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I'm trying to subtract 2 character vectors containing date time information in the following format:

> dput(train2)

structure(list(time2 = c("2011-09-01 23:44:52.533", "2011-09-05 12:25:37.42", 
"2011-08-24 12:56:58.91", "2011-10-25 07:18:14.722", "2011-10-25 07:19:51.697"
), time3 = c("2011-09-01 23:43:59.752", "2011-09-05 12:25:01.187", 
"2011-08-24 12:55:13.012", "2011-10-25 07:16:51.759", "2011-10-25 07:16:51.759"
)), .Names = c("time2", "time3"), row.names = c(NA, 5L), class = "data.frame")

I've hunted around and played with zoo, as.Date, as.POSIXct, etc. to try and find the correct code to subtract 2 datetime objects and get an answer in seconds but without luck.

I'd appreciate any suggestions.

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2 Answers 2

up vote 5 down vote accepted

Easy peasy:

R> now <- Sys.time()
R> then <- Sys.time()
R> then - now
Time difference of 5.357 secs
R> class(then - now)
[1] "difftime"
R> as.numeric(then - now)
[1] 5.357
R> 

And for your data:

R> df
                    time2                   time3
1 2011-09-01 23:44:52.533 2011-09-01 23:43:59.752
2  2011-09-05 12:25:37.42 2011-09-05 12:25:01.187
3  2011-08-24 12:56:58.91 2011-08-24 12:55:13.012
4 2011-10-25 07:18:14.722 2011-10-25 07:16:51.759
5 2011-10-25 07:19:51.697 2011-10-25 07:16:51.759
R> df$time2 <- strptime(df$time2, "%Y-%m-%d %H:%M:%OS")
R> df$time3 <- strptime(df$time3, "%Y-%m-%d %H:%M:%OS")
R> df
                    time2                   time3
1 2011-09-01 23:44:52.533 2011-09-01 23:43:59.752
2 2011-09-05 12:25:37.420 2011-09-05 12:25:01.187
3 2011-08-24 12:56:58.910 2011-08-24 12:55:13.012
4 2011-10-25 07:18:14.722 2011-10-25 07:16:51.759
5 2011-10-25 07:19:51.697 2011-10-25 07:16:51.759
R> df$time2 - df$time3
Time differences in secs
[1]  52.781  36.233 105.898  82.963 179.938
attr(,"tzone")
[1] ""
R> 

and added back as a numeric to the data frame:

R> df$dt <- as.numeric(df$time2 - df$time3)
R> df
                    time2                   time3      dt
1 2011-09-01 23:44:52.533 2011-09-01 23:43:59.752  52.781
2 2011-09-05 12:25:37.420 2011-09-05 12:25:01.187  36.233
3 2011-08-24 12:56:58.910 2011-08-24 12:55:13.012 105.898
4 2011-10-25 07:18:14.722 2011-10-25 07:16:51.759  82.963
5 2011-10-25 07:19:51.697 2011-10-25 07:16:51.759 179.938
R> 
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Thank you very much. I would have never gotten that on my own. Date-time stuff is a 'known unknown' for me (to borrow from Don Rumsfeld). –  screechOwl Sep 26 '12 at 22:38
4  
It might be worth pointing out that you can force the time difference to be a particular unit of time using difftime(then,now,units="secs") or difftime(then,now,units="mins") etc... See ?difftime –  thelatemail Sep 26 '12 at 23:02
    
@screechOwl: As with many things R, it takes some head-scratching and forehead-banging at times but it is very, very powerful. Definitely worth learning. –  Dirk Eddelbuettel Sep 26 '12 at 23:10
    
This answer is potentially not correct. By default difftime objects have units = "auto" and are thus presented in the most suitable units (something like smallest unit such that unit is a consistent size and absolute differences are greater than one). as.numeric should use units = "secs". –  Sam Brightman Jul 10 at 6:10
>  x1<-"2013-03-03 23:26:46.315" 
>  x2<-"2013-03-03 23:31:53.091"
>  x1 <- strptime(x1, "%Y-%m-%d %H:%M:%OS")
>  x2 <- strptime(x2, "%Y-%m-%d %H:%M:%OS")
> x1
[1] "2013-03-03 23:26:46"
> x2
[1] "2013-03-03 23:31:53"

I followed the answer of @Dirk Eddelbuettel, but I am losing precision. How can I force R to not be cuting parts of second?

Thankfully (man of strptime) I answered my question myself:

op <- options(digits.secs = 3)

After applying this setting the precision will be used.

http://stat.ethz.ch/R-manual/R-devel/library/base/html/strptime.html

The belowe may be useful if you would like to get difference in seconds, but get in minutes:

> as.numeric(x2-x1,units="secs")
[1] 306.776
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