i'm trying to create server with TCP IP protocol

But it doesn't accept connection, or may be because of listen

#include <stdio.h>
#include <sys/types.h>
#include <sys/socket.h>
#include <netinet/in.h>
#include <stdlib.h>
#include <netdb.h>
#include <strings.h>
#include <arpa/inet.h>
#include <unistd.h>

void error(char *msg)
{
perror(msg);
exit(1);
}
int main(int argc, char *argv[])
{
    int sockfd,newsockfd,num_port,serveur_T;
    socklen_t client_T;
    char buffer[200];
    struct sockaddr_in adr_serveur, adr_client;
    int n;


    if (argc < 2)
    {
        fprintf(stderr, "nombre d'arguments est insuffisant\n");
        exit(1);
    }
    sockfd=socket(AF_INET, SOCK_DGRAM, 0);
    if (sockfd < 0)
    {
        error("erreur de creation de socket");
    }

    serveur_T=sizeof(adr_serveur);
    bzero((char*)&adr_serveur, serveur_T);
    num_port=atoi(argv[1]);

    adr_serveur.sin_family=AF_INET;
    adr_serveur.sin_addr.s_addr=INADDR_ANY;
    adr_serveur.sin_port=htons(num_port);

    serveur_T=sizeof(adr_serveur);
    if (bind ( sockfd,(struct sockaddr *) &adr_serveur,serveur_T)<0)
    {
        error(" Erreur de binding");
    }

    listen (sockfd,5);
    client_T= sizeof(adr_client);
    newsockfd= accept(sockfd,(struct sockaddr *) &adr_client,&client_T);

    if ( newsockfd<0)
    {
        error("Erreur socket accept");
    }
    bzero(buffer, 200);



return 0;}

When I execute server I got this error

Erreur socket accept: Operation not supported

Second question: Can I use an IRC client and connect it to my server ? In my school we have Linux servers so I'm wondering if I can use them as a hostname ? Thanks

  • a) Check the return value of listen(), it's probably failing. b) Which port are you binding to? Most modern operating systems require root (or equivalent) privileges to bind to reserved ports (ports < 1024). – keithmo Nov 2 '15 at 17:34
  • You have asked two separate questions. The IRC question should be posted as a separate question. – Remy Lebeau Nov 2 '15 at 22:38
up vote 3 down vote accepted

i'm trying to create server with TCP IP protocol

You have created a SOCK_DGRAM (UDP) socket, not a SOCK_STREAM (TCP) socket. You cannot call listen() or accept() on a UDP socket, only on a TCP socket. listen() is reporting an EOPNOTSUPP error:

listen(2)

EOPNOTSUPP
The socket is not of a type that supports the listen() operation.

You are ignoring that error, and then accept() is reporting the same error:

accept(2)

EOPNOTSUPP
The referenced socket is not of type SOCK_STREAM.

There are no connections in UDP, so there is nothing to accept. Once you have bound a UDP socket to a port, you can start calling recvfrom() and sendto() on it.

In order to connect an IRC client to this server code, you need to change the socket type to SOCK_STREAM. IRC runs on TCP, not on UDP.

  • Thank you , It works. I want to know how to know the local hostname, because I want to join this server using irssi. Is it possible? – user3568611 Nov 3 '15 at 1:48
  • You don't need the actual hostname when connecting locally, just connect to localhost or 127.0.0.1. – Remy Lebeau Nov 3 '15 at 2:13
  • I run the server with port 6000 and the irssi and put /JOIN 127.0.0.1 6000 but my resuest is denied : "Not connected to server. – user3568611 Nov 3 '15 at 12:10
  • /JOIN is an IRC command to enter an IRC channel AFTER you have connected to an IRC server. You have to connect to 127.0.0.1:6000 first then JOIN a channel. But your server does not implement the IRC protocol yet, you don't even have basic TCP working yet. Forget about IRC until you understand the basics of TCP first. – Remy Lebeau Nov 3 '15 at 15:22
  • Ok I see more clearly.. But firstly I would try to connect a client to it , before starting coding chating section.. Its a school work so we are not asked to have a perfect IRC server. So it I understand an IRC client could not connect to my server by giving server name and port? In this case can you give me some help to know what should I add so that the client can connect to my server ? Thanks – user3568611 Nov 3 '15 at 18:06

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.