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virtual void dev_class::v_func1()
    cout << "This is dev_class's v_func1()" << endl;

In dev_class's v-table, base_class::v_func1() has already overrided by dev_class::v_func1(). Then, why dev_class::v_func1() can call base_class::v_func1()? Where is the base_class::v_func1() function address storing?

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3 Answers 3

up vote 3 down vote accepted

When you use qualified function name in a call, the specified function is called directly, without using any "v-tables". That applies to calls of base class member function from derived class member function (as in your example). That applies to member function calls in all other contexts as well.

For example

base_class *p = new dev_class;
p->v_func1(); // virtual call - calls `dev_class::v_func1`
p->base_class::v_func1(); // non-virtual call - calls `base_class::v_func1`

Qualified function names suppress and override virtual dispatch mechanism and effectively turn virtual member function call into an ordinary member function call.

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thanks! I think know ... – Jerry Zhang Jul 11 '12 at 8:54

base_class::v_func1() is called without using the v-table, just like any non-virtual function.

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Compiler simply knows addresses of all virtual tables of all classes. This is the same to ask "how compiler sets VMT in the constructor"? Addresses of the functions that are stored in VMTs are simply functions and they are known to compiler in pretty much the same way.

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