Question

What is the equation of the line tangent to `f(x)=(x-2)/x` at `x=-3`?

Answer 1

`y=2/9x+7/3`

Explanation:

`f(x)=(x-2)/x` , `A=RR`*`=(-oo,0)uu(0,+oo)`

`f'(x)=((x-2)'x-(x-2)(x)')/x^2=(x-(x-2))/x^2=`

`=(x-x+2)/x^2=2/x^2`

`f(-3)=5/3` , `f'(-3)=2/9`

`y-f(-3)=f'(-3)(x+3)` `<=>`

`y-5/3=2/9(x+3)` `<=>`

`y=2/9x+7/3`