0

I want to make a function on the Idtcpclient that repeats the ReadLn command. But how can i do this? I don't want to use a timer because a timer is slow. I allready searched on google but i don't understand it..

  • That sounds like a task for server, not for client... – TLama May 28 '14 at 9:00
  • But when i send a command to the client the client can't read it... Thats why i want to repeat it. – jwz104 May 28 '14 at 9:01
0

The client can be placed in a separate thread, and use a loop to repeat the ReadLn until it succeeds. The time out can be given as an argument to ReadLn so that the next try will happen after the timeout interval. Make sure to handle connection loss, for example by reconnecting in a loop.

  • But when i place readln in a loop the application run very slow, just like when i put it in a timer – jwz104 May 28 '14 at 11:00
  • @jwz why should the main application run slow if the ReadLn is in a separate thread? The thread will wait until there is data, and repeat if there is no data. The main app thread will not be touched until there is data. – mjn May 28 '14 at 11:31
  • Oooh in a seperate thread, but how can i do that? I now try to use the backgroundworker component but i don't know how that works, i can make the events... – jwz104 May 28 '14 at 11:57
  • @mjn: There is no need to use a timeout in the case of a thread. Let ReadLn() block until data arrives, then call ReadLn() again and let it block, repeating as needed. When a disconnect occurs, a blocked ReadLn() will raise an exception, which can then be used to terminate the thread, or reconnect, etc as needed. – Remy Lebeau May 28 '14 at 23:18
  • @jwz104: you can use a TIdThreadComponent component, which runs a worker thread and triggers its OnRun event (and others) within that thread. Or you can derive a new class from TThread and override the Execute() method, then create instances of that class when needed. Search around, there are plenty of examples of using TIdTCPClient with threaded reading. – Remy Lebeau May 28 '14 at 23:19

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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