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I need to be able to know what item I've clicked in a dynamically generated menu system. I only want to know what I've clicked on, even if it's simply a string representation.

def populateShotInfoMenus(self):
    self.menuFilms = QMenu()
    films = self.getList()

    for film in films:
        menuItem_Film = self.menuFilms.addAction(film)
        self.connect(menuItem_Film, SIGNAL('triggered()'), self.onFilmSet)
        self.menuFilms.addAction(menuItem_Film)

def onFilmRightClick(self, value):
    self.menuFilms.exec_(self.group1_inputFilm.mapToGlobal(value))

def onFilmSet(self, value):
    print 'Menu Clicked ', value
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4 Answers 4

up vote 9 down vote accepted

Instead of using onFilmSet directly as the receiver of your connection, use a lambda function so you can pass additional parameters:

receiver = lambda film=film: self.onFilmSet(self, film)
self.connect(menuItem_Film, SIGNAL('triggered()'), receiver)
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exactly what i was looking for, ahhh sweet lambda! –  crackerbunny Sep 23 '09 at 22:11

Take a look at the Qt's property system. You can dynamically add a property containing a string or anything you desire, which defines the action. Then you can use sender() method in the slot to obtain the QObject calling the slot. Then, query the property you set and do whatever you want accordingly.

But, this is not the best method to do this. Using sender() is not advised because it violates the object oriented principle of modularity.

The best method would be using QSignalMapper class. This class maps signals from different objects to the same slot with different arguments.

I haven't used PyQt therefore i cannot give you exact syntax or an example, but it shouldn't be hard to find with a little research.

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I agree that this seems like the place to use a signal mapper. –  Caleb Huitt - cjhuitt Sep 23 '09 at 16:38

I was trying to figure out a similar issue and after looking at the code above this is what worked for me. Thought it would be good to show it all together. =)

self.taskMenu = QtGui.QMenu("Task")
self.tasks = self.getTasks() #FETCHES A LIST OF LIST
self.menuTasks = QtGui.QMenu()
for item in self.tasks:
     menuItem_Task = self.taskMenu.addAction(item[1]) 
     receiver = lambda taskType=item[0]: self.setTask(taskType)
     self.connect(menuItem_Task, QtCore.SIGNAL('triggered()'), receiver)
     self.taskMenu.addAction(menuItem_Task)

def setTask(self,taskType):
     print taskType
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Just some additional information, I don't know why, but lambda function doesn't work with new pyqt syntax for connections :

Example of code not working :

    self.contextTreeMenuAssignTo = QtGui.QMenu(self)
    actionAssign = contextMenu.addMenu( self.contextTreeMenuAssignTo )
    actionAssign.setText("Assign to : ")
    for user in self.whoCanBeAssignated() :
        actionAssignTo = QtGui.QAction( user[0]  ,self)
        self.contextTreeMenuAssignTo.addAction( actionAssignTo )
        actionAssignTo.triggered.connect(  lambda userID = user[1] :  self.assignAllTo( userID )  )

But if you subsitute the last line with the old style connection syntax :

self.connect(actionAssignTo, QtCore.SIGNAL('triggered()'),  lambda userID = user[1] :  self.assignAllTo( userID )  )    

Everything is fine. With the new connection syntax, you only get the last element of the loop :(

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