Metamath Proof Explorer

Theorem rusgr1vtx

Description: If a k-regular simple graph has only one vertex, then k must be 0 . (Contributed by Alexander van der Vekens, 4-Sep-2018) (Revised by AV, 27-Dec-2020)

		Ref	Expression
	Assertion	rusgr1vtx	$⊢ (\|Vtx (G)\| = 1 \land G RegUSGraph K) \to K = 0$

Proof

Step	Hyp	Ref	Expression
1		nbgr1vtx	$⊢ \|Vtx (G)\| = 1 \to G NeighbVtx v = \emptyset$
2	1	ralrimivw	$⊢ \|Vtx (G)\| = 1 \to \forall v \in Vtx (G) G NeighbVtx v = \emptyset$
3		eqid	$⊢ Vtx (G) = Vtx (G)$
4	3	rusgrpropnb	$⊢ G RegUSGraph K \to (G \in USGraph \land K \in ℕ_{0}^{*} \land \forall v \in Vtx (G) \|G NeighbVtx v\| = K)$
5	2 4	anim12i	$⊢ (\|Vtx (G)\| = 1 \land G RegUSGraph K) \to (\forall v \in Vtx (G) G NeighbVtx v = \emptyset \land (G \in USGraph \land K \in ℕ_{0}^{*} \land \forall v \in Vtx (G) \|G NeighbVtx v\| = K))$
6		fvex	$⊢ Vtx (G) \in V$
7		rusgr1vtxlem	$⊢ ((\forall v \in Vtx (G) \|G NeighbVtx v\| = K \land \forall v \in Vtx (G) G NeighbVtx v = \emptyset) \land (Vtx (G) \in V \land \|Vtx (G)\| = 1)) \to K = 0$
8	7	ex	$⊢ (\forall v \in Vtx (G) \|G NeighbVtx v\| = K \land \forall v \in Vtx (G) G NeighbVtx v = \emptyset) \to ((Vtx (G) \in V \land \|Vtx (G)\| = 1) \to K = 0)$
9	6 8	mpani	$⊢ (\forall v \in Vtx (G) \|G NeighbVtx v\| = K \land \forall v \in Vtx (G) G NeighbVtx v = \emptyset) \to (\|Vtx (G)\| = 1 \to K = 0)$
10	9	ex	$⊢ \forall v \in Vtx (G) \|G NeighbVtx v\| = K \to (\forall v \in Vtx (G) G NeighbVtx v = \emptyset \to (\|Vtx (G)\| = 1 \to K = 0))$
11	10	3ad2ant3	$⊢ (G \in USGraph \land K \in ℕ_{0}^{*} \land \forall v \in Vtx (G) \|G NeighbVtx v\| = K) \to (\forall v \in Vtx (G) G NeighbVtx v = \emptyset \to (\|Vtx (G)\| = 1 \to K = 0))$
12	11	com13	$⊢ \|Vtx (G)\| = 1 \to (\forall v \in Vtx (G) G NeighbVtx v = \emptyset \to ((G \in USGraph \land K \in ℕ_{0}^{*} \land \forall v \in Vtx (G) \|G NeighbVtx v\| = K) \to K = 0))$
13	12	impd	$⊢ \|Vtx (G)\| = 1 \to ((\forall v \in Vtx (G) G NeighbVtx v = \emptyset \land (G \in USGraph \land K \in ℕ_{0}^{*} \land \forall v \in Vtx (G) \|G NeighbVtx v\| = K)) \to K = 0)$
14	13	adantr	$⊢ (\|Vtx (G)\| = 1 \land G RegUSGraph K) \to ((\forall v \in Vtx (G) G NeighbVtx v = \emptyset \land (G \in USGraph \land K \in ℕ_{0}^{*} \land \forall v \in Vtx (G) \|G NeighbVtx v\| = K)) \to K = 0)$
15	5 14	mpd	$⊢ (\|Vtx (G)\| = 1 \land G RegUSGraph K) \to K = 0$