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I'm looking to convert this line of C code to C#:

const u64 a = 1, b = -a;

So my understanding is that both constants are unsigned 64-bit integers. If so, what is the result going to look like?

Or is the second constant actually promoted and therefore defined as a signed integer?

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Are you asking what the result of running this will be in C, or what the equivalent C# should be? –  Chris Shain Feb 8 '12 at 2:26
    
Why do you want to negate an unsigned int? Doesn't that defeat the purpose? –  jb. Feb 8 '12 at 2:27
    
@Chris: I'm asking both. –  RoadWarrior Feb 8 '12 at 2:28
    
@jb: This is a line of code from somebody else's C program - I'm looking to convert the line to C#. –  RoadWarrior Feb 8 '12 at 2:28

4 Answers 4

up vote 1 down vote accepted

Due to the behaviour of negating unsigned integers, the representation of -(u64)1 is all 1s. So, after the following:

const u64 a = 1, b = -a;

// a is now 0x0000000000000001
// b is now 0xffffffffffffffff

Of course, 0xffffffffffffffff is also (2^64) -1, which is 18446744073709551615.

In my opinion, it would have been clearer for the original programmer to instead write:

const u64 a = 1, b = ~(u64)0;

I'm not a C# programmer, but I suspect the following will work for you:

const ulong b = ~(ulong)0;
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I think ~0 depends on the same undefined behavior as -1 (casting int to uint64). ~(u64)0 should solve this. –  Banthar Feb 8 '12 at 2:48
    
@Banthar: Thanks, updated :) –  Timothy Jones Feb 8 '12 at 2:54
    
It's not UD in C. The standard clearly defines the result of conversion of signed negative integers to unsigned integers. But we don't even have that here. 1 is signed positive that is converted to unsigned (to type of a) without change. a is unsigned because it's defined as unsigned. And so is -a. See this question and answers to it –  Alexey Frunze Feb 8 '12 at 2:57
    
@Alex Thanks, I'll remove the answer shortly. Can you tell me where the C standard defines the result of conversion from signed negative to unsigned? If I'm reading it correctly, in your question you say it doesn't? –  Timothy Jones Feb 8 '12 at 3:09
    
@Alex: Updated answer to remove the comments about UB. Thanks for the feedback! –  Timothy Jones Feb 8 '12 at 3:22

This would be the equivalent C#:

const ulong a = 1, b = unchecked((ulong)-1);

Or more simply:

const ulong a = 1, b = 18446744073709551615;
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Aha - many thanks! So the C code actually results in an overflow to (in C#) UInt64.MaxValue? –  RoadWarrior Feb 8 '12 at 2:33
    
If you want the max value const ulong b = ~(ulong)0; also works –  PostMan Feb 8 '12 at 2:36
    
@RoadWarrior - the result isn't due to an overflow, just the conversion to an unsigned 64 bit int. See my answer for details. –  Timothy Jones Feb 8 '12 at 2:37
    
@TimothyJones: The value already has type u64 when the negation operator is applied, so the huge value is due to reduction of arithmetic results modulo 2^64, not anything about conversion. –  R.. Feb 8 '12 at 4:34

The C# compiler will try to protect you from accidentally negiting an unsigned integer, but you can force it like this:

ulong a = 1;
ulong b = (ulong)-(long)a;

The result will be exactly the same bunch of bits as when negating a signed integer (i.e. two's complement), the only difference is how these bits are interpreted.

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Thanks, that answers another question I had. –  RoadWarrior Feb 8 '12 at 2:53

You get an ambiguous invocation error because -1 is not possible as an unsigned type (see comment below). You would have to use Int64 as type (which equals long).

When using long as type then the result will be a = 1, b = -1 and both longs.

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How can b be -1 if it's unsigned? Sorry, can't check at home as I only have the C# version of Visual Studio Express. –  RoadWarrior Feb 8 '12 at 2:27
    
If that's about C, there's no error here, even though mathematically -1 cannot be non-negative. The only error can be that the programmer doesn't know what's he doing. –  Alexey Frunze Feb 8 '12 at 3:03

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