arcocs = cos^(-1). a quanto sarà uguale cotangente (arccos 3/5) = ?

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arcocs = cos^(-1). a quanto sarà uguale cotangente (arccos 3/5) = ?

by pasquale.clarizio |
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y=cot[Arccos(3/5)]. Set x=Arccos(3/5), so cosx=3/5.

Hence,

y=cot[Arccos(3/5)]

=cotx

=cosx/sinx

=cosx/Sqrt[1-(cosx)^2]

=(3/5)/Sqrt[1-(3/5)^2]

=(3/5)/Sqrt(1-9/25)

=(3/5)/Sqrt(16/25)

=(3/5)/(4/5)

=3/5*5/4

=3/4

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