YES
We show the termination of the TRS R:
not(true()) -> false()
not(false()) -> true()
evenodd(x,|0|()) -> not(evenodd(x,s(|0|())))
evenodd(|0|(),s(|0|())) -> false()
evenodd(s(x),s(|0|())) -> evenodd(x,|0|())
-- SCC decomposition.
Consider the dependency pair problem (P, R), where P consists of
p1: evenodd#(x,|0|()) -> not#(evenodd(x,s(|0|())))
p2: evenodd#(x,|0|()) -> evenodd#(x,s(|0|()))
p3: evenodd#(s(x),s(|0|())) -> evenodd#(x,|0|())
and R consists of:
r1: not(true()) -> false()
r2: not(false()) -> true()
r3: evenodd(x,|0|()) -> not(evenodd(x,s(|0|())))
r4: evenodd(|0|(),s(|0|())) -> false()
r5: evenodd(s(x),s(|0|())) -> evenodd(x,|0|())
The estimated dependency graph contains the following SCCs:
{p2, p3}
-- Reduction pair.
Consider the dependency pair problem (P, R), where P consists of
p1: evenodd#(x,|0|()) -> evenodd#(x,s(|0|()))
p2: evenodd#(s(x),s(|0|())) -> evenodd#(x,|0|())
and R consists of:
r1: not(true()) -> false()
r2: not(false()) -> true()
r3: evenodd(x,|0|()) -> not(evenodd(x,s(|0|())))
r4: evenodd(|0|(),s(|0|())) -> false()
r5: evenodd(s(x),s(|0|())) -> evenodd(x,|0|())
The set of usable rules consists of
(no rules)
Take the reduction pair:
lexicographic combination of reduction pairs:
1. matrix interpretations:
carrier: N^1
order: standard order
interpretations:
evenodd#_A(x1,x2) = x1
|0|_A() = 1
s_A(x1) = x1 + 1
2. lexicographic path order with precedence:
precedence:
s > |0| > evenodd#
argument filter:
pi(evenodd#) = [1]
pi(|0|) = []
pi(s) = [1]
The next rules are strictly ordered:
p2
We remove them from the problem.
-- SCC decomposition.
Consider the dependency pair problem (P, R), where P consists of
p1: evenodd#(x,|0|()) -> evenodd#(x,s(|0|()))
and R consists of:
r1: not(true()) -> false()
r2: not(false()) -> true()
r3: evenodd(x,|0|()) -> not(evenodd(x,s(|0|())))
r4: evenodd(|0|(),s(|0|())) -> false()
r5: evenodd(s(x),s(|0|())) -> evenodd(x,|0|())
The estimated dependency graph contains the following SCCs:
(no SCCs)