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I'm trying to return multiple columns for some groups in data.table. I use a function to separate a list of values and compute a vector for each group. I'd like to return these values for a table like this

address1, time1, value1
address1, time2, value2
address1, time3, value3

I group time1-time2 in a function and would like to return something like this

address1,sum(value1),       mean(value1)                     (by timegr1)
address1,sum(value2+value3),mean(value2+value3)              (by timegr2)

I managed to compute all the values, just cannot format the results, so that it'd put the two time-groups in different lines and keep the sum and mean in the same line.

EDIT here is the code:

v <- data.table(address =c(1,1,1,1),time=c(1,50,51,52),value=c(1,2,3,4))

fun <- function(time,value) {
data <- data.table(time=time,value=value)
#this split depends on a number of criteria
k <- split(data,c(0,rep(1,nrow(data)-1))) 
k1 <- sapply(k,function(x) c(mean(x$value),sum(x$value)))
return(k1)
}

v1 <- v[,fun(time,value),by=address]

V1 comes out as

   address V1
1:       1  1
2:       1  1
3:       1  3
4:       1  9

I really need something like

   address  mean sum
1: 1        1    1
2: 1        3    9

thanks a lot.

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4  
Please provide code to create an actual data.table for us to work with. –  GSee Nov 5 '12 at 18:18
    
Your word example has address, timept and value referenced but your example data.table only has two columns, none called any of these. Please either change your word description or the data. –  mnel Nov 6 '12 at 0:41
    
thanks, updated the code. hope it's clearer now. –  jamborta Nov 6 '12 at 13:56
1  
I've read this a few times and I still don't follow. The trouble is the example data only has one group (address=1) so it's hard to see what you're after, as @Jake said. –  Matt Dowle Nov 7 '12 at 1:15
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2 Answers

up vote 3 down vote accepted

To return multiple rows, the function being applied by data.table should return either a vector or list of vectors, as in the example below.

library(data.table)

(dat <- data.table(expand.grid(sub=1:4, score=1:4), key="sub"))
#     sub score
#  1:   1     1
#  2:   1     2
#  3:   1     3
#  4:   1     4
#  5:   2     1
#  6:   2     2
#  7:   2     3
#  8:   2     4
#  9:   3     1
# 10:   3     2
# 11:   3     3
# 12:   3     4
# 13:   4     1
# 14:   4     2
# 15:   4     3
# 16:   4     4

dat[,list(stat=c("mean","sd"), value=c(mean(score),sd(score))),by=sub]
#    sub stat    value
# 1:   1 mean 2.500000
# 2:   1   sd 1.290994
# 3:   2 mean 2.500000
# 4:   2   sd 1.290994
# 5:   3 mean 2.500000
# 6:   3   sd 1.290994
# 7:   4 mean 2.500000
# 8:   4   sd 1.290994
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thanks Jake, I updated my description to be more specific. –  jamborta Nov 5 '12 at 23:58
1  
Okay, in that case v[,list(mean=mean(b),sum=sum(b)), by=a] gets you close to what you want, although it doesn't match exactly your desired output because the example doesn't really make sense. I.e., how is the data.table supposed to know to aggregate the a=1 rows into a single row, but for some reason to aggregate the a=2 rows into two separate rows like you have it arranged in your example? If all you specify in the by parameter is a, then it is going to aggregate completely according to a. More information is needed in the table to get your desired output. –  Jake Westfall Nov 6 '12 at 2:22
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I could only achieve this in two steps

fun <- function(x) {
    c(0,rep(1,length(x)-1)) 
}

v <- data.table(address =c(1,1,1,1),time=c(1,50,51,52),value=c(1,2,3,4))

v1 <- v[,group:=fun(time),by=address]

v2 <- v1[,list(mean=mean(value),sum=sum(value)),by=list(address,group)]

   address group mean sum
1:       1     0    1   1
2:       1     1    3   9
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