Certification Problem

Input (TPDB TRS_Standard/SK90/4.44)

The rewrite relation of the following TRS is considered.

f(h(x))	→	f(i(x))	(1)
g(i(x))	→	g(h(x))	(2)
h(a)	→	b	(3)
i(a)	→	b	(4)

Property / Task

Prove or disprove termination.

Answer / Result

Yes.

Proof (by ttt2 @ termCOMP 2023)

1 Rule Removal

Using the linear polynomial interpretation over (3 x 3)-matrices with strict dimension 1 over the naturals

[a]

1	0	0
0	0	0
0	0	0

[f(x₁)]

1	1	1
0	0	0
0	1	1

· x₁ +

0	0	0
0	0	0
0	0	0

[g(x₁)]

1	1	1
0	0	0
0	0	0

· x₁ +

1	0	0
0	0	0
0	0	0

[b]

0	0	0
0	0	0
0	0	0

[h(x₁)]

1	0	0
0	1	0
0	0	1

· x₁ +

1	0	0
0	0	0
0	0	0

[i(x₁)]

1	0	0
0	0	1
0	1	0

· x₁ +

1	0	0
0	0	0
0	0	0

all of the following rules can be deleted.

h(a)	→	b	(3)
i(a)	→	b	(4)

1.1 Rule Removal

Using the linear polynomial interpretation over (5 x 5)-matrices with strict dimension 1 over the naturals

[f(x₁)]

1	1	0	0
1	0	0	0
0	1	1	1
0	1	1	1
0	1	1	1

· x₁ +

0	0	0	0	0
0	0	0	0	0
0	0	0	0	0
0	0	0	0	0
0	0	0	0	0

[g(x₁)]

1	1	0	0
0	0	0	1
1	1	0	0
0	0	0	0
0	0	1	1

· x₁ +

0	0	0	0	0
0	0	0	0	0
0	0	0	0	0
0	0	0	0	0
0	0	0	0	0

[h(x₁)]

1	0	1	1
0	1	0	0
0	1	0	0
1	0	1	0
0	0	0	0

· x₁ +

0	0	0	0	0
0	0	0	0	0
1	0	0	0	0
0	0	0	0	0
0	0	0	0	0

[i(x₁)]

1	0	1	1
0	1	0	0
0	1	0	0
0	0	1	0
1	0	0	0

· x₁ +

0	0	0	0	0
1	0	0	0	0
0	0	0	0	0
0	0	0	0	0
1	0	0	0	0

all of the following rules can be deleted.

f(h(x))	→	f(i(x))	(1)
g(i(x))	→	g(h(x))	(2)

1.1.1 R is empty

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