I would like to use the data.table package in R to calculate column means for many columns by another set of columns. I know how to do this for a few columns, and I provide an example below. However, in my non-toy example, I have tens of variables I would like to do this for, and I would like to find a way to do this from a vector of the column names. Is this possible?


# creates data table
dfo <- data.frame(bananas = 1:5, 
             melonas = 6:10,
             yeah = 11:15,
             its = c(1,1,1,2,2)
dto <- data.table(dfo)

# gets column means by 'its' column
.('bananas_mean' = mean(bananas),
  'melonas_mean' = mean(melonas),
  'yeah_mean' = mean(yeah)
by = .(its)]
  • 4
    This stackoverflow.com/q/16846380 ?
    – Frank
    May 5, 2017 at 14:34
  • 1
    Following up on Frank's comment, to get the naming the way you want you'd only need a slight modification: cols <- c("bananas", "melonas", "yeah"); dto[,(paste0(cols, "_mean")) := lapply(.SD, mean), by = its, .SDcols = cols]
    – Mike H.
    May 5, 2017 at 14:54
  • I think there might be a problem with my R. I tried that exact code, and I get no output. Any idea why?
    – BioBroo
    May 5, 2017 at 14:59
  • Well it's updating dto so have you tried looking at dto after you run it?
    – Mike H.
    May 5, 2017 at 15:00
  • Oh that's very interesting. It works! I never saw R do this before.
    – BioBroo
    May 5, 2017 at 15:03

2 Answers 2


Using data.table:

d <- dto[, lapply(.SD, mean), by=its]


   its bananas melonas yeah
1:   1     2.0     7.0 12.0
2:   2     4.5     9.5 14.5

Obviously, other functions could be used and combined. Hope it helps.


The OP has requested to calculate column means for many columns ... from a vector of the column names. In addition, the OP has demonstrated in his sample code that he wants to rename the resulting columns.

Both the excepted answer and the solution suggested in this comment do not fully meet all these requirements. The accepted answer computes means for all columns of the data.table and doesn't rename the results. The solution in the comments does use a vector of column names and renames the results but modifies the original data.table while the OP expects a new object.

The requirements of the OP can be met using the code below:

# define columns to compute mean of
cols <- c("bananas", "melonas")
# compute means for selected columns and rename the output
result <- dto[, lapply(.SD, mean), .SDcols = cols, by = its
              ][, setnames(.SD, cols, paste(cols, "mean", sep = "_"))]

#   its bananas_mean melonas_mean
#1:   1          2.0          7.0
#2:   2          4.5          9.5

Means are only computed for columns given as character vector of column names, the output columns have been renamed, and dto is unchanged.

Edit Thanks to this comment and this answer, there is a way to make data.table rename the output columns automagically:

result <- dto[, sapply(.SD, function(x) list(mean = mean(x))), .SDcols = cols, by = its]
#   its bananas.mean melonas.mean
#1:   1          2.0          7.0
#2:   2          4.5          9.5
  • 1
    Could also do f <- function(x) list(mean = mean(x)) ; dto[, sapply(.SD, f), .SDcols = cols] or such. Or for multiple function it could be generalized to f <- function(x) c(mean = mean(x), max = max(x)) ; dto[, sapply(.SD, f), .SDcols = cols] or similar or even f <- function(x) list(mean = mean(x), max = max(x)) ; dto[, unlist(lapply(.SD, f)), .SDcols = cols] May 7, 2017 at 17:26
  • It is taken from here btw, which is probably a dupe target of this question May 7, 2017 at 17:39
  • @DavidArenburg Unfortunately, the generalized version with multiple functions doesn't play nicely when combined with grouping
    – Uwe
    May 7, 2017 at 17:53
  • This is the best I could think of f <- function(x, y) list(mean = mean(x), max = max(x)) ; dto[, setDT(do.call(rbind.data.frame, lapply(.SD, f)), keep.rownames = TRUE), .SDcols = cols, by = its] May 7, 2017 at 18:43

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