Question #79828

(p->(q^r))^(not p->not q^not r))

Expert's answer

Answer on Question #79828 – Math – Discrete Mathematics

Question


(p(qr))(¬p(¬q¬r))(p \rightarrow (q \wedge r)) \wedge (\neg p \rightarrow (\neg q \wedge \neg r))


Solution



The truth table was given, it is not a tautology.

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