If ω is a complex cube root of unity, then (1-ω+ω2)6+(1-ω2+ω)6=

Question

If ω is a complex cube root of unity, then (1-ω+ω2)6+(1-ω2+ω)6= (A) 0 (B) 6 (C) 64 (D) 128

Tardigrade Admin · Accepted Answer

We have, (1-ω+ω2)6+(1-ω2+ω)6 =(-ω-ω)6+(-ω2-ω2)6 [∵ 1+ω+ω2=0] =(-2 ω)6+(-2 ω2)6 =64 ω6+64 ω12 =64(ω3)2+64(ω3)4 =64(1)2+64(1)4 =64+64=128

Q. If $ω$ is a complex cube root of unity, then $(1 - ω + ω^{2})^{6} + (1 - ω^{2} + ω)^{6} =$