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Why does the following compile?

public IList<T> Deserialize<T>(string xml)
    if (typeof(T) == typeof(bool))
        return (IList<T>)DeserializeBools(xml);

    return null;

private static IList<bool> DeserializeBool(string xml) { ... do stuff ... }

But this doesn't

public MyClass<T> GetFromDb<T>(string id)
    if (typeof(T) == typeof(bool))
        return (MyClass<T>)GetBoolValue(id);  <-- compiler error here

    return null;

private static MyClass<bool> GetBoolValue(string id) { ... do stuff ... }
share|improve this question
What is the compile error ... – Frederik Gheysels Oct 29 '10 at 10:47
What does the error say? – Andrew Cooper Oct 29 '10 at 10:49
Cannot cast expression of type 'MyClass<bool>' to type 'MyClass<T>' – Magpie Oct 29 '10 at 10:49

3 Answers 3

up vote 19 down vote accepted

The reason interfaces work is that any object might implement IList<T> (unless it's known to be an instance of a sealed type which doesn't implement it, I guess) - so there's always a possible reference type conversion to the interface.

In the latter case, the compiler isn't willing to do that because it doesn't really know that T is bool, despite the previous if statement, so it doesn't know what conversion to try between MyClass<T> and MyClass<bool>. The valid conversions to generic types are pretty limited, unfortunately.

You can fix it fairly easily:

return (MyClass<T>)(object) GetBoolValue(id);

It's ugly, but it should work... and at least in this case it won't be causing any boxing.

share|improve this answer
It does, thank you – Magpie Oct 29 '10 at 10:56

C# 4.0 allows declaration of covariance and contravariance on parameterized interface and delegate types.

share|improve this answer
This isn't trying to use generic variance, and anyway generic variance doesn't apply to value type type arguments. – Jon Skeet Oct 29 '10 at 10:52

What happens if you replace

return (MyClass<T>)


return (MyClass<bool>)
share|improve this answer
Then it will fail to convert from MyClass<bool> to the MyClass<T> required by the return type. – Jon Skeet Oct 29 '10 at 10:52

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