will have a completely separate copy from the old process, so calling sem_wait(&mutex) on one process will not affect the other process's mutex at all.

You should put mutex in the shared memory:

int main()
{
    int i, shm_id;
    shm_id = shmget(IPC_PRIVATE, sizeof(sem_t) + 4*sizeof(int), IPC_CREAT | 0666);
    if (shm_id < 0) {
         printf("shmget error\n");
    }
    int *shmpointer = shmat(shm_id,0,0);
    sem_t *mutex = shmpointer;
    shmpointer = (void*)shmpointer + sizeof(sem_t);
    if(sem_init(mutex,1,1) < 0)
    {
        perror("semaphore initilization");
        exit(0);
    }        
    memset(mypid, 0, sizeof(mypid));
    sprintf(mypid, "%06d", getpid());

    for(i = 0; i < PROC_COUNT; i++)
    {
        if (fork() == 0)
        {
            while(sem_wait(mutex)!=0);
            execl("slaveproc", "slaveproc", mypid, (char *)0);
            shmpointer += 1;
            sem_post(mutex);
            perror("\n Can't exec slave program. Cause ");
            exit(1);
        }
    }
    sleep(1);
    printf("%d\n", *shmpointer);
    return 0;
}

You're also never writing to the memory in shmpointer (perhaps you meant (*shmpointer) += 1?), but I'll let you figure that out on your own.

  • After some reading and your answer I understand now. Thank you. – Lexx Oct 7 '15 at 8:12

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