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In a Qt application, I have a bunch of automatically-created QActions (menu items) that I add to a menu in the menu bar. Each opens a different file. I'd like to connect them all to the same slot so as to not write the same code many times. From that slot, though, how do I figure out which of the QActions was triggered?

(Example: In Cocoa I'd do this with the sender parameter in the action selector.)


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3 Answers 3

up vote 8 down vote accepted

You have two options:

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Thanks! QObject::sender() looks like it sufficient for the case I asked about, but it's good to know about the more general QSignalMapper option. – Geoff Oct 19 '09 at 19:45
Further, you can use QObject::setProperty() on your QAction to pass additional per-item data into your slot. – Geoff Oct 20 '09 at 2:58
QAction::setData is probably better than QObject::setProperty. – Lukáš Lalinský Oct 20 '09 at 6:24
@LukášLalinský > QAction::setData is probably better than QObject::setProperty Why you think so? – philk Sep 27 '13 at 6:05

I would connect to the QMenu's "triggered" signal, rather then each QAction. This gives you the QAction that was clicked as the first parameter.

void MyObject::menuSelection(QAction* action)
  qDebug() << "Triggered: " << action->text();

void MyObject::showMenu(QPoint menuPos)
  QMenu menu;
  menu.addAction( "File A" );
  menu.addAction( "File B" );
  menu.addAction( "File C" );
  connect(&menu, SIGNAL(triggered(QAction*)), this, SLOT(menuSelection(QAction*)));
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I would love to see this updated with new signal/slot syntax.... – neuronet Jun 23 '14 at 2:37

In Qt, you also have access to the sender: QObject::sender.

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Exactly - in your slot you can do something like this: QAction *pAction = qobject_cast<QAction*>(sender()); – Thomi Oct 16 '09 at 8:46

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