Question

$\int e^{\tan \theta }(\sec \theta -\sin \theta )d\theta$ is equal to

• A. $-e^{\tan \theta }\sin \theta +c$
• B. $e^{\tan \theta }\sin \theta +c$
• C. $e^{\tan \theta }\sec \theta +c$
• D. $e^{\tan \theta }\cos \theta +c$

Answer 1

Answer: (D)

$I=\int e^{\tan \theta }(\sec \theta -\sin \theta )d\theta$
$=\int e^{\tan \theta }\left(\frac{\sec \theta -\sin \theta }{{\sec }^2\theta }\right){\sec }^2\theta d\theta$
$I=\int e^{\tan \theta }\left(\frac{1}{\sec \theta }-\frac{\sin \theta }{{\sec }^2\theta }\right){\sec }^2\theta d\theta$
$=\int e^{\tan \theta }\left(\frac{1}{\sqrt{1+{\tan }^2\theta }}-\frac{\tan \theta }{{\left(1+{\tan }^2\theta \right)}^{3/2}}\right){\sec }^2\theta d\theta$
$=e^{\tan \theta }\cdot \frac{1}{\sqrt{1+{\tan }^2\theta }}=e^{\tan \theta }\cdot \cos \theta +C$