1

I am trying to connect to a signal in this way:

QObject::connect(myObj, SIGNAL(mySignal(std::list<MyClass*> myList)), this, SLOT(mySlot(std::list<MyClass*> myList)));

the slot is not invoked. Is that wrong? Can I use std::list in a signal/slot pair?

EDIT: same pair without parameters work

class TestThread : public QThread
{
    Q_OBJECT

public:
    .....
    protected:
     virtual void run();

private:
    std::list<MyClass*> myList;

signals:
    void mySignal(std::list<MyClass*>&);



};
Q_DECLARE_METATYPE (std::list<MyClass*>)

EDIT:

void mySlot(const std::list<MyClass*> &);

void 
MyManager::mySlot(const std::list<MyClass*> &theList)
{
    std::cout << "mySlot " << std::endl;
}

void mySignal(const std::list<MyClass*> &theList);

TestThread ::TestThread (std::list<MyClass*>&theList, QObject *parent)
    :  QThread(parent),  myList(theList)
{


}



void
TestThread ::run() 
{
   ...
   emit mySignal(myList);
}

in the end:

QObject::connect(threadObj, SIGNAL(mySignal(std::list<MyClass*>)), this, SLOT(mySlot(std::list<MyClass*>)));
  • Where is the class that has the slot? – cmannett85 Jul 30 '12 at 14:04
  • @cbamber85 in the Main thread. The signal is emitted by TestThread – Blackbelt Jul 30 '12 at 14:05
  • Show us the declaration then. – cmannett85 Jul 30 '12 at 14:09
  • Show us the MyManager header, and why isn't mySignal in TestThread scope? – cmannett85 Jul 30 '12 at 15:37
  • You will usually need to move an object to the main application thread so it is part of the event loop. Could that be the issue here? Maybe reduce your signal to a no-argument version to verify if registering the metatype is really an issue. Then see doc.qt.nokia.com/4.7-snapshot/qobject.html#moveToThread – pmr Jul 30 '12 at 16:03
3

You only need the type, not the actual name of the variable.

QObject::connect(myObj, SIGNAL(mySignal(std::list<MyClass*>)), this, SLOT(mySlot(std::list<MyClass*>)));

If you were trying to send an int, you would use

SIGNAL(mySignal(int))

Not

SIGNAL(mySignal(int x))

Edit: As @Chris points out, mismatching the const and & shouldn't make a difference.

The code below correctly emits the signal and receives it in the other thread. If you don't use qRegisterMetaType, you get a runtime warning message telling you to do so.

class A
{
public:
    A(): i(1) {}
    int i;
};

class T : public QThread
{
    Q_OBJECT
public:
    void run()
    {
       emit mySignal(myList);
    }

    std::list<A*> myList;

signals:
    void mySignal(const std::list<A*>&);
};

Q_DECLARE_METATYPE (std::list<A*>)
class Test: public QDialog
{   
    Q_OBJECT//this macro flags the class for the moc tool

public:
    Test()
    {
       qRegisterMetaType<std::list< A* > >("std::list<A*>");

       t = new T;
       connect(t, SIGNAL(mySignal(std::list<A*>)), this, SLOT(mySlot(std::list<A*>)));
       printf("after connect\n");

       t->start();
    }

public slots:
    void mySlot(const std::list<A*>& list){printf("mySlot");}

protected:
    T* t;
};
  • thank you for the answer, but It does not work. Any other hint? – Blackbelt Jul 30 '12 at 13:32
  • 1
    What doesn't work? How are you emitting the signal? Are there error messages? Compiler warnings? What is the slot declaration? – tmpearce Jul 30 '12 at 13:58
  • I emit the signal like emit mySignal(myList). No warning message. I am on Visual Studio 2005. need I to add some compiler paramter to get compiler warnings? – Blackbelt Jul 30 '12 at 14:00
  • You should get a warning at connect() time, on the debug channel. One problem is that your signal passes a non-const ref: std::list<MyClass*>&. The rule is s(T), s(const T&) -> SIGNAL(s(T)), but s(T&) -> SIGNAL(s(T&)). Then also the slot must take a non-const ref. Passing a non-const ref. only makes sense in very few cases though, so you probably want to make that a const ref. – Frank Osterfeld Jul 30 '12 at 14:09
  • should I declare like SIGNAL(mySignal(std::list<MyClass*>&)) ? – Blackbelt Jul 30 '12 at 15:25
5

If the signal emiting object and the receiving object are located in different threads, you have to register your meta-type with qRegisterMetaType before using it in an emit. In your case:

qRegisterMetaType<std::list< MyClass* > >("std::list<MyClass*>");

somewhere at the start of your app should do it.

  • Could I put the stantment in the thread's constructor? – Blackbelt Jul 30 '12 at 14:04
  • As long as the command is called before the first emission, it's OK. – cmannett85 Jul 30 '12 at 14:05
  • metatype registration is only needed for queued connections (i.e. among threads, or when explicitly passed to the connect) – Frank Osterfeld Jul 30 '12 at 14:06
  • First, you should try it at the start of your main, just after creating you QApplication. If it solve your problem, you could try it in your thread constructor, I don't see why it would'nt work. – jslap Jul 30 '12 at 14:06
  • +1 for identifying the thread-boundary problem early (even earlier than it was mentioned that there was threading going on, if I remember correctly). I wrote an example demonstrating that using qRegisterMetaType allows the connection to succeed. If there is still a problem, it lies elsewhere. – tmpearce Jul 30 '12 at 16:03
0

If you have derived from QObject, added the Q_OBJECT macro to the class header, and made sure the signals and slots involved have the correct access modifiers (i.e. public slots) - then it may mean that you need to add:

#include <QMetaType>
Q_DECLARE_METATYPE( std::list<MyClass*> );
  • metatypes are only needed for queued connections. – Frank Osterfeld Jul 30 '12 at 14:05
  • 1
    You're right, but it looks like he's emitting across thread boundaries, and Qt::AutoConnection switches to QueuedConnection when the objects involved are not in the same thread. – cmannett85 Jul 30 '12 at 14:08

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