My questions is somewhat related to this post.

However, let's say I want to use Excel's built-in MOD (modulo) function in VBA. This site suggests that using Application.WorksheetFunction.[insert name of Excel function] would provide the desired effect.

However, Application.WorksheetFunction.MOD does not work.

In fact, when I simply type Application.WorksheetFunction. into VBA, a dropdown menu appears providing a list of function names to choose from, but MOD is not provided in this list!

2 questions:

  1. What's going on here?
  2. How do I actually use Excel's built-in MOD function in VBA?

Note: I started down this path b/c I'm trying to get 1.7 Mod 0.5 to equal 0.2 using VBA's Mod function, but it produces #VALUE! in the resulting Excel cell I apply my VBA function to. However, if I type MOD(1.7,0.5) directly into Excel, I get the correct answer (i.e., 0.2)

  • Mod is a valid operator in vba. e.g. 123 Mod 11 = 2 – Uri Goren Dec 6 at 22:37
  • @UriGoren Then why does using 1.7 Mod 0.5 in VBA not work while typing MOD(1.7,0.5) directly into Excel does? (the answer should be 0.2) – theforestecologist Dec 6 at 22:52
  • As a quick reference answer to my last comment: as QHarr points out in his answer the reason 1.7 Mod 0.5 doesn't work is because VBA's Mod only works with integers. I'd have to use Evaluate("Mod(1.7,0.5)") to make this work in VBA. – theforestecologist Dec 6 at 23:32
up vote 5 down vote accepted

You use as is since it is an operator (with integers). Use evaluate if you want to use doubles etc e.g.

E.g.

Debug.Print 2 Mod 12
Debug.Print Evaluate("Mod(1.7,0.5)")
Dim x As Double, y As Double
x = 1.7
y = 0.5
Debug.Print Evaluate("Mod(" & x & "," & y & ")")

See documentation. There are limitations with large numbers. A common workaround, from Microsoft, is:

=number-(INT(number/divisor)*divisor)
  • This gives me a Compile Error: Syntax error in VBA... – theforestecologist Dec 6 at 22:41
  • 1
    @QHarr 2 Mod 12 works, but @theforestecologist is correct in that the original values, that is 1.7 Mod 0.5, returns the error. And no, I didn't down vote. – Rey Juna Dec 6 at 22:57
  • 1
    Because you must use evaluate. Mod in VBA required integers. – QHarr Dec 6 at 22:57
  • @QHarr could you update your answer demonstrating how to use Evaluate with variables? For example: if I set up Function modFunc(x,y) how could I incorporate changing values for x and y in Debug.Print Evaluate("Mod(x,y)")? – theforestecologist Dec 6 at 23:01
  • 1
    Ohhhhh. Got it. Thanks! +1 for your help, mate! – theforestecologist Dec 6 at 23:06

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