32

I have a large data frame with date variables, which reflect first day of the month. Is there an easy way to create a new data frame date variable that represents the last day of the month?

Below is some sample data:

date.start.month=seq(as.Date("2012-01-01"),length=4,by="months")
df=data.frame(date.start.month)
df$date.start.month

"2012-01-01" "2012-02-01" "2012-03-01" "2012-04-01"

I would like to return a new variable with:

"2012-01-31" "2012-02-29" "2012-03-31" "2012-04-30"

I've tried the following but it was unsuccessful:

df$date.end.month=seq(df$date.start.month,length=1,by="+1 months")
  • 1
    Your example output doesn't fit with the question. – James Feb 29 '12 at 17:54
  • 1
    You could also consider using "yearmon" class which represents year/month without needing a day in the first place: library(zoo); ym <- as.yearmon("2012-01") + 0:3/12 . If you did want dates on the last day of the month then as.Date(ym, frac = 1). – G. Grothendieck Feb 29 '12 at 18:01
  • G.Grothendieck: Thank you for your suggestion, I will ahve to remember to use the yearmon class for this type of date data in the future. – MikeTP Feb 29 '12 at 19:09
35

To get the end of months you could just create a Date vector containing the 1st of all the subsequent months and subtract 1 day.

date.end.month <- seq(as.Date("2012-02-01"),length=4,by="months")-1
date.end.month
[1] "2012-01-31" "2012-02-29" "2012-03-31" "2012-04-30"
  • Thanks James but this didnt seem to work within the data frame structure. – MikeTP Feb 29 '12 at 17:59
  • library(lubridate) date.start.month=seq(as.Date("2012-01-01"),length=4,by="months") df=data.frame(date.start.month) df$date.end.month=df$date.start.month+months(1)-days(1) df$date.start.month df$date.end.month "2012-01-01" "2012-02-01" "2012-03-01" "2012-04-01" "2012-01-31" "2012-02-29" "2012-03-31" "2012-04-30" – MikeTP Feb 29 '12 at 18:02
  • @MikeTP It looks like its working to me, but your example output was confusing: Why 27th April? – James Feb 29 '12 at 18:25
  • James: My appologies... the 27th of April was a typoand should have read "2012-04-30". Thanks for your help. – MikeTP Feb 29 '12 at 19:07
20

Here is another solution using the lubridate package:

date.start.month=seq(as.Date("2012-01-01"),length=4,by="months")
df=data.frame(date.start.month)

library(lubridate)
df$date.end.month <- ceiling_date(df$date.start.month, "month") - days(1)
df$date.end.month
[1] "2012-01-31" "2012-02-29" "2012-03-31" "2012-04-30"

This uses the same concept given by James above, in that it gets the first day of the next month and subtracts one day.

By the way, this will work even when the input date is not necessarily the first day of the month. So for example, today is the 27th of the month and it still returns the correct last day of the month:

ceiling_date(Sys.Date(), "month") - days(1)
[1] "2017-07-31"
  • 4
    days(1) is actually unnecessary. It is sufficient to do ceiling_date(Sys.Date(), "month") - 1. Just for future visitors... – Kim Apr 22 '18 at 6:42
14

Use timeLastDayInMonth from the timeDate package:

df$eom<-timeLastDayInMonth(df$somedate)
1

A function as below would do the work (assume dt is scalar) -

month_end <- function(dt) {
    d <- seq(dt, dt+31, by="days")
    max(d[format(d,"%m")==format(dt,"%m")])
}

If you have a vector of Dates, then do the following -

sapply(dates, month_end)
  • This function is no good. Chuck in "2019-01-31" for example and it all falls apart. – Daniel V Nov 25 '19 at 1:51
1

A straightforward solution would be using the yearmonfunction with the argument frac=1 from the xts-package. frac is a number between 0 and 1 that indicates the fraction of the way through the period that the result represents.

as.Date(as.yearmon(seq.Date(as.Date('2017-02-01'),by='month',length.out = 6)),frac=1)

[1] "2017-02-28" "2017-03-31" "2017-04-30" "2017-05-31" "2017-06-30" "2017-07-31"

Or if you prefer “piping” using magrittr:

seq.Date(as.Date('2017-02-01'),by='month',length.out = 6) %>%
         as.yearmon() %>% as.Date(,frac=1)

[1] "2017-02-28" "2017-03-31" "2017-04-30" "2017-05-31" "2017-06-30" "2017-07-31"
1
library(lubridate)
 as.Date("2019-09-01") - days(1)
[1] "2019-08-31"

or

library(lubridate)
 as.Date("2019-09-01") + months(1) - days(1)
[1] "2019-09-30"
0

you can use timeperiodsR

date.start.month=seq(as.Date("2012-01-01"),length=4,by="months")
df=data.frame(date.start.month)
df$date.start.month
# install.packages("timeperiodsR") 

pm <- previous_month(df$date.start.month[1]) # get previous month

start(pm) # first day of previous month
end(pm)   # last day of previous month
seq(pm)   # vector with all days of previous month
0

We can also use bsts::LastDayInMonth:

transform(df, date.end.month = bsts::LastDayInMonth(df$date.start.month))

#   date.start.month date.end.month
# 1       2012-01-01     2012-01-31
# 2       2012-02-01     2012-02-29
# 3       2012-03-01     2012-03-31
# 4       2012-04-01     2012-04-30

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