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I wonder if it is possible to define a generic C++ container that stores items as follows:

template <typename T>
class Item{
typename T value;
}

I am aware that the declaration needs the definition of the item type such as:

std::vector<Item <int> > items;

Is there any pattern design or wrapper that may solve this issue?

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I'm not sure what you're after. For one, your Item type doesn't store anything. And then, you show a way to do something (std::vector<Item<int> >) and then you ask whether this can be done. Why, yes, you can certainly create such a vector. Or what is it that you want to know? –  sbi Sep 25 '10 at 20:47
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2 Answers

up vote 1 down vote accepted

With 9 types, your best shot is to use boost::variant, in comparison to boost::any you gain:

  • type safety (compile time checks)
  • speed (similar to a union, no heap allocation, no typeid invocation)

Just use this:

typedef boost::variant<Type0, Type1, Type2, Type3, Type4,
                       Type5, Type6, Type7, Type8>        Item;

typedef std::vector<Item> ItemsVector;

In order to invoke an operation on boost::variant, the best way is to use create a static visitor, read about it in the documentation.

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If you need a container that can hold elements of any type in it then take a look at boost::any.

In your current question there's no big difference between std::vector<Item <int> > and std::vector<int>.

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The class Item is storing an object of type T. For example, Item<int> should store an integer in the variable "value". –  Ali Sep 25 '10 at 18:22
    
What are you trying to achieve? Why you can't just use vector<int>? –  Kirill V. Lyadvinsky Sep 25 '10 at 18:24
1  
If the types you want to store in such a container is known at compile time, you can use boost::variant instead of boost::any, which adds some type-safety. –  smerlin Sep 25 '10 at 18:24
    
What I want to achieve is to define a vector<Item> for 9 kinds of Item<T>. Anyway, I think that boost::any can solve my problem. –  Ali Sep 25 '10 at 18:29
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