Simplifying boolean function using boolean algebra
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How to simplify the following expression :
A'BCD + AB'CD' + AB'CD + ABC'D + ABCD' + ABCD ?
It should get AC + BCD + ABD using Kmap but using boolean algebra i am stuck no matter how i try .
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Matt Fig
le 19 Nov 2012
>> syms A B C D
>> simplify((1-A)*B*C*D + A*(1-B)*C*(1-D) + A*(1-B)*C*D +...
A*B*(1-C)*D + A*B*C*(1-D) + A*B*C*D)
ans =
A*C + A*B*D + B*C*D - 2*A*B*C*D
Now look closely at the last term. The only case where it is nonzero is when all A,B,C,D are nonzero. If any non-zero value for the overall expression counts as true, then the last term is redundant.
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le 19 Nov 2012
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