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I want to fully understand conversions, i.e. to be sure I know when does a function call would cause an implicit conversion, and when would it cause a compilation error. I've learnt that a conversion may be done if and only if there is a singular way to convert the variable with up to two steps from the following list (sorted by priority):

1. Exact match
2. Promotion
3. Conversion
4. User defined conversion

Where, the way I understood it (you may correct me), is that promotion is a conversion of primitives into bigger primitive types, such as short to int, float to double, etc; Conversion is any conversion between primitives which isn't promotion, such as int to char, etc; And user defined conversions are conversions of classes using conversion constructors and conversion operators. Now, I also know that inheritance means and Is-A relationship, meaning that a derived class is base class, and so sending a derived class to a function which expects a reference to a base class should work. Combining the two concepts above, we should get that the following example I wrote, should work:

class C {};
class D: public C
{
public:
D(int x){}
};
void f(C& c) {}
f(3);

Since D can be converted-to from int, and a D is a C. But this code isn't being compiled. Why is that? How can the contradiction be resolved? Can you shed some light on the matter? Thanks!

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1 Answer 1

The code doesn't compile because the conversion would create a temporary, which can't bind to a non-const reference.

If you pass the parameter by const reference (or by value, but I'm not suggesting you do that), it will work.

You also need a conversion constructor in the base class (explained below).

class C {
public:
   C(int x){}
};
class D: public C
{
public:
   D(int x):C(x){}
};

void f(const C& c) {}
f(3);

This is because implicit conversion only applies a maximum of one times. In your case, there is a direct conversion from int -> D and one from D -> C, so an int can't implicitly be converted to C.

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@Als I didn't see the base class. If he has a conversion ctor in the base class, it will. –  Luchian Grigore Jun 26 '12 at 8:36
    
You are totally right about the const thing. But are you sure about the "implicit conversion only applies a maximum of one times"? I've been taught that an implicit conversion applies up to two times. –  nodwj Jun 26 '12 at 8:47
    
@Idan yes. It can't (logically). Any restriction greater than 1 would yield ambiguities. –  Luchian Grigore Jun 26 '12 at 8:50
    
    
from the link you've attached, it seems like only 1 user-defined conversion is allowed, but more native conversions are allowed. So in this case it should work (with my example with an added 'const'), and it does. –  nodwj Jun 26 '12 at 9:17

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