Question

How do you find the derivative of `y = cosh^-1 (secx)`?

Answer 1

`\ y' = (sec x tan x)/ |tan x|`

`= sec x sgn (tan x)`

Explanation:

re-qrite slightly

`cosh y = sec x`

then diff implicitly

`sinh y \ y' = sec x tan x`

`\ y' = (sec x tan x)/sinh y`

`\ y' = (sec x tan x)/ (sqrt( cosh^2 y - 1 ))`

`\ y' = (sec x tan x)/ (sqrt( sec^2 x - 1 ))`

`\ y' = (sec x tan x)/ (sqrt( tan^2 x ))`

`\ y' = (sec x tan x)/ |tan x|`

`= sec x sgn (tan x)`