5

Here is my example. I am reading the following file: sample_data

library(dplyr)

txt <- c('"",  "MDN",                  "Cl_Date"',
          '"1",  "A",  "2017-04-15 15:10:42.510"',
          '"2",  "A",  "2017-04-01 14:47:23.210"',
          '"3",  "A",  "2017-04-01 14:49:54.063"',
          '"4",  "B",  "2017-04-30 13:25:00.000"',
          '"5",  "B",  "2017-04-03 17:53:13.217"',
          '"6",  "B",  "2017-04-15 15:17:43.780"')

ts <- read.csv(text = txt, as.is = TRUE)
ts$Cl_Date <- as.POSIXct(ts$Cl_Date)
ts <- ts %>% group_by(MDN) %>% arrange(Cl_Date) %>%
  mutate(time_diff = c(0,diff(Cl_Date)))
ts <-ts[order(ts$MDN, ts$Cl_Date),]

As a result I have

MDN Cl_Date         time_diff
A   4/1/2017 14:47  0
A   4/1/2017 14:49  2.514216665
A   4/15/2017 15:10 20180.80745
B   4/3/2017 17:53  0
B   4/15/2017 15:17 11.89202041
B   4/30/2017 13:25 14.92171551

So I group by MDN column and compute difference between Cl_Date column. As you can see sometime different in minutes (group A) and sometime difference in days (group B).

Why is time difference in different units and how to correct it?

P.S. I could not reproduce the same example with manual data.frame creation, so I had to read from file.

UPDATE 1 diff(ts$Cl_Date) seems to be consistent, everything is in minutes. Does something break within dplyr?

UPDATE 2

ts <- ts %>% group_by(MDN) %>% arrange(Cl_Date) %>%
  mutate(time_diff_2 = Cl_Date-lag(Cl_Date))

produces the same result.

5
  • 1
    Why don't you use an easily reproducible example like df <- data.frame(grp = rep(c("a", "b", "c", "d"), each = 3), time = as.POSIXct("2017-06-05 12:00:00") + c(c(0, 1, 11), c(0, 1, 11) * 60, c(0, 1, 11) * 60 * 60, c(0, 1, 11) * 60 * 60 * 24))
    – Henrik
    Jun 5, 2017 at 21:23
  • @Henrik Agree, thank you! Now, is it a bug and how do I report bug for dplyr? Jun 5, 2017 at 21:39
  • 2
    It's not a bug in dplyr, it's how difftime works. I think the relevant part of the help text is "If units = "auto", a suitable set of units is chosen, the largest possible [...] in which all the absolute differences are greater than one."
    – Henrik
    Jun 5, 2017 at 21:44
  • @Henrik, How do I provide units to diff function? Jun 5, 2017 at 21:46
  • @Henrik Also diff(ts$Cl_Date) seems to be fine, no funny units selection Jun 5, 2017 at 22:04

2 Answers 2

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ts <- ts %>% group_by(MDN) %>% arrange(Cl_Date) %>%
  mutate(time_diff_2 = as.numeric(Cl_Date-lag(Cl_Date), units = 'mins'))

Convert the time difference to a numeric value. You can use units argument to make the return values consistent.

2

According to @hadley here, the solution is to use lubridate instead of relying on base R.

This would be something like:

ts %>% 
  group_by(MDN) %>% 
  arrange(Cl_Date) %>%
  mutate(as.duration(Cl_Date %--% lag(Cl_Date)))

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