cristhyanmorenomarqu cristhyanmorenomarqu

15-03-2022
Mathematics

contestada

[tex]cos^{2} (\frac{1}{2}*arccos(-\frac{12}{13} ))[/tex]

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LammettHash LammettHash

17-03-2022

Recall the half-angle identity,

cos²(x/2) = (1 + cos(x))/2

This means

[tex]\cos^2\left(\dfrac12 \arccos\left(-\dfrac{12}{13}\right)\right) = \dfrac{1 + \cos\left(\arccos\left(-\frac{12}{13}\right)\right)}2 = \dfrac{1 - \frac{12}{13}}2 = \boxed{\frac1{26}}[/tex]

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