22

Is there any way to round up decimal value to its nearest 0.05 value in .Net?

Ex:

7.125 -> 7.15

6.66 -> 6.7

If its now available can anyone provide me the algo?

5 Answers 5

32

How about:

Math.Ceiling(myValue * 20) / 20
7
  • predator4: That seems to be what the OP wants, with the 6.66 -> 6.7 example.
    – caf
    Sep 19, 2009 at 13:36
  • Sorry. Fair enough, I've missunderstood the round up thing. To reduce confusion I've deleted my comment.
    – user37325
    Sep 19, 2009 at 14:08
  • 1
    It should be noted that while this is a very good solution for the problem of rounding to arbitrary fractions, for decimal place rounding Math.Round should be used (just in case anyone comes looking at this question for a solution to more standard rounding).
    – ICR
    Sep 19, 2009 at 14:32
  • 8
    Just as a warning, this can go wrong if the input is within a factor of 20 of the max value of a decimal (so, greater than about 4*10^27 for the decimal type). You can get around this by subtracting Math.floor, rounding the non-integer part, and then adding it back to the floor value. But since the original questioner's use is for a tax calculation, I doubt it matters unless it has to work in Zimbabwe... Sep 19, 2009 at 14:33
  • 9
    A more straightforward way (and easier to change the round-to step) is to Math.Ceiling(myValue / 0.05) * 0.05 Aug 15, 2013 at 12:47
12

Use this:

Math.Round(mydecimal / 0.05m, 0) * 0.05m;

The same logic can be used in T-SQL:

ROUND(@mydecimal / 0.05, 0) * 0.05

I prefer this approach to the selected answer simply because you can directly see the precision used.

3
  • 4
    Math.Round doesn't allow to Round UP May 30, 2013 at 7:57
  • 0.5625 should be rounded up to .6 but it gives .55. best Math.Ceiling(myValue / 0.05) * 0.05.
    – Daniel B
    Nov 2, 2018 at 19:41
  • Warning: this will only work if you want to round to multiples of 10. Consider the value 2671.875 and stepsize 50. I would expect the rounded value 2700. 2671.875/50 = 53.4375, which rounds to 53. But 53x50 = 2650. Oct 25, 2019 at 9:23
7

Something like this should work for any step, not just 0.05:

private decimal RoundUp (decimal value, decimal step)
{
    var multiplicand = Math.Ceiling (value / step);
    return step * multiplicand;
}
2

Math..::.Round Method (Decimal, Int32, MidpointRounding)

Rounds a double-precision floating-point value to the specified number of fractional digits. A parameter specifies how to round the value if it is midway between two other numbers.

   Math.Round(1.489,2,MidpointRounding.AwayFromZero)
1
0

I could not get proper rounding in most of the formulas

This one "rounds" to nearest

float roundFloat(float value, float toNearest) {
            float divVal = (1 / (toNearest == 0 ? 1 : toNearest));
            return ((float)(Math.Round(value * divVal)) / divVal);
        }

Result:

roundFloat(2, 0.125F); -> 2
roundFloat(2.11, 0.125F); -> 2.125
roundFloat(2.22, 0.125F); -> 2.25
roundFloat(2.33, 0.125F); -> 2.375
roundFloat(2.44, 0.125F); -> 2.5
roundFloat(2.549999, 0.125F); -> 2.5
roundFloat(2.659999, 0.125F); -> 2.625
roundFloat(2.769999, 0.125F); -> 2.75
roundFloat(2.879999, 0.125F); -> 2.875
roundFloat(2.989999, 0.125F); -> 3

Example 0.125 nearest rounding

 2.000 
 2.125 
 2.250 
 2.375 
 2.500 
 2.625 
 2.750 
 2.875 
 3.000 

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