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Function overloading can happen between two member functions which have the same number of parameters, if one of them is declared as const.

But what if one function has a const argument, another has non-const argument of same type? Will it work for references and pointers? If C++ provides it, why does it provide? Please share the reason with me if you know.

Below is the example that helps you in understanding the above scenario.

void fun(const int i)
{
    cout << "fun(const int) called ";
}
void fun(int i)
{
    cout << "fun(int ) called " ;
}
int main()
{
    const int i = 10;
    fun(i);
    return 0;
}

Output: Compiler Error: redefinition of 'void fun(int)'

void fun(char *a)
{
  cout<<"non-const fun() called";
}

void fun(const char *a)
{
  cout<<"const fun() called";
}

int main()
{
  const char *ptr = "GeeksforGeeks";
  fun(ptr);
  return 0;
}

Output: const fun() called

Why is the second one allowed in C++?

share|improve this question
2  
Try with void fun(char * const a) –  PiotrNycz Oct 2 '12 at 18:42
    
Is something still missing from my answer? If yes, please tell me, so I can improve it. :) If not, may I suggest to accept it? –  Xeo Jun 18 '14 at 14:22

1 Answer 1

The first one's parameters are top-level const. This means that the function can't change the parameter's value, however, the caller doesn't care: The callee gets a copy of the argument, so if a parameter has top-level const, it's an implementation detail. Note that the following works:

void f(int); // forward declare

void g(){ f(42); }

void f(int const i){ /*...*/ } // define above declared function

For the second set of overloads, the const isn't top-level anymore. It describes whether or not the callee can change what the pointer points at. As a caller, you do care about that. It's not just an implementation detail anymore.

share|improve this answer
1  
It is worth to note that the pair to 3rd function is void fun(char * const a) –  PiotrNycz Oct 2 '12 at 18:41

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