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Theorem ska2a 218
Description: Axiom KA2a in Pavicic and Megill, 1998
Assertion
Ref Expression
ska2a (((a v c) == (b v c)) == ((c v a) == (c v b))) = 1
Proof of Theorem ska2a
StepHypRef Expression
1 ax-a2 30 . . 3 (a v c) = (c v a)
2 ax-a2 30 . . 3 (b v c) = (c v b)
31, 22bi 91 . 2 ((a v c) == (b v c)) = ((c v a) == (c v b))
43bi1 110 1 (((a v c) == (b v c)) == ((c v a) == (c v b))) = 1
Colors of variables: term
Syntax hints:   = wb 1   == tb 5   v wo 6  1wt 9
This theorem was proved from axioms:  ax-a1 29  ax-a2 30  ax-a5 33  ax-r1 34  ax-r2 35  ax-r4 36  ax-r5 37
This theorem depends on definitions:  df-b 38  df-a 39  df-t 40  df-f 41
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