4

I need to generate a vector of the following format using R:

1:10, 1:10, 11:20, 11:20, ... 121:130, 121:130

Is there an easier way than creating 12 vectors and then repeating each one twice?

3

Is this what you want?

unlist(lapply(rep(seq(1, 121, by=10), each=2), function(x) seq(x, x+9)))
18

Also you could do:

rep(1:10, 26) + rep(seq(0,120,10), each=20)
  • elegant! And given the number of ways to get to the result, I'm feeling a bit better about being flummoxed. – dnagirl Jun 23 '10 at 16:37
  • rats, came to this late and thought I had the fastest but this is so close to the optimal solution I'm just voting it up. To make it even faster use "rep(0:12, each = 20)*10" after the + sign. (6x speedup overall) – John Jun 24 '10 at 19:41
  • further to the speed issue - this answer is 5x faster than lapply()). The outer() answer below falls between this answer and my modification in performance. The newer matrix answer is about equal in speed to my modification here and perhaps the fastest overall. – John Jun 24 '10 at 19:53
  • And one more modification: 1:10 + rep(10*(0:12), each=20). – Marek Jun 25 '10 at 8:51
3

Another way:

x <- matrix(1:130, 10, 13)
c(rbind(x, x))

Possible more efficient version:

x <- 1:130
dim(x) <- c(10,13)
c(rbind(x, x))
2

Alternatively, you could use a combination of rep and outer, such as:

c(outer(1:10,rep(0:12,each=2),function(x,y)10*y+x))
1

I think this will do you.

x <- ((0:12)*10)+1
y <- x + 9

repeatVectors <- function(x,y){
    rep(seq(x,y),2)
}

z <- mapply(repeatVectors, x,y)
z <- as.vector(z)
1

A method using split is

unlist(rep(split(seq_len(130), rep(1:13, each=10)), each=2), use.names=FALSE)

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