Termination proof

1: switching to dependency pairs

The following set of initial dependency pairs has been identified.

f#( s( x ) , y ) → f#( f( x , y ) , y )

f#( s( x ) , y ) → f#( x , y )

1.1: reduction pair processor

Using the following reduction pair

Linear polynomial interpretation over the naturals

[f (x₁, x₂) ] = x₁ + 1

[s (x₁) ] = 2 x₁ + 3

[0] = 3

[f# (x₁, x₂) ] = 2 x₁

[f(x₁, ..., x_n)] = x₁ + ... + x_n + 1 for all other symbols f of arity n

one remains with the following pair(s).

none

1.1.1: P is empty

All dependency pairs have been removed.

f#( s( x ) , y )	→	f#( f( x , y ) , y )
f#( s( x ) , y )	→	f#( x , y )

[f (x₁, x₂) ]	=	x₁ + 1
[s (x₁) ]	=	2 x₁ + 3
[0]	=	3
[f# (x₁, x₂) ]	=	2 x₁
[f(x₁, ..., x_n)]	=	x₁ + ... + x_n + 1	for all other symbols f of arity n