25

I have the following data.table

x = structure(list(f1 = 1:3, f2 = 3:5), .Names = c("f1", "f2"), row.names = c(NA, -3L), class = c("data.table", "data.frame"))

I would like to apply a function to each row of the data.table. The function func.test uses args f1 and f2 and does something with it and returns a computed value. Assume (as an example)

func.text <- function(arg1,arg2){ return(arg1 + exp(arg2))}

but my real function is more complex and does loops and all, but returns a computed value. What would be the best way to accomplish this?

39

The best way is to write a vectorized function, but if you can't, then perhaps this will do:

x[, func.text(f1, f2), by = seq_len(nrow(x))]
  • 1
    Ah, didn't think of using <code>by = 1:nrow(x)</code> trick. Nice one – broccoli Aug 21 '14 at 17:31
  • Not sure why not just use .I, e.g., something like x[, func.text(f1, f2), by = .I] – David Arenburg Aug 23 '14 at 20:19
  • 1
    @DavidArenburg I have no idea what by=.I is doing. It's somehow not quite the same as by=1:nrow(x), as you can check by comparing e.g. x[, 1, by = .I] and x[, 1, by = 1:nrow(x)]. – eddi Aug 24 '14 at 5:29
  • would be great though if that worked as you'd expect it to work (also by=1:.N) – eddi Aug 24 '14 at 5:31
  • 2
    Yeah you probably right, but in this case it doesn't even look like the OP needs a by statement here, as his function already operates over the whole data set by row, so even x[, func.text(f1, f2)] will give the desired result. The problem will be that it will lose the data.table class and become a numeric vector. Adding by = .I will keep the class, but I'm not sure why or how (I'll probably will get some angry comment from @Arun pointing out my lack of understanding in data.table soon) – David Arenburg Aug 24 '14 at 10:27
12

The most elegant way I've found is with mapply:

x[, value := mapply(func.text, f1, f2)]
x
#    f1 f2    value
# 1:  1  3 21.08554
# 2:  2  4 56.59815
# 3:  3  5 151.4132
8

We can define rows with .I function.

dt_iris <- data.table(iris)
dt_iris[, ..I := .I]

## Let's define some function
some_fun <- function(dtX) {
    print('hello')
    return(dtX[, Sepal.Length / Sepal.Width])
}

## by row
dt_iris[, some_fun(.SD), by = ..I] # or simply: dt_iris[, some_fun(.SD), by = .I]

## vectorized calculation
some_fun(dt_iris) 
  • I am under the impression there was an age it was possible to directly use by=.I in the third component. No ? – Stéphane Laurent Feb 5 '16 at 2:07
  • @StéphaneLaurent sure, it is just to indicate that user sees the data, he applies by on. I have updated post to remove any doubt ;) – Cron Merdek Feb 5 '16 at 10:18
  • Sorry CronAcronis, maybe my comment is not clear. I mean it was possible to direclty do dt[, y:=somefun(x), by=I] in the past. But it is no possible now. Or maybe my memory is wrong. – Stéphane Laurent Feb 5 '16 at 12:31
  • @StéphaneLaurent I think you meant .I, so you can do dt_iris[, some_fun(.SD), by = .I], with dot. – Cron Merdek Feb 5 '16 at 12:54
  • Yes sorry, I meant .I. But I tried it yesterday and it didn't work... Hmm I have just tried now and it works.. Sorry, I was surely too tired :) – Stéphane Laurent Feb 5 '16 at 14:43

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