Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

C#'s compiler doesn't complain when you instantiate an enum using new:

enum Foo
{
    Bar
}

Foo x = new Foo();

x will then be a Foo with value Bar.

Does new Foo() have any use I'm not aware of? Or am I just boxing and immediately unboxing an enum value?

share|improve this question
add comment

3 Answers

up vote 28 down vote accepted

new T(), when T is a value type, is not a boxing operation. It is the same thing as default(T). Foo x = new Foo();, Foo x = default(Foo), and Foo x = Foo.Bar; all do exactly the same thing.

Reference:

Initializing Value Types

int myInt = new int();

–or–

int myInt = 0;

Using the new operator calls the default constructor of the specific type and assigns the default value to the variable. In the preceding example, the default constructor assigned the value 0 to myInt. For more information about values assigned by calling default constructors, see Default Values Table.

share|improve this answer
2  
It is worth noting that Foo x = new Foo() does not automatically create a Foo. It will initialize a foo only if there's one with the value of 0. Have a look: ideone.com/4Oj54P –  Tim Schmelter Feb 28 '13 at 20:57
    
@TimSchmelter, I thought Enums could not be null. What would Foo be if there isn't one at 0? –  Ash Burlaczenko Feb 28 '13 at 21:06
    
@AshBurlaczenko: Have a look at the ideone-link. It is not null and it's type is FooBar, but it's kind of undefined. So we should always create an enum variable explicitely. –  Tim Schmelter Feb 28 '13 at 21:11
2  
@TimSchmelter new Foo() will always be default(Foo) when Foo is any value type, and for enums that will always be (Foo)0, regardless of whether a constant of that value exists. It's not kind of undefined, it's normal for enumeration variables to be able to hold values that do not correspond to any constant (think of flags). –  hvd Feb 28 '13 at 21:31
add comment

At an IL level there is no difference between Foo.Bar and new Foo(). Both will evaluate to the same set of IL opcodes

L_0001: ldc.i4.0 
L_0002: stloc.0 

The only case these operations translate into different IL is when the new operation is done generically

void Method<T>() where T : struct {
  T local = new T();
}

Method<Foo>();

In this particular case new will produce a different set of op codes

L_0005: ldloca.s e3
L_0007: initobj !!T

Other than this somewhat esoteric difference, there is no practical difference between Foo.Bar and new Foo()

share|improve this answer
1  
Worth pointing out: it's still not new that's different, then: default(T) compiles to the exact same ldloca.s/initobj for me in a generic method. –  hvd Feb 28 '13 at 21:35
add comment

See MSDN's entry on the System.Enum Class, particularly the section labeled Instantiating an Enumeration Type.

From what I understand, creating an instance of an Enum gives you the default value for that Enum (which is 0).

Example (taken directly from the MSDN article):

public class Example
{
   public enum ArrivalStatus { Late=-1, OnTime=0, Early=1 };
   public static void Main()
   {
      ArrivalStatus status1 = new ArrivalStatus();
      Console.WriteLine("Arrival Status: {0} ({0:D})", status1);
   }
}
// The example displays the following output: 
//       Arrival Status: OnTime (0)
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.