Answer to Question #251784 in Linear Algebra for Qzl.q

Let X be the cube root of -8.

"X^3 = -8"

"X^3 + 8=0"

"(X+2)(X^2-2X+4)=0"

For X + 2 = 0; we have X = −2

"X^2-2X+4=0"

This is need to solve this using the quadratic formula:

"X=\\frac{-(-2)\\pm\\sqrt{(-2)^2-4\\times1\\times4}}{2\\times1}"

"X=\\frac{2\\pm\\sqrt{4-16}}{2}"

"X=\\frac{2\\pm\\sqrt{-12}}{2}"

"X=\\frac{2\\pm2\\sqrt{-3}}{2}"

"X=1\\pm\\sqrt{-3}"

This means all the third root of( -8) are;

"-2, 1+i\\sqrt{3}, 1-i\\sqrt{3}"