Certification Problem

Input (TPDB TRS_Relative/INVY_15/#3.7_rand)

The relative rewrite relation R/S is considered where R is the following TRS

half(0)	→	0	(1)
half(s(s(x)))	→	s(half(x))	(2)
log(s(0))	→	0	(3)
log(s(s(x)))	→	s(log(s(half(x))))	(4)

and S is the following TRS.

rand(x)	→	rand(s(x))	(5)
rand(x)	→	x	(6)

Property / Task

Prove or disprove termination.

Answer / Result

Yes.

Proof (by AProVE @ termCOMP 2023)

1 Rule Removal

Using the linear polynomial interpretation over the naturals

[half(x₁)]	=	1 · x₁
[0]	=	0
[s(x₁)]	=	1 · x₁
[log(x₁)]	=	1 · x₁
[rand(x₁)]	=	1 + 1 · x₁

all of the following rules can be deleted.

rand(x)

→

(6)

1.1 Rule Removal

Using the linear polynomial interpretation over the naturals

[half(x₁)]	=	1 · x₁
[0]	=	0
[s(x₁)]	=	1 · x₁
[log(x₁)]	=	1 + 1 · x₁
[rand(x₁)]	=	1 · x₁

all of the following rules can be deleted.

log(s(0))

→

(3)

1.1.1 Rule Removal

Using the matrix interpretations of dimension 2 with strict dimension 1 over the integers

[half(x₁)]

1	2
0	1

· x₁

[0]

[s(x₁)]

1	0
0	2

· x₁

[log(x₁)]

2	2
0	0

· x₁

[rand(x₁)]

2	0
0	0

· x₁

all of the following rules can be deleted.

half(0)

→

(1)

1.1.1.1 Rule Removal

Using the matrix interpretations of dimension 2 with strict dimension 1 over the integers

[half(x₁)]

1	0
0	1

· x₁

[s(x₁)]

1	0
0	2

· x₁

[log(x₁)]

2	1
0	1

· x₁

[rand(x₁)]

1	0
0	0

· x₁

all of the following rules can be deleted.

log(s(s(x)))

→

s(log(s(half(x))))

(4)

1.1.1.1.1 Rule Removal

Using the matrix interpretations of dimension 2 with strict dimension 1 over the integers

[half(x₁)]

1	2
0	1

· x₁

[s(x₁)]

1	0
0	2

· x₁

[rand(x₁)]

2	0
0	0

· x₁

all of the following rules can be deleted.

half(s(s(x)))

→

s(half(x))

(2)

1.1.1.1.1.1 R is empty

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