Question

How do you find the slope and equation of the tangent line to the curve `y=9-2x^2` at the point (2,1)?

Answer 1

`y = - 8x + 17`

Explanation:

Given -

`y = 9 - 2x^2`

Its first derivative gives the slope of the curve st any given point.

`dy/dx = - 4x`

The tangent passes through the point (2, 1)

At x = 2 ; the slope of the given curve is

`m = -4 * (2) = -8`

Slope of the tangent is the same as slope of the curve at point (2,1)

Equation of the line -

`y - y_1 = m (x - x_1)`

`y - 1 = - 8 (x - 2)`

`y -1 = - 8x +16`

`y = - 8x + 17`

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