Metamath Proof Explorer

Theorem tsettps

Description: If the topology component is already correctly truncated, then it forms a topological space (with the topology extractor function coming out the same as the component). (Contributed by Mario Carneiro, 13-Aug-2015)

	Ref	Expression
Hypotheses	tsettps.a	$⊢ A = {Base}_{K}$
	tsettps.j	$⊢ J = TopSet (K)$
Assertion	tsettps	$⊢ J \in TopOn (A) \to K \in TopSp$

Proof

Step	Hyp	Ref	Expression
1		tsettps.a	$⊢ A = {Base}_{K}$
2		tsettps.j	$⊢ J = TopSet (K)$
3	1 2	topontopn	$⊢ J \in TopOn (A) \to J = TopOpen (K)$
4		id	$⊢ J \in TopOn (A) \to J \in TopOn (A)$
5	3 4	eqeltrrd	$⊢ J \in TopOn (A) \to TopOpen (K) \in TopOn (A)$
6		eqid	$⊢ TopOpen (K) = TopOpen (K)$
7	1 6	istps	$⊢ K \in TopSp \leftrightarrow TopOpen (K) \in TopOn (A)$
8	5 7	sylibr	$⊢ J \in TopOn (A) \to K \in TopSp$