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I have written simple solution for Reader-Writer's problem using semaphores in C. But I am getting different output after every successful run. What is the exact reason behind this? Here's the code:

#include<stdio.h>
#include<semaphore.h>
#include<pthread.h>
#include<string.h>

sem_t x,wsem;
int rc;

void *reader(void *);
void *writer(void *);

int svar=0;

int main()
{
    pthread_t w[2],r[3];
    sem_init(&x,0,1);
    sem_init(&wsem,0,1);

    rc=0;

    pthread_create(&w[0],NULL,writer,(void *)0);
    pthread_create(&r[0],NULL,reader,(void *)0);
    pthread_create(&w[1],NULL,writer,(void *)1);
    pthread_create(&r[1],NULL,reader,(void *)1);
    pthread_create(&r[2],NULL,reader,(void *)2);

    pthread_join(r[0],NULL);
    pthread_join(w[0],NULL);
    pthread_join(w[1],NULL);
    pthread_join(r[1],NULL);
    pthread_join(r[2],NULL);

    sem_destroy(&x);
    sem_destroy(&wsem);

    return 0;
}

void *reader(void *arg)
{

        printf("\nReader is executing......");
        sem_wait(&x);
        rc++;
        if (rc == 1)
        sem_wait(&wsem);
        sem_post(&x);
        printf("Reader-%d : value of shared variable : %d\n", (int)arg,svar);
        sem_wait(&x);
        rc--;
        if (rc==0)
            sem_post(&wsem);
        sem_post(&x);

}

void *writer(void *arg)
{

        printf("\nWriter is executing......");
        sem_wait(&wsem);
        svar=svar+5;
        printf("Writer-%d : value of shared variable : %d\n",(int)arg,svar);
        sem_post(&wsem);

}

Output1 : 
Writer is executing......Writer-0 : value of shared variable : 5

Reader is executing......Reader-0 : value of shared variable : 5

Reader is executing......Reader-1 : value of shared variable : 5

Writer is executing......Writer-1 : value of shared variable : 10

Reader is executing......Reader-2 : value of shared variable : 10

Output2: 

Writer is executing......Writer-0 : value of shared variable : 5

Writer is executing......Writer-1 : value of shared variable : 10

Reader is executing......Reader-1 : value of shared variable : 10

Reader is executing......Reader-0 : value of shared variable : 10

Reader is executing......Reader-2 : value of shared variable : 10 

Output3:

Writer is executing......Writer-0 : value of shared variable : 5

Writer is executing......Writer-1 : value of shared variable : 10

Reader is executing......Reader-1 : value of shared variable : 10

Reader is executing......Reader-0 : value of shared variable : 10

Reader is executing......Reader-2 : value of shared variable : 10
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please reformat your code - the includes aren't showing up correctly –  Robin Green May 8 '11 at 13:43
    
@Robin Green: Done. –  Cody Gray May 8 '11 at 13:43
2  
@skaffman: Why did you retag this to C++? The question itself says he's using C, and stdio.h is a C header, not a C++ header. –  Cody Gray May 8 '11 at 13:45
1  
Why would you expect to get the same output? –  nbt May 8 '11 at 13:47
    
@Cody Gray: +1: I was just about to ask the same thing ... skaffman: -1 ;) –  pmg May 8 '11 at 13:49

1 Answer 1

up vote 5 down vote accepted

Thread execution is non-deterministic. Just because you've launched the threads in a specific order does not mean they'll execute in that order. In this case the way you've structured your semaphores and condition variables, means that once the first writer has written, then either one or more writers can write or one or more readers can read, in no particular order.

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