mirror of https://github.com/nmvdw/HITs-Examples
474 lines
13 KiB
Coq
474 lines
13 KiB
Coq
Require Export HoTT.
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Require Import HitTactics.
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Module Export FinSet.
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Section FSet.
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Variable A : Type.
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Private Inductive FSet : Type :=
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| E : FSet
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| L : A -> FSet
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| U : FSet -> FSet -> FSet.
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Notation "{| x |}" := (L x).
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Infix "∪" := U (at level 8, right associativity).
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Notation "∅" := E.
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Axiom assoc : forall (x y z : FSet ),
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x ∪ (y ∪ z) = (x ∪ y) ∪ z.
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Axiom comm : forall (x y : FSet),
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x ∪ y = y ∪ x.
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Axiom nl : forall (x : FSet),
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∅ ∪ x = x.
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Axiom nr : forall (x : FSet),
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x ∪ ∅ = x.
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Axiom idem : forall (x : A),
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{| x |} ∪ {|x|} = {|x|}.
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Axiom trunc : IsHSet FSet.
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Fixpoint FSet_rec
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(P : Type)
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(H: IsHSet P)
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(e : P)
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(l : A -> P)
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(u : P -> P -> P)
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(assocP : forall (x y z : P), u x (u y z) = u (u x y) z)
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(commP : forall (x y : P), u x y = u y x)
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(nlP : forall (x : P), u e x = x)
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(nrP : forall (x : P), u x e = x)
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(idemP : forall (x : A), u (l x) (l x) = l x)
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(x : FSet)
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{struct x}
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: P
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:= (match x return _ -> _ -> _ -> _ -> _ -> _ -> P with
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| E => fun _ => fun _ => fun _ => fun _ => fun _ => fun _ => e
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| L a => fun _ => fun _ => fun _ => fun _ => fun _ => fun _ => l a
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| U y z => fun _ => fun _ => fun _ => fun _ => fun _ => fun _ => u
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(FSet_rec P H e l u assocP commP nlP nrP idemP y)
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(FSet_rec P H e l u assocP commP nlP nrP idemP z)
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end) assocP commP nlP nrP idemP H.
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Axiom FSet_rec_beta_assoc : forall
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(P : Type)
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(H: IsHSet P)
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(e : P)
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(l : A -> P)
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(u : P -> P -> P)
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(assocP : forall (x y z : P), u x (u y z) = u (u x y) z)
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(commP : forall (x y : P), u x y = u y x)
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(nlP : forall (x : P), u e x = x)
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(nrP : forall (x : P), u x e = x)
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(idemP : forall (x : A), u (l x) (l x) = l x)
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(x y z : FSet),
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ap (FSet_rec P H e l u assocP commP nlP nrP idemP) (assoc x y z)
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=
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(assocP (FSet_rec P H e l u assocP commP nlP nrP idemP x)
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(FSet_rec P H e l u assocP commP nlP nrP idemP y)
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(FSet_rec P H e l u assocP commP nlP nrP idemP z)
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).
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Axiom FSet_rec_beta_comm : forall
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(P : Type)
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(H: IsHSet P)
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(e : P)
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(l : A -> P)
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(u : P -> P -> P)
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(assocP : forall (x y z : P), u x (u y z) = u (u x y) z)
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(commP : forall (x y : P), u x y = u y x)
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(nlP : forall (x : P), u e x = x)
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(nrP : forall (x : P), u x e = x)
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(idemP : forall (x : A), u (l x) (l x) = l x)
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(x y : FSet),
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ap (FSet_rec P H e l u assocP commP nlP nrP idemP) (comm x y)
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=
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(commP (FSet_rec P H e l u assocP commP nlP nrP idemP x)
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(FSet_rec P H e l u assocP commP nlP nrP idemP y)
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).
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Axiom FSet_rec_beta_nl : forall
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(P : Type)
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(H: IsHSet P)
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(e : P)
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(l : A -> P)
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(u : P -> P -> P)
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(assocP : forall (x y z : P), u x (u y z) = u (u x y) z)
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(commP : forall (x y : P), u x y = u y x)
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(nlP : forall (x : P), u e x = x)
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(nrP : forall (x : P), u x e = x)
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(idemP : forall (x : A), u (l x) (l x) = l x)
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(x : FSet),
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ap (FSet_rec P H e l u assocP commP nlP nrP idemP) (nl x)
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=
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(nlP (FSet_rec P H e l u assocP commP nlP nrP idemP x)
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).
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Axiom FSet_rec_beta_nr : forall
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(P : Type)
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(H: IsHSet P)
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(e : P)
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(l : A -> P)
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(u : P -> P -> P)
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(assocP : forall (x y z : P), u x (u y z) = u (u x y) z)
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(commP : forall (x y : P), u x y = u y x)
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(nlP : forall (x : P), u e x = x)
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(nrP : forall (x : P), u x e = x)
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(idemP : forall (x : A), u (l x) (l x) = l x)
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(x : FSet),
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ap (FSet_rec P H e l u assocP commP nlP nrP idemP) (nr x)
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=
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(nrP (FSet_rec P H e l u assocP commP nlP nrP idemP x)
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).
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Axiom FSet_rec_beta_idem : forall
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(P : Type)
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(H: IsHSet P)
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(e : P)
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(l : A -> P)
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(u : P -> P -> P)
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(assocP : forall (x y z : P), u x (u y z) = u (u x y) z)
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(commP : forall (x y : P), u x y = u y x)
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(nlP : forall (x : P), u e x = x)
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(nrP : forall (x : P), u x e = x)
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(idemP : forall (x : A), u (l x) (l x) = l x)
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(x : A),
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ap (FSet_rec P H e l u assocP commP nlP nrP idemP) (idem x)
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=
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idemP x.
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(* Induction principle *)
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Fixpoint FSet_ind
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(P : FSet -> Type)
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(H : forall a : FSet, IsHSet (P a))
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(eP : P E)
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(lP : forall a: A, P (L a))
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(uP : forall (x y: FSet), P x -> P y -> P (U x y))
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(assocP : forall (x y z : FSet)
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(px: P x) (py: P y) (pz: P z),
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assoc x y z #
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(uP x (U y z) px (uP y z py pz))
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=
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(uP (U x y) z (uP x y px py) pz))
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(commP : forall (x y: FSet) (px: P x) (py: P y),
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comm x y #
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uP x y px py = uP y x py px)
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(nlP : forall (x : FSet) (px: P x),
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nl x # uP E x eP px = px)
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(nrP : forall (x : FSet) (px: P x),
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nr x # uP x E px eP = px)
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(idemP : forall (x : A),
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idem x # uP (L x) (L x) (lP x) (lP x) = lP x)
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(x : FSet)
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{struct x}
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: P x
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:= (match x return _ -> _ -> _ -> _ -> _ -> _ -> P x with
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| E => fun _ => fun _ => fun _ => fun _ => fun _ => fun _ => eP
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| L a => fun _ => fun _ => fun _ => fun _ => fun _ => fun _ => lP a
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| U y z => fun _ => fun _ => fun _ => fun _ => fun _ => fun _ => uP y z
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP y)
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP z)
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end) H assocP commP nlP nrP idemP.
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Axiom FSet_ind_beta_assoc : forall
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(P : FSet -> Type)
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(H : forall a : FSet, IsHSet (P a))
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(eP : P E)
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(lP : forall a: A, P (L a))
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(uP : forall (x y: FSet), P x -> P y -> P (U x y))
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(assocP : forall (x y z : FSet)
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(px: P x) (py: P y) (pz: P z),
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assoc x y z #
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(uP x (U y z) px (uP y z py pz))
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=
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(uP (U x y) z (uP x y px py) pz))
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(commP : forall (x y: FSet) (px: P x) (py: P y),
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comm x y #
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uP x y px py = uP y x py px)
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(nlP : forall (x : FSet) (px: P x),
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nl x # uP E x eP px = px)
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(nrP : forall (x : FSet) (px: P x),
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nr x # uP x E px eP = px)
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(idemP : forall (x : A),
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idem x # uP (L x) (L x) (lP x) (lP x) = lP x)
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(x y z : FSet),
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apD (FSet_ind P H eP lP uP assocP commP nlP nrP idemP)
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(assoc x y z)
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=
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(assocP x y z
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP x)
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP y)
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP z)
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).
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Axiom FSet_ind_beta_comm : forall
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(P : FSet -> Type)
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(H : forall a : FSet, IsHSet (P a))
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(eP : P E)
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(lP : forall a: A, P (L a))
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(uP : forall (x y: FSet), P x -> P y -> P (U x y))
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(assocP : forall (x y z : FSet)
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(px: P x) (py: P y) (pz: P z),
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assoc x y z #
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(uP x (U y z) px (uP y z py pz))
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=
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(uP (U x y) z (uP x y px py) pz))
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(commP : forall (x y : FSet) (px: P x) (py: P y),
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comm x y #
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uP x y px py = uP y x py px)
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(nlP : forall (x : FSet) (px: P x),
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nl x # uP E x eP px = px)
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(nrP : forall (x : FSet) (px: P x),
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nr x # uP x E px eP = px)
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(idemP : forall (x : A),
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idem x # uP (L x) (L x) (lP x) (lP x) = lP x)
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(x y : FSet),
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apD (FSet_ind P H eP lP uP assocP commP nlP nrP idemP) (comm x y)
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=
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(commP x y
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP x)
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(FSet_ind P H eP lP uP assocP commP nlP nrP idemP y)
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).
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Axiom FSet_ind_beta_nl : forall
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(P : FSet -> Type)
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(H : forall a : FSet, IsHSet (P a))
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(eP : P E)
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(lP : forall a: A, P (L a))
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(uP : forall (x y: FSet), P x -> P y -> P (U x y))
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(assocP : forall (x y z : FSet)
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(px: P x) (py: P y) (pz: P z),
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assoc x y z #
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(uP x (U y z) px (uP y z py pz))
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=
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(uP (U x y) z (uP x y px py) pz))
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(commP : forall (x y : FSet) (px: P x) (py: P y),
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comm x y #
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uP x y px py = uP y x py px)
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(nlP : forall (x : FSet) (px: P x),
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nl x # uP E x eP px = px)
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(nrP : forall (x : FSet) (px: P x),
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nr x # uP x E px eP = px)
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(idemP : forall (x : A),
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idem x # uP (L x) (L x) (lP x) (lP x) = lP x)
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(x : FSet),
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apD (FSet_ind P H eP lP uP assocP commP nlP nrP idemP) (nl x)
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=
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(nlP x (FSet_ind P H eP lP uP assocP commP nlP nrP idemP x)
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).
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Axiom FSet_ind_beta_nr : forall
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(P : FSet -> Type)
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(H : forall a : FSet, IsHSet (P a))
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(eP : P E)
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(lP : forall a: A, P (L a))
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(uP : forall (x y: FSet), P x -> P y -> P (U x y))
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(assocP : forall (x y z : FSet)
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(px: P x) (py: P y) (pz: P z),
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assoc x y z #
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(uP x (U y z) px (uP y z py pz))
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=
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(uP (U x y) z (uP x y px py) pz))
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(commP : forall (x y : FSet) (px: P x) (py: P y),
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comm x y #
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uP x y px py = uP y x py px)
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(nlP : forall (x : FSet) (px: P x),
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nl x # uP E x eP px = px)
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(nrP : forall (x : FSet) (px: P x),
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nr x # uP x E px eP = px)
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(idemP : forall (x : A),
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idem x # uP (L x) (L x) (lP x) (lP x) = lP x)
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(x : FSet),
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apD (FSet_ind P H eP lP uP assocP commP nlP nrP idemP) (nr x)
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=
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(nrP x (FSet_ind P H eP lP uP assocP commP nlP nrP idemP x)
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).
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Axiom FSet_ind_beta_idem : forall
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(P : FSet -> Type)
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(H : forall a : FSet, IsHSet (P a))
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(eP : P E)
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(lP : forall a: A, P (L a))
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(uP : forall (x y: FSet), P x -> P y -> P (U x y))
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(assocP : forall (x y z : FSet)
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(px: P x) (py: P y) (pz: P z),
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assoc x y z #
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(uP x (U y z) px (uP y z py pz))
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=
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(uP (U x y) z (uP x y px py) pz))
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(commP : forall (x y : FSet) (px: P x) (py: P y),
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comm x y #
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uP x y px py = uP y x py px)
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(nlP : forall (x : FSet) (px: P x),
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nl x # uP E x eP px = px)
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(nrP : forall (x : FSet) (px: P x),
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nr x # uP x E px eP = px)
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(idemP : forall (x : A),
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idem x # uP (L x) (L x) (lP x) (lP x) = lP x)
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(x : A),
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apD (FSet_ind P H eP lP uP assocP commP nlP nrP idemP) (idem x)
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=
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idemP x.
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End FSet.
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Instance FSet_recursion A : HitRecursion (FSet A) := {
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indTy := _; recTy := _;
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H_inductor := FSet_ind A; H_recursor := FSet_rec A }.
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Arguments E {_}.
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Arguments U {_} _ _.
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Arguments L {_} _.
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End FinSet.
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Section functions.
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Parameter A : Type.
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Parameter A_eqdec : forall (x y : A), Decidable (x = y).
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Definition deceq (x y : A) :=
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if dec (x = y) then true else false.
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Lemma union_idem : forall (X : FSet A), U X X = X.
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Proof.
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hinduction; try (intros; apply set_path2).
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- apply nr.
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- intros. apply idem.
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- intros X Y HX HY. etransitivity.
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rewrite assoc. rewrite (comm _ X Y). rewrite <- (assoc _ Y X X).
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rewrite comm.
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rewrite assoc. rewrite HX. rewrite HY. reflexivity.
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rewrite comm. reflexivity.
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Defined.
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Definition isIn : A -> FSet A -> Bool.
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Proof.
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intros a.
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hrecursion.
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- exact false.
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- intro a'. apply (deceq a a').
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- apply orb.
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- intros x y z. compute. destruct x; reflexivity.
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- intros x y. compute. destruct x, y; reflexivity.
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- intros x. compute. reflexivity.
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- intros x. compute. destruct x; reflexivity.
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- intros a'. compute. destruct (A_eqdec a a'); reflexivity.
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Defined.
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Lemma isIn_eq a b : isIn a (L b) = true -> a = b.
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Proof. cbv.
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destruct (A_eqdec a b). intro. apply p.
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intro X.
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pose (false_ne_true X). contradiction.
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Defined.
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Lemma isIn_empt_false a : isIn a E = true -> Empty.
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Proof.
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cbv. intro X.
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pose (false_ne_true X). contradiction.
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Defined.
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Lemma isIn_union a X Y : isIn a (U X Y) = orb (isIn a X) (isIn a Y).
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Proof. reflexivity. Qed.
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Definition comprehension :
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(A -> Bool) -> FSet A -> FSet A.
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Proof.
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intros P.
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hrecursion.
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- apply E.
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- intro a.
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refine (if (P a) then L a else E).
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- apply U.
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- intros. cbv. apply assoc.
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- intros. cbv. apply comm.
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- intros. cbv. apply nl.
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- intros. cbv. apply nr.
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- intros. cbv.
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destruct (P x); simpl.
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+ apply idem.
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+ apply nl.
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Defined.
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Lemma comprehension_false Y : comprehension (fun a => isIn a E) Y = E.
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Proof.
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hrecursion Y; try (intros; apply set_path2).
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- cbn. reflexivity.
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- cbn. reflexivity.
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- intros x y IHa IHb.
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cbn.
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rewrite IHa.
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rewrite IHb.
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rewrite nl.
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reflexivity.
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Defined.
|
||
|
||
Lemma comprehension_idem' `{Funext}:
|
||
forall (X:FSet A), forall Y, comprehension (fun x => isIn x (U X Y)) X = X.
|
||
Proof.
|
||
hinduction.
|
||
all: try (intros; apply path_forall; intro; apply set_path2).
|
||
- intro Y. cbv. reflexivity.
|
||
- intros a Y. cbn.
|
||
unfold deceq;
|
||
destruct (dec (a = a)); simpl.
|
||
+ reflexivity.
|
||
+ contradiction n. reflexivity.
|
||
- intros X1 X2 IH1 IH2 Y.
|
||
cbn -[isIn].
|
||
f_ap.
|
||
+ rewrite <- assoc. apply (IH1 (U X2 Y)).
|
||
+ rewrite (comm _ X1 X2).
|
||
rewrite <- (assoc _ X2 X1 Y).
|
||
apply (IH2 (U X1 Y)).
|
||
Defined.
|
||
|
||
Lemma comprehension_idem `{Funext}:
|
||
forall (X:FSet A), comprehension (fun x => isIn x X) X = X.
|
||
Proof.
|
||
intros X.
|
||
enough (comprehension (fun x : A => isIn x (U X X)) X = X).
|
||
rewrite (union_idem) in X0. assumption.
|
||
apply comprehension_idem'.
|
||
Defined.
|
||
|
||
Definition intersection :
|
||
FSet A -> FSet A -> FSet A.
|
||
Proof.
|
||
intros X Y.
|
||
apply (comprehension (fun (a : A) => isIn a X) Y).
|
||
Defined.
|
||
|
||
Definition subset (x : FSet A) (y : FSet A) : Bool.
|
||
Proof.
|
||
hrecursion x.
|
||
- apply true.
|
||
- intro a. apply (isIn a y).
|
||
- apply andb.
|
||
- intros a b c. compute. destruct a; reflexivity.
|
||
- intros a b. compute. destruct a, b; reflexivity.
|
||
- intros x. compute. reflexivity.
|
||
- intros x. compute. destruct x;reflexivity.
|
||
- intros a. simpl.
|
||
destruct (isIn a y); reflexivity.
|
||
Defined.
|
||
|
||
Definition equal_set (x : FSet A) (y : FSet A) : Bool
|
||
:= andb (subset x y) (subset y x).
|
||
|
||
Fixpoint eq_nat n m : Bool :=
|
||
match n, m with
|
||
| O, O => true
|
||
| O, S _ => false
|
||
| S _, O => false
|
||
| S n1, S m1 => eq_nat n1 m1
|
||
end.
|
||
|
||
End functions. |