Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I tried implementing a function let with the following semantics:

> let(x = 1, y = 2, x + y)
[1] 3

… which is conceptually somewhat similar to substitute with the syntax of with.

The following code almost works (the above invocation for instance works):

let <- function (...) {
    args <- match.call(expand.dots = FALSE)$`...`
    expr <- args[[length(args)]]
    eval(expr,
         list2env(lapply(args[-length(args)], eval), parent = parent.frame()))
}

Note the nested eval, the outer to evaluate the actual expression and the inner to evaluate the arguments.

Unfortunately, the latter evaluation happens in the wrong context. This becomes apparent when trying to call let with a function that examines the current frame, such as match.call:

> (function () let(x = match.call(), x))()
Error in match.call() :
  unable to find a closure from within which 'match.call' was called

I thought of supplying the parent frame as the evaluating environment for eval, but that doesn’t work:

let <- function (...) {
    args <- match.call(expand.dots = FALSE)$`...`
    expr <- args[[length(args)]]
    parent <- parent.frame()
    eval(expr,
         list2env(lapply(args[-length(args)], function(x) eval(x, parent)),
                  parent = parent)
}

This yields the same error. Which leads me to the question: how exactly is match.call evaluated? Why doesn’t this work? And, how do I make this work?

share|improve this question
    
Possibly relevant is this, from ?match.call: "Calling 'match.call' outside a function without specifying 'definition' is an error." And then try j <- function(x) x; j(match.call()) to see one place that error plays out. I haven't gamed this all out (and don't quite get what you're really trying to do), but this may be an error that's pretty specific to the odd way you're using match.call() in that call to an anonymous function. – Josh O'Brien May 1 '13 at 14:28
    
@Josh I don’t think it’s related. The error message is different, and the context from which I call match.call is definitely from within a function, if the wrong one. – Konrad Rudolph May 1 '13 at 14:30
    
I guess what I was hinting at is that match.call() has pretty unique scoping rules that turn out to be specially hard-wired for it down at the C level. (The code defining do_matchcall, including some interesting comments about how the function it's called from is recorded, is in $R_SRC/src/main/unique.c.) Unlike almost any other function, it's not clear to me that it's evaluation environment can be manipulated/set via a call to eval(). To simplify your problem, maybe first figure out why this doesn't work (and how it could be made to): j <- function() eval(call("match.call")); j(). – Josh O'Brien May 1 '13 at 15:56
    
@Josh Ah yes, agreed. Though R offers a surprising wealth of functions to access the scope and stack frames so I think that there might be a way to push this square peg into eval’s round hole. – Konrad Rudolph May 1 '13 at 15:58
    
That it does. For instance, this does work: j <- function() do.call("match.call", list()); j(), though I'd have thought it equivalent to the j in my last comment. Will be interested to see what someone comes up with. – Josh O'Brien May 1 '13 at 16:10
up vote 6 down vote accepted

Will this rewrite solve your problem?

let <- function (expr, ...) {
    expr  <- match.call(expand.dots = FALSE)$expr
    given <- list(...)
    eval(expr, list2env(given, parent = parent.frame()))
}

let(x = 1, y = 2, x + y)
# [1] 3
share|improve this answer
2  
@KonradRudolph -- That's just a consequence or R's rules/algorithm for matching arguments. First the named arguments (here x=1 and y=2) are processed, and neither of them has a name that matches the single named formal (expr). Then, as mentioned at the link above " Any unmatched formal arguments are bound to unnamed supplied arguments, in order." Here, that means x + y gets bound to expr. – Josh O'Brien May 1 '13 at 18:09
2  
The use of the . prefix as in .expr is a pretty common approach to avoid such situations and keep meaningful variable names. – flodel May 1 '13 at 18:15
2  
@KonradRudolph -- Even worse, the second rule on that linked list means that any argument named e or ex or exp will get matched to expr. Partial argument matching was IMHO a crummy design decision that's now +/- locked in by the many contributed functions that use it. – Josh O'Brien May 1 '13 at 18:15
1  
Another question: why use match.call(expand.dots = FALSE)$expr instead of substitute(expr)? – Konrad Rudolph May 1 '13 at 19:08
1  
@KonradRudolph -- Good question. The two are slightly different, if: (a) an object expr has been assigned to somewhere in the current evaluation environment (in which case substitute() will pick up that value rather than the value of the supplied argument) or (b) if you provide a default value for expr in the function definition and then supply no value for it in your function call. In case (b), substitute(expr) performs better, and case (a) can be easily avoided. Nitpicky differences, but interesting. – Josh O'Brien Jul 18 '13 at 21:53

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.