14

This line:

which(!is.na(c(NA,NA,NA))) == 0

produces logical(0)

While this line

if(which(!is.na(c(NA,NA,NA))) == 0){print('TRUE')}

generates:

Error in if (which(!is.na(c(NA, NA, NA))) == 0) { : 
  argument is of length zero

Why there is an error? What is logical(0)

3
  • 4
    A logical (i.e. boolean) vector of length 0. Since it has zero length, it doesn't have a truth value, so the if clause fails. – joran Feb 5 '18 at 15:44
  • 2
    You can do something like that: if(any(!is.na(c(NA,NA,NA))) == 0){print('TRUE')} – patL Feb 5 '18 at 15:46
  • 2
    If you replace which with sum you will get the expected behavior, i.e. if(sum(!is.na(c(NA,NA,NA))) == 0){print('TRUE')} – Sotos Feb 5 '18 at 15:49
22

logical(0) is a vector of base type logical with 0 length. You're getting this because your asking which elements of this vector equal 0:

> !is.na(c(NA, NA, NA))
[1] FALSE FALSE FALSE
> which(!is.na(c(NA, NA, NA))) == 0
logical(0)

In the next line, you're asking if that zero length vector logical(0) is equal to 0, which it isn't. You're getting an error because you can't compare a vector of 0 length with a scalar.

Instead you could check whether the length of that first vector is 0:

if(length(which(!is.na(c(NA,NA,NA)))) == 0){print('TRUE')}
4
  • "vector of class logical" should be "vector of mode logical" I think. – David Tonhofer Mar 4 '20 at 22:29
  • @DavidTonhofer why do you think it should be mode instead of class? – efbbrown Mar 5 '20 at 15:21
  • 1
    Because "class" is the term for the object-oriented universes, but "mode" is (actually the old) R terminology for "base type". "base type" is better. From: Advanced R: Technically, the difference between base and OO objects is that OO objects have a “class” attribute butt also: You may have heard of mode() and storage.mode(). Do not use these functions: they exist only to provide type names that are compatible with S. – David Tonhofer Mar 5 '20 at 19:48
  • 1
    OK thanks for the suggestion. I've changed "class" to "base type" as it seems the best choice of the three. – efbbrown Mar 5 '20 at 20:38
7

First off, logical(0) indicates that you have a vector that's supposed to contain boolean values, but the vector has zero length.

In your first approach, you do

!is.na(c(NA, NA, NA))
# FALSE, FALSE, FALSE

Using the which() on this vector, will produce an empty integer vector (integer(0)). Testing whether an empty set is equal to zero, will thus lead to an empty boolean vector.

In your second approach, you try to see whether the vector which(!is.na(c(NA,NA,NA))) == 0 is TRUE or FALSE. However, it is neither, because it is empty. The if-statement needs either a TRUE or a FALSE. That's why it gives you an error argument is of length zero

7

Calling which to check whether a vector of logicals is all false is a bad idea. which gives you a vector of indices for TRUE values. If there are none, that vector is length-0. A better idea is to make use of any.

> any(!is.na(c(NA,NA,NA)))
FALSE
3

Simply use length() like so:

foo <- logical(0)

if(length(foo) == 0) { } # TRUE
if(length(foo) != 0) { } # FALSE

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.