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How do you multiply #(4-2i) (3 + 2i)#?

1 Answer

Apr 19, 2018

#16 +2 i #

Explanation:

#(4-2 i)(3+2 i) = 12 + 8 i - 6 i - 4 i^2 #

#=12 + 2 i - 4 * (-1) ; [i^2 = -1] #

#=12 + 2 i +4 = 16 +2 i # [Ans]

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