Certification Problem

Input (TPDB SRS_Standard/ICFP_2010/96086)

The rewrite relation of the following TRS is considered.

0(0(1(2(x1))))	→	2(3(0(x1)))	(1)
4(2(5(2(x1))))	→	1(4(0(x1)))	(2)
4(5(3(4(x1))))	→	4(4(2(4(x1))))	(3)
1(3(5(5(2(x1)))))	→	1(3(2(3(x1))))	(4)
5(2(2(1(2(x1)))))	→	0(0(2(3(x1))))	(5)
2(2(5(3(2(2(x1))))))	→	5(1(1(0(3(x1)))))	(6)
2(5(1(2(1(1(x1))))))	→	5(2(1(2(4(1(x1))))))	(7)
3(4(1(4(2(4(x1))))))	→	1(3(3(3(x1))))	(8)
3(5(2(2(4(5(x1))))))	→	3(2(4(3(0(x1)))))	(9)
5(2(1(0(1(5(x1))))))	→	5(4(2(4(5(1(x1))))))	(10)
1(3(5(4(1(2(2(x1)))))))	→	3(3(3(4(4(0(x1))))))	(11)
4(5(4(3(0(5(1(x1)))))))	→	4(3(3(5(4(1(x1))))))	(12)
2(1(5(2(1(3(4(4(x1))))))))	→	4(0(3(4(0(1(2(x1)))))))	(13)
5(4(0(2(2(4(0(4(x1))))))))	→	3(1(5(1(3(0(4(x1)))))))	(14)
3(4(2(1(1(2(2(5(4(x1)))))))))	→	3(3(3(1(3(3(4(x1)))))))	(15)
5(4(4(5(0(1(4(5(4(x1)))))))))	→	1(5(5(0(4(1(4(5(4(x1)))))))))	(16)
5(2(1(3(1(5(2(5(4(4(x1))))))))))	→	5(3(4(5(0(1(4(0(3(x1)))))))))	(17)
2(4(1(2(5(2(4(1(3(2(0(3(x1))))))))))))	→	4(3(0(4(2(3(4(3(4(2(0(x1)))))))))))	(18)
0(2(3(5(4(2(2(1(0(3(3(5(0(x1)))))))))))))	→	3(3(1(2(3(0(4(0(0(0(2(0(x1))))))))))))	(19)
2(1(0(2(1(4(0(0(2(0(0(0(5(2(x1))))))))))))))	→	2(2(4(2(1(4(3(0(5(1(3(3(0(x1)))))))))))))	(20)
4(5(0(3(1(3(2(2(5(2(2(4(1(3(2(x1)))))))))))))))	→	4(5(3(2(1(4(5(0(0(0(4(5(4(0(0(x1)))))))))))))))	(21)
5(2(2(5(2(4(4(1(2(0(1(1(0(1(1(x1)))))))))))))))	→	5(0(5(4(3(2(1(0(3(3(5(0(4(1(x1))))))))))))))	(22)
5(4(2(0(3(3(0(0(4(0(3(2(0(5(1(x1)))))))))))))))	→	5(0(1(0(0(2(1(1(0(3(2(2(1(3(x1))))))))))))))	(23)
5(4(1(5(1(5(4(4(2(2(0(4(3(1(5(4(4(3(1(x1)))))))))))))))))))	→	3(0(4(5(1(1(3(5(3(4(4(4(5(1(4(3(3(1(x1))))))))))))))))))	(24)
2(0(3(0(2(2(2(0(1(4(2(1(0(4(4(3(3(1(4(4(x1))))))))))))))))))))	→	5(2(4(1(1(4(5(1(0(1(2(0(3(0(1(2(3(4(3(1(x1))))))))))))))))))))	(25)

Property / Task

Prove or disprove termination.

Answer / Result

Yes.

Proof (by ttt2 @ termCOMP 2023)

1 Rule Removal

Using the Knuth Bendix order with w0 = 1 and the following precedence and weight functions

prec(4)	=	1	weight(4)	=	2
prec(5)	=	2	weight(5)	=	2
prec(3)	=	3	weight(3)	=	2
prec(0)	=	6	weight(0)	=	2
prec(1)	=	0	weight(1)	=	2
prec(2)	=	7	weight(2)	=	2

all of the following rules can be deleted.

0(0(1(2(x1))))	→	2(3(0(x1)))	(1)
4(2(5(2(x1))))	→	1(4(0(x1)))	(2)
4(5(3(4(x1))))	→	4(4(2(4(x1))))	(3)
1(3(5(5(2(x1)))))	→	1(3(2(3(x1))))	(4)
5(2(2(1(2(x1)))))	→	0(0(2(3(x1))))	(5)
2(2(5(3(2(2(x1))))))	→	5(1(1(0(3(x1)))))	(6)
2(5(1(2(1(1(x1))))))	→	5(2(1(2(4(1(x1))))))	(7)
3(4(1(4(2(4(x1))))))	→	1(3(3(3(x1))))	(8)
3(5(2(2(4(5(x1))))))	→	3(2(4(3(0(x1)))))	(9)
5(2(1(0(1(5(x1))))))	→	5(4(2(4(5(1(x1))))))	(10)
1(3(5(4(1(2(2(x1)))))))	→	3(3(3(4(4(0(x1))))))	(11)
4(5(4(3(0(5(1(x1)))))))	→	4(3(3(5(4(1(x1))))))	(12)
2(1(5(2(1(3(4(4(x1))))))))	→	4(0(3(4(0(1(2(x1)))))))	(13)
5(4(0(2(2(4(0(4(x1))))))))	→	3(1(5(1(3(0(4(x1)))))))	(14)
3(4(2(1(1(2(2(5(4(x1)))))))))	→	3(3(3(1(3(3(4(x1)))))))	(15)
5(4(4(5(0(1(4(5(4(x1)))))))))	→	1(5(5(0(4(1(4(5(4(x1)))))))))	(16)
5(2(1(3(1(5(2(5(4(4(x1))))))))))	→	5(3(4(5(0(1(4(0(3(x1)))))))))	(17)
2(4(1(2(5(2(4(1(3(2(0(3(x1))))))))))))	→	4(3(0(4(2(3(4(3(4(2(0(x1)))))))))))	(18)
0(2(3(5(4(2(2(1(0(3(3(5(0(x1)))))))))))))	→	3(3(1(2(3(0(4(0(0(0(2(0(x1))))))))))))	(19)
2(1(0(2(1(4(0(0(2(0(0(0(5(2(x1))))))))))))))	→	2(2(4(2(1(4(3(0(5(1(3(3(0(x1)))))))))))))	(20)
4(5(0(3(1(3(2(2(5(2(2(4(1(3(2(x1)))))))))))))))	→	4(5(3(2(1(4(5(0(0(0(4(5(4(0(0(x1)))))))))))))))	(21)
5(2(2(5(2(4(4(1(2(0(1(1(0(1(1(x1)))))))))))))))	→	5(0(5(4(3(2(1(0(3(3(5(0(4(1(x1))))))))))))))	(22)
5(4(2(0(3(3(0(0(4(0(3(2(0(5(1(x1)))))))))))))))	→	5(0(1(0(0(2(1(1(0(3(2(2(1(3(x1))))))))))))))	(23)
5(4(1(5(1(5(4(4(2(2(0(4(3(1(5(4(4(3(1(x1)))))))))))))))))))	→	3(0(4(5(1(1(3(5(3(4(4(4(5(1(4(3(3(1(x1))))))))))))))))))	(24)
2(0(3(0(2(2(2(0(1(4(2(1(0(4(4(3(3(1(4(4(x1))))))))))))))))))))	→	5(2(4(1(1(4(5(1(0(1(2(0(3(0(1(2(3(4(3(1(x1))))))))))))))))))))	(25)

1.1 R is empty

There are no rules in the TRS. Hence, it is terminating.