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I am trying to create a C++-Printing-Function, which prints any STL-Container by the copy-algorithm and a userdefined header before.

My problem is, I have to print it by the copy-algorithm, so i would need the type of the template for the ostream_iterator ("ostream_iterator")?

How can i get the type of a container behind a template

(I tried it with typeid(cont) but it didn't work - Thanks!

 template<typename Container>
    void HeaderPrint(Container cont, std::string header = ""  )
    {
        std::cout << header << std::endl;
        copy(cont.begin(),cont.end(), ostream_iterator<typeid(cont)>(cout," "));
        std::cout << std::endl;
    }
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  • 1
    typeid(cont) won't do what you want it to at all. And have a look at the Pretty-Printer.
    – chris
    Jun 7 '13 at 20:40
  • 2
    You probably don't want to pass the Container by value.
    – zindorsky
    Jun 7 '13 at 20:47
2

Standard library containers define value_type with the container type:

copy(cont.begin(),cont.end(), ostream_iterator<typename Container::value_type>(cout," "));

If you are using your own container class, it would be wise to use this convention too:

template <typename T>
class MyContainer
{
 public:
  typedef T value_type;
 ....
};
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  • Thanks, sorry, i expressed it unclearly. I wanted to know which syntax i need for "ostream_iterator< TYPE ??? >" How do i have to declare it? Jun 7 '13 at 20:44
  • Thank you very much :) - my mistake was that i wrote cont::value_type instead of Container::value_type. Jun 7 '13 at 20:51
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juanchopanza answered about container's typedef, but there is another way.

All std containers have begin() method. To get it's type, use decltype. So, your method would be :

template<typename Container>
void HeaderPrint(Container cont, std::string header = ""  )
{
    std::cout << header << std::endl;
    copy(cont.begin(),cont.end(), ostream_iterator<decl_type(*cont.begin())>(cout," "));
    std::cout << std::endl;
}

I still find the way juanchopanza said better.

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