Question

How do you find the derivative of `y=log_4 2x`?

Answer 1

`y'=1/(xln4)`

Explanation:

Rewrite `y` using the change of base formula.

`y=ln(2x)/ln4`

`y'=1/ln4*d/dx(ln(2x))`

Recall that `1/ln4` is just a constant.

To find `d/dx=(ln(2x))`, use the chain rule.

`ln(u)=1/u*(du)/dx`

Thus,

`d/dx(ln(2x))=1/(2x)d/dx(2x)=2/(2x)=1/x`

Plug this back into the `y'` expression.

`y'=1/(xln4)`