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Using the as.period I like to know the exact difference in year, month and date. However, I always get month value equal to zero and it transforms the month into date as following:

library(lubridate)
 as.period((dmy("01/06/1981")- dmy("30/07/1979")),units="year")
estimate only: convert difftimes to intervals for accuracy
[1] "1y 0m 306d 18H 0M 0S"

How can I get the corresponding month as well? And how can I format output which does not show hour, minute and second? Thanks

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1 Answer 1

up vote 1 down vote accepted

Create an interval, then coerce it to a period:

library(lubridate)
ii <- new_interval(dmy("01/05/1981"),dmy("30/07/1979"))
as.period(ii,units="months")
[1] "-21m -1d 0H 0M 0S"

res <- as.period(ii,units="years")
[1] "-1y -9m -1d 0H 0M 0S"

EDIT

I don't think that you can remove the hour,minutes parts. But you can write your print function:

paste0(c(res@year,res@month,res@day),c('y','m','d'),collapse=' ')
"-1y -9m -1d"
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Thanks! you are right. –  user30314 Jun 10 '14 at 9:10

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