26

I'm trying to identify elements which are not included in the other vector. For instance in two vectors I have

list.a <- c("James", "Mary", "Jack", "Sonia", "Michelle", "Vincent")

list.b <- c("James", "Sonia", "Vincent")

is there a way to verify which people do not overlap? In the example, I would want to get the vector result that contains Mary, Jack, and Michelle.

Any suggestions will help!

4 Answers 4

45

Yes, there is a way:

setdiff(list.a, list.b)
# [1] "Mary"     "Jack"     "Michelle"
3
  • 3
    Just be aware that all the functions in this group (setdiff, intersect, union, etc) will ignore duplicates. If you have lists with duplicate values, you'll have to play around a bit. In fact there was a SO question, well answered, for just this problem a couple days ago. -- which of course now I can't find :-( Feb 5, 2014 at 12:40
  • 1
    @CarlWitthoft if you look at the source for setdiff you'll see that it's easy to modify to not ignore duplicates
    – hadley
    Feb 5, 2014 at 14:06
  • @hadley I posted a 'flexible' version of setdiff, just FYI :-) Feb 5, 2014 at 14:22
39

I think it should be mentioned that the accpeted answer is is only partially correct. The command setdiff(list.a, list.b) finds the non-overlapping elements only if these elements are contained in the object that is used as the first argument!.

If you are not aware of this behaviour and did setdiff(list.b, list.a) instead, the results would be character(0) in this case which would lead you to conclude that there are no non-overlapping elements.

Using a slightly extended example for illustration, an obvious quick fix is:

list.a <- c("James", "Mary", "Jack", "Sonia", "Michelle", "Vincent")
list.b <- c("James", "Sonia", "Vincent", "Iris")

c(setdiff(list.b, list.a), setdiff(list.a, list.b))
# [1] "Iris"     "Mary"     "Jack"     "Michelle" 
1
  • 1
    Exactly what was happening to me. Thanks!
    – Rafs
    Nov 20, 2020 at 17:58
4

An extended answer based on the comments from Hadley and myself: here's how to allow for duplicates.

Final Edit: I do not recommend anyone use this, because the result may not be what you expect. If there is a repeated value in x which is not in y, you will see that value repeated in the output. But: if, say, there are four 9s in x and one 9 in y, all the 9s will be removed. One might expect to retain three of them; that takes messier code.

mysetdiff<-function (x, y, multiple=FALSE) 
{
    x <- as.vector(x)
    y <- as.vector(y)
    if (length(x) || length(y)) {
        if (!multiple) {
             unique( x[match(x, y, 0L) == 0L])  
              }else  x[match(x, y, 0L) == 0L] 
        } else x
}

Rgames> x
[1]  8  9  6 10  9
Rgames> y
[1] 5 3 8 8 1
Rgames> setdiff(x,y)
[1]  9  6 10
Rgames> mysetdiff(x,y)
[1]  9  6 10
Rgames> mysetdiff(x,y,mult=T)
[1]  9  6 10  9
Rgames> mysetdiff(y,x,mult=T)
[1] 5 3 1
Rgames> setdiff(y,x)
[1] 5 3 1
1
  • 1
    I would store a temporary to the result of the if statement, and call unique on that in the case !multiple. It would be easier to read. Feb 5, 2014 at 14:25
2

A nice one-liner that applies to duplicates:

anti_join(data_frame(c(1,1,2,2)), data_frame(c(1,1)))

This returns the data frame {2,2}. This however doesn't apply to the case of 1,2 in 1,1,2,2, because it finds it twice

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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