18

How to convert between year,month,day and dates in R?

I know one can do this via strings, but I would prefer to avoid converting to strings, partly because maybe there is a performance hit?, and partly because I worry about regionalization issues, where some of the world uses "year-month-day" and some uses "year-day-month".

It looks like ISODate provides the direction year,month,day -> DateTime , although it does first converts the number to a string, so if there is a way that doesn't go via a string then I prefer.

I couldn't find anything that goes the other way, from datetimes to numerical values? I would prefer not needing to use strsplit or things like that.

Edit: just to be clear, what I have is, a data frame which looks like:

year month day hour somevalue
2004 1     1   1   1515353
2004 1     1   2   3513535
....

I want to be able to freely convert to this format:

time(hour units) somevalue
1             1515353
2             3513535
....

... and also be able to go back again.

Edit: to clear up some confusion on what 'time' (hour units) means, ultimately what I did was, and using information from How to find the difference between two dates in hours in R?:

forwards direction:

lh$time <- as.numeric( difftime(ISOdate(lh$year,lh$month,lh$day,lh$hour), ISOdate(2004,1,1,0), units="hours"))
lh$year <- NULL; lh$month <- NULL; lh$day <- NULL; lh$hour <- NULL

backwards direction:

... well, I didnt do backwards yet, but I imagine something like:

  • create difftime object out of lh$time (somehow...)
  • add ISOdate(2004,1,1,0) to difftime object
  • use one of the solution below to get the year,month,day, hour back

I suppose in the future, I could ask the exact problem I'm trying to solve, but I was trying to factorize my specific problem into generic reusable questions, but maybe that was a mistake?

7
  • 2
    There a lots of questions already answered here, and there are R Journal / R News articles. Commented Oct 19, 2012 at 14:42
  • 1
    There are many almost identical questions on this topic. Here is one: stackoverflow.com/q/12863841/602276
    – Andrie
    Commented Oct 19, 2012 at 14:42
  • What is the question? Are you so dead against internal conversion to strings that you will only accept Answers that never do that conversion or are you simply interested in the title of your question? If so ISOdate() would seem perfectly acceptable. Commented Oct 19, 2012 at 15:13
  • Might be clearer if the title were rewritten to go the othe way: "How to convert between dates and year, month, day?" (the "R" is unnecessary, that information is carried in the tags ...)
    – Ben Bolker
    Commented Oct 19, 2012 at 15:16
  • Can you clarify your example (after some sleep, perhaps), since it looks like time_in_hours could just be taken from the hour column? Commented Oct 19, 2012 at 15:57

3 Answers 3

25

Because there are so many ways in which a date can be passed in from files, databases etc and for the reason you mention of just being written in different orders or with different separators, representing the inputted date as a character string is a convenient and useful solution. R doesn't hold the actual dates as strings and you don't need to process them as strings to work with them.

Internally R is using the operating system to do these things in a standard way. You don't need to manipulate strings at all - just perhaps convert some things from character to their numerical equivalent. For example, it is quite easy to wrap up both operations (forwards and backwards) in simple functions you can deploy.

toDate <- function(year, month, day) {
    ISOdate(year, month, day)
}

toNumerics <- function(Date) {
    stopifnot(inherits(Date, c("Date", "POSIXt")))
    day <- as.numeric(strftime(Date, format = "%d"))
    month <- as.numeric(strftime(Date, format = "%m"))
    year <- as.numeric(strftime(Date, format = "%Y"))
    list(year = year, month = month, day = day)
}

I forego the a single call to strptime() and subsequent splitting on a separation character because you don't like that kind of manipulation.

> toDate(2004, 12, 21)
[1] "2004-12-21 12:00:00 GMT"
> toNumerics(toDate(2004, 12, 21))
$year
[1] 2004

$month
[1] 12

$day
[1] 21

Internally R's datetime code works well and is well tested and robust if a bit complex in places because of timezone issues etc. I find the idiom used in toNumerics() more intuitive than having a date time as a list and remembering which elements are 0-based. Building on the functionality provided would seem easier than trying to avoid string conversions etc.

7
  • Fair enough. I guess I'm just a little nervous that there could be localization issues sometime? I've been burned so many times where the regional settings affect the month-day order. (Edit: Well, and I guess, strings sounds like not the highest-performance way to handle numbers?) Commented Oct 19, 2012 at 15:50
  • Note that nowhere do I create a string in the form of "XX-XX-YYYY" where there may be ambiguity in which of the "XX" refers to day or month. I use well tested functions to extract the specific parts of the internal representation of the date/time and render it appropriate. When I ask for the day part I always get the day part etc. Commented Oct 19, 2012 at 15:53
  • The localisation only comes in in two places. i) when taking a character representation of the date/time, but that can always be handled by passing both the string and the format for that string. ii) the POSIXt representations have timezones and they can be a bit confusing. But this is an issue for how R internally handles DateTimes, and not something related to character representations. Commented Oct 19, 2012 at 15:55
  • @HughPerkins: regional settings don't affect day-month order, even if they affected how the objects were printed, they wouldn't affect how they're actually stored. You do have to be careful about timezones though, but that's true everywhere. Commented Oct 19, 2012 at 15:56
  • 2
    Or use lubridate which provides hour, year, hour etc functions for you.
    – hadley
    Commented Oct 19, 2012 at 18:11
20

I'm a bit late to the party, but one other way to convert from integers to date is the lubridate::make_date function. See the example below from R for Data Science:

library(lubridate)
library(nycflights13)
library(tidyverse)

a <- flights %>%
  mutate(date = make_date(year, month, day))
4

Found one solution for going from date to year,month,day.

Let's say we have a date object, that we'll create here using ISOdate:

somedate <- ISOdate(2004,12,21)

Then, we can get the numerical components of this as follows:

unclass(as.POSIXlt(somedate))

Gives:

$sec
[1] 0

$min
[1] 0

$hour
[1] 12

$mday
[1] 21

$mon
[1] 11

$year
[1] 104

Then one can get what one wants for example:

unclass(as.POSIXlt(somedate))$mon

Note that $year is [actual year] - 1900, month is 0-based, mday is 1-based (as per the POSIX standard)

18
  • 3
    Your note doesn't deserve a ":-O". Those are the POSIX standards. If you don't like it, use format instead: format(ISOdate(2004,12,21),"%m"). ISOdate does not return a string, as ?ISOdate says, it is a wrapper to strptime and returns a POSIXct class object. Commented Oct 19, 2012 at 14:54
  • We shouldn't have to convert to strings at all. Have a look at java's joda time for a really easy to use class. Modding me down for asking about one of R's achilles heels doesn't make me feel any better about the fact that I've spent 90 minutes trying to figure this out so far.... Commented Oct 19, 2012 at 14:58
  • Please don't confuse being downvoted for "modding" - You'll know when a Mod does something to your Answers/Questions as they are identified by a blue diamond. Voting is part and parcel of Stack Overflow and related sites. Get used to it and don't take it too seriously. Commented Oct 19, 2012 at 15:06
  • That doesnt help the fact that no-one is actually answering my questions on r dates and times, but just saying it's "obvious". If it was obvious, I wouldn't have asked the questions... Commented Oct 19, 2012 at 15:08
  • 1
    @HughPerkins I had similar issues the first time I used dates in R. (See my question.) Rather than unclassing, you can use the attributes function to see the names of the available fields. Commented Oct 19, 2012 at 16:05

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