9

I am writing a small sample program and I would like to override the default pyglet's behavioyr of ESC closing the app. I have something to the extent of:

window = pyglet.window.Window()
@window.event
def on_key_press(symbol, modifiers):
    if symbol == pyglet.window.key.ESCAPE:
        pass

but that does not seem to work.

1

On the Google group for pyglet-users it is suggest could overload the window.Window.on_key_press(), although there are no code example of it.

17

I know the question is old, but just in case. You've got to return pyglet.event.EVENT_HANDLED to prevent default behaviour. I didn't test it, but in theory this should work:

@window.event
def on_key_press(symbol, modifiers):
    if symbol == pyglet.window.key.ESCAPE:
        return pyglet.event.EVENT_HANDLED
  • 3
    I tested it, it works. – Shavais Dec 11 '12 at 22:13
  • This should be the accepted answer, because it actually answers the question. – Ryan Goldstein Jun 12 '15 at 17:04
4

Same for me. The question is old, but I've found out that you should use window handlers mechanisms, thus making the current event not to propagate further.

You can prevent the remaining event handlers in the stack from receiving the event by returning a true value. The following event handler, when pushed onto the window, will prevent the escape key from exiting the program:

def on_key_press(symbol, modifiers):
    if symbol == key.ESCAPE:
        return True

window.push_handlers(on_key_press)

Here is that link

  • +1 for link to docs – henrebotha Feb 28 '14 at 8:48
1

It's simple actually, subclass Window and overide the on_key_press, like this:

class MyWindow(pyglet.window.Window):  
    def on_key_press(self, symbol, modifiers):  
        if symbol == key.ESCAPE:  
            return pyglet.event.EVENT_HANDLED  

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.