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I know about MidpointRounding.AwayFromZero and MidpointRounding.ToEven, but I think I want something inbetween. It is for a promotions module, so discounted prices must round down if the value is .5.

For example, I would like:

£1.244 to round to £1.24
£1.245 to round to £1.24
£1.246 to round to £1.25

As I understand it, .AwayFromZero would round the middle value to £1.25 and .ToEven would round correctly to £1.24, but £1.335 would be rounded to £1.34, rather than £1.33 which is what I want.

Does anyone know how to accomplish this?

Thanks, Jon

share|improve this question
    
This SO question may be helpful... it looks like the default behavior to round towards whatever is even: stackoverflow.com/q/977796/945456 – Jeff Bridgman Oct 1 '12 at 20:16
2  
You could always use the mathematical modulus to check if the thousandth position is 5 or lower and round down, and 6 or higher to round up. – Bob. Oct 1 '12 at 20:17
up vote 2 down vote accepted

There is a lot of unspecified behavior. Let's keep it safe and do the rounding explicitly, ignoring negatives since this is about money:

    public static decimal Promotion(decimal value) {
        decimal unround = decimal.Floor(value * 100m);
        decimal fraction = value * 100m - unround;
        if (fraction <= 0.5m) return unround / 100m;
        else return (unround + 1m) / 100m;
    }
share|improve this answer
    
Nice useful little function – Jon Weir Oct 4 '12 at 12:22
    
Very useful! I'm surprised there isn't a "MidPointRoundDown" in the enum and that this code is even nescessary, but seems like Microsoft overlooked that. Here's a version with precision: private static decimal RoundDown(decimal value, int precision) { decimal factor = (decimal)Math.Pow(10, precision); decimal unround = decimal.Floor(value * factor); decimal fraction = value * factor - unround; return fraction <= 0.5m ? unround / factor : (unround + 1m) / factor; } – Cral DasProblem Mar 12 '15 at 12:49
Math.ceiling(x - 0.5)

Should do the trick.

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Don't think this will properly handle negative numbers... – Servy Oct 1 '12 at 20:05
    
I thought about that, but these are item prices, so I didn't think it was an issue. The OP would have to define how he wants to handle a price, say, of -1.5... if he thinks that situation will ever arise. If so, it can be wrapped in a conditional: x > 0 ? Math.ceiling(x-0.5) : <something else>; – kbelder Oct 2 '12 at 16:25

Ussually to do something like this you subtract .001 from your value, then round normally.

1.244 - .001 = 1.243 = 1.24
1.245 - .001 = 1.244 = 1.24
1.246 - .001 = 1.245 = 1.25

1.300 - .001 = 1.299 = 1.3

In this case, you REALLY want to put this in it's own function/extrension method, whatever, and document with a function WHY you subtract .001 before rounding.

share|improve this answer
    
What if your value is 1.245001? In that case it would be rounded down, not up, the way it should be. – Servy Oct 1 '12 at 20:06
    
@Servy, we're talking currency for a promotion, which infers consumer currency (not crazy bank stuff with fractions of fractions of a cent), we probably don't need to worry about .000001 of a £. – CaffGeek Oct 1 '12 at 20:11
    
You could get such a number as a result of floating point error (depending on data type) or as the result of division/multiplication. – Servy Oct 1 '12 at 20:44
    
@Servy, You should never be storing currency with floats, that's just asking for trouble. – CaffGeek Oct 1 '12 at 20:46

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