12

Inspired by this answer I am looking for a way to detach several packages at once.

When I load say Hmisc,

# install.packages("Hmisc", dependencies = TRUE)
require(Hmisc)

R also loads survival and splines. My question is if there is a way to unload that group together?

I currently do something like this,

detach(package:Hmisc, unload = T) 
detach(package:survival, unload = T) 
detach(package:splines, unload = T)

I tried,

detach(package:c('Hmisc', 'survival', 'splines'), unload = T)

  • 1
    I would be very cautious about group detaching, because it's always possible that you have some other package in use which also depends on one of the subordinate packages. Sort of like the near-impossibility of figuring out which Windows DLLs can safely be removed when uninstalling some app :-( . – Carl Witthoft Jul 9 '13 at 13:40
  • @CarlWitthoft, thank you for your thoughtful comment. – Eric Fail Jul 9 '13 at 16:33
  • 1
    @CarlWitthoft detach does check for dependences and will refuse to detach packages that are required by others in use. You can override this by force=TRUE, but that's on your own head, of course. – Hong Ooi Jul 9 '13 at 17:30
  • @HongOoi -- thanks. I skimmed right over that part. Sorry. – Carl Witthoft Jul 9 '13 at 17:32
11

Another option:

Vectorize(detach)(name=paste0("package:", c("Hmisc","survival","splines")), unload=TRUE, character.only=TRUE)
5

?detach explicitly rules out supplying a character vector (as opposed to scalar, ie more than one library to be detached) as its first argument, but you can always make a helper function. This will accept multiple inputs that can be character strings, names, or numbers. Numbers are matched to entries in the initial search list, so the fact that the search list dynamically updates after each detach won't cause it to break.

mdetach <- function(..., unload = FALSE, character.only = FALSE, force = FALSE)
{
    path <- search()
    locs <- lapply(match.call(expand=FALSE)$..., function(l) {
        if(is.numeric(l))
            path[l]
        else l
    })
    lapply(locs, function(l)
        eval(substitute(detach(.l, unload=.u, character.only=.c, force=.f),
        list(.l=l, .u=unload, .c=character.only, .f=force))))
    invisible(NULL)
}

library(xts) # also loads zoo

# any combination of these work
mdetach(package:xts, package:zoo, unload=TRUE)
mdetach("package:xts", "package:zoo", unload=TRUE)
mdetach(2, 3, unload=TRUE)

The messing with eval(substitute(... is necessary because, unless character.only=TRUE, detach handles its first argument in a nonstandard way. It checks if it's a name, and if so, uses substitute and deparse to turn it into character. (The character.only argument is misnamed really, as detach(2, character.only=TRUE) still works. It should really be called "accept.names" or something.)

  • Thanks. Feel guilty as I should have read the ?detach more carefully. Again, thank you for your answer. – Eric Fail Jul 9 '13 at 13:03
  • 1
    @EricFail No reason to feel guilty. It's a good question, and the complexity of the answer indicates it's not trivial. – Ari B. Friedman Jul 9 '13 at 13:28
  • 1
    Can you elaborate on why detlist<-c('Hmisc','survival','splines'); lapply(detlist, function(k) detach(k,unload=true)) does not work? The help page says arguments which are strings are acceptable to detach . (each argument is a one-element string, rather than a vector of characters if I read it right) – Carl Witthoft Jul 9 '13 at 13:38
  • @AriB.Friedman, thanks! – Eric Fail Jul 9 '13 at 13:39
  • So... thanks, anonymous downvoter...? – Hong Ooi Jul 9 '13 at 17:34
2

To answer my own question to Hong's answer:

detlist<-c('Hmisc','survival','splines')

lapply(detlist, function(k) detach( paste('package:', k, sep='', collapse=''), unload=TRUE, char=TRUE))

Works just fine. The sorting function at the top of base::detach is a bit wonky, but using character.only=TRUE got me thru just fine.

1

To delete all currently attached packages:

lapply(names(sessionInfo()$otherPkgs), function(pkgs) detach(paste0('package:',pkgs),character.only = T,unload = T,force=T))

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