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In testing some code this evening, I naively tried a double-cast to convert a List to IQueryable (Note: I know about .AsQueryable(), please read the whole question):

var data = (IQueryable<MyType>)(List<MyType>)Application["MyData"];

I didn't think about whether or not that was valid, but I noticed that there were no errors in Visual Studio, and I was able to compile the code without errors, so I assumed it would work. But after I published the web application, and went to view the page, I got the following error (as expected):

Unable to cast object of type 'System.Collections.Generic.List`1[MyType]' to type 'System.Linq.IQueryable`1[MyType]'.

Even though the type of Application["MyData"] isn't known at compile-time, isn't it known that I'm trying to cast from List<MyType> to IQueryable<MyType>, which is not valid? Why don't I get a compiler error in this case?

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4  
Remember, the meaning of cast is "hey compiler, I know that this conversion is valid even if you don't, so believe me". The compiler will believe you unless it can prove that you can't possibly be right, and even in some of those cases it will still allow it. Don't put a typecast in a program unless you know that it will work. –  Eric Lippert Mar 15 '13 at 4:14
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2 Answers

up vote 9 down vote accepted

The List<T> class is not sealed, so the the compiler cannot be sure that the cast from List<T> to IQueryable<T> is invalid.

Suppose you define a subclass like this

class QueryableList<T> : List<T>, IQueryable<T>
{
    ...
}

Then the cast would be valid.

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1  
+1 D'oh, I should have thought of that! My brain must be getting tired :) I whipped up a little test where I tried double-casting between a custom interface and a custom sealed class, and the compiler does complain. As always, I'm impressed at the sophistication of the .NET tooling. –  mellamokb Mar 15 '13 at 4:00
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It just because IQueryable<T> is an interface.

var anywayListOfMyType=
    (IWhatsoever)(IFormatProvider)(IIntellisenseBuilder)new List<MyType>();

would compiles.

p.s.

IWhatsoever doesn't really exist.

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