Metamath Proof Explorer

Theorem ax6fromc10

Description: Rederivation of Axiom ax-6 from ax-c7 , ax-c10 , ax-gen and propositional calculus. See axc10 for the derivation of ax-c10 from ax-6 . Lemma L18 in Megill p. 446 (p. 14 of the preprint). (Contributed by NM, 14-May-1993) (Proof modification is discouraged.) Use ax-6 instead. (New usage is discouraged.)

		Ref	Expression
	Assertion	ax6fromc10	$⊢ \neg \forall x \neg x = y$

Proof

Step	Hyp	Ref	Expression
1		ax-c10	$⊢ \forall x (x = y \to \forall x \neg \forall x \neg x = y) \to \neg \forall x \neg x = y$
2		ax-c7	$⊢ \neg \forall x \neg \forall x \neg x = y \to \neg x = y$
3	2	con4i	$⊢ x = y \to \forall x \neg \forall x \neg x = y$
4	1 3	mpg	$⊢ \neg \forall x \neg x = y$