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In C# I see that

-1 * int.MinValue == int.MinValue

Is this a bug? It really screwed me up when I was trying to implement a search tree. I ended up using (int.MinValue + 1) so that I could properly negate it.

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5  
+1 Very interesting and funny question :D –  Jonathan Sep 1 '10 at 21:46
    
This is one of those things I really don't understand, Why is C# unchecked by default? –  Aelphaeis May 30 at 21:00

5 Answers 5

up vote 51 down vote accepted

This is not a bug.

int.MinValue * -1 is 1 greater than int.MaxValue can hold. Thus, the number wraps around back to int.MinValue.

This is basically caused by an integer overflow.

Int32.MinValue:

The value of this constant is -2,147,483,648

Int32.MaxValue:

The value of this constant is 2,147,483,647

So, -2,147,483,648 * -1 = 2,147,483,648 which is 1 greater than Int32.MaxValue.

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1  
integer math is sooo coool! ;) –  Mark Schultheiss Sep 2 '10 at 19:08
1  
@Mark, in this case, I think it is not cool. It is confusing. –  jjnguy Sep 2 '10 at 19:29
    
Depends how you look at it. From a bitwise perspective with -x := ~x + 1 and Int32.MinValue being 1000 0000 0000 0000 0000 0000 0000 0000 it's actually quite plausible. And the '32' in Int32 does point just right to that direction :) –  back2dos Jan 30 '11 at 12:44

It's not a bug, it's an overflow.

In two's complement representation, the space of representable numbers is not symmetric. The opposite of the smallest integer cannot be represented. Computing it overflows and gives you the same number again.

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7  
for less than a second, I thought you would say It's not a bug, it's an feature. :D –  Jonathan Sep 1 '10 at 21:48
int i = -1 * int.MinValue;

This doesn't even compile unless you disable checking:

error CS0220: The operation overflows at compile time in checked mode
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Just wanted to note that checked mode is apparently disabled by default.msdn.microsoft.com/en-us/library/h25wtyxf.aspx –  Aelphaeis Jul 31 at 13:59

No, it isn't a bug. It is the nature of twos complement integer arithmetic.

For example, let us take a signed byte value which goes between -128 and 127.

127(0x7f)+1 = 128(0x80). However, 0x80 is in fact the binary representation of -128.

Thus, for a byte, 128(0x80) = -128(0x80)

So -128(0x80) * -1 = 128(0x80) = -128(0x80)

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Put a checked region on it and see the "bug" evolve into an exception. Or try VB.NET (which as far as I recall is checked by default unlike C#).

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+1 for mentioning the checked state. –  Aelphaeis Jul 31 at 14:00

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