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Please explain why this test passes?

[Test]
public void TestNullOps()
{
    Assert.That(10 / null, Is.Null);
    Assert.That(10 * null, Is.Null);
    Assert.That(10 + null, Is.Null);
    Assert.That(10 - null, Is.Null);
    Assert.That(10 % null, Is.Null);
    Assert.That(null / 10, Is.Null);
    Assert.That(null * 10, Is.Null);
    Assert.That(null + 10, Is.Null);
    Assert.That(null - 10, Is.Null);
    Assert.That(null % 10, Is.Null);

    int zero = 0;
    Assert.That(null / zero, Is.Null);
}

I don't understand how this code even compiles.

Looks like each math expression with null returns Nullable<T> (e.g. 10 / null is a Nullable<int>). But I don't see operator methods in Nullable<T> class. If these operators are taken from int, why the last assertion doesn't fail?

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up vote 18 down vote accepted

From MSDN:

The predefined unary and binary operators and any user-defined operators that exist for value types may also be used by nullable types. These operators produce a null value if the operands are null; otherwise, the operator uses the contained value to calculate the result.

That's why all the test are passed, including the last one - no matter what the operand value is, if another operand is null, then the result is null.

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3  
Note that == has slightly different rules here; if both are null, it is true – Marc Gravell Oct 5 '11 at 11:26
3  
Yep, and the same goes for != as far as I know - if one is null, and another is not, then the result is true. – Andrei Oct 5 '11 at 11:27

The operators for Nullable<T> are so-called "lifted" operators]; the c# compiler takes the operators available for T and applies a set of pre-defined rules; for example, with +, the lifted + is null if either operand is null, else the sum of the inner values. Re the last; again, division is defined as null if either operand is null - it never performs the division.

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Could it be that the compiler just translate it into something else? See my answer. – Martin Ingvar Kofoed Jensen Oct 5 '11 at 11:26
    
@Martin I already commented on your answer ;p – Marc Gravell Oct 5 '11 at 11:28
1  
@MarcGravell If division is never performed, why the compiler doesn't compile Assert.That(null / 0, Is.Null);? – altso Oct 5 '11 at 11:37
    
@altso - I'm confused; you stated "why the last assertion doesn't fail" - and indeed, it doesn't fail (AFAIK) - null/0 is null... ? – Marc Gravell Oct 5 '11 at 12:40
    
@MarcGravell There is a difference between assertion from post and my comment. In comment zero is a constant. And compiler fails on it. – altso Oct 5 '11 at 14:14

I would assume that the compiler converts zero to Nullable<int>, and provides the underlying division operator. Since the Nullable type may be null, the division by 0 is not caught during compile. Best guess is that they want you to be able to do null testing in cases where div/0 is occuring.

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I tried seeing the generated code from the code below using reflector

var myValue = 10 / null;

And the compiler turns it into this:

int? myValue = null;

And this wont compile, so you cant trick it:

object myNull = null;
var myValue = 10 / myNull;
share|improve this answer
    
Yes, but that just restates the question, since in both cases it is the compiler doing this (using the same rules) - simply, it happens to be able to do it as a constant value in this case. – Marc Gravell Oct 5 '11 at 11:27
    
Yeah, thanks for suggestion about constants. – altso Oct 5 '11 at 11:31

The operations in this list always return NULL:

1 + 2 + 3 + NULL

5 * NULL - 7

'Home ' || 'sweet ' || NULL

MyField = NULL

MyField <> NULL

NULL = NULL
share|improve this answer
    
Note that link-only answers are discouraged (links tend to get stale over time). Please consider editing your answer and adding a synopsis here. – bummi Sep 6 '13 at 8:36
    
Thanks bummi to correct me! – Sohil Sep 6 '13 at 9:24
    
This doesn't look like C# to me. What language is this? – Sam Sep 3 '15 at 2:36

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