Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to use template meta-programming to determine the base class. Is there a way to get the base class automatically without explicitly specializing for each derived class?

class foo { public: char * Name() { return "foo"; }; };
class bar : public foo { public: char * Name() { return "bar"; }; };

template< typename T > struct ClassInfo { typedef T Base; };
template<> struct ClassInfo<bar> { typedef foo Base; };

int main()
{
  ClassInfo<foo>::Base A;
  ClassInfo<bar>::Base B;

  std::cout << A.Name();  //foo
  std::cout << B.Name();  //foo
}

for right now any automatic method would need to select the first declared base and would fail for private bases.

share|improve this question
1  
Use std::is_base_of<B,D> –  iammilind Jan 3 '12 at 7:57
2  
@iammilind: That's only for testing if one class is the base of another, you have to know the base class to test against already. –  Xeo Jan 3 '12 at 7:58
3  
What do you need it for? I don't think it's possible, but perhaps there is different approach to solve the actual problem. –  Jan Hudec Jan 3 '12 at 8:06
2  
It's not possible and i seond taking a step back to the actual problem - explicit knowledge of the base class usually shouldn't be necessary. –  Georg Fritzsche Jan 3 '12 at 8:23
3  
By the way, binding a string literal to char* is deprecated. Use const char* instead. –  Xeo Jan 3 '12 at 8:43

4 Answers 4

up vote 3 down vote accepted

My solutions are not really automatic, but the best I can think of.

Intrusive C++03 solution:

class B {};

class A : public B
{
public:
    typedef B Base;
};

Non-intrusive C++03 solution:

class B {};

class A : public B {};

template<class T>
struct TypeInfo;

template<>
struct TypeInfo<A>
{
    typedef B Base;
};
share|improve this answer
    
that is pretty much exactly what I came up with too. I was hoping there was some hardcore template trick that I wasn't aware of that could extract it.. I'll probably use the intrusive form for classes with complete creation control and the non-intrusive form for classes that are semi-foreign -thanks –  VonRiphenburger Jan 4 '12 at 5:18

It's possible with C++11 and decltype. For that, we'll exploit that a pointer-to-member is not a pointer into the derived class when the member is inherited from a base class.

For example:

struct base{
    void f(){}
};
struct derived : base{};

The type of &derived::f will be void (base::*)(), not void (derived::*)(). This was already true in C++03, but it was impossible to get the base class type without actually specifying it. With decltype, it's easy and only needs this little function:

// unimplemented to make sure it's only used
// in unevaluated contexts (sizeof, decltype, alignof)
template<class T, class U>
T base_of(U T::*);

Usage:

#include <iostream>

// unimplemented to make sure it's only used
// in unevaluated contexts (sizeof, decltype, alignof)
template<class T, class R>
T base_of(R T::*);

struct base{
    void f(){}
    void name(){ std::cout << "base::name()\n"; }
};
struct derived : base{
    void name(){ std::cout << "derived::name()\n"; }
};

struct not_deducible : base{
    void f(){}
    void name(){ std::cout << "not_deducible::name()\n"; }
};

int main(){
    decltype(base_of(&derived::f)) a;
    decltype(base_of(&base::f)) b;
    decltype(base_of(&not_deducible::f)) c;
    a.name();
    b.name();
    c.name();
}

Output:

base::name()
base::name()
not_deducible::name()

As the last example shows, you need to use a member that is actually an inherited member of the base class you're interested in.

There are more flaws, however: The member must also be unambiguously identify a base class member:

struct base2{ void f(){} };

struct not_deducible2 : base, base2{};

int main(){
  decltype(base_of(&not_deducible2::f)) x; // error: 'f' is ambiguous
}

That's the best you can get though, without compiler support.

share|improve this answer
    
Thanks Xeo,that is a very interesting partial solution and very similar to what I am looking for. I will look into it further –  VonRiphenburger Jan 4 '12 at 5:22

I am not aware of any base-class-selecting template, and I'm not sure one exists or is even a good idea. There are many ways in which this breaks extensibility and goes against the spirit of inheritance. When bar publicly inherits foo, bar is a foo for all practical purposes, and client code shouldn't need to distinguish base class and derived class.

A public typedef in the base class often scratches the itches you might need to have scratched and is clearer:

class foo { public: typedef foo name_making_type; ... };

int main() {
    Foo::name_making_type a;
    Bar::name_making_type b;
}
share|improve this answer
    
Good one. I was about to write this. –  iammilind Jan 3 '12 at 8:22
    
It is for a very light-weight c++ reflection system. The "client" code does general class serialization and messaging with the minimum possible deformation of and/or additions to the original class. –  VonRiphenburger Jan 3 '12 at 20:25

What's with the base class? Are you a .NET or Java programmer?

C++ supports multiple inheritance, and also does not have a global common base class. So a C++ type may have zero, one, or many base classes. Use of the definite article is therefore contraindicated.

Since the base class makes no sense, there's no way to find it.

share|improve this answer
    
There are strong efficiency reasons Java only allows one base class and I tend to restructure my c++ code for the same reasons - so it does make sense as a useful subset –  VonRiphenburger Jan 3 '12 at 20:15
    
@VonRiphenburger: Then the question needs to state: "For a class with exactly one immediate base class, inherited publicly and non-virtually, is it possible to discover the base class type?" And it still isn't clear whether you're looking for the immediate base class, or another ancestor. And Java allowing only one base class has nothing to do with efficiency, and a lot to do with wanting language design to force coders down "the one true path to OOP". Ditto for lack of free functions. –  Ben Voigt Jan 3 '12 at 20:49
    
I DID say for the FIRST declared base. It seemed obvious that immediate base was being sought, not a random ancestor, but that point could have been more clearly stated. Um, thanks for your input, ben. –  VonRiphenburger Jan 4 '12 at 4:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.