Certification Problem

Input (TPDB TRS_Outermost/Strategy_outermost_added_08/ExAppendixB_AEL03)

The rewrite relation of the following TRS is considered.

from(X)	→	cons(X,from(s(X)))	(1)
2ndspos(0,Z)	→	rnil	(2)
2ndspos(s(N),cons(X,Z))	→	2ndspos(s(N),cons2(X,Z))	(3)
2ndspos(s(N),cons2(X,cons(Y,Z)))	→	rcons(posrecip(Y),2ndsneg(N,Z))	(4)
2ndsneg(0,Z)	→	rnil	(5)
2ndsneg(s(N),cons(X,Z))	→	2ndsneg(s(N),cons2(X,Z))	(6)
2ndsneg(s(N),cons2(X,cons(Y,Z)))	→	rcons(negrecip(Y),2ndspos(N,Z))	(7)
pi(X)	→	2ndspos(X,from(0))	(8)
plus(0,Y)	→	Y	(9)
plus(s(X),Y)	→	s(plus(X,Y))	(10)
times(0,Y)	→	0	(11)
times(s(X),Y)	→	plus(Y,times(X,Y))	(12)
square(X)	→	times(X,X)	(13)

The evaluation strategy is outermost

Property / Task

Prove or disprove termination.

Answer / Result

No.

Proof (by AProVE @ termCOMP 2023)

1 Loop

The following loop proves nontermination.

t₀	=	from(X)
	→	cons(X,from(s(X)))
	=	t₁

where t₁ = C[t₀σ] and σ = {X/s(X)} and C = cons(X,☐)