19

I've an integer column in my dataset which has four digit year values, like:

 2001 2002 2002 2002 2003 2005 

I am trying to convert the four digit year value to Date type.

The code I'm using is:

year <- as.Date(as.character(data_file$evtYear), format = "%Y")

But the output is:

"2001-05-15" "2002-05-15" "2002-05-15" "2002-05-15" "2003-05-15" "2005-05-15"

This is giving the wrong output. It's giving two year values in one date (both 2001 and also 15).

I just want the convert my four digit year part from the original data to 'Year' in the Date type. Expected out put is simply:

2001 2002 2002 2002 2003 2005 

But their class should be of Date type.

How to achieve this in R?

  • 4
    Date type in R is always a combination of year, month and day (not necessarily in this order). You cannot have a Date type with only the year. – user3710546 May 15 '15 at 9:24
  • @Pascal So does that mean I can't have a four digit number (2001) in my data whose class is of Date type?? – LearneR May 15 '15 at 9:26
  • 9
    Strictly, a year is not a date. – user3710546 May 15 '15 at 9:27
  • 1
    @akrun I'm jsut a beginner in R. I'm doing some Data Preprocessing work and there is this column with only year values.. It's of integer type. I thought I should convert it to date format so as not to have any issues later on. That is all. But now looking at all the opinions here, it sounds like integer is ok. What say? – LearneR May 15 '15 at 9:31
  • 2
    Yes, if you need just the year, an integer value is the best. – nicola May 15 '15 at 9:32
17

Based on the comments it turned out that the person asking the question did not need to change a numeric year to "Date" class; nevertheless, the question asked how to do it so here is an answer.

Here are a few ways to create a "Date" class object from a 4 digit numeric year. All use as.Date:

yrs <- c(2001, 2002, 2002, 2002, 2003, 2005)

1) ISOdate

as.Date(ISOdate(yrs, 1, 1))  # beginning of year
as.Date(ISOdate(yrs, 12, 31))  # end of year

This ISOdate solution is a bit tricky because it creates an intermediate POSIXct object so time zone problems could exist. You might prefer one of the following.

2) paste

as.Date(paste(yrs, 1, 1, sep = "-")) # beginning of year
as.Date(paste(yrs, 12, 31, sep = "-")) # end of year

3) zoo::as.yearmon

library(zoo)

as.Date(as.yearmon(yrs)) # beginning of year
as.Date(as.yearmon(yrs) + 11/12, frac = 1) # end of year

Note: If y is the result for any of the above then format(y, "%Y") gives the character year and as.numeric(format(y, "%Y")) gives the numeric year.

8

As already recognized by the OP, a year alone does not make up a valid date because month and day are not specified.

However, some date and date-time conversion functions, e.g., ymd(), parse_date_time(), in the lubridate package recognize a parameter truncated to allow for parsing of incomplete dates:

yrs <- c(2001, 2002, 2002, 2002, 2003, 2005)
lubridate::ymd(yrs, truncated = 2L)
[1] "2001-01-01" "2002-01-01" "2002-01-01" "2002-01-01" "2003-01-01" "2005-01-01"

The years have been completed by 1st of January to make a valid date. The result is of class Date.

1

A lubridate answer:

  library(lubridate)
  year <- ymd(sprintf("%d-01-01",data_file$evtYear))
  • 1
    Sorry this wasn't giving me the expected output. But I just realized from others' comments that my expected output is not a valid one: simply a four digit year value can't be of Date type.. Anyways, thank you so much for pointing out the lubridate package. Will look into it when the time comes. – LearneR May 15 '15 at 9:36
  • 1
    Depending on what you are doing it can make sense to use the date format anyway and get practice using the lubridate library. For example if you need to calculate the distance between dates, or in-between dates. If you are going to analyze data you are going to need to get good at manipulating dates and times as a large percentage of data is date related. – Mike Wise May 15 '15 at 9:40
0

You can do:

library(lubridate)
yrs <- c(2001, 2002, 2002, 2002, 2003, 2005)
yr <- as.Date(as.character(yrs), format = "%Y")
y <- year(yr)

Output:

2001 2002 2002 2002 2003 2005
  • 2
    lubridate::year() returns the year element of a date-time object as a decimal number. So, y is identical to yrs. A valid date always identifies a particular day, e.g., by giving year, month, and date. help("as.Date") says: If the date string does not specify the date completely, the returned answer may be system-specific. The most common behaviour is to assume that a missing year, month or day is the current one. So, the result depends on when the statement is executed leading to random results. E.g., on my system (at the time of writing), yr is 2001-01-28, etc. – Uwe Jan 28 '18 at 17:00

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