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I dont understand, why is the aaa operator called in the 2nd last line?

#include <iostream>

class MyClass
{
private:
    typedef void (MyClass::*aaa)() const;
    void ThisTypeDoesNotSupportComparisons() const {}
public:
    operator aaa() const { return (true) ? &MyClass::ThisTypeDoesNotSupportComparisons : 0; }
};

int main()
{
    MyClass a;
    MyClass b;

    if(a && b) {}
}
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3  
It looks like VooDoo to me... – xappymah Mar 27 '11 at 8:04
up vote 6 down vote accepted

The compiler searches for the best match for (a && b).

Because the class doesn't have an operator that turns MyClass to a boolean, it searches for the best cast.

operator aaa() const is a cast to an aaa type pointer. Pointers can be evaluated in an if sentence.

Overloading typecasts

Conversion Functions (C++)

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+1. Do you have a list of best match operators it may try in order? – acidzombie24 Mar 27 '11 at 8:17
    
There's a default hierarchy for implicit casting between primitives. (Easy to find on the web). For custom classes I think it goes like this: Check Class -> Check base classes -> Check best matching cast (shortest implicit cast route/sequence to required type) – Yochai Timmer Mar 27 '11 at 8:40
    
That's why implicit casts are dangerous... The chosen cast sequence isn't guaranteed, and a loss of information may occur – Yochai Timmer Mar 27 '11 at 8:41

Your variables are used in an expression. The type itself does not have an operator&& defined for it, but it is convertible to a type (a pointer) that can be used in the expression. So the conversion operator is called.

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So what is going on here? it converts the class to a ptr then a ptr to bool? i still need clarification why it does that or maybe a list of operator precedence (such as why go bool instead of ! instead of int instead of void* instead of void class::* instead of ....) – acidzombie24 Mar 27 '11 at 8:15
    
If the class had an operator bool that would be used. Now it doesn't, so an alternative is to use one user defined conversion and one implicit pointer-to-bool conversion. The compiler does that all the time. That this pointer is a pointer to member, is just to limit the possible implicit conversions to bool only. – Bo Persson Mar 27 '11 at 8:20

It looks like a type cast operator. Oops, never mind, misread 'why is this operator called' for 'what is this operator called'


Ok, I tested your code and examined it some more. So operator aaa is a type cast to type aaa. Type aaa is a pointer to a member function of type void func(). ThisTypeDoesNotSupportComparisons is a function of type aaa. operator aaa gets called and returns the pointer to function.

I think it is called because the if allows to use pointers to functions as well. You can test if a pointer is NULL or not, and this is the closest the compiler can find, so if calls the operator aaa and tests if the pointer returned is zero.

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