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is it possible in C++ to create an alias of template class (without specifying parameters)?

typedef std::map myOwnMap;

doesn't work.

And if not, is there any good reason?

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1  
I think the best you can do is using std::map; to import map into the local namespace. –  Philip Potter Aug 28 '10 at 14:20

3 Answers 3

up vote 15 down vote accepted

In C++98 and C++03 typedef may only be used on a complete type:

typedef std::map<int,int> IntToIntMap;

With C++0x there is a new shiny syntax to replace typedef:

using IntToIntMap = std::map<int,int>;

which also supports template aliasing:

template <
  typename Key,
  typename Value,
  typename Comparator = std::less<Key>,
  typename Allocator = std::allocator< std::pair<Key,Value> >
>
using myOwnMap = std::map<Key,Value,Comparator,Allocator>;

Here you go :)

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Template typedefs are not supported in the current C++ standard. There are workarounds, however:

template<typename T>
struct MyOwnMap {
  typedef std::map<std::string, T> Type;
};

MyOwnMap<int>::Type map;
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Excellent metaprograming-based answer. +1 –  paercebal Aug 28 '10 at 14:25
    
Except the resulting name will most likely not be much shorter... –  UncleBens Aug 28 '10 at 15:21
    
@Uncle: He didn't say it was for length purposes, and his example takes the same number of keystrokes. –  Dennis Zickefoose Aug 28 '10 at 15:35

This feature will be introduced in C++0x, called template alias. It will be looking like this:

template<typename Key, typename Value>
using MyMap = std::map<Key, Value>
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