5

I know that the function relevel sets an specified level to be the first. I would like to know if there is a built-in function that sets an specified level to be the last. If not, what is an efficient way to write such a function?

2 Answers 2

12

The package forcats has a function that does this neatly.

f <- gl(2, 1, labels = c("b", "a"))

forcats::fct_relevel(f, "b", after = Inf)

#> [1] b a
#> Levels: a b
1
  • This is the way... to do it. after = 0 to place the level first.
    – GuillaumeL
    Jun 7, 2022 at 16:08
4

There is not a built-in function. You could do it like this:

lastlevel = function(f, last) {
    if (!is.factor(f)) stop("f must be a factor")
    orig_levels = levels(f)
    if (! last %in% orig_levels) stop("last must be a level of f")
    new_levels = c(setdiff(orig_levels, last), last)
    factor(f, levels = new_levels)
}

x = factor(c("a", "b", "c"))
> lastlevel(x, "a")
[1] a b c
Levels: b c a
> lastlevel(x, "b")
[1] a b c
Levels: a c b
> lastlevel(x, "c")
[1] a b c
Levels: a b c
> lastlevel(x, "d")
Error in lastlevel(x, "d") : last must be a level of f

I feel a little silly because I just wrote that out, when I could have made a tiny modification to stats:::relevel.factor. A solution adapted from relevel would look like this:

lastlevel = function (f, last, ...) {
    if (!is.factor(f)) stop("f must be a factor")
    lev <- levels(f)
    if (length(last) != 1L) 
        stop("'last' must be of length one")
    if (is.character(last)) 
        last <- match(last, lev)
    if (is.na(last)) 
        stop("'last' must be an existing level")
    nlev <- length(lev)
    if (last < 1 || last > nlev) 
        stop(gettextf("last = %d must be in 1L:%d", last, nlev), 
            domain = NA)
    factor(f, levels = lev[c(last, seq_along(lev)[-last])])
}

It checks a few more inputs and also accepts a numeric (e.g., last = 2 would move the second level to the last).

2
  • 1
    beat me by 30 seconds!
    – Ben Bolker
    Mar 13, 2017 at 21:37
  • It's not letting me post an edit because the change is too small but the second code block doesn't actually work unless x is defined globally, which seems like a mistake. I think the fix is to replace x with f, the parameter value for the factor. Nov 13, 2018 at 19:46

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.