Metamath Proof Explorer

Theorem rabeqd

Description: Deduction form of rabeq . Note that contrary to rabeq it has no disjoint variable condition. (Contributed by BJ, 27-Apr-2019)

Step	Hyp	Ref	Expression
1		rabeqd.nf	$⊢ Ⅎ x φ$
2		rabeqd.1	$⊢ φ \to A = B$
3		eleq2	$⊢ A = B \to (x \in A \leftrightarrow x \in B)$
4	3	anbi1d	$⊢ A = B \to ((x \in A \land ψ) \leftrightarrow (x \in B \land ψ))$
5	2 4	syl	$⊢ φ \to ((x \in A \land ψ) \leftrightarrow (x \in B \land ψ))$
6	1 5	rabbida4	$⊢ φ \to \{x \in A \| ψ\} = \{x \in B \| ψ\}$