53

The title has it: how do you convert a POSIX date to day-of-year?

66

An alternative is to format the "POSIXt" object using strftime():

R> today <- Sys.time()
R> today
[1] "2012-10-19 19:12:04 BST"
R> doy <- strftime(today, format = "%j")
R> doy
[1] "293"
R> as.numeric(doy)
[1] 293

which is preferable to remembering that the day of the years is zero-based in the POSIX standard.

3
  • Just ran into my first data set with a POSIXct column. Seemed like time to mark yours as the accepted answer. – Gregor Thomas Dec 4 '12 at 19:38
  • @Gavin, is it also possible to convert a date to days since a specified data, e.g.number of days since March 1st 2015? I can also post as a new question... – B. Davis Aug 11 '15 at 12:06
  • 2
    @B.Davis You can do something like as.numeric(Sys.Date()-as.Date('2015-03-01',format='%Y-%m-%d')) – Henry Jan 5 '16 at 15:32
31

As ?POSIXlt reveals, a $yday suffix to a POSIXlt date (or even a vector of such) will convert to day of year. Beware that POSIX counts Jan 1 as day 0, so you might want to add 1 to the result.

It took me embarrassingly long to find this, so I thought I'd ask and answer my own question.

Alternatively, the excellent lubridate package provides the yday function, which is just a wrapper for the above method. It conveniently defines similar functions for other units (month, year, hour, ...).

today <- Sys.time()
yday(today)
4
  • Part of why it took me so long is that if d is a POSIXlt object, str(d) gives no indication that d has any further attributes. This, and that the $ operator works element-wise on a vector of POSIXlt objects means more than just a usual extraction is going on. I'd be interested in reading a bit more about that if anyone can recommend a nice place to start. – Gregor Thomas Oct 31 '11 at 20:43
  • And, to respond to my own comment, attributes is the command I was looking for, attributes(d) provides all the ways of displaying d. – Gregor Thomas Dec 15 '11 at 22:30
  • Heh, I was struggling with this question too. Seems that you answered it yourself (as opposed to just doing it without posting it here). Thanks for that! – Mikko Jul 3 '12 at 10:07
  • 3
    Note that this will only work with an object of class "POSIXlt". The other major class is "POSIXct" and that is stored internally in a very different way. Try your method on the output of Sys.time() for example. The strftime() approach works with both types. – Gavin Simpson Oct 19 '12 at 19:02
4

I realize it isn't quite what the poster was looking for, but I needed to convert POSIX date-times into a fractional day of the year for time series analysis and ended up doing this:

today <- Sys.time()

doy2015f<-difftime(today,as.POSIXct(as.Date("2015-01-01 00:00", tzone="GMT")),units='days')
0
2

The data.table package also provides a yday() function.

require(data.table)
today <- Sys.time()
yday(today)
1

This is the way how I do it:

as.POSIXlt(c("15.4", "10.5", "15.5", "10.6"), format = "%d.%m")$yday
# [1] 104 129 134 160
1
  • Works well for POSIXlt (as mentioned in my answer), but not for POSIXct objects. E.g., Sys.time()$yday doesn't work. – Gregor Thomas Nov 4 '15 at 18:09

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