2cos^2x=1+sinx

solve for 0 less than or equal to x less than or equal to 2pi.  2cos^x=1+sinx
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1 Answer

2cos2(x)=2(1-sin2(x));

2(1-sin2(x))=1+sin(x),

2-2sin2(x)=1+sin(x),

2sin2(x)+sin(x)-1=0=(2sin(x)-1)(sin(x)+1),

sin(x)=½, sin(x)=-1,

x=π/6, 5π/6, 3π/2.

by Top Rated User (1.2m points)

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