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Theorem oa4to6lem3 942
Description: Lemma for orthoarguesian law (4-variable to 6-variable proof).
Hypotheses
Ref Expression
oa4to6lem.1 ab
oa4to6lem.2 cd
oa4to6lem.3 ef
oa4to6lem.4 g = (((ab) ∪ (cd)) ∪ (ef))
Assertion
Ref Expression
oa4to6lem3 f ≤ (e1 g)

Proof of Theorem oa4to6lem3
StepHypRef Expression
1 leor 151 . . . 4 f ≤ (ef)
2 comid 179 . . . . . . . . 9 e C e
32comcom3 436 . . . . . . . 8 e C e
4 oa4to6lem.3 . . . . . . . . 9 ef
54lecom 172 . . . . . . . 8 e C f
63, 5fh3 453 . . . . . . 7 (e ∪ (ef)) = ((ee) ∩ (ef))
7 ancom 68 . . . . . . . 8 (1 ∩ (ef)) = ((ef) ∩ 1)
8 df-t 40 . . . . . . . . . 10 1 = (ee )
9 ax-a2 30 . . . . . . . . . 10 (ee ) = (ee)
108, 9ax-r2 35 . . . . . . . . 9 1 = (ee)
1110ran 71 . . . . . . . 8 (1 ∩ (ef)) = ((ee) ∩ (ef))
12 an1 98 . . . . . . . 8 ((ef) ∩ 1) = (ef)
137, 11, 123tr2 61 . . . . . . 7 ((ee) ∩ (ef)) = (ef)
146, 13ax-r2 35 . . . . . 6 (e ∪ (ef)) = (ef)
1514ax-r1 34 . . . . 5 (ef) = (e ∪ (ef))
16 anidm 103 . . . . . . . . 9 (ee) = e
1716ran 71 . . . . . . . 8 ((ee) ∩ f) = (ef)
1817ax-r1 34 . . . . . . 7 (ef) = ((ee) ∩ f)
19 anass 69 . . . . . . 7 ((ee) ∩ f) = (e ∩ (ef))
2018, 19ax-r2 35 . . . . . 6 (ef) = (e ∩ (ef))
2120lor 66 . . . . 5 (e ∪ (ef)) = (e ∪ (e ∩ (ef)))
2215, 21ax-r2 35 . . . 4 (ef) = (e ∪ (e ∩ (ef)))
231, 22lbtr 131 . . 3 f ≤ (e ∪ (e ∩ (ef)))
24 leor 151 . . . . 5 (ef) ≤ (((ab) ∪ (cd)) ∪ (ef))
2524lelan 159 . . . 4 (e ∩ (ef)) ≤ (e ∩ (((ab) ∪ (cd)) ∪ (ef)))
2625lelor 158 . . 3 (e ∪ (e ∩ (ef))) ≤ (e ∪ (e ∩ (((ab) ∪ (cd)) ∪ (ef))))
2723, 26letr 129 . 2 f ≤ (e ∪ (e ∩ (((ab) ∪ (cd)) ∪ (ef))))
28 oa4to6lem.4 . . . . 5 g = (((ab) ∪ (cd)) ∪ (ef))
2928ud1lem0a 247 . . . 4 (e1 g) = (e1 (((ab) ∪ (cd)) ∪ (ef)))
30 df-i1 43 . . . 4 (e1 (((ab) ∪ (cd)) ∪ (ef))) = (e ∪ (e ∩ (((ab) ∪ (cd)) ∪ (ef))))
3129, 30ax-r2 35 . . 3 (e1 g) = (e ∪ (e ∩ (((ab) ∪ (cd)) ∪ (ef))))
3231ax-r1 34 . 2 (e ∪ (e ∩ (((ab) ∪ (cd)) ∪ (ef)))) = (e1 g)
3327, 32lbtr 131 1 f ≤ (e1 g)
Colors of variables: term
Syntax hints:   = wb 1   ≤ wle 2   wn 4   ∪ wo 6   ∩ wa 7  1wt 9   →1 wi1 13
This theorem is referenced by:  oa4to6lem4 943
This theorem was proved from axioms:  ax-a1 29  ax-a2 30  ax-a3 31  ax-a4 32  ax-a5 33  ax-r1 34  ax-r2 35  ax-r4 36  ax-r5 37  ax-r3 421
This theorem depends on definitions:  df-b 38  df-a 39  df-t 40  df-f 41  df-i1 43  df-le1 122  df-le2 123  df-c1 124  df-c2 125
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