Let C(n,k) be the cost of computing binom(n,k) in that way, with
C(0,_) = 1
C(_,0) = 1
as base cases.
The recurrence is obviously
C(n,k) = 1 + C(n-1,k-1) + C(n-1,k)
if we take addition to have cost 1. Then, we can easily check that
k
C(n,k) = 2 * ∑ binom(n,j) - 1
j=0
by induction.
So for k >= n, the cost is 2^(n+1) - 1, C(n,n-1) = 2^(n+1)- 3, C(n,1) = 2*n+1, C(n,2) = n*(n+1)+1, (and beyond that, I don't see neat formulae).
We have the obvious upper bound of
C(n,k) < 2^(n+1)
independent of k, and for k < n/2 we can coarsely estimate
C(n,k) <= 2*(k+1)*binom(n,k)
which gives a much smaller bound for small k, so overall
C(n,k) ∈ O(min{(k+1)*binom(n,min(k, n/2)), 2^n})
(need to clamp the k for the minimum, since binom(n,k) decreases back to 1 for k > n/2).
