8

Suppose I have a vector of cut points, for the purposes of this question, generated as follows:

> seq(0,50,10)
[1]  0 10 20 30 40 50

This is a numeric vector of length 6. I would like to generate a numeric vector of midpoints, to get either of the following (both of which meet my requirements), of length one less of the cuts (in this case, 5).

# midpoints, exactly
5 15 25 35 45
# medians excluding right
4.5 14.5 24.5 34.5 44.5

Not finding a pre-rolled function, I developed a procedure that takes a numeric vector as an argument (the cut points) and returns a vector (the midpoints). It works by taking the median of index 1 and index 2 and appending it to a vector, then the median of index 2 and index 3, and so on until the last index is NULL.

Surely, I can't be the first one to have this need. Is there a package with such a procedure? I don't mind rolling by own, but honestly I'd rather use a package that's been subject to the rigors of public scrutiny.

Thanks

  • 1
    Add diff(vec) to head(vec, -1) – 42- Nov 4 '15 at 23:31
  • @BondedDust - diff(vec)/2 surely? – thelatemail Nov 4 '15 at 23:52
10

Split the difference?

a <- seq(0,50,10)
a[-length(a)] + diff(a)/2
  • Yes, Neal, and thanks. I hesitate to make my solution public, my brain has been pickeled by Perl, but here is my attempt. Gives the same result as yours, but yours obviously much better. +1. t <- function(nv) { old.len <- length(nv) new.len <- old.len - 1 vec <- numeric(new.len) i <- 1 while(i < old.len) { midpoint <- (nv[i] + nv[i+1]) / 2 vec[i] <- midpoint i <- i + 1 } return(vec) } – ccc31807 Nov 5 '15 at 0:44
5

Another attempt using filter, which would allow you to weight a mid-point right in the middle, or some degree to the left or right:

x <- seq(0,50,10)

head(filter(x, c(0.5,0.5)), -1)
#[1]  5 15 25 35 45

head(filter(x, c(0.75,0.25)), -1)
#[1]  7.5 17.5 27.5 37.5 47.5

head(filter(x, c(0.25,0.75)), -1)
#[1]  2.5 12.5 22.5 32.5 42.5
  • Also can be used on x defined inline (doesn't require x to be stored), e.g., head(filter(1:10, c(.5, .5)), -1) – MichaelChirico Oct 28 '16 at 17:33

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