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AbstractInterpretation: more even-odd examples
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1 changed files with 93 additions and 20 deletions
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@ -93,19 +93,19 @@ Module SimpleAbstractInterpreter.
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| While e body => Some ($0 $+ (wrap Skip, s) $+ (wrap (Sequence body (While e body)), s))
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| While e body => Some ($0 $+ (wrap Skip, s) $+ (wrap (Sequence body (While e body)), s))
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end.
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end.
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Definition compatible1 a (s : astate a) (v : valuation) : Prop :=
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Definition compatible a (s : astate a) (v : valuation) : Prop :=
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forall x xa, s $? x = Some xa
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forall x xa, s $? x = Some xa
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-> exists n, v $? x = Some n
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-> exists n, v $? x = Some n
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/\ a.(Represents) n xa.
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/\ a.(Represents) n xa.
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Theorem absint_interp_ok : forall a, absint_sound a
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Theorem absint_interp_ok : forall a, absint_sound a
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-> forall (s : astate a) v e,
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-> forall (s : astate a) v e,
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compatible1 s v
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compatible s v
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-> a.(Represents) (interp e v) (absint_interp e s).
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-> a.(Represents) (interp e v) (absint_interp e s).
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Proof.
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Proof.
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induct e; simplify; eauto.
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induct e; simplify; eauto.
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cases (s $? x); auto.
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cases (s $? x); auto.
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unfold compatible1 in H0.
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unfold compatible in H0.
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apply H0 in Heq.
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apply H0 in Heq.
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invert Heq.
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invert Heq.
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propositional.
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propositional.
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@ -113,17 +113,17 @@ Module SimpleAbstractInterpreter.
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assumption.
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assumption.
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Qed.
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Qed.
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Lemma compatible1_add : forall a (s : astate a) v x na n,
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Lemma compatible_add : forall a (s : astate a) v x na n,
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compatible1 s v
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compatible s v
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-> a.(Represents) n na
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-> a.(Represents) n na
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-> compatible1 (s $+ (x, na)) (v $+ (x, n)).
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-> compatible (s $+ (x, na)) (v $+ (x, n)).
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Proof.
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Proof.
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unfold compatible1; simplify.
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unfold compatible; simplify.
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cases (x ==v x0); simplify; eauto.
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cases (x ==v x0); simplify; eauto.
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invert H1; eauto.
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invert H1; eauto.
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Qed.
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Qed.
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Hint Resolve compatible1_add absint_interp_ok.
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Hint Resolve compatible_add absint_interp_ok.
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Lemma command_equal : forall c1 c2 : cmd, sumbool (c1 = c2) (c1 <> c2).
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Lemma command_equal : forall c1 c2 : cmd, sumbool (c1 = c2) (c1 <> c2).
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Proof.
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Proof.
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@ -131,11 +131,11 @@ Module SimpleAbstractInterpreter.
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Qed.
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Qed.
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Theorem absint_step_ok : forall a, absint_sound a
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Theorem absint_step_ok : forall a, absint_sound a
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-> forall (s : astate a) v, compatible1 s v
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-> forall (s : astate a) v, compatible s v
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-> forall c v' c', step (v, c) (v', c')
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-> forall c v' c', step (v, c) (v', c')
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-> forall wrap, exists ss s', absint_step s c wrap = Some ss
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-> forall wrap, exists ss s', absint_step s c wrap = Some ss
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/\ ss $? wrap c' = Some s'
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/\ ss $? wrap c' = Some s'
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/\ compatible1 s' v'.
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/\ compatible s' v'.
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Proof.
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Proof.
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induct 2; simplify.
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induct 2; simplify.
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@ -190,7 +190,7 @@ Module SimpleAbstractInterpreter.
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Inductive Rabsint a : valuation * cmd -> astate a * cmd -> Prop :=
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Inductive Rabsint a : valuation * cmd -> astate a * cmd -> Prop :=
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| RAbsint : forall v s c,
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| RAbsint : forall v s c,
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compatible1 s v
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compatible s v
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-> Rabsint (v, c) (s, c).
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-> Rabsint (v, c) (s, c).
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Hint Constructors abs_step Rabsint.
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Hint Constructors abs_step Rabsint.
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@ -205,7 +205,7 @@ Module SimpleAbstractInterpreter.
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exists ($0, c); propositional.
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exists ($0, c); propositional.
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subst.
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subst.
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constructor.
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constructor.
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unfold compatible1.
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unfold compatible.
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simplify.
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simplify.
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equality.
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equality.
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@ -735,12 +735,6 @@ Module SimpleAbstractInterpreter.
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Hint Resolve merge_astates_fok merge_astates_fok2.
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Hint Resolve merge_astates_fok merge_astates_fok2.
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Definition easy :=
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"n" <- 10;;
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while "n" loop
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"n" <- "n" - 2
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done.
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Lemma subsumeds_empty : forall a (ss : astates a),
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Lemma subsumeds_empty : forall a (ss : astates a),
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subsumeds $0 ss.
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subsumeds $0 ss.
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Proof.
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Proof.
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@ -771,12 +765,12 @@ Module SimpleAbstractInterpreter.
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| repeat (apply subsumeds_add_left || apply subsumeds_empty); (simplify; equality) ].
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| repeat (apply subsumeds_add_left || apply subsumeds_empty); (simplify; equality) ].
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Lemma final_even : forall (s s' : astate parity_absint) v x,
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Lemma final_even : forall (s s' : astate parity_absint) v x,
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compatible1 s v
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compatible s v
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-> subsumed s s'
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-> subsumed s s'
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-> s' $? x = Some Even
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-> s' $? x = Some Even
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-> exists n, v $? x = Some n /\ isEven n.
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-> exists n, v $? x = Some n /\ isEven n.
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Proof.
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Proof.
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unfold compatible1, subsumed; simplify.
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unfold compatible, subsumed; simplify.
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specialize (H x); specialize (H0 x).
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specialize (H x); specialize (H0 x).
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cases (s $? x); simplify.
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cases (s $? x); simplify.
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@ -793,6 +787,85 @@ Module SimpleAbstractInterpreter.
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equality.
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equality.
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Qed.
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Qed.
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Definition simple :=
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"a" <- 7;;
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"b" <- 8;;
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"a" <- "a" + "b";;
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"b" <- "a" * "b".
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Theorem simple_even : forall v,
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invariantFor (trsys_of v simple) (fun p => snd p = Skip
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-> exists n, fst p $? "b" = Some n /\ isEven n).
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Proof.
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simplify.
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eapply invariant_weaken.
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unfold simple.
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eapply invariant_simulates.
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apply absint_simulates with (a := parity_absint).
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apply parity_sound.
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apply interpret_sound.
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apply parity_sound.
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interpret1.
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interpret1.
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interpret1.
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interpret1.
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interpret1.
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interpret1.
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interpret1.
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interpret_done.
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invert 1.
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first_order.
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invert H0; simplify.
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invert H1.
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eapply final_even; eauto; simplify; equality.
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Qed.
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Definition branchy :=
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"a" <- 8;;
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when "c" then
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"b" <- "a" + 4
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else
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"b" <- 7
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done.
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Theorem branchy_even : forall v,
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invariantFor (trsys_of v branchy) (fun p => snd p = Skip
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-> exists n, fst p $? "a" = Some n /\ isEven n).
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Proof.
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simplify.
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eapply invariant_weaken.
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unfold branchy.
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eapply invariant_simulates.
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apply absint_simulates with (a := parity_absint).
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apply parity_sound.
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apply interpret_sound.
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apply parity_sound.
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interpret1.
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interpret1.
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interpret1.
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interpret1.
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interpret_done.
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invert 1.
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first_order.
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invert H0; simplify.
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invert H1.
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eapply final_even; eauto; simplify; equality.
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Qed.
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Definition easy :=
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"n" <- 10;;
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while "n" loop
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"n" <- "n" - 2
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done.
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Theorem easy_even : forall v,
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Theorem easy_even : forall v,
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invariantFor (trsys_of v easy) (fun p => snd p = Skip
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invariantFor (trsys_of v easy) (fun p => snd p = Skip
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-> exists n, fst p $? "n" = Some n /\ isEven n).
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-> exists n, fst p $? "n" = Some n /\ isEven n).
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