5

QShortcut makes it easy to connect a QShortcutEvent (Key press, combination or sequence) to a slot method, e.g.:

QShortcut *shortcut = new QShortcut( QKeySequence(Qt::Key_7), this, 0, 0, Qt::ApplicationShortcut);

(Hint: for number keys, a QSignalMapper can be used to map the QShortcut's activated() signal to a Slot with int parameter).

However, in this example, with NumLock (numpad enabled), both '7' keys will trigger the Shortcut's activated() signal.

Is there a way to detect the different keys other than filtering or reimplementing a widget's keyPressEvent and check QKeyEvent::modifiers() for Qt::KeypadModifier?

Digging further, I found

QTBUG-20191 Qt::KeypadModifier does not work with setShortcut linking to a patch that has been merged into 4.8 in Sept. 2012 and which comes with a test case using

button2->setShortcut(Qt::Key_5 + Qt::KeypadModifier);

which does not work for my QShortcut on Qt 4.8.1, i.e. neither of the '7' keys are recognized using (adding) the modifier flag.

So I guess the quickest way would be installing a filter to detect the modifier and let all other keyEvents be handled by the default implementation to be useable with QShortcut?

  • your solution seems best. I reimplement keyPressEvent()/keyReleaseEvent() most of the time and just filter there. – Sebastian Lange Jul 18 '13 at 10:14
  • quickest way — is to install an event filter for another object. An event filter gets to process events before the target object does, allowing it to inspect and discard the events as required – Pie_Jesu Jan 15 '14 at 7:10
2

For this you can use keyReleaseEvent(QKeyEvent *event) For example

void Form::keyReleaseEvent(QKeyEvent *event)    {
    int key = event->nativeScanCode();

    if( key == 79 ) //value for numpad 7
    {
       //your statement   
    }


}
1

You can use Qt.KeypadModifier, For example [Python]:

def keyPressEvent(self, event):
    numpad_mod = int(event.modifiers()) & QtCore.Qt.KeypadModifier
    if event.key() == QtCore.Qt.Key5 and numpad_mod:
        #Numpad 5 clicked

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.