Question

How do you find the derivative of `f(x)=sin (1/x^2)` using the chain rule?

Answer 1

`f^'(x)=-2/x^3cos(1/x^2)`

Explanation:

Here,

`f(x)=sin(1/x^2)=sin(x^-2)`

Using Chain Rule,we get

`f^'(x)=cos(x^-2)d/(dx)(x^-2)`

`=cos(1/x^2)(-2x^(-2-1))`

`=-2cos(1/x^2)(x^-3)`

`=-2/x^3cos(1/x^2)`