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Solve cos x +sqr root of 2 = -cos x for x over the interval 0,2pi

Solve cos x +sqr root of 2 = -cos x for x over the interval 0,2pi
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Solve cos x +sqr root of 2 = -cos x for x over the interval 0,2pi

User Andrew Nguyen
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\bf cos(x)+√(2)=-cos(x)\implies 2cos(x)+√(2)=0\implies 2cos(x)=-√(2) \\\\\\ cos(x)=-\cfrac{√(2)}{2}\implies \measuredangle x= \begin{cases} (3\pi )/(4)\\ (5\pi )/(4) \end{cases}
User MasterOdin
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