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Came across couple of scenarios that one would want to pass operators as a parameter in a function or a method. According to this post Java doesn't have that ability, hence need to create an Enum as the primary workaround.

E.g.

Function doCalcs(ByRef AND as LogicalOperator, ByRef greater ArithmeticOperator)

Although VBA has much lesser libraries compared to .Net, Java, creating Enum is well supported. Perhaps I am not aware, so if there's a possibility of that VBA has operator types or any other workarounds we could pass an operator, shoot that in. (other than if else/case to check a string that contains the operator paramter.. =) ) What I am asking is different from what's mentioned here.

  • Question is asked in terms of reducing codes, optimization.

E.g. If you look at CountIFS, it has the ability to take in operators. Even if someone can explain the possible back-end work within this function,

  1. How does it convert these strings into a proper operator?
  2. Is that an Enum structure or anything more efficient than that or lesser than that?

An answer to these questions are still acceptable.

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This really depends on what you're doing with the parameter inside the function. The most useful thing I can think of to do with a conceptual operator passed as a parameter is to use it as a callback. For example, perhaps I have a function get3op2() which accepts a binary operator, such as + or *, and returns the result of using that operator on predefined operands, such as 3 and 2. Then, hypothetically, get3op2(+) would return 5 (i.e. 3 + 2) while get3op2(*) would return 6 (i.e. 3 * 2). Is that what you're trying to do? –  psmay Jan 23 '13 at 15:17
    
Note: an enum typed structure merely contains a list of descriptive constant names as value for Long typed constants. As for what concerns your question, I don't really see the added value of using an enum. As for the question if it's possible to pass an operator directly: it is not in VBA. As for the workaround, yes there is, where eval would be the best option as mentioned. Otherwise than that, I may not understand the real question... –  Kim Gysen Jan 23 '13 at 15:51
    
@Kim there are two questions : 1. the operators as parameters 2. the mechanism behind CountIFS function's operator evaluation. –  bonCodigo Jan 23 '13 at 16:52
    
Without being able to give a straight answer, Office was originally written in C. I suppose some people could guess what happens behind the scenes, perhaps it may be helpful to adapt the tags (?). –  Kim Gysen Jan 23 '13 at 17:27

3 Answers 3

up vote 1 down vote accepted

An approach using classes:

Define a interface class

Op

Public Function eval(operand1, operand2)
End Function

For each desired operator, define a implementation. For example

OpMinus

Implements Op

Private Function Op_eval(operand1 As Variant, operand2 As Variant) As Variant
    Op_eval = operand1 - operand2
End Function

OpPlus

Implements Op

Private Function Op_eval(operand1 As Variant, operand2 As Variant) As Variant
    Op_eval = operand1 + operand2
End Function

Now some test routines in a module:

Sub test()
    Dim Minus As New OpMinus
    Dim Plus As New OpPlus
    Dim o, v1, v2

    For Each o In Array(Minus, Plus)
        For Each v1 In Array(1, 2, 3)
            For Each v2 In Array(1, 2, 3)
                operate o, v1, v2
            Next
            Debug.Print ""
        Next
        Debug.Print ""
    Next
End Sub

Sub operate(ByVal operator As Op, operand1, operand2)
    Debug.Print operator.eval(operand1, operand2),
End Sub

Output:

 0            -1            -2            
 1             0            -1            
 2             1             0            

 2             3             4            
 3             4             5            
 4             5             6            

Note you may wish to use e.g. Double instead of Variant in the interface if you know on which type you'll be operating.

share|improve this answer
    
+1 for the class approach, you didn't have to delete the earlier answer though. For initial stage Double is sufficient, but thanks for giving the Variant. If one can explain the mechanism taking place behind a function like CountIfs, that's great as I am keen on performance aspect. I will test yours along and give a further comment =) –  bonCodigo Jan 23 '13 at 16:21

There is no LogicalOperator type, ArithmeticOperator type, or anything similar. About the closest you can come is to use the Eval function in MS Access VBA or the (similar but different) Evaluate function in Excel VBA.

In fact, you've probably used the Evaluate function in Excel without even realizing it. From the Excel help file:

Note Using square brackets (for example, "[A1:C5]") is identical to calling the Evaluate method with a string argument. For example, the following expression pairs are equivalent.

[a1].Value = 25
Evaluate("A1").Value = 25
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+1 for eval and evaluate and explaination although it is not quite what I am after. –  bonCodigo Jan 23 '13 at 15:39

How I would solve the matter

1) Reference the Microsof Script Controler 1.0 library

Option Explicit

Sub Base_Sub()

Dim iNumber1        As Integer
Dim iNumber2        As Integer
Dim iSum            As Integer
Dim iMultiply       As Integer
Dim dDivision       As Double
Dim iDifference     As Integer
Dim lPower          As Long

iNumber1 = 2
iNumber2 = 6

iSum = CalculateThis("+", iNumber1, iNumber2)
iMultiply = CalculateThis("*", iNumber1, iNumber2)
iDifference = CalculateThis("-", iNumber1, iNumber2)
dDivision = CalculateThis("/", iNumber1, iNumber2)
lPower = CalculateThis("^", iNumber1, iNumber2)

End Sub



Public Function CalculateThis(operator As String, iNumber1 As Integer, iNumber2 As Integer)

Dim script As ScriptControl

Set script = New ScriptControl
script.Language = "VBScript"

CalculateThis = script.Eval(iNumber1 & operator & iNumber2)

End Function
share|improve this answer
    
This is another way of wrapping the same Eval function which was mentioned by both the other answers. Also the Excel Evaluate. Nonetheless, would have been better if one had also shown the logical and relational operators evaluation.... –  bonCodigo Jan 23 '13 at 16:48

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