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Super quick question...

How do you take a some particular function's (user-defined) argument and cast it as a character-string?

If for a simple example,

foo <- function(x) { ... }

I want to simply return x's object name. So,

foo(testing123)

returns "testing123" (and testing123 could just be some random numeric vector)

Apologies if this question has been asked before--searched, but couldn't find it! Thanks!!

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up vote 23 down vote accepted
foo <- function(x) deparse(substitute(x))
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Meta-answer: if you know R does something and you want to do it, check the source. For example, you may have spotted that plot(foo) sticks 'foo' in the ylab, so plot can do it. How? Start by looking at the code:

> plot
function (x, y, ...) 
{
    if (is.function(x) && is.null(attr(x, "class"))) {
        if (missing(y)) 
            y <- NULL
        hasylab <- function(...) !all(is.na(pmatch(names(list(...)), 
            "ylab")))
        if (hasylab(...)) 
            plot.function(x, y, ...)
        else plot.function(x, y, ylab = paste(deparse(substitute(x)), 
            "(x)"), ...)
    }
    else UseMethod("plot")
}

And there's some deparse(substitute(x)) magic.

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Not sure if it really matters, as the answer itself is great, but plot doesn't look like this anymore – Richard Scriven Jan 17 '15 at 0:41
    
@Spacedman: this is a very good point! – theforestecologist Dec 5 '15 at 18:10

Whoops, apparently I didn't search hard enough...

foo <- function(x) {return(as.character(substitute(x)))}

Well that's easy...

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deparse(substitute(x)) would be the usual way of doing this, as per JD's answer. Compare your version with JD's on this foo(testing * bar) to see why. – Gavin Simpson Nov 5 '10 at 18:24
    
Yep!! I just realized this. 'deparse' is the way to go. Thanks for the confirmation. – Ray Nov 5 '10 at 18:26
2  
if you are happy with JD's answer, make sure to accept it so i) JD gets some rep and ii) other users reading the Q know this answered your Q – Gavin Simpson Nov 5 '10 at 18:40

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