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.

All the material I've read on Curiously Recurring Template Pattern seems to one layer of inheritance, ie Base and Derived : Base<Derived>. What if I want to take it one step further?

#include <iostream>
using std::cout;


template<typename LowestDerivedClass> class A {
public:
    LowestDerivedClass& get() { return *static_cast<LowestDerivedClass*>(this); }
    void print() { cout << "A\n"; }
};
template<typename LowestDerivedClass> class B : public A<LowestDerivedClass> {
    public: void print() { cout << "B\n"; }
};
class C : public B<C> {
    public: void print() { cout << "C\n"; }
};

int main()
{
    C c;
    c.get().print();

//  B b;             // Intentionally bad syntax, 
//  b.get().print(); // to demonstrate what I'm trying to accomplish

    return 0;
}

How can I rewrite this code to compile without errors and display

C
B

Using c.get().print() and b.get().print() ?

Motivation: Suppose I have three classes,

class GuiElement { /* ... */ };
class Window : public GuiElement { /* ... */ };
class AlertBox : public Window { /* ... */ };

Each class takes 6 or so parameters in their constructor, many of which are optional and have reasonable default values. To avoid the tedium of optional parameters, the best solution is to use the Named Parameter Idiom.

A fundamental problem with this idiom is that the functions of the parameter class have to return the object they're called on, yet some parameters are given to GuiElement, some to Window, and some to AlertBox. You need a way to write this:

AlertBox box = AlertBoxOptions()
    .GuiElementParameter(1)
    .WindowParameter(2)
    .AlertBoxParameter(3)
    .create();

Yet this would probably fail because, for example, GuiElementParameter(int) probably returns GuiElementOptions&, which doesn't have a WindowParameter(int) function.

This has been asked before, and the solution seems to be some flavor of the Curiously Recurring Template Pattern. The particular flavor I use is here.

It's a lot of code to write every time I create a new Gui Element though. I've been looking for ways to simplify it. A primary cause of complexity is the fact that I'm using CRTP to solve the Named-Parameter-Idiom problem, but I have three layers not two (GuiElement, Window, and AlertBox) and my current workaround quadruples the number of classes I have. (!) For example, Window, WindowOptions, WindowBuilderT, and WindowBuilder.

That brings me to my question, wherein I'm essentially looking for a more elegant way to use CRTP on long chains of inheritance, such as GuiElement, Window, and Alertbox.

share|improve this question
    
Do you want c.get().print() to output "C\nB\n" or do you want the lines you commented out to compile and provide the "B\n" half? –  Dennis Zickefoose May 12 '10 at 17:15
    
The latter. Edited my question to hopefully be more clear. –  Kyle May 12 '10 at 17:24
    
You should state what you want this for. As it is the only answer possible is: no, you cannot. –  David Rodríguez - dribeas May 12 '10 at 17:26
    
Added a motivation section. –  Kyle May 12 '10 at 18:36
1  
My understanding of Named Parameter Idiom is different, all those methods of yours would be returning AlertBox&, if they happen to use other objects/ctors under the hood then it wouldn't matter –  slf May 14 '10 at 15:52

3 Answers 3

I'm not entirely clear on what you're hoping to accomplish, but this is a close approximation of what you seem to be asking for.

template<typename LowestDerivedClass> class A {
public:
    LowestDerivedClass& get() { return *static_cast<LowestDerivedClass*>(this); }
    void print() { cout << "A"; }
};
template<typename LowestDerivedClass> class Bbase 
  : public A<LowestDerivedClass> {
public: void print() { cout << "B"; this->A<LowestDerivedClass>::print(); }
};

class B : public Bbase<B> {
};

class C : public Bbase<C> {
public: void print() { cout << "C"; this->Bbase<C>::print(); }
};

int main() {
  C c;
  c.print();
  cout << endl;
  B b;
  b.print();
  cout << endl;
}

I changed the output to illustrate the inheritance better. In your original code, you can't pretend B isn't a template [the best you could hope for is B<>], so something like this is probably the least kludgy way of handling it.


From your other answer, (2) is not possible. You can leave off template parameters for functions, if the function's arguments are sufficient to infer them, but with classes you have to provide something. (1) can be done, but its awkward. Leaving off all the various layers:

template<typename T> struct DefaultTag { typedef T type; };
template<typename Derived = void>
class B : public A<Derived> { /* what B should do when inherited from */ };
template<>
class B<void> : public A<DefaultTag<B<void> > > { /* what B should do otherwise */ };

You have to do something similar at each level. Like I said, awkward. You can't simply say typename Derived = DefaultTag<B> > or something similar because B doesn't exist yet.

share|improve this answer
    
"I'm not entirely clear on what you're hoping to accomplish" -- added a lengthy Motivation section to my question. –  Kyle May 12 '10 at 18:34
    
I came up with a very similar proposal, but I also had a Cbase class (same pattern as Abase and Bbase; C derived from it instead of Bbase. The only advantage, AFAIK, is that it would allow you to keep extending the pattern without changing the existing inheritance. –  Niall C. May 14 '10 at 20:10
up vote 1 down vote accepted

Here is what I've settled on, using a variation on CRTP's to solve the problem presented in my motivation example. Probably best read starting at the bottom and scrolling up..

#include "boost/smart_ptr.hpp"
using namespace boost;

// *** First, the groundwork....
//     throw this code in a deep, dark place and never look at it again
//
//     (scroll down for usage example)

#define DefineBuilder(TYPE, BASE_TYPE) \
    template<typename TargetType, typename ReturnType> \
    class TemplatedBuilder<TYPE, TargetType, ReturnType> : public TemplatedBuilder<BASE_TYPE, TargetType, ReturnType> \
    { \
    protected: \
        TemplatedBuilder() {} \
    public: \
        Returns<ReturnType>::me; \
        Builds<TargetType>::options; \

template<typename TargetType>
class Builds
{
public:
    shared_ptr<TargetType> create() {
        shared_ptr<TargetType> target(new TargetType(options));
        return target;
    }

protected:
    Builds() {}
    typename TargetType::Options options;
};

template<typename ReturnType>
class Returns
{
protected:
    Returns() {}
    ReturnType& me() { return *static_cast<ReturnType*>(this); }
};

template<typename Tag, typename TargetType, typename ReturnType> class TemplatedBuilder;
template<typename TargetType> class Builder : public TemplatedBuilder<TargetType, TargetType, Builder<TargetType> > {};

struct InheritsNothing {};
template<typename TargetType, typename ReturnType>
class TemplatedBuilder<InheritsNothing, TargetType, ReturnType> : public Builds<TargetType>, public Returns<ReturnType>
{
protected:
    TemplatedBuilder() {}
};

// *** preparation for multiple layer CRTP example *** //
//     (keep scrolling...)

class A            
{ 
public: 
    struct Options { int a1; char a2; }; 

protected:
    A(Options& o) : a1(o.a1), a2(o.a2) {}
    friend class Builds<A>;

    int a1; char a2; 
};

class B : public A 
{ 
public: 
    struct Options : public A::Options { int b1; char b2; }; 

protected:
    B(Options& o) : A(o), b1(o.b1), b2(o.b2) {}
    friend class Builds<B>;

    int b1; char b2; 
};

class C : public B 
{ 

public: 
    struct Options : public B::Options { int c1; char c2; };

private:
    C(Options& o) : B(o), c1(o.c1), c2(o.c2) {}
    friend class Builds<C>;

    int c1; char c2; 
};


// *** many layer CRTP example *** //

DefineBuilder(A, InheritsNothing)
    ReturnType& a1(int i) { options.a1 = i; return me(); }
    ReturnType& a2(char c) { options.a2 = c; return me(); }
};

DefineBuilder(B, A)
    ReturnType& b1(int i) { options.b1 = i; return me(); }
    ReturnType& b2(char c) { options.b2 = c; return me(); }
};

DefineBuilder(C, B)
    ReturnType& c1(int i) { options.c1 = i; return me(); }
    ReturnType& c2(char c) { options.c2 = c; return me(); }
};

// note that I could go on forever like this, 
// i.e. with DefineBuilder(D, C), and so on.
//
// ReturnType will always be the first parameter passed to DefineBuilder.
// ie, in 'DefineBuilder(C, B)', ReturnType will be C.

// *** and finally, using many layer CRTP builders to construct objects ***/

int main()
{
    shared_ptr<A> a = Builder<A>().a1(1).a2('x').create();
    shared_ptr<B> b = Builder<B>().a1(1).b1(2).a2('x').b2('y').create();
    shared_ptr<B> c = Builder<C>().c2('z').a1(1).b1(2).a2('x').c1(3).b2('y').create(); 
    // (note: any order works)

    return 0;
};
share|improve this answer

I think it's impossible to implement some generic mechanism. You have to specify explicitly the exact template parameter every time you inherit base class, no matter how many levels of indirection are placed between (judging by your answer: now there are 2 levels: you don't pass C directly to the base, but C wrapped in a tag struct, it looks like a snake which bites its own tail)

Probably, it would be better for your task to use type erasure, and not curiously recurring template pattern. May be, this will be useful

share|improve this answer

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.