How do you solve $62 sin^2 θ − cos 2θ = 0$ ?

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How do you solve $62 sin^2 θ − cos 2θ = 0$ ?

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Answer 1 · 2015-08-05T16:56:32

Solve $62 sin^2 x - cos 2x = 0$

Explanation:

Replace cos 2x by $(1 - 2sin^2 x)$

$62sin^2x - 1 + 2sin^2 x = 0$

$64sin^2 x = 1$ --> $sin x = +- 1/8$

$sin x = 1/8$ = 0.125 --> $x = 7.18$ deg and $x = (180 - 7.18) = 172.82$ deg

$sin x = -1/8 = - 0.125$ --> $x = (180 + 7.18) = 187.18$ and $x = (360 - 7.18) = 352.82$ deg.
Within interval $(0, 2pi)$ , there are 4 answers:
7.18 deg, 172.82 deg; 187.18 deg, and 352.82 deg.

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How do you solve $62 sin^2 θ − cos 2θ = 0$ ?

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How do you solve 62 sin^2 θ − cos 2θ = 0 62 sin^2 θ − cos 2θ = 0?

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Explanation:

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How do you solve $62 sin^2 θ − cos 2θ = 0$ ?