Certification Problem

Input (TPDB TRS_Innermost/AG01_innermost/#4.33)

The rewrite relation of the following TRS is considered.

sum(cons(s(n),x),cons(m,y))	→	sum(cons(n,x),cons(s(m),y))	(1)
sum(cons(0,x),y)	→	sum(x,y)	(2)
sum(nil,y)	→	y	(3)
weight(cons(n,cons(m,x)))	→	weight(sum(cons(n,cons(m,x)),cons(0,x)))	(4)
weight(cons(n,nil))	→	n	(5)

The evaluation strategy is innermost.

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.

sum^#(cons(s(n),x),cons(m,y))	→	sum^#(cons(n,x),cons(s(m),y))	(6)
sum^#(cons(0,x),y)	→	sum^#(x,y)	(7)
weight^#(cons(n,cons(m,x)))	→	weight^#(sum(cons(n,cons(m,x)),cons(0,x)))	(8)
weight^#(cons(n,cons(m,x)))	→	sum^#(cons(n,cons(m,x)),cons(0,x))	(9)

1.1 Dependency Graph Processor

The dependency pairs are split into 2 components.

The 1^st component contains the pair
weight^#(cons(n,cons(m,x))) → weight^#(sum(cons(n,cons(m,x)),cons(0,x))) (8)

1.1.1 Usable Rules Processor

We restrict the rewrite rules to the following usable rules of the DP problem.

sum(cons(0,x),y) → sum(x,y) (2)

sum(cons(s(n),x),cons(m,y)) → sum(cons(n,x),cons(s(m),y)) (1)

sum(nil,y) → y (3)

1.1.1.1 Innermost Lhss Removal Processor

We restrict the innermost strategy to the following left hand sides.

sum(cons(s(x0),x1),cons(x2,x3))

sum(cons(0,x0),x1)

sum(nil,x0)

1.1.1.1.1 Reduction Pair Processor
Using the Knuth Bendix order with w0 = 1 and the following precedence and weight functions
prec(cons) = 1 weight(cons) = 1
in combination with the following argument filter

π(weight^#) = 1

π(cons) = [2]

π(sum) = 2

the pair
weight^#(cons(n,cons(m,x))) → weight^#(sum(cons(n,cons(m,x)),cons(0,x))) (8)
could be deleted.
1.1.1.1.1.1 P is empty

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

sum^#(cons(0,x),y) → sum^#(x,y) (7)

sum^#(cons(s(n),x),cons(m,y)) → sum^#(cons(n,x),cons(s(m),y)) (6)

1.1.2 Usable Rules Processor

We restrict the rewrite rules to the following usable rules of the DP problem.

There are no rules.

1.1.2.1 Innermost Lhss Removal Processor

We restrict the innermost strategy to the following left hand sides.

There are no lhss.

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

[sum^#(x₁, x₂)] = 2 · x₁ + 1 · x₂

[cons(x₁, x₂)] = 1 · x₁ + 1 · x₂

[0] = 0

[s(x₁)] = 2 + 1 · x₁

having no usable rules (w.r.t. the implicit argument filter of the reduction pair), the pairs

sum^#(cons(0,x),y) → sum^#(x,y) (7)

sum^#(cons(s(n),x),cons(m,y)) → sum^#(cons(n,x),cons(s(m),y)) (6)

and no rules could be deleted.
1.1.2.1.1.1 P is empty

There are no pairs anymore.

[sum^#(x₁, x₂)]	=	2 · x₁ + 1 · x₂
[cons(x₁, x₂)]	=	1 · x₁ + 1 · x₂
[0]	=	0
[s(x₁)]	=	2 + 1 · x₁

π(weight^#)	=	1
π(cons)	=	[2]
π(sum)	=	2

Certification Problem

Input (TPDB TRS_Innermost/AG01_innermost/#4.33)

Property / Task

Answer / Result

Proof (by AProVE @ termCOMP 2023)

1 Dependency Pair Transformation

1.1 Dependency Graph Processor

1.1.1 Usable Rules Processor

1.1.1.1 Innermost Lhss Removal Processor

1.1.1.1.1 Reduction Pair Processor

1.1.1.1.1.1 P is empty

1.1.2 Usable Rules Processor

1.1.2.1 Innermost Lhss Removal Processor

1.1.2.1.1 Monotonic Reduction Pair Processor with Usable Rules

1.1.2.1.1.1 P is empty