Trig Derivative - # 3

[Jason76]

\(\displaystyle y = \dfrac{9 - \sec x}{\tan x}\)

\(\displaystyle y' = \dfrac{[\tan x][-\sec x \tan x] - [9 - \sec x][sec^{2} x]}{\tan^{2} x}\)

 

[stapel]

\(\displaystyle y = \dfrac{9 - \sec x}{\tan x}\)

\(\displaystyle y' = \dfrac{[\tan x][-\sec x \tan x] - [9 - \sec x][sec^{2} x]}{\tan^{2} x}\)

What is your question regarding this exercise?