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My Program doesn´t work, probably it ends in a Deadlock. The task was to create a program, which copies the content of File1 (argv[1]) in File2(argv[2]), using one writer and one reader-thread.

Therefore i should use a ringbuffer with N Blocks. Reader and Writer should work at the same time. I thought of saving the positions of both threads in buffer_t as well as the Buffer itself (simple Chararray) and the filenames. If both positions equal, i thought of synchronizing with a conditionvariable. ( 2 cases, reader is too fast or writer is too fast).

I thought a Deadlock should be impossible, because i send a cond_signal after every block i read.

Thanks in advance.

#include<stdlib.h>
#include<stdio.h>
#include<sys/types.h>
#include <pthread.h>
#include <sys/stat.h>
#include <string.h>
#include <sys/wait.h>
#include <unistd.h>
#include <fcntl.h>
#include <sys/msg.h>
#include <sys/ipc.h>
#include <signal.h>

#define BLCKSZ 16
#define MAX_BLCK 100

pthread_mutex_t mutex = PTHREAD_MUTEX_INITIALIZER;
pthread_cond_t cond = PTHREAD_COND_INITIALIZER;

FILE* to_read;
FILE* to_write;

//saves position of reader and writer, as well as filenames and ringbuffer.

typedef struct buffer{
    int r ;
    int w ;
    char* read;
    char* write;
    char buffer[MAX_BLCK][BLCKSZ];
    int flag ;
}buffer_t;


void* reading (void* arg);
void* writing (void* arg);

//signal_handler_function in case of a Deadlock
void term(int signal){
    fclose(to_read);
    fclose(to_write);
    write(1,"TERMINATED!",11);
    exit(0);
}
int main(int argc, char** argv)
{
    // ./run [Filename1] [Filename2]
    if(argc != 3){
        perror("Arguments!\n");exit(EXIT_FAILURE);
    }
    //install signal handler
    sigset_t mask;
    sigfillset(&mask);
    struct sigaction sa;
    sa.sa_handler = &term;
    sa.sa_mask = mask;
    sigaction(SIGINT,&sa,NULL);

    //fill buffer_t, argument for threads
    buffer_t arg;
    arg.read = argv[1];
    arg.write = argv[2];
    arg.r = 0;
    arg.w = -1;
    arg.flag = 1;

    //creating threads
    pthread_t reader;
    pthread_t writer;
    pthread_create(&reader,NULL,&reading,&arg);
    pthread_create(&writer,NULL,&writing,&arg);
    //wait for threads to join
    pthread_join(reader,NULL);
    pthread_join(writer,NULL);

    return EXIT_SUCCESS;
}

void* reading (void* arg)
{
    buffer_t* buffer = (buffer_t*) arg;

    //waiting for the writer to openfile
    pthread_mutex_lock(&mutex);
    pthread_cond_wait(&cond,&mutex);
    pthread_mutex_unlock(&mutex);

    //open file to read
    if((to_read = fopen(buffer->read,"r")) == NULL){
        perror("fopen\n");exit(0);
    }
    char token = ' ';
    int i;
    //flag for while-loop
    int flag = 1;
    while(flag) 
    {
        //lock mutex for next check of buffer->r != buffer->w
        pthread_mutex_lock(&mutex);

        //check if both want to access to same block
        if(buffer->r != buffer->w){
            //unlock mutex if reader and writer are not in same block
            pthread_mutex_unlock(&mutex);
            for(i = 0;i<BLCKSZ && (token = fgetc(to_read)) != EOF;i++){
                buffer->buffer[buffer->r][i] = token;
            }
            if(token == EOF){
                buffer->buffer[buffer->r][i] = token;
                flag = 0;
            }
            //synchronize access to buffer_t buffer
            pthread_mutex_lock(&mutex);
            buffer->r = ((buffer->r+1)%MAX_BLCK);
            pthread_mutex_unlock(&mutex);
        }
        else if(buffer->r == buffer->w){
            //wait for signal if both try to acces to same block
            pthread_cond_wait(&cond,&mutex);
            pthread_mutex_unlock(&mutex);
        }
        //sending signal after finishing one block.
        pthread_cond_signal(&cond);

    }
    // buffer->flag one of the conditions of the writer while-loop
    buffer->flag = 0;
    //close file to read
    fclose(to_read);
    //send last signal 
    pthread_cond_signal(&cond);
}

void* writing (void* arg)
{
    buffer_t* buffer = (buffer_t*) arg;

    //open file to write
    if((to_write = fopen(buffer->write,"w")) == NULL){
        perror("fopen\n");exit(0);
    }
    //unblock reader
    pthread_cond_signal(&cond);

    //wait for first signal
    pthread_mutex_lock(&mutex);
    pthread_cond_wait(&cond,&mutex);
    pthread_mutex_unlock(&mutex);

    buffer->w++;

    while(buffer->flag || buffer->r != buffer->w) 
    {
        // lock mutex to check if buffer->r != buffer->w 
        pthread_mutex_lock(&mutex);
        if(buffer->r != buffer->w){
            pthread_mutex_unlock(&mutex);
            for(int i = 0;i<BLCKSZ;i++){
                fputc(buffer->buffer[buffer->w][i],to_write);
                if(buffer->buffer[buffer->w][i] == EOF)
                    break;

            }
            //synchronize access to buffer_t buffer
            pthread_mutex_lock(&mutex);
            buffer->w = ((buffer->w+1)%MAX_BLCK);
            pthread_mutex_unlock(&mutex);
        }
        else{       
            //wait for signal in case r want to access to same position as w
            pthread_cond_wait(&cond,&mutex);
            pthread_mutex_unlock(&mutex);
        }
        // send signal after a block is read
        pthread_cond_signal(&cond);
    }
    //close file;
    fclose(to_write);
}
share|improve this question

closed as not a real question by Justin, RDC, devnull, samaYo, Ben Carey Jun 25 '13 at 15:12

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
-1 for write(1,...) –  Ulterior Jun 25 '13 at 10:05

1 Answer 1

You have gone crazy with the synchronization. Isolate what you need in a buffer type with two operations: read and write, and you will find the task much simpler.

share|improve this answer
    
Thanks for the quick Answer, i tried it once again, it should work now. Also i have to admit that i don't understand why code above doesn't work. But that should be my Problem, greetings. –  user2519313 Jun 25 '13 at 11:06
1  
Synchronization quickly gets extremely complex. You should always try to isolate it and keep it as simple as possible. Using a debugger would simplify finding the bug in the above code, if that is not possible or feels like too much work then soil your code with printfs :) That always work! –  Tobias Ritzau Jun 25 '13 at 11:12

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