Question

Evaluate $\int {\sec }^2(-3x+4)dx$

• A. $\frac{-\tan (-3x+4)}{3}+C$
• B. $\frac{\tan (-3x+4)}{4}+C$
• C. $\frac{\tan (-3x+4)}{3}+C$
• D. $\frac{-\cot (-3x+4)}{4}+C$

Answer 1

The correct option is A $\frac{-\tan (-3x+4)}{3}+C$

As we know that $\int f(ax+b)dx=\frac{F(ax+b)}{a}+C$, where $a,b$ and $C$ are constants.
We have here,
$f\left(x\right)={\sec }^2(-3x+4)$, where $a=-3,b=4$
So, $\int {\sec }^2(-3x+4)dx=\frac{-\tan (-3x+4)}{3}+C$