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How do you factor completely #32a^4 - 162b^4#?

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Konstantinos Michailidis

May 22, 2016

It is

#32a^4-162b^4=2*(16a^4-81b^4)= 2*((2a)^4-(3b)^4)=2*((2a)^2-(3b)^2)*((2a)^2+(3b)^2)= 2*(2a-3b)*(2a+3b)*((2a)^2+(3b)^2)#

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