0

if defining the following function template

template<typename T>
int compare(const T& lhs, const T& rhs)
{
    // body 
}

then

const char* p1 = "abc";
const char* p2 = "efg";
compare(p1, p2);

why does the compiler deduce T as const char*(so the type of lhs and rhs is const char* const & ) not char*(so the type of lhs and rhs is const char* &)?

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  • 2
    T is deduced to be const char*& , the two consts were collapsed together by the compiler. You should declare your function to take const T* if you want the compiler to not deduce a reference to a pointer. – Tanveer Badar Jul 13 at 13:14
  • 2
    Leading const is misleading. And argument deduction does not proceed like macro substitution. – StoryTeller - Unslander Monica Jul 13 at 13:15
  • After reading a part of Effective Modern C++, I know why now. – Lucas Jul 14 at 0:40
1

When you have const T& lhs the const applies to the type of T. Since T is a non-constant pointer to a constant character, a const char *, applying const to that to gives const char * const, or a constant pointer to a constant character.

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