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.

I made a function which will calculate if a certain year is a leapyear which looks like this:

isLeapday<-function(x) {
     if (as.numeric(x)%%100==0 & as.numeric(x)%%400==0 | as.numeric(x)%%4==0 &      as.numeric(x)%%100!=0) return (TRUE) 
     else return (FALSE)
}


isLeapday(x)

I get the error message

"In if (as.numeric(x)%%100 == 0 & as.numeric(x)%%400 == 0 | as.numeric(x)%%4 == : the condition has length > 1 and only the first element will be used"

Basically only the first value is calculated, how do I make it so that it counts every value within the vector and if possible, returns a logical vector?

share|improve this question
2  
Have you seen the leap.year function in chron? –  mnel Feb 20 '13 at 22:41
add comment

1 Answer 1

up vote 5 down vote accepted
isLeapday<-function(x) {
  x %% 100 == 0 & x %% 400 == 0 | x %% 4 == 0 & x %% 100 != 0
}

years <- 2004:2013

isLeapday(years)

# [1]  TRUE FALSE FALSE FALSE  TRUE FALSE FALSE FALSE  TRUE FALSE

Or as mnel mentioned:

library("chron")
leap.year(years)

 [1]  TRUE FALSE FALSE FALSE  TRUE FALSE FALSE FALSE  TRUE FALSE

For the code of leap.year{chron}:

library("chron") 
edit(leap.year)

function (y) 
{
    if (inherits(y, "dates")) 
        y <- month.day.year(as.numeric(y), origin. = origin(y))$year
    y%%4 == 0 & (y%%100 != 0 | y%%400 == 0)
}
share|improve this answer
1  
Personal preference is to avoid ifelse(), I find it doesn't work intuitively. He could have just used vapply(x,isLeapday) –  Brandon Bertelsen Feb 20 '13 at 22:42
1  
Thank you, I get it now! –  Per Månsson Feb 20 '13 at 22:44
1  
I think it's easy to understand when written as (year %% 4 == 0) & ((year %% 100 != 0) | (year %% 400 == 0)) –  hadley Feb 21 '13 at 15:15
add comment

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.