kimberly-edwards_60a90c03b62cb

kimberly-edwards_60a90c03b62cb

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Username: kimberly-edwards_60a90c03b62cb
Joined: May 2021
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Last Active: May 2021
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A' = U - A (A')' = U - A' = A O Teorema de De Morgan prova justamente isto: (AB)' = A' U B' (AUB)' = A' B'

in Duvida em questão de conjuntos complementar de A em U e Leis de De Morgan? Comment by kimberly-edwards_60a90c03b62cb May 2021