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I know you can overload templates based on their template parameters:

template <class T> void test() {
    std::cout << "template<T>" << std::endl;
}
void test() {
    std::cout << "not a template" << std::endl;
}

then inside some function:

test<int>();
test();

will correctly resolve which of the 2 different versions of test() you want. However, if I now do this inside classes with inheritance:

class A {
public:
    void test() {
       std::cout << "A::Test: not a template" << std::endl;
    }
};
class B : public A {
public:
    template <class T>
    void test() {
       std::cout << "B::Test: template<T>" << std::endl;
    }
};

then inside a function:

B b;
b.test<int>();
b.test();

b.test<int>(); works but b.test(); does not:

error: no matching function for call to ‘B::test()’
note: candidate is:
note: template<class T> void B::test()

Why is this/ is there any way to make it correctly resolve the 2 versions based on the template arguments?

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This looks like a case of the "Hiding Rule" but with template implied. Take a look at this link, it might be of help: parashift.com/c++-faq-lite/hiding-rule.html –  Mr_Hic-up Aug 27 '12 at 18:00

2 Answers 2

up vote 2 down vote accepted

As always, a name defined in a derived class hides uses of the same name in a base class. To hoist the name in the base class into the derived class, add

using A::test;

to the derived class.

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What you are observing is called name hiding. The name test in the derived class hides test in the base class. Without a using declaration that name will never be found when called through the exact type of that object (casting to base or explicitly qualifying the call also helps).

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