Question

How do you find the zeros, real and imaginary, of `y=-x^2 -16x +8` using the quadratic formula?

Answer 1

The zeros of the equation are `8 +- 6sqrt(2)`.

Explanation:

`y = -x^2 - 16x + 8`

We can solve for any zero(s) of a function with the quadratic formula, stated here: `x = (-b+- sqrt(b^2 - 4ac))/(2a)`

Our equation is written in standard form, or `y = ax^2 + bx + c`.

We know that `a = -1`, `b = -16`, and `c = 8`, so we plug in those values into the quadratic formula and solve for `x`:

`x = (-(-16) +- sqrt((-16)^2 - 4(-1)(8)))/(2(-1))`

`x = (16 +- sqrt(256 - 4(-8)))/-2`

`x = (16 +- sqrt(256+32))/2`

`x = (16 +- sqrt(288))/2`

`x = (16 +- 12sqrt(2))/2`

`x = 8 +- 6sqrt(2)`

The zeros of the equation are `8 +- 6sqrt(2)`.

Hope this helps!