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#include <boost/format.hpp>
#include <boost/scoped_ptr.hpp>
#include <stdexcept>
#include <unordered_map>
#include <functional>
#define DECLARE_OBJECT(classname) namespace {core::declare_object<classname> __declarartion_#classname;}

namespace core {
  class dungeon;
  class object;
  typedef  std::function<object* (dungeon *)> object_creator;
  namespace  library_type {
    enum type {
      landscape = 0, walker, foe, bonus,object = 42
    };
  };
  struct library_error : public std::logic_error 
  {
    explicit library_error(const std::string &what) : std::logic_error(what) {};
  };
  template <enum  library_type::type type>
  class library {
  public:
    static library<type> *instance() {
      if (!m_instance)
        m_instance = new library<type>();
      return m_instance;
    }
    template<typename T>
    void add_object() {
      boost::scoped_ptr<T> obj(T::create(nullptr));
      m_library.insert(obj->name(), T::create);
    }
    const object_creator& get_object(const std::string &key) {
      auto lookup_iterator = m_library.find(key);
      if (lookup_iterator == m_library.end())
        throw library_error(boost::format("Object creator for key `%1%' not found\n") % key);
      return *lookup_iterator;
    }
  private:
    library () {};
    static library<type> *m_instance;
    std::unordered_map<std::string, object_creator> m_library;
  };
  template <enum library_type::type type>
  library<type>*  library<type>::m_instance;
  template <enum  library_type::type type, typename T>
  struct declare_object
  {
    declare_object() {
      auto instance = library<type>::instance();
      auto method = instance->add_object<T>;
      method();
    }
  };
};
int main()
{

}

Hello. This simple C++0x code gives me error in declare_object constructor

example.cpp: In constructor ‘core::declare_object<type, T>::declare_object()’:
example.cpp:52:43: error: expected primary-expression before ‘>’ token
example.cpp:52:44: error: expected primary-expression before ‘;’ token

I have really no idea where I am wrong. Maybe clear view and suggestions? Sorry for long listing. EDIT: Answer was auto method = instance -> template add_object<T>;. Why you deleted your answer?

share|improve this question
    
auto method = instance->add_object<T>; is missing the parentheses. That might be it. –  chris Jun 21 '12 at 15:26
    
No. I want to get pointer to method. –  KAction Jun 21 '12 at 15:28
    
Oh, does it work if you replace auto with the full name? –  chris Jun 21 '12 at 15:29
    
It would be really nice if you pointed out which lines are those in your code. –  m0skit0 Jun 21 '12 at 15:33
1  
Do you mean &library<type>::add_object? If so you would need (instance->*method)(); –  Charles Bailey Jun 21 '12 at 15:36

2 Answers 2

up vote 2 down vote accepted

To get a pointer to member function you need to follow the syntax in the other answer.

Since the member function is furthermore a template, you need to indicate this because it’s a dependent name:

auto method = &library_type<type>::template add_object<T>;

Otherwise C++ will parse the pointy braces in add_object<T> as less-than and greater-than operators.

share|improve this answer
  struct declare_object
  {
    declare_object() {
      auto instance = library<type>::instance();
      auto method = &library<type>::template add_object<T>;
      (instance->*method)();
    }
  };
share|improve this answer
    
+1, Yes, the extra parentheses... –  jxh Jun 21 '12 at 16:22
1  
Heh. Took bloody ages to work out exactly which bits of the macro in the FAQ were required. Which is kind of the point of their macro suggestion I guess. Suggest you read the FAQ and do that if your code is actually more complex than what's pasted :) –  moonshadow Jun 21 '12 at 16:28

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