Certification Problem

Input (TPDB SRS_Standard/Waldmann_19/random-268)

The rewrite relation of the following TRS is considered.

a(b(b(b(x1))))	→	b(a(b(a(x1))))	(1)
b(a(b(a(x1))))	→	b(b(b(b(x1))))	(2)
a(a(a(b(x1))))	→	a(b(a(a(x1))))	(3)

Property / Task

Prove or disprove termination.

Answer / Result

Yes.

Proof (by AProVE @ termCOMP 2023)

1 Dependency Pair Transformation

The following set of initial dependency pairs has been identified.

a^#(b(b(b(x1))))	→	b^#(a(b(a(x1))))	(4)
a^#(b(b(b(x1))))	→	a^#(b(a(x1)))	(5)
a^#(b(b(b(x1))))	→	b^#(a(x1))	(6)
a^#(b(b(b(x1))))	→	a^#(x1)	(7)
b^#(a(b(a(x1))))	→	b^#(b(b(b(x1))))	(8)
b^#(a(b(a(x1))))	→	b^#(b(b(x1)))	(9)
b^#(a(b(a(x1))))	→	b^#(b(x1))	(10)
b^#(a(b(a(x1))))	→	b^#(x1)	(11)
a^#(a(a(b(x1))))	→	a^#(b(a(a(x1))))	(12)
a^#(a(a(b(x1))))	→	b^#(a(a(x1)))	(13)
a^#(a(a(b(x1))))	→	a^#(a(x1))	(14)
a^#(a(a(b(x1))))	→	a^#(x1)	(15)

1.1 Dependency Graph Processor

The dependency pairs are split into 2 components.

The 1^st component contains the pair

a^#(b(b(b(x1)))) → a^#(x1) (7)

a^#(b(b(b(x1)))) → a^#(b(a(x1))) (5)

a^#(a(a(b(x1)))) → a^#(b(a(a(x1)))) (12)

a^#(a(a(b(x1)))) → a^#(a(x1)) (14)

a^#(a(a(b(x1)))) → a^#(x1) (15)

1.1.1 Reduction Pair Processor
Using the linear polynomial interpretation over the naturals

[a^#(x₁)] = 1 · x₁

[b(x₁)] = 1 + 1 · x₁

[a(x₁)] = 1 + 1 · x₁

the pairs

a^#(b(b(b(x1)))) → a^#(x1) (7)

a^#(b(b(b(x1)))) → a^#(b(a(x1))) (5)

a^#(a(a(b(x1)))) → a^#(a(x1)) (14)

a^#(a(a(b(x1)))) → a^#(x1) (15)

could be deleted.
1.1.1.1 Reduction Pair Processor with Usable Rules
Using the linear polynomial interpretation over the naturals

[a^#(x₁)] = 1 · x₁

[a(x₁)] = 1 + 1 · x₁

[b(x₁)] = 1

together with the usable rule
b(a(b(a(x1)))) → b(b(b(b(x1)))) (2)
(w.r.t. the implicit argument filter of the reduction pair), the pair
a^#(a(a(b(x1)))) → a^#(b(a(a(x1)))) (12)
could be deleted.
1.1.1.1.1 P is empty

There are no pairs anymore.
The 2^nd component contains the pair

b^#(a(b(a(x1)))) → b^#(b(b(x1))) (9)

b^#(a(b(a(x1)))) → b^#(b(b(b(x1)))) (8)

b^#(a(b(a(x1)))) → b^#(b(x1)) (10)

b^#(a(b(a(x1)))) → b^#(x1) (11)

1.1.2 Monotonic Reduction Pair Processor with Usable Rules
Using the linear polynomial interpretation over the naturals

[b(x₁)] = 1 · x₁

[a(x₁)] = 1 · x₁

[b^#(x₁)] = 1 · x₁

together with the usable rule
b(a(b(a(x1)))) → b(b(b(b(x1)))) (2)
(w.r.t. the implicit argument filter of the reduction pair), the rule could be deleted.
1.1.2.1 Dependency Graph Processor

The dependency pairs are split into 1 component.
- The 1^st component contains the pair
  b^#(a(b(a(x1)))) → b^#(x1) (11)
  
  1.1.2.1.1 Monotonic Reduction Pair Processor with Usable Rules
  Using the linear polynomial interpretation over the naturals
  
  [a(x₁)] = 1 · x₁
  
  [b(x₁)] = 1 · x₁
  
  [b^#(x₁)] = 1 · x₁
  
  having no usable rules (w.r.t. the implicit argument filter of the reduction pair), the rule could be deleted.
  1.1.2.1.1.1 Size-Change Termination
  
  Using size-change termination in combination with the subterm criterion one obtains the following initial size-change graphs.
  
  b^#(a(b(a(x1)))) → b^#(x1) (11)
  
  1 > 1
  
  As there is no critical graph in the transitive closure, there are no infinite chains.

[a^#(x₁)]	=	1 · x₁
[b(x₁)]	=	1 + 1 · x₁
[a(x₁)]	=	1 + 1 · x₁

Certification Problem

Input (TPDB SRS_Standard/Waldmann_19/random-268)

Property / Task

Answer / Result

Proof (by AProVE @ termCOMP 2023)

1 Dependency Pair Transformation

1.1 Dependency Graph Processor

1.1.1 Reduction Pair Processor

1.1.1.1 Reduction Pair Processor with Usable Rules

1.1.1.1.1 P is empty

1.1.2 Monotonic Reduction Pair Processor with Usable Rules

1.1.2.1 Dependency Graph Processor

1.1.2.1.1 Monotonic Reduction Pair Processor with Usable Rules

1.1.2.1.1.1 Size-Change Termination