Question

The curve `C` has a equation `y=x^3-2x^2`. How do you show that `N`, the normal to `C` at point `(1,-1)`, has equation y=-2#?

Answer 1

You can't show that. It is false. I suspect that there is a typographic error in the question.

Explanation:

For `y=x^3-2x^2`, we get derivative `y' = 3x^2-4x`

At the point `(1,-1)` the slope of the tangent line is `m = y']_(x=1) = 3-4=-1`.

Therefore the slope of the normal line is `-1/((-1)) = 1`.

The line through `(1,-1)` with slope `m=1` has equation

`y-(-1) = 1(x-1)` which is equivalent to

`y=x-2` `" "` (I suspect that `y=-2` is a typographic error in the question.)