Certification Problem

Input (TPDB SRS_Standard/Zantema_06/10)

The rewrite relation of the following TRS is considered.

Property / Task

Answer / Result

Proof (by AProVE @ termCOMP 2023)

1 Dependency Pair Transformation

1.1 Dependency Graph Processor

The dependency pairs are split into 1 component.

• The 1^st component contains the pair

  a#(d(x1))	→	b#(x1)	(9)
  b#(d(b(x1)))	→	a#(d(x1))	(13)
  a#(x1)	→	b#(b(b(x1)))	(10)
  a#(x1)	→	b#(b(x1))	(11)
  a#(x1)	→	b#(x1)	(12)
  a#(c(x1))	→	b#(b(c(d(x1))))	(17)

  1.1.1 Reduction Pair Processor

  Using the linear polynomial interpretation over the naturals

  [a#(x1)]	=	1 + 1 · x1
  [d(x1)]	=	1 + 1 · x1
  [b#(x1)]	=	1 + 1 · x1
  [b(x1)]	=	1 · x1
  [c(x1)]	=	0
  [a(x1)]	=	1 · x1

  the pair

  a#(d(x1))

  →

  b#(x1)

  (9)

  could be deleted.

  1.1.1.1 Reduction Pair Processor

  Using the linear polynomial interpretation over the naturals

  [b#(x1)]	=	2 · x1
  [d(x1)]	=	4 + 4 · x1
  [b(x1)]	=	1 + 1 · x1
  [a#(x1)]	=	4 + 2 · x1
  [c(x1)]	=	1
  [a(x1)]	=	4 + 1 · x1

  the pairs

  b#(d(b(x1)))	→	a#(d(x1))	(13)
  a#(x1)	→	b#(b(x1))	(11)
  a#(x1)	→	b#(x1)	(12)
  a#(c(x1))	→	b#(b(c(d(x1))))	(17)

  could be deleted.

  1.1.1.1.1 Monotonic Reduction Pair Processor

  Using the linear polynomial interpretation over the naturals

  [a(x1)]	=	1 · x1
  [d(x1)]	=	1 · x1
  [b(x1)]	=	1 · x1
  [c(x1)]	=	2 · x1
  [a#(x1)]	=	3 + 3 · x1
  [b#(x1)]	=	2 + 3 · x1

  the pair

  a#(x1)

  →

  b#(b(b(x1)))

  (10)

  and no rules could be deleted.

  1.1.1.1.1.1 P is empty

  There are no pairs anymore.