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I have an interface called Identifiable<TId> that contains a single property Id of the given type. I want to create a generic class that takes one of these as a type parameter. It should be generic because I want to return concrete type, call other generic methods from within it and use things like typeof(T).

This works fine:

public class ClassName<T, TId> where T : Identifiable<TId>

Problem is that calling code has to pass in two types. eg. new ClassName<Person, int>()

I am wondering if in .net 3.5 there is some way to write this so that TId could be inferred by T? Allowing the caller to just do new ClassName<Person>()?

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Perhaps you could show a slightly more verbose example so it could be apparent what you are trying to do and why. –  deepee1 Nov 30 '11 at 21:30

4 Answers 4

up vote 2 down vote accepted

From the nature of your question, I'm guessing that your ClassName doesn't rely on any methods in Identifiable that require TId (otherwise you would need the type.) If that's the case, one common solution in this case is to create a non-generic base interface, with all of the methods that don't require the TId type. Then you have:

interface Identifiable<TId> : Identifiable //Not a standard interface name, btw

and your constraint becomes:

public class ClassName<T> where T : Identifiable

Assuming that you actually do need the TId type, but are just looking to simplify the construction syntax, one option, if your constructor is taking an instance of the Identifiable (such as Person in your example) is to change the constructor to a factory method:

public static ClassName<T, TId> FromIdentifiable<T,TId>(T identifiable) where T: Identifiable<TId>

The above should allow the compiler to infer the types and give you a shorter syntax, based on the type of the parameter.

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No. You need to supply a type parameter for Identifiable<>; how could you do that without declaring the parameter in the class declaration:

public class ClassName<T> where T : Identifiable<?WhatDoWePutHere?> 
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AFAIK, it not possible with the where clause. You might want to use code contracts (e.g. in .Net 4) and add

Contract.Requires(T is Identifiable<TId>);

to your code. I don't know if there are any way to enforce this in .Net 3.5.

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If most uses of your class will be of the form ClassName<Person, int> where the T type (Person) is what varies most of the time but the TId type is almost always int, you could provide a partially resolved class that supplies the TId type but keeps the T type unbound. The main downside to this is you will have multiple classes that have to have different names.

public class BaseClassName<T, TId> where T: Identifiable<TId> 
{ }

public class ClassName<T> : ClassName<T, int> 
{ }

var x = new ClassName<Person>();

For the less frequent case when you don't want int as the TId, then the arity 2 class is still available:

var y = new BaseClassName<Person, int>()
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