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I would to make a template match only for T=std::vector<T2> arguments (T2 is an arbitrary type). I can use boost::enable_if in template arguments. How do I test whether a type T is a std::vector?

I could include T::iterator in my template so that non-container types would lead to substitution failure and would not be considered (SFINAE). This way though, any containers which define T::iterator would match, not only std::vector<T2>.

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3 Answers 3

up vote 3 down vote accepted

You probably don't need enable_if, a simple partial specialization should be enough:

template <typename T>
struct Type { ... };

// partial specialization for std::vector
template <typename T>
struct Type< std::vector< T > > { ... };

If you are dealing with a function template, you can simply provide an overload:

template <typename T>
void foo( const T & t ) { ... }

// overload for std::vector
template <typename T>
void foo( const std::vector< T > & vec ) { ... }
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+1 That makes a lot of sense. I guess I misunderstood the question. I thought T2 was some fixed type. –  sellibitze Feb 22 '12 at 10:25
    
Thanks, I was not sure if the overload for std::vector would be preferred. –  eudoxos Feb 22 '12 at 10:29

How about this:

template <class T>
struct is_std_vector { static const bool value=false; };

template <class T>
struct is_std_vector<std::vector<T> > { static const bool value=true;}

Use together with enable_if!

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Why do you even want to use a template for that? Can't you just write a plain function?

Anyhow, it's possible:

template<class T
  ,class=typename std::enable_if<(
    std::is_same<T,std::vector<int>>::value
  )>::type
>
void foo(T const& vec)

(this is C++11: default template arguments for function templates + type_traits + >> not being a shift operator)

Edit: I just realized that T2 in your question is probably not some fixed type but a placeholder to allow many kinds of vectors. In that case, I recommend accepting Luc's answer.

Viele Grüße nach Österreich! :-)

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-- danke, lg -- –  eudoxos Feb 22 '12 at 10:30

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