Am I doing something wrong or does the VBA Mod operator actually not work with floating point values like Doubles?
So I've always sort of assumed that the VBA Mod operator would work with Doubles based on the VB documentation, but in trying to figure out why my rounding function doesn't work, I found some unexpected Mod behavior.
Here is my code:
Public Function RoundUp(num As Double, Optional nearest As Double = 1)
RoundUp = ((num nearest) - ((num Mod nearest) > 0)) * nearest
End Function
RoundUp(12.34) returns 12 instead of 13 so I dug a little deeper and found that:
12.5 Mod 1 returns 0 with the return type of Long, whereas I had expected 0.5 with a type of Double.
Conclusion
As @ckuhn203 points out in his answer, according to the VBA specification,
The modulus, or remainder, operator divides number1 by number2
(rounding floating-point numbers to integers) and returns only the
remainder as result.
And
Usually, the data type of result is a Byte, Byte variant, Integer,
Integer variant, Long, or Variant containing a Long, regardless of
whether or not result is a whole number. Any fractional portion is
truncated.
For my purposes, I need a floating point modulo and so I have decided to use the following:
Public Function FMod(a As Double, b As Double) As Double
FMod = a - Fix(a / b) * b
'http://en.wikipedia.org/wiki/Machine_epsilon
'Unfortunately, this function can only be accurate when `a / b` is outside [-2.22E-16,+2.22E-16]
'Without this correction, FMod(.66, .06) = 5.55111512312578E-17 when it should be 0
If FMod >= -2 ^ -52 And FMod <= 2 ^ -52 Then '+/- 2.22E-16
FMod = 0
End If
End Function
Here are some examples:
FMod(12.5, 1) = 0.5
FMod(5.3, 2) = 1.3
FMod(18.5, 4.2) = 1.7
Using this in my rounding function solves my particular issue.
See Question&Answers more detail:
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