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I know Java generics and C++ templates are different, but how do I write the following generic equivalent in C++?

void myalgo (List<? extends T> myList)
{
    //logic
}

This should take any container containing T or subclass of T. How can I do a similar thing in C++?

  • 5
    You wouldn't generally bother constraining containers in C++. You'd just have template <typename T> void myalgo(T & myList). If you really have to, you can stick a static assertion into the function template body. – Kerrek SB Feb 16 '17 at 21:54
  • 2
    If your algorithm works on a range of values, the preferable way to write the template is to use iterators, not specific containers as the template type. – PaulMcKenzie Feb 16 '17 at 21:57
  • Your container will be a container of smart pointers to the base class. Your function will also take a reference to the container, rather than by value. C++ is not Java, and works fundamentally differently. – Sam Varshavchik Feb 16 '17 at 21:57
  • @KerrekSB: That parameter should be: std::vector<T> myList. – Dave Doknjas Feb 16 '17 at 22:53
  • @DaveDoknjas: really? Why not std::vector<T, A>? Or std::deque<T>? – Kerrek SB Feb 16 '17 at 23:04
-1

There's no equivalent for the constraint part, but generally the following will suffice:

#include <vector>

public:
template<typename T>
void myalgo(std::vector<T> myList)
{
    //logic
}

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