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If I have the method

void foo<T>(T bar){}

I can successfully call it like this:

string s = string.Empty;
foo(s);

As I imagine the compiler/runtime can infer the type,

However If I change the method to this:

T foo<T,T2>(T2 bar){...}

Then I must call it in 'full', specifying both the input parameter type and the return type:

string s = string.Empty;
foo<int,string>(s);

Is there a way I can shorthand this so I dont need to specify the input parameter(s) type? I.E.

foo<int>(s);

Thanks

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To clarify "I imagine the compiler/runtime can infer the type": the type inference in your example is handled by the compiler. –  phoog Dec 9 '11 at 18:06

2 Answers 2

up vote 3 down vote accepted

You could always rewrite your method to:

void foo<T, U>(U bar, out T baz)
{
    baz = default(T);
}

if you really want the type inference... Now:

string s = string.Empty;
int i;

foo(s, out i);

will work just fine.

Also, see: this question for an excellent answer by Eric Lippert as to why you can't have what you want!

EDIT: I realise I didn't actually answer your question...

Is there a way I can shorthand this so I dont need to specify the input parameter(s) type?

Simply put... No.

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Unfortunately, there is no way for compiler to infer the T from the example from usage. As far as it cannot be done automatically, you need to provide it.

There are no "optional" type parameters in C# and no shorthands.

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Doesn't this kind of inference work with Expressions? If so, why not with methods? –  Connell Watkins Dec 9 '11 at 11:29
    
Could you please clarify, what you mean under "this kind of inference work with Expressions". Maybe, you can post an example? –  Alexander Yezutov Dec 9 '11 at 11:39
    
I've just been having a go and there's always a compilation error whatever way I try, but I was thinking of delegates or lambda. Doesn't the Func<TResult, T> do exactly this? –  Connell Watkins Dec 9 '11 at 11:50
    
Actually not exactly this. When you write x => return x.Property; the T is either predefined from previous method chain, or you should set it explicitly. –  Alexander Yezutov Dec 9 '11 at 11:54
    
Actually yes you're right. With a lambda, there's no access to the value of T (and if you don't need it, why would you be using it in the method?) So although we can't see the body of foo, we can safely say it won't work if you tried using that body as a lambda expression? –  Connell Watkins Dec 9 '11 at 12:15

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