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Asked: 2026-06-18T05:31:02+00:00

I need to show that the expression: ~(A XOR B) is equivilant to (~A

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I need to show that the expression:

~(A XOR B)

is equivilant to 

(~A XOR B)

using boolean algebra.

I really have no idea how to start, any help would be appreciated.

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1 Answer

  1. Editorial Team

    In order to show that two logical expressions are equivalent, you may proceed in two different ways.

    1. Write a truth table for each of the expressions and then, if the resulting functional truth values are the same, then the expressions are equivalent;

    2. Equivalence is the same as implication in both directions;

      A <=> B is equivalent to (A => B) AND (B => A)

      So, what you need is try to get (~A xor B) from ~(A xor B) and vice versa.

      • ~(A xor B) =
      • by definition of xor + negation = ~ ( (~A and B) or (A and ~B) ) =
      • by De Morgan law = ~ (~A and B) and ~(A and ~B) =
      • by De Morgan law again = (A or ~B) and (~A or B) =
      • by applying distributive law = (A and ~A) or (A and B) or (~B and ~A) or (~B and B) =
      • ignore contradictions = (A and B) or (~B and ~A) =
      • apply definition of xor in another direction = ~A xor B.

      the end

      The same procedure must be done in the other direction ( get ~(A xor B) from (~A xor B) ). Then the proof will be complete.

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