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I need a function that subsets a multidimensional array in R; the catch is I don't know which dimension or the length along that dimension until the function is called.

# subset a 3-d array; leave dims 1 and 2, but start 3rd dim at its 11th value
mydim <- dim(myarr)
myarr[, , 11:mydim[3]]

# subset a 4-d array; leave dims 1, 3 and 4, but start 2rd dim at its 8th value
mydim <- dim(myarr)
myarr[, 8:mydim[2], , ]

I always need to subset along exactly one dimension, and the subsetting is always to start at some value other than 1. I also need to preserve the array structure, so matrix indexing into arrays does not look appealing. Thanks in advance.

share|improve this question
    
Interesting. When you say "how much" do you mean how many the length along that dimension or something different? – Ricardo Saporta Nov 28 '12 at 21:02
    
yes, I mean the length along that dimension – Jack Tanner Nov 28 '12 at 21:03
    
I woukld suggest list() for this kind of operation – java_xof Nov 28 '12 at 21:07
up vote 1 down vote accepted

Here's an option that takes advantage of the possibility of subsetting an array based on a matrix:

myarr <- array(1:(2*3*4), dim = c(2, 3, 4))

myfun <- function(arr, from, len, Dim){
    dimArr <- dim(arr)
    if(missing(len)){
        subIdx <- from:dimArr[Dim]
    } else {
        subIdx <- from:(from + len - 1)
    }
    arrD <- lapply(as.list(dimArr), seq_len)
    arrD[[Dim]] <- subIdx
    subMat <- as.matrix(do.call(expand.grid, arrD))
    array(arr[subMat], dim = lapply(arrD, length))
}

> myfun(myarr, 2, 1, 3)
, , 1

     [,1] [,2] [,3]
[1,]    7    9   11
[2,]    8   10   12

> myfun(myarr, 2, Dim = 3)
, , 1

     [,1] [,2] [,3]
[1,]    7    9   11
[2,]    8   10   12

, , 2

     [,1] [,2] [,3]
[1,]   13   15   17
[2,]   14   16   18

, , 3

     [,1] [,2] [,3]
[1,]   19   21   23
[2,]   20   22   24
share|improve this answer
    
@JackTanner, just saw (and understood a different way) the "length along" comment. If the edit doesn't do what you wanted, please inform! – BenBarnes Nov 28 '12 at 21:44

Here we go! Tested too...

  sampleArray <- function(myarr, dm, start, leng) {
  ## arguments: 
  ##  dm is the dimension selected
  ##  start is where in dm to being
  ##  leng is how far in from dm to go  
  ##   start+leng <= dim(myarr)[dm]

    leng <- leng-1

    # error check
    if (start+leng > dim(myarr)[dm])
      warning("leng too long by ", start+leng - dim(myarr)[dm], ".")

    #initialize a vector of all TRUE
    indx <- as.list(rep(TRUE, length(dim(myarr))))

    # change the required dimension to the required sequence
    indx[[dm]] <- seq(start, start+leng)
    indx <- paste(indx, collapse=",")

    expr <- paste0("myarr[", indx, "]")

    # return the appropriate sample
    eval(parse(text=expr))
  }

example:

# sample array
myarr <- array(1:2250, dim=c(15, 10, 15))

# example call
sampleArray(myarr, dm=2, start=4, leng=3)
share|improve this answer
    
doesn't work: indx is a vector, and changing its 3rd value to another vector fails with "number of items to replace is not a multiple of replacement length" – Jack Tanner Nov 28 '12 at 21:21
    
@Jack Tanner - just edited it. It should work now – Ricardo Saporta Nov 28 '12 at 21:30
    
It almost works! You mean start+leng-1. I accepted the other answer because it was bug free, but thanks for showing me a nice alternative. – Jack Tanner Nov 28 '12 at 21:40
    
@JackTanner, thanks for catching the leng-1. No sweat – Ricardo Saporta Nov 28 '12 at 21:45

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