Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Given x and y I wish to create the desired.result below:

x <- 1:10

y <- c(2:4,6:7,8:9)

desired.result <- c(1,2,2,2,3,4,4,5,5,6)

where, in effect, each sequence in y is replaced in x by the the first element in the sequence in y and then the elements of the new x are numbered.

The intermediate step for x would be:

x.intermediate <- c(1,2,2,2,5,6,6,8,8,10)

Below is code that does this. However, the code is not general and is overly complex:

x <- 1:10

y <- list(c(2:4),(6:7),(8:9))

unique.x <- 1:(length(x[-unlist(y)]) + length(y))

y1 <- rep(min(unlist(y[1])), length(unlist(y[1])))
y2 <- rep(min(unlist(y[2])), length(unlist(y[2])))
y3 <- rep(min(unlist(y[3])), length(unlist(y[3])))

new.x <- x

new.x[unlist(y[1])] <- y1
new.x[unlist(y[2])] <- y2
new.x[unlist(y[3])] <- y3

rep(unique.x, rle(new.x)$lengths)

 [1] 1 2 2 2 3 4 4 5 5 6

Below is my attempt to generalize the code. However, I am stuck on the second lapply.

x <- 1:10

y <- list(c(2:4),(6:7),(8:9))

unique.x <- 1:(length(x[-unlist(y)]) + length(y))

y2 <- lapply(y, function(i) rep(min(i), length(i)))

new.x <- x

lapply(y2, function(i) new.x[i[1]:(i[1]-1+length(i))] = i)

rep(unique.x, rle(new.x)$lengths)

Thank you for any advice. I suspect there is a much simpler solution I am overlooking. I prefer a solution in base R.

share|improve this question
up vote 2 down vote accepted

A solution like this should work:

x <- 1:10
y <- list(c(2:4),(6:7),(8:9))

x[unlist(y)]<-rep(sapply(y,'[',1),lapply(y,length))

rep(1:length(rle(x)$lengths), rle(x)$lengths)

## [1] 1 2 2 2 3 4 4 5 5 6
share|improve this answer
    
I had deleted my comment because it doesn't scale. I've rolled back your edit. – A Handcart And Mohair Mar 2 '14 at 7:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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