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Here's an example that assigns in two different ways, one which works and one which doesn't:

library(datasets)
dat <- as.data.frame(ChickWeight)
dat$test1 <- with(dat, Time + weight)
with(dat, test2 <- Time + weight)
> colnames(dat)
[1] "weight" "Time"   "Chick"  "Diet"   "test1" 

I've grown accustomed to this behavior. Perhaps more surprising is that test2 just disappears (instead of winding up in the base environment, as I'd expect):

> ls(pattern="test")
character(0)

Note that with is a fairly simple^H^H^H^H^H^H short function:

function (data, expr, ...) 
eval(substitute(expr), data, enclos = parent.frame())

First let's replicate with's functionality:

eval( substitute(Time+weight), envir=dat, enclos=parent.frame() )

Now test with a different enclosure:

testEnv <- new.env()
eval( substitute(test3 <- Time+weight), envir=dat, enclos=testEnv )
ls( envir=testEnv )

Which still doesn't assign anywhere. This disproves my hunch that it was related to the enclosing environment being discarded, and rather points to something more fundamental to the ,enclos argument not doing what I think it does.

I'm curious about the mechanics of why this is going on and if there's an alternative which allows assignment.

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Your last example doesn't modify dat because dat isn't an environment. At best it would get coerced via as.environment to an environment, modified, and then promptly discarded, since there are no other references to it, leaving the original dat unchanged. –  Ryan Thompson Feb 12 '13 at 3:54

3 Answers 3

Change with to within. with is only for making variables available, not changing them.

Edit: To elaborate, I believe that both with and within create a new environment and populate it with the given list-like object (such as a data frame), and then evaluate the given expression within that environhment. The difference is that with returns the result of the expression and discards the environment, while within returns the environment (converted back to whatever class it originally was, e.g. data.frame). Either way, any assignments made within the expression are presumably performed inside the created environment, which is discarded by with. This explains why test2 is nowhere to be found after doing with(dat, test2 <- Time + weight).

Note that since within returns the modified environment instead of editing it in place (i.e. call-by-value semantics), you need to do dat <- within(dat, test2 <- Time + weight).

If you want a function to do assignment to the current environment (or any specified environment), look at assign.

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Helpful, but within is a lot less generic than with, and I'm curious why it was necessary to have a separate function for it. Specifically, within assigns to a specific column of a data.frame via data[nl] <- l. There's no within method to assign to an environment, but I guess you could just use eval directly for that? –  Ari B. Friedman Feb 11 '13 at 19:19
    
The advice is wrong. within does NOT assign to columns outside of its environment. You need to do: dat$test2 <- with(dat, Time + weight) OR dat <- with(dat, test2 <- Time + weight) –  BondedDust Feb 11 '13 at 20:07
    
Yes, you're right. I wrote my original answer on my mobile phone and couldn't elaborate sufficiently. –  Ryan Thompson Feb 11 '13 at 20:14
    
Great answer, and helpful, but still doesn't really solve the assignment problem. Maybe the answer is, "Not possible--give up on your pipe dream?" :-) –  Ari B. Friedman Feb 11 '13 at 20:31
    
You could write a function that works like within, but instead of taking a list-like first argument, takes a variable name. Then the function could extract the value bound to that variable name in the calling environment (using get), use that value in the call to within, and then assign the result to the same variable name in the calling environment using assign. –  Ryan Thompson Feb 11 '13 at 21:18

Inspired by the fact that the following works from the command line ...

eval(substitute(test <- Time + weight, dat))

... I put together the following, which seems to work.

myWith <- function(DAT, expr) {
    X <- call("eval", 
              call("substitute", substitute(expr), DAT))
    eval(X, parent.frame())
}

## Trying it out
dat <- as.data.frame(ChickWeight)
myWith(dat, test <- Time + weight)
head(test)
# [1]  42  53  63  70  84 103

(The complicated aspect of this problem is that we need substitute() to search for symbols in one environment (the current frame) while the "outer" eval() assigns into a different environment (the parent frame).)

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1  
I should probably add that using a function that performs non-local assignments as a side-effect like this is a pretty bad idea, in my opinion. Still, interesting to see that it can be done. –  Josh O'Brien Feb 11 '13 at 20:59

I get the sense that this is being made way too complex. Both with and within return values calculated by operations on named columns of dataframes. If you don't assign them to anything, the value will get garbage collected. The usual way to store tehn is assignment to to a named object or possibly a component of an object with the <- operator. within returns the entire dataframe, whereas with returns only the vector that was calculated from whatever operations were performed on the column names. You could, of course, use assign instead of <-, but I think overuse of that function may obfuscate rather than clarify the code. The difference in use is just assignment to an entrire dataframe or just a column:

 dat <- within(dat, newcol <- oldcol1*oldcol2)
 dat$newcol <- with(dat,  oldcol1*oldcol2)
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