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I have the following code:

typedef __int64 BIG_INT;
typedef double CUT_TYPE;

#define CUT_IT(amount, percent) (amount * percent)

void main()
{
    CUT_TYPE cut_percent = 1;

    BIG_INT bintOriginal = 0x1FFFFFFFFFFFFFF;
    BIG_INT bintAfter = CUT_IT(bintOriginal, cut_percent);
}

bintAfter's value after the calculation is 144115188075855872 instead of 144115188075855871 (see the "2" in the end, instead of "1"??).

On smaller values such as 0xFFFFFFFFFFFFF I get the correct result.
How do I get it to work, on 32bit app? What do I have to take in account?
My aim is to cut a certain percentage of a very big number.

I use VC++ 2008, Vista.

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Is the "cut_percent" always going to be n/100 for some integer n, or can "cut_percent" be an arbitrary double? –  Peter Milley Jul 26 '10 at 23:52
    
@Peter: arbitrary double that is. The code example uses 100% just to emphasize the fact that the value is wrong no matter how you look at it. –  Poni Jul 27 '10 at 0:37
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2 Answers

up vote 5 down vote accepted

double has a 52 bit mantissa, you're losing precision when you try to load a 60+ bit value into it.

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I usually use 'long double' on g++, which gives greater precision. Having just checked though, it appears that VC++ doesn't really respect this. en.wikipedia.org/wiki/Long_double –  Aaron McDaid Jul 27 '10 at 2:06
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Floating point calculations aren't guaranteed to be perfectly accurate, and you've defined CUT_TYPE as double.

See this answer for more info: http://stackoverflow.com/questions/590822/dealing-with-accuracy-problems-in-floating-point-numbers/590851#590851

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I know I should "accept" a certain range, although hoping for someone to come up with a way around this. –  Poni Jul 26 '10 at 23:41
2  
The way around it is to use a bignumber library that supports arbitrary precision, and rational numbers. –  Ben Voigt Jul 26 '10 at 23:54
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