dva0g

Description: The zero vector of partial vector space A. (Contributed by NM, 9-Sep-2014)

	Ref	Expression
Hypotheses	dva0g.b	$⊢ B = {Base}_{K}$
	dva0g.h	$⊢ H = LHyp (K)$
	dva0g.t	$⊢ T = LTrn (K) (W)$
	dva0g.u	$⊢ U = DVecA (K) (W)$
	dva0g.z	$⊢ \underset{˙}{0} = 0_{U}$
Assertion	dva0g	$⊢ (K \in HL \land W \in H) \to \underset{˙}{0} = {I ↾}_{B}$

Proof

Step	Hyp	Ref	Expression
1		dva0g.b	$⊢ B = {Base}_{K}$
2		dva0g.h	$⊢ H = LHyp (K)$
3		dva0g.t	$⊢ T = LTrn (K) (W)$
4		dva0g.u	$⊢ U = DVecA (K) (W)$
5		dva0g.z	$⊢ \underset{˙}{0} = 0_{U}$
6		id	$⊢ (K \in HL \land W \in H) \to (K \in HL \land W \in H)$
7	1 2 3	idltrn	$⊢ (K \in HL \land W \in H) \to {I ↾}_{B} \in T$
8		eqid	$⊢ +_{U} = +_{U}$
9	2 3 4 8	dvavadd	$⊢ ((K \in HL \land W \in H) \land ({I ↾}_{B} \in T \land {I ↾}_{B} \in T)) \to ({I ↾}_{B}) +_{U} ({I ↾}_{B}) = ({I ↾}_{B}) \circ ({I ↾}_{B})$
10	6 7 7 9	syl12anc	$⊢ (K \in HL \land W \in H) \to ({I ↾}_{B}) +_{U} ({I ↾}_{B}) = ({I ↾}_{B}) \circ ({I ↾}_{B})$
11		f1oi	$⊢ ({I ↾}_{B}) : B \underset{1-1 onto}{⟶} B$
12		f1of	$⊢ ({I ↾}_{B}) : B \underset{1-1 onto}{⟶} B \to ({I ↾}_{B}) : B ⟶ B$
13		fcoi2	$⊢ ({I ↾}_{B}) : B ⟶ B \to ({I ↾}_{B}) \circ ({I ↾}_{B}) = {I ↾}_{B}$
14	11 12 13	mp2b	$⊢ ({I ↾}_{B}) \circ ({I ↾}_{B}) = {I ↾}_{B}$
15	10 14	syl6eq	$⊢ (K \in HL \land W \in H) \to ({I ↾}_{B}) +_{U} ({I ↾}_{B}) = {I ↾}_{B}$
16	2 4	dvalvec	$⊢ (K \in HL \land W \in H) \to U \in LVec$
17		lveclmod	$⊢ U \in LVec \to U \in LMod$
18	16 17	syl	$⊢ (K \in HL \land W \in H) \to U \in LMod$
19		eqid	$⊢ {Base}_{U} = {Base}_{U}$
20	2 3 4 19	dvavbase	$⊢ (K \in HL \land W \in H) \to {Base}_{U} = T$
21	7 20	eleqtrrd	$⊢ (K \in HL \land W \in H) \to {I ↾}_{B} \in {Base}_{U}$
22	19 8 5	lmod0vid	$⊢ (U \in LMod \land {I ↾}_{B} \in {Base}_{U}) \to (({I ↾}_{B}) +_{U} ({I ↾}_{B}) = {I ↾}_{B} \leftrightarrow \underset{˙}{0} = {I ↾}_{B})$
23	18 21 22	syl2anc	$⊢ (K \in HL \land W \in H) \to (({I ↾}_{B}) +_{U} ({I ↾}_{B}) = {I ↾}_{B} \leftrightarrow \underset{˙}{0} = {I ↾}_{B})$
24	15 23	mpbid	$⊢ (K \in HL \land W \in H) \to \underset{˙}{0} = {I ↾}_{B}$

Metamath Proof Explorer

Theorem dva0g

Proof