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Say I have a struc

public struct Foo
{
    ...
}

Is there any difference between

Foo foo = new Foo();

and

Foo foo = default(Foo);

?

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Very interesting, Ani. Jon Skeet's article says that the constructor is not called when using a generic default(T). Does anybody know how it would behave with a non-generic default(Foo)? I'm guessing the constructor would be called by default(Foo). –  StriplingWarrior Feb 11 '11 at 21:21

5 Answers 5

up vote 35 down vote accepted

You might wonder why, if they are exactly the same, there are two ways to do the same thing.

They are not quite the same because every reference type or value type is guaranteed to have a default value but not every reference type is guaranteed to have a parameterless constructor:

static T MakeDefault<T>()
{
    return default(T); // legal
    // return new T(); // illegal
}
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1  
+1 Excellent observation - as always :) –  Andrew Hare Feb 11 '11 at 21:24
    
@Ani: See the specification. It is stated explicitly there, and copied in my answer. –  Jason Feb 11 '11 at 21:24
2  
@Jason: With regard to the spec - with reflection you can actually tell the difference between a struct that has a default ctor and one that doesn't. So at that level, the struct may not even have a ctor. Perhaps the spec might be telling us a 'soft lie'? (what I'm saying might be utter nonsense; hope Eric can clarify). –  Ani Feb 11 '11 at 21:28
    
I hate to contest a Lippert answer, but the scope here is a little more general than the question; the OP asked about structs, specifically. If I'm not mistaken, static T MakeDefault<T>() where T : struct { return new T(); } is legal... so is it different? –  Ben Mosher Sep 18 '13 at 16:43
1  
@BenMosher: In that case new T() and default(T) are the same and the compiler will generate the same code for both. –  Eric Lippert Sep 18 '13 at 17:25

No, both expressions will yield the same exact result.

Since structs cannot contain explicit parameterless constructors (i.e. you cannot define one yourself) the default constructor will give you a version of the struct with all values zero'd out. This is the same behavior that default gives you as well.

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5  
+1 I tried just now, the two expressions generated the same IL. –  Danny Chen Feb 11 '11 at 21:17
1  
They generate different IL if a paramterless ctor were present; see my answer. –  Ani Feb 11 '11 at 22:18

For value-types, the options are, practically speaking, equivalent.

However, I was intrigued by Jon Skeet's empirical research into which 'instructions' result in the invocation of a struct's parameterless default constructor when it is specified in CIL (you can't do it in C# because it doesn't let you). Amongst other things, he'd tried out default(T) and new T() where T is a type parameter. They appeared equivalent; neither of them appeared to call the constructor.

But the one case (it appears) he hadn't tried was default(Foo) where Foo is an actual struct type.

So I took his code for the 'hacked' struct and tried that out for myself.


It turns out that default(Foo) doesn't call the constructor, whereas new Foo() in fact does.

Using a struct type Oddity that specifies a parameterless constructor:

With optimizations turned off, the method:

private void CallDefault()
{
    Oddity a = default(Oddity);
}

produces the CIL (without nops, rets etc.):

L_0001: ldloca.s a
L_0003: initobj [Oddity]Oddity

whereas the method:

private void CallNew()
{
    Oddity b = new Oddity();
}

produces:

L_0001: ldloca.s b
L_0003: call instance void [Oddity]Oddity::.ctor()

With optimizations turned on, the compiler appears to optimize away pretty much all of the CallDefault method into a no-op, but keeps the call to the constructor in CallNew (for potential side-effects?).

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The language specification (§4.1.2 and §5.2) is your friend. Specifically:

For a variable of a value-type, the default value is the same as the value computed by the value-type’s default constructor (§4.1.2).

(Italics in original.)

Note that this is not the same for reference types.

For a variable of a reference-type, the default value is null.

This is emphatically different than the value produced by a default constructor, if one exists.

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default keyword is useful when you do not know exact type and it works not only for structs, for example in generics:

T FirstOrDefault(IEnumerable<T> source)
{
    if (...source is empty...) return default(T);
}

This will return null for reference types, default value for primitive types(0 for numbers, false for bool), defaultly inialized structure, etc ...

When type is known at compile-time it makes no sense to use default, you can use new Foo() instead

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Thanks. That's good to know. –  Bala R Feb 11 '11 at 21:20

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