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How do you select fields from a data.table if the field names are stored in a variable? For instance, this works for a data.frame:


 >df <- data.frame(col1 = 1:3)
 >colname <- "col1"
 >df[colname] <- 4:6
 >df
  col1
1    4
2    5
3    6

How can I perform this same operation for a data.table, either with or without := notation? The obvious thing of dt[,list(colname)] doesn't work (nor did I expect it to).

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1 Answer 1

up vote 17 down vote accepted

Try :

DT = data.table(col1 = 1:3)
colname = "col1"

DT[, colname, with=FALSE]    # select
#    col1
# 1:    1
# 2:    2
# 3:    3

DT[, colname:=4:6, with=FALSE]    # assign
#    col1
# 1:    4
# 2:    5
# 3:    6

The latter is known as a column plonk, because you replace the whole column vector by reference. If a subset i was present, it would subassign by reference.

And to answer further question in comment, here's one way (as usual there are many ways) :

DT[, colname:=cumsum(get(colname)), with=FALSE]
#    col1
# 1:    4
# 2:    9
# 3:   15 

or, you might find it easier to read, write and debug just to eval a paste, similar to constructing a dynamic SQL statement to send to a server :

expr = paste0("DT[,",colname,":=cumsum(",colname,")]")
expr
# [1] "DT[,col1:=cumsum(col1)]"
> eval(parse(text=expr))
#    col1
# 1:    4
# 2:   13
# 3:   28

If you do that a lot, you can define a helper function EVAL :

EVAL = function(...)eval(parse(text=paste0(...)),envir=parent.frame(2))

EVAL("DT[,",colname,":=cumsum(",colname,")]")
#    col1
# 1:    4
# 2:   17
# 3:   45

Now that data.table 1.8.2 automatically optimizes j for efficiency, it may be preferable to use the eval method. The get() in j prevents some optimizations, for example.

Or, there is set(). A low overhead, functional form of :=, which would be fine here. See ?set.

set(DT,j=colname,value=cumsum(DT[[colname]]))
DT
#    col1
# 1:    4
# 2:   21
# 3:   66
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1  
Thanks for the reply Matthew. The with=FALSE definitely solves part of my problem. In reality though, I want to replace the column with the cumsum of the column. Can I reference the column name by variable on the right-hand side of the assignment somehow? –  frankc Sep 12 '12 at 16:48
    
Acutally, I just storded the cumsum externally with a different name that doesn't exist inside the dt and that works fine. –  frankc Sep 12 '12 at 17:18
1  
But that would be whole extra line! Not very elegant :) But ok sometimes it's useful. In those cases best to start the variable name with ., or .. to avoid any potential masking if DT ever did contain that symbol as a column name in future (and stick to the convention that column names don't start with .). There are some feature requests to make it more robust to scope issues like that, such as adding .() and ..(). –  Matt Dowle Sep 12 '12 at 17:27
    
I replied before I noticed you edited your answer. My first thought had been eval(parse()) but for some reason I was having trouble getting it to work, when it dawned on me to just do it externally. This is a great answer with lots of things I didn't think about. Thanks for data.table in general, it's a great package. –  frankc Sep 12 '12 at 17:32
1  
Note that you could use the quasi-perl type string interpolation of fn$ from the gsubfn package to improve the readability of the EVAL solution: library(gsubfn); fn$EVAL( "DT[,$colname:=cumsum($colname)]" ) . –  G. Grothendieck Jan 14 '13 at 14:11

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