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In Lambda calculus, Y -combinator returns itself like this Y a = a Y a, specifially here. Suppose some trivial function such as y(x)=2*x+1 (suppose Church numbers for the sake of simplicity) and I want to do it Y y to which I want some sort of break-out -function. I want to do something like this

  1. calculate y(1) --->3
  2. calculate y(3) --->7
  3. calculate y(7) ...
  4. ...
  5. terminate on the n-th case

How can I do this in R using the functional way of thinking? Is there something built-in?

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maybe ?Reduce ? –  Ben Bolker Feb 26 '12 at 0:41

3 Answers 3

up vote 5 down vote accepted

I don't really understand the notation of the lambda calculus, so can't know for sure what the Y-combinator is, but I wonder if the R function Recall() (help page here) wouldn't help you build what you're after. Here is an example of its use to calculate a factorial:

# Calculate 4!
(function(n) {if (n<=1) 1 else n*Recall(n-1)})(4)

And here it is applied to the example you described:

(function(x, n) {if (n<=1) x else Recall(2*x+1, n-1)})(x=1, n=1)
# [1] 1
(function(x, n) {if (n<=1) x else Recall(2*x+1, n-1)})(x=1, n=2)
# [1] 3
(function(x, n) {if (n<=1) x else Recall(2*x+1, n-1)})(x=1, n=3)
# [1] 7
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If you just want a function, g, that transforms a function f into function(x) f(f(f(f(...f(x))))) (n times, with n not known in advance), the following should do.

compose_with_itself_n_times <- function(f,n) {
  function(x) {
    for(i in seq_len(n)) {
      x <- f(x)
    }
    x
  }
}
f <- function(x) 2*x+1
g <- compose_with_itself_n_times(f,10)
g(1)
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Try this:

myfun = function(x) { 2*x+1 }

N = 10; seed = 3; i = 1
for(i in 1:N){
     seed = Y = myfun(seed)
     print(Y)
}
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