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I am trying to figure out an elegant way to use := assignment to replace many columns at once in a data.table by applying a shared function. A typical use of this might be to apply a string function (e.g., gsub) to all character columns in a table. It is not difficult to extend the data.frame way of doing this to a data.table, but I'm looking for a method consistent with the data.table way of doing things.

For example:

library(data.table)

m <- matrix(runif(10000), nrow = 100)
df <- df1 <- df2 <- df3 <- as.data.frame(m)
dt <- as.data.table(df)
head(names(df))
head(names(dt))

## replace V20-V100 with sqrt

# data.frame approach
# by column numbers
df1[20:100] <- lapply(df1[20:100], sqrt)
# by reference to column numbers
v <- 20:100
df2[v] <- lapply(df2[v], sqrt)
# by reference to column names
n <- paste0("V", 20:100)
df3[n] <- lapply(df3[n], sqrt)

# data.table approach
# by reference to column names
n <- paste0("V", 20:100)
dt[, n] <- lapply(dt[, n, with = FALSE], sqrt)

I understand it is more efficient to loop over a vector of column names using := to assign:

for (col in paste0("V", 20:100)) dt[, col := sqrt(dt[[col]]), with = FALSE]

I don't like this because I don't like reference the data.table in a j expression. I also know that I can use := to assign with lapply given that I know the column names:

dt[, c("V20", "V30", "V40", "V50", "V60") := lapply(list(V20, V30, V40, V50, V60), sqrt)]

(You could extend this by building an expression with unknown column names.)

Below are the ideas I tried on this, but I wasn't able to get them to work. Am I making a mistake, or is there another approach I'm missing?

# possible data.table approaches?
# by reference to column names; assignment works, but not lapply
n <- paste0("V", 20:100)
dt[, n := lapply(n, sqrt), with = FALSE]
# by (smaller for example) list; lapply works, but not assignment
dt[, list(list(V20, V30, V40, V50, V60)) := lapply(list(V20, V30, V40, V50, V60), sqrt)]
# by reference to list; neither assignment nor lapply work
l <- parse(text = paste("list(", paste(paste0("V", 20:100), collapse = ", "), ")"))
dt[, eval(l) := lapply(eval(l), sqrt)]
43

Yes, you're right in question here :

I understand it is more efficient to loop over a vector of column names using := to assign:

for (col in paste0("V", 20:100)) dt[, col := sqrt(dt[[col]]), with = FALSE]

Aside: note that the new way of doing that is :

for (col in paste0("V", 20:100))
  dt[ , (col) := sqrt(dt[[col]])]

because the with = FALSE wasn't easy to read whether it referred to the LHS or the RHS of :=. End aside.

As you know, that's efficient because that does each column one by one, so working memory is only needed for one column at a time. That can make a difference between it working and it failing with the dreaded out-of-memory error.

The problem with lapply on the RHS of := is that the RHS (the lapply) is evaluated first; i.e., the result for the 80 columns is created. That's 80 column's worth of new memory which has to be allocated and populated. So you need 80 column's worth of free RAM for that operation to succeed. That RAM usage dominates vs the subsequently instant operation of assigning (plonking) those 80 new columns into the data.table's column pointer slots.

As @Frank pointed to, if you have a lot of columns (say 10,000 or more) then the small overhead of dispatching to the [.data.table method starts to add up). To eliminate that overhead that there is data.table::set which under ?set is described as a "loopable" :=. I use a for loop for this type of operation. It's the fastest way and is fairly easy to write and read.

for (col in paste0("V", 20:100))
  set(dt, j = col, value = sqrt(dt[[col]]))

Although with just 80 columns, it's unlikely to matter. (Note it may be more common to loop set over a large number of rows than a large number of columns.) However, looped set doesn't solve the problem of the repeated reference to the dt symbol name that you mentioned in the question :

I don't like this because I don't like reference the data.table in a j expression.

Agreed. So the best I can do is revert to your looping of := but use get instead.

for (col in paste0("V", 20:100))
  dt[, (col) := sqrt(get(col))]

However, I fear that using get in j carry an overhead. Benchmarking made in #1380. Also, perhaps it is confusing to use get() on the RHS but not on the LHS. To address that we could sugar the LHS and allow get() as well, #1381 :

for (col in paste0("V", 20:100))
  dt[, get(col) := sqrt(get(col))]

Also, maybe value of set could be run within scope of DT, #1382.

for (col in paste0("V", 20:100))
  set(dt, j = col, value = sqrt(get(col))
2
  • 1
    Thank you so much for putting the parentheses around col. Until I remembered that trick, I was getting a column called "col".
    – Farrel
    Jun 24 '16 at 0:18
  • A faster alternative could be to change the name of the respective column first: setnames(dt, col, "v"), followed by dt[, v := sqrt(v)], and then change it back setnames(dt, "v", col). setnames changes names by reference so it should scale but better than get.
    – altabq
    Jul 2 '20 at 13:25
14

These should work if you want to refer to the columns by string name:

n = paste0("V", 20:100)
dt[, (n) := lapply(n, function(x) {sqrt(get(x))})]

or

dt[, (n) := lapply(n, function(x) {sqrt(dt[[x]])})]
3
  • 3
    An additional ) is needed in the last line: dt[, (n) := lapply(n, function(x) {sqrt(dt[[x]])})]
    – HywelMJ
    Oct 6 '15 at 22:56
  • Maybe add an .SDcols options too, such as dt[, (n) := lapply(.SD, sqrt), .SDcols = n]? Hmm.. on second thought maybe Simon already did something similar already. May 5 '16 at 22:43
  • What's mean this n in lapply(n, function(x) {sqrt(dt[[x]])})
    – Tao Hu
    Jun 6 '18 at 15:35
8

Is this what you are looking for?

dt[ , names(dt)[20:100] :=lapply(.SD, function(x) sqrt(x) ) , .SDcols=20:100]

I have heard tell that using .SD is not so efficient because it makes a copy of the table beforehand, but if your table isn't huge (obviously that's relative depending on your system specs) I doubt it will make much of a difference.

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  • 4
    I've been told that set can also speed up operations like this.
    – Frank
    Jun 5 '13 at 15:54
  • @Frank +1 for that answer, and I have book-marked for future reference. I wouldn't think to use a for loop here. Clever. Jun 5 '13 at 15:59
  • @Frank, I didn't know about the for loop + set approach. I will have to think about using that in the future. Jun 5 '13 at 16:18
  • 1
    @attitude_stool read this comment by the author of data.table. Apparently this is an ideal use of .SD and what it was designed for. Jun 12 '13 at 19:26
  • 1
    You could also probably shorten this to just dt[ , 20:100 := lapply(.SD, sqrt), .SDcols = 20:100] May 6 '16 at 9:33

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