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I have a function in my real-world problem that returns a list. Is there any way to use this with the dplyr mutate()? This toy example doesn't work -:

it = data.table(c("a","a","b","b","c"),c(1,2,3,4,5), c(2,3,4,2,2))

myfun = function(arg1,arg2) {

temp1 = arg1 + arg2
temp2 = arg1 - arg2
list(temp1,temp2)

}

myfun(1,2)

it%.%mutate(new = myfun(V2,V3))

I see that it is cycling through the output of the function in the first "column" of the new variable, but do not understand why.

Thanks!

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1  
It's not supported currently but will be in the next version of dplyr. (At least for data.frames, given Arun's comments it's not clear that data.table lets you use lists as columns) –  hadley Feb 8 at 15:04
    
@hadley, the first line on the data.table homepage is: "Fast subset, fast grouping, fast assign, fast ordered joins and list columns in a short and flexible syntax". It does support. Given that he mentions that the output is being "cycled", I'm guessing Brodie's answer is what he's expecting. RonRich, please show us how the output should look like. –  Arun Feb 8 at 21:01
    
brodie's output is correct. i will post a new question with a data.table orientation that illustrates my real world issue more clearly. –  RonRich Feb 8 at 21:18
    
@Arun got it - I was just confused because data.table normally turns lists into columns –  hadley Feb 9 at 15:27
    
please see here -: stackoverflow.com/questions/21663007/… –  RonRich Feb 9 at 18:21

2 Answers 2

up vote 6 down vote accepted

The idiomatic way to do this using data.table would be to use the := (assignment by reference) operator. Here's an illustration:

it[, c(paste0("V", 4:5)) := myfun(V2, V3)]

If you really want a list, why not:

as.list(it[, myfun(V2, V3)])

Alternatively, maybe this is what you want, but why don't you just use the data.table functionality:

it[, c(.SD, myfun(V2, V3))]
#    V1 V2 V3 V4 V5
# 1:  a  1  2  3 -1
# 2:  a  2  3  5 -1
# 3:  b  3  4  7 -1
# 4:  b  4  2  6  2
# 5:  c  5  2  7  3    

Note that if myfun were to name it's output, then the names would show up in the final result columns:

#    V1 V2 V3 new.1 new.2
# 1:  a  1  2     3    -1
# 2:  a  2  3     5    -1
# 3:  b  3  4     7    -1
# 4:  b  4  2     6     2
# 5:  c  5  2     7     3    
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@Arun, gasp! when was the multi-variable in-place modification implemented? I've been pining for that forever. –  BrodieG Feb 7 at 16:00
    
@BrodieG Looong time ago :) Maybe 1.8.6 or earlier? –  Ricardo Saporta Feb 7 at 21:31
    
I'm not certain this is what the OP wanted. What if myfun was returning a linear model? –  hadley Feb 8 at 15:04
    
@hadley, try: data.table(a=1:3, b=list(1, list("hello", "goodbye"), 3)), but I haven't tested how gracefully this will behave... Also, unclear at all what the OP wants, but based on the specific example he gave it looks like he's returning vectors of same length as original columns, so I doubt he's thinking of returning non conforming objects. –  BrodieG Feb 8 at 15:13
1  
@hadley, more directly: it[, list(list(myfun(V2, V3))), by=rep(1, nrow(it))] where myfun returns an lm object. –  BrodieG Feb 8 at 15:18

The mutate() function is designed to add new columns to the existing data frame. A data frame is a list of vectors of the same length. Thus, you cant add a list as a new column, because a list is not a vector.

You can rewrite your function as two functions, each of which return a vector. Then apply each of these separately using mutate() and it should work.

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2  
But a list is a vector... –  hadley Feb 8 at 15:02
    
hmmm....I clearly need to do some homework. –  Andrew Barr Feb 8 at 18:46

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