How do you solve $sin(2x)=cos(x)$ ?

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Answer 1 · 2016-04-28T10:29:10

$x=-\pi/2,\pi/6,\pi/2, or {5\pi}/6$ plus multiples of $2\pi$ .

I cannot tell whether you have learned the double-angle formulas yet so I will develop a solution without them.

First observe that $\cos u=\cos v$ when $u+v=2n\pi$ or $u-v=2n\pi$ for any integer $n$ .

We then have $\sin(2x)=\cos(\pi/2-2x)$ . So:

$\cos(\pi/2-2x)=\cos(x)$ .

Then we have the two possibilities defined above.

Possibility 1:

$u+v=(\pi/2-2x)+x=2n\pi$
$\pi/2-x=2n\pi$
$x=\pi/2-2n\pi$

So $x=\pi/2$ plus multiples of $2\pi$

Possibility 2:

$u-v=(\pi/2-2x)-x=2n\pi$
$\pi/2-3x=2n\pi$
$x=\pi/6-{2n}/{3\pi}$

So $x=-\pi/2, \pi/6$ or ${5\pi}/6$ plus multiples of $2\pi$ .

Put the two possibilities together to get the answer.

How do you solve sin(2x)=cos(x)sin(2x)=cos(x)?