Question

What is the equation of the tangent line of `f(x)=x^2-2x` at `x=1`?

Answer 1

`y = - x`

Explanation:

We have: `f(x) = x^(2) - 2 x`; `x = 1`

First, let's determine the `y`-intercept:

`=> f(1) = (1)^(2) - 2 (1)`

`=> f(1) = 1 - 2`

`=> f(1) = - 1`

Then, let's evaluate the derivative of the function, and then the gradient:

`=> f'(x) = x - 2`

`=> f'(1) = (1) - 2`

`=> f'(1) = - 1`

`=> y - y_(1) = m (x - x_(1))`

`=> y - (- 1) = - 1 (x - 1)`

`=> y + 1 = - x + 1`

`=> y = - x`