4

Every documentation I've read seems to indicate that durations can be negative in lubridate 1.7.4, including the examples provided with the R Documentation:

> duration(-1, "days")
> duration(day = -1)

This one bugfix back in 2009 says something similar with example output:

> new_duration(secs = -1, mins = -1, hours = -1)
[1] "-1 hours, -1 minutes and -1 seconds"

But when I run duration(-1, "days"), R returns:

[1] "86400s (~1 days)"

What's the deal?

2
  • How can a duration be negative? It doesn't make logical sense.
    – thc
    Jun 2, 2018 at 0:03
  • @thc any time an expression a - b makes sense, negative values of b also necessarily make sense. lubridate allows subtracting durations from times, so it makes sense to allow those durations to be negative and to support a negation operation. Jun 7, 2021 at 14:15

2 Answers 2

5

Yes, they can be negative. From a reading of the source code, this is an artifact of the print method for the Duration class. Inspecting the object shows that it stays negative despite not displaying as such, and behaves like a negative number as it should, as shown below.

I think the culprit is line 102 of the source code here. The format.Durationfunction calls abs when printing a Duration. I guess this is intended behaviour, though you'd have to take it up with the developers for the reasoning (probably because people tend to understand durations as positive.)

EDIT: in Dec 2019 the print method was changed to show negative durations with a leading -, so this should only happen on older version of lubridate now.

library(lubridate)
neg <- duration(-1)
pos <- duration(2)
neg + pos
#> [1] "1s"
unclass(neg)
#> [1] -1
1

I guess there is still an issue when you print it, but the duration works fine when negative:

date <- mdy("7/8/17")
date - duration(10, "days")
# [1] "2017-06-28"
date + duration(-10, "days)
# [1] "2017-06-28"

The duration is a class with .Data slot containing the duration in seconds, and you can check to confirm that it's indeed negative:

duration(-10, "days")@.Data
# [1] -864000
duration(-10, "days")@.Data / 3600 / 24 # to get the days:
# [1] -10

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