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.

What is a good implementation of a IsLeapYear function in VBA?

Edit: I ran the if-then and the DateSerial implementation with iterations wrapped in a timer, and the DateSerial was quicker on the average by 1-2 ms (5 runs of 300 iterations, with 1 average cell worksheet formula also working).

share|improve this question
    
1-2 ms out of how many ms? i.e. what's the relative efficiency gain? Just curious! –  Jean-François Corbett Aug 11 '11 at 6:43
    
@Jean, good question, that was a few years back. I'll try and remember when I get back to work next week to do some more testing, it'd be especially good since more answers have come in since then. –  Lance Roberts Aug 11 '11 at 6:45

7 Answers 7

public function isLeapYear (yr as integer) as boolean
    isLeapYear   = false
    if (mod(yr,400)) = 0 then isLeapYear  = true
    elseif (mod(yr,100)) = 0 then isLeapYear  = false
    elseif (mod(yr,4)) = 0 then isLeapYear  = true
end function

Wikipedia for more... http://en.wikipedia.org/wiki/Leap_year

share|improve this answer
    
this one might even be more efficient. i like that it specifically takes the definition of leap year and works it into the answer. –  nathaniel Sep 24 '08 at 16:17
    
I should have used an elseif. To make it more obvious. In fact, I'll do that... –  seanyboy Sep 24 '08 at 16:23
    
the variable isLeap isn't being used –  Lance Roberts Sep 24 '08 at 16:23
    
So it isn't. I've fixed it. –  seanyboy Sep 24 '08 at 16:25
    
Being evenly divisible by 4 doesn't a leap year make! 2100 isn't a leap year. The division by 400 part of the test should come before the division by 4. –  rp. Sep 24 '08 at 16:47
up vote 9 down vote accepted
Public Function isLeapYear(Yr As Integer) As Boolean  

    ' returns FALSE if not Leap Year, TRUE if Leap Year  

    isLeapYear = (Month(DateSerial(Yr, 2, 29)) = 2)  

End Function

I originally got this function from Chip Pearson's great Excel site.

Pearson's site

share|improve this answer
    
creative solution! I wonder how it performs against the others posted. –  Erik van Brakel Sep 24 '08 at 22:52
    
performance now listed in the question –  Lance Roberts Oct 14 '08 at 23:21
1  
That does not take into account all of the leap year rules. –  StingyJack Oct 16 '08 at 16:28
1  
Actually, if you study what they're doing, it always works. They check to see if the february month has 29 days, and that makes it a leapyear. It basically pawns the leapyear rules onto Microsoft. Chip has a lot of good solutions. –  Lance Roberts Oct 17 '08 at 0:46

If efficiency is a consideration and the expected year is random, then it might be slightly better to do the most frequent case first:

public function isLeapYear (yr as integer) as boolean
    if (mod(yr,4)) <> 0 then isLeapYear  = false
    elseif (mod(yr,400)) = 0 then isLeapYear  = true
    elseif (mod(yr,100)) = 0 then isLeapYear  = false
    else isLeapYear = true
end function
share|improve this answer
1  
If efficiency is the goal you can get rid of isLeapYear = false, as boolean values default to false:) –  Oorang Jun 2 '09 at 18:41

I found this funny one on CodeToad :

Public Function IsLeapYear(Year As Varient) As Boolean
  IsLeapYear = IsDate("29-Feb-" & Year)
End Function 

Although I'm pretty sure that the use of IsDate in a function is probably slower than a couple of if, elseifs.

share|improve this answer

As a variation on the Chip Pearson solution, you could also try

Public Function isLeapYear(Yr As Integer) As Boolean  

  ' returns FALSE if not Leap Year, TRUE if Leap Year  

  isLeapYear = (DAY(DateSerial(Yr, 3, 0)) = 29)  

End Function
share|improve this answer
    
do you mean to use the DAY function instead of the MONTH function? –  Lance Roberts Aug 8 '11 at 6:20
    
Oops - thanks - yes I did. Too hasty in my cut and paste –  RonnieDickson Aug 11 '11 at 4:11
    
ok, I edited it. –  Lance Roberts Aug 11 '11 at 5:11
Public Function ISLeapYear(Y As Integer) AS Boolean
 ' Uses a 2 or 4 digit year
'To determine whether a year is a leap year, follow these steps:
'1    If the year is evenly divisible by 4, go to step 2. Otherwise, go to step 5.
'2    If the year is evenly divisible by 100, go to step 3. Otherwise, go to step 4.
'3    If the year is evenly divisible by 400, go to step 4. Otherwise, go to step 5.
'4    The year is a leap year (it has 366 days).
'5    The year is not a leap year (it has 365 days).

If Y Mod 4 = 0 Then ' This is Step 1 either goto step 2 else step 5
    If Y Mod 100 = 0 Then ' This is Step 2 either goto step 3 else step 4
        If Y Mod 400 = 0 Then ' This is Step 3 either goto step 4 else step 5
            ISLeapYear = True ' This is Step 4 from step 3
                Exit Function
        Else: ISLeapYear = False ' This is Step 5 from step 3
                Exit Function
        End If
    Else: ISLeapYear = True ' This is Step 4 from Step 2
            Exit Function
    End If
Else: ISLeapYear = False ' This is Step 5 from Step 1
End If


End Function
share|improve this answer
Public Function isLeapYear(Optional intYear As Variant) As Boolean

    If IsMissing(intYear) Then
        intYear = Year(Date)
    End If

    If intYear Mod 400 = 0 Then
        isLeapYear = True
    ElseIf intYear Mod 4 = 0 And intYear Mod 100 <> 0 Then
        isLeapYear = True
    End If

End Function
share|improve this answer

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.