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I have a QMenuwhich has several menu items built dynamically.

To this end, I iterate over a collection of menu items, containing the name and Action ( which would need to be taken if the menu item were hit), and keep adding them to a the context menu. All the menu items need to be connected to a common slot.

But somehow the trigger action does not happen. i.e. the connect statement is reached, but the control does not pass into the specified SLOT, no action is taken.

for (int i=0; i<Action_List.size();i++)
{
    tempAct1 = Action_List.at(i); //Action List has the list of Actions
    Context_Menu->addAction(tempAct1);
}
if (Context_Menu!=NULL) {
    Context_Menu->exec(QCursor::pos());
    int r = connect(Context_Menu, SIGNAL(triggered(QAction *)), 
                    this, SLOT(SPlusCommand(QAction *)));
}

int P14MainWindow::SPlusCommand ( QAction* Action)
{
    QVariant tempstr = Action->data();
    QString Qs = tempstr.toString();
    return QPwLocalClient::ExecuteCommand(Qs);
}

Can anyone tell me where I'm going wrong with this, please?

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2 Answers 2

up vote 4 down vote accepted

It seems like you should move connect before exec():

connect(Context_Menu, SIGNAL(triggered(QAction *)), 
        this, SLOT(SPlusCommand(QAction *)));
Context_Menu->exec(QCursor::pos());

Because exec executes menu synchronously, what means that it will return from this method only when all your interaction with menu is finished — too late to connect something after it.

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Thanks a lot. That sure worked. –  user1173240 Feb 6 '13 at 9:47

You will have to connect the individual actions with your slot.

connect(action, SIGNAL(triggered()), this, SLOT(yourSlot())
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Not quite right, because he wants to know from slot which action was invoked. QMenu::triggered(QAction*) signal is also legitimate, and as documentation says, it is made right for that reason: when you connect multiple similar actions to same slot. –  NIA Feb 5 '13 at 14:07

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