Question

How do you find the equation of a line tangent to `y=x^2-2x` at (3,3)?

Answer 1

`y=4x-9`

Explanation:

The gradient of the tangent to a curve at any particular point is give by the derivative of the curve at that point.

so If `y=x^2-2x` then differentiating wrt `x` gives us:

`dy/dx = 2x-2`

When `x=3 => y=9-6=3` (so `(3,3)` lies on the curve)
and `dy/dx=6-2=4`

So the tangent we seek passes through `(3,3)` and has gradient `4` so using `y-y_1=m(x-x_1)` the equation we seek is;

`\ \ \ \ \ y-3=4(x-3)`
`:. y-3=4x-12`
`:. \ \ \ \ \ \ \ y=4x-9`