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I was wondering if it is possible to have some kind of parameterized typedef.

To illustrate, in my code I use this typedef:

typedef std::queue<std::vector<unsigned char>, std::deque<std::vector<unsigned char> > > UnsignedCharQueue;

As you can see this is a rather unwieldy construct so the typedef makes sense. However, if I want to have queues with other datatypes I need to define them beforehand explizitly.

So I was thinking if it were possible to use a construct like this:

typedef std::queue<std::vector<T>, std::deque<std::vector<T> > > Queue<T>;

private:
    Queue<unsigned char> mMyQueue;

Similar like generics in Java.

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1  
possible duplicate of C++ template typedef –  user529758 Apr 30 '13 at 18:40

2 Answers 2

up vote 8 down vote accepted

In C++11, you can use template aliases, such as in:

template<typename T>
using my_alias = some_class_template<T>;

// ...
my_alias<T> obj; // Same as "some_class_template<T> obj;"

So in your case it would be:

template<typename T>
using Queue = std::queue<std::vector<T>, std::deque<std::vector<T> > >;

Also notice, that in C++11 you do not need to leave a space between closed angle brackets, so the above can be rewritten as follows:

template<typename T>
using Queue = std::queue<std::vector<T>, std::deque<std::vector<T>>>;
//                                                               ^^^

In C++03 you could define a Queue metafunction this way:

template<typename T>
struct Queue
{
    typedef std::queue<std::vector<T>, std::deque<std::vector<T> > > type;
};

Which you would then use this way:

Queue<int>::type obj;

If you are using it in a template with parameter T (as in the following), do not forget the typename disambiguator:

template<typename T>
struct X
{
    typename Queue<T>::type obj;
//  ^^^^^^^^
}
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Damn, you're lightning fast. I was going to post this. –  user529758 Apr 30 '13 at 18:40
    
@H2CO3: I was lucky enough to get the new question notification sooner ;) –  Andy Prowl Apr 30 '13 at 18:40
    
@AndyProwl: notification? –  Vaughn Cato Apr 30 '13 at 18:41
    
@VaughnCato: In the question page... "1 question with new activity" –  Andy Prowl Apr 30 '13 at 18:42
1  
It may be good to show a metafunction approach for those without C++11 using. –  ildjarn Apr 30 '13 at 18:43

Yes, it works like this:

template <typename T> using Queue = std::queue<std::vector<T>, std::deque<std::vector<T> > >;
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Is it possible that g++ c<ygwin 3.4.4 doesn't understand this? I get expected unqualified-id before "using" on this line. Looks like this is not supported yet. :( –  Devolus Apr 30 '13 at 21:14
    
@Devolus: With g++, make sure to specify -std=c++11 as one of the command-line parameters. –  Vaughn Cato Apr 30 '13 at 22:18
    
I tried this switch, but it doesn't recognize it. –  Devolus May 1 '13 at 6:26

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