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Consider the following Person entity:

public class Person
{
    public int Id { get; set; }
    public string FirstName { get; set; }
    public string LastName { get; set; }
}

Using the following Expression (constructed using PredicateBuilder) as the criteria:

var byName = PredicateBuilder.True<Person>().And(x => x.FirstName == "Chaim");

When invoked using the following syntax, the generated SQL is fine (includes the WHERE statement):

ctx.Set<Person>().AsExpandable().Where(x => byName.Invoke(x));

However, when invoked using this slightly different syntax, no SQL WHERE is involved and the filtering is being done by Enumerable.Where instead:

ctx.Set<Person>().AsExpandable().Where(byName.Invoke);

Any thoughts?

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1 Answer 1

up vote 3 down vote accepted

There is no implicit conversion from a method group to an Expression (of a corresponding delegate type). There is an implicit conversion from a method group to a delegate of a matching signature. Therefore only the IEnumerable overload matches.

Of course, that's not to say that you need to use a lambda. Just write:

ctx.Set<Person>().AsExpandable().Where(ByName);

Since you're passing in an expression (ByName is, after all, an Expression<Person, bool> already, which is exactly what Queryable.Where<Person> requires) this will evaluate as a query, not in linq to objects.

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Interesting. so you're basically saying that ByName.Invoke is Func<Person, bool> then only matches IEnumerable.Where, while x => ByName.Invoke(x) is Expression<Func<Person, bool>> then matches IQueryable.Where? –  haim770 Nov 27 '13 at 20:14
    
@haim770 x => ByName.Invoke(x), being a lambda, can match either. It can be an expression, or a delegate. Because of that, both Queryable.Where and Enumerable.Where are valid options, and it moves on to a betterness algorithm. Queryable wins. ByName.Invoke, being just a method group, like any other method group, is not convertible to an Expression, so Enumerable.Where is the only possible valid overload. –  Servy Nov 27 '13 at 20:18
    
I see. choosing the 'better algorithm' is performed at runtime? how? –  haim770 Nov 27 '13 at 20:20
    
@haim770 It's done at compile time. See the specs on overload resolution for the details. –  Servy Nov 27 '13 at 20:21

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