Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Here is the source code similar to the surrogate call functions that I read on the post "Hidden features in C++"

The only part that confuses me is those operator overloaded functions. What kind of operators are they? (They certainly don't seem like ordinary operator()'s, and why is it returning a function pointer even though there is no return type specified?

Thanks!

template <typename Fcn1, typename Fcn2>
class Surrogate {
public:
    Surrogate(Fcn1 *f1, Fcn2 *f2) : f1_(f1), f2_(f2) {}

    // Overloaded operators.
    // But what does this do? What kind of operators are they?
    operator Fcn1*() { return f1_; }
    operator Fcn2*() { return f2_; }

private:
    Fcn1 *f1_;
    Fcn2 *f2_;
};

void foo (int i)
{
    std::cout << "foo: " << i << std::endl;
}

void bar (double i)
{
    std::cout << "bar: " << i << std::endl;
}

int main ()
{
    Surrogate<void(int), void(double)> callable(foo, bar);

    callable(10);       // calls foo
    callable(10.1);     // calls bar

    return 0;
}
share|improve this question
    
basically an instance of the class can be used as a Fcn1* or Fcn2* without casting –  cppguy Jul 6 '12 at 1:39

3 Answers 3

The call callable(10); actually is *(callable.operator void(*)(int))(10);.

The compiler has figured out that callable is used in a function call expression. Now, for a function call expression the compiler would like a function, function pointer, or object with operator() - as you already know.

In this case, callable is none of these. But callable can be converted to one of these, namely to a function pointer. Given the call expression, in particular the int argument, overload resolution selects void(*)(int).

share|improve this answer

These are just user-defined conversion operators. User-defined conversion operators is a basic feature of C++ language, meaning that you can read about them in C++ book or in some tutorial.

Section 12.3.2 of language specification describes the syntax, but the rules that govern their usage by the compiler are scattered across the entire document and are relatively extensive. I.e. it is not something that can or should be explained in a SO post.

Find a book. Come back here if something in the book is not clear to you.

share|improve this answer

They are implicit type conversion operators to Fcn1* and Fcn2*.

In the expression "callable(10)" callable is converted by the compiler to pointer to function with int parameter, using the first one of the type conversion operators defined in Surrogate. That function is then invoked.

share|improve this answer
    
thanks you! I'll google more about implicit conversion operators –  BeyondSora Jul 6 '12 at 1:46

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.