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I want to know why below downcast fails @ run time:

case 1:

Object y = 10.23;
Console.WriteLine(y.GetType()); //System.Double
int z = (int)y;// fails @ runtime
Console.ReadKey();

case 2:

Double y = 10.23;
Console.WriteLine(y.GetType());//System.Double
int z = (int)y;//success
Console.ReadKey();

In both the cases the type of y is System.Double, still why downcst fails in first case?

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(replied to comment) –  Marc Gravell Nov 28 '09 at 10:38
    
Marc is of course correct. For a longer analysis of why this sort of cast is not legal, see my article on the subject: blogs.msdn.com/ericlippert/archive/2009/03/19/… –  Eric Lippert Nov 28 '09 at 16:58

1 Answer 1

up vote 11 down vote accepted

In the first example; unboxing (what you show) is different to downcasting or conversion; it is perhaps unfortunate that C# uses the same syntax for all 3.

You must unbox value-types (such as int/double) correctly. Or use Convert.ToInt32(y) which has the logic for this embedded.

In the second example, this is a conversion (not an unbox, and not a downcast). Conversions are defined either in the language spec (like in this case) or via custom static operators.

The difference is object. The box changes everything.

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thanks, I got the point. In first case is there ant other way of unboxing rather than Convert.ToInt32(y) –  Wondering Nov 28 '09 at 10:36
2  
Yes - you can do (int)(double)y, which unboxes (correctly) to double, and then does a conversion to int. –  Marc Gravell Nov 28 '09 at 10:37
    
yes, worked.so the chain is boxing-->unboxing and that -->conversion. Thanks for ur help. –  Wondering Nov 28 '09 at 10:44
2  
The rules can be summed up thus: 1) source reference type, target reference type - upcast/downcast/interface case; 2) source reference type, target value type - unboxing; 3) source value type, target reference type - boxing; 4) source value type, target value type - conversion. Of those 4, only the last one involves actual widening or narrowing conversions. Of course, this all assumes no overloaded conversion operators, as those can do anything they want. –  Pavel Minaev Nov 28 '09 at 10:45
    
Good points.it will help in future :-).Thanks. –  Wondering Nov 28 '09 at 10:58

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