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I am trying to run a chunk of R code in a sandbox-ed fashion, by loading all the necessary dependencies (functions and data) into a new environment and evaluating an expression within that environment. However, I'm running into trouble with functions calling other functions in the environment. Here's a simple example:

jobenv <- new.env(parent=globalenv())
assign("f1", function(x) x*2, envir=jobenv)
assign("f2", function(y) f1(y) + 1, envir=jobenv)
expr <- quote(f2(3))

Using eval on expr fails since f2 can't find f1

> eval(expr, envir=jobenv)
Error in f2(3) : could not find function "f1"

whereas explicitly attaching the environment works

> attach(jobenv)
> eval(expr)
[1] 7

I'm probably missing something obvious, but I couldn't find any permutation of the eval call that works. Is there a way to get the same effect without attaching the environment?

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1  
You should make your edit a new question, since it's very different than your original one. –  Josh O'Brien Jul 18 '13 at 20:13
    
Thanks for the suggestion, I did, here it is: R - evaluate nested function call in a deserialized environment –  Y T Jul 18 '13 at 20:34

2 Answers 2

up vote 3 down vote accepted

There are a number of ways of doing this, but I kind of like this one:

jobenv <- new.env(parent=globalenv())

local({
    f1 <- function(x) x*2
    f2 <- function(y) f1(y) + 1
}, envir=jobenv)

## Check that it works
ls(jobenv)
# [1] "f1" "f2"
local(f2(3), envir=jobenv)
# [1] 7
eval(quote(f2(3)), envir=jobenv)
# [1] 7
share|improve this answer
    
+1 very nice. Though you could shorten it and make it more general by putting both the function definitions inside one local call. –  Joshua Ulrich Jul 18 '13 at 20:21
    
@JoshuaUlrich - Good point. Thanks. (Edited my answer to incorporate your suggestion.) –  Josh O'Brien Jul 18 '13 at 20:26

Scope is defined when the function is created, not when it's called. See section 10.7 of the Introduction to R manual.

This seems a bit odd to me, but you get the same behavior even if you avoid assign all together and just use $<-.

jobenv <- new.env(parent=globalenv())
jobenv$f1 <- function(x) x*2
jobenv$f2 <- function(y) f1(y) + 1
expr <- quote(f2(3))
eval(expr, envir=jobenv)

This seems to be because the enclosing environment of f1 and f2 is the global environment. I would have expected it to be jobenv.

> environment(jobenv$f1)
<environment: R_GlobalEnv>
> environment(jobenv$f2)
<environment: R_GlobalEnv>

One solution is to explicitly set the environment of each function... but there has to be an easier way.

> environment(jobenv$f1) <- jobenv
> environment(jobenv$f2) <- jobenv
> eval(expr, envir=jobenv)
[1] 7
share|improve this answer
    
+1 for inherits=TRUE. I have to confess, though, I don't see how the variable "f1" is found in jobenv before it is first assigned there. From the quoted passage, I'd expect the symbol, not being encountered there, to be assigned into the user's workspace. –  Josh O'Brien Jul 18 '13 at 19:43
    
Looks like I was right to be skeptical: your first example just assigns f1and f2 into the global environment. (Try ls() and ls(jobenv) after running it.) And your second example doesn't work either. –  Josh O'Brien Jul 18 '13 at 19:49
    
@JoshO'Brien: you're right. F- –  Joshua Ulrich Jul 18 '13 at 19:50
    
Try (as one solution) eval(quote(f1 <- function(x) x*2), envir=jobenv) and eval(quote(f2 <- function(y) f1(y) + 1), envir=jobenv). The key is that the assignments (whether executed by eval or do.call or whatever) need to be, themselves, evaluated within jobenv. Or, I guess, use any of the approaches in this post: stackoverflow.com/questions/12982528/… –  Josh O'Brien Jul 18 '13 at 19:59
    
Thanks for the detailed answer and the comments. I edited my question to clarify the intended result. –  Y T Jul 18 '13 at 20:11

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