5

I can easily compare 2 vectors in R to see how many elements are the same. Say

  a<- c(1,2,3,4)
  b<- c(1,2,3,5)
  sum(a==b) would give me what I want

But how can I compare 3 vectors ? or more than 3 vectors at the same time ?

  a<- c(1,2,3,4)
  b<- c(1,2,3,5)
  c<- c(2,3,4,5)
  sum(a==b & b==c) # does not seem to be correct

I am looking for whether elements are same in the same position. In the same case, it would give me zero since a, b, c are not all the same at same position.

count = 0
for(i in 1:length(a)){
  if((a[i]==b[i]) & (a[i]==c[i]))
  count=count+1
} # this will give me that I want, but the efficiency seems very low 
  • Are you looking for whether elements are same in the same position? In that case comparing a,b,c, should give 0. For example a <- c(1,2,4,5); b <- c(2,1,3,0) ; sum(a==b)#[1] 0 – akrun Dec 14 '14 at 14:53
  • @akrun, thanks for pointing that out, that is what I mean. – GeekCat Dec 14 '14 at 15:07
2
is.equal <- function(mylist) {

    check.eq <- sapply(mylist[-1], function(x) {x == mylist[[1]]})

    as.logical(apply(check.eq, 1, prod))                   

}

is.equal(list(c(1,2,3,4), c(1,2,5,4), c(1,1,3,4)))

[1]  TRUE FALSE FALSE  TRUE
  • it uses loops, so it should be slower of most of the solutions you could find for this problem. At least it works. – Davide Passaretti Dec 14 '14 at 15:22
7

Create a matrix or data.frame and check whether one of the column is equal to the rest.

 m1 <- cbind(a,b,c)
 sum(rowSums(m1==m1[,1])==ncol(m1))
 #[1] 0

Or

 sum(Reduce(`&`,Map(`==`, list(a,b,c), list(a))))
 #[1] 0

If you want to find the length of common elements,

 length(Reduce(intersect,list(a,b,c)))
 #[1] 2
  • @DavidArenburg I am trying to compare element by element comparison based on the data that the OP provided. Suppose if I change c <- c(1,3,2,4). It would give 1 – akrun Dec 14 '14 at 15:05
  • @DavidArenburg I got confused by OP's description and the code sum(a==b). – akrun Dec 14 '14 at 15:07
  • Sorry for the confusion, I am trying to compare how many elements appear at the same position in 3 vectors. In the question, it would give 0. – GeekCat Dec 14 '14 at 15:09
  • @GeekCat In that case, the first option should work for you. Keep all the vectors in a list and use Reduce – akrun Dec 14 '14 at 15:09

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