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I am looking for the reverse of get().

Given an object name, I wish to have the character string representing that object extracted directly from the object.

Trivial example with foo being the placeholder for the function I am looking for.

z <- data.frame(x=1:10, y=1:10)

test <- function(a){
  mean.x <- mean(a$x)
  print(foo(a))
  return(mean.x)}

test(z)

Would print:

  "z"

My work around, which is harder to implement in my current problem is:

test <- function(a="z"){
  mean.x <- mean(get(a)$x)
  print(a)
  return(mean.x)}

test("z")
share|improve this question
7  
I think deparse(substitute(...)) is what you are after –  Chase May 9 '12 at 17:11
2  
Bad example though to have the variable called "z" and the parameter to test also called "z"... Printing "z" doesn't really tell you if you did it correctly then ;-) –  Tommy May 9 '12 at 17:28
    
@Tommy, tried to improve it, but please improve with edit if you wish. –  Etienne Low-Décarie May 9 '12 at 17:37

2 Answers 2

up vote 32 down vote accepted

The old deparse-substitute trick:

a<-data.frame(x=1:10,y=1:10)
test<-function(z){
   mean.x<-mean(z$x)
   nm <-deparse(substitute(z))
   print(nm)
   return(mean.x)}

 test(a)
#[1] "a"
#[1] 5.5

Edit: Ran it with the new test-object

Note: this will not succeed inside a local function when a set of list items are passed to lapply. You would be able to extract the .Names attribute and the order of processing from the structure result, if it were a named vector that were being processed.

> lapply( list(a=4,b=5), function(x) {nm <- deparse(substitute(x)); strsplit(nm, '\\[')} )
$a
$a[[1]]
[1] "X"    ""     "1L]]"


$b
$b[[1]]
[1] "X"    ""     "2L]]"

> lapply( c(a=4,b=5), function(x) {nm <- deparse(substitute(x)); strsplit(nm, '\\[')} )
$a
$a[[1]]
[1] "structure(c(4, 5), .Names = c(\"a\", \"b\"))" ""                                            
[3] "1L]]"                                        


$b
$b[[1]]
[1] "structure(c(4, 5), .Names = c(\"a\", \"b\"))" ""                                            
[3] "2L]]"  
share|improve this answer

Note that for print methods the behavior can be different.

print.foo=function(x){ print(deparse(substitute(x))) }
test = list(a=1, b=2)
class(test)="foo"
#this shows "test" as expected
print(test)

#this shows 
#"structure(list(a = 1, b = 2), .Names = c(\"a\", \"b\"), class = \"foo\")"
test

Other comments I've seen on forums suggests that the last behavior is unavoidable. This is unfortunate if you are writing print methods for packages.

share|improve this answer
    
Perhaps it should be: print.foo=function(x){ cat(deparse(substitute(x))) } or print.foo=function(x){ print(deparse(substitute(x)), quote=FALSE) } –  BondedDust Nov 30 '13 at 18:58
    
Or print.foo=function(x){ print.default(as.list(x)) } –  BondedDust Nov 30 '13 at 19:05

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