Question

${\left(\frac{\cos \theta +i\sin \theta }{\sin \theta +i\cos \theta }\right)}^8+{\left(\frac{1+\cos \theta -i\sin \theta }{1+\cos \theta +i\sin \theta }\right)}^{16}=$

• A. $2\cos 8\theta$
• B. $2\cos 16\theta$
• C. $2\sin 8\theta$
• D. $2\sin 16\theta$

Answer 1

Answer: (B)

We have
${\left(\frac{\cos \theta +i\sin \theta }{\sin \theta +i\cos \theta }\right)}^8+{\left(\frac{1+\cos \theta -i\sin \theta }{1+\cos \theta +i\sin \theta }\right)}^{16}$
$={\left(\frac{\cos \theta +i\sin \theta }{i(\cos \theta -i\sin \theta )}\right)}^8+{\left(\frac{2{\cos }^2\frac{\theta }{2}-i2\sin \frac{\theta }{2}\cos \frac{\theta }{2}}{2{\cos }^2\frac{\theta }{2}+i2\sin \frac{\theta }{2}\cos \frac{\theta }{2}}\right)}^{16}$
$=\frac{1}{i^8}{\left(\frac{\cos \theta +i\sin \theta }{\cos \theta -i\sin \theta }\right)}^8+{\left(\frac{\cos \frac{\theta }{2}-i\sin \frac{\theta }{2}}{\cos \frac{\theta }{2}+i\sin \frac{\theta }{2}}\right)}^{16}$
$=\frac{\cos 8\theta +i\sin 8\theta }{\cos 8\theta -i\sin 8\theta }+\frac{\cos 8\theta -i\sin 8\theta }{\cos 8\theta +i\sin 8\theta }$
$=(\cos 8\theta +i\sin 8\theta )(\cos 8\theta -i\sin 8\theta {)}^{-1}+(\cos 8\theta -i\sin 8\theta (\cos 8\theta +i\sin 8\theta {)}^{-1}$
$=(\cos 8\theta +i\sin 8\theta )(\cos 8\theta +i(\sin 8\theta )+(\cos 8\theta -i\sin 8\theta )(\cos 8\theta -i\sin 8\theta )$
$=(\cos 8\theta +i\sin 8\theta {)}^2+(\cos 8\theta -i\sin 8\theta {)}^2$
$={\cos }^{2}8\theta +i^2{\sin }^{2}8\theta +2i\cos 8\theta \sin 8\theta +{\cos }^{2}8\theta +i^2{\sin }^{2}8\theta -2i\cos 8\theta \sin 8\theta$
$=2\left({\cos }^{2}8\theta -{\sin }^{2}8\theta \right)=2\cos 16\theta$