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This is a part of my code:

class Interpreter {
public:
    Interpreter() : m_id_counter(0) {}
    virtual ~Interpreter() {}
protected:
    int32 m_id_counter;
};

class ManCal : public Interpreter {
public:
    ManCal() {}
};

and having the warning:

Warning: Base class 'Interpreter' has no non-destructor virtual functions

What is the reason ?

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It's trying to tell you that you probably didn't want the destructor to be virtual either. Why did you make it virtual? –  BoBTFish Jan 30 at 15:46
    
There's nothing wrong with the code, although it's hard to think of a use case for a base class that has a virtual destructor but no other virtual member functions. –  Simple Jan 30 at 15:46
    
@Simple: What's so hard about that? I find it harder to think of a useful base class that doesn't have a virtual destructor. –  Axel Jan 30 at 15:48
1  
@Axel well what would you do with it? A virtual destructor implies you're going to have pointers to the base class so you can delete it polymorphically afterwards; if it has no other virtual members then you can't do much with those pointers. –  Simple Jan 30 at 15:50
1  
@BoBTFish: There are several code-generators that produce classes with virtual destructors by default, for example I'm fairly certain Rational Rhapsody (a UML design tool) does it. –  icabod Jan 30 at 15:50

1 Answer 1

There is nothing wrong with the code. The warning is just informing you that you created an inheritance relationship which has no possibility of overriding any base type behavior. Often this is as sign that inheritance is inappropriate here and another pattern like "has a" would be more appropriate between ManCal and Interpreter

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