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I have a simple QObject-derived object:

class MyObject : public QObject {
Q_OBJECT
public:
    MyObject(QObject* parent = 0);
};

MyObject::MyObject(QObject* parent) : QObject(parent) {
    std::cout<<"[BASE] "<<this->metaObject()->className()<<std::endl;
}

And I further derive this object:

class MyDerivedObject : public MyObject {
Q_OBJECT
public:
    MyDerivedObject(QObject* parent);
};

MyDerivedObject::MyDerivedObject(QObject* parent) : MyObject(parent) {
    std::cout<<"[DERIVED] "<<this->metaObject()->className()<<std::endl;
}

Whenever I instantiate this class, I get the following output:

MyDerivedObject y;

## OUTPUT ###
[BASE] MyObject
[DERIVED] MyDerivedObject

I don't get it. Since the inheritance hierarchy is MyDerivedObject -> MyObject -> QObject, they both have the same instance of a QObject as a parent (right?). I know that most of the Run-time type information is provided via the moc, but that shouldn't change the fact that once I do a static_cast<QObject*>(/*MySomeObject*/) on a pointer to one of those objects, they are the same thing (even in memory) as long as the QObject functionality is concerned. Then why do I get different return values of className()? Either ways, how do I obtain the name of the type the QObject actually is of?

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1 Answer 1

up vote 2 down vote accepted

I am not sure about the details but each QObject-derived class has it own copy of meta object structure:

MyDerivedObject y;

qDebug() << (void*) y.metaObject();
qDebug() << (void*) y.MyObject::metaObject();

That gets you 2 different pointers to meta object.

Edit: I am not sure what your second question is. But if you want to know if a QObject is derived from a given class name, use QObject::inherits() to find out.

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1  
My second question was more like, "When the base-class constructor is called, then within the scope of the base-class constructor, how do I find out the className of the derived-class that invoked in the first place". Your answer did help me in understanding the issue and developing a workaround. As for my question, now that I see it, it doesn't really seem possible. Thanks a lot :) –  Rohan Prabhu Feb 24 '11 at 15:40

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