12

If I write a new function that has the signature of a C library function, I expect a compile error due to the ambiguity. But, I can't understand why there is no error in the following C++ code.

#include <iostream>
#include <cmath>
using namespace std;

double sqrt(double number)
{
    return number * 2;  
}

int main( )
{
    cout << sqrt(2.3) << endl;
    cout << ::sqrt(2.3) << endl;
    cout << std::sqrt(2.3) << endl;
    return 0;
}

If I change the return type of sqrt() to int, then a compile error occurs due to the declaration ambiguity with double sqrt() in cmath. How is it possible to override double sqrt()? (Actually, all the cmath functions can be overridden, and I don't know why.)

  • Maybe works because you declare your own function in a way that is compatible with the global declaration? Or (and much more likely) it differs enough to create a brand new overload? – Some programmer dude Oct 28 '19 at 16:38
  • 7
    What is really driving my crazy is std::sqrt(2.3) is calling your function as well. Why do you do this to me C++??? – NathanOliver Oct 28 '19 at 16:41
  • @NathanOliver It's not really C++ doing this to you. It's C. See that c letter in #include <cmath>? – n. 'pronouns' m. Oct 28 '19 at 16:51
  • 2
    @NathanOliver Well, n.m.'s answer points out that this is UB, so the compiler is allowed to do bullshit with std::sqrt()... I guess that's because std::sqrt() is nothing but a namespace wrapper for the C function sqrt() which has extern "C" linkage. – cmaster - reinstate monica Oct 28 '19 at 16:57
  • 3
    Do not try to reason or rationalize an undefined behavior . – Omarito Oct 28 '19 at 16:58
11

The program has undefined behaviour.

[reserved.names]
1 The C++ standard library reserves the following kinds of names:
1.1) — macros
1.2) — global names
1.3) — names with external linkage
2 If a program declares or defines a name in a context where it is reserved, other than as explicitly allowed by this Clause, its behavior is undefined.

[extern.names]
4 Each function signature from the C standard library declared with external linkage is reserved to the implementation for use as a function signature with both extern "C" and extern "C++" linkage, or as a name of namespace scope in the global namespace.

  • It is mostly the equivalent of ODR violation of standard functions. – Jarod42 Oct 28 '19 at 17:06
  • The above code doesn't try to declare a function in a context where it is reserved, i.e. does not try to declare it IN the std namespace. I would say in the context of this program, the declaration is just hiding the std one. However, this view does not explain @NathanOliver point about explicitly writing std::sqrt – WilliamClements Oct 28 '19 at 17:10
  • @WilliamClements this name is reserved as a global name, not only in std namespace. – n. 'pronouns' m. Oct 28 '19 at 17:13
  • @n.m. Why do you think only double sqrt() shows the UB, while int sqrt() doesn't? (int sqrt gives a compile error.) – austin Oct 28 '19 at 17:16
  • @WilliamClements Well, it does declare sqrt() within the global namespace, for which that name is reserved as the last paragraph of the cited text indicates. Ergo, UB. – cmaster - reinstate monica Oct 28 '19 at 17:17

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