Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I wrote the code for sleeping barber problem and it seems to be looking weird... the code is as follows..

#include<stdlib.h>
#include<stdio.h>
#include<pthread.h>

#define MAX_C 10
int a[MAX_C], head=0, tail=0, tmp, tb, tc, count=1;
pthread_mutex_t B;
double time_slot[]={0.125,0.5,0.75,1.00,1.25,1.50,1.75,2.00};

void wait(int a)
{
    clock_t g=clock();
    while(((float)(clock()-g))/CLOCKS_PER_SEC != time_slot[a]);
}

void barber()
{
    printf("barber started\n");
    while(1) {
        tmp=0;
        while(head==tail) {
            printf("b\n");
        }
        tb=rand()%8;
        printf("tail:%d\n", tail);
        tail=(tail+1)%MAX_C;
        wait(tb);
    }
}

void customer()
{       
    printf("customers started\n");
    while(1) {
        wait(rand()%8);
        while((head+1)%MAX_C == tail) {
            printf("c\n");
        }
        a[head]=count-1;
        printf("head:%d\n", head);
        head=(head+1)%MAX_C;
    }
}

int main(int argc, char* argv[])
{
    pthread_t b,c;

    pthread_mutex_init(&B, NULL);
    pthread_create(&c, NULL, (void*)&customer, NULL);
    pthread_create(&b, NULL, (void*)&barber, NULL);

    pthread_join(b, NULL);
    pthread_join(c, NULL);  
    exit(0);
}

The problem is that when the buffer is full ... the barber is waiting for customers... but the customer is not executing at all!!( it is neither waiting nor filling the buffer)... coz the customers while loop was not executing...

share|improve this question
    
Your thread function prototypes should be void* function (void*) – mathematician1975 Aug 28 '12 at 12:59
    
Also this cannot be a deadlock as such as you never actually lock your mutex anywhere that I can see – mathematician1975 Aug 28 '12 at 13:02
    
Does it enter customer at all? I.e. do the first printf statement get executed? Have you tried running it in a debugger, putting a breakpoint in customer and stepped through it to see what is happening? – Joachim Pileborg Aug 28 '12 at 13:02
2  
You are modifying 2 global variables without synchronisation and these variables are used to control loop logic. Your code as it stands is not possible to predict in a meaningful way. You should perhaps consider mutex protecting your code when you change head and tail. Unless I am completely misunderstanding something here of course... – mathematician1975 Aug 28 '12 at 13:07
1  
@nitish712 (Very) Unlikely to happen, but if the while misses the correct clock() value, it would loop until it wraps (if clock_t is an integral type, doomsday if clock_t is a floating point type). Using < is just a bit more defensive. – Daniel Fischer Aug 28 '12 at 14:51

You have a problem in the semaphores that the executer are using the CPU

Please see if you are using the semaphores very well. Don´t forget the #include

#include <unistd.h>
#include <stdlib.h>

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

// The maximum number of customer threads.
#define MAX_CUSTOMERS 25
</b>

void *customer(void *number) {
    int num = *(int *)number;

    // Leave for the shop and take some random amount of
    // time to arrive.
    printf("Customer %d leaving for barber shop.\n", num);
    randwait(5);
    printf("Customer %d arrived at barber shop.\n", num);

    // Wait for space to open up in the waiting room...
    sem_wait(&waitingRoom);
    printf("Customer %d entering waiting room.\n", num);

    // Wait for the barber chair to become free.
    sem_wait(&barberChair);

    // The chair is free so give up your spot in the
    // waiting room.
    sem_post(&waitingRoom);

    // Wake up the barber...
    printf("Customer %d waking the barber.\n", num);
    sem_post(&barberPillow);

    // Wait for the barber to finish cutting your hair.
    sem_wait(&seatBelt);

    // Give up the chair.
    sem_post(&barberChair);
    printf("Customer %d leaving barber shop.\n", num);
}

void *barber(void *junk) {
    // While there are still customers to be serviced...
    // Our barber is omnicient and can tell if there are 
    // customers still on the way to his shop.
    while (!allDone) {

    // Sleep until someone arrives and wakes you..
    printf("The barber is sleeping\n");
    sem_wait(&barberPillow);

    // Skip this stuff at the end...
    if (!allDone) {

        // Take a random amount of time to cut the
        // customer's hair.
        printf("The barber is cutting hair\n");
        randwait(3);
        printf("The barber has finished cutting hair.\n");

        // Release the customer when done cutting...
        sem_post(&seatBelt);
    }
    else {
        printf("The barber is going home for the day.\n");
    }
    }
}
share|improve this answer
up vote 0 down vote accepted

As Daneil Fischer said ... there was a mistake with while(((float)(clock()-g))/CLOCKS_PER_SEC != time_slot[a]); i should replace it with

while(((float)(clock()-g))/CLOCKS_PER_SEC <= time_slot[a]);

But its still weird that this 'missing' of the clock value is occuring only after the whole buffer is filled....

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.