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Function overloading by return type?

If I have two methods:

myClass mc = new myClass();

double d = mc.GetPoint();
int i = mc.GetPoint();

Why cannot the C# or C++ compilers differentiate these functions from their return type? I would have though the return type would be part of the signature of the method, just like any method arguments are.

Why can't the compilers handle this?

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marked as duplicate by ildjarn, Greg Hewgill, BoltClock, Jeff Mercado, Rick Sladkey Jun 1 '11 at 1:26

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How would you then expect var x = mc.GetPoint(); to work for C#, or auto x = mc.GetPoint(); for C++? –  ildjarn Jun 1 '11 at 1:23
    
Just being part of the signature does not make it (the return type) eligible for selecting a particular overload -- there are other design factors to consider. –  user166390 Jun 1 '11 at 1:24
    
I saw C# creator Anders Hejlsberg asked this question. He pointed out that it's not always as simple as result = function(x). What if the result is being passed to another function which is also overloaded, e.g. DrawPoint(mc.GetPoint());? Ultimately, this feature could never work in every situation, and would only provide questionable utility anyway. –  Carson63000 Jun 1 '11 at 3:42
    
It wouldn't make sense to base function calls on return types. What would happen if you ignored the return value? For example int x = foo(); vs MyType x = foo();. What about just foo();? –  Marlon Jun 1 '11 at 4:22

1 Answer 1

C# supports dynamic typing like when you use var. How then is the compiler supposed to know which method it should call?

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3  
While this is a valid argument (+1), var is not dynamic typing. var simply allows the C# compiler to apply some very basic type inference to determine a static type without having to be explicitly told what the type is. (This is very crucial for the operation of LINQ and anonymous types.) –  user166390 Jun 1 '11 at 1:27
    
This is true, but there are more fundamental issues (without bringing in var). C++ had this restriction well before the auto keyword meant 'please infer this type' :) –  phooji Jun 1 '11 at 1:28
    
In such cases the compiler could ask the programmer to explicitly declare the return type. –  Luis Filipe Aug 14 '12 at 12:17

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