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 a function triggered by a message(WM_ONDATA defined by me) the function will execute this code :

MSG msg;
while(::PeekMessage(&msg, NULL, 0, 0, PM_NOREMOVE)) 
{

    if( !AfxGetApp()->PumpMessage() )
    { 
        ::PostQuitMessage(0); 
        return 0; 
    } 
}
return 1;

The problem is that there could be on the message queue another message that could trigger the function.

I'm wondering if I can make it process all the message but WM_ONDATA?

share|improve this question
    
It sounds like there may be something wrong with your design here. –  David Heffernan Jul 6 '11 at 11:23
1  
This is a really elaborate way to make PostMessage work like SendMessage. Just use SendMessage. –  Hans Passant Jul 6 '11 at 11:33

3 Answers 3

Recall that the third and fourth parameters to PeekMessage let you specify a range of message values. Messages outside that range won't be processed.

while (PeekMessage(&msg, NULL, 0, WM_ONDATA - 1, PM_NOREMOVE)
    || PeekMessage(&msg, NULL, WM_ONDATA + 1, 0xffff, PM_NOREMOVE))
share|improve this answer
    
A possible problem with this is that it will process messages out of order. All the 0..WM_ONDATA-1 messages will be done first, and then all the WM_ONDATA+1..0xffff will be processed. That may not matter. –  David Heffernan Jul 6 '11 at 11:23

Sure - just check the message number in msg after receipt.

share|improve this answer

You could get the window proc to ignore the message or to queue it's execution. If you're just looking to avoid recursion, have a reentrance lock

 class MyDlg : ...
 {
       MyDlg(...) : m_inOnData(false), ... { .... }

       ...
     private:
        BOOL m_inOnData;
 };

....

 void MyDlg::OnOnData(...)
 {
      if (m_inOnData)
          return;
      m_inOnData = TRUE;
      ....

      m_inOnData = FALSE;
 }

You could get fancy with a scoped RIIA struct (so things will be exception safe and slightly less verbose)

share|improve this answer

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.