85

Apparently Nullable<int> and int? are equivalent in value. Are there any reasons to choose one over the other?

Nullable<int> a = null;
int? b = null;
a == b; // this is true
125

No difference.

int? is just shorthand for Nullable<int>, which itself is shorthand for Nullable<Int32>.

Compiled code will be exactly the same whichever one you choose to use.

  • 1
    ...unless you are using EF code first. See my answer below. – Maciej Jun 5 '13 at 22:33
  • 1
    Unfortunately there are some corner cases when this is not strictly true. See this answer. – qqbenq Jul 14 '14 at 14:07
21

The ? form is just a shorthand for the full type. Personal preference is the only reason to choose one over the other.

Full details here.

The syntax T? is shorthand for Nullable<T>, where T is a value type. The two forms are interchangeable.

17

While I completely agree that in most cases they are the same, I recently came across a situation, when there is a difference between those two. For the gory details see this question, but to give you a quick example here:

void Test<T>(T a, bool b)
{
    var test = a is int? & b;              // does not compile
    var test2 = a is Nullable<int> & b;    // does compile
}

The first line gives the following error messages:

error CS1003: Syntax error, ':' expected 
error CS1525: Invalid expression term ';'

If you are curious about the exact reason for this, I really recommend you to check the already linked question, but the basic problem is that in the parsing phase after an is (or an as) operator, when we face a ? token we check if the next token can be interpreted as a unary operator (& could be one) and if so: the parser doesn't care about the possibility of the ? token being a type modifier, it simply uses the type before it, and will parse the rest as if the ? token were a ternary operator (thus the parsing will fail).

So, while in general int? and Nullable<int> are interchangeable, there are some corner cases when they produce completely different results, because of how the parser sees your code.

  • 1
    The first case, test, is fixed with a parenthesis, so var test = (a is int?) & b;. Can also be fixed with var test = a is int? && b;, and given that b is a simple value parameter (no side effects on evaluation) it seems strange to prefer & over &&. – Jeppe Stig Nielsen Jul 14 '14 at 14:09
  • In that particular syntax, ? is a key character. – Pete Garafano Jul 14 '14 at 14:09
  • See the linked question and answer, your comments are all addressed there :) I just added this info here, as I felt it is relevant, as it brings out a difference between the two forms, and proves that it is not just syntactic sugar – qqbenq Jul 14 '14 at 14:10
  • Jeppe is correct. It's not compiling because it is interpreting int? as a ternary operation (var test = a is int? <return if true> : <return if false>), not a nullable int. – Levi Fuller Aug 13 '15 at 19:50
  • 1
    @LeviFuller (continued) See the documentation for these particular bool overloads. These are Boolean logical operators (the & for bool) and Boolean conditional logical operators (the && for bool). Note how the first of these subsections is clearly named logical. Remember, in C# there are no conversions ("casts") between bool and numeric types! – Jeppe Stig Nielsen Aug 14 '15 at 10:41
6

There apparently is a difference between the two when using code-first Entity Framework (EF) generation:

When your entity contains a property declared like:

public class MyEntity
{
    public Nullable<int> MyNullableInt { get; set; } 
}

EF will not generate a nullable property and you will have to force the generator to make it nullable like so:

public class YourContext : DbContext
{
    public DbSet<MyEntity> MyEntities{ get; set; }

    protected override void OnModelCreating(DbModelBuilder modelBuilder)
    {
        base.OnModelCreating(modelBuilder);
        modelBuilder.Entity<MyEntity>().Property(x => x.MyNullableInt).IsOptional();
    }
}

On the other hand, if you declare your entity like:

public class MyEntity
{
     public int? MyNullableInt { get; set; }
}

the EF generator will property generate a nullable property with a nullable field in the corresponding database table.

  • 2
    That's really unfortunate. – siride Jun 5 '13 at 22:28
  • 8
    That suggests you have some other Nullable definition somewhere, because with the built-in Nullable<T>, it's not possible for EF to see the difference between the two. Even if the EF folks wanted to treat them differently, they couldn't. – user743382 Jun 5 '13 at 22:36
  • 1
    Has someone confirmed this is the case? ( just a little cautious because of the negative votes) – RayLoveless Jan 17 '14 at 12:51
  • @RayL No this isn't the case. This answer is not correct and as hvd pointed out, impossible. – Shoe May 20 '14 at 17:58
  • 1
    Considering that EF code is generated using code templates, this may in fact be possible. My answer is based on my experience and the change I suggested fixed the issue I was having. Also, it seems like some people found that it is indeed the case based on the up-votes. – Maciej Jun 24 '14 at 15:15
1

Nullable is a generic type, but int? is not.

There are some scenarios where Nullable should be used over int?

for eg: here you cannot replace Nullable with int?

how can you change the below code without using Nullable?

class LazyValue<T> where T : struct
{
   private Nullable<T> val;
   private Func<T> getValue;

   // Constructor.
   public LazyValue(Func<T> func)
   {
      val = null;
      getValue = func;
   }

   public T Value
   {
      get
      {
         if (val == null)
            // Execute the delegate.
            val = getValue();
         return (T)val;
      }
   }
}
  • 2
    private T? val works just fine. – johnnyRose Sep 2 '16 at 19:19
  • Which might matter if the question was asking about generic types, but the question has specified int, so it's not Nullable<T> it's Nullable<int> – Andrew Feb 16 '17 at 20:15

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