1

This is probably an easy one, but I've got this Excel vba macro where I'm trying to divide two integers and I end up with a round number, even though there should be a comma in there. For example 278 / 101 = 3. While it's really 2,75 and not 3. Why is this?

The macro is really simple, like this:

Dim intFull, intLow , intDivided as Integer
intFull = 278
intLow = 101
intDivided = intFull \ intLow
1
  • can we see the macro? :)
    – brettdj
    Oct 28 '11 at 10:27
5

Your result variables is an integer

If you work with doubles instead you will get 2.752 etc - which can be rounded using dbDivided = Round(lngFull / lngLow, 2)

[variables updated to be more meaningful]

Sub redone()
    Dim lngFull As Long
    Dim lngLow As Long
    Dim dbDivided As Double
    lngFull = 278
    lngLow = 101
    dbDivided = Round(lngFull / lngLow, 2)
End Sub
3
  • And that was it! Thanks! I should have guessed this really.. Something tells me this is pretty basic Visual Basic :) Thanx! Oct 28 '11 at 10:39
  • 1
    Dim intFull As Integer, intLow As Integer, dblDivided As Double works correctly. Unlike, for example, Java (where int/int produces an int result,) Integer/Integer does not always produce an Integer result in VBA - it depends on the type of variable that the result is assigned to. Also, Dim intFull, intLow, intDivided As Double gives us two Variant variables and one Double variable. Finally, a Double variable with a name prepended with int is just going to lead to confusion
    – barrowc
    Oct 30 '11 at 0:11
  • @barrowc. Agree on naming convention and have updated accordingly, Long being more efficient than Integer. Also have updated the variants which while workable is untidy, I should have run my standard single line dimensioning style. Thanks for comments.
    – brettdj
    Oct 30 '11 at 0:54
2

Sure you used a forward slash and not a backslash? (See also: http://zo-d.com/blog/archives/programming/vba-integer-division-and-mod.html)

3
  • Hmm, I've tried both / and \ now. When I use /, I get a value of 3. When I use \ I get a value of 2. Oct 28 '11 at 10:36
  • see above. The main issue was your variable type. The secondary issues was the backslash which Joachim identified. Both are fixed in my post
    – brettdj
    Oct 28 '11 at 10:41
  • +1 for posting first on the backslash remainder discard issue.
    – brettdj
    Oct 28 '11 at 10:44

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