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I need a function that accepts an arbitrary number of arguments and stores them in a variable as an expression without evaluating them. I managed to do it with match.call but it seems a little "kludgy".

foo <- function(...) {
  expr <- match.call()
  expr[[1]] <- expression
  expr <- eval(expr)
  # do some stuff with expr
  return(expr)
}

> bla
Error: object 'bla' not found
> foo(x=bla, y=2)
expression(x = bla, y = 2)

Clarification

To clarify, I'm asking how to write a function that behaves like expression(). I can't use expression() directly for reasons that are too long to explain.

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Look at these two questions stackoverflow.com/questions/12416880/getting-names-from-dots and stackoverflow.com/questions/3057341/… Also look at the results for a search on [r] ellipsis –  mnel Nov 13 '12 at 0:24
1  
Right now it seems foo <- expression would just do it, no? What do you mean by "# do some stuff with expr"? –  flodel Nov 13 '12 at 0:29
    
Just posted my answer and realised your comment is a far simpler approach –  mnel Nov 13 '12 at 0:34
1  
Have a look at the function . in plyr it may do what you want or at least point you in the right direction –  mnel Nov 13 '12 at 0:44
1  
It's unlikely that you actually need an expression object - a list of calls is usually adequate. –  hadley Nov 13 '12 at 4:15

3 Answers 3

up vote 6 down vote accepted

The most idiomatic way is:

f <- function(x, y, ...) {
  match.call(expand.dots = FALSE)$`...`
}
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+1 Idiomatic indeed - and it is used widely in base R, e.g. in the code for linear models specified via a formula in lm(). –  Gavin Simpson Nov 13 '12 at 8:20

The ultimate intended outcome is slightly vague (could you clarify a bit?). However, this may be helpful:

foo2 <- function(...) {
  expr <- as.list(substitute(list(...)))[-1L]
  class(expr) <- "expression"
  expr
}

example:

foo2(x=bla, y=2)
# expression(x = bla, y = 2)
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yes, you understood correctly thanks. –  Ernest A Nov 13 '12 at 0:50
    
glad to help. If it suits, please feel free to give it the tick mark –  Ricardo Saporta Nov 13 '12 at 1:03
    
i give you the tick although i'm probably going to use @mnel's solution because is a little bit cleaner –  Ernest A Nov 13 '12 at 1:29
    
@ErnestA Well then you should have put the tick on the other answer! :) It's still unclear how specifically you are using this. If you will use match.call() take a look at the documentation for expand.dots, as you might need to set that to FALSE. –  Ricardo Saporta Nov 13 '12 at 3:12

Using . from plyr as a prototype

foo <-   function (...) 
  {
  as.expression(as.list(match.call()[-1]))
  }
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