Metamath Proof Explorer

Theorem dfac1

Description: Equivalence of two versions of the Axiom of Choice ax-ac . The proof uses the Axiom of Regularity. The right-hand side expresses our AC with the fewest number of different variables. (Contributed by Mario Carneiro, 17-May-2015)

		Ref	Expression
	Assertion	dfac1	$⊢ CHOICE \leftrightarrow \forall x \exists y \forall z \forall w ((z \in w \land w \in x) \to \exists x \forall z (\exists x ((z \in w \land w \in x) \land (z \in x \land x \in y)) \leftrightarrow z = x))$

Proof

Step	Hyp	Ref	Expression
1		dfac7	$⊢ CHOICE \leftrightarrow \forall x \exists y \forall z \in x \forall w \in z \exists! v \in z \exists u \in y (z \in u \land v \in u)$
2		aceq1	$⊢ \exists y \forall z \in x \forall w \in z \exists! v \in z \exists u \in y (z \in u \land v \in u) \leftrightarrow \exists y \forall z \forall w ((z \in w \land w \in x) \to \exists x \forall z (\exists x ((z \in w \land w \in x) \land (z \in x \land x \in y)) \leftrightarrow z = x))$
3	2	albii	$⊢ \forall x \exists y \forall z \in x \forall w \in z \exists! v \in z \exists u \in y (z \in u \land v \in u) \leftrightarrow \forall x \exists y \forall z \forall w ((z \in w \land w \in x) \to \exists x \forall z (\exists x ((z \in w \land w \in x) \land (z \in x \land x \in y)) \leftrightarrow z = x))$
4	1 3	bitri	$⊢ CHOICE \leftrightarrow \forall x \exists y \forall z \forall w ((z \in w \land w \in x) \to \exists x \forall z (\exists x ((z \in w \land w \in x) \land (z \in x \land x \in y)) \leftrightarrow z = x))$