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I'm using the data.table package to speed up some summary statistic collection on a data set.

I'm curious if there's a way to group by more than one column. My data looks like this:

  purchaseAmt        adShown        url
   15.54            00001         150000001
    4.82            00002         150000001
  157.99            05005         776300044
   ...               ...            ...

I can do something like this:

adShownMedian <- df1[,median(purchaseAmt),by="adShown"]

to get each ad's median. How would I do something that combines adShown and url?

I've tried this:

adShownMedian <- df1[,median(purchaseAmt),by=c("adShown","url")]

but no luck.

Any suggestions?

share|improve this question
1  
What version of data.table are you using? I'm fairly certain version 1.8.2 allows you to pass a character vector of column names to the by argument. – BenBarnes Sep 18 '12 at 14:52
2  
Exactly. Either a (very) old version of data.table, or there was some other error. ?data.table says: "by - A single unquoted column name, a list() of expressions of column names, a single character string containing comma separated column names, or a character vector of column names." So c("adShown","url") should be fine, or "adShown,url", or list(adShown,url). – Matt Dowle Sep 18 '12 at 15:13
    
@BenBarnes: Good catch, I'm still back on 1.8. – screechOwl Sep 18 '12 at 16:34
up vote 26 down vote accepted

Use by=list(adShown,url) instead of by=c("adShown","url")

Example:

set.seed(007) 
DF <- data.frame(X=1:20, Y=sample(c(0,1), 20, TRUE), Z=sample(0:5, 20, TRUE))

library(data.table)
DT <- data.table(DF)
DT[, Mean:=mean(X), by=list(Y, Z)]


     X Y Z      Mean
 1:  1 1 3  1.000000
 2:  2 0 1  9.333333
 3:  3 0 5  7.400000
 4:  4 0 5  7.400000
 5:  5 0 5  7.400000
 6:  6 1 0  6.000000
 7:  7 0 3  7.000000
 8:  8 1 2 12.500000
 9:  9 0 5  7.400000
10: 10 0 2 15.000000
11: 11 0 4 14.500000
12: 12 0 1  9.333333
13: 13 1 1 13.000000
14: 14 0 1  9.333333
15: 15 0 2 15.000000
16: 16 0 5  7.400000
17: 17 1 2 12.500000
18: 18 0 4 14.500000
19: 19 1 5 19.000000
20: 20 0 2 15.000000
share|improve this answer
    
But by=c("adShown","url") should be fine, too. +1 anyway. – Matt Dowle Sep 18 '12 at 15:15
3  
Is it possible to just show the aggregated Y, Z and Mean columns, just as aggregate works? – kahlo May 17 '14 at 8:34
    
as far as I can tell, with list you don't need to quote the names as you do with vectors c(), which is kind of interesting. – PatrickT Dec 16 '15 at 7:39

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