5

I have following expression

Expression<Func<T, object>> expr1;

Is there any way to cast it to

Expression<Func<IUpdateConfiguration<T>, object>>?

[Update]

Or create a new Expression<Func<IUpdateConfiguration<T>, object>> from the existing Expression<Func<T, object>>?

1 Answer 1

3

No. The first is a function that takes a T and returns an object. The second one accepts a IUpdateConfiguration<T> and returns an object. Unless the T is also a IUpdateConfiguration<T>, you cannot cast this. If you know of a way to convert a IUpdateConfiguration<T> into a T, you can make a new expression, but that's different than casting.

For example, given this:

Expression<Func<IUpdateConfiguration<T>, T> expr2;

You can make your desired function like this:

Expression<Func<IUpdateConfiguration<T>, object>> = 
    (IUpdateConfiguration<T> t) => expr1(expr2(t));

But this will have a completely different expression body than the original one. That may or may not be a problem, depending what you're trying to accomplish.

7
  • How exactly is expr1 a function?
    – Unihedron
    Jul 6, 2014 at 6:41
  • 1
    @Unihedron: By its declaration. More specifically, it's expression of that function type. Expressions are used to do reflection on abstract syntax trees and inspect the actual contents of an expression. But the input and output types are specified in the generic parameters. T and object respectively.
    – recursive
    Jul 6, 2014 at 6:43
  • Could you explain your last solution(create new expression) with an example?
    – Masoud
    Jul 6, 2014 at 6:47
  • @Masoud: I provided an example of producing a new expression, and corrected a typo I made earlier.
    – recursive
    Jul 6, 2014 at 6:56
  • Thanks, but I think your example has some problem(2nd piece of code ) what is expr?, I have an Expression<Func<T, object>> expr1; and want to create a new Expression<Func<IUpdateConfiguration<T>, object>>.
    – Masoud
    Jul 6, 2014 at 7:21

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