Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I thought it would be a simple exercise to write a generic visitor base class template. The goal is to be able to write

typedef visitor<some_base, some_derived1, some_derived2> my_visitor;

...and then have my_visitor be a type that is functionally equivalent to

struct my_visitor {
    virtual void visit(some_base&) {}
    virtual void visit(some_derived1&) {}
    virtual void visit(some_derived2&) {}
};

which i can inherit with actually useful derived visitor classes for that type hierarchy, which override the different visit() versions as needed. I want it to work for any number of types having any inheritance relations, and i don't want to use any hacks that reimplement virtual functions using type_info comparisons. This is what I came up with:

#include <cstdlib>
#include <iostream>
#include <vector>


/** This is the generic part that would go in a visitor.hpp header. */
template <typename T> struct visitor_base {
    virtual void visit(T&) {};
};

template <typename... T> struct visitor : visitor_base<T>... {};


/** This is the part that is specific to a certain type hierarchy. */
struct base;
struct derived1;
struct derived2;

typedef visitor<base, derived1, derived2> my_visitor;


/** This is the type hierarchy. */
struct base {
    virtual void accept(my_visitor& v) { v.visit(*this); }
};

struct derived1 : base {
    derived1() : i(42) {}
    virtual void accept(my_visitor& v) { v.visit(*this); }
    int i;
};

struct derived2 : base {
    derived2() : f(2.79) {}
    virtual void accept(my_visitor& v) { v.visit(*this); }
    float f;
};


/** These are the algorithms. */
struct print_visitor : my_visitor {
    void visit(base&) { std::cout<<"that was a base."<<std::endl; }
    void visit(derived1& d) { std::cout<<"that was "<<d.i<<std::endl; }
    void visit(derived2& d) { std::cout<<"that was "<<d.f<<std::endl; }
};

struct randomise_visitor : my_visitor {
    void visit(derived1& d) { d.i = std::rand(); }
    void visit(derived2& d) { d.f = std::rand() / float(RAND_MAX); }
};


int main() {
    std::vector<base*> objects { new base, new derived1, new derived2,
                                 new derived2, new base };

    print_visitor p;
    randomise_visitor r;

    for (auto& o : objects) o->accept(p);
    for (auto& o : objects) o->accept(r);
    for (auto& o : objects) o->accept(p);
}

The problem is that this does not compile. GCC says

silly_visitor.cpp: In member function ‘virtual void base::accept(my_visitor&)’:
silly_visitor.cpp:24:42: error: request for member ‘visit’ is ambiguous
silly_visitor.cpp:8:16: error: candidates are: void visitor_base<T>::visit(T&) [with T = derived2]
silly_visitor.cpp:8:16: error:                 void visitor_base<T>::visit(T&) [with T = derived1]
silly_visitor.cpp:8:16: error:                 void visitor_base<T>::visit(T&) [with T = base]

Basically, the problem is that since the different visit() member functions are declared in different classes, they are not seen as candidates for overload resolution but just as ambiguous member access. The normal trick for forcing the compiler to consider inherited functions for overload resolution is to redeclare them in the derived class with 'using' statements, but that is not feasible in this case since it would ruin the whole generic aspect of it.

So, apparently this was not as easy as I thought. Any ideas?

share|improve this question
    
possible duplicate of using declaration in variadic template – Xeo Feb 9 '12 at 3:09
up vote 4 down vote accepted

The compiler doesn't know which base-class' visit function to call. See this question of mine. As such, as you correctly said, you need to make the functions available in the visitor class with using declarations. Sadly, you can't just use using visitor_base<T>::visit...;, as that is not a valid pattern. You have to recursively inherit from one base after another and everytime bring the base-class visits into the scope of the derived class:

template <typename T>
struct visitor_base {
    virtual void visit(T&) {};
};

template <typename Head, typename... Tail>
struct recursive_visitor_base
  : visitor_base<Head>
  , recursive_visitor_base<Tail...>
{
  using visitor_base<Head>::visit;
  using recursive_visitor_base<Tail...>::visit;
};

template<class T>
struct recursive_visitor_base<T>
  : visitor_base<T>
{
  using visitor_base<T>::visit;
};

template <typename... T>
struct visitor
  : recursive_visitor_base<T...>
{
  using recursive_visitor_base<T...>::visit;
};

Live example on Ideone (I had to tweak the partial spec a bit, since GCC 4.5.1 is a bit buggy in that part. Clang compiles the code shown in this answer just fine). Output:

that was a base.
that was 42
that was 2.79
that was 2.79
that was a base.
=================
that was a base.
that was 1804289383
that was 8.46931e+08
that was 1.68169e+09
that was a base.
share|improve this answer
    
Nice! I have GCC 4.5.3 which has that bug about using expanded parameter packs as template parameters, so I decided not to use the recursive method and then when I hit this overloading problem I had forgotten about it. – user450018 Jan 26 '12 at 20:11

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.