29

I'm writing a test app that simulates key presses of another application. For every key press I have to check if the right window/form is shown. So what I do is get the pointer of the window being shown and get it's window title. However, not all the windows/forms shown window titles. So I'm thinking it would be better to get the name of the class instead. How can I get the name of the class?

QWidget *pWin = QApplication::activeWindow();

when I try:

pWin->className(); 

to get the name of the class, I'm getting:

"error: class QWidget has no member named 'className' "

Can somebody show me the right way?

59

Try using the metaobject.

pWin->metaObject()->className();  
2
  • When I try this I get the class name QObject which is the inherited class name and not the name of the derived class. Any comments on how to get the derived class name? – Dean P Aug 17 '19 at 21:28
  • @DeanP You need to add the Q_OBJECT macro to your derived class in order for Qt to be aware of the derived class's name. – michaelmoo Nov 12 '20 at 22:45
0

You could also check the typeinfo header. Using the typeid operator on you object you get a type_info instance which describes the type of your object. Check out: http://www.cplusplus.com/reference/std/typeinfo/type_info/

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.