Chapter 10 - Parametric Equations and Polar Coordinates - 10.4 Exercises - Page 693: 19

$=\frac{\pi}{16}$

$r=sin4\theta$ Area enclosed by one loop is $A=\int_{0}^{\pi/4}\frac{( {sin4\theta})^{2}}{2}d \theta$ $=\int_{0}^{\pi/4}\frac{( {1-cos8\theta})}{4}d \theta$ $=\frac{\pi}{16}$