4

i have this code :

IEnumerable<string> q = customers /*EF entity*/
.Select (c => c.Name.ToUpper())
.OrderBy (n => n)

To select entity, ObjectContext actually create ObjectQuery, which implement IQueryable. The object return from ObjectQuery, is not normal object, but EntityObject

but what if i write : ( notice the var)

var q = customers /*EF entity*/
.Select (c => c.Name.ToUpper())
.OrderBy (n => n)

it can be determined both to ienumerable or iqueryable :

because ObjectQuery Also implements IEnumerable...

i dont know if there's any specific info which tell the compiler "use A and not B. A is more specific..." ( there must be...i just cant find it)

enter image description here

any help ? how will it know to use A || B ?

  • One easy way to tell what Type var is using in Visual Studio is to hover over the var keyword, and a popup will tell you what type it is. C# in Depth has a good section explaining how type inference works in C#. – Eric Andres Jun 22 '12 at 15:20
  • @EricAndres I have resharper which does much better work :)... i just want to understand how the decision is made :).. thanks man – Royi Namir Jun 22 '12 at 15:25
4

IQueryable<T> itself inherits from IEnumerable<T>, so it's more specific than IEnumerable<T>, even though ObjectQuery<T> implements both generic interfaces.

  • but when the compiler sees customers /*EF entity*/ .Select (c => c.Name.ToUpper()) .OrderBy (n => n) ... does it always look in the lower chain of inheritance towards top ? – Royi Namir Jun 22 '12 at 15:14
  • @RoyiNamir: Yes. If there are two methods with the same signature, but one takes an interface or type that extends another, the compiler will choose the overload that takes the more specific parameter, unless you explicitly cast the parameter to be less specific (e.g. via the AsEnumerable() extension method). – StriplingWarrior Jun 22 '12 at 15:17
  • if 1 methods accepts int and the other accepts object - the decision will be at compile time regarding the COMPILE TIME OF THE TYPE so if i write int i=3; doWork(i) the int version of doWork will be running. and if i send object i=5; doWork(i) the object version of doWork will be running .......but here i dont have any compile time type...so how does he do it ? – Royi Namir Jun 22 '12 at 15:22
  • What do you mean you don't have a compile-time type? var is evaluated at compile time, not at runtime. – BoltClock Jun 22 '12 at 15:26
  • the sample i gave is irrelevant. thanks. – Royi Namir Jun 22 '12 at 15:29

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