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The R diff command returns the differences between dates in a vector of dates in the R date format. I'd like to control the units that are returned, but it seems like they are automatically determined, with no way to control it w/ an argument. Here's an example:

 > t = Sys.time() 
 > diff(c(t, t + 1))
 Time difference of 1 secs

And yet:

> diff(c(t, t+10000))
Time difference of 1.157407 days

The "time delta" object has a units attribute, but it seems silly to write a bunch of conditionals to coerce everything into days, seconds etc.

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1  
So, what is your question? What do you really want to do? Get difference in seconds between two date objects? Sorry, but it's not clear to me. –  Andrie Mar 22 '11 at 19:06
    
I'd like it to return consist units regardless of input, i.e., no matter what the delta is between two dates, diff always returns the delta in the same units, be it days, seconds, years. –  John Horton Mar 22 '11 at 19:08

4 Answers 4

up vote 6 down vote accepted

I'm not sure what you mean by "a bunch of conditionals," just change the units manually.

> t = Sys.time()
> a <- diff(c(t,t+1))
> b <- diff(c(t, t+10000))
> units(a) <- "mins"
> units(b) <- "mins"
> a
Time difference of 0.01666667 mins
> b
Time difference of 166.6667 mins

see ?difftime . If you only need to use diff to get the difference between two times (rather than a longer vector), then, as Dirk suggests, use the difftime function with the units parameter.

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Thanks - I didn't realize that I can change units that way---I thought I would have to do something like if(diff(t)$units=="sec") ... –  John Horton Mar 22 '11 at 19:21

A POSIXct type (which you created by calling Sys.time()) always use fractional seconds since the epoch.

The difftime() functions merely formats this differently for your reading pleasure. If you actually specify the format, you get what you specified:

R> difftime(t+ 10000,t,unit="secs")
Time difference of 10000 secs
R> difftime(t+ 10000,t,unit="days")
Time difference of 0.115741 days
R> 
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I think you need difftime in which you can specify the desired units. See:

> difftime(Sys.time(), Sys.time()+10000)
Time difference of -2.777778 hours

> difftime(Sys.time(), Sys.time()+10000, units="secs")
Time difference of -10000 secs
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Not sure how precise you care to be, but you can get very specific about date-times with the lubridate package. A wonky thing about time units is that their length depends on when they occur because of leap seconds, leap days, and other conventions.

After you load lubridate, subtracting date times automatically creates a time interval object.

library(lubridate)
int <- Sys.time() - (Sys.time() + 10000) 

You can then change it to a duration, which measures the exact length of time. Durations display in seconds because seconds are the only unit that has a consistent length. If you want your answer in a specific unit, just divide by a duration object that has the length of one of those units.

as.duration(int)
int / dseconds(1)
int / ddays(1)
int / dminutes(5) #to use "5 minutes" as a unit

Or you could just change the int to a period. Unlike durations, periods don't have an exact and consistent length. But they faithfully map clock times. You can do math by adding and subtracting both periods and durations to date-times.

as.period(int)
Sys.time() + dseconds(5) + dhours(2) - ddays(1)
Sys.time() + hours(2) + months(5) - weeks(1) #these are periods
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