This question already has an answer here:

I have the following data frame with variable name "foo";

 > foo <-c(3,4);

What I want to do is to convert "foo" into a string. So that in a function I don't have to recreate another extra variables:

   output <- myfunc(foo)
   myfunc <- function(v1) {
     # do something with v1
     # so that it prints "FOO" when 
     # this function is called 
     #
     # instead of the values (3,4)
     return ()
   }

marked as duplicate by 42- r Jul 10 '16 at 21:22

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  • 3
    Just curious - why do you need to get object name from an object? – Chinmay Patil Jan 29 '13 at 7:21
  • 3
    I have a sample use: I have a function that takes as argument a vector, and append the values of that vector into a column in a dataframe. I also need to populate into another column the source of the value, which is the name of the initial vector. Voila. – Ricky Jan 27 '15 at 3:46
  • To use exists() which requires a string. – Elin Feb 5 '17 at 14:08
up vote 174 down vote accepted

You can use deparse and substitute to get the name of a function argument:

myfunc <- function(v1) {
  deparse(substitute(v1))
}

myfunc(foo)
[1] "foo"
  • +1. Thanks for the helpful answer, what about if I pass foo[1]; is there a way to get just "foo" back? – Mahdi Jadaliha Feb 23 '15 at 21:52
  • 2
    @MahdiJadaliha You can try this function: myfunc <- function(v1) { s <- substitute(v1); if (length(s) == 1) deparse(s) else sub("\\(.", "", s[2]) }. – Sven Hohenstein Feb 24 '15 at 7:39
  • 3
    How would you do this with multiple objects? Specifically, how would you do it in a way to get separate strings for each object name? (For example, if I had object foo, foo1, and foo2 and I wanted to create a list of their names as separate character strings). – theforestecologist Feb 25 '16 at 18:46
  • 2
    @theforestecologist If the function has multiple parameters, you can use deparse(substitute(.)) for each parameter, store the result in a variable, and put the variables in a list afterwards. – Sven Hohenstein Feb 27 '16 at 7:59
  • 3
    @SvenHohenstein this doesn't work when you use a for loop... – SumNeuron Oct 30 '16 at 15:39

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