3

I have a data.frame with 5 variables: day (Date, format: "YYYY-MM-DD"), hour (POSIXct, format: "YYYY-MM-DD hh:mm:ss"), group (chr), measure_start (numeric) and measure_end (numeric).

df <- structure(list(
  day = structure(c(18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116, 18116), class = "Date"), 
  hour = structure(c(1565275500, 1565276400, 1565277300, 1565278200, 1565279100, 1565280000, 1565280900, 1565281800, 1565282700, 1565275500, 1565276400, 1565277300, 1565278200, 1565279100, 1565280000, 1565280900, 1565281800, 1565282700), class = c("POSIXct", "POSIXt"), tzone = ""), 
  group = c("GROUP1", "GROUP1", "GROUP1", "GROUP1", "GROUP1", "GROUP1", "GROUP1", "GROUP1", "GROUP1", "GROUP2", "GROUP2", "GROUP2", "GROUP2", "GROUP2", "GROUP2", "GROUP2", "GROUP2", "GROUP2"), 
  measure_start = c(2, 3, 3, 2, 4, 5, 7, 8, 7, 15, 16, 32, 20, 21, 40, 15, 13, 22), 
  measure_end = c(3, 3, 3, 5, 4, 7, 7, 8, 7, 16, 15, 31, 20, 21, 42, 15, 13, 26)),
  row.names = c(NA, -18L), class = "data.frame")

For each row "i" of the data.frame I want to get the first row for which the condition "measure_end >= 2 * measure_start_i" is met; BUT ONLY for the hours of the day that are greater or equal to the hour of row "i", AND grouped by the same day and group of row the "i".

In other words, for each observation [day_i, hour_i, group_i, measure_start_i, measure_end_i] I want to get: which.min(measure_end >= 2 * measure_start_i | (day == day_i) & (group == group_i) & (hour >= hour_i)).

For instance, for the example above, the expected output should be:

          day                hour  group measure_start measure_end      row_with_me_2x_current_ms
1  2019-08-08 2019-08-08 11:45:00 GROUP1             2           3                              4
2  2019-08-08 2019-08-08 12:00:00 GROUP1             3           3                              6
3  2019-08-08 2019-08-08 12:15:00 GROUP1             3           3                              6
4  2019-08-08 2019-08-08 12:30:00 GROUP1             2           5                              4
5  2019-08-08 2019-08-08 12:45:00 GROUP1             4           4                              8
6  2019-08-08 2019-08-08 13:00:00 GROUP1             5           7                             NA
7  2019-08-08 2019-08-08 13:15:00 GROUP1             7           7                             NA
8  2019-08-08 2019-08-08 13:30:00 GROUP1             8           8                             NA
9  2019-08-08 2019-08-08 13:45:00 GROUP1             7           7                             NA
10 2019-08-08 2019-08-08 11:45:00 GROUP2            15          16                             12
11 2019-08-08 2019-08-08 12:00:00 GROUP2            16          15                             15
12 2019-08-08 2019-08-08 12:15:00 GROUP2            32          31                             NA
13 2019-08-08 2019-08-08 12:30:00 GROUP2            20          20                             15
14 2019-08-08 2019-08-08 12:45:00 GROUP2            21          21                             15
15 2019-08-08 2019-08-08 13:00:00 GROUP2            40          42                             NA
16 2019-08-08 2019-08-08 13:15:00 GROUP2            15          15                             NA
17 2019-08-08 2019-08-08 13:30:00 GROUP2            13          13                             18
18 2019-08-08 2019-08-08 13:45:00 GROUP2            22          26                             NA

My data.frame is pretty large, so I am guessing a data.table approach would probably work best. I am still not very familiarized with the data.table syntax, though. My attempt below did not help much:

dt = data.table(df)
dt[,row_with_me_2x_current_ms:= which.min(dt[,measure_end] / measure_start >= 2) ,by=.(day,group)]
2
  • Can you show the expected output
    – akrun
    Jun 27, 2020 at 20:41
  • The expected output is shown above. Thanks!
    – pabc
    Jun 27, 2020 at 20:55

2 Answers 2

3

Here is another option using non-equi join from data.table:

setDT(df)[, c("rn", "twice") := .(.I, 2 * measure_start)]

df[, row_with_me_2x_current_ms := 
    df[.SD, on=.(group, day, hour>=hour, measure_end>=twice), mult="first", rn]
]
0

If we want to get the first index of logical vector. We can group over 'day', 'group', then loop over the sequence of 'measure_start' with lapply, subset the value of 'measure_start' ('mst'), divide with the 'measure_end', get the index of the first row that meets the condition and assign it

library(data.table) 
dt[, row_with_me_2x_current_ms:= 
     unlist(lapply(seq_along(measure_start), function(i) {
        mst <- measure_start[i]
        i2 <- which((measure_end/mst) >=2)
        .I[i2[i2 >= i][1]]})),
   by = .(group, day)]
dt
#           day                hour  group measure_start measure_end row_with_me_2x_current_ms
# 1: 2019-08-08 2019-08-08 09:45:00 GROUP1             2           3                         4
# 2: 2019-08-08 2019-08-08 10:00:00 GROUP1             3           3                         6
# 3: 2019-08-08 2019-08-08 10:15:00 GROUP1             3           3                         6
# 4: 2019-08-08 2019-08-08 10:30:00 GROUP1             2           5                         4
# 5: 2019-08-08 2019-08-08 10:45:00 GROUP1             4           4                         8
# 6: 2019-08-08 2019-08-08 11:00:00 GROUP1             5           7                        NA
# 7: 2019-08-08 2019-08-08 11:15:00 GROUP1             7           7                        NA
# 8: 2019-08-08 2019-08-08 11:30:00 GROUP1             8           8                        NA
# 9: 2019-08-08 2019-08-08 11:45:00 GROUP1             7           7                        NA
#10: 2019-08-08 2019-08-08 09:45:00 GROUP2            15          16                        12
#11: 2019-08-08 2019-08-08 10:00:00 GROUP2            16          15                        15
#12: 2019-08-08 2019-08-08 10:15:00 GROUP2            32          31                        NA
#13: 2019-08-08 2019-08-08 10:30:00 GROUP2            20          20                        15
#14: 2019-08-08 2019-08-08 10:45:00 GROUP2            21          21                        15
#15: 2019-08-08 2019-08-08 11:00:00 GROUP2            40          42                        NA
#16: 2019-08-08 2019-08-08 11:15:00 GROUP2            15          15                        NA
#17: 2019-08-08 2019-08-08 11:30:00 GROUP2            13          13                        18
#18: 2019-08-08 2019-08-08 11:45:00 GROUP2            22          26                        NA
12
  • Thanks for your suggestion, but it is important that we find the first index where the condition is met for each row (and not only the first one). Please see the expected output above.
    – pabc
    Jun 27, 2020 at 20:54
  • @pabc May be your logic is not correct or the expected output.. I can't replicate those values in the expected output column
    – akrun
    Jun 27, 2020 at 21:13
  • Hi @akrun. Sorry if my logic was not clear. The output column should return the first index of the rows, grouped under (day, group), for which the value in the column "measure_end" is at least twice the value of "measure_start". This calculation should be done for each row. For instance: for row 1, we have measure_start == 2. So the returned value should be "4", which is the first row for which measure_end >=2. For row 2, we have measure_start == 3, so the returned value should be "6", which is the first row for which measure_end >=3; and so on...
    – pabc
    Jun 27, 2020 at 21:39
  • @pabc I was trying that logic. Based on your code for the first row (not including the group here) which((dt$measure_end[1]/dt$measure_start) >=2)# integer(0)
    – akrun
    Jun 27, 2020 at 21:45
  • @pabc i.e. 3/5 = 0.6 and is not equal to >=2
    – akrun
    Jun 27, 2020 at 21:46

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