Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have this very simple chat app made in VB6 using winsock, but as you can see it only accept only one connexion, how can i handle multiple users? Thanks!

Private Sub Winsock1_Close()
    ' Finaliza la conexión
    Winsock1.Close

    txtLog = txtLog & "*** Desconectado" & vbCrLf

End Sub

Private Sub Winsock1_ConnectionRequest(ByVal requestID As Long)

    If Winsock1.State <> sckClosed Then
        Winsock1.Close ' close
    End If

    Winsock1.Accept requestID

    txtLog = "Cliente conectado. IP : " & _
              Winsock1.RemoteHostIP & vbCrLf

End Sub

Private Sub Winsock1_DataArrival(ByVal bytesTotal As Long)
Dim dat As String

    Winsock1.GetData dat, vbString
    txtLog = txtLog & "Cliente : " & dat & vbCrLf

End Sub
share|improve this question

1 Answer 1

up vote 2 down vote accepted

The solution is to have an array of Winsock objects, and create a new one at runtime. The new object you have created accepts the connection request.

So, in your connection request sub, you would have a new socket:

Dim ConnectionCount as long

Private Sub Winsock1_ConnectionRequest(ByVal requestID As Long)
    ConnectionCount=ConnectionCount+1

    Load Winsocks(ConnectionCount)
    Winsocks(ConnectionCount).Accept(requestID)

     txtLog = "Cliente conectado. IP : " & _
          Winsocks(ConnectionCount).RemoteHostIP & vbCrLf

End Sub

Edit: Here is a tutorial that may help you better than my code: http://www.devx.com/tips/Tip/5488

It follows the same idea.

share|improve this answer
    
Thanks @Brad but how can i create an array of winsocks?? –  DomingoSL Jan 19 '11 at 15:50
    
Create a Winsock control on your form, and set its index to 0. This makes it part of a control array. –  Brad Jan 19 '11 at 16:34

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.