Certification Problem

Input (TPDB SRS_Standard/ICFP_2010/213407)

The rewrite relation of the following TRS is considered.

0(1(1(x1)))	→	1(0(2(1(x1))))	(1)
0(1(1(x1)))	→	1(1(0(3(2(x1)))))	(2)
0(1(1(x1)))	→	1(4(0(0(2(1(x1))))))	(3)
0(1(4(x1)))	→	1(4(0(3(x1))))	(4)
0(1(4(x1)))	→	4(0(2(1(x1))))	(5)
0(1(4(x1)))	→	4(0(2(1(3(x1)))))	(6)
0(4(1(x1)))	→	0(2(4(1(x1))))	(7)
0(4(1(x1)))	→	4(0(2(1(x1))))	(8)
0(4(1(x1)))	→	4(0(3(1(x1))))	(9)
0(4(1(x1)))	→	1(4(4(0(2(x1)))))	(10)
0(4(1(x1)))	→	2(1(4(0(2(x1)))))	(11)
0(5(4(x1)))	→	1(4(0(0(2(5(x1))))))	(12)
0(5(4(x1)))	→	4(0(2(5(2(5(x1))))))	(13)
0(5(4(x1)))	→	5(0(4(0(3(3(x1))))))	(14)
4(2(1(x1)))	→	4(0(2(1(x1))))	(15)
4(2(1(x1)))	→	1(2(4(0(2(x1)))))	(16)
0(1(0(4(x1))))	→	0(0(2(2(1(4(x1))))))	(17)
0(1(1(2(x1))))	→	5(1(0(2(1(x1)))))	(18)
0(1(1(3(x1))))	→	1(1(5(0(3(x1)))))	(19)
0(1(4(1(x1))))	→	1(0(2(4(1(x1)))))	(20)
0(1(4(3(x1))))	→	1(0(2(4(3(x1)))))	(21)
0(1(4(3(x1))))	→	4(0(2(1(3(x1)))))	(22)
0(4(1(2(x1))))	→	2(0(3(1(4(x1)))))	(23)
0(4(2(1(x1))))	→	0(4(3(0(2(1(x1))))))	(24)
0(5(0(4(x1))))	→	1(5(4(0(0(2(x1))))))	(25)
0(5(1(3(x1))))	→	1(1(5(0(3(x1)))))	(26)
0(5(1(3(x1))))	→	5(3(1(0(3(x1)))))	(27)
0(5(4(1(x1))))	→	4(1(5(4(0(2(x1))))))	(28)
0(5(4(3(x1))))	→	0(2(5(0(3(4(x1))))))	(29)
0(5(4(3(x1))))	→	1(5(3(4(0(3(x1))))))	(30)
1(0(5(4(x1))))	→	1(4(5(0(3(3(x1))))))	(31)
1(0(5(4(x1))))	→	5(5(1(0(2(4(x1))))))	(32)
1(4(2(1(x1))))	→	4(0(2(1(2(1(x1))))))	(33)
4(1(2(1(x1))))	→	4(1(0(2(1(x1)))))	(34)
4(1(2(1(x1))))	→	3(4(0(2(1(1(x1))))))	(35)
4(3(2(1(x1))))	→	0(3(4(0(2(1(x1))))))	(36)
0(0(1(2(3(x1)))))	→	1(0(3(0(0(2(x1))))))	(37)
0(0(5(1(2(x1)))))	→	0(0(2(5(0(1(x1))))))	(38)
0(0(5(1(3(x1)))))	→	4(5(0(0(3(1(x1))))))	(39)
0(1(3(4(2(x1)))))	→	1(3(4(3(0(2(x1))))))	(40)
0(4(5(3(4(x1)))))	→	0(3(2(5(4(4(x1))))))	(41)
0(5(0(2(2(x1)))))	→	0(0(2(5(2(4(x1))))))	(42)
0(5(1(1(3(x1)))))	→	0(3(2(1(1(5(x1))))))	(43)
0(5(1(4(3(x1)))))	→	3(0(2(1(5(4(x1))))))	(44)
0(5(5(1(2(x1)))))	→	1(5(3(0(2(5(x1))))))	(45)
1(0(1(2(4(x1)))))	→	1(1(0(2(3(4(x1))))))	(46)
1(4(2(1(2(x1)))))	→	0(2(2(1(1(4(x1))))))	(47)
4(0(0(5(4(x1)))))	→	5(0(0(4(4(5(x1))))))	(48)
4(2(5(4(1(x1)))))	→	4(4(1(5(3(2(x1))))))	(49)

Property / Task

Prove or disprove termination.

Answer / Result

Yes.

Proof (by matchbox @ termCOMP 2023)

1 Closure Under Flat Contexts

Using the flat contexts

{5(☐), 4(☐), 3(☐), 2(☐), 1(☐), 0(☐)}

We obtain the transformed TRS

There are 294 ruless (increase limit for explicit display).

1.1 Semantic Labeling

The following interpretations form a model of the rules.

As carrier we take the set {0,...,5}. Symbols are labeled by the interpretation of their arguments using the interpretations (modulo 6):

[5(x₁)]	=	6x₁ + 0
[4(x₁)]	=	6x₁ + 1
[3(x₁)]	=	6x₁ + 2
[2(x₁)]	=	6x₁ + 3
[1(x₁)]	=	6x₁ + 4
[0(x₁)]	=	6x₁ + 5

We obtain the labeled TRS

There are 1764 ruless (increase limit for explicit display).

1.1.1 Rule Removal

Using the matrix interpretations of dimension 1 with strict dimension 1 over the rationals with delta = 1

[5₀(x₁)]

x₁ +

[5₁(x₁)]

x₁ +

[5₂(x₁)]

x₁ +

[5₃(x₁)]

x₁ +

[5₄(x₁)]

x₁ +

[5₅(x₁)]

x₁ +

[4₀(x₁)]

x₁ +

[4₁(x₁)]

x₁ +

[4₂(x₁)]

x₁ +

114

[4₃(x₁)]

x₁ +

123

[4₄(x₁)]

x₁ +

[4₅(x₁)]

x₁ +

[3₀(x₁)]

x₁ +

[3₁(x₁)]

x₁ +

[3₂(x₁)]

x₁ +

[3₃(x₁)]

x₁ +

[3₄(x₁)]

x₁ +

[3₅(x₁)]

x₁ +

[2₀(x₁)]

x₁ +

[2₁(x₁)]

x₁ +

[2₂(x₁)]

x₁ +

[2₃(x₁)]

x₁ +

[2₄(x₁)]

x₁ +

[2₅(x₁)]

x₁ +

[1₀(x₁)]

x₁ +

[1₁(x₁)]

x₁ +

[1₂(x₁)]

x₁ +

[1₃(x₁)]

x₁ +

114

[1₄(x₁)]

x₁ +

[1₅(x₁)]

x₁ +

[0₀(x₁)]

x₁ +

133

[0₁(x₁)]

x₁ +

114

[0₂(x₁)]

x₁ +

[0₃(x₁)]

x₁ +

[0₄(x₁)]

x₁ +

121

[0₅(x₁)]

x₁ +

all of the following rules can be deleted.

There are 1764 ruless (increase limit for explicit display).

1.1.1.1 R is empty

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