Question

How do you differentiate # g(x) = sin x + 1/2 cot x #?

Answer 1

`g'(x)=cosx-1/2csc^2x`

Explanation:

The trick here is knowing your trigonometric derivatives.

`d/dx(sinx)=cosx`

`d/dx(cotx)=-csc^2x`

Hence

`g'(x)=cosx-1/2csc^2x`