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hi there i have a work about a programme which is like one child should print a number into a text file and the second child should take that number to print it onto screen simultaneously. but my code is work like first child finishes to printing the numbers 0 through 9 and then second child starts to read them onto screen. so i guess its a synchronization issue. here is my simple code ;

#include <stdio.h>     /* basic I/O routines.   */
#include <unistd.h>    /* define fork(), etc.   */
#include <sys/types.h> /* define pid_t, etc.    */
#include <sys/wait.h>  /* define wait(), etc.   */
#include <signal.h>    /* define signal(), etc. */
#include <pthread.h>

void write_num(void);
void print_screen(void);
//void catch_child(int);

int main(int argc, char* argv[]) {

        int i, result, pid;

        pid = fork(); /* creates a new process, you only want the parent to spawn children? */

        switch (pid) {

             case -1:
                /* fork error */
                printf("Error occured with fork()\n");
                exit(1);
             case 0:
                /* child process */
                write_num(); 
                exit(0);
             default:
                 /* parent process*/
                {
                //wait(&pid);
                pid = fork(); /* fork new children here */


                switch(pid) {

                    case -1:
                        printf("Error occured with fork()\n");
                        exit(1);

                    case 0: 

                        print_screen();
                        exit(0);

                    default:
                        break;

                         }
                }
     }
    wait(&pid);
    execl("/usr/bin/killall","killall","tail",(char *) 0);
    return 0;
}

void write_num(void){

 FILE* fptr;
 int i;

 fptr=fopen("textfile.txt","w");

    for(i=0; i<10; i++){

        fprintf(fptr,"%d\n",i);
        fflush(stdout);
        sleep(1);

        }
}

void print_screen(void){

        execl("/usr/bin/tail","tail","-f","./textfile.txt",(char *) 0);
        sleep(1);

}

/* first, here is the code for the signal handler
void catch_child(int sig_num)
{
     when we get here, we know there's a zombie child waiting
    int child_status;

    wait(&child_status);
    printf("child exited.\n");
}*/

by the way, in Ubuntu i used to compile with gcc -o process process.c -lpthread.

I will be appreciated if you can help.

share|improve this question
    
Why pthreads? You're creating processes, not threads. That library is useless in your program. –  m0skit0 Oct 3 '12 at 16:42
    
yeah i realized that even if i dont use that library nothing changes. –  quartaela Oct 3 '12 at 17:13

2 Answers 2

up vote 1 down vote accepted

You need to change to

flush(fptr);  
share|improve this answer
    
wow it works perfectly! could you briefly explain why we used flush(fptr) _? –  quartaela Oct 3 '12 at 17:12
    
@quartaela why did you used fflush in the first place? To make OS write buffered numbers to file, so other process will see it. You just mistakenly flushed output whereas you need to flush file instead. –  Victor Sorokin Oct 3 '12 at 17:55
    
@quartaela if you need to understand Unix (POSIX), read book by Stevens "Advanced Programming in the UNIX Environment" –  Victor Sorokin Oct 3 '12 at 17:58

you might want to consider having the main process create two child threads instead of processes. Child thread A can write to a file, and child thread B would display the number. The main thread can schedule these two child threads when a new number is available.

There doesn't need to be any synchronization performed based on your problem statement, just the outputting of the number at the same time to the screen and file.

share|improve this answer
    
to be honest i am very new to the subject of threads and processes. and in this work we can only use processes rather than threads. and yes i realized that i dont need to synchronize processes. by the way, thanks for your post : ) –  quartaela Oct 3 '12 at 17:40

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