I have a application which uses socket connection to send and receive data from another application. While creating socket it uses the port 4998 .

That is where my problem lie. Once I start my application the socket starts using port 4998. So if I want to execute the application again then I get socket binding error.

So I want to limit my application instance to one. That means if the application is already running and some one tries to run the application again by clicking the exe or shortcut icon it shouldn't run the program, instead it should bring the existing application to the Top.

up vote 11 down vote accepted

You may used named mutex.

Code sample from the article:

WINAPI WinMain(
  HINSTANCE, HINSTANCE, LPSTR, int)
{
  try {
    // Try to open the mutex.
    HANDLE hMutex = OpenMutex(
      MUTEX_ALL_ACCESS, 0, "MyApp1.0");

    if (!hMutex)
      // Mutex doesn’t exist. This is
      // the first instance so create
      // the mutex.
      hMutex = 
        CreateMutex(0, 0, "MyApp1.0");
    else
      // The mutex exists so this is the
      // the second instance so return.
      return 0;

    Application->Initialize();
    Application->CreateForm(
      __classid(TForm1), &Form1);
    Application->Run();

    // The app is closing so release
    // the mutex.
    ReleaseMutex(hMutex);
  }
  catch (Exception &exception) {
    Application->
      ShowException(&exception);
  }
  return 0;
}
  • 13
    By calling OpenMutex() first, you have a race condition. Call CreateMutex/Ex() first. It will tell you if the mutex already exists. Call OpenMutex() only if CreateMutex() fails with an ERROR_ACCESS_DENIED error. – Remy Lebeau Jun 6 '13 at 18:48
  • Any tips on how to make this work on Win7+? Global\x mutexes don't see each other from different user logon sessions... – Roman Plášil Feb 6 '15 at 2:19
  • 1
    @RomanPlášil they actually do, you must have done something wrong – paulm Dec 20 '16 at 13:52

/* I have found the necessary editing to be done. Added some extra code and edits that are needed. The present one is working perfectly for me. Thank you, Kirill V. Lyadvinsky and Remy Lebeau for the help!!

*/

bool CheckOneInstance()
{

    HANDLE  m_hStartEvent = CreateEventW( NULL, FALSE, FALSE, L"Global\\CSAPP" );

    if(m_hStartEvent == NULL)
    {
    CloseHandle( m_hStartEvent ); 
        return false;
    }


    if ( GetLastError() == ERROR_ALREADY_EXISTS ) {

        CloseHandle( m_hStartEvent ); 
        m_hStartEvent = NULL;
        // already exist
        // send message from here to existing copy of the application
        return false;
    }
    // the only instance, start in a usual way
    return true;
}

/* The above code works even when one tries to open up second instance FROM A DIFFERENT LOGIN LEAVING THE FIRST LOGIN OPEN with ITS INSTANCE RUNNING. */

When your application initializes, create a mutex. If it already exists, find the existing application and bring it to the foreground. If the application has a fixed title for its main window, it is easy to find with FindWindow.

m_singleInstanceMutex = CreateMutex(NULL, TRUE, L"Some unique string for your app");
if (m_singleInstanceMutex == NULL || GetLastError() == ERROR_ALREADY_EXISTS) {
    HWND existingApp = FindWindow(0, L"Your app's window title");
    if (existingApp) SetForegroundWindow(existingApp);
    return FALSE; // Exit the app. For MFC, return false from InitInstance.
}

Create named event on the start and check the result. Close application if the event is already exist.

BOOL CheckOneInstance()
{
    m_hStartEvent = CreateEventW( NULL, TRUE, FALSE, L"EVENT_NAME_HERE" );
    if ( GetLastError() == ERROR_ALREADY_EXISTS ) {
        CloseHandle( m_hStartEvent ); 
        m_hStartEvent = NULL;
        // already exist
        // send message from here to existing copy of the application
        return FALSE;
    }
    // the only instance, start in a usual way
    return TRUE;
}

Close m_hStartEvent on the app exit.

  • 1
    If CreatEvent() fails, you can't tell if the app is already running or not, so you should exit, not continue. – Remy Lebeau Jun 6 '13 at 18:50

Don't you already have a way to check if your application is running? Who needs a Mutex, if the port is already taken, you know that the app is running!

  • Yes Now I instead of showing the error I need to bring my application by using the process ID. Any help? – Simsons Nov 16 '10 at 6:11
  • 5
    Just because the port is being used, it doesn't mean that YOUR application is using it. – OJ. Nov 16 '10 at 6:21
  • @OJ,Good Catch . The port might be used by som eother app – Simsons Nov 16 '10 at 6:36
  • @OJ What do you intend to do differently if some other app is using the port? – Paul Betts Nov 17 '10 at 3:21
  • 2
    "What do you intend to do differently if some other app is using the port?" - Displaying a different error prompt would be a fairly obvious choice. "[I]f the port is already taken, you know that the app is running!" - Er, no. You know that the port is not available. And that's really all you know. Jumping to conclusions will only confuse the user when a misleading error message pops up. I'm afraid, discarding the correct solution and proposing a code-by-coincidence scheme mandates a vote. Sorry. – IInspectable Dec 24 '15 at 1:40

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