Termination w.r.t. Q proof of TRS/currying/D3317.trs

Termination w.r.t. Q of the following Term Rewriting System could be proven:

Q restricted rewrite system:
The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.

↳ QTRS

  ↳ DependencyPairsProof

Q restricted rewrite system:
The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.

Using Dependency Pairs [1,13] we result in the following initial DP problem:
Q DP problem:
The TRS P consists of the following rules:

APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, y)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(filter2, app₂(f, x)), f)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, x)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(filter, f)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(app₂(filter2, app₂(f, x)), f), x)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(app₂(., app₂(i, y)), app₂(i, x))
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(map, f), xs)
APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(cons, x), app₂(app₂(filter, f), xs))
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., y), z)
APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(filter, f)
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., x), app₂(app₂(., y), z))
APP₂(i, app₂(app₂(., x), y)) -> APP₂(., app₂(i, y))
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(filter2, app₂(f, x))
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(cons, x)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(., y)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(cons, app₂(f, x))

The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

Q DP problem:
The TRS P consists of the following rules:

APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, y)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(filter2, app₂(f, x)), f)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, x)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(filter, f)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(app₂(filter2, app₂(f, x)), f), x)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(app₂(., app₂(i, y)), app₂(i, x))
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(map, f), xs)
APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(cons, x), app₂(app₂(filter, f), xs))
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., y), z)
APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(filter, f)
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., x), app₂(app₂(., y), z))
APP₂(i, app₂(app₂(., x), y)) -> APP₂(., app₂(i, y))
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(filter2, app₂(f, x))
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(cons, x)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(., y)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(cons, app₂(f, x))

The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
The approximation of the Dependency Graph [13,14,18] contains 3 SCCs with 12 less nodes.

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

        ↳ AND

          ↳ QDP

            ↳ QDPOrderProof

          ↳ QDP

          ↳ QDP

Q DP problem:
The TRS P consists of the following rules:

APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., x), app₂(app₂(., y), z))
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., y), z)

The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
We use the reduction pair processor [13].

The following pairs can be oriented strictly and are deleted.

APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., x), app₂(app₂(., y), z))
APP₂(app₂(., app₂(app₂(., x), y)), z) -> APP₂(app₂(., y), z)

The remaining pairs can at least be oriented weakly.
none
Used ordering: Polynomial Order [17,21] with Interpretation:

POL( 1 ) = 1

POL( APP₂(x₁, x₂) ) = max{0, 2x₁ - 3}

POL( i ) = 1

POL( . ) = max{0, -3}

POL( app₂(x₁, x₂) ) = x₁ + 3x₂ + 3

The following usable rules [14] were oriented: none

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

        ↳ AND

          ↳ QDP

            ↳ QDPOrderProof

              ↳ QDP

                ↳ PisEmptyProof

          ↳ QDP

          ↳ QDP

Q DP problem:
P is empty.
The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
The TRS P is empty. Hence, there is no (P,Q,R) chain.

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

        ↳ AND

          ↳ QDP

          ↳ QDP

            ↳ QDPOrderProof

          ↳ QDP

Q DP problem:
The TRS P consists of the following rules:

APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, y)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, x)

The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
We use the reduction pair processor [13].

The following pairs can be oriented strictly and are deleted.

APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, y)
APP₂(i, app₂(app₂(., x), y)) -> APP₂(i, x)

The remaining pairs can at least be oriented weakly.
none
Used ordering: Polynomial Order [17,21] with Interpretation:

POL( APP₂(x₁, x₂) ) = max{0, 2x₁ + x₂ - 3}

POL( i ) = 3

POL( app₂(x₁, x₂) ) = 3x₁ + x₂ + 3

POL( . ) = 2

The following usable rules [14] were oriented: none

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

        ↳ AND

          ↳ QDP

          ↳ QDP

            ↳ QDPOrderProof

              ↳ QDP

                ↳ PisEmptyProof

          ↳ QDP

Q DP problem:
P is empty.
The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
The TRS P is empty. Hence, there is no (P,Q,R) chain.

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

        ↳ AND

          ↳ QDP

          ↳ QDP

          ↳ QDP

            ↳ QDPOrderProof

Q DP problem:
The TRS P consists of the following rules:

APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(map, f), xs)

The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
We use the reduction pair processor [13].

The following pairs can be oriented strictly and are deleted.

APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
APP₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> APP₂(f, x)
APP₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> APP₂(app₂(map, f), xs)

The remaining pairs can at least be oriented weakly.

APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(app₂(filter, f), xs)

Used ordering: Polynomial Order [17,21] with Interpretation:

POL( filter ) = 0

POL( true ) = 3

POL( map ) = 2

POL( false ) = 3

POL( app₂(x₁, x₂) ) = max{0, 2x₁ + x₂ - 2}

POL( 1 ) = 2

POL( APP₂(x₁, x₂) ) = x₂

POL( filter2 ) = 2

POL( nil ) = 1

POL( i ) = 1

POL( . ) = 1

POL( cons ) = 3

The following usable rules [14] were oriented: none

↳ QTRS

  ↳ DependencyPairsProof

    ↳ QDP

      ↳ DependencyGraphProof

        ↳ AND

          ↳ QDP

          ↳ QDP

          ↳ QDP

            ↳ QDPOrderProof

              ↳ QDP

                ↳ DependencyGraphProof

Q DP problem:
The TRS P consists of the following rules:

APP₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> APP₂(app₂(filter, f), xs)
APP₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> APP₂(app₂(filter, f), xs)

The TRS R consists of the following rules:

app₂(app₂(., 1), x) -> x
app₂(app₂(., x), 1) -> x
app₂(app₂(., app₂(i, x)), x) -> 1
app₂(app₂(., x), app₂(i, x)) -> 1
app₂(app₂(., app₂(i, y)), app₂(app₂(., y), z)) -> z
app₂(app₂(., y), app₂(app₂(., app₂(i, y)), z)) -> z
app₂(app₂(., app₂(app₂(., x), y)), z) -> app₂(app₂(., x), app₂(app₂(., y), z))
app₂(i, 1) -> 1
app₂(i, app₂(i, x)) -> x
app₂(i, app₂(app₂(., x), y)) -> app₂(app₂(., app₂(i, y)), app₂(i, x))
app₂(app₂(map, f), nil) -> nil
app₂(app₂(map, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(cons, app₂(f, x)), app₂(app₂(map, f), xs))
app₂(app₂(filter, f), nil) -> nil
app₂(app₂(filter, f), app₂(app₂(cons, x), xs)) -> app₂(app₂(app₂(app₂(filter2, app₂(f, x)), f), x), xs)
app₂(app₂(app₂(app₂(filter2, true), f), x), xs) -> app₂(app₂(cons, x), app₂(app₂(filter, f), xs))
app₂(app₂(app₂(app₂(filter2, false), f), x), xs) -> app₂(app₂(filter, f), xs)

Q is empty.
We have to consider all minimal (P,Q,R)-chains.
The approximation of the Dependency Graph [13,14,18] contains 0 SCCs with 2 less nodes.