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I couldn't find the answer for this simple question.

what's the equivalent of selecting multiple columns in data.table just like this in data.frame

df <- data.frame(a=1,b=2,c=3)
df[,2:3]

thanks

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1 Answer 1

up vote 29 down vote accepted

Just set with = FALSE:

library(data.table)
dt <- data.table(a=1:2, b=2:3, c=3:4)
dt[, 2:3, with = FALSE]
#    b c
# 1: 2 3
# 2: 3 4

As far as I can tell, the argument is named "with" because it determines whether the column index should be evaluated within the frame of the data.table, as it would be when using, e.g., base R's with() and within().

From ?data.table:

with: By default 'with=TRUE' and 'j' is evaluated within the frame of 'x'. The column names can be used as variables. When 'with=FALSE', 'j' works as it does in '[.data.frame'.

And there is some relating thinking in ?setkey :

It isn't good programming practice, in general, to use column numbers rather than names. [...] If you use column numbers then bugs (possibly silent) can more easily creep into your code as time progresses if changes are made elsewhere in your code; e.g., if you add, remove or reorder columns in a few months time, a setkey [or a select] by column number will then refer to a different column, possibly returning incorrect results with no warning. (A similar concept exists in SQL where "select * from ..." is considered poor programming style [by some] when a robust, maintainable system is required.) If you really wish to use column numbers, it's possible but deliberately a little harder; e.g., setkeyv(DT,colnames(DT)[1:2]) [or setting with=FALSE in selects].

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thanks, completely missed that part! –  jamborta Nov 14 '12 at 17:39
    
No problem. Compare also dt[,"a"] and dt[,"a", with=FALSE] to see what a helpful option it really is. –  Josh O'Brien Nov 14 '12 at 17:41
    
any way to do this without with? for example DT[,list(b:c), as I found it convenient to transform the columns directly in the data table, e.g I can do DT[,list(1/b,2*c)], but this does not work with with. –  jamborta Nov 14 '12 at 18:00
    
You could use .SDcols=2:3 or the character vector of names. Not sure what you mean regarding example not working with with –  mnel Nov 14 '12 at 21:35
    
If you are wanting to set by reference DT[, c("b","c") := list(1/b, 2 * c)] should work. See the help for := –  mnel Nov 14 '12 at 21:39

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