Term Rewriting System R:
[x0, y, l12, l21, x, l, a4, l3, l', l1, l2, l5, a]
test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))

Innermost Termination of R to be shown. 



   R
Dependency Pair Analysis



R contains the following Dependency Pairs:

APPEND(l12, l21) -> MATCH0(l12, l21, l12)
MATCH0(l12, l21, Cons(x, l)) -> APPEND(l, l21)
PART(a4, l3) -> MATCH1(a4, l3, l3)
MATCH1(a4, l3, Cons(x, l')) -> MATCH2(x, l', a4, l3, part(a4, l'))
MATCH1(a4, l3, Cons(x, l')) -> PART(a4, l')
MATCH2(x, l', a4, l3, Pair(l1, l2)) -> MATCH3(l1, l2, x, l', a4, l3, test(a4, x))
MATCH2(x, l', a4, l3, Pair(l1, l2)) -> TEST(a4, x)
QUICK(l5) -> MATCH4(l5, l5)
MATCH4(l5, Cons(a, l')) -> MATCH5(a, l', l5, part(a, l'))
MATCH4(l5, Cons(a, l')) -> PART(a, l')
MATCH5(a, l', l5, Pair(l1, l2)) -> APPEND(quick(l1), Cons(a, quick(l2)))
MATCH5(a, l', l5, Pair(l1, l2)) -> QUICK(l1)
MATCH5(a, l', l5, Pair(l1, l2)) -> QUICK(l2)

Furthermore, R contains three SCCs. 


   R
DPs
       →DP Problem 1
Polynomial Ordering
       →DP Problem 2
Polo
       →DP Problem 3
Polo


Dependency Pairs:

MATCH0(l12, l21, Cons(x, l)) -> APPEND(l, l21)
APPEND(l12, l21) -> MATCH0(l12, l21, l12)


Rules:


test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))


Strategy:

innermost




The following dependency pair can be strictly oriented:

MATCH0(l12, l21, Cons(x, l)) -> APPEND(l, l21)


There are no usable rules for innermost that need to be oriented.

Used ordering: Polynomial ordering with Polynomial interpretation:
  POL(MATCH_0(x1, x2, x3))=  x3  
  POL(Cons(x1, x2))=  1 + x2  
  POL(APPEND(x1, x2))=  x1  

resulting in one new DP problem. 



   R
DPs
       →DP Problem 1
Polo
           →DP Problem 4
Dependency Graph
       →DP Problem 2
Polo
       →DP Problem 3
Polo


Dependency Pair:

APPEND(l12, l21) -> MATCH0(l12, l21, l12)


Rules:


test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))


Strategy:

innermost




Using the Dependency Graph resulted in no new DP problems.


   R
DPs
       →DP Problem 1
Polo
       →DP Problem 2
Polynomial Ordering
       →DP Problem 3
Polo


Dependency Pairs:

MATCH1(a4, l3, Cons(x, l')) -> PART(a4, l')
PART(a4, l3) -> MATCH1(a4, l3, l3)


Rules:


test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))


Strategy:

innermost




The following dependency pair can be strictly oriented:

MATCH1(a4, l3, Cons(x, l')) -> PART(a4, l')


There are no usable rules for innermost that need to be oriented.

Used ordering: Polynomial ordering with Polynomial interpretation:
  POL(PART(x1, x2))=  x2  
  POL(Cons(x1, x2))=  1 + x2  
  POL(MATCH_1(x1, x2, x3))=  x3  

resulting in one new DP problem. 



   R
DPs
       →DP Problem 1
Polo
       →DP Problem 2
Polo
           →DP Problem 5
Dependency Graph
       →DP Problem 3
Polo


Dependency Pair:

PART(a4, l3) -> MATCH1(a4, l3, l3)


Rules:


test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))


Strategy:

innermost




Using the Dependency Graph resulted in no new DP problems.


   R
DPs
       →DP Problem 1
Polo
       →DP Problem 2
Polo
       →DP Problem 3
Polynomial Ordering


Dependency Pairs:

MATCH5(a, l', l5, Pair(l1, l2)) -> QUICK(l2)
MATCH5(a, l', l5, Pair(l1, l2)) -> QUICK(l1)
MATCH4(l5, Cons(a, l')) -> MATCH5(a, l', l5, part(a, l'))
QUICK(l5) -> MATCH4(l5, l5)


Rules:


test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))


Strategy:

innermost




The following dependency pairs can be strictly oriented:

MATCH5(a, l', l5, Pair(l1, l2)) -> QUICK(l2)
MATCH5(a, l', l5, Pair(l1, l2)) -> QUICK(l1)


Additionally, the following usable rules for innermost can be oriented:

part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
test(x0, y) -> True
test(x0, y) -> False


Used ordering: Polynomial ordering with Polynomial interpretation:
  POL(Nil)=  0  
  POL(MATCH_5(x1, x2, x3, x4))=  1 + x4  
  POL(match_2(x1, x2, x3, x4, x5))=  1 + x5  
  POL(False)=  0  
  POL(MATCH_4(x1, x2))=  x2  
  POL(Cons(x1, x2))=  1 + x2  
  POL(match_3(x1, x2, x3, x4, x5, x6, x7))=  1 + x1 + x2  
  POL(QUICK(x1))=  x1  
  POL(test(x1, x2))=  0  
  POL(Pair(x1, x2))=  x1 + x2  
  POL(True)=  0  
  POL(part(x1, x2))=  x2  
  POL(match_1(x1, x2, x3))=  x3  

resulting in one new DP problem. 



   R
DPs
       →DP Problem 1
Polo
       →DP Problem 2
Polo
       →DP Problem 3
Polo
           →DP Problem 6
Dependency Graph


Dependency Pairs:

MATCH4(l5, Cons(a, l')) -> MATCH5(a, l', l5, part(a, l'))
QUICK(l5) -> MATCH4(l5, l5)


Rules:


test(x0, y) -> True
test(x0, y) -> False
append(l12, l21) -> match0(l12, l21, l12)
match0(l12, l21, Nil) -> l21
match0(l12, l21, Cons(x, l)) -> Cons(x, append(l, l21))
part(a4, l3) -> match1(a4, l3, l3)
match1(a4, l3, Nil) -> Pair(Nil, Nil)
match1(a4, l3, Cons(x, l')) -> match2(x, l', a4, l3, part(a4, l'))
match2(x, l', a4, l3, Pair(l1, l2)) -> match3(l1, l2, x, l', a4, l3, test(a4, x))
match3(l1, l2, x, l', a4, l3, False) -> Pair(Cons(x, l1), l2)
match3(l1, l2, x, l', a4, l3, True) -> Pair(l1, Cons(x, l2))
quick(l5) -> match4(l5, l5)
match4(l5, Nil) -> Nil
match4(l5, Cons(a, l')) -> match5(a, l', l5, part(a, l'))
match5(a, l', l5, Pair(l1, l2)) -> append(quick(l1), Cons(a, quick(l2)))


Strategy:

innermost




Using the Dependency Graph resulted in no new DP problems.

Innermost Termination of R successfully shown.
Duration:
0:00 minutes