I'd like to check if some variable is defined in R - without getting an error. How can I do this?
My attempts (not successful):
> is.na(ooxx)
Error: object 'ooxx' not found
> is.finite(ooxx)
Error: object 'ooxx' not found
Thanks!
You want exists():
R> exists("somethingUnknown")
[1] FALSE
R> somethingUnknown <- 42
R> exists("somethingUnknown")
[1] TRUE
R>
answered Feb 20 '12 at 21:51
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3@Gavin & Dirk, you're so nice to each other :) Only solution is that you toss the coin (Bernoulli with p=0.5 :-)) who will get the accept! :-) – TMS Feb 20 '12 at 22:00
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29
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2Might get a bit trickier if checking for list elements: stackoverflow.com/q/7719741 – TMS Sep 20 '14 at 11:58
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5what about for what the op wanted - using the variable name, not in quotes? – tim Jun 13 '15 at 13:46
See ?exists, for some definition of "...is defined". E.g.
> exists("foo")
[1] FALSE
> foo <- 1:10
> exists("foo")
[1] TRUE
answered Feb 20 '12 at 21:50
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7
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10@DirkEddelbuettel Well, if you will use ridiculously long object names ;-) – Gavin Simpson Feb 20 '12 at 21:54
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2heh. Happens to me all the time when I am testing out examples before posting, Gavin or Josh have already answered it. – Maiasaura Feb 20 '12 at 22:17
if you are inside a function, missing() is what you want.
exchequer = function(x) {
if(missing(x)){
message("x is missing… :-(")
}
}
exchequer()
x is missing… :-(
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missingonly works for function arguments, however. You can't dofoo <- function(x) {missing(x); missing(y)}or you will getfoo(1)> Error in missing(y) : 'missing' can only be used for arguments. – Dannid Feb 11 '19 at 17:48
As others have pointed out, you're looking for exists. Keep in mind that using exists with names used by R's base packages would return true regardless of whether you defined the variable:
> exists("data")
[1] TRUE
To get around this (as pointed out by Bazz; see ?exists), use the inherits argument:
> exists("data", inherits = FALSE)
[1] FALSE
foo <- TRUE
> exists("foo", inherits = FALSE)
[1] TRUE
Of course, if you wanted to search the name spaces of attached packages, this would also fall short:
> exists("data.table")
[1] FALSE
require(data.table)
> exists("data.table", inherits = FALSE)
[1] FALSE
> exists("data.table")
[1] TRUE
The only thing I can think of to get around this -- to search in attached packages but not in base packages -- is the following:
any(sapply(1:(which(search() == "tools:rstudio") - 1L),
function(pp) exists(_object_name_, where = pp, inherits = FALSE)))
Compare replacing _object_name_ with "data.table" (TRUE) vs. "var" (FALSE)
(of course, if you're not on RStudio, I think the first automatically attached environment is "package:stats")
If you don't want to use quotes, you can use deparse(substitute()) trick which I found in the example section of ?substitute:
is.defined <- function(sym) {
sym <- deparse(substitute(sym))
env <- parent.frame()
exists(sym, env)
}
is.defined(a)
# FALSE
a <- 10
is.defined(a)
# TRUE
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1you can also
forceor evaluate it in the function like this:is.defined <- function(sym) class(try(sym, TRUE))!='try-error'– chinsoon12 Oct 4 '17 at 0:49
There may be situations in which you do not exactly know the name of the variable you are looking for, like when an array of results have been created by a queuing system. These can possibly be addressed with "ls" and its argument "pattern" that expects a regular expression.
The "exists" function could be reimplemented that way as
exists <-function(variablename) {
#print(ls(env=globalenv()))
return(1==length(ls(pattern=paste("^",variablename,"$",sep=""),env=globalenv())))
}
While preparing this answer, I was a bit surprised about the need for the need of the specification of the environment when invoking ls() from within a function. So, thank you for that, stackoverflow! There is also an "all.names" attribute that I should have set to true but have omitted.
