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Lets say I have a function that accepts variables that are always part of a list.

myfun <- function(x$name,y$name) { 
 # stuff 
} 

What I'd like to do is get the names used.

alist <- list(Hello=1,Goodbye=2)

myfun(alist$Hello, alist$Goodbye) { 
 # I want to be able to work with the characters "Hello" and "Goodby" in here
}

So, within my function, how would I get the characters "Hello" and "Goodbye". Given alist$Hello and alist$Goodbye

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3  
In that case, why not pass alist function argument like: myfun <- function(x) argument and access the names using names(x)? –  Arun Mar 12 '13 at 14:17
1  
Downvoters should have the courtesy to comment as to why. –  Brandon Bertelsen Mar 12 '13 at 14:29
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3 Answers

up vote 9 down vote accepted

I recall that plot.default does this with deparse(substitute(:

a <- list(a="hello",b=c(1,2,3))
f <- function(x,y) { print(deparse(substitute(x))); print(deparse(substitute(y))) }
f(a$a,a$b)
#[1] "a$a"
#[1] "a$b"
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This led me to ?quote which seems like it doesn't cat() anything else to the screen. Hence +1 and checkmark. as.character(quote(x))[3] gives me what I wanted. –  Brandon Bertelsen Mar 12 '13 at 14:31
    
One problem is that, the list need not have the elements that you're accessing at all... with this method. f(a$x, a$y) gives a$x, a$y and I'm not sure if it's desirable. –  Arun Mar 12 '13 at 14:31
    
@Arun You could raise an error or warning if is.null on the arguments came up TRUE. –  Blue Magister Mar 13 '13 at 2:20
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I'd create the function with a list argument:

myfun <- function(l) {
    print(names(alist))
}
myfun(alist)
# [1] "Hello"   "Goodbye"
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Something like this, perhaps:

myfun <- function(x) { print(substitute(x))}
myfun(iris$Sepal.Length)
## iris$Sepal.Length
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Given that you answered at the same time +1. Checkmark goes to lower score - he needs it more! –  Brandon Bertelsen Mar 12 '13 at 14:33
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