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.
dt <- data.table(x=1:4, y=c(1,1,2,2), z=c(1,2,1,2))

I would likt to achieve this:

dt[,list(z, p=cumsum(x)), by=y]
   y z p
1: 1 1 1
2: 1 2 3
3: 2 1 3
4: 2 2 7

But via a function call like test(dt, z, x, y)

None of the following 2 ways works. data.table 1.8.10

test1 <- function(dt, a, b, c){
    dt[,list(eval(substitute(a), parent.frame()),
             p=cumsum(eval(substitute(b), parent.frame()))),
        by=eval(substitute(c)), verbose=TRUE]
}
test1(dt, z, x, y)
# Error in eval(expr, envir, enclos) : object 'a' not found
test2 <- function(dt, a, b, c){
    dt[,list(eval(substitute(a)),
             p=cumsum(eval(substitute(b)))),
        by=eval(substitute(c)), verbose=TRUE]
}
test2(dt, z, x, y)
# Error in eval(expr, envir, enclos) : object 'z' not found

What is a correct way to make it work?

share|improve this question
    
Have a look at ?eval. It's default argument to "envir" is parent.frame(). –  Arun Nov 21 '13 at 15:16
    
@Arun Default and explicit arguments are evaluated in different frames stat.ethz.ch/pipermail/r-help/2010-February/227582.html –  colinfang Nov 21 '13 at 15:47
    
Yes, seems I've misunderstood. But both test1 and test2 gives the right output for me (in 1.8.11). What does "not work" mean here? What do you get? Which version of data.table are you using? –  Arun Nov 21 '13 at 15:55
1  
I think this was fixed sometime after 1.8.10. I don't have access to the commits now. I'll post on it later. I guess you could either use 1.8.11 or you'll have to wait for the next release. –  Arun Nov 21 '13 at 16:04
1  
@Arun I saw stackoverflow.com/questions/18772277/… Guess I have to wait. But thank you for bring melt into data.table. I hope someday ggplot can be made optimized for data.table as well –  colinfang Nov 21 '13 at 16:44

2 Answers 2

up vote 1 down vote accepted

Here's a (IMO) cleaner version of @Chinmay Patil's second answer. It builds up the expression in a lispy way using R's backquote operator, and then evals the quoted expression.

test = function(dt, a, b, c) {
    z = substitute(a)
    x = substitute(b)
    y = substitute(c)
    expr = bquote(dt[, list(.(z), p=cumsum(.(x))), by=.(y)])
    eval(expr)
}

> test(dt, z, x, y)
   y z p
1: 1 1 1
2: 1 2 3
3: 2 1 3
4: 2 2 7
>  
share|improve this answer

You can use deparse, substitute, eval and parse in following way. There maybe simpler solution, but following seem to work.

test1 <- function(dt, a, b, c){
  jvar <- paste0('list(',deparse(substitute(a)),', p=cumsum(',deparse(substitute(b)),'))')
  byvar <- paste0('list(', deparse(substitute(c)),')')
  dt[, eval(parse(text=jvar)), by=eval(parse(text=byvar))]

}

test1(dt, z, x, y)

##    y z p
## 1: 1 1 1
## 2: 1 2 3
## 3: 2 1 3
## 4: 2 2 7

or as @eddi sugguested

test2 <- function(dt, a, b, c){
  eval(parse(text = paste0('dt[,', 'list(',deparse(substitute(a)),', p=cumsum(',deparse(substitute(b)),'))', ',by=', 'list(', deparse(substitute(c)),')', ']') ))  
}


test2(dt, z, x, y)
##    y z p
## 1: 1 1 1
## 2: 1 2 3
## 3: 2 1 3
## 4: 2 2 7
share|improve this answer
    
+1 and I would go even further and just construct the entire data.table expression as a string and then eval(parse that –  eddi Nov 21 '13 at 17:19
    
@eddi thx. good idea. updated the answer –  Chinmay Patil Nov 22 '13 at 1:08

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.