Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

data.table is a fantastic R package and I am using it in a library I am developing. So far all is going very well, except for one complication. It seems to be much more difficult (compared to the conventional data frames) to refer to data.table columns using names saved in variables (as for data frames would be, for example: colname="col"; df[df[,colname]<5,colname]=0).

Perhaps what complicates the things most is the apparent lack of consistency of syntax on this in data.table. In some cases, eval(colname) and get(colname), or even c(colname) seem to work. In others, DT[,colname, with=F] is the solution. Yet in others, such as, for example, the set() and subset() functions, I haven't found a solution at all. Finally, an extreme, albeit also quite common use case was discussed earlier (passing column names to data.table programmatically) and the proposed solutions, albeit apparently doing their job, did not seem particularly readable...

Perhaps I am complicating things too much? If anyone could jot down a quick cheatsheet for referring to data.table column names using variables for different common scenarios, I would be very grateful.

UPDATE:

Some specific examples that work provided I can hard code column names:

x.short = subset(x, abs(dist)<=100)
set(x, which(x$val<10), "val", 0) 

Now assume distcol="dist", valcol="val". What is the best way to do the above using distcol and valcol, but not dist and val?

share|improve this question
    
This question seems too unfocussed. Could be improved if you offered specific test cases. –  BondedDust May 17 '13 at 21:20
    
OK, will transfer the examples from the discussion below to the question itself. –  msp May 17 '13 at 21:28

3 Answers 3

up vote 4 down vote accepted

If you are going to be doing complicated operations inside your j expressions, you should probably use eval and quote. One problem with that in current version of data.table is that the environment of eval is not always correctly processed - eval and quote in data.table - and the current fix for that is to add .SD to eval. As far as I can tell from a few tests that I've run this doesn't affect speed (the way e.g. having .SD[1] in j would).

Interestingly this issue only plagues the j and you'll be fine using eval normally in i (where .SD is not available anyway).

The other problem is assignment, and there you have to have strings. I know one way to extract the string name from a quoted expression - it's not pretty, but it works. Here's an example combining everything together:

x = data.table(dist = c(1:10), val = c(1:10))
distcol = quote(dist)
valcol = quote(val)

x[eval(valcol) < 5,
  capture.output(str(distcol, give.head = F)) := eval(distcol)*sum(eval(distcol, .SD))]

Note how I was ok not adding .SD in one eval(distcol), but won't be if I take it out of the other eval.

Another option (which I dislike, as I think it's much more error-prone), is to use get:

diststr = "dist"
valstr = "val"

x[get(valstr) < 5, c(diststr) := get(diststr)*sum(get(diststr))]
share|improve this answer
    
Thanks a lot for the explanation. However as I mentioned in my comment to @Frank above, my problem is with using quote(dist) and quote(val). In my case I don't have access to these, only to variables distcol="dist" and valcol="val". Is there a solution for this? –  msp May 17 '13 at 21:37
1  
You can go the other way, I guess, from string to quote-thing. –  Frank May 17 '13 at 21:40
    
@msp added a version for that - it works for this simple example, but expect trouble ahead :) –  eddi May 17 '13 at 21:41
    
Note that if valcol="val" rather than valcol=quote(val), x[eval(valcol) < 5] no longer works. –  msp May 17 '13 at 21:42
    
@msp - yep, and it shouldn't - see ?quote and ?eval –  eddi May 17 '13 at 21:44

Maybe you know about this solution already?

DT[[colname]]

This is inspired by @eddi's solution in the comments below, using the OP's example:

set.seed(1)
x = data.table(a = 1:10, b=rnorm(10))
colstr="b"
col <- eval(parse(text=paste("quote(",colstr,")",sep="")))
x[eval(col)<0]
x[eval(col)<0,c(colstr):=-100]
share|improve this answer
    
Thanks, I do actually, but it doesn't always work - set() and subset() being examples - and what I don't know if when it does and when it doesn't... –  msp May 17 '13 at 20:31
1  
Okay, set and subset are outside of what I normally use. I know there are some questions on SO about using quote and eval; those might help... –  Frank May 17 '13 at 20:36
2  
@msp for j the trick is to add .SD to eval - stackoverflow.com/questions/15913832/… so you can do smth like distcol = quote(dist); x[, abs(eval(distcol, .SD)) <= 100]; for i in your example it should just work - valcol = quote(val); x[eval(valcol) < 10, val := 0] –  eddi May 17 '13 at 20:54
2  
it should also be clear from above that I think you should use quote'd names instead of strings if you are going to be doing complicated operations (you can get away with strings for the easy stuff, but it'll become increasingly difficult with more complex expressions) –  eddi May 17 '13 at 21:00
2  
I like the conversion to a quoted expression :) –  eddi May 17 '13 at 21:46

this worked for me

say you have the colname in variable x

just do
colname = as.name(x)

you can then use colname in subset function

share|improve this answer
1  
Great, thanks for this! –  msp May 22 '13 at 15:30
    
This did not work for me in a data.table. Maybe it does in the subset function which you mention? If it works in data.tables as well, could you give an example? –  user2443147 Oct 7 at 16:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.