Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am having a problem with subtracting two columns of a table consisting of both date and time in a single cell.

> TimeData

DEPARTURE_TIME      LAB_TIME
1/30/2010 4:18      1/30/2010 0:29
1/30/2010 4:18      1/30/2010 0:29
1/30/2010 6:49      1/30/2010 0:48
1/30/2010 6:49      1/30/2010 0:48
1/30/2010 9:42      1/30/2010 1:29
1/30/2010 9:42      1/30/2010 1:29
1/30/2010 7:25      1/30/2010 1:16

I need to obtain the difference between Departure Time and Lab Time in hours and minutes.

Do I need to separate time and date or is there a way to subtract the data in this way ?

I really appreciate any help.

share|improve this question
    
Are these columns strings or dates (in R)? –  mathematical.coffee Feb 21 '12 at 5:15

1 Answer 1

Try TimeData$DEPARTURE_TIME - TimeData$LAB_TIME ?

It depends on whether your xxx_TIME columns are strings or whether you've converted them to date-times.

Suppose they're strings (they've been read in using read.csv or something similar); then to convert them to date-time objects you can use as.POSIXct (see ?as.POSIXct and strptime):

# convert the string columns to dates
TimeData$DEPARTURE_TIME <- as.POSIXct(TimeData$DEPARTURE_TIME,
                                      format='%m/%d/%Y %H:%M')
TimeData$LAB_TIME       <- as.POSIXct(TimeData$LAB_TIME,
                                      format='%m/%d/%Y %H:%M')

Note the format argument: looks like yours are in month/day/year hours:minutes(25 hr clock) format. See ?strptime for more info on date formats.

Then to calculate the difference, you can do either:

diffs <- TimeData$DEPARTURE_TIME - TimeData$LAB_TIME

which picks the appropriate time units for you, OR to specify hours you can use difftime (see ?difftime):

# like saying DEPARTURE_TIME-LAB_TIME but more control over the output
diffs <- difftime(TimeData$DEPARTURE_TIME,TimeData$LAB_TIME,units="hours")

The resulting object diffs looks like this:

> diffs
Time differences in hours
[1] 3.816667 3.816667 6.016667 6.016667 8.216667 8.216667 6.150000
attr(,"tzone")
[1] ""

To extract just the numeric part, use as.numeric(diffs). To convert this into an hours vector and a minutes vector...well, 60 minutes to a second, etc:

# use as.numeric(diffs) to retrieve just the vector.
# let's convert to hours & minutes...
diffs.hours <- floor(as.numeric(diffs))
diffs.minutes <- (as.numeric(diffs)%%1 * 60)

Giving you:

> diffs.hours
[1] 3 3 6 6 8 8 6
> diffs.minutes
[1] 49 49  1  1 13 13  9
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.