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Suppose that, given a list of ordinals in R, I want to generate all ordered binary trees as a recursive list of <=2 lists.

So, for example, given list(2,1,4,3), the output would be:

list(list(1, list(2, list(3, 4))),
     list(1, list(list(2, 3), 4)),
     list(list(1, 2), list(3, 4)),
     list(list(1, list(2, 3)), 4),
     list(list(list(1, 2), 3), 4))

The order in which the trees are listed doesn't really matter. Sorting isn't a problem, but I'm struggling a lot with making a working functional recursion. I know R is pretty slow with recursion, but speed here isn't an issue, as I'm dealing with lists of fairly low (<=7) order.

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1 Answer 1

up vote 1 down vote accepted

This function should get you going. It takes whatever list you give it and outputs all binary trees keeping the items in the list in the order they were given:

trees <- function(l) {
    if (length(l) <= 1)
        return(l)
    if (length(l) <= 2)
        return(list(l))

    unlist(lapply(2:(length(l)), function(i) {
        left.trees <- trees(l[1:(i-1)])
        right.trees <- trees(l[i:length(l)])
        apply(expand.grid(1:length(left.trees), 1:length(right.trees)), 1, function(idx) {
            list(left.trees[[idx[1]]], right.trees[[idx[2]]])
        })
    }), recursive=FALSE)
}

so for the example you gave:

> dput(trees(as.list(1:4)))
list(list(1L, list(2L, list(3L, 4L))), list(1L, list(list(2L, 
    3L), 4L)), list(list(1L, 2L), list(3L, 4L)), list(list(1L, 
    list(2L, 3L)), 4L), list(list(list(1L, 2L), 3L), 4L))
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Thanks! This is a beautiful little solution. –  tresbot Jun 19 '12 at 7:15

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