YES
We show the termination of the TRS R:
first(|0|(),X) -> nil()
first(s(X),cons(Y,Z)) -> cons(Y,n__first(X,activate(Z)))
from(X) -> cons(X,n__from(s(X)))
first(X1,X2) -> n__first(X1,X2)
from(X) -> n__from(X)
activate(n__first(X1,X2)) -> first(X1,X2)
activate(n__from(X)) -> from(X)
activate(X) -> X
-- SCC decomposition.
Consider the dependency pair problem (P, R), where P consists of
p1: first#(s(X),cons(Y,Z)) -> activate#(Z)
p2: activate#(n__first(X1,X2)) -> first#(X1,X2)
p3: activate#(n__from(X)) -> from#(X)
and R consists of:
r1: first(|0|(),X) -> nil()
r2: first(s(X),cons(Y,Z)) -> cons(Y,n__first(X,activate(Z)))
r3: from(X) -> cons(X,n__from(s(X)))
r4: first(X1,X2) -> n__first(X1,X2)
r5: from(X) -> n__from(X)
r6: activate(n__first(X1,X2)) -> first(X1,X2)
r7: activate(n__from(X)) -> from(X)
r8: activate(X) -> X
The estimated dependency graph contains the following SCCs:
{p1, p2}
-- Reduction pair.
Consider the dependency pair problem (P, R), where P consists of
p1: first#(s(X),cons(Y,Z)) -> activate#(Z)
p2: activate#(n__first(X1,X2)) -> first#(X1,X2)
and R consists of:
r1: first(|0|(),X) -> nil()
r2: first(s(X),cons(Y,Z)) -> cons(Y,n__first(X,activate(Z)))
r3: from(X) -> cons(X,n__from(s(X)))
r4: first(X1,X2) -> n__first(X1,X2)
r5: from(X) -> n__from(X)
r6: activate(n__first(X1,X2)) -> first(X1,X2)
r7: activate(n__from(X)) -> from(X)
r8: activate(X) -> X
The set of usable rules consists of
(no rules)
Take the reduction pair:
lexicographic combination of reduction pairs:
1. lexicographic path order with precedence:
precedence:
first# > n__first > activate# > cons > s
argument filter:
pi(first#) = 2
pi(s) = []
pi(cons) = [1, 2]
pi(activate#) = 1
pi(n__first) = [1, 2]
2. matrix interpretations:
carrier: N^1
order: standard order
interpretations:
first#_A(x1,x2) = 0
s_A(x1) = 1
cons_A(x1,x2) = x1 + x2 + 1
activate#_A(x1) = x1 + 1
n__first_A(x1,x2) = x1 + x2 + 1
The next rules are strictly ordered:
p1, p2
We remove them from the problem. Then no dependency pair remains.