服务器客户端应用程序
问题描述:
这是我的服务器代码我有一个问题,因为我的程序冻结,不知道什么是错的。服务器客户端应用程序
private void button1_Click(object sender, EventArgs e)
{
if (button1.Text == "Listen")
{
tcpl = new TcpListener(IPAddress.Any, 5555);
tcpl.Start();
try
{
// get random word from text
OpenFileDialog ofd = new OpenFileDialog();
ofd.Filter = "Txt |*.txt";
ofd.Title = "Tekst";
if (ofd.ShowDialog() == DialogResult.OK)
{
String[] myString = File.ReadAllLines(ofd.FileName);
textBox1.Text = myString[r.Next(myString.Length)];
}
Socket socketForClient = tcpl.AcceptSocket();
if (socketForClient.Connected)
{
MessageBox.Show("Client connected" + socketForClient.RemoteEndPoint.ToString());
NetworkStream networkStream = new NetworkStream(socketForClient);
StreamWriter sw = new StreamWriter(networkStream);
StreamReader sr = new StreamReader(networkStream);
string line = sr.ReadLine();
richTextBox1.Text = "Accepted: " + line;
line = line.ToUpper();
sw.WriteLine(line);
richTextBox1.Text = "Sended : " + line;
sw.Flush();
}
socketForClient.Close();
}
catch (SocketException ex)
{
MessageBox.Show(ex.Message);
}
button1.Text = "stop";
}
else
{
tcpl.Stop();
MessageBox.Show("Disconnected");
button1.Text = "Listen";
}
我的程序冻结在一行中:Socket socketForClient = tcpl.AcceptSocket();不知道为什么。我从学校的一个例子中写了这个。感谢帮助。
答
AcceptSocket()是阻止呼叫,只有在客户端连接后才会返回。 如果您在UI线程中调用该UI,UI将冻结。
你需要在后台线程上做到这一点。
Metro?的WinForms? WPF? Silverlight的? ASP.Net? MonoTouch的? – SLaks 2012-04-02 14:12:15
它看起来不像WPF,因为它们有RoutedEventArgs,ASP.NET没有OpenFileDialog或MessageBox类...我猜Windows窗体。 – 2012-04-03 14:07:27