Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Given numbers like 499, 73433, 2348 what VBA can I use to round to the nearest 5 or 10? or an abitrary number?

By 5:

 499 ->  500
2348 -> 2350
7343 -> 7345

By 10:

 499 ->  500
2348 -> 2350
7343 -> 7340

etc.

share|improve this question
    
Thank you everyone for all your answers. I'm the smarter for it. Sorry I can only mark a single ressponse as correct, as the real "answer" was scattered across several messages. –  matt wilkie Jan 6 '11 at 20:52
add comment

9 Answers

It's simple math. Given a number X and a rounding factor N, the formula would be:

round(X / N)*N

share|improve this answer
add comment
up vote 14 down vote accepted

Integrated Answer

X = 1234 'number to round
N = 5    'rounding factor
round(X/N)*N   'result is 1235

For floating point to integer, 1234.564 to 1235, (this is VB specific, most other languages simply truncate) do:

int(1234.564)   'result is 1235

Beware: VB uses [Bankers Rounding][1], to the nearest even number, which can be surprising if you're not aware of it:

msgbox round(1.5) 'result to 2
msgbox round(2.5) 'yes, result to 2 too

Thank you everyone.

share|improve this answer
add comment

To round to the nearest X (without being VBA specific)

N = X * int(N / X + 0.5)

Where int(...) returns the next lowest whole number.

If your available rounding function already rounds to the nearest whole number then omit the addition of 0.5

share|improve this answer
    
Just to clarify: int(N+0.5) is the same as round(N) –  Vilx- Nov 28 '08 at 19:25
    
yes - I was adding that at the same time as you commented :) –  Alnitak Nov 28 '08 at 19:27
    
+1: Thanks for this. –  Jim G. Aug 26 '11 at 2:56
add comment

In VB, math.round has additional arguments to specify number of decimal places and rounding method. Math.Round(10.65, 2, MidpointRounding.AwayFromZero) will return 10.67 . If the number is a decimal or single data type, math.round returns a decimal data type. If it is double, it returns double data type. That might be important if option strict is on.

The result of (10.665).ToString("n2") rounds away from zero to give "10.67". without additional arguments math.round returns 10.66, which could lead to unwanted discrepancies.

share|improve this answer
add comment

For a strict Visual Basic approach, you can convert the floating-point value to an integer to round to said integer. VB is one of the rare languages that rounds on type conversion (most others simply truncate.)

Multiples of 5 or x can be done simply by dividing before and multiplying after the round.

If you want to round and keep decimal places, Math.round(n, d) would work.

share|improve this answer
add comment

Simply ROUND(x/5)*5 should do the job.

share|improve this answer
add comment

I cannot add comment so I will use this

in a vbs run that and have fun figuring out why the 2 give a result of 2

you can't trust round

 msgbox round(1.5) 'result to 2
 msgbox round(2.5) 'yes, result to 2 too
share|improve this answer
    
I'd say that it either has something to do with the way floating point numbers are stored, or a correct implementation of the internationally standartized rounding algorithm. I don't know it's name, but it was so that every other .5 was rounded down, and the rest up. –  Vilx- Nov 28 '08 at 19:45
    
Rounding rounds [sic] to the nearest even number. There is even an explanation here in SO. –  Manuel Ferreria Nov 28 '08 at 19:46
    
Vilx, your suggestion is good, but not for VBA round(465 / 10)*10 will return 460 –  Fredou Nov 28 '08 at 19:56
    
Well, that's FP math for you, get over it. Most FP numbers ending in 0.5 will actually be a tiny fraction either above or below the required value, and that affects the rounding. –  Alnitak Nov 28 '08 at 20:12
1  
@Manuel, I think that's called Bankers rounding (nearest even number), one of the MANY variants. –  paxdiablo Nov 28 '08 at 21:33
add comment

something like that?

'nearest
 n = 5
 'n = 10

 'value
 v = 496
 'v = 499 
 'v = 2348 
 'v = 7343

 'mod
 m = (v \ n) * n

 'diff between mod and the val
 i = v-m


 if i >= (n/2) then     
      msgbox m+n
 else
      msgbox m
 end if
share|improve this answer
add comment

Try this function

--------------start----------------

Function Round_Up(ByVal d As Double) As Integer
    Dim result As Integer
    result = Math.Round(d)
    If result >= d Then
        Round_Up = result
    Else
        Round_Up = result + 1
    End If
End Function

-------------end ------------

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.