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I have a Func<T, string> that I want converted to Func<dynamic, string>. Is it possible?

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If you have a Func<T, string> then that func expects a value of type T. You can certainly wrap a Func<dynamic, string> around it, but it will fail at runtime if the dynamic argument is not an instance of T. And without Func<T, string> being an expression tree, there's no way to decompose it and re-assemble it with a dynamic argument instead. –  Kirk Woll Jun 19 '12 at 14:22
    
Good answers and comments from everyone. The answer is simple as you see below and I was just to tired to see it. –  Tomas Jansson Jun 19 '12 at 14:27
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2 Answers

up vote 6 down vote accepted

Here you go. Just need to decide what you want to do when your dynamic value isn't of type T:

public Func<dynamic, string> ConvertToDynamicFunc<T>(Func<T, string> typedFunc)
{
    Func<dynamic, string> dynamicFunc = (input) =>
    {
        if (input is T)
            return typedFunc((T)input);

        return null; //or throw?
    };

    return dynamicFunc;
}

Func<int, string> typedFunc = (input) => input.ToString();
Func<dynamic, string> dynamicFunc = ConvertToDynamicFunc(typedFunc);
System.Console.WriteLine(dynamicFunc(10));//outputs "10";
System.Console.WriteLine(dynamicFunc(10.5));//outputs null since a double isn't an int (type T) or throw if you prefer;
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Sure:

Func<T, string> input = ...
Func<dynamic, string> output = x => input(x);

Of course, if you execute the delegate with an incompatible type, you'll get a RuntimeBinderException.

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Sure, but will fail at runtime if the input into output is not T. (even if the dynamic argument duck-typed the same members) Though admittedly this is the best you can do. –  Kirk Woll Jun 19 '12 at 14:23
    
@KirkWoll: Sure, but if you're willing to use dynamic in the first place, you've obviously evaluated the risk and gone ahead anyway. –  Ani Jun 19 '12 at 14:28
    
What I mean is if you write a dynamic-based implementation first, such as Func<dynamic, string> foo = x => x.SomeMethod(); and then compare that with what you get when using your technique, there is a significant difference in effect where your technique is dramatically less powerful than the original. Just thought that was worth mentioning. –  Kirk Woll Jun 19 '12 at 14:33
    
@KirkWoll: Fair enough, good point. –  Ani Jun 20 '12 at 14:21
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