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Why must I provide explicitly generic parameter types While the compiler should infer the type?

public static T2 Cast<T1,T2>(this T1 arg) where T2 : class where T1 : class
{
    return arg as T2;
}

Sample Usage:

 objOfTypeT2 = objOfTypeT1.Cast<TypeT1,TypeT2>();


Compared to my desired usage with a more intelligent compiler:

 objOfTypeT2 = objOfTypeT1.Cast<TypeT2>();

or maybe I should be more intelligent :-)

Beware that I provide the return type. I want to not provide the object that I called the function on it, the method is an Extension Method.

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What's wrong with casting the normal way(s)? –  SnOrfus Dec 18 '10 at 10:31
    
Why not just making a public static T Cast<T>(this object value) { return value as T;}? –  Rauhotz Dec 18 '10 at 11:48
    
@Rauhotz I had what you mentioned, Just curiosity and looking for another overload enable me use it with value types, cause I can't make an overload with generic constraints. –  Jani Dec 18 '10 at 11:57

2 Answers 2

up vote 6 down vote accepted

The specification limits type parameter inference for generic methods to all or nothing. You can't have partial inference.

The rationale is probably simplifying type inference rules (that are already pretty complex, as they have to take into account overloading rules too).

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I guessed that, so I reorder the parameters so that the inferred type would be the last parameter but no chance. –  Jani Dec 18 '10 at 10:29
    
@Jani: Order doesn't really matter here. Either the compiler can infer all the type arguments for you, in which case you can omit them all, or it can't infer at least one. In the latter case, you'll always have to specify all of them explicitly. –  Mehrdad Afshari Dec 18 '10 at 10:32
    
Now got it dude, I did it before your answer, thanks. –  Jani Dec 18 '10 at 10:35

Inference doesn't consider the return type; you can, however, try splitting the generics; for example, you could write code to allow:

.Cast().To<Type2>()

by having (untested; indicative only)

public static CastHelper<T> Cast<T>(this T obj) {
    return new CastHelper<T>(obj);
}
public struct CastHelper<TFrom> {
    private readonly TFrom obj;
    public CastHelper(TFrom obj) { this.obj = obj;}
    public TTo To<TTo>() {
       // your code here
    }
}
share|improve this answer
    
Beware that I provide the return type. I want to not provide the object that I called the function on it, the method is an Extension Method. –  Jani Dec 18 '10 at 10:41
    
@Jani and look at the example - I don't include the from-type; just the destination-type. –  Marc Gravell Dec 18 '10 at 11:27
    
Got it pal, thank you for your feedback –  Jani Dec 18 '10 at 11:42

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