How do you find the general solutions for $2cos^2 4x-1=0$ ?

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How do you find the general solutions for $2cos^2 4x-1=0$ ?

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Answer 1 · 2015-08-30T01:12:02

Solve $2cos^2 4x - 1 = 0$

Ans: $pi/6 and (3pi)/6$

Explanation:

Apply the trig identity: $cos 2x = 2cos^2 x - 1$
$2cos^2 4x - 1 = cos 8x = 0$
$cos 8x = 0$ --> $8x = pi/2$ and $8x = (3pi)/2$
a. $8x = pi/2$ --> $x = pi/16$
b. $8x = 3pi/2$ --> $x = (3pi)/16$
General solutions
$x = pi/6 + 2kpi$
$x = (3pi)/16 + 2kpi$

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How do you find the general solutions for $2cos^2 4x-1=0$ ?

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