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.

This seems like it should be a lot easier and I'm sure someone can help me. I'm trying to change each date to the first of its respective month from a data.frame of dates using floor_date() in the lubridate package, however some of those dates are NAs. I'd rather not substitute dummy dates for the NAs.

I've tried the below:

library(lubridate)
a<-c(as.Date("2011-05-04"), as.Date("2011-06-12"))
b<-c(as.Date("2012-03-01"), NA)
test <- data.frame(a,b)

apply(test, 1, function(y) sapply(y, function(x) if(!is.na(x)) floor_date(x, "month") else na.pass(x)))
apply(test, 1, function(y) ifelse(!is.na(y)), floor_date(y, "month"), na.pass(y))

The first call returns:

Error in object[[name, exact = TRUE]] : subscript out of bounds

The second call returns:

Error in update.default(x, mdays = 1, hours = 0, minutes = 0, seconds = 0) : 
need an object with call component

Thank you for any help!

share|improve this question
    
The big problem with all this is that apply is going to coerce to a matrix and all of the attributes (including what makes an R "Date" a date will be lost. You will need to use lapply on columns rather than working on rows. –  BondedDust Mar 5 '12 at 22:09
    
Do you just want to convert each Date to the first of the month? If so, it makes no sense to do that by working through the rows one at a time, which is what apply(test, 1, ....) does. You should rather do something like data.frame(lapply(test, ...)). That will take each of the columns of test and perform the calculations on them each in turn, and then convert the resulting list of columns back into a data.frame. –  Josh O'Brien Mar 5 '12 at 22:11

5 Answers 5

up vote 6 down vote accepted

I don't know about lubridate, but you could do this easily with the excellent date-handling facilities provided by base R.

Here's a little helper function that should perform the calculations you want without complaint:

firstOfMonth <- function(dates) {
    as.Date(strftime(dates, format="%Y-%m-01"))
}

firstOfMonth(a)
# [1] "2011-05-01" "2011-06-01"
firstOfMonth(b)
# [1] "2012-03-01" NA   

data.frame(lapply(test, firstOfMonth))
#            a          b
# 1 2011-05-01 2012-03-01
# 2 2011-06-01       <NA>
share|improve this answer
    
doh! I knew I was making things too complicated! Thank you so much. Also noticed lapply works better in this case than apply. Apply returns numeric vectors instead of Date class objects in this example. –  tcash21 Mar 5 '12 at 22:36
    
Yep. It also looks like lubridate's floor_date() simply isn't designed to handle NAs, so you'll be better off just using my code or something like it. (Try floor_date(b) with your vector b to see what I mean.) –  Josh O'Brien Mar 5 '12 at 22:43

Have you tried package zoo ?

library(zoo)
a<-c(as.Date("2011-05-04"), as.Date("2011-06-12"))
b<-c(as.Date("2012-03-01"), NA)
test <- data.frame(
        "a" = as.Date(as.yearmon(a)),
        "b" = as.Date(as.yearmon(b))
)
share|improve this answer

How about this?

my_floor_date <- function(x,...) {idx <- !is.na(x); x[idx] <- floor_date(x[idx], ...); x}
transform(test, a=my_floor_date(a, "month"), b=my_floor_date(b, "month"))
share|improve this answer

If you wanted to do it in a one-liner like you were trying, this would work:

data.frame(lapply(test,function (y) (as.Date(sapply(y,function(x) if (is.na(x)) NA else floor_date(x,'month'))))))

The real problem here is the lubridate function itself, which should allow you to pass a parameter to update.Date telling it to ignore NA. The strftime solution above is definitely the cleanest.

Also, as mentioned in the comments, the reason why your solution didn't work was because you used apply instead of lapply.

share|improve this answer

The NA bug in floor_date() is fixed in lubridate 1.1.0 which was sent to CRAN today. An NA bug in the S3 update method for dates remains (fixed in the development version). In the mean time,

floor_date(as.POSIXlt(test$b), unit = "month")

would work.

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.