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 have two scripts, Server.py and Client.py. I have two objectives in mind:

  1. To be able to send data again and again to server from client.
  2. To be able to send data from Server to client.

here is my Server.py :

import socket

serversocket = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
host = "192.168.1.3"
port = 8000
print (host)
print (port)
serversocket.bind((host, port))

serversocket.listen(5)
print ('server started and listening')
while 1:
    (clientsocket, address) = serversocket.accept()
    print ("connection found!")
    data = clientsocket.recv(1024).decode()
    print (data)
    r='REceieve'
    clientsocket.send(r.encode())

and here is my client :

#! /usr/bin/python3

import socket

s = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
host ="192.168.1.3"
port =8000
s.connect((host,port))

def ts(str):
   s.send('e'.encode()) 
   data = ''
   data = s.recv(1024).decode()
   print (data)

while 2:
   r = input('enter')
   ts(s)

s.close ()

The function works for the first time ('e' goes to the server and I get return message back), but how do I make it happen over and over again (something like a chat application) ? The problem starts after the first time. The messages don't go after the first time. what am I doing wrong? I am new with python, so please be a little elaborate, and if you can, please give the source code of the whole thing.

share|improve this question
up vote 2 down vote accepted
import socket
from threading import *

serversocket = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
host = "192.168.1.3"
port = 8000
print (host)
print (port)
serversocket.bind((host, port))

class client(Thread):
    def __init__(self, socket, address):
        Thread.__init__(self)
        self.sock = socket
        self.addr = address
        self.start()

    def run(self):
        while 1:
            print('Client sent:', self.sock.recv(1024).decode())
            self.sock.send(b'Oi you sent something to me')

serversocket.listen(5)
print ('server started and listening')
while 1:
    clientsocket, address = serversocket.accept()
    client(clientsocket, address)

This is a very VERY simple design for how you could solve it. First of all, you need to either accept the client (server side) before going into your while 1 loop because in every loop you accept a new client, or you do as i describe, you toss the client into a separate thread which you handle on his own from now on.

share|improve this answer
    
this is the code for what ? – harvey_slash Jan 20 '14 at 12:05
1  
Exactly what you asked for, "something like a chat application". This IS a chat application. Your serversocket.accept() accepts a socket, delivers it into the class client() which is a thread. That thread will run along-side your accept() function not blocking other people from connecting while still doing two things. 1) Recieves data from the client. 2) Answers the client upon each message with "Oi you sent something to me". – Torxed Jan 20 '14 at 13:12
1  
@user2670775 Also, you can use your client.py which you already have, this server.py that i "wrote" will work with your client code as well. – Torxed Jan 20 '14 at 13:12
    
error: Exception in thread Thread-1: Traceback (most recent call last): File "C:\Python33\lib\threading.py", line 901, in _bootstrap_inner self.run() File "C:\Users\Harsh's\Desktop\New folder (2)\Sserver.py", line 20, in run print('Client sent:', self.sock.recv(1024).decode()) ConnectionAbortedError: [WinError 10053] An established connection was aborted by the software in your host machine – harvey_slash Jan 20 '14 at 13:20
    
You disconnected the client? – Torxed Jan 20 '14 at 13:30

This piece of code is incorrect.

while 1:
    (clientsocket, address) = serversocket.accept()
    print ("connection found!")
    data = clientsocket.recv(1024).decode()
    print (data)
    r='REceieve'
    clientsocket.send(r.encode())

The call on accept() on the serversocket blocks until there's a client connection. When you first connect to the server from the client, it accepts the connection and receives data. However, when it enters the loop again, it is waiting for another connection and thus blocks as there are no other clients that are trying to connect.

That's the reason the recv works correct only the first time. What you should do is find out how you can handle the communication with a client that has been accepted - maybe by creating a new Thread to handle communication with that client and continue accepting new clients in the loop, handling them in the same way.

Tip: If you want to work on creating your own chat application, you should look at a networking engine like Twisted. It will help you understand the whole concept better too.

share|improve this answer
    
so how should I modify it ? do I have to modify client and server ? – harvey_slash Jan 20 '14 at 12:04
    
In the while loop you have written, just accept connections for new clients. You typically have to make it multithreaded before you can also read data from the client and send data back. – gravetii Jan 20 '14 at 12:07
    
I am not really making a chat application. I want to receive and send data to and from my raspberryPi. okay,suppose I just want one way transmissionTO the server, then what should I do ? – harvey_slash Jan 20 '14 at 12:08
    
If you are looking for just one-way communication, you can write a Thread class in the server that will handle it for that client. The thread will perpetually receive data from the client. So with this design, you are spawning a new thread for each client connection and asking the server to handle all the communication related to that particular client in that thread. – gravetii Jan 20 '14 at 12:16
    
You need to modify just the server if you want to handle only one-way communication – gravetii Jan 20 '14 at 12:25

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.