Certification Problem

Input (TPDB TRS_Standard/AotoYamada_05/027)

The rewrite relation of the following TRS is considered.

app(app(plus,0),y)	→	y	(1)
app(app(plus,app(s,x)),y)	→	app(s,app(app(plus,x),y))	(2)
app(inc,xs)	→	app(app(map,app(plus,app(s,0))),xs)	(3)
app(app(map,f),nil)	→	nil	(4)
app(app(map,f),app(app(cons,x),xs))	→	app(app(cons,app(f,x)),app(app(map,f),xs))	(5)

Prove or disprove termination.

Yes.

The following set of initial dependency pairs has been identified.

app^#(app(plus,app(s,x)),y)	→	app^#(plus,x)	(6)
app^#(app(plus,app(s,x)),y)	→	app^#(app(plus,x),y)	(7)
app^#(app(plus,app(s,x)),y)	→	app^#(s,app(app(plus,x),y))	(8)
app^#(inc,xs)	→	app^#(s,0)	(9)
app^#(inc,xs)	→	app^#(plus,app(s,0))	(10)
app^#(inc,xs)	→	app^#(map,app(plus,app(s,0)))	(11)
app^#(inc,xs)	→	app^#(app(map,app(plus,app(s,0))),xs)	(12)
app^#(app(map,f),app(app(cons,x),xs))	→	app^#(app(map,f),xs)	(13)
app^#(app(map,f),app(app(cons,x),xs))	→	app^#(f,x)	(14)
app^#(app(map,f),app(app(cons,x),xs))	→	app^#(cons,app(f,x))	(15)
app^#(app(map,f),app(app(cons,x),xs))	→	app^#(app(cons,app(f,x)),app(app(map,f),xs))	(16)

The dependency pairs are split into 2 components.

The 2^nd component contains the pair

app^#(app(plus,app(s,x)),y)

→

app^#(app(plus,x),y)

(7)

Using the

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

app^#(app(plus,app(s,x)),y)

→

app^#(app(plus,x),y)

(7)

could be deleted.

There are no pairs anymore.