nonbooli

Description: A Hilbert lattice with two or more dimensions fails the distributive law and therefore cannot be a Boolean algebra. This counterexample demonstrates a condition where ( ( H i^i F ) vH ( H i^i G ) ) = 0H but ( H i^i ( F vH G ) ) =/= 0H . The antecedent specifies that the vectors A and B are nonzero and non-colinear. The last three hypotheses assign one-dimensional subspaces to F , G , and H . (Contributed by NM, 1-Nov-2005) (New usage is discouraged.)

	Ref	Expression
Hypotheses	nonbool.1	$⊢ A \in ℋ$
	nonbool.2	$⊢ B \in ℋ$
	nonbool.3	$⊢ F = span (\{A\})$
	nonbool.4	$⊢ G = span (\{B\})$
	nonbool.5	$⊢ H = span (\{A +_{ℎ} B\})$
Assertion	nonbooli	$⊢ \neg (A \in G \lor B \in F) \to H \cap (F \lor_{ℋ} G) \neq (H \cap F) \lor_{ℋ} (H \cap G)$

Proof

Step	Hyp	Ref	Expression
1		nonbool.1	$⊢ A \in ℋ$
2		nonbool.2	$⊢ B \in ℋ$
3		nonbool.3	$⊢ F = span (\{A\})$
4		nonbool.4	$⊢ G = span (\{B\})$
5		nonbool.5	$⊢ H = span (\{A +_{ℎ} B\})$
6	1 2	hvaddcli	$⊢ A +_{ℎ} B \in ℋ$
7		spansnid	$⊢ A +_{ℎ} B \in ℋ \to A +_{ℎ} B \in span (\{A +_{ℎ} B\})$
8	6 7	ax-mp	$⊢ A +_{ℎ} B \in span (\{A +_{ℎ} B\})$
9	8 5	eleqtrri	$⊢ A +_{ℎ} B \in H$
10	1	spansnchi	$⊢ span (\{A\}) \in C_{ℋ}$
11	10	chshii	$⊢ span (\{A\}) \in S_{ℋ}$
12	3 11	eqeltri	$⊢ F \in S_{ℋ}$
13	2	spansnchi	$⊢ span (\{B\}) \in C_{ℋ}$
14	13	chshii	$⊢ span (\{B\}) \in S_{ℋ}$
15	4 14	eqeltri	$⊢ G \in S_{ℋ}$
16	12 15	shsleji	$⊢ F +_{ℋ} G \subseteq F \lor_{ℋ} G$
17		spansnid	$⊢ A \in ℋ \to A \in span (\{A\})$
18	1 17	ax-mp	$⊢ A \in span (\{A\})$
19	18 3	eleqtrri	$⊢ A \in F$
20		spansnid	$⊢ B \in ℋ \to B \in span (\{B\})$
21	2 20	ax-mp	$⊢ B \in span (\{B\})$
22	21 4	eleqtrri	$⊢ B \in G$
23	12 15	shsvai	$⊢ (A \in F \land B \in G) \to A +_{ℎ} B \in (F +_{ℋ} G)$
24	19 22 23	mp2an	$⊢ A +_{ℎ} B \in (F +_{ℋ} G)$
25	16 24	sselii	$⊢ A +_{ℎ} B \in (F \lor_{ℋ} G)$
26		elin	$⊢ A +_{ℎ} B \in (H \cap (F \lor_{ℋ} G)) \leftrightarrow (A +_{ℎ} B \in H \land A +_{ℎ} B \in (F \lor_{ℋ} G))$
27	9 25 26	mpbir2an	$⊢ A +_{ℎ} B \in (H \cap (F \lor_{ℋ} G))$
28		eleq2	$⊢ H \cap (F \lor_{ℋ} G) = 0_{ℋ} \to (A +_{ℎ} B \in (H \cap (F \lor_{ℋ} G)) \leftrightarrow A +_{ℎ} B \in 0_{ℋ})$
29	27 28	mpbii	$⊢ H \cap (F \lor_{ℋ} G) = 0_{ℋ} \to A +_{ℎ} B \in 0_{ℋ}$
30		elch0	$⊢ A +_{ℎ} B \in 0_{ℋ} \leftrightarrow A +_{ℎ} B = 0_{ℎ}$
31	29 30	sylib	$⊢ H \cap (F \lor_{ℋ} G) = 0_{ℋ} \to A +_{ℎ} B = 0_{ℎ}$
32		ch0	$⊢ span (\{A\}) \in C_{ℋ} \to 0_{ℎ} \in span (\{A\})$
33	10 32	ax-mp	$⊢ 0_{ℎ} \in span (\{A\})$
34	31 33	eqeltrdi	$⊢ H \cap (F \lor_{ℋ} G) = 0_{ℋ} \to A +_{ℎ} B \in span (\{A\})$
35	3	eleq2i	$⊢ B \in F \leftrightarrow B \in span (\{A\})$
36		sumspansn	$⊢ (A \in ℋ \land B \in ℋ) \to (A +_{ℎ} B \in span (\{A\}) \leftrightarrow B \in span (\{A\}))$
37	1 2 36	mp2an	$⊢ A +_{ℎ} B \in span (\{A\}) \leftrightarrow B \in span (\{A\})$
38	35 37	bitr4i	$⊢ B \in F \leftrightarrow A +_{ℎ} B \in span (\{A\})$
39	34 38	sylibr	$⊢ H \cap (F \lor_{ℋ} G) = 0_{ℋ} \to B \in F$
40	39	con3i	$⊢ \neg B \in F \to \neg H \cap (F \lor_{ℋ} G) = 0_{ℋ}$
41	40	adantl	$⊢ (\neg A \in G \land \neg B \in F) \to \neg H \cap (F \lor_{ℋ} G) = 0_{ℋ}$
42	5 3	ineq12i	$⊢ H \cap F = span (\{A +_{ℎ} B\}) \cap span (\{A\})$
43	6 1	spansnm0i	$⊢ \neg A +_{ℎ} B \in span (\{A\}) \to span (\{A +_{ℎ} B\}) \cap span (\{A\}) = 0_{ℋ}$
44	38 43	sylnbi	$⊢ \neg B \in F \to span (\{A +_{ℎ} B\}) \cap span (\{A\}) = 0_{ℋ}$
45	42 44	syl5eq	$⊢ \neg B \in F \to H \cap F = 0_{ℋ}$
46	5 4	ineq12i	$⊢ H \cap G = span (\{A +_{ℎ} B\}) \cap span (\{B\})$
47		sumspansn	$⊢ (B \in ℋ \land A \in ℋ) \to (B +_{ℎ} A \in span (\{B\}) \leftrightarrow A \in span (\{B\}))$
48	2 1 47	mp2an	$⊢ B +_{ℎ} A \in span (\{B\}) \leftrightarrow A \in span (\{B\})$
49	1 2	hvcomi	$⊢ A +_{ℎ} B = B +_{ℎ} A$
50	49	eleq1i	$⊢ A +_{ℎ} B \in span (\{B\}) \leftrightarrow B +_{ℎ} A \in span (\{B\})$
51	4	eleq2i	$⊢ A \in G \leftrightarrow A \in span (\{B\})$
52	48 50 51	3bitr4ri	$⊢ A \in G \leftrightarrow A +_{ℎ} B \in span (\{B\})$
53	6 2	spansnm0i	$⊢ \neg A +_{ℎ} B \in span (\{B\}) \to span (\{A +_{ℎ} B\}) \cap span (\{B\}) = 0_{ℋ}$
54	52 53	sylnbi	$⊢ \neg A \in G \to span (\{A +_{ℎ} B\}) \cap span (\{B\}) = 0_{ℋ}$
55	46 54	syl5eq	$⊢ \neg A \in G \to H \cap G = 0_{ℋ}$
56	45 55	oveqan12rd	$⊢ (\neg A \in G \land \neg B \in F) \to (H \cap F) \lor_{ℋ} (H \cap G) = 0_{ℋ} \lor_{ℋ} 0_{ℋ}$
57		h0elch	$⊢ 0_{ℋ} \in C_{ℋ}$
58	57	chj0i	$⊢ 0_{ℋ} \lor_{ℋ} 0_{ℋ} = 0_{ℋ}$
59	56 58	eqtrdi	$⊢ (\neg A \in G \land \neg B \in F) \to (H \cap F) \lor_{ℋ} (H \cap G) = 0_{ℋ}$
60		eqeq2	$⊢ (H \cap F) \lor_{ℋ} (H \cap G) = 0_{ℋ} \to (H \cap (F \lor_{ℋ} G) = (H \cap F) \lor_{ℋ} (H \cap G) \leftrightarrow H \cap (F \lor_{ℋ} G) = 0_{ℋ})$
61	60	notbid	$⊢ (H \cap F) \lor_{ℋ} (H \cap G) = 0_{ℋ} \to (\neg H \cap (F \lor_{ℋ} G) = (H \cap F) \lor_{ℋ} (H \cap G) \leftrightarrow \neg H \cap (F \lor_{ℋ} G) = 0_{ℋ})$
62	61	biimparc	$⊢ (\neg H \cap (F \lor_{ℋ} G) = 0_{ℋ} \land (H \cap F) \lor_{ℋ} (H \cap G) = 0_{ℋ}) \to \neg H \cap (F \lor_{ℋ} G) = (H \cap F) \lor_{ℋ} (H \cap G)$
63	41 59 62	syl2anc	$⊢ (\neg A \in G \land \neg B \in F) \to \neg H \cap (F \lor_{ℋ} G) = (H \cap F) \lor_{ℋ} (H \cap G)$
64		ioran	$⊢ \neg (A \in G \lor B \in F) \leftrightarrow (\neg A \in G \land \neg B \in F)$
65		df-ne	$⊢ H \cap (F \lor_{ℋ} G) \neq (H \cap F) \lor_{ℋ} (H \cap G) \leftrightarrow \neg H \cap (F \lor_{ℋ} G) = (H \cap F) \lor_{ℋ} (H \cap G)$
66	63 64 65	3imtr4i	$⊢ \neg (A \in G \lor B \in F) \to H \cap (F \lor_{ℋ} G) \neq (H \cap F) \lor_{ℋ} (H \cap G)$

Metamath Proof Explorer

Theorem nonbooli

Proof