0

I extended AWTEventListener, and then added it to the toolkit. However, when I try to assert that my listener is in the AWTListeners, my assertion fails. I call this from within the listener (although I don't know why that would cause a problem).

Toolkit.getDefaultToolkit().addAWTEventListener(this, AWTEvent.MOUSE_EVENT_MASK
                                              | AWTEvent.KEY_EVENT_MASK
                                              | AWTEvent.MOUSE_MOTION_EVENT_MASK
                                              | AWTEvent.MOUSE_WHEEL_EVENT_MASK);
assert ArrayUtils.contains
                      (Toolkit.getDefaultToolkit().getAWTEventListeners(), this);
2

As per source code of Toolkit it internally uses proxy as shown below that's assert is failed.

To prove this simply print the hash code of of the listener object that you passed and that is returned from getAWTEventListeners().

Alternatively you can check on Listener class name.

public void addAWTEventListener(AWTEventListener listener, long eventMask) {
    AWTEventListener localL = deProxyAWTEventListener(listener);

    if (localL == null) {
        return;
    }
    ...
}

static private AWTEventListener deProxyAWTEventListener(AWTEventListener l)
{
    AWTEventListener localL = l;

    if (localL == null) {
        return null;
    }
    // if user passed in a AWTEventListenerProxy object, extract
    // the listener
    if (l instanceof AWTEventListenerProxy) {
        localL = (AWTEventListener)((AWTEventListenerProxy)l).getListener();
    }
    return localL;
}
2

The AWTEventListeners within the default toolkit are maintained as proxies (java.awt.event.AWTEventListenerProxy), which wrap the listeners that were added.

Toolkit.getDefaultToolkit().addAWTEventListener(this, ...);

for (AWTEventListener listener : Toolkit.getDefaultToolkit().getAWTEventListeners()) {

    java.awt.event.AWTEventListenerProxy proxy = (java.awt.event.AWTEventListenerProxy) listener;
    if (proxy.getListener().equals(this) {
        // there, we found it.
    }
}

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.