Question

What is the equation of the line tangent to `f(x)=2x^3 - x^2-x` at `x=4`?

Answer 1

`y=15x+48`

Explanation:

This is what we are given:

`f(x)=2x^3 - x^2-x` at `x=4`

For now we need the y-value which can be calculated simply by solving for `f(4)=108`

`x=4` `&` `y=108`

Now we take the derivative using the power rule which states:

`d/dxx^n=nx^(n-1)`

Keep in mind that the derivative of `x` is just one.

`d/dx=6x-2x-1`

Now we plug in our x-value of `4` into the derivative:

`6(4)-2(4)-1=15`

This `15` is our slope of the tangent line.

Now we use the point slope formula which is:

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

`y_1=108`
`m=15`
`x_1=4`

`y-108=15(x-4)`

Solve it:

`y=15x+48`