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I have a bunch of datetime data and I'd like to see if there is any weekly pattern in it. So I'd like to compute the elapsed time (in seconds) since the beginning of the week with R.

How can I do that? I did the same thing for a daily pattern using difftime(time,as.Date(time)) but I can't use the same trick for the week as there is no as.Week().

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take a look at the lubridate package. Specifically the wday and week functions. –  Justin Jan 13 '13 at 21:26
    
Thanks, but that doesn't really solve my problem, since I'd like the precise time (in seconds) since the beginning of the week. The weekday isn't precise enough. –  static_rtti Jan 13 '13 at 21:28
    
I didn't say it solved your problem, but I think week is exactly the as.Week() function you asked for. Since you didn't provide any code, either your data or what you've tried, I didn't feel like creating an example and writing the code for you. However, using those two functions plus time of day will let you see weekly fluctuations. –  Justin Jan 13 '13 at 21:31
    
Is Monday or Sunday the first day of the week for you? –  Theodore Lytras Jan 13 '13 at 21:33
    
@TheodoreLytras: it doesn't matter, I'm just trying to make a plot. Make it Monday if you have to pick one. –  static_rtti Jan 13 '13 at 21:33
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2 Answers

up vote 7 down vote accepted

You can do it in base R, and you already gave yourself the answer: difftime() with a proper offset.

Even midnight is good enough as you simply need to add dayOfTheWeek * 24 * 60 * 60 to is, and dayOfTheWeek is a field in POSIXlt.

If you want higher-end helper packages, my RcppBDT has a few functions from Boost Date_Time too.

Illustration:

R> now <- Sys.time()
R> midnight <- trunc(now, "days")   # elegant way to get midnight; thanks @flodel
R> today <- as.POSIXlt(Sys.Date())
R> today$wday   # it is Sunday
[1] 0
R> 
R> difftime(now, midnight, unit="secs")
Time difference of 56630.6 secs
R> 

So you could add today$wday * 24 * 60 * 60

R> as.numeric(difftime(now, midnight, unit="secs")) + today$wday*24*60*60
[1] 56630.6
R> 
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Perfect, thank you very much! –  static_rtti Jan 13 '13 at 21:43
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midnight should not be hardcoded, instead you can use trunc(now, "days"). –  flodel Jan 14 '13 at 1:34
    
That is very elegant and a trick a had not used before. Nice. Updating post. –  Dirk Eddelbuettel Jan 14 '13 at 1:44
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Here's my solution as well:

secs.in.week <- function(t) {
  d <- as.integer(format(t, "%w"))
  d <- ifelse(d, d-1, 6)
  weekstart <- as.POSIXct(as.Date(t)-d) - 2 * 3600  # Convert UTC -> Local time. I'm on UTC+2h
  as.numeric(difftime(t,weekstart), units="secs")
}
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