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When having a function Foo(object) and an overload Foo(Exception), calls to Foo(null) are evaluated by Foo(Exception). Why is this?

UPDATE: (so basically most but not all nulls gets resolved to Foo(Exception))

Exception e = new Exception();

e = null;
Foo bar = new Foo(e); //Evaulated by Foo(Exception)
Foo bar = new Foo((object)e); //Evaluated by Foo(object)

object o = null;
Foo bar = new Foo(o); //Evaluated by Foo(object)
Foo bar = new Foo(null); //Evaulated by Foo(Exception)
Foo bar = new Foo((object)null); //Evaulated by Foo(object)

Thanks everyone.

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Additional question for thought: How do Foo(A) and Foo(B) resolve (or fail to resolve) when Foo(null) is used as the invocation and both A and B directly extend object? –  user166390 May 20 '11 at 7:53

4 Answers 4

up vote 1 down vote accepted

The compiler resolves it at compile time by the type of reference of the parameter. For example:

Exception e = null;
Foo(e);

will be resolved to Foo(Exception e), in contrasts:

Exception e = null;
Foo((object)e);

will be resolved to Foo(object o). Note that the type of the instance is not taken into account.

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What about the case of Foo(null)? (e.g. [possible] ambiguity) –  user166390 May 20 '11 at 7:44
    
Foo((Object)null); I gues :) –  Łukasz Bownik May 20 '11 at 7:45
    
@Lukasz Bownik Is it now? ;-) –  user166390 May 20 '11 at 7:46
    
In that case, I think larsm's answer about "better conversion" is most accurate. –  tia May 20 '11 at 7:46
    
@Łukasz Bownik: How do your guess help? –  jgauffin May 20 '11 at 7:47

Suppose you have a constructor that takes an Animal and a constructor that takes an Insect. You pass it a value of compile-time type Butterfly. Which one is called?

Insect. Both are valid, but the match from Butterfly to Insect is better than the match from Butterfly to Animal. Why? Because Insect is more specific than Animal. Every Insect is an Animal but some Animals are not Insects, so Insect must be more specific.

Same thing in your case. Exception is more specific than Object, so if you give an argument that matches both, Exception is chosen.

Make sense?

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Duplicate of See How does the compiler choose which method to call when a parameter type is ambiguous?.

From the accepted answer:

It applies the "better conversion" rules (7.4.3.3 of the C# 3 spec) as part of overload resolution (section 7.4.3 in general).

Basically in this case there's a conversion from string to object, but not from object to string. Following the rules, that means the conversion from null to string is better than the one from null to object, so the overload with the string parameter is used.

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The most relevant overload is selected - the one that is most derived and still fits the type passed in.

Since Exception derives from Object, it is chosen - a null could stand for either, so the Exception one is the one chosen.

I suggest reading the different articles by Eric Lippert.

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For being so concise this explains it all. –  bricklayer137 May 20 '11 at 7:45

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