Solve cos2x-cos^2x-2sinx+3=0 in the interval [0, 2 pi]

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▸ ▸ ▸ » Solve cos2x-cos^2x-2sinx+3=0 in the interval [0, 2 pi]

rocknnrebellion Posts: 1, Reputation: 1

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#1

Jan 21, 2010, 06:23 PM

solve cos2x-cos^2x-2sinx+3=0 in the interval [0, 2 pi]

solve cos2x-cos^2x-2sinx+3=0 in the interval [0, 2 pi]

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ebaines Posts: 12,131, Reputation: 1307

Expert

#2

Jan 22, 2010, 06:35 AM

Hint: use a couple of the usual trig identities to get everything in terms of sin(x). For example:

$<br /> cos(2x) = 1 - 2sin^2x \\cos^2x = 1 - sin^2x<br />$

Then you can solve for sin(x).

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