Question

How do you use the limit definition to find the derivative of `y=-1/(x-1)`?

Answer 1

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

Explanation:

`f'(x) = lim_(h to 0) (f(x+h) - f(x))/(h)`

here

`f'(x) = lim_(h to 0) 1/h * ( - 1/((x+h)-1) - (- 1/(x-1)))`

`f'(x) = lim_(h to 0) 1/h * ( 1/(x-1) - 1/(x+h-1) )`

`f'(x) = lim_(h to 0) 1/h * ( (x+h)-1 - (x-1))/((x-1)(x+h-1)`

`f'(x) = lim_(h to 0) 1/h * ( h)/((x-1)(x+h-1)`

`f'(x) = lim_(h to 0) 1/((x-1)(x+h-1)`

`f'(x) = ( 1)/((x-1)(x-1)`

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