How do you multiply #(6+ i \sqrt { 2} ) ( 4+ i \sqrt { 3} )#?

1 Answer
GiĆ³
Jun 24, 2017

I tried this:

Explanation:

You need to remember that:
#i*i=i^2=(sqrt(-1))^2=-1#

So you can multiply as usual the two brackets:

#6*4+6*isqrt(3)+4*isqrt(2)+isqrt(2)*isqrt(3)=#

#=24+6isqrt(3)+4isqrt(2)-sqrt(6)=#

#=[24-sqrt(6)]+i[6sqrt(3)+4sqrt(2)]#

in the form #a+ib#

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