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How do I return a result from a function?

For example:

Public Function test() As Integer
    return 1
End Function

This gives a compile error.

How do I make this function return an integer?

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3 Answers 3

up vote 77 down vote accepted

For non-object return types, you have to assign the value to the name of your function, like this:

Public Function test() As Integer
    test = 1
End Function

Example usage:

Dim i As Integer
i = test()

If the function returns an Object type, then you must use the Set keyword like this:

Public Function testRange() As Range
    Set testRange = Range("A1")
End Function

Example usage:

Dim r As Range
Set r = testRange()

Note that assigning a return value to the function name does not terminate the execution of your function. If you want to exit the function, then you need to explicitly say Exit Function. For example:

Function test(ByVal justReturnOne As Boolean) As Integer
    If justReturnOne Then
        test = 1
        Exit Function
    End If
    'more code...
    test = 2
End Function

Documentation: http://msdn.microsoft.com/en-us/library/office/gg264233%28v=office.14%29.aspx

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15  
For completeness it should be noted that when you are returning an object (like a Range for example), you need to use Set just like you would if setting an object variable in a regular method. So if, for example, "test" were a function that returned a Range the return statement would look like this set test = Range("A1"). –  Jay Carr Mar 21 '13 at 15:23
    
Why is that @JayCarr? –  PsychoData Feb 11 '14 at 14:07
1  
@PsychoData - Simply because that's how you set an object variable in general, and doing it without set can lead to problems. I've had issues doing it without, but if I use set I don't :). –  Jay Carr Feb 11 '14 at 14:36

VBA functions treat the function name itself as a sort of variable. So instead of using a "return" statement, you would just say:

test = 1

Notice, though, that this does not break out of the function. Any code after this statement will also be executed. Thus, you can have many assignment statements that assign different values to test, and whatever the value is when you reach the end of the function will be the value returned.

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Actually you answered the question more clearly with extra information (which could potentialy lead to another question from new to VBA guy). Keep up the good work –  Adarsha May 6 '10 at 14:39
    
Sorry, It seemed like you just answered the same thing as my answer, which I had first, but just adding the fact that it doesn't break out of the function. It is a nice addition, I just thought it'd be more appropriate as a comment. I'm not sure what the proper etiquette is, I guess it was a bit rude to downvote for just that, because it is a good answer, but it won't let me undo it. –  Dan May 6 '10 at 15:20
    
@jtolle thanks for the note, but it won't let me undo. –  Dan Jan 26 '11 at 4:54
    
@Dan, I think you can't undo the vote until @froadie makes an edit of some kind to his answer. –  jtolle Jan 26 '11 at 16:29
    
@Dan: You can retract your downvote now if you want. –  Jean-François Corbett Sep 15 '14 at 7:18

Just setting the return value to the function name is still not exactly the same as the Java (or other) return statement, because in java, return exits the function, like this:

public int test(int x) {
    if (x == 1) {
        return 1; // exits immediately
    }

    // still here? return 0 as default.
    return 0;
}

In VB, the exact equivalent takes two lines if you are not setting the return value at the end of your function. So, in VB the exact corollary would look like this:

Public Function test(ByVal x As Integer) As Integer
    If x = 1 Then
        test = 1 ' does not exit immediately. You must manually terminate...
        Exit Function ' to exit
    End If

    ' Still here? return 0 as default.
    test = 0
    ' no need for an Exit Function
End Function 
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