If #kappa = cos((2pi)/9)+i sin((2pi)/9)# (i.e. the primitive Complex #9#th root of #1#) then how do you express #kappa^8# in the form #a+b kappa + c kappa^2 + d kappa^3 + e kappa^4 + f kappa^5# where #a, b, c, d, e, f# are rational?

1 Answer
Dec 20, 2016

#kappa^8 = -kappa^5-kappa^2#

Explanation:

Consider:

#kappa = cos((2pi)/9) + i sin((2pi)/9)#

Using de Moivre's formula:

#(cos(x) + i sin(x))^n = cos(nx) + i sin(nx)#

it should be fairly clear that #kappa# satisfies:

#kappa^9 = 1#

That is: #kappa# is a zero of the polynomial:

#x^9-1#

What may be less obvious is that this is not the simplest polynomial for which #kappa# is a zero.

We find:

#x^9-1 = (x-1)(x^2+x+1)(x^6+x^3+1)#

#kappa# is not a zero of #(x-1)#, nor of #(x^2+x+1)#, so it must be a zero of:

#x^6+x^3+1#

This is the minimum polynomial for #kappa# over the rational numbers.
This polynomial is known as a cyclotomic polynomial, specifically #Phi_9#

So if we can express:

#kappa^8 = q_kappa(kappa^6+kappa^3+1) + r_kappa#

For some quotient polynomial #q_kappa# and remainder polynomial #r_kappa# where #r_kappa# is of degree #5# or lower, then:

#kappa^8 = r_kappa#

since #(kappa^6+kappa^3+1) = 0#

So all we have to do is long divide #kappa^8# by #kappa^6+kappa^3+1# and identify the remainder.

Actually the long division terminates after the first term of the quotient, since:

#kappa^8 - kappa^2(kappa^6+kappa^3+1) = color(red)(cancel(color(black)(kappa^8))) - color(red)(cancel(color(black)(kappa^8)))-kappa^5-kappa^2#

#color(white)(kappa^8 - kappa^2(kappa^6+kappa^3+1)) = -kappa^5-kappa^2#

which is already of degree #5#.

So:

#kappa^8 = -kappa^5-kappa^2#