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Reference collapsing?

template<
    class T = const std::vector<int> &
> void f(const T &);

If T is already const and a reference, what will happen? Why does this code compile then?

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marked as duplicate by Pubby, ipc, Shai, sashoalm, Julius Feb 3 '13 at 9:14

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1 Answer 1

up vote 2 down vote accepted

That would be the equivalent of const (const std::vector<int>&)&, and in this case, the const would be ignored since you cannot have a const reference to const T, only reference to const T. Since references cannot be reseated, the const would be redundant anyway. Also, ignoring the const you have (T&) &, and due to reference collapsing rules in C++11, this becomes T&. So the end result is const T& or const std::vector<int>& in your case.

If you had const T*, then it would make a difference since that would be const (const std::vector<int>&)* p which would make the pointer const.

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Good answer, one quest: What are const lvalue references? –  user2030677 Feb 2 '13 at 22:58
    
In C++11, rvalue references where introduced (int&&), so C++03 references (int&) are called lvalue references now. –  Jesse Good Feb 2 '13 at 23:01
    
Okay. I just didn't get the terminology there. :) –  user2030677 Feb 2 '13 at 23:03
    
@user2030677: My wording was bad, so I changed it. –  Jesse Good Feb 2 '13 at 23:06

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