14

I am trying to calculate a median value across a number of columns, however my data is a bit funky. It looks like the following example.

library(data.table)

dt <- data.table("ID" = c(1,2,3,4),"none" = c(0,5,5,3), 
                 "ten" = c(3,2,5,4),"twenty" = c(0,2,3,1))


   ID none ten twenty
1:  1    0   3      0
2:  2    5   2      2
3:  3    5   5      3
4:  4    3   4      1

In the table to column represents the number of occurrences of that value. I am wanting to calculate the median occurrence.

For example for ID = 1

median(c(10, 10, 10))

is the calculation I am wanting to create.

for ID = 2

median(c(0, 0, 0, 0, 0, 10, 10, 20, 20))

I have tried using rep() and lapply() with very limited success and am after some clear guidance on how this might be achieved. I understand for the likes of rep() I would be having to hard code my value to be repeated (e.g. rep(0,2) or rep(10,2)) and this is what I expect. I am just struggling to create a list or vector with the repetitions from each column.

  • The code to create the dt in your example doesn't match the description of the problem. It's only a typo but confused me initially because all answers differ from your expected result. For ID = 2 the numbers for "none" and "twenty" are interchanged. With your code you will get for ID = 2 median(0,0,0,0,0,10,10,20,20). – Uwe Jun 2 '16 at 7:08
  • @Uwe Okay, good catch. I've tried to fix it, so that the displayed stuff matches the example input. I doubt the OP would mind edits if there are problems; they can always roll them back if we're wrong about it. – Frank Jun 2 '16 at 18:31
16

Here's another data.table way (assuming unique ID):

dt[, median(rep(c(0, 10, 20), c(none, ten, twenty))), by=ID]
#    ID V1
# 1:  1 10
# 2:  2  0
# 3:  3 10
# 4:  4 10

This is just an attempt to get @eddi's answer without reshaping (which I tend to use as a last resort).

  • Nice clean single line of code which is what i was trying to achieve. I have to hardcode my values so this best answers the question, although I can also see how it would be suitable if my values were in a column too. – Dan Jun 3 '16 at 0:51
12

You need a dictionary to translate column names to corresponding numbers, and then it's fairly straightforward:

dict = data.table(name = c('none', 'ten', 'twenty'), number = c(0, 10, 20))

melt(dt, id.var = 'ID')[
  dict, on = c(variable = 'name')][, median(rep(number, value)), by = ID]
#   ID V1
#1:  1 10
#2:  2  0
#3:  3 10
#4:  4 10
6

Here's a way that avoids by-row operations and reshaping:

dt[, m := {
    cSD  = Reduce(`+`, .SD, accumulate=TRUE)
    k    = floor(cSD[[length(.SD)]]/2)

    m    = integer(.N)
    for(i in seq_along(cSD)) {
        left = m == 0L
        if(!any(left)) break
        m[left] = i * (cSD[[i]][left] >= k[left])
    }
    names(.SD)[m]
}, .SDcols=none:twenty]

which gives

   ID none ten twenty    m
1:  1    0   3      0  ten
2:  2    5   2      2 none
3:  3    5   5      3  ten
4:  4    3   4      1  ten

For the loop, I'm borrowing @alexis_laz' style, e.g. https://stackoverflow.com/a/30513197/

I've skipped translation of the column names, but that's pretty straightforward. You could use c(0,10,20) instead of names(.SD) at the end.

  • The .SDcols = none:twenty is nifty. Didn't know you could do that. Also, what is .N? – CJB Jun 2 '16 at 8:50
  • 2
    @Bazz Yeah, that shortcut for .SDcols is a fairly recent addition. .N refers to the number of rows in the table, or, if there's a by= clause (like in Arun's answer), it refers to the number of rows in the by-group. – Frank Jun 2 '16 at 12:02
3

Here is a rowwise dplyr way:

dt %>% rowwise %>% 
       do(med = median(c(rep(0, .$none), rep(10, .$ten), rep(20, .$twenty)))) %>%  
       as.data.frame
  med
1  10
2   0
3  10
4  10

Inspired by @Arun's answer, this is also working:

dt %>% group_by(ID) %>% 
       summarise(med = median(rep(c(0, 10, 20), c(none, ten, twenty))))

Source: local data table [4 x 2]

     ID   med
  (dbl) (dbl)
1     1    10
2     2     0
3     3    10
4     4    10

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