What is the answer of 2sin^2(x)-cos(2x)=0 ? - QAmmunity.org

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What is the answer of 2sin^2(x)-cos(2x)=0 ?

asked Aug 6, 2018 210k views

4 votes

What is the answer of
2sin^2(x)-cos(2x)=0 ?

Mathematics
high-school

Cydrick Trudel asked

by Cydrick Trudel

7.3k points

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1 Answer

6 votes

$2\sin^2x-\cos2x=2\sin^2x-(2\cos^2x-1)=2(\sin^2-\cos^2x)+1=0$

$-2\cos2x=-1$

$\cos2x=\frac12$

You have
$\cos x=\frac12$ for

$x=\frac\pi3+2n\pi$

$x=-\frac\pi3+2n\pi$

which means
$\cos 2x=\frac12$ for

$2x=\frac\pi3+2n\pi\implies x=\frac\pi6+n\pi$

$2x=-\frac\pi3+2n\pi\implies x=-\frac\pi6+n\pi$

where

is any integer.

Mateusppereira answered Aug 11, 2018

by Mateusppereira

7.0k points

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