How do you verify #(tan^3(x) - 1) / (tan(x) - 1) = sec^2(x) + tan(x)#?

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How do you verify #(tan^3(x) - 1) / (tan(x) - 1) = sec^2(x) + tan(x)#?

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Answer 1 · 2016-06-29T09:14:02

LHS =
#(tan^3(x)-1)/(tan(x)-1)#
#"Since " a^3-b^3=(a-b)*(a^2+a*b+b^2)#, we may write the LHS
#= (cancel((tan(x)-1))*(tan^2(x)+tan(x)+1))/cancel((tan(x)-1))#

#=cancel(tan^2(x))+tan(x)+Sec^2(x)-cancel(tan^2(x))# #["Since " Sec^2(x)-tan^2(x) = 1]#
#=Sec^2(x)+tan(x) = #RHS Proved.

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How do you verify #(tan^3(x) - 1) / (tan(x) - 1) = sec^2(x) + tan(x)#?

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