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I need something like this as class member:

std::map<std::string, std::map<std::string, template<class> T>> m_map;

error message: template is not allowed

Can someone help me to solve this issue?

Thx

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1  
Could you describe what you want that to mean? It doesn't make sense as it is. – Mike Seymour Mar 4 '14 at 10:02
    
Did you just mean to give T as the second inner template argument? – Joseph Mansfield Mar 4 '14 at 10:03
    
Yep, what is this template<class> there :) – Kiril Kirov Mar 4 '14 at 10:04

You can remove the template<class> from the declaration of the map.

template<class T>
class A
{
   std::map<std::string, std::map<std::string, T>> m_map;
};
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std::map<> expects (concrete) type arguments, but template<class> T is not a type, it follows that std::map<std::string, template<class> T>> is not a type.

"Something like this" is not a good enough specification, unfortunately.

If you really mean "map string to (map of string to T)", then the following would be a proper, reusable solution:

// Declare a template type "map of string to (map of string to T)"
template <typename T>
using foobar = std::map<std::string, std::map<std::string, T>>;

....

foobar<int> frob;

See http://ideone.com/YZ6FRa .

As a member one time shot, this is possible, too:

template <typename T>
class Foobar {
    std::map<std::string, std::map<std::string, T>> m_map;
};
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If you intend to have std::map as a class template parameter, std::map actually takes four template arguments, two of which are defaulted.

#include <map>

template <template <typename, typename, typename, typename> class T>
void func()
{
}

int main()
{
    func<std::map>();
}

Then you can typedef it:

typedef T<std::string, int, std::less<std::string>, std::allocator<std::pair<const std::string, int>>> my_map;

(Optionally std::string and int are template parameters you pass along to func.)

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