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Why does C# allow the following method overload:

void F(int a) { Console.WriteLine(1); }
void F(int? a) { Console.WriteLine(2); }

If I run that code:

A a = new A();
a.F(1); 

it prints 1. How does the compiler know which one to invoke. Isn't it ambiguous?

I thought the idea behind nullable types is that you might pass the value of the right type in or you might pass in null. So I should be able to call the first F with (1) and second F with (1) or (null).

I have a runnable example here.

Update: After reading the answer, my confusion stemmed from that fact that I thought that nullable params were synonymous with optional params.

Indeed, replacing the second method with void F(int a = 0); leads to a compilation error.

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    It's definitely not ambiguous. Nullable<int> and int are two different types. – P.Brian.Mackey May 4 '18 at 20:51
  • No it's not ambigous, int != int? – random May 4 '18 at 20:52
  • @HimBromBeere Try again? Not sure what went wrong before. – pushkin May 4 '18 at 21:07
  • @P.Brian.Mackey Added an explanation. I guess when you put it that way it makes sense. They are certainly different types. But you don't have to pass in a value of type Nullable, right? I can pass in 1 and it will turn it into a Nullable<int>? – pushkin May 4 '18 at 21:08
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    1 literal is of type int. Since there is overload which takes exactly this type - it's preferred over another overload, to which type your argument (of type int) is implicitly convertible. That's quite common, the same happens if for example you have overloads with int and object. – Evk May 4 '18 at 21:15
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int? is actually a Nullable<int> struct, so that differentiates the two.

The following call should print 2

int? a = 0;
F(a);

Regarding the following call...

A a = new A();
a.F(1);

The 1 literal is an int, not an int?, so it goes to the void F(int a) method. If you were to pass null to the method, it cannot be an int, so it goes to the void F(int? a) method, since it is a datatype that could be null.

Both methods are capable of accepting the 1 value, but the compiler will choose the most specific overload, which in this case, is the one accepting exactly the same type, int.

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