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I think this looks like a bug in the C# compiler.

Consider this code (inside a method):

const long dividend = long.MinValue;
const long divisor = -1L;
Console.WriteLine(dividend % divisor);

It compiles with no errors (or warnings). Seems like a bug. When run, prints 0 on console.

Then without the const, the code:

long dividend = long.MinValue;
long divisor = -1L;
Console.WriteLine(dividend % divisor);

When this is run, it correctly results in an OverflowException being thrown.

The C# Language Specification mentions this case specifically and says a System.OverflowException shall be thrown. It does not depend on the context checked or unchecked it seems (also the bug with the compile-time constant operands to the remainder operator is the same with checked and unchecked).

Same bug happens with int (System.Int32), not just long (System.Int64).

For comparison, the compiler handles dividend / divisor with const operands much better than dividend % divisor.

My questions:

Am I right this is a bug? If yes, is it a well-known bug that they do not wish to fix (because of backwards compatibility, even if it is rather silly to use % -1 with a compile-time constant -1)? Or should we report it so that they can fix it in upcoming versions of the C# compiler?

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Mentioning @EricLippert might draw in the right crowd for this question :) –  Morten Mertner Aug 18 '13 at 13:14
    
@Morten, at this point, he might just gaze bemusedly from his perch at Coverity. ;) –  Kirk Woll Aug 18 '13 at 13:55
    
I think you should put a bounty on this as it irritates me why this is happening. The specs say that any constant expression that may throw a run-time exception should cause a compile-time error at compilation !! –  Ibrahim R. Najjar Aug 19 '13 at 13:41
    
@Sniffer It is not open for bounties yet. There is still the chance some authoritative answerer will show up. But if not, anyone is welcome to set a bounty :-) –  Jeppe Stig Nielsen Aug 19 '13 at 16:56

1 Answer 1

I think it's not a bug; it's rather how C# compiler computes % (It's a guess). It seems that C# compiler first computes % for positive numbers, then applies the sign. Having Abs(long.MinValue + 1) == Abs(long.MaxValue) if we write:

static long dividend = long.MinValue + 1;
static long divisor = -1L;
Console.WriteLine(dividend % divisor);

Now we will see 0 as the answer which is correct because now Abs(dividend) == Abs(long.MaxValue) which is in range.

Why it works when we declare it as a const value then? (Again a guess) It seems that C# compiler actually computes the expression at compile time and does not considers the type of the constant and act on it as a BigInteger or something (bug?). Because if we declare a function like:

static long Compute(long l1, long l2)
{
    return l1 % l2;
}

And call Console.WriteLine(Compute(dividend, divisor)); we will get the same exception. And again, if we declare the constant like this:

const long dividend = long.MinValue + 1;

We would not get the exception.

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1  
I did know all of that already. Note that the spec says: The result of x % y is the value produced by x – (x / y) * y. If y is zero, a System.DivideByZeroException is thrown. ↵↵ If the left operand is the smallest int or long value and the right operand is -1, a System.OverflowException is thrown. [...] It is obvious from your observations (and mine) that the compiler does not follow the spec when the remainder is computed at compile-time. The runtime does follow the spec. –  Jeppe Stig Nielsen Aug 18 '13 at 19:45
    
My apologies; I did not read the spec. Yes; I saw it now in my answer too at "acts on it as a BigInteger or something (bug?)". You are correct. –  Kaveh Shahbazian Aug 18 '13 at 19:59

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