Question

How do you find the equation of the line that is tangent to `f(x)=x^3+2` and parallel to the line `3x-y-4=0`?

Answer 1

Two tangent lines are parallel to the given line, `y = 3x + 4` and `y = 3x`

Explanation:

Write the line in slope-intercept form so that we can observe its slope:

`y = 3x - 4`

Its slope is 3.

Take the first derivative of f(x) and set that equal to 3

`f'(x) = 3x^2`

`3x^2 = 3`

`x^2 = 1`

`x = -1` and `x = 1`

The corresponding y values are:

`y = -1^3 + 2 = 1` and `y = 1^3 + 2 = 3`

The points where the tangent lines are parallel to the given line are `(-1,1)` and `(1,3)`.

Using the point-slope form of the equation of a line, we create two equations:

`y - 1 = 3(x - -1)` and `y - 3 = 3(x - 1)`

Simplify both:

`y = 3x + 4` and `y = 3x`