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Can you use the covariance propriety for the generic types (through the templates) in C++?

I already found this question that answers my question, but I ask it again since it has already been two years! In addiction, though it is explained that there can be no covariance in C++ in templates, there is no explanation about that!

Can you help me about news/explanation of this topic?

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marked as duplicate by Mooing Duck Sep 3 at 19:44

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
You should add a code sample for what you call "template covariance" : the answer of the linked question still apply –  quantdev Sep 3 at 19:09
3  
If some purported construction isn't part of the language, how much "explanation" would satisfy you regarding its absence from the language? Isn't "it doesn't exist" enough? –  Kerrek SB Sep 3 at 19:11
1  
"In addiction..." typo, or just can't get enough coding? Hmmm... –  WhozCraig Sep 3 at 19:19
    
Actually, what you asks about in the linked question is named "contravariance", not "covariance" –  Piotr S. Sep 3 at 19:25

1 Answer 1

Given the reference to an earlier question as a clarification device, it seems you are asking why T<Derived> is not usually derived from T<Base>.

Consider T = std::shared_ptr.

You don't want to be able to do this:

void foo( shared_ptr<Base>& p ) { p.reset( new Derived2 ); }

auto main() -> int
{
    shared_ptr<Derived1> p;
    foo( p );   // Oops, p now points to unrelated Derived2
}
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